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https://github.com/MobileGL-Dev/MobileGL
synced 2026-09-08 04:08:32 +09:00
Compare commits
418
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@@ -9,17 +9,45 @@ fi
|
||||
case_name="$1"
|
||||
fixture_dir="${2:-tools/trace_replay/fixtures}"
|
||||
python_bin="${PYTHON:-python3}"
|
||||
mirror_base="${MOBILEGL_TRACE_FIXTURE_MIRROR_BASE:-https://repo.miawa.cn/mgl/tools/trace_replay/fixtures}"
|
||||
# Fixture mirrors, tried in order before falling back to Git LFS. Override the
|
||||
# whole list with MOBILEGL_TRACE_FIXTURE_MIRROR_BASES (whitespace separated);
|
||||
# MOBILEGL_TRACE_FIXTURE_MIRROR_BASE still works and is tried first.
|
||||
default_mirror_bases=(
|
||||
"https://git.hit.moe/swung0x48/MobileGL/media/branch/dev/tools/trace_replay/fixtures"
|
||||
"https://repo.miawa.cn/mgl/tools/trace_replay/fixtures"
|
||||
)
|
||||
if [ -n "${MOBILEGL_TRACE_FIXTURE_MIRROR_BASES:-}" ]; then
|
||||
read -r -a mirror_bases <<< "${MOBILEGL_TRACE_FIXTURE_MIRROR_BASES}"
|
||||
else
|
||||
mirror_bases=("${default_mirror_bases[@]}")
|
||||
fi
|
||||
if [ -n "${MOBILEGL_TRACE_FIXTURE_MIRROR_BASE:-}" ]; then
|
||||
mirror_bases=("${MOBILEGL_TRACE_FIXTURE_MIRROR_BASE}" "${mirror_bases[@]}")
|
||||
fi
|
||||
# Optional bearer token for mirrors that require authentication (private Gitea).
|
||||
mirror_token="${MOBILEGL_TRACE_FIXTURE_MIRROR_TOKEN:-}"
|
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download_attempts="${MOBILEGL_TRACE_FIXTURE_DOWNLOAD_ATTEMPTS:-5}"
|
||||
retry_delay="${MOBILEGL_TRACE_FIXTURE_RETRY_DELAY:-2}"
|
||||
|
||||
if ! command -v "${python_bin}" >/dev/null 2>&1 && command -v python >/dev/null 2>&1; then
|
||||
python_bin=python
|
||||
fi
|
||||
|
||||
if ! [[ "${download_attempts}" =~ ^[1-9][0-9]*$ ]]; then
|
||||
echo "MOBILEGL_TRACE_FIXTURE_DOWNLOAD_ATTEMPTS must be a positive integer: ${download_attempts}" >&2
|
||||
exit 2
|
||||
fi
|
||||
if ! [[ "${retry_delay}" =~ ^[0-9]+$ ]]; then
|
||||
echo "MOBILEGL_TRACE_FIXTURE_RETRY_DELAY must be a non-negative integer: ${retry_delay}" >&2
|
||||
exit 2
|
||||
fi
|
||||
|
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fixture_list="$("${python_bin}" tools/trace_replay/trace_cases.py \
|
||||
--format fixture-files \
|
||||
--case "${case_name}" \
|
||||
--fixture-root "${fixture_dir}")"
|
||||
mapfile -t files <<< "${fixture_list}"
|
||||
# Strip CR so the script also works when python emits CRLF (Git Bash on Windows).
|
||||
mapfile -t files < <(printf '%s\n' "${fixture_list}" | tr -d '\r')
|
||||
|
||||
include="$(IFS=,; echo "${files[*]}")"
|
||||
if [ "${case_name}" = "OpenRA" ]; then
|
||||
@@ -34,34 +62,185 @@ if [ "${case_name}" = "OpenRA" ]; then
|
||||
exit 0
|
||||
fi
|
||||
|
||||
get_lfs_metadata() {
|
||||
local file="$1"
|
||||
local pointer
|
||||
local expected_oid
|
||||
local expected_size
|
||||
|
||||
if ! pointer="$(git show "HEAD:${file}" 2>/dev/null)"; then
|
||||
echo "failed to read tracked fixture metadata: ${file}" >&2
|
||||
return 1
|
||||
fi
|
||||
if ! grep -q '^version https://git-lfs.github.com/spec/v1$' <<< "${pointer}"; then
|
||||
echo "tracked fixture is not a Git LFS pointer: ${file}" >&2
|
||||
return 1
|
||||
fi
|
||||
|
||||
expected_oid="$(awk '$1 == "oid" && $2 ~ /^sha256:/ { sub(/^sha256:/, "", $2); print $2 }' <<< "${pointer}")"
|
||||
expected_size="$(awk '$1 == "size" { print $2 }' <<< "${pointer}")"
|
||||
if ! [[ "${expected_oid}" =~ ^[0-9a-f]{64}$ ]] || ! [[ "${expected_size}" =~ ^[0-9]+$ ]]; then
|
||||
echo "invalid Git LFS pointer metadata: ${file}" >&2
|
||||
return 1
|
||||
fi
|
||||
|
||||
printf '%s %s\n' "${expected_oid}" "${expected_size}"
|
||||
}
|
||||
|
||||
verify_fixture_file() {
|
||||
local downloaded_file="$1"
|
||||
local display_name="$2"
|
||||
local expected_oid="$3"
|
||||
local expected_size="$4"
|
||||
local actual_oid
|
||||
local actual_size
|
||||
|
||||
if [ ! -f "${downloaded_file}" ]; then
|
||||
echo "fixture file is missing: ${display_name}" >&2
|
||||
return 1
|
||||
fi
|
||||
|
||||
actual_size="$(wc -c < "${downloaded_file}" | tr -d '[:space:]')"
|
||||
if [ "${actual_size}" != "${expected_size}" ]; then
|
||||
echo "fixture size mismatch for ${display_name}: expected ${expected_size}, got ${actual_size}" >&2
|
||||
return 1
|
||||
fi
|
||||
|
||||
actual_oid="$(sha256sum "${downloaded_file}" | awk '{ print $1 }')"
|
||||
if [ "${actual_oid}" != "${expected_oid}" ]; then
|
||||
echo "fixture SHA-256 mismatch for ${display_name}: expected ${expected_oid}, got ${actual_oid}" >&2
|
||||
return 1
|
||||
fi
|
||||
}
|
||||
|
||||
fetch_file_from_mirror() {
|
||||
local file="$1"
|
||||
local url="$2"
|
||||
local metadata
|
||||
local expected_oid
|
||||
local expected_size
|
||||
local tmp_file="${file}.tmp"
|
||||
local attempt
|
||||
local partial_size
|
||||
local curl_status
|
||||
local curl_auth
|
||||
|
||||
metadata="$(get_lfs_metadata "${file}")" || return 1
|
||||
read -r expected_oid expected_size <<< "${metadata}"
|
||||
|
||||
if [ -f "${tmp_file}" ]; then
|
||||
partial_size="$(wc -c < "${tmp_file}" | tr -d '[:space:]')"
|
||||
if [ "${partial_size}" -gt "${expected_size}" ]; then
|
||||
echo "Discarding oversized partial fixture ${tmp_file}: ${partial_size} > ${expected_size}" >&2
|
||||
rm -f "${tmp_file}"
|
||||
elif [ "${partial_size}" = "${expected_size}" ]; then
|
||||
if verify_fixture_file "${tmp_file}" "${file}" "${expected_oid}" "${expected_size}"; then
|
||||
mv "${tmp_file}" "${file}"
|
||||
return 0
|
||||
fi
|
||||
rm -f "${tmp_file}"
|
||||
fi
|
||||
fi
|
||||
|
||||
for ((attempt = 1; attempt <= download_attempts; attempt++)); do
|
||||
partial_size=0
|
||||
if [ -f "${tmp_file}" ]; then
|
||||
partial_size="$(wc -c < "${tmp_file}" | tr -d '[:space:]')"
|
||||
fi
|
||||
|
||||
if [ "${partial_size}" -gt 0 ]; then
|
||||
echo "Resuming mirror download for ${file} at byte ${partial_size} (attempt ${attempt}/${download_attempts})"
|
||||
else
|
||||
echo "Starting mirror download for ${file} (attempt ${attempt}/${download_attempts})"
|
||||
fi
|
||||
|
||||
curl_auth=()
|
||||
if [ -n "${mirror_token}" ]; then
|
||||
curl_auth=(--header "Authorization: token ${mirror_token}")
|
||||
fi
|
||||
if curl -L --fail --show-error --continue-at - "${curl_auth[@]}" --output "${tmp_file}" "${url}"; then
|
||||
if verify_fixture_file "${tmp_file}" "${file}" "${expected_oid}" "${expected_size}"; then
|
||||
mv "${tmp_file}" "${file}"
|
||||
return 0
|
||||
fi
|
||||
echo "Mirror download failed integrity verification; retrying from the beginning: ${file}" >&2
|
||||
rm -f "${tmp_file}"
|
||||
else
|
||||
curl_status=$?
|
||||
partial_size=0
|
||||
if [ -f "${tmp_file}" ]; then
|
||||
partial_size="$(wc -c < "${tmp_file}" | tr -d '[:space:]')"
|
||||
fi
|
||||
|
||||
if [ "${partial_size}" = "${expected_size}" ]; then
|
||||
if verify_fixture_file "${tmp_file}" "${file}" "${expected_oid}" "${expected_size}"; then
|
||||
mv "${tmp_file}" "${file}"
|
||||
return 0
|
||||
fi
|
||||
rm -f "${tmp_file}"
|
||||
partial_size=0
|
||||
elif [ "${partial_size}" -gt "${expected_size}" ]; then
|
||||
echo "Discarding oversized partial fixture ${tmp_file}: ${partial_size} > ${expected_size}" >&2
|
||||
rm -f "${tmp_file}"
|
||||
partial_size=0
|
||||
elif [ "${curl_status}" -eq 33 ]; then
|
||||
echo "Mirror refused the resume request; retrying from the beginning: ${file}" >&2
|
||||
rm -f "${tmp_file}"
|
||||
partial_size=0
|
||||
fi
|
||||
|
||||
echo "Mirror download attempt ${attempt}/${download_attempts} failed with curl exit ${curl_status}; retained ${partial_size} bytes for resume: ${file}" >&2
|
||||
fi
|
||||
|
||||
if [ "${attempt}" -lt "${download_attempts}" ]; then
|
||||
sleep "${retry_delay}"
|
||||
fi
|
||||
done
|
||||
|
||||
rm -f "${tmp_file}"
|
||||
return 1
|
||||
}
|
||||
|
||||
# Files no mirror could serve, even after retrying every mirror. Only these fall
|
||||
# back to Git LFS, so a mirror that served the rest of the case still spares
|
||||
# GitHub the bandwidth for those files.
|
||||
mirror_failures=()
|
||||
|
||||
fetch_from_mirror() {
|
||||
mkdir -p "${fixture_dir}"
|
||||
for file in "${files[@]}"; do
|
||||
local name
|
||||
local url
|
||||
local base
|
||||
local fetched=0
|
||||
name="$(basename "${file}")"
|
||||
url="${mirror_base%/}/${name}"
|
||||
echo "Fetching trace fixture from mirror: ${url}"
|
||||
if ! curl -L --fail --retry 3 --retry-delay 2 -o "${file}.tmp" "${url}"; then
|
||||
rm -f "${file}.tmp"
|
||||
return 1
|
||||
for base in "${mirror_bases[@]}"; do
|
||||
url="${base%/}/${name}"
|
||||
echo "Fetching trace fixture from mirror: ${url}"
|
||||
if fetch_file_from_mirror "${file}" "${url}"; then
|
||||
fetched=1
|
||||
break
|
||||
fi
|
||||
echo "Mirror did not serve ${name}; trying the next mirror" >&2
|
||||
done
|
||||
if [ "${fetched}" -ne 1 ]; then
|
||||
mirror_failures+=("${file}")
|
||||
fi
|
||||
mv "${file}.tmp" "${file}"
|
||||
done
|
||||
[ "${#mirror_failures[@]}" -eq 0 ]
|
||||
}
|
||||
|
||||
if fetch_from_mirror; then
|
||||
echo "Fetched trace fixture files for ${case_name} from mirror: ${include}"
|
||||
else
|
||||
echo "Mirror fetch failed for ${case_name}; falling back to Git LFS: ${include}"
|
||||
fallback_include="$(IFS=,; echo "${mirror_failures[*]}")"
|
||||
echo "All mirrors failed for ${#mirror_failures[@]} of ${#files[@]} file(s) of ${case_name}; falling back to Git LFS: ${fallback_include}"
|
||||
git lfs install --local
|
||||
git lfs pull --include="${include}" --exclude=""
|
||||
git lfs pull --include="${fallback_include}" --exclude=""
|
||||
fi
|
||||
|
||||
for file in "${files[@]}"; do
|
||||
test -s "${file}"
|
||||
if head -n 1 "${file}" | grep -q "version https://git-lfs.github.com/spec/v1"; then
|
||||
echo "failed to hydrate LFS fixture: ${file}" >&2
|
||||
exit 1
|
||||
fi
|
||||
metadata="$(get_lfs_metadata "${file}")"
|
||||
read -r expected_oid expected_size <<< "${metadata}"
|
||||
verify_fixture_file "${file}" "${file}" "${expected_oid}" "${expected_size}"
|
||||
done
|
||||
|
||||
+60
-32
@@ -227,6 +227,8 @@ jobs:
|
||||
env:
|
||||
AVD_NAME: mobilegl-ci
|
||||
ANDROID_AVD_HOME: ${{ github.workspace }}/.android/avd
|
||||
ANDROID_HOME: ${{ github.workspace }}/.android/sdk
|
||||
ANDROID_SDK_ROOT: ${{ github.workspace }}/.android/sdk
|
||||
steps:
|
||||
- name: Checkout repo
|
||||
uses: actions/checkout@v6
|
||||
@@ -245,11 +247,11 @@ jobs:
|
||||
with:
|
||||
path: |
|
||||
${{ env.ANDROID_AVD_HOME }}
|
||||
/usr/local/lib/android/sdk/emulator
|
||||
/usr/local/lib/android/sdk/platform-tools
|
||||
/usr/local/lib/android/sdk/platforms/android-35
|
||||
/usr/local/lib/android/sdk/system-images/android-35/google_apis/x86_64
|
||||
key: ${{ runner.os }}-mobilegl-avd-api35-google_apis-x86_64-pixel_6-v1-${{ hashFiles('android-plugin/run-avd-ci.sh') }}
|
||||
${{ env.ANDROID_SDK_ROOT }}/emulator
|
||||
${{ env.ANDROID_SDK_ROOT }}/platform-tools
|
||||
${{ env.ANDROID_SDK_ROOT }}/platforms/android-35
|
||||
${{ env.ANDROID_SDK_ROOT }}/system-images/android-35/google_apis/x86_64
|
||||
key: ${{ runner.os }}-mobilegl-avd-api35-google_apis-x86_64-pixel_6-v2-${{ hashFiles('android-plugin/run-avd-ci.sh') }}
|
||||
|
||||
- name: Create AVD
|
||||
if: steps.android-avd-cache.outputs.cache-hit != 'true'
|
||||
@@ -274,6 +276,8 @@ jobs:
|
||||
env:
|
||||
AVD_NAME: mobilegl-ci
|
||||
ANDROID_AVD_HOME: ${{ github.workspace }}/.android/avd
|
||||
ANDROID_HOME: ${{ github.workspace }}/.android/sdk
|
||||
ANDROID_SDK_ROOT: ${{ github.workspace }}/.android/sdk
|
||||
strategy:
|
||||
fail-fast: false
|
||||
max-parallel: 4
|
||||
@@ -288,7 +292,7 @@ jobs:
|
||||
- name: Set Swap Space
|
||||
uses: pierotofy/set-swap-space@v1.0
|
||||
with:
|
||||
swap-size-gb: 16
|
||||
swap-size-gb: 8
|
||||
|
||||
- name: Checkout repo
|
||||
uses: actions/checkout@v6
|
||||
@@ -324,11 +328,11 @@ jobs:
|
||||
with:
|
||||
path: |
|
||||
${{ env.ANDROID_AVD_HOME }}
|
||||
/usr/local/lib/android/sdk/emulator
|
||||
/usr/local/lib/android/sdk/platform-tools
|
||||
/usr/local/lib/android/sdk/platforms/android-35
|
||||
/usr/local/lib/android/sdk/system-images/android-35/google_apis/x86_64
|
||||
key: ${{ runner.os }}-mobilegl-avd-api35-google_apis-x86_64-pixel_6-v1-${{ hashFiles('android-plugin/run-avd-ci.sh') }}
|
||||
${{ env.ANDROID_SDK_ROOT }}/emulator
|
||||
${{ env.ANDROID_SDK_ROOT }}/platform-tools
|
||||
${{ env.ANDROID_SDK_ROOT }}/platforms/android-35
|
||||
${{ env.ANDROID_SDK_ROOT }}/system-images/android-35/google_apis/x86_64
|
||||
key: ${{ runner.os }}-mobilegl-avd-api35-google_apis-x86_64-pixel_6-v2-${{ hashFiles('android-plugin/run-avd-ci.sh') }}
|
||||
|
||||
- name: Download retrace APK
|
||||
uses: actions/download-artifact@v8
|
||||
@@ -378,27 +382,51 @@ jobs:
|
||||
if [ "${{ matrix.case.coherent_as_flush || false }}" = "true" ]; then
|
||||
extra_retrace_args+=(--coherent-as-flush)
|
||||
fi
|
||||
timeout "$(( ${{ matrix.case.timeout_seconds }} + 300 ))" sh android-plugin/trace-replay-ci.sh \
|
||||
--apk-file "${apk_file}" \
|
||||
--package top.mobilegl.plugin.trace \
|
||||
--backend "${{ matrix.backend.name }}" \
|
||||
--result-root android-retrace-result \
|
||||
--fixture-root android-retrace-fixture \
|
||||
--case "${{ matrix.case.name }}" \
|
||||
--trace-archive "${{ matrix.case.trace_archive }}" \
|
||||
--trace-file "${{ matrix.case.trace_file }}" \
|
||||
--golden "${{ matrix.case.golden }}" \
|
||||
--alternate-golden "${{ matrix.case.alternate_golden || '' }}" \
|
||||
--target-call "${{ matrix.case.target_call }}" \
|
||||
--width "${{ matrix.case.width }}" \
|
||||
--height "${{ matrix.case.height }}" \
|
||||
--ssim-threshold "${{ matrix.case.ssim_threshold || '0.99' }}" \
|
||||
--crop-x "${{ matrix.case.crop_x }}" \
|
||||
--crop-y "${{ matrix.case.crop_y }}" \
|
||||
--crop-width "${{ matrix.case.crop_width }}" \
|
||||
--crop-height "${{ matrix.case.crop_height }}" \
|
||||
--timeout-seconds "${{ matrix.case.timeout_seconds }}" \
|
||||
"${extra_retrace_args[@]}"
|
||||
|
||||
run_retrace() {
|
||||
timeout "$(( ${{ matrix.case.timeout_seconds }} + 300 ))" sh android-plugin/trace-replay-ci.sh \
|
||||
--apk-file "${apk_file}" \
|
||||
--package top.mobilegl.plugin.trace \
|
||||
--backend "${{ matrix.backend.name }}" \
|
||||
--result-root android-retrace-result \
|
||||
--fixture-root android-retrace-fixture \
|
||||
--case "${{ matrix.case.name }}" \
|
||||
--trace-archive "${{ matrix.case.trace_archive }}" \
|
||||
--trace-file "${{ matrix.case.trace_file }}" \
|
||||
--golden "${{ matrix.case.golden }}" \
|
||||
--alternate-golden "${{ matrix.case.alternate_golden || '' }}" \
|
||||
--target-call "${{ matrix.case.target_call }}" \
|
||||
--width "${{ matrix.case.width }}" \
|
||||
--height "${{ matrix.case.height }}" \
|
||||
--ssim-threshold "${{ matrix.case.ssim_threshold || '0.99' }}" \
|
||||
--crop-x "${{ matrix.case.crop_x }}" \
|
||||
--crop-y "${{ matrix.case.crop_y }}" \
|
||||
--crop-width "${{ matrix.case.crop_width }}" \
|
||||
--crop-height "${{ matrix.case.crop_height }}" \
|
||||
--timeout-seconds "${{ matrix.case.timeout_seconds }}" \
|
||||
"${extra_retrace_args[@]}"
|
||||
}
|
||||
|
||||
retrace_status=0
|
||||
run_retrace || retrace_status=$?
|
||||
if [ "${retrace_status}" -eq 75 ]; then
|
||||
echo "::warning::Android emulator infrastructure failed; restarting it and retrying this retrace once."
|
||||
sh android-plugin/run-avd-ci.sh stop \
|
||||
--avd-name "${AVD_NAME}" \
|
||||
--emulator-log "${EMULATOR_LOG}" \
|
||||
--pid-file "${EMULATOR_PID_FILE}"
|
||||
adb kill-server || true
|
||||
sleep 2
|
||||
sh android-plugin/run-avd-ci.sh start \
|
||||
--avd-name "${AVD_NAME}" \
|
||||
--gpu "${{ matrix.backend.gpu }}" \
|
||||
--emulator-log "${EMULATOR_LOG}" \
|
||||
--pid-file "${EMULATOR_PID_FILE}" \
|
||||
--boot-timeout 300
|
||||
run_retrace
|
||||
elif [ "${retrace_status}" -ne 0 ]; then
|
||||
exit "${retrace_status}"
|
||||
fi
|
||||
|
||||
- name: Collect retrace summary inputs
|
||||
if: always()
|
||||
|
||||
@@ -107,6 +107,7 @@ jobs:
|
||||
--exclude='build.ninja' \
|
||||
--exclude='cmake_install.cmake' \
|
||||
-czf ci-artifacts/mobilegl-linux-runtime.tgz \
|
||||
"${BUILD_DIR}/CTestTestfile.cmake" \
|
||||
"${BUILD_DIR}/MobileGL/MG_Test" \
|
||||
"${BUILD_DIR}/MobileGL/MG_Benchmark" \
|
||||
"${SHARED_LIBS[@]}"
|
||||
@@ -156,12 +157,12 @@ jobs:
|
||||
PY
|
||||
|
||||
- name: Test
|
||||
working-directory: build-linux/MobileGL/MG_Test
|
||||
working-directory: build-linux
|
||||
run: |
|
||||
if [ "${{ secrets.ACTIONS_STEP_DEBUG }}" = "true" ]; then
|
||||
ctest -V
|
||||
ctest -V -L unit --no-tests=error
|
||||
else
|
||||
ctest --output-on-failure
|
||||
ctest --output-on-failure -L unit --no-tests=error
|
||||
fi
|
||||
|
||||
benchmark:
|
||||
@@ -176,9 +177,13 @@ jobs:
|
||||
uses: lukka/get-cmake@v4.3.3
|
||||
|
||||
- name: Install runtime dependencies
|
||||
# libegl-mesa0 is the EGL vendor library itself: DriverBench brings up a
|
||||
# real GL context, and libegl1 is only glvnd's dispatch. It normally
|
||||
# arrives as a Recommends of libegl1, which is too quiet a dependency for
|
||||
# the one job that needs a working driver.
|
||||
run: |
|
||||
sudo apt-get update
|
||||
sudo apt-get install -y libvulkan1 libegl1 libgles2 libgl1-mesa-dri mesa-vulkan-drivers
|
||||
sudo apt-get install -y libvulkan1 libegl1 libegl-mesa0 libgles2 libgl1-mesa-dri mesa-vulkan-drivers
|
||||
|
||||
- name: Download Linux runtime
|
||||
uses: actions/download-artifact@v8
|
||||
@@ -202,8 +207,8 @@ jobs:
|
||||
PY
|
||||
|
||||
- name: Benchmark
|
||||
working-directory: build-linux/MobileGL/MG_Benchmark
|
||||
run: ctest -V -C Release
|
||||
working-directory: build-linux
|
||||
run: ctest -V -C Release -L benchmark --no-tests=error
|
||||
|
||||
build-retrace:
|
||||
runs-on: ubuntu-latest
|
||||
@@ -454,6 +459,15 @@ jobs:
|
||||
if [ '${{ matrix.backend }}' = 'DirectVulkan' ]; then
|
||||
export MOBILEGL_MAGMA_R11G11B10F_FALLBACK=1
|
||||
fi
|
||||
# The blended depth-write quirk auto-enables only on Qualcomm, which no CI
|
||||
# runner has, so force it on for the OIT case it exists to fix. ForceOn
|
||||
# bypasses only the vendor gate, so this exercises the real strip on
|
||||
# lavapipe. The Android AVD lane deliberately leaves it off, keeping the
|
||||
# unstripped path covered for the same trace.
|
||||
if [ '${{ matrix.backend }}' = 'DirectVulkan' ] \
|
||||
&& [ '${{ matrix.case }}' = 'improved-transparency-minecraft-26.3' ]; then
|
||||
export MOBILEGL_MAGMA_DISABLE_BLENDED_DEPTH_WRITE=1
|
||||
fi
|
||||
ctest -V --no-tests=error -R '^MobileGLTraceReplay\.${{ matrix.case }}\.${{ matrix.backend }}$'
|
||||
|
||||
- name: Upload actual image
|
||||
|
||||
@@ -25,3 +25,5 @@ MobileGL/MG*/cmake-build*
|
||||
/android-plugin/app/src/trace/jniLibs
|
||||
/android-plugin/local.properties
|
||||
tools/trace_replay/work/
|
||||
__pycache__/
|
||||
*.py[cod]
|
||||
|
||||
@@ -31,3 +31,9 @@
|
||||
[submodule "3rdparty/apitrace"]
|
||||
path = 3rdparty/apitrace
|
||||
url = https://github.com/MobileGL-Dev/apitrace.git
|
||||
[submodule "3rdparty/asio"]
|
||||
path = 3rdparty/asio
|
||||
url = https://github.com/chriskohlhoff/asio.git
|
||||
[submodule "3rdparty/libfork"]
|
||||
path = 3rdparty/libfork
|
||||
url = https://github.com/ConorWilliams/libfork.git
|
||||
|
||||
+1
Submodule 3rdparty/asio added at 8806a6803c
Vendored
+1
-1
Submodule 3rdparty/glslang updated: 26fe5ceb45...900b29d449
+1
Submodule 3rdparty/libfork added at 9b2b844a5f
+106
-3
@@ -4,6 +4,11 @@ project("MobileGL")
|
||||
|
||||
option(MOBILEGL_BUILD_TEST "Build MobileGL tests" ON )
|
||||
option(MOBILEGL_BUILD_BENCHMARK "Build MobileGL benchmarks" ON )
|
||||
# Headless end-to-end GPU scenarios (MobileGL/MG_IntegrationTest). They need a
|
||||
# real GPU/ICD to do anything, so they are off by default for CI; every scenario
|
||||
# skips cleanly where there is none. Registered under the `integration-gpu`
|
||||
# ctest label so a run can select or exclude them.
|
||||
option(MOBILEGL_BUILD_INTEGRATION_TEST "Build MobileGL headless GPU integration tests" OFF)
|
||||
option(MOBILEGL_FORCE_RELEASE_OPT "Enable Release optimization flags in Debug build" ON )
|
||||
option(MOBILEGL_ENABLE_TRACY "Enable tracy for profiling" OFF)
|
||||
option(MOBILEGL_BUILD_TRACE_REPLAY "Build desktop apitrace replay runner" OFF)
|
||||
@@ -17,7 +22,9 @@ if (ANDROID)
|
||||
set(MOBILEGL_BUILD_BENCHMARK OFF CACHE BOOL "Build MobileGL benchmarks" FORCE)
|
||||
endif()
|
||||
|
||||
if (NOT CMAKE_BUILD_TYPE STREQUAL "Debug" OR MOBILEGL_FORCE_RELEASE_OPT)
|
||||
option(MOBILEGL_ENABLE_LTO "Build with ThinLTO/IPO" OFF)
|
||||
|
||||
if ((NOT CMAKE_BUILD_TYPE STREQUAL "Debug" OR MOBILEGL_FORCE_RELEASE_OPT) AND MOBILEGL_ENABLE_LTO)
|
||||
# Check if ThinLTO or LTO is suppported
|
||||
include(CheckIPOSupported)
|
||||
include(CheckCCompilerFlag)
|
||||
@@ -147,6 +154,9 @@ set(SOURCE_FILES
|
||||
|
||||
MobileGL/MG_Util/Debug/Log.cpp
|
||||
|
||||
MobileGL/MG_Util/Async/JobNode.cpp
|
||||
MobileGL/MG_Util/Async/ShaderCompilePool.cpp
|
||||
|
||||
MobileGL/MG_Util/Math/VectorTypes.cpp
|
||||
MobileGL/MG_Util/Metrics/TextureMetrics.cpp
|
||||
|
||||
@@ -180,6 +190,7 @@ set(SOURCE_FILES
|
||||
|
||||
MobileGL/MG_Util/Classifiers/TextureEnumClassifier.cpp
|
||||
|
||||
MobileGL/MG_Util/ShaderTranspiler/CompileEnv.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/ShaderCompiler.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpvcSession.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/ShaderSourceProcessor.cpp
|
||||
@@ -187,9 +198,16 @@ set(SOURCE_FILES
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/FlattenInterfaceStructPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/EliminateFloatEqualsZeroPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/RenameSamplerFunctionParameterPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/RenameBuiltinShadowingFunctionsPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/DecomposeWorkgroupVec3Pass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/DecoratePositionInvariantPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/LowerDrawParametersPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/PackDoubleVertexInputsPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/RebaseInstanceIndexPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/NormalizeRectCoordinatesPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/StripUboMemberRelaxedPrecisionPass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/StripNoPerspectivePass.cpp
|
||||
MobileGL/MG_Util/ShaderTranspiler/SpirvPasses/EmulateNoPerspectivePass.cpp
|
||||
|
||||
MobileGL/MG_Util/BackendLoaders/OpenGL/Loader.cpp
|
||||
MobileGL/MG_Util/BackendLoaders/Vulkan/Loader.cpp
|
||||
@@ -200,6 +218,7 @@ set(SOURCE_FILES
|
||||
MobileGL/MG_Util/Texture/TextureFormatProcessor.cpp
|
||||
|
||||
MobileGL/MG_Impl/GLXImpl/Exporting/Definitions.cpp
|
||||
MobileGL/MG_Impl/GLXImpl/GLXImpl.cpp
|
||||
MobileGL/MG_Impl/GLXImpl/LookUp/LookUp.cpp
|
||||
|
||||
MobileGL/MG_Impl/EGLImpl/Exporting/Definitions.cpp
|
||||
@@ -213,6 +232,8 @@ set(SOURCE_FILES
|
||||
MobileGL/MG_Impl/GLImpl/Framebuffer/Validators.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Framebuffer/GL_Framebuffer.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Program/GL_Program.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Program/ProgramInterface.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Program/GL_ProgramPipeline.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Texture/GL_Texture.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Texture/Validators.cpp
|
||||
MobileGL/MG_Impl/GLImpl/Texture/ProxyTexture.cpp
|
||||
@@ -235,6 +256,7 @@ set(SOURCE_FILES
|
||||
MobileGL/MG_Backend/DirectGLES/BackendObject_DirectGLES.cpp
|
||||
MobileGL/MG_Backend/DirectGLES/Utils.cpp
|
||||
MobileGL/MG_Backend/DirectGLES/Managers.cpp
|
||||
MobileGL/MG_Backend/DirectGLES/MultiDraw.cpp
|
||||
|
||||
MobileGL/MG_Backend/DirectVulkan/DirectVulkan.cpp
|
||||
MobileGL/MG_Backend/DirectVulkan/BackendObject_DirectVulkan.cpp
|
||||
@@ -273,7 +295,11 @@ set(SOURCE_FILES
|
||||
MobileGL/MG_State/GLState/TextureState/TextureUnit.cpp
|
||||
MobileGL/MG_State/GLState/TextureState/TextureState.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ProgramObject.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ProgramLinkTask.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ShaderCompileTask.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ShaderObject.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ShaderPreprocessCache.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ShaderCompileAdoptionMap.cpp
|
||||
MobileGL/MG_State/GLState/ProgramState/ProgramState.cpp
|
||||
MobileGL/MG_State/GLState/RenderState/RenderState.cpp
|
||||
MobileGL/MG_State/GLState/FramebufferState/FramebufferObject.cpp
|
||||
@@ -296,9 +322,22 @@ endif()
|
||||
if (ANDROID)
|
||||
list(APPEND SOURCE_FILES
|
||||
MobileGL/MG_Util/SelfTest/DriverPostJni.cpp
|
||||
MobileGL/MG_Util/SelfTest/DriverBenchJni.cpp
|
||||
)
|
||||
endif()
|
||||
|
||||
if (WIN32)
|
||||
list(APPEND SOURCE_FILES
|
||||
MobileGL/MG_Impl/WGLImpl/WGLImpl.cpp
|
||||
MobileGL/MG_Impl/WGLImpl/Exporting/Definitions.cpp
|
||||
)
|
||||
endif()
|
||||
|
||||
# The shader-compile pool runs standalone Asio on real threads. This host's glibc (>= 2.34)
|
||||
# merged pthread into libc, so it links without asking, but the NDK and musl are not
|
||||
# guaranteed to be as forgiving - ask for it explicitly rather than rely on the accident.
|
||||
find_package(Threads REQUIRED)
|
||||
|
||||
set(MOBILEGL_LINK_LIBRARIES
|
||||
glslang::glslang
|
||||
spirv-cross-c
|
||||
@@ -308,12 +347,17 @@ set(MOBILEGL_LINK_LIBRARIES
|
||||
GPUOpen::VulkanMemoryAllocator
|
||||
Vulkan::UtilityHeaders
|
||||
spirv-reflect-static
|
||||
Threads::Threads
|
||||
)
|
||||
|
||||
set(MOBILEGL_COMPILE_DEF
|
||||
-DVMA_STATIC_VULKAN_FUNCTIONS=0
|
||||
-DVMA_DYNAMIC_VULKAN_FUNCTIONS=1
|
||||
-DVMA_VULKAN_VERSION=1001000
|
||||
# Header-only Asio, no Boost, no deprecated interfaces. Set on the definition list
|
||||
# rather than per-target so the shared library and the _s static target agree.
|
||||
-DASIO_STANDALONE
|
||||
-DASIO_NO_DEPRECATED
|
||||
)
|
||||
|
||||
message(STATUS "MOBILEGL_COMPILE_DEF=${MOBILEGL_COMPILE_DEF}")
|
||||
@@ -325,12 +369,31 @@ set(MOBILEGL_INCLUDE_DIR
|
||||
${spirv-tools_SOURCE_DIR}/include
|
||||
${spirv-tools_BINARY_DIR}
|
||||
${SPIRV-Headers_SOURCE_DIR}/include
|
||||
# Header-only submodule: no add_subdirectory, no link target. Only
|
||||
# MG_Util/Async/ShaderCompilePool.cpp includes it, and it stays behind that file's
|
||||
# pimpl so no consumer target needs this path.
|
||||
${CMAKE_SOURCE_DIR}/3rdparty/asio/asio/include
|
||||
# The second shader-compile execution engine (MOBILEGL_ASYNC_POOL=libfork), on the
|
||||
# same terms as Asio above: header-only, no add_subdirectory (its CMakeLists only
|
||||
# declares an INTERFACE target plus install/test scaffolding we do not want), no link
|
||||
# target, and reachable from exactly one translation unit. libfork's own
|
||||
# target_compile_features asks for cxx_std_23, which this project already sets
|
||||
# globally, so its C++20 coroutines need no per-source standard override.
|
||||
${CMAKE_SOURCE_DIR}/3rdparty/libfork/include
|
||||
)
|
||||
|
||||
add_library(${CMAKE_PROJECT_NAME} SHARED
|
||||
add_library(${CMAKE_PROJECT_NAME} SHARED
|
||||
${SOURCE_FILES}
|
||||
)
|
||||
|
||||
if (WIN32)
|
||||
# The wgl* entry points are exported via .def (see the comment in wgl.def);
|
||||
# only the shared library links it.
|
||||
target_sources(${CMAKE_PROJECT_NAME} PRIVATE
|
||||
MobileGL/MG_Impl/WGLImpl/Exporting/wgl.def
|
||||
)
|
||||
endif()
|
||||
|
||||
if (CMAKE_BUILD_TYPE STREQUAL "Debug")
|
||||
set_target_properties(${CMAKE_PROJECT_NAME} PROPERTIES
|
||||
C_VISIBILITY_PRESET default
|
||||
@@ -373,6 +436,18 @@ if(UNIX AND NOT APPLE AND NOT ANDROID)
|
||||
endforeach()
|
||||
endif()
|
||||
|
||||
if(WIN32)
|
||||
# Drop-in for the classic GL loader path: a copy named opengl32.dll placed
|
||||
# next to a host executable is what LoadLibrary("opengl32.dll") and gdi32's
|
||||
# pixel-format forwarding will resolve.
|
||||
add_custom_command(TARGET ${CMAKE_PROJECT_NAME} POST_BUILD
|
||||
COMMAND ${CMAKE_COMMAND} -E copy_if_different
|
||||
"$<TARGET_FILE:${CMAKE_PROJECT_NAME}>"
|
||||
"$<TARGET_FILE_DIR:${CMAKE_PROJECT_NAME}>/opengl32.dll"
|
||||
COMMENT "Creating opengl32.dll drop-in copy"
|
||||
)
|
||||
endif()
|
||||
|
||||
if(NOT ANDROID)
|
||||
add_library(${CMAKE_PROJECT_NAME}_s STATIC
|
||||
${SOURCE_FILES}
|
||||
@@ -424,8 +499,21 @@ if (ANDROID)
|
||||
endif()
|
||||
|
||||
if (APPLE AND NOT MOBILEGL_IOS)
|
||||
# MobileGL statically embeds glslang, SPIRV-Tools, and SPIRV-Cross. When
|
||||
# this dylib is injected with DYLD_INSERT_LIBRARIES, exporting those C++
|
||||
# symbols interposes incompatible copies embedded by host libraries such
|
||||
# as shaderc. Keep only the public GL/EGL/CGL loader surface globally
|
||||
# visible; GetProcAddress can still return pointers to hidden internals.
|
||||
set(MOBILEGL_MACOS_EXPORTED_SYMBOLS
|
||||
"${CMAKE_CURRENT_SOURCE_DIR}/MobileGL/MG_Impl/DyldInterpose/ExportedSymbols.txt")
|
||||
target_link_options(${CMAKE_PROJECT_NAME} PRIVATE
|
||||
"LINKER:-exported_symbols_list,${MOBILEGL_MACOS_EXPORTED_SYMBOLS}")
|
||||
set_property(TARGET ${CMAKE_PROJECT_NAME} APPEND PROPERTY
|
||||
LINK_DEPENDS "${MOBILEGL_MACOS_EXPORTED_SYMBOLS}")
|
||||
|
||||
target_link_libraries(${CMAKE_PROJECT_NAME} PUBLIC
|
||||
"-framework Cocoa"
|
||||
"-framework CoreVideo"
|
||||
"-framework QuartzCore"
|
||||
"-framework Foundation"
|
||||
"-framework OpenGL"
|
||||
@@ -433,6 +521,7 @@ if (APPLE AND NOT MOBILEGL_IOS)
|
||||
if(TARGET ${CMAKE_PROJECT_NAME}_s)
|
||||
target_link_libraries(${CMAKE_PROJECT_NAME}_s PUBLIC
|
||||
"-framework Cocoa"
|
||||
"-framework CoreVideo"
|
||||
"-framework QuartzCore"
|
||||
"-framework Foundation"
|
||||
"-framework OpenGL"
|
||||
@@ -475,16 +564,30 @@ if (NOT ANDROID AND NOT MOBILEGL_IOS)
|
||||
endif ()
|
||||
|
||||
if (NOT ANDROID)
|
||||
# Enable testing in the top-level scope so a CTestTestfile.cmake is emitted
|
||||
# at the build-tree root. This lets `ctest` be invoked from the top-level
|
||||
# build directory (IDE "run all tests", CI) and discover every test in the
|
||||
# subdirectories below, instead of having to descend into each
|
||||
# MG_Test/MG_Benchmark subdirectory. Tests are tagged with CTest labels
|
||||
# (unit / benchmark / integration), so e.g. `ctest -L unit` selects just
|
||||
# the unit suite.
|
||||
enable_testing()
|
||||
|
||||
if (MOBILEGL_BUILD_TEST)
|
||||
add_subdirectory(MobileGL/MG_Test)
|
||||
endif()
|
||||
|
||||
# After MG_Test so googletest is already available when the unit tests are
|
||||
# built; the module fetches its own copy when they are not.
|
||||
if (MOBILEGL_BUILD_INTEGRATION_TEST)
|
||||
add_subdirectory(MobileGL/MG_IntegrationTest)
|
||||
endif()
|
||||
|
||||
if (MOBILEGL_BUILD_BENCHMARK)
|
||||
add_subdirectory(MobileGL/MG_Benchmark)
|
||||
endif()
|
||||
|
||||
if (MOBILEGL_BUILD_TRACE_REPLAY)
|
||||
enable_testing()
|
||||
add_subdirectory(tools/trace_replay)
|
||||
endif()
|
||||
endif()
|
||||
|
||||
+82
-1
@@ -14,12 +14,48 @@ namespace MobileGL::MG_Config {
|
||||
inline const String ProjectName = "MobileGL";
|
||||
inline const String CoreName = "MobileGL Core";
|
||||
inline const String CoreVendor = "MobileGL-Dev (BZLZHH, Swung0x48, Tungsten)";
|
||||
inline const Version CoreVersion = {26, 7, 0, "-dev", VersionType::Development};
|
||||
inline const Version CoreVersion = {26, 8, 0, "-dev", VersionType::Development};
|
||||
inline const VersionStringFormatAttrib DefaultVersionStringFormatAttrib = {2, 2, 0, true, true};
|
||||
inline const Uint64 CacheVersion = 0;
|
||||
|
||||
extern BackendType ActiveBackendType;
|
||||
|
||||
// Tri-state override for device-specific quirks: Auto lets the detected device decide,
|
||||
// ForceOn/ForceOff bypass the detection in either direction. ForceOn only bypasses the
|
||||
// device gate - each quirk keeps its structural safety checks.
|
||||
enum class QuirkOverride : Uint8 {
|
||||
Auto = 0,
|
||||
ForceOn,
|
||||
ForceOff,
|
||||
};
|
||||
|
||||
// Preferred DirectVulkan dispatch tier for the glMultiDraw* families. A preference,
|
||||
// never a demand: the renderer clamps it to what the device supports at device
|
||||
// creation, falling down the chain ext -> indirect -> unroll with one log line.
|
||||
enum class MultiDrawMode : Uint8 {
|
||||
Auto = 0, // unset: best supported tier
|
||||
Ext, // VK_EXT_multi_draw: one vkCmdDrawMultiEXT / vkCmdDrawMultiIndexedEXT
|
||||
Indirect, // multiDrawIndirect feature: one vkCmdDraw*Indirect over a transient command array
|
||||
Unroll, // one vkCmdDraw* per sub-draw
|
||||
};
|
||||
|
||||
// Preferred DirectGLES emulation tier for glMultiDrawElements(BaseVertex). GLES has no
|
||||
// such entry point in core, so every tier below is an emulation; they differ only in
|
||||
// which driver capability they lean on and how many driver calls a batch costs. Like
|
||||
// the Magma knob this is a preference, clamped at resolution time to what the ES
|
||||
// driver actually supports, with one log line when it falls back.
|
||||
enum class GLESMultiDrawMode : Uint8 {
|
||||
Auto = 0, // unset: best supported tier
|
||||
Ext, // one glMultiDrawElementsBaseVertexEXT
|
||||
MultiIndirect, // one glMultiDrawElementsIndirectEXT over a scratch command buffer
|
||||
Indirect, // one glDrawElementsIndirect per sub-draw over that same buffer
|
||||
BaseVertex, // one glDrawElementsBaseVertex per sub-draw
|
||||
DrawElements, // baseVertex folded into a scratch index buffer on the CPU, then plain
|
||||
// glDrawElements per sub-draw (for drivers with no base-vertex draw at all)
|
||||
Compute, // a compute shader flattens every sub-draw into one rebased index buffer,
|
||||
// drawn by a single glDrawElements
|
||||
};
|
||||
|
||||
// Feature toggles parsed once from environment variables in MG_ConfigLoader::Init()
|
||||
// (ConfigLoader.cpp), before the accepted-env map is destroyed. All Bool fields share
|
||||
// one truthy rule: the variable is set, non-empty, not "0", and not "false"
|
||||
@@ -30,6 +66,12 @@ namespace MobileGL::MG_Config {
|
||||
// - DISPLAY: X11 session variable, not MobileGL configuration.
|
||||
// - MOBILEGL_LOG_FILE_PATH: log-file init runs before MG_ConfigLoader::Init
|
||||
// (see MG_Util/Debug/Log.cpp).
|
||||
// - MOBILEGL_ASYNC_POOL: a ShaderCompilePool is constructed by binaries that never call
|
||||
// MobileGL::Initialize() and so never run MG_ConfigLoader::Init - MG_Test's
|
||||
// JobNodeTest builds pools directly, and it is the suite that runs the whole async
|
||||
// matrix against both execution engines. Mirroring it here would resolve to the
|
||||
// default in exactly the tests that exist to tell the engines apart (see
|
||||
// MG_Util/Async/ShaderCompilePool.cpp, DetectAsyncPoolEngine).
|
||||
struct FeaturesTable {
|
||||
// MOBILEGL_DISABLE_TIMERQUERY: do not advertise or use GPU timer queries.
|
||||
Bool DisableTimerQuery = false;
|
||||
@@ -61,6 +103,45 @@ namespace MobileGL::MG_Config {
|
||||
// per-draw glBufferSubData path instead of the persistent-mapped ring allocator
|
||||
// (negative control / driver-bug escape hatch).
|
||||
Bool DisableUboRing = false;
|
||||
// MOBILEGL_RELAXED_SEMANTICS: relax strict core-profile rules (e.g. VAO-0 draws,
|
||||
// texture-name reuse after delete) even on contexts that explicitly requested a core
|
||||
// profile. Without it, relaxed semantics still apply to every context that did not
|
||||
// explicitly request a core profile via EGL_CONTEXT_OPENGL_PROFILE_MASK / a >=3.1
|
||||
// version request.
|
||||
Bool RelaxedSemantics = false;
|
||||
// MOBILEGL_QUIRK_SUBGROUP_PREFIX_SCAN: overrides the shader-source quirk that
|
||||
// rewrites the recognized workgroup prefix-scan template on Qualcomm devices with
|
||||
// subgroups wider than 32 lanes (see ShaderSourceProcessor's quirk registry).
|
||||
QuirkOverride SubgroupPrefixScanQuirk = QuirkOverride::Auto;
|
||||
// MOBILEGL_MAGMA_DISABLE_BLENDED_DEPTH_WRITE: overrides the DirectVulkan quirk that
|
||||
// strips depth writes from accumulation-blended pipelines (MIN/MAX or additive
|
||||
// ONE+ONE - the multi-pass depth-equality signature) on drivers without
|
||||
// cross-pipeline vertex position invariance. Sorted-transparency "over" blends,
|
||||
// gl_FragDepth writers, and fully color-masked attachments are exempt (see
|
||||
// PipelineFactory::ShouldSuppressDepthWrite). Auto detects Qualcomm.
|
||||
QuirkOverride MagmaDisableBlendedDepthWriteQuirk = QuirkOverride::Auto;
|
||||
// MOBILEGL_DISABLE_ROBUST_BUFFER_ACCESS: leave the Vulkan robustBufferAccess device
|
||||
// feature off. It is enabled by default to match GL's defined out-of-range fetch
|
||||
// behavior; this escape hatch exists to measure or dodge its GPU cost on a device.
|
||||
Bool DisableRobustBufferAccess = false;
|
||||
// MOBILEGL_MAGMA_MULTIDRAW_MODE: preferred DirectVulkan multi-draw dispatch tier
|
||||
// ("ext" | "indirect" | "unroll", see MultiDrawMode). Clamped to device support;
|
||||
// unset picks the best supported tier.
|
||||
MultiDrawMode MagmaMultiDrawMode = MultiDrawMode::Auto;
|
||||
// MOBILEGL_ESPRYT_MULTIDRAW_MODE: preferred DirectGLES glMultiDrawElements emulation
|
||||
// tier ("ext" | "multiindirect" | "indirect" | "basevertex" | "drawelements" |
|
||||
// "compute", see GLESMultiDrawMode). Clamped to driver support; unset picks the best
|
||||
// supported tier, which never includes "compute" - see the note on its resolution.
|
||||
GLESMultiDrawMode EsprytMultiDrawMode = GLESMultiDrawMode::Auto;
|
||||
// MOBILEGL_ASYNC_SHADER_COMPILE: overrides asynchronous shader compilation. Unset
|
||||
// keeps the built-in default (MG_Util::Async::kAsyncShaderCompileDefault); falsy
|
||||
// forces every glCompileShader/glLinkProgram to run synchronously on the calling
|
||||
// thread AND withdraws GL_KHR_parallel_shader_compile, so the single switch reverts
|
||||
// both the threading and the application-visible behaviour change.
|
||||
QuirkOverride AsyncShaderCompile = QuirkOverride::Auto;
|
||||
// MOBILEGL_ASYNC_SHADER_COMPILE_THREADS: shader-compile worker count. 0 (unset) means
|
||||
// auto, which is min(4, big cores); an explicit value is honoured as given.
|
||||
Uint32 AsyncShaderCompileThreads = 0;
|
||||
};
|
||||
extern FeaturesTable Features;
|
||||
} // namespace MobileGL::MG_Config
|
||||
|
||||
@@ -86,6 +86,58 @@ namespace MobileGL::MG_ConfigLoader {
|
||||
return it != acceptedEnvVariablesMap->end() && IsTruthyValue(it->second);
|
||||
}
|
||||
|
||||
// Quirk overrides are tri-state: an unset variable keeps device auto-detection, a truthy
|
||||
// value forces the quirk on, anything else set ("0", "false", "") forces it off.
|
||||
inline MG_Config::QuirkOverride QueryEnvQuirkOverride(const String& key) {
|
||||
auto it = acceptedEnvVariablesMap->find(key);
|
||||
if (it == acceptedEnvVariablesMap->end()) {
|
||||
return MG_Config::QuirkOverride::Auto;
|
||||
}
|
||||
return IsTruthyValue(it->second) ? MG_Config::QuirkOverride::ForceOn
|
||||
: MG_Config::QuirkOverride::ForceOff;
|
||||
}
|
||||
|
||||
// Multi-draw mode is a named-value preference: unset keeps Auto (best supported tier),
|
||||
// a recognized name selects that tier as the ceiling, anything else warns and keeps Auto.
|
||||
inline MG_Config::MultiDrawMode QueryEnvMultiDrawMode(const String& key) {
|
||||
auto it = acceptedEnvVariablesMap->find(key);
|
||||
if (it == acceptedEnvVariablesMap->end()) {
|
||||
return MG_Config::MultiDrawMode::Auto;
|
||||
}
|
||||
String lowered = it->second;
|
||||
std::transform(lowered.begin(), lowered.end(), lowered.begin(),
|
||||
[](unsigned char c) { return static_cast<char>(std::tolower(c)); });
|
||||
if (lowered == "ext") return MG_Config::MultiDrawMode::Ext;
|
||||
if (lowered == "indirect") return MG_Config::MultiDrawMode::Indirect;
|
||||
if (lowered == "unroll") return MG_Config::MultiDrawMode::Unroll;
|
||||
if (lowered.empty() || lowered == "auto") return MG_Config::MultiDrawMode::Auto;
|
||||
MGLOG_W("Config: Ignoring invalid env variable %s='%s'; expected ext|indirect|unroll|auto, using auto",
|
||||
key.c_str(), it->second.c_str());
|
||||
return MG_Config::MultiDrawMode::Auto;
|
||||
}
|
||||
|
||||
// Same contract as QueryEnvMultiDrawMode, over the DirectGLES tier names.
|
||||
inline MG_Config::GLESMultiDrawMode QueryEnvGLESMultiDrawMode(const String& key) {
|
||||
auto it = acceptedEnvVariablesMap->find(key);
|
||||
if (it == acceptedEnvVariablesMap->end()) {
|
||||
return MG_Config::GLESMultiDrawMode::Auto;
|
||||
}
|
||||
String lowered = it->second;
|
||||
std::transform(lowered.begin(), lowered.end(), lowered.begin(),
|
||||
[](unsigned char c) { return static_cast<char>(std::tolower(c)); });
|
||||
if (lowered == "ext") return MG_Config::GLESMultiDrawMode::Ext;
|
||||
if (lowered == "multiindirect") return MG_Config::GLESMultiDrawMode::MultiIndirect;
|
||||
if (lowered == "indirect") return MG_Config::GLESMultiDrawMode::Indirect;
|
||||
if (lowered == "basevertex") return MG_Config::GLESMultiDrawMode::BaseVertex;
|
||||
if (lowered == "drawelements") return MG_Config::GLESMultiDrawMode::DrawElements;
|
||||
if (lowered == "compute") return MG_Config::GLESMultiDrawMode::Compute;
|
||||
if (lowered.empty() || lowered == "auto") return MG_Config::GLESMultiDrawMode::Auto;
|
||||
MGLOG_W("Config: Ignoring invalid env variable %s='%s'; expected "
|
||||
"ext|multiindirect|indirect|basevertex|drawelements|compute|auto, using auto",
|
||||
key.c_str(), it->second.c_str());
|
||||
return MG_Config::GLESMultiDrawMode::Auto;
|
||||
}
|
||||
|
||||
inline Uint32 QueryEnvUint32(const String& key, Uint32 defaultValue, Uint32 minValue, Uint32 maxValue) {
|
||||
auto it = acceptedEnvVariablesMap->find(key);
|
||||
if (it == acceptedEnvVariablesMap->end()) {
|
||||
@@ -122,6 +174,15 @@ namespace MobileGL::MG_ConfigLoader {
|
||||
features.CoherentAsFlush = QueryEnvFlag("MOBILEGL_COHERENT_AS_FLUSH");
|
||||
features.TraceSkipAutodestroy = QueryEnvFlag("MOBILEGL_TRACE_SKIP_AUTODESTROY");
|
||||
features.DisableUboRing = QueryEnvFlag("MOBILEGL_DISABLE_UBO_RING");
|
||||
features.RelaxedSemantics = QueryEnvFlag("MOBILEGL_RELAXED_SEMANTICS");
|
||||
features.SubgroupPrefixScanQuirk = QueryEnvQuirkOverride("MOBILEGL_QUIRK_SUBGROUP_PREFIX_SCAN");
|
||||
features.MagmaDisableBlendedDepthWriteQuirk =
|
||||
QueryEnvQuirkOverride("MOBILEGL_MAGMA_DISABLE_BLENDED_DEPTH_WRITE");
|
||||
features.DisableRobustBufferAccess = QueryEnvFlag("MOBILEGL_DISABLE_ROBUST_BUFFER_ACCESS");
|
||||
features.MagmaMultiDrawMode = QueryEnvMultiDrawMode("MOBILEGL_MAGMA_MULTIDRAW_MODE");
|
||||
features.EsprytMultiDrawMode = QueryEnvGLESMultiDrawMode("MOBILEGL_ESPRYT_MULTIDRAW_MODE");
|
||||
features.AsyncShaderCompile = QueryEnvQuirkOverride("MOBILEGL_ASYNC_SHADER_COMPILE");
|
||||
features.AsyncShaderCompileThreads = QueryEnvUint32("MOBILEGL_ASYNC_SHADER_COMPILE_THREADS", 0, 0, 64);
|
||||
}
|
||||
|
||||
inline void InitBackendType() {
|
||||
|
||||
@@ -34,6 +34,7 @@
|
||||
#define MOBILEGL_EGL_API MOBILEGL_API
|
||||
#define MOBILEGL_CGL_API MOBILEGL_API
|
||||
#define MOBILEGL_NSOPENGL_API MOBILEGL_API
|
||||
#define MOBILEGL_WGL_API MOBILEGL_API
|
||||
|
||||
// ====================== MobileGL configurations ======================= //
|
||||
#ifndef MOBILEGL_LOG_ACTIVE_LEVEL
|
||||
|
||||
@@ -14,7 +14,13 @@ namespace MobileGL {
|
||||
} // namespace MG_Config
|
||||
|
||||
namespace MG_Backend {
|
||||
UniquePtr<BackendObject> pActiveBackendObject;
|
||||
// Leak-at-exit storage: the UniquePtr itself lives on the heap and is
|
||||
// never destroyed by the runtime, so process exit runs no backend
|
||||
// destructors (static destruction order across TUs is undefined).
|
||||
// Deterministic teardown happens inside the EGL lifecycle instead:
|
||||
// the last eglTerminate calls MobileGL::Destroy(), which .reset()s
|
||||
// these singletons while the process is still healthy.
|
||||
UniquePtr<BackendObject>& pActiveBackendObject = *new UniquePtr<BackendObject>();
|
||||
GlobalBackendFunctionsTable gBackendFunctionsTable;
|
||||
} // namespace MG_Backend
|
||||
} // namespace MobileGL
|
||||
|
||||
+78
-34
@@ -9,14 +9,27 @@
|
||||
#include "Init.h"
|
||||
#include "Config.h"
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
#include <MG_Backend/DirectVulkan/DirectVulkan.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_State/EGLState/Core.h>
|
||||
#include <MG_Impl/GLImpl/Texture/ProxyTexture.h>
|
||||
#include <MG_Impl/GLImpl/Framebuffer/GL_Framebuffer.h>
|
||||
#include <MG_Impl/GLImpl/Sync/GL_Sync.h>
|
||||
#include <MG_Util/Async/ShaderCompilePool.h>
|
||||
#include <MG_Util/ShaderTranspiler/ShaderCompiler.h>
|
||||
|
||||
#include <atomic>
|
||||
#include <mutex>
|
||||
|
||||
namespace MobileGL {
|
||||
namespace {
|
||||
Bool g_isInitialized = false;
|
||||
std::atomic<Bool> g_isInitialized = false;
|
||||
thread_local Bool tl_initializing = false;
|
||||
|
||||
std::mutex& InitMutex() {
|
||||
static std::mutex mutex;
|
||||
return mutex;
|
||||
}
|
||||
|
||||
void DestroyImpl(Bool logLifecycle) {
|
||||
if (!g_isInitialized) {
|
||||
@@ -26,12 +39,33 @@ namespace MobileGL {
|
||||
if (logLifecycle) {
|
||||
MGLOG_I("MobileGL closing...");
|
||||
}
|
||||
glslang::FinalizeProcess();
|
||||
// First, before anything else is torn down. In-flight compile/link jobs own
|
||||
// their own inputs and are safe against everything below EXCEPT glslang's
|
||||
// process globals and the TShader/TProgram objects hanging off pGLContext,
|
||||
// both of which this function is about to destroy. This is the one
|
||||
// cancellation path in the whole design that waits.
|
||||
MG_Util::Async::ShaderCompilePool::Get().StopAndDrain();
|
||||
// GL syncs die with their contexts, and every context is gone by the
|
||||
// time full teardown runs: drain the live-sync registry while the
|
||||
// backend function table can still release the backend handles (and
|
||||
// before a re-initialized library could pair them with the wrong
|
||||
// backend's DeleteSync).
|
||||
MG_Impl::GLImpl::DestroyAllSyncObjects();
|
||||
MG_Backend::pActiveBackendObject.reset();
|
||||
MG_State::pGLContext.reset();
|
||||
MG_State::pEGLContext.reset();
|
||||
MG_Impl::GLImpl::TextureImpl::pProxyTextureManager.reset();
|
||||
MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo.reset();
|
||||
// Must run AFTER pGLContext.reset(). FinalizeProcess -> ShFinalize deletes
|
||||
// glslang's process-wide pool allocator and every cached built-in symbol table,
|
||||
// while the TShader/TProgram objects owned by the shader and program objects
|
||||
// still reference levels adopted from those tables. Finalizing first left live
|
||||
// glslang objects pointing at freed memory for the rest of the teardown.
|
||||
glslang::FinalizeProcess();
|
||||
// Immediately after, and never apart from it: FinalizeProcess just deleted the
|
||||
// built-in symbol tables the prewarm latch stands for, so leaving it set would
|
||||
// make the next Initialize() skip a prewarm it genuinely needs.
|
||||
MG_Util::ShaderTranspiler::ShaderCompiler::ResetPrewarmLatch();
|
||||
MG_Backend::gBackendFunctionsTable = {};
|
||||
g_isInitialized = false;
|
||||
if (logLifecycle) {
|
||||
@@ -59,45 +93,55 @@ namespace MobileGL {
|
||||
MG_Impl::Init();
|
||||
MGLOG_D("MG_Impl initialized");
|
||||
glslang::InitializeProcess();
|
||||
// On the GL thread, before any worker can exist. glslang builds its built-in symbol
|
||||
// tables lazily under a process-wide lock held for the whole build, so without this
|
||||
// the first concurrent compiles of a shaderpack all serialize behind the very first
|
||||
// parse and asynchronous compilation looks like it is doing nothing.
|
||||
//
|
||||
// Gated on the flag, because the problem it solves only exists when there are
|
||||
// workers: with compilation synchronous, nothing ever contends for that lock and the
|
||||
// three throwaway parses buy nothing - they just add to every eglInitialize. Read the
|
||||
// flag here rather than inside PrewarmBuiltins so ShaderCompiler keeps no dependency
|
||||
// on the async subsystem (ProgramUtilTest compiles that file without it).
|
||||
if (MG_Util::Async::AsyncShaderCompileEnabled()) {
|
||||
MG_Util::ShaderTranspiler::ShaderCompiler::PrewarmBuiltins();
|
||||
}
|
||||
MGLOG_D("glslang initialized");
|
||||
g_isInitialized = true;
|
||||
MGLOG_I("MobileGL initialized");
|
||||
}
|
||||
|
||||
void EnsureInitialized() {
|
||||
if (g_isInitialized.load(std::memory_order_acquire)) {
|
||||
return;
|
||||
}
|
||||
// Re-entrant call while this thread is already inside Initialize()
|
||||
// (e.g. an init step routing back through a public entry point).
|
||||
if (tl_initializing) {
|
||||
return;
|
||||
}
|
||||
const std::lock_guard<std::mutex> lock(InitMutex());
|
||||
if (g_isInitialized.load(std::memory_order_acquire)) {
|
||||
return;
|
||||
}
|
||||
tl_initializing = true;
|
||||
Initialize();
|
||||
tl_initializing = false;
|
||||
}
|
||||
|
||||
void Destroy() {
|
||||
DestroyImpl(true);
|
||||
}
|
||||
|
||||
#if defined(__linux__) || defined(__APPLE__)
|
||||
__attribute__((constructor)) static void AutoInit() {
|
||||
Initialize();
|
||||
}
|
||||
|
||||
__attribute__((destructor)) static void AutoDestroy() {
|
||||
if (MG_Config::Features.TraceSkipAutodestroy) {
|
||||
return;
|
||||
}
|
||||
#if defined(__APPLE__)
|
||||
// macOS injected dylibs can run destructors after logging/backend static state is already torn down.
|
||||
return;
|
||||
#else
|
||||
DestroyImpl(false);
|
||||
#endif
|
||||
}
|
||||
#endif
|
||||
|
||||
#ifdef _WIN32
|
||||
BOOL WINAPI DllMain(HMODULE hModule, DWORD ul_reason_for_call, LPVOID lpReserved) {
|
||||
switch (ul_reason_for_call) {
|
||||
case DLL_PROCESS_ATTACH:
|
||||
Initialize();
|
||||
break;
|
||||
|
||||
case DLL_PROCESS_DETACH:
|
||||
Destroy();
|
||||
break;
|
||||
}
|
||||
return TRUE;
|
||||
}
|
||||
#endif
|
||||
// MobileGL's lifecycle is owned entirely by the host-API layers
|
||||
// (EGL/WGL/CGL): initialization happens lazily on the first entry point
|
||||
// via EnsureInitialized(), and full teardown happens deterministically
|
||||
// when the last EGL display is terminated with nothing current (EGLImpl
|
||||
// calls Destroy()). There is intentionally no backend-initializing static
|
||||
// constructor, no static destructor, and no DllMain: the global singletons
|
||||
// use leak-at-exit storage (see GlobalObjects.cpp), so a process that exits
|
||||
// without eglTerminate simply leaks them to the OS instead of running
|
||||
// backend destructors during static teardown. macOS has a lightweight
|
||||
// dyld constructor that installs NSOpenGL dispatch hooks only; full backend
|
||||
// initialization still enters here from the first hooked CGL context.
|
||||
} // namespace MobileGL
|
||||
|
||||
@@ -11,6 +11,13 @@
|
||||
|
||||
namespace MobileGL {
|
||||
void Initialize();
|
||||
// Thread-safe, idempotent, and re-entrant wrapper around Initialize().
|
||||
// Host layers (EGL/WGL/CGL entry points) call this lazily on first use so
|
||||
// full backend initialization never depends on ELF/DLL static constructors,
|
||||
// and so a fresh init can follow a full Destroy() (e.g. after the last
|
||||
// eglTerminate). The macOS dyld bootstrap installs only lightweight
|
||||
// NSOpenGL method hooks.
|
||||
void EnsureInitialized();
|
||||
void Destroy();
|
||||
|
||||
namespace MG_Util::Debug {
|
||||
|
||||
@@ -145,6 +145,10 @@ namespace MobileGL {
|
||||
GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void (*ClearNamedFramebufferfi)(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void (*ClearNamedFramebufferiv)(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void (*ClearNamedFramebufferuiv)(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
void (*BlitFramebuffer)(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0,
|
||||
GLint dstX1, GLint dstY1, GLbitfield mask, GLenum filter);
|
||||
void (*BlitNamedFramebuffer)(const SharedPtr<MG_State::GLState::FramebufferObject>& readFramebuffer,
|
||||
@@ -177,15 +181,18 @@ namespace MobileGL {
|
||||
void (*GetIntegeri_v)(GLenum target, GLuint index, GLint* data);
|
||||
void (*GetInteger64i_v)(GLenum target, GLuint index, GLint64* data);
|
||||
void (*GetProgramiv)(GLuint program, GLenum pname, GLint* params);
|
||||
void (*GetProgramInterfaceiv)(GLuint program, GLenum programInterface, GLenum pname, GLint* params);
|
||||
GLuint (*GetProgramResourceIndex)(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void (*GetProgramResourceName)(GLuint program, GLenum programInterface, GLuint index, GLsizei bufSize,
|
||||
GLsizei* length, GLchar* name);
|
||||
void (*GetProgramResourceiv)(GLuint program, GLenum programInterface, GLuint index, GLsizei propCount,
|
||||
const GLenum* props, GLsizei bufSize, GLsizei* length, GLint* params);
|
||||
GLint (*GetProgramResourceLocation)(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
GLint (*GetProgramResourceLocationIndex)(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void (*ShaderStorageBlockBinding)(GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding);
|
||||
// The GL program interface (glGetProgramInterfaceiv / glGetProgramResource*) is NOT
|
||||
// a backend query: it describes the program the application wrote, in the
|
||||
// application's namespace, which neither backend program is in. It is answered
|
||||
// entirely by MG_Impl/GLImpl/Program/ProgramInterface from the frontend reflection.
|
||||
// Takes the block's GL NAME, not glShaderStorageBlockBinding's index. The index
|
||||
// the application passes is the frontend interface-query enumeration's, and no
|
||||
// backend shares that index space: DirectVulkan enumerates SPIR-V descriptor
|
||||
// bindings and DirectGLES asks a real driver about SPIRV-Cross-generated ESSL.
|
||||
// The name is the one coordinate all three agree on, so the frontend resolves the
|
||||
// index against its own enumeration and each backend maps the name to its own.
|
||||
void (*ShaderStorageBlockBinding)(GLuint program, const GLchar* storageBlockName,
|
||||
GLuint storageBlockBinding);
|
||||
// GL fence sync objects. All entries are optional (may be null); the
|
||||
// frontend then falls back to always-signaled sync semantics.
|
||||
// FenceSync may itself return null when the backend cannot create a
|
||||
@@ -220,6 +227,31 @@ namespace MobileGL {
|
||||
// and leave the query readable later.
|
||||
Bool (*GetQueryResult64)(BackendQueryHandle query, Bool wait, Uint64* outNanoseconds);
|
||||
void (*DeleteBackendQuery)(BackendQueryHandle query);
|
||||
// GL_SAMPLES_PASSED occlusion queries (optional; null = unsupported,
|
||||
// the frontend then rejects the target). Results/deletion flow through
|
||||
// GetQueryResult64 / DeleteBackendQuery like timer queries.
|
||||
BackendQueryHandle (*BeginOcclusionQuery)();
|
||||
void (*EndOcclusionQuery)(BackendQueryHandle query);
|
||||
// Transform feedback primitive queries backed by real GPU query pools
|
||||
// (optional; null = frontend falls back to CPU accounting).
|
||||
BackendQueryHandle (*BeginXfbPrimitivesQuery)(Bool generated);
|
||||
void (*EndXfbPrimitivesQuery)(BackendQueryHandle query);
|
||||
// Transform feedback capture spans, for backends whose own GL/ES driver
|
||||
// performs the capture (DirectGLES). Both optional; null means the backend
|
||||
// drives capture from its draw recording instead (DirectVulkan). End is
|
||||
// called while the frontend capture state is still active, so the backend
|
||||
// can still see the capture program and buffer bindings.
|
||||
// GL_PATCH_VERTICES; ES 3.2 spells it the same way.
|
||||
void (*PatchParameteri)(GLenum pname, GLint value);
|
||||
void (*BeginTransformFeedback)(GLenum primitiveMode);
|
||||
void (*EndTransformFeedback)();
|
||||
// ARB_transform_feedback2. A backend that leaves these null keeps the single
|
||||
// implicit capture span the frontend has always modelled; the frontend state
|
||||
// (paused flag, per-object bindings) is tracked either way.
|
||||
void (*PauseTransformFeedback)();
|
||||
void (*ResumeTransformFeedback)();
|
||||
void (*BindTransformFeedback)(GLuint name);
|
||||
void (*DeleteTransformFeedback)(GLuint name);
|
||||
Int64 (*GetGpuTimestampNs)(); // glGetInteger64v(GL_TIMESTAMP); 0 if unsupported
|
||||
};
|
||||
struct GlobalBackendFunctionsTable {
|
||||
@@ -230,8 +262,26 @@ namespace MobileGL {
|
||||
void (*SetSwapInterval)(Int interval);
|
||||
};
|
||||
|
||||
// Coarse GPU vendor identity for gating device-specific quirks. Detected from the
|
||||
// Vulkan physical-device vendorID or the GLES GL_VENDOR/GL_RENDERER strings; stays
|
||||
// Unknown when detection is inconclusive, in which case auto-gated quirks stay off.
|
||||
enum class GpuVendorKind : Uint8 {
|
||||
Unknown = 0,
|
||||
Qualcomm,
|
||||
Arm,
|
||||
Nvidia,
|
||||
Amd,
|
||||
Intel,
|
||||
ImgTec,
|
||||
// Software rasterizers (llvmpipe/lavapipe, SwiftShader).
|
||||
Software,
|
||||
};
|
||||
|
||||
struct DynamicBackendParameters {
|
||||
SizeT UniformBufferOffsetAlignment = 256;
|
||||
// GL_MAX_TEXTURE_MAX_ANISOTROPY_EXT. 1.0 means the backend cannot filter anisotropically,
|
||||
// which is also why the extension is not advertised in that case.
|
||||
Float MaxTextureMaxAnisotropy = 1.0f;
|
||||
Float AliasedLineWidthRangeMin = 1.0f;
|
||||
Float AliasedLineWidthRangeMax = 1.0f;
|
||||
Float SmoothLineWidthRangeMin = 1.0f;
|
||||
@@ -254,6 +304,13 @@ namespace MobileGL {
|
||||
Int MaxIntegerSamples = 1;
|
||||
Int MaxSamples = 1;
|
||||
Int MaxSampleMaskWords = 1;
|
||||
// Tessellation limits; defaults are the GL 4.0 core minimums.
|
||||
Int MaxPatchVertices = 32;
|
||||
Int MaxTessGenLevel = 64;
|
||||
// GL_MIN/MAX_PROGRAM_TEXTURE_GATHER_OFFSET. Defaults are the GL 4.0 core
|
||||
// minimums, which every ES 3.1 driver also guarantees.
|
||||
Int MinProgramTextureGatherOffset = -8;
|
||||
Int MaxProgramTextureGatherOffset = 7;
|
||||
Int MaxTextureImageUnits = 32;
|
||||
Int MaxVertexTextureImageUnits = 32;
|
||||
Int MaxComputeTextureImageUnits = 32;
|
||||
@@ -265,10 +322,15 @@ namespace MobileGL {
|
||||
Int MaxComputeWorkGroupInvocations = 128;
|
||||
Int MaxShaderStorageBufferBindings = 8;
|
||||
Int MaxTextureBufferSize = 65536;
|
||||
// GL_TEXTURE_BUFFER_OFFSET_ALIGNMENT; 1 means the offset is unconstrained.
|
||||
Int TextureBufferOffsetAlignment = 1;
|
||||
Int MaxUniformBufferBindings = 24;
|
||||
Int MaxUniformBlockSize = 16384;
|
||||
Int MaxImageUnits = 8;
|
||||
Int MaxCombinedImageUniforms = 8;
|
||||
Int MaxVertexImageUniforms = 0;
|
||||
Int MaxGeometryImageUniforms = 0;
|
||||
Int MaxFragmentImageUniforms = 8;
|
||||
Int MaxComputeImageUniforms = 8;
|
||||
Int MaxDrawBuffers = 8;
|
||||
Int MaxColorAttachments = 8;
|
||||
@@ -279,19 +341,69 @@ namespace MobileGL {
|
||||
Float ViewportBoundsRangeMin = 0.0f;
|
||||
Float ViewportBoundsRangeMax = 0.0f;
|
||||
Int ViewportSubpixelBits = 0;
|
||||
// GL 4.x fragment-interpolation offset limits. These defaults are the
|
||||
// core minimums and are replaced by live GLES/Vulkan device limits.
|
||||
Float MinFragmentInterpolationOffset = -0.5f;
|
||||
// For four fractional bits the greatest required legal offset is
|
||||
// 0.5 - 2^-4 = 0.4375 (GL 4.6 table 23.70).
|
||||
Float MaxFragmentInterpolationOffset = 0.4375f;
|
||||
Int FragmentInterpolationOffsetBits = 4;
|
||||
Bool SupportsWideLines = false;
|
||||
// Whether a framebuffer whose depth and stencil attachments are distinct
|
||||
// images can be rendered to. GL only requires support when both refer to the
|
||||
// same image and lets an implementation answer GL_FRAMEBUFFER_UNSUPPORTED
|
||||
// otherwise, which is what DirectVulkan (one combined attachment) and the
|
||||
// real ES drivers behind DirectGLES both do. Defaults to true so a backend
|
||||
// that never sets it keeps the permissive behaviour.
|
||||
Bool SupportsDistinctDepthStencilAttachments = true;
|
||||
// Whether attaching a single layer of a 3D or array texture to a framebuffer actually
|
||||
// renders to that layer. DirectGLES hands the layer straight to
|
||||
// glFramebufferTextureLayer, so it does; DirectVulkan maps a GL layer onto a Vulkan
|
||||
// array layer with no notion of a 3D depth slice, so it does not yet. Defaults to false
|
||||
// so a backend that never sets it gets the conservative answer.
|
||||
// Which layered texture targets this backend can attach ONE layer of to a framebuffer
|
||||
// and then really clear, render and read back that layer. Bit (1u << TextureTarget) is
|
||||
// set for each supported target. Deliberately per target rather than one flag: the three
|
||||
// ways a GL layer maps onto Vulkan are independent capabilities. A 2D or 2D multisample
|
||||
// array layer IS a VkImage array layer and needs nothing extra; a 3D texture's layer is
|
||||
// a z slice, which needs a 2D-array-compatible image and a per-slice clear that
|
||||
// vkCmdClearColorImage cannot express; a cube map array needs an image shape and the
|
||||
// imageCubeArray feature before it can be attached at any layer at all. Defaults to 0 so
|
||||
// a backend that never sets it gets the conservative answer.
|
||||
Uint32 PerLayerFramebufferAttachmentTargets = 0;
|
||||
|
||||
static constexpr Uint32 PerLayerFramebufferAttachmentBit(TextureTarget target) {
|
||||
return (static_cast<Int>(target) >= 0 &&
|
||||
static_cast<Int>(target) < static_cast<Int>(TextureTarget::TextureTargetCount))
|
||||
? (1u << static_cast<Uint32>(target))
|
||||
: 0u;
|
||||
}
|
||||
|
||||
Bool SupportsPerLayerFramebufferAttachment(TextureTarget target) const {
|
||||
const Uint32 bit = PerLayerFramebufferAttachmentBit(target);
|
||||
return bit != 0 && (PerLayerFramebufferAttachmentTargets & bit) != 0;
|
||||
}
|
||||
// Whether glVertexAttribLFormat / glVertexArrayAttribLFormat can be honoured, i.e.
|
||||
// whether a 64-bit vertex attribute can actually reach a shader unconverted. Detected,
|
||||
// never assumed: DirectVulkan needs VkPhysicalDeviceFeatures::shaderFloat64 (the
|
||||
// attribute travels as its 32-bit word pair, so no VK_FORMAT_R64* is required, but the
|
||||
// bitcast result is Float64); DirectGLES can never have it, ESSL having no fp64 type at
|
||||
// all. Defaults to false so a backend that never sets it gets the conservative answer.
|
||||
Bool SupportsFloat64VertexAttributes = false;
|
||||
SizeT MaxShaderStorageBlockSize = 128 * 1024 * 1024;
|
||||
Uint32 SubgroupSize = 0;
|
||||
Uint32 SubgroupSupportedStages = 0;
|
||||
Uint32 SubgroupSupportedFeatures = 0;
|
||||
Bool SubgroupQuadOperationsInAllStages = false;
|
||||
GpuVendorKind GpuVendor = GpuVendorKind::Unknown;
|
||||
};
|
||||
|
||||
enum class WindowBackend {
|
||||
Android,
|
||||
X11,
|
||||
MetalLayer,
|
||||
// TODO: Wayland, Windows, etc.
|
||||
Win32, // Handle is an HWND
|
||||
// TODO: Wayland, etc.
|
||||
WindowBackendCount,
|
||||
Unknown = -1
|
||||
};
|
||||
|
||||
@@ -13,6 +13,6 @@
|
||||
#include "DirectVulkan/BackendObject_DirectVulkan.h"
|
||||
|
||||
namespace MobileGL::MG_Backend {
|
||||
extern UniquePtr<BackendObject> pActiveBackendObject;
|
||||
extern UniquePtr<BackendObject>& pActiveBackendObject;
|
||||
extern GlobalBackendFunctionsTable gBackendFunctionsTable;
|
||||
} // namespace MobileGL::MG_Backend
|
||||
|
||||
@@ -18,8 +18,10 @@
|
||||
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
|
||||
#include <MG_Util/Converters/MGToStr/TextureEnumConverter.h>
|
||||
#include <MG_Util/Texture/TextureFormatProcessor.h>
|
||||
#include <MG_Util/Async/ShaderCompilePool.h>
|
||||
#include <Config.h>
|
||||
#include <algorithm>
|
||||
#include <cmath>
|
||||
#include <format>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES {
|
||||
@@ -31,8 +33,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
|
||||
void ClearGLErrors(const MG_External::GLESFunctionsTable& gl) {
|
||||
if (!gl.glGetError) return;
|
||||
while (gl.glGetError() != GL_NO_ERROR) {
|
||||
}
|
||||
while (gl.glGetError() != GL_NO_ERROR) {}
|
||||
}
|
||||
|
||||
Bool CheckNoGLError(const MG_External::GLESFunctionsTable& gl) {
|
||||
@@ -76,8 +77,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
|
||||
Bool IsGLESProbeMultisampleTarget(TextureTarget target) {
|
||||
return target == TextureTarget::Texture2DMultisample ||
|
||||
target == TextureTarget::Texture2DMultisampleArray;
|
||||
return target == TextureTarget::Texture2DMultisample || target == TextureTarget::Texture2DMultisampleArray;
|
||||
}
|
||||
|
||||
GLenum GetFramebufferAttachment(TextureInternalFormat format) {
|
||||
@@ -114,8 +114,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
GLenum normalizedInternalFormat = glFormat;
|
||||
GLenum imageFormat = GL_RGBA;
|
||||
GLenum imageType = GL_UNSIGNED_BYTE;
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(
|
||||
glFormat, PixelFormatNormalizeOptionBit::None, &normalizedInternalFormat, &imageFormat, &imageType);
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(glFormat, PixelFormatNormalizeOptionBit::None,
|
||||
&normalizedInternalFormat, &imageFormat, &imageType);
|
||||
return imageFormat != GL_RED_INTEGER && imageFormat != GL_RG_INTEGER && imageFormat != GL_RGB_INTEGER &&
|
||||
imageFormat != GL_RGBA_INTEGER && !MG_Util::IsDepthFormatInternalFormat(format) &&
|
||||
!MG_Util::IsStencilFormatInternalFormat(format);
|
||||
@@ -153,9 +153,9 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
GLESProbeFormatInfo BuildNativeProbeFormatInfo(GLenum requestedInternalFormat) {
|
||||
GLESProbeFormatInfo info;
|
||||
info.InternalFormat = requestedInternalFormat;
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(
|
||||
requestedInternalFormat, PixelFormatNormalizeOptionBit::None, nullptr, &info.ImageFormat,
|
||||
&info.ImageType);
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(requestedInternalFormat,
|
||||
PixelFormatNormalizeOptionBit::None, nullptr,
|
||||
&info.ImageFormat, &info.ImageType);
|
||||
return info;
|
||||
}
|
||||
|
||||
@@ -209,6 +209,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
if (options & PixelFormatNormalizeOptionBit::NoDepthComponent32) {
|
||||
reasons.push_back("GL_DEPTH_COMPONENT32 native probe failed on OpenGL ES");
|
||||
}
|
||||
if (options & PixelFormatNormalizeOptionBit::NoThreeChannelRenderTarget) {
|
||||
reasons.push_back("no colour-renderable three-channel format on OpenGL ES");
|
||||
}
|
||||
if (options & PixelFormatNormalizeOptionBit::NoSnorm16RenderTarget) {
|
||||
reasons.push_back("EXT_render_snorm not supported");
|
||||
}
|
||||
|
||||
String reason;
|
||||
for (SizeT i = 0; i < reasons.size(); ++i) {
|
||||
@@ -226,20 +232,16 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return MG_Util::ConvertGLEnumToString(internalFormat);
|
||||
}
|
||||
|
||||
void LogGLESFormatCaveat(TextureInternalFormat logicalFormat,
|
||||
SizeT targetIndex,
|
||||
void LogGLESFormatCaveat(TextureInternalFormat logicalFormat, SizeT targetIndex,
|
||||
const GLESProbeFormatInfo& fallbackInfo) {
|
||||
MGLOG_D("Caveat: %s %s not fully supported. Reason: %s. Fallback: %s",
|
||||
GetFormatCapabilityTargetName(targetIndex).c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(logicalFormat).c_str(),
|
||||
fallbackInfo.Reason.c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(logicalFormat).c_str(), fallbackInfo.Reason.c_str(),
|
||||
ConvertFallbackInternalFormatToString(fallbackInfo.InternalFormat).c_str());
|
||||
}
|
||||
|
||||
Bool BuildFallbackProbeFormatInfo(GLenum requestedInternalFormat,
|
||||
Flags<PixelFormatNormalizeOptionBit> options,
|
||||
Bool forced,
|
||||
GLESProbeFormatInfo& outInfo) {
|
||||
Bool BuildFallbackProbeFormatInfo(GLenum requestedInternalFormat, Flags<PixelFormatNormalizeOptionBit> options,
|
||||
Bool forced, GLESProbeFormatInfo& outInfo) {
|
||||
const Flags<PixelFormatNormalizeOptionBit> applicableOptions =
|
||||
MG_Util::TextureFormatProcessor::GetApplicablePixelFormatNormalizeOptions(requestedInternalFormat,
|
||||
options);
|
||||
@@ -254,8 +256,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return outInfo.InternalFormat != GL_UNKNOWN_MGL;
|
||||
}
|
||||
|
||||
FormatCapabilityFlags BuildTextureCapsFromProbe(TextureInternalFormat logicalFormat,
|
||||
TextureTarget target,
|
||||
FormatCapabilityFlags BuildTextureCapsFromProbe(TextureInternalFormat logicalFormat, TextureTarget target,
|
||||
Bool renderable) {
|
||||
FormatCapabilityFlags caps = GetTextureFeatureCaps(logicalFormat, target);
|
||||
if (renderable) {
|
||||
@@ -269,16 +270,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return caps;
|
||||
}
|
||||
|
||||
void AddFullFormatCaps(FormatCapabilityCache& cache,
|
||||
SizeT targetIndex,
|
||||
SizeT formatIndex,
|
||||
void AddFullFormatCaps(FormatCapabilityCache& cache, SizeT targetIndex, SizeT formatIndex,
|
||||
FormatCapabilityFlags caps) {
|
||||
cache.FullCaps[targetIndex][formatIndex] |= caps;
|
||||
}
|
||||
|
||||
Bool AddCaveatFormatCaps(FormatCapabilityCache& cache,
|
||||
SizeT targetIndex,
|
||||
SizeT formatIndex,
|
||||
Bool AddCaveatFormatCaps(FormatCapabilityCache& cache, SizeT targetIndex, SizeT formatIndex,
|
||||
FormatCapabilityFlags caps) {
|
||||
Bool added = false;
|
||||
for (FormatCapability capability : kReportedFormatCapabilities) {
|
||||
@@ -292,8 +289,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
|
||||
Int GetGLESFormatMaxSamples(const MG_External::GLESCapabilities& capabilities,
|
||||
TextureInternalFormat logicalFormat,
|
||||
GLenum imageFormat) {
|
||||
TextureInternalFormat logicalFormat, GLenum imageFormat) {
|
||||
const Bool isDepth = MG_Util::IsDepthFormatInternalFormat(logicalFormat);
|
||||
const Bool isStencil = MG_Util::IsStencilFormatInternalFormat(logicalFormat);
|
||||
const Bool isInteger = imageFormat == GL_RED_INTEGER || imageFormat == GL_RG_INTEGER ||
|
||||
@@ -307,10 +303,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return capabilities.MaxColorTextureSamples;
|
||||
}
|
||||
|
||||
Bool ProbeFramebufferCompletenessForTexture(const MG_External::GLESFunctionsTable& gl,
|
||||
TextureTarget target,
|
||||
GLuint texture,
|
||||
TextureInternalFormat format) {
|
||||
Bool ProbeFramebufferCompletenessForTexture(const MG_External::GLESFunctionsTable& gl, TextureTarget target,
|
||||
GLuint texture, TextureInternalFormat format) {
|
||||
GLuint framebuffer = 0;
|
||||
GLint prevFramebuffer = 0;
|
||||
if (!gl.glGenFramebuffers || !gl.glBindFramebuffer || !gl.glCheckFramebufferStatus ||
|
||||
@@ -356,9 +350,44 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return complete;
|
||||
}
|
||||
|
||||
Bool ProbeFramebufferCompletenessForRenderbuffer(const MG_External::GLESFunctionsTable& gl,
|
||||
GLuint renderbuffer,
|
||||
TextureInternalFormat format) {
|
||||
// Whether the driver renders to a framebuffer whose depth and stencil come from
|
||||
// two different renderbuffers. GL only requires support when both attachments are
|
||||
// the same image, and ES drivers commonly answer GL_FRAMEBUFFER_UNSUPPORTED here;
|
||||
// reporting COMPLETE from the frontend and then rendering into a framebuffer the
|
||||
// driver refuses leaves the results silently empty.
|
||||
Bool ProbeDistinctDepthStencilAttachments(const MG_External::GLESFunctionsTable& gl) {
|
||||
if (!gl.glGenFramebuffers || !gl.glBindFramebuffer || !gl.glFramebufferRenderbuffer ||
|
||||
!gl.glCheckFramebufferStatus || !gl.glDeleteFramebuffers || !gl.glGenRenderbuffers ||
|
||||
!gl.glBindRenderbuffer || !gl.glRenderbufferStorage || !gl.glDeleteRenderbuffers) {
|
||||
return true;
|
||||
}
|
||||
|
||||
GLint prevFramebuffer = 0, prevRenderbuffer = 0;
|
||||
gl.glGetIntegerv(GL_FRAMEBUFFER_BINDING, &prevFramebuffer);
|
||||
gl.glGetIntegerv(GL_RENDERBUFFER_BINDING, &prevRenderbuffer);
|
||||
|
||||
GLuint framebuffer = 0;
|
||||
GLuint renderbuffers[2] = {0, 0};
|
||||
gl.glGenFramebuffers(1, &framebuffer);
|
||||
gl.glGenRenderbuffers(2, renderbuffers);
|
||||
gl.glBindRenderbuffer(GL_RENDERBUFFER, renderbuffers[0]);
|
||||
gl.glRenderbufferStorage(GL_RENDERBUFFER, GL_DEPTH_COMPONENT16, 4, 4);
|
||||
gl.glBindRenderbuffer(GL_RENDERBUFFER, renderbuffers[1]);
|
||||
gl.glRenderbufferStorage(GL_RENDERBUFFER, GL_STENCIL_INDEX8, 4, 4);
|
||||
gl.glBindFramebuffer(GL_FRAMEBUFFER, framebuffer);
|
||||
gl.glFramebufferRenderbuffer(GL_FRAMEBUFFER, GL_DEPTH_ATTACHMENT, GL_RENDERBUFFER, renderbuffers[0]);
|
||||
gl.glFramebufferRenderbuffer(GL_FRAMEBUFFER, GL_STENCIL_ATTACHMENT, GL_RENDERBUFFER, renderbuffers[1]);
|
||||
const Bool supported = gl.glCheckFramebufferStatus(GL_FRAMEBUFFER) == GL_FRAMEBUFFER_COMPLETE;
|
||||
|
||||
gl.glBindFramebuffer(GL_FRAMEBUFFER, static_cast<GLuint>(prevFramebuffer));
|
||||
gl.glBindRenderbuffer(GL_RENDERBUFFER, static_cast<GLuint>(prevRenderbuffer));
|
||||
gl.glDeleteFramebuffers(1, &framebuffer);
|
||||
gl.glDeleteRenderbuffers(2, renderbuffers);
|
||||
return supported;
|
||||
}
|
||||
|
||||
Bool ProbeFramebufferCompletenessForRenderbuffer(const MG_External::GLESFunctionsTable& gl, GLuint renderbuffer,
|
||||
TextureInternalFormat format) {
|
||||
GLuint framebuffer = 0;
|
||||
GLint prevFramebuffer = 0;
|
||||
if (!gl.glGenFramebuffers || !gl.glBindFramebuffer || !gl.glFramebufferRenderbuffer ||
|
||||
@@ -425,16 +454,16 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
break;
|
||||
case TextureTarget::Texture3D:
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 2, 0, imageFormat,
|
||||
imageType, nullptr);
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 2, 0, imageFormat, imageType,
|
||||
nullptr);
|
||||
break;
|
||||
case TextureTarget::Texture2DArray:
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 1, 0, imageFormat,
|
||||
imageType, nullptr);
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 1, 0, imageFormat, imageType,
|
||||
nullptr);
|
||||
break;
|
||||
case TextureTarget::TextureCubeMapArray:
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 6, 0, imageFormat,
|
||||
imageType, nullptr);
|
||||
gl.glTexImage3D(glTarget, 0, static_cast<GLint>(internalFormat), 2, 2, 6, 0, imageFormat, imageType,
|
||||
nullptr);
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
@@ -455,11 +484,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return created;
|
||||
}
|
||||
|
||||
Bool ProbeRenderbuffer(const MG_External::GLESFunctionsTable& gl,
|
||||
GLenum internalFormat,
|
||||
TextureInternalFormat logicalFormat,
|
||||
Bool multisample,
|
||||
Int samples) {
|
||||
Bool ProbeRenderbuffer(const MG_External::GLESFunctionsTable& gl, GLenum internalFormat,
|
||||
TextureInternalFormat logicalFormat, Bool multisample, Int samples) {
|
||||
if (!gl.glGenRenderbuffers || !gl.glBindRenderbuffer || !gl.glDeleteRenderbuffers) {
|
||||
return false;
|
||||
}
|
||||
@@ -481,17 +507,16 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
gl.glRenderbufferStorage(GL_RENDERBUFFER, internalFormat, 1, 1);
|
||||
}
|
||||
const Bool created = CheckNoGLError(gl);
|
||||
const Bool complete = created && ProbeFramebufferCompletenessForRenderbuffer(gl, renderbuffer, logicalFormat);
|
||||
const Bool complete =
|
||||
created && ProbeFramebufferCompletenessForRenderbuffer(gl, renderbuffer, logicalFormat);
|
||||
gl.glBindRenderbuffer(GL_RENDERBUFFER, static_cast<GLuint>(prevRenderbuffer));
|
||||
gl.glDeleteRenderbuffers(1, &renderbuffer);
|
||||
ClearGLErrors(gl);
|
||||
return complete;
|
||||
}
|
||||
|
||||
Vector<Int> ProbeRenderbufferSampleCounts(const MG_External::GLESFunctionsTable& gl,
|
||||
GLenum internalFormat,
|
||||
TextureInternalFormat logicalFormat,
|
||||
Int maxSamples) {
|
||||
Vector<Int> ProbeRenderbufferSampleCounts(const MG_External::GLESFunctionsTable& gl, GLenum internalFormat,
|
||||
TextureInternalFormat logicalFormat, Int maxSamples) {
|
||||
Vector<Int> sampleCounts;
|
||||
for (Int samples = std::max(maxSamples, 1); samples > 1; samples >>= 1) {
|
||||
if (ProbeRenderbuffer(gl, internalFormat, logicalFormat, true, samples)) {
|
||||
@@ -519,20 +544,84 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
|
||||
const GLESProbeFormatInfo nativeInfo = BuildNativeProbeFormatInfo(requestedInternalFormat);
|
||||
GLESProbeFormatInfo fallbackInfo;
|
||||
const Bool hasForcedFallback =
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, forcedOptions, true, fallbackInfo);
|
||||
if (!hasForcedFallback) {
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, driverOptions, false, fallbackInfo);
|
||||
GLESProbeFormatInfo outerFallbackInfo;
|
||||
const Bool outerHasForcedFallback =
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, forcedOptions, true, outerFallbackInfo);
|
||||
if (!outerHasForcedFallback) {
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, driverOptions, false, outerFallbackInfo);
|
||||
}
|
||||
|
||||
for (SizeT targetIndex = 0; targetIndex < kFormatCapabilityTextureTargetCount; ++targetIndex) {
|
||||
const auto target = static_cast<TextureTarget>(targetIndex);
|
||||
// Colour-attachable targets need a colour-renderable fallback; the ordinary
|
||||
// fallback for a three-channel format is another three-channel one, which ES
|
||||
// accepts as a texture but never as an attachment. Recompute the fallback per
|
||||
// target so those formats get widened where the target demands it.
|
||||
const Flags<PixelFormatNormalizeOptionBit> renderTargetOptions =
|
||||
TextureImpl::GetRenderTargetNormalizeOptions(capabilities, targetIndex);
|
||||
// Multisample storage has no three-channel form on ES at all, so its widening
|
||||
// is unconditional and skips the native probe (which cannot succeed). Every
|
||||
// other target keeps the widening on the DRIVER branch, behind the native
|
||||
// probe: `shouldProbeFallback = !nativeCreated || !nativeRenderable` below is
|
||||
// what makes the substitution conditional on the driver actually refusing, so
|
||||
// a driver that does render to a three-channel image keeps allocating it byte
|
||||
// for byte. That is a per-format runtime answer, NOT a desktop-vs-device
|
||||
// split: llvmpipe renders to GL_RGB16F but refuses GL_RGB8_SNORM, GL_SRGB8,
|
||||
// GL_RGB32F and the RGB integer formats, so the CI driver widens those eight
|
||||
// too. Re-run the retrace fixtures and the glcts suites on any change here.
|
||||
const Bool widenUnconditionally = IsGLESProbeMultisampleTarget(target);
|
||||
GLESProbeFormatInfo fallbackInfo = outerFallbackInfo;
|
||||
Bool hasForcedFallback = outerHasForcedFallback;
|
||||
if (renderTargetOptions) {
|
||||
// Folded into the forced options only when a forced fallback already
|
||||
// applies, so the render-target bits never *create* one: ANGLE's forced
|
||||
// GL_RGB8_SNORM -> GL_RGB16F is still three-channel and still needs
|
||||
// widening, but a non-ANGLE driver must not lose its native probe.
|
||||
const Flags<PixelFormatNormalizeOptionBit> forcedProbeOptions =
|
||||
(outerHasForcedFallback || widenUnconditionally) ? forcedOptions | renderTargetOptions
|
||||
: forcedOptions;
|
||||
hasForcedFallback =
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, forcedProbeOptions, true,
|
||||
fallbackInfo);
|
||||
if (!hasForcedFallback) {
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat,
|
||||
driverOptions | renderTargetOptions, false, fallbackInfo);
|
||||
}
|
||||
// HONEST STATUS OF THE FORCED PATH. A forced fallback is only ever built
|
||||
// for ANGLE (GetForcedPixelFormatNormalizeOptions returns nothing for any
|
||||
// other renderer), and it SKIPS the native probe entirely - the widened
|
||||
// format is asserted rather than measured on this device. That assertion
|
||||
// is validated on exactly one configuration, the android-angle retrace
|
||||
// golden; it is NOT covered by the headless llvmpipe suites, which take
|
||||
// the driver branch below and prove nothing about ANGLE's answers. So log
|
||||
// the choice at INFO rather than the usual MGLOG_D caveat: on any other
|
||||
// ANGLE device the device report is the only evidence there is of which
|
||||
// storage format the image really got. Once per format on the ordinary 2D
|
||||
// target - repeating it for all ten targets would bury the report.
|
||||
if (hasForcedFallback && target == TextureTarget::Texture2D &&
|
||||
(MG_Util::TextureFormatProcessor::GetApplicablePixelFormatNormalizeOptions(
|
||||
requestedInternalFormat, renderTargetOptions) &
|
||||
PixelFormatNormalizeOptionBit::NoThreeChannelRenderTarget)) {
|
||||
MGLOG_I("Three-channel widening (FORCED path, no native probe): %s stored as %s. "
|
||||
"Reason: %s. Device-validated on the android-angle golden only.",
|
||||
MG_Util::ConvertTextureInternalFormatToString(logicalFormat).c_str(),
|
||||
ConvertFallbackInternalFormatToString(fallbackInfo.InternalFormat).c_str(),
|
||||
fallbackInfo.Reason.c_str());
|
||||
}
|
||||
}
|
||||
|
||||
// 1D, 1D-array and rectangle textures live on an ES target (see
|
||||
// TextureImpl::MapToBackendTextureTarget), so they have to be probed there too -
|
||||
// probing the desktop-only target itself always failed, which left those slots
|
||||
// of the cache empty and stopped any fallback format from being selected for
|
||||
// them (a GL_DEPTH_COMPONENT32 1D texture then got no storage at all).
|
||||
const TextureTarget probeTarget = TextureImpl::MapToBackendTextureTarget(target);
|
||||
|
||||
Bool shouldProbeFallback = hasForcedFallback;
|
||||
if (!hasForcedFallback) {
|
||||
Bool nativeRenderable = false;
|
||||
const Bool nativeCreated =
|
||||
ProbeTexture(gl, target, nativeInfo.InternalFormat, nativeInfo.ImageFormat,
|
||||
ProbeTexture(gl, probeTarget, nativeInfo.InternalFormat, nativeInfo.ImageFormat,
|
||||
nativeInfo.ImageType, logicalFormat, &nativeRenderable);
|
||||
if (nativeCreated) {
|
||||
AddFullFormatCaps(cache, targetIndex, formatIndex,
|
||||
@@ -547,12 +636,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
if (shouldProbeFallback && fallbackInfo.InternalFormat != GL_UNKNOWN_MGL) {
|
||||
Bool fallbackRenderable = false;
|
||||
const Bool fallbackCreated =
|
||||
ProbeTexture(gl, target, fallbackInfo.InternalFormat, fallbackInfo.ImageFormat,
|
||||
ProbeTexture(gl, probeTarget, fallbackInfo.InternalFormat, fallbackInfo.ImageFormat,
|
||||
fallbackInfo.ImageType, logicalFormat, &fallbackRenderable);
|
||||
if (fallbackCreated) {
|
||||
if (AddCaveatFormatCaps(cache, targetIndex, formatIndex,
|
||||
BuildTextureCapsFromProbe(logicalFormat, target,
|
||||
fallbackRenderable))) {
|
||||
if (AddCaveatFormatCaps(
|
||||
cache, targetIndex, formatIndex,
|
||||
BuildTextureCapsFromProbe(logicalFormat, target, fallbackRenderable))) {
|
||||
LogGLESFormatCaveat(logicalFormat, targetIndex, fallbackInfo);
|
||||
}
|
||||
if (IsGLESProbeMultisampleTarget(target)) {
|
||||
@@ -563,8 +652,26 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
|
||||
const SizeT renderbufferTargetIndex = GetRenderbufferFormatCapabilityTargetIndex();
|
||||
Bool shouldProbeFallbackRenderbuffer = hasForcedFallback;
|
||||
if (!hasForcedFallback) {
|
||||
// A renderbuffer exists only to be attached, so it needs the same three-channel
|
||||
// widening the colour-attachable texture targets get - and on the same terms: the
|
||||
// native storage is probed first, so a driver that renders to it keeps it.
|
||||
const Flags<PixelFormatNormalizeOptionBit> renderbufferOptions =
|
||||
TextureImpl::GetRenderTargetNormalizeOptions(capabilities, renderbufferTargetIndex);
|
||||
GLESProbeFormatInfo renderbufferFallbackInfo = outerFallbackInfo;
|
||||
Bool renderbufferHasForcedFallback = outerHasForcedFallback;
|
||||
if (renderbufferOptions) {
|
||||
const Flags<PixelFormatNormalizeOptionBit> forcedProbeOptions =
|
||||
outerHasForcedFallback ? forcedOptions | renderbufferOptions : forcedOptions;
|
||||
renderbufferHasForcedFallback = BuildFallbackProbeFormatInfo(
|
||||
requestedInternalFormat, forcedProbeOptions, true, renderbufferFallbackInfo);
|
||||
if (!renderbufferHasForcedFallback) {
|
||||
BuildFallbackProbeFormatInfo(requestedInternalFormat, driverOptions | renderbufferOptions,
|
||||
false, renderbufferFallbackInfo);
|
||||
}
|
||||
}
|
||||
|
||||
Bool shouldProbeFallbackRenderbuffer = renderbufferHasForcedFallback;
|
||||
if (!renderbufferHasForcedFallback) {
|
||||
const Bool nativeRenderbufferComplete =
|
||||
ProbeRenderbuffer(gl, nativeInfo.InternalFormat, logicalFormat, false, 1);
|
||||
if (nativeRenderbufferComplete) {
|
||||
@@ -578,16 +685,16 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
shouldProbeFallbackRenderbuffer = true;
|
||||
}
|
||||
}
|
||||
if (shouldProbeFallbackRenderbuffer && fallbackInfo.InternalFormat != GL_UNKNOWN_MGL &&
|
||||
ProbeRenderbuffer(gl, fallbackInfo.InternalFormat, logicalFormat, false, 1)) {
|
||||
if (shouldProbeFallbackRenderbuffer && renderbufferFallbackInfo.InternalFormat != GL_UNKNOWN_MGL &&
|
||||
ProbeRenderbuffer(gl, renderbufferFallbackInfo.InternalFormat, logicalFormat, false, 1)) {
|
||||
if (AddCaveatFormatCaps(cache, renderbufferTargetIndex, formatIndex,
|
||||
GetRenderbufferFeatureCaps(logicalFormat))) {
|
||||
LogGLESFormatCaveat(logicalFormat, renderbufferTargetIndex, fallbackInfo);
|
||||
LogGLESFormatCaveat(logicalFormat, renderbufferTargetIndex, renderbufferFallbackInfo);
|
||||
}
|
||||
const Int maxSamples =
|
||||
GetGLESFormatMaxSamples(capabilities, logicalFormat, fallbackInfo.ImageFormat);
|
||||
cache.SampleCounts[renderbufferTargetIndex][formatIndex] =
|
||||
ProbeRenderbufferSampleCounts(gl, fallbackInfo.InternalFormat, logicalFormat, maxSamples);
|
||||
GetGLESFormatMaxSamples(capabilities, logicalFormat, renderbufferFallbackInfo.ImageFormat);
|
||||
cache.SampleCounts[renderbufferTargetIndex][formatIndex] = ProbeRenderbufferSampleCounts(
|
||||
gl, renderbufferFallbackInfo.InternalFormat, logicalFormat, maxSamples);
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -603,11 +710,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
.ExtraVendor = Nullopt, // Extra vendor
|
||||
.RendererGLInfo =
|
||||
{
|
||||
.TargetGLVersion = {3, 3, 0}, // Target OpenGL Version
|
||||
.TargetGLVersion = {4, 0, 0}, // GL target version
|
||||
.TargetGLSLVersion = {4, 6, 0}, // Target Shading Language Version
|
||||
// Baseline advertisement (no timer queries yet); reconciled once
|
||||
// the ES capabilities exist, see UpdateAdvertisedTimerQueryExtension.
|
||||
.Extensions = BuildAdvertisedExtensions(false),
|
||||
// Baseline advertisement (no timer queries / anisotropy yet); reconciled
|
||||
// once the ES capabilities exist, see UpdateAdvertisedCapabilityExtensions.
|
||||
.Extensions = BuildAdvertisedExtensions(false, false),
|
||||
.IsCompatibilityProfile = false // Is Compatibility Profile
|
||||
},
|
||||
.StaticBackendCapability = {.AllowVSOnlyPrograms = false} // Backend Capability
|
||||
@@ -627,14 +734,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
// thread can only observe the extension string after the
|
||||
// advertisement for its context has settled; rebuilding the whole
|
||||
// list keeps the re-run after a context recreation idempotent.
|
||||
void UpdateAdvertisedTimerQueryExtension() {
|
||||
MutableRendererInfo().RendererGLInfo.Extensions = BuildAdvertisedExtensions(AreTimerQueriesSupported());
|
||||
void UpdateAdvertisedCapabilityExtensions(Bool anisotropicFilteringSupported) {
|
||||
MutableRendererInfo().RendererGLInfo.Extensions =
|
||||
BuildAdvertisedExtensions(AreTimerQueriesSupported(), anisotropicFilteringSupported);
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void PopulateFormatCapabilities(const MG_External::GLESFunctionsTable& gl,
|
||||
const MG_External::GLESCapabilities& capabilities,
|
||||
FormatCapabilityCache& cache) {
|
||||
const MG_External::GLESCapabilities& capabilities, FormatCapabilityCache& cache) {
|
||||
PopulateFormatCapabilitiesImpl(gl, capabilities, cache);
|
||||
}
|
||||
|
||||
@@ -672,11 +779,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return false;
|
||||
}
|
||||
DirectGLES::SetGLESCapabilities(m_GLESCapabilities);
|
||||
// Now that g_GLESCapabilities knows about GL_EXT_disjoint_timer_query,
|
||||
// reconcile the E_GL_ARB_timer_query advertisement (see the comment on
|
||||
// UpdateAdvertisedTimerQueryExtension for why it cannot happen when
|
||||
// the extension list is first built).
|
||||
UpdateAdvertisedTimerQueryExtension();
|
||||
// Now that g_GLESCapabilities knows about GL_EXT_disjoint_timer_query and
|
||||
// GL_EXT_texture_filter_anisotropic, reconcile the advertisement (see the comment on
|
||||
// UpdateAdvertisedCapabilityExtensions for why it cannot happen when the extension
|
||||
// list is first built).
|
||||
UpdateAdvertisedCapabilityExtensions(m_GLESCapabilities.SupportsTextureFilterAnisotropy);
|
||||
UpdateDynamicBackendParameters();
|
||||
PopulateFormatCapabilities(m_GLESFunctions, m_GLESCapabilities, MutableFormatCapabilities());
|
||||
PrintFormatCapabilities(GetFormatCapabilities());
|
||||
@@ -698,11 +805,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return false;
|
||||
}
|
||||
|
||||
if ((handle.Backend != WindowBackend::Android &&
|
||||
handle.Backend != WindowBackend::X11 &&
|
||||
handle.Backend != WindowBackend::MetalLayer) ||
|
||||
if ((handle.Backend != WindowBackend::Android && handle.Backend != WindowBackend::X11 &&
|
||||
handle.Backend != WindowBackend::MetalLayer && handle.Backend != WindowBackend::Win32) ||
|
||||
!handle.Handle) {
|
||||
MGLOG_E("DirectGLES backend only supports Android, X11, and CAMetalLayer native windows");
|
||||
MGLOG_E("DirectGLES backend only supports Android, X11, CAMetalLayer, and Win32 native windows");
|
||||
return false;
|
||||
}
|
||||
|
||||
@@ -818,24 +924,56 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return MutableRendererInfo();
|
||||
}
|
||||
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool timerQueriesSupported) {
|
||||
Vector<GLExtension> extensions = {V_OpenGL30, V_OpenGL31, V_OpenGL32,
|
||||
V_OpenGL33, E_GL_ARB_draw_buffers_blend, E_GL_ARB_compute_shader,
|
||||
E_GL_ARB_shader_storage_buffer_object, E_GL_ARB_shader_image_load_store,
|
||||
E_GL_ARB_program_interface_query, E_GL_ARB_framebuffer_object,
|
||||
E_GL_EXT_framebuffer_object, E_GL_ARB_depth_texture, E_GL_ARB_buffer_storage,
|
||||
E_GL_ARB_texture_storage, E_GL_ARB_texture_storage_multisample,
|
||||
E_GL_ARB_direct_state_access,
|
||||
E_GL_ARB_multi_draw_indirect, E_GL_ARB_indirect_parameters,
|
||||
E_GL_ARB_shader_draw_parameters, E_GL_ARB_gpu_shader5, E_GL_ARB_multi_bind,
|
||||
E_GL_ARB_shading_language_420pack, E_GL_ARB_vertex_attrib_binding,
|
||||
E_GL_ARB_shader_image_size};
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool timerQueriesSupported, Bool anisotropicFilteringSupported) {
|
||||
Vector<GLExtension> extensions = {
|
||||
V_OpenGL30, V_OpenGL31, V_OpenGL32, V_OpenGL33, V_OpenGL40, E_GL_ARB_draw_buffers_blend,
|
||||
E_GL_ARB_compute_shader, E_GL_ARB_shader_storage_buffer_object, E_GL_ARB_shader_image_load_store,
|
||||
E_GL_ARB_program_interface_query, E_GL_ARB_framebuffer_object, E_GL_EXT_framebuffer_object,
|
||||
E_GL_ARB_depth_texture, E_GL_ARB_buffer_storage, E_GL_ARB_texture_storage,
|
||||
E_GL_ARB_texture_storage_multisample, E_GL_ARB_clear_texture, E_GL_ARB_direct_state_access,
|
||||
E_GL_ARB_multi_draw_indirect, E_GL_ARB_indirect_parameters, E_GL_ARB_shader_draw_parameters,
|
||||
E_GL_ARB_gpu_shader5, E_GL_ARB_multi_bind, E_GL_ARB_shading_language_420pack,
|
||||
E_GL_ARB_vertex_attrib_binding,
|
||||
// Both are core from GL 3.2/3.3 on and implemented here for
|
||||
// every advertised version, but an app targeting 3.0/3.1
|
||||
// only reaches them through the extension string - the CTS
|
||||
// picks a whole different shader for draw_buffers without
|
||||
// explicit_attrib_location. DirectVulkan advertises both.
|
||||
E_GL_ARB_explicit_attrib_location, E_GL_ARB_texture_multisample, E_GL_ARB_shader_image_size,
|
||||
// Advertised with GL_NUM_PROGRAM_BINARY_FORMATS = 0, which the
|
||||
// extension explicitly permits. It is also the only thing that
|
||||
// exposes glProgramParameteri before GL 4.1.
|
||||
E_GL_ARB_get_program_binary};
|
||||
// GL_KHR_parallel_shader_compile is MobileGL's own capability, not the host ES
|
||||
// driver's: the compiler threads are MobileGL's, and glCompileShader/glLinkProgram
|
||||
// are serviced entirely inside the frontend. Whether the device driver advertises
|
||||
// the string is irrelevant here (the POST reports it separately, for the day the
|
||||
// driver-side link is what gets parallelised).
|
||||
//
|
||||
// Gated on the async flag deliberately, and this is the whole reason the gate
|
||||
// exists. Advertising the string is the one part of asynchronous compilation that a
|
||||
// recorded trace can never cover: Iris and Sodium change their SUBMISSION SCHEDULE
|
||||
// the moment they see it - they enqueue whole pipeline batches and poll
|
||||
// GL_COMPLETION_STATUS_KHR instead of compiling one program at a time - so
|
||||
// MOBILEGL_ASYNC_SHADER_COMPILE=0 has to withdraw the application-visible behaviour
|
||||
// change as well as the threading, or the kill switch would only be half a switch.
|
||||
if (MG_Util::Async::AsyncShaderCompileEnabled()) {
|
||||
extensions.push_back(E_GL_KHR_parallel_shader_compile);
|
||||
}
|
||||
// Only advertised when the device driver actually has usable timer queries
|
||||
// (GL_EXT_disjoint_timer_query plus its entry points) and the
|
||||
// MOBILEGL_DISABLE_TIMERQUERY escape hatch is off.
|
||||
if (timerQueriesSupported && !MG_Config::Features.DisableTimerQuery) {
|
||||
extensions.push_back(E_GL_ARB_timer_query);
|
||||
}
|
||||
// Only advertised when the host ES driver actually filters anisotropically: the sampler
|
||||
// state is accepted regardless, but forwarding it would be a no-op without the extension,
|
||||
// and an app that trusts the string (LWJGL builds GLCapabilities from it) would silently
|
||||
// get plain trilinear.
|
||||
if (anisotropicFilteringSupported) {
|
||||
extensions.push_back(E_GL_EXT_texture_filter_anisotropic);
|
||||
extensions.push_back(E_GL_ARB_texture_filter_anisotropic);
|
||||
}
|
||||
return extensions;
|
||||
}
|
||||
|
||||
@@ -882,12 +1020,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
funcsTable.GL.GetIntegeri_v = GetIntegeri_v;
|
||||
funcsTable.GL.GetInteger64i_v = GetInteger64i_v;
|
||||
funcsTable.GL.GetProgramiv = GetProgramiv;
|
||||
funcsTable.GL.GetProgramInterfaceiv = GetProgramInterfaceiv;
|
||||
funcsTable.GL.GetProgramResourceIndex = GetProgramResourceIndex;
|
||||
funcsTable.GL.GetProgramResourceName = GetProgramResourceName;
|
||||
funcsTable.GL.GetProgramResourceiv = GetProgramResourceiv;
|
||||
funcsTable.GL.GetProgramResourceLocation = GetProgramResourceLocation;
|
||||
funcsTable.GL.GetProgramResourceLocationIndex = GetProgramResourceLocationIndex;
|
||||
funcsTable.GL.ShaderStorageBlockBinding = ShaderStorageBlockBinding;
|
||||
funcsTable.GL.Clear = Clear;
|
||||
funcsTable.GL.ClearBufferfi = ClearBufferfi;
|
||||
@@ -895,6 +1027,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
funcsTable.GL.ClearBufferuiv = ClearBufferuiv;
|
||||
funcsTable.GL.ClearBufferiv = ClearBufferiv;
|
||||
funcsTable.GL.ClearNamedFramebufferfv = ClearNamedFramebufferfv;
|
||||
funcsTable.GL.ClearNamedFramebufferiv = ClearNamedFramebufferiv;
|
||||
funcsTable.GL.ClearNamedFramebufferuiv = ClearNamedFramebufferuiv;
|
||||
funcsTable.GL.ClearNamedFramebufferfi = ClearNamedFramebufferfi;
|
||||
funcsTable.GL.BlitFramebuffer = BlitFramebuffer;
|
||||
funcsTable.GL.BlitNamedFramebuffer = BlitNamedFramebuffer;
|
||||
@@ -924,11 +1058,30 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
funcsTable.GL.BeginTimeElapsedQuery = BeginTimeElapsedQuery;
|
||||
funcsTable.GL.EndTimeElapsedQuery = EndTimeElapsedQuery;
|
||||
funcsTable.GL.QueryCounterTimestamp = QueryCounterTimestamp;
|
||||
funcsTable.GL.IsQueryResultAvailable = IsQueryResultAvailable;
|
||||
funcsTable.GL.GetQueryResult64 = GetQueryResult64;
|
||||
funcsTable.GL.DeleteBackendQuery = DeleteBackendQuery;
|
||||
funcsTable.GL.GetGpuTimestampNs = GetGpuTimestampNs;
|
||||
}
|
||||
// Occlusion queries are core ES3 (independent of MOBILEGL_DISABLE_TIMERQUERY)
|
||||
// and share the handle-based result/delete entries, which must exist even
|
||||
// when the timer-query group above is disabled.
|
||||
funcsTable.GL.BeginOcclusionQuery = BeginOcclusionQuery;
|
||||
funcsTable.GL.EndOcclusionQuery = EndOcclusionQuery;
|
||||
// Real driver primitive counters: the frontend's CPU accounting cannot see a
|
||||
// geometry shader's amplification.
|
||||
funcsTable.GL.BeginXfbPrimitivesQuery = BeginXfbPrimitivesQuery;
|
||||
funcsTable.GL.EndXfbPrimitivesQuery = EndXfbPrimitivesQuery;
|
||||
funcsTable.GL.IsQueryResultAvailable = IsQueryResultAvailable;
|
||||
funcsTable.GL.GetQueryResult64 = GetQueryResult64;
|
||||
funcsTable.GL.DeleteBackendQuery = DeleteBackendQuery;
|
||||
// Transform feedback is captured by the real ES driver rather than
|
||||
// reconstructed from the draw recording, so the frontend has to hand the
|
||||
// span boundaries over.
|
||||
funcsTable.GL.PatchParameteri = DirectGLES::PatchParameteri;
|
||||
funcsTable.GL.BeginTransformFeedback = XfbImpl::BeginTransformFeedback;
|
||||
funcsTable.GL.EndTransformFeedback = XfbImpl::EndTransformFeedback;
|
||||
funcsTable.GL.PauseTransformFeedback = XfbImpl::PauseTransformFeedback;
|
||||
funcsTable.GL.ResumeTransformFeedback = XfbImpl::ResumeTransformFeedback;
|
||||
funcsTable.GL.BindTransformFeedback = XfbImpl::BindTransformFeedback;
|
||||
funcsTable.GL.DeleteTransformFeedback = XfbImpl::DeleteTransformFeedback;
|
||||
funcsTableInitialized = true;
|
||||
}
|
||||
return funcsTable;
|
||||
@@ -938,8 +1091,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return m_dynamicParameters;
|
||||
}
|
||||
|
||||
void BackendObject_DirectGLES::ApplyGLESCapabilitiesForTesting(const MG_External::GLESCapabilities& capabilities) {
|
||||
m_GLESCapabilities = capabilities;
|
||||
UpdateDynamicBackendParameters();
|
||||
}
|
||||
|
||||
void BackendObject_DirectGLES::UpdateDynamicBackendParameters() {
|
||||
m_dynamicParameters.UniformBufferOffsetAlignment = m_GLESCapabilities.UniformBufferOffsetAlignment;
|
||||
m_dynamicParameters.MaxTextureMaxAnisotropy = m_GLESCapabilities.MaxTextureMaxAnisotropy;
|
||||
m_dynamicParameters.AliasedLineWidthRangeMin = m_GLESCapabilities.AliasedLineWidthRangeMin;
|
||||
m_dynamicParameters.AliasedLineWidthRangeMax = m_GLESCapabilities.AliasedLineWidthRangeMax;
|
||||
m_dynamicParameters.SmoothLineWidthRangeMin = m_GLESCapabilities.SmoothLineWidthRangeMin;
|
||||
@@ -962,6 +1121,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
m_dynamicParameters.MaxIntegerSamples = m_GLESCapabilities.MaxIntegerSamples;
|
||||
m_dynamicParameters.MaxSamples = m_GLESCapabilities.MaxSamples;
|
||||
m_dynamicParameters.MaxSampleMaskWords = m_GLESCapabilities.MaxSampleMaskWords;
|
||||
m_dynamicParameters.MaxPatchVertices = m_GLESCapabilities.MaxPatchVertices;
|
||||
m_dynamicParameters.MaxTessGenLevel = m_GLESCapabilities.MaxTessGenLevel;
|
||||
m_dynamicParameters.MinProgramTextureGatherOffset = m_GLESCapabilities.MinProgramTextureGatherOffset;
|
||||
m_dynamicParameters.MaxProgramTextureGatherOffset = m_GLESCapabilities.MaxProgramTextureGatherOffset;
|
||||
// Clamp the advertised sampler limits the same way the DirectVulkan backend does: per-stage
|
||||
// GL_MAX_TEXTURE_IMAGE_UNITS must never exceed host-side fixed arrays sized off it (e.g.
|
||||
// Minecraft's 128-entry Blaze3D GlStateManager.TEXTURES[], iterated by Iris), and the combined
|
||||
@@ -989,13 +1152,51 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
m_dynamicParameters.MaxComputeWorkGroupInvocations = m_GLESCapabilities.MaxComputeWorkGroupInvocations;
|
||||
m_dynamicParameters.MaxShaderStorageBufferBindings = m_GLESCapabilities.MaxShaderStorageBufferBindings;
|
||||
m_dynamicParameters.MaxTextureBufferSize = m_GLESCapabilities.MaxTextureBufferSize;
|
||||
m_dynamicParameters.TextureBufferOffsetAlignment = m_GLESCapabilities.TextureBufferOffsetAlignment;
|
||||
m_dynamicParameters.MaxUniformBufferBindings = m_GLESCapabilities.MaxUniformBufferBindings;
|
||||
m_dynamicParameters.MaxUniformBlockSize = m_GLESCapabilities.MaxUniformBlockSize;
|
||||
const Int maxSupportedTextureUnits =
|
||||
static_cast<Int>(MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
m_dynamicParameters.MaxImageUnits = std::min(m_GLESCapabilities.MaxImageUnits, maxSupportedTextureUnits);
|
||||
m_dynamicParameters.MaxCombinedImageUniforms = m_GLESCapabilities.MaxCombinedImageUniforms;
|
||||
m_dynamicParameters.MaxComputeImageUniforms = m_GLESCapabilities.MaxComputeImageUniforms;
|
||||
const Int maxSupportedTextureUnits = static_cast<Int>(MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
m_dynamicParameters.MaxImageUnits =
|
||||
std::max(std::min(m_GLESCapabilities.MaxImageUnits, maxSupportedTextureUnits), 0);
|
||||
m_dynamicParameters.MaxCombinedImageUniforms = std::max(m_GLESCapabilities.MaxCombinedImageUniforms, 0);
|
||||
const auto clampStageImageUniforms = [this](Int stageLimit) {
|
||||
return std::min({std::max(stageLimit, 0), m_dynamicParameters.MaxImageUnits,
|
||||
m_dynamicParameters.MaxCombinedImageUniforms});
|
||||
};
|
||||
m_dynamicParameters.MaxVertexImageUniforms = clampStageImageUniforms(m_GLESCapabilities.MaxVertexImageUniforms);
|
||||
m_dynamicParameters.MaxGeometryImageUniforms =
|
||||
clampStageImageUniforms(m_GLESCapabilities.MaxGeometryImageUniforms);
|
||||
m_dynamicParameters.MaxFragmentImageUniforms =
|
||||
clampStageImageUniforms(m_GLESCapabilities.MaxFragmentImageUniforms);
|
||||
m_dynamicParameters.MaxComputeImageUniforms =
|
||||
clampStageImageUniforms(m_GLESCapabilities.MaxComputeImageUniforms);
|
||||
m_dynamicParameters.SupportsDistinctDepthStencilAttachments =
|
||||
ProbeDistinctDepthStencilAttachments(DirectGLES::g_GLESFuncs);
|
||||
// SyncAttachmentObject routes a layered upload target to glFramebufferTextureLayer with the
|
||||
// attachment's layer passed through, so this backend really does render to the layer it was
|
||||
// given - provided the driver resolved the entry point at all.
|
||||
// SyncAttachmentObject (Managers.cpp, the glFramebufferTextureLayer branch) routes exactly
|
||||
// five upload targets to glFramebufferTextureLayer with the attachment's layer passed
|
||||
// through, so this backend really does render to the layer it was given - provided the driver
|
||||
// resolved the entry point at all. The cube map array is the one target that also needs
|
||||
// ES-level support before it has any storage to attach.
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets = 0;
|
||||
if (DirectGLES::g_GLESFuncs.glFramebufferTextureLayer != nullptr) {
|
||||
using DynParams = MG_Backend::DynamicBackendParameters;
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets |=
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture3D) |
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture1DArray) |
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture2DArray) |
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture2DMultisampleArray);
|
||||
if (m_GLESCapabilities.SupportsTextureCubeMapArray) {
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets |=
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::TextureCubeMapArray);
|
||||
}
|
||||
}
|
||||
// Not a driver question and never will be: OpenGL ES has no double-precision vertex format
|
||||
// and ESSL has no fp64 type to consume one with, so a 64-bit vertex attribute has nowhere to
|
||||
// land on this backend regardless of what the driver underneath happens to support.
|
||||
m_dynamicParameters.SupportsFloat64VertexAttributes = false;
|
||||
m_dynamicParameters.MaxDrawBuffers = m_GLESCapabilities.MaxDrawBuffers;
|
||||
m_dynamicParameters.MaxColorAttachments = m_GLESCapabilities.MaxColorAttachments;
|
||||
m_dynamicParameters.MaxClipDistances = m_GLESCapabilities.MaxClipDistances;
|
||||
@@ -1005,8 +1206,50 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
m_dynamicParameters.ViewportBoundsRangeMin = m_GLESCapabilities.ViewportBoundsRangeMin;
|
||||
m_dynamicParameters.ViewportBoundsRangeMax = m_GLESCapabilities.ViewportBoundsRangeMax;
|
||||
m_dynamicParameters.ViewportSubpixelBits = m_GLESCapabilities.ViewportSubpixelBits;
|
||||
m_dynamicParameters.MinFragmentInterpolationOffset =
|
||||
std::isfinite(m_GLESCapabilities.MinFragmentInterpolationOffset) &&
|
||||
m_GLESCapabilities.MinFragmentInterpolationOffset <= -0.5f
|
||||
? m_GLESCapabilities.MinFragmentInterpolationOffset
|
||||
: -0.5f;
|
||||
m_dynamicParameters.MaxFragmentInterpolationOffset = 0.4375f;
|
||||
m_dynamicParameters.FragmentInterpolationOffsetBits = 4;
|
||||
if (m_GLESCapabilities.FragmentInterpolationOffsetBits >= 4 &&
|
||||
std::isfinite(m_GLESCapabilities.MaxFragmentInterpolationOffset)) {
|
||||
const Float requiredMaxOffset =
|
||||
0.5f - std::ldexp(1.0f, -m_GLESCapabilities.FragmentInterpolationOffsetBits);
|
||||
if (m_GLESCapabilities.MaxFragmentInterpolationOffset >= requiredMaxOffset) {
|
||||
m_dynamicParameters.MaxFragmentInterpolationOffset = m_GLESCapabilities.MaxFragmentInterpolationOffset;
|
||||
m_dynamicParameters.FragmentInterpolationOffsetBits =
|
||||
m_GLESCapabilities.FragmentInterpolationOffsetBits;
|
||||
}
|
||||
}
|
||||
m_dynamicParameters.SupportsWideLines =
|
||||
m_GLESCapabilities.AliasedLineWidthRangeMax > 1.0f || m_GLESCapabilities.SmoothLineWidthRangeMax > 1.0f;
|
||||
|
||||
const auto containsAny = [](const String& haystack, std::initializer_list<const char*> needles) {
|
||||
return std::any_of(needles.begin(), needles.end(),
|
||||
[&](const char* needle) { return haystack.find(needle) != String::npos; });
|
||||
};
|
||||
const String vendorAndRenderer =
|
||||
m_GLESCapabilities.GLESVendorString + " " + m_GLESCapabilities.GLESRendererString;
|
||||
if (containsAny(vendorAndRenderer, {"llvmpipe", "SwiftShader", "softpipe"})) {
|
||||
// Check software rasterizers first: ANGLE-on-llvmpipe reports both.
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Software;
|
||||
} else if (containsAny(vendorAndRenderer, {"Qualcomm", "Adreno"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Qualcomm;
|
||||
} else if (containsAny(vendorAndRenderer, {"Mali", "ARM"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Arm;
|
||||
} else if (containsAny(vendorAndRenderer, {"NVIDIA"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Nvidia;
|
||||
} else if (containsAny(vendorAndRenderer, {"AMD", "Radeon"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Amd;
|
||||
} else if (containsAny(vendorAndRenderer, {"Intel"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Intel;
|
||||
} else if (containsAny(vendorAndRenderer, {"Imagination", "PowerVR"})) {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::ImgTec;
|
||||
} else {
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Unknown;
|
||||
}
|
||||
}
|
||||
|
||||
const MG_External::GLESFunctionsTable& BackendObject_DirectGLES::GetGLESFunctions() const {
|
||||
|
||||
@@ -41,6 +41,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
|
||||
const MG_External::GLESFunctionsTable& GetGLESFunctions() const;
|
||||
const MG_External::EGLFunctionsTable& GetEGLFunctions() const;
|
||||
void ApplyGLESCapabilitiesForTesting(const MG_External::GLESCapabilities& capabilities);
|
||||
|
||||
private:
|
||||
void UpdateDynamicBackendParameters();
|
||||
@@ -66,9 +67,9 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
const RendererInfo& GetRendererIdentity();
|
||||
|
||||
// The full OpenGL extension list Espryt advertises (glGetString(GL_EXTENSIONS))
|
||||
// for a device whose timer queries are (or are not) usable. The
|
||||
// MOBILEGL_DISABLE_TIMERQUERY escape hatch is applied inside.
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool timerQueriesSupported);
|
||||
// for a device whose timer queries / anisotropic filtering are (or are not) usable.
|
||||
// The MOBILEGL_DISABLE_TIMERQUERY escape hatch is applied inside.
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool timerQueriesSupported, Bool anisotropicFilteringSupported);
|
||||
|
||||
// Format: <OpenGL ES Renderer>, OpenGL ES <Major>.<Minor> — the exact string an
|
||||
// initialized backend returns from GetBackendAPIVersionString (and that ends up
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -19,6 +19,10 @@
|
||||
operation Utils::CheckGLESError();
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES {
|
||||
// Re-establishes the frontend texture-unit bindings on the native ES context.
|
||||
// Content uploads use scratch bindings, so draws and dispatches call this after
|
||||
// texture synchronization.
|
||||
void BindCurrentTextures();
|
||||
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
@@ -55,6 +59,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearNamedFramebufferfi(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void ClearNamedFramebufferiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferuiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
|
||||
GLint dstY1, GLbitfield mask, GLenum filter);
|
||||
void BlitNamedFramebuffer(const SharedPtr<MG_State::GLState::FramebufferObject>& readFramebuffer,
|
||||
@@ -84,15 +92,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
void GetIntegeri_v(GLenum target, GLuint index, GLint* data);
|
||||
void GetInteger64i_v(GLenum target, GLuint index, GLint64* data);
|
||||
void GetProgramiv(GLuint program, GLenum pname, GLint* params);
|
||||
void GetProgramInterfaceiv(GLuint program, GLenum programInterface, GLenum pname, GLint* params);
|
||||
GLuint GetProgramResourceIndex(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void GetProgramResourceName(GLuint program, GLenum programInterface, GLuint index, GLsizei bufSize, GLsizei* length,
|
||||
GLchar* name);
|
||||
void GetProgramResourceiv(GLuint program, GLenum programInterface, GLuint index, GLsizei propCount,
|
||||
const GLenum* props, GLsizei bufSize, GLsizei* length, GLint* params);
|
||||
GLint GetProgramResourceLocation(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
GLint GetProgramResourceLocationIndex(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void ShaderStorageBlockBinding(GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding);
|
||||
void ShaderStorageBlockBinding(GLuint program, const GLchar* storageBlockName, GLuint storageBlockBinding);
|
||||
Bool InitWindowSurface(NativeWindowType window);
|
||||
Bool InitPbufferSurface(EGLint width, EGLint height);
|
||||
Bool MakeCurrent();
|
||||
@@ -126,6 +126,16 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
BackendQueryHandle BeginTimeElapsedQuery();
|
||||
void EndTimeElapsedQuery(BackendQueryHandle query);
|
||||
BackendQueryHandle QueryCounterTimestamp();
|
||||
// GL_ANY_SAMPLES_PASSED(_CONSERVATIVE) occlusion queries: core ES3, independent of
|
||||
// GL_EXT_disjoint_timer_query and of MOBILEGL_DISABLE_TIMERQUERY. Results/deletion
|
||||
// flow through GetQueryResult64/DeleteBackendQuery like the timer queries above.
|
||||
BackendQueryHandle BeginOcclusionQuery();
|
||||
void EndOcclusionQuery(BackendQueryHandle query);
|
||||
// GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN / GL_PRIMITIVES_GENERATED, also core ES
|
||||
// (GL_PRIMITIVES_GENERATED from ES 3.2 on). Null when the target is unavailable, in
|
||||
// which case the frontend falls back to counting primitives from the draw calls.
|
||||
BackendQueryHandle BeginXfbPrimitivesQuery(Bool generated);
|
||||
void EndXfbPrimitivesQuery(BackendQueryHandle query);
|
||||
Bool IsQueryResultAvailable(BackendQueryHandle query);
|
||||
// Returns true when a final value landed in *outNanoseconds (a zero for
|
||||
// null or stale-generation handles IS final: the frontend may cache it
|
||||
@@ -142,6 +152,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
// A buffer retired during frame N is safe to recycle once CompletedFrameSerial() >= N.
|
||||
Uint64 CurrentFrameSerial();
|
||||
Uint64 CompletedFrameSerial();
|
||||
// Block (up to timeoutNs) until the given frame serial provably retired on the
|
||||
// GPU, using the per-frame fence ring. False when no usable fence covers the
|
||||
// serial (fence-less context, foreign thread, or the slot was recycled);
|
||||
// completion state is untouched in that case.
|
||||
Bool WaitForFrameSerialCompleted(Uint64 serial, Uint64 timeoutNs);
|
||||
// Applies (or defers until the window surface exists) the app-requested
|
||||
// eglSwapInterval on the native EGL surface.
|
||||
void SetSwapInterval(Int interval);
|
||||
@@ -150,6 +165,49 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
void SetGLESCapabilities(const MG_External::GLESCapabilities& capabilities);
|
||||
void DestroyEGLContext();
|
||||
|
||||
// Transform feedback capture spans, performed by the real ES driver. The
|
||||
// capture set is declared on the backend program at link time; the driver-side
|
||||
// begin is deferred to the first draw of the span (ES needs the capturing
|
||||
// program current and the capture buffers bound), and the end also mirrors the
|
||||
// captured bytes back into the frontend buffer shadows.
|
||||
void PatchParameteri(GLenum pname, GLint value);
|
||||
|
||||
namespace XfbImpl {
|
||||
Bool AreTransformFeedbacksSupported();
|
||||
// True while a capture span is open on the current transform feedback object
|
||||
// (frontend Begin seen and not paused), whether or not the deferred driver-side
|
||||
// Begin has been issued yet. Draw paths that would restructure the primitive
|
||||
// stream, or that need to dispatch compute mid-draw, decline while it is set.
|
||||
Bool IsCaptureSpanOpen();
|
||||
void BeginTransformFeedback(GLenum primitiveMode);
|
||||
void EndTransformFeedback();
|
||||
void PauseTransformFeedback();
|
||||
void ResumeTransformFeedback();
|
||||
void BindTransformFeedback(GLuint name);
|
||||
void DeleteTransformFeedback(GLuint name);
|
||||
void OnBackendContextDestroyed();
|
||||
} // namespace XfbImpl
|
||||
|
||||
namespace RenderStateImpl {
|
||||
// Pushes the frontend's render-state block to the ES driver, diffed against what was
|
||||
// last pushed.
|
||||
//
|
||||
// `forColorClear` names the CALLER, and the only thing it changes is the colour write
|
||||
// mask handed to the driver. A draw into a colour attachment the backend widened from
|
||||
// three channels to four gets that buffer's alpha channel masked OFF, so nothing can
|
||||
// move the stored alpha away from the 1.0 the application's three-channel format
|
||||
// implies (see FramebufferImpl::g_alphaWidenedDrawBufferMask). A CLEAR is how that 1.0
|
||||
// gets there in the first place, so it must be allowed to write alpha - hence the flag
|
||||
// rather than an unconditional doctoring. It is part of the sync memo, so a clear
|
||||
// followed by a draw re-pushes the mask instead of early-outing on an unchanged
|
||||
// frontend version.
|
||||
//
|
||||
// The application's own colour mask is never modified: glGet(GL_COLOR_WRITEMASK)
|
||||
// answers from the frontend state, which this function only reads.
|
||||
void SyncRenderState(Bool forColorClear = false);
|
||||
void InvalidateSyncedRenderState();
|
||||
} // namespace RenderStateImpl
|
||||
|
||||
extern MG_External::EGLFunctionsTable g_EGLFuncs;
|
||||
extern MG_External::GLESFunctionsTable g_GLESFuncs;
|
||||
extern MG_External::GLESCapabilities g_GLESCapabilities;
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -15,50 +15,132 @@
|
||||
#include "MG_State/GLState/TextureState/TextureEnum.h"
|
||||
#include <MG_State/GLState/TextureState/TextureObject.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES {
|
||||
String EmulateBaseInstanceInVertexShader(String source, GLenum shaderType);
|
||||
String PromoteDrawParameterGlobalsToUniforms(String source, GLenum shaderType);
|
||||
|
||||
// True once the process has entered exit(): past that point the EGL library and
|
||||
// the driver may already be unloaded, so a backend twin's destructor must not
|
||||
// call into g_GLESFuncs (the observed crash is a jump through an unmapped driver
|
||||
// pointer from __run_exit_handlers) nor touch statics in other TUs (cross-TU
|
||||
// destruction order is unspecified). Deliberate leak: the process is exiting and
|
||||
// the driver reclaims GPU objects. The flag is set by a std::atexit handler that
|
||||
// EnsureProcessTeardownSentinel() registers lazily on first registry use - by
|
||||
// then every static everywhere has finished constructing, so this handler is
|
||||
// guaranteed to run BEFORE any static destructor (atexit is LIFO). A destructor
|
||||
// hook on the registry itself was tried first and is WRONG: tests and cache
|
||||
// resets destroy temporary registry instances mid-run, which would latch the
|
||||
// flag while the process is very much alive.
|
||||
Bool InProcessTeardown();
|
||||
void EnsureProcessTeardownSentinel();
|
||||
|
||||
// Which optional pieces of state a draw needs synchronized before it is issued.
|
||||
// Index/indirect buffer syncs and the instancing-related work are skipped for
|
||||
// draws that provably cannot read them.
|
||||
enum class DrawSyncBit : Uint32 {
|
||||
None = 0,
|
||||
IndexBuffer = 1 << 0,
|
||||
IndirectBuffer = 1 << 1,
|
||||
Instancing = 1 << 2
|
||||
};
|
||||
// Deliberately the shared Flags<> rather than hand-written operators for this enum:
|
||||
// a namespace-local operator| here would hide MobileGL::operator|(Bit, Bit) from
|
||||
// every other scoped-enum flag set used inside this namespace.
|
||||
using DrawSyncFlags = Flags<DrawSyncBit>;
|
||||
|
||||
// The GL-defined indirect command layouts, byte-identical to what the driver reads
|
||||
// out of a GL_DRAW_INDIRECT_BUFFER. Also the staging layout the multi-draw emulation
|
||||
// synthesizes commands into.
|
||||
struct DrawElementsIndirectCommand {
|
||||
Uint32 count = 0;
|
||||
Uint32 instanceCount = 0;
|
||||
Uint32 firstIndex = 0;
|
||||
Int32 baseVertex = 0;
|
||||
Uint32 baseInstance = 0;
|
||||
};
|
||||
|
||||
struct DrawArraysIndirectCommand {
|
||||
Uint32 count = 0;
|
||||
Uint32 instanceCount = 0;
|
||||
Uint32 first = 0;
|
||||
Uint32 baseInstance = 0;
|
||||
};
|
||||
|
||||
// Brings the whole draw-relevant frontend state onto the native ES context and binds
|
||||
// the program; every GL draw entry point calls it exactly once before issuing draws.
|
||||
void PrepareForDraw(DrawSyncFlags syncBits);
|
||||
// GLES core supports only GL_PRIMITIVE_RESTART_FIXED_INDEX. Throws when the app enabled
|
||||
// the arbitrary GL_PRIMITIVE_RESTART with a non-fixed index for this index type.
|
||||
void CheckPrimitiveRestartSupported(GLenum indexType);
|
||||
// Feed the current program's gl_BaseInstance / gl_DrawID emulation uniforms. Both are
|
||||
// no-ops when the program does not read the corresponding builtin.
|
||||
void SetCurrentBaseInstance(Uint32 baseInstance);
|
||||
void SetCurrentDrawID(Uint32 drawId);
|
||||
// True when the current program actually reads gl_DrawID, i.e. when a batched
|
||||
// (single driver call) multi-draw tier would have to feed it one value for the whole
|
||||
// batch and would therefore be wrong.
|
||||
Bool CurrentProgramReadsDrawID();
|
||||
|
||||
template <typename StateObject, typename BackendObject>
|
||||
class StateBackendObjectRegistry {
|
||||
public:
|
||||
|
||||
using StatePtr = SharedPtr<StateObject>;
|
||||
using StateWeakPtr = std::weak_ptr<StateObject>;
|
||||
using BackendPtr = SharedPtr<BackendObject>;
|
||||
using BackendMap = UnorderedMap<StateObject*, BackendPtr>;
|
||||
using StateRefMap = UnorderedMap<StateObject*, StateWeakPtr>;
|
||||
|
||||
// The backend twin and the weak reference that decides whether the raw key still
|
||||
// names the state object the twin was built for. Both live in one entry: a
|
||||
// separate liveness map answered nothing the backend probe had not already found
|
||||
// and cost a second hash lookup on every Find, which the draw path runs ~10 times.
|
||||
struct Entry {
|
||||
BackendPtr backend;
|
||||
StateWeakPtr stateRef;
|
||||
};
|
||||
using BackendMap = UnorderedMap<StateObject*, Entry>;
|
||||
using iterator = typename BackendMap::iterator;
|
||||
using const_iterator = typename BackendMap::const_iterator;
|
||||
|
||||
BackendPtr& GetOrCreate(const StatePtr& stateObj) {
|
||||
MOBILEGL_ASSERT(stateObj != nullptr, "State object must not be null");
|
||||
|
||||
auto* key = stateObj.get();
|
||||
auto trackedStateIt = m_stateRefs.find(key);
|
||||
if (trackedStateIt != m_stateRefs.end() && trackedStateIt->second.expired()) {
|
||||
EraseByKey(key);
|
||||
// Twin creation is the moment a driver-owned id starts needing a guarded
|
||||
// destructor; cold path, so the once-guard costs nothing per draw.
|
||||
EnsureProcessTeardownSentinel();
|
||||
auto& entry = m_entries[stateObj.get()];
|
||||
if (entry.stateRef.expired()) {
|
||||
// The previous owner of this address is gone and the allocator handed it
|
||||
// to a new object: its twin describes ids the new state object never made.
|
||||
entry.backend.reset();
|
||||
}
|
||||
m_stateRefs[key] = stateObj;
|
||||
return m_backendObjects[key];
|
||||
entry.stateRef = stateObj;
|
||||
return entry.backend;
|
||||
}
|
||||
|
||||
iterator find(StateObject* stateObj) {
|
||||
if (!IsAlive(stateObj)) {
|
||||
EraseByKey(stateObj);
|
||||
return m_backendObjects.end();
|
||||
// Null when no live state object owns this key. The result points into the map, so
|
||||
// it stays valid only until the next GetOrCreate/Find/CollectGarbage on this registry.
|
||||
BackendPtr* Find(StateObject* stateObj) {
|
||||
const auto entryIt = m_entries.find(stateObj);
|
||||
if (entryIt == m_entries.end()) {
|
||||
return nullptr;
|
||||
}
|
||||
return m_backendObjects.find(stateObj);
|
||||
if (entryIt->second.stateRef.expired()) {
|
||||
m_entries.erase(entryIt);
|
||||
return nullptr;
|
||||
}
|
||||
return &entryIt->second.backend;
|
||||
}
|
||||
|
||||
const_iterator find(StateObject* stateObj) const {
|
||||
return const_cast<StateBackendObjectRegistry*>(this)->find(stateObj);
|
||||
const BackendPtr* Find(StateObject* stateObj) const {
|
||||
return const_cast<StateBackendObjectRegistry*>(this)->Find(stateObj);
|
||||
}
|
||||
|
||||
iterator begin() { return m_backendObjects.begin(); }
|
||||
const_iterator begin() const { return m_backendObjects.begin(); }
|
||||
iterator end() { return m_backendObjects.end(); }
|
||||
const_iterator end() const { return m_backendObjects.end(); }
|
||||
iterator begin() { return m_entries.begin(); }
|
||||
const_iterator begin() const { return m_entries.begin(); }
|
||||
iterator end() { return m_entries.end(); }
|
||||
const_iterator end() const { return m_entries.end(); }
|
||||
|
||||
void CollectGarbageIfNeeded() {
|
||||
++m_gcTick;
|
||||
@@ -72,19 +154,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
void CollectGarbageNow() { CollectGarbage(); }
|
||||
|
||||
private:
|
||||
bool IsAlive(StateObject* stateObj) const {
|
||||
const auto trackedStateIt = m_stateRefs.find(stateObj);
|
||||
if (trackedStateIt == m_stateRefs.end()) {
|
||||
return false;
|
||||
}
|
||||
return !trackedStateIt->second.expired();
|
||||
}
|
||||
|
||||
void EraseByKey(StateObject* stateObj) {
|
||||
m_stateRefs.erase(stateObj);
|
||||
m_backendObjects.erase(stateObj);
|
||||
}
|
||||
|
||||
void CollectGarbage() {
|
||||
if (m_isCollecting) {
|
||||
return;
|
||||
@@ -93,16 +162,15 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
m_isCollecting = true;
|
||||
|
||||
Vector<StateObject*> staleKeys;
|
||||
staleKeys.reserve(m_stateRefs.size());
|
||||
for (const auto& [stateKey, stateWeakRef] : m_stateRefs) {
|
||||
if (stateWeakRef.expired()) {
|
||||
staleKeys.reserve(m_entries.size());
|
||||
for (const auto& [stateKey, entry] : m_entries) {
|
||||
if (entry.stateRef.expired()) {
|
||||
staleKeys.push_back(stateKey);
|
||||
}
|
||||
}
|
||||
|
||||
for (auto* stateKey : staleKeys) {
|
||||
m_stateRefs.erase(stateKey);
|
||||
m_backendObjects.erase(stateKey);
|
||||
m_entries.erase(stateKey);
|
||||
}
|
||||
|
||||
m_isCollecting = false;
|
||||
@@ -110,8 +178,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
|
||||
private:
|
||||
static constexpr Uint32 kGCInterval = 1024;
|
||||
StateRefMap m_stateRefs;
|
||||
BackendMap m_backendObjects;
|
||||
BackendMap m_entries;
|
||||
Uint32 m_gcTick = 0;
|
||||
Bool m_isCollecting = false;
|
||||
};
|
||||
@@ -119,6 +186,43 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
namespace BufferImpl {
|
||||
const GLenum TempBufferTarget = GL_ARRAY_BUFFER;
|
||||
|
||||
// --- Buffer-mutation epoch -------------------------------------------------
|
||||
// Manager-wide monotonic counter: it moves whenever ANY buffer resource may
|
||||
// have gone from draw-clean to dirty. Draw-path memos read it once per pass
|
||||
// (CurrentBufferMutationEpoch, acquire), re-run their IsBufferDrawClean
|
||||
// probes only when it moved, and stamp the PRE-pass value after a pass in
|
||||
// which every probe came up clean - so a concurrent bump lands strictly
|
||||
// after the stamped value and forces a re-probe on the next pass no matter
|
||||
// how the probe interleaved with the mutation. Conservative-correct: a bump
|
||||
// never skips work, it only re-runs the probes once.
|
||||
//
|
||||
// Every clean->dirty transition path bumps it (BumpBufferMutationEpoch,
|
||||
// release, AFTER the mutation lands so an acquire reader that still sees
|
||||
// the old epoch cannot have missed the mutation):
|
||||
// * the frontend BufferBackendOps table - Respecify, SubData,
|
||||
// FlushMappedRange, AcquirePersistentMap, ReadbackFromGpu, OnDestroy -
|
||||
// which every frontend change-serial bump and every pending-range
|
||||
// queueing reaches while ops are registered (upload, orphan/respecify,
|
||||
// map flush/unmap writeback, persistent-map adoption, delete/pooling);
|
||||
// * backend-initiated shadow writebacks that bump the frontend change
|
||||
// serial without an op: transform-feedback capture readback
|
||||
// (XfbImpl::ReadbackCapturedRanges and the scatter path) and every
|
||||
// pack-PBO WritebackFromBackend site (glReadPixels/glGetTexImage);
|
||||
// * RegisterBufferBackendOps/UnregisterBufferBackendOps - while ops are
|
||||
// unregistered, frontend writes advance serials silently, so both edges
|
||||
// of that window re-open every memo;
|
||||
// * OnBackendContextDestroyed - the buffer context generation moved, so
|
||||
// every previously clean resource is invalid.
|
||||
// NOT bumped (cleanliness provably unchanged): MarkGpuWritten (the backend
|
||||
// copy is authoritative; IsBufferDrawClean does not consult it),
|
||||
// NotifyContentWrite on a GPU-resident buffer (persistent-mapped resources
|
||||
// are clean by construction), and EnsureBufferResource itself (it only
|
||||
// repairs toward clean). A non-persistent map (draws on it are GL errors
|
||||
// the frontend rejects) sets IsMapped without an op; persistent maps reach
|
||||
// AcquirePersistentMap or (FLUSH_EXPLICIT) publish only via FlushMappedRange.
|
||||
Uint64 CurrentBufferMutationEpoch();
|
||||
void BumpBufferMutationEpoch();
|
||||
|
||||
// The DirectGLES storage behind one frontend buffer. Owned (refcounted) by
|
||||
// the frontend BufferObject; immediate BufferBackendOps keep it current, so
|
||||
// draw-time "sync" reduces to ensuring the storage exists.
|
||||
@@ -144,6 +248,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Bool pendingRespecify = false;
|
||||
VecRange1D pendingRanges;
|
||||
std::mutex pendingMutex;
|
||||
// Buffer-mutation epoch (see CurrentBufferMutationEpoch) at which this
|
||||
// resource last probed IsBufferDrawClean == true, 0 = never (epochs start
|
||||
// at 1). Written only on the draw thread; per-draw resource consumers
|
||||
// (the UBO binding walk) skip the probe while their pre-pass epoch read
|
||||
// matches, exactly like the per-VAO memo stamps.
|
||||
Uint64 drawCleanEpoch = 0;
|
||||
// Zero-copy coherent persistent map (EXT_buffer_storage): the GL store is
|
||||
// immutable, persistently+coherently mapped, and persistentPtr is what the app
|
||||
// (and the frontend PipeResource) write into directly. While set, draw-time
|
||||
@@ -169,6 +279,17 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
GLESBufferResource* EnsureBufferResource(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject);
|
||||
// Existing resource or nullptr; performs no GL calls.
|
||||
GLESBufferResource* GetBufferResource(MG_State::GLState::BufferObject* bufferObject);
|
||||
// True when EnsureBufferResource(frontend) would provably fall straight through
|
||||
// every branch and do no work — i.e. `resource` is still the frontend's own
|
||||
// resource, its id belongs to the live ES context, and either it is the
|
||||
// zero-copy coherent persistent store (draw-time sync is a no-op by design) or
|
||||
// the storage is initialized at the right size with no pending ops and a synced
|
||||
// change serial while the buffer is not mapped (an active map may owe a
|
||||
// per-draw persistent-range push, so it always takes the full path).
|
||||
// `frontend` must be non-null and alive; the caller guarantees that by holding
|
||||
// (or shadowing something that holds) a SharedPtr to it. Enables the per-VAO
|
||||
// resolved-buffers memo to skip EnsureBufferResource on clean static buffers.
|
||||
Bool IsBufferDrawClean(const MG_State::GLState::BufferObject* frontend, const GLESBufferResource* resource);
|
||||
|
||||
// Deletes GL buffers whose owning frontend objects died (possibly on a
|
||||
// thread without a current ES context). Called from draw-time sync.
|
||||
@@ -177,6 +298,21 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
// glBindBuffer with a redundant-bind cache for GL_ARRAY_BUFFER.
|
||||
void BindBufferId(GLenum target, Uint id);
|
||||
void InvalidateArrayBufferBindingCache();
|
||||
// Redundant-bind caches for the driver-level GL_PIXEL_PACK/UNPACK_BUFFER
|
||||
// bindings. Every backend readback (glReadPixels / pack-PBO map) and pixel
|
||||
// upload site routes its binding through these so the shadow always matches
|
||||
// the driver; the resting state between operations is 0, which keeps any
|
||||
// path that implicitly assumes "no PBO bound" correct. Scrubbed when a
|
||||
// buffer id is deleted/pooled (GL resets a deleted buffer's bindings to 0,
|
||||
// and a recycled name matching the shadow would false-skip the rebind) and
|
||||
// invalidated on MakeCurrent (context may reset).
|
||||
void BindPixelPackBufferId(Uint id);
|
||||
void BindPixelUnpackBufferId(Uint id);
|
||||
void InvalidatePixelBufferBindingCaches();
|
||||
// A GL buffer id is being deleted by code outside BufferImpl (e.g. the VAO
|
||||
// client-attribute staging buffers): scrub every buffer-binding shadow that
|
||||
// could false-skip when the name is recycled.
|
||||
void NoteBufferIdDeleted(Uint id);
|
||||
// Redundant-bind cache for INDEXED buffer bindings (glBindBufferBase/Range on
|
||||
// GL_UNIFORM_BUFFER / GL_SHADER_STORAGE_BUFFER): skips the GL call when the
|
||||
// (id, range) already at that index matches, like the array-buffer/texture/
|
||||
@@ -239,27 +375,137 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Uint GetBackendVertexArrayId() const { return m_backendVAOId; }
|
||||
void Bind() const;
|
||||
|
||||
// Draw-path memo of SyncNeccessaryBuffers' attribute walk for this VAO: the
|
||||
// distinct enabled-attribute buffers (deduped) and the index buffer, resolved
|
||||
// to their backend resources once. Valid while the VAO's config version is
|
||||
// unchanged — every attach/enable/disable/format mutation bumps it (the same
|
||||
// invariant SyncToBackend's gate already leans on), and the VAO's attribute
|
||||
// SharedPtrs pin each memoed frontend buffer for exactly that long, so the raw
|
||||
// pointers cannot dangle on a hit. Per-buffer cleanliness is NOT memoed here:
|
||||
// each hit re-checks IsBufferDrawClean (resource identity, context generation,
|
||||
// pending ops, change serial) and falls back to EnsureBufferResource for just
|
||||
// the dirty entries via their attribute index. The IBO entry is keyed on the
|
||||
// slot's bound-object identity instead (its slot version is a wrapping Uint16
|
||||
// and is not covered by the config version).
|
||||
struct ResolvedDrawBuffers {
|
||||
struct Entry {
|
||||
MG_State::GLState::BufferObject* frontend = nullptr;
|
||||
BufferImpl::GLESBufferResource* resource = nullptr;
|
||||
Uint8 attribIndex = 0;
|
||||
};
|
||||
Bool valid = false;
|
||||
Uint32 configVersion = 0;
|
||||
Uint count = 0;
|
||||
Array<Entry, MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS> entries;
|
||||
MG_State::GLState::BufferObject* iboFrontend = nullptr;
|
||||
BufferImpl::GLESBufferResource* iboResource = nullptr;
|
||||
// Buffer-mutation epoch (BufferImpl::CurrentBufferMutationEpoch) at which
|
||||
// the LAST probe pass found every entry / the IBO clean; 0 = not stamped
|
||||
// (epochs start at 1). While a stamp matches the pre-pass epoch read, the
|
||||
// probes are skipped outright: any path that can dirty ANY buffer bumps
|
||||
// the epoch (the exhaustive site list lives at the epoch declaration).
|
||||
// The IBO stamp is only trusted together with the bound-object identity
|
||||
// compare - the VAO's index slot can rebind with no epoch or config move.
|
||||
Uint64 vboCleanEpoch = 0;
|
||||
Uint64 iboCleanEpoch = 0;
|
||||
};
|
||||
ResolvedDrawBuffers& GetResolvedDrawBuffersMemo() { return m_resolvedDrawBuffers; }
|
||||
|
||||
// Memo for SyncCurrentVertexAttributeValues: which of a program's ACTIVE
|
||||
// attribute locations lack an enabled array in this VAO (those read the
|
||||
// context's current generic value instead of a buffer). Keyed on the VAO
|
||||
// config version (enable/disable bumps it) and the program's active-location
|
||||
// mask. Hosted per twin — the former function-static single entry missed on
|
||||
// every draw once the app cycled VAOs, re-reading the cold attribute slots.
|
||||
struct PendingAttribValueMask {
|
||||
Bool valid = false;
|
||||
Uint32 configVersion = 0;
|
||||
Uint32 activeMask = 0;
|
||||
Uint32 pendingMask = 0;
|
||||
};
|
||||
PendingAttribValueMask& GetPendingAttribValueMaskMemo() { return m_pendingAttribValueMask; }
|
||||
|
||||
private:
|
||||
ResolvedDrawBuffers m_resolvedDrawBuffers;
|
||||
PendingAttribValueMask m_pendingAttribValueMask;
|
||||
Uint m_backendVAOId = 0;
|
||||
Array<Uint, MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS> m_clientAttributeBufferIds;
|
||||
Bool m_isInitialized = false;
|
||||
Uint16 m_syncedIndexBufferVersion = 0;
|
||||
// Aggregate gate over the per-attribute walk below: the frontend bumps its config
|
||||
// version on every per-attribute version bump (the three Bump*Version functions are
|
||||
// its only writers), so an unchanged config version proves every per-attribute
|
||||
// compare in SyncToBackend would come up clean. The index-buffer slot has its own
|
||||
// version and is NOT covered. The Bool (not a sentinel value) marks "never synced".
|
||||
Bool m_hasSyncedConfigVersion = false;
|
||||
Uint32 m_syncedConfigVersion = 0;
|
||||
Array<MG_State::GLState::VertexAttributeVersion, MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS>
|
||||
m_syncedAttributeVersions;
|
||||
};
|
||||
|
||||
extern StateBackendObjectRegistry<MG_State::GLState::VertexArrayObject, BackendVertexArrayObject>
|
||||
g_backendVertexArrayObjects;
|
||||
|
||||
// Shadowed glBindVertexArray: every backend VAO bind goes through here so a
|
||||
// draw's second bind of the same VAO (SyncToBackend, then PrepareForDraw's
|
||||
// re-bind) reaches the driver once. Invalidate whenever the ES context is
|
||||
// replaced - ids restart and the resting binding is 0 again.
|
||||
void BindBackendVAOId(Uint id);
|
||||
void InvalidateVAOBindingCache();
|
||||
// ES resets the binding to 0 when the currently bound VAO is deleted.
|
||||
void NoteVAOIdDeleted(Uint id);
|
||||
} // namespace VertexArrayImpl
|
||||
|
||||
namespace TextureImpl {
|
||||
inline Bool IsSupportedTextureTarget(TextureTarget target) {
|
||||
if (target == TextureTarget::Texture1D || target == TextureTarget::TextureRectangle ||
|
||||
target == TextureTarget::Texture1DArray || target == TextureTarget::Texture2DArray)
|
||||
return false;
|
||||
// Every desktop-only target is stored on an ES one; see MapToBackendTextureTarget.
|
||||
(void)target;
|
||||
return true;
|
||||
}
|
||||
|
||||
// ES has none of the desktop-only targets: 1D textures are stored as 2D (height 1), 1D
|
||||
// arrays as 2D arrays (height 1, layers in depth), and rectangle textures as plain 2D -
|
||||
// they are single-level and already clamp, so only the non-normalized coordinates differ.
|
||||
// Must match the shader-side emulation: SPIRV-Cross handles 1D/1D-array itself, and
|
||||
// ShaderCompiler::LowerRectImages rewrites rectangle images (declining any module
|
||||
// whose lookups are not integer-coordinate, which SPIRV-Cross then still rejects).
|
||||
inline TextureTarget MapToBackendTextureTarget(TextureTarget target) {
|
||||
switch (target) {
|
||||
case TextureTarget::Texture1D:
|
||||
case TextureTarget::TextureRectangle:
|
||||
return TextureTarget::Texture2D;
|
||||
case TextureTarget::Texture1DArray:
|
||||
return TextureTarget::Texture2DArray;
|
||||
default:
|
||||
return target;
|
||||
}
|
||||
}
|
||||
|
||||
inline GLenum ConvertTextureTargetToBackendGLEnum(TextureTarget target) {
|
||||
return MG_Util::ConvertTextureTargetToGLEnum(MapToBackendTextureTarget(target));
|
||||
}
|
||||
|
||||
inline GLenum ConvertTextureUploadTargetToBackendGLEnum(TextureUploadTarget uploadTarget) {
|
||||
switch (uploadTarget) {
|
||||
case TextureUploadTarget::Texture1D:
|
||||
case TextureUploadTarget::TextureRectangle:
|
||||
return GL_TEXTURE_2D;
|
||||
case TextureUploadTarget::Texture1DArray:
|
||||
return GL_TEXTURE_2D_ARRAY;
|
||||
default:
|
||||
return MG_Util::ConvertTextureUploadTargetToGLEnum(uploadTarget);
|
||||
}
|
||||
}
|
||||
|
||||
// 1D arrays store layers in the state-side height; the ES 2D-array image keeps height 1 and
|
||||
// moves the layer count into depth.
|
||||
inline IntVec3 GetBackendUploadSize(TextureTarget stateTarget, const IntVec3& texelSize) {
|
||||
if (stateTarget == TextureTarget::Texture1DArray) {
|
||||
return {texelSize.x(), 1, texelSize.y()};
|
||||
}
|
||||
return texelSize;
|
||||
}
|
||||
|
||||
inline Bool IsMultisampleTextureTarget(TextureTarget target) {
|
||||
return target == TextureTarget::Texture2DMultisample ||
|
||||
target == TextureTarget::Texture2DMultisampleArray;
|
||||
@@ -269,6 +515,25 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return target == TextureTarget::Texture3D || target == TextureTarget::TextureCubeMap;
|
||||
}
|
||||
|
||||
// Components per texel the frontend format's client data carries, for the three-channel
|
||||
// formats that can be widened to a four-channel colour-renderable target; 0 for everything
|
||||
// else. See PrepareChannelWidenedUpload.
|
||||
Uint GetWidenableClientComponentCount(TextureInternalFormat format);
|
||||
|
||||
// True when a widenable format's components are integer rather than normalized, which is
|
||||
// what decides the synthetic alpha's value: GL_RGB8I and GL_RGB8_SNORM are both uploaded
|
||||
// as GL_BYTE, but their 1.0 is 1 and 0x7F respectively.
|
||||
Bool IsIntegerWidenableFormat(TextureInternalFormat format);
|
||||
|
||||
// Repacks three-component client data as four components with an alpha of 1.0 in
|
||||
// `uploadType`, for a format the backend widened to keep a colour attachment renderable.
|
||||
// Returns `data` untouched when no widening applies. Pure CPU and context-free so a unit
|
||||
// test can exercise the exact packing the driver is handed; `widenedData` is the caller's
|
||||
// scratch buffer and has to outlive the returned pointer.
|
||||
const void* PrepareChannelWidenedUpload(Uint componentCount, const IntVec3& texelSize, const void* data,
|
||||
SizeT byteSize, GLenum uploadType, Vector<Uint8>& widenedData,
|
||||
Bool integerData = false);
|
||||
|
||||
struct StateTextureBasicInfo { // Used for tracking texture state changes
|
||||
TextureInternalFormat internalFormat = TextureInternalFormat::Unknown;
|
||||
SizeT width = 0;
|
||||
@@ -293,6 +558,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
class BackendTextureObject {
|
||||
public:
|
||||
BackendTextureObject();
|
||||
// Deletes the GL texture (frontend glDeleteTextures used to leak every
|
||||
// backend id for the context lifetime) and scrubs the binding/scratch-FBO
|
||||
// shadows so a recycled name or heap address cannot false-skip a rebind.
|
||||
~BackendTextureObject();
|
||||
BackendTextureObject(const BackendTextureObject&) = delete;
|
||||
BackendTextureObject& operator=(const BackendTextureObject&) = delete;
|
||||
void SyncMipmapsToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
|
||||
void SyncBuiltinSamplerToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
|
||||
void SyncTextureParamsToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
|
||||
@@ -300,14 +571,68 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
void Bind(GLenum target, Uint unit = TempTextureUnit);
|
||||
Uint GetBackendTextureId() const;
|
||||
|
||||
// Aggregate first-level clean gate for the per-draw trio
|
||||
// SyncTextureParamsToBackend + SyncBuiltinSamplerToBackend +
|
||||
// SyncMipmapsToBackend: EXACTLY the conjunction of their own early-outs
|
||||
// (params version == synced params version; builtin-sampler version ==
|
||||
// synced sampler version; and SyncMipmapsToBackend's cheap gate - stamped
|
||||
// trio + content version + Mipmap storage). True means each of the three
|
||||
// would provably return without work, so the caller may skip the calls;
|
||||
// false only falls through to the three calls, whose own gates re-decide
|
||||
// individually - this gate must never be MORE permissive than they are.
|
||||
// `contextId`/`samplingGeneration` are the frontend context's current
|
||||
// values, hoisted by the caller so a per-draw list walk reads them once
|
||||
// instead of per texture. `t` must be the live frontend texture.
|
||||
Bool IsDrawSyncClean(const MG_State::GLState::ITextureObject* t, Uint64 contextId,
|
||||
Uint64 samplingGeneration) const {
|
||||
if (!m_isInitialized || m_syncedShapeContextId == 0 || m_syncedShapeContextId != contextId ||
|
||||
m_syncedShapeGeneration != samplingGeneration) {
|
||||
return false;
|
||||
}
|
||||
const Uint16 paramsVersion = t->GetTextureParamsVersion();
|
||||
if (m_syncedShapeParamsVersion != paramsVersion || m_syncedTextureParamsVersion != paramsVersion) {
|
||||
return false;
|
||||
}
|
||||
if (m_syncedContentVersion == 0 || m_syncedContentVersion != t->GetContentVersion()) {
|
||||
return false;
|
||||
}
|
||||
const auto& samplerObject = t->GetSamplerObject();
|
||||
if (!samplerObject || m_syncedSamplerVersion != samplerObject->GetVersion()) {
|
||||
return false;
|
||||
}
|
||||
return t->GetStorageType() == TextureStorageType::Mipmap;
|
||||
}
|
||||
|
||||
private:
|
||||
void RecreateBackendTexture();
|
||||
|
||||
Uint m_backendTextureId = 0;
|
||||
// ES context generation the id was created under; a dtor running after
|
||||
// that context died must not delete a foreign (recycled) name.
|
||||
Uint m_contextGeneration = 0;
|
||||
Bool m_isInitialized = false;
|
||||
Bool m_imageBindableStorageRequired = false;
|
||||
Bool m_backendStorageImmutable = false;
|
||||
StateTextureBasicInfo m_prevTextureInfo;
|
||||
// Frontend content version at the last completed mipmap sync. The per-draw
|
||||
// clean probe compares this before rebuilding shape info and scanning
|
||||
// per-level dirty flags; 0 never matches a real version (they start at 1).
|
||||
Uint64 m_syncedContentVersion = 0;
|
||||
// First-level clean gate for SyncMipmapsToBackend, checked before even the
|
||||
// IsComplete()/shape-probe walk. Valid only as a trio with the content and
|
||||
// texture-params versions: the context's sampling-resolution generation moves on
|
||||
// EVERY texture-shape mutation (BumpShapeVersion is the only writer of shape and
|
||||
// unconditionally bumps it), the content version on every CPU pixel mutation, and
|
||||
// the params version covers SetSamples/SetFixedSampleLocations, which bump neither
|
||||
// of the other two but feed the shape probe. The context id pins the generation to
|
||||
// the context that produced it - generations restart at 0 with a new context, and a
|
||||
// texture is owned by exactly one context (share groups are not implemented), so a
|
||||
// mutation can never happen under a context this key does not name. 0 = never
|
||||
// stamped (real context ids start at 1). Backend-side invalidation rides on
|
||||
// m_isInitialized: RequireImageBindableStorage and RecreateBackendTexture clear it.
|
||||
Uint64 m_syncedShapeContextId = 0;
|
||||
Uint64 m_syncedShapeGeneration = 0;
|
||||
Uint16 m_syncedShapeParamsVersion = 0;
|
||||
SamplerParameters m_cacheSamplerParameters;
|
||||
UintVec2 m_cacheLodRange = {0, 1000};
|
||||
FloatVec4 m_cacheBorderColor = {0.0f, 0.0f, 0.0f, 0.0f};
|
||||
@@ -324,10 +649,17 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
SharedPtr<BackendTextureObject>& SyncTextureObjectToBackend(
|
||||
const SharedPtr<MG_State::GLState::ITextureObject>& textureObject,
|
||||
Bool imageBindableStorageRequired = false);
|
||||
// Brings every texture the next draw reads - the touched units' bindings and the draw
|
||||
// FBO's texture attachments - onto the backend, through the two borrowed-pair memos
|
||||
// documented at their definitions. Declared here so tests can drive those memos directly.
|
||||
void SyncNeccessaryTextures();
|
||||
extern Array<Array<BackendTextureObject*, (SizeT)TextureTarget::TextureTargetCount>,
|
||||
MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS>
|
||||
g_boundTexturesCache;
|
||||
extern Uint g_activeTextureUnit;
|
||||
// Bumped when the backend ES context is destroyed; texture ids stamped with
|
||||
// an older generation belong to a dead context and must not be deleted.
|
||||
extern Uint g_textureContextGeneration;
|
||||
} // namespace TextureImpl
|
||||
|
||||
namespace FramebufferImpl {
|
||||
@@ -336,6 +668,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
BackendFramebufferObject();
|
||||
void SyncToBackend(const SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject,
|
||||
FramebufferTarget asTarget);
|
||||
// Apply only this FBO's read buffer (glReadBuffer) to the backend. Split out so it can
|
||||
// still run when SyncCurrentFBO skips the READ-target sync because the same GL FBO is
|
||||
// bound as both draw and read (otherwise glReadBuffer changes would be silently dropped).
|
||||
void SyncReadBufferToBackend(const SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject);
|
||||
void InvalidateSyncedState();
|
||||
Uint GetBackendFramebufferId() const { return m_backendFBOId; }
|
||||
void Bind(FramebufferTarget target) const;
|
||||
@@ -359,6 +695,28 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
this array could be provided as data directly to ES `glDrawBuffers` function
|
||||
*/
|
||||
GLenum m_backendDrawBuffers[MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS] = {GL_NONE};
|
||||
|
||||
static constexpr Uint MAX_COLOR_ATTACHMENT_SLOTS =
|
||||
static_cast<Uint>(FramebufferAttachmentType::Color31) -
|
||||
static_cast<Uint>(FramebufferAttachmentType::Color0) + 1;
|
||||
/* Where each frontend GL_COLOR_ATTACHMENTn image physically lives in the backend ES
|
||||
framebuffer, as a GL_COLOR_ATTACHMENTm enum. ES only accepts glDrawBuffers bufs[s] ==
|
||||
GL_COLOR_ATTACHMENTs, so a GL draw-buffer slot s naming attachment a forces a's image
|
||||
under backend slot s. This table is the single owner of that decision and is kept a
|
||||
PERMUTATION of the backend colour slots: every other attachment keeps its identity
|
||||
slot when that slot survived, and is parked on the lowest free slot when it did not.
|
||||
Deriving the point per-query from the draw-buffer array instead handed the identity
|
||||
point to any attachment that was not a draw buffer - i.e. exactly the point a
|
||||
relocated draw buffer had just taken over. The permutation is only true of the
|
||||
PHYSICAL framebuffer because the attachment loop detaches a point whose frontend
|
||||
owner is empty; do not remove that detach. */
|
||||
GLenum m_backendColorSlots[MAX_COLOR_ATTACHMENT_SLOTS] = {GL_NONE};
|
||||
/* Rebuild m_backendColorSlots from the frontend draw-buffer array. Returns true when any
|
||||
attachment moved, i.e. when the physical attachments and the memoised read buffer have
|
||||
to be re-applied. */
|
||||
Bool RecomputeBackendColorSlots(
|
||||
const MG_State::GLState::FramebufferObject::FramebufferAttachmentArray& stateDrawBuffers);
|
||||
|
||||
FramebufferAttachmentType m_frontendReadBuffer = FramebufferAttachmentType::Color0;
|
||||
GLenum m_backendReadBuffer = GL_COLOR_ATTACHMENT0;
|
||||
|
||||
@@ -368,9 +726,187 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
|
||||
extern StateBackendObjectRegistry<MG_State::GLState::FramebufferObject, BackendFramebufferObject>
|
||||
g_backendFramebufferObjects;
|
||||
extern Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboBindVersions;
|
||||
// True when the read buffer names a fixed-point (norm/snorm) attachment that the
|
||||
// backend actually stores in a floating-point format. GL clamps a read from a
|
||||
// fixed-point colour buffer to [0,1] (GL_CLAMP_READ_COLOR defaults to
|
||||
// GL_FIXED_ONLY); the substituted float storage would not, so the readback path
|
||||
// has to apply the clamp itself.
|
||||
Bool IsFixedPointFallbackReadAttachment();
|
||||
|
||||
// True when the read buffer names a three-channel attachment the backend actually stores
|
||||
// in a four-channel format (the colour-renderable widening). A format without alpha reads
|
||||
// back as 1.0, so the readback path has to overwrite the alpha the draw left behind -
|
||||
// unconditionally, since this is the format's own semantics rather than the
|
||||
// GL_CLAMP_READ_COLOR rule the clamp above implements.
|
||||
Bool IsAlphaWidenedFallbackReadAttachment();
|
||||
|
||||
// True when this attachment's storage carries an alpha channel its frontend format does
|
||||
// not (the three-channel colour-renderable widening).
|
||||
Bool IsAlphaWidenedColorAttachment(const MG_State::GLState::FramebufferAttachmentObject& attachmentObject);
|
||||
|
||||
// Bit i set = DRAW BUFFER i of `fbo` resolves to a colour attachment the backend widened
|
||||
// from three channels to four. Indexed by draw-buffer slot, not by attachment point,
|
||||
// because that is what glColorMaski / glClearBufferfv address.
|
||||
Uint32 ComputeAlphaWidenedDrawBufferMask(const MG_State::GLState::FramebufferObject& fbo);
|
||||
|
||||
// The same mask for whatever is currently bound to GL_DRAW_FRAMEBUFFER, recomputed by
|
||||
// SyncCurrentFBO (BackendFramebufferObject::SyncToBackend for the DRAW target, and reset
|
||||
// to 0 on the default framebuffer). Read by the draw/clear state sync, so it is only
|
||||
// trustworthy after SyncCurrentFBO has run in the same entry point.
|
||||
//
|
||||
// WHY IT EXISTS (the dst-alpha discipline). A widened attachment has a real alpha channel
|
||||
// the application's format does not, and GL says a missing channel reads as 1.0. Readback
|
||||
// can paper over that (ForceWideReadAlphaToOne), but GL_DST_ALPHA /
|
||||
// GL_ONE_MINUS_DST_ALPHA blending and glBlitFramebuffer read the STORED alpha inside the
|
||||
// driver where no interception is possible. So the stored alpha is kept at 1.0 instead:
|
||||
// a clear touching a widened buffer writes alpha 1.0, and every draw into it has its
|
||||
// alpha write mask forced off, so nothing can ever move it again. The application's own
|
||||
// colour mask is untouched - glGet(GL_COLOR_WRITEMASK) still reports what it set.
|
||||
extern Uint32 g_alphaWidenedDrawBufferMask;
|
||||
|
||||
// Bit i set = DRAW BUFFER i of the framebuffer bound as DRAW resolves to a colour
|
||||
// attachment with an INTEGER format. Recomputed beside the mask above and for its sake:
|
||||
// glClearBufferfv on an integer colour buffer is GL_INVALID_OPERATION, so the
|
||||
// per-draw-buffer clear route the widening needs has to stand down when one is present.
|
||||
// (glClear on an integer colour buffer is left undefined by ES in the first place, and
|
||||
// an application that wants a defined answer has to call glClearBufferuiv/iv - which does
|
||||
// carry the widened alpha substitution.)
|
||||
extern Uint32 g_integerColorDrawBufferMask;
|
||||
|
||||
// The colour a clear has to hand the driver for one draw buffer: the application's value,
|
||||
// except that a widened attachment's alpha is replaced by the 1.0 its three-channel
|
||||
// format implies. `one` is 1.0 encoded in the clear call's own component type - the
|
||||
// integer clears carry the integer 1, the float clear carries 1.0f.
|
||||
//
|
||||
// Returns `value` itself when nothing is substituted, so the ordinary path allocates and
|
||||
// copies nothing; `scratch` is the caller's buffer and has to outlive the returned
|
||||
// pointer. Free of GL state on purpose, so the substitution can be unit-tested exactly as
|
||||
// the driver sees it.
|
||||
template <typename T>
|
||||
const T* SubstituteWidenedClearAlpha(const T* value, Bool widened, T one, T (&scratch)[4]) {
|
||||
if (!widened || value == nullptr) {
|
||||
return value;
|
||||
}
|
||||
scratch[0] = value[0];
|
||||
scratch[1] = value[1];
|
||||
scratch[2] = value[2];
|
||||
scratch[3] = one;
|
||||
return scratch;
|
||||
}
|
||||
|
||||
// What SyncCurrentFBO last pushed for each target, as a (binding, object, revision)
|
||||
// triple; it re-syncs unless all three still match. Stamped by SyncCurrentFBO and
|
||||
// ForceBindCurrentFBO, cleared by InvalidateFramebufferBindingCache. The three are
|
||||
// only meaningful together - see SyncCurrentFBO.
|
||||
//
|
||||
// The binding slot's own version, which changes whenever a different object is bound
|
||||
// to this target. Distinguishes a rebind from an in-place edit, and keeps the raw
|
||||
// pointer below from matching an address the allocator recycled for a new FBO.
|
||||
extern Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboSyncedSlotVersions;
|
||||
// Tracks the bound FBO's object version (bumped on any attachment/drawbuffer change)
|
||||
// per target: re-attaching textures or changing draw buffers on an already-bound FBO
|
||||
// must re-sync it even when the binding-slot version has not moved.
|
||||
extern Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboSyncedObjectVersions;
|
||||
// Which object was synced. Raw and never dereferenced: only compared for identity.
|
||||
extern Array<MG_State::GLState::FramebufferObject*, SizeT(FramebufferTarget::FramebufferTargetCount)>
|
||||
g_fboSyncedObjects;
|
||||
|
||||
// Driver-level READ/DRAW framebuffer-binding shadow. Every backend
|
||||
// glBindFramebuffer routes through BindFramebufferId so scoped helpers can
|
||||
// save/restore the current binding without a glGetIntegerv round-trip (that
|
||||
// query forces a driver pipeline sync) and so redundant rebinds no-op.
|
||||
// Starts unknown; the first CurrentFramebufferBinding() query pins it from
|
||||
// the driver once. Invalidated on MakeCurrent (context may reset).
|
||||
// GL_FRAMEBUFFER binds both targets.
|
||||
void BindFramebufferId(GLenum fbTarget, Uint id);
|
||||
Uint CurrentFramebufferBinding(FramebufferTarget target);
|
||||
void InvalidateFramebufferBindingCache();
|
||||
} // namespace FramebufferImpl
|
||||
|
||||
// Shared scratch framebuffers for the readback/copy/blit emulation paths, with a
|
||||
// driver-side attachment shadow: repeated uses skip redundant detach/attach GL
|
||||
// calls, and an attachment left by one use (e.g. a depth copy's DEPTH_STENCIL
|
||||
// texture) is detached exactly when a later use of another aspect would
|
||||
// otherwise inherit it (stale cross-aspect attachments made the shared temp FBO
|
||||
// incomplete and silently degraded later readbacks).
|
||||
namespace ScratchFBOImpl {
|
||||
struct ScratchFramebuffer {
|
||||
Uint id = 0;
|
||||
// false => attachment state unknown; scrub every point on next use.
|
||||
// A fresh FBO starts with nothing attached, so creation sets it true.
|
||||
Bool attachmentsKnown = false;
|
||||
Uint colorTex = 0;
|
||||
GLenum colorTarget = 0;
|
||||
GLint colorLevel = 0;
|
||||
GLint colorLayer = -1; // >= 0 => attached via glFramebufferTextureLayer
|
||||
Uint depthTex = 0;
|
||||
GLenum depthTarget = 0;
|
||||
GLint depthLevel = 0;
|
||||
Bool depthHasStencil = false;
|
||||
// Per-FBO read/draw buffer state (0 = unknown, set on first use).
|
||||
GLenum readBuffer = 0;
|
||||
GLenum drawBuffer = 0;
|
||||
};
|
||||
ScratchFramebuffer& TempFramebuffer(); // GetTexImage READ / CopyTex*Image2D depth DRAW
|
||||
ScratchFramebuffer& BlitReadFramebuffer(); // texture-to-texture blit source
|
||||
ScratchFramebuffer& BlitDrawFramebuffer(); // texture-to-texture blit destination
|
||||
// Returns the GL id, generating it if needed (requires a current ES context).
|
||||
Uint EnsureId(ScratchFramebuffer& fb);
|
||||
// The fb must currently be bound at fbTarget (glReadBuffer/glDrawBuffers
|
||||
// target the READ/DRAW binding respectively). Each Ensure* performs the
|
||||
// minimal detach/attach set and keeps the shadow in sync; a failed attach
|
||||
// records the point as detached so the completeness check fails instead of
|
||||
// silently reading a stale attachment.
|
||||
void EnsureColorAttachment2D(ScratchFramebuffer& fb, GLenum fbTarget, Uint tex, GLenum texTarget, GLint level);
|
||||
void EnsureColorAttachmentLayer(ScratchFramebuffer& fb, GLenum fbTarget, Uint tex, GLint level, GLint layer);
|
||||
void EnsureDepthAttachment2D(ScratchFramebuffer& fb, GLenum fbTarget, Uint tex, GLenum texTarget, GLint level,
|
||||
Bool withStencil);
|
||||
void EnsureNoColorAttachment(ScratchFramebuffer& fb, GLenum fbTarget);
|
||||
void EnsureNoDepthAttachment(ScratchFramebuffer& fb, GLenum fbTarget);
|
||||
void EnsureReadBuffer(ScratchFramebuffer& fb, GLenum readBuffer);
|
||||
void EnsureDrawBuffer(ScratchFramebuffer& fb, GLenum drawBuffer);
|
||||
// A 1x1 RGBA8-renderbuffer-complete FBO (GenerateMipmap needs a complete
|
||||
// binding while respecifying texture storage). Attachment is set once at
|
||||
// creation and never changes.
|
||||
Uint EnsureCompleteTinyFramebufferId();
|
||||
// A backend texture id is being deleted or respecified: a scratch FBO still
|
||||
// referencing it would hold a dangling attachment (ES only auto-detaches
|
||||
// from the *bound* framebuffer), and a recycled name could false-skip a
|
||||
// re-attach; force a full scrub on next use.
|
||||
void NoteTextureIdDeleted(Uint textureId);
|
||||
// The ES context (and the scratch FBO ids with it) is going away.
|
||||
void OnBackendContextDestroyed();
|
||||
} // namespace ScratchFBOImpl
|
||||
|
||||
// Driver-level GL_PACK_* pixel-store shadow, the readback-side sibling of the
|
||||
// upload path's ScopedDefaultUnpackState (Managers.cpp): the backend PACK state
|
||||
// is written ONLY through ApplyPackState, so scoped helpers can save/restore it
|
||||
// from the shadow instead of glGetIntegerv (which forces a driver pipeline
|
||||
// sync), and redundant glPixelStorei calls no-op. The first Apply/Current call
|
||||
// pins the driver to the shadow by writing all fields once. Invalidated on
|
||||
// MakeCurrent (context may reset). PACK_IMAGE_HEIGHT/SKIP_IMAGES/SWAP_BYTES/
|
||||
// LSB_FIRST have no ES equivalents; readbacks honor them on the CPU from the
|
||||
// frontend context state instead.
|
||||
namespace PixelStoreImpl {
|
||||
struct PackState {
|
||||
GLint Alignment = 4;
|
||||
GLint RowLength = 0;
|
||||
GLint SkipRows = 0;
|
||||
GLint SkipPixels = 0;
|
||||
Bool operator==(const PackState& o) const {
|
||||
return Alignment == o.Alignment && RowLength == o.RowLength && SkipRows == o.SkipRows &&
|
||||
SkipPixels == o.SkipPixels;
|
||||
}
|
||||
};
|
||||
void ApplyPackState(const PackState& desired);
|
||||
PackState CurrentPackState();
|
||||
void InvalidatePackStateCache();
|
||||
} // namespace PixelStoreImpl
|
||||
|
||||
namespace SamplerImpl {
|
||||
class BackendSamplerObject; // for PrgramImpl's sampler-pass memo rows below
|
||||
}
|
||||
|
||||
// Image uniforms take their unit from the layout(binding=N) qualifier baked into
|
||||
// the transpiled ESSL; unlike samplers they must not (and in ES cannot) be
|
||||
// assigned through glUniform1i.
|
||||
@@ -409,6 +945,49 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Int backendLocation = -1;
|
||||
GLenum uniformType = 0;
|
||||
Int lastAssignedUnit = -1;
|
||||
// Location of this sampler's emulated GL_TEXTURE_LOD_BIAS uniform
|
||||
// (PrgramImpl::EmulateTextureLodBias), -1 when the shader has none.
|
||||
// lastAssignedLodBias mirrors the value the program currently holds,
|
||||
// so an unbiased shader issues no per-draw glUniform1f at all.
|
||||
Int lodBiasLocation = -1;
|
||||
Float lastAssignedLodBias = 0.0f;
|
||||
};
|
||||
|
||||
// Memo of the whole per-draw sampler-uniform pass (glUniform1i unit
|
||||
// assignments, lod-bias uniform, raw-depth-fetch substitution and the
|
||||
// per-unit sampler-object binds) in BindCurrentProgramWithResources.
|
||||
// The pass is a pure function of the keys below, and its only driver-side
|
||||
// effect is the sampler binding of each sampled unit, so replaying it as
|
||||
// "do nothing" additionally requires those bindings to still be on the
|
||||
// driver - the per-entry row compare against g_boundSamplersCache (the
|
||||
// shadow every sampler bind in this backend already routes through).
|
||||
//
|
||||
// Invalidation enumeration:
|
||||
// * sampler-uniform unit assignment (glUniform1i) and uniform-block
|
||||
// binding edits -> frontend backendStateVersion;
|
||||
// * any texture/sampler bind moving on any unit (incl. the high-water
|
||||
// mark moving) -> unitBindingsEpoch;
|
||||
// * any sampler parameter (incl. lod bias, compare mode) or texture
|
||||
// shape/format change -> samplingGeneration;
|
||||
// * another frontend context -> contextId (never-reused id);
|
||||
// * ES context recreation -> textureContextGeneration;
|
||||
// * relink / backend program rebuild -> SyncToBackend resets `valid`
|
||||
// (it rebuilds m_samplerUniformBindings, whose lastAssignedUnit /
|
||||
// lastAssignedLodBias dedup state this memo leans on);
|
||||
// * any other writer moving a sampled unit's sampler binding
|
||||
// (BindCurrentUnitSamplers on a unit-sampler change, scratch binds)
|
||||
// -> the row snapshot compare.
|
||||
struct SamplerPassMemo {
|
||||
static constexpr SizeT kMaxEntries = 16;
|
||||
Bool valid = false;
|
||||
Uint8 count = 0;
|
||||
Uint64 contextId = 0;
|
||||
Uint64 unitBindingsEpoch = 0;
|
||||
Uint64 samplingGeneration = 0;
|
||||
Uint32 backendStateVersion = 0;
|
||||
Uint textureContextGeneration = 0;
|
||||
Array<Uint8, kMaxEntries> units{};
|
||||
Array<SamplerImpl::BackendSamplerObject*, kMaxEntries> rows{};
|
||||
};
|
||||
|
||||
BackendProgramObjectImpl();
|
||||
@@ -418,11 +997,19 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
void SetBaseInstance(Uint32 baseInstance) const;
|
||||
void SetBaseInstanceWordIndex(Int32 wordIndex) const;
|
||||
void SetDrawID(Uint32 drawId) const;
|
||||
// True when the transpiled program kept a gl_DrawID uniform, i.e. SetDrawID
|
||||
// actually reaches a shader read rather than being discarded.
|
||||
Bool ReadsDrawID() const { return m_drawIdUniformLocation >= 0; }
|
||||
Int GetIndirectParamsBinding() const { return m_indirectParamsBinding; }
|
||||
Uint GetBackendProgramId() const { return m_backendProgramId; }
|
||||
// False when the last SyncToBackend could not produce a usable program (a
|
||||
// shader failed to transpile or compile, or the link itself failed). Use()
|
||||
// must not leave the previously bound program current in that case.
|
||||
Bool IsBackendProgramUsable() const { return m_backendProgramUsable; }
|
||||
Uint GetBackendGlobalUBOId() const { return m_backendGlobalUBOId; }
|
||||
Uint32 GetSnormFallbackClampOutputMask() const { return m_snormFallbackClampOutputMask; }
|
||||
Uint32 GetUnormFallbackClampOutputMask() const { return m_unormFallbackClampOutputMask; }
|
||||
Uint GetFragColorBroadcastCount() const { return m_fragColorBroadcastCount; }
|
||||
|
||||
Bool HasGlobalUboBlock() const { return m_globalUboBackendBlockIndex >= 0; }
|
||||
const Vector<Int>& GetUniformBlockBackendIndices() const { return m_uniformBlockBackendIndices; }
|
||||
@@ -434,6 +1021,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
// reflected size when the transpiled block pads differently).
|
||||
Int GetGlobalUboBackendBlockSize() const { return m_globalUboBackendBlockSize; }
|
||||
BufferImpl::UboRingAllocation& GetGlobalUboRingAllocation() { return m_globalUboRingAllocation; }
|
||||
SamplerPassMemo& GetSamplerPassMemo() { return m_samplerPassMemo; }
|
||||
// Frontend link version this backend program (and its resource caches) was
|
||||
// built from; a mismatch means every link-derived cache here is stale.
|
||||
Uint32 GetSyncedLinkVersion() const { return m_syncedLinkVersion; }
|
||||
@@ -449,7 +1037,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Int m_indirectParamsBinding = -1;
|
||||
Uint32 m_snormFallbackClampOutputMask = 0;
|
||||
Uint32 m_unormFallbackClampOutputMask = 0;
|
||||
// Draw buffers a legacy gl_FragColor write has to reach (see
|
||||
// PrgramImpl::BroadcastLegacyFragColor); 1 keeps the plain single-output shader.
|
||||
Uint m_fragColorBroadcastCount = 1;
|
||||
Bool m_isInitialized = false;
|
||||
Bool m_backendProgramUsable = false;
|
||||
|
||||
Int m_globalUboBackendBlockIndex = -1;
|
||||
Int m_globalUboBackendBlockSize = 0;
|
||||
@@ -458,16 +1050,37 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Uint32 m_lastUploadedGlobalUboVersion = ~0u;
|
||||
BufferImpl::UboRingAllocation m_globalUboRingAllocation;
|
||||
Uint32 m_syncedLinkVersion = ~0u;
|
||||
SamplerPassMemo m_samplerPassMemo;
|
||||
};
|
||||
|
||||
extern Uint32 g_snormFallbackClampOutputMask;
|
||||
extern Uint32 g_unormFallbackClampOutputMask;
|
||||
// Draw buffers the current draw framebuffer enables. Like the clamp masks above it
|
||||
// is framebuffer state that the shader has to be compiled against, so a program
|
||||
// whose snapshot no longer matches is relinked.
|
||||
extern Uint g_fragColorBroadcastCount;
|
||||
// Backend id of the last glUseProgram issued through this backend; lets Use()
|
||||
// skip redundant rebinds. Reset to 0 wherever glUseProgram(0) is issued or the
|
||||
// ES context is recreated.
|
||||
extern Uint g_lastUsedBackendProgramId;
|
||||
extern StateBackendObjectRegistry<MG_State::GLState::ProgramObject, BackendProgramObjectImpl>
|
||||
g_backendProgramObjects;
|
||||
|
||||
// Points one shader storage block of an ALREADY-LINKED backend program at
|
||||
// `binding`. `blockName` is the frontend interface-query spelling; the real
|
||||
// driver's own index for it is looked up here, because the transpiled ESSL's
|
||||
// block order is not the frontend's. Returns false when the block does not exist
|
||||
// on the backend program (eliminated as unused, or the driver lacks the entry
|
||||
// points), which is not an error - GL_BUFFER_BINDING is served from the frontend
|
||||
// record either way.
|
||||
Bool ApplyShaderStorageBlockBinding(Uint backendProgramId, const String& blockName, Uint binding);
|
||||
// Replays every glShaderStorageBlockBinding recorded on the program onto a backend
|
||||
// program that was just built. The frontend record is authoritative (only the
|
||||
// shader's DECLARED binding survives in the SPIR-V), so without this replay any
|
||||
// rebuild would silently revert rebound blocks. Mirrors DirectVulkan's
|
||||
// reseed-on-rebuild in BuildProgramResourceCache.
|
||||
void ReseedShaderStorageBlockBindings(Uint backendProgramId,
|
||||
const MG_State::GLState::ProgramObject& stateProgramObject);
|
||||
} // namespace PrgramImpl
|
||||
|
||||
namespace SamplerImpl {
|
||||
|
||||
@@ -0,0 +1,894 @@
|
||||
// MobileGL - MobileGL/MG_Backend/DirectGLES/MultiDraw.cpp
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#include "MultiDraw.h"
|
||||
#include "Managers.h"
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <cstring>
|
||||
#include <limits>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES::MultiDrawImpl {
|
||||
using MG_Config::GLESMultiDrawMode;
|
||||
|
||||
namespace {
|
||||
// ---------------------------------------------------------------------------
|
||||
// Batch shape
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
SizeT IndexTypeSize(GLenum type) {
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE: return 1;
|
||||
case GL_UNSIGNED_SHORT: return 2;
|
||||
case GL_UNSIGNED_INT: return 4;
|
||||
default: return 0;
|
||||
}
|
||||
}
|
||||
|
||||
// The all-ones value of an index type, which is what GL restarts on once
|
||||
// primitive restart is in play. CheckPrimitiveRestartSupported has already
|
||||
// rejected the arbitrary-index form of GL_PRIMITIVE_RESTART, so an enabled
|
||||
// restart always restarts here and nowhere else.
|
||||
Uint32 RestartSentinelFor(GLenum type) {
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE: return 0xFFu;
|
||||
case GL_UNSIGNED_SHORT: return 0xFFFFu;
|
||||
default: return 0xFFFFFFFFu;
|
||||
}
|
||||
}
|
||||
|
||||
Bool RestartActive() {
|
||||
return MG_State::pGLContext->IsCapabilityEnabled(CapabilityInput::PrimitiveRestart) ||
|
||||
MG_State::pGLContext->IsCapabilityEnabled(CapabilityInput::PrimitiveRestartFixedIndex);
|
||||
}
|
||||
|
||||
// Vertices per primitive for the modes whose sub-draws may be concatenated into a
|
||||
// single draw without changing the primitive stream. Zero for strip/loop/fan modes
|
||||
// (concatenation would weld one sub-draw's last primitive to the next sub-draw's
|
||||
// first) and for GL_PATCHES, whose primitive size is dynamic tessellation state.
|
||||
Uint32 ConcatenablePrimitiveSize(GLenum mode) {
|
||||
switch (mode) {
|
||||
case GL_POINTS: return 1;
|
||||
case GL_LINES: return 2;
|
||||
case GL_TRIANGLES: return 3;
|
||||
case GL_LINES_ADJACENCY: return 4;
|
||||
case GL_TRIANGLES_ADJACENCY: return 6;
|
||||
default: return 0;
|
||||
}
|
||||
}
|
||||
|
||||
// Beyond this an emulated batch would ask for a scratch allocation measured in
|
||||
// hundreds of megabytes (and the scratch ring never shrinks again); decline and let
|
||||
// a per-sub-draw tier handle it instead of trying and failing inside the driver.
|
||||
constexpr SizeT kMaxFlattenedIndices = SizeT{1} << 24;
|
||||
|
||||
// The flattening dispatch is one invocation per output index. ES 3.1 only
|
||||
// guarantees 65535 work groups per dimension, and exceeding it makes
|
||||
// glDispatchCompute an INVALID_VALUE no-op - which would leave the draw reading an
|
||||
// uninitialised index buffer rather than failing visibly. Cap the tier there
|
||||
// instead of querying: 4.19M indices is far past any real multi-draw batch, and
|
||||
// beyond it the per-sub-draw tiers are the better answer anyway.
|
||||
constexpr SizeT kComputeWorkGroupSize = 64;
|
||||
constexpr SizeT kMaxComputeWorkGroups = 65535;
|
||||
constexpr SizeT kMaxComputeFlattenedIndices = kMaxComputeWorkGroups * kComputeWorkGroupSize;
|
||||
|
||||
Uint BoundDrawIndirectBufferId() {
|
||||
const auto& indirect =
|
||||
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DrawIndirect).GetBoundObject();
|
||||
if (!indirect) return 0;
|
||||
const auto* resource = BufferImpl::EnsureBufferResource(indirect);
|
||||
return resource ? resource->id : 0;
|
||||
}
|
||||
|
||||
const SharedPtr<MG_State::GLState::BufferObject>& BoundIndexBuffer() {
|
||||
static const SharedPtr<MG_State::GLState::BufferObject> none;
|
||||
const auto& vao = MG_State::pGLContext->GetBoundVertexArray();
|
||||
if (!vao) return none;
|
||||
return vao->GetIndexBufferBindingSlot().GetBoundObject();
|
||||
}
|
||||
|
||||
// The GL name PrepareForDraw left on GL_ELEMENT_ARRAY_BUFFER, i.e. what a tier
|
||||
// that swaps in a scratch index buffer has to put back. Restoring the exact name
|
||||
// matters beyond tidiness: the VAO twin memoises that it already synced this
|
||||
// index binding and will not re-issue it on the next draw.
|
||||
Uint BoundIndexBufferId() {
|
||||
const auto& ibo = BoundIndexBuffer();
|
||||
if (!ibo) return 0;
|
||||
const auto* resource = BufferImpl::EnsureBufferResource(ibo);
|
||||
return resource ? resource->id : 0;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Scratch GL objects
|
||||
//
|
||||
// All of them belong to the ES context and are abandoned (not deleted) when it
|
||||
// dies, exactly like XfbImpl's scatter buffer: the names are the dead context's
|
||||
// to reclaim, and deleting them would target whatever the successor context
|
||||
// handed out for the same name.
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
struct ScratchBuffer {
|
||||
Uint id = 0;
|
||||
SizeT capacity = 0;
|
||||
SizeT cursor = 0; // ring buffers only: next free byte
|
||||
};
|
||||
|
||||
ScratchBuffer g_indirectCommands; // synthesized DrawElementsIndirectCommand array
|
||||
ScratchBuffer g_rebasedIndices; // CPU-rebased index stream
|
||||
ScratchBuffer g_drawInfo; // compute tier: per-sub-draw descriptors
|
||||
ScratchBuffer g_flattenedIndices; // compute tier: flattened index stream
|
||||
|
||||
Uint g_computeProgram = 0;
|
||||
Bool g_computeProgramFailed = false;
|
||||
GLint g_uElementSize = -1;
|
||||
GLint g_uDrawCount = -1;
|
||||
GLint g_uTotalIndices = -1;
|
||||
|
||||
// Reused staging, so a steady stream of batches allocates nothing.
|
||||
Vector<DrawElementsIndirectCommand> g_commandStaging;
|
||||
Vector<Uint32> g_indexStaging;
|
||||
Vector<Uint32> g_drawInfoStaging;
|
||||
Vector<GLint> g_zeroBaseVertices;
|
||||
|
||||
// Everything below stages through GL_ARRAY_BUFFER, the manager-wide staging target
|
||||
// (BufferImpl::TempBufferTarget); binding it disturbs no VAO state.
|
||||
Bool EnsureScratchName(ScratchBuffer& buffer) {
|
||||
if (buffer.id != 0) return true;
|
||||
GLuint id = 0;
|
||||
g_GLESFuncs.glGenBuffers(1, &id);
|
||||
if (id == 0) return false;
|
||||
buffer.id = id;
|
||||
buffer.capacity = 0;
|
||||
buffer.cursor = 0;
|
||||
return true;
|
||||
}
|
||||
|
||||
// Whole-buffer upload, for the two buffers that are read from offset 0 because they
|
||||
// are bound as storage blocks. Respecifies rather than sub-updates: glBufferData
|
||||
// orphans the previous store, so the upload never waits on a dispatch still reading
|
||||
// the old contents out of the same name.
|
||||
Bool UploadScratch(ScratchBuffer& buffer, SizeT bytes, const void* data) {
|
||||
if (bytes == 0) return true;
|
||||
if (!EnsureScratchName(buffer)) return false;
|
||||
BufferImpl::BindBufferId(BufferImpl::TempBufferTarget, buffer.id);
|
||||
// Grow in powers of two so a batch that creeps up in size stops respecifying.
|
||||
SizeT capacity = buffer.capacity == 0 ? bytes : buffer.capacity;
|
||||
while (capacity < bytes) capacity *= 2;
|
||||
g_GLESFuncs.glBufferData(BufferImpl::TempBufferTarget, static_cast<GLsizeiptr>(capacity), nullptr,
|
||||
GL_STREAM_DRAW);
|
||||
buffer.capacity = capacity;
|
||||
buffer.cursor = 0;
|
||||
if (data) {
|
||||
g_GLESFuncs.glBufferSubData(BufferImpl::TempBufferTarget, 0, static_cast<GLsizeiptr>(bytes), data);
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// Ring upload, for the buffers whose consumers can address a byte offset (indirect
|
||||
// commands and rewritten index streams). Respecifying per batch is what an
|
||||
// orphan-every-time scheme costs, and on a desktop-class driver that allocation
|
||||
// dominated the tiers that use these buffers - a multi-draw of 32 sub-draws stages
|
||||
// 640 bytes and paid for a fresh store to hold them. Bump-allocating instead means
|
||||
// one respecify per wrap; every byte between two wraps is written exactly once, so
|
||||
// nothing in flight is overwritten, and the wrap itself orphans.
|
||||
constexpr SizeT kRingAlignment = 16; // >= 4, so both command and uint32-index offsets stay legal
|
||||
constexpr SizeT kMinRingBytes = 1u << 16;
|
||||
|
||||
Bool UploadScratchRing(ScratchBuffer& buffer, SizeT bytes, const void* data, SizeT& outOffset) {
|
||||
outOffset = 0;
|
||||
if (bytes == 0) return true;
|
||||
if (!EnsureScratchName(buffer)) return false;
|
||||
BufferImpl::BindBufferId(BufferImpl::TempBufferTarget, buffer.id);
|
||||
|
||||
const SizeT aligned = (bytes + kRingAlignment - 1) & ~(kRingAlignment - 1);
|
||||
if (buffer.capacity < aligned) {
|
||||
SizeT capacity = buffer.capacity == 0 ? kMinRingBytes : buffer.capacity;
|
||||
while (capacity < aligned) capacity *= 2;
|
||||
g_GLESFuncs.glBufferData(BufferImpl::TempBufferTarget, static_cast<GLsizeiptr>(capacity), nullptr,
|
||||
GL_STREAM_DRAW);
|
||||
buffer.capacity = capacity;
|
||||
buffer.cursor = 0;
|
||||
} else if (buffer.cursor + aligned > buffer.capacity) {
|
||||
g_GLESFuncs.glBufferData(BufferImpl::TempBufferTarget, static_cast<GLsizeiptr>(buffer.capacity),
|
||||
nullptr, GL_STREAM_DRAW);
|
||||
buffer.cursor = 0;
|
||||
}
|
||||
|
||||
outOffset = buffer.cursor;
|
||||
if (data) {
|
||||
g_GLESFuncs.glBufferSubData(BufferImpl::TempBufferTarget, static_cast<GLintptr>(outOffset),
|
||||
static_cast<GLsizeiptr>(bytes), data);
|
||||
}
|
||||
buffer.cursor += aligned;
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tier resolution
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
// Best-first, and measured rather than assumed. MobileGlues orders its own Auto
|
||||
// multiindirect -> indirect -> basevertex; on both ES drivers available here that
|
||||
// is backwards, because staging a command buffer per batch costs more than the
|
||||
// driver entries it saves. mc_sodium_multidraw (132 batches x 32 sub-draws),
|
||||
// ns/op, median of three:
|
||||
//
|
||||
// NVIDIA ES 3.2 Mesa llvmpipe ES 3.2
|
||||
// ext n/a 19300
|
||||
// basevertex 2500 25200
|
||||
// multiindirect 5700 27600
|
||||
// drawelements 5600 28700
|
||||
// indirect 5800 31000
|
||||
//
|
||||
// Ring-allocating the command staging (instead of respecifying per batch) was
|
||||
// tried first and moved the indirect tiers by less than noise, so the cost is the
|
||||
// indirect draw path itself, not the upload. Only "ext" - a real multi-draw entry
|
||||
// point rather than an indirect one - actually beats replaying the sub-draws.
|
||||
//
|
||||
// The compute tier is deliberately absent from the ladder: it rewrites the
|
||||
// primitive stream rather than replaying it, and it measured slowest of all here,
|
||||
// so it stays opt-in behind the env knob (the same call MobileGlues makes - its
|
||||
// Auto never selects Compute either).
|
||||
constexpr GLESMultiDrawMode kAutoLadder[] = {
|
||||
GLESMultiDrawMode::Ext, GLESMultiDrawMode::BaseVertex, GLESMultiDrawMode::MultiIndirect,
|
||||
GLESMultiDrawMode::Indirect, GLESMultiDrawMode::DrawElements,
|
||||
};
|
||||
|
||||
Bool SupportsTier(GLESMultiDrawMode tier) {
|
||||
return IsTierSupported(g_GLESCapabilities, g_GLESFuncs, tier);
|
||||
}
|
||||
|
||||
GLESMultiDrawMode g_resolvedTier = GLESMultiDrawMode::Auto;
|
||||
Bool g_tierResolved = false;
|
||||
String g_tierResolution;
|
||||
|
||||
void ResolveTierOnce() {
|
||||
if (g_tierResolved) return;
|
||||
g_tierResolved = true;
|
||||
g_resolvedTier =
|
||||
ResolveTier(g_GLESCapabilities, g_GLESFuncs, MG_Config::Features.EsprytMultiDrawMode,
|
||||
&g_tierResolution);
|
||||
MGLOG_I("DirectGLES multi-draw: %s", g_tierResolution.c_str());
|
||||
}
|
||||
|
||||
// Which tiers have already announced themselves, one bit per GLESMultiDrawMode.
|
||||
// The resolution line above says which tier was CHOSEN; this says which one a
|
||||
// batch actually went through, and the two differ whenever a batch's shape
|
||||
// demotes it. Worth a line each: a multi-draw path that resolves to a tier and
|
||||
// then quietly runs a different one is exactly how "the batch drew nothing"
|
||||
// hides.
|
||||
Uint32 g_announcedTiers = 0;
|
||||
|
||||
void NoteTierExecuted(GLESMultiDrawMode tier) {
|
||||
const Uint32 bit = 1u << static_cast<Uint32>(tier);
|
||||
if (g_announcedTiers & bit) return;
|
||||
g_announcedTiers |= bit;
|
||||
MGLOG_I("DirectGLES multi-draw: first batch executed via tier \"%s\"", TierName(tier));
|
||||
}
|
||||
|
||||
// The tier this particular batch can actually take. A tier is demoted here when
|
||||
// the batch's own shape - not the driver - rules it out; the compute tier keeps
|
||||
// its remaining feasibility checks inside its implementation, where the data it
|
||||
// has to walk is already in hand.
|
||||
GLESMultiDrawMode ResolveTierForBatch(Bool programReadsDrawID, Bool hasIndexBuffer) {
|
||||
ResolveTierOnce();
|
||||
GLESMultiDrawMode tier = g_resolvedTier;
|
||||
|
||||
// Batched tiers issue one driver entry for the whole batch, so the emulated
|
||||
// gl_DrawID uniform can only hold one value across every sub-draw. A program
|
||||
// that reads gl_DrawID gets an unrolled tier, which feeds each sub-draw its
|
||||
// own index (the spec's value); nothing else observes the difference.
|
||||
const Bool batched = tier == GLESMultiDrawMode::Ext || tier == GLESMultiDrawMode::MultiIndirect ||
|
||||
tier == GLESMultiDrawMode::Compute;
|
||||
if (batched && programReadsDrawID) {
|
||||
tier = SupportsTier(GLESMultiDrawMode::BaseVertex) ? GLESMultiDrawMode::BaseVertex
|
||||
: GLESMultiDrawMode::DrawElements;
|
||||
}
|
||||
|
||||
// The indirect tiers describe each sub-draw as an element offset into the
|
||||
// bound element array buffer. A client-memory index array has no such buffer,
|
||||
// and indirect draws are not defined without one.
|
||||
if (!hasIndexBuffer &&
|
||||
(tier == GLESMultiDrawMode::MultiIndirect || tier == GLESMultiDrawMode::Indirect)) {
|
||||
tier = SupportsTier(GLESMultiDrawMode::BaseVertex) ? GLESMultiDrawMode::BaseVertex
|
||||
: GLESMultiDrawMode::DrawElements;
|
||||
}
|
||||
return tier;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Index rewriting, shared by the two tiers that fold base vertices into indices
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
// Both of those tiers emit GL_UNSIGNED_INT regardless of the source type. Keeping
|
||||
// the source width would be wrong, not merely tight: GL adds baseVertex to the
|
||||
// index at full precision, so a GL_UNSIGNED_SHORT index plus a base vertex past
|
||||
// 65535 addresses a vertex the source type cannot spell. Widening also gives the
|
||||
// rewritten stream a restart sentinel (0xFFFFFFFF) that survives the rebase.
|
||||
void RebaseIndices(const Uint8* source, SizeT sourceIndexCount, SizeT indexSize, Int32 baseVertex,
|
||||
Bool restartActive, Uint32 restartSentinel, Uint32* out) {
|
||||
const Uint32 baseVertexBits = static_cast<Uint32>(baseVertex);
|
||||
for (SizeT i = 0; i < sourceIndexCount; ++i) {
|
||||
Uint32 value = 0;
|
||||
switch (indexSize) {
|
||||
case 1: value = source[i]; break;
|
||||
case 2: {
|
||||
Uint16 narrow = 0;
|
||||
std::memcpy(&narrow, source + i * 2, sizeof(narrow));
|
||||
value = narrow;
|
||||
break;
|
||||
}
|
||||
default: std::memcpy(&value, source + i * 4, sizeof(value)); break;
|
||||
}
|
||||
// Unsigned wraparound is the defined behaviour for a negative base vertex.
|
||||
out[i] = (restartActive && value == restartSentinel) ? 0xFFFFFFFFu : value + baseVertexBits;
|
||||
}
|
||||
}
|
||||
|
||||
// CPU-readable bytes of one sub-draw's indices, from the frontend shadow of the
|
||||
// bound index buffer or straight from the client array. Null when the sub-draw
|
||||
// would read outside the buffer.
|
||||
const Uint8* ResolveSubDrawIndices(const SharedPtr<MG_State::GLState::BufferObject>& indexBuffer,
|
||||
const Uint8* indexBufferBytes, SizeT indexBufferSize, const void* indices,
|
||||
SizeT indexCount, SizeT indexSize) {
|
||||
if (!indexBuffer) {
|
||||
return static_cast<const Uint8*>(indices);
|
||||
}
|
||||
if (!indexBufferBytes) return nullptr;
|
||||
const SizeT byteOffset = reinterpret_cast<SizeT>(indices);
|
||||
const SizeT byteEnd = byteOffset + indexCount * indexSize;
|
||||
if (byteEnd > indexBufferSize || byteEnd < byteOffset) return nullptr;
|
||||
return indexBufferBytes + byteOffset;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tier: Ext - one glMultiDrawElementsBaseVertexEXT
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
Bool RunExt(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices, GLsizei drawcount,
|
||||
const GLint* basevertex) {
|
||||
if (!SupportsTier(GLESMultiDrawMode::Ext)) return false;
|
||||
const GLint* baseVertices = basevertex;
|
||||
if (!baseVertices) {
|
||||
// glMultiDrawElements: every base vertex is 0, but the entry point still
|
||||
// wants an array. One permanently-zero vector serves every such batch.
|
||||
if (g_zeroBaseVertices.size() < static_cast<SizeT>(drawcount)) {
|
||||
g_zeroBaseVertices.resize(static_cast<SizeT>(drawcount), 0);
|
||||
}
|
||||
baseVertices = g_zeroBaseVertices.data();
|
||||
}
|
||||
g_GLESFuncs.glMultiDrawElementsBaseVertexEXT(mode, count, type, indices, drawcount, baseVertices);
|
||||
NoteTierExecuted(GLESMultiDrawMode::Ext);
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tiers: MultiIndirect / Indirect - synthesized indirect commands
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
Bool RunIndirect(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex, Bool batched, Bool feedDrawID) {
|
||||
if (!SupportsTier(batched ? GLESMultiDrawMode::MultiIndirect : GLESMultiDrawMode::Indirect)) return false;
|
||||
const SizeT indexSize = IndexTypeSize(type);
|
||||
if (indexSize == 0) return false;
|
||||
// Indirect commands address indices as an element offset into the bound element
|
||||
// array buffer, and an indirect draw is not defined without one.
|
||||
const auto& indexBuffer = BoundIndexBuffer();
|
||||
if (!indexBuffer) return false;
|
||||
|
||||
g_commandStaging.resize(static_cast<SizeT>(drawcount));
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
const SizeT byteOffset = reinterpret_cast<SizeT>(indices[i]);
|
||||
// firstIndex counts elements, so an offset that is not a whole number of
|
||||
// them cannot be expressed as a command at all.
|
||||
if (byteOffset % indexSize != 0) return false;
|
||||
auto& command = g_commandStaging[static_cast<SizeT>(i)];
|
||||
command.count = count[i] > 0 ? static_cast<Uint32>(count[i]) : 0u;
|
||||
command.instanceCount = 1;
|
||||
command.firstIndex = static_cast<Uint32>(byteOffset / indexSize);
|
||||
command.baseVertex = basevertex ? basevertex[i] : 0;
|
||||
command.baseInstance = 0;
|
||||
}
|
||||
|
||||
const SizeT commandBytes = g_commandStaging.size() * sizeof(DrawElementsIndirectCommand);
|
||||
SizeT commandBase = 0;
|
||||
if (!UploadScratchRing(g_indirectCommands, commandBytes, g_commandStaging.data(), commandBase)) {
|
||||
return false;
|
||||
}
|
||||
|
||||
// Every synthesized command carries baseInstance 0. Say so through the direct
|
||||
// path, which also clears the indirect-params word index a preceding real
|
||||
// indirect draw may have left pointing into its own command buffer.
|
||||
SetCurrentBaseInstance(0);
|
||||
|
||||
const Uint previousIndirectBinding = BoundDrawIndirectBufferId();
|
||||
BufferImpl::BindBufferId(GL_DRAW_INDIRECT_BUFFER, g_indirectCommands.id);
|
||||
if (batched) {
|
||||
g_GLESFuncs.glMultiDrawElementsIndirectEXT(mode, type, reinterpret_cast<const void*>(commandBase),
|
||||
drawcount, 0);
|
||||
} else {
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
if (feedDrawID) SetCurrentDrawID(static_cast<Uint32>(i));
|
||||
const SizeT commandOffset = commandBase + static_cast<SizeT>(i) * sizeof(DrawElementsIndirectCommand);
|
||||
g_GLESFuncs.glDrawElementsIndirect(mode, type, reinterpret_cast<const void*>(commandOffset));
|
||||
}
|
||||
if (feedDrawID) SetCurrentDrawID(0);
|
||||
}
|
||||
BufferImpl::BindBufferId(GL_DRAW_INDIRECT_BUFFER, previousIndirectBinding);
|
||||
NoteTierExecuted(batched ? GLESMultiDrawMode::MultiIndirect : GLESMultiDrawMode::Indirect);
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tier: BaseVertex - the per-sub-draw replay
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
Bool RunBaseVertexLoop(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex, Bool feedDrawID) {
|
||||
if (!SupportsTier(GLESMultiDrawMode::BaseVertex)) return false;
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
if (count[i] <= 0) continue;
|
||||
if (feedDrawID) SetCurrentDrawID(static_cast<Uint32>(i));
|
||||
g_GLESFuncs.glDrawElementsBaseVertex(mode, count[i], type, indices[i],
|
||||
basevertex ? basevertex[i] : 0);
|
||||
}
|
||||
if (feedDrawID) SetCurrentDrawID(0);
|
||||
NoteTierExecuted(GLESMultiDrawMode::BaseVertex);
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tier: DrawElements - base vertices folded into a scratch index stream
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
Bool RunRebasedDrawElements(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex, Bool feedDrawID) {
|
||||
const SizeT indexSize = IndexTypeSize(type);
|
||||
if (indexSize == 0) return false;
|
||||
|
||||
SizeT total = 0;
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
if (count[i] > 0) total += static_cast<SizeT>(count[i]);
|
||||
}
|
||||
if (total == 0) return true;
|
||||
if (total > kMaxFlattenedIndices) return false;
|
||||
|
||||
const auto& indexBuffer = BoundIndexBuffer();
|
||||
const Uint8* indexBufferBytes = nullptr;
|
||||
SizeT indexBufferSize = 0;
|
||||
if (indexBuffer) {
|
||||
// The shadow is the source of truth for CPU reads, but a persistent map or
|
||||
// a shader write may have moved past it since the last sync.
|
||||
indexBuffer->SyncPersistentMappedRange();
|
||||
indexBuffer->SyncGpuWrites();
|
||||
indexBufferBytes = indexBuffer->MappedData();
|
||||
indexBufferSize = indexBuffer->GetSize();
|
||||
}
|
||||
|
||||
const Bool restartActive = RestartActive();
|
||||
const Uint32 restartSentinel = RestartSentinelFor(type);
|
||||
g_indexStaging.resize(total);
|
||||
SizeT cursor = 0;
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
if (count[i] <= 0) continue;
|
||||
const SizeT subDrawCount = static_cast<SizeT>(count[i]);
|
||||
const Uint8* source = ResolveSubDrawIndices(indexBuffer, indexBufferBytes, indexBufferSize, indices[i],
|
||||
subDrawCount, indexSize);
|
||||
if (!source) {
|
||||
MGLOG_E("DirectGLES multi-draw (drawelements tier): sub-draw %d reads outside the bound index "
|
||||
"buffer; skipping the batch",
|
||||
i);
|
||||
return false;
|
||||
}
|
||||
RebaseIndices(source, subDrawCount, indexSize, basevertex ? basevertex[i] : 0, restartActive,
|
||||
restartSentinel, g_indexStaging.data() + cursor);
|
||||
cursor += subDrawCount;
|
||||
}
|
||||
|
||||
SizeT indexBase = 0;
|
||||
if (!UploadScratchRing(g_rebasedIndices, total * sizeof(Uint32), g_indexStaging.data(), indexBase)) {
|
||||
return false;
|
||||
}
|
||||
|
||||
const Uint previousIndexBinding = BoundIndexBufferId();
|
||||
BufferImpl::BindBufferId(GL_ELEMENT_ARRAY_BUFFER, g_rebasedIndices.id);
|
||||
cursor = 0;
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
if (count[i] <= 0) continue;
|
||||
if (feedDrawID) SetCurrentDrawID(static_cast<Uint32>(i));
|
||||
g_GLESFuncs.glDrawElements(mode, count[i], GL_UNSIGNED_INT,
|
||||
reinterpret_cast<const void*>(indexBase + cursor * sizeof(Uint32)));
|
||||
cursor += static_cast<SizeT>(count[i]);
|
||||
}
|
||||
if (feedDrawID) SetCurrentDrawID(0);
|
||||
BufferImpl::BindBufferId(GL_ELEMENT_ARRAY_BUFFER, previousIndexBinding);
|
||||
NoteTierExecuted(GLESMultiDrawMode::DrawElements);
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Tier: Compute - the whole batch flattened into one rebased index stream
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
// One index per invocation. The sub-draw an output slot belongs to is found by
|
||||
// binary search over the inclusive prefix sums of the sub-draw counts, which is
|
||||
// why the descriptors are sorted by construction. Sub-draws with a zero count
|
||||
// repeat the previous prefix sum and are therefore skipped by the search.
|
||||
//
|
||||
// Three storage blocks, not the five the shape suggests: ES 3.1 only guarantees
|
||||
// four per compute stage, so the per-sub-draw descriptors share one buffer.
|
||||
constexpr const char* kFlattenComputeSource = R"(#version 310 es
|
||||
layout(local_size_x = 64) in;
|
||||
|
||||
uniform uint uElementSize;
|
||||
uniform uint uDrawCount;
|
||||
uniform uint uTotalIndices;
|
||||
|
||||
layout(std430, binding = 0) readonly buffer SourceIndices { uint sourceWords[]; };
|
||||
layout(std430, binding = 1) readonly buffer DrawInfo { uint drawInfo[]; };
|
||||
layout(std430, binding = 2) writeonly buffer FlatIndices { uint flatIndices[]; };
|
||||
|
||||
uint ReadSourceIndex(uint element) {
|
||||
if (uElementSize == 4u) {
|
||||
return sourceWords[element];
|
||||
}
|
||||
if (uElementSize == 2u) {
|
||||
uint word = sourceWords[element >> 1u];
|
||||
return (word >> ((element & 1u) * 16u)) & 0xFFFFu;
|
||||
}
|
||||
uint word = sourceWords[element >> 2u];
|
||||
return (word >> ((element & 3u) * 8u)) & 0xFFu;
|
||||
}
|
||||
|
||||
void main() {
|
||||
uint outIndex = gl_GlobalInvocationID.x;
|
||||
if (outIndex >= uTotalIndices) {
|
||||
return;
|
||||
}
|
||||
|
||||
uint low = 0u;
|
||||
uint high = uDrawCount - 1u;
|
||||
while (low < high) {
|
||||
uint mid = low + (high - low) / 2u;
|
||||
if (drawInfo[mid * 3u + 2u] > outIndex) {
|
||||
high = mid;
|
||||
} else {
|
||||
low = mid + 1u;
|
||||
}
|
||||
}
|
||||
|
||||
uint localIndex = outIndex - (low == 0u ? 0u : drawInfo[(low - 1u) * 3u + 2u]);
|
||||
// Unsigned wraparound is the defined behaviour for a negative base vertex. No
|
||||
// restart sentinel handling: the tier declines outright while restart is enabled.
|
||||
flatIndices[outIndex] = ReadSourceIndex(localIndex + drawInfo[low * 3u]) + drawInfo[low * 3u + 1u];
|
||||
}
|
||||
)";
|
||||
|
||||
struct FlattenedStream {
|
||||
Uint bufferId = 0;
|
||||
SizeT indexCount = 0;
|
||||
};
|
||||
|
||||
Bool EnsureComputeProgram() {
|
||||
if (g_computeProgram != 0) return true;
|
||||
if (g_computeProgramFailed) return false;
|
||||
g_computeProgramFailed = true; // cleared again only on a complete success
|
||||
|
||||
const GLuint shader = g_GLESFuncs.glCreateShader(GL_COMPUTE_SHADER);
|
||||
if (shader == 0) {
|
||||
MGLOG_E("DirectGLES multi-draw (compute tier): glCreateShader(GL_COMPUTE_SHADER) failed");
|
||||
return false;
|
||||
}
|
||||
const char* source = kFlattenComputeSource;
|
||||
g_GLESFuncs.glShaderSource(shader, 1, &source, nullptr);
|
||||
g_GLESFuncs.glCompileShader(shader);
|
||||
GLint status = GL_FALSE;
|
||||
g_GLESFuncs.glGetShaderiv(shader, GL_COMPILE_STATUS, &status);
|
||||
if (status != GL_TRUE) {
|
||||
char log[1024] = {};
|
||||
g_GLESFuncs.glGetShaderInfoLog(shader, sizeof(log) - 1, nullptr, log);
|
||||
MGLOG_E("DirectGLES multi-draw (compute tier): index-flattening shader failed to compile: %s", log);
|
||||
g_GLESFuncs.glDeleteShader(shader);
|
||||
return false;
|
||||
}
|
||||
|
||||
const GLuint program = g_GLESFuncs.glCreateProgram();
|
||||
if (program == 0) {
|
||||
MGLOG_E("DirectGLES multi-draw (compute tier): glCreateProgram failed");
|
||||
g_GLESFuncs.glDeleteShader(shader);
|
||||
return false;
|
||||
}
|
||||
g_GLESFuncs.glAttachShader(program, shader);
|
||||
g_GLESFuncs.glLinkProgram(program);
|
||||
g_GLESFuncs.glDeleteShader(shader);
|
||||
g_GLESFuncs.glGetProgramiv(program, GL_LINK_STATUS, &status);
|
||||
if (status != GL_TRUE) {
|
||||
char log[1024] = {};
|
||||
g_GLESFuncs.glGetProgramInfoLog(program, sizeof(log) - 1, nullptr, log);
|
||||
MGLOG_E("DirectGLES multi-draw (compute tier): index-flattening program failed to link: %s", log);
|
||||
g_GLESFuncs.glDeleteProgram(program);
|
||||
return false;
|
||||
}
|
||||
|
||||
g_computeProgram = program;
|
||||
g_uElementSize = g_GLESFuncs.glGetUniformLocation(program, "uElementSize");
|
||||
g_uDrawCount = g_GLESFuncs.glGetUniformLocation(program, "uDrawCount");
|
||||
g_uTotalIndices = g_GLESFuncs.glGetUniformLocation(program, "uTotalIndices");
|
||||
g_computeProgramFailed = false;
|
||||
MGLOG_I("DirectGLES multi-draw: index-flattening compute program ready (id %u)", program);
|
||||
return true;
|
||||
}
|
||||
|
||||
// Builds the flattened stream, or leaves `out` empty when this batch's shape rules
|
||||
// the tier out. Runs BEFORE PrepareForDraw - see the call site - so it may leave
|
||||
// the compute program current and the first storage points unbound; the
|
||||
// preparation that follows re-establishes both.
|
||||
void FlattenWithCompute(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex, FlattenedStream& out) {
|
||||
if (!SupportsTier(GLESMultiDrawMode::Compute)) return;
|
||||
const SizeT indexSize = IndexTypeSize(type);
|
||||
if (indexSize == 0) return;
|
||||
|
||||
// Merging sub-draws into a single draw only reproduces the original primitive
|
||||
// stream for list-shaped modes: a strip, loop or fan would gain primitives
|
||||
// spanning the seam between two sub-draws.
|
||||
const Uint32 primitiveSize = ConcatenablePrimitiveSize(mode);
|
||||
if (primitiveSize == 0) return;
|
||||
|
||||
// Primitive restart defeats the whole-multiple-of-a-primitive argument below,
|
||||
// even for a list mode. A restart ends the current primitive, so a sub-draw of
|
||||
// six GL_TRIANGLES indices with a restart after the third emits ONE triangle
|
||||
// and drops the two leftover vertices - and once concatenated those leftovers
|
||||
// find a third vertex in the next sub-draw and become a triangle that GL never
|
||||
// draws. Splicing separator sentinels into the flattened stream could fix it,
|
||||
// at the cost of a per-sub-draw offset the prefix-sum layout does not carry;
|
||||
// declining is the honest trade for a tier that is already opt-in.
|
||||
if (RestartActive()) return;
|
||||
|
||||
// The shader reads the source indices as a storage buffer, so there has to be
|
||||
// a real buffer to read - a client-memory index array has none.
|
||||
const auto& indexBuffer = BoundIndexBuffer();
|
||||
if (!indexBuffer) return;
|
||||
|
||||
// A dispatch inside an open capture span is not legal, and the span would also
|
||||
// observe one merged draw rather than the batch it asked for.
|
||||
if (XfbImpl::IsCaptureSpanOpen()) return;
|
||||
|
||||
auto* sourceResource = BufferImpl::EnsureBufferResource(indexBuffer);
|
||||
if (!sourceResource || sourceResource->id == 0) return;
|
||||
const SizeT sourceSize = indexBuffer->GetSize();
|
||||
// std430 addresses the source as uint[]; a tail shorter than a word is not
|
||||
// reachable, so a narrow index type needs a word-multiple buffer.
|
||||
if (indexSize < 4 && (sourceSize % 4) != 0) return;
|
||||
|
||||
g_drawInfoStaging.resize(3 * static_cast<SizeT>(drawcount));
|
||||
SizeT total = 0;
|
||||
for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
const SizeT subDrawCount = count[i] > 0 ? static_cast<SizeT>(count[i]) : 0;
|
||||
// GL drops a trailing partial primitive per sub-draw; concatenation would
|
||||
// instead splice it onto the next sub-draw's first vertices.
|
||||
if (subDrawCount % primitiveSize != 0) return;
|
||||
const SizeT byteOffset = reinterpret_cast<SizeT>(indices[i]);
|
||||
if (byteOffset % indexSize != 0) return;
|
||||
if (subDrawCount != 0) {
|
||||
const SizeT byteEnd = byteOffset + subDrawCount * indexSize;
|
||||
if (byteEnd > sourceSize || byteEnd < byteOffset) return;
|
||||
}
|
||||
total += subDrawCount;
|
||||
if (total > kMaxComputeFlattenedIndices) return;
|
||||
const SizeT slot = 3 * static_cast<SizeT>(i);
|
||||
g_drawInfoStaging[slot] = static_cast<Uint32>(byteOffset / indexSize);
|
||||
g_drawInfoStaging[slot + 1] = static_cast<Uint32>(basevertex ? basevertex[i] : 0);
|
||||
g_drawInfoStaging[slot + 2] = static_cast<Uint32>(total);
|
||||
}
|
||||
if (total == 0) return; // nothing to draw; the ordinary tiers no-op just as well
|
||||
|
||||
if (!EnsureComputeProgram()) return;
|
||||
if (!UploadScratch(g_drawInfo, g_drawInfoStaging.size() * sizeof(Uint32), g_drawInfoStaging.data())) {
|
||||
return;
|
||||
}
|
||||
if (!UploadScratch(g_flattenedIndices, total * sizeof(Uint32), nullptr)) return;
|
||||
|
||||
BufferImpl::BindBufferBaseCached(GL_SHADER_STORAGE_BUFFER, 0, sourceResource->id);
|
||||
BufferImpl::BindBufferBaseCached(GL_SHADER_STORAGE_BUFFER, 1, g_drawInfo.id);
|
||||
BufferImpl::BindBufferBaseCached(GL_SHADER_STORAGE_BUFFER, 2, g_flattenedIndices.id);
|
||||
|
||||
g_GLESFuncs.glUseProgram(g_computeProgram);
|
||||
PrgramImpl::g_lastUsedBackendProgramId = g_computeProgram;
|
||||
if (g_uElementSize >= 0) g_GLESFuncs.glUniform1ui(g_uElementSize, static_cast<GLuint>(indexSize));
|
||||
if (g_uDrawCount >= 0) g_GLESFuncs.glUniform1ui(g_uDrawCount, static_cast<GLuint>(drawcount));
|
||||
if (g_uTotalIndices >= 0) g_GLESFuncs.glUniform1ui(g_uTotalIndices, static_cast<GLuint>(total));
|
||||
|
||||
g_GLESFuncs.glDispatchCompute(
|
||||
static_cast<GLuint>((total + kComputeWorkGroupSize - 1) / kComputeWorkGroupSize), 1, 1);
|
||||
g_GLESFuncs.glMemoryBarrier(GL_SHADER_STORAGE_BARRIER_BIT | GL_ELEMENT_ARRAY_BARRIER_BIT);
|
||||
|
||||
// Hand the storage points back to their GL default. PrepareForDraw re-syncs
|
||||
// only the points the app has actually touched, so leaving a scratch buffer on
|
||||
// an untouched point would keep it visible to the next shader that declares one.
|
||||
for (Uint point = 0; point < 3; ++point) {
|
||||
BufferImpl::BindBufferBaseCached(GL_SHADER_STORAGE_BUFFER, point, 0);
|
||||
}
|
||||
|
||||
NoteTierExecuted(GLESMultiDrawMode::Compute);
|
||||
out.bufferId = g_flattenedIndices.id;
|
||||
out.indexCount = total;
|
||||
}
|
||||
} // namespace
|
||||
|
||||
// -------------------------------------------------------------------------------
|
||||
// Public surface
|
||||
// -------------------------------------------------------------------------------
|
||||
|
||||
Bool IsTierSupported(const MG_External::GLESCapabilities& caps, const MG_External::GLESFunctionsTable& funcs,
|
||||
GLESMultiDrawMode tier) {
|
||||
const Bool esAtLeast31 =
|
||||
caps.GLESVersion.Major > 3 || (caps.GLESVersion.Major == 3 && caps.GLESVersion.Minor >= 1);
|
||||
switch (tier) {
|
||||
case GLESMultiDrawMode::Ext:
|
||||
return caps.SupportsMultiDrawElementsBaseVertex;
|
||||
case GLESMultiDrawMode::MultiIndirect:
|
||||
return caps.SupportsMultiDrawIndirect && esAtLeast31 && funcs.glDrawElementsIndirect != nullptr;
|
||||
case GLESMultiDrawMode::Indirect:
|
||||
return esAtLeast31 && funcs.glDrawElementsIndirect != nullptr;
|
||||
case GLESMultiDrawMode::BaseVertex:
|
||||
return caps.SupportsDrawElementsBaseVertex;
|
||||
case GLESMultiDrawMode::DrawElements:
|
||||
// Plain glDrawElements over a rewritten index stream: ES 2 core, so this is
|
||||
// the floor every other tier can fall back to.
|
||||
return true;
|
||||
case GLESMultiDrawMode::Compute:
|
||||
// Three storage blocks, which is inside the four ES 3.1 guarantees per stage.
|
||||
return caps.SupportsComputeShader && caps.MaxComputeShaderStorageBlocks >= 3 &&
|
||||
funcs.glBindBufferBase != nullptr;
|
||||
case GLESMultiDrawMode::Auto:
|
||||
break;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
GLESMultiDrawMode ResolveTier(const MG_External::GLESCapabilities& caps,
|
||||
const MG_External::GLESFunctionsTable& funcs, GLESMultiDrawMode requested,
|
||||
String* explanation) {
|
||||
const auto bestAuto = [&]() {
|
||||
for (const GLESMultiDrawMode tier : kAutoLadder) {
|
||||
if (IsTierSupported(caps, funcs, tier)) return tier;
|
||||
}
|
||||
return GLESMultiDrawMode::DrawElements;
|
||||
};
|
||||
|
||||
GLESMultiDrawMode resolved = GLESMultiDrawMode::DrawElements;
|
||||
String line;
|
||||
if (requested == GLESMultiDrawMode::Auto) {
|
||||
resolved = bestAuto();
|
||||
line = String("auto -> ") + TierName(resolved);
|
||||
} else if (IsTierSupported(caps, funcs, requested)) {
|
||||
resolved = requested;
|
||||
line = String("MOBILEGL_ESPRYT_MULTIDRAW_MODE=") + TierName(requested) + " -> " + TierName(resolved);
|
||||
} else {
|
||||
resolved = bestAuto();
|
||||
line = String("MOBILEGL_ESPRYT_MULTIDRAW_MODE=") + TierName(requested) +
|
||||
" requested but unsupported by this driver -> " + TierName(resolved);
|
||||
}
|
||||
|
||||
if (explanation) {
|
||||
String supported;
|
||||
for (const GLESMultiDrawMode tier : kAutoLadder) {
|
||||
if (!IsTierSupported(caps, funcs, tier)) continue;
|
||||
if (!supported.empty()) supported += ", ";
|
||||
supported += TierName(tier);
|
||||
}
|
||||
if (IsTierSupported(caps, funcs, GLESMultiDrawMode::Compute)) {
|
||||
supported += supported.empty() ? "compute (opt-in)" : ", compute (opt-in)";
|
||||
}
|
||||
*explanation = line + " (driver supports: " + supported + ")";
|
||||
}
|
||||
return resolved;
|
||||
}
|
||||
|
||||
const char* TierName(GLESMultiDrawMode tier) {
|
||||
switch (tier) {
|
||||
case GLESMultiDrawMode::Auto: return "auto";
|
||||
case GLESMultiDrawMode::Ext: return "ext";
|
||||
case GLESMultiDrawMode::MultiIndirect: return "multiindirect";
|
||||
case GLESMultiDrawMode::Indirect: return "indirect";
|
||||
case GLESMultiDrawMode::BaseVertex: return "basevertex";
|
||||
case GLESMultiDrawMode::DrawElements: return "drawelements";
|
||||
case GLESMultiDrawMode::Compute: return "compute";
|
||||
}
|
||||
return "unknown";
|
||||
}
|
||||
|
||||
GLESMultiDrawMode ResolvedTier() {
|
||||
ResolveTierOnce();
|
||||
return g_resolvedTier;
|
||||
}
|
||||
|
||||
String DescribeTierResolution() {
|
||||
ResolveTierOnce();
|
||||
return g_tierResolution;
|
||||
}
|
||||
|
||||
void OnBackendContextDestroyed() {
|
||||
g_indirectCommands = {};
|
||||
g_rebasedIndices = {};
|
||||
g_drawInfo = {};
|
||||
g_flattenedIndices = {};
|
||||
g_computeProgram = 0;
|
||||
g_computeProgramFailed = false;
|
||||
g_uElementSize = -1;
|
||||
g_uDrawCount = -1;
|
||||
g_uTotalIndices = -1;
|
||||
}
|
||||
|
||||
void DrawElementsBatch(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex) {
|
||||
if (drawcount <= 0 || !count || !indices) return;
|
||||
// State-independent and possibly throwing, so it runs before any GL work.
|
||||
CheckPrimitiveRestartSupported(type);
|
||||
|
||||
const Bool hasIndexBuffer = BoundIndexBuffer() != nullptr;
|
||||
|
||||
// The compute tier dispatches BEFORE the draw state is established: doing it
|
||||
// afterwards would mean unpicking the program, SSBO and index bindings
|
||||
// PrepareForDraw just made, and a dispatch inside an open transform feedback
|
||||
// span is not legal at all. On success it hands back a flattened index stream.
|
||||
FlattenedStream flattened;
|
||||
if (ResolvedTier() == GLESMultiDrawMode::Compute && !CurrentProgramReadsDrawID()) {
|
||||
FlattenWithCompute(mode, count, type, indices, drawcount, basevertex, flattened);
|
||||
}
|
||||
|
||||
PrepareForDraw(DrawSyncBit::IndexBuffer);
|
||||
|
||||
if (flattened.indexCount != 0) {
|
||||
const Uint previousIndexBinding = BoundIndexBufferId();
|
||||
BufferImpl::BindBufferId(GL_ELEMENT_ARRAY_BUFFER, flattened.bufferId);
|
||||
g_GLESFuncs.glDrawElements(mode, static_cast<GLsizei>(flattened.indexCount), GL_UNSIGNED_INT, nullptr);
|
||||
BufferImpl::BindBufferId(GL_ELEMENT_ARRAY_BUFFER, previousIndexBinding);
|
||||
return;
|
||||
}
|
||||
|
||||
const Bool feedDrawID = CurrentProgramReadsDrawID();
|
||||
const GLESMultiDrawMode tier = ResolveTierForBatch(feedDrawID, hasIndexBuffer);
|
||||
|
||||
Bool drawn = false;
|
||||
switch (tier) {
|
||||
case GLESMultiDrawMode::Ext:
|
||||
drawn = RunExt(mode, count, type, indices, drawcount, basevertex);
|
||||
break;
|
||||
case GLESMultiDrawMode::MultiIndirect:
|
||||
drawn = RunIndirect(mode, count, type, indices, drawcount, basevertex, /*batched=*/true, feedDrawID);
|
||||
break;
|
||||
case GLESMultiDrawMode::Indirect:
|
||||
drawn = RunIndirect(mode, count, type, indices, drawcount, basevertex, /*batched=*/false, feedDrawID);
|
||||
break;
|
||||
case GLESMultiDrawMode::BaseVertex:
|
||||
drawn = RunBaseVertexLoop(mode, count, type, indices, drawcount, basevertex, feedDrawID);
|
||||
break;
|
||||
case GLESMultiDrawMode::DrawElements:
|
||||
drawn = RunRebasedDrawElements(mode, count, type, indices, drawcount, basevertex, feedDrawID);
|
||||
break;
|
||||
case GLESMultiDrawMode::Compute:
|
||||
// Its pre-pass ran above; reaching here means it declined this batch's shape.
|
||||
break;
|
||||
case GLESMultiDrawMode::Auto:
|
||||
break; // resolution never yields Auto
|
||||
}
|
||||
|
||||
// Every tier above may decline a batch whose shape it cannot express. The two
|
||||
// below are the floor: a base-vertex replay where the driver has one, and the
|
||||
// rewritten index stream where it does not. Both are safe for any batch these
|
||||
// entry points can receive.
|
||||
if (!drawn) drawn = RunBaseVertexLoop(mode, count, type, indices, drawcount, basevertex, feedDrawID);
|
||||
if (!drawn) drawn = RunRebasedDrawElements(mode, count, type, indices, drawcount, basevertex, feedDrawID);
|
||||
if (!drawn) {
|
||||
MGLOG_E("DirectGLES multi-draw: no usable tier for a %d sub-draw batch (mode 0x%x, type 0x%x); "
|
||||
"the batch was dropped",
|
||||
drawcount, mode, type);
|
||||
}
|
||||
}
|
||||
} // namespace MobileGL::MG_Backend::DirectGLES::MultiDrawImpl
|
||||
@@ -0,0 +1,64 @@
|
||||
// MobileGL - MobileGL/MG_Backend/DirectGLES/MultiDraw.h
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#pragma once
|
||||
#include <Includes.h>
|
||||
#include <Config.h>
|
||||
#include "DirectGLES.h"
|
||||
|
||||
// Emulation of the desktop glMultiDrawElements / glMultiDrawElementsBaseVertex entry
|
||||
// points on OpenGL ES, which has neither in core.
|
||||
//
|
||||
// Every strategy below is an emulation; they differ only in which driver capability
|
||||
// they lean on and in how many driver entries a batch of N sub-draws costs. The design
|
||||
// follows MobileGlues (MobileGL-Dev/MobileGlues, gl/multidraw.cpp) tier for tier, plus
|
||||
// the native GL_EXT_multi_draw_arrays interaction that MobileGL already had:
|
||||
//
|
||||
// Ext one glMultiDrawElementsBaseVertexEXT 1 driver entry
|
||||
// MultiIndirect one glMultiDrawElementsIndirectEXT 1 driver entry + 1 upload
|
||||
// Indirect N x glDrawElementsIndirect N + 1 upload
|
||||
// BaseVertex N x glDrawElementsBaseVertex N
|
||||
// DrawElements N x glDrawElements over CPU-rebased indices N + 1 upload
|
||||
// Compute 1 x glDrawElements over a GPU-flattened, 1 dispatch + 1 entry
|
||||
// rebased index stream
|
||||
//
|
||||
// Which one runs is resolved once per ES context from the driver's capabilities,
|
||||
// capped by MOBILEGL_ESPRYT_MULTIDRAW_MODE, and can additionally be demoted per batch
|
||||
// when the batch's own shape rules a tier out (see ResolveTierForBatch in the .cpp).
|
||||
namespace MobileGL::MG_Backend::DirectGLES::MultiDrawImpl {
|
||||
// The tier this ES context resolved to, computed on first use and stable after.
|
||||
MG_Config::GLESMultiDrawMode ResolvedTier();
|
||||
// "multiindirect", "compute", ... - stable identifiers, also used by the POST row.
|
||||
const char* TierName(MG_Config::GLESMultiDrawMode tier);
|
||||
// One line naming the resolved tier, the tiers the driver can support, and the env
|
||||
// clamp if one applied. For DriverPost and the startup log.
|
||||
String DescribeTierResolution();
|
||||
|
||||
// The resolution itself, as a pure function of a capability set: the backend feeds
|
||||
// it the live ES context's capabilities, DriverPost feeds it the ones it probed
|
||||
// standalone, and both therefore report the same tier. `explanation`, when non-null,
|
||||
// receives the "requested -> resolved (driver supports: ...)" line.
|
||||
MG_Config::GLESMultiDrawMode ResolveTier(const MG_External::GLESCapabilities& caps,
|
||||
const MG_External::GLESFunctionsTable& funcs,
|
||||
MG_Config::GLESMultiDrawMode requested, String* explanation);
|
||||
// Whether one tier is runnable on the given capability set, for per-row POST output.
|
||||
Bool IsTierSupported(const MG_External::GLESCapabilities& caps, const MG_External::GLESFunctionsTable& funcs,
|
||||
MG_Config::GLESMultiDrawMode tier);
|
||||
|
||||
// Runs `drawcount` indexed sub-draws as one glMultiDrawElements(BaseVertex) call
|
||||
// would. `basevertex` is null for the plain glMultiDrawElements entry point (every
|
||||
// base vertex is 0). Owns the whole draw, preparation included: callers must not
|
||||
// have run PrepareForDraw, because the compute tier has to dispatch before the
|
||||
// draw state is established.
|
||||
void DrawElementsBatch(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex);
|
||||
|
||||
// The ES context is gone: every scratch buffer and the compute program belonged to
|
||||
// it, so drop the names without deleting them (the dead context reclaims them).
|
||||
void OnBackendContextDestroyed();
|
||||
} // namespace MobileGL::MG_Backend::DirectGLES::MultiDrawImpl
|
||||
@@ -18,6 +18,13 @@
|
||||
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
|
||||
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
|
||||
#include <MG_Util/Converters/MGToGL/FramebufferEnumConverter.h>
|
||||
#include <MG_Util/Math/HalfFloat.h>
|
||||
#include <MG_Util/Math/SmallFloat.h>
|
||||
|
||||
#include <cmath>
|
||||
#include <cctype>
|
||||
#include <cstring>
|
||||
#include <regex>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES {
|
||||
namespace {
|
||||
@@ -41,15 +48,17 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return options;
|
||||
}
|
||||
|
||||
Flags<PixelFormatNormalizeOptionBit> GetRuntimeFallbackNormalizeOptions(GLenum requestedInternalFormat) {
|
||||
Flags<PixelFormatNormalizeOptionBit>
|
||||
GetRuntimeFallbackNormalizeOptions(GLenum requestedInternalFormat,
|
||||
Flags<PixelFormatNormalizeOptionBit> extraOptions) {
|
||||
using namespace MG_Util::TextureFormatProcessor;
|
||||
const Flags<PixelFormatNormalizeOptionBit> forcedOptions =
|
||||
GetApplicablePixelFormatNormalizeOptions(requestedInternalFormat, GetForcedPixelFormatNormalizeOptions());
|
||||
const Flags<PixelFormatNormalizeOptionBit> forcedOptions = GetApplicablePixelFormatNormalizeOptions(
|
||||
requestedInternalFormat, GetForcedPixelFormatNormalizeOptions() | extraOptions);
|
||||
if (forcedOptions) {
|
||||
return forcedOptions;
|
||||
}
|
||||
return GetApplicablePixelFormatNormalizeOptions(requestedInternalFormat,
|
||||
GetDriverPixelFormatNormalizeOptions());
|
||||
return GetApplicablePixelFormatNormalizeOptions(
|
||||
requestedInternalFormat, GetDriverPixelFormatNormalizeOptions() | extraOptions);
|
||||
}
|
||||
|
||||
Bool HasCachedFormatCapability(TextureInternalFormat internalFormat,
|
||||
@@ -109,13 +118,61 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
const GLenum requestedInternalFormat = MG_Util::ConvertTextureInternalFormatToGLEnum(internalFormat);
|
||||
Flags<PixelFormatNormalizeOptionBit> options;
|
||||
if (!pActiveBackendObject || ShouldUseCaveatFormat(internalFormat, targetIndex)) {
|
||||
options = GetRuntimeFallbackNormalizeOptions(requestedInternalFormat);
|
||||
options = GetRuntimeFallbackNormalizeOptions(
|
||||
requestedInternalFormat,
|
||||
TextureImpl::GetRenderTargetNormalizeOptions(g_GLESCapabilities, targetIndex));
|
||||
}
|
||||
NormalizePixelFormat(requestedInternalFormat, options, outInternalFormat, outFormat, outType);
|
||||
}
|
||||
} // namespace
|
||||
|
||||
namespace TextureImpl {
|
||||
// Every image that can back a colour attachment needs a colour-renderable storage format,
|
||||
// and ES has no renderable three-channel format at all: a three-channel float fallback is
|
||||
// a legal ES texture but neither legal multisample storage nor a legal attachment, so
|
||||
// GL_RGB8_SNORM / GL_RGB16F / ... have to be widened to four channels for any of them.
|
||||
// This used to cover the multisample pair alone, on the grounds that only those can never
|
||||
// be uploaded to; the transfer paths now expand three-channel client data themselves
|
||||
// (Managers.cpp PrepareFallbackUpload) and hide the added alpha again on sample and
|
||||
// readback, so the same substitution is available everywhere.
|
||||
//
|
||||
// The widening only ever *happens* where the driver refuses the native form (see
|
||||
// PopulateFormatCapabilitiesImpl: outside multisample storage it rides the driver branch,
|
||||
// behind the native probe), so a driver that does render to a three-channel image keeps
|
||||
// allocating it byte for byte.
|
||||
//
|
||||
// Do NOT read that as "nothing changes off-device". Measured on Mesa 26.1.6 llvmpipe
|
||||
// (the headless CI driver), an ES 3.2 GL_TEXTURE_2D colour attachment is COMPLETE for
|
||||
// GL_RGB8 and GL_RGB16F but INCOMPLETE_ATTACHMENT for GL_RGB8_SNORM, GL_SRGB8 and every
|
||||
// RGB integer format, and UNSUPPORTED for GL_RGB32F. Those eight formats therefore DO
|
||||
// take the widened path on llvmpipe, which is where the retrace fixtures and the glcts
|
||||
// green suites run - the substitution is driver-conditional, not desktop-exempt.
|
||||
//
|
||||
// A buffer texture is the one image that can never be an attachment; its storage is the
|
||||
// buffer object's, and widening it would misdescribe the application's data.
|
||||
Bool TargetRequiresRenderableFormat(SizeT targetIndex) {
|
||||
if (targetIndex >= kFormatCapabilityTargetCount) {
|
||||
return false;
|
||||
}
|
||||
if (targetIndex == kFormatCapabilityRenderbufferTargetIndex) {
|
||||
return true;
|
||||
}
|
||||
return static_cast<TextureTarget>(targetIndex) != TextureTarget::TextureBuffer;
|
||||
}
|
||||
|
||||
Flags<PixelFormatNormalizeOptionBit> GetRenderTargetNormalizeOptions(
|
||||
const MG_External::GLESCapabilities& capabilities, SizeT targetIndex) {
|
||||
Flags<PixelFormatNormalizeOptionBit> options;
|
||||
if (!TargetRequiresRenderableFormat(targetIndex)) {
|
||||
return options;
|
||||
}
|
||||
options |= PixelFormatNormalizeOptionBit::NoThreeChannelRenderTarget;
|
||||
if (!capabilities.SupportsRenderSnorm || !capabilities.SupportsNorm16Texture) {
|
||||
options |= PixelFormatNormalizeOptionBit::NoSnorm16RenderTarget;
|
||||
}
|
||||
return options;
|
||||
}
|
||||
|
||||
void GenerateTextureFormatInfo(TextureInternalFormat internalFormat, GLenum* outInternalFormat,
|
||||
GLenum* outFormat, GLenum* outType, TextureTarget target) {
|
||||
#ifdef TRACY_ENABLE
|
||||
@@ -144,6 +201,31 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
Bool ShouldUseCaveatRenderbufferFormat(TextureInternalFormat internalFormat) {
|
||||
return ShouldUseCaveatFormat(internalFormat, GetRenderbufferFormatCapabilityTargetIndex());
|
||||
}
|
||||
|
||||
namespace {
|
||||
Bool BackendFormatAddsAlpha(TextureInternalFormat internalFormat, SizeT targetIndex) {
|
||||
if (!TargetRequiresRenderableFormat(targetIndex)) {
|
||||
return false;
|
||||
}
|
||||
if (pActiveBackendObject && !ShouldUseCaveatFormat(internalFormat, targetIndex)) {
|
||||
return false;
|
||||
}
|
||||
const GLenum requestedInternalFormat = MG_Util::ConvertTextureInternalFormatToGLEnum(internalFormat);
|
||||
const Flags<PixelFormatNormalizeOptionBit> options = GetRuntimeFallbackNormalizeOptions(
|
||||
requestedInternalFormat, GetRenderTargetNormalizeOptions(g_GLESCapabilities, targetIndex));
|
||||
return static_cast<Bool>(options & PixelFormatNormalizeOptionBit::NoThreeChannelRenderTarget);
|
||||
}
|
||||
} // namespace
|
||||
|
||||
Bool BackendTextureFormatAddsAlpha(TextureInternalFormat internalFormat, TextureTarget target) {
|
||||
const SizeT targetIndex =
|
||||
target == TextureTarget::Unknown ? kFormatCapabilityTargetCount : GetFormatCapabilityTargetIndex(target);
|
||||
return BackendFormatAddsAlpha(internalFormat, targetIndex);
|
||||
}
|
||||
|
||||
Bool BackendRenderbufferFormatAddsAlpha(TextureInternalFormat internalFormat) {
|
||||
return BackendFormatAddsAlpha(internalFormat, GetRenderbufferFormatCapabilityTargetIndex());
|
||||
}
|
||||
} // namespace TextureImpl
|
||||
namespace PrgramImpl {
|
||||
String ProcessOutColorLocations(const String& glslCode) {
|
||||
@@ -272,6 +354,55 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
return glslCode;
|
||||
}
|
||||
|
||||
String BroadcastLegacyFragColor(String glslCode, GLenum shaderType, Uint drawBufferCount) {
|
||||
#ifdef TRACY_ENABLE
|
||||
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
|
||||
#endif
|
||||
// The name is the marker: ShaderSourceProcessor only emits it when the source
|
||||
// wrote gl_FragColor, and such a shader can have no other output.
|
||||
static const char* const kLoweredName = "mg_FragColor";
|
||||
if (shaderType != GL_FRAGMENT_SHADER || drawBufferCount <= 1) {
|
||||
return glslCode;
|
||||
}
|
||||
static const std::regex declRegex(
|
||||
R"(layout\s*\(\s*location\s*=\s*0\s*\)\s*out\s+((?:lowp|mediump|highp)\s+)?vec4\s+mg_FragColor\s*;)");
|
||||
std::smatch declMatch;
|
||||
if (!std::regex_search(glslCode, declMatch, declRegex)) {
|
||||
return glslCode;
|
||||
}
|
||||
const String precision = declMatch[1].matched ? declMatch[1].str() : String();
|
||||
|
||||
String replicaDecls;
|
||||
String replicaCopies;
|
||||
for (Uint location = 1; location < drawBufferCount; ++location) {
|
||||
const String name = String(kLoweredName) + "_" + std::to_string(location);
|
||||
replicaDecls += "\nlayout(location = " + std::to_string(location) + ") out " + precision + "vec4 " +
|
||||
name + ";";
|
||||
replicaCopies += "\n " + name + " = " + kLoweredName + ";";
|
||||
}
|
||||
|
||||
static const std::regex mainRegex(R"(void\s+main\s*\([^)]*\)\s*\{)");
|
||||
std::smatch mainMatch;
|
||||
if (!std::regex_search(glslCode, mainMatch, mainRegex)) {
|
||||
return glslCode;
|
||||
}
|
||||
SizeT bracePos = static_cast<SizeT>(mainMatch.position(0) + mainMatch.length(0) - 1);
|
||||
Int depth = 0;
|
||||
for (SizeT pos = bracePos; pos < glslCode.size(); ++pos) {
|
||||
if (glslCode[pos] == '{') {
|
||||
++depth;
|
||||
} else if (glslCode[pos] == '}') {
|
||||
--depth;
|
||||
if (depth == 0) {
|
||||
glslCode.insert(pos, replicaCopies + "\n");
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
glslCode.insert(static_cast<SizeT>(declMatch.position(0)) + declMatch[0].str().size(), replicaDecls);
|
||||
return glslCode;
|
||||
}
|
||||
|
||||
String ForceFlatIntegerVaryings(const String& glslCode, GLenum shaderType) {
|
||||
#ifdef TRACY_ENABLE
|
||||
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
|
||||
@@ -338,6 +469,167 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
return result;
|
||||
}
|
||||
|
||||
namespace {
|
||||
// How a lookup carries its level of detail, and how many arguments it takes
|
||||
// before the optional bias.
|
||||
struct LodLookupForm {
|
||||
const char* name;
|
||||
Int requiredArgs; // arguments before the optional bias (implicit form)
|
||||
Int explicitLodArg; // index of the explicit LOD argument, -1 for implicit
|
||||
};
|
||||
|
||||
// texelFetch* is deliberately absent: an integer fetch names its level directly
|
||||
// and takes no LOD bias. textureGather has no bias either. textureGrad* derives
|
||||
// the LOD from gradients and offers no argument to fold a bias into, so it is
|
||||
// left alone rather than rewritten incorrectly.
|
||||
constexpr LodLookupForm LOD_LOOKUP_FORMS[] = {
|
||||
{"textureProjLodOffset", 0, 2}, {"textureProjOffset", 4, -1}, {"textureProjLod", 0, 2},
|
||||
{"textureLodOffset", 0, 2}, {"textureOffset", 3, -1}, {"textureProj", 2, -1},
|
||||
{"textureLod", 0, 2}, {"texture", 2, -1},
|
||||
};
|
||||
|
||||
// Sampler types with no mip chain, or whose GLSL lookups have no bias overload
|
||||
// at all (the array-shadow forms), so nothing can or should be folded in.
|
||||
Bool IsBiasableSamplerType(const String& samplerType) {
|
||||
if (samplerType.find("MS") != String::npos) return false; // multisample
|
||||
if (samplerType.find("Buffer") != String::npos) return false; // texture buffer
|
||||
if (samplerType.find("Rect") != String::npos) return false; // rectangle: no mips
|
||||
if (samplerType == "sampler2DArrayShadow") return false;
|
||||
if (samplerType == "samplerCubeArrayShadow") return false;
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool IsIdentifierChar(char c) { return std::isalnum(static_cast<unsigned char>(c)) || c == '_'; }
|
||||
|
||||
// Byte offsets of the top-level argument separators and of the closing paren,
|
||||
// starting from the '(' at openParen. Empty when the parentheses do not balance.
|
||||
Vector<SizeT> SplitCallArguments(const String& code, SizeT openParen) {
|
||||
Vector<SizeT> marks;
|
||||
Int depth = 0;
|
||||
for (SizeT i = openParen; i < code.size(); ++i) {
|
||||
const char c = code[i];
|
||||
if (c == '(' || c == '[') {
|
||||
++depth;
|
||||
} else if (c == ']') {
|
||||
--depth;
|
||||
} else if (c == ')') {
|
||||
--depth;
|
||||
if (depth == 0) {
|
||||
marks.push_back(i);
|
||||
return marks;
|
||||
}
|
||||
} else if (c == ',' && depth == 1) {
|
||||
marks.push_back(i);
|
||||
}
|
||||
}
|
||||
return {};
|
||||
}
|
||||
} // namespace
|
||||
|
||||
String EmulateTextureLodBias(const String& glslCode) {
|
||||
#ifdef TRACY_ENABLE
|
||||
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
|
||||
#endif
|
||||
if (glslCode.find("sampler") == String::npos || glslCode.find("texture") == String::npos) {
|
||||
return glslCode;
|
||||
}
|
||||
|
||||
// Collect the mip-capable sampler uniforms this shader declares.
|
||||
static const std::regex samplerDeclRegex(
|
||||
R"(uniform\s+(?:(?:highp|mediump|lowp)\s+)?([iu]?sampler[A-Za-z0-9]*)\s+([A-Za-z_][A-Za-z0-9_]*)\s*;)");
|
||||
UnorderedMap<String, String> samplerNames; // name -> bias uniform name
|
||||
for (std::sregex_iterator it(glslCode.begin(), glslCode.end(), samplerDeclRegex), end; it != end; ++it) {
|
||||
const String samplerType = (*it)[1].str();
|
||||
if (!IsBiasableSamplerType(samplerType)) continue;
|
||||
const String name = (*it)[2].str();
|
||||
samplerNames.emplace(name, String(LOD_BIAS_UNIFORM_PREFIX) + name);
|
||||
}
|
||||
if (samplerNames.empty()) {
|
||||
return glslCode;
|
||||
}
|
||||
|
||||
// Rewrite the lookups. Right-to-left so earlier offsets stay valid, and only for
|
||||
// samplers named directly as the first argument (SPIRV-Cross never produces an
|
||||
// expression there for ES output, which has no separate sampler objects).
|
||||
String result = glslCode;
|
||||
Vector<String> usedSamplers;
|
||||
for (SizeT scan = result.size(); scan-- > 0;) {
|
||||
if (result[scan] != 't') continue;
|
||||
if (scan > 0 && IsIdentifierChar(result[scan - 1])) continue;
|
||||
|
||||
const LodLookupForm* form = nullptr;
|
||||
SizeT openParen = 0;
|
||||
for (const auto& candidate : LOD_LOOKUP_FORMS) {
|
||||
const SizeT nameLength = std::strlen(candidate.name);
|
||||
if (result.compare(scan, nameLength, candidate.name) != 0) continue;
|
||||
SizeT after = result.find_first_not_of(" \t", scan + nameLength);
|
||||
if (after == String::npos || result[after] != '(') continue;
|
||||
form = &candidate;
|
||||
openParen = after;
|
||||
break;
|
||||
}
|
||||
if (form == nullptr) continue;
|
||||
|
||||
const Vector<SizeT> marks = SplitCallArguments(result, openParen);
|
||||
if (marks.empty()) continue;
|
||||
const SizeT argCount = marks.size();
|
||||
const SizeT closeParen = marks.back();
|
||||
|
||||
// First argument must be one of our samplers.
|
||||
const SizeT firstArgStart = result.find_first_not_of(" \t", openParen + 1);
|
||||
SizeT firstArgEnd = marks.front();
|
||||
while (firstArgEnd > firstArgStart && (result[firstArgEnd - 1] == ' ' || result[firstArgEnd - 1] == '\t')) {
|
||||
--firstArgEnd;
|
||||
}
|
||||
if (firstArgStart == String::npos || firstArgEnd <= firstArgStart) continue;
|
||||
const String samplerName = result.substr(firstArgStart, firstArgEnd - firstArgStart);
|
||||
const auto samplerIt = samplerNames.find(samplerName);
|
||||
if (samplerIt == samplerNames.end()) continue;
|
||||
|
||||
const String& biasName = samplerIt->second;
|
||||
if (form->explicitLodArg >= 0) {
|
||||
// Explicit LOD: the bias adds to it, as Vulkan does for
|
||||
// OpImageSampleExplicitLod and as the CTS reference expects.
|
||||
const SizeT lodIndex = static_cast<SizeT>(form->explicitLodArg);
|
||||
if (argCount <= lodIndex) continue;
|
||||
const SizeT lodStart = marks[lodIndex - 1] + 1;
|
||||
const SizeT lodEnd = marks[lodIndex];
|
||||
result.insert(lodEnd, String(") + ") + biasName + ")");
|
||||
result.insert(lodStart, "((");
|
||||
} else {
|
||||
const SizeT required = static_cast<SizeT>(form->requiredArgs);
|
||||
if (argCount == required) {
|
||||
result.insert(closeParen, String(", ") + biasName);
|
||||
} else if (argCount == required + 1) {
|
||||
const SizeT biasStart = marks[argCount - 2] + 1;
|
||||
result.insert(closeParen, String(") + ") + biasName + ")");
|
||||
result.insert(biasStart, "((");
|
||||
} else {
|
||||
continue;
|
||||
}
|
||||
}
|
||||
usedSamplers.push_back(samplerName);
|
||||
}
|
||||
if (usedSamplers.empty()) {
|
||||
return glslCode;
|
||||
}
|
||||
|
||||
// Declare the bias uniforms that were actually referenced, right after the
|
||||
// sampler declaration line they belong to.
|
||||
for (const auto& samplerName : usedSamplers) {
|
||||
const String& biasName = samplerNames[samplerName];
|
||||
if (result.find(String("float ") + biasName + ";") != String::npos) continue;
|
||||
const std::regex declRegex(
|
||||
R"(uniform\s+(?:(?:highp|mediump|lowp)\s+)?[iu]?sampler[A-Za-z0-9]*\s+)" + samplerName + R"(\s*;)");
|
||||
std::smatch match;
|
||||
if (!std::regex_search(result, match, declRegex)) continue;
|
||||
const SizeT declEnd = static_cast<SizeT>(match.position(0)) + match[0].str().size();
|
||||
result.insert(declEnd, String("\nuniform highp float ") + biasName + ";");
|
||||
}
|
||||
return result;
|
||||
}
|
||||
|
||||
} // namespace PrgramImpl
|
||||
|
||||
namespace Utils {
|
||||
@@ -448,4 +740,412 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
}
|
||||
}
|
||||
} // namespace Utils
|
||||
|
||||
// ---- Client-format readback conversion helpers -------------------------------------------------
|
||||
// ReadPixels/GetTexImage read a guaranteed wide RGBA(_INTEGER) layout from the ES driver and repack
|
||||
// it on the CPU into the client's (format, type) layout. Everything here is pure byte shuffling so
|
||||
// unit tests can assert the exact packed words; field positions follow GL 3.3 table 3.6 and mirror
|
||||
// the GL CTS packed_pixels oracle (glcPackedPixelsTests.cpp pack_UNSIGNED_* helpers).
|
||||
namespace ReadbackImpl {
|
||||
using MG_Util::DecodeHalfBitsToFloat;
|
||||
using MG_Util::EncodeFloatToHalfBits;
|
||||
|
||||
Bool GetReadbackChannelMapping(GLenum format, ReadbackChannelMapping& outMapping) {
|
||||
switch (format) {
|
||||
case GL_RED: outMapping = {{0, 0, 0, 0}, 1, false}; return true;
|
||||
case GL_RED_INTEGER: outMapping = {{0, 0, 0, 0}, 1, true}; return true;
|
||||
// Desktop-GL single-channel client formats (GL CTS packed_pixels rgba8_format_green/blue):
|
||||
// the destination holds one component sourced from the named channel of the wide RGBA read.
|
||||
// GL_ALPHA is mapped here from the raw enum because the state layer folds it into Red for the
|
||||
// legacy alpha-texture upload hack.
|
||||
case GL_GREEN: outMapping = {{1, 0, 0, 0}, 1, false}; return true;
|
||||
case GL_GREEN_INTEGER: outMapping = {{1, 0, 0, 0}, 1, true}; return true;
|
||||
case GL_BLUE: outMapping = {{2, 0, 0, 0}, 1, false}; return true;
|
||||
case GL_BLUE_INTEGER: outMapping = {{2, 0, 0, 0}, 1, true}; return true;
|
||||
case GL_ALPHA: outMapping = {{3, 0, 0, 0}, 1, false}; return true;
|
||||
case GL_ALPHA_INTEGER: outMapping = {{3, 0, 0, 0}, 1, true}; return true;
|
||||
case GL_RG: outMapping = {{0, 1, 0, 0}, 2, false}; return true;
|
||||
case GL_RG_INTEGER: outMapping = {{0, 1, 0, 0}, 2, true}; return true;
|
||||
case GL_RGB: outMapping = {{0, 1, 2, 0}, 3, false}; return true;
|
||||
case GL_RGB_INTEGER: outMapping = {{0, 1, 2, 0}, 3, true}; return true;
|
||||
case GL_BGR: outMapping = {{2, 1, 0, 0}, 3, false}; return true;
|
||||
case GL_BGR_INTEGER: outMapping = {{2, 1, 0, 0}, 3, true}; return true;
|
||||
case GL_RGBA: outMapping = {{0, 1, 2, 3}, 4, false}; return true;
|
||||
case GL_RGBA_INTEGER: outMapping = {{0, 1, 2, 3}, 4, true}; return true;
|
||||
case GL_BGRA: outMapping = {{2, 1, 0, 3}, 4, false}; return true;
|
||||
case GL_BGRA_INTEGER: outMapping = {{2, 1, 0, 3}, 4, true}; return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
Bool GetPackedReadbackLayout(GLenum type, PackedReadbackLayout& out) {
|
||||
switch (type) {
|
||||
// Non-REV types pack the first format component starting at the most significant bit,
|
||||
// *_REV types starting at the least significant bit (GL CTS pack_UNSIGNED_SHORT_5_6_5:
|
||||
// R bits 15-11; pack_UNSIGNED_SHORT_1_5_5_5_REV: R bits 4-0, A bit 15).
|
||||
case GL_UNSIGNED_BYTE_3_3_2: out = {3, {3, 3, 2, 0}, {5, 2, 0, 0}, 1, false}; return true;
|
||||
case GL_UNSIGNED_BYTE_2_3_3_REV: out = {3, {3, 3, 2, 0}, {0, 3, 6, 0}, 1, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_5_6_5: out = {3, {5, 6, 5, 0}, {11, 5, 0, 0}, 2, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_5_6_5_REV: out = {3, {5, 6, 5, 0}, {0, 5, 11, 0}, 2, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_4_4_4_4: out = {4, {4, 4, 4, 4}, {12, 8, 4, 0}, 2, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_4_4_4_4_REV: out = {4, {4, 4, 4, 4}, {0, 4, 8, 12}, 2, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_5_5_5_1: out = {4, {5, 5, 5, 1}, {11, 6, 1, 0}, 2, false}; return true;
|
||||
case GL_UNSIGNED_SHORT_1_5_5_5_REV: out = {4, {5, 5, 5, 1}, {0, 5, 10, 15}, 2, false}; return true;
|
||||
case GL_UNSIGNED_INT_8_8_8_8: out = {4, {8, 8, 8, 8}, {24, 16, 8, 0}, 4, false}; return true;
|
||||
case GL_UNSIGNED_INT_8_8_8_8_REV: out = {4, {8, 8, 8, 8}, {0, 8, 16, 24}, 4, false}; return true;
|
||||
case GL_UNSIGNED_INT_10_10_10_2: out = {4, {10, 10, 10, 2}, {22, 12, 2, 0}, 4, false}; return true;
|
||||
case GL_UNSIGNED_INT_2_10_10_10_REV: out = {4, {10, 10, 10, 2}, {0, 10, 20, 30}, 4, false}; return true;
|
||||
// Packed-float RGB types: fields hold unsigned small floats; 5_9_9_9_REV's shared 5-bit
|
||||
// exponent (bits 31-27) is emitted by EncodeSharedExponentRGB9E5, not a component field.
|
||||
case GL_UNSIGNED_INT_10F_11F_11F_REV: out = {3, {11, 11, 10, 0}, {0, 11, 22, 0}, 4, true}; return true;
|
||||
case GL_UNSIGNED_INT_5_9_9_9_REV: out = {3, {9, 9, 9, 0}, {0, 9, 18, 0}, 4, true}; return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
SizeT GetReadbackComponentSize(GLenum type) {
|
||||
PackedReadbackLayout packedLayout{};
|
||||
if (GetPackedReadbackLayout(type, packedLayout)) {
|
||||
return packedLayout.byteSize;
|
||||
}
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE:
|
||||
case GL_BYTE:
|
||||
return 1;
|
||||
case GL_UNSIGNED_SHORT:
|
||||
case GL_SHORT:
|
||||
case GL_HALF_FLOAT:
|
||||
return 2;
|
||||
case GL_UNSIGNED_INT:
|
||||
case GL_INT:
|
||||
case GL_FLOAT:
|
||||
return 4;
|
||||
default:
|
||||
return 0;
|
||||
}
|
||||
}
|
||||
|
||||
SizeT GetReadbackDstPixelSize(const ReadbackChannelMapping& mapping, GLenum type) {
|
||||
PackedReadbackLayout packedLayout{};
|
||||
if (GetPackedReadbackLayout(type, packedLayout)) {
|
||||
if (packedLayout.fieldCount != mapping.channelCount) {
|
||||
return 0; // 3-field packed types pair with 3-component formats only, 4 with 4
|
||||
}
|
||||
if (mapping.isInteger && packedLayout.isFloatPacked) {
|
||||
return 0; // packed-float RGB types never pair with integer formats
|
||||
}
|
||||
return packedLayout.byteSize;
|
||||
}
|
||||
if (mapping.isInteger && (type == GL_FLOAT || type == GL_HALF_FLOAT)) {
|
||||
return 0;
|
||||
}
|
||||
const SizeT componentSize = GetReadbackComponentSize(type);
|
||||
return componentSize == 0 ? 0 : static_cast<SizeT>(mapping.channelCount) * componentSize;
|
||||
}
|
||||
|
||||
namespace {
|
||||
void WritePackedReadbackWord(Uint8* dst, Uint32 word, SizeT byteSize) {
|
||||
switch (byteSize) {
|
||||
case 1: {
|
||||
const auto out = static_cast<Uint8>(word);
|
||||
Memcpy(dst, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case 2: {
|
||||
const auto out = static_cast<Uint16>(word);
|
||||
Memcpy(dst, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
default:
|
||||
Memcpy(dst, &word, sizeof(word));
|
||||
break;
|
||||
}
|
||||
}
|
||||
} // namespace
|
||||
|
||||
// Shared encoders live in MG_Util/Math/SmallFloat.h so the upload conversion
|
||||
// (PixelStoreProcessor) uses byte-identical packing; kept exported here for unit tests.
|
||||
Uint32 EncodeFloatToUnsignedF11(Float value) { return MG_Util::EncodeFloatToUnsignedF11(value); }
|
||||
Uint32 EncodeFloatToUnsignedF10(Float value) { return MG_Util::EncodeFloatToUnsignedF10(value); }
|
||||
Uint32 EncodeSharedExponentRGB9E5(const Float rgb[3]) { return MG_Util::EncodeSharedExponentRGB9E5(rgb); }
|
||||
|
||||
void ConvertWideReadbackRow(const Uint8* src, Uint8* dst, SizeT width, GLenum wideType,
|
||||
const ReadbackChannelMapping& mapping, GLenum type) {
|
||||
PackedReadbackLayout packedLayout{};
|
||||
const Bool isPacked = GetPackedReadbackLayout(type, packedLayout);
|
||||
const SizeT dstComponentSize = GetReadbackComponentSize(type);
|
||||
const SizeT dstPixelBytes = GetReadbackDstPixelSize(mapping, type);
|
||||
const SizeT srcPixelBytes = 4 * GetReadbackComponentSize(wideType);
|
||||
|
||||
for (SizeT col = 0; col < width; ++col) {
|
||||
const Uint8* srcPixel = src + col * srcPixelBytes;
|
||||
Uint8* dstPixel = dst + col * dstPixelBytes;
|
||||
if (mapping.isInteger) {
|
||||
Int64 srcValues[4];
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = wideType == GL_INT
|
||||
? static_cast<Int64>(reinterpret_cast<const Int32*>(srcPixel)[c])
|
||||
: static_cast<Int64>(reinterpret_cast<const Uint32*>(srcPixel)[c]);
|
||||
}
|
||||
if (isPacked) {
|
||||
// Integer sources clamp each component to the unsigned range of its field
|
||||
// (GL 3.3 section 4.3.1 final conversion).
|
||||
Uint32 word = 0;
|
||||
for (Int ch = 0; ch < packedLayout.fieldCount; ++ch) {
|
||||
const Int64 fieldMax = (Int64{1} << packedLayout.width[ch]) - 1;
|
||||
const auto v = static_cast<Uint32>(
|
||||
std::clamp<Int64>(srcValues[mapping.sourceChannel[ch]], 0, fieldMax));
|
||||
word |= v << packedLayout.shift[ch];
|
||||
}
|
||||
WritePackedReadbackWord(dstPixel, word, packedLayout.byteSize);
|
||||
} else {
|
||||
for (Int ch = 0; ch < mapping.channelCount; ++ch) {
|
||||
const Int64 v = srcValues[mapping.sourceChannel[ch]];
|
||||
Uint8* dstComponent = dstPixel + static_cast<SizeT>(ch) * dstComponentSize;
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE:
|
||||
*dstComponent = static_cast<Uint8>(std::clamp<Int64>(v, 0, 255));
|
||||
break;
|
||||
case GL_BYTE: {
|
||||
const auto out = static_cast<Int8>(std::clamp<Int64>(v, -128, 127));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_UNSIGNED_SHORT: {
|
||||
const auto out = static_cast<Uint16>(std::clamp<Int64>(v, 0, 65535));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_SHORT: {
|
||||
const auto out = static_cast<Int16>(std::clamp<Int64>(v, -32768, 32767));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_UNSIGNED_INT: {
|
||||
const auto out = static_cast<Uint32>(std::clamp<Int64>(v, 0, 4294967295LL));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_INT: {
|
||||
const auto out =
|
||||
static_cast<Int32>(std::clamp<Int64>(v, -2147483648LL, 2147483647LL));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
default:
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
} else {
|
||||
Float srcValues[4];
|
||||
switch (wideType) {
|
||||
case GL_UNSIGNED_BYTE:
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = static_cast<Float>(srcPixel[c]) / 255.0f;
|
||||
}
|
||||
break;
|
||||
case GL_BYTE:
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = std::max(
|
||||
static_cast<Float>(reinterpret_cast<const Int8*>(srcPixel)[c]) / 127.0f, -1.0f);
|
||||
}
|
||||
break;
|
||||
case GL_UNSIGNED_SHORT:
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] =
|
||||
static_cast<Float>(reinterpret_cast<const Uint16*>(srcPixel)[c]) / 65535.0f;
|
||||
}
|
||||
break;
|
||||
case GL_SHORT:
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = std::max(
|
||||
static_cast<Float>(reinterpret_cast<const Int16*>(srcPixel)[c]) / 32767.0f, -1.0f);
|
||||
}
|
||||
break;
|
||||
case GL_HALF_FLOAT:
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = DecodeHalfBitsToFloat(reinterpret_cast<const Uint16*>(srcPixel)[c]);
|
||||
}
|
||||
break;
|
||||
default: // GL_FLOAT
|
||||
for (Int c = 0; c < 4; ++c) {
|
||||
srcValues[c] = reinterpret_cast<const Float*>(srcPixel)[c];
|
||||
}
|
||||
break;
|
||||
}
|
||||
if (isPacked) {
|
||||
Uint32 word = 0;
|
||||
if (packedLayout.isFloatPacked) {
|
||||
const Float fields[3] = {srcValues[mapping.sourceChannel[0]],
|
||||
srcValues[mapping.sourceChannel[1]],
|
||||
srcValues[mapping.sourceChannel[2]]};
|
||||
word = type == GL_UNSIGNED_INT_5_9_9_9_REV
|
||||
? EncodeSharedExponentRGB9E5(fields)
|
||||
: (EncodeFloatToUnsignedF11(fields[0]) << packedLayout.shift[0]) |
|
||||
(EncodeFloatToUnsignedF11(fields[1]) << packedLayout.shift[1]) |
|
||||
(EncodeFloatToUnsignedF10(fields[2]) << packedLayout.shift[2]);
|
||||
} else {
|
||||
// Normalized encode: round(clamp(v, 0, 1) * (2^bits - 1)) into each field.
|
||||
for (Int ch = 0; ch < packedLayout.fieldCount; ++ch) {
|
||||
const auto fieldMax = static_cast<Float>((1u << packedLayout.width[ch]) - 1u);
|
||||
const auto v = static_cast<Uint32>(std::llround(
|
||||
std::clamp(srcValues[mapping.sourceChannel[ch]], 0.0f, 1.0f) * fieldMax));
|
||||
word |= v << packedLayout.shift[ch];
|
||||
}
|
||||
}
|
||||
WritePackedReadbackWord(dstPixel, word, packedLayout.byteSize);
|
||||
} else {
|
||||
for (Int ch = 0; ch < mapping.channelCount; ++ch) {
|
||||
const Float v = srcValues[mapping.sourceChannel[ch]];
|
||||
Uint8* dstComponent = dstPixel + static_cast<SizeT>(ch) * dstComponentSize;
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE:
|
||||
*dstComponent =
|
||||
static_cast<Uint8>(std::llround(std::clamp(v, 0.0f, 1.0f) * 255.0));
|
||||
break;
|
||||
case GL_BYTE: {
|
||||
const auto out =
|
||||
static_cast<Int8>(std::llround(std::clamp(v, -1.0f, 1.0f) * 127.0));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_UNSIGNED_SHORT: {
|
||||
const auto out =
|
||||
static_cast<Uint16>(std::llround(std::clamp(v, 0.0f, 1.0f) * 65535.0));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_SHORT: {
|
||||
const auto out =
|
||||
static_cast<Int16>(std::llround(std::clamp(v, -1.0f, 1.0f) * 32767.0));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_UNSIGNED_INT: {
|
||||
const auto out = static_cast<Uint32>(
|
||||
std::llround(static_cast<Double>(std::clamp(v, 0.0f, 1.0f)) * 4294967295.0));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_INT: {
|
||||
const auto out = static_cast<Int32>(
|
||||
std::llround(static_cast<Double>(std::clamp(v, -1.0f, 1.0f)) * 2147483647.0));
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
case GL_FLOAT:
|
||||
Memcpy(dstComponent, &v, sizeof(v));
|
||||
break;
|
||||
case GL_HALF_FLOAT: {
|
||||
const Uint16 out = EncodeFloatToHalfBits(v);
|
||||
Memcpy(dstComponent, &out, sizeof(out));
|
||||
break;
|
||||
}
|
||||
default:
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
static SizeT AlignReadbackRow(SizeT rowBytes, Int alignment) {
|
||||
const SizeT align = alignment > 0 ? static_cast<SizeT>(alignment) : 1;
|
||||
return (rowBytes + align - 1) / align * align;
|
||||
}
|
||||
|
||||
// Repacks wide RGBA(_INTEGER) rows into the client's (format, type) layout, honoring the
|
||||
// client-side PACK parameters and the bound pixel-pack buffer. `wide` holds
|
||||
// `sliceHeight * sliceCount` rows of `width` texels (slice-major, tightly stacked),
|
||||
// 4 components x GetReadbackComponentSize(wideType) bytes each.
|
||||
// applyPackImageParams: GL_PACK_IMAGE_HEIGHT / GL_PACK_SKIP_IMAGES apply only to GetTexImage
|
||||
// of 3D/array images; ReadPixels and 2D GetTexImage ignore them (GL 3.3 sections 4.3.1, 6.1.4).
|
||||
// Per the GL addressing rules, slice k row j lands at
|
||||
// SKIP_IMAGES*imageStride + SKIP_ROWS*rowStride + SKIP_PIXELS*pixelBytes
|
||||
// + k*imageStride + j*rowStride, with imageStride = max(IMAGE_HEIGHT, sliceHeight)*rowStride.
|
||||
Bool StoreWideRowsToClient(const Uint8* wide, GLenum wideType, GLsizei width, GLsizei sliceHeight,
|
||||
GLsizei sliceCount, const ReadbackChannelMapping& mapping, GLenum type,
|
||||
void* pixels, Bool applyPackImageParams) {
|
||||
const SizeT dstPixelBytes = GetReadbackDstPixelSize(mapping, type);
|
||||
if (dstPixelBytes == 0) {
|
||||
return false;
|
||||
}
|
||||
PackedReadbackLayout packedLayout{};
|
||||
const Bool isPackedType = GetPackedReadbackLayout(type, packedLayout);
|
||||
const SizeT dstComponentSize = GetReadbackComponentSize(type);
|
||||
|
||||
const auto& pixelPackBufferObject =
|
||||
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::PixelPack).GetBoundObject();
|
||||
|
||||
// Destination layout is computed from the client-side PACK parameters; only the actual pixel
|
||||
// rows are written so skip regions of the destination stay untouched.
|
||||
const auto packParams = MG_State::pGLContext->GetPixelStoreParameters(false);
|
||||
const SizeT rowPixels = static_cast<SizeT>(packParams.RowLength > 0 ? packParams.RowLength : width);
|
||||
const SizeT dstRowStride = AlignReadbackRow(rowPixels * dstPixelBytes, packParams.Alignment);
|
||||
const SizeT imageRows =
|
||||
applyPackImageParams && packParams.ImageHeight > 0
|
||||
? static_cast<SizeT>(packParams.ImageHeight)
|
||||
: static_cast<SizeT>(sliceHeight);
|
||||
const SizeT dstImageStride = imageRows * dstRowStride;
|
||||
const SizeT skipImages =
|
||||
applyPackImageParams ? static_cast<SizeT>(std::max(packParams.SkipImages, 0)) : SizeT{0};
|
||||
const SizeT dstSkipOffset = skipImages * dstImageStride +
|
||||
static_cast<SizeT>(std::max(packParams.SkipRows, 0)) * dstRowStride +
|
||||
static_cast<SizeT>(std::max(packParams.SkipPixels, 0)) * dstPixelBytes;
|
||||
const SizeT dstRowBytes = static_cast<SizeT>(width) * dstPixelBytes;
|
||||
|
||||
const SizeT pboBaseOffset = reinterpret_cast<SizeT>(pixels); // with a PBO, `pixels` is an offset
|
||||
if (pixelPackBufferObject) {
|
||||
const SizeT requiredSize = pboBaseOffset + dstSkipOffset +
|
||||
static_cast<SizeT>(sliceCount - 1) * dstImageStride +
|
||||
static_cast<SizeT>(sliceHeight - 1) * dstRowStride + dstRowBytes;
|
||||
if (requiredSize > pixelPackBufferObject->GetSize()) {
|
||||
MGLOG_E("Readback conversion: pixel pack buffer is too small");
|
||||
return true;
|
||||
}
|
||||
}
|
||||
|
||||
const SizeT srcComponentSize = GetReadbackComponentSize(wideType);
|
||||
const SizeT srcPixelBytes = 4 * srcComponentSize;
|
||||
Vector<Uint8> convertedRow(dstRowBytes);
|
||||
|
||||
for (GLsizei slice = 0; slice < sliceCount; ++slice) {
|
||||
for (GLsizei row = 0; row < sliceHeight; ++row) {
|
||||
const SizeT flatRow = static_cast<SizeT>(slice) * static_cast<SizeT>(sliceHeight) +
|
||||
static_cast<SizeT>(row);
|
||||
const Uint8* srcRow = wide + flatRow * static_cast<SizeT>(width) * srcPixelBytes;
|
||||
ConvertWideReadbackRow(srcRow, convertedRow.data(), static_cast<SizeT>(width), wideType,
|
||||
mapping, type);
|
||||
|
||||
if (packParams.SwapBytes) {
|
||||
const SizeT groupSize = isPackedType ? packedLayout.byteSize : dstComponentSize;
|
||||
if (groupSize > 1) {
|
||||
for (SizeT offset = 0; offset + groupSize <= dstRowBytes; offset += groupSize) {
|
||||
std::reverse(convertedRow.data() + offset, convertedRow.data() + offset + groupSize);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
const SizeT dstOffset = dstSkipOffset + static_cast<SizeT>(slice) * dstImageStride +
|
||||
static_cast<SizeT>(row) * dstRowStride;
|
||||
if (pixelPackBufferObject) {
|
||||
pixelPackBufferObject->WritebackFromBackend({convertedRow.data(), dstRowBytes},
|
||||
pboBaseOffset + dstOffset);
|
||||
} else {
|
||||
Memcpy(static_cast<Uint8*>(pixels) + dstOffset, convertedRow.data(), dstRowBytes);
|
||||
}
|
||||
}
|
||||
}
|
||||
if (pixelPackBufferObject) {
|
||||
// WritebackFromBackend bumps change serials with no backend op; re-open
|
||||
// the buffer draw-clean memos (once for the whole row loop).
|
||||
BufferImpl::BumpBufferMutationEpoch();
|
||||
}
|
||||
return true;
|
||||
}
|
||||
} // namespace ReadbackImpl
|
||||
} // namespace MobileGL::MG_Backend::DirectGLES
|
||||
|
||||
@@ -9,6 +9,8 @@
|
||||
#pragma once
|
||||
#include <Includes.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_Util/BackendLoaders/OpenGL/Loader.h>
|
||||
#include <MG_Util/Texture/TextureFormatProcessor.h>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectGLES {
|
||||
namespace DebugImpl {
|
||||
@@ -34,24 +36,113 @@ namespace MobileGL::MG_Backend::DirectGLES {
|
||||
} // namespace VertexArrayImpl
|
||||
|
||||
namespace TextureImpl {
|
||||
// Whether images on this format-capability target can back a colour attachment, and so
|
||||
// need a colour-renderable storage format even when the frontend asked for a
|
||||
// three-channel one ES never renders to. Shared by the capability probe (which passes the
|
||||
// capabilities it has just queried, before the globals are published) and by the
|
||||
// allocation path (which reads the active backend's), so the format the cache was probed
|
||||
// with is always the format the image is created with.
|
||||
Bool TargetRequiresRenderableFormat(SizeT targetIndex);
|
||||
Flags<PixelFormatNormalizeOptionBit> GetRenderTargetNormalizeOptions(
|
||||
const MG_External::GLESCapabilities& capabilities, SizeT targetIndex);
|
||||
|
||||
void GenerateTextureFormatInfo(TextureInternalFormat internalFormat, GLenum* outInternalFormat,
|
||||
GLenum* outFormat, GLenum* outType,
|
||||
TextureTarget target = TextureTarget::Unknown);
|
||||
void GenerateRenderbufferFormatInfo(TextureInternalFormat internalFormat, GLenum* outInternalFormat,
|
||||
GLenum* outFormat, GLenum* outType);
|
||||
Bool ShouldUseCaveatTextureFormat(TextureInternalFormat internalFormat, TextureTarget target);
|
||||
|
||||
// True when the format the image is actually created with has an alpha channel the
|
||||
// frontend format does not (the three-channel colour-renderable widening). GL reads such
|
||||
// a channel back as 1.0, so any swizzle source of ALPHA has to be answered with ONE and
|
||||
// any readback of the image has to overwrite the alpha the draw happened to leave there.
|
||||
Bool BackendTextureFormatAddsAlpha(TextureInternalFormat internalFormat, TextureTarget target);
|
||||
Bool BackendRenderbufferFormatAddsAlpha(TextureInternalFormat internalFormat);
|
||||
Bool ShouldUseCaveatRenderbufferFormat(TextureInternalFormat internalFormat);
|
||||
} // namespace TextureImpl
|
||||
|
||||
namespace FramebufferImpl {} // namespace FramebufferImpl
|
||||
|
||||
// Pure CPU helpers of the client-format readback conversion (ReadPixels/GetTexImage repack a wide
|
||||
// RGBA(_INTEGER) read into the caller's (format, type) layout). Kept context-free so unit tests can
|
||||
// exercise the exact packing the GL CTS packed_pixels oracle compares against.
|
||||
namespace ReadbackImpl {
|
||||
struct ReadbackChannelMapping {
|
||||
Int sourceChannel[4]; // RGBA source channel feeding each destination component
|
||||
Int channelCount; // destination component count
|
||||
Bool isInteger;
|
||||
};
|
||||
Bool GetReadbackChannelMapping(GLenum format, ReadbackChannelMapping& outMapping);
|
||||
|
||||
// Byte size of one destination component of `type`; packed types report the packed word size.
|
||||
// 0 = type not supported by the conversion path.
|
||||
SizeT GetReadbackComponentSize(GLenum type);
|
||||
|
||||
// Bit-field layout of a GL packed pixel type. width/shift are indexed in the client format's
|
||||
// component order (matching ReadbackChannelMapping); shift is the LSB position of the field in
|
||||
// the packed word: non-REV types pack the first component from the MSB, *_REV types from the
|
||||
// LSB (GL 3.3 table 3.6; field positions mirror the GL CTS glcPackedPixelsTests pack_* oracle).
|
||||
struct PackedReadbackLayout {
|
||||
Int fieldCount; // format components stored in the packed word
|
||||
Int width[4]; // bit width of each component's field
|
||||
Int shift[4]; // LSB bit position of each component's field
|
||||
SizeT byteSize; // packed word size in bytes (1, 2 or 4)
|
||||
Bool isFloatPacked; // 10F_11F_11F_REV / 5_9_9_9_REV: fields hold unsigned small floats
|
||||
};
|
||||
Bool GetPackedReadbackLayout(GLenum type, PackedReadbackLayout& out);
|
||||
|
||||
// Unsigned small-float encoders (EXT_packed_float / EXT_texture_shared_exponent semantics).
|
||||
Uint32 EncodeFloatToUnsignedF11(Float value);
|
||||
Uint32 EncodeFloatToUnsignedF10(Float value);
|
||||
Uint32 EncodeSharedExponentRGB9E5(const Float rgb[3]);
|
||||
|
||||
// Destination bytes per pixel for a (format mapping, type) readback pair; 0 when the pair is
|
||||
// not convertible (unknown type, packed field count != format component count, floating-point
|
||||
// or packed-float type with an integer format).
|
||||
SizeT GetReadbackDstPixelSize(const ReadbackChannelMapping& mapping, GLenum type);
|
||||
|
||||
// Repacks one row of wide RGBA(_INTEGER) texels (4 components of wideType each) into the
|
||||
// client's (format, type) layout. src holds width * 4 * GetReadbackComponentSize(wideType)
|
||||
// bytes, dst receives width * GetReadbackDstPixelSize(mapping, type) bytes.
|
||||
void ConvertWideReadbackRow(const Uint8* src, Uint8* dst, SizeT width, GLenum wideType,
|
||||
const ReadbackChannelMapping& mapping, GLenum type);
|
||||
|
||||
// Stores wide RGBA(_INTEGER) rows into the client pointer or the bound PACK pixel buffer,
|
||||
// honoring the client-side PACK pixel-store parameters (row length, alignment, skips,
|
||||
// swap-bytes, and - when applyPackImageParams - image height/skip images). Shared by the
|
||||
// DirectGLES and DirectVulkan readback conversion paths.
|
||||
Bool StoreWideRowsToClient(const Uint8* wide, GLenum wideType, GLsizei width, GLsizei sliceHeight,
|
||||
GLsizei sliceCount, const ReadbackChannelMapping& mapping, GLenum type,
|
||||
void* pixels, Bool applyPackImageParams);
|
||||
} // namespace ReadbackImpl
|
||||
|
||||
namespace PrgramImpl {
|
||||
String ProcessOutColorLocations(const String& glslCode);
|
||||
String ForceSupporterOutput(const String& glslCode);
|
||||
String ClampNormFallbackOutputs(String glslCode, GLenum shaderType, Uint32 snormOutputMask,
|
||||
Uint32 unormOutputMask);
|
||||
String ForceFlatIntegerVaryings(const String& glslCode, GLenum shaderType);
|
||||
// Legacy GLSL's gl_FragColor is broadcast to every enabled draw buffer (GL 4.6
|
||||
// 15.2.3), but ShaderSourceProcessor lowers it to the single output mg_FragColor,
|
||||
// which only ever reaches draw buffer 0. Replicates it across `drawBufferCount`
|
||||
// outputs and copies the value into them at the end of main. A no-op for
|
||||
// drawBufferCount <= 1, i.e. for everything but a framebuffer that actually
|
||||
// enables several draw buffers, so the ordinary single-target shader is untouched.
|
||||
String BroadcastLegacyFragColor(String glslCode, GLenum shaderType, Uint drawBufferCount);
|
||||
String RemoveLayoutBinding(const String& glslCode);
|
||||
// Prefix of the per-sampler float uniform that carries GL_TEXTURE_LOD_BIAS into
|
||||
// the shader (see EmulateTextureLodBias); the suffix is the sampler's own name.
|
||||
constexpr const char* LOD_BIAS_UNIFORM_PREFIX = "mg_lodBias_";
|
||||
// ES has no per-texture/sampler LOD bias at all (GL_TEXTURE_LOD_BIAS is desktop
|
||||
// only; Vulkan spells it VkSamplerCreateInfo::mipLodBias), so it has to reach the
|
||||
// shader as a uniform and be folded into every lookup's level of detail. Declares
|
||||
// one `uniform highp float mg_lodBias_<sampler>;` per mip-capable sampler and adds
|
||||
// it to the bias / explicit-LOD argument of every lookup that takes one. Draws push
|
||||
// the bound texture's (or sampler object's) value into it; a shader whose samplers
|
||||
// all have a zero bias is therefore unaffected. Returns the source unchanged when
|
||||
// there is nothing to rewrite.
|
||||
String EmulateTextureLodBias(const String& glslCode);
|
||||
} // namespace PrgramImpl
|
||||
|
||||
namespace Utils {
|
||||
|
||||
@@ -16,8 +16,10 @@
|
||||
#include "MG_Util/Converters/MGToStr/TextureEnumConverter.h"
|
||||
#include "MG_Util/Converters/MGToVk/TextureEnumConverter.h"
|
||||
#include "MG_Util/Texture/TextureFormatProcessor.h"
|
||||
#include "MG_Util/Async/ShaderCompilePool.h"
|
||||
|
||||
#include <Config.h>
|
||||
#include <cmath>
|
||||
#include <cstdlib>
|
||||
#include <cstring>
|
||||
|
||||
@@ -40,13 +42,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Bool IsLayeredTarget(TextureTarget target) {
|
||||
return target == TextureTarget::Texture3D || target == TextureTarget::Texture1DArray ||
|
||||
target == TextureTarget::Texture2DArray || target == TextureTarget::TextureCubeMap ||
|
||||
target == TextureTarget::TextureCubeMapArray ||
|
||||
target == TextureTarget::Texture2DMultisampleArray;
|
||||
target == TextureTarget::TextureCubeMapArray || target == TextureTarget::Texture2DMultisampleArray;
|
||||
}
|
||||
|
||||
Bool IsMultisampleTarget(TextureTarget target) {
|
||||
return target == TextureTarget::Texture2DMultisample ||
|
||||
target == TextureTarget::Texture2DMultisampleArray;
|
||||
return target == TextureTarget::Texture2DMultisample || target == TextureTarget::Texture2DMultisampleArray;
|
||||
}
|
||||
|
||||
Bool IsTextureBufferTarget(TextureTarget target) {
|
||||
@@ -58,8 +58,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
GLenum normalizedInternalFormat = glFormat;
|
||||
GLenum imageFormat = GL_RGBA;
|
||||
GLenum imageType = GL_UNSIGNED_BYTE;
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(
|
||||
glFormat, PixelFormatNormalizeOptionBit::None, &normalizedInternalFormat, &imageFormat, &imageType);
|
||||
MG_Util::TextureFormatProcessor::NormalizePixelFormat(glFormat, PixelFormatNormalizeOptionBit::None,
|
||||
&normalizedInternalFormat, &imageFormat, &imageType);
|
||||
return imageFormat == GL_RED_INTEGER || imageFormat == GL_RG_INTEGER || imageFormat == GL_RGB_INTEGER ||
|
||||
imageFormat == GL_RGBA_INTEGER;
|
||||
}
|
||||
@@ -80,8 +80,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return caps;
|
||||
}
|
||||
|
||||
FormatCapabilityFlags BuildVulkanCaps(TextureInternalFormat logicalFormat,
|
||||
TextureTarget target,
|
||||
FormatCapabilityFlags BuildVulkanCaps(TextureInternalFormat logicalFormat, TextureTarget target,
|
||||
VkFormatFeatureFlags features) {
|
||||
FormatCapabilityFlags caps;
|
||||
const Bool isDepth = MG_Util::IsDepthFormatInternalFormat(logicalFormat);
|
||||
@@ -100,8 +99,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const Bool sampled = (features & VK_FORMAT_FEATURE_SAMPLED_IMAGE_BIT) != 0;
|
||||
const Bool linearFilter = (features & VK_FORMAT_FEATURE_SAMPLED_IMAGE_FILTER_LINEAR_BIT) != 0;
|
||||
const Bool colorRenderable = (features & VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BIT) != 0;
|
||||
const Bool depthStencilRenderable =
|
||||
(features & VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0;
|
||||
const Bool depthStencilRenderable = (features & VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0;
|
||||
const Bool renderable = (isDepth || isStencil) ? depthStencilRenderable : colorRenderable;
|
||||
|
||||
if (sampled || renderable) {
|
||||
@@ -140,6 +138,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
case TextureInternalFormat::RGB:
|
||||
case TextureInternalFormat::RGB8:
|
||||
return TextureInternalFormat::RGBA8;
|
||||
// Legacy low-bit-depth formats with no (or rarely supported) native Vulkan
|
||||
// encoding; a wider normalized fallback keeps at least the required precision.
|
||||
case TextureInternalFormat::R3G3B2:
|
||||
case TextureInternalFormat::RGB4:
|
||||
case TextureInternalFormat::RGB5:
|
||||
case TextureInternalFormat::RGBA2:
|
||||
case TextureInternalFormat::RGBA4:
|
||||
case TextureInternalFormat::RGB5A1:
|
||||
return TextureInternalFormat::RGBA8;
|
||||
case TextureInternalFormat::RGB10:
|
||||
return TextureInternalFormat::RGB10A2;
|
||||
case TextureInternalFormat::RGB12:
|
||||
case TextureInternalFormat::RGBA12:
|
||||
return TextureInternalFormat::RGBA16;
|
||||
case TextureInternalFormat::SRGB8:
|
||||
return TextureInternalFormat::SRGB8Alpha8;
|
||||
case TextureInternalFormat::RGB8Snorm:
|
||||
@@ -184,21 +196,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
Bool HasNewCaveatFormatCaps(FormatCapabilityFlags nativeCaps, FormatCapabilityFlags fallbackCaps) {
|
||||
for (FormatCapability capability : kReportedFormatCapabilities) {
|
||||
if (HasFormatCapability(fallbackCaps, capability) &&
|
||||
!HasFormatCapability(nativeCaps, capability)) {
|
||||
if (HasFormatCapability(fallbackCaps, capability) && !HasFormatCapability(nativeCaps, capability)) {
|
||||
return true;
|
||||
}
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
void LogVulkanFormatCaveat(TextureInternalFormat logicalFormat,
|
||||
SizeT targetIndex,
|
||||
void LogVulkanFormatCaveat(TextureInternalFormat logicalFormat, SizeT targetIndex,
|
||||
TextureInternalFormat fallbackFormat) {
|
||||
MGLOG_D("Caveat: %s %s not fully supported. Reason: native Vulkan format is not fully supported. Fallback: %s",
|
||||
GetFormatCapabilityTargetName(targetIndex).c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(logicalFormat).c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(fallbackFormat).c_str());
|
||||
MGLOG_D(
|
||||
"Caveat: %s %s not fully supported. Reason: native Vulkan format is not fully supported. Fallback: %s",
|
||||
GetFormatCapabilityTargetName(targetIndex).c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(logicalFormat).c_str(),
|
||||
MG_Util::ConvertTextureInternalFormatToString(fallbackFormat).c_str());
|
||||
}
|
||||
|
||||
Vector<Int> BuildSampleCounts(Int maxSamples) {
|
||||
@@ -242,15 +253,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
for (SizeT targetIndex = 0; targetIndex < kFormatCapabilityTextureTargetCount; ++targetIndex) {
|
||||
const auto target = static_cast<TextureTarget>(targetIndex);
|
||||
const VkFormatFeatureFlags nativeFeatures =
|
||||
IsTextureBufferTarget(target) ? nativeProperties.bufferFeatures
|
||||
: nativeProperties.optimalTilingFeatures;
|
||||
const VkFormatFeatureFlags nativeFeatures = IsTextureBufferTarget(target)
|
||||
? nativeProperties.bufferFeatures
|
||||
: nativeProperties.optimalTilingFeatures;
|
||||
FormatCapabilityFlags nativeCaps = BuildVulkanCaps(logicalFormat, target, nativeFeatures);
|
||||
cache.FullCaps[targetIndex][formatIndex] |= nativeCaps;
|
||||
|
||||
const VkFormatFeatureFlags fallbackFeatures =
|
||||
IsTextureBufferTarget(target) ? fallbackProperties.bufferFeatures
|
||||
: fallbackProperties.optimalTilingFeatures;
|
||||
const VkFormatFeatureFlags fallbackFeatures = IsTextureBufferTarget(target)
|
||||
? fallbackProperties.bufferFeatures
|
||||
: fallbackProperties.optimalTilingFeatures;
|
||||
FormatCapabilityFlags fallbackCaps = BuildVulkanCaps(logicalFormat, target, fallbackFeatures);
|
||||
if (fallbackFormat != VK_FORMAT_UNDEFINED && fallbackFormat != nativeFormat) {
|
||||
cache.CaveatCaps[targetIndex][formatIndex] |= fallbackCaps;
|
||||
@@ -285,9 +296,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
cache.FullCaps[renderbufferTargetIndex][formatIndex] |= renderbufferCaps;
|
||||
|
||||
if (fallbackFormat != VK_FORMAT_UNDEFINED && fallbackFormat != nativeFormat) {
|
||||
FormatCapabilityFlags fallbackRenderbufferCaps =
|
||||
BuildVulkanCaps(logicalFormat, TextureTarget::Texture2D,
|
||||
fallbackProperties.optimalTilingFeatures);
|
||||
FormatCapabilityFlags fallbackRenderbufferCaps = BuildVulkanCaps(
|
||||
logicalFormat, TextureTarget::Texture2D, fallbackProperties.optimalTilingFeatures);
|
||||
fallbackRenderbufferCaps &= FormatCapability::Creatable;
|
||||
if ((fallbackProperties.optimalTilingFeatures &
|
||||
(VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BIT | VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT)) !=
|
||||
@@ -296,8 +306,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
fallbackRenderbufferCaps |= FormatCapability::MultisampleRenderbuffer;
|
||||
}
|
||||
cache.CaveatCaps[renderbufferTargetIndex][formatIndex] |= fallbackRenderbufferCaps;
|
||||
if (fallbackLogicalFormat &&
|
||||
HasNewCaveatFormatCaps(renderbufferCaps, fallbackRenderbufferCaps)) {
|
||||
if (fallbackLogicalFormat && HasNewCaveatFormatCaps(renderbufferCaps, fallbackRenderbufferCaps)) {
|
||||
LogVulkanFormatCaveat(logicalFormat, renderbufferTargetIndex, *fallbackLogicalFormat);
|
||||
}
|
||||
}
|
||||
@@ -314,14 +323,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
void PopulateFormatCapabilities(VkPhysicalDevice physicalDevice,
|
||||
PFN_vkGetPhysicalDeviceFormatProperties getFormatProperties,
|
||||
const MG_External::VulkanCapabilities& capabilities,
|
||||
FormatCapabilityCache& cache) {
|
||||
const MG_External::VulkanCapabilities& capabilities, FormatCapabilityCache& cache) {
|
||||
PopulateFormatCapabilitiesImpl(physicalDevice, getFormatProperties, capabilities, cache);
|
||||
}
|
||||
|
||||
BackendObject_DirectVulkan::~BackendObject_DirectVulkan() = default;
|
||||
|
||||
BackendObject_DirectVulkan::BackendObject_DirectVulkan(): m_rendererInfo{GetRendererIdentity()} {}
|
||||
BackendObject_DirectVulkan::BackendObject_DirectVulkan() : m_rendererInfo{GetRendererIdentity()} {}
|
||||
|
||||
Bool BackendObject_DirectVulkan::InitWindowSurface() {
|
||||
if (!m_windowHandle.Handle) {
|
||||
@@ -395,10 +403,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
MGLOG_E("DirectVulkan backend not initialized");
|
||||
return false;
|
||||
}
|
||||
if (!handle.Handle || (handle.Backend != WindowBackend::Android &&
|
||||
handle.Backend != WindowBackend::X11 &&
|
||||
handle.Backend != WindowBackend::MetalLayer)) {
|
||||
MGLOG_E("DirectVulkan backend only supports Android, X11, and CAMetalLayer native windows");
|
||||
if (!handle.Handle || (handle.Backend != WindowBackend::Android && handle.Backend != WindowBackend::X11 &&
|
||||
handle.Backend != WindowBackend::MetalLayer && handle.Backend != WindowBackend::Win32)) {
|
||||
MGLOG_E("DirectVulkan backend only supports Android, X11, CAMetalLayer, and Win32 native windows");
|
||||
return false;
|
||||
}
|
||||
|
||||
@@ -454,6 +461,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// treat them as signaled/available with zero results from here on.
|
||||
BumpRendererGeneration();
|
||||
pVulkanRenderer.reset();
|
||||
// The reflection cache is file-scope, not renderer-owned; without this the
|
||||
// deleted programs' reflection strings survive full context teardown.
|
||||
ClearProgramResourceCaches();
|
||||
BackendObject::ReleaseEGLResources();
|
||||
}
|
||||
|
||||
@@ -463,6 +473,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// treat them as signaled/available with zero results from here on.
|
||||
BumpRendererGeneration();
|
||||
pVulkanRenderer.reset();
|
||||
// The reflection cache is file-scope, not renderer-owned; without this the
|
||||
// deleted programs' reflection strings survive full context teardown.
|
||||
ClearProgramResourceCaches();
|
||||
}
|
||||
|
||||
const RendererInfo& BackendObject_DirectVulkan::GetRendererInfo() const {
|
||||
@@ -482,40 +495,63 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
.RendererName = "Magma",
|
||||
.BackendName = "Direct (Vulkan)",
|
||||
.ExtraVendor = Nullopt,
|
||||
.RendererGLInfo =
|
||||
{
|
||||
.TargetGLVersion = {3, 3, 0},
|
||||
.TargetGLSLVersion = {4, 6, 0},
|
||||
// Baseline advertisement (no shader subgroup, no timer queries); a
|
||||
// live backend reconciles its copy in UpdateAdvertisedExtensions.
|
||||
.Extensions = BuildAdvertisedExtensions(false, false),
|
||||
.IsCompatibilityProfile = false
|
||||
},
|
||||
.RendererGLInfo = {.TargetGLVersion = {4, 0, 0},
|
||||
.TargetGLSLVersion = {4, 6, 0},
|
||||
// Baseline advertisement (no shader subgroup, no timer queries); a
|
||||
// live backend reconciles its copy in UpdateAdvertisedExtensions.
|
||||
.Extensions = BuildAdvertisedExtensions(false, false, false),
|
||||
.IsCompatibilityProfile = false},
|
||||
.StaticBackendCapability = {.AllowVSOnlyPrograms = false}};
|
||||
return rendererInfo;
|
||||
}
|
||||
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool shaderSubgroupSupported, Bool timerQueriesSupported) {
|
||||
Vector<GLExtension> extensions = {V_OpenGL30, V_OpenGL31, V_OpenGL32,
|
||||
V_OpenGL33, E_GL_ARB_draw_buffers_blend, E_GL_ARB_compute_shader,
|
||||
E_GL_ARB_shader_storage_buffer_object, E_GL_ARB_shader_image_load_store,
|
||||
E_GL_ARB_program_interface_query, E_GL_ARB_framebuffer_object,
|
||||
E_GL_ARB_multi_draw_indirect, E_GL_ARB_indirect_parameters,
|
||||
E_GL_EXT_framebuffer_object, E_GL_ARB_depth_texture, E_GL_ARB_buffer_storage,
|
||||
E_GL_ARB_texture_storage, E_GL_ARB_texture_storage_multisample,
|
||||
E_GL_ARB_direct_state_access,
|
||||
E_GL_ARB_shader_draw_parameters, E_GL_ARB_gpu_shader_int64, E_GL_KHR_debug,
|
||||
E_GL_ARB_gpu_shader5, E_GL_ARB_multi_bind, E_GL_ARB_shading_language_420pack,
|
||||
E_GL_ARB_vertex_attrib_binding, E_GL_ARB_shader_image_size};
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool shaderSubgroupSupported, Bool timerQueriesSupported,
|
||||
Bool anisotropicFilteringSupported) {
|
||||
Vector<GLExtension> extensions = {
|
||||
V_OpenGL30, V_OpenGL31, V_OpenGL32, V_OpenGL33, V_OpenGL40, E_GL_ARB_draw_buffers_blend,
|
||||
E_GL_ARB_compute_shader, E_GL_ARB_shader_storage_buffer_object, E_GL_ARB_shader_image_load_store,
|
||||
E_GL_ARB_program_interface_query, E_GL_ARB_framebuffer_object, E_GL_ARB_multi_draw_indirect,
|
||||
E_GL_ARB_indirect_parameters, E_GL_EXT_framebuffer_object, E_GL_ARB_depth_texture, E_GL_ARB_buffer_storage,
|
||||
E_GL_ARB_texture_storage, E_GL_ARB_texture_storage_multisample, E_GL_ARB_texture_multisample,
|
||||
E_GL_ARB_clear_texture, E_GL_ARB_direct_state_access, E_GL_ARB_shader_draw_parameters,
|
||||
E_GL_ARB_gpu_shader_int64, E_GL_KHR_debug, E_GL_ARB_gpu_shader5, E_GL_ARB_multi_bind,
|
||||
E_GL_ARB_shading_language_420pack, E_GL_ARB_vertex_attrib_binding, E_GL_ARB_shader_image_size,
|
||||
E_GL_ARB_explicit_attrib_location,
|
||||
// Advertised with GL_NUM_PROGRAM_BINARY_FORMATS = 0, which the
|
||||
// extension explicitly permits. It is also the only thing that
|
||||
// exposes glProgramParameteri before GL 4.1.
|
||||
E_GL_ARB_get_program_binary};
|
||||
if (shaderSubgroupSupported && !MG_Config::Features.DisableSubgroup) {
|
||||
extensions.push_back(E_GL_KHR_shader_subgroup);
|
||||
}
|
||||
// GL_KHR_parallel_shader_compile is MobileGL's own capability, not the Vulkan
|
||||
// device's: the compiler threads belong to MobileGL's shader pool and
|
||||
// glCompileShader/glLinkProgram are serviced entirely inside the frontend, so there
|
||||
// is no device feature to condition this on.
|
||||
//
|
||||
// Gated on the async flag deliberately, and this is the whole reason the gate
|
||||
// exists. Advertising the string is the one part of asynchronous compilation that a
|
||||
// recorded trace can never cover: Iris and Sodium change their SUBMISSION SCHEDULE
|
||||
// the moment they see it - they enqueue whole pipeline batches and poll
|
||||
// GL_COMPLETION_STATUS_KHR instead of compiling one program at a time - so
|
||||
// MOBILEGL_ASYNC_SHADER_COMPILE=0 has to withdraw the application-visible behaviour
|
||||
// change as well as the threading, or the kill switch would only be half a switch.
|
||||
if (MG_Util::Async::AsyncShaderCompileEnabled()) {
|
||||
extensions.push_back(E_GL_KHR_parallel_shader_compile);
|
||||
}
|
||||
// GL_ARB_timer_query gates MC's F3 GPU% (LWJGL checks the extension string);
|
||||
// only advertised when the device actually supports timestamp queries and the
|
||||
// MOBILEGL_DISABLE_TIMERQUERY escape hatch is off.
|
||||
if (timerQueriesSupported && !MG_Config::Features.DisableTimerQuery) {
|
||||
extensions.push_back(E_GL_ARB_timer_query);
|
||||
}
|
||||
// Only advertised when the samplerAnisotropy device feature was granted: without it the
|
||||
// sampler state is accepted but never applied, and an app trusting the string (LWJGL builds
|
||||
// GLCapabilities from it) would think it enabled anisotropic filtering.
|
||||
if (anisotropicFilteringSupported) {
|
||||
extensions.push_back(E_GL_EXT_texture_filter_anisotropic);
|
||||
extensions.push_back(E_GL_ARB_texture_filter_anisotropic);
|
||||
}
|
||||
return extensions;
|
||||
}
|
||||
|
||||
@@ -562,6 +598,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
funcsTable.GL.ClearBufferiv = ClearBufferiv;
|
||||
funcsTable.GL.ClearNamedFramebufferfv = ClearNamedFramebufferfv;
|
||||
funcsTable.GL.ClearNamedFramebufferfi = ClearNamedFramebufferfi;
|
||||
funcsTable.GL.ClearNamedFramebufferiv = ClearNamedFramebufferiv;
|
||||
funcsTable.GL.ClearNamedFramebufferuiv = ClearNamedFramebufferuiv;
|
||||
funcsTable.GL.BlitFramebuffer = BlitFramebuffer;
|
||||
funcsTable.GL.BlitNamedFramebuffer = BlitNamedFramebuffer;
|
||||
funcsTable.GL.CopyTexImage2D = CopyTexImage2D;
|
||||
@@ -579,12 +617,6 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
funcsTable.GL.GetIntegeri_v = GetIntegeri_v;
|
||||
funcsTable.GL.GetInteger64i_v = GetInteger64i_v;
|
||||
funcsTable.GL.GetProgramiv = GetProgramiv;
|
||||
funcsTable.GL.GetProgramInterfaceiv = GetProgramInterfaceiv;
|
||||
funcsTable.GL.GetProgramResourceIndex = GetProgramResourceIndex;
|
||||
funcsTable.GL.GetProgramResourceName = GetProgramResourceName;
|
||||
funcsTable.GL.GetProgramResourceiv = GetProgramResourceiv;
|
||||
funcsTable.GL.GetProgramResourceLocation = GetProgramResourceLocation;
|
||||
funcsTable.GL.GetProgramResourceLocationIndex = GetProgramResourceLocationIndex;
|
||||
funcsTable.GL.ShaderStorageBlockBinding = ShaderStorageBlockBinding;
|
||||
funcsTable.GL.FenceSync = FenceSync;
|
||||
funcsTable.GL.ClientWaitSync = ClientWaitSync;
|
||||
@@ -605,6 +637,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
funcsTable.GL.DeleteBackendQuery = DeleteBackendQuery;
|
||||
funcsTable.GL.GetGpuTimestampNs = GetGpuTimestampNs;
|
||||
}
|
||||
// Occlusion queries share the handle-based result/delete entries, which must
|
||||
// exist even when timer queries are disabled.
|
||||
funcsTable.GL.BeginOcclusionQuery = BeginOcclusionQuery;
|
||||
funcsTable.GL.EndOcclusionQuery = EndOcclusionQuery;
|
||||
funcsTable.GL.BeginXfbPrimitivesQuery = BeginXfbPrimitivesQuery;
|
||||
funcsTable.GL.EndXfbPrimitivesQuery = EndXfbPrimitivesQuery;
|
||||
funcsTable.GL.IsQueryResultAvailable = IsQueryResultAvailable;
|
||||
funcsTable.GL.GetQueryResult64 = GetQueryResult64;
|
||||
funcsTable.GL.DeleteBackendQuery = DeleteBackendQuery;
|
||||
funcsTableInitialized = true;
|
||||
}
|
||||
return funcsTable;
|
||||
@@ -630,7 +671,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// run without a renderer; no timer query is advertised then. Rebuilding
|
||||
// the whole list keeps re-runs idempotent.
|
||||
m_rendererInfo.RendererGLInfo.Extensions = BuildAdvertisedExtensions(
|
||||
m_vulkanCaps.SupportsShaderSubgroup, pVulkanRenderer && pVulkanRenderer->IsTimerQuerySupported());
|
||||
m_vulkanCaps.SupportsShaderSubgroup, pVulkanRenderer && pVulkanRenderer->IsTimerQuerySupported(),
|
||||
pVulkanRenderer && pVulkanRenderer->IsSamplerAnisotropySupported());
|
||||
}
|
||||
|
||||
void BackendObject_DirectVulkan::UpdateDynamicBackendParameters() {
|
||||
@@ -680,6 +722,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_dynamicParameters.UniformBufferOffsetAlignment = m_vulkanCaps.UniformBufferOffsetAlignment;
|
||||
m_dynamicParameters.AliasedLineWidthRangeMin = m_vulkanCaps.AliasedLineWidthRangeMin;
|
||||
m_dynamicParameters.AliasedLineWidthRangeMax = m_vulkanCaps.AliasedLineWidthRangeMax;
|
||||
// Without the samplerAnisotropy feature the limit is unusable, so report 1.0 (no anisotropy)
|
||||
// rather than a maximum the sampler manager will never apply.
|
||||
m_dynamicParameters.MaxTextureMaxAnisotropy =
|
||||
(pVulkanRenderer && pVulkanRenderer->IsSamplerAnisotropySupported()) ? m_vulkanCaps.MaxSamplerAnisotropy
|
||||
: 1.0f;
|
||||
m_dynamicParameters.SmoothLineWidthRangeMin = m_vulkanCaps.SmoothLineWidthRangeMin;
|
||||
m_dynamicParameters.SmoothLineWidthRangeMax = m_vulkanCaps.SmoothLineWidthRangeMax;
|
||||
m_dynamicParameters.SmoothLineWidthGranularity = m_vulkanCaps.SmoothLineWidthGranularity;
|
||||
@@ -700,8 +747,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_dynamicParameters.MaxIntegerSamples = m_vulkanCaps.MaxIntegerSamples;
|
||||
m_dynamicParameters.MaxSamples = m_vulkanCaps.MaxSamples;
|
||||
m_dynamicParameters.MaxSampleMaskWords = m_vulkanCaps.MaxSampleMaskWords;
|
||||
const Int maxSupportedTextureUnits =
|
||||
static_cast<Int>(MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
const Int maxSupportedTextureUnits = static_cast<Int>(MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
// GL_MAX_TEXTURE_IMAGE_UNITS is a *per-stage* sampler limit. Adreno/Qualcomm report a huge
|
||||
// maxPerStageDescriptorSampledImages (descriptor-indexing scale), so clamping it only to our
|
||||
// combined array capacity (192) still advertises 192 per stage. Host code treats this value as
|
||||
@@ -711,8 +757,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// limits while keeping the combined limit at our texture-unit array capacity.
|
||||
constexpr Int maxPerStageTextureUnits =
|
||||
static_cast<Int>(MG_State::GLState::TextureState::MAX_PER_STAGE_TEXTURE_IMAGE_UNITS);
|
||||
m_dynamicParameters.MaxTextureImageUnits =
|
||||
std::min(m_vulkanCaps.MaxTextureImageUnits, maxPerStageTextureUnits);
|
||||
m_dynamicParameters.MaxTextureImageUnits = std::min(m_vulkanCaps.MaxTextureImageUnits, maxPerStageTextureUnits);
|
||||
m_dynamicParameters.MaxVertexTextureImageUnits =
|
||||
std::min(m_vulkanCaps.MaxVertexTextureImageUnits, maxPerStageTextureUnits);
|
||||
m_dynamicParameters.MaxComputeTextureImageUnits =
|
||||
@@ -721,22 +766,35 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
std::min(m_vulkanCaps.MaxCombinedTextureImageUnits, maxSupportedTextureUnits);
|
||||
// Never advertise more attributes than the state layer can store: the current-value array and
|
||||
// the Uint32 attribute masks the draw path passes around are both bounded by MAX_VERTEX_ATTRIBS.
|
||||
m_dynamicParameters.MaxVertexAttribs =
|
||||
std::min(m_vulkanCaps.MaxVertexAttribs,
|
||||
static_cast<Int>(MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS));
|
||||
m_dynamicParameters.MaxVertexAttribs = std::min(
|
||||
m_vulkanCaps.MaxVertexAttribs, static_cast<Int>(MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS));
|
||||
m_dynamicParameters.MaxComputeShaderStorageBlocks = m_vulkanCaps.MaxComputeShaderStorageBlocks;
|
||||
m_dynamicParameters.MaxCombinedShaderStorageBlocks = m_vulkanCaps.MaxCombinedShaderStorageBlocks;
|
||||
m_dynamicParameters.MaxComputeUniformBlocks = m_vulkanCaps.MaxComputeUniformBlocks;
|
||||
m_dynamicParameters.MaxComputeWorkGroupInvocations = m_vulkanCaps.MaxComputeWorkGroupInvocations;
|
||||
m_dynamicParameters.MaxShaderStorageBufferBindings = m_vulkanCaps.MaxShaderStorageBufferBindings;
|
||||
m_dynamicParameters.MaxTextureBufferSize = m_vulkanCaps.MaxTextureBufferSize;
|
||||
m_dynamicParameters.TextureBufferOffsetAlignment = m_vulkanCaps.TextureBufferOffsetAlignment;
|
||||
m_dynamicParameters.MaxUniformBufferBindings = m_vulkanCaps.MaxUniformBufferBindings;
|
||||
m_dynamicParameters.MaxUniformBlockSize = m_vulkanCaps.MaxUniformBlockSize;
|
||||
m_dynamicParameters.MaxImageUnits = std::min(m_vulkanCaps.MaxImageUnits, maxSupportedTextureUnits);
|
||||
m_dynamicParameters.MaxCombinedImageUniforms = m_vulkanCaps.MaxCombinedImageUniforms;
|
||||
m_dynamicParameters.MaxComputeImageUniforms = m_vulkanCaps.MaxComputeImageUniforms;
|
||||
const Int maxSupportedDrawBuffers =
|
||||
static_cast<Int>(MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS);
|
||||
m_dynamicParameters.MaxImageUnits = std::max(std::min(m_vulkanCaps.MaxImageUnits, maxSupportedTextureUnits), 0);
|
||||
m_dynamicParameters.MaxCombinedImageUniforms = std::max(m_vulkanCaps.MaxCombinedImageUniforms, 0);
|
||||
const Int maxPerStageImageUniforms =
|
||||
std::min(m_dynamicParameters.MaxImageUnits, m_dynamicParameters.MaxCombinedImageUniforms);
|
||||
// Vulkan uses one descriptor limit for every stage, but non-compute stores/atomics are
|
||||
// optional device features. VulkanRenderer enables each feature whenever the physical
|
||||
// device reports it, so these are the exact limits the logical device can compile and run.
|
||||
m_dynamicParameters.MaxVertexImageUniforms =
|
||||
m_vulkanCaps.SupportsVertexPipelineStoresAndAtomics ? maxPerStageImageUniforms : 0;
|
||||
m_dynamicParameters.MaxGeometryImageUniforms =
|
||||
m_vulkanCaps.SupportsVertexPipelineStoresAndAtomics && m_vulkanCaps.SupportsGeometryShader
|
||||
? maxPerStageImageUniforms
|
||||
: 0;
|
||||
m_dynamicParameters.MaxFragmentImageUniforms =
|
||||
m_vulkanCaps.SupportsFragmentStoresAndAtomics ? maxPerStageImageUniforms : 0;
|
||||
m_dynamicParameters.MaxComputeImageUniforms =
|
||||
std::min(std::max(m_vulkanCaps.MaxComputeImageUniforms, 0), maxPerStageImageUniforms);
|
||||
const Int maxSupportedDrawBuffers = static_cast<Int>(MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS);
|
||||
m_dynamicParameters.MaxDrawBuffers = std::min(m_vulkanCaps.MaxDrawBuffers, maxSupportedDrawBuffers);
|
||||
m_dynamicParameters.MaxColorAttachments = std::min(m_vulkanCaps.MaxColorAttachments, maxSupportedDrawBuffers);
|
||||
m_dynamicParameters.MaxClipDistances = m_vulkanCaps.MaxClipDistances;
|
||||
@@ -746,13 +804,53 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_dynamicParameters.ViewportBoundsRangeMin = m_vulkanCaps.ViewportBoundsRangeMin;
|
||||
m_dynamicParameters.ViewportBoundsRangeMax = m_vulkanCaps.ViewportBoundsRangeMax;
|
||||
m_dynamicParameters.ViewportSubpixelBits = m_vulkanCaps.ViewportSubpixelBits;
|
||||
m_dynamicParameters.MinFragmentInterpolationOffset =
|
||||
std::isfinite(m_vulkanCaps.MinFragmentInterpolationOffset) &&
|
||||
m_vulkanCaps.MinFragmentInterpolationOffset <= -0.5f
|
||||
? m_vulkanCaps.MinFragmentInterpolationOffset
|
||||
: -0.5f;
|
||||
m_dynamicParameters.MaxFragmentInterpolationOffset = 0.4375f;
|
||||
m_dynamicParameters.FragmentInterpolationOffsetBits = 4;
|
||||
if (m_vulkanCaps.FragmentInterpolationOffsetBits >= 4 &&
|
||||
std::isfinite(m_vulkanCaps.MaxFragmentInterpolationOffset)) {
|
||||
const Float requiredMaxOffset = 0.5f - std::ldexp(1.0f, -m_vulkanCaps.FragmentInterpolationOffsetBits);
|
||||
if (m_vulkanCaps.MaxFragmentInterpolationOffset >= requiredMaxOffset) {
|
||||
m_dynamicParameters.MaxFragmentInterpolationOffset = m_vulkanCaps.MaxFragmentInterpolationOffset;
|
||||
m_dynamicParameters.FragmentInterpolationOffsetBits = m_vulkanCaps.FragmentInterpolationOffsetBits;
|
||||
}
|
||||
}
|
||||
m_dynamicParameters.SupportsWideLines = m_vulkanCaps.SupportsWideLines;
|
||||
// A 2D or 2D multisample array texture is a VK_IMAGE_TYPE_2D image whose GL depth IS its
|
||||
// arrayLayers, so a GL layer is a Vulkan array layer with nothing to translate.
|
||||
// ResolveAttachmentBaseArrayLayer already passes the attachment's layer through. The other
|
||||
// layered targets are declared separately as their own machinery lands.
|
||||
{
|
||||
using DynParams = MG_Backend::DynamicBackendParameters;
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets |=
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture2DArray) |
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture2DMultisampleArray);
|
||||
// A cube map array is one 2D image with arrayLayers = 6 * cubeCount, so a GL layer is a
|
||||
// Vulkan array layer here too - but the image cannot be created without imageCubeArray.
|
||||
// A 3D texture's GL layer is a z slice, which only a 2D view over a 2D-array-compatible
|
||||
// image can name. Optimistic: a format that refuses the flag is caught at image creation
|
||||
// and declines the slice view there, which the clear path handles as a soft miss.
|
||||
if (m_vulkanCaps.Supports2DArrayCompatible3DImages) {
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets |=
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::Texture3D);
|
||||
}
|
||||
if (m_vulkanCaps.SupportsImageCubeArray) {
|
||||
m_dynamicParameters.PerLayerFramebufferAttachmentTargets |=
|
||||
DynParams::PerLayerFramebufferAttachmentBit(TextureTarget::TextureCubeMapArray);
|
||||
}
|
||||
}
|
||||
m_dynamicParameters.SupportsFloat64VertexAttributes = m_vulkanCaps.SupportsShaderFloat64;
|
||||
m_dynamicParameters.MaxShaderStorageBlockSize =
|
||||
std::min(m_vulkanCaps.MaxShaderStorageBlockSize, kMaxAdvertisedShaderStorageBlockSize);
|
||||
if (m_vulkanCaps.SupportsShaderSubgroup) {
|
||||
m_dynamicParameters.SubgroupSize = m_vulkanCaps.SubgroupSize;
|
||||
m_dynamicParameters.SubgroupSupportedStages = mapShaderStages(m_vulkanCaps.SubgroupSupportedStages);
|
||||
m_dynamicParameters.SubgroupSupportedFeatures = mapSubgroupFeatures(m_vulkanCaps.SubgroupSupportedOperations);
|
||||
m_dynamicParameters.SubgroupSupportedFeatures =
|
||||
mapSubgroupFeatures(m_vulkanCaps.SubgroupSupportedOperations);
|
||||
m_dynamicParameters.SubgroupQuadOperationsInAllStages = m_vulkanCaps.SubgroupQuadOperationsInAllStages;
|
||||
} else {
|
||||
m_dynamicParameters.SubgroupSize = 0;
|
||||
@@ -762,8 +860,34 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
if (m_dynamicParameters.MaxShaderStorageBlockSize != m_vulkanCaps.MaxShaderStorageBlockSize) {
|
||||
MGLOG_I("DirectVulkan: clamped GL_MAX_SHADER_STORAGE_BLOCK_SIZE from %zu to %zu",
|
||||
m_vulkanCaps.MaxShaderStorageBlockSize,
|
||||
m_dynamicParameters.MaxShaderStorageBlockSize);
|
||||
m_vulkanCaps.MaxShaderStorageBlockSize, m_dynamicParameters.MaxShaderStorageBlockSize);
|
||||
}
|
||||
switch (m_vulkanCaps.VendorId) {
|
||||
case 0x5143u: // VK_VENDOR_ID: Qualcomm
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Qualcomm;
|
||||
break;
|
||||
case 0x13B5u: // ARM
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Arm;
|
||||
break;
|
||||
case 0x10DEu: // NVIDIA
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Nvidia;
|
||||
break;
|
||||
case 0x1002u: // AMD
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Amd;
|
||||
break;
|
||||
case 0x8086u: // Intel
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Intel;
|
||||
break;
|
||||
case 0x1010u: // Imagination
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::ImgTec;
|
||||
break;
|
||||
case 0x10005u: // Mesa software (lavapipe)
|
||||
case 0x1AE0u: // Google (SwiftShader)
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Software;
|
||||
break;
|
||||
default:
|
||||
m_dynamicParameters.GpuVendor = GpuVendorKind::Unknown;
|
||||
break;
|
||||
}
|
||||
}
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -73,7 +73,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// a device with the given raw capabilities. The MOBILEGL_DISABLE_SUBGROUP and
|
||||
// MOBILEGL_DISABLE_TIMERQUERY escape hatches are applied inside, so callers pass
|
||||
// the detected device support (passing an already-gated value is harmless).
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool shaderSubgroupSupported, Bool timerQueriesSupported);
|
||||
Vector<GLExtension> BuildAdvertisedExtensions(Bool shaderSubgroupSupported, Bool timerQueriesSupported,
|
||||
Bool anisotropicFilteringSupported);
|
||||
|
||||
// Format: <GPU Name>, Vulkan <Vulkan Version>, Driver <Driver Version> — the exact
|
||||
// string an initialized backend returns from GetBackendAPIVersionString (and that
|
||||
|
||||
@@ -16,11 +16,13 @@
|
||||
#include "MG_Util/Metrics/TextureMetrics.h"
|
||||
#include "MG_Util/Miscellany/IndexGenerator.h"
|
||||
#include <atomic>
|
||||
#include <bit>
|
||||
#include <cstring>
|
||||
#include <spirv_reflect.h>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
UniquePtr<VulkanRenderer> pVulkanRenderer = nullptr;
|
||||
// Leak-at-exit storage; see GlobalObjects.cpp.
|
||||
UniquePtr<VulkanRenderer>& pVulkanRenderer = *new UniquePtr<VulkanRenderer>();
|
||||
|
||||
namespace {
|
||||
// Generation of the live VulkanRenderer instance, mirroring
|
||||
@@ -60,6 +62,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
};
|
||||
|
||||
struct ProgramResourceCache {
|
||||
// Lifetime id of the program the cached reflection belongs to. GL names are
|
||||
// recycled (IndexGenerator hands freed indices straight back), and a
|
||||
// recreated program's backendStateVersion restarts at the same small values,
|
||||
// so the version alone can collide; the never-reused lifetime id makes the
|
||||
// slot's ownership unambiguous.
|
||||
Uint64 programLifetimeId = 0;
|
||||
Uint32 backendStateVersion = 0;
|
||||
Vector<StorageBlockResource> storageBlocks;
|
||||
Vector<BufferVariableResource> bufferVariables;
|
||||
@@ -81,6 +89,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 baseInstance = 0;
|
||||
};
|
||||
|
||||
// Keyed by GL program name so the freed-name reuse in IndexGenerator bounds the
|
||||
// map at the peak-simultaneous-program high-water mark; each slot's ownership is
|
||||
// checked against the program's lifetime id before it is served (see
|
||||
// GetProgramResourceCache). Cleared wholesale at EGL teardown via
|
||||
// ClearProgramResourceCaches.
|
||||
UnorderedMap<GLuint, ProgramResourceCache> g_programResourceCaches;
|
||||
|
||||
void ClearReadPixelsOutput(GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels) {
|
||||
@@ -141,13 +154,19 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
ProgramResourceCache& GetProgramResourceCache(const MG_State::GLState::ProgramObject& program) {
|
||||
auto& cache = g_programResourceCaches[program.GetExternalIndex()];
|
||||
const Uint64 programLifetimeId = program.GetLifetimeId();
|
||||
const Uint32 backendStateVersion = program.GetBackendStateVersion();
|
||||
if (cache.backendStateVersion == backendStateVersion &&
|
||||
// The lifetime id must match too: a new program that reuses a deleted
|
||||
// program's name and happens to land on the same backendStateVersion (both
|
||||
// count from zero) would otherwise be served the dead program's reflection.
|
||||
if (cache.programLifetimeId == programLifetimeId &&
|
||||
cache.backendStateVersion == backendStateVersion &&
|
||||
(!cache.storageBlocks.empty() || !cache.bufferVariables.empty())) {
|
||||
return cache;
|
||||
}
|
||||
|
||||
cache = {};
|
||||
cache.programLifetimeId = programLifetimeId;
|
||||
cache.backendStateVersion = backendStateVersion;
|
||||
|
||||
Vector<SpvReflectShaderModule> modules;
|
||||
@@ -213,6 +232,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
StorageBlockResource block{};
|
||||
block.name = blockName;
|
||||
block.binding = binding->binding;
|
||||
// glShaderStorageBlockBinding survives every rebuild of this cache: the
|
||||
// authoritative record of a rebound block lives on the program (it is what
|
||||
// GL_BUFFER_BINDING reports), and only the shader's declared binding is
|
||||
// recoverable from the SPIR-V. Without this, any unrelated state-version
|
||||
// bump would silently revert the block to its declared binding.
|
||||
const Int rebound = program.GetShaderStorageBlockBindingOverride(blockName);
|
||||
if (rebound >= 0) block.binding = static_cast<Uint32>(rebound);
|
||||
block.dataSize = static_cast<GLint>(binding->block.size);
|
||||
const GLuint blockIndex = static_cast<GLuint>(cache.storageBlocks.size());
|
||||
AddBufferVariablesRecursive(binding->block, blockName, blockIndex, cache.bufferVariables,
|
||||
@@ -237,18 +263,6 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return programObject.get();
|
||||
}
|
||||
|
||||
void CopyResourceName(const String& source, GLsizei bufSize, GLsizei* length, GLchar* name) {
|
||||
const GLsizei writtenLength = static_cast<GLsizei>(source.size());
|
||||
if (length) {
|
||||
*length = writtenLength;
|
||||
}
|
||||
if (name && bufSize > 0) {
|
||||
const GLsizei copyLength = std::min<GLsizei>(bufSize - 1, writtenLength);
|
||||
std::memcpy(name, source.data(), static_cast<SizeT>(copyLength));
|
||||
name[copyLength] = '\0';
|
||||
}
|
||||
}
|
||||
|
||||
const Uint8* ResolveIndirectCommandBytes(const void* indirect, SizeT requiredBytes, const char* label) {
|
||||
auto drawBuffer = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DrawIndirect).GetBoundObject();
|
||||
if (drawBuffer) {
|
||||
@@ -269,109 +283,34 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return reinterpret_cast<const Uint8*>(indirect);
|
||||
}
|
||||
|
||||
Vector<GLuint> GetUniformBlockActiveVariables(const MG_State::GLState::ProgramObject& program,
|
||||
GLuint blockIndex) {
|
||||
Vector<GLuint> activeVariables;
|
||||
const Uint uniformCount = program.GetUniformCount();
|
||||
activeVariables.reserve(uniformCount);
|
||||
for (Uint uniformIndex = 0; uniformIndex < uniformCount; ++uniformIndex) {
|
||||
if (program.GetActiveUniformBlockIndex(uniformIndex) == static_cast<Int>(blockIndex)) {
|
||||
activeVariables.push_back(uniformIndex);
|
||||
}
|
||||
}
|
||||
return activeVariables;
|
||||
}
|
||||
|
||||
GLuint FindProgramInputIndex(const MG_State::GLState::ProgramObject& program, const String& name) {
|
||||
const Int activeCount = program.GetActiveAttributesCount();
|
||||
for (Int index = 0; index < activeCount; ++index) {
|
||||
if (program.GetActiveAttribName(index) == name) {
|
||||
return static_cast<GLuint>(index);
|
||||
}
|
||||
}
|
||||
return GL_INVALID_INDEX;
|
||||
}
|
||||
|
||||
GLuint FindProgramOutputIndex(const MG_State::GLState::ProgramObject& program, const String& name) {
|
||||
const Int activeCount = program.GetActiveFragmentOutputCount();
|
||||
for (Int index = 0; index < activeCount; ++index) {
|
||||
if (program.GetActiveFragmentOutputName(index) == name) {
|
||||
return static_cast<GLuint>(index);
|
||||
}
|
||||
}
|
||||
return GL_INVALID_INDEX;
|
||||
}
|
||||
|
||||
GLint GetProgramOutputLocation(const MG_State::GLState::ProgramObject& program, const String& name) {
|
||||
const Int activeCount = program.GetActiveFragmentOutputCount();
|
||||
for (Int index = 0; index < activeCount; ++index) {
|
||||
if (program.GetActiveFragmentOutputName(index) == name) {
|
||||
return program.GetFragmentOutputLocation(index);
|
||||
}
|
||||
}
|
||||
return -1;
|
||||
}
|
||||
|
||||
GLint GetProgramResourceActiveCount(const MG_State::GLState::ProgramObject& program, GLenum programInterface,
|
||||
const ProgramResourceCache& cache) {
|
||||
switch (programInterface) {
|
||||
case GL_SHADER_STORAGE_BLOCK:
|
||||
return static_cast<GLint>(cache.storageBlocks.size());
|
||||
case GL_BUFFER_VARIABLE:
|
||||
return static_cast<GLint>(cache.bufferVariables.size());
|
||||
case GL_UNIFORM_BLOCK:
|
||||
return program.GetActiveUniformBlocksCount();
|
||||
case GL_UNIFORM:
|
||||
return static_cast<GLint>(program.GetUniformCount());
|
||||
case GL_PROGRAM_INPUT:
|
||||
return program.GetActiveAttributesCount();
|
||||
case GL_PROGRAM_OUTPUT:
|
||||
return program.GetActiveFragmentOutputCount();
|
||||
default:
|
||||
return 0;
|
||||
}
|
||||
}
|
||||
|
||||
GLint GetProgramResourceMaxNameLength(const MG_State::GLState::ProgramObject& program, GLenum programInterface,
|
||||
const ProgramResourceCache& cache) {
|
||||
switch (programInterface) {
|
||||
case GL_SHADER_STORAGE_BLOCK: {
|
||||
SizeT maxLength = 0;
|
||||
for (const auto& block : cache.storageBlocks) maxLength = std::max(maxLength, block.name.size() + 1);
|
||||
return static_cast<GLint>(maxLength);
|
||||
}
|
||||
case GL_BUFFER_VARIABLE: {
|
||||
SizeT maxLength = 0;
|
||||
for (const auto& var : cache.bufferVariables) maxLength = std::max(maxLength, var.name.size() + 1);
|
||||
return static_cast<GLint>(maxLength);
|
||||
}
|
||||
case GL_UNIFORM_BLOCK:
|
||||
return program.GetActiveUniformBlocksMaxNameLength() + 1;
|
||||
case GL_UNIFORM:
|
||||
return program.GetUniformMaxLength() + 1;
|
||||
case GL_PROGRAM_INPUT:
|
||||
return program.GetActiveAttributesMaxLength() + 1;
|
||||
case GL_PROGRAM_OUTPUT: {
|
||||
SizeT maxLength = 0;
|
||||
const Int activeCount = program.GetActiveFragmentOutputCount();
|
||||
for (Int index = 0; index < activeCount; ++index) {
|
||||
maxLength = std::max(maxLength, program.GetActiveFragmentOutputName(index).size() + 1);
|
||||
}
|
||||
return static_cast<GLint>(maxLength);
|
||||
}
|
||||
default:
|
||||
return 0;
|
||||
}
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void ClearProgramResourceCaches() {
|
||||
// Called from EGL teardown while the backend's m_eglStateMutex is held; GL
|
||||
// calls are serialized in this codebase (contexts migrate threads but never
|
||||
// run concurrently), so no other thread can be inside the unsynchronized map.
|
||||
// Live programs in another context self-heal: their entry rebuilds from the
|
||||
// retained generated SPIR-V on the next resource query.
|
||||
g_programResourceCaches.clear();
|
||||
}
|
||||
|
||||
GLuint GetShaderStorageBlockIndex(const MG_State::GLState::ProgramObject& program, const String& name) {
|
||||
auto& cache = GetProgramResourceCache(program);
|
||||
const auto it = std::find_if(cache.storageBlocks.begin(), cache.storageBlocks.end(),
|
||||
[&](const StorageBlockResource& block) { return block.name == name; });
|
||||
return it == cache.storageBlocks.end()
|
||||
? GL_INVALID_INDEX
|
||||
: static_cast<GLuint>(std::distance(cache.storageBlocks.begin(), it));
|
||||
auto find = [&cache](const String& key) {
|
||||
return std::find_if(cache.storageBlocks.begin(), cache.storageBlocks.end(),
|
||||
[&](const StorageBlockResource& block) { return block.name == key; });
|
||||
};
|
||||
auto it = find(name);
|
||||
if (it == cache.storageBlocks.end()) {
|
||||
// Cache names are normalized (NormalizeDescriptorName drops the array suffix), so
|
||||
// an arrayed block that GL enumerates per element - "B[0]", "B[1]" - is one entry
|
||||
// here, spelled "B". Retry against the bare name before giving up.
|
||||
const auto bracket = name.rfind('[');
|
||||
if (bracket == String::npos || name.empty() || name.back() != ']') return GL_INVALID_INDEX;
|
||||
it = find(name.substr(0, bracket));
|
||||
if (it == cache.storageBlocks.end()) return GL_INVALID_INDEX;
|
||||
}
|
||||
return static_cast<GLuint>(std::distance(cache.storageBlocks.begin(), it));
|
||||
}
|
||||
|
||||
GLuint GetShaderStorageBlockBinding(const MG_State::GLState::ProgramObject& program, GLuint blockIndex) {
|
||||
@@ -413,6 +352,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
pVulkanRenderer->ClearNamedFramebufferfv(framebuffer, buffer, drawbuffer, value);
|
||||
}
|
||||
|
||||
void ClearNamedFramebufferiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, const GLint* value) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::ClearNamedFramebufferiv called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::ClearNamedFramebufferiv called with null GL context");
|
||||
pVulkanRenderer->ClearNamedFramebufferiv(framebuffer, buffer, drawbuffer, value);
|
||||
}
|
||||
|
||||
void ClearNamedFramebufferuiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, const GLuint* value) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::ClearNamedFramebufferuiv called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::ClearNamedFramebufferuiv called with null GL context");
|
||||
pVulkanRenderer->ClearNamedFramebufferuiv(framebuffer, buffer, drawbuffer, value);
|
||||
}
|
||||
|
||||
void ClearNamedFramebufferfi(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, GLfloat depth, GLint stencil) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::ClearNamedFramebufferfi called with null VulkanRenderer");
|
||||
@@ -832,357 +785,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
}
|
||||
|
||||
void GetProgramInterfaceiv(GLuint program, GLenum programInterface, GLenum pname, GLint* params) {
|
||||
if (!params) return;
|
||||
void ShaderStorageBlockBinding(GLuint program, const GLchar* storageBlockName, GLuint storageBlockBinding) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject) return;
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
switch (pname) {
|
||||
case GL_ACTIVE_RESOURCES:
|
||||
*params = GetProgramResourceActiveCount(*programObject, programInterface, cache);
|
||||
return;
|
||||
case GL_MAX_NAME_LENGTH:
|
||||
*params = GetProgramResourceMaxNameLength(*programObject, programInterface, cache);
|
||||
return;
|
||||
case GL_MAX_NUM_ACTIVE_VARIABLES:
|
||||
if (programInterface == GL_SHADER_STORAGE_BLOCK) {
|
||||
SizeT maxCount = 0;
|
||||
for (const auto& block : cache.storageBlocks) {
|
||||
maxCount = std::max(maxCount, block.activeVariables.size());
|
||||
}
|
||||
*params = static_cast<GLint>(maxCount);
|
||||
} else if (programInterface == GL_UNIFORM_BLOCK) {
|
||||
GLint maxCount = 0;
|
||||
const Int activeBlocks = programObject->GetActiveUniformBlocksCount();
|
||||
for (Int index = 0; index < activeBlocks; ++index) {
|
||||
maxCount = std::max(maxCount, programObject->GetUniformBlockActiveUniformCount(index));
|
||||
}
|
||||
*params = maxCount;
|
||||
} else {
|
||||
*params = 0;
|
||||
}
|
||||
return;
|
||||
default:
|
||||
*params = 0;
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
GLuint GetProgramResourceIndex(GLuint program, GLenum programInterface, const GLchar* name) {
|
||||
if (!name) return GL_INVALID_INDEX;
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject) return GL_INVALID_INDEX;
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
const String resourceName = name;
|
||||
if (programInterface == GL_SHADER_STORAGE_BLOCK) {
|
||||
return GetShaderStorageBlockIndex(*programObject, name);
|
||||
}
|
||||
if (programInterface == GL_BUFFER_VARIABLE) {
|
||||
const auto it = std::find_if(cache.bufferVariables.begin(), cache.bufferVariables.end(),
|
||||
[&](const BufferVariableResource& var) { return var.name == resourceName; });
|
||||
return it == cache.bufferVariables.end()
|
||||
? GL_INVALID_INDEX
|
||||
: static_cast<GLuint>(std::distance(cache.bufferVariables.begin(), it));
|
||||
}
|
||||
if (programInterface == GL_UNIFORM_BLOCK) {
|
||||
return programObject->GetUniformBlockIndex(name);
|
||||
}
|
||||
if (programInterface == GL_UNIFORM) {
|
||||
const Int activeUniformIndex = programObject->GetActiveUniformIndex(resourceName);
|
||||
return activeUniformIndex >= 0 ? static_cast<GLuint>(activeUniformIndex) : GL_INVALID_INDEX;
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_INPUT) {
|
||||
return FindProgramInputIndex(*programObject, resourceName);
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_OUTPUT) {
|
||||
return FindProgramOutputIndex(*programObject, resourceName);
|
||||
}
|
||||
return GL_INVALID_INDEX;
|
||||
}
|
||||
|
||||
void GetProgramResourceName(GLuint program, GLenum programInterface, GLuint index, GLsizei bufSize,
|
||||
GLsizei* length, GLchar* name) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject) return;
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
if (programInterface == GL_SHADER_STORAGE_BLOCK && index < cache.storageBlocks.size()) {
|
||||
CopyResourceName(cache.storageBlocks[index].name, bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (programInterface == GL_BUFFER_VARIABLE && index < cache.bufferVariables.size()) {
|
||||
CopyResourceName(cache.bufferVariables[index].name, bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (programInterface == GL_UNIFORM_BLOCK && programObject->IsActiveUniformBlock(index)) {
|
||||
CopyResourceName(programObject->GetUniformBlockName(index), bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (programInterface == GL_UNIFORM && index < programObject->GetUniformCount()) {
|
||||
CopyResourceName(programObject->GetActiveUniformName(index), bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_INPUT && index < static_cast<GLuint>(programObject->GetActiveAttributesCount())) {
|
||||
CopyResourceName(programObject->GetActiveAttribName(index), bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_OUTPUT &&
|
||||
index < static_cast<GLuint>(programObject->GetActiveFragmentOutputCount())) {
|
||||
CopyResourceName(programObject->GetActiveFragmentOutputName(index), bufSize, length, name);
|
||||
return;
|
||||
}
|
||||
if (length) *length = 0;
|
||||
if (name && bufSize > 0) name[0] = '\0';
|
||||
}
|
||||
|
||||
void GetProgramResourceiv(GLuint program, GLenum programInterface, GLuint index, GLsizei propCount,
|
||||
const GLenum* props, GLsizei bufSize, GLsizei* length, GLint* params) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject || !props || !params || bufSize <= 0) return;
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
GLsizei written = 0;
|
||||
auto writeValue = [&](GLint value) {
|
||||
if (written < bufSize) {
|
||||
params[written++] = value;
|
||||
}
|
||||
};
|
||||
|
||||
for (GLsizei propIndex = 0; propIndex < propCount; ++propIndex) {
|
||||
const GLenum prop = props[propIndex];
|
||||
if (programInterface == GL_SHADER_STORAGE_BLOCK && index < cache.storageBlocks.size()) {
|
||||
const auto& block = cache.storageBlocks[index];
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(block.name.size() + 1));
|
||||
break;
|
||||
case GL_BUFFER_BINDING:
|
||||
writeValue(static_cast<GLint>(block.binding));
|
||||
break;
|
||||
case GL_BUFFER_DATA_SIZE:
|
||||
writeValue(block.dataSize);
|
||||
break;
|
||||
case GL_NUM_ACTIVE_VARIABLES:
|
||||
writeValue(static_cast<GLint>(block.activeVariables.size()));
|
||||
break;
|
||||
case GL_ACTIVE_VARIABLES:
|
||||
for (const auto variable : block.activeVariables) writeValue(static_cast<GLint>(variable));
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else if (programInterface == GL_BUFFER_VARIABLE && index < cache.bufferVariables.size()) {
|
||||
const auto& var = cache.bufferVariables[index];
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(var.name.size() + 1));
|
||||
break;
|
||||
case GL_TYPE:
|
||||
writeValue(GL_FLOAT);
|
||||
break;
|
||||
case GL_ARRAY_SIZE:
|
||||
writeValue(1);
|
||||
break;
|
||||
case GL_OFFSET:
|
||||
writeValue(var.offset);
|
||||
break;
|
||||
case GL_BLOCK_INDEX:
|
||||
writeValue(static_cast<GLint>(var.blockIndex));
|
||||
break;
|
||||
case GL_ARRAY_STRIDE:
|
||||
case GL_MATRIX_STRIDE:
|
||||
case GL_TOP_LEVEL_ARRAY_SIZE:
|
||||
case GL_TOP_LEVEL_ARRAY_STRIDE:
|
||||
case GL_IS_ROW_MAJOR:
|
||||
writeValue(0);
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else if (programInterface == GL_UNIFORM_BLOCK &&
|
||||
programObject->IsActiveUniformBlock(index)) {
|
||||
const auto activeVariables = GetUniformBlockActiveVariables(*programObject, index);
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(programObject->GetUniformBlockName(index).size() + 1));
|
||||
break;
|
||||
case GL_BUFFER_BINDING:
|
||||
writeValue(static_cast<GLint>(programObject->GetUniformBlockBinding(index)));
|
||||
break;
|
||||
case GL_BUFFER_DATA_SIZE:
|
||||
writeValue(static_cast<GLint>(programObject->GetUBOSizeAt(index)));
|
||||
break;
|
||||
case GL_NUM_ACTIVE_VARIABLES:
|
||||
writeValue(static_cast<GLint>(activeVariables.size()));
|
||||
break;
|
||||
case GL_ACTIVE_VARIABLES:
|
||||
for (const GLuint variableIndex : activeVariables) {
|
||||
writeValue(static_cast<GLint>(variableIndex));
|
||||
}
|
||||
break;
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
writeValue(programObject->IsUniformBlockReferencedByStage(index, EShLangVertex) ? GL_TRUE
|
||||
: GL_FALSE);
|
||||
break;
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
writeValue(programObject->IsUniformBlockReferencedByStage(index, EShLangFragment) ? GL_TRUE
|
||||
: GL_FALSE);
|
||||
break;
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
writeValue(programObject->IsUniformBlockReferencedByStage(index, EShLangCompute) ? GL_TRUE
|
||||
: GL_FALSE);
|
||||
break;
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
writeValue(GL_FALSE);
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else if (programInterface == GL_UNIFORM && index < programObject->GetUniformCount()) {
|
||||
const auto& uniformName = programObject->GetActiveUniformName(index);
|
||||
const GLint location = programObject->GetUniformLocation(uniformName);
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(uniformName.size() + 1));
|
||||
break;
|
||||
case GL_TYPE:
|
||||
writeValue(static_cast<GLint>(programObject->GetActiveUniformType(index)));
|
||||
break;
|
||||
case GL_ARRAY_SIZE:
|
||||
writeValue(programObject->GetActiveUniformArraySize(index));
|
||||
break;
|
||||
case GL_BLOCK_INDEX:
|
||||
writeValue(programObject->GetActiveUniformBlockIndex(index));
|
||||
break;
|
||||
case GL_LOCATION:
|
||||
writeValue(location);
|
||||
break;
|
||||
case GL_OFFSET:
|
||||
writeValue(location >= 0 && programObject->IsValidUniformLocation(location)
|
||||
? static_cast<GLint>(programObject->GetUniformOffset(location))
|
||||
: 0);
|
||||
break;
|
||||
case GL_ARRAY_STRIDE:
|
||||
case GL_MATRIX_STRIDE:
|
||||
case GL_IS_ROW_MAJOR:
|
||||
case GL_TOP_LEVEL_ARRAY_SIZE:
|
||||
case GL_TOP_LEVEL_ARRAY_STRIDE:
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
writeValue(0);
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else if (programInterface == GL_PROGRAM_INPUT &&
|
||||
index < static_cast<GLuint>(programObject->GetActiveAttributesCount())) {
|
||||
const auto& resourceName = programObject->GetActiveAttribName(index);
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(resourceName.size() + 1));
|
||||
break;
|
||||
case GL_TYPE:
|
||||
writeValue(static_cast<GLint>(programObject->GetActiveAttribType(index)));
|
||||
break;
|
||||
case GL_ARRAY_SIZE:
|
||||
writeValue(programObject->GetActiveAttribArraySize(index));
|
||||
break;
|
||||
case GL_LOCATION:
|
||||
writeValue(programObject->GetAttributeLocation(resourceName));
|
||||
break;
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
writeValue(GL_TRUE);
|
||||
break;
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
case GL_IS_PER_PATCH:
|
||||
case GL_LOCATION_INDEX:
|
||||
writeValue(0);
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else if (programInterface == GL_PROGRAM_OUTPUT &&
|
||||
index < static_cast<GLuint>(programObject->GetActiveFragmentOutputCount())) {
|
||||
const auto& resourceName = programObject->GetActiveFragmentOutputName(index);
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
writeValue(static_cast<GLint>(resourceName.size() + 1));
|
||||
break;
|
||||
case GL_TYPE:
|
||||
writeValue(static_cast<GLint>(programObject->GetFragmentOutputType(index)));
|
||||
break;
|
||||
case GL_ARRAY_SIZE:
|
||||
writeValue(programObject->GetActiveFragmentOutputArraySize(index));
|
||||
break;
|
||||
case GL_LOCATION:
|
||||
writeValue(programObject->GetFragmentOutputLocation(index));
|
||||
break;
|
||||
case GL_LOCATION_INDEX:
|
||||
writeValue(0);
|
||||
break;
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
writeValue(GL_TRUE);
|
||||
break;
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
case GL_IS_PER_PATCH:
|
||||
writeValue(0);
|
||||
break;
|
||||
default:
|
||||
writeValue(0);
|
||||
break;
|
||||
}
|
||||
} else {
|
||||
writeValue(0);
|
||||
}
|
||||
}
|
||||
if (length) *length = written;
|
||||
}
|
||||
|
||||
GLint GetProgramResourceLocation(GLuint program, GLenum programInterface, const GLchar* name) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject || !name) return -1;
|
||||
if (programInterface == GL_UNIFORM) {
|
||||
return programObject->GetUniformLocation(name);
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_INPUT) {
|
||||
return programObject->GetAttributeLocation(name);
|
||||
}
|
||||
if (programInterface == GL_PROGRAM_OUTPUT) {
|
||||
return GetProgramOutputLocation(*programObject, name);
|
||||
}
|
||||
return -1;
|
||||
}
|
||||
|
||||
GLint GetProgramResourceLocationIndex(GLuint program, GLenum programInterface, const GLchar* name) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject || !name) return -1;
|
||||
if (programInterface == GL_PROGRAM_OUTPUT) {
|
||||
return GetProgramOutputLocation(*programObject, name) >= 0 ? 0 : -1;
|
||||
}
|
||||
return -1;
|
||||
}
|
||||
|
||||
void ShaderStorageBlockBinding(GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding) {
|
||||
auto* programObject = TryGetDirectVulkanProgram(program);
|
||||
if (!programObject) return;
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
if (!programObject || storageBlockName == nullptr) return;
|
||||
const Int maxBindings = pActiveBackendObject
|
||||
? pActiveBackendObject->GetDynamicParameters().MaxShaderStorageBufferBindings
|
||||
: 0;
|
||||
@@ -1192,13 +797,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
MakeUnique<GenericErrorInfo>("DirectVulkan", __func__, "Shader storage binding is out of range."));
|
||||
return;
|
||||
}
|
||||
if (storageBlockIndex >= cache.storageBlocks.size()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("DirectVulkan", __func__, "Shader storage block index is not active."));
|
||||
return;
|
||||
}
|
||||
cache.storageBlocks[storageBlockIndex].binding = storageBlockBinding;
|
||||
// The frontend already validated that the name denotes an active block, and has
|
||||
// already recorded the new binding on the program - which is what reseeds this cache
|
||||
// whenever it is rebuilt. Writing the entry here as well keeps an ALREADY-BUILT cache
|
||||
// (the common case: the very next draw reads it) from having to be thrown away.
|
||||
auto& cache = GetProgramResourceCache(*programObject);
|
||||
const GLuint blockIndex = GetShaderStorageBlockIndex(*programObject, storageBlockName);
|
||||
if (blockIndex == GL_INVALID_INDEX) return;
|
||||
cache.storageBlocks[blockIndex].binding = storageBlockBinding;
|
||||
}
|
||||
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::ReadPixels called with null VulkanRenderer");
|
||||
@@ -1223,10 +829,76 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
pVulkanRenderer->Clear(mask);
|
||||
}
|
||||
|
||||
// Vulkan has no LINE_LOOP topology; rewrite the draw as an indexed LINE_STRIP
|
||||
// whose synthesized index list revisits the first vertex at the end.
|
||||
static void DrawLineLoopAsIndexedStrip(const Vector<Uint32>& closedIndices, GLint basevertex) {
|
||||
DrawIndexedCmd payload{};
|
||||
payload.mode = GL_LINE_STRIP;
|
||||
payload.indexBufferView.indexType = GL_UNSIGNED_INT;
|
||||
payload.indexBufferView.indexByteOffset = reinterpret_cast<SizeT>(closedIndices.data());
|
||||
payload.indexBufferView.indexByteSize = closedIndices.size() * sizeof(Uint32);
|
||||
payload.indexBufferView.forceClientMemory = true;
|
||||
payload.params.indexCount = static_cast<Uint32>(closedIndices.size());
|
||||
payload.params.instanceCount = 1;
|
||||
payload.params.vertexOffset = basevertex;
|
||||
pVulkanRenderer->DrawElements(payload);
|
||||
}
|
||||
|
||||
// Resolve a DrawElements index list (bound element-array buffer or client
|
||||
// memory) into uint32 values with the loop-closing first index appended.
|
||||
static Bool BuildClosedLineLoopIndices(GLsizei count, GLenum type, const void* indices,
|
||||
Vector<Uint32>& outIndices) {
|
||||
const SizeT indexSize = MG_Util::GetGLTypeSize(type);
|
||||
if (indexSize == 0 || count < 2) {
|
||||
return false;
|
||||
}
|
||||
const Uint8* indexBytes = nullptr;
|
||||
const auto& vao = *MG_State::pGLContext->GetBoundVertexArray();
|
||||
const auto& indexBufferShared = vao.GetIndexBufferBindingSlot().GetBoundObject();
|
||||
if (indexBufferShared != nullptr) {
|
||||
const SizeT offset = reinterpret_cast<SizeT>(indices);
|
||||
const SizeT bufferSize = indexBufferShared->GetSize();
|
||||
if (indexBufferShared->MappedData() == nullptr || offset > bufferSize ||
|
||||
static_cast<SizeT>(count) * indexSize > bufferSize - offset) {
|
||||
return false;
|
||||
}
|
||||
indexBufferShared->SyncPersistentMappedRange();
|
||||
indexBytes = indexBufferShared->MappedData() + offset;
|
||||
} else {
|
||||
indexBytes = static_cast<const Uint8*>(indices);
|
||||
if (indexBytes == nullptr) {
|
||||
return false;
|
||||
}
|
||||
}
|
||||
outIndices.resize(static_cast<SizeT>(count) + 1);
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
switch (indexSize) {
|
||||
case 1: outIndices[i] = indexBytes[i]; break;
|
||||
case 2: outIndices[i] = reinterpret_cast<const Uint16*>(indexBytes)[i]; break;
|
||||
default: outIndices[i] = reinterpret_cast<const Uint32*>(indexBytes)[i]; break;
|
||||
}
|
||||
}
|
||||
outIndices[count] = outIndices[0];
|
||||
return true;
|
||||
}
|
||||
|
||||
void DrawArrays(GLenum mode, GLint first, GLsizei count) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawArrays called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawArrays called with null GL context");
|
||||
|
||||
if (mode == GL_LINE_LOOP) {
|
||||
if (count < 2) {
|
||||
return;
|
||||
}
|
||||
Vector<Uint32> closedIndices(static_cast<SizeT>(count) + 1);
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
closedIndices[i] = static_cast<Uint32>(first + i);
|
||||
}
|
||||
closedIndices[count] = static_cast<Uint32>(first);
|
||||
DrawLineLoopAsIndexedStrip(closedIndices, 0);
|
||||
return;
|
||||
}
|
||||
|
||||
DrawCmd payload{};
|
||||
payload.mode = mode;
|
||||
payload.params.firstVertex = first;
|
||||
@@ -1239,6 +911,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElements called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElements called with null GL context");
|
||||
|
||||
if (mode == GL_LINE_LOOP) {
|
||||
Vector<Uint32> closedIndices;
|
||||
if (BuildClosedLineLoopIndices(count, type, indices, closedIndices)) {
|
||||
DrawLineLoopAsIndexedStrip(closedIndices, 0);
|
||||
}
|
||||
return;
|
||||
}
|
||||
|
||||
DrawIndexedCmd payload{};
|
||||
payload.mode = mode;
|
||||
payload.indexBufferView.indexType = type;
|
||||
@@ -1277,57 +957,31 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
pVulkanRenderer->MultiDrawArrays(payload);
|
||||
}
|
||||
|
||||
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
|
||||
|
||||
// Vector<DrawElementCmd> cmds;
|
||||
// cmds.reserve(static_cast<SizeT>(drawcount));
|
||||
// for (GLsizei i = 0; i < drawcount; ++i) {
|
||||
// if (count[i] == 0) {
|
||||
// continue;
|
||||
// }
|
||||
//
|
||||
// DrawElementCmd payload{};
|
||||
// payload.mode = mode;
|
||||
// payload.firstVertex = 0;
|
||||
// payload.indexCount = count[i];
|
||||
// payload.indexType = type;
|
||||
// payload.indexByteOffset = reinterpret_cast<SizeT>(indices[i]);
|
||||
// cmds.push_back(payload);
|
||||
// }
|
||||
//
|
||||
// if (cmds.empty()) {
|
||||
// return;
|
||||
// }
|
||||
// pVulkanRenderer->MultiDrawElements(cmds);
|
||||
}
|
||||
|
||||
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const GLvoid* indices, GLint basevertex) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElementsBaseVertex called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElementsBaseVertex called with null GL context");
|
||||
DrawIndexedCmd payload{};
|
||||
payload.mode = mode;
|
||||
payload.indexBufferView.indexType = type;
|
||||
payload.indexBufferView.indexByteOffset = reinterpret_cast<SizeT>(indices);
|
||||
payload.indexBufferView.indexByteSize = count * MG_Util::GetGLTypeSize(type);
|
||||
payload.params.indexCount = count;
|
||||
payload.params.instanceCount = 1;
|
||||
payload.params.firstIndex = 0;
|
||||
payload.params.vertexOffset = basevertex;
|
||||
payload.params.firstInstance = 0;
|
||||
pVulkanRenderer->DrawElements(payload);
|
||||
}
|
||||
|
||||
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
|
||||
// Shared body of glMultiDrawElements (basevertex == nullptr) and
|
||||
// glMultiDrawElementsBaseVertex: identical calls except for the per-draw
|
||||
// vertex offset, which VkMultiDrawIndexedInfoEXT / VkDrawIndexedIndirectCommand /
|
||||
// vkCmdDrawIndexed all carry natively.
|
||||
static void MultiDrawElementsImpl(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex) {
|
||||
if (drawcount <= 0) {
|
||||
return;
|
||||
}
|
||||
MultiDrawIndexedCmd payload{};
|
||||
payload.mode = mode;
|
||||
payload.indexBufferView.indexType = type;
|
||||
|
||||
// Loop-invariant: the index type is fixed for the whole multi-draw, so resolve
|
||||
// its byte size once instead of twice per sub-draw (a cross-TU switch that
|
||||
// showed up in per-frame profiles of sodium-style 132x32 multi-draws). Index
|
||||
// sizes are 1/2/4, so the per-sub-draw offset division below reduces to a
|
||||
// shift - the hardware divide was the hottest instruction of this loop.
|
||||
const SizeT indexSize = MG_Util::GetGLTypeSize(type);
|
||||
if (indexSize == 0) {
|
||||
MGLOG_E("MultiDrawElements skipped: unsupported index type 0x%x", type);
|
||||
return;
|
||||
}
|
||||
const Uint32 indexSizeShift = static_cast<Uint32>(std::countr_zero(indexSize));
|
||||
|
||||
// TODO: allocate draw cmd buf elsewhere
|
||||
static Vector<DrawIndexedCmdParam> params;
|
||||
params.clear();
|
||||
@@ -1342,15 +996,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
payload.indexBufferView.indexByteOffset = 0;
|
||||
payload.indexBufferView.indexByteSize =
|
||||
std::max(reinterpret_cast<SizeT>(indices[i]) + count[i] * MG_Util::GetGLTypeSize(type),
|
||||
std::max(reinterpret_cast<SizeT>(indices[i]) + count[i] * indexSize,
|
||||
payload.indexBufferView.indexByteSize);
|
||||
|
||||
auto& param = params[i];
|
||||
|
||||
param.indexCount = count[i];
|
||||
param.instanceCount = 1;
|
||||
param.firstIndex = reinterpret_cast<SizeT>(indices[i]) / MG_Util::GetGLTypeSize(type);
|
||||
param.vertexOffset = basevertex[i];
|
||||
param.firstIndex = reinterpret_cast<SizeT>(indices[i]) >> indexSizeShift;
|
||||
param.vertexOffset = basevertex != nullptr ? basevertex[i] : 0;
|
||||
param.firstInstance = 0;
|
||||
}
|
||||
payload.drawCount = drawcount;
|
||||
@@ -1358,6 +1012,43 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
pVulkanRenderer->MultiDrawElements(payload);
|
||||
}
|
||||
|
||||
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
|
||||
MultiDrawElementsImpl(mode, count, type, indices, drawcount, nullptr);
|
||||
}
|
||||
|
||||
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const GLvoid* indices, GLint basevertex) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElementsBaseVertex called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElementsBaseVertex called with null GL context");
|
||||
if (mode == GL_LINE_LOOP) {
|
||||
Vector<Uint32> closedIndices;
|
||||
if (BuildClosedLineLoopIndices(count, type, indices, closedIndices)) {
|
||||
DrawLineLoopAsIndexedStrip(closedIndices, basevertex);
|
||||
}
|
||||
return;
|
||||
}
|
||||
DrawIndexedCmd payload{};
|
||||
payload.mode = mode;
|
||||
payload.indexBufferView.indexType = type;
|
||||
payload.indexBufferView.indexByteOffset = reinterpret_cast<SizeT>(indices);
|
||||
payload.indexBufferView.indexByteSize = count * MG_Util::GetGLTypeSize(type);
|
||||
payload.params.indexCount = count;
|
||||
payload.params.instanceCount = 1;
|
||||
payload.params.firstIndex = 0;
|
||||
payload.params.vertexOffset = basevertex;
|
||||
payload.params.firstInstance = 0;
|
||||
pVulkanRenderer->DrawElements(payload);
|
||||
}
|
||||
|
||||
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
|
||||
GLsizei drawcount, const GLint* basevertex) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElementsBaseVertex called with null VulkanRenderer");
|
||||
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElementsBaseVertex called with null GL context");
|
||||
MultiDrawElementsImpl(mode, count, type, indices, drawcount, basevertex);
|
||||
}
|
||||
|
||||
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
|
||||
GLint dstY1, GLbitfield mask, GLenum filter) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::BlitFramebuffer called with null VulkanRenderer");
|
||||
@@ -1456,8 +1147,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// records are shared (SharedPtr) with the owning pool's pending list,
|
||||
// so deleting the query while results are still in flight is safe.
|
||||
struct VulkanTimerQuery {
|
||||
enum class Kind : Uint8 { Timer, Occlusion, XfbWritten, XfbGenerated };
|
||||
Kind kind = Kind::Timer;
|
||||
SharedPtr<VkTimerQueryManager::TimestampRecord> begin;
|
||||
SharedPtr<VkTimerQueryManager::TimestampRecord> end;
|
||||
// Kind::Occlusion - pool slots recorded between Begin/End; summed at result time.
|
||||
Vector<Uint32> occlusionSlots;
|
||||
// Renderer generation the records were written under (see
|
||||
// g_rendererGeneration). A stale generation resolves as available
|
||||
// with a final zero result: the records' pool indices and frame
|
||||
@@ -1466,6 +1161,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// (and, via the SharedPtrs, the records), never pool slots, so
|
||||
// stale queries are always safe to delete.
|
||||
Uint64 rendererGeneration = 0;
|
||||
// Kind::XfbGenerated - the frontend's paused-draw primitive counter when the
|
||||
// query began. VK_QUERY_TYPE_TRANSFORM_FEEDBACK_STREAM_EXT counts only what the
|
||||
// capture saw, so a draw made while the span was paused is invisible to it -
|
||||
// but GL_PRIMITIVES_GENERATED counts what the last vertex processing stage
|
||||
// emitted regardless. The delta closes that gap at result time.
|
||||
Uint64 pausedPrimitiveSnapshot = 0;
|
||||
};
|
||||
} // namespace
|
||||
|
||||
@@ -1547,6 +1248,30 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// ever be produced, so resolve with a final 0.
|
||||
return true;
|
||||
}
|
||||
if (query->kind == VulkanTimerQuery::Kind::Occlusion) {
|
||||
Uint64 samples = 0;
|
||||
if (!pVulkanRenderer->ResolveOcclusionQueryResult(query->occlusionSlots, samples)) {
|
||||
return false;
|
||||
}
|
||||
query->occlusionSlots.clear(); // slots are recycled by the resolve
|
||||
*outNanoseconds = samples;
|
||||
return true;
|
||||
}
|
||||
if (query->kind == VulkanTimerQuery::Kind::XfbWritten ||
|
||||
query->kind == VulkanTimerQuery::Kind::XfbGenerated) {
|
||||
Uint64 primitives = 0;
|
||||
if (!pVulkanRenderer->ResolveXfbQueryResult(query->occlusionSlots,
|
||||
query->kind == VulkanTimerQuery::Kind::XfbGenerated,
|
||||
primitives)) {
|
||||
return false;
|
||||
}
|
||||
if (query->kind == VulkanTimerQuery::Kind::XfbGenerated && MG_State::pGLContext != nullptr) {
|
||||
primitives += MG_State::pGLContext->GetTransformFeedbackPausedPrimitiveCounter() -
|
||||
query->pausedPrimitiveSnapshot;
|
||||
}
|
||||
*outNanoseconds = primitives;
|
||||
return true;
|
||||
}
|
||||
// With wait, mirrors ClientWaitSync: a query ended this frame cannot
|
||||
// complete until Present submits the commands, so the wait refuses to
|
||||
// block on the current unsubmitted serial. Returning false keeps the
|
||||
@@ -1579,6 +1304,49 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
delete static_cast<VulkanTimerQuery*>(handle);
|
||||
}
|
||||
|
||||
BackendQueryHandle BeginXfbPrimitivesQuery(Bool generated) {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::BeginXfbPrimitivesQuery called with null VulkanRenderer");
|
||||
if (!pVulkanRenderer->StartXfbQueryCapture(generated ? 1u : 0u)) {
|
||||
return nullptr;
|
||||
}
|
||||
auto* query = new VulkanTimerQuery{};
|
||||
query->kind = generated ? VulkanTimerQuery::Kind::XfbGenerated : VulkanTimerQuery::Kind::XfbWritten;
|
||||
query->rendererGeneration = GetRendererGeneration();
|
||||
query->pausedPrimitiveSnapshot =
|
||||
MG_State::pGLContext ? MG_State::pGLContext->GetTransformFeedbackPausedPrimitiveCounter() : 0;
|
||||
return query;
|
||||
}
|
||||
|
||||
void EndXfbPrimitivesQuery(BackendQueryHandle handle) {
|
||||
auto* query = static_cast<VulkanTimerQuery*>(handle);
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::EndXfbPrimitivesQuery called with null VulkanRenderer");
|
||||
if (query == nullptr || query->rendererGeneration != GetRendererGeneration()) {
|
||||
return;
|
||||
}
|
||||
pVulkanRenderer->StopXfbQueryCapture(
|
||||
query->kind == VulkanTimerQuery::Kind::XfbGenerated ? 1u : 0u, query->occlusionSlots);
|
||||
}
|
||||
|
||||
BackendQueryHandle BeginOcclusionQuery() {
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::BeginOcclusionQuery called with null VulkanRenderer");
|
||||
if (!pVulkanRenderer->StartOcclusionQueryCapture()) {
|
||||
return nullptr;
|
||||
}
|
||||
auto* query = new VulkanTimerQuery{};
|
||||
query->kind = VulkanTimerQuery::Kind::Occlusion;
|
||||
query->rendererGeneration = GetRendererGeneration();
|
||||
return query;
|
||||
}
|
||||
|
||||
void EndOcclusionQuery(BackendQueryHandle handle) {
|
||||
auto* query = static_cast<VulkanTimerQuery*>(handle);
|
||||
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::EndOcclusionQuery called with null VulkanRenderer");
|
||||
if (query == nullptr || query->rendererGeneration != GetRendererGeneration()) {
|
||||
return;
|
||||
}
|
||||
pVulkanRenderer->StopOcclusionQueryCapture(query->occlusionSlots);
|
||||
}
|
||||
|
||||
Int64 GetGpuTimestampNs() {
|
||||
// Vulkan cannot synchronously sample the GPU clock: timestamps only
|
||||
// exist as vkCmdWriteTimestamp results read back later, and
|
||||
|
||||
@@ -12,7 +12,7 @@
|
||||
#include "Renderer/VulkanRenderer.h"
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
extern UniquePtr<VulkanRenderer> pVulkanRenderer;
|
||||
extern UniquePtr<VulkanRenderer>& pVulkanRenderer;
|
||||
|
||||
// Generation of the live VulkanRenderer instance, mirroring DirectGLES's
|
||||
// g_syncContextGeneration. BackendObject_DirectVulkan bumps it wherever
|
||||
@@ -23,12 +23,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint64 GetRendererGeneration();
|
||||
void BumpRendererGeneration();
|
||||
|
||||
// Drops every cached program-resource reflection entry (CPU-side strings/vectors
|
||||
// only, no Vulkan handles). Called at EGL teardown next to the renderer reset;
|
||||
// safe because GL calls are serialized in this codebase, and any still-live
|
||||
// program rebuilds its entry from the retained generated SPIR-V on demand.
|
||||
void ClearProgramResourceCaches();
|
||||
|
||||
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
void ClearBufferiv(GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferfv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, const GLfloat* value);
|
||||
void ClearNamedFramebufferiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferuiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, const GLuint* value);
|
||||
void ClearNamedFramebufferfi(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer, GLenum buffer,
|
||||
GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void Clear(GLbitfield mask);
|
||||
@@ -87,15 +97,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void GetIntegeri_v(GLenum target, GLuint index, GLint* data);
|
||||
void GetInteger64i_v(GLenum target, GLuint index, GLint64* data);
|
||||
void GetProgramiv(GLuint program, GLenum pname, GLint* params);
|
||||
void GetProgramInterfaceiv(GLuint program, GLenum programInterface, GLenum pname, GLint* params);
|
||||
GLuint GetProgramResourceIndex(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void GetProgramResourceName(GLuint program, GLenum programInterface, GLuint index, GLsizei bufSize,
|
||||
GLsizei* length, GLchar* name);
|
||||
void GetProgramResourceiv(GLuint program, GLenum programInterface, GLuint index, GLsizei propCount,
|
||||
const GLenum* props, GLsizei bufSize, GLsizei* length, GLint* params);
|
||||
GLint GetProgramResourceLocation(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
GLint GetProgramResourceLocationIndex(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void ShaderStorageBlockBinding(GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding);
|
||||
void ShaderStorageBlockBinding(GLuint program, const GLchar* storageBlockName, GLuint storageBlockBinding);
|
||||
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels);
|
||||
void GetTexImage(GLenum target, GLint level, GLenum format, GLenum type, GLvoid* pixels);
|
||||
void GetTextureImage(const SharedPtr<MG_State::GLState::ITextureObject>& texture, TextureUploadTarget uploadTarget,
|
||||
@@ -117,6 +119,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// only while a live renderer exists whose device can actually time.
|
||||
Bool IsTimerQuerySupported();
|
||||
BackendQueryHandle BeginTimeElapsedQuery();
|
||||
BackendQueryHandle BeginXfbPrimitivesQuery(Bool generated);
|
||||
void EndXfbPrimitivesQuery(BackendQueryHandle query);
|
||||
BackendQueryHandle BeginOcclusionQuery();
|
||||
void EndOcclusionQuery(BackendQueryHandle query);
|
||||
void EndTimeElapsedQuery(BackendQueryHandle query);
|
||||
BackendQueryHandle QueryCounterTimestamp();
|
||||
Bool IsQueryResultAvailable(BackendQueryHandle query);
|
||||
|
||||
@@ -16,18 +16,19 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_device = device;
|
||||
m_commandPool = commandPool;
|
||||
|
||||
Vector<VkCommandBuffer> commandBuffers(frameCount, VK_NULL_HANDLE);
|
||||
Vector<VkCommandBuffer> commandBuffers(frameCount * 2, VK_NULL_HANDLE);
|
||||
VkCommandBufferAllocateInfo allocInfo{};
|
||||
allocInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
|
||||
allocInfo.commandPool = commandPool;
|
||||
allocInfo.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
|
||||
allocInfo.commandBufferCount = frameCount;
|
||||
allocInfo.commandBufferCount = frameCount * 2;
|
||||
VkResult result = vkAllocateCommandBuffers(device, &allocInfo, commandBuffers.data());
|
||||
if (result != VK_SUCCESS) {
|
||||
return result;
|
||||
}
|
||||
for (Uint32 i = 0; i < frameCount; ++i) {
|
||||
m_frames[i].commandBuffer = commandBuffers[i];
|
||||
m_frames[i].preCommandBuffer = commandBuffers[frameCount + i];
|
||||
}
|
||||
|
||||
VkSemaphoreCreateInfo semaphoreInfo{VK_STRUCTURE_TYPE_SEMAPHORE_CREATE_INFO};
|
||||
@@ -47,9 +48,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
void FrameContext::Destroy(VkDevice device, VkCommandPool commandPool) {
|
||||
const Uint32 frameCount = static_cast<Uint32>(m_frames.size());
|
||||
Vector<VkCommandBuffer> commandBuffers(frameCount, VK_NULL_HANDLE);
|
||||
Vector<VkCommandBuffer> commandBuffers(frameCount * 2, VK_NULL_HANDLE);
|
||||
for (Uint32 i = 0; i < frameCount; ++i) {
|
||||
commandBuffers[i] = m_frames[i].commandBuffer;
|
||||
commandBuffers[frameCount + i] = m_frames[i].preCommandBuffer;
|
||||
}
|
||||
|
||||
for (Uint32 i = 0; i < frameCount; ++i) {
|
||||
@@ -60,7 +62,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
for (auto& frame : m_frames) {
|
||||
FreeRetiredCommandBuffers(frame);
|
||||
}
|
||||
vkFreeCommandBuffers(device, commandPool, frameCount, commandBuffers.data());
|
||||
vkFreeCommandBuffers(device, commandPool, frameCount * 2, commandBuffers.data());
|
||||
}
|
||||
m_frames.clear();
|
||||
currentFrameIndex = 0;
|
||||
@@ -87,6 +89,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
currentFrameIndex = (currentFrameIndex + 1) % static_cast<Uint32>(m_frames.size());
|
||||
GetCurrent().isCommandRecording = false;
|
||||
GetCurrent().hasCommandBufferRecorded = false;
|
||||
GetCurrent().isPreCommandRecording = false;
|
||||
GetCurrent().hasPreCommandBufferRecorded = false;
|
||||
}
|
||||
|
||||
VkCommandBuffer& FrameContext::BeginCommandRecording(VkCommandBufferUsageFlags flags,
|
||||
@@ -118,6 +122,41 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
frame.hasCommandBufferRecorded = true;
|
||||
}
|
||||
|
||||
VkCommandBuffer FrameContext::BeginPreCommandRecording() {
|
||||
auto& frame = GetCurrent();
|
||||
if (frame.isPreCommandRecording) {
|
||||
return frame.preCommandBuffer;
|
||||
}
|
||||
MOBILEGL_ASSERT(!frame.hasPreCommandBufferRecorded,
|
||||
"BeginPreCommandRecording: a recorded pre stream is still awaiting submission");
|
||||
VK_VERIFY(vkResetCommandBuffer(frame.preCommandBuffer, 0), "BeginPreCommandRecording, vkResetCommandBuffer");
|
||||
VkCommandBufferBeginInfo beginInfo{};
|
||||
beginInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO;
|
||||
VK_VERIFY(vkBeginCommandBuffer(frame.preCommandBuffer, &beginInfo),
|
||||
"BeginPreCommandRecording, vkBeginCommandBuffer");
|
||||
frame.isPreCommandRecording = true;
|
||||
return frame.preCommandBuffer;
|
||||
}
|
||||
|
||||
void FrameContext::EndPreCommandRecordingIfOpen() {
|
||||
auto& frame = GetCurrent();
|
||||
if (!frame.isPreCommandRecording) {
|
||||
return;
|
||||
}
|
||||
VK_VERIFY(vkEndCommandBuffer(frame.preCommandBuffer), "EndPreCommandRecordingIfOpen, vkEndCommandBuffer");
|
||||
frame.isPreCommandRecording = false;
|
||||
frame.hasPreCommandBufferRecorded = true;
|
||||
}
|
||||
|
||||
void FrameContext::AbandonPreCommandRecording() {
|
||||
auto& frame = GetCurrent();
|
||||
if (frame.isPreCommandRecording) {
|
||||
VK_VERIFY(vkEndCommandBuffer(frame.preCommandBuffer), "AbandonPreCommandRecording, vkEndCommandBuffer");
|
||||
}
|
||||
frame.isPreCommandRecording = false;
|
||||
frame.hasPreCommandBufferRecorded = false;
|
||||
}
|
||||
|
||||
VkResult FrameContext::InitializeSwapchainSemaphores(VkDevice device, Uint32 swapchainImageCount) {
|
||||
DestroySwapchainSemaphores(device);
|
||||
if (swapchainImageCount == 0) {
|
||||
@@ -150,12 +189,30 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
Bool FrameContext::TransitionToPresent(VkImage image, VkImageLayout oldLayout, VkImageLayout presentLayout) {
|
||||
auto& frame = GetCurrent();
|
||||
if (frame.hasCommandBufferRecorded || frame.isCommandRecording || oldLayout == presentLayout ||
|
||||
oldLayout == VK_IMAGE_LAYOUT_SHARED_PRESENT_KHR) {
|
||||
if (oldLayout == presentLayout || oldLayout == VK_IMAGE_LAYOUT_SHARED_PRESENT_KHR) {
|
||||
return false;
|
||||
}
|
||||
|
||||
auto& commandBuffer = BeginCommandRecording();
|
||||
// The barrier belongs in the frame's own recording. Bailing out because
|
||||
// something was already recorded (the previous behaviour) dropped the
|
||||
// transition entirely for every frame that never ran a default-framebuffer
|
||||
// render pass - the only other thing that carries the image to
|
||||
// PRESENT_SRC_KHR, via that pass's finalLayout - so the swapchain image was
|
||||
// handed to the WSI still in the layout it was acquired in.
|
||||
// A closed-but-unsubmitted buffer can only come from a submit that already
|
||||
// failed (SubmitPendingCommandBuffer leaves the flag set on error), and
|
||||
// appending to it is illegal while reopening would reset the frame's own
|
||||
// commands away. The device is gone on that path anyway - stay silent-safe
|
||||
// rather than trade a lost device for a barrier into a closed buffer.
|
||||
if (frame.hasCommandBufferRecorded) {
|
||||
MGLOG_E("TransitionToPresent: command buffer already closed; skipping the present barrier");
|
||||
return false;
|
||||
}
|
||||
|
||||
// Reopening a recording here would vkResetCommandBuffer this frame's own
|
||||
// commands away, so append to the open one and let the caller close it.
|
||||
const Bool openedRecording = !frame.isCommandRecording;
|
||||
VkCommandBuffer commandBuffer = openedRecording ? BeginCommandRecording() : frame.commandBuffer;
|
||||
|
||||
VkImageMemoryBarrier presentBarrier{};
|
||||
presentBarrier.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
|
||||
@@ -174,7 +231,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
vkCmdPipelineBarrier(commandBuffer, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_BOTTOM_OF_PIPE_BIT, 0, 0,
|
||||
nullptr, 0, nullptr, 1, &presentBarrier);
|
||||
|
||||
EndCommandRecording();
|
||||
if (openedRecording) {
|
||||
EndCommandRecording();
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
@@ -182,17 +241,27 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 swapchainImageIndex) const {
|
||||
const auto& frame = GetCurrent();
|
||||
MOBILEGL_ASSERT(!frame.isCommandRecording, "GetSubmitInfo called while command buffer recording is still active");
|
||||
MOBILEGL_ASSERT(!frame.isPreCommandRecording,
|
||||
"GetSubmitInfo called while the pre-pass stream is still recording");
|
||||
AssertValidSwapchainImageIndex(swapchainImageIndex);
|
||||
SubmitInfoPacket packet{};
|
||||
packet.waitSemaphore = frame.imageAvailableSemaphore;
|
||||
packet.signalSemaphore = m_swapchainImageRenderFinishedSemaphores[swapchainImageIndex];
|
||||
packet.commandBuffer = frame.commandBuffer;
|
||||
|
||||
Uint32 commandBufferCount = 0;
|
||||
// The pre-pass stream executes strictly before the frame's commands.
|
||||
if (frame.hasPreCommandBufferRecorded) {
|
||||
packet.commandBuffers[commandBufferCount++] = frame.preCommandBuffer;
|
||||
}
|
||||
if (shouldSubmitCommandBuffer) {
|
||||
packet.commandBuffers[commandBufferCount++] = frame.commandBuffer;
|
||||
}
|
||||
|
||||
packet.submitInfo.waitSemaphoreCount = frame.imageAvailableSemaphoreConsumed ? 0U : 1U;
|
||||
packet.submitInfo.pWaitSemaphores = frame.imageAvailableSemaphoreConsumed ? nullptr : &packet.waitSemaphore;
|
||||
packet.submitInfo.pWaitDstStageMask = frame.imageAvailableSemaphoreConsumed ? nullptr : &packet.waitDstStageMask;
|
||||
packet.submitInfo.commandBufferCount = shouldSubmitCommandBuffer ? 1U : 0U;
|
||||
packet.submitInfo.pCommandBuffers = shouldSubmitCommandBuffer ? &packet.commandBuffer : nullptr;
|
||||
packet.submitInfo.commandBufferCount = commandBufferCount;
|
||||
packet.submitInfo.pCommandBuffers = commandBufferCount > 0 ? packet.commandBuffers : nullptr;
|
||||
packet.submitInfo.signalSemaphoreCount = 1;
|
||||
packet.submitInfo.pSignalSemaphores = &packet.signalSemaphore;
|
||||
return packet;
|
||||
@@ -227,12 +296,21 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
result = vkAcquireNextImageKHR(device, swapchain, timeout, frame.imageAvailableSemaphore, acquireFence,
|
||||
&outImageIndex);
|
||||
if (result != VK_SUCCESS) {
|
||||
// VK_SUBOPTIMAL_KHR is a success code: an image *was* acquired and
|
||||
// imageAvailableSemaphore *will* be signaled. Bailing out on it skipped both
|
||||
// the consumed-flag reset (leaving a stale "already consumed", so the next
|
||||
// submit never waited on the pending signal) and the fence reset (leaving
|
||||
// the slot's fence signaled for the next submit to reuse). Only a genuine
|
||||
// failure - VK_ERROR_OUT_OF_DATE_KHR and friends, where nothing is acquired
|
||||
// and nothing is signaled - skips the bookkeeping.
|
||||
if (result != VK_SUCCESS && result != VK_SUBOPTIMAL_KHR) {
|
||||
return result;
|
||||
}
|
||||
|
||||
frame.imageAvailableSemaphoreConsumed = false;
|
||||
return vkResetFences(device, 1, &frame.imageInFlightFence);
|
||||
const VkResult resetResult = vkResetFences(device, 1, &frame.imageInFlightFence);
|
||||
// Hand the acquire's own code back so the caller can schedule a rebuild.
|
||||
return resetResult == VK_SUCCESS ? result : resetResult;
|
||||
}
|
||||
|
||||
Uint32 FrameContext::GetCurrentFrameIndex() const {
|
||||
@@ -247,12 +325,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_recordingObserver = observer;
|
||||
}
|
||||
|
||||
VkResult FrameContext::RetireCurrentCommandBuffer() {
|
||||
VkResult FrameContext::RetireCurrentCommandBuffer(Bool retirePreCommandBuffer) {
|
||||
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE && m_commandPool != VK_NULL_HANDLE,
|
||||
"RetireCurrentCommandBuffer requires an initialized FrameContext");
|
||||
auto& frame = GetCurrent();
|
||||
MOBILEGL_ASSERT(!frame.isCommandRecording,
|
||||
"RetireCurrentCommandBuffer called while the command buffer is still recording");
|
||||
MOBILEGL_ASSERT(!frame.isPreCommandRecording,
|
||||
"RetireCurrentCommandBuffer called while the pre-pass stream is still recording");
|
||||
|
||||
VkCommandBufferAllocateInfo allocInfo{};
|
||||
allocInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
|
||||
@@ -260,11 +340,23 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
allocInfo.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
|
||||
allocInfo.commandBufferCount = 1;
|
||||
VkCommandBuffer replacement = VK_NULL_HANDLE;
|
||||
const VkResult result = vkAllocateCommandBuffers(m_device, &allocInfo, &replacement);
|
||||
VkResult result = vkAllocateCommandBuffers(m_device, &allocInfo, &replacement);
|
||||
if (result != VK_SUCCESS) {
|
||||
return result;
|
||||
}
|
||||
frame.retiredCommandBuffers.push_back(frame.commandBuffer);
|
||||
if (retirePreCommandBuffer) {
|
||||
VkCommandBuffer preReplacement = VK_NULL_HANDLE;
|
||||
result = vkAllocateCommandBuffers(m_device, &allocInfo, &preReplacement);
|
||||
if (result != VK_SUCCESS) {
|
||||
vkFreeCommandBuffers(m_device, m_commandPool, 1, &replacement);
|
||||
return result;
|
||||
}
|
||||
frame.retiredCommandBuffers.push_back({frame.preCommandBuffer, frame.lastSubmitIndex});
|
||||
frame.preCommandBuffer = preReplacement;
|
||||
}
|
||||
// lastSubmitIndex was just written by the renderer for the submission
|
||||
// that carried this command buffer.
|
||||
frame.retiredCommandBuffers.push_back({frame.commandBuffer, frame.lastSubmitIndex});
|
||||
frame.commandBuffer = replacement;
|
||||
return VK_SUCCESS;
|
||||
}
|
||||
@@ -274,12 +366,40 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return;
|
||||
}
|
||||
if (m_device != VK_NULL_HANDLE && m_commandPool != VK_NULL_HANDLE) {
|
||||
vkFreeCommandBuffers(m_device, m_commandPool, static_cast<Uint32>(frame.retiredCommandBuffers.size()),
|
||||
frame.retiredCommandBuffers.data());
|
||||
for (const auto& retired : frame.retiredCommandBuffers) {
|
||||
vkFreeCommandBuffers(m_device, m_commandPool, 1, &retired.commandBuffer);
|
||||
}
|
||||
}
|
||||
frame.retiredCommandBuffers.clear();
|
||||
}
|
||||
|
||||
void FrameContext::FreeRetiredCommandBuffersCompletedUpTo(Uint64 completedSubmitIndex) {
|
||||
if (m_device == VK_NULL_HANDLE || m_commandPool == VK_NULL_HANDLE) {
|
||||
return;
|
||||
}
|
||||
for (auto& frame : m_frames) {
|
||||
// Retired buffers are appended in submit order, so the completed
|
||||
// ones form a prefix.
|
||||
SizeT completedCount = 0;
|
||||
while (completedCount < frame.retiredCommandBuffers.size() &&
|
||||
frame.retiredCommandBuffers[completedCount].submitIndex <= completedSubmitIndex) {
|
||||
vkFreeCommandBuffers(m_device, m_commandPool, 1,
|
||||
&frame.retiredCommandBuffers[completedCount].commandBuffer);
|
||||
++completedCount;
|
||||
}
|
||||
if (completedCount > 0) {
|
||||
frame.retiredCommandBuffers.erase(frame.retiredCommandBuffers.begin(),
|
||||
frame.retiredCommandBuffers.begin() + completedCount);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
void FrameContext::FreeAllRetiredCommandBuffers() {
|
||||
for (auto& frame : m_frames) {
|
||||
FreeRetiredCommandBuffers(frame);
|
||||
}
|
||||
}
|
||||
|
||||
void FrameContext::AssertValidFrameIndex(Uint32 frameIndex) const {
|
||||
MOBILEGL_ASSERT(frameIndex < m_frames.size(), "FrameContext index out of range");
|
||||
}
|
||||
|
||||
@@ -29,7 +29,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkPipelineStageFlags waitDstStageMask = VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT;
|
||||
VkSemaphore waitSemaphore = VK_NULL_HANDLE;
|
||||
VkSemaphore signalSemaphore = VK_NULL_HANDLE;
|
||||
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
|
||||
// [0] = pre-pass command buffer (when recorded), then the frame
|
||||
// command buffer; submitInfo.pCommandBuffers points here.
|
||||
VkCommandBuffer commandBuffers[2] = {VK_NULL_HANDLE, VK_NULL_HANDLE};
|
||||
VkSubmitInfo submitInfo{VK_STRUCTURE_TYPE_SUBMIT_INFO};
|
||||
};
|
||||
|
||||
@@ -40,17 +42,35 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkPresentInfoKHR presentInfo{VK_STRUCTURE_TYPE_PRESENT_INFO_KHR};
|
||||
};
|
||||
|
||||
// A command buffer submitted mid-frame (FlushPendingCommands), tagged
|
||||
// with the submit-tracker index it was submitted under so it can be
|
||||
// freed as soon as that submission is observed complete - without
|
||||
// waiting for the slot's fence to be waited again (present-less flush
|
||||
// loops never wait it).
|
||||
struct RetiredCommandBuffer {
|
||||
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
|
||||
Uint64 submitIndex = 0;
|
||||
};
|
||||
|
||||
struct FrameData {
|
||||
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
|
||||
// Pre-pass work stream: out-of-pass commands (deferred clear
|
||||
// materialization, sampled-layout transitions) for resources the
|
||||
// frame's recording has not touched yet. Submitted immediately
|
||||
// BEFORE commandBuffer in the same vkQueueSubmit, so recording
|
||||
// into it never has to split the frame's active render pass.
|
||||
VkCommandBuffer preCommandBuffer = VK_NULL_HANDLE;
|
||||
VkSemaphore imageAvailableSemaphore = VK_NULL_HANDLE;
|
||||
VkFence imageInFlightFence = VK_NULL_HANDLE;
|
||||
Bool isCommandRecording = false;
|
||||
Bool hasCommandBufferRecorded = false;
|
||||
Bool isPreCommandRecording = false;
|
||||
Bool hasPreCommandBufferRecorded = false;
|
||||
Bool imageAvailableSemaphoreConsumed = false;
|
||||
// Command buffers submitted mid-frame (FlushPendingCommands) whose
|
||||
// execution is only known complete once this slot's fence has been
|
||||
// waited again; freed at that point.
|
||||
Vector<VkCommandBuffer> retiredCommandBuffers;
|
||||
// Command buffers submitted mid-frame (FlushPendingCommands),
|
||||
// appended in submit order; freed once their submission is known
|
||||
// complete (fence wait or completion poll).
|
||||
Vector<RetiredCommandBuffer> retiredCommandBuffers;
|
||||
// Submit-tracker index of this slot's most recent queue submission
|
||||
// (written by the renderer at submit time).
|
||||
Uint64 lastSubmitIndex = 0;
|
||||
@@ -67,6 +87,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkCommandBuffer& BeginCommandRecording(VkCommandBufferUsageFlags flags = 0,
|
||||
const VkCommandBufferInheritanceInfo* pInheritanceInfo = nullptr);
|
||||
void EndCommandRecording();
|
||||
// Lazily opens the pre-pass work stream (see FrameData::preCommandBuffer).
|
||||
VkCommandBuffer BeginPreCommandRecording();
|
||||
// Closes the pre stream if open, marking it for submission ahead of the
|
||||
// frame command buffer. Safe to call when it never opened.
|
||||
void EndPreCommandRecordingIfOpen();
|
||||
// Drops an in-progress or recorded-but-unsubmitted pre stream (dropped
|
||||
// frame recordings, swapchain recreation).
|
||||
void AbandonPreCommandRecording();
|
||||
VkResult InitializeSwapchainSemaphores(VkDevice device, Uint32 swapchainImageCount);
|
||||
void DestroySwapchainSemaphores(VkDevice device);
|
||||
Bool TransitionToPresent(VkImage image, VkImageLayout oldLayout,
|
||||
@@ -79,8 +107,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// Parks the current (already ended and submitted) command buffer on the
|
||||
// slot's retired list and installs a freshly allocated one, so recording
|
||||
// can restart while the submitted buffer is still executing. Retired
|
||||
// buffers are freed after the slot's fence is next waited.
|
||||
VkResult RetireCurrentCommandBuffer();
|
||||
// buffers are freed after the slot's fence is next waited, or as soon
|
||||
// as their submission is observed complete.
|
||||
VkResult RetireCurrentCommandBuffer(Bool retirePreCommandBuffer = false);
|
||||
|
||||
// Frees every retired command buffer whose tagged submission index is
|
||||
// known complete. Driven by the renderer's submit tracker on completion
|
||||
// events (fence waits and non-blocking polls), so present-less flush
|
||||
// loops reclaim their buffers without any extra wait.
|
||||
void FreeRetiredCommandBuffersCompletedUpTo(Uint64 completedSubmitIndex);
|
||||
// Frees every slot's retired command buffers. Only valid when the
|
||||
// caller has proven every queue submission complete.
|
||||
void FreeAllRetiredCommandBuffers();
|
||||
|
||||
Uint32 GetCurrentFrameIndex() const;
|
||||
Uint32 GetFrameCount() const;
|
||||
|
||||
@@ -8,6 +8,8 @@
|
||||
|
||||
#include "PipelineFactory.h"
|
||||
|
||||
#include <algorithm>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static const char* PrimitiveTopologyToString(VkPrimitiveTopology topology) {
|
||||
switch (topology) {
|
||||
@@ -108,6 +110,81 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
"vkCreatePipelineCache");
|
||||
}
|
||||
|
||||
// Must be called once, before any pipeline is created: the flag is not part of the
|
||||
// pipeline hash, so flipping it mid-life would serve cached pipelines built under the
|
||||
// old value.
|
||||
void PipelineFactory::SetSuppressBlendedDepthWrite(Bool enabled) {
|
||||
s_suppressBlendedDepthWrite = enabled;
|
||||
}
|
||||
|
||||
Bool PipelineFactory::ShouldSuppressBlendedDepthWriteForDevice(MG_Config::QuirkOverride quirkOverride,
|
||||
Uint32 vendorId) {
|
||||
static constexpr Uint32 kVendorIdQualcomm = 0x5143;
|
||||
switch (quirkOverride) {
|
||||
case MG_Config::QuirkOverride::ForceOn:
|
||||
return true;
|
||||
case MG_Config::QuirkOverride::ForceOff:
|
||||
return false;
|
||||
case MG_Config::QuirkOverride::Auto:
|
||||
default:
|
||||
return vendorId == kVendorIdQualcomm;
|
||||
}
|
||||
}
|
||||
|
||||
namespace {
|
||||
// MIN/MAX extremum blending: the signature of a depth-bounds accumulation pass
|
||||
// (MC 26.3 OIT writes vec4(-linD, linD, deviceZ, 0) under GL_MAX while writing
|
||||
// depth for its equality chain). MIN/MAX ignore blend factors per the Vulkan spec.
|
||||
//
|
||||
// Deliberately the ONLY shape stripped. A quirk should touch as little unrelated
|
||||
// content as possible, and a trace sweep of every fixture showed the wider
|
||||
// alternatives all cost more than they fix:
|
||||
// - additive ONE+ONE with a depth write matched zero draws of the 26.3 chain
|
||||
// (its transmittance/accumulate passes disable depth writes themselves) - the
|
||||
// only real content it caught was harmless additive glow effects (Create);
|
||||
// - sorted-transparency "over" blends (SRC_ALPHA-style) are order-dependent,
|
||||
// drawn once per surface, and rely on their depth writes for occlusion;
|
||||
// - separate-alpha accumulation over an over-blending color channel has no
|
||||
// known pairing with a depth-equality chain (color channel only, see tests).
|
||||
// If a future workload pairs another blend shape with an equality chain, widen
|
||||
// this with that evidence in hand rather than pre-emptively.
|
||||
Bool IsAccumulationBlend(const VkPipelineColorBlendAttachmentState& attachment) {
|
||||
return attachment.colorBlendOp == VK_BLEND_OP_MIN ||
|
||||
attachment.colorBlendOp == VK_BLEND_OP_MAX;
|
||||
}
|
||||
} // namespace
|
||||
|
||||
Bool PipelineFactory::ShouldSuppressDepthWrite(const PipelineCreatePayload& payload) {
|
||||
if (!payload.depthWriteEnable) {
|
||||
return false;
|
||||
}
|
||||
// A shader that assigns gl_FragDepth supplies depth itself rather than taking the
|
||||
// pipeline's interpolated Z, so a driver that varies the vertex position math
|
||||
// between pipelines cannot desynchronize it. (A gl_FragDepth = gl_FragCoord.z
|
||||
// passthrough is the exception that stays exposed; no known content pairs one with
|
||||
// an equality chain, and 26.3's composite is a genuine computed-depth writer.)
|
||||
if (payload.fragmentReplacesDepth) {
|
||||
return false;
|
||||
}
|
||||
for (Uint32 i = 0; i < payload.colorAttachmentCount; ++i) {
|
||||
const VkPipelineColorBlendAttachmentState& attachment = payload.colorBlendAttachments[i];
|
||||
if (attachment.blendEnable != VK_TRUE) {
|
||||
continue;
|
||||
}
|
||||
// All color writes masked: blending is moot (depth-prepass pattern that left
|
||||
// GL_BLEND enabled); stripping the depth write would delete the whole prepass.
|
||||
if (attachment.colorWriteMask == 0) {
|
||||
continue;
|
||||
}
|
||||
// Any attachment qualifies, not just attachment 0: the 26.3 transmittance pass
|
||||
// accumulates into a 2-target MRT and must stay stripped.
|
||||
if (IsAccumulationBlend(attachment)) {
|
||||
return true;
|
||||
}
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
PipelineFactory::~PipelineFactory() {
|
||||
DestroyAll();
|
||||
if (m_pipelineCache != VK_NULL_HANDLE) {
|
||||
@@ -128,9 +205,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.topology, sizeof(payload.topology)));
|
||||
XXHASH_VERIFY(
|
||||
XXH64_update(m_hashState, &payload.primitiveRestartEnable, sizeof(payload.primitiveRestartEnable)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.patchControlPoints, sizeof(payload.patchControlPoints)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.polygonMode, sizeof(payload.polygonMode)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.cullMode, sizeof(payload.cullMode)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.frontFace, sizeof(payload.frontFace)));
|
||||
XXHASH_VERIFY(
|
||||
XXH64_update(m_hashState, &payload.provokingVertexMode, sizeof(payload.provokingVertexMode)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthTestEnable, sizeof(payload.depthTestEnable)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthWriteEnable, sizeof(payload.depthWriteEnable)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthBiasEnable, sizeof(payload.depthBiasEnable)));
|
||||
@@ -152,6 +232,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
XXH64_update(m_hashState, &payload.backStencilDepthFailOp, sizeof(payload.backStencilDepthFailOp)));
|
||||
XXHASH_VERIFY(
|
||||
XXH64_update(m_hashState, &payload.backStencilCompareOp, sizeof(payload.backStencilCompareOp)));
|
||||
XXHASH_VERIFY(
|
||||
XXH64_update(m_hashState, &payload.fragmentReplacesDepth, sizeof(payload.fragmentReplacesDepth)));
|
||||
if (payload.colorAttachmentCount > 0) {
|
||||
XXHASH_VERIFY(XXH64_update(
|
||||
m_hashState,
|
||||
@@ -165,23 +247,108 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const HashType hash = ComputeHash(payload);
|
||||
auto it = m_cache.find(hash);
|
||||
if (it != m_cache.end()) {
|
||||
return it->second;
|
||||
it->second.lastUsedFrame = m_frameCounter;
|
||||
return it->second.pipeline;
|
||||
}
|
||||
|
||||
VkPipeline pipeline = CreatePipeline(payload);
|
||||
m_cache.emplace(hash, pipeline);
|
||||
m_cache.emplace(hash, PipelineCacheEntry{pipeline, payload.programHash, payload.renderPass,
|
||||
m_frameCounter});
|
||||
return pipeline;
|
||||
}
|
||||
|
||||
void PipelineFactory::DestroyAll() {
|
||||
for (auto& pair : m_cache) {
|
||||
if (pair.second != VK_NULL_HANDLE) {
|
||||
vkDestroyPipeline(m_device, pair.second, nullptr);
|
||||
if (pair.second.pipeline != VK_NULL_HANDLE) {
|
||||
vkDestroyPipeline(m_device, pair.second.pipeline, nullptr);
|
||||
}
|
||||
}
|
||||
m_cache.clear();
|
||||
}
|
||||
|
||||
Uint32 PipelineFactory::OnFrameBoundary() {
|
||||
++m_frameCounter;
|
||||
|
||||
// Sweep cadence and retire age mirror VkRenderPassManager::OnPresent: an entry
|
||||
// idle for more than kRetireAgeFrames frame boundaries cannot be referenced by
|
||||
// any in-flight command buffer (frames-in-flight <= MOBILEGL_MAGMA_FRAMESINFLIGHT),
|
||||
// so immediate vkDestroyPipeline is safe. The caller must drop its "last
|
||||
// pipeline" memo when this returns non-zero: the memo can return a cached
|
||||
// handle without touching this cache, so an evicted pipeline may still be
|
||||
// memoized (present-less flush loops never reset the memo per frame).
|
||||
constexpr Uint64 kSweepInterval = 256;
|
||||
constexpr Uint64 kRetireAgeFrames = 1024;
|
||||
if ((m_frameCounter % kSweepInterval) != 0) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
Uint32 evicted = 0;
|
||||
for (auto it = m_cache.begin(); it != m_cache.end();) {
|
||||
if (m_frameCounter - it->second.lastUsedFrame > kRetireAgeFrames) {
|
||||
if (it->second.pipeline != VK_NULL_HANDLE) {
|
||||
vkDestroyPipeline(m_device, it->second.pipeline, nullptr);
|
||||
}
|
||||
it = m_cache.erase(it);
|
||||
++evicted;
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
if (evicted > 0) {
|
||||
MGLOG_D("PipelineFactory::OnFrameBoundary: evicted %u idle pipelines (%zu remain)", evicted,
|
||||
m_cache.size());
|
||||
}
|
||||
return evicted;
|
||||
}
|
||||
|
||||
Uint32 PipelineFactory::EvictByRenderPasses(const Vector<VkRenderPass>& renderPasses) {
|
||||
if (renderPasses.empty() || m_cache.empty()) {
|
||||
return 0;
|
||||
}
|
||||
// Sorted-batch membership test keeps a mass eviction (shader-pack switch,
|
||||
// dimension exit) at one O(cache * log batch) scan instead of one full scan
|
||||
// per dying pass.
|
||||
Vector<VkRenderPass> sortedPasses = renderPasses;
|
||||
std::sort(sortedPasses.begin(), sortedPasses.end());
|
||||
Uint32 evicted = 0;
|
||||
for (auto it = m_cache.begin(); it != m_cache.end();) {
|
||||
if (std::binary_search(sortedPasses.begin(), sortedPasses.end(), it->second.renderPass)) {
|
||||
if (it->second.pipeline != VK_NULL_HANDLE) {
|
||||
vkDestroyPipeline(m_device, it->second.pipeline, nullptr);
|
||||
}
|
||||
it = m_cache.erase(it);
|
||||
++evicted;
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
if (evicted > 0) {
|
||||
MGLOG_D("PipelineFactory::EvictByRenderPasses: evicted %u pipelines for %zu destroyed render passes",
|
||||
evicted, sortedPasses.size());
|
||||
}
|
||||
return evicted;
|
||||
}
|
||||
|
||||
Uint32 PipelineFactory::EvictByProgramHash(HashType programHash) {
|
||||
Uint32 evicted = 0;
|
||||
for (auto it = m_cache.begin(); it != m_cache.end();) {
|
||||
if (it->second.programHash == programHash) {
|
||||
if (it->second.pipeline != VK_NULL_HANDLE) {
|
||||
vkDestroyPipeline(m_device, it->second.pipeline, nullptr);
|
||||
}
|
||||
it = m_cache.erase(it);
|
||||
++evicted;
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
if (evicted > 0) {
|
||||
MGLOG_D("PipelineFactory::EvictByProgramHash: evicted %u pipelines for program hash 0x%llx",
|
||||
evicted, static_cast<unsigned long long>(programHash));
|
||||
}
|
||||
return evicted;
|
||||
}
|
||||
|
||||
VkPipeline PipelineFactory::CreatePipeline(const PipelineCreatePayload& payload) const {
|
||||
MOBILEGL_ASSERT(payload.stages != nullptr && !payload.stages->empty(), "PipelineFactory: stages are empty");
|
||||
MOBILEGL_ASSERT(payload.vertexInputState != nullptr, "PipelineFactory: vertexInputState is null");
|
||||
@@ -216,6 +383,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
ia.topology = payload.topology;
|
||||
ia.primitiveRestartEnable = payload.primitiveRestartEnable ? VK_TRUE : VK_FALSE;
|
||||
|
||||
// Only a patch topology has a tessellation stage to configure; leaving the pointer null
|
||||
// otherwise is what the spec expects.
|
||||
VkPipelineTessellationStateCreateInfo tessellation{VK_STRUCTURE_TYPE_PIPELINE_TESSELLATION_STATE_CREATE_INFO};
|
||||
tessellation.patchControlPoints = payload.patchControlPoints;
|
||||
|
||||
VkPipelineViewportStateCreateInfo vpci{VK_STRUCTURE_TYPE_PIPELINE_VIEWPORT_STATE_CREATE_INFO};
|
||||
vpci.viewportCount = 1;
|
||||
vpci.scissorCount = 1;
|
||||
@@ -227,6 +399,17 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
raster.depthBiasEnable = payload.depthBiasEnable ? VK_TRUE : VK_FALSE;
|
||||
raster.rasterizerDiscardEnable = payload.rasterizerDiscardEnable ? VK_TRUE : VK_FALSE;
|
||||
raster.lineWidth = 1.0f;
|
||||
// Only chain the struct when the mode is not Vulkan's implicit default: a device without
|
||||
// VK_EXT_provoking_vertex enabled must never see this pNext entry, and the renderer's
|
||||
// selector already collapses to FIRST in exactly that case - so a device without the
|
||||
// extension produces a byte-identical VkGraphicsPipelineCreateInfo to before.
|
||||
VkPipelineRasterizationProvokingVertexStateCreateInfoEXT provokingVertexState{
|
||||
VK_STRUCTURE_TYPE_PIPELINE_RASTERIZATION_PROVOKING_VERTEX_STATE_CREATE_INFO_EXT};
|
||||
if (payload.provokingVertexMode != VK_PROVOKING_VERTEX_MODE_FIRST_VERTEX_EXT) {
|
||||
provokingVertexState.provokingVertexMode = payload.provokingVertexMode;
|
||||
provokingVertexState.pNext = raster.pNext;
|
||||
raster.pNext = &provokingVertexState;
|
||||
}
|
||||
|
||||
VkPipelineMultisampleStateCreateInfo ms{VK_STRUCTURE_TYPE_PIPELINE_MULTISAMPLE_STATE_CREATE_INFO};
|
||||
ms.rasterizationSamples = payload.rasterizationSamples;
|
||||
@@ -258,6 +441,17 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
for (Uint32 i = 0; i < payload.colorAttachmentCount; ++i) {
|
||||
colorAttachments[i] = payload.colorBlendAttachments[i];
|
||||
}
|
||||
// Suppress depth writes on accumulation-blended pipelines when the active driver
|
||||
// cannot keep vertex positions invariant across the pipelines of a multi-pass
|
||||
// depth-equality chain (see SetSuppressBlendedDepthWrite). The decision is narrowed
|
||||
// in ShouldSuppressDepthWrite: sorted-transparency "over" blends (vanilla MC water),
|
||||
// gl_FragDepth writers, and masked-out attachments keep their depth writes.
|
||||
// This bakes the decision into the pipeline, which only works because depth write is
|
||||
// static state here - adding VK_DYNAMIC_STATE_DEPTH_WRITE_ENABLE to kDynamicStates
|
||||
// would let the record-time value override it and silently disable the quirk.
|
||||
if (s_suppressBlendedDepthWrite && ShouldSuppressDepthWrite(payload)) {
|
||||
depthStencil.depthWriteEnable = VK_FALSE;
|
||||
}
|
||||
VkPipelineColorBlendStateCreateInfo blend{VK_STRUCTURE_TYPE_PIPELINE_COLOR_BLEND_STATE_CREATE_INFO};
|
||||
blend.logicOpEnable = payload.logicOpEnable ? VK_TRUE : VK_FALSE;
|
||||
blend.logicOp = payload.logicOp;
|
||||
@@ -269,6 +463,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
gpi.pStages = payload.stages->data();
|
||||
gpi.pVertexInputState = payload.vertexInputState;
|
||||
gpi.pInputAssemblyState = &ia;
|
||||
gpi.pTessellationState =
|
||||
payload.topology == VK_PRIMITIVE_TOPOLOGY_PATCH_LIST ? &tessellation : nullptr;
|
||||
gpi.pViewportState = &vpci;
|
||||
gpi.pRasterizationState = &raster;
|
||||
gpi.pMultisampleState = &ms;
|
||||
|
||||
@@ -30,9 +30,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 subpass = 0;
|
||||
VkPrimitiveTopology topology = VK_PRIMITIVE_TOPOLOGY_TRIANGLE_LIST;
|
||||
Bool primitiveRestartEnable = false;
|
||||
// GL_PATCH_VERTICES; only read for a PATCH_LIST topology.
|
||||
Uint32 patchControlPoints = 3;
|
||||
VkPolygonMode polygonMode = VK_POLYGON_MODE_FILL;
|
||||
VkCullModeFlags cullMode = VK_CULL_MODE_BACK_BIT;
|
||||
VkFrontFace frontFace = VK_FRONT_FACE_CLOCKWISE;
|
||||
// GL's provoking vertex, baked into the pipeline (VK_EXT_provoking_vertex). It selects
|
||||
// which vertex a flat varying takes AND the vertex order transform feedback records for
|
||||
// strips/fans, so it is part of the pipeline's identity, not dynamic state. Defaults to
|
||||
// Vulkan's own convention, which is what a device without the extension gets.
|
||||
VkProvokingVertexModeEXT provokingVertexMode = VK_PROVOKING_VERTEX_MODE_FIRST_VERTEX_EXT;
|
||||
Bool depthTestEnable = false;
|
||||
Bool depthWriteEnable = false;
|
||||
Bool depthBiasEnable = false;
|
||||
@@ -49,6 +56,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkStencilOp backStencilPassOp = VK_STENCIL_OP_KEEP;
|
||||
VkStencilOp backStencilDepthFailOp = VK_STENCIL_OP_KEEP;
|
||||
VkCompareOp backStencilCompareOp = VK_COMPARE_OP_ALWAYS;
|
||||
// The fragment module writes gl_FragDepth (SPIR-V DepthReplacing); exempts the
|
||||
// pipeline from the blended depth-write quirk (see ShouldSuppressDepthWrite).
|
||||
Bool fragmentReplacesDepth = false;
|
||||
Array<VkPipelineColorBlendAttachmentState, kMaxColorAttachments> colorBlendAttachments{};
|
||||
const Vector<VkPipelineShaderStageCreateInfo>* stages = nullptr;
|
||||
const VkPipelineVertexInputStateCreateInfo* vertexInputState = nullptr;
|
||||
@@ -62,13 +72,69 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkPipeline GetOrCreatePipeline(const PipelineCreatePayload& payload);
|
||||
void DestroyAll();
|
||||
|
||||
// Frame boundary hook: ages the pipeline cache and destroys long-unused entries
|
||||
// (their command buffers retired many frames ago), mirroring
|
||||
// VkRenderPassManager::OnPresent's sweep. Returns the number of pipelines
|
||||
// destroyed so the caller can drop any memoized VkPipeline handle.
|
||||
Uint32 OnFrameBoundary();
|
||||
// Destroys every cached pipeline hashed on one of `renderPasses`. Only safe
|
||||
// when the caller guarantees GPU idleness for them - the render-pass manager
|
||||
// calls this (via the renderer) for passes its own >1024-boundary-idle sweep
|
||||
// just evicted, and a pipeline hashed on those handles is only ever bound by
|
||||
// draws that also hit the render-pass entries. Also closes the handle-recycling
|
||||
// hazard: a recycled VkRenderPass value must never serve a stale pipeline.
|
||||
// Batched: one cache scan regardless of how many passes died in the sweep.
|
||||
// Returns the number destroyed (callers invalidate memos when non-zero).
|
||||
Uint32 EvictByRenderPasses(const Vector<VkRenderPass>& renderPasses);
|
||||
// Destroys every cached pipeline built from the program with content hash
|
||||
// `programHash`. Called from the ProgramFactory eviction path, which proves the
|
||||
// same >1024-boundary idleness (the program's pipelines are only bound by draws
|
||||
// that stamp its factory entry). Returns the number destroyed.
|
||||
Uint32 EvictByProgramHash(HashType programHash);
|
||||
|
||||
// Driver quirk: suppress depth writes on accumulation-blended pipelines. Multi-pass
|
||||
// depth-equality rendering (a blended prepass writes depth that later passes re-test
|
||||
// with an equality-inclusive compare on the re-rasterized geometry) requires
|
||||
// cross-pipeline position invariance that some mobile compilers do not provide, even
|
||||
// with the SPIR-V Invariant decoration; whole primitives then drop out of the later
|
||||
// passes. Only MIN/MAX extremum blends are stripped - the signature of such a
|
||||
// chain's depth-bounds pass (MC 26.3 OIT), and per a fixture-wide trace sweep the
|
||||
// only depth-writing shape the chain actually uses - so every other blend
|
||||
// (sorted-transparency "over" like vanilla MC water, additive glows, ...) keeps
|
||||
// its depth writes. Set at renderer initialization based on the active driver.
|
||||
static void SetSuppressBlendedDepthWrite(Bool enabled);
|
||||
static Bool IsSuppressBlendedDepthWriteEnabled() { return s_suppressBlendedDepthWrite; }
|
||||
// Device gate for the quirk: ForceOn/ForceOff bypass detection, Auto enables it on
|
||||
// the known-affected vendor (Qualcomm).
|
||||
static Bool ShouldSuppressBlendedDepthWriteForDevice(MG_Config::QuirkOverride quirkOverride,
|
||||
Uint32 vendorId);
|
||||
// Pure per-pipeline strip decision (exempts gl_FragDepth writers, masked-out and
|
||||
// non-accumulation blends); combined with the device flag in CreatePipeline. Static
|
||||
// and payload-only so tests can pin the contract without a VkDevice.
|
||||
static Bool ShouldSuppressDepthWrite(const PipelineCreatePayload& payload);
|
||||
|
||||
private:
|
||||
struct PipelineCacheEntry {
|
||||
VkPipeline pipeline = VK_NULL_HANDLE;
|
||||
// The hashed inputs the eviction paths key on: programHash ties the entry to
|
||||
// its ProgramFactory entry, renderPass records the exact handle the hash
|
||||
// folded in (the hash is one-way, so targeted eviction needs them verbatim).
|
||||
HashType programHash = 0;
|
||||
VkRenderPass renderPass = VK_NULL_HANDLE;
|
||||
// Frame-boundary counter value of the last GetOrCreatePipeline hit; drives
|
||||
// cache eviction (see OnFrameBoundary).
|
||||
Uint64 lastUsedFrame = 0;
|
||||
};
|
||||
|
||||
VkPipeline CreatePipeline(const PipelineCreatePayload& payload) const;
|
||||
|
||||
VkDevice m_device = VK_NULL_HANDLE;
|
||||
const VulkanRendererConfig& m_config;
|
||||
VkPipelineCache m_pipelineCache = VK_NULL_HANDLE;
|
||||
UnorderedMap<HashType, VkPipeline> m_cache;
|
||||
UnorderedMap<HashType, PipelineCacheEntry> m_cache;
|
||||
// Monotonic frame-boundary counter (bumped in OnFrameBoundary) for cache aging.
|
||||
Uint64 m_frameCounter = 0;
|
||||
static inline XXH64_state_t* m_hashState = XXH64_createState();
|
||||
static inline Bool s_suppressBlendedDepthWrite = false;
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -14,8 +14,16 @@
|
||||
#include "MG_State/GLState/TextureState/TextureEnum.h"
|
||||
|
||||
#include <Includes.h>
|
||||
#include <spirv_reflect.h>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
enum class SamplerNumericDomain : Uint8 {
|
||||
Unknown = 0,
|
||||
Float,
|
||||
SignedInteger,
|
||||
UnsignedInteger,
|
||||
};
|
||||
|
||||
class ProgramFactory {
|
||||
public:
|
||||
enum class DescriptorBindingKind : Uint8 {
|
||||
@@ -34,6 +42,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
SurfaceRotate90 = 1 << 2,
|
||||
SurfaceRotate180 = 1 << 3,
|
||||
SurfaceRotate270 = 1 << 4,
|
||||
// Rewrites the fragment stage's implicit-LOD image samples to explicit LOD 0.
|
||||
// Only ever set for a draw whose every sampler binding is clamped to a single mip
|
||||
// level, which makes the two forms produce identical texels (the implicit lambda is
|
||||
// clamped into [minLod, maxLod] = [0, 0] regardless of derivatives or bias).
|
||||
ExplicitLod0Sampling = 1 << 5,
|
||||
// Decorates the last vertex-processing stage's captured varyings with
|
||||
// XfbBuffer/XfbStride/Offset (VK_EXT_transform_feedback). Set only for draws
|
||||
// recorded while GL transform feedback is active, so plain draws keep the
|
||||
// undecorated variant.
|
||||
XfbCapture = 1 << 6,
|
||||
};
|
||||
using CompileOptionFlags = Flags<CompileOptionBit>;
|
||||
using HashType = Uint64;
|
||||
@@ -49,13 +67,31 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkDescriptorSetLayout descriptorSetLayout = VK_NULL_HANDLE;
|
||||
VkPipelineLayout pipelineLayout = VK_NULL_HANDLE;
|
||||
Vector<DescriptorBindingKind> bindingKinds;
|
||||
// The bindings this program actually declares, ascending. bindingKinds is sized to the
|
||||
// 256-binding cap while a real GL program uses 1-8, so the per-draw descriptor walk was
|
||||
// scanning 256 slots to find a handful. MUST stay ascending: Vulkan consumes
|
||||
// pDynamicOffsets in binding order and the writer pushes them in iteration order, so an
|
||||
// unordered list would silently mis-pair dynamic offsets with their uniform blocks.
|
||||
Vector<Uint32> activeBindings;
|
||||
Vector<Uint32> dynamicBindings;
|
||||
Vector<Int> uniformBlockIndexByBinding;
|
||||
// Descriptor count per binding (1 except for UBO instance arrays, which occupy one
|
||||
// binding with descriptorCount = N).
|
||||
Vector<Uint16> bindingDescriptorCounts;
|
||||
// Per-element GL uniform block indices for arrayed UBO bindings (count > 1);
|
||||
// element 0 of a non-arrayed binding stays in uniformBlockIndexByBinding.
|
||||
UnorderedMap<Uint32, Vector<Int>> arrayedUniformBlockIndicesByBinding;
|
||||
Vector<String> samplerNameByBinding;
|
||||
Vector<Int> samplerUniformLocationByBinding;
|
||||
Vector<TextureTarget> samplerTextureTargetByBinding;
|
||||
Vector<SamplerNumericDomain> samplerNumericDomainByBinding;
|
||||
Vector<VkFormat> storageImageFormatByBinding;
|
||||
Vector<Bool> storageImageUsesBindingFormatByBinding;
|
||||
Vector<String> storageBlockNameByBinding;
|
||||
Vector<Int> storageBlockIndexByBinding;
|
||||
// Set once during ReflectLayout so the per-draw path can skip the whole
|
||||
// storage-image preparation for the overwhelming majority of programs.
|
||||
Bool hasStorageImages = false;
|
||||
Int globalUboBinding = -1;
|
||||
Uint32 activeVertexInputLocationMask = 0;
|
||||
Array<GLenum, kMaxVertexInputLocations> vertexInputTypes{};
|
||||
@@ -64,6 +100,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
ShaderStage rasterizationProducerStage = ShaderStage::Unknown;
|
||||
Uint32 producerOutputComponentCount = 0;
|
||||
Uint32 fragmentInputComponentCount = 0;
|
||||
// The fragment module declares the DepthReplacing execution mode (writes
|
||||
// gl_FragDepth); shader-computed depth is immune to the cross-pipeline
|
||||
// position-invariance quirk (see PipelineFactory::ShouldSuppressDepthWrite).
|
||||
Bool fragmentReplacesDepth = false;
|
||||
// Frame-boundary counter value of the last GetOrCreateProgram hit; drives
|
||||
// cache eviction (see OnFrameBoundary). Mutable: the draw snapshot's memoised
|
||||
// entry pointer re-stamps use through a const reference (StampProgramUse).
|
||||
mutable Uint64 lastUsedFrame = 0;
|
||||
|
||||
static inline VkDevice s_device = VK_NULL_HANDLE;
|
||||
|
||||
@@ -77,13 +121,21 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
descriptorSetLayout = other.descriptorSetLayout;
|
||||
pipelineLayout = other.pipelineLayout;
|
||||
bindingKinds = std::move(other.bindingKinds);
|
||||
activeBindings = std::move(other.activeBindings);
|
||||
dynamicBindings = std::move(other.dynamicBindings);
|
||||
uniformBlockIndexByBinding = std::move(other.uniformBlockIndexByBinding);
|
||||
bindingDescriptorCounts = std::move(other.bindingDescriptorCounts);
|
||||
arrayedUniformBlockIndicesByBinding = std::move(other.arrayedUniformBlockIndicesByBinding);
|
||||
samplerNameByBinding = std::move(other.samplerNameByBinding);
|
||||
samplerUniformLocationByBinding = std::move(other.samplerUniformLocationByBinding);
|
||||
samplerTextureTargetByBinding = std::move(other.samplerTextureTargetByBinding);
|
||||
samplerNumericDomainByBinding = std::move(other.samplerNumericDomainByBinding);
|
||||
storageImageFormatByBinding = std::move(other.storageImageFormatByBinding);
|
||||
storageImageUsesBindingFormatByBinding =
|
||||
std::move(other.storageImageUsesBindingFormatByBinding);
|
||||
storageBlockNameByBinding = std::move(other.storageBlockNameByBinding);
|
||||
storageBlockIndexByBinding = std::move(other.storageBlockIndexByBinding);
|
||||
hasStorageImages = other.hasStorageImages;
|
||||
globalUboBinding = other.globalUboBinding;
|
||||
activeVertexInputLocationMask = other.activeVertexInputLocationMask;
|
||||
vertexInputTypes = other.vertexInputTypes;
|
||||
@@ -92,15 +144,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
rasterizationProducerStage = other.rasterizationProducerStage;
|
||||
producerOutputComponentCount = other.producerOutputComponentCount;
|
||||
fragmentInputComponentCount = other.fragmentInputComponentCount;
|
||||
fragmentReplacesDepth = other.fragmentReplacesDepth;
|
||||
lastUsedFrame = other.lastUsedFrame;
|
||||
other.hash = 0;
|
||||
other.descriptorSetLayout = VK_NULL_HANDLE;
|
||||
other.pipelineLayout = VK_NULL_HANDLE;
|
||||
other.hasStorageImages = false;
|
||||
other.globalUboBinding = -1;
|
||||
other.activeVertexInputLocationMask = 0;
|
||||
other.activeFragmentOutputLocationMask = 0;
|
||||
other.rasterizationProducerStage = ShaderStage::Unknown;
|
||||
other.producerOutputComponentCount = 0;
|
||||
other.fragmentInputComponentCount = 0;
|
||||
other.fragmentReplacesDepth = false;
|
||||
other.lastUsedFrame = 0;
|
||||
}
|
||||
VkProgramObject& operator=(VkProgramObject&& other) noexcept {
|
||||
if (this == &other) {
|
||||
@@ -113,13 +170,21 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
descriptorSetLayout = other.descriptorSetLayout;
|
||||
pipelineLayout = other.pipelineLayout;
|
||||
bindingKinds = std::move(other.bindingKinds);
|
||||
activeBindings = std::move(other.activeBindings);
|
||||
dynamicBindings = std::move(other.dynamicBindings);
|
||||
uniformBlockIndexByBinding = std::move(other.uniformBlockIndexByBinding);
|
||||
bindingDescriptorCounts = std::move(other.bindingDescriptorCounts);
|
||||
arrayedUniformBlockIndicesByBinding = std::move(other.arrayedUniformBlockIndicesByBinding);
|
||||
samplerNameByBinding = std::move(other.samplerNameByBinding);
|
||||
samplerUniformLocationByBinding = std::move(other.samplerUniformLocationByBinding);
|
||||
samplerTextureTargetByBinding = std::move(other.samplerTextureTargetByBinding);
|
||||
samplerNumericDomainByBinding = std::move(other.samplerNumericDomainByBinding);
|
||||
storageImageFormatByBinding = std::move(other.storageImageFormatByBinding);
|
||||
storageImageUsesBindingFormatByBinding =
|
||||
std::move(other.storageImageUsesBindingFormatByBinding);
|
||||
storageBlockNameByBinding = std::move(other.storageBlockNameByBinding);
|
||||
storageBlockIndexByBinding = std::move(other.storageBlockIndexByBinding);
|
||||
hasStorageImages = other.hasStorageImages;
|
||||
globalUboBinding = other.globalUboBinding;
|
||||
activeVertexInputLocationMask = other.activeVertexInputLocationMask;
|
||||
vertexInputTypes = other.vertexInputTypes;
|
||||
@@ -128,15 +193,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
rasterizationProducerStage = other.rasterizationProducerStage;
|
||||
producerOutputComponentCount = other.producerOutputComponentCount;
|
||||
fragmentInputComponentCount = other.fragmentInputComponentCount;
|
||||
fragmentReplacesDepth = other.fragmentReplacesDepth;
|
||||
lastUsedFrame = other.lastUsedFrame;
|
||||
other.hash = 0;
|
||||
other.descriptorSetLayout = VK_NULL_HANDLE;
|
||||
other.pipelineLayout = VK_NULL_HANDLE;
|
||||
other.hasStorageImages = false;
|
||||
other.globalUboBinding = -1;
|
||||
other.activeVertexInputLocationMask = 0;
|
||||
other.activeFragmentOutputLocationMask = 0;
|
||||
other.rasterizationProducerStage = ShaderStage::Unknown;
|
||||
other.producerOutputComponentCount = 0;
|
||||
other.fragmentInputComponentCount = 0;
|
||||
other.fragmentReplacesDepth = false;
|
||||
other.lastUsedFrame = 0;
|
||||
return *this;
|
||||
}
|
||||
|
||||
@@ -166,10 +236,24 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
};
|
||||
|
||||
// Notified when the OnFrameBoundary sweep destroys an aged-out cache entry,
|
||||
// carrying the entry's content hash and the VkDescriptorSetLayout it owned.
|
||||
// Dependent caches (compute pipelines, PipelineFactory entries, UniformManager's
|
||||
// per-layout descriptor sets) must purge in the same step: after vkDestroy the
|
||||
// layout handle value may be recycled for an unrelated layout, and the program
|
||||
// hash may be re-inserted by a later rebuild of the same content.
|
||||
class IEvictionObserver {
|
||||
public:
|
||||
virtual ~IEvictionObserver() = default;
|
||||
virtual void OnProgramEvicted(HashType programHash, VkDescriptorSetLayout descriptorSetLayout) = 0;
|
||||
};
|
||||
|
||||
explicit ProgramFactory(VkDevice device, const VulkanRendererConfig& config, Uint32 maxBindings = 16,
|
||||
Bool shaderDrawParametersEnabled = false)
|
||||
Bool shaderDrawParametersEnabled = false,
|
||||
Bool unformattedFloatStorageImagesEnabled = false)
|
||||
: m_device(device), m_maxBindings(maxBindings), m_config(config),
|
||||
m_shaderDrawParametersEnabled(shaderDrawParametersEnabled) {
|
||||
m_shaderDrawParametersEnabled(shaderDrawParametersEnabled),
|
||||
m_unformattedFloatStorageImagesEnabled(unformattedFloatStorageImagesEnabled) {
|
||||
VkProgramObject::s_device = device;
|
||||
}
|
||||
~ProgramFactory() = default;
|
||||
@@ -179,7 +263,34 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const VkProgramObject& GetOrCreateProgram(
|
||||
const MG_State::GLState::ProgramObject& program, CompileOptionFlags flags);
|
||||
|
||||
// Bumped whenever m_cache's STRUCTURE changes (any insert or erase): the cache is
|
||||
// an open-addressing map holding entries by value, so both moves existing entries.
|
||||
// A caller that memoised a VkProgramObject* may keep dereferencing it only while
|
||||
// this is unchanged; on a bump it must re-run GetOrCreateProgram.
|
||||
Uint64 GetCacheStructureEpoch() const { return m_cacheStructureEpoch; }
|
||||
// A memoised entry pointer bypasses GetOrCreateProgram, whose per-lookup stamp is
|
||||
// what keeps an in-use entry out of OnFrameBoundary's idle sweep - so such a
|
||||
// caller must re-stamp the entry itself, at least once per frame boundary.
|
||||
void StampProgramUse(const VkProgramObject& entry) const { entry.lastUsedFrame = m_frameCounter; }
|
||||
|
||||
// Observer may be null (no notifications). Not owned.
|
||||
void SetEvictionObserver(IEvictionObserver* observer) { m_evictionObserver = observer; }
|
||||
// Frame boundary hook: ages the program cache and evicts long-unused entries
|
||||
// (their command buffers retired many frames ago), mirroring
|
||||
// VkRenderPassManager::OnPresent's sweep.
|
||||
void OnFrameBoundary();
|
||||
|
||||
static VkShaderStageFlagBits ToVkStage(ShaderStage stage);
|
||||
static VkFormat ConvertSpirvImageFormatToVkFormat(SpvImageFormat format);
|
||||
static SamplerNumericDomain UniformTypeToSamplerNumericDomain(GLenum glType);
|
||||
// True when any entry point declares the DepthReplacing execution mode, i.e. the
|
||||
// shader assigns gl_FragDepth. Exposed so the blended depth-write quirk's exemption
|
||||
// can be pinned by tests. A false negative loses the exemption, so such a shader is
|
||||
// stripped conservatively and forfeits its depth write.
|
||||
static Bool ReflectedFragmentReplacesDepth(const SpvReflectShaderModule& reflectModule);
|
||||
// True when an entry point reads the InstanceIndex builtin. Only gates a diagnostic:
|
||||
// without shaderDrawParameters such a shader cannot have gl_InstanceID rebased.
|
||||
static Bool ReflectedReadsInstanceIndexBuiltin(const SpvReflectShaderModule& reflectModule);
|
||||
|
||||
private:
|
||||
struct ProgramLookupCache {
|
||||
@@ -206,7 +317,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// True when the device enabled shaderDrawParameters; gates the InstanceIndex rebase pass
|
||||
// (which needs the DrawParameters capability / gl_BaseInstance builtin).
|
||||
Bool m_shaderDrawParametersEnabled = false;
|
||||
// True only when the logical device enabled both
|
||||
// shaderStorageImageReadWithoutFormat and shaderStorageImageWriteWithoutFormat.
|
||||
Bool m_unformattedFloatStorageImagesEnabled = false;
|
||||
mutable ProgramLookupCache m_lastLookup;
|
||||
// Monotonic frame-boundary counter (bumped in OnFrameBoundary) for cache aging.
|
||||
Uint64 m_frameCounter = 0;
|
||||
// See GetCacheStructureEpoch(). Starts at 1 so a zero-initialized memo can never match.
|
||||
Uint64 m_cacheStructureEpoch = 1;
|
||||
IEvictionObserver* m_evictionObserver = nullptr;
|
||||
static inline XXH64_state_t* m_hashState = XXH64_createState();
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -247,6 +247,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
m_surfaceFormat = {createInfo.imageFormat, createInfo.imageColorSpace};
|
||||
m_extent = createInfo.imageExtent;
|
||||
// The surface-space extent this swapchain was built from, i.e. before the
|
||||
// quarter-turn swap above. Out-of-date checks must compare in THIS space: comparing a
|
||||
// freshly queried currentExtent against the swapped m_extent flips axes every rotation
|
||||
// and makes the comparison alternate forever.
|
||||
m_surfaceExtent = defaultFramebufferExtent;
|
||||
m_preTransform = createInfo.preTransform;
|
||||
|
||||
VK_VERIFY(vkCreateSwapchainKHR(device, &createInfo, nullptr, &m_swapchain));
|
||||
@@ -257,6 +262,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_images.resize(imageCount, VK_NULL_HANDLE);
|
||||
VK_VERIFY(vkGetSwapchainImagesKHR(device, m_swapchain, &imageCount, m_images.data()));
|
||||
m_imageLayouts.assign(imageCount, VK_IMAGE_LAYOUT_UNDEFINED);
|
||||
// Fresh swapchain images hold garbage until a render pass stores into them.
|
||||
m_imageContentDefined.assign(imageCount, false);
|
||||
m_depthStencilContentDefined.assign(imageCount, false);
|
||||
|
||||
CreateImageViews(device);
|
||||
CreateDepthStencilResources(device, physicalDevice);
|
||||
@@ -428,9 +436,39 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
m_images.clear();
|
||||
m_imageLayouts.clear();
|
||||
m_imageContentDefined.clear();
|
||||
m_depthStencilContentDefined.clear();
|
||||
m_preTransform = VK_SURFACE_TRANSFORM_IDENTITY_BIT_KHR;
|
||||
}
|
||||
|
||||
Bool SwapchainObject::IsImageContentDefined(Uint32 index) const {
|
||||
MOBILEGL_ASSERT(index < m_imageContentDefined.size(), "Swapchain image content index out of range");
|
||||
return m_imageContentDefined[index];
|
||||
}
|
||||
|
||||
void SwapchainObject::SetImageContentDefined(Uint32 index, Bool defined) {
|
||||
MOBILEGL_ASSERT(index < m_imageContentDefined.size(), "Swapchain image content index out of range");
|
||||
m_imageContentDefined[index] = defined;
|
||||
}
|
||||
|
||||
Bool SwapchainObject::IsDepthStencilContentDefined(Uint32 index) const {
|
||||
MOBILEGL_ASSERT(index < m_depthStencilContentDefined.size(),
|
||||
"Swapchain depth/stencil content index out of range");
|
||||
return m_depthStencilContentDefined[index];
|
||||
}
|
||||
|
||||
void SwapchainObject::SetDepthStencilContentDefined(Uint32 index, Bool defined) {
|
||||
MOBILEGL_ASSERT(index < m_depthStencilContentDefined.size(),
|
||||
"Swapchain depth/stencil content index out of range");
|
||||
m_depthStencilContentDefined[index] = defined;
|
||||
}
|
||||
|
||||
void SwapchainObject::SetAllDepthStencilContentUndefined() {
|
||||
for (SizeT i = 0; i < m_depthStencilContentDefined.size(); ++i) {
|
||||
m_depthStencilContentDefined[i] = false;
|
||||
}
|
||||
}
|
||||
|
||||
VkImage SwapchainObject::GetImage(Uint32 index) const {
|
||||
MOBILEGL_ASSERT(index < m_images.size(), "Swapchain image index out of range");
|
||||
return m_images[index];
|
||||
|
||||
@@ -35,6 +35,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkSwapchainKHR GetHandle() const { return m_swapchain; }
|
||||
const VkSurfaceFormatKHR& GetSurfaceFormat() const { return m_surfaceFormat; }
|
||||
VkExtent2D GetExtent() const { return m_extent; }
|
||||
// Surface-space extent (before the pre-rotation quarter-turn swap) this swapchain was
|
||||
// created from - the value to compare a freshly queried currentExtent against.
|
||||
VkExtent2D GetSurfaceExtent() const { return m_surfaceExtent; }
|
||||
VkSurfaceTransformFlagBitsKHR GetPreTransform() const { return m_preTransform; }
|
||||
const Vector<VkImage>& GetImages() const { return m_images; }
|
||||
const Vector<VkImageView>& GetImageViews() const { return m_imageViews; }
|
||||
@@ -49,6 +52,21 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void SetImageLayout(Uint32 index, VkImageLayout layout);
|
||||
SizeT GetImageCount() const { return m_images.size(); }
|
||||
|
||||
// EGL content-validity tracking for the default framebuffer. A color
|
||||
// buffer's content is undefined once its image has been presented
|
||||
// (EGL_BUFFER_DESTROYED swap behaviour, the implementation default),
|
||||
// and every ancillary (depth/stencil) buffer's content is undefined
|
||||
// after ANY swap regardless of swap behaviour (EGL 1.5 §3.10.1). The
|
||||
// render-pass manager turns an undefined attachment's tile load into
|
||||
// LOAD_OP_DONT_CARE. Flags start false (a fresh swapchain image holds
|
||||
// garbage) and a render pass storing into an attachment sets it back
|
||||
// to defined.
|
||||
Bool IsImageContentDefined(Uint32 index) const;
|
||||
void SetImageContentDefined(Uint32 index, Bool defined);
|
||||
Bool IsDepthStencilContentDefined(Uint32 index) const;
|
||||
void SetDepthStencilContentDefined(Uint32 index, Bool defined);
|
||||
void SetAllDepthStencilContentUndefined();
|
||||
|
||||
private:
|
||||
void CreateImageViews(VkDevice device);
|
||||
void CreateDepthStencilResources(VkDevice device, VkPhysicalDevice physicalDevice);
|
||||
@@ -63,6 +81,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkSwapchainKHR m_swapchain = VK_NULL_HANDLE;
|
||||
VkSurfaceFormatKHR m_surfaceFormat{};
|
||||
VkExtent2D m_extent{};
|
||||
VkExtent2D m_surfaceExtent{};
|
||||
VkSurfaceTransformFlagBitsKHR m_preTransform = VK_SURFACE_TRANSFORM_IDENTITY_BIT_KHR;
|
||||
Vector<VkImage> m_images;
|
||||
Vector<VkImageView> m_imageViews;
|
||||
@@ -73,5 +92,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Vector<VkDeviceMemory> m_depthStencilImageMemories;
|
||||
Vector<VkImageView> m_depthStencilImageViews;
|
||||
Vector<VkImageLayout> m_depthStencilImageLayouts;
|
||||
Vector<Bool> m_imageContentDefined;
|
||||
Vector<Bool> m_depthStencilContentDefined;
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -39,15 +39,72 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void Shutdown();
|
||||
|
||||
void BeginFrame(Uint32 frameIndex);
|
||||
// A command buffer (re)began recording: descriptor bindings recorded into
|
||||
// the previous buffer do not carry over, so drop the bind-dedup shadow.
|
||||
void OnCommandBufferBoundary() { m_lastBindValid = false; }
|
||||
// A ProgramFactory eviction just destroyed this layout: purge every frame
|
||||
// slot's cached descriptor sets for it, so a recycled handle value can never
|
||||
// stale-hit sets written for the dead layout's bindings. The sets are
|
||||
// vkFreeDescriptorSets'd back to their pools (created with
|
||||
// FREE_DESCRIPTOR_SET_BIT) and the pool accounting is credited, so program
|
||||
// churn recycles pool capacity instead of abandoning it. GPU-safe: the layout
|
||||
// only dies after >1024 idle frame boundaries, so no in-flight command buffer
|
||||
// references its sets. This is the only eviction path for the per-layout
|
||||
// caches - a live layout's entry must never be purged (its sets would be
|
||||
// unreachable pool slots), so there is deliberately no age-based sweep here.
|
||||
void OnDescriptorSetLayoutDestroyed(VkDescriptorSetLayout descriptorSetLayout);
|
||||
// One record per visited CombinedImageSampler binding (post fallback substitution,
|
||||
// in binding order): the resolved texture and effective sampler, as never-reused
|
||||
// lifetime ids so a freed-and-reallocated object at the same heap address can only
|
||||
// MISS a comparison, never false-hit it (same ABA rule as SamplerResolveMemo).
|
||||
struct SampledBindingRecord {
|
||||
Uint64 textureLifetimeId = 0;
|
||||
Uint64 samplerLifetimeId = 0;
|
||||
};
|
||||
Bool CollectSampledTextures(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj,
|
||||
Vector<MG_State::GLState::ITextureObject*>& outTextures);
|
||||
Vector<MG_State::GLState::ITextureObject*>& outTextures,
|
||||
Vector<SampledBindingRecord>* outBindingRecords = nullptr);
|
||||
// Shadow-compare for the SetupDraw fast path: re-runs the CollectSampledTextures
|
||||
// walk and reports whether every visited binding still resolves to the recorded
|
||||
// (texture, effective sampler) pair. A texture bind generation bump alone (e.g. a
|
||||
// redundant glBindSampler, which always bumps it) does not prove the sampled set
|
||||
// moved; this walk does, without rebuilding the set or falling off the fast path.
|
||||
Bool SampledBindingsUnchanged(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj,
|
||||
const Vector<SampledBindingRecord>& previousRecords) const;
|
||||
Bool CollectStorageImageTextures(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj,
|
||||
Vector<MG_State::GLState::ITextureObject*>& outTextures) const;
|
||||
// samplerDescriptorsUnchangedHint: the caller (SetupDraw fast path) proved that
|
||||
// every input of every combined-image-sampler resolution is unchanged since the
|
||||
// previous draw's resolve - same (texture, sampler) per binding, texture params
|
||||
// sum, sampling-resolution generation (sampler params + texture shape), image
|
||||
// epochs AND per-resource layout values - so the per-binding cached
|
||||
// VkDescriptorImageInfo may be reused without re-running the resolve chain.
|
||||
Bool BindProgramUniformBuffers(VkCommandBuffer commandBuffer,
|
||||
const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj,
|
||||
Uint32 frameIndex,
|
||||
VkPipelineBindPoint bindPoint = VK_PIPELINE_BIND_POINT_GRAPHICS,
|
||||
const SamplerBindingOverride* samplerBindingOverride = nullptr);
|
||||
const SamplerBindingOverride* samplerBindingOverride = nullptr,
|
||||
Bool samplerDescriptorsUnchangedHint = false);
|
||||
|
||||
// Pure format-policy helper kept public for host regression tests. Formatted storage
|
||||
// images use their shader qualifier; transformed float images use glBindImageTexture's
|
||||
// format and never silently fall back to the backing image format.
|
||||
static VkFormat ResolveStorageImageViewFormat(VkFormat reflectedFormat, GLenum bindingFormat,
|
||||
VkFormat resourceFormat, Bool useBindingFormat);
|
||||
|
||||
// True when the program reads at least one sampler and every one of them is bound to a
|
||||
// texture whose GL level range is a single level. Such a sampler resolves to
|
||||
// minLod = maxLod = 0 (see VkSamplerManager::GetOrCreateSampler), so an implicit-LOD sample
|
||||
// and an explicit LOD 0 sample must read the same texel - which is what makes the
|
||||
// ExplicitLod0Sampling SPIR-V rewrite safe to request. Deliberately conservative: it reads
|
||||
// only GL state, so a texture that ends up single-level for another reason (one uploaded
|
||||
// level under a wide level range) merely misses the rewrite.
|
||||
static Bool ProgramSamplesOnlySingleLevelTextures(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj);
|
||||
|
||||
private:
|
||||
struct DescriptorPoolBucket {
|
||||
@@ -56,8 +113,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 allocatedSets = 0;
|
||||
};
|
||||
|
||||
// A cached descriptor set together with the pool it was allocated from, so a
|
||||
// layout-destroyed purge can vkFreeDescriptorSets it back and credit the
|
||||
// owning bucket's accounting.
|
||||
struct CachedDescriptorSet {
|
||||
VkDescriptorSet set = VK_NULL_HANDLE;
|
||||
VkDescriptorPool pool = VK_NULL_HANDLE;
|
||||
};
|
||||
|
||||
struct DescriptorSetCacheEntry {
|
||||
Vector<VkDescriptorSet> sets;
|
||||
Vector<CachedDescriptorSet> sets;
|
||||
Uint32 cursor = 0;
|
||||
};
|
||||
|
||||
@@ -73,6 +138,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static Bool ResolveSamplerTexture(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
|
||||
SharedPtr<MG_State::GLState::ITextureObject>& outTexture);
|
||||
// Shared per-binding resolution for CollectSampledTextures and
|
||||
// SampledBindingsUnchanged, so membership and comparison can never diverge:
|
||||
// texture after the fallback substitution (may still be null when no fallback
|
||||
// exists), effective sampler = unit override else the texture's own sampler.
|
||||
// False = the binding is skipped (unbound with a non-2D fallback target).
|
||||
Bool ResolveSampledBinding(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
|
||||
MG_State::GLState::ITextureObject*& outTexture,
|
||||
const MG_State::GLState::SamplerObject*& outSampler) const;
|
||||
// Raw-pointer variant for the per-draw sampled-texture walk (CollectSampledTextures):
|
||||
// the bound texture stays alive through the draw via GL binding state, so callers that
|
||||
// only need the pointer skip the SharedPtr copy's atomic refcount churn.
|
||||
@@ -80,9 +154,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding);
|
||||
SharedPtr<MG_State::GLState::ITextureObject> GetFallbackTexture(TextureTarget target) const;
|
||||
// trustUnchangedHint: reuse this binding's cached VkDescriptorImageInfo outright
|
||||
// (see BindProgramUniformBuffers' samplerDescriptorsUnchangedHint for the proof
|
||||
// obligations the caller carries).
|
||||
Bool ResolveSamplerDescriptor(VkCommandBuffer commandBuffer, const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
|
||||
VkDescriptorImageInfo& outImageInfo) const;
|
||||
VkDescriptorImageInfo& outImageInfo,
|
||||
Bool trustUnchangedHint = false) const;
|
||||
Bool ResolveSamplerDescriptorOverride(const SamplerBindingOverride& samplerBindingOverride,
|
||||
VkDescriptorImageInfo& outImageInfo) const;
|
||||
Bool ResolveTexelBufferDescriptor(const MG_State::GLState::ProgramObject& program,
|
||||
@@ -107,7 +185,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
};
|
||||
Bool ResolveUniformBufferPayload(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
|
||||
UboBindResult& out) const;
|
||||
Uint32 arrayElement, UboBindResult& out) const;
|
||||
// Shared resolution of one dynamic-UBO binding element into the
|
||||
// (buffer, range, dynamicOffset) triple the descriptor consumes: direct
|
||||
// bind, global-slice reuse, or transient upload. Used by the full walk
|
||||
// and by the dynamic-offset-only rebind (see FastRebindMemo).
|
||||
Bool ResolveDynamicUboDescriptor(const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
|
||||
Uint32 arrayElement, Uint32 frameIndex, VkBuffer& outBuffer,
|
||||
VkDeviceSize& outRange, Uint32& outDynamicOffset);
|
||||
// The vkCmdBindDescriptorSets tail shared by the full walk and the
|
||||
// dynamic-offset-only rebind: skips the driver call when this exact
|
||||
// binding is already live on the command buffer (see the bind-dedup
|
||||
// shadow below), otherwise binds and refreshes the shadow.
|
||||
void BindDescriptorSetDeduped(VkCommandBuffer commandBuffer, VkPipelineBindPoint bindPoint,
|
||||
VkPipelineLayout pipelineLayout, VkDescriptorSet descriptorSet,
|
||||
const Vector<Uint32>& dynamicOffsets);
|
||||
Bool CreateDescriptorPool(Uint32 maxSets, VkDescriptorPool& outPool) const;
|
||||
Bool GrowFrameDescriptorPool(FrameResources& frame, Uint32 frameIndex);
|
||||
VkResult AllocateDescriptorSetsFromActivePool(
|
||||
@@ -138,14 +231,82 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Vector<VkBufferView> m_texelBufferViewsScratch;
|
||||
Vector<Uint32> m_dynamicOffsetsScratch;
|
||||
|
||||
// Descriptor-set reuse across consecutive draws (see BindProgramUniformBuffers).
|
||||
// When a draw's resolved descriptor content is byte-identical to the previous
|
||||
// draw's, reuse the same VkDescriptorSet and skip AcquireDescriptorSet +
|
||||
// vkUpdateDescriptorSets - only the bind-time dynamic offsets differ. Reset each
|
||||
// frame in BeginFrame because the frame's descriptor sets are recycled there.
|
||||
VkDescriptorSet m_lastBoundDescriptorSet = VK_NULL_HANDLE;
|
||||
Uint64 m_lastDescriptorSignature = 0;
|
||||
Bool m_hasLastDescriptor = false;
|
||||
// Descriptor-set reuse across recent draws (see BindProgramUniformBuffers).
|
||||
// When a draw's resolved descriptor content is byte-identical to one memoized
|
||||
// earlier, reuse that VkDescriptorSet and skip AcquireDescriptorSet +
|
||||
// vkUpdateDescriptorSets - only the bind-time dynamic offsets differ. Four
|
||||
// entries with round-robin replacement rather than one: draws alternating
|
||||
// between two programs (MC's chunk<->entity ping-pong) would thrash a single
|
||||
// slot into a full re-allocate+write every draw. Reset each frame in BeginFrame
|
||||
// because the frame's descriptor sets are recycled there.
|
||||
struct DescriptorReuseEntry {
|
||||
Uint64 signature = 0;
|
||||
VkDescriptorSet set = VK_NULL_HANDLE;
|
||||
Bool valid = false;
|
||||
};
|
||||
static constexpr Uint32 kDescriptorReuseMemoSize = 4;
|
||||
DescriptorReuseEntry m_descriptorReuseMemo[kDescriptorReuseMemoSize];
|
||||
Uint32 m_descriptorReuseMemoNext = 0;
|
||||
|
||||
// Dynamic-offset-only rebind (see BindProgramUniformBuffers): records the
|
||||
// descriptor set selected by the last cacheable full walk of a program
|
||||
// whose active bindings are exactly one dynamic UBO (single descriptor)
|
||||
// plus combined-image samplers. When the next call proves every sampler
|
||||
// descriptor input unchanged (samplerDescriptorsUnchangedHint) and the
|
||||
// UBO re-resolves to the SAME VkBuffer+range - only the dynamic offset
|
||||
// moved, the per-draw glUniform case - the walk collapses to: resolve one
|
||||
// offset, rebind the recorded set with new pDynamicOffsets (Vulkan allows
|
||||
// rebinding the same set with different dynamic offsets).
|
||||
// Invalidation inventory: BeginFrame clears it (the frame's sets are
|
||||
// recycled) and the frameIndex field guards cross-frame confusion on top;
|
||||
// OnDescriptorSetLayoutDestroyed clears it (the set may be freed); a
|
||||
// sampler-override walk clears it (mirrors m_descriptorReuseMemo); a
|
||||
// program relink bumps the backend state version and thus programObj.hash
|
||||
// so the key misses; the program lifetime id is never reused, so a
|
||||
// deleted-and-recreated program misses; a texture/sampler/binding change
|
||||
// drops the hint upstream; an arena wrap or growth resolves a different
|
||||
// VkBuffer and misses. AcquireDescriptorSet's per-frame cursor only
|
||||
// advances, so the recorded set is never re-written within its frame.
|
||||
struct FastRebindMemo {
|
||||
Bool valid = false;
|
||||
Uint32 frameIndex = 0;
|
||||
Uint64 programLifetimeId = 0;
|
||||
ProgramFactory::HashType programHash = 0;
|
||||
Uint32 uboBinding = 0;
|
||||
VkBuffer uboBuffer = VK_NULL_HANDLE;
|
||||
VkDeviceSize uboRange = 0;
|
||||
VkDescriptorSet set = VK_NULL_HANDLE;
|
||||
};
|
||||
FastRebindMemo m_fastRebindMemo;
|
||||
|
||||
// vkCmdBindDescriptorSets dedup: consecutive draws with a static uniform
|
||||
// block resolve to the same set AND the same dynamic offsets, so the
|
||||
// driver call can be skipped outright. Command-buffer-scope state; reset
|
||||
// via OnCommandBufferBoundary whenever a recording (re)begins. Keyed on
|
||||
// layout+bind point, so a pipeline-layout switch always rebinds.
|
||||
static constexpr Uint32 kMaxShadowedDynamicOffsets = 8;
|
||||
Bool m_lastBindValid = false;
|
||||
VkDescriptorSet m_lastBindSet = VK_NULL_HANDLE;
|
||||
VkPipelineLayout m_lastBindLayout = VK_NULL_HANDLE;
|
||||
VkPipelineBindPoint m_lastBindPoint = VK_PIPELINE_BIND_POINT_GRAPHICS;
|
||||
Uint32 m_lastBindOffsetCount = 0;
|
||||
Uint32 m_lastBindOffsets[kMaxShadowedDynamicOffsets] = {};
|
||||
|
||||
// Global-UBO transient-slice reuse: MC leaves the default uniform block
|
||||
// untouched across long GUI/terrain runs, so the per-draw re-upload of
|
||||
// the same bytes can reuse the slice uploaded earlier THIS frame (frame
|
||||
// serial guards arena recycling; the content version guards writes).
|
||||
struct GlobalUboSliceMemo {
|
||||
Uint64 programLifetimeId = 0;
|
||||
Uint64 frameSerial = 0;
|
||||
Uint32 uboContentVersion = 0;
|
||||
VkBuffer buffer = VK_NULL_HANDLE;
|
||||
VkDeviceSize offset = 0;
|
||||
VkDeviceSize range = 0;
|
||||
};
|
||||
static constexpr Uint32 kGlobalUboMemoSize = 4;
|
||||
GlobalUboSliceMemo m_globalUboMemo[kGlobalUboMemoSize];
|
||||
Uint32 m_globalUboMemoNext = 0;
|
||||
|
||||
// Per-binding fast path over VkSamplerManager's content-hashed sampler cache, which
|
||||
// stays the source of truth: its key hashes all sampler+texture state, so two distinct
|
||||
@@ -163,11 +324,40 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint64 samplerLifetimeId = 0;
|
||||
Uint64 textureLifetimeId = 0;
|
||||
VkSampler sampler = VK_NULL_HANDLE;
|
||||
Uint32 viewLevelCount = 0;
|
||||
Uint16 samplerVersion = 0;
|
||||
Uint16 textureParamsVersion = 0;
|
||||
Bool forceNearestFiltering = false;
|
||||
Bool valid = false;
|
||||
// ResolveSampledImageViewFormat is pure in (image format, numeric domain), but a
|
||||
// domain mismatch walks a ~184-entry format table. Memo the resolution per binding
|
||||
// so a reinterpreted sampler pays that scan once, not once per draw.
|
||||
VkFormat viewFormatSource = VK_FORMAT_UNDEFINED;
|
||||
SamplerNumericDomain viewFormatDomain = SamplerNumericDomain::Unknown;
|
||||
VkFormat viewFormat = VK_FORMAT_UNDEFINED;
|
||||
Bool viewFormatValid = false;
|
||||
// Whole resolved descriptor from this binding's last full resolve. Reused
|
||||
// ONLY under ResolveSamplerDescriptor's trustUnchangedHint, whose caller
|
||||
// proves every resolve input unchanged; cleared with the per-frame reset
|
||||
// (the cached VkSampler outlives a frame only via a fresh resolve, which
|
||||
// also re-stamps it against VkSamplerManager's frame-boundary sweep).
|
||||
VkDescriptorImageInfo info{};
|
||||
Bool infoValid = false;
|
||||
};
|
||||
mutable Vector<SamplerResolveMemo> m_samplerResolveMemo;
|
||||
// Exclusive upper bound on the entries of m_samplerResolveMemo that any resolve
|
||||
// has ever written. The vector is sized to the DEVICE binding cap (256 on desktop
|
||||
// NVIDIA), but a program declares 1-8 bindings, so the per-frame reset below was
|
||||
// memsetting ~22 KB of never-touched entries every frame - a measurable slice of
|
||||
// the per-frame fixed cost on draw-light frames. Every site that can turn any of
|
||||
// an entry's *Valid flags on raises this mark first, so entries at or above it are
|
||||
// provably still in their constructed (all-invalid) state and clearing them is a
|
||||
// no-op. Never lowered except by Initialize/Shutdown, which rebuild the vector.
|
||||
mutable Uint32 m_samplerResolveMemoHighWater = 0;
|
||||
void NoteSamplerResolveMemoTouched(Uint32 binding) const {
|
||||
if (binding >= m_samplerResolveMemoHighWater) {
|
||||
m_samplerResolveMemoHighWater = binding + 1;
|
||||
}
|
||||
}
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
|
||||
@@ -29,10 +29,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.Stride, sizeof(attr.Stride)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.Offset, sizeof(attr.Offset)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.IsInteger, sizeof(attr.IsInteger)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.IsLong, sizeof(attr.IsLong)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.IsBgra, sizeof(attr.IsBgra)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attr.Divisor, sizeof(attr.Divisor)));
|
||||
|
||||
const SizeT bufferKey = reinterpret_cast<SizeT>(attr.Buffer.get());
|
||||
// The bound buffer's IDENTITY is a component of the key, and it has to be the
|
||||
// buffer's never-reused lifetime id - NOT its heap address, which this used to
|
||||
// hash. An address is recycled by the allocator, so a deleted-and-recreated
|
||||
// buffer reproduces it; combined with a byte-identical attribute layout that
|
||||
// reproduces the WHOLE content hash, and the hash is what
|
||||
// TryBindResolvedVertexBindings accepts as proof that a memoised binding still
|
||||
// reads the buffer it was resolved from. It did not: a destroyed buffer's GPU
|
||||
// slice was bound for its successor's draw, which is how a transform-feedback
|
||||
// capture came back holding a dead VAO's vertex data (0,0,0,1 - the previous
|
||||
// test's positions) instead of its own.
|
||||
// Zero for client memory (no buffer), which is a distinct identity of its own.
|
||||
const Uint64 bufferKey = attr.Buffer ? attr.Buffer->GetLifetimeId() : 0;
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &bufferKey, sizeof(bufferKey)));
|
||||
}
|
||||
|
||||
@@ -51,14 +63,33 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
const VertexInputStateFactory::BackendVertexInputState& VertexInputStateFactory::GetOrCreateVertexInputState(
|
||||
const MG_State::GLState::VertexArrayObject& vao) {
|
||||
return GetOrCreateVertexInputState(vao, GetOrComputeHash(vao));
|
||||
// Per-draw fast path: the VAO carries a pointer to its resolved entry,
|
||||
// valid while its config version and the cache's eviction epoch both
|
||||
// match - no re-hash, no map lookup.
|
||||
const void* memoState = nullptr;
|
||||
Uint64 memoEpoch = 0;
|
||||
if (vao.GetBackendStateMemo(memoState, memoEpoch) && memoEpoch == m_evictionEpoch) {
|
||||
const auto* entry = static_cast<const BackendVertexInputState*>(memoState);
|
||||
entry->lastUsedFrameBoundary = m_frameBoundaryCounter;
|
||||
return *entry;
|
||||
}
|
||||
const BackendVertexInputState& entry = GetOrCreateVertexInputState(vao, GetOrComputeHash(vao));
|
||||
vao.SetBackendStateMemo(&entry, m_evictionEpoch);
|
||||
// Also mirror the layout identity and the two per-draw masks into the VAO's aux
|
||||
// memo (pure VALUES derived from the VAO configuration, so config-version
|
||||
// guarding alone is sound). The draw fast path reads them from the VAO object it
|
||||
// already touched instead of chasing into this entry - see PackVertexInputAuxMemo.
|
||||
vao.SetBackendAuxMemo(entry.layoutHash,
|
||||
PackVertexInputAuxMasks(entry.unsupportedAttribMask, entry.attributeLocationMask));
|
||||
return entry;
|
||||
}
|
||||
|
||||
const VertexInputStateFactory::BackendVertexInputState& VertexInputStateFactory::GetOrCreateVertexInputState(
|
||||
const MG_State::GLState::VertexArrayObject& vao, HashType hash) {
|
||||
auto it = m_cache.find(hash);
|
||||
if (it != m_cache.end()) {
|
||||
return it->second;
|
||||
it->second->lastUsedFrameBoundary = m_frameBoundaryCounter;
|
||||
return *it->second;
|
||||
}
|
||||
|
||||
VertexInputStateBuilder builder;
|
||||
@@ -66,6 +97,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Vector<SizeT> bindingBaseOffsets;
|
||||
Vector<Uint32> bindingAttributeLocations;
|
||||
Vector<Bool> bindingUsesClientMemory;
|
||||
Vector<VertexStreamConversion> bindingConversions;
|
||||
Vector<VkVertexInputBindingDivisorDescriptionEXT> bindingDivisors;
|
||||
Uint32 unsupportedAttribMask = 0;
|
||||
|
||||
for (Uint32 location = 0; location < MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS; ++location) {
|
||||
@@ -74,8 +107,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
continue;
|
||||
}
|
||||
|
||||
const auto vkFormat = ToVkVertexFormat(attr.Type, attr.Size, attr.Normalized, attr.IsInteger, attr.IsBgra);
|
||||
if (vkFormat == VK_FORMAT_UNDEFINED) {
|
||||
const VkFormat sourceVkFormat =
|
||||
ToVkVertexFormat(attr.Type, attr.Size, attr.Normalized, attr.IsInteger, attr.IsBgra, attr.IsLong);
|
||||
if (sourceVkFormat == VK_FORMAT_UNDEFINED) {
|
||||
MGLOG_E("Unsupported vertex attribute layout (location=%u, type=%s, size=%d): the array is "
|
||||
"enabled but cannot be mapped to a VkFormat",
|
||||
location, MG_Util::ConvertDataTypeToString(attr.Type).c_str(), attr.Size);
|
||||
@@ -83,6 +117,33 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
continue;
|
||||
}
|
||||
|
||||
VkFormat vkFormat = sourceVkFormat;
|
||||
VertexStreamConversion conversion = VertexStreamConversion::None;
|
||||
if (!SupportsVertexBufferFormat(vkFormat)) {
|
||||
if (IsScaledIntegerVertexFormat(vkFormat)) {
|
||||
const VkFormat fallbackFormat = ToFloat32VertexFormat(attr.Size);
|
||||
if (fallbackFormat != VK_FORMAT_UNDEFINED && SupportsVertexBufferFormat(fallbackFormat)) {
|
||||
vkFormat = fallbackFormat;
|
||||
conversion = VertexStreamConversion::ScaledIntegerToFloat32;
|
||||
MGLOG_W("Vertex attribute location=%u format=%d lacks "
|
||||
"VK_FORMAT_FEATURE_VERTEX_BUFFER_BIT; using float32 stream format=%d "
|
||||
"(type=%s size=%d normalized=%s integer=%s)",
|
||||
location, static_cast<Int>(sourceVkFormat), static_cast<Int>(vkFormat),
|
||||
MG_Util::ConvertDataTypeToString(attr.Type).c_str(), attr.Size,
|
||||
attr.Normalized ? "true" : "false", attr.IsInteger ? "true" : "false");
|
||||
}
|
||||
}
|
||||
|
||||
if (conversion == VertexStreamConversion::None) {
|
||||
MGLOG_E("Unsupported Vulkan vertex format (location=%u, format=%d, type=%s, size=%d): "
|
||||
"VK_FORMAT_FEATURE_VERTEX_BUFFER_BIT is unavailable and no semantic fallback exists",
|
||||
location, static_cast<Int>(sourceVkFormat),
|
||||
MG_Util::ConvertDataTypeToString(attr.Type).c_str(), attr.Size);
|
||||
unsupportedAttribMask |= (1u << location);
|
||||
continue;
|
||||
}
|
||||
}
|
||||
|
||||
const SizeT attribByteSize = GetAttributeByteSize(attr.Type, attr.Size, attr.IsBgra);
|
||||
if (attribByteSize == 0) {
|
||||
MGLOG_E("Vertex attribute with unknown component size (location=%u, type=%s): the array is "
|
||||
@@ -92,8 +153,33 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
continue;
|
||||
}
|
||||
|
||||
const Uint32 stride =
|
||||
const Uint32 sourceStride =
|
||||
attr.Stride > 0 ? static_cast<Uint32>(attr.Stride) : static_cast<Uint32>(attribByteSize);
|
||||
const Bool packedAttribute = attr.Type == DataType::Int2101010Rev ||
|
||||
attr.Type == DataType::Uint2101010Rev;
|
||||
const SizeT requiredAlignment = packedAttribute ? attribByteSize : GetComponentSize(attr.Type);
|
||||
// For a client-memory array attr.Offset holds the raw client pointer, and the
|
||||
// draw path re-uploads the data to a 16-aligned transient slice with attribute
|
||||
// offset 0, so only the stride can violate Vulkan's fetch alignment there.
|
||||
const Bool clientMemoryAttribute = attr.Buffer == nullptr;
|
||||
if (conversion == VertexStreamConversion::None && requiredAlignment > 1 &&
|
||||
((sourceStride % requiredAlignment) != 0 ||
|
||||
(!clientMemoryAttribute && (attr.Offset % requiredAlignment) != 0))) {
|
||||
// GL accepts arbitrary byte strides and offsets. Core Vulkan vertex fetches do not
|
||||
// unless VK_EXT_legacy_vertex_attributes is available, so deinterleave this one
|
||||
// attribute into a tightly packed transient stream without changing its format.
|
||||
conversion = VertexStreamConversion::Repack;
|
||||
MGLOG_W("Vertex attribute location=%u uses Vulkan-incompatible alignment "
|
||||
"(offset=%zu stride=%u required=%zu); using a tightly packed stream",
|
||||
location, attr.Offset, sourceStride, requiredAlignment);
|
||||
}
|
||||
|
||||
Uint32 stride = sourceStride;
|
||||
if (conversion == VertexStreamConversion::Repack) {
|
||||
stride = static_cast<Uint32>(attribByteSize);
|
||||
} else if (conversion == VertexStreamConversion::ScaledIntegerToFloat32) {
|
||||
stride = static_cast<Uint32>(attr.Size * static_cast<Int>(sizeof(Float)));
|
||||
}
|
||||
const VkVertexInputRate inputRate =
|
||||
(attr.Divisor == 0) ? VK_VERTEX_INPUT_RATE_VERTEX : VK_VERTEX_INPUT_RATE_INSTANCE;
|
||||
|
||||
@@ -103,29 +189,102 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
bindingBaseOffsets.push_back(attr.Buffer ? attr.Offset : 0);
|
||||
bindingAttributeLocations.push_back(location);
|
||||
bindingUsesClientMemory.push_back(attr.Buffer == nullptr);
|
||||
bindingConversions.push_back(conversion);
|
||||
builder.AddBinding(binding, stride, inputRate);
|
||||
builder.AddAttribute(location, binding, vkFormat, 0);
|
||||
// Divisor 1 is what VK_VERTEX_INPUT_RATE_INSTANCE already means; only anything
|
||||
// else needs the extension to say it.
|
||||
if (inputRate == VK_VERTEX_INPUT_RATE_INSTANCE && attr.Divisor != 1) {
|
||||
bindingDivisors.push_back({binding, static_cast<Uint32>(attr.Divisor)});
|
||||
}
|
||||
}
|
||||
|
||||
const auto& state = builder.Build();
|
||||
|
||||
auto& entry = m_cache[hash];
|
||||
auto& slot = m_cache[hash];
|
||||
if (!slot) {
|
||||
slot = MakeUnique<BackendVertexInputState>();
|
||||
}
|
||||
BackendVertexInputState& entry = *slot;
|
||||
entry.hash = hash;
|
||||
entry.lastUsedFrameBoundary = m_frameBoundaryCounter;
|
||||
entry.bindingDivisors = Move(bindingDivisors);
|
||||
entry.bindings = builder.GetBindings();
|
||||
entry.attributes = builder.GetAttributes();
|
||||
// See the layoutHash declaration: hash only the resolved layout, never
|
||||
// buffer identities, so identical layouts across VAOs/buffers agree.
|
||||
XXHASH_VERIFY(XXH64_reset(m_hashState, 0));
|
||||
for (const auto& binding : entry.bindings) {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &binding.binding, sizeof(binding.binding)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &binding.stride, sizeof(binding.stride)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &binding.inputRate, sizeof(binding.inputRate)));
|
||||
}
|
||||
for (const auto& attribute : entry.attributes) {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attribute.location, sizeof(attribute.location)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attribute.binding, sizeof(attribute.binding)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attribute.format, sizeof(attribute.format)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &attribute.offset, sizeof(attribute.offset)));
|
||||
}
|
||||
for (const auto& divisor : entry.bindingDivisors) {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &divisor.binding, sizeof(divisor.binding)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &divisor.divisor, sizeof(divisor.divisor)));
|
||||
}
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &unsupportedAttribMask, sizeof(unsupportedAttribMask)));
|
||||
entry.layoutHash = XXH64_digest(m_hashState);
|
||||
entry.attributeLocationMask = 0;
|
||||
for (const auto& attribute : entry.attributes) {
|
||||
if (attribute.location < 32u) {
|
||||
entry.attributeLocationMask |= (1u << attribute.location);
|
||||
}
|
||||
}
|
||||
entry.bindingBufferKeys = std::move(bindingBufferKeys);
|
||||
entry.bindingBaseOffsets = std::move(bindingBaseOffsets);
|
||||
entry.bindingAttributeLocations = std::move(bindingAttributeLocations);
|
||||
entry.bindingUsesClientMemory = std::move(bindingUsesClientMemory);
|
||||
entry.bindingConversions = std::move(bindingConversions);
|
||||
entry.unsupportedAttribMask = unsupportedAttribMask;
|
||||
entry.state = state;
|
||||
entry.state.pVertexBindingDescriptions = entry.bindings.empty() ? nullptr : entry.bindings.data();
|
||||
entry.state.pVertexAttributeDescriptions = entry.attributes.empty() ? nullptr : entry.attributes.data();
|
||||
if (!entry.bindingDivisors.empty()) {
|
||||
entry.divisorState.vertexBindingDivisorCount = static_cast<Uint32>(entry.bindingDivisors.size());
|
||||
entry.divisorState.pVertexBindingDivisors = entry.bindingDivisors.data();
|
||||
entry.state.pNext = &entry.divisorState;
|
||||
} else {
|
||||
entry.state.pNext = nullptr;
|
||||
}
|
||||
return entry;
|
||||
}
|
||||
|
||||
void VertexInputStateFactory::OnFrameBoundary() {
|
||||
++m_frameBoundaryCounter;
|
||||
|
||||
// Sweep occasionally; evict entries whose last hit is far in the past.
|
||||
// Erasure happens only here, never mid-frame: the draw path holds a
|
||||
// reference into the current entry across its setup, and unordered_map
|
||||
// erase would invalidate it. Entries are CPU-side only, so no GPU-idle
|
||||
// proof is needed; an evicted entry that is used again is simply rebuilt
|
||||
// from the VAO state (same hash, same content).
|
||||
constexpr Uint64 kSweepInterval = 256;
|
||||
constexpr Uint64 kRetireAgeBoundaries = 1024;
|
||||
if ((m_frameBoundaryCounter % kSweepInterval) != 0) {
|
||||
return;
|
||||
}
|
||||
|
||||
for (auto it = m_cache.begin(); it != m_cache.end();) {
|
||||
if (m_frameBoundaryCounter - it->second->lastUsedFrameBoundary > kRetireAgeBoundaries) {
|
||||
it = m_cache.erase(it);
|
||||
// Invalidate every VAO's state-pointer memo: the erased node's
|
||||
// address may be reused by a future insert.
|
||||
++m_evictionEpoch;
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
VkFormat VertexInputStateFactory::ToVkVertexFormat(DataType type, Int size, Bool normalized, Bool isInteger,
|
||||
Bool isBgra) {
|
||||
Bool isBgra, Bool isLong) {
|
||||
if (isBgra) {
|
||||
// GL_BGRA: four reversed-order components, always normalized (enforced at validation), only
|
||||
// legal with GL_UNSIGNED_BYTE or a 2_10_10_10 type. The reversed VkFormats put the
|
||||
@@ -150,6 +309,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
case DataType::Int2101010Rev:
|
||||
if (isInteger || size != 4) return VK_FORMAT_UNDEFINED;
|
||||
return normalized ? VK_FORMAT_A2B10G10R10_SNORM_PACK32 : VK_FORMAT_A2B10G10R10_SSCALED_PACK32;
|
||||
case DataType::Float64:
|
||||
// A 64-bit attribute is fetched as its 32-bit word pair and bitcast back to double in the
|
||||
// shader (PackDoubleVertexInputsPass does the shader half). That is bit-exact and, unlike
|
||||
// VK_FORMAT_R64*_SFLOAT, needs no format capability: lavapipe reports bufferFeatures = 0
|
||||
// for every R64 float format, so a native 64-bit vertex fetch is simply unavailable there
|
||||
// while shaderFloat64 is not. Both halves key off nothing but the attribute being long,
|
||||
// so they always agree without extra plumbing.
|
||||
if (!isLong || isInteger || normalized) return VK_FORMAT_UNDEFINED;
|
||||
switch (size) {
|
||||
case 1: return VK_FORMAT_R32G32_UINT;
|
||||
case 2: return VK_FORMAT_R32G32B32A32_UINT;
|
||||
// A dvec3/dvec4 input is 6/8 uint32 components: no single VkFormat, and GL spreads it
|
||||
// over two attribute locations, which the location-per-VAO-index model here does not
|
||||
// express. Declined rather than fetched wrong.
|
||||
default: return VK_FORMAT_UNDEFINED;
|
||||
}
|
||||
case DataType::Float32:
|
||||
switch (size) {
|
||||
case 1: return VK_FORMAT_R32_SFLOAT;
|
||||
@@ -282,4 +457,47 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const SizeT componentSize = GetComponentSize(type);
|
||||
return componentSize == 0 ? 0 : componentSize * static_cast<SizeT>(size);
|
||||
}
|
||||
|
||||
Bool VertexInputStateFactory::IsScaledIntegerVertexFormat(VkFormat format) {
|
||||
switch (format) {
|
||||
case VK_FORMAT_R8_USCALED:
|
||||
case VK_FORMAT_R8_SSCALED:
|
||||
case VK_FORMAT_R8G8_USCALED:
|
||||
case VK_FORMAT_R8G8_SSCALED:
|
||||
case VK_FORMAT_R8G8B8_USCALED:
|
||||
case VK_FORMAT_R8G8B8_SSCALED:
|
||||
case VK_FORMAT_R8G8B8A8_USCALED:
|
||||
case VK_FORMAT_R8G8B8A8_SSCALED:
|
||||
case VK_FORMAT_R16_USCALED:
|
||||
case VK_FORMAT_R16_SSCALED:
|
||||
case VK_FORMAT_R16G16_USCALED:
|
||||
case VK_FORMAT_R16G16_SSCALED:
|
||||
case VK_FORMAT_R16G16B16_USCALED:
|
||||
case VK_FORMAT_R16G16B16_SSCALED:
|
||||
case VK_FORMAT_R16G16B16A16_USCALED:
|
||||
case VK_FORMAT_R16G16B16A16_SSCALED:
|
||||
return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
VkFormat VertexInputStateFactory::ToFloat32VertexFormat(Int componentCount) {
|
||||
switch (componentCount) {
|
||||
case 1: return VK_FORMAT_R32_SFLOAT;
|
||||
case 2: return VK_FORMAT_R32G32_SFLOAT;
|
||||
case 3: return VK_FORMAT_R32G32B32_SFLOAT;
|
||||
case 4: return VK_FORMAT_R32G32B32A32_SFLOAT;
|
||||
default: return VK_FORMAT_UNDEFINED;
|
||||
}
|
||||
}
|
||||
|
||||
Bool VertexInputStateFactory::SupportsVertexBufferFormat(VkFormat format) const {
|
||||
if (m_physicalDevice == VK_NULL_HANDLE || format == VK_FORMAT_UNDEFINED) {
|
||||
return false;
|
||||
}
|
||||
VkFormatProperties properties{};
|
||||
vkGetPhysicalDeviceFormatProperties(m_physicalDevice, format, &properties);
|
||||
return (properties.bufferFeatures & VK_FORMAT_FEATURE_VERTEX_BUFFER_BIT) != 0;
|
||||
}
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -19,28 +19,66 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
public:
|
||||
using HashType = Uint64;
|
||||
|
||||
enum class VertexStreamConversion : Uint8 {
|
||||
None = 0,
|
||||
Repack,
|
||||
ScaledIntegerToFloat32,
|
||||
};
|
||||
|
||||
struct BackendVertexInputState {
|
||||
HashType hash = 0;
|
||||
// Hash of the resolved Vulkan vertex layout only (bindings, attributes,
|
||||
// unsupported mask) - NO buffer identities. `hash` mixes each bound
|
||||
// buffer's never-reused LIFETIME ID, so per-chunk VBOs mint a fresh
|
||||
// identity per buffer; keying pipelines on that minted one VkPipeline per
|
||||
// chunk section for an identical layout, defeating pipeline reuse and the
|
||||
// per-draw memo. Pipelines depend only on the layout, so they key on this
|
||||
// instead.
|
||||
HashType layoutHash = 0;
|
||||
// Frame boundary of the last cache hit; entries idle past the
|
||||
// OnFrameBoundary retirement age are evicted (CPU heap only).
|
||||
// Mutable: the VAO's state-pointer memo fast path stamps it through
|
||||
// a const entry reference.
|
||||
mutable Uint64 lastUsedFrameBoundary = 0;
|
||||
Vector<VkVertexInputBindingDescription> bindings;
|
||||
Vector<VkVertexInputAttributeDescription> attributes;
|
||||
Vector<SizeT> bindingBufferKeys;
|
||||
Vector<SizeT> bindingBaseOffsets;
|
||||
Vector<Uint32> bindingAttributeLocations;
|
||||
Vector<Bool> bindingUsesClientMemory;
|
||||
Vector<VertexStreamConversion> bindingConversions;
|
||||
// Locations whose array is ENABLED but whose GL format has no VkFormat mapping. They are
|
||||
// absent from `attributes`, so without this mask the draw path cannot tell them apart from
|
||||
// a genuinely disabled array and would silently feed the shader the current attribute value.
|
||||
Uint32 unsupportedAttribMask = 0;
|
||||
// Bitmask of `attributes[i].location` - the draw path needs it up to
|
||||
// three times per draw, so it is baked once at build time.
|
||||
Uint32 attributeLocationMask = 0;
|
||||
// Per-binding glVertexAttribDivisor values other than 1. Vulkan's instance input
|
||||
// rate advances once per instance and nothing else, so anything else has to be
|
||||
// stated through VK_EXT_vertex_attribute_divisor. Empty when every instanced
|
||||
// binding uses divisor 1, which is what the plain input rate already means.
|
||||
Vector<VkVertexInputBindingDivisorDescriptionEXT> bindingDivisors;
|
||||
VkPipelineVertexInputDivisorStateCreateInfoEXT divisorState{
|
||||
VK_STRUCTURE_TYPE_PIPELINE_VERTEX_INPUT_DIVISOR_STATE_CREATE_INFO_EXT
|
||||
};
|
||||
VkPipelineVertexInputStateCreateInfo state{
|
||||
VK_STRUCTURE_TYPE_PIPELINE_VERTEX_INPUT_STATE_CREATE_INFO
|
||||
};
|
||||
};
|
||||
|
||||
explicit VertexInputStateFactory(const VulkanRendererConfig& config):
|
||||
m_config(config) {}
|
||||
VertexInputStateFactory(const VulkanRendererConfig& config, VkPhysicalDevice physicalDevice):
|
||||
m_config(config), m_physicalDevice(physicalDevice) {}
|
||||
~VertexInputStateFactory() = default;
|
||||
VertexInputStateFactory(const VertexInputStateFactory&) = delete;
|
||||
|
||||
// The VAO aux-memo payload GetOrCreateVertexInputState(vao) stamps: aux0 is the
|
||||
// entry's layoutHash, aux1 packs (unsupportedAttribMask << 32) | attributeLocationMask.
|
||||
// Readers that find the aux memo valid can use these without resolving the entry.
|
||||
static Uint64 PackVertexInputAuxMasks(Uint32 unsupportedAttribMask, Uint32 attributeLocationMask) {
|
||||
return (static_cast<Uint64>(unsupportedAttribMask) << 32) | attributeLocationMask;
|
||||
}
|
||||
|
||||
HashType ComputeHash(const MG_State::GLState::VertexArrayObject& vao) const;
|
||||
// Memoized ComputeHash: reuses the VAO's cached hash while its config version
|
||||
// is unchanged. Use this on per-draw paths.
|
||||
@@ -48,6 +86,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const BackendVertexInputState& GetOrCreateVertexInputState(
|
||||
const MG_State::GLState::VertexArrayObject& vao, HashType hash);
|
||||
const BackendVertexInputState& GetOrCreateVertexInputState(const MG_State::GLState::VertexArrayObject& vao);
|
||||
// Frame boundary hook: ages the cache and evicts entries not hit for many
|
||||
// frames. The key mixes each bound buffer's never-reused lifetime id, so
|
||||
// buffer/VAO churn keeps minting fresh keys - and does so by construction,
|
||||
// not by luck: a recreated buffer can no longer land back on its dead
|
||||
// predecessor's key. Without eviction the map grows for the whole session.
|
||||
// Entries hold no Vulkan handles (pipeline creation copies the descriptions)
|
||||
// and the draw path's entry reference never spans a frame boundary, so
|
||||
// eviction here needs no GPU-idle proof. Self-gated: one counter bump and
|
||||
// compare except on sweep boundaries.
|
||||
void OnFrameBoundary();
|
||||
static SizeT GetComponentSize(DataType type);
|
||||
// Tightly-packed byte size of one vertex element for this attribute: componentSize * size for
|
||||
// normal types, and 4 (one packed word) for the 2_10_10_10 types and GL_BGRA. Returns 0 for
|
||||
@@ -55,10 +103,27 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static SizeT GetAttributeByteSize(DataType type, Int size, Bool isBgra);
|
||||
|
||||
private:
|
||||
static VkFormat ToVkVertexFormat(DataType type, Int size, Bool normalized, Bool isInteger, Bool isBgra = false);
|
||||
static VkFormat ToVkVertexFormat(DataType type, Int size, Bool normalized, Bool isInteger, Bool isBgra = false,
|
||||
Bool isLong = false);
|
||||
static Bool IsScaledIntegerVertexFormat(VkFormat format);
|
||||
static VkFormat ToFloat32VertexFormat(Int componentCount);
|
||||
Bool SupportsVertexBufferFormat(VkFormat format) const;
|
||||
|
||||
const VulkanRendererConfig& m_config;
|
||||
UnorderedMap<HashType, BackendVertexInputState> m_cache;
|
||||
VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
|
||||
// Values are heap-allocated: FastSTL::unordered_map is open-addressing,
|
||||
// so INSERT invalidates references to stored values. The draw path (and
|
||||
// the VAOs' state-pointer memos) hold entry pointers across inserts;
|
||||
// only the unique_ptr cell moves, never the pointee.
|
||||
UnorderedMap<HashType, UniquePtr<BackendVertexInputState>> m_cache;
|
||||
// Monotonic frame-boundary counter (bumped in OnFrameBoundary) for cache aging.
|
||||
Uint64 m_frameBoundaryCounter = 0;
|
||||
// Bumped whenever any cache entry is erased. VAOs memo a raw pointer to
|
||||
// their heap-allocated entry (stable across map insert/rehash by
|
||||
// construction); a memo is honored only while its recorded epoch
|
||||
// matches, so an evicted entry can never be dereferenced through a
|
||||
// stale memo.
|
||||
Uint64 m_evictionEpoch = 1;
|
||||
static inline XXH64_state_t* m_hashState = XXH64_createState();
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -7,6 +7,8 @@
|
||||
// End of Source File Header
|
||||
|
||||
#include "VkBufferManager.h"
|
||||
#include "../DirectVulkan.h"
|
||||
#include "VulkanRenderer.h"
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
namespace {
|
||||
@@ -22,6 +24,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VK_BUFFER_USAGE_UNIFORM_BUFFER_BIT | VK_BUFFER_USAGE_STORAGE_BUFFER_BIT |
|
||||
VK_BUFFER_USAGE_INDIRECT_BUFFER_BIT | VK_BUFFER_USAGE_UNIFORM_TEXEL_BUFFER_BIT |
|
||||
VK_BUFFER_USAGE_TRANSFER_SRC_BIT;
|
||||
// Appended to kPersistentBackedUsage when VK_EXT_transform_feedback is enabled
|
||||
// (see VkBufferManagerInitInfo::transformFeedbackUsageEnabled).
|
||||
constexpr VkBufferUsageFlags kTransformFeedbackUsage =
|
||||
VK_BUFFER_USAGE_TRANSFORM_FEEDBACK_BUFFER_BIT_EXT;
|
||||
// The app writes into the persistent map with no explicit flush, so its memory must
|
||||
// be host-coherent (Adreno host-visible memory is; requiring it keeps us portable).
|
||||
constexpr VkMemoryPropertyFlags kPersistentBackedRequiredFlags =
|
||||
@@ -53,6 +59,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
}
|
||||
|
||||
// The CPU is about to read a buffer a shader wrote. Its bytes live in coherent
|
||||
// host-visible GPU storage (EnsureGpuResidentStorage adopts it when the buffer is
|
||||
// bound as a shader storage buffer), so nothing needs copying - but coherence only
|
||||
// says the writes are visible once they have happened, so the work has to retire
|
||||
// first.
|
||||
void Ops_ReadbackFromGpu(BufferObject& bufferObject) {
|
||||
(void)bufferObject;
|
||||
if (pVulkanRenderer) {
|
||||
pVulkanRenderer->FinishPendingGpuWork();
|
||||
}
|
||||
}
|
||||
|
||||
void* Ops_AcquirePersistentMap(BufferObject& bufferObject) {
|
||||
if (g_activeBufferManager) {
|
||||
return g_activeBufferManager->AcquirePersistentMap(bufferObject);
|
||||
@@ -76,6 +94,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
.FlushMappedRange = Ops_FlushMappedRange,
|
||||
.OnDestroy = Ops_OnDestroy,
|
||||
.AcquirePersistentMap = Ops_AcquirePersistentMap,
|
||||
.ReadbackFromGpu = Ops_ReadbackFromGpu,
|
||||
};
|
||||
} // namespace
|
||||
|
||||
@@ -141,6 +160,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_transientUploadArena.BeginFrame(frameIndex);
|
||||
}
|
||||
|
||||
void VkBufferManager::CollectAllDeferredReleases() {
|
||||
for (Uint32 frameIndex = 0; frameIndex < m_deferredBufferReleases.size(); ++frameIndex) {
|
||||
CollectDeferredReleases(frameIndex);
|
||||
}
|
||||
for (Uint32 frameIndex = 0; frameIndex < m_transientUploadArena.GetFrameCount(); ++frameIndex) {
|
||||
m_transientUploadArena.CollectDeferredReleases(frameIndex);
|
||||
}
|
||||
}
|
||||
|
||||
void VkBufferManager::NotifyDeviceIdle() {
|
||||
// Everything submitted so far has completed. Work recorded for the
|
||||
// current frame has not been submitted yet, so the current serial
|
||||
@@ -197,21 +225,32 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return static_cast<VkBufferResource*>(bufferObject.GetBackendResource().get());
|
||||
}
|
||||
|
||||
SharedPtr<VkBufferResource> VkBufferManager::GetOrCreateResource(
|
||||
VkBufferResource* VkBufferManager::GetOrCreateResource(
|
||||
const SharedPtr<MG_State::GLState::BufferObject>& bufferObject) {
|
||||
auto existing = std::static_pointer_cast<VkBufferResource>(bufferObject->GetBackendResource());
|
||||
// Return by raw pointer: the resource is owned for its whole lifetime by the BufferObject's
|
||||
// backend-resource SharedPtr (already set, or set below), so callers that only dereference
|
||||
// it avoid a static_pointer_cast + SharedPtr refcount inc/dec on every per-draw buffer bind.
|
||||
const auto& existing = bufferObject->GetBackendResource();
|
||||
if (existing) {
|
||||
return existing;
|
||||
return static_cast<VkBufferResource*>(existing.get());
|
||||
}
|
||||
auto resource = MakeShared<VkBufferResource>();
|
||||
VkBufferResource* raw = resource.get();
|
||||
bufferObject->SetBackendResource(resource);
|
||||
TrackLiveResource(resource);
|
||||
return resource;
|
||||
return raw;
|
||||
}
|
||||
|
||||
void VkBufferManager::TrackLiveResource(const SharedPtr<VkBufferResource>& resource) {
|
||||
if (m_liveResources.size() >= kLiveResourcePruneThreshold) {
|
||||
// Sweep on a doubling watermark rather than on every insert past the threshold. The old
|
||||
// form walked the whole vector for each new buffer once the list passed 256, and when the
|
||||
// buffers are all live the walk removes nothing and the list grows by one - so creating N
|
||||
// live buffers cost ~N^2/2 expired() checks. Reclamation semantics are unchanged: the sweep
|
||||
// still removes exactly the expired entries, just less often and with the same bound on how
|
||||
// much dead weight can accumulate (at most as many entries as were live at the last sweep).
|
||||
if (m_liveResources.size() >= std::max<SizeT>(kLiveResourcePruneThreshold, 2 * m_liveResourcesLastPruned)) {
|
||||
std::erase_if(m_liveResources, [](const WeakPtr<VkBufferResource>& weak) { return weak.expired(); });
|
||||
m_liveResourcesLastPruned = m_liveResources.size();
|
||||
}
|
||||
m_liveResources.push_back(resource);
|
||||
}
|
||||
@@ -219,6 +258,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void VkBufferManager::ReleaseAllLiveResources() {
|
||||
for (auto& weak : m_liveResources) {
|
||||
if (auto resource = weak.lock()) {
|
||||
BumpSliceEpoch(*resource);
|
||||
resource->buffer.Destroy();
|
||||
resource->storageSize = 0;
|
||||
resource->usageFlags = 0;
|
||||
@@ -233,6 +273,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
Bool VkBufferManager::CreateResidentStorage(VkBufferResource& resource, VkDeviceSize size,
|
||||
VkBufferUsageFlags usage, VkMemoryPropertyFlags requiredFlags) {
|
||||
// The only place a resident VkBuffer handle is minted, so every resident slice
|
||||
// change funnels through here (callers release the old handle first).
|
||||
BumpSliceEpoch(resource);
|
||||
// Staged range copies write resident storage with vkCmdCopyBuffer.
|
||||
usage |= VK_BUFFER_USAGE_TRANSFER_DST_BIT;
|
||||
const Bool created = resource.buffer.Create({
|
||||
@@ -319,6 +362,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (!resource) {
|
||||
return; // lazy: AcquireResidentSlice performs a full upload on creation
|
||||
}
|
||||
// A respecify can change the size, the usage hint (so the resident/streamed
|
||||
// route), and the contents at once; retire every memo before deciding what to
|
||||
// do about the storage.
|
||||
BumpSliceEpoch(*resource);
|
||||
// Any cached streaming slice refers to the previous contents.
|
||||
resource->transientFrameSerial = 0;
|
||||
if (!resource->buffer.IsValid()) {
|
||||
@@ -351,6 +398,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (!resource) {
|
||||
return;
|
||||
}
|
||||
// Drops the streaming memo below and may end in a storage swap or a deferred
|
||||
// full re-upload, so no memoised slice survives this.
|
||||
BumpSliceEpoch(*resource);
|
||||
resource->transientFrameSerial = 0;
|
||||
if (!resource->buffer.IsValid() || resource->pendingFullUpload) {
|
||||
return;
|
||||
@@ -383,6 +433,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (!resource) {
|
||||
return;
|
||||
}
|
||||
BumpSliceEpoch(*resource);
|
||||
resource->transientFrameSerial = 0;
|
||||
if (!resource->buffer.IsValid() || resource->pendingFullUpload) {
|
||||
return;
|
||||
@@ -442,6 +493,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
TrackLiveResource(resource);
|
||||
}
|
||||
|
||||
// Bumped for the request, not just for the storage it may create. This is the
|
||||
// one call the frontend makes when a buffer becomes persistently mapped for
|
||||
// writing (BufferObject::AcquireMemoryRange), and a map the backend declines
|
||||
// keeps mutating its shadow with no further API call - so it is what lets
|
||||
// GetSliceEpochCounter stand for "no buffer needs a persistent-map range push".
|
||||
BumpSliceEpoch(*resource);
|
||||
|
||||
// Idempotent: an already-backed buffer returns the same mapped base.
|
||||
if (resource->persistentMapped && resource->buffer.IsValid() && resource->storageSize == size) {
|
||||
return resource->buffer.GetMappedData();
|
||||
@@ -452,7 +510,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// it from the current shadow - MappedData() is still the shadow here because the
|
||||
// frontend adopts (and drops) the shadow only after this returns.
|
||||
DeferRelease(std::move(resource->buffer));
|
||||
if (!CreateResidentStorage(*resource, size, kPersistentBackedUsage, kPersistentBackedRequiredFlags)) {
|
||||
const VkBufferUsageFlags persistentUsage =
|
||||
kPersistentBackedUsage |
|
||||
(m_initInfo.transformFeedbackUsageEnabled ? kTransformFeedbackUsage : 0);
|
||||
if (!CreateResidentStorage(*resource, size, persistentUsage, kPersistentBackedRequiredFlags)) {
|
||||
resource->persistentMapped = false;
|
||||
resource->storageSize = 0;
|
||||
resource->usageFlags = 0;
|
||||
@@ -526,6 +587,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
auto resource = GetOrCreateResource(bufferObject);
|
||||
bufferObject->SyncPersistentMappedRange();
|
||||
|
||||
// A persistently mapped resource's storage IS the application's copy of the bytes -
|
||||
// the frontend adopted it in place of the shadow and hands out pointers into it, and
|
||||
// a shader can have written bytes the shadow never saw (a transform feedback
|
||||
// capture). Streaming a second copy would feed this draw the stale shadow, and the
|
||||
// downgrade below would release the storage the application still points at,
|
||||
// breaking the "never recreated" promise AcquirePersistentMap makes.
|
||||
if (resource->persistentMapped) {
|
||||
return AcquireResidentSlice(kind, bufferObject, outSlice);
|
||||
}
|
||||
|
||||
const VkDeviceSize size = static_cast<VkDeviceSize>(bufferObject->GetSize());
|
||||
if (size == 0) {
|
||||
MGLOG_E("VkBufferManager::AcquireStreamedSlice failed: buffer size is zero");
|
||||
@@ -539,6 +610,41 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return true;
|
||||
}
|
||||
|
||||
// Idle-content promotion: see the field comments in VkBufferResource. The
|
||||
// streak counts frame BOUNDARIES survived unchanged (the same-frame memo
|
||||
// above swallows repeat draws), so a promotion needs the content stable
|
||||
// for kStreamedPromotionStreak whole frames - one no-op frame does not
|
||||
// trigger the resident round-trip, whose creation upload is itself a
|
||||
// staged copy worth avoiding for content that is about to change again.
|
||||
constexpr Uint32 kStreamedPromotionStreak = 2;
|
||||
if (resource->promotedResident) {
|
||||
if (resource->promotedChangeSerial == changeSerial &&
|
||||
static_cast<VkDeviceSize>(bufferObject->GetSize()) == size) {
|
||||
return AcquireResidentSlice(kind, bufferObject, outSlice);
|
||||
}
|
||||
resource->promotedResident = false;
|
||||
resource->unchangedStreak = 0;
|
||||
} else if (resource->transientChangeSerial == changeSerial && resource->transientSize == size &&
|
||||
resource->transientFrameSerial != 0) {
|
||||
if (++resource->unchangedStreak >= kStreamedPromotionStreak) {
|
||||
// Promotion moves the buffer off the arena and onto resident storage.
|
||||
resource->promotedResident = true;
|
||||
resource->promotedChangeSerial = changeSerial;
|
||||
BumpSliceEpoch(*resource);
|
||||
if (AcquireResidentSlice(kind, bufferObject, outSlice)) {
|
||||
return true;
|
||||
}
|
||||
resource->promotedResident = false; // resident creation failed: stream as before
|
||||
}
|
||||
} else {
|
||||
resource->unchangedStreak = 0;
|
||||
}
|
||||
|
||||
// A fresh arena allocation: a different slice than the last call handed back,
|
||||
// and (below) the point where a promoted buffer's resident storage is released.
|
||||
// The stable-promotion exit above returns before this, so a buffer the app has
|
||||
// stopped touching keeps one slice for as long as it keeps its resident storage.
|
||||
BumpSliceEpoch(*resource);
|
||||
if (!m_transientUploadArena.Upload(m_currentFrameIndex, bufferObject->MappedData(), size, 16,
|
||||
outSlice)) {
|
||||
return false;
|
||||
|
||||
@@ -31,6 +31,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VmaMemoryUsage transientMemoryUsage = VMA_MEMORY_USAGE_AUTO;
|
||||
VmaAllocationCreateFlags transientAllocationFlags = VMA_ALLOCATION_CREATE_HOST_ACCESS_SEQUENTIAL_WRITE_BIT;
|
||||
Bool transientPersistentMapping = false;
|
||||
// VK_EXT_transform_feedback is enabled: persistent-map storage additionally
|
||||
// carries the transform feedback usage so capture targets can bind directly.
|
||||
Bool transformFeedbackUsageEnabled = false;
|
||||
};
|
||||
|
||||
// The DirectVulkan storage behind one frontend buffer (pipe_resource analogue).
|
||||
@@ -54,11 +57,33 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// never orphaned or recreated. Draw-time acquire binds it directly, no re-upload.
|
||||
Bool persistentMapped = false;
|
||||
|
||||
// Bumped from a manager-wide counter every time anything that decides which
|
||||
// BufferSlice an Acquire*Slice call hands back changes: storage created or
|
||||
// released, a full re-upload becoming due, a promotion/demotion between
|
||||
// resident and streamed storage, or a new per-frame arena slice. Callers that
|
||||
// memoise a resolved slice compare this to prove the memo still describes the
|
||||
// buffer. The counter is manager-wide (never per-resource) so a freshly
|
||||
// created resource - including one that replaces a destroyed resource at the
|
||||
// same address - can never reproduce a value some memo already holds. 0 means
|
||||
// "no slice has ever been handed out", which no memo can match.
|
||||
Uint64 sliceEpoch = 0;
|
||||
|
||||
// Cached transient (streaming) slice for the current frame.
|
||||
BufferSlice transientSlice{};
|
||||
Uint64 transientFrameSerial = 0;
|
||||
Uint64 transientChangeSerial = 0;
|
||||
VkDeviceSize transientSize = 0;
|
||||
|
||||
// Streaming re-copies the whole store into the per-frame arena on every
|
||||
// frame, which is right for genuinely per-frame data but pure waste for a
|
||||
// Dynamic-hinted buffer the app stopped touching. After the content
|
||||
// survives kStreamedPromotionStreak frame boundaries unchanged it is
|
||||
// promoted to resident storage (one final upload, then zero per-frame
|
||||
// cost); the first content change demotes it back to streaming, and the
|
||||
// streaming path's existing downgrade releases the resident store.
|
||||
Uint32 unchangedStreak = 0;
|
||||
Bool promotedResident = false;
|
||||
Uint64 promotedChangeSerial = 0;
|
||||
};
|
||||
|
||||
// Supplies a command buffer that is recording and outside any render pass,
|
||||
@@ -77,6 +102,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// Recreate all per-frame transient arenas
|
||||
Bool RecreateTransientArenas(Uint32 frameCount);
|
||||
void BeginFrame(Uint32 frameIndex);
|
||||
// Drains every frame slot's deferred buffer/resource releases (and the
|
||||
// transient arena's parked superseded blocks). Only valid when the
|
||||
// caller has proven every queue submission complete; used by the
|
||||
// present-less frame-boundary drain.
|
||||
void CollectAllDeferredReleases();
|
||||
// All previously submitted GPU work has completed (vkDeviceWaitIdle).
|
||||
void NotifyDeviceIdle();
|
||||
// A frame slot's submission fence has been waited: every serial up to
|
||||
@@ -113,6 +143,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void OnResourceDestroyed(SharedPtr<MG_State::GLState::BackendBufferResource>&& resource);
|
||||
|
||||
Uint64 GetFrameSerial() const { return m_frameSerial; }
|
||||
// Highest value handed to any VkBufferResource::sliceEpoch. Unchanged since a
|
||||
// memo was taken means no buffer this manager owns changed which slice it hands
|
||||
// back, and none was persistently mapped, in between - so a memo of resolved
|
||||
// slices needs no per-buffer re-check. See AcquirePersistentMap for the mapping half.
|
||||
Uint64 GetSliceEpochCounter() const { return m_sliceEpochCounter; }
|
||||
// Highest frame serial whose GPU work is known complete; serials at or
|
||||
// below it may be considered signaled. Drives IsResourceBusy and the
|
||||
// backend GL fence objects.
|
||||
@@ -124,7 +159,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
private:
|
||||
Bool InitializeTransientArenas();
|
||||
static VkBufferUsageFlags GetVkBufferUsage(BufferKind kind);
|
||||
SharedPtr<VkBufferResource> GetOrCreateResource(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject);
|
||||
VkBufferResource* GetOrCreateResource(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject);
|
||||
static VkBufferResource* ResourceOf(MG_State::GLState::BufferObject& bufferObject);
|
||||
Bool CreateResidentStorage(VkBufferResource& resource, VkDeviceSize size, VkBufferUsageFlags usage,
|
||||
VkMemoryPropertyFlags requiredFlags = 0);
|
||||
@@ -139,6 +174,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void DestroyAllDeferredReleases();
|
||||
void TrackLiveResource(const SharedPtr<VkBufferResource>& resource);
|
||||
void ReleaseAllLiveResources();
|
||||
// See VkBufferResource::sliceEpoch.
|
||||
void BumpSliceEpoch(VkBufferResource& resource) { resource.sliceEpoch = ++m_sliceEpochCounter; }
|
||||
|
||||
VkBufferManagerInitInfo m_initInfo{};
|
||||
BufferArena m_transientUploadArena;
|
||||
@@ -146,8 +183,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Vector<Vector<VkBufferObject>> m_deferredBufferReleases;
|
||||
Vector<Vector<SharedPtr<VkBufferResource>>> m_deferredResourceReleases;
|
||||
Vector<WeakPtr<VkBufferResource>> m_liveResources;
|
||||
// Size m_liveResources had just after the last sweep; the next sweep waits for it to double.
|
||||
SizeT m_liveResourcesLastPruned = 0;
|
||||
Uint32 m_currentFrameIndex = 0;
|
||||
Uint64 m_frameSerial = 1;
|
||||
Uint64 m_completedSerialFloor = 0;
|
||||
// Never reset (not even by Shutdown): a value handed to a resource must stay
|
||||
// unique for the process, or a memo taken before a re-initialize could match
|
||||
// a different resource's state after it.
|
||||
Uint64 m_sliceEpochCounter = 0;
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -157,16 +157,23 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return true;
|
||||
}
|
||||
|
||||
BufferSlice VkBufferObject::GetSlice(VkDeviceSize offset, VkDeviceSize size) const {
|
||||
MOBILEGL_ASSERT(offset <= m_size, "VkBufferObject::GetSlice offset out of range");
|
||||
const VkDeviceSize resolvedSize = (size == VK_WHOLE_SIZE) ? (m_size - offset) : size;
|
||||
MOBILEGL_ASSERT(offset + resolvedSize <= m_size, "VkBufferObject::GetSlice range out of bounds");
|
||||
Bool VkBufferObject::Invalidate(VkDeviceSize size, VkDeviceSize offset) {
|
||||
MOBILEGL_ASSERT(IsValid(), "VkBufferObject::Invalidate called on invalid buffer");
|
||||
MOBILEGL_ASSERT(IsMapped(), "VkBufferObject::Invalidate requires mapped memory");
|
||||
MOBILEGL_ASSERT(offset <= m_size, "VkBufferObject::Invalidate offset out of range");
|
||||
|
||||
BufferSlice slice{};
|
||||
slice.buffer = m_buffer;
|
||||
slice.offset = offset;
|
||||
slice.size = resolvedSize;
|
||||
slice.mapped = (m_mappedData != nullptr) ? static_cast<Uint8*>(m_mappedData) + offset : nullptr;
|
||||
return slice;
|
||||
const VkDeviceSize resolvedSize = size == VK_WHOLE_SIZE ? m_size - offset : size;
|
||||
MOBILEGL_ASSERT(offset + resolvedSize <= m_size, "VkBufferObject::Invalidate range out of bounds");
|
||||
if (resolvedSize == 0) {
|
||||
return true;
|
||||
}
|
||||
|
||||
const VkResult result = vmaInvalidateAllocation(m_allocator, m_allocation, offset, resolvedSize);
|
||||
if (result != VK_SUCCESS) {
|
||||
MGLOG_E("VkBufferObject::Invalidate failed: vmaInvalidateAllocation returned %d", result);
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
@@ -44,10 +44,24 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void* Map();
|
||||
void Unmap();
|
||||
Bool Upload(const void* data, VkDeviceSize size, VkDeviceSize offset = 0);
|
||||
Bool Invalidate(VkDeviceSize size = VK_WHOLE_SIZE, VkDeviceSize offset = 0);
|
||||
|
||||
VkBuffer GetHandle() const { return m_buffer; }
|
||||
VkDeviceSize GetSize() const { return m_size; }
|
||||
BufferSlice GetSlice(VkDeviceSize offset = 0, VkDeviceSize size = VK_WHOLE_SIZE) const;
|
||||
// Inline: runs on the per-draw acquire path (a resident buffer bind is a
|
||||
// GetSlice per binding), where an out-of-line call was measurable.
|
||||
BufferSlice GetSlice(VkDeviceSize offset = 0, VkDeviceSize size = VK_WHOLE_SIZE) const {
|
||||
MOBILEGL_ASSERT(offset <= m_size, "VkBufferObject::GetSlice offset out of range");
|
||||
const VkDeviceSize resolvedSize = (size == VK_WHOLE_SIZE) ? (m_size - offset) : size;
|
||||
MOBILEGL_ASSERT(offset + resolvedSize <= m_size, "VkBufferObject::GetSlice range out of bounds");
|
||||
|
||||
BufferSlice slice{};
|
||||
slice.buffer = m_buffer;
|
||||
slice.offset = offset;
|
||||
slice.size = resolvedSize;
|
||||
slice.mapped = (m_mappedData != nullptr) ? static_cast<Uint8*>(m_mappedData) + offset : nullptr;
|
||||
return slice;
|
||||
}
|
||||
void* GetMappedData() const { return m_mappedData; }
|
||||
Bool IsMapped() const { return m_mappedData != nullptr; }
|
||||
Bool IsValid() const { return m_allocator != nullptr && m_buffer != VK_NULL_HANDLE && m_allocation != nullptr; }
|
||||
|
||||
@@ -8,15 +8,75 @@
|
||||
|
||||
#include "VkClearManager.h"
|
||||
|
||||
#include "MG_State/GLState/Core.h"
|
||||
#include "MG_Util/Converters/MGToStr/FramebufferEnumConverter.h"
|
||||
#include "MG_Util/Converters/MGToStr/TextureEnumConverter.h"
|
||||
|
||||
#include <algorithm>
|
||||
#include <cmath>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static Bool IsCubeMapFaceUploadTarget(TextureUploadTarget target) {
|
||||
return target >= TextureUploadTarget::CubeMapPositiveX &&
|
||||
target <= TextureUploadTarget::CubeMapNegativeZ;
|
||||
}
|
||||
|
||||
VkClearColorValue MakeVkClearColorValue(const ClearAttachmentPayload& payload, Bool formatLacksAlpha) {
|
||||
VkClearColorValue clearValue{};
|
||||
switch (payload.colorEncoding) {
|
||||
case ClearColorEncoding::Int:
|
||||
clearValue.int32[0] = payload.colorInt.x();
|
||||
clearValue.int32[1] = payload.colorInt.y();
|
||||
clearValue.int32[2] = payload.colorInt.z();
|
||||
clearValue.int32[3] = formatLacksAlpha ? 1 : payload.colorInt.w();
|
||||
break;
|
||||
case ClearColorEncoding::Uint:
|
||||
clearValue.uint32[0] = payload.colorUint.x();
|
||||
clearValue.uint32[1] = payload.colorUint.y();
|
||||
clearValue.uint32[2] = payload.colorUint.z();
|
||||
clearValue.uint32[3] = formatLacksAlpha ? 1u : payload.colorUint.w();
|
||||
break;
|
||||
case ClearColorEncoding::Float:
|
||||
clearValue.float32[0] = payload.color.x();
|
||||
clearValue.float32[1] = payload.color.y();
|
||||
clearValue.float32[2] = payload.color.z();
|
||||
clearValue.float32[3] = formatLacksAlpha ? 1.0f : payload.color.w();
|
||||
break;
|
||||
}
|
||||
return clearValue;
|
||||
}
|
||||
|
||||
void PreCompensateSrgbClearColor(ClearAttachmentPayload& payload, VkFormat destinationFormat) {
|
||||
if (payload.colorEncoding != ClearColorEncoding::Float) return;
|
||||
// With GL_FRAMEBUFFER_SRGB enabled GL performs the encoding itself, so the driver doing it
|
||||
// is exactly right and there is nothing to undo.
|
||||
if (MG_State::pGLContext->IsCapabilityEnabled(MobileGL::CapabilityInput::FramebufferSrgb)) return;
|
||||
if (ResolveSrgbAttachmentWriteFormat(destinationFormat, false) == destinationFormat) return;
|
||||
|
||||
// sRGB -> linear (GL 4.6 core 8.24), applied to the colour channels only: alpha is stored
|
||||
// linearly in an sRGB format and must pass through untouched.
|
||||
const auto toLinear = [](Float encoded) {
|
||||
const Float value = std::clamp(encoded, 0.0f, 1.0f);
|
||||
return value <= 0.04045f ? value / 12.92f : std::pow((value + 0.055f) / 1.055f, 2.4f);
|
||||
};
|
||||
payload.color = FloatVec4(toLinear(payload.color.x()), toLinear(payload.color.y()),
|
||||
toLinear(payload.color.z()), payload.color.w());
|
||||
}
|
||||
|
||||
void ForceOpaqueClearAlpha(ClearAttachmentPayload& payload) {
|
||||
switch (payload.colorEncoding) {
|
||||
case ClearColorEncoding::Int:
|
||||
payload.colorInt = IntVec4(payload.colorInt.x(), payload.colorInt.y(), payload.colorInt.z(), 1);
|
||||
break;
|
||||
case ClearColorEncoding::Uint:
|
||||
payload.colorUint = UintVec4(payload.colorUint.x(), payload.colorUint.y(), payload.colorUint.z(), 1u);
|
||||
break;
|
||||
case ClearColorEncoding::Float:
|
||||
payload.color = FloatVec4(payload.color.x(), payload.color.y(), payload.color.z(), 1.0f);
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
static Bool PendingClearMatchesTextureIdentity(const PendingClearKey& key, const TextureIdentity& identity) {
|
||||
return key.texture == identity.texture && key.textureLifetimeId == identity.lifetimeId;
|
||||
}
|
||||
@@ -93,6 +153,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
m_pendingClears.clear();
|
||||
m_aliveObjects.clear();
|
||||
m_pendingCount.store(static_cast<Uint32>(m_pendingClears.size()), std::memory_order_relaxed);
|
||||
}
|
||||
|
||||
TextureIdentity VkClearManager::MakeTextureIdentity(MG_State::GLState::ITextureObject* texture) {
|
||||
@@ -127,6 +188,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_pendingClears.erase(key);
|
||||
}
|
||||
m_aliveObjects.erase(identity);
|
||||
m_pendingCount.store(static_cast<Uint32>(m_pendingClears.size()), std::memory_order_relaxed);
|
||||
}
|
||||
|
||||
Bool VkClearManager::LockTextureIdentityLocked(const TextureIdentity& identity,
|
||||
@@ -221,6 +283,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_aliveObjects[MakeTextureIdentity(texture.get())] = texture;
|
||||
auto& pending = m_pendingClears[key];
|
||||
MergeClearPayload(pending, clearPayload);
|
||||
m_pendingCount.store(static_cast<Uint32>(m_pendingClears.size()), std::memory_order_relaxed);
|
||||
}
|
||||
|
||||
void VkClearManager::QueueClear(const ClearAttachmentPayload& clearPayload,
|
||||
@@ -238,6 +301,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_aliveObjects[MakeTextureIdentity(texture.get())] = texture;
|
||||
auto& pending = m_pendingClears[key];
|
||||
MergeClearPayload(pending, clearPayload);
|
||||
m_pendingCount.store(static_cast<Uint32>(m_pendingClears.size()), std::memory_order_relaxed);
|
||||
}
|
||||
|
||||
Bool VkClearManager::HasPendingClear(MG_State::GLState::ITextureObject* texture) {
|
||||
@@ -245,6 +309,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return false;
|
||||
}
|
||||
|
||||
if (m_pendingCount.load(std::memory_order_relaxed) == 0) {
|
||||
return false; // per-draw hot path: nothing pending anywhere
|
||||
}
|
||||
|
||||
const Uint64 lifetimeId = texture->GetLifetimeId();
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
for (auto it = m_pendingClears.begin(); it != m_pendingClears.end(); ++it) {
|
||||
@@ -260,6 +328,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (key.texture == nullptr) {
|
||||
return false;
|
||||
}
|
||||
if (m_pendingCount.load(std::memory_order_relaxed) == 0) {
|
||||
return false; // per-draw hot path: nothing pending anywhere
|
||||
}
|
||||
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
if (m_pendingClears.find(key) == m_pendingClears.end()) {
|
||||
@@ -287,6 +358,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (key.texture == nullptr) {
|
||||
return false;
|
||||
}
|
||||
if (m_pendingCount.load(std::memory_order_relaxed) == 0) {
|
||||
return false; // per-draw hot path: nothing pending anywhere
|
||||
}
|
||||
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
if (!LockTextureLocked(key, outTexture)) {
|
||||
@@ -325,6 +399,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (texture == nullptr) {
|
||||
return false;
|
||||
}
|
||||
if (m_pendingCount.load(std::memory_order_relaxed) == 0) {
|
||||
return false; // per-draw hot path: nothing pending anywhere
|
||||
}
|
||||
|
||||
const Uint64 lifetimeId = texture->GetLifetimeId();
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
@@ -345,6 +422,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
return;
|
||||
}
|
||||
|
||||
if (m_pendingCount.load(std::memory_order_relaxed) == 0) {
|
||||
return; // per-draw hot path: nothing pending anywhere
|
||||
}
|
||||
const TextureIdentity identity = MakeTextureIdentity(texture);
|
||||
MGLOG_D("%s: Pop all pending clears for texture %d", __func__, texture->GetExternalIndex());
|
||||
const std::lock_guard<std::mutex> lock(m_mutex);
|
||||
@@ -361,6 +441,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
auto it = m_pendingClears.find(key);
|
||||
if (it != m_pendingClears.end()) {
|
||||
m_pendingClears.erase(it);
|
||||
m_pendingCount.store(static_cast<Uint32>(m_pendingClears.size()), std::memory_order_relaxed);
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@@ -14,6 +14,7 @@
|
||||
#include "MG_Util/Math/VectorTypes.h"
|
||||
|
||||
#include <Includes.h>
|
||||
#include <atomic>
|
||||
#include <unordered_map>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
@@ -23,13 +24,41 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 stencil{};
|
||||
};
|
||||
|
||||
// A colour clear reaches us from one of glClear/ClearBufferfv, ClearBufferiv or
|
||||
// ClearBufferuiv, and Vulkan reads VkClearColorValue's union according to the destination
|
||||
// image's format rather than converting between the members - a float written where an
|
||||
// integer format is expected is reinterpreted bit for bit, not rounded. Remember which entry
|
||||
// point supplied the value so the member written when the clear is materialized matches.
|
||||
enum class ClearColorEncoding : Uint8 { Float, Int, Uint };
|
||||
|
||||
struct ClearAttachmentPayload {
|
||||
GLbitfield mask = 0;
|
||||
FloatVec4 color = FloatVec4(0.0f, 0.0f, 0.0f, 0.0f);
|
||||
ClearColorEncoding colorEncoding = ClearColorEncoding::Float;
|
||||
IntVec4 colorInt = IntVec4(0, 0, 0, 0);
|
||||
UintVec4 colorUint = UintVec4(0u, 0u, 0u, 0u);
|
||||
Float depth = 1.0f;
|
||||
Uint32 stencil = 0;
|
||||
};
|
||||
|
||||
// Builds the clear value for `payload` in the union member its encoding calls for.
|
||||
// `formatLacksAlpha` applies GL's rule that a format without an alpha channel reads as one,
|
||||
// expressed in whichever type matches (GL 4.6 core 15.2.3).
|
||||
VkClearColorValue MakeVkClearColorValue(const ClearAttachmentPayload& payload, Bool formatLacksAlpha);
|
||||
|
||||
// Applies that same rule in place, for the paths that have to bake it into the payload before
|
||||
// the destination is known.
|
||||
void ForceOpaqueClearAlpha(ClearAttachmentPayload& payload);
|
||||
|
||||
// vkCmdClearColorImage names the image, so the driver applies the destination format's transfer
|
||||
// function to whatever value it is handed. Every other write path in this backend goes through
|
||||
// the UNORM twin view while GL_FRAMEBUFFER_SRGB is off (ResolveSrgbAttachmentWriteFormat) and
|
||||
// therefore stores the raw value GL asked for. Rewrites `payload` to the linear colour whose
|
||||
// encoding is that raw value, so a direct image clear of an sRGB destination agrees with them.
|
||||
// A no-op for every other format, for integer clear encodings, and when GL is doing the
|
||||
// encoding itself.
|
||||
void PreCompensateSrgbClearColor(ClearAttachmentPayload& payload, VkFormat destinationFormat);
|
||||
|
||||
struct PendingClearKey {
|
||||
MG_State::GLState::ITextureObject* texture = nullptr;
|
||||
Uint64 textureLifetimeId = 0;
|
||||
@@ -120,7 +149,19 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
SharedPtr<MG_State::GLState::ITextureObject>& outTexture);
|
||||
|
||||
Uint8 m_gcCounter = 0;
|
||||
public:
|
||||
// Lock-free probe for the consecutive-draw fast path: any pending clear
|
||||
// forces the full SetupDraw path (which materializes/consumes it).
|
||||
Bool HasAnyPendingClears() const { return m_pendingCount.load(std::memory_order_relaxed) != 0; }
|
||||
|
||||
private:
|
||||
mutable std::mutex m_mutex;
|
||||
// Lock-free mirror of m_pendingClears.size(), maintained under m_mutex
|
||||
// by every mutation. The per-draw probes (HasPendingClear/GetPending*)
|
||||
// read it before taking the lock: during draw batches the pending set
|
||||
// is almost always empty, so this turns several locked map probes per
|
||||
// draw into one relaxed load.
|
||||
std::atomic<Uint32> m_pendingCount{0};
|
||||
std::unordered_map<PendingClearKey, ClearAttachmentPayload, PendingClearKeyHash> m_pendingClears;
|
||||
std::unordered_map<TextureIdentity, WeakPtr<MG_State::GLState::ITextureObject>, TextureIdentityHash> m_aliveObjects;
|
||||
};
|
||||
|
||||
@@ -16,31 +16,21 @@
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static Bool TryResolveSampleCountFlagBits(Int requestedSamples, VkSampleCountFlagBits& outSampleCount) {
|
||||
switch (requestedSamples <= 0 ? 1 : requestedSamples) {
|
||||
case 1:
|
||||
// GL promises "at least the requested samples", so a non-power-of-two
|
||||
// request (legal in GL, e.g. 3) rounds up to the next Vulkan bit.
|
||||
if (requestedSamples <= 1) {
|
||||
outSampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
return true;
|
||||
case 2:
|
||||
outSampleCount = VK_SAMPLE_COUNT_2_BIT;
|
||||
return true;
|
||||
case 4:
|
||||
outSampleCount = VK_SAMPLE_COUNT_4_BIT;
|
||||
return true;
|
||||
case 8:
|
||||
outSampleCount = VK_SAMPLE_COUNT_8_BIT;
|
||||
return true;
|
||||
case 16:
|
||||
outSampleCount = VK_SAMPLE_COUNT_16_BIT;
|
||||
return true;
|
||||
case 32:
|
||||
outSampleCount = VK_SAMPLE_COUNT_32_BIT;
|
||||
return true;
|
||||
case 64:
|
||||
outSampleCount = VK_SAMPLE_COUNT_64_BIT;
|
||||
return true;
|
||||
default:
|
||||
}
|
||||
if (requestedSamples > 64) {
|
||||
return false;
|
||||
}
|
||||
Uint32 bit = 1;
|
||||
while (bit < static_cast<Uint32>(requestedSamples)) {
|
||||
bit <<= 1;
|
||||
}
|
||||
outSampleCount = static_cast<VkSampleCountFlagBits>(bit);
|
||||
return true;
|
||||
}
|
||||
|
||||
static VkImageAspectFlags ResolveImageAspectMaskForFormat(VkFormat format) {
|
||||
@@ -60,7 +50,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
}
|
||||
|
||||
static Float ResolveColorClearAlpha(const MG_State::GLState::ITextureObject* texture, Float requestedAlpha) {
|
||||
static Bool ColorFormatLacksAlpha(const MG_State::GLState::ITextureObject* texture) {
|
||||
return texture != nullptr && MG_Util::GetBaseInternalFormatComponentCount(texture->GetFormat()) == 3;
|
||||
}
|
||||
|
||||
[[maybe_unused]] static Float ResolveColorClearAlpha(const MG_State::GLState::ITextureObject* texture, Float requestedAlpha) {
|
||||
if (texture != nullptr && MG_Util::GetBaseInternalFormatComponentCount(texture->GetFormat()) == 3) {
|
||||
return 1.0f;
|
||||
}
|
||||
@@ -93,9 +87,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
static VkImageViewType ResolveAttachmentViewType(
|
||||
const MG_State::GLState::FramebufferAttachmentObject& attachment,
|
||||
const VkTextureManager::TextureResource& resource) {
|
||||
return !attachment.IsLayered() && IsCubeMapFaceUploadTarget(attachment.GetTextureUploadTarget()) ?
|
||||
VK_IMAGE_VIEW_TYPE_2D :
|
||||
resource.viewType;
|
||||
if (attachment.IsLayered()) {
|
||||
return resource.viewType;
|
||||
}
|
||||
// A non-layered attachment names ONE layer, so the view over it is a plain 2D view whatever
|
||||
// the image's own view type is. The cube-face upload targets always meant this; a cube map
|
||||
// array attached through glFramebufferTextureLayer means it too, and a CUBE_ARRAY view over
|
||||
// a single layer is not a legal attachment. The CUBE arm is inert today - no frontend path
|
||||
// produces a non-layered cube attachment without a face upload target - and is kept for
|
||||
// symmetry with CUBE_ARRAY.
|
||||
if (IsCubeMapFaceUploadTarget(attachment.GetTextureUploadTarget()) ||
|
||||
resource.viewType == VK_IMAGE_VIEW_TYPE_CUBE_ARRAY || resource.viewType == VK_IMAGE_VIEW_TYPE_CUBE) {
|
||||
return VK_IMAGE_VIEW_TYPE_2D;
|
||||
}
|
||||
return resource.viewType;
|
||||
}
|
||||
|
||||
static MG_State::GLState::ITextureObject* ResolveCompleteColorAttachmentTexture(
|
||||
@@ -166,6 +171,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (view != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(device, view, nullptr);
|
||||
}
|
||||
if (unormTwinView != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(device, unormTwinView, nullptr);
|
||||
}
|
||||
if (image != VK_NULL_HANDLE && allocation != nullptr) {
|
||||
vmaDestroyImage(allocator, image, allocation);
|
||||
}
|
||||
@@ -173,6 +181,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
image = VK_NULL_HANDLE;
|
||||
allocation = nullptr;
|
||||
view = VK_NULL_HANDLE;
|
||||
unormTwinView = VK_NULL_HANDLE;
|
||||
layout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
format = VK_FORMAT_UNDEFINED;
|
||||
aspect = VK_IMAGE_ASPECT_NONE;
|
||||
@@ -180,6 +189,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
sampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
internalFormat = TextureInternalFormat::Unknown;
|
||||
samples = 0;
|
||||
deadSinceFrame = kNeverObservedDead;
|
||||
}
|
||||
|
||||
VkRenderPassManager::VkRenderPassManager(VkDevice device,
|
||||
@@ -206,6 +216,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
resource.Destroy(m_device, m_allocator);
|
||||
}
|
||||
m_renderbufferResources.clear();
|
||||
CollectDeferredRenderbufferReleases(/*destroyAll=*/true); // caller guarantees device idle
|
||||
m_pendingRenderbufferClears.clear();
|
||||
RenderPassEntry::s_textureResourcesScratch.clear();
|
||||
s_activeRenderPass = {};
|
||||
@@ -213,22 +224,80 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_rpFastValid = false;
|
||||
}
|
||||
|
||||
void VkRenderPassManager::CollectRenderbufferGarbage() {
|
||||
Vector<MG_State::GLState::RenderbufferObject*> deadRenderbuffers;
|
||||
deadRenderbuffers.reserve(m_renderbufferResources.size());
|
||||
for (auto& [renderbuffer, resource] : m_renderbufferResources) {
|
||||
const auto liveRenderbuffer = resource.renderbuffer.lock();
|
||||
if (!liveRenderbuffer || liveRenderbuffer.get() != renderbuffer) {
|
||||
deadRenderbuffers.emplace_back(renderbuffer);
|
||||
}
|
||||
Uint64 VkRenderPassManager::RetireAgeFrames() const {
|
||||
// MaxFramesInFlight + 2 covers the frame ring plus one boundary for the
|
||||
// recording-to-submit gap and one because OnPresent runs ahead of Present's
|
||||
// fence wait; the floor of 8 keeps a margin over the default ring of 3 while
|
||||
// still releasing multi-MB attachment memory promptly (the render-pass cache's
|
||||
// 1024-frame retirement would pin it for no additional safety).
|
||||
return std::max<Uint64>(8, static_cast<Uint64>(m_config.MaxFramesInFlight) + 2);
|
||||
}
|
||||
|
||||
void VkRenderPassManager::DeferRenderbufferBackingRelease(RenderbufferResource& resource) {
|
||||
// The superseded backing may still be referenced by in-flight command buffers
|
||||
// (glRenderbufferStorage can respecify a renderbuffer drawn this very frame),
|
||||
// so it is parked and destroyed only after RetireAgeFrames() boundaries.
|
||||
if (resource.image == VK_NULL_HANDLE && resource.view == VK_NULL_HANDLE) {
|
||||
return;
|
||||
}
|
||||
for (auto* renderbuffer : deadRenderbuffers) {
|
||||
auto resourceIt = m_renderbufferResources.find(renderbuffer);
|
||||
if (resourceIt != m_renderbufferResources.end()) {
|
||||
resourceIt->second.Destroy(m_device, m_allocator);
|
||||
m_renderbufferResources.erase(resourceIt);
|
||||
m_deferredRenderbufferReleases.push_back(
|
||||
{resource.image, resource.allocation, resource.view, resource.unormTwinView, m_frameCounter});
|
||||
resource.image = VK_NULL_HANDLE;
|
||||
resource.allocation = nullptr;
|
||||
resource.view = VK_NULL_HANDLE;
|
||||
resource.unormTwinView = VK_NULL_HANDLE;
|
||||
}
|
||||
|
||||
void VkRenderPassManager::CollectDeferredRenderbufferReleases(Bool destroyAll) {
|
||||
if (m_deferredRenderbufferReleases.empty()) {
|
||||
return;
|
||||
}
|
||||
const Uint64 retireAgeFrames = RetireAgeFrames();
|
||||
std::erase_if(m_deferredRenderbufferReleases, [&](DeferredRenderbufferRelease& release) {
|
||||
if (!destroyAll && m_frameCounter - release.deferredAtFrame < retireAgeFrames) {
|
||||
return false;
|
||||
}
|
||||
m_pendingRenderbufferClears.erase(renderbuffer);
|
||||
if (release.view != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(m_device, release.view, nullptr);
|
||||
}
|
||||
if (release.unormTwinView != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(m_device, release.unormTwinView, nullptr);
|
||||
}
|
||||
if (release.image != VK_NULL_HANDLE) {
|
||||
vmaDestroyImage(m_allocator, release.image, release.allocation);
|
||||
}
|
||||
return true;
|
||||
});
|
||||
}
|
||||
|
||||
void VkRenderPassManager::CollectRenderbufferGarbage() {
|
||||
// Two-phase reclamation: a dead renderbuffer's VkImage may still be referenced by
|
||||
// command buffers submitted up to frames-in-flight frames ago (it was legally
|
||||
// attached and drawn right up to its deletion), so the first observation of an
|
||||
// expired weak reference only stamps the current frame counter; Destroy runs once
|
||||
// enough frame boundaries have passed that the stamping frame's submission fence
|
||||
// has provably been waited (see RetireAgeFrames).
|
||||
const Uint64 retireAgeFrames = RetireAgeFrames();
|
||||
for (auto it = m_renderbufferResources.begin(); it != m_renderbufferResources.end();) {
|
||||
auto& resource = it->second;
|
||||
const auto liveRenderbuffer = resource.renderbuffer.lock();
|
||||
if (liveRenderbuffer && liveRenderbuffer.get() == it->first) {
|
||||
resource.deadSinceFrame = RenderbufferResource::kNeverObservedDead;
|
||||
++it;
|
||||
continue;
|
||||
}
|
||||
if (resource.deadSinceFrame == RenderbufferResource::kNeverObservedDead) {
|
||||
resource.deadSinceFrame = m_frameCounter;
|
||||
++it;
|
||||
continue;
|
||||
}
|
||||
if (m_frameCounter - resource.deadSinceFrame < retireAgeFrames) {
|
||||
++it;
|
||||
continue;
|
||||
}
|
||||
m_pendingRenderbufferClears.erase(it->first);
|
||||
resource.Destroy(m_device, m_allocator);
|
||||
it = m_renderbufferResources.erase(it);
|
||||
}
|
||||
}
|
||||
|
||||
@@ -249,12 +318,94 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
|
||||
const auto internalFormat = renderbuffer->GetInternalFormat();
|
||||
const VkFormat format = MG_Util::ConvertTextureInternalFormatToVkEnum(internalFormat);
|
||||
// Three-channel color formats widen to their RGBA twin exactly like textures do
|
||||
// (VkTextureManager::ResolveTextureFormatInfo): blits/resolves between a
|
||||
// renderbuffer and a texture of the same GL format then see one VkFormat.
|
||||
const VkFormat format = [&]() -> VkFormat {
|
||||
switch (internalFormat) {
|
||||
case TextureInternalFormat::RGB:
|
||||
case TextureInternalFormat::RGB8:
|
||||
case TextureInternalFormat::R3G3B2:
|
||||
case TextureInternalFormat::RGB4:
|
||||
case TextureInternalFormat::RGB5:
|
||||
return VK_FORMAT_R8G8B8A8_UNORM;
|
||||
case TextureInternalFormat::SRGB8:
|
||||
return VK_FORMAT_R8G8B8A8_SRGB;
|
||||
case TextureInternalFormat::RGB8Snorm:
|
||||
return VK_FORMAT_R8G8B8A8_SNORM;
|
||||
case TextureInternalFormat::RGB10:
|
||||
case TextureInternalFormat::RGB12:
|
||||
case TextureInternalFormat::RGB16:
|
||||
return VK_FORMAT_R16G16B16A16_UNORM;
|
||||
case TextureInternalFormat::RGB16Snorm:
|
||||
return VK_FORMAT_R16G16B16A16_SNORM;
|
||||
case TextureInternalFormat::RGB16F:
|
||||
return VK_FORMAT_R16G16B16A16_SFLOAT;
|
||||
case TextureInternalFormat::RGB32F:
|
||||
return VK_FORMAT_R32G32B32A32_SFLOAT;
|
||||
case TextureInternalFormat::RGB8I:
|
||||
return VK_FORMAT_R8G8B8A8_SINT;
|
||||
case TextureInternalFormat::RGB8UI:
|
||||
return VK_FORMAT_R8G8B8A8_UINT;
|
||||
case TextureInternalFormat::RGB16I:
|
||||
return VK_FORMAT_R16G16B16A16_SINT;
|
||||
case TextureInternalFormat::RGB16UI:
|
||||
return VK_FORMAT_R16G16B16A16_UINT;
|
||||
case TextureInternalFormat::RGB32I:
|
||||
return VK_FORMAT_R32G32B32A32_SINT;
|
||||
case TextureInternalFormat::RGB32UI:
|
||||
return VK_FORMAT_R32G32B32A32_UINT;
|
||||
default:
|
||||
return MG_Util::ConvertTextureInternalFormatToVkEnum(internalFormat);
|
||||
}
|
||||
}();
|
||||
const VkImageAspectFlags aspect = ResolveImageAspectMaskForFormat(format);
|
||||
if ((aspect & VK_IMAGE_ASPECT_COLOR_BIT) != 0) {
|
||||
MGLOG_E("GetOrCreateRenderbufferResource: color renderbuffer %u is not supported by DirectVulkan render passes yet",
|
||||
renderbuffer->GetExternalIndex());
|
||||
return nullptr;
|
||||
// Renderbuffers are never sampled (GL has no way to bind one to a sampler), so the
|
||||
// usage set is attachment + transfer: transfer covers readback (vkCmdCopyImageToBuffer),
|
||||
// BlitFramebuffer, CopyTexImage sources, and out-of-render-pass clear materialization.
|
||||
const VkImageUsageFlags imageUsage =
|
||||
((aspect & VK_IMAGE_ASPECT_COLOR_BIT) != 0 ? VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT
|
||||
: VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) |
|
||||
VK_IMAGE_USAGE_TRANSFER_SRC_BIT | VK_IMAGE_USAGE_TRANSFER_DST_BIT;
|
||||
|
||||
// GL allows the implementation to allocate more samples than requested
|
||||
// (glRenderbufferStorageMultisample only promises "at least"), and devices
|
||||
// like llvmpipe expose 1x/4x but not 2x. Round the request up to the
|
||||
// nearest supported count for this format.
|
||||
if (renderbuffer->GetSamples() > 0) {
|
||||
auto supportedIt = m_attachmentSampleCountsByFormat.find(format);
|
||||
if (supportedIt == m_attachmentSampleCountsByFormat.end()) {
|
||||
VkImageFormatProperties formatProperties{};
|
||||
VkSampleCountFlags supported = VK_SAMPLE_COUNT_1_BIT;
|
||||
if (vkGetPhysicalDeviceImageFormatProperties(m_physicalDevice, format, VK_IMAGE_TYPE_2D,
|
||||
VK_IMAGE_TILING_OPTIMAL, imageUsage, 0,
|
||||
&formatProperties) == VK_SUCCESS) {
|
||||
supported = formatProperties.sampleCounts;
|
||||
}
|
||||
supportedIt = m_attachmentSampleCountsByFormat.emplace(format, supported).first;
|
||||
}
|
||||
const VkSampleCountFlags supported = supportedIt->second;
|
||||
if ((supported & sampleCount) == 0) {
|
||||
// Smallest supported count above the request, else the largest below it.
|
||||
Uint32 rounded = 0;
|
||||
for (Uint32 bit = static_cast<Uint32>(sampleCount) << 1; bit <= VK_SAMPLE_COUNT_64_BIT; bit <<= 1) {
|
||||
if ((supported & bit) != 0) {
|
||||
rounded = bit;
|
||||
break;
|
||||
}
|
||||
}
|
||||
if (rounded == 0) {
|
||||
for (Uint32 bit = static_cast<Uint32>(sampleCount) >> 1; bit != 0; bit >>= 1) {
|
||||
if ((supported & bit) != 0) {
|
||||
rounded = bit;
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
if (rounded != 0) {
|
||||
sampleCount = static_cast<VkSampleCountFlagBits>(rounded);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
auto& resource = m_renderbufferResources[renderbuffer.get()];
|
||||
@@ -268,9 +419,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
resource.samples != renderbuffer->GetSamples();
|
||||
if (!needsCreate) {
|
||||
resource.renderbuffer = renderbuffer;
|
||||
// A new renderbuffer at a recycled address may adopt a compatible entry that
|
||||
// was already stamped dead; it is alive again, so cancel the aging.
|
||||
resource.deadSinceFrame = RenderbufferResource::kNeverObservedDead;
|
||||
return &resource;
|
||||
}
|
||||
|
||||
// Respecify: park the old backing for aged destruction instead of destroying
|
||||
// inline - it may still be referenced by in-flight command buffers.
|
||||
DeferRenderbufferBackingRelease(resource);
|
||||
resource.Destroy(m_device, m_allocator);
|
||||
resource.renderbuffer = renderbuffer;
|
||||
|
||||
@@ -285,9 +442,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
imageInfo.format = format;
|
||||
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
|
||||
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
imageInfo.usage = VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
|
||||
imageInfo.usage = imageUsage;
|
||||
imageInfo.samples = sampleCount;
|
||||
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
|
||||
// sRGB renderbuffers attach through their UNORM twin while GL_FRAMEBUFFER_SRGB
|
||||
// is disabled, which needs a format-reinterpreting second view.
|
||||
const Bool hasUnormTwin = ResolveSrgbAttachmentWriteFormat(format, false) != format;
|
||||
if (hasUnormTwin) {
|
||||
imageInfo.flags |= VK_IMAGE_CREATE_MUTABLE_FORMAT_BIT;
|
||||
}
|
||||
|
||||
VkImageFormatProperties imageFormatProperties{};
|
||||
const VkResult imageFormatResult = vkGetPhysicalDeviceImageFormatProperties(
|
||||
@@ -322,6 +485,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
viewInfo.subresourceRange.layerCount = 1;
|
||||
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &resource.view),
|
||||
"vkCreateImageView(renderbuffer)");
|
||||
if (hasUnormTwin) {
|
||||
viewInfo.format = ResolveSrgbAttachmentWriteFormat(format, false);
|
||||
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &resource.unormTwinView),
|
||||
"vkCreateImageView(renderbuffer unorm twin)");
|
||||
}
|
||||
|
||||
resource.layout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
resource.format = format;
|
||||
@@ -373,7 +541,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
pending.renderbuffer = renderbuffer;
|
||||
pending.payload.mask |= clearPayload.mask;
|
||||
if ((clearPayload.mask & GL_COLOR_BUFFER_BIT) != 0) {
|
||||
// The whole colour description, not just the float vector: an integer clear keeps its
|
||||
// value in colorInt/colorUint, and dropping the encoding here would leave the pending
|
||||
// clear reading as an all-zero float one.
|
||||
pending.payload.color = clearPayload.color;
|
||||
pending.payload.colorEncoding = clearPayload.colorEncoding;
|
||||
pending.payload.colorInt = clearPayload.colorInt;
|
||||
pending.payload.colorUint = clearPayload.colorUint;
|
||||
}
|
||||
if ((clearPayload.mask & GL_DEPTH_BUFFER_BIT) != 0) {
|
||||
pending.payload.depth = clearPayload.depth;
|
||||
@@ -386,6 +560,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void VkRenderPassManager::QueueRenderbufferClear(
|
||||
GLbitfield mask, const ClearFramebufferPayload& clearPayload,
|
||||
const MG_State::GLState::FramebufferObject& drawFbo) {
|
||||
if ((mask & GL_COLOR_BUFFER_BIT) != 0) {
|
||||
// Color renderbuffer draw buffers take the framebuffer-level clear too; texture
|
||||
// attachments are skipped by the per-attachment overload's IsRenderbuffer guard.
|
||||
for (const auto attachmentType : drawFbo.GetDrawBuffers()) {
|
||||
if (attachmentType == FramebufferAttachmentType::None) {
|
||||
continue;
|
||||
}
|
||||
QueueRenderbufferClear(
|
||||
ClearAttachmentPayload{.mask = GL_COLOR_BUFFER_BIT, .color = clearPayload.color},
|
||||
drawFbo.GetAttachment(attachmentType));
|
||||
}
|
||||
}
|
||||
if ((mask & GL_DEPTH_BUFFER_BIT) != 0) {
|
||||
QueueRenderbufferClear(
|
||||
ClearAttachmentPayload{.mask = GL_DEPTH_BUFFER_BIT, .depth = clearPayload.depth},
|
||||
@@ -406,12 +592,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
|
||||
VkRenderPassManager::HashType VkRenderPassManager::ComputeHash(
|
||||
const MG_State::GLState::FramebufferObject& fbo, Uint32 swapchainImageIndex, Bool includePendingClear) {
|
||||
const MG_State::GLState::FramebufferObject& fbo, Uint32 swapchainImageIndex, Bool includePendingClear,
|
||||
Bool includeDefaultFboDepthStencil) {
|
||||
XXHASH_VERIFY(XXH64_reset(m_hashState, m_config.CacheVersion));
|
||||
const Bool isDefaultFbo = fbo.IsDefaultFramebuffer();
|
||||
if (isDefaultFbo) {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &swapchainImageIndex, sizeof(swapchainImageIndex)));
|
||||
}
|
||||
// sRGB attachments switch between their sRGB and UNORM-twin views with this
|
||||
// capability (ResolveSrgbAttachmentWriteFormat), changing the render pass formats.
|
||||
const Bool framebufferSrgbEnabled =
|
||||
MG_State::pGLContext->IsCapabilityEnabled(MobileGL::CapabilityInput::FramebufferSrgb);
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &framebufferSrgbEnabled, sizeof(framebufferSrgbEnabled)));
|
||||
auto& drawBuffers = fbo.GetDrawBuffers();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, drawBuffers.data(), drawBuffers.size() * sizeof(drawBuffers[0])));
|
||||
auto readBuffer = fbo.GetReadBuffer();
|
||||
@@ -485,9 +677,17 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
attachment <= FramebufferAttachmentType::BackRight);
|
||||
if (isDefaultColorAttachment) {
|
||||
currentLayout = m_swapchainObject.GetImageLayout(swapchainImageIndex);
|
||||
// Content validity feeds the attachment's loadOp (see the
|
||||
// creation path), so it must key the cache as well.
|
||||
if (!m_swapchainObject.IsImageContentDefined(swapchainImageIndex)) {
|
||||
currentLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
}
|
||||
} else if (attachment == FramebufferAttachmentType::Depth ||
|
||||
attachment == FramebufferAttachmentType::Stencil) {
|
||||
currentLayout = m_swapchainObject.GetDepthStencilImageLayout(swapchainImageIndex);
|
||||
if (!m_swapchainObject.IsDepthStencilContentDefined(swapchainImageIndex)) {
|
||||
currentLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
}
|
||||
}
|
||||
} else {
|
||||
auto* textureResource = m_textureManager.SyncTextureAndGetDescriptor(*texture);
|
||||
@@ -542,14 +742,49 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
combineFramebufferAttachmentObjHash(drawbuf);
|
||||
}
|
||||
|
||||
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Depth);
|
||||
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Stencil);
|
||||
// The depth-less default-FBO flavor omits the depth/stencil attachment
|
||||
// entirely, so it must hash differently from the depth-full flavor.
|
||||
const Bool depthStencilIncluded = !isDefaultFbo || includeDefaultFboDepthStencil;
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &depthStencilIncluded, sizeof(depthStencilIncluded)));
|
||||
if (depthStencilIncluded) {
|
||||
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Depth);
|
||||
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Stencil);
|
||||
}
|
||||
|
||||
return XXH64_digest(m_hashState);
|
||||
}
|
||||
|
||||
RenderPassEntry& VkRenderPassManager::GetOrCreateRenderPass(const MG_State::GLState::FramebufferObject& fbo,
|
||||
Uint32 swapchainImageIndex) {
|
||||
Uint32 swapchainImageIndex,
|
||||
Bool drawUsesDepthStencil) {
|
||||
// Resolve the default-FBO depth flavor (see the header comment): keep the
|
||||
// depth attachment when the caller needs it, when a depth/stencil clear is
|
||||
// pending, or when the active pass already carries it (escalate-only, so
|
||||
// alternating depth-less draws never split an established depth pass).
|
||||
Bool includeDefaultFboDepthStencil = true;
|
||||
if (fbo.IsDefaultFramebuffer()) {
|
||||
Bool activeDefaultHasDepthStencil = false;
|
||||
if (const auto* active = GetActiveRenderPass()) {
|
||||
Bool activeIsSwapchainPass = false;
|
||||
Bool activeHasSwapchainDepthStencil = false;
|
||||
for (const auto& tracked : active->trackedAttachmentLayouts) {
|
||||
activeIsSwapchainPass |= tracked.target == TrackedAttachmentTarget::SwapchainColor;
|
||||
activeHasSwapchainDepthStencil |=
|
||||
tracked.target == TrackedAttachmentTarget::SwapchainDepthStencil;
|
||||
}
|
||||
activeDefaultHasDepthStencil = activeIsSwapchainPass && activeHasSwapchainDepthStencil;
|
||||
}
|
||||
const auto& defaultDepthAtt = fbo.GetAttachment(FramebufferAttachmentType::Depth);
|
||||
const auto& defaultStencilAtt = fbo.GetAttachment(FramebufferAttachmentType::Stencil);
|
||||
const Bool pendingDepthStencilClear =
|
||||
(defaultDepthAtt.IsTexture() && m_clearManager.HasPendingClear(defaultDepthAtt)) ||
|
||||
HasPendingRenderbufferClear(defaultDepthAtt) ||
|
||||
(defaultStencilAtt.IsTexture() && m_clearManager.HasPendingClear(defaultStencilAtt)) ||
|
||||
HasPendingRenderbufferClear(defaultStencilAtt);
|
||||
includeDefaultFboDepthStencil =
|
||||
drawUsesDepthStencil || activeDefaultHasDepthStencil || pendingDepthStencilClear;
|
||||
}
|
||||
|
||||
auto hasPendingClearOnFramebuffer = [&]() -> Bool {
|
||||
const auto& drawBuffers = fbo.GetDrawBuffers();
|
||||
for (auto attachment : drawBuffers) {
|
||||
@@ -599,14 +834,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_rpFastFboVersion == fbo.GetObjectVersion() && m_rpFastSwapchainIndex == swapchainImageIndex &&
|
||||
m_rpFastTexEpoch == m_textureManager.GetTextureImageEpoch() &&
|
||||
m_rpFastRbEpoch == m_renderbufferImageEpoch &&
|
||||
(!fbo.IsDefaultFramebuffer() || m_rpFastHadDepthStencil == includeDefaultFboDepthStencil) &&
|
||||
m_rpFastRenderPassHash == activeRenderPass->hash && !hasPendingClearOnFramebuffer()) {
|
||||
auto activeIt = m_renderPasses.find(activeRenderPass->hash);
|
||||
if (activeIt != m_renderPasses.end()) {
|
||||
activeIt->second.lastUsedFrame = m_frameCounter;
|
||||
return activeIt->second;
|
||||
}
|
||||
}
|
||||
|
||||
auto compatibilityHash = ComputeHash(fbo, swapchainImageIndex, false);
|
||||
auto compatibilityHash = ComputeHash(fbo, swapchainImageIndex, false, includeDefaultFboDepthStencil);
|
||||
if (activeRenderPass != nullptr &&
|
||||
activeRenderPass->CompatibleWith(compatibilityHash) &&
|
||||
!hasPendingClearOnFramebuffer()) {
|
||||
@@ -623,12 +860,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
m_rpFastTexEpoch = m_textureManager.GetTextureImageEpoch();
|
||||
m_rpFastRbEpoch = m_renderbufferImageEpoch;
|
||||
m_rpFastRenderPassHash = activeRenderPass->hash;
|
||||
m_rpFastHadDepthStencil = activeIt->second.hasDepthStencilAttachment;
|
||||
activeIt->second.lastUsedFrame = m_frameCounter;
|
||||
return activeIt->second;
|
||||
}
|
||||
auto hash = ComputeHash(fbo, swapchainImageIndex, true);
|
||||
auto hash = ComputeHash(fbo, swapchainImageIndex, true, includeDefaultFboDepthStencil);
|
||||
auto it = m_renderPasses.find(hash);
|
||||
if (it != m_renderPasses.end())
|
||||
if (it != m_renderPasses.end()) {
|
||||
it->second.lastUsedFrame = m_frameCounter;
|
||||
return it->second;
|
||||
}
|
||||
|
||||
Bool isDefaultFbo = fbo.IsDefaultFramebuffer();
|
||||
// Color attachment
|
||||
@@ -678,6 +919,86 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// assuming default FBO has the right param
|
||||
for (Uint32 i = 0; i < colorAttachmentSlotCount; ++i) {
|
||||
auto drawbuf = drawbufs[i];
|
||||
|
||||
// Renderbuffer color attachments mirror the texture path below, with the
|
||||
// resource (image/view/format/layout) coming from the render-pass manager's
|
||||
// renderbuffer store instead of the texture manager.
|
||||
if (drawbuf != FramebufferAttachmentType::None && !isDefaultFbo) {
|
||||
const auto& rbAtt = fbo.GetAttachment(drawbuf);
|
||||
if (rbAtt.IsRenderbuffer() && rbAtt.IsComplete()) {
|
||||
const auto& renderbuffer = rbAtt.GetRenderbuffer();
|
||||
auto* rbResource = GetOrCreateRenderbufferResource(renderbuffer);
|
||||
if (rbResource == nullptr || (rbResource->aspect & VK_IMAGE_ASPECT_COLOR_BIT) == 0) {
|
||||
MGLOG_E("GetOrCreateRenderPass: draw buffer slot %u on FBO %u has an unsupported color "
|
||||
"renderbuffer %u; using VK_ATTACHMENT_UNUSED",
|
||||
i, fbo.GetExternalIndex(), renderbuffer->GetExternalIndex());
|
||||
continue;
|
||||
}
|
||||
|
||||
const Uint32 rbAttachmentIndex = static_cast<Uint32>(attachmentDescriptions.size());
|
||||
attachmentDescriptions.emplace_back();
|
||||
VkAttachmentDescription& rbDesc = attachmentDescriptions.back();
|
||||
|
||||
ClearAttachmentPayload rbClearPayload{};
|
||||
Bool rbHasClear = GetPendingRenderbufferClear(renderbuffer.get(), rbClearPayload) &&
|
||||
(rbClearPayload.mask & GL_COLOR_BUFFER_BIT) != 0;
|
||||
if (rbHasClear &&
|
||||
MG_Util::GetBaseInternalFormatComponentCount(renderbuffer->GetInternalFormat()) == 3) {
|
||||
// RGB renderbuffers are backed by an RGBA image; the missing alpha reads as 1.
|
||||
ForceOpaqueClearAlpha(rbClearPayload);
|
||||
}
|
||||
|
||||
const VkImageLayout trackedRbLayout = rbResource->layout;
|
||||
const Bool rbFramebufferSrgb =
|
||||
MG_State::pGLContext->IsCapabilityEnabled(MobileGL::CapabilityInput::FramebufferSrgb);
|
||||
const VkFormat rbAttachmentFormat =
|
||||
ResolveSrgbAttachmentWriteFormat(rbResource->format, rbFramebufferSrgb);
|
||||
rbDesc.flags = 0;
|
||||
rbDesc.format = rbAttachmentFormat;
|
||||
rbDesc.samples = rbResource->sampleCount;
|
||||
rbDesc.loadOp = rbHasClear ? VK_ATTACHMENT_LOAD_OP_CLEAR :
|
||||
(trackedRbLayout == VK_IMAGE_LAYOUT_UNDEFINED ? VK_ATTACHMENT_LOAD_OP_DONT_CARE
|
||||
: VK_ATTACHMENT_LOAD_OP_LOAD);
|
||||
rbDesc.storeOp = VK_ATTACHMENT_STORE_OP_STORE;
|
||||
rbDesc.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
|
||||
rbDesc.stencilStoreOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
|
||||
rbDesc.initialLayout = (rbHasClear || trackedRbLayout == VK_IMAGE_LAYOUT_UNDEFINED) ?
|
||||
VK_IMAGE_LAYOUT_UNDEFINED : trackedRbLayout;
|
||||
rbDesc.finalLayout = VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL;
|
||||
adoptRenderPassSampleCount(rbResource->sampleCount, "color",
|
||||
static_cast<Int>(renderbuffer->GetExternalIndex()));
|
||||
|
||||
if (rbHasClear) {
|
||||
pendingClearAttachments.emplace_back(PendingClearAttachmentInfo {
|
||||
.attachmentIndex = rbAttachmentIndex,
|
||||
.colorAttachmentSlot = i,
|
||||
.renderbuffer = renderbuffer.get(),
|
||||
.hasInlinePayload = true,
|
||||
.inlinePayload = rbClearPayload,
|
||||
});
|
||||
}
|
||||
|
||||
if (width == 0)
|
||||
width = static_cast<Int>(rbResource->extent.width);
|
||||
if (height == 0)
|
||||
height = static_cast<Int>(rbResource->extent.height);
|
||||
|
||||
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
|
||||
.target = TrackedAttachmentTarget::Renderbuffer,
|
||||
.renderbuffer = renderbuffer,
|
||||
.finalLayout = rbDesc.finalLayout,
|
||||
});
|
||||
textureResources.emplace_back(nullptr);
|
||||
attachmentViews.emplace_back(rbAttachmentFormat != rbResource->format ? rbResource->unormTwinView
|
||||
: rbResource->view);
|
||||
MOBILEGL_ASSERT(attachmentViews.back() != VK_NULL_HANDLE,
|
||||
"GetOrCreateRenderPass: renderbuffer view missing at color attachment %d", i);
|
||||
|
||||
colorAttachmentRefs[i].attachment = rbAttachmentIndex;
|
||||
continue;
|
||||
}
|
||||
}
|
||||
|
||||
auto* texture = ResolveCompleteColorAttachmentTexture(fbo, drawbuf, i);
|
||||
if (texture == nullptr)
|
||||
continue;
|
||||
@@ -696,6 +1017,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
case TextureTarget::Texture2D:
|
||||
case TextureTarget::Texture2DArray:
|
||||
case TextureTarget::Texture2DMultisample:
|
||||
case TextureTarget::Texture2DMultisampleArray:
|
||||
case TextureTarget::Texture3D:
|
||||
case TextureTarget::TextureCubeMap:
|
||||
case TextureTarget::TextureCubeMapArray:
|
||||
case TextureTarget::TextureRectangle: {
|
||||
desc.flags = 0;
|
||||
desc.format = isDefaultFbo ?
|
||||
@@ -718,6 +1043,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
if (hasClear) {
|
||||
pendingClearAttachments.emplace_back(PendingClearAttachmentInfo {
|
||||
.attachmentIndex = attachmentIndex,
|
||||
.colorAttachmentSlot = i,
|
||||
.key = VkClearManager::MakePendingClearKey(att)
|
||||
});
|
||||
}
|
||||
@@ -733,6 +1059,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
MOBILEGL_ASSERT(swapchainImageIndex < swapchainViews.size(),
|
||||
"GetOrCreateRenderPass: swapchain image index out of range");
|
||||
trackedColorLayout = m_swapchainObject.GetImageLayout(swapchainImageIndex);
|
||||
// EGL: a presented color buffer's content is undefined when its
|
||||
// image comes back around (EGL_BUFFER_DESTROYED, the default
|
||||
// swap behaviour) - skip the tile load instead of reloading
|
||||
// stale pixels nobody may rely on.
|
||||
if (!hasClear && !m_swapchainObject.IsImageContentDefined(swapchainImageIndex)) {
|
||||
trackedColorLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
}
|
||||
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
|
||||
.target = TrackedAttachmentTarget::SwapchainColor,
|
||||
.swapchainImageIndex = swapchainImageIndex,
|
||||
@@ -746,12 +1079,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
MOBILEGL_ASSERT(textureResource,
|
||||
"GetOrCreateRenderPass: SyncTextureAndGetDescriptor failed at color attachment %d", i);
|
||||
textureResources.emplace_back(textureResource);
|
||||
desc.format = textureResource->format;
|
||||
desc.format = ResolveSrgbAttachmentWriteFormat(
|
||||
textureResource->format,
|
||||
MG_State::pGLContext->IsCapabilityEnabled(MobileGL::CapabilityInput::FramebufferSrgb));
|
||||
attachmentSampleCount = textureResource->sampleCount;
|
||||
trackedColorLayout = textureResource->layout;
|
||||
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
|
||||
.target = TrackedAttachmentTarget::Texture,
|
||||
.texture = att.GetTexture(),
|
||||
.textureRaw = att.GetTexture().get(),
|
||||
.textureMipLevel = attachmentMipLevel,
|
||||
.finalLayout = desc.finalLayout,
|
||||
});
|
||||
@@ -815,6 +1151,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
};
|
||||
const auto* selectedDepthStencilAttachment = isUsableDepthStencilAttachment(depthAtt) ? &depthAtt :
|
||||
(isUsableDepthStencilAttachment(stencilAtt) ? &stencilAtt : nullptr);
|
||||
// Depth-less default-FBO flavor: nothing in this pass touches depth/stencil
|
||||
// and their content is undefined anyway (EGL swap), so drop the attachment
|
||||
// and its whole tile load + store.
|
||||
if (isDefaultFbo && !includeDefaultFboDepthStencil) {
|
||||
selectedDepthStencilAttachment = nullptr;
|
||||
}
|
||||
const Bool hasDistinctDepthAndStencilAttachments =
|
||||
isUsableDepthStencilAttachment(depthAtt) && isUsableDepthStencilAttachment(stencilAtt) &&
|
||||
!sameDepthStencilAttachmentObject(depthAtt, stencilAtt);
|
||||
@@ -833,6 +1175,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkImageLayout trackedDepthLayout = isDefaultFbo ?
|
||||
m_swapchainObject.GetDepthStencilImageLayout(swapchainImageIndex) :
|
||||
VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
|
||||
// EGL 1.5 §3.10.1: every ancillary (depth/stencil) buffer's content is
|
||||
// undefined after a swap, so the first default-FBO pass of a frame can
|
||||
// skip the depth/stencil tile load outright.
|
||||
if (isDefaultFbo && !m_swapchainObject.IsDepthStencilContentDefined(swapchainImageIndex)) {
|
||||
trackedDepthLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
}
|
||||
depthAttachmentDescription.flags = 0;
|
||||
VkSampleCountFlagBits depthAttachmentSampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
Int depthAttachmentId = 0;
|
||||
@@ -916,6 +1264,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
|
||||
.target = TrackedAttachmentTarget::Texture,
|
||||
.texture = selectedDepthStencilAttachment->GetTexture(),
|
||||
.textureRaw = selectedDepthStencilAttachment->GetTexture().get(),
|
||||
.textureMipLevel = attachmentMipLevel,
|
||||
.finalLayout = depthAttachmentDescription.finalLayout,
|
||||
});
|
||||
@@ -961,6 +1310,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
const Bool hasDepthStencilAttachment = depthAttachmentRef.attachment != VK_ATTACHMENT_UNUSED;
|
||||
|
||||
// Declare only the used colour-reference span. The GL draw-buffer array
|
||||
// always spans 8 slots, so passes used to declare colorAttachmentCount=8
|
||||
// with trailing VK_ATTACHMENT_UNUSED holes - and Adreno configures its
|
||||
// per-pixel render-backend/export path from the DECLARED count, so every
|
||||
// fragment of every pass paid the 8-target export cost (measured on
|
||||
// Adreno 650 / MC 26.2: 11.9 -> 7.5 ms of GPU time per frame, with the
|
||||
// single-quad swapchain blit pass alone dropping 1.26 -> 0.40 ms).
|
||||
// Interior GL_NONE holes keep their slots so fragment-output locations
|
||||
// still line up; a fragment output at a location past the trimmed count
|
||||
// is discarded, which is exactly GL's semantic for writing to a draw
|
||||
// buffer set to GL_NONE.
|
||||
while (!colorAttachmentRefs.empty() &&
|
||||
colorAttachmentRefs.back().attachment == VK_ATTACHMENT_UNUSED) {
|
||||
colorAttachmentRefs.pop_back();
|
||||
}
|
||||
|
||||
// Subpass
|
||||
VkSubpassDescription subpassDesc;
|
||||
subpassDesc.flags = 0;
|
||||
@@ -974,6 +1339,52 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
subpassDesc.preserveAttachmentCount = 0;
|
||||
subpassDesc.pPreserveAttachments = nullptr;
|
||||
|
||||
// External subpass dependencies. Without them there is NO execution/memory
|
||||
// dependency between consecutive render passes (or a pass and a transfer)
|
||||
// touching the same attachments when the image layout does not change — the
|
||||
// layout-transition helper no-ops on identical layouts and no other barrier
|
||||
// exists. Tile-based GPUs then race tile loads against the previous pass's
|
||||
// stores (multi-pass FBO chains like MC 26.3's OIT flicker on Adreno).
|
||||
// Conservative both-ways dependencies: prior writes (attachment output,
|
||||
// depth/stencil, transfer, shader) are made visible to this pass's loads,
|
||||
// and this pass's attachment writes to subsequent sampling/transfer/loads.
|
||||
VkSubpassDependency subpassDependencies[2];
|
||||
subpassDependencies[0] = {};
|
||||
subpassDependencies[0].srcSubpass = VK_SUBPASS_EXTERNAL;
|
||||
subpassDependencies[0].dstSubpass = 0;
|
||||
subpassDependencies[0].srcStageMask = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT |
|
||||
VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT |
|
||||
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT | VK_PIPELINE_STAGE_TRANSFER_BIT;
|
||||
subpassDependencies[0].srcAccessMask = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_SHADER_WRITE_BIT | VK_ACCESS_TRANSFER_WRITE_BIT;
|
||||
subpassDependencies[0].dstStageMask = VK_PIPELINE_STAGE_EARLY_FRAGMENT_TESTS_BIT |
|
||||
VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT |
|
||||
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
|
||||
subpassDependencies[0].dstAccessMask =
|
||||
VK_ACCESS_COLOR_ATTACHMENT_READ_BIT | VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_READ_BIT | VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_SHADER_READ_BIT;
|
||||
subpassDependencies[0].dependencyFlags = 0;
|
||||
subpassDependencies[1] = {};
|
||||
subpassDependencies[1].srcSubpass = 0;
|
||||
subpassDependencies[1].dstSubpass = VK_SUBPASS_EXTERNAL;
|
||||
subpassDependencies[1].srcStageMask =
|
||||
VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT | VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT;
|
||||
subpassDependencies[1].srcAccessMask =
|
||||
VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT | VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT;
|
||||
subpassDependencies[1].dstStageMask = VK_PIPELINE_STAGE_EARLY_FRAGMENT_TESTS_BIT |
|
||||
VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT |
|
||||
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT |
|
||||
VK_PIPELINE_STAGE_TRANSFER_BIT;
|
||||
subpassDependencies[1].dstAccessMask =
|
||||
VK_ACCESS_COLOR_ATTACHMENT_READ_BIT | VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_READ_BIT | VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT |
|
||||
VK_ACCESS_SHADER_READ_BIT | VK_ACCESS_TRANSFER_READ_BIT | VK_ACCESS_TRANSFER_WRITE_BIT;
|
||||
subpassDependencies[1].dependencyFlags = 0;
|
||||
|
||||
// Render Pass
|
||||
VkRenderPassCreateInfo renderPassCreateInfo;
|
||||
renderPassCreateInfo.sType = VK_STRUCTURE_TYPE_RENDER_PASS_CREATE_INFO;
|
||||
@@ -983,8 +1394,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
renderPassCreateInfo.pAttachments = attachmentDescriptions.data();
|
||||
renderPassCreateInfo.subpassCount = 1;
|
||||
renderPassCreateInfo.pSubpasses = &subpassDesc;
|
||||
renderPassCreateInfo.dependencyCount = 0;
|
||||
renderPassCreateInfo.pDependencies = nullptr;
|
||||
renderPassCreateInfo.dependencyCount = 2;
|
||||
renderPassCreateInfo.pDependencies = subpassDependencies;
|
||||
|
||||
VkRenderPass renderPass = VK_NULL_HANDLE;
|
||||
VK_VERIFY(vkCreateRenderPass(m_device, &renderPassCreateInfo, nullptr, &renderPass));
|
||||
@@ -1015,7 +1426,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
hasDepthStencilAttachment,
|
||||
renderPassSampleCount,
|
||||
extent,
|
||||
static_cast<Int>(framebufferLayers) };
|
||||
framebufferLayers };
|
||||
MGLOG_D("VkRenderPassManager::GetOrCreateRenderPass: hash=0x%llx compatibilityHash=0x%llx attachmentCount=%u colorAttachmentCount=%u samples=%d extent=%dx%d",
|
||||
static_cast<unsigned long long>(hash),
|
||||
static_cast<unsigned long long>(compatibilityHash),
|
||||
@@ -1025,9 +1436,54 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
extent.x(),
|
||||
extent.y());
|
||||
auto [insertedIt, _] = m_renderPasses.emplace(hash, Move(renderPassEntry));
|
||||
insertedIt->second.lastUsedFrame = m_frameCounter;
|
||||
return insertedIt->second;
|
||||
}
|
||||
|
||||
void VkRenderPassManager::OnPresent() {
|
||||
++m_frameCounter;
|
||||
|
||||
// Runs every frame boundary, ahead of the render-pass sweep gate below: the walk
|
||||
// is O(#renderbuffer resources) — single digits in practice — and per-frame
|
||||
// invocation keeps dead-resource reclaim latency at the aging bound instead of
|
||||
// coupling it to renderbuffer *use* (the GetOrCreateRenderbufferResource call
|
||||
// site never runs again once an app stops using renderbuffers).
|
||||
CollectRenderbufferGarbage();
|
||||
CollectDeferredRenderbufferReleases(/*destroyAll=*/false);
|
||||
|
||||
// Sweep occasionally; evict entries whose last use is far past every
|
||||
// in-flight frame so their VkRenderPass/VkFramebuffer can be destroyed
|
||||
// safely (RenderPassEntry's destructor releases the handles).
|
||||
constexpr Uint64 kSweepInterval = 256;
|
||||
constexpr Uint64 kRetireAgeFrames = 1024;
|
||||
if ((m_frameCounter % kSweepInterval) != 0) {
|
||||
return;
|
||||
}
|
||||
|
||||
// Collect the dying handles and notify once after the loop: pipelines hashed
|
||||
// on them share the entries' >kRetireAgeFrames idleness (they are only bound
|
||||
// by draws that hit those entries), so the observer may destroy them
|
||||
// immediately - and a single batched notification costs one pipeline-cache
|
||||
// scan instead of one per evicted pass.
|
||||
Vector<VkRenderPass> destroyedRenderPasses;
|
||||
const Uint64 activeHash = s_hasActiveRenderPass ? s_activeRenderPass.hash : 0;
|
||||
for (auto it = m_renderPasses.begin(); it != m_renderPasses.end();) {
|
||||
const Bool isActive = s_hasActiveRenderPass && it->first == activeHash;
|
||||
if (!isActive && m_frameCounter - it->second.lastUsedFrame > kRetireAgeFrames) {
|
||||
if (m_rpFastValid && m_rpFastRenderPassHash == it->first) {
|
||||
m_rpFastValid = false;
|
||||
}
|
||||
destroyedRenderPasses.push_back(it->second.renderPass);
|
||||
it = m_renderPasses.erase(it);
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
if (!destroyedRenderPasses.empty() && m_evictionObserver != nullptr) {
|
||||
m_evictionObserver->OnRenderPassesDestroyed(destroyedRenderPasses);
|
||||
}
|
||||
}
|
||||
|
||||
Bool VkRenderPassManager::BeginRenderPass(VkCommandBuffer commandBuffer, RenderPassEntry& renderPassEntry) {
|
||||
// TODO: Transition all the attachments into proper layout before starting the render pass
|
||||
VkRenderPassBeginInfo renderPassBeginInfo;
|
||||
@@ -1059,12 +1515,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
}
|
||||
if ((clearPayload.mask & GL_COLOR_BUFFER_BIT) != 0) {
|
||||
clearValues[pending.attachmentIndex].color = {
|
||||
clearPayload.color.x(),
|
||||
clearPayload.color.y(),
|
||||
clearPayload.color.z(),
|
||||
ResolveColorClearAlpha(liveTexture.get(), clearPayload.color.w())
|
||||
};
|
||||
clearValues[pending.attachmentIndex].color =
|
||||
MakeVkClearColorValue(clearPayload, ColorFormatLacksAlpha(liveTexture.get()));
|
||||
}
|
||||
if ((clearPayload.mask & GL_DEPTH_BUFFER_BIT) != 0) {
|
||||
clearValues[pending.attachmentIndex].depthStencil.depth = clearPayload.depth;
|
||||
@@ -1078,6 +1530,17 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
renderPassBeginInfo.pClearValues = clearValues.data();
|
||||
|
||||
vkCmdBeginRenderPass(commandBuffer, &renderPassBeginInfo, VK_SUBPASS_CONTENTS_INLINE);
|
||||
// Pre-pass stream bookkeeping: this pass's attachment images are now
|
||||
// referenced by the open frame recording.
|
||||
if (s_textureManager != nullptr) {
|
||||
for (const auto& tracked : renderPassEntry.trackedAttachmentLayouts) {
|
||||
if (tracked.target == TrackedAttachmentTarget::Texture) {
|
||||
if (const auto texture = tracked.texture.lock()) {
|
||||
s_textureManager->StampTextureRecordingUse(texture.get());
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
for (const auto& pending: renderPassEntry.pendingClearAttachments) {
|
||||
if (pending.hasInlinePayload) {
|
||||
if (s_renderPassManager != nullptr) {
|
||||
@@ -1130,11 +1593,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
case TrackedAttachmentTarget::SwapchainColor:
|
||||
MOBILEGL_ASSERT(s_swapchainObject != nullptr, "EndRenderPass: swapchain object is null");
|
||||
s_swapchainObject->SetImageLayout(trackedAttachment.swapchainImageIndex, trackedAttachment.finalLayout);
|
||||
// The pass stored into the attachment: its content is defined
|
||||
// until the image is next presented.
|
||||
s_swapchainObject->SetImageContentDefined(trackedAttachment.swapchainImageIndex, true);
|
||||
break;
|
||||
case TrackedAttachmentTarget::SwapchainDepthStencil:
|
||||
MOBILEGL_ASSERT(s_swapchainObject != nullptr, "EndRenderPass: swapchain object is null");
|
||||
s_swapchainObject->SetDepthStencilImageLayout(trackedAttachment.swapchainImageIndex,
|
||||
trackedAttachment.finalLayout);
|
||||
s_swapchainObject->SetDepthStencilContentDefined(trackedAttachment.swapchainImageIndex, true);
|
||||
break;
|
||||
default:
|
||||
MOBILEGL_ASSERT(false, "EndRenderPass: unsupported tracked attachment target=%d",
|
||||
|
||||
@@ -16,6 +16,7 @@
|
||||
#include "MG_State/GLState/FramebufferState/FramebufferObject.h"
|
||||
|
||||
#include <Includes.h>
|
||||
#include <unordered_map>
|
||||
#include <vk_mem_alloc.h>
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
@@ -27,7 +28,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
};
|
||||
|
||||
struct PendingClearAttachmentInfo {
|
||||
// Index into the render pass attachment descriptions (VkRenderPassBeginInfo::pClearValues space).
|
||||
Uint32 attachmentIndex = 0;
|
||||
// Index into the subpass pColorAttachments (VkClearAttachment::colorAttachment space) — the GL
|
||||
// draw-buffer slot. Differs from attachmentIndex when earlier slots are GL_NONE/incomplete.
|
||||
// Only meaningful for color clears.
|
||||
Uint32 colorAttachmentSlot = 0;
|
||||
PendingClearKey key{};
|
||||
MG_State::GLState::RenderbufferObject* renderbuffer = nullptr;
|
||||
Bool hasInlinePayload = false;
|
||||
@@ -37,6 +43,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
struct TrackedAttachmentLayoutInfo {
|
||||
TrackedAttachmentTarget target = TrackedAttachmentTarget::Texture;
|
||||
WeakPtr<MG_State::GLState::ITextureObject> texture;
|
||||
// Identity-compare shortcut for the per-draw "does the active pass use
|
||||
// this sampled texture" probe: comparing this against a LIVE texture's
|
||||
// address needs no weak_ptr::lock (two refcount atomics per probe).
|
||||
// May dangle once the texture dies - compare only, never dereference.
|
||||
MG_State::GLState::ITextureObject* textureRaw = nullptr;
|
||||
WeakPtr<MG_State::GLState::RenderbufferObject> renderbuffer;
|
||||
Uint32 textureMipLevel = 0;
|
||||
Uint32 swapchainImageIndex = 0;
|
||||
@@ -68,7 +79,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Bool hasDepthStencilAttachment = false;
|
||||
VkSampleCountFlagBits sampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
IntVec2 extent = {0, 0};
|
||||
Uint32 subpass = 0;
|
||||
// VkFramebufferCreateInfo::layers of the entry's framebuffer (>1 for layered GL attachments).
|
||||
Uint32 layers = 1;
|
||||
// Frame counter value of the last GetOrCreateRenderPass hit; drives cache eviction.
|
||||
Uint64 lastUsedFrame = 0;
|
||||
|
||||
RenderPassEntry() = default;
|
||||
RenderPassEntry(const RenderPassEntry&) = delete;
|
||||
@@ -84,7 +98,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
std::swap(hasDepthStencilAttachment, that.hasDepthStencilAttachment);
|
||||
std::swap(sampleCount, that.sampleCount);
|
||||
std::swap(extent, that.extent);
|
||||
std::swap(subpass, that.subpass);
|
||||
std::swap(layers, that.layers);
|
||||
std::swap(lastUsedFrame, that.lastUsedFrame);
|
||||
}
|
||||
RenderPassEntry(
|
||||
Uint64 hash,
|
||||
@@ -97,7 +112,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 colorAttachmentCount,
|
||||
Bool hasDepthStencilAttachment,
|
||||
VkSampleCountFlagBits sampleCount,
|
||||
IntVec2 extent, int subpass):
|
||||
IntVec2 extent, Uint32 layers):
|
||||
hash(hash),
|
||||
renderPass(renderpass),
|
||||
framebuffer(framebuffer),
|
||||
@@ -109,7 +124,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
hasDepthStencilAttachment(hasDepthStencilAttachment),
|
||||
sampleCount(sampleCount),
|
||||
extent(extent),
|
||||
subpass(subpass)
|
||||
layers(layers)
|
||||
{}
|
||||
|
||||
~RenderPassEntry() {
|
||||
@@ -148,24 +163,61 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
class VkRenderPassManager {
|
||||
public:
|
||||
using HashType = Uint64;
|
||||
|
||||
// Notified once per OnPresent sweep with every aged-out entry's VkRenderPass
|
||||
// value: pipelines are hashed on the raw handle, and once destroyed the value
|
||||
// may be recycled for an incompatible pass, so dependent caches must purge
|
||||
// everything keyed on them before any new pass can be created (the sweep and
|
||||
// the notification run back-to-back with no creation in between; observers
|
||||
// compare the values, never dereference them). Batched so a mass-idle cohort
|
||||
// (shader-pack switch, dimension exit) costs the observer one pipeline-cache
|
||||
// scan, not one per dying pass. The wholesale paths
|
||||
// (Shutdown/RecreateSwapchain) do not notify - their callers already drop
|
||||
// every pipeline outright.
|
||||
class IEvictionObserver {
|
||||
public:
|
||||
virtual ~IEvictionObserver() = default;
|
||||
virtual void OnRenderPassesDestroyed(const Vector<VkRenderPass>& renderPasses) = 0;
|
||||
};
|
||||
|
||||
VkRenderPassManager(VkDevice device,
|
||||
VkPhysicalDevice physicalDevice, VmaAllocator allocator, const VulkanRendererConfig& config,
|
||||
VkClearManager& clearManager, VkTextureManager& textureManager, SwapchainObject& swapchainObject);
|
||||
~VkRenderPassManager();
|
||||
|
||||
// Observer may be null (no notifications). Not owned.
|
||||
void SetEvictionObserver(IEvictionObserver* observer) { m_evictionObserver = observer; }
|
||||
|
||||
Bool Initialize();
|
||||
void Shutdown();
|
||||
|
||||
HashType ComputeHash(
|
||||
const MG_State::GLState::FramebufferObject& fbo,
|
||||
Uint32 swapchainImageIndex,
|
||||
Bool includePendingClear = true);
|
||||
RenderPassEntry& GetOrCreateRenderPass(const MG_State::GLState::FramebufferObject& fbo, Uint32 swapchainImageIndex);
|
||||
Bool includePendingClear = true,
|
||||
Bool includeDefaultFboDepthStencil = true);
|
||||
// drawUsesDepthStencil: whether the operation about to run inside the pass
|
||||
// reads or writes the depth/stencil buffer (depth test or stencil test
|
||||
// enabled, or a depth/stencil clear). Only consulted for the DEFAULT
|
||||
// framebuffer: EGL undefines its ancillary buffers at every swap, so a
|
||||
// default-FBO pass whose draws provably never touch depth/stencil is
|
||||
// created WITHOUT the depth attachment - on a tiler that skips the whole
|
||||
// depth tile load AND store. The flavor only escalates: once a pass with
|
||||
// depth is active, later depth-less draws keep using it, and a depth-using
|
||||
// draw against a depth-less active pass resolves to a new (incompatible)
|
||||
// entry, which the caller's compatibility check turns into a pass split;
|
||||
// the new pass's depth loads DONT_CARE (content was undefined all along).
|
||||
RenderPassEntry& GetOrCreateRenderPass(const MG_State::GLState::FramebufferObject& fbo,
|
||||
Uint32 swapchainImageIndex,
|
||||
Bool drawUsesDepthStencil = true);
|
||||
void QueueRenderbufferClear(GLbitfield mask, const ClearFramebufferPayload& clearPayload,
|
||||
const MG_State::GLState::FramebufferObject& drawFbo);
|
||||
void QueueRenderbufferClear(const ClearAttachmentPayload& clearPayload,
|
||||
const MG_State::GLState::FramebufferAttachmentObject& attachment);
|
||||
void PopPendingRenderbufferClear(MG_State::GLState::RenderbufferObject* renderbuffer);
|
||||
// Frame boundary hook: ages the render-pass cache and evicts long-unused
|
||||
// entries (their command buffers retired many frames ago).
|
||||
void OnPresent();
|
||||
static Bool BeginRenderPass(VkCommandBuffer commandBuffer, RenderPassEntry& renderPassEntry);
|
||||
static Bool EndRenderPass(VkCommandBuffer commandBuffer);
|
||||
static ActiveRenderPassInfo* GetActiveRenderPass();
|
||||
@@ -178,12 +230,22 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkTextureManager& m_textureManager;
|
||||
SwapchainObject& m_swapchainObject;
|
||||
UnorderedMap<Uint64, RenderPassEntry> m_renderPasses;
|
||||
// Monotonic frame counter (bumped in OnPresent) for render-pass cache aging.
|
||||
Uint64 m_frameCounter = 0;
|
||||
IEvictionObserver* m_evictionObserver = nullptr;
|
||||
|
||||
// Bumped whenever a renderbuffer VkImage is (re)created; together with the texture
|
||||
// manager's image epoch this invalidates the render-pass fast path on any attachment
|
||||
// image recreation.
|
||||
Uint64 m_renderbufferImageEpoch = 1;
|
||||
|
||||
public:
|
||||
// Bumped whenever a renderbuffer backing is (re)created; consecutive-draw
|
||||
// snapshots include it so an attachment respecify forces a re-resolve.
|
||||
Uint64 GetRenderbufferImageEpoch() const { return m_renderbufferImageEpoch; }
|
||||
|
||||
private:
|
||||
|
||||
// Per-draw fast-path memo for GetOrCreateRenderPass (dirty-flag state tracking): when the
|
||||
// framebuffer state is provably unchanged since the last resolution, the active render pass
|
||||
// is reused WITHOUT recomputing the expensive per-draw hash. Invalidated by FBO switch /
|
||||
@@ -196,12 +258,26 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint64 m_rpFastTexEpoch = 0;
|
||||
Uint64 m_rpFastRbEpoch = 0;
|
||||
Uint64 m_rpFastRenderPassHash = 0;
|
||||
// Whether the memoized entry carries a depth/stencil attachment; a
|
||||
// default-FBO resolution whose effective depth request differs must
|
||||
// miss the memo (the depth-less/depth-full flavors hash differently).
|
||||
Bool m_rpFastHadDepthStencil = false;
|
||||
|
||||
public:
|
||||
struct RenderbufferResource {
|
||||
// deadSinceFrame sentinel: the owning weak reference has not been observed
|
||||
// expired. Dead resources age past every in-flight frame before Destroy
|
||||
// (see CollectRenderbufferGarbage); the GPU may still reference the image
|
||||
// for frames-in-flight frames after the GL object dies.
|
||||
static constexpr Uint64 kNeverObservedDead = UINT64_MAX;
|
||||
|
||||
WeakPtr<MG_State::GLState::RenderbufferObject> renderbuffer;
|
||||
VkImage image = VK_NULL_HANDLE;
|
||||
VmaAllocation allocation = nullptr;
|
||||
VkImageView view = VK_NULL_HANDLE;
|
||||
// UNORM reinterpretation of an sRGB image, used as the attachment view while
|
||||
// GL_FRAMEBUFFER_SRGB is disabled (raw writes). Null for non-sRGB formats.
|
||||
VkImageView unormTwinView = VK_NULL_HANDLE;
|
||||
VkImageLayout layout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
VkFormat format = VK_FORMAT_UNDEFINED;
|
||||
VkImageAspectFlags aspect = VK_IMAGE_ASPECT_NONE;
|
||||
@@ -209,25 +285,71 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkSampleCountFlagBits sampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
TextureInternalFormat internalFormat = TextureInternalFormat::Unknown;
|
||||
Int samples = 0;
|
||||
// m_frameCounter value at which the weak reference was first seen expired.
|
||||
Uint64 deadSinceFrame = kNeverObservedDead;
|
||||
|
||||
void Destroy(VkDevice device, VmaAllocator allocator);
|
||||
};
|
||||
|
||||
// Public so the renderer's blit/copy/readback bindings can source renderbuffer
|
||||
// attachments the same way texture attachments go through the texture manager.
|
||||
RenderbufferResource* GetOrCreateRenderbufferResource(
|
||||
const SharedPtr<MG_State::GLState::RenderbufferObject>& renderbuffer);
|
||||
Bool GetPendingRenderbufferClear(MG_State::GLState::RenderbufferObject* renderbuffer,
|
||||
ClearAttachmentPayload& outPayload) const;
|
||||
|
||||
private:
|
||||
struct PendingRenderbufferClear {
|
||||
WeakPtr<MG_State::GLState::RenderbufferObject> renderbuffer;
|
||||
ClearAttachmentPayload payload{};
|
||||
};
|
||||
|
||||
UnorderedMap<MG_State::GLState::RenderbufferObject*, RenderbufferResource> m_renderbufferResources;
|
||||
// A superseded renderbuffer backing (glRenderbufferStorage respecify) parked
|
||||
// until enough frame boundaries have passed that no in-flight command buffer
|
||||
// can still reference it; destroyed in OnPresent (see RetireAgeFrames).
|
||||
struct DeferredRenderbufferRelease {
|
||||
VkImage image = VK_NULL_HANDLE;
|
||||
VmaAllocation allocation = nullptr;
|
||||
VkImageView view = VK_NULL_HANDLE;
|
||||
VkImageView unormTwinView = VK_NULL_HANDLE;
|
||||
Uint64 deferredAtFrame = 0;
|
||||
};
|
||||
|
||||
// Node-based std::unordered_map, deliberately not FastSTL's open-addressing UnorderedMap:
|
||||
// callers cache a RenderbufferResource* - or a bare &resource->layout - and then make further
|
||||
// calls that touch this map. BlitFramebuffer is the one that bit: it resolves the source and
|
||||
// destination colour bindings (ResolveColorBlitBinding caches &rbResource->layout), then
|
||||
// materializes the source's pending clear, which looks that same resource up again. FastSTL's
|
||||
// operator[] runs its load-factor check before find_key and reallocates the whole bucket array
|
||||
// when occupancy crosses it, so even a plain lookup relocates every element; erase only
|
||||
// tombstones and never decrements the occupancy, so the doubling keeps firing. After a
|
||||
// relocation the cached pointer names freed storage still holding the pre-clear
|
||||
// VK_IMAGE_LAYOUT_UNDEFINED, and BlitFramebuffer bails out at "source image layout is
|
||||
// undefined", silently dropping the blit - renderbuffers_storage_multisample read back zero
|
||||
// instead of the clear colour on exactly the iterations that grew the table.
|
||||
//
|
||||
// Reordering the materialize ahead of the resolves - the fix ReadPixels got - does not cover
|
||||
// this: the destination resolve still runs after the source pointer is taken. The depth blit,
|
||||
// GetOrCreateRenderPass's depthRenderbufferResource and ReadDepthStencilPixels cache the same
|
||||
// kind of pointer, so the invariant belongs in the container rather than in a per-call-site
|
||||
// ordering rule. m_textureResources is node-based for the same reason. This buys stability
|
||||
// across rehash and insert only - erase still invalidates the erased element, which is safe
|
||||
// here because a renderbuffer that is an FBO attachment is held alive by that attachment.
|
||||
std::unordered_map<MG_State::GLState::RenderbufferObject*, RenderbufferResource> m_renderbufferResources;
|
||||
UnorderedMap<MG_State::GLState::RenderbufferObject*, PendingRenderbufferClear> m_pendingRenderbufferClears;
|
||||
Vector<DeferredRenderbufferRelease> m_deferredRenderbufferReleases;
|
||||
// Supported sample counts per attachment format, so per-draw resource lookups
|
||||
// do not repeat vkGetPhysicalDeviceImageFormatProperties.
|
||||
UnorderedMap<VkFormat, VkSampleCountFlags> m_attachmentSampleCountsByFormat;
|
||||
|
||||
RenderbufferResource* GetOrCreateRenderbufferResource(
|
||||
const SharedPtr<MG_State::GLState::RenderbufferObject>& renderbuffer);
|
||||
Bool GetPendingRenderbufferClear(MG_State::GLState::RenderbufferObject* renderbuffer,
|
||||
ClearAttachmentPayload& outPayload) const;
|
||||
Bool HasPendingRenderbufferClear(
|
||||
const MG_State::GLState::FramebufferAttachmentObject& attachment) const;
|
||||
void CollectRenderbufferGarbage();
|
||||
// Frame-boundary margin after which a resource last referenced by a retired
|
||||
// GL object (or superseded backing) is provably past every in-flight frame.
|
||||
Uint64 RetireAgeFrames() const;
|
||||
void DeferRenderbufferBackingRelease(RenderbufferResource& resource);
|
||||
void CollectDeferredRenderbufferReleases(Bool destroyAll);
|
||||
|
||||
static inline XXH64_state_t* m_hashState = XXH64_createState();
|
||||
static inline ActiveRenderPassInfo s_activeRenderPass{};
|
||||
|
||||
@@ -51,6 +51,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Float ResolveEffectiveMinLod(const MG_State::GLState::SamplerObject& sampler, Float effectiveMaxLod) {
|
||||
return std::min(sampler.GetMinLod(), effectiveMaxLod);
|
||||
}
|
||||
|
||||
// A single-level view can only ever deliver the base level, but the LOD clamp must not be
|
||||
// collapsed to exactly 0: both GL and Vulkan pick magFilter over minFilter from the
|
||||
// *clamped* lambda, so maxLod = 0 would make every fragment magnify and quietly retire the
|
||||
// min filter. 0.25 is the value VkSamplerCreateInfo's own note prescribes for emulating
|
||||
// GL's non-mipmapped minification - large enough for lambda to stay positive, small enough
|
||||
// that a NEAREST mip mode still rounds down to level 0. Clamped rather than assigned, so a
|
||||
// texture whose GL_TEXTURE_MAX_LOD really is 0 keeps magnifying as GL says it must.
|
||||
Float ResolveSingleLevelMaxLod(const MG_State::GLState::SamplerObject& sampler, Bool singleLevelView) {
|
||||
const Float maxLod = ResolveEffectiveMaxLod(sampler);
|
||||
return singleLevelView ? std::min(maxLod, 0.25f) : maxLod;
|
||||
}
|
||||
} // namespace
|
||||
|
||||
Bool VkSamplerManager::Initialize(const InitInfo& initInfo) {
|
||||
@@ -58,11 +70,26 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
m_device = initInfo.device;
|
||||
m_config = initInfo.config;
|
||||
m_samplerAnisotropySupported = initInfo.samplerAnisotropySupported;
|
||||
m_maxSamplerAnisotropy = std::max(initInfo.maxSamplerAnisotropy, 1.0f);
|
||||
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE && m_config != nullptr,
|
||||
"VkSamplerManager::Initialize failed: invalid initialization info");
|
||||
return true;
|
||||
}
|
||||
|
||||
Float VkSamplerManager::ResolveEffectiveMaxAnisotropy(const MG_State::GLState::SamplerObject& sampler,
|
||||
Bool forceNearestFiltering) const {
|
||||
if (!m_samplerAnisotropySupported) return 1.0f;
|
||||
if (forceNearestFiltering) return 1.0f;
|
||||
// VUID-VkSamplerCreateInfo-anisotropyEnable-01071/01072: anisotropy requires both filters to
|
||||
// be LINEAR and the value to sit within [1, limits.maxSamplerAnisotropy].
|
||||
if (sampler.GetMinFilter() != SamplerFilterMode::Linear ||
|
||||
sampler.GetMagFilter() != SamplerFilterMode::Linear) {
|
||||
return 1.0f;
|
||||
}
|
||||
return std::clamp(sampler.GetMaxAnisotropy(), 1.0f, m_maxSamplerAnisotropy);
|
||||
}
|
||||
|
||||
void VkSamplerManager::Shutdown() {
|
||||
for (auto& [_, sampler] : m_samplers) {
|
||||
if (m_device != VK_NULL_HANDLE && sampler.handle != VK_NULL_HANDLE) {
|
||||
@@ -74,13 +101,44 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
|
||||
m_device = VK_NULL_HANDLE;
|
||||
m_config = nullptr;
|
||||
m_frameBoundaryCounter = 0;
|
||||
}
|
||||
|
||||
void VkSamplerManager::OnFrameBoundary() {
|
||||
++m_frameBoundaryCounter;
|
||||
|
||||
// Sweep occasionally; destroy samplers whose last use is far past every
|
||||
// in-flight frame. Destroy and erase must stay atomic, or Shutdown would
|
||||
// double-free the handle; an evicted key that recurs simply re-creates
|
||||
// its sampler on the next miss.
|
||||
constexpr Uint64 kSweepInterval = 256;
|
||||
constexpr Uint64 kRetireAgeBoundaries = 1024;
|
||||
if ((m_frameBoundaryCounter % kSweepInterval) != 0) {
|
||||
return;
|
||||
}
|
||||
|
||||
for (auto it = m_samplers.begin(); it != m_samplers.end();) {
|
||||
auto& entry = it->second;
|
||||
if (m_frameBoundaryCounter - entry.lastUsedFrameBoundary > kRetireAgeBoundaries) {
|
||||
if (m_device != VK_NULL_HANDLE && entry.handle != VK_NULL_HANDLE) {
|
||||
vkDestroySampler(m_device, entry.handle, nullptr);
|
||||
}
|
||||
it = m_samplers.erase(it);
|
||||
} else {
|
||||
++it;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
Uint64 VkSamplerManager::BuildSamplerKey(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture) const {
|
||||
const MG_State::GLState::ITextureObject& texture,
|
||||
Bool forceNearestFiltering, Bool singleLevelView) const {
|
||||
MOBILEGL_ASSERT(m_config != nullptr, "VkSamplerManager::BuildSamplerKey: m_config is null");
|
||||
XXHASH_VERIFY(XXH64_reset(m_hashState, m_config->CacheVersion));
|
||||
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &forceNearestFiltering, sizeof(forceNearestFiltering)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &singleLevelView, sizeof(singleLevelView)));
|
||||
|
||||
const auto minFilter = sampler.GetMinFilter();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &minFilter, sizeof(minFilter)));
|
||||
const auto magFilter = sampler.GetMagFilter();
|
||||
@@ -93,15 +151,20 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &wrapT, sizeof(wrapT)));
|
||||
const auto wrapR = sampler.GetWrapR();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &wrapR, sizeof(wrapR)));
|
||||
const auto maxLod = ResolveEffectiveMaxLod(sampler);
|
||||
const auto maxLod = ResolveSingleLevelMaxLod(sampler, singleLevelView);
|
||||
const auto minLod = ResolveEffectiveMinLod(sampler, maxLod);
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &minLod, sizeof(minLod)));
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &maxLod, sizeof(maxLod)));
|
||||
const auto lodBias = sampler.GetLodBias();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &lodBias, sizeof(lodBias)));
|
||||
// The RESOLVED value, not the GL request: samplers that only differ in an anisotropy Vulkan
|
||||
// will not apply (NEAREST filtering, or requests past the device limit) must still share one
|
||||
// VkSampler, while two samplers that really do differ must not collide onto the first one's.
|
||||
const auto maxAnisotropy = ResolveEffectiveMaxAnisotropy(sampler, forceNearestFiltering);
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &maxAnisotropy, sizeof(maxAnisotropy)));
|
||||
const auto compareMode = sampler.GetCompareMode();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &compareMode, sizeof(compareMode)));
|
||||
const auto compareFunc = ResolveCompareFunc(sampler, texture);
|
||||
const auto compareFunc = sampler.GetSamplerCompareFunc();
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &compareFunc, sizeof(compareFunc)));
|
||||
const auto borderColor = ResolveVkBorderColor(sampler, texture);
|
||||
XXHASH_VERIFY(XXH64_update(m_hashState, &borderColor, sizeof(borderColor)));
|
||||
@@ -109,27 +172,44 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
|
||||
VkSampler VkSamplerManager::GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture) {
|
||||
const Uint64 key = BuildSamplerKey(sampler, texture);
|
||||
const MG_State::GLState::ITextureObject& texture,
|
||||
Bool forceNearestFiltering, Uint32 viewLevelCount) {
|
||||
// A view that exposes a single mip level has no second level to blend with, so GL's
|
||||
// *_MIPMAP_* minification filters degenerate to plain filtering on the base level -
|
||||
// sampling is unchanged by pinning the Vulkan sampler to NEAREST mip mode at LOD 0.
|
||||
// It is not cosmetic: MobileGL backs such a view with a fully allocated mip chain whose
|
||||
// tail is never written, and a LINEAR mip mode lets the texture unit issue the level+1
|
||||
// fetch anyway. On Adreno that fetch lands in uninitialized UBWC pages (or past the
|
||||
// allocation for a genuinely single-level image) and faults the GPU - the same failure
|
||||
// the default-framebuffer blit shader had to work around with an explicit-LOD sample.
|
||||
const Bool singleLevelView = viewLevelCount == 1;
|
||||
const Uint64 key = BuildSamplerKey(sampler, texture, forceNearestFiltering, singleLevelView);
|
||||
auto it = m_samplers.find(key);
|
||||
if (it != m_samplers.end()) {
|
||||
it->second.lastUsedFrameBoundary = m_frameBoundaryCounter;
|
||||
return it->second.handle;
|
||||
}
|
||||
|
||||
VkSamplerCreateInfo samplerInfo{};
|
||||
samplerInfo.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
|
||||
samplerInfo.magFilter = ToVkFilter(sampler.GetMagFilter());
|
||||
samplerInfo.minFilter = ToVkFilter(sampler.GetMinFilter());
|
||||
samplerInfo.mipmapMode = ToVkMipmapMode(sampler.GetMipmapMode());
|
||||
samplerInfo.magFilter = forceNearestFiltering ? VK_FILTER_NEAREST : ToVkFilter(sampler.GetMagFilter());
|
||||
samplerInfo.minFilter = forceNearestFiltering ? VK_FILTER_NEAREST : ToVkFilter(sampler.GetMinFilter());
|
||||
samplerInfo.mipmapMode = (forceNearestFiltering || singleLevelView)
|
||||
? VK_SAMPLER_MIPMAP_MODE_NEAREST
|
||||
: ToVkMipmapMode(sampler.GetMipmapMode());
|
||||
samplerInfo.addressModeU = ToVkAddressMode(sampler.GetWrapS());
|
||||
samplerInfo.addressModeV = ToVkAddressMode(sampler.GetWrapT());
|
||||
samplerInfo.addressModeW = ToVkAddressMode(sampler.GetWrapR());
|
||||
samplerInfo.mipLodBias = sampler.GetLodBias();
|
||||
samplerInfo.anisotropyEnable = VK_FALSE;
|
||||
samplerInfo.maxAnisotropy = 1.0f;
|
||||
// Must use the same resolver as BuildSamplerKey - a divergence would either collide two
|
||||
// different samplers or silently create duplicates.
|
||||
const Float maxAnisotropy = ResolveEffectiveMaxAnisotropy(sampler, forceNearestFiltering);
|
||||
samplerInfo.anisotropyEnable = maxAnisotropy > 1.0f ? VK_TRUE : VK_FALSE;
|
||||
samplerInfo.maxAnisotropy = maxAnisotropy;
|
||||
samplerInfo.compareEnable = sampler.GetCompareMode() == SamplerCompareMode::CompareToTexture ? VK_TRUE : VK_FALSE;
|
||||
samplerInfo.compareOp = ToVkCompareOp(ResolveCompareFunc(sampler, texture));
|
||||
samplerInfo.maxLod = ResolveEffectiveMaxLod(sampler);
|
||||
samplerInfo.compareOp = ToVkCompareOp(sampler.GetSamplerCompareFunc());
|
||||
// Must match BuildSamplerKey's resolution exactly.
|
||||
samplerInfo.maxLod = ResolveSingleLevelMaxLod(sampler, singleLevelView);
|
||||
samplerInfo.minLod = ResolveEffectiveMinLod(sampler, samplerInfo.maxLod);
|
||||
samplerInfo.borderColor = ResolveVkBorderColor(sampler, texture);
|
||||
samplerInfo.unnormalizedCoordinates = VK_FALSE;
|
||||
@@ -141,6 +221,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
entry.handle = vkSampler;
|
||||
entry.externalIndex = sampler.GetExternalIndex();
|
||||
entry.version = sampler.GetVersion();
|
||||
entry.lastUsedFrameBoundary = m_frameBoundaryCounter;
|
||||
m_samplers[key] = entry;
|
||||
return vkSampler;
|
||||
}
|
||||
@@ -200,24 +281,15 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
}
|
||||
|
||||
SamplerCompareFunc VkSamplerManager::ResolveCompareFunc(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture) {
|
||||
const auto compareFunc = sampler.GetSamplerCompareFunc();
|
||||
if (sampler.GetCompareMode() == SamplerCompareMode::CompareToTexture &&
|
||||
IsDepthTextureFormat(texture.GetFormat()) && compareFunc == SamplerCompareFunc::Always) {
|
||||
return SamplerCompareFunc::LessEqual;
|
||||
}
|
||||
|
||||
return compareFunc;
|
||||
}
|
||||
|
||||
VkBorderColor VkSamplerManager::ResolveVkBorderColor(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture) {
|
||||
if (!UsesBorderColor(sampler)) {
|
||||
return VK_BORDER_COLOR_FLOAT_TRANSPARENT_BLACK;
|
||||
}
|
||||
|
||||
const auto& borderColor = texture.GetBorderColor();
|
||||
// Border colour is sampler state: a bound sampler object supplies its own, and a texture
|
||||
// with none reaches the very same value through the sampler object it owns.
|
||||
const auto& borderColor = sampler.GetBorderColor();
|
||||
const Bool isDepthTexture = IsDepthTextureFormat(texture.GetFormat());
|
||||
|
||||
if (isDepthTexture) {
|
||||
|
||||
@@ -24,35 +24,67 @@ public:
|
||||
struct InitInfo {
|
||||
VkDevice device = VK_NULL_HANDLE;
|
||||
const VulkanRendererConfig* config = nullptr;
|
||||
// The samplerAnisotropy device feature was requested and granted at vkCreateDevice.
|
||||
Bool samplerAnisotropySupported = false;
|
||||
// VkPhysicalDeviceLimits::maxSamplerAnisotropy.
|
||||
Float maxSamplerAnisotropy = 1.0f;
|
||||
};
|
||||
|
||||
Bool Initialize(const InitInfo& initInfo);
|
||||
void Shutdown();
|
||||
|
||||
// viewLevelCount is the mip-level count of the image view this sampler will be paired
|
||||
// with; 0 means "unknown, do not narrow". See GetOrCreateSampler for why it matters.
|
||||
VkSampler GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture);
|
||||
const MG_State::GLState::ITextureObject& texture,
|
||||
Bool forceNearestFiltering = false,
|
||||
Uint32 viewLevelCount = 0);
|
||||
// Frame boundary hook: ages the sampler cache and destroys samplers not used
|
||||
// for many frames. The key hashes continuous float state (lodBias, LOD clamps,
|
||||
// anisotropy), so an app animating those would otherwise mint an unbounded
|
||||
// stream of never-destroyed VkSamplers and eventually exhaust the device's
|
||||
// maxSamplerAllocationCount. A sampler idle for over a thousand frame
|
||||
// boundaries cannot be referenced by any in-flight command buffer (frames in
|
||||
// flight are single digits), and every descriptor set the GPU consumes is
|
||||
// written that same frame with live handles (the per-binding resolve memo and
|
||||
// descriptor-set reuse are both frame-reset), so destruction here needs no
|
||||
// fence wait. Self-gated: one counter bump and compare except on sweep
|
||||
// boundaries.
|
||||
void OnFrameBoundary();
|
||||
|
||||
private:
|
||||
struct SamplerCacheEntry {
|
||||
VkSampler handle = VK_NULL_HANDLE;
|
||||
Uint externalIndex = 0;
|
||||
Uint16 version = 0;
|
||||
// Frame boundary of the last cache hit; entries idle past the
|
||||
// OnFrameBoundary retirement age have their VkSampler destroyed.
|
||||
Uint64 lastUsedFrameBoundary = 0;
|
||||
};
|
||||
|
||||
Uint64 BuildSamplerKey(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture) const;
|
||||
const MG_State::GLState::ITextureObject& texture,
|
||||
Bool forceNearestFiltering, Bool singleLevelView) const;
|
||||
static VkFilter ToVkFilter(SamplerFilterMode mode);
|
||||
static VkSamplerMipmapMode ToVkMipmapMode(SamplerMipmapMode mode);
|
||||
static VkSamplerAddressMode ToVkAddressMode(SamplerWrapMode mode);
|
||||
static VkCompareOp ToVkCompareOp(SamplerCompareFunc func);
|
||||
static SamplerCompareFunc ResolveCompareFunc(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture);
|
||||
static VkBorderColor ResolveVkBorderColor(const MG_State::GLState::SamplerObject& sampler,
|
||||
const MG_State::GLState::ITextureObject& texture);
|
||||
// The anisotropy Vulkan will actually apply: 1.0 (i.e. disabled) unless the feature is on and
|
||||
// the sampler filters linearly both ways, otherwise the GL request clamped to the device limit.
|
||||
// GL happily carries GL_TEXTURE_MAX_ANISOTROPY on a NEAREST sampler (Blaze3D's blocks do exactly
|
||||
// that) while Vulkan forbids anisotropyEnable there, so the GL value must never be forwarded raw.
|
||||
Float ResolveEffectiveMaxAnisotropy(const MG_State::GLState::SamplerObject& sampler,
|
||||
Bool forceNearestFiltering) const;
|
||||
|
||||
VkDevice m_device = VK_NULL_HANDLE;
|
||||
const VulkanRendererConfig* m_config = nullptr;
|
||||
Bool m_samplerAnisotropySupported = false;
|
||||
Float m_maxSamplerAnisotropy = 1.0f;
|
||||
UnorderedMap<Uint64, SamplerCacheEntry> m_samplers;
|
||||
// Monotonic frame-boundary counter (bumped in OnFrameBoundary) for cache aging.
|
||||
Uint64 m_frameBoundaryCounter = 0;
|
||||
static inline XXH64_state_t* m_hashState = XXH64_createState();
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -13,18 +13,24 @@
|
||||
#include <MG_State/GLState/TextureState/TextureObject.h>
|
||||
#include <vk_mem_alloc.h>
|
||||
#include <unordered_map>
|
||||
#include <unordered_set>
|
||||
|
||||
namespace MobileGL::MG_State::GLState {
|
||||
class ITextureObject;
|
||||
}
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
enum class SamplerNumericDomain : Uint8;
|
||||
|
||||
class VkTextureManager {
|
||||
public:
|
||||
// Monotonic epoch bumped whenever a texture VkImage is (re)created. The render-pass
|
||||
// manager keys its per-draw fast path on this so an attachment's image recreation
|
||||
// invalidates the cached render pass (dirty-flag tracking; portable to Vulkan 1.1).
|
||||
Uint64 GetTextureImageEpoch() const { return m_textureImageEpoch; }
|
||||
// Bumped whenever any tracked texture resource is erased; cached
|
||||
// TextureResource pointers are valid only while this is unchanged.
|
||||
Uint64 GetResourceEraseEpoch() const { return m_resourceEraseEpoch; }
|
||||
|
||||
struct TextureIdentity {
|
||||
MG_State::GLState::ITextureObject* texture = nullptr;
|
||||
@@ -50,6 +56,20 @@ public:
|
||||
VkCommandPool commandPool = VK_NULL_HANDLE;
|
||||
VkQueue graphicsQueue = VK_NULL_HANDLE;
|
||||
Uint32 frameCount = 0;
|
||||
// VK_KHR_image_format_list is enabled: MUTABLE_FORMAT images can name the exact set of
|
||||
// formats they will be viewed as, which is what lets a tiler keep them compressed.
|
||||
Bool imageFormatListSupported = false;
|
||||
// Union of shader stages sampled-read barriers may name on this device; the renderer
|
||||
// builds it from the enabled features because geometry/tessellation stage bits are
|
||||
// invalid in a barrier when their feature is off.
|
||||
VkPipelineStageFlags sampledReadStageMask = VK_PIPELINE_STAGE_VERTEX_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_COMPUTE_SHADER_BIT;
|
||||
// Family of `graphicsQueue`; the manager creates its own command pool
|
||||
// on it for the recycled upload-batch command buffers, so their parked
|
||||
// allocations never sit in (and fragment) the renderer's shared pool
|
||||
// that frame command buffers churn through every frame.
|
||||
Uint32 graphicsQueueFamilyIndex = 0;
|
||||
};
|
||||
|
||||
struct TextureResource {
|
||||
@@ -58,12 +78,16 @@ public:
|
||||
Uint32 baseArrayLayer = 0;
|
||||
Uint32 layerCount = 1;
|
||||
VkImageViewType viewType = VK_IMAGE_VIEW_TYPE_2D;
|
||||
// May differ from the image format: sRGB images attach through their UNORM
|
||||
// twin while GL_FRAMEBUFFER_SRGB is disabled.
|
||||
VkFormat viewFormat = VK_FORMAT_UNDEFINED;
|
||||
|
||||
Bool operator==(const AttachmentViewKey& other) const {
|
||||
return mipLevel == other.mipLevel &&
|
||||
baseArrayLayer == other.baseArrayLayer &&
|
||||
layerCount == other.layerCount &&
|
||||
viewType == other.viewType;
|
||||
viewType == other.viewType &&
|
||||
viewFormat == other.viewFormat;
|
||||
}
|
||||
};
|
||||
|
||||
@@ -74,6 +98,63 @@ public:
|
||||
hash ^= std::hash<Uint32>{}(key.layerCount) + 0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.viewType)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.viewFormat)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
return hash;
|
||||
}
|
||||
};
|
||||
|
||||
struct StorageImageViewKey {
|
||||
Uint32 mipLevel = 0;
|
||||
Uint32 baseArrayLayer = 0;
|
||||
Uint32 layerCount = 1;
|
||||
VkImageViewType viewType = VK_IMAGE_VIEW_TYPE_2D;
|
||||
VkFormat format = VK_FORMAT_UNDEFINED;
|
||||
|
||||
Bool operator==(const StorageImageViewKey& other) const {
|
||||
return mipLevel == other.mipLevel &&
|
||||
baseArrayLayer == other.baseArrayLayer &&
|
||||
layerCount == other.layerCount &&
|
||||
viewType == other.viewType &&
|
||||
format == other.format;
|
||||
}
|
||||
};
|
||||
|
||||
struct SampledImageViewKey {
|
||||
Uint32 baseMipLevel = 0;
|
||||
Uint32 levelCount = 1;
|
||||
VkImageViewType viewType = VK_IMAGE_VIEW_TYPE_2D;
|
||||
VkFormat format = VK_FORMAT_UNDEFINED;
|
||||
|
||||
Bool operator==(const SampledImageViewKey& other) const {
|
||||
return baseMipLevel == other.baseMipLevel &&
|
||||
levelCount == other.levelCount &&
|
||||
viewType == other.viewType &&
|
||||
format == other.format;
|
||||
}
|
||||
};
|
||||
|
||||
struct SampledImageViewKeyHash {
|
||||
SizeT operator()(const SampledImageViewKey& key) const {
|
||||
SizeT hash = std::hash<Uint32>{}(key.baseMipLevel);
|
||||
hash ^= std::hash<Uint32>{}(key.levelCount) + 0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.viewType)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.format)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
return hash;
|
||||
}
|
||||
};
|
||||
|
||||
struct StorageImageViewKeyHash {
|
||||
SizeT operator()(const StorageImageViewKey& key) const {
|
||||
SizeT hash = std::hash<Uint32>{}(key.mipLevel);
|
||||
hash ^= std::hash<Uint32>{}(key.baseArrayLayer) + 0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(key.layerCount) + 0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.viewType)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
hash ^= std::hash<Uint32>{}(static_cast<Uint32>(key.format)) +
|
||||
0x9e3779b9u + (hash << 6) + (hash >> 2);
|
||||
return hash;
|
||||
}
|
||||
};
|
||||
@@ -85,6 +166,8 @@ public:
|
||||
Vector<VkImageView> perMipViews;
|
||||
Vector<VkImageView> perMipSampledViews;
|
||||
UnorderedMap<AttachmentViewKey, VkImageView, AttachmentViewKeyHash> attachmentViews;
|
||||
UnorderedMap<SampledImageViewKey, VkImageView, SampledImageViewKeyHash> alternateSampledViews;
|
||||
UnorderedMap<StorageImageViewKey, VkImageView, StorageImageViewKeyHash> storageImageViews;
|
||||
VkImageLayout layout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
VkExtent2D extent = {0, 0};
|
||||
Uint32 depth = 1;
|
||||
@@ -96,7 +179,26 @@ public:
|
||||
VkImageAspectFlags aspect = VK_IMAGE_ASPECT_NONE;
|
||||
VkImageViewType viewType = VK_IMAGE_VIEW_TYPE_2D;
|
||||
VkSampleCountFlagBits sampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
VkImageCreateFlags imageCreateFlags = 0;
|
||||
// Usage the live image was created with. STORAGE is only requested for textures that
|
||||
// have actually been bound to a GL image unit, because on Adreno a storage-capable
|
||||
// image loses UBWC bandwidth compression; a later image binding upgrades the usage
|
||||
// and recreates the image, so the resolved usage has to be part of the compatibility
|
||||
// check that decides whether the existing image can be kept.
|
||||
VkImageUsageFlags usageFlags = 0;
|
||||
// True once this image was (re)resolved while the texture was already marked as an
|
||||
// image-unit texture. Distinguishes "not upgraded yet" from "cannot be upgraded"
|
||||
// (a format whose optimalTilingFeatures lack STORAGE_IMAGE never gains the bit), so
|
||||
// NeedsStorageImagePreparation cannot ask for a recreate that will never happen.
|
||||
Bool storageUsageResolved = false;
|
||||
Uint16 syncedTextureParamsVersion = 0;
|
||||
// Recording generation (VkTextureManager::GetRecordingGeneration) of the last
|
||||
// command referencing this image that was recorded into the CURRENT frame
|
||||
// command buffer. An image untouched by the open recording may have its
|
||||
// out-of-pass work (deferred clears, sampled-layout transitions) recorded
|
||||
// into the frame's PRE command buffer - which executes strictly before the
|
||||
// frame's commands - instead of splitting the active render pass.
|
||||
Uint64 lastRecordingGeneration = 0;
|
||||
// Snapshot of ITextureObject::GetContentVersion() at the last successful sync;
|
||||
// lets SyncTexture skip the whole re-check/re-upload when content is unchanged.
|
||||
Uint64 syncedContentVersion = 0;
|
||||
@@ -115,6 +217,8 @@ public:
|
||||
std::swap(this->perMipViews, that.perMipViews);
|
||||
std::swap(this->perMipSampledViews, that.perMipSampledViews);
|
||||
std::swap(this->attachmentViews, that.attachmentViews);
|
||||
std::swap(this->alternateSampledViews, that.alternateSampledViews);
|
||||
std::swap(this->storageImageViews, that.storageImageViews);
|
||||
std::swap(this->layout, that.layout);
|
||||
std::swap(this->extent, that.extent);
|
||||
std::swap(this->depth, that.depth);
|
||||
@@ -126,7 +230,11 @@ public:
|
||||
std::swap(this->aspect, that.aspect);
|
||||
std::swap(this->viewType, that.viewType);
|
||||
std::swap(this->sampleCount, that.sampleCount);
|
||||
std::swap(this->imageCreateFlags, that.imageCreateFlags);
|
||||
std::swap(this->usageFlags, that.usageFlags);
|
||||
std::swap(this->storageUsageResolved, that.storageUsageResolved);
|
||||
std::swap(this->syncedTextureParamsVersion, that.syncedTextureParamsVersion);
|
||||
std::swap(this->lastRecordingGeneration, that.lastRecordingGeneration);
|
||||
std::swap(this->syncedContentVersion, that.syncedContentVersion);
|
||||
std::swap(this->syncedMipLevelCount, that.syncedMipLevelCount);
|
||||
}
|
||||
@@ -153,6 +261,16 @@ public:
|
||||
vkDestroyImageView(s_device, attachmentView, nullptr);
|
||||
}
|
||||
}
|
||||
for (const auto& [_, sampledView] : alternateSampledViews) {
|
||||
if (sampledView != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(s_device, sampledView, nullptr);
|
||||
}
|
||||
}
|
||||
for (const auto& [_, storageImageView] : storageImageViews) {
|
||||
if (storageImageView != VK_NULL_HANDLE) {
|
||||
vkDestroyImageView(s_device, storageImageView, nullptr);
|
||||
}
|
||||
}
|
||||
if (image != VK_NULL_HANDLE && allocation != nullptr) {
|
||||
vmaDestroyImage(s_allocator, image, allocation);
|
||||
}
|
||||
@@ -161,6 +279,8 @@ public:
|
||||
perMipViews.clear();
|
||||
perMipSampledViews.clear();
|
||||
attachmentViews.clear();
|
||||
alternateSampledViews.clear();
|
||||
storageImageViews.clear();
|
||||
image = VK_NULL_HANDLE;
|
||||
allocation = nullptr;
|
||||
layout = VK_IMAGE_LAYOUT_UNDEFINED;
|
||||
@@ -174,6 +294,9 @@ public:
|
||||
aspect = VK_IMAGE_ASPECT_NONE;
|
||||
viewType = VK_IMAGE_VIEW_TYPE_2D;
|
||||
sampleCount = VK_SAMPLE_COUNT_1_BIT;
|
||||
imageCreateFlags = 0;
|
||||
usageFlags = 0;
|
||||
storageUsageResolved = false;
|
||||
syncedTextureParamsVersion = 0;
|
||||
syncedContentVersion = 0;
|
||||
syncedMipLevelCount = 0;
|
||||
@@ -190,6 +313,18 @@ public:
|
||||
Bool Initialize(const InitInfo& initInfo);
|
||||
void Shutdown();
|
||||
void BeginFrame(Uint32 frameIndex);
|
||||
// Submits the accumulated texture-upload batch (one command buffer, one
|
||||
// vkQueueSubmit, one pooled fence) if any uploads are pending. MUST run
|
||||
// before any other vkQueueSubmit on the shared graphics queue whose
|
||||
// commands may consume an image the batch writes - the frame command
|
||||
// buffer submit (mid-frame flush, readback, Present) and the
|
||||
// preserve-on-recreate copy are the existing callers. No-op when the
|
||||
// batch is empty.
|
||||
void FlushPendingUploads();
|
||||
// Drains every frame slot's deferred image/view releases. Only valid when
|
||||
// the caller has proven every queue submission complete; used by the
|
||||
// present-less frame-boundary drain.
|
||||
void CollectAllDeferredReleases();
|
||||
|
||||
TextureResource* SyncTextureAndGetDescriptor(
|
||||
MG_State::GLState::ITextureObject& texture);
|
||||
@@ -198,6 +333,9 @@ public:
|
||||
Uint32 baseArrayLayer, Uint32 layerCount,
|
||||
VkImageViewType viewType);
|
||||
VkImageView GetOrCreateSampledViewAtMipLevel(MG_State::GLState::ITextureObject& texture, Uint32 mipLevel);
|
||||
VkImageView GetOrCreateSampledImageView(MG_State::GLState::ITextureObject& texture, VkFormat format);
|
||||
VkImageView GetOrCreateStorageImageView(MG_State::GLState::ITextureObject& texture, Uint32 mipLevel,
|
||||
VkFormat format, Bool layered, Int32 layer);
|
||||
void UpdateTrackedImageLayout(MG_State::GLState::ITextureObject* texture, VkImageLayout newLayout);
|
||||
void UpdateTrackedImageLayoutAfterAttachmentWrite(VkCommandBuffer commandBuffer,
|
||||
MG_State::GLState::ITextureObject* texture,
|
||||
@@ -206,7 +344,45 @@ public:
|
||||
Bool TransitionTextureForSampling(VkCommandBuffer commandBuffer, MG_State::GLState::ITextureObject& texture);
|
||||
Bool TransitionTextureForStorageImage(VkCommandBuffer commandBuffer, MG_State::GLState::ITextureObject& texture);
|
||||
|
||||
// Recording-generation bookkeeping for the pre-pass command stream. The
|
||||
// generation advances every time the frame command buffer (re)begins
|
||||
// recording; a resource whose stamp does not match was not referenced by
|
||||
// any command in the open recording, so its out-of-pass work may safely
|
||||
// execute ahead of the whole recording (in the pre command buffer).
|
||||
void AdvanceRecordingGeneration() { ++m_recordingGeneration; }
|
||||
void StampResourceRecordingUse(TextureResource& resource) const {
|
||||
resource.lastRecordingGeneration = m_recordingGeneration;
|
||||
}
|
||||
// Map-lookup variant for callers that only hold the GL texture object.
|
||||
void StampTextureRecordingUse(MG_State::GLState::ITextureObject* texture);
|
||||
Bool WasTouchedThisRecording(const TextureResource& resource) const {
|
||||
return resource.lastRecordingGeneration == m_recordingGeneration;
|
||||
}
|
||||
// Records that this texture is bound to a GL image unit, so its image must carry
|
||||
// VK_IMAGE_USAGE_STORAGE_BIT. Must be called before NeedsStorageImagePreparation, and
|
||||
// therefore before the render pass is committed: an image that has to be upgraded is
|
||||
// recreated, which is illegal inside a render pass. Sticky for the texture's lifetime -
|
||||
// GL lets an image binding come and go, and re-creating the image every time it does
|
||||
// would cost far more than the compression it wins back.
|
||||
void MarkStorageImageTexture(MG_State::GLState::ITextureObject& texture);
|
||||
// True when this texture is marked but its live image predates the mark, i.e. the next sync
|
||||
// will recreate it with STORAGE usage and copy the old contents forward. Callers use this to
|
||||
// submit their pending recording first, so that copy cannot read pre-flush content.
|
||||
Bool NeedsStorageUsageUpgrade(MG_State::GLState::ITextureObject& texture) const;
|
||||
// The same ordering question for the other recreate-and-preserve trigger: true when this
|
||||
// texture's live image carries a shorter mip chain than a full one, so defining the missing
|
||||
// levels recreates it and copies the old contents forward.
|
||||
Bool NeedsMipChainGrowth(MG_State::GLState::ITextureObject& texture) const;
|
||||
// Non-mutating probe for the per-draw storage-image fast path: true when preparing this
|
||||
// texture as a storage image may need work that is illegal inside a render pass (resource
|
||||
// creation, dirty-content upload, or a layout transition to GENERAL). Unknown state reports
|
||||
// true - a false positive merely ends the render pass, a false negative would skip a barrier.
|
||||
Bool NeedsStorageImagePreparation(MG_State::GLState::ITextureObject& texture) const;
|
||||
|
||||
static VkImageAspectFlags ResolveSampledImageViewAspectMask(VkImageAspectFlags imageAspect);
|
||||
static VkFormat ResolveSampledImageViewFormat(VkFormat imageFormat, SamplerNumericDomain numericDomain);
|
||||
static Bool AreSampledImageViewFormatsCompatible(VkFormat imageFormat, VkFormat viewFormat);
|
||||
static Bool AreStorageImageViewFormatsCompatible(VkFormat imageFormat, VkFormat viewFormat);
|
||||
|
||||
static Bool TransitionImageLayout(VkCommandBuffer commandBuffer, VkImage image, VkImageLayout& trackedLayout,
|
||||
VkImageLayout newLayout, VkPipelineStageFlags srcStageMask,
|
||||
@@ -243,6 +419,9 @@ public:
|
||||
private:
|
||||
// Bumped in SyncTextureResource right after vmaCreateImage(texture). See GetTextureImageEpoch().
|
||||
Uint64 m_textureImageEpoch = 1;
|
||||
// See AdvanceRecordingGeneration. Starts above every resource's default
|
||||
// stamp of 0 so a fresh resource counts as untouched.
|
||||
Uint64 m_recordingGeneration = 1;
|
||||
|
||||
Bool SyncTexture(MG_State::GLState::ITextureObject &texture,
|
||||
TextureResource &outResource);
|
||||
@@ -255,7 +434,8 @@ private:
|
||||
VkImageViewType viewType, Uint32 baseMipLevel, Uint32 levelCount,
|
||||
Uint32 baseArrayLayer,
|
||||
Uint32 layerCount,
|
||||
const VkComponentMapping* components = nullptr) const;
|
||||
const VkComponentMapping* components = nullptr,
|
||||
VkImageUsageFlags viewUsage = 0) const;
|
||||
Bool UploadDirtyMipLevels(MG_State::GLState::TextureObjectMipmap &mipmapTexture,
|
||||
TextureUploadTarget uploadTarget,
|
||||
TextureResource &outResource);
|
||||
@@ -272,18 +452,31 @@ private:
|
||||
void DeferViewRelease(VkImageView view);
|
||||
void CollectDeferredReleases(Uint32 frameIndex);
|
||||
void DestroyDeferredReleases();
|
||||
// Frees the fence/command buffer/staging buffer of every in-flight texture
|
||||
// upload whose fence has signaled (submission order = completion order on
|
||||
// the single queue, so the scan stops at the first still-pending entry).
|
||||
// waitAll blocks on every entry - Shutdown's drain.
|
||||
void ReclaimCompletedUploads(Bool waitAll = false);
|
||||
static TextureIdentity MakeTextureIdentity(MG_State::GLState::ITextureObject* texture);
|
||||
void EraseTrackedTexture(const TextureIdentity& identity);
|
||||
void PruneStaleTextureAliases(MG_State::GLState::ITextureObject* texture);
|
||||
SizeT PruneDeadTextures();
|
||||
|
||||
VkDevice m_device = VK_NULL_HANDLE;
|
||||
VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
|
||||
VmaAllocator m_allocator = nullptr;
|
||||
VkCommandPool m_commandPool = VK_NULL_HANDLE;
|
||||
// Dedicated pool for the recycled upload-batch command buffers (see
|
||||
// InitInfo::graphicsQueueFamilyIndex).
|
||||
VkCommandPool m_uploadCommandPool = VK_NULL_HANDLE;
|
||||
VkQueue m_graphicsQueue = VK_NULL_HANDLE;
|
||||
Bool m_imageFormatListSupported = false;
|
||||
Uint32 m_currentFrameIndex = 0;
|
||||
|
||||
Uint8 m_gcCounter = 0;
|
||||
// Frame-boundary GC gate: counts BeginFrame calls, not draws, so texture churn
|
||||
// through non-draw paths (FBO clears, readbacks) still reaches the prune.
|
||||
Uint32 m_gcFrameCounter = 0;
|
||||
// Active only between BeginDrawSyncScope/EndDrawSyncScope; identities of
|
||||
// textures already fully synced in the current draw (small N -> flat scan).
|
||||
Bool m_drawSyncScopeActive = false;
|
||||
@@ -296,9 +489,92 @@ private:
|
||||
TextureResource* resource = nullptr;
|
||||
};
|
||||
Vector<DrawSyncedTexture> m_drawSyncedThisDraw;
|
||||
// Cross-draw sampled-texture memo: the same few textures (atlas, lightmap)
|
||||
// are resolved on every draw, so cache their resource pointers and skip the
|
||||
// alive/resource map lookups. Node-based std::unordered_map keeps the
|
||||
// pointees stable across inserts; erases bump m_resourceEraseEpoch, which
|
||||
// every memo entry must match. SyncTexture still runs on memo hits, so
|
||||
// content/param freshness is unaffected. A dead-then-reused texture address
|
||||
// cannot false-hit: the new object carries a new lifetime id.
|
||||
struct SyncedTextureMemoEntry {
|
||||
const MG_State::GLState::ITextureObject* texture = nullptr;
|
||||
Uint64 lifetimeId = 0;
|
||||
Uint64 eraseEpoch = 0;
|
||||
TextureResource* resource = nullptr;
|
||||
};
|
||||
static constexpr Uint32 kSyncedTextureMemoSize = 8;
|
||||
SyncedTextureMemoEntry m_syncedTextureMemo[kSyncedTextureMemoSize];
|
||||
Uint32 m_syncedTextureMemoNext = 0;
|
||||
Uint64 m_resourceEraseEpoch = 1;
|
||||
// Formats whose mutable-image probe failed on this device; their images are created
|
||||
// without MUTABLE_FORMAT_BIT so repeat syncs neither re-probe nor flag-mismatch.
|
||||
std::unordered_set<VkFormat> m_mutableFormatUnsupported;
|
||||
// Formats whose 3D images refused VK_IMAGE_CREATE_2D_ARRAY_COMPATIBLE_BIT. Per format+usage,
|
||||
// exactly like the mutable-format verdict above, so it is answered at image creation and
|
||||
// remembered rather than probed once globally.
|
||||
std::unordered_set<VkFormat> m_2dArrayCompatibleUnsupported;
|
||||
std::unordered_map<TextureIdentity, WeakPtr<MG_State::GLState::ITextureObject>, TextureIdentityHash> m_aliveObjects;
|
||||
std::unordered_map<TextureIdentity, TextureResource, TextureIdentityHash> m_textureResources;
|
||||
// Textures that have been bound to a GL image unit (see MarkStorageImageTexture).
|
||||
std::unordered_set<TextureIdentity, TextureIdentityHash> m_storageImageTextures;
|
||||
// Supported multisample counts per format, so repeat texture syncs do not
|
||||
// re-query vkGetPhysicalDeviceImageFormatProperties.
|
||||
std::unordered_map<VkFormat, VkSampleCountFlags> m_multisampleCountsByFormat;
|
||||
Vector<Vector<TextureResource>> m_deferredReleases;
|
||||
Vector<Vector<VkImageView>> m_deferredViewReleases;
|
||||
|
||||
// --- Batched upload machinery ---
|
||||
// Uploads within a frame are recorded into ONE shared command buffer and
|
||||
// submitted with ONE vkQueueSubmit at FlushPendingUploads (the renderer
|
||||
// flushes before every frame-command-buffer submit). Staging memory comes
|
||||
// from a pool of persistently-mapped, reusable blocks instead of a
|
||||
// vmaCreateBuffer per upload.
|
||||
struct UploadStagingBlock {
|
||||
VkBuffer buffer = VK_NULL_HANDLE;
|
||||
VmaAllocation allocation = nullptr;
|
||||
Uint8* mapped = nullptr; // persistently mapped for the block's lifetime
|
||||
VkDeviceSize capacity = 0;
|
||||
VkDeviceSize cursor = 0; // bump cursor while the block backs the open batch
|
||||
};
|
||||
// Opens the batch command buffer lazily (allocates/reuses + begins recording).
|
||||
VkCommandBuffer EnsureUploadBatchOpen();
|
||||
// Bump-allocates `size` staging bytes for the open batch, growing onto a
|
||||
// new/pooled block when the current one cannot fit. Returns the write
|
||||
// pointer; outBuffer/outBaseOffset locate the space for copy commands.
|
||||
Uint8* AcquireUploadStagingSpace(VkDeviceSize size, VkBuffer& outBuffer, VkDeviceSize& outBaseOffset);
|
||||
void RecycleUploadStagingBlock(UploadStagingBlock&& block);
|
||||
// Drops a recorded-but-unsubmitted batch on the floor. Shutdown only: the
|
||||
// device is being torn down, so the lost texel data is unobservable.
|
||||
void DiscardPendingUploadBatch();
|
||||
void DestroyUploadPools();
|
||||
|
||||
Vector<UploadStagingBlock> m_freeUploadStagingBlocks;
|
||||
VkDeviceSize m_freeUploadStagingBytes = 0;
|
||||
Vector<VkCommandBuffer> m_freeUploadCommandBuffers;
|
||||
Vector<VkFence> m_freeUploadFences;
|
||||
Bool m_uploadBatchOpen = false;
|
||||
VkCommandBuffer m_uploadBatchCommandBuffer = VK_NULL_HANDLE;
|
||||
// Blocks whose staging bytes the open batch's copies reference (last =
|
||||
// the block the bump cursor is currently allocating from).
|
||||
Vector<UploadStagingBlock> m_uploadBatchBlocks;
|
||||
// Images the open batch writes; consulted for the rare re-upload-after-
|
||||
// draw flush and by DeferResourceRelease (an unsubmitted command buffer
|
||||
// referencing a deferred-released image would escape every fence-based
|
||||
// destruction proof, so the batch is flushed before the image is parked).
|
||||
Vector<VkImage> m_uploadBatchImages;
|
||||
VkDeviceSize m_uploadBatchStagingBytes = 0;
|
||||
|
||||
// Texture uploads are submitted out-of-band but NOT waited on (waiting
|
||||
// behind the queue serialized the CPU against the previous frame's GPU
|
||||
// work every time an animated atlas re-uploaded). Each flushed batch's
|
||||
// transients are parked here and RECYCLED (fence reset to the fence pool,
|
||||
// command buffer reset to the CB pool, staging blocks back to the block
|
||||
// pool) once the batch fence signals.
|
||||
struct PendingUploadReclaim {
|
||||
VkFence fence = VK_NULL_HANDLE;
|
||||
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
|
||||
Vector<UploadStagingBlock> stagingBlocks;
|
||||
};
|
||||
Vector<PendingUploadReclaim> m_pendingUploadReclaims;
|
||||
};
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -51,6 +51,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Uint32 instanceCount = 1;
|
||||
Uint32 firstVertex = 0;
|
||||
Uint32 firstInstance = 0;
|
||||
// Indexed-draw metadata for bounding vertex-stream conversion. baseVertex is the
|
||||
// draw's base-vertex offset; indexRangeIsExactView is true only when the draw
|
||||
// fetches exactly the indices its IndexBufferView describes (direct DrawElements;
|
||||
// multi/indirect forms leave it false because the CPU cannot bound their ranges).
|
||||
Int32 baseVertex = 0;
|
||||
Bool indexRangeIsExactView = false;
|
||||
};
|
||||
|
||||
struct DrawIndexedCmdParam {
|
||||
@@ -70,6 +76,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
GLenum indexType = GL_UNSIGNED_SHORT;
|
||||
SizeT indexByteOffset = 0;
|
||||
SizeT indexByteSize = 0;
|
||||
// Interpret indexByteOffset as a raw client pointer even when an element
|
||||
// array buffer is bound (backend-synthesized index lists, e.g. the
|
||||
// GL_LINE_LOOP -> LINE_STRIP rewrite).
|
||||
Bool forceClientMemory = false;
|
||||
};
|
||||
|
||||
struct DrawIndexedCmd {
|
||||
@@ -108,7 +118,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
};
|
||||
|
||||
class VulkanRenderer : public IBufferCopyCommandProvider, public FrameContext::IRecordingObserver {
|
||||
class VulkanRenderer : public IBufferCopyCommandProvider,
|
||||
public FrameContext::IRecordingObserver,
|
||||
public VkRenderPassManager::IEvictionObserver,
|
||||
public ProgramFactory::IEvictionObserver {
|
||||
public:
|
||||
VulkanRenderer(NativeWindowType window, const VulkanRendererConfig& cfg = {});
|
||||
~VulkanRenderer();
|
||||
@@ -125,12 +138,42 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// recording, before any render pass.
|
||||
void OnFrameCommandRecordingBegan(VkCommandBuffer commandBuffer) override;
|
||||
|
||||
// VkRenderPassManager::IEvictionObserver: the render-pass aging sweep just
|
||||
// destroyed these VkRenderPasses; evict every graphics pipeline hashed on a
|
||||
// dying handle (they share its >1024-boundary idleness, so immediate
|
||||
// destruction is safe) and drop the last-pipeline memo if any went.
|
||||
void OnRenderPassesDestroyed(const Vector<VkRenderPass>& renderPasses) override;
|
||||
|
||||
// ProgramFactory::IEvictionObserver: an aged-out program entry was
|
||||
// destroyed; evict its compute pipeline and graphics pipelines (same
|
||||
// idleness guarantee - they are only bound through draws/dispatches that
|
||||
// stamp the program entry) and purge the descriptor-set cache entries
|
||||
// keyed by its now-recyclable VkDescriptorSetLayout handle.
|
||||
void OnProgramEvicted(ProgramFactory::HashType programHash,
|
||||
VkDescriptorSetLayout descriptorSetLayout) override;
|
||||
|
||||
Bool SetupDraw(FrameContext::FrameData& frame, GLenum mode, Flags<DrawSetupAspect> aspects,
|
||||
const DrawCmdParam& drawParams,
|
||||
const IndexBufferView* pIndexBufferView = nullptr);
|
||||
// ANGLE-style consecutive-draw fast path: SetupDraw snapshots the fully
|
||||
// resolved draw configuration; the next draw whose cheap version/identity
|
||||
// checks all match skips the resolution half (LOD probe, sampled-set
|
||||
// walk, render-pass and pipeline resolution) and jumps straight to the
|
||||
// per-draw tail. Returns false (leaving no side effects that the full
|
||||
// path cannot redo idempotently) whenever anything might have changed.
|
||||
Bool TrySetupDrawFastPath(FrameContext::FrameData& frame, GLenum mode, Flags<DrawSetupAspect> aspects,
|
||||
const DrawCmdParam& drawParams, const IndexBufferView* pIndexBufferView);
|
||||
void ClearAttachmentsOnActiveRenderPass(VkCommandBuffer commandBuffer,
|
||||
const RenderPassEntry& compatibleRenderPassEntry);
|
||||
|
||||
enum class ScissoredClearPrep {
|
||||
NotNeeded, // scissor covers the whole target — take the deferred whole-surface path instead
|
||||
NoOp, // nothing to clear (degenerate target or empty scissor rect)
|
||||
Ready, // a render pass is active; record vkCmdClearAttachments with the returned rect
|
||||
};
|
||||
ScissoredClearPrep PrepareScissoredClear(const MG_State::GLState::FramebufferObject& framebuffer,
|
||||
VkClearRect& outClearRect);
|
||||
|
||||
void Clear(GLbitfield mask);
|
||||
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
@@ -138,6 +181,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void ClearBufferiv(GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferfv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearNamedFramebufferiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferuiv(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
void ClearNamedFramebufferfi(const SharedPtr<MG_State::GLState::FramebufferObject>& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1,
|
||||
@@ -157,6 +204,30 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
GLsizei srcWidth, GLsizei srcHeight, GLsizei srcDepth);
|
||||
void GenerateMipmap(GLenum target);
|
||||
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels);
|
||||
// GL_DEPTH_COMPONENT / GL_DEPTH_STENCIL / GL_STENCIL_INDEX readback from the
|
||||
// read framebuffer's depth/stencil attachment (per-aspect buffer copies with
|
||||
// CPU repacking into the requested client layout).
|
||||
void ReadDepthStencilPixels(MG_State::GLState::FramebufferObject& readFbo, GLint x, GLint y, GLsizei width,
|
||||
GLsizei height, GLenum format, GLenum type, void* pixels);
|
||||
// Copy-and-repack core shared by depth-stencil ReadPixels and GetTexImage;
|
||||
// expects command recording to be active and any render pass already ended.
|
||||
void ReadDepthStencilImageToClient(VkImage image, VkFormat vkFormat, VkImageLayout* trackedLayout,
|
||||
VkImageAspectFlags imageAspect, Uint32 mipLevel, Uint32 baseArrayLayer,
|
||||
GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type,
|
||||
void* pixels);
|
||||
// Same-extent depth blit between images of different depth formats: host
|
||||
// round-trip with a per-texel re-encode (see BlitNamedFramebuffer).
|
||||
Bool BlitDepthAcrossFormats(FrameContext::FrameData& frame, VkImage srcImage, VkFormat srcFormat,
|
||||
VkImageLayout* srcTrackedLayout, Uint32 srcMipLevel, Uint32 srcBaseArrayLayer,
|
||||
VkImage dstImage, VkFormat dstFormat, VkImageLayout* dstTrackedLayout,
|
||||
Uint32 dstMipLevel, Uint32 dstBaseArrayLayer, GLint srcX, GLint srcY, GLint dstX,
|
||||
GLint dstY, GLint width, GLint height, VkImageLayout srcRestoreLayout,
|
||||
VkImageLayout dstRestoreLayout, Bool stencilAspect);
|
||||
static SizeT GetReadbackTexelSize(VkFormat sourceFormat);
|
||||
static Bool ConvertReadbackPixels(const Uint8* sourcePixels, VkFormat sourceFormat,
|
||||
GLsizei width, GLsizei height, GLenum destinationFormat,
|
||||
GLenum destinationType, SizeT destinationRowStride,
|
||||
Uint8* destinationPixels);
|
||||
void GetTexImage(GLenum target, GLint level, GLenum format, GLenum type, GLvoid* pixels);
|
||||
void GetTextureImage(const SharedPtr<MG_State::GLState::ITextureObject>& texture,
|
||||
TextureUploadTarget uploadTarget, GLint level, GLenum format, GLenum type,
|
||||
@@ -219,6 +290,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// frontend. Timestamp support (queue timestampValidBits > 0 and a
|
||||
// non-zero timestampPeriod) is cached at device creation.
|
||||
Bool IsTimerQuerySupported() const;
|
||||
// The samplerAnisotropy device feature was granted, so GL_TEXTURE_MAX_ANISOTROPY_EXT is
|
||||
// honored rather than accepted-and-ignored.
|
||||
Bool IsSamplerAnisotropySupported() const { return m_samplerAnisotropyFeatureEnabled; }
|
||||
// Ensures the frame command buffer is recording (same lazy pattern as
|
||||
// SetupDraw) and writes a bottom-of-pipe timestamp into the current
|
||||
// frame's pool. Null when unsupported or the pool is exhausted.
|
||||
@@ -234,10 +308,35 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const VkTimerQueryManager::TimestampRecord& end) const;
|
||||
Uint64 GetTimerQueryTimestampNs(const VkTimerQueryManager::TimestampRecord& record) const;
|
||||
|
||||
// GL_SAMPLES_PASSED occlusion queries: every app draw between Start and Stop is
|
||||
// wrapped in a Vulkan occlusion query slot; the result is the slot sum. Requires
|
||||
// hostQueryReset for slot recycling - Start fails (frontend keeps the query
|
||||
// unsupported) when the device lacks it.
|
||||
Bool StartOcclusionQueryCapture();
|
||||
void StopOcclusionQueryCapture(Vector<Uint32>& outSlots);
|
||||
// Flushes pending commands, waits, sums the slots, and recycles them.
|
||||
Bool ResolveOcclusionQueryResult(const Vector<Uint32>& slots, Uint64& outSamples);
|
||||
|
||||
void RequestSwapchainResize(Uint32 width, Uint32 height);
|
||||
void RecreateSwapchain();
|
||||
// Re-query the surface and report whether the live swapchain no longer matches it
|
||||
// (size or orientation). This - not a VK_SUBOPTIMAL_KHR result - is what decides a
|
||||
// rebuild, so a surface the driver merely considers suboptimal cannot thrash.
|
||||
Bool SwapchainIsOutOfDate();
|
||||
// Returns false when the surface is zero-area (minimized/hidden window):
|
||||
// no new swapchain is installed and presentation must stay suspended.
|
||||
Bool RecreateSwapchain();
|
||||
|
||||
private:
|
||||
// Tiered emission for an already-set-up multi-draw batch (state bound, index
|
||||
// buffer bound for the indexed form). Tier 1: VK_EXT_multi_draw. Tier 2: one
|
||||
// vkCmdDraw(Indexed)Indirect over a transient command array. Tier 3: unrolled
|
||||
// vkCmdDraw(Indexed) loop. Tier eligibility is per-batch (uniform instance
|
||||
// state for tier 1, firstInstance/feature legality for tier 2); every tier
|
||||
// consumes the same param span, so contiguous-run merging done by the caller
|
||||
// benefits all of them.
|
||||
void EmitMultiDrawIndexed(VkCommandBuffer commandBuffer, const DrawIndexedCmdParam* pParams, Uint32 drawCount);
|
||||
void EmitMultiDraw(VkCommandBuffer commandBuffer, const DrawCmdParam* pParams, Uint32 drawCount);
|
||||
|
||||
struct BlitUniformData {
|
||||
float srcRect[4] = {0.f, 0.f, 1.f, 1.f};
|
||||
float dstRect[4] = {0.f, 0.f, 1.f, 1.f};
|
||||
@@ -275,6 +374,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
void QueueClearBufferPayloadForFramebuffer(const MG_State::GLState::FramebufferObject& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer,
|
||||
const ClearAttachmentPayload& clearPayload);
|
||||
void RecordScissoredClearBuffer(const MG_State::GLState::FramebufferObject& framebuffer,
|
||||
GLenum buffer, GLint drawbuffer,
|
||||
const ClearAttachmentPayload& clearPayload,
|
||||
const VkClearRect& clearRect);
|
||||
|
||||
// ---- Submission fence tracking (GL sync objects) ----
|
||||
// One record per vkQueueSubmit still in flight, in ascending submit
|
||||
@@ -317,24 +420,61 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkFence AcquirePooledSubmitFence();
|
||||
void DestroySubmitFencePool();
|
||||
Bool HasPendingRecordedWork() const;
|
||||
// Frame-boundary housekeeping for paths that never reach Present's
|
||||
// tail (present-less readback loops, suspended presentation, blocking
|
||||
// sync waits): runs the same per-frame drains Present performs, but
|
||||
// only when every queue submission has been observed complete AND no
|
||||
// recorded-but-unsubmitted commands exist - i.e. when CPU-GPU overlap
|
||||
// is provably already zero. Never blocks (non-blocking fence poll
|
||||
// only), so the presenting path's frames-in-flight pipelining is
|
||||
// untouched. Returns true when the drain ran.
|
||||
Bool TryDrainFrameTransients();
|
||||
|
||||
Vector<SubmitRecord> m_inFlightSubmits;
|
||||
Vector<VkFence> m_freeSubmitFences;
|
||||
Uint64 m_submitCounter = 0;
|
||||
Uint64 m_completedSubmitCounter = 0;
|
||||
// Drains since the last Present, gating the drain's frame-boundary-equivalent
|
||||
// work (arena rewind + cache aging): a presenting app's mid-frame
|
||||
// readbacks/waits must neither churn the transient caches nor accelerate the
|
||||
// aging clocks, while present-less loops still cross a boundary every few
|
||||
// iterations. Reset in Present.
|
||||
Uint32 m_drainsSinceLastPresent = 0;
|
||||
|
||||
NativeWindowType m_window = 0;
|
||||
void* m_platformDisplay = nullptr;
|
||||
void* m_platformLibrary = nullptr;
|
||||
void* m_platformCloseDisplay = nullptr;
|
||||
// Some real ICDs (e.g. NVIDIA's proprietary Linux driver) don't implement
|
||||
// VK_EXT_headless_surface at all. Detected once in CreateInstance() from the
|
||||
// enumerated instance extensions; when false, CreateSurface() falls back to a
|
||||
// hidden Xlib window instead of vkCreateHeadlessSurfaceEXT.
|
||||
Bool m_headlessSurfaceSupported = true;
|
||||
// Set when CreateSurface() had to create its own Xlib window for the fallback
|
||||
// above (rather than being handed one by the caller), so Shutdown() knows it
|
||||
// owns that window and must destroy it.
|
||||
Bool m_ownsFallbackXlibWindow = false;
|
||||
// Android has the same shortfall: no Mali/Adreno driver seen so far exposes
|
||||
// VK_EXT_headless_surface, so a windowless (EGL pbuffer) context gets an
|
||||
// AImageReader's ANativeWindow to hand the WSI instead. Nothing is ever
|
||||
// displayed - the reader's images are simply never acquired. Owned here, so
|
||||
// Shutdown() deletes it.
|
||||
void* m_fallbackImageReader = nullptr;
|
||||
VulkanRendererConfig m_config;
|
||||
Bool m_swapchainResizeRequested = false;
|
||||
// Presentation is suspended while the window is zero-area (minimized): the
|
||||
// swapchain is unusable/out of date, so Present drops frames instead of
|
||||
// submitting on a signaled fence / presenting never-acquired images.
|
||||
Bool m_presentSuspended = false;
|
||||
|
||||
// Vulkan objects
|
||||
Bool m_validationLayersEnabled = false;
|
||||
Vector<VkExtensionProperties> m_extensions;
|
||||
VkInstance m_instance = VK_NULL_HANDLE;
|
||||
VkDebugUtilsMessengerEXT m_debugMessenger = VK_NULL_HANDLE;
|
||||
// Fallback reporting channel for drivers that ship the validation layers but
|
||||
// only expose the older VK_EXT_debug_report (Adreno 650 / Vulkan 1.1.128).
|
||||
VkDebugReportCallbackEXT m_debugReportCallback = VK_NULL_HANDLE;
|
||||
PhysicalDevice m_physicalDevice;
|
||||
VkDevice m_device = VK_NULL_HANDLE;
|
||||
VmaAllocator m_allocator = nullptr;
|
||||
@@ -347,8 +487,28 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
Bool m_indexTypeUint8ExtensionEnabled = false;
|
||||
Bool m_logicOpFeatureEnabled = false;
|
||||
Bool m_multiDrawIndirectFeatureEnabled = false;
|
||||
// drawIndirectFirstInstance gates indirect commands whose firstInstance != 0;
|
||||
// cached at device creation because the tier-2 multi-draw path (a transient
|
||||
// VkDrawIndexedIndirectCommand array) is illegal for such a sub-draw without it.
|
||||
Bool m_drawIndirectFirstInstanceFeatureEnabled = false;
|
||||
// VK_EXT_multi_draw: native batched submission for the CPU-side glMultiDraw*
|
||||
// families (tier 1 of the multi-draw dispatch).
|
||||
Bool m_multiDrawExtensionEnabled = false;
|
||||
Uint32 m_maxMultiDrawCount = 0;
|
||||
// Multi-draw dispatch tiers, resolved once at device creation from device support
|
||||
// clamped by MOBILEGL_MAGMA_MULTIDRAW_MODE (a preference, never a demand):
|
||||
// tier 1 (ext): one vkCmdDrawMulti(Indexed)EXT - m_multiDrawAllowExt
|
||||
// tier 2 (indirect): one vkCmdDraw(Indexed)Indirect batch - m_multiDrawAllowIndirect
|
||||
// tier 3 (unroll): one vkCmdDraw(Indexed) per sub-draw - always available
|
||||
// m_multiDrawForceUnrollIndirect additionally forces the GPU-parameter
|
||||
// glMultiDraw*Indirect paths onto their per-command loop (mode=unroll only).
|
||||
Bool m_multiDrawAllowExt = false;
|
||||
Bool m_multiDrawAllowIndirect = false;
|
||||
Bool m_multiDrawForceUnrollIndirect = false;
|
||||
Bool m_samplerAnisotropyFeatureEnabled = false;
|
||||
Bool m_shaderDrawParametersExtensionEnabled = false;
|
||||
Bool m_shaderDrawParametersFeatureEnabled = false;
|
||||
Bool m_unformattedFloatStorageImagesEnabled = false;
|
||||
// fillModeNonSolid gates VK_POLYGON_MODE_LINE/_POINT (glPolygonMode); independentBlend gates
|
||||
// per-draw-buffer color write masks (glColorMaski). Both are cached at device creation and
|
||||
// drive a runtime fallback when the device lacks them.
|
||||
@@ -359,6 +519,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// needs no feature). Both cached at device creation and drive a hard-fail-at-draw when absent.
|
||||
Bool m_dualSrcBlendFeatureEnabled = false;
|
||||
Bool m_primitiveTopologyListRestartFeatureEnabled = false;
|
||||
// Union of shader stages sampled-read barriers may name; built at device creation
|
||||
// because geometry/tessellation stage bits are invalid in a barrier when their
|
||||
// feature is off (VUID-vkCmdPipelineBarrier-srcStageMask-04090/-04091), and
|
||||
// ALL_GRAPHICS would also serialize against non-shader stages.
|
||||
VkPipelineStageFlags m_sampledReadStageMask = VK_PIPELINE_STAGE_VERTEX_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT |
|
||||
VK_PIPELINE_STAGE_COMPUTE_SHADER_BIT;
|
||||
// Cached at device creation from the graphics queue family properties
|
||||
// and device limits; drives timer-query support.
|
||||
Uint32 m_timestampValidBits = 0;
|
||||
@@ -369,6 +536,102 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkDeviceSize countBufferOffset, Uint32 maxDrawCount,
|
||||
Uint32 stride);
|
||||
static inline PFNDrawIndexedIndirectCountFunc s_vkCmdDrawIndexedIndirectCount = nullptr;
|
||||
// VK_EXT_multi_draw entry points, loaded at device creation when the extension
|
||||
// (and its multiDraw feature) is enabled; null otherwise.
|
||||
static inline PFN_vkCmdDrawMultiEXT s_vkCmdDrawMultiEXT = nullptr;
|
||||
static inline PFN_vkCmdDrawMultiIndexedEXT s_vkCmdDrawMultiIndexedEXT = nullptr;
|
||||
|
||||
// VK_EXT_transform_feedback (GL transform feedback capture)
|
||||
Bool m_transformFeedbackFeatureEnabled = false;
|
||||
// VK_EXT_provoking_vertex. Vulkan's built-in convention is "provoking vertex first"; GL's
|
||||
// default is LAST_VERTEX_CONVENTION, and GL derives BOTH flat shading and the transform
|
||||
// feedback vertex order from it. provokingVertexLast alone fixes flat shading and the
|
||||
// input-assembler capture order and has no dependency on transform feedback; only
|
||||
// transformFeedbackPreservesProvokingVertex does.
|
||||
Bool m_provokingVertexLastEnabled = false;
|
||||
// transformFeedbackPreservesProvokingVertex was actually enabled at device creation. Kept
|
||||
// separate because it is the only thing that arms
|
||||
// VUID-VkGraphicsPipelineCreateInfo-topology-04884, the rule that forbids a TRIANGLE_FAN
|
||||
// pipeline from asking for LAST on a device that cannot preserve a fan's provoking vertex.
|
||||
Bool m_provokingVertexXfbPreserveEnabled = false;
|
||||
// provokingVertexModePerPipeline: when VK_FALSE every pipeline in one render pass instance
|
||||
// must agree on the mode, so glProvokingVertex(GL_FIRST_VERTEX_CONVENTION) cannot be honoured
|
||||
// per draw and every pipeline takes GL's default (LAST) instead.
|
||||
Bool m_provokingVertexModePerPipeline = false;
|
||||
// transformFeedbackPreservesTriangleFanProvokingVertex.
|
||||
Bool m_provokingVertexFanPreserved = false;
|
||||
// Per-pipeline provoking-vertex mode. capturesXfbFromGeometryStage must be a LINK-TIME
|
||||
// property of the program, never the dynamic "is transform feedback active" flag: the
|
||||
// 8-entry m_pipelineMemo and the SetupDrawSnapshot fast path key on programObj.hash and
|
||||
// the pipeline-state value hash, neither of which moves when glBeginTransformFeedback is
|
||||
// called, so a dynamic input here would hand back a stale VkPipeline.
|
||||
VkProvokingVertexModeEXT SelectProvokingVertexMode(VkPrimitiveTopology topology,
|
||||
Bool capturesXfbFromGeometryStage) const;
|
||||
// VK_EXT_vertex_attribute_divisor: without it every non-zero glVertexAttribDivisor
|
||||
// behaves as 1, because that is all Vulkan's instance input rate can express.
|
||||
Bool m_vertexAttributeDivisorEnabled = false;
|
||||
static inline PFN_vkCmdBindTransformFeedbackBuffersEXT s_vkCmdBindTransformFeedbackBuffersEXT = nullptr;
|
||||
static inline PFN_vkCmdBeginTransformFeedbackEXT s_vkCmdBeginTransformFeedbackEXT = nullptr;
|
||||
static inline PFN_vkCmdEndTransformFeedbackEXT s_vkCmdEndTransformFeedbackEXT = nullptr;
|
||||
// Counter buffers (one 4-byte slot per capture binding) let consecutive
|
||||
// draws within one glBeginTransformFeedback append GL-style. Transform feedback
|
||||
// objects can each hold an open, paused span at the same time, so the counters are
|
||||
// per object: one group of four slots each, handed out on first use.
|
||||
static constexpr SizeT kXfbCounterObjectSlots = 16;
|
||||
VkBufferObject m_xfbCounterBuffer;
|
||||
UnorderedMap<Uint, Uint32> m_xfbCounterSlotByObject;
|
||||
Uint32 m_xfbNextCounterSlot = 0;
|
||||
// Set for a slot once a captured draw has been recorded into its span; selects
|
||||
// counter-buffer resume on the next captured draw of the same span.
|
||||
Array<Bool, kXfbCounterObjectSlots> m_xfbCountersValid{};
|
||||
Array<Uint64, kXfbCounterObjectSlots> m_xfbLastSeenGeneration{};
|
||||
// Counter slot group of the bound transform feedback object.
|
||||
Uint32 CurrentXfbCounterSlot();
|
||||
// Wraps a recorded draw with BeginTransformFeedbackEXT/EndTransformFeedbackEXT
|
||||
// when GL transform feedback is active; binds capture buffers on demand.
|
||||
Bool BeginXfbCaptureForDraw(FrameContext::FrameData& frame);
|
||||
void EndXfbCaptureForDraw(FrameContext::FrameData& frame, Bool began);
|
||||
// Makes the captured bytes visible to whatever reads them next. Deferred rather than
|
||||
// recorded next to the capture, because the capturing draw runs inside a render pass
|
||||
// that declares no self-dependency.
|
||||
void MakeXfbWritesVisible();
|
||||
Bool m_xfbWritesPendingVisibility = false;
|
||||
// Wrap one app draw in an occlusion-query slot while a GL_SAMPLES_PASSED
|
||||
// query is active. Returns whether a slot was begun (End must mirror it).
|
||||
Bool BeginOcclusionForDraw(VkCommandBuffer commandBuffer);
|
||||
void EndOcclusionForDraw(VkCommandBuffer commandBuffer, Bool began);
|
||||
Bool m_occlusionQueryPreciseEnabled = false;
|
||||
Bool m_hostQueryResetEnabled = false;
|
||||
PFN_vkResetQueryPool s_vkResetQueryPool = nullptr;
|
||||
VkQueryPool m_occlusionQueryPool = VK_NULL_HANDLE;
|
||||
static constexpr Uint32 kOcclusionQuerySlots = 8192;
|
||||
Uint32 m_occlusionSlotCursor = 0;
|
||||
Bool m_occlusionCaptureActive = false;
|
||||
Vector<Uint32> m_occlusionActiveSlots;
|
||||
// Transform feedback primitive queries: one pool slot per captured draw yields
|
||||
// the (written, needed) pair; GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN sums the
|
||||
// first, GL_PRIMITIVES_GENERATED the second - exact with geometry shaders,
|
||||
// unlike the CPU fallback accounting.
|
||||
Bool m_xfbQueriesSupported = false;
|
||||
PFN_vkCmdBeginQueryIndexedEXT s_vkCmdBeginQueryIndexedEXT = nullptr;
|
||||
PFN_vkCmdEndQueryIndexedEXT s_vkCmdEndQueryIndexedEXT = nullptr;
|
||||
VkQueryPool m_xfbQueryPool = VK_NULL_HANDLE;
|
||||
static constexpr Uint32 kXfbQuerySlots = 8192;
|
||||
Uint32 m_xfbQuerySlotCursor = 0;
|
||||
Bool m_xfbQueryCaptureActive[2] = {false, false}; // [0]=written, [1]=generated
|
||||
Vector<Uint32> m_xfbQueryActiveSlots[2];
|
||||
Bool m_xfbQuerySlotOpen = false;
|
||||
Uint32 m_xfbQueryOpenSlot = 0;
|
||||
|
||||
public:
|
||||
// kind: 0 = PRIMITIVES_WRITTEN, 1 = PRIMITIVES_GENERATED.
|
||||
Bool StartXfbQueryCapture(Uint32 kind);
|
||||
void StopXfbQueryCapture(Uint32 kind, Vector<Uint32>& outSlots);
|
||||
Bool ResolveXfbQueryResult(const Vector<Uint32>& slots, Bool wantGenerated, Uint64& outPrimitives);
|
||||
|
||||
private:
|
||||
void BeginXfbQueryForDraw(VkCommandBuffer commandBuffer);
|
||||
void EndXfbQueryForDraw(VkCommandBuffer commandBuffer);
|
||||
|
||||
VkCommandPool m_commandPool = VK_NULL_HANDLE;
|
||||
|
||||
@@ -382,14 +645,64 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// gather + synthetic vertex-input rebuild + payload hash + lookup) when the full pipeline
|
||||
// state is unchanged from the previous draw. The key provably covers every pipeline field.
|
||||
// Reset per-frame and on pipeline destruction so the cached handle can never dangle.
|
||||
Bool m_lastPipelineValid = false;
|
||||
GLenum m_lastPipelineMode = 0;
|
||||
Uint64 m_lastPipelineProgramHash = 0;
|
||||
Uint64 m_lastPipelineVertexInputHash = 0;
|
||||
Uint64 m_lastPipelineRenderPassHash = 0;
|
||||
Uint m_lastPipelineRenderStateVersion = 0;
|
||||
ProgramFactory::CompileOptionFlags m_lastPipelineTransformFlags = {};
|
||||
VkPipeline m_lastPipelineResult = VK_NULL_HANDLE;
|
||||
// Small N-way pipeline-resolution memo (round-robin replacement). A
|
||||
// single-entry memo thrashed on draw sequences that alternate a few
|
||||
// pipelines (GUI text/quad program ping-pong), paying the full
|
||||
// payload-hash lookup per draw; eight entries cover such working sets
|
||||
// while keeping the hit path a trivial linear scan.
|
||||
struct PipelineMemoEntry {
|
||||
GLenum mode = 0;
|
||||
Uint64 programHash = 0;
|
||||
Uint64 vertexInputHash = 0;
|
||||
Uint64 renderPassHash = 0;
|
||||
// VALUE hash of the pipeline-relevant fixed-function state (see
|
||||
// ComputePipelineStateHash), not the monotonic pipeline-state version:
|
||||
// the version never repeats, so a per-draw GL_BLEND toggle would miss
|
||||
// all entries forever even though the state alternates between two
|
||||
// values the memo already holds.
|
||||
Uint64 pipelineStateHash = 0;
|
||||
ProgramFactory::CompileOptionFlags transformFlags = {};
|
||||
VkPipeline pipeline = VK_NULL_HANDLE;
|
||||
};
|
||||
static constexpr Uint32 kPipelineMemoSize = 8;
|
||||
PipelineMemoEntry m_pipelineMemo[kPipelineMemoSize];
|
||||
Uint32 m_pipelineMemoCount = 0;
|
||||
Uint32 m_pipelineMemoNext = 0;
|
||||
// Hash of every fixed-function GL state the pipeline payload reads that the
|
||||
// memo key's other fields (mode / program / vertex input / render pass /
|
||||
// transform flags) do not already pin down. Equal hash under an equal rest
|
||||
// of key => byte-identical PipelineCreatePayload. Cached per pipeline-state
|
||||
// version: the version is monotonic and bumps on every pipeline-state
|
||||
// change, so an unchanged (version, colorAttachmentCount) proves the state
|
||||
// bytes are unchanged and the hash can be reused without re-reading them.
|
||||
Uint64 ComputePipelineStateHash(Uint32 colorAttachmentCount) const;
|
||||
Uint m_pipelineStateHashVersion = 0;
|
||||
Uint32 m_pipelineStateHashColorCount = 0;
|
||||
Uint64 m_pipelineStateHash = 0;
|
||||
Bool m_pipelineStateHashValid = false;
|
||||
// GetShaderTransformFlags memo. NOT pure in the pre-transform alone: the
|
||||
// function also reads whether the bound DRAW framebuffer is the default one
|
||||
// (only the default framebuffer gets the Y-flip and rotation bits - an FBO
|
||||
// pass renders unflipped). Keyed on BOTH inputs; missing the FBO bit shipped
|
||||
// an upside-down default-framebuffer pass after any render-to-texture
|
||||
// (minecraft-1.17-main-menu retrace, whole frame flipped).
|
||||
VkSurfaceTransformFlagBitsKHR m_baseTransformFlagsPreTransform =
|
||||
VK_SURFACE_TRANSFORM_FLAG_BITS_MAX_ENUM_KHR;
|
||||
Bool m_baseTransformFlagsIsDefaultFbo = false;
|
||||
Bool m_baseTransformFlagsKeyValid = false;
|
||||
Uint32 m_baseTransformFlagsCache = 0;
|
||||
// isDefaultFbo must be the default-ness of the CURRENTLY bound draw framebuffer;
|
||||
// every caller already has it in hand from its own guards.
|
||||
Uint32 GetBaseTransformFlagsRaw(Bool isDefaultFbo);
|
||||
// Drops every memoized pipeline handle. Required at command-buffer
|
||||
// boundaries and whenever any pipeline may have been destroyed. Also drops
|
||||
// the cached pipeline-state hash: the same boundaries can retire the GL
|
||||
// context whose monotonic version the cache is keyed on.
|
||||
void InvalidatePipelineMemo() {
|
||||
m_pipelineMemoCount = 0;
|
||||
m_pipelineMemoNext = 0;
|
||||
m_pipelineStateHashValid = false;
|
||||
}
|
||||
UnorderedMap<ProgramFactory::HashType, VkPipeline> m_computePipelines;
|
||||
UniquePtr<ProgramFactory> m_programFactory;
|
||||
UniquePtr<UniformManager> m_uniformManager;
|
||||
@@ -418,16 +731,326 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
ProgramFactory::CompileOptionFlags m_lastSampledSetTransformFlags = {};
|
||||
Uint64 m_lastSampledSetBindGeneration = 0;
|
||||
|
||||
// Memo for the per-draw explicit-LOD-0 eligibility probe
|
||||
// (ProgramSamplesOnlySingleLevelTextures): same key family as the
|
||||
// sampled-set memo, plus the sampled textures' params-version sum so a
|
||||
// level-range or filter change re-probes. On a hit the resolved
|
||||
// transform flags are reused, which also collapses the two
|
||||
// GetOrCreateProgram lookups into one.
|
||||
Bool m_lastLodDecisionValid = false;
|
||||
Uint64 m_lastLodProgramLifetimeId = 0;
|
||||
Uint32 m_lastLodProgramVersion = 0;
|
||||
Uint64 m_lastLodBindGeneration = 0;
|
||||
Uint64 m_lastLodParamsSum = 0;
|
||||
ProgramFactory::CompileOptionFlags m_lastLodBaseFlags = {};
|
||||
ProgramFactory::CompileOptionFlags m_lastLodResultFlags = {};
|
||||
|
||||
// Snapshot behind TrySetupDrawFastPath. Values only: the program and
|
||||
// render-pass caches are open-addressing maps whose entries move on
|
||||
// insert, so no pointers into them are cached; the pipeline handle is
|
||||
// protected by the command-buffer-boundary reset plus the mid-frame
|
||||
// pipeline-destruction resets, and monotonic epochs guard everything
|
||||
// that can be destroyed or recreated between draws.
|
||||
struct SetupDrawSnapshot {
|
||||
Bool valid = false;
|
||||
Uint8 aspects = 0;
|
||||
GLenum mode = 0;
|
||||
Uint64 programLifetimeId = 0;
|
||||
Uint32 programVersion = 0;
|
||||
const void* vao = nullptr;
|
||||
// Same rule as VaoDrawMemo::vaoLifetimeId: (address, config version) is not an
|
||||
// identity, because a recycled address can arrive carrying a config version
|
||||
// the dead VAO also had (two mutations to configure one attribute is the
|
||||
// common shape), and "the VAO did not move" would then skip the layout
|
||||
// re-resolve for a different VAO.
|
||||
Uint64 vaoLifetimeId = 0;
|
||||
Uint32 vaoConfigVersion = 0;
|
||||
const void* drawFbo = nullptr;
|
||||
Uint16 fboVersion = 0;
|
||||
Bool drawFboIsDefault = false;
|
||||
Uint renderStateVersion = 0;
|
||||
Uint64 bindGeneration = 0;
|
||||
Uint32 baseTransformFlags = 0;
|
||||
Uint32 resolvedTransformFlags = 0;
|
||||
Uint64 renderPassHash = 0;
|
||||
Uint32 imageIndex = 0;
|
||||
Uint64 textureEraseEpoch = 0;
|
||||
Uint64 textureImageEpoch = 0;
|
||||
Uint64 renderbufferImageEpoch = 0;
|
||||
Uint64 sampledContentSum = 0;
|
||||
Uint64 sampledParamsSum = 0;
|
||||
// Guards the sampler-descriptor reuse hint: bumped by any sampler-object
|
||||
// parameter or texture shape change (see GetSamplingResolutionGeneration),
|
||||
// none of which the sums above cover.
|
||||
Uint64 samplingResolutionGeneration = 0;
|
||||
// Render-pass flavor input (DepthTest || StencilTest at snapshot time).
|
||||
// A pipeline-state change that leaves this equal cannot change which
|
||||
// render pass GetOrCreateRenderPass would pick, so the fast path may
|
||||
// re-resolve just the pipeline against the active pass; a change that
|
||||
// flips it must fall back to the full path's pass selection.
|
||||
Bool drawUsesDepthStencil = false;
|
||||
IntVec2 renderPassExtent = {0, 0};
|
||||
// colorAttachmentCount of the snapshotting draw's render pass: the
|
||||
// pipeline-state hash input, so the fast path can refresh that hash and
|
||||
// probe the pipeline memo after a state change without re-fetching the
|
||||
// render-pass entry (the pass itself is pinned by renderPassHash above).
|
||||
Uint32 renderPassColorCount = 0;
|
||||
VkPipeline pipeline = VK_NULL_HANDLE;
|
||||
// layoutHash of the snapshotting draw's vertex-input state. The pipeline and
|
||||
// the vertex-input pre-flight depend on the VAO only through this (plus the
|
||||
// program, pinned separately), so a changed VAO whose aux memo carries the
|
||||
// same layoutHash re-uses the snapshot's pipeline and pre-flight verdict
|
||||
// outright - the VAO-cycling case Minecraft chunk rendering hits every draw.
|
||||
Uint64 vaoLayoutHash = 0;
|
||||
// Memoised ProgramFactory entry of the snapshotting draw, valid while
|
||||
// (programLifetimeId, programVersion, resolvedTransformFlags) match - all
|
||||
// checked above - AND the factory's cache structure epoch is unchanged (the
|
||||
// cache is open-addressing and holds entries by value, so any insert/erase
|
||||
// moves them). The fast path must re-stamp use through StampProgramUse when
|
||||
// it bypasses GetOrCreateProgram, or the idle sweep could evict a live entry.
|
||||
const ProgramFactory::VkProgramObject* programObj = nullptr;
|
||||
Uint64 programFactoryEpoch = 0;
|
||||
// Per-entry copies of the snapshotting draw's sampled set (the scratch
|
||||
// vectors below hold only the LAST full-path draw's set, which with more
|
||||
// than one snapshot entry is not necessarily this entry's program).
|
||||
// sampledTextures/sampledResources carry the same epoch-guarded pointer
|
||||
// lifetime rules as the scratch originals: textureEraseEpoch (checked
|
||||
// every probe) declines the entry before any erased resource pointer
|
||||
// could be dereferenced. sampledLayouts is the layout VALUE each
|
||||
// resource held when this entry's descriptors were built (the
|
||||
// descriptor-reuse hint needs the SAME layout, not just a sampleable
|
||||
// one), and sampledBindingRecords feeds SampledBindingsUnchanged when
|
||||
// the bind generation moved.
|
||||
Vector<MG_State::GLState::ITextureObject*> sampledTextures;
|
||||
Vector<VkTextureManager::TextureResource*> sampledResources;
|
||||
Vector<VkImageLayout> sampledLayouts;
|
||||
Vector<UniformManager::SampledBindingRecord> sampledBindingRecords;
|
||||
};
|
||||
// Program-keyed snapshot entries: program ping-pong (Sodium switches programs
|
||||
// mid-frame every few draws) would otherwise evict the single snapshot on
|
||||
// every switch and send every draw through the full path. Entries are found
|
||||
// by programLifetimeId (MRU-first probe); every other guard stays per-probe,
|
||||
// so a stale entry declines itself exactly like the old single snapshot did.
|
||||
static constexpr Uint32 kSetupDrawSnapshotCount = 4;
|
||||
SetupDrawSnapshot m_setupDrawSnapshots[kSetupDrawSnapshotCount];
|
||||
Uint32 m_setupDrawSnapshotMru = 0; // last entry that hit or was filled
|
||||
Uint32 m_setupDrawSnapshotVictim = 0; // round-robin fill cursor when all entries are live
|
||||
void InvalidateSetupDrawSnapshots() {
|
||||
for (auto& snapshot : m_setupDrawSnapshots) {
|
||||
snapshot.valid = false;
|
||||
}
|
||||
}
|
||||
|
||||
// Per-draw scratch buffers (clear keeps capacity) — these paths run for every
|
||||
// draw call and must not allocate.
|
||||
Vector<MG_State::GLState::ITextureObject*> m_sampledTexturesScratch;
|
||||
// Per-binding (texture, effective sampler) lifetime-id records from the same
|
||||
// CollectSampledTextures walk that filled m_sampledTexturesScratch. The fast
|
||||
// path shadow-compares against them (SampledBindingsUnchanged) when the
|
||||
// texture bind generation moved, so a redundant glBindSampler/glBindTexture
|
||||
// storm that resolves to the same bindings keeps the fast path.
|
||||
Vector<UniformManager::SampledBindingRecord> m_sampledBindingRecordsScratch;
|
||||
// Parallel to m_sampledTexturesScratch, refilled by every SetupDraw's
|
||||
// first sampled-texture loop: the resolved backend resources, so the
|
||||
// post-transition loop can skip re-resolving textures whose layout is
|
||||
// already sampleable.
|
||||
Vector<VkTextureManager::TextureResource*> m_sampledResourcesScratch;
|
||||
Vector<MG_State::GLState::ITextureObject*> m_storageImageTexturesScratch;
|
||||
Vector<VkBuffer> m_vertexBuffersScratch;
|
||||
Vector<VkDeviceSize> m_vertexOffsetsScratch;
|
||||
Vector<VkVertexInputAttributeDescription> m_patchedAttributesScratch;
|
||||
Vector<Float> m_vertexConversionScratch;
|
||||
Vector<Uint8> m_vertexRepackScratch;
|
||||
|
||||
struct ConvertedVertexStreamKey {
|
||||
const MG_State::GLState::BufferObject* buffer = nullptr;
|
||||
Uint64 changeSerial = 0;
|
||||
SizeT baseOffset = 0;
|
||||
Uint32 sourceStride = 0;
|
||||
DataType type = DataType::Float32;
|
||||
Int size = 0;
|
||||
Bool normalized = false;
|
||||
Bool isInteger = false;
|
||||
VertexInputStateFactory::VertexStreamConversion conversion =
|
||||
VertexInputStateFactory::VertexStreamConversion::None;
|
||||
|
||||
Bool operator==(const ConvertedVertexStreamKey& other) const {
|
||||
return buffer == other.buffer && changeSerial == other.changeSerial &&
|
||||
baseOffset == other.baseOffset && sourceStride == other.sourceStride &&
|
||||
type == other.type && size == other.size && normalized == other.normalized &&
|
||||
isInteger == other.isInteger && conversion == other.conversion;
|
||||
}
|
||||
};
|
||||
|
||||
struct ConvertedVertexStreamKeyHash {
|
||||
SizeT operator()(const ConvertedVertexStreamKey& key) const {
|
||||
SizeT hash = std::hash<const void*>{}(key.buffer);
|
||||
auto combine = [&hash](SizeT value) {
|
||||
hash ^= value + static_cast<SizeT>(0x9e3779b97f4a7c15ull) + (hash << 6) + (hash >> 2);
|
||||
};
|
||||
combine(std::hash<Uint64>{}(key.changeSerial));
|
||||
combine(std::hash<SizeT>{}(key.baseOffset));
|
||||
combine(std::hash<Uint32>{}(key.sourceStride));
|
||||
combine(std::hash<Uint32>{}(static_cast<Uint32>(key.type)));
|
||||
combine(std::hash<Int>{}(key.size));
|
||||
combine(std::hash<Bool>{}(key.normalized));
|
||||
combine(std::hash<Bool>{}(key.isInteger));
|
||||
combine(std::hash<Uint32>{}(static_cast<Uint32>(key.conversion)));
|
||||
return hash;
|
||||
}
|
||||
};
|
||||
|
||||
struct ConvertedVertexStream {
|
||||
BufferSlice slice;
|
||||
// Number of source elements the cached slice covers. A draw needing a prefix of
|
||||
// this range reuses the slice (converted streams are tightly packed); a draw
|
||||
// needing more reconverts and replaces the entry, so per (buffer, layout) a
|
||||
// frame converts at most the largest range any draw asked for.
|
||||
SizeT elementCount = 0;
|
||||
// Pins the source buffer for the frame so its heap address cannot be reused by
|
||||
// a new BufferObject while this pointer-keyed entry is alive.
|
||||
SharedPtr<const MG_State::GLState::BufferObject> sourcePin;
|
||||
};
|
||||
UnorderedMap<ConvertedVertexStreamKey, ConvertedVertexStream, ConvertedVertexStreamKeyHash>
|
||||
m_convertedVertexStreams;
|
||||
|
||||
// One VAO's resolved vkCmdBindVertexBuffers arguments, reusable by a later draw
|
||||
// that would resolve them to the same thing. Consecutive draws in a chunk-renderer
|
||||
// frame keep the program and the vertex layout and only swap the VAO, so a
|
||||
// per-VAO memo turns the second and later draws through each VAO into a validate
|
||||
// plus (usually skipped) rebind.
|
||||
//
|
||||
// Only whole-buffer bindings are memoised. Client-memory and format-converted
|
||||
// streams re-upload from a range that depends on the draw's own vertex/index
|
||||
// range, and synthetic bindings carry glVertexAttrib* values that are not part
|
||||
// of any key here; a layout using any of them is never stored.
|
||||
// Field order is hit-path cache locality, hot to cold: the per-draw validate
|
||||
// reads the scalars and the EBO memo head, then only the first bindingCount
|
||||
// elements of vkBuffers/vkOffsets; the per-binding revalidation arrays at the
|
||||
// tail are touched once per frame at most.
|
||||
struct ResolvedVertexBindings {
|
||||
// Must equal DynamicStateShadow::kMaxShadowedVertexBindings (static_assert in
|
||||
// the .cpp): past that width the bind shadow cannot skip a redundant bind
|
||||
// either, so a wider layout resolves per draw. Minecraft-shaped layouts use four.
|
||||
static constexpr Uint32 kMaxBindings = 8;
|
||||
|
||||
// Frame serial of the last completed resolve OR cross-frame revalidation.
|
||||
// Zero until a resolve completes, and reset to zero before one starts, so a
|
||||
// resolve that bails out midway cannot leave a half-filled entry matchable.
|
||||
// Unlike the original frame-scoped memo, an entry whose buffers are all
|
||||
// resident and unmapped is revalidated across frames (per-binding slice
|
||||
// epoch compares) instead of re-resolved - see TryBindResolvedVertexBindings.
|
||||
Uint64 frameSerial = 0;
|
||||
// Identity of the resolved Vulkan layout: the VAO's content hash
|
||||
// (VertexInputStateFactory::GetOrComputeHash - the same value the factory
|
||||
// keys its entries on) fixes bindings.size(), each binding's base offset,
|
||||
// which bindings are client/converted, and (through the mixed-in buffer
|
||||
// addresses) which buffer each binding reads. Compared against the VAO's
|
||||
// own hash memo on the hit path, so a hit never touches the factory entry.
|
||||
VertexInputStateFactory::HashType vertexInputHash = 0;
|
||||
// The program's vertex input layout: decides the synthetic-binding set and
|
||||
// hence the total binding count.
|
||||
Uint32 activeAttribMask = 0;
|
||||
Uint32 bindingCount = 0;
|
||||
// VkBufferManager::GetSliceEpochCounter() at resolve time. Still equal means
|
||||
// no buffer anywhere changed its slice or was persistently mapped since, which
|
||||
// settles every per-binding question below in one compare.
|
||||
Uint64 sliceEpochCounter = 0;
|
||||
// Any bound buffer already carrying a host map when the slice was resolved.
|
||||
// Such a buffer can mutate its shadow with no API call, so it has to be
|
||||
// re-pushed per draw and the one-compare path above cannot apply.
|
||||
Bool anyBufferMapped = true;
|
||||
|
||||
// Resident element-buffer slice memo (skips the per-draw AcquireResidentSlice
|
||||
// for the VAO's EBO, which cold-chases 500+ distinct resources in a
|
||||
// chunk-cycling frame). Self-validating exactly like the bindings above: a hit
|
||||
// requires the LIVE bound EBO pointer to equal indexBuffer AND either an
|
||||
// unmoved manager-wide slice-epoch counter (nothing anywhere changed slices
|
||||
// or gained a host map, the same one-compare rescue the vertex half uses) or
|
||||
// that buffer's resource still carrying indexSliceEpoch (epochs are minted
|
||||
// from a process-lifetime counter, so a recycled address can never
|
||||
// revalidate). Restart-substituted and streamed EBOs are never stored.
|
||||
// indexFrameSerial tracks the last frame the resource's GPU-use serial was
|
||||
// stamped through this memo; 0 means no index memo. Independent of the
|
||||
// vertex half: both are (pointer, epoch)-validated, so neither can serve
|
||||
// stale state for the other.
|
||||
const MG_State::GLState::BufferObject* indexBuffer = nullptr;
|
||||
Uint64 indexSliceEpoch = 0;
|
||||
// GetSliceEpochCounter() when the resource's epoch was last verified; only
|
||||
// meaningful while indexFrameSerial matches the current frame serial.
|
||||
Uint64 indexSliceEpochCounter = 0;
|
||||
VkBuffer indexVkBuffer = VK_NULL_HANDLE;
|
||||
VkDeviceSize indexSliceOffset = 0;
|
||||
Uint64 indexFrameSerial = 0;
|
||||
|
||||
// Bound per draw (first bindingCount elements).
|
||||
VkBuffer vkBuffers[kMaxBindings] = {};
|
||||
VkDeviceSize vkOffsets[kMaxBindings] = {};
|
||||
// Per binding: the VAO attribute location its buffer comes from, that buffer,
|
||||
// and the buffer's VkBufferManager slice epoch when the slice was resolved.
|
||||
// Only read by the per-frame revalidation and the something-moved fallback.
|
||||
Uint8 attributeLocations[kMaxBindings] = {};
|
||||
const MG_State::GLState::BufferObject* buffers[kMaxBindings] = {};
|
||||
Uint64 sliceEpochs[kMaxBindings] = {};
|
||||
};
|
||||
// One direct-mapped slot of the per-VAO draw-memo table below. A slot belongs to
|
||||
// the object whose (vaoKey, vaoLifetimeId) pair it carries: the address alone
|
||||
// only picks the slot, and the never-reused lifetime id is what proves the slot
|
||||
// is THIS VAO's, so the successor allocated onto a destroyed VAO's address
|
||||
// always misses. That identity check is load-bearing and the content-hash
|
||||
// validations below do NOT stand in for it - a recycled address under a
|
||||
// byte-identical configuration reproduces the content hash exactly, which is
|
||||
// how a destroyed VAO's resolved bindings were once handed to its successor's
|
||||
// draw. The slot is still never dereferenced through vaoKey, and every fact it
|
||||
// carries is still validated against live state before use:
|
||||
// - layoutHash/layoutAuxMasks are valid only while contentHash equals the LIVE
|
||||
// VAO's own hash memo (which the VAO's config version guards), so a config
|
||||
// change or a buffer rebind misses even for the same object.
|
||||
// - bindings revalidates per draw exactly as before (frame serial, content
|
||||
// hash, per-binding live buffer pointers and slice epochs).
|
||||
struct alignas(64) VaoDrawMemo {
|
||||
const MG_State::GLState::VertexArrayObject* vaoKey = nullptr;
|
||||
// The VAO's never-reused lifetime id, checked alongside vaoKey. The pointer
|
||||
// ALONE is not an identity: a deleted VAO's heap address is handed straight
|
||||
// back by the next glGenVertexArrays-shaped allocation, and the successor then
|
||||
// matched this slot and inherited the dead object's memos. Both stated
|
||||
// defences failed with it, because both reduce to the content hash and the
|
||||
// content hash's buffer-identity component was itself a recycled heap address.
|
||||
Uint64 vaoLifetimeId = 0;
|
||||
// The VAO content hash (VertexInputStateFactory::GetOrComputeHash) the two
|
||||
// layout facts below were derived from; 0 while nothing valid is stored.
|
||||
Uint64 contentHash = 0;
|
||||
Bool layoutFactsValid = false;
|
||||
// The resolved layout identity + packed (unsupported, location) masks -
|
||||
// the exact values GetBackendAuxMemo used to serve, moved here so the
|
||||
// per-draw probe stays inside this table's one hot line instead of
|
||||
// touching a second cold line of every cycled VAO object.
|
||||
Uint64 layoutHash = 0;
|
||||
Uint64 layoutAuxMasks = 0;
|
||||
ResolvedVertexBindings bindings;
|
||||
};
|
||||
// Fixed-size, allocated on first use, never rehashed or swept: entries are
|
||||
// recycled in place on slot collisions (two-slot probe, older frame serial
|
||||
// evicted), and stale entries self-invalidate through the compares above. A
|
||||
// fixed table also makes every VaoDrawMemo/ResolvedVertexBindings pointer
|
||||
// stable for the duration of a draw, which the EBO memo handoff
|
||||
// (m_currentDrawResolvedEntry) relies on.
|
||||
static constexpr Uint32 kVaoDrawMemoSlotCount = 2048; // power of two
|
||||
Vector<VaoDrawMemo> m_vaoDrawMemoTable;
|
||||
// Finds the slot holding `vao`, or recycles the older of its two candidate
|
||||
// slots into an empty memo keyed on `vao`. Never returns null.
|
||||
VaoDrawMemo* LookupVaoDrawMemo(const MG_State::GLState::VertexArrayObject* vao);
|
||||
// The current draw's memo entry, set by UploadAndBindVertexBuffers and consumed
|
||||
// by the same draw's UploadAndBindIndexBuffer (the EBO memo lives in the same
|
||||
// entry). Valid ONLY within that window: the next draw's lookup can recycle the
|
||||
// slot. Null when the draw's layout is not memoisable.
|
||||
ResolvedVertexBindings* m_currentDrawResolvedEntry = nullptr;
|
||||
|
||||
void CreateInstance();
|
||||
VkResult SetupDebugMessenger();
|
||||
VkResult DestroyDebugMessenger();
|
||||
VkResult SetupDebugReportCallback();
|
||||
void DestroyDebugReportCallback();
|
||||
VkDebugUtilsMessengerCreateInfoEXT PopulateDebugMessengerCreateInfo();
|
||||
void CreateSurface();
|
||||
void PickPhysicalDevice();
|
||||
@@ -446,10 +1069,32 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const RenderPassEntry& renderPassEntry);
|
||||
VkPipeline GetOrCreateComputePipeline(const ProgramFactory::VkProgramObject& programObj);
|
||||
void DestroyComputePipelines();
|
||||
// Takes the frame rather than a command buffer: a first-time storage-usage upgrade has to
|
||||
// flush the pending recording (see the body), which retires the current command buffer.
|
||||
Bool PrepareStorageImageTextures(
|
||||
FrameContext::FrameData& frame,
|
||||
const MG_State::GLState::ProgramObject& program,
|
||||
const ProgramFactory::VkProgramObject& programObj);
|
||||
|
||||
// The per-draw dynamic-state tail (viewport, scissor, blend constants, depth
|
||||
// bias, line width, stencil), gated behind one render-state-parameters-version
|
||||
// compare per command buffer - see the gate fields in DynamicStateShadow.
|
||||
void ApplyDynamicDrawStateTail(FrameContext::FrameData& frame, const IntVec2& extent, Bool isDefaultFbo);
|
||||
|
||||
Bool UploadAndBindVertexBuffers(VkCommandBuffer commandBuffer, const MG_State::GLState::VertexArrayObject& vao,
|
||||
const ProgramFactory::VkProgramObject& programObj,
|
||||
const DrawCmdParam& drawParams);
|
||||
const DrawCmdParam& drawParams,
|
||||
const IndexBufferView* pIndexBufferView);
|
||||
// Binds `entry`'s memoised buffers when every input it was resolved from is
|
||||
// still live and unchanged, else returns false and leaves nothing bound.
|
||||
// vaoContentHash is the VAO's memoised content hash (GetBackendHashMemo), which
|
||||
// pins the layout AND the bound buffers without resolving the factory entry.
|
||||
// Non-const entry: a cross-frame revalidation refreshes its serial/epoch stamps.
|
||||
Bool TryBindResolvedVertexBindings(VkCommandBuffer commandBuffer,
|
||||
const MG_State::GLState::VertexArrayObject& vao,
|
||||
ResolvedVertexBindings& entry,
|
||||
Uint64 vaoContentHash,
|
||||
Uint32 activeAttribMask, Uint64 frameSerial);
|
||||
Bool UploadAndBindIndexBuffer(FrameContext::FrameData& frame,
|
||||
const MG_State::GLState::VertexArrayObject& vao,
|
||||
const IndexBufferView* pIndexBufferView = nullptr);
|
||||
@@ -465,8 +1110,16 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1,
|
||||
GLint dstX0, GLint dstY0, GLint dstX1, GLint dstY1,
|
||||
GLenum filter);
|
||||
// Clears one z slice of a VK_IMAGE_TYPE_3D colour image. See the call site in
|
||||
// MaterializePendingClearForTexture for why a transfer clear cannot do this.
|
||||
Bool ClearDepthSliceWithRenderPass(VkCommandBuffer commandBuffer,
|
||||
MG_State::GLState::ITextureObject& texture, Uint32 mipLevel,
|
||||
Uint32 depthSlice, const VkClearValue& clearValue);
|
||||
Bool MaterializePendingClearForTexture(VkCommandBuffer commandBuffer,
|
||||
MG_State::GLState::ITextureObject& texture);
|
||||
Bool MaterializePendingClearForRenderbuffer(
|
||||
VkCommandBuffer commandBuffer,
|
||||
const SharedPtr<MG_State::GLState::RenderbufferObject>& renderbuffer);
|
||||
VkPipeline GetOrCreateBlitPipeline(const RenderPassEntry& renderPassEntry);
|
||||
Bool GenerateDepthMipmapWithShader(FrameContext::FrameData& frame,
|
||||
MG_State::GLState::ITextureObject& texture,
|
||||
@@ -478,6 +1131,14 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
VkImageLayout finalLayout);
|
||||
Bool SubmitReadbackCommandsAndWait(FrameContext::FrameData& frame);
|
||||
|
||||
public:
|
||||
// Submits whatever is recorded and waits for it. The CPU is about to read memory
|
||||
// a shader wrote (a mapped shader storage buffer), and coherent host-visible
|
||||
// storage only guarantees visibility once the work that produced it has retired.
|
||||
Bool FinishPendingGpuWork();
|
||||
|
||||
private:
|
||||
|
||||
void ShutdownSwapchain();
|
||||
|
||||
// Static functions
|
||||
@@ -501,6 +1162,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
const PhysicalDevice& compareWithDevice,
|
||||
PhysicalDevice& outBetterDevice);
|
||||
static constexpr const char* s_validationLayerNames[] = {"VK_LAYER_KHRONOS_validation"};
|
||||
// VK_KHR_image_format_list: lets MUTABLE_FORMAT images declare their exact view-format
|
||||
// set so the driver can keep bandwidth compression (see CreateLogicalDeviceAndQueues).
|
||||
Bool m_imageFormatListExtensionEnabled = false;
|
||||
|
||||
static constexpr const char* s_deviceExtensionNames[] = {VK_KHR_SWAPCHAIN_EXTENSION_NAME};
|
||||
static Bool CheckValidationLayerSupport();
|
||||
|
||||
|
||||
@@ -52,19 +52,48 @@ namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
}
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
namespace MobileGL::MG_Backend::DirectVulkan {
|
||||
// GL renders into sRGB color attachments RAW while GL_FRAMEBUFFER_SRGB is disabled
|
||||
// (the core-profile default); Vulkan sRGB attachments always encode on write. The
|
||||
// attachment view (and render pass format) therefore drops to the UNORM twin
|
||||
// whenever the capability is off. Sampled views keep the sRGB format (decode on
|
||||
// sample is unconditional in GL).
|
||||
inline VkFormat ResolveSrgbAttachmentWriteFormat(VkFormat format, bool framebufferSrgbEnabled) {
|
||||
if (framebufferSrgbEnabled) return format;
|
||||
switch (format) {
|
||||
case VK_FORMAT_R8G8B8A8_SRGB:
|
||||
return VK_FORMAT_R8G8B8A8_UNORM;
|
||||
case VK_FORMAT_B8G8R8A8_SRGB:
|
||||
return VK_FORMAT_B8G8R8A8_UNORM;
|
||||
default:
|
||||
return format;
|
||||
}
|
||||
}
|
||||
} // namespace MobileGL::MG_Backend::DirectVulkan
|
||||
|
||||
// The context line (__VA_ARGS__ = its own format string + args) must be a SEPARATE log
|
||||
// call: appending its format to the base format while its arguments precede the base
|
||||
// arguments makes every conversion read the wrong slot (a %s pulling an int crashes).
|
||||
#define VK_VERIFY(expr, ...) \
|
||||
do { \
|
||||
VkResult _vk_verify_result = (expr); \
|
||||
if (_vk_verify_result != VK_SUCCESS) { \
|
||||
MGLOG_F("Vulkan error %s (%d) at %s:%d" __VA_OPT__(" - ") __VA_ARGS__, \
|
||||
__VA_OPT__(MGLOG_F(__VA_ARGS__);) \
|
||||
MGLOG_F("Vulkan error %s (%d) at %s:%d", \
|
||||
MobileGL::MG_Backend::DirectVulkan::VkResultToString(_vk_verify_result), \
|
||||
_vk_verify_result, __FILE__, __LINE__); \
|
||||
} \
|
||||
MOBILEGL_ASSERT(_vk_verify_result == VK_SUCCESS, "Vulkan error %s (%d) at %s:%d" __VA_OPT__(" - ") __VA_ARGS__, MobileGL::MG_Backend::DirectVulkan::VkResultToString(_vk_verify_result), _vk_verify_result, __FILE__, __LINE__); \
|
||||
MOBILEGL_ASSERT(_vk_verify_result == VK_SUCCESS, "Vulkan error %s (%d) at %s:%d", \
|
||||
MobileGL::MG_Backend::DirectVulkan::VkResultToString(_vk_verify_result), \
|
||||
_vk_verify_result, __FILE__, __LINE__); \
|
||||
} while (0)
|
||||
|
||||
#define XXHASH_VERIFY(expr, ...) \
|
||||
do { \
|
||||
XXH_errorcode _xxh_verify_result = (expr); \
|
||||
MOBILEGL_ASSERT(_xxh_verify_result == XXH_OK, "XXHash error %d at %s:%d" __VA_OPT__(" - ") __VA_ARGS__, _xxh_verify_result, __FILE__, __LINE__); \
|
||||
if (_xxh_verify_result != XXH_OK) { \
|
||||
__VA_OPT__(MGLOG_F(__VA_ARGS__);) \
|
||||
} \
|
||||
MOBILEGL_ASSERT(_xxh_verify_result == XXH_OK, "XXHash error %d at %s:%d", _xxh_verify_result, __FILE__, \
|
||||
__LINE__); \
|
||||
} while (0)
|
||||
|
||||
@@ -16,4 +16,5 @@ target_link_libraries(
|
||||
${LINK_LIBRARIES}
|
||||
)
|
||||
|
||||
add_test(NAME BufferBench COMMAND BufferBench --benchmark_counters_tabular=true)
|
||||
add_test(NAME BufferBench COMMAND BufferBench --benchmark_counters_tabular=true)
|
||||
set_tests_properties(BufferBench PROPERTIES LABELS benchmark)
|
||||
@@ -38,6 +38,8 @@ target_link_libraries(
|
||||
)
|
||||
|
||||
add_test(NAME SanityBench COMMAND SanityBench --benchmark_counters_tabular=true)
|
||||
set_tests_properties(SanityBench PROPERTIES LABELS benchmark)
|
||||
|
||||
add_subdirectory(Program)
|
||||
add_subdirectory(Buffer)
|
||||
add_subdirectory(Buffer)
|
||||
add_subdirectory(Driver)
|
||||
@@ -0,0 +1,15 @@
|
||||
cmake_minimum_required(VERSION 3.24)
|
||||
|
||||
# A real, headless EGL client, deliberately NOT linked against MobileGL: it
|
||||
# dlopens one EGL provider at runtime ($DRIVERBENCH_EGL_LIB - the system
|
||||
# libEGL.so.1 for the native driver, or a libMobileGL.so path for either
|
||||
# MobileGL backend), so the same binary measures all three stacks.
|
||||
if (NOT UNIX OR APPLE OR ANDROID)
|
||||
return()
|
||||
endif()
|
||||
|
||||
add_executable(DriverBench DriverBench.c)
|
||||
target_link_libraries(DriverBench PRIVATE dl)
|
||||
|
||||
add_test(NAME DriverBench COMMAND DriverBench draw_tiny)
|
||||
set_tests_properties(DriverBench PROPERTIES LABELS benchmark)
|
||||
@@ -0,0 +1,501 @@
|
||||
/* MobileGL - MobileGL/MG_Benchmark/Driver/DriverBench.c
|
||||
* Copyright (c) 2025-2026 MobileGL-Dev
|
||||
* Licensed under the GNU Lesser General Public License v3.0:
|
||||
* https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
* https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
* SPDX-License-Identifier: LGPL-3.0-only
|
||||
* End of Source File Header
|
||||
*
|
||||
* Headless, EGL-based driver benchmark shaped like Minecraft's GL usage.
|
||||
* Unlike the MobileGL_s microbenches next door this exercises a full GL
|
||||
* stack: it dlopens ONE EGL provider ($DRIVERBENCH_EGL_LIB - the system
|
||||
* libEGL.so.1 for the native driver, or a libMobileGL.so path for either
|
||||
* MobileGL backend selected with MOBILEGL_BACKEND_TYPE), creates a desktop-GL
|
||||
* context on a small pbuffer, renders into its own FBO and paces frames with
|
||||
* glFinish. No window system is required: the default display is tried first
|
||||
* so a desktop run reaches the real driver, and a headless box (CI, a build
|
||||
* server) falls back to EGL_MESA_platform_surfaceless - see
|
||||
* run_driver_bench.sh.
|
||||
*
|
||||
* Every case models one hot pattern from captured Minecraft traces:
|
||||
* draw_tiny back-to-back glDrawElements, shared state (chunk batch)
|
||||
* draw_uniform per-draw vec3 offset uniform + draw (chunk sections)
|
||||
* draw_multi_vao per-draw VAO/VBO switch + draw (per-section buffers)
|
||||
* tex_pingpong per-draw texture bind churn on one unit
|
||||
* program_pingpong alternate two programs + mat4 upload (chunk<->entity)
|
||||
* chunk_upload glBufferData(NULL) orphan + glBufferSubData + draw
|
||||
* atlas_sprite N 16x16 glTexSubImage2D into a 1024x512 atlas + draw
|
||||
* lightmap full 16x16 lightmap respecify per frame + draw
|
||||
* scene_mix composite frame built from the knobs below
|
||||
*
|
||||
* Output: one CSV line per case:
|
||||
* case,frames,ops_per_frame,median_frame_ms,ns_per_op,fps
|
||||
*/
|
||||
#include <dlfcn.h>
|
||||
#include <stdint.h>
|
||||
#include <stdio.h>
|
||||
#include <stdlib.h>
|
||||
#include <string.h>
|
||||
#include <time.h>
|
||||
|
||||
/* ---- EGL constants ---- */
|
||||
typedef void* EGLDisplay;
|
||||
typedef void* EGLConfig;
|
||||
typedef void* EGLContext;
|
||||
typedef void* EGLSurface;
|
||||
typedef int EGLint;
|
||||
typedef unsigned int EGLBoolean;
|
||||
typedef unsigned int EGLenum;
|
||||
#define EGL_DEFAULT_DISPLAY ((void*)0)
|
||||
#define EGL_NO_CONTEXT ((EGLContext)0)
|
||||
#define EGL_NO_SURFACE ((EGLSurface)0)
|
||||
#define EGL_FALSE 0
|
||||
#define EGL_SURFACE_TYPE 0x3033
|
||||
#define EGL_PBUFFER_BIT 0x0001
|
||||
#define EGL_RENDERABLE_TYPE 0x3040
|
||||
#define EGL_OPENGL_BIT 0x0008
|
||||
#define EGL_RED_SIZE 0x3024
|
||||
#define EGL_GREEN_SIZE 0x3023
|
||||
#define EGL_BLUE_SIZE 0x3022
|
||||
#define EGL_DEPTH_SIZE 0x3025
|
||||
#define EGL_WIDTH 0x3057
|
||||
#define EGL_HEIGHT 0x3056
|
||||
#define EGL_NONE 0x3038
|
||||
#define EGL_OPENGL_API 0x30A2
|
||||
#define EGL_OPENGL_ES_API 0x30A0
|
||||
#define EGL_OPENGL_ES3_BIT 0x0040
|
||||
#define EGL_CONTEXT_CLIENT_VERSION 0x3098
|
||||
#define EGL_CONTEXT_MAJOR_VERSION 0x3098
|
||||
#define EGL_CONTEXT_MINOR_VERSION 0x30FB
|
||||
#define EGL_CONTEXT_OPENGL_PROFILE_MASK 0x30FD
|
||||
#define EGL_CONTEXT_OPENGL_CORE_PROFILE_BIT 0x00000001
|
||||
#define EGL_PLATFORM_SURFACELESS_MESA 0x31DD
|
||||
|
||||
/* ---- GL constants ---- */
|
||||
#define GL_COLOR_BUFFER_BIT 0x00004000
|
||||
#define GL_DEPTH_BUFFER_BIT 0x00000100
|
||||
#define GL_TRIANGLES 0x0004
|
||||
#define GL_UNSIGNED_INT 0x1405
|
||||
#define GL_SHORT 0x1402
|
||||
#define GL_FLOAT 0x1406
|
||||
#define GL_UNSIGNED_BYTE 0x1401
|
||||
#define GL_ARRAY_BUFFER 0x8892
|
||||
#define GL_ELEMENT_ARRAY_BUFFER 0x8893
|
||||
#define GL_STATIC_DRAW 0x88E4
|
||||
#define GL_TEXTURE_2D 0x0DE1
|
||||
#define GL_TEXTURE0 0x84C0
|
||||
#define GL_RGBA 0x1908
|
||||
#define GL_RGBA8 0x8058
|
||||
#define GL_DEPTH_COMPONENT24 0x81A6
|
||||
#define GL_TEXTURE_MIN_FILTER 0x2801
|
||||
#define GL_TEXTURE_MAG_FILTER 0x2800
|
||||
#define GL_NEAREST 0x2600
|
||||
#define GL_NEAREST_MIPMAP_LINEAR 0x2702
|
||||
#define GL_DEPTH_TEST 0x0B71
|
||||
#define GL_BLEND 0x0BE2
|
||||
#define GL_SRC_ALPHA 0x0302
|
||||
#define GL_ONE_MINUS_SRC_ALPHA 0x0303
|
||||
#define GL_ONE 1
|
||||
#define GL_ZERO 0
|
||||
#define GL_VERTEX_SHADER 0x8B31
|
||||
#define GL_FRAGMENT_SHADER 0x8B30
|
||||
#define GL_COMPILE_STATUS 0x8B81
|
||||
#define GL_LINK_STATUS 0x8B82
|
||||
#define GL_VERSION 0x1F02
|
||||
#define GL_RENDERER 0x1F01
|
||||
#define GL_NO_ERROR 0
|
||||
#define GL_FRAMEBUFFER 0x8D40
|
||||
#define GL_RENDERBUFFER 0x8D41
|
||||
#define GL_COLOR_ATTACHMENT0 0x8CE0
|
||||
#define GL_DEPTH_ATTACHMENT 0x8D00
|
||||
#define GL_FRAMEBUFFER_COMPLETE 0x8CD5
|
||||
#define GL_SYNC_GPU_COMMANDS_COMPLETE 0x9117
|
||||
#define GL_SYNC_FLUSH_COMMANDS_BIT 0x00000001
|
||||
#define GL_UNIFORM_BUFFER 0x8A11
|
||||
#define GL_UNIFORM_BUFFER_OFFSET_ALIGNMENT 0x8A34
|
||||
#define GL_DYNAMIC_DRAW 0x88E8
|
||||
#define GL_STREAM_DRAW 0x88E0
|
||||
#define GL_UNPACK_ALIGNMENT 0x0CF5
|
||||
#define GL_UNPACK_ROW_LENGTH 0x0CF2
|
||||
#define GL_UNPACK_SKIP_ROWS 0x0CF3
|
||||
#define GL_UNPACK_SKIP_PIXELS 0x0CF4
|
||||
#define GL_TEXTURE_WRAP_S 0x2802
|
||||
#define GL_TEXTURE_WRAP_T 0x2803
|
||||
#define GL_CLAMP_TO_EDGE 0x812F
|
||||
#define GL_REPEAT 0x2901
|
||||
|
||||
typedef unsigned int GLuint;
|
||||
typedef int GLint;
|
||||
typedef int GLsizei;
|
||||
typedef unsigned int GLenum;
|
||||
typedef char GLchar;
|
||||
typedef unsigned char GLboolean;
|
||||
typedef long GLsizeiptr;
|
||||
typedef long GLintptr;
|
||||
|
||||
/* ---- resolved entry points ---- */
|
||||
static void* (*g_eglGetProcAddress)(const char*);
|
||||
static void* g_provider;
|
||||
|
||||
#define GLF(ret, name, args) static ret(*name) args;
|
||||
GLF(void, glClear, (unsigned))
|
||||
GLF(void, glClearColor, (float, float, float, float))
|
||||
GLF(void, glEnable, (GLenum))
|
||||
GLF(void, glDisable, (GLenum))
|
||||
GLF(void, glBlendFuncSeparate, (GLenum, GLenum, GLenum, GLenum))
|
||||
GLF(void, glDrawBuffers, (GLsizei, const GLenum*))
|
||||
GLF(void, glViewport, (GLint, GLint, GLsizei, GLsizei))
|
||||
GLF(const unsigned char*, glGetString, (GLenum))
|
||||
GLF(GLenum, glGetError, (void))
|
||||
GLF(void, glFinish, (void))
|
||||
GLF(void, glFlush, (void))
|
||||
GLF(void, glGenBuffers, (GLsizei, GLuint*))
|
||||
GLF(void, glBindBuffer, (GLenum, GLuint))
|
||||
GLF(void, glBufferData, (GLenum, GLsizeiptr, const void*, GLenum))
|
||||
GLF(void, glBufferSubData, (GLenum, GLintptr, GLsizeiptr, const void*))
|
||||
GLF(void, glGenVertexArrays, (GLsizei, GLuint*))
|
||||
GLF(void, glBindVertexArray, (GLuint))
|
||||
GLF(void, glEnableVertexAttribArray, (GLuint))
|
||||
GLF(void, glVertexAttribPointer, (GLuint, GLint, GLenum, GLboolean, GLsizei, const void*))
|
||||
GLF(void, glGenTextures, (GLsizei, GLuint*))
|
||||
GLF(void, glBindTexture, (GLenum, GLuint))
|
||||
GLF(void, glActiveTexture, (GLenum))
|
||||
GLF(void, glTexImage2D, (GLenum, GLint, GLint, GLsizei, GLsizei, GLint, GLenum, GLenum, const void*))
|
||||
GLF(void, glTexSubImage2D, (GLenum, GLint, GLint, GLint, GLsizei, GLsizei, GLenum, GLenum, const void*))
|
||||
GLF(void, glTexParameteri, (GLenum, GLenum, GLint))
|
||||
GLF(void, glPixelStorei, (GLenum, GLint))
|
||||
GLF(void, glGetIntegerv, (GLenum, GLint*))
|
||||
GLF(void, glGenerateMipmap, (GLenum))
|
||||
GLF(GLuint, glCreateShader, (GLenum))
|
||||
GLF(void, glShaderSource, (GLuint, GLsizei, const GLchar* const*, const GLint*))
|
||||
GLF(void, glCompileShader, (GLuint))
|
||||
GLF(void, glGetShaderiv, (GLuint, GLenum, GLint*))
|
||||
GLF(void, glGetShaderInfoLog, (GLuint, GLsizei, GLsizei*, GLchar*))
|
||||
GLF(GLuint, glCreateProgram, (void))
|
||||
GLF(void, glAttachShader, (GLuint, GLuint))
|
||||
GLF(void, glLinkProgram, (GLuint))
|
||||
GLF(void, glGetProgramiv, (GLuint, GLenum, GLint*))
|
||||
GLF(void, glUseProgram, (GLuint))
|
||||
GLF(GLint, glGetUniformLocation, (GLuint, const GLchar*))
|
||||
GLF(void, glUniform1i, (GLint, GLint))
|
||||
GLF(void, glUniform3f, (GLint, float, float, float))
|
||||
GLF(void, glUniformMatrix4fv, (GLint, GLsizei, GLboolean, const float*))
|
||||
GLF(void, glDrawElements, (GLenum, GLsizei, GLenum, const void*))
|
||||
GLF(void, glBindAttribLocation, (GLuint, GLuint, const GLchar*))
|
||||
GLF(void, glUniform3fv, (GLint, GLsizei, const float*))
|
||||
GLF(void, glDrawArrays, (GLenum, GLint, GLsizei))
|
||||
GLF(void, glDrawElementsBaseVertex, (GLenum, GLsizei, GLenum, const void*, GLint))
|
||||
GLF(void, glMultiDrawElementsBaseVertex,
|
||||
(GLenum, const GLsizei*, GLenum, const void* const*, GLsizei, const GLint*))
|
||||
GLF(void, glBindBufferRange, (GLenum, GLuint, GLuint, GLintptr, GLsizeiptr))
|
||||
GLF(void, glBindBufferBase, (GLenum, GLuint, GLuint))
|
||||
GLF(GLuint, glGetUniformBlockIndex, (GLuint, const GLchar*))
|
||||
GLF(void, glUniformBlockBinding, (GLuint, GLuint, GLuint))
|
||||
GLF(void, glGenSamplers, (GLsizei, GLuint*))
|
||||
GLF(void, glBindSampler, (GLuint, GLuint))
|
||||
GLF(void, glSamplerParameteri, (GLuint, GLenum, GLint))
|
||||
GLF(void, glGenFramebuffers, (GLsizei, GLuint*))
|
||||
GLF(void, glBindFramebuffer, (GLenum, GLuint))
|
||||
GLF(void, glGenRenderbuffers, (GLsizei, GLuint*))
|
||||
GLF(void, glBindRenderbuffer, (GLenum, GLuint))
|
||||
GLF(void, glRenderbufferStorage, (GLenum, GLenum, GLsizei, GLsizei))
|
||||
GLF(void, glFramebufferRenderbuffer, (GLenum, GLenum, GLenum, GLuint))
|
||||
GLF(GLenum, glCheckFramebufferStatus, (GLenum))
|
||||
GLF(void*, glFenceSync, (GLenum, unsigned))
|
||||
GLF(GLenum, glClientWaitSync, (void*, unsigned, unsigned long long))
|
||||
GLF(void, glDeleteSync, (void*))
|
||||
|
||||
static uint64_t now_ns(void) {
|
||||
struct timespec ts;
|
||||
clock_gettime(CLOCK_MONOTONIC, &ts);
|
||||
return (uint64_t)ts.tv_sec * 1000000000ull + (uint64_t)ts.tv_nsec;
|
||||
}
|
||||
|
||||
static int cmp_u64(const void* a, const void* b) {
|
||||
uint64_t x = *(const uint64_t*)a, y = *(const uint64_t*)b;
|
||||
return x < y ? -1 : x > y;
|
||||
}
|
||||
|
||||
|
||||
/* Scene, cases and the case table live next door so the Android plugin's
|
||||
* in-process benchmark runs byte-identical bodies. */
|
||||
static void bench_gl_failed(const char* what, const char* detail) {
|
||||
fprintf(stderr, "FAIL: %s %s\n", what, detail ? detail : "");
|
||||
exit(1);
|
||||
}
|
||||
|
||||
/* GLES has glDrawElementsBaseVertex (3.2 core) but no multi-draw form of it, so
|
||||
* against a native mobile driver the multi-draw case issues the same sub-draws
|
||||
* one at a time - which is what the extension folds up, and what an application
|
||||
* without it would have to write. Desktop GL and MobileGL take the real call. */
|
||||
static void bench_multi_draw_elements_base_vertex(GLenum mode, const GLsizei* counts, GLenum type,
|
||||
const void* const* offsets, GLsizei drawCount,
|
||||
const GLint* baseVertices) {
|
||||
if (glMultiDrawElementsBaseVertex) {
|
||||
glMultiDrawElementsBaseVertex(mode, counts, type, offsets, drawCount, baseVertices);
|
||||
return;
|
||||
}
|
||||
for (GLsizei i = 0; i < drawCount; ++i) {
|
||||
glDrawElementsBaseVertex(mode, counts[i], type, offsets[i], baseVertices[i]);
|
||||
}
|
||||
}
|
||||
|
||||
#include "DriverBenchCases.inc"
|
||||
|
||||
/* ---- bench driver: fence-paced frames on the offscreen FBO ----------------
|
||||
* Frames are closed with a real fence wait, not glFinish: MobileGL implements
|
||||
* glFinish and glFlush as no-ops (MG_Impl/GLImpl/Exporting/Definitions.cpp),
|
||||
* so a glFinish-paced loop would time only the CPU-side submit on a MobileGL
|
||||
* backend while timing submit-plus-GPU on the native driver - the two numbers
|
||||
* would not describe the same work. A sync object is honoured by every stack
|
||||
* measured here.
|
||||
*/
|
||||
typedef void (*case_fn)(int frame, long a, long b);
|
||||
static int g_warmup = 30, g_frames = 120;
|
||||
|
||||
static void end_frame_wait(void) {
|
||||
if (glFenceSync && glClientWaitSync && glDeleteSync) {
|
||||
void* sync = glFenceSync(GL_SYNC_GPU_COMMANDS_COMPLETE, 0);
|
||||
if (sync) {
|
||||
glClientWaitSync(sync, GL_SYNC_FLUSH_COMMANDS_BIT, 1000000000ull);
|
||||
glDeleteSync(sync);
|
||||
return;
|
||||
}
|
||||
}
|
||||
glFinish();
|
||||
}
|
||||
|
||||
static void run_case(const char* name, case_fn body, long a, long b, long opsPerFrame) {
|
||||
static uint64_t samples[4096];
|
||||
if (g_frames > 4096) g_frames = 4096;
|
||||
end_frame_wait();
|
||||
for (int i = 0; i < g_warmup; ++i) {
|
||||
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
|
||||
body(i, a, b);
|
||||
end_frame_wait();
|
||||
}
|
||||
for (int i = 0; i < g_frames; ++i) {
|
||||
uint64_t t0 = now_ns();
|
||||
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
|
||||
body(i, a, b);
|
||||
end_frame_wait();
|
||||
samples[i] = now_ns() - t0;
|
||||
}
|
||||
qsort(samples, g_frames, sizeof(uint64_t), cmp_u64);
|
||||
uint64_t med = samples[g_frames / 2];
|
||||
double frameMs = med / 1e6;
|
||||
double nsPerOp = opsPerFrame > 0 ? (double)med / (double)opsPerFrame : 0.0;
|
||||
printf("%s,%d,%ld,%.3f,%.1f,%.1f\n", name, g_frames, opsPerFrame, frameMs, nsPerOp,
|
||||
1e9 / (double)med);
|
||||
fflush(stdout);
|
||||
if (glGetError() != GL_NO_ERROR) fprintf(stderr, "WARN: GL error after %s\n", name);
|
||||
}
|
||||
|
||||
/* A display that needs no window system. eglGetPlatformDisplay is EGL 1.5
|
||||
* core and eglGetPlatformDisplayEXT is the EGL_EXT_platform_base spelling
|
||||
* older loaders ship; both are client entry points, so they resolve before
|
||||
* any display exists. Only the attribute-list types differ between the two
|
||||
* and this passes none, so one cast covers both. */
|
||||
static EGLDisplay surfaceless_display(void) {
|
||||
void* fn = dlsym(g_provider, "eglGetPlatformDisplay");
|
||||
if (!fn) fn = g_eglGetProcAddress("eglGetPlatformDisplay");
|
||||
if (!fn) fn = dlsym(g_provider, "eglGetPlatformDisplayEXT");
|
||||
if (!fn) fn = g_eglGetProcAddress("eglGetPlatformDisplayEXT");
|
||||
if (!fn) return NULL;
|
||||
return ((EGLDisplay(*)(EGLenum, void*, const void*))fn)(EGL_PLATFORM_SURFACELESS_MESA,
|
||||
EGL_DEFAULT_DISPLAY, NULL);
|
||||
}
|
||||
|
||||
/* ---- EGL bootstrap: one provider library, pbuffer, desktop-GL context ---- */
|
||||
static int boot_egl(void) {
|
||||
const char* libpath = getenv("DRIVERBENCH_EGL_LIB");
|
||||
if (!libpath) libpath = "libEGL.so.1";
|
||||
g_provider = dlopen(libpath, RTLD_LAZY | RTLD_LOCAL);
|
||||
if (!g_provider) {
|
||||
fprintf(stderr, "FAIL: dlopen %s: %s\n", libpath, dlerror());
|
||||
return 1;
|
||||
}
|
||||
#define ESYM(name) \
|
||||
void* p_##name = dlsym(g_provider, #name); \
|
||||
if (!p_##name) { fprintf(stderr, "FAIL: dlsym %s\n", #name); return 1; }
|
||||
ESYM(eglGetDisplay)
|
||||
ESYM(eglInitialize)
|
||||
ESYM(eglChooseConfig)
|
||||
ESYM(eglBindAPI)
|
||||
ESYM(eglCreateContext)
|
||||
ESYM(eglCreatePbufferSurface)
|
||||
ESYM(eglMakeCurrent)
|
||||
ESYM(eglGetProcAddress)
|
||||
ESYM(eglGetError)
|
||||
g_eglGetProcAddress = (void* (*)(const char*))p_eglGetProcAddress;
|
||||
|
||||
EGLint (*getError)(void) = (EGLint(*)(void))p_eglGetError;
|
||||
EGLBoolean (*initialize)(EGLDisplay, EGLint*, EGLint*) =
|
||||
(EGLBoolean(*)(EGLDisplay, EGLint*, EGLint*))p_eglInitialize;
|
||||
|
||||
/* The default display first: it is the one a windowed app would get, and
|
||||
* on a desktop it is the one that reaches the real GPU - which is the
|
||||
* driver this bench exists to measure. It does need a window system,
|
||||
* though; Mesa's default platform is X11, so with no $DISPLAY (CI, a
|
||||
* build server, ssh without forwarding) eglInitialize fails. Fall back to
|
||||
* EGL_MESA_platform_surfaceless rather than give up: every case draws into
|
||||
* the FBO built by build_resources(), so no window is needed for any of
|
||||
* the work being timed. */
|
||||
EGLint maj = 0, min = 0;
|
||||
const char* how = "default display";
|
||||
EGLDisplay dpy = ((EGLDisplay(*)(void*))p_eglGetDisplay)(EGL_DEFAULT_DISPLAY);
|
||||
if (!dpy || !initialize(dpy, &maj, &min)) {
|
||||
dpy = surfaceless_display();
|
||||
how = "surfaceless display";
|
||||
if (!dpy || !initialize(dpy, &maj, &min)) {
|
||||
fprintf(stderr, "FAIL: eglInitialize (0x%x)\n", getError());
|
||||
return 1;
|
||||
}
|
||||
}
|
||||
fprintf(stderr, "EGL %d.%d via %s (%s)\n", maj, min, libpath, how);
|
||||
|
||||
// Desktop GL first (that is what MobileGL exposes and what the cases are
|
||||
// written against), GLES 3 second so the same binary can measure a device's
|
||||
// native driver as the baseline. The .inc picks ESSL shader sources when the
|
||||
// context turns out to be ES.
|
||||
EGLBoolean (*chooseConfig)(EGLDisplay, const EGLint*, EGLConfig*, EGLint, EGLint*) =
|
||||
(EGLBoolean(*)(EGLDisplay, const EGLint*, EGLConfig*, EGLint, EGLint*))p_eglChooseConfig;
|
||||
EGLContext (*createContext)(EGLDisplay, EGLConfig, EGLContext, const EGLint*) =
|
||||
(EGLContext(*)(EGLDisplay, EGLConfig, EGLContext, const EGLint*))p_eglCreateContext;
|
||||
EGLBoolean (*bindApi)(EGLenum) = (EGLBoolean(*)(EGLenum))p_eglBindAPI;
|
||||
|
||||
EGLConfig cfg = NULL;
|
||||
EGLint ncfg = 0;
|
||||
EGLContext ctx = EGL_NO_CONTEXT;
|
||||
|
||||
if (bindApi(EGL_OPENGL_API)) {
|
||||
const EGLint cfgAttribs[] = {EGL_SURFACE_TYPE, EGL_PBUFFER_BIT, EGL_RED_SIZE, 8,
|
||||
EGL_DEPTH_SIZE, 24, EGL_RENDERABLE_TYPE, EGL_OPENGL_BIT, EGL_NONE};
|
||||
if (chooseConfig(dpy, cfgAttribs, &cfg, 1, &ncfg) && ncfg >= 1) {
|
||||
const EGLint ctxAttribs[] = {EGL_CONTEXT_MAJOR_VERSION, 3, EGL_CONTEXT_MINOR_VERSION, 2,
|
||||
EGL_CONTEXT_OPENGL_PROFILE_MASK,
|
||||
EGL_CONTEXT_OPENGL_CORE_PROFILE_BIT, EGL_NONE};
|
||||
ctx = createContext(dpy, cfg, EGL_NO_CONTEXT, ctxAttribs);
|
||||
if (ctx == EGL_NO_CONTEXT) ctx = createContext(dpy, cfg, EGL_NO_CONTEXT, NULL);
|
||||
}
|
||||
}
|
||||
if (ctx == EGL_NO_CONTEXT) {
|
||||
if (!bindApi(EGL_OPENGL_ES_API)) {
|
||||
fprintf(stderr, "FAIL: neither OpenGL nor OpenGL ES is bindable on this provider\n");
|
||||
return 1;
|
||||
}
|
||||
const EGLint esCfgAttribs[] = {EGL_SURFACE_TYPE, EGL_PBUFFER_BIT, EGL_RED_SIZE, 8,
|
||||
EGL_GREEN_SIZE, 8, EGL_BLUE_SIZE, 8, EGL_DEPTH_SIZE, 24,
|
||||
EGL_RENDERABLE_TYPE, EGL_OPENGL_ES3_BIT, EGL_NONE};
|
||||
ncfg = 0;
|
||||
if (!chooseConfig(dpy, esCfgAttribs, &cfg, 1, &ncfg) || ncfg < 1) {
|
||||
// EGL_SURFACE_TYPE 0 matches any config: a stack that offers no
|
||||
// pbuffer at all is still usable through the surfaceless context
|
||||
// path below.
|
||||
const EGLint relaxed[] = {EGL_SURFACE_TYPE, 0, EGL_RED_SIZE, 8, EGL_NONE};
|
||||
if (!chooseConfig(dpy, relaxed, &cfg, 1, &ncfg) || ncfg < 1) {
|
||||
fprintf(stderr, "FAIL: eglChooseConfig\n");
|
||||
return 1;
|
||||
}
|
||||
}
|
||||
const EGLint esCtxAttribs[] = {EGL_CONTEXT_CLIENT_VERSION, 3, EGL_NONE};
|
||||
ctx = createContext(dpy, cfg, EGL_NO_CONTEXT, esCtxAttribs);
|
||||
}
|
||||
if (ctx == EGL_NO_CONTEXT) {
|
||||
fprintf(stderr, "FAIL: eglCreateContext (0x%x)\n", getError());
|
||||
return 1;
|
||||
}
|
||||
|
||||
/* The pbuffer only exists to have something to make current - nothing is
|
||||
* ever drawn to it. Where there is no pbuffer config, EGL_NO_SURFACE is
|
||||
* exactly what EGL_KHR_surfaceless_context takes, so the same call covers
|
||||
* both. */
|
||||
const EGLint pbAttribs[] = {EGL_WIDTH, 64, EGL_HEIGHT, 64, EGL_NONE};
|
||||
EGLSurface surf = ((EGLSurface(*)(EGLDisplay, EGLConfig, const EGLint*))p_eglCreatePbufferSurface)(
|
||||
dpy, cfg, pbAttribs);
|
||||
if (surf == EGL_NO_SURFACE)
|
||||
fprintf(stderr, "no pbuffer (0x%x), using a surfaceless context\n", getError());
|
||||
if (!((EGLBoolean(*)(EGLDisplay, EGLSurface, EGLSurface, EGLContext))p_eglMakeCurrent)(dpy, surf,
|
||||
surf, ctx)) {
|
||||
fprintf(stderr, "FAIL: eglMakeCurrent (0x%x)\n", getError());
|
||||
return 1;
|
||||
}
|
||||
|
||||
/* Core GL entry points: eglGetProcAddress first (EGL 1.5 serves core
|
||||
* functions), provider dlsym as fallback (both glvnd and MobileGL export
|
||||
* the gl* symbols directly). */
|
||||
#define RESOLVE(name) \
|
||||
do { \
|
||||
*(void**)&name = g_eglGetProcAddress(#name); \
|
||||
if (!name) *(void**)&name = dlsym(g_provider, #name); \
|
||||
if (!name) { fprintf(stderr, "FAIL: resolve %s\n", #name); return 1; } \
|
||||
} while (0)
|
||||
RESOLVE(glClear); RESOLVE(glClearColor); RESOLVE(glEnable); RESOLVE(glViewport);
|
||||
RESOLVE(glDisable); RESOLVE(glBlendFuncSeparate); RESOLVE(glDrawBuffers);
|
||||
RESOLVE(glGetString); RESOLVE(glGetError); RESOLVE(glFinish); RESOLVE(glFlush);
|
||||
RESOLVE(glGenBuffers); RESOLVE(glBindBuffer); RESOLVE(glBufferData); RESOLVE(glBufferSubData);
|
||||
RESOLVE(glGenVertexArrays); RESOLVE(glBindVertexArray); RESOLVE(glEnableVertexAttribArray);
|
||||
RESOLVE(glVertexAttribPointer); RESOLVE(glGenTextures); RESOLVE(glBindTexture);
|
||||
RESOLVE(glActiveTexture); RESOLVE(glTexImage2D); RESOLVE(glTexSubImage2D);
|
||||
RESOLVE(glTexParameteri); RESOLVE(glGenerateMipmap); RESOLVE(glCreateShader);
|
||||
RESOLVE(glPixelStorei); RESOLVE(glGetIntegerv);
|
||||
RESOLVE(glShaderSource); RESOLVE(glCompileShader); RESOLVE(glGetShaderiv);
|
||||
RESOLVE(glGetShaderInfoLog); RESOLVE(glCreateProgram); RESOLVE(glAttachShader);
|
||||
RESOLVE(glLinkProgram); RESOLVE(glGetProgramiv); RESOLVE(glUseProgram);
|
||||
RESOLVE(glGetUniformLocation); RESOLVE(glUniform1i); RESOLVE(glUniform3f);
|
||||
RESOLVE(glUniformMatrix4fv); RESOLVE(glDrawElements); RESOLVE(glBindAttribLocation);
|
||||
RESOLVE(glUniform3fv); RESOLVE(glDrawArrays); RESOLVE(glDrawElementsBaseVertex);
|
||||
RESOLVE(glBindBufferRange); RESOLVE(glBindBufferBase);
|
||||
RESOLVE(glGetUniformBlockIndex); RESOLVE(glUniformBlockBinding);
|
||||
RESOLVE(glGenSamplers); RESOLVE(glBindSampler); RESOLVE(glSamplerParameteri);
|
||||
RESOLVE(glGenFramebuffers); RESOLVE(glBindFramebuffer); RESOLVE(glGenRenderbuffers);
|
||||
RESOLVE(glBindRenderbuffer); RESOLVE(glRenderbufferStorage); RESOLVE(glFramebufferRenderbuffer);
|
||||
RESOLVE(glCheckFramebufferStatus);
|
||||
// Optional: end_frame_wait() falls back to glFinish when a stack has no
|
||||
// sync objects, so resolve without failing the run.
|
||||
*(void**)&glFenceSync = g_eglGetProcAddress("glFenceSync");
|
||||
if (!glFenceSync) *(void**)&glFenceSync = dlsym(g_provider, "glFenceSync");
|
||||
*(void**)&glClientWaitSync = g_eglGetProcAddress("glClientWaitSync");
|
||||
if (!glClientWaitSync) *(void**)&glClientWaitSync = dlsym(g_provider, "glClientWaitSync");
|
||||
*(void**)&glDeleteSync = g_eglGetProcAddress("glDeleteSync");
|
||||
if (!glDeleteSync) *(void**)&glDeleteSync = dlsym(g_provider, "glDeleteSync");
|
||||
// Desktop-only: GLES 3.2 has DrawElementsBaseVertex but no multi-draw form,
|
||||
// so bench_multi_draw_elements_base_vertex() emulates it when this is null.
|
||||
*(void**)&glMultiDrawElementsBaseVertex = g_eglGetProcAddress("glMultiDrawElementsBaseVertex");
|
||||
if (!glMultiDrawElementsBaseVertex)
|
||||
*(void**)&glMultiDrawElementsBaseVertex = dlsym(g_provider, "glMultiDrawElementsBaseVertex");
|
||||
|
||||
fprintf(stderr, "renderer: %s\n", glGetString(GL_RENDERER));
|
||||
fprintf(stderr, "version: %s\n", glGetString(GL_VERSION));
|
||||
return 0;
|
||||
}
|
||||
|
||||
int main(int argc, char** argv) {
|
||||
long draws = 2048;
|
||||
if (getenv("DRIVERBENCH_DRAWS")) draws = atol(getenv("DRIVERBENCH_DRAWS"));
|
||||
if (getenv("DRIVERBENCH_FRAMES")) g_frames = atoi(getenv("DRIVERBENCH_FRAMES"));
|
||||
if (getenv("DRIVERBENCH_SPRITES")) g_mixSprites = atol(getenv("DRIVERBENCH_SPRITES"));
|
||||
|
||||
if (boot_egl()) return 1;
|
||||
build_resources();
|
||||
|
||||
printf("case,frames,ops_per_frame,median_frame_ms,ns_per_op,fps\n");
|
||||
for (int i = 0; i < kBenchCaseCount; ++i) {
|
||||
const BenchCaseDesc* c = &kBenchCases[i];
|
||||
if (argc > 1) {
|
||||
int wanted = 0;
|
||||
for (int j = 1; j < argc; ++j)
|
||||
if (strcmp(argv[j], c->name) == 0) wanted = 1;
|
||||
if (!wanted) continue;
|
||||
}
|
||||
// The generic cases scale with DRIVERBENCH_DRAWS; the mc_* rates are
|
||||
// measured and must not move, or the numbers stop being comparable.
|
||||
long a = c->a, ops = c->opsPerFrame;
|
||||
if (strncmp(c->name, "mc_", 3) != 0 && a > 100) {
|
||||
a = draws * a / 2048;
|
||||
ops = c->opsPerFrame * draws / 2048;
|
||||
}
|
||||
run_case(c->name, c->fn, a, c->b, ops);
|
||||
}
|
||||
return 0;
|
||||
}
|
||||
@@ -0,0 +1,640 @@
|
||||
/* MobileGL - MobileGL/MG_Benchmark/Driver/DriverBenchCases.inc
|
||||
* Copyright (c) 2025-2026 MobileGL-Dev
|
||||
* Licensed under the GNU Lesser General Public License v3.0:
|
||||
* https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
* https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
* SPDX-License-Identifier: LGPL-3.0-only
|
||||
* End of Source File Header
|
||||
*
|
||||
* The benchmark scene and its cases, with no harness and no GL loader: the
|
||||
* includer supplies both. DriverBench.c drives it through function pointers
|
||||
* resolved from one EGL provider; MG_Util/SelfTest/DriverBenchJni.cpp drives
|
||||
* it through MobileGL's own frontend entry points inside the Android plugin.
|
||||
* Sharing the bodies is the point - a number from the phone and a number from
|
||||
* the desktop have to describe the same work.
|
||||
*
|
||||
* The includer must have declared, before including this file: the GL types
|
||||
* and enums used below, and callable gl* entry points with the standard
|
||||
* signatures. bench_gl_failed() is called (and must be defined) when shader
|
||||
* compilation or linking fails, so a caller can report the failure instead of
|
||||
* dying inside a benchmark.
|
||||
*/
|
||||
|
||||
/* ---- shared scene resources (Minecraft-shaped) ---- */
|
||||
#define MAX_SECTIONS 512
|
||||
static GLuint g_progChunk, g_progEntity;
|
||||
static GLint g_uOffsetChunk, g_uMvpChunk, g_uMvpEntity;
|
||||
static GLuint g_vao[MAX_SECTIONS], g_vbo[MAX_SECTIONS];
|
||||
static GLuint g_sharedIbo;
|
||||
static GLuint g_texAtlas, g_texLight, g_texEntity;
|
||||
static int g_quadsPerSection = 128; /* 128 quads = 512 verts, 768 indices */
|
||||
static unsigned char* g_scratch;
|
||||
/* Uniform ring + sampler for the 26.2-shaped cases (see the case block below). */
|
||||
static GLuint g_uboRing;
|
||||
static GLint g_uboAlign = 256;
|
||||
static size_t g_uboSlot = 256;
|
||||
static GLuint g_sampler;
|
||||
/* Two small offscreen targets for the 26.2-style render-pass churn case. */
|
||||
static GLuint g_passFbo[2];
|
||||
static GLuint g_passColor[2];
|
||||
static float g_mvp[16] = {0.002f, 0, 0, 0, 0, 0.002f, 0, 0, 0, 0, -0.001f, 0, -1.f, -1.f, 0.f, 1.f};
|
||||
|
||||
/* Minecraft chunk vertex: pos 3f, color 4ub, uv 2f, packed light 2s -> 32 B */
|
||||
#define VERT_STRIDE 32
|
||||
static void fill_section_vertices(unsigned char* dst, int quads, unsigned seed) {
|
||||
for (int q = 0; q < quads * 4; ++q) {
|
||||
float* f = (float*)(dst + q * VERT_STRIDE);
|
||||
unsigned r = seed = seed * 1664525u + 1013904223u;
|
||||
f[0] = (float)(q & 31) * 8.0f + (float)(r & 7);
|
||||
f[1] = (float)((q >> 5) & 31) * 8.0f;
|
||||
f[2] = (float)(q % 7) * 0.1f;
|
||||
dst[q * VERT_STRIDE + 12] = (unsigned char)r;
|
||||
dst[q * VERT_STRIDE + 13] = (unsigned char)(r >> 8);
|
||||
dst[q * VERT_STRIDE + 14] = (unsigned char)(r >> 16);
|
||||
dst[q * VERT_STRIDE + 15] = 255;
|
||||
f[4] = (float)(r & 1023) / 1024.0f;
|
||||
f[5] = (float)((r >> 10) & 511) / 512.0f;
|
||||
((short*)(dst + q * VERT_STRIDE + 24))[0] = 15 << 4;
|
||||
((short*)(dst + q * VERT_STRIDE + 24))[1] = 15 << 4;
|
||||
}
|
||||
}
|
||||
|
||||
static GLuint make_shader(GLenum kind, const char* src) {
|
||||
GLuint sh = glCreateShader(kind);
|
||||
glShaderSource(sh, 1, &src, NULL);
|
||||
glCompileShader(sh);
|
||||
GLint ok = 0;
|
||||
glGetShaderiv(sh, GL_COMPILE_STATUS, &ok);
|
||||
if (!ok) {
|
||||
char log[1024];
|
||||
glGetShaderInfoLog(sh, sizeof log, NULL, log);
|
||||
bench_gl_failed("shader compile", log);
|
||||
return 0;
|
||||
}
|
||||
return sh;
|
||||
}
|
||||
|
||||
static GLuint make_program(const char* vs_src, const char* fs_src) {
|
||||
GLuint prog = glCreateProgram();
|
||||
glAttachShader(prog, make_shader(GL_VERTEX_SHADER, vs_src));
|
||||
glAttachShader(prog, make_shader(GL_FRAGMENT_SHADER, fs_src));
|
||||
glBindAttribLocation(prog, 0, "aPos");
|
||||
glBindAttribLocation(prog, 1, "aColor");
|
||||
glBindAttribLocation(prog, 2, "aUv");
|
||||
glBindAttribLocation(prog, 3, "aLight");
|
||||
glLinkProgram(prog);
|
||||
GLint ok = 0;
|
||||
glGetProgramiv(prog, GL_LINK_STATUS, &ok);
|
||||
if (!ok) {
|
||||
bench_gl_failed("program link", "");
|
||||
return 0;
|
||||
}
|
||||
return prog;
|
||||
}
|
||||
|
||||
static const char* kChunkVs =
|
||||
"#version 150 core\n"
|
||||
"in vec3 aPos; in vec4 aColor; in vec2 aUv; in vec2 aLight;\n"
|
||||
"uniform mat4 uMvp; uniform vec3 uOffset;\n"
|
||||
"out vec4 vColor; out vec2 vUv; out vec2 vLight;\n"
|
||||
"void main(){ gl_Position = uMvp * vec4(aPos + uOffset, 1.0);\n"
|
||||
" vColor = aColor; vUv = aUv; vLight = aLight * (1.0/256.0); }\n";
|
||||
static const char* kChunkFs =
|
||||
"#version 150 core\n"
|
||||
"in vec4 vColor; in vec2 vUv; in vec2 vLight; out vec4 o;\n"
|
||||
"uniform sampler2D uAtlas; uniform sampler2D uLight;\n"
|
||||
"void main(){ o = texture(uAtlas, vUv) * vColor * texture(uLight, vLight); }\n";
|
||||
static const char* kEntityVs =
|
||||
"#version 150 core\n"
|
||||
"in vec3 aPos; in vec4 aColor; in vec2 aUv; in vec2 aLight;\n"
|
||||
"uniform mat4 uMvp; uniform mat4 uModel;\n"
|
||||
"out vec4 vColor; out vec2 vUv;\n"
|
||||
"void main(){ gl_Position = uMvp * uModel * vec4(aPos, 1.0); vColor = aColor; vUv = aUv; }\n";
|
||||
static const char* kEntityFs =
|
||||
"#version 150 core\n"
|
||||
"in vec4 vColor; in vec2 vUv; out vec4 o; uniform sampler2D uTex;\n"
|
||||
"void main(){ o = texture(uTex, vUv) * vColor; }\n";
|
||||
|
||||
// ESSL 3.20 twins of the four shaders above. The bodies are identical; only the
|
||||
// version line and the precision qualifiers differ, so the two paths compile the
|
||||
// same work. Needed because this bench also runs against a device's native GLES
|
||||
// driver as the baseline MobileGL is measured against, and that driver rejects
|
||||
// desktop GLSL - while MobileGL is fed desktop GLSL on purpose, since translating
|
||||
// it is the thing under test.
|
||||
static const char* kChunkVsEs =
|
||||
"#version 320 es\n"
|
||||
"precision highp float;\n"
|
||||
"in vec3 aPos; in vec4 aColor; in vec2 aUv; in vec2 aLight;\n"
|
||||
"uniform mat4 uMvp; uniform vec3 uOffset;\n"
|
||||
"out vec4 vColor; out vec2 vUv; out vec2 vLight;\n"
|
||||
"void main(){ gl_Position = uMvp * vec4(aPos + uOffset, 1.0);\n"
|
||||
" vColor = aColor; vUv = aUv; vLight = aLight * (1.0/256.0); }\n";
|
||||
static const char* kChunkFsEs =
|
||||
"#version 320 es\n"
|
||||
"precision mediump float;\n"
|
||||
"in vec4 vColor; in vec2 vUv; in vec2 vLight; out vec4 o;\n"
|
||||
"uniform sampler2D uAtlas; uniform sampler2D uLight;\n"
|
||||
"void main(){ o = texture(uAtlas, vUv) * vColor * texture(uLight, vLight); }\n";
|
||||
static const char* kEntityVsEs =
|
||||
"#version 320 es\n"
|
||||
"precision highp float;\n"
|
||||
"in vec3 aPos; in vec4 aColor; in vec2 aUv; in vec2 aLight;\n"
|
||||
"uniform mat4 uMvp; uniform mat4 uModel;\n"
|
||||
"out vec4 vColor; out vec2 vUv;\n"
|
||||
"void main(){ gl_Position = uMvp * uModel * vec4(aPos, 1.0); vColor = aColor; vUv = aUv; }\n";
|
||||
static const char* kEntityFsEs =
|
||||
"#version 320 es\n"
|
||||
"precision mediump float;\n"
|
||||
"in vec4 vColor; in vec2 vUv; out vec4 o; uniform sampler2D uTex;\n"
|
||||
"void main(){ o = texture(uTex, vUv) * vColor; }\n";
|
||||
|
||||
// True once build_resources() has seen a GL_VERSION beginning with "OpenGL ES".
|
||||
static int g_isGlesContext = 0;
|
||||
|
||||
static void setup_vao(GLuint vao, GLuint vbo, GLuint ibo) {
|
||||
glBindVertexArray(vao);
|
||||
glBindBuffer(GL_ARRAY_BUFFER, vbo);
|
||||
glEnableVertexAttribArray(0);
|
||||
glEnableVertexAttribArray(1);
|
||||
glEnableVertexAttribArray(2);
|
||||
glEnableVertexAttribArray(3);
|
||||
glVertexAttribPointer(0, 3, GL_FLOAT, 0, VERT_STRIDE, (void*)0);
|
||||
glVertexAttribPointer(1, 4, GL_UNSIGNED_BYTE, 1, VERT_STRIDE, (void*)12);
|
||||
glVertexAttribPointer(2, 2, GL_FLOAT, 0, VERT_STRIDE, (void*)16);
|
||||
glVertexAttribPointer(3, 2, GL_SHORT, 0, VERT_STRIDE, (void*)24);
|
||||
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, ibo);
|
||||
}
|
||||
|
||||
static GLuint g_mainFbo;
|
||||
|
||||
static void build_resources(void) {
|
||||
/* offscreen render target: 1280x720 RBO FBO, like CTS fbo surface mode */
|
||||
GLuint fbo, rboColor, rboDepth;
|
||||
glGenFramebuffers(1, &fbo);
|
||||
g_mainFbo = fbo;
|
||||
glBindFramebuffer(GL_FRAMEBUFFER, fbo);
|
||||
glGenRenderbuffers(1, &rboColor);
|
||||
glBindRenderbuffer(GL_RENDERBUFFER, rboColor);
|
||||
glRenderbufferStorage(GL_RENDERBUFFER, GL_RGBA8, 1280, 720);
|
||||
glFramebufferRenderbuffer(GL_FRAMEBUFFER, GL_COLOR_ATTACHMENT0, GL_RENDERBUFFER, rboColor);
|
||||
glGenRenderbuffers(1, &rboDepth);
|
||||
glBindRenderbuffer(GL_RENDERBUFFER, rboDepth);
|
||||
glRenderbufferStorage(GL_RENDERBUFFER, GL_DEPTH_COMPONENT24, 1280, 720);
|
||||
glFramebufferRenderbuffer(GL_FRAMEBUFFER, GL_DEPTH_ATTACHMENT, GL_RENDERBUFFER, rboDepth);
|
||||
if (glCheckFramebufferStatus(GL_FRAMEBUFFER) != GL_FRAMEBUFFER_COMPLETE) {
|
||||
bench_gl_failed("FBO incomplete", "");
|
||||
return;
|
||||
}
|
||||
|
||||
const char* versionString = (const char*)glGetString(GL_VERSION);
|
||||
g_isGlesContext = versionString != NULL && strncmp(versionString, "OpenGL ES", 9) == 0;
|
||||
g_progChunk = g_isGlesContext ? make_program(kChunkVsEs, kChunkFsEs) : make_program(kChunkVs, kChunkFs);
|
||||
g_progEntity = g_isGlesContext ? make_program(kEntityVsEs, kEntityFsEs) : make_program(kEntityVs, kEntityFs);
|
||||
glUseProgram(g_progChunk);
|
||||
g_uMvpChunk = glGetUniformLocation(g_progChunk, "uMvp");
|
||||
g_uOffsetChunk = glGetUniformLocation(g_progChunk, "uOffset");
|
||||
glUniform1i(glGetUniformLocation(g_progChunk, "uAtlas"), 0);
|
||||
glUniform1i(glGetUniformLocation(g_progChunk, "uLight"), 2);
|
||||
glUniformMatrix4fv(g_uMvpChunk, 1, 0, g_mvp);
|
||||
glUseProgram(g_progEntity);
|
||||
g_uMvpEntity = glGetUniformLocation(g_progEntity, "uMvp");
|
||||
glUniform1i(glGetUniformLocation(g_progEntity, "uTex"), 0);
|
||||
glUniformMatrix4fv(g_uMvpEntity, 1, 0, g_mvp);
|
||||
glUseProgram(g_progChunk);
|
||||
|
||||
/* shared quad index buffer, like Blaze3D's RenderSystem shared sequences */
|
||||
int maxQuads = 4096;
|
||||
unsigned* idx = (unsigned*)malloc((size_t)maxQuads * 6 * 4);
|
||||
for (int q = 0; q < maxQuads; ++q) {
|
||||
unsigned base = q * 4;
|
||||
unsigned* p = idx + q * 6;
|
||||
p[0] = base; p[1] = base + 1; p[2] = base + 2;
|
||||
p[3] = base + 2; p[4] = base + 3; p[5] = base;
|
||||
}
|
||||
glGenBuffers(1, &g_sharedIbo);
|
||||
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, g_sharedIbo);
|
||||
glBufferData(GL_ELEMENT_ARRAY_BUFFER, maxQuads * 6 * 4, idx, GL_STATIC_DRAW);
|
||||
free(idx);
|
||||
|
||||
g_scratch = (unsigned char*)malloc(4 * 1024 * 1024);
|
||||
memset(g_scratch, 0x5a, 4 * 1024 * 1024);
|
||||
|
||||
glGenVertexArrays(MAX_SECTIONS, g_vao);
|
||||
glGenBuffers(MAX_SECTIONS, g_vbo);
|
||||
int bytes = g_quadsPerSection * 4 * VERT_STRIDE;
|
||||
for (int i = 0; i < MAX_SECTIONS; ++i) {
|
||||
fill_section_vertices(g_scratch, g_quadsPerSection, i * 7919u + 1);
|
||||
glBindBuffer(GL_ARRAY_BUFFER, g_vbo[i]);
|
||||
glBufferData(GL_ARRAY_BUFFER, bytes, g_scratch, GL_STATIC_DRAW);
|
||||
setup_vao(g_vao[i], g_vbo[i], g_sharedIbo);
|
||||
}
|
||||
|
||||
glGenTextures(1, &g_texAtlas);
|
||||
glActiveTexture(GL_TEXTURE0);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
glTexImage2D(GL_TEXTURE_2D, 0, GL_RGBA8, 1024, 512, 0, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_NEAREST_MIPMAP_LINEAR);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_NEAREST);
|
||||
glGenerateMipmap(GL_TEXTURE_2D);
|
||||
|
||||
glGenTextures(1, &g_texLight);
|
||||
glActiveTexture(GL_TEXTURE0 + 2);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texLight);
|
||||
glTexImage2D(GL_TEXTURE_2D, 0, GL_RGBA8, 16, 16, 0, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_NEAREST);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_NEAREST);
|
||||
|
||||
glGenTextures(1, &g_texEntity);
|
||||
glActiveTexture(GL_TEXTURE0);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texEntity);
|
||||
glTexImage2D(GL_TEXTURE_2D, 0, GL_RGBA8, 64, 64, 0, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_NEAREST);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_NEAREST);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
|
||||
// Uniform ring the 26.2-style case sub-ranges into, sized like a real
|
||||
// frame's worth of per-draw uniform slots.
|
||||
GLint align = 256;
|
||||
glGetIntegerv(GL_UNIFORM_BUFFER_OFFSET_ALIGNMENT, &align);
|
||||
g_uboAlign = align > 0 ? align : 256;
|
||||
g_uboSlot = (size_t)g_uboAlign;
|
||||
glGenBuffers(1, &g_uboRing);
|
||||
glBindBuffer(GL_UNIFORM_BUFFER, g_uboRing);
|
||||
glBufferData(GL_UNIFORM_BUFFER, 4 * 1024 * 1024, g_scratch, GL_DYNAMIC_DRAW);
|
||||
glBindBuffer(GL_UNIFORM_BUFFER, 0);
|
||||
|
||||
for (int i = 0; i < 2; ++i) {
|
||||
glGenFramebuffers(1, &g_passFbo[i]);
|
||||
glBindFramebuffer(GL_FRAMEBUFFER, g_passFbo[i]);
|
||||
glGenRenderbuffers(1, &g_passColor[i]);
|
||||
glBindRenderbuffer(GL_RENDERBUFFER, g_passColor[i]);
|
||||
glRenderbufferStorage(GL_RENDERBUFFER, GL_RGBA8, 256, 256);
|
||||
glFramebufferRenderbuffer(GL_FRAMEBUFFER, GL_COLOR_ATTACHMENT0, GL_RENDERBUFFER, g_passColor[i]);
|
||||
if (glCheckFramebufferStatus(GL_FRAMEBUFFER) != GL_FRAMEBUFFER_COMPLETE) {
|
||||
bench_gl_failed("pass FBO incomplete", "");
|
||||
return;
|
||||
}
|
||||
}
|
||||
/* back to the main offscreen target the harness set up */
|
||||
glBindFramebuffer(GL_FRAMEBUFFER, g_mainFbo);
|
||||
|
||||
glGenSamplers(1, &g_sampler);
|
||||
glSamplerParameteri(g_sampler, GL_TEXTURE_MIN_FILTER, GL_NEAREST);
|
||||
glSamplerParameteri(g_sampler, GL_TEXTURE_MAG_FILTER, GL_NEAREST);
|
||||
|
||||
glEnable(GL_DEPTH_TEST);
|
||||
glClearColor(0.3f, 0.5f, 0.9f, 1.0f);
|
||||
glViewport(0, 0, 1280, 720);
|
||||
const GLenum setupError = glGetError();
|
||||
if (setupError != GL_NO_ERROR) {
|
||||
char message[64];
|
||||
snprintf(message, sizeof message, "0x%04x", setupError);
|
||||
bench_gl_failed("GL error during resource setup", message);
|
||||
}
|
||||
}
|
||||
|
||||
static void case_draw_tiny(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
|
||||
static void case_draw_uniform(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glUniform3f(g_uOffsetChunk, (float)(i & 15), (float)((i >> 4) & 15), 0.0f);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
static void case_draw_multi_vao(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]);
|
||||
glUniform3f(g_uOffsetChunk, (float)(i & 15), (float)((i >> 4) & 15), 0.0f);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
static void case_tex_pingpong(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glBindTexture(GL_TEXTURE_2D, (i & 1) ? g_texEntity : g_texAtlas);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
}
|
||||
|
||||
static void case_program_pingpong(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
if (i & 1) {
|
||||
glUseProgram(g_progEntity);
|
||||
glUniformMatrix4fv(g_uMvpEntity, 1, 0, g_mvp);
|
||||
} else {
|
||||
glUseProgram(g_progChunk);
|
||||
glUniform3f(g_uOffsetChunk, (float)(i & 15), 0.0f, 0.0f);
|
||||
}
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
glUseProgram(g_progChunk);
|
||||
}
|
||||
|
||||
/* a = uploads per frame, b = bytes per upload (0 => section size) */
|
||||
static void case_chunk_upload(int frame, long a, long b) {
|
||||
if (b <= 0) b = g_quadsPerSection * 4 * VERT_STRIDE;
|
||||
if (b > 4 * 1024 * 1024) b = 4 * 1024 * 1024;
|
||||
for (long i = 0; i < a; ++i) {
|
||||
int slot = (int)(((long)frame * a + i) % MAX_SECTIONS);
|
||||
glBindBuffer(GL_ARRAY_BUFFER, g_vbo[slot]);
|
||||
glBufferData(GL_ARRAY_BUFFER, b, NULL, GL_STATIC_DRAW); /* orphan */
|
||||
glBufferSubData(GL_ARRAY_BUFFER, 0, b, g_scratch);
|
||||
glBindVertexArray(g_vao[slot]);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
/* a = sprite updates per frame */
|
||||
static void case_atlas_sprite(int frame, long a, long b) {
|
||||
(void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
int x = (int)((frame * 13 + i * 17) % (1024 - 16));
|
||||
int y = (int)((frame * 7 + i * 29) % (512 - 16));
|
||||
glTexSubImage2D(GL_TEXTURE_2D, 0, x, y, 16, 16, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
}
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
|
||||
/* a = lightmap updates (+draw) per frame */
|
||||
static void case_lightmap(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glActiveTexture(GL_TEXTURE0 + 2);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texLight);
|
||||
glTexSubImage2D(GL_TEXTURE_2D, 0, 0, 0, 16, 16, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
glActiveTexture(GL_TEXTURE0);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
/* Composite: a = total draws, b = uploads per frame. Mix modeled on trace
|
||||
* analysis: chunk draws with per-draw offset uniform across sections, 10%
|
||||
* entity-style program flips, per-frame lightmap + sprite updates, b chunk
|
||||
* re-uploads. */
|
||||
static long g_mixSprites = 8;
|
||||
static void case_scene_mix(int frame, long a, long b) {
|
||||
glActiveTexture(GL_TEXTURE0 + 2);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texLight);
|
||||
glTexSubImage2D(GL_TEXTURE_2D, 0, 0, 0, 16, 16, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
glActiveTexture(GL_TEXTURE0);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
for (long i = 0; i < g_mixSprites; ++i) {
|
||||
int x = (int)((frame * 13 + i * 17) % (1024 - 16));
|
||||
int y = (int)((frame * 7 + i * 29) % (512 - 16));
|
||||
glTexSubImage2D(GL_TEXTURE_2D, 0, x, y, 16, 16, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
}
|
||||
for (long i = 0; i < b; ++i) {
|
||||
int slot = (int)(((long)frame * b + i) % MAX_SECTIONS);
|
||||
long bytes = g_quadsPerSection * 4 * VERT_STRIDE;
|
||||
glBindBuffer(GL_ARRAY_BUFFER, g_vbo[slot]);
|
||||
glBufferData(GL_ARRAY_BUFFER, bytes, NULL, GL_STATIC_DRAW);
|
||||
glBufferSubData(GL_ARRAY_BUFFER, 0, bytes, g_scratch);
|
||||
}
|
||||
long entityEvery = 10;
|
||||
for (long i = 0; i < a; ++i) {
|
||||
if (i % entityEvery == entityEvery - 1) {
|
||||
glUseProgram(g_progEntity);
|
||||
glUniformMatrix4fv(g_uMvpEntity, 1, 0, g_mvp);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texEntity);
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
glUseProgram(g_progChunk);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
} else {
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]);
|
||||
glUniform3f(g_uOffsetChunk, (float)(i & 15), (float)((i >> 4) & 15), 0.0f);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* ---- Trace-derived cases -------------------------------------------------
|
||||
* Per-frame call mixes measured from the three captured Minecraft traces
|
||||
* (render distance 32, 1280x720, hovering in-world). Each case reproduces one
|
||||
* renderer's dominant per-draw sequence at its measured rate, so the number a
|
||||
* backend posts here is directly comparable to what that game version asks of
|
||||
* the driver every frame.
|
||||
*
|
||||
* vanilla 1.21.1 : 5495 glDrawElements, 5490 glBindVertexArray,
|
||||
* 5487 glUniform3fv, 95 glTexSubImage2D (+382 glPixelStorei,
|
||||
* 247 glTexParameteri), 23 glBufferData per frame
|
||||
* fabric+sodium : 132 glMultiDrawElementsBaseVertex, 279 glBindVertexArray,
|
||||
* 132 glUniform3f, 32 glBufferData per frame
|
||||
* 26.2 snapshot : 3401 glDrawElementsBaseVertex, each preceded by
|
||||
* glBindBufferRange + glBindBuffer (3639/3412 per frame)
|
||||
*/
|
||||
/* vanilla: bind VAO, push the chunk offset, draw. a = draws per frame. */
|
||||
static void case_mc_vanilla_draw(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
float offset[3];
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]);
|
||||
offset[0] = (float)(i & 15);
|
||||
offset[1] = (float)((i >> 4) & 15);
|
||||
offset[2] = 0.0f;
|
||||
glUniform3fv(g_uOffsetChunk, 1, offset);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
/* sodium: one multi-draw covers many chunk sections out of a shared buffer.
|
||||
* a = multi-draws per frame, b = sub-draws inside each. */
|
||||
static void case_mc_sodium_multidraw(int frame, long a, long b) {
|
||||
(void)frame;
|
||||
enum { kMaxSub = 64 };
|
||||
if (b <= 0 || b > kMaxSub) b = 32;
|
||||
GLsizei counts[kMaxSub];
|
||||
const void* offsets[kMaxSub];
|
||||
GLint baseVertices[kMaxSub];
|
||||
for (long s = 0; s < b; ++s) {
|
||||
counts[s] = (GLsizei)(g_quadsPerSection * 6 / b);
|
||||
offsets[s] = (const void*)(uintptr_t)(s * (g_quadsPerSection * 6 / b) * 4);
|
||||
baseVertices[s] = 0;
|
||||
}
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]);
|
||||
glBindVertexArray(g_vao[i % MAX_SECTIONS]); /* sodium rebinds ~2x per draw */
|
||||
glUniform3f(g_uOffsetChunk, (float)(i & 15), (float)((i >> 4) & 15), 0.0f);
|
||||
// Routed through the includer: GLES has no multi-draw-with-base-vertex, so
|
||||
// a native-driver harness emulates it with the loop the extension folds up.
|
||||
bench_multi_draw_elements_base_vertex(GL_TRIANGLES, counts, GL_UNSIGNED_INT, offsets,
|
||||
(GLsizei)b, baseVertices);
|
||||
}
|
||||
}
|
||||
|
||||
/* 26.2: every draw rebinds a fresh uniform-buffer range out of a ring.
|
||||
* a = draws per frame. */
|
||||
static void case_mc_ubo_range(int frame, long a, long b) {
|
||||
(void)b;
|
||||
const size_t slots = (4u * 1024u * 1024u) / g_uboSlot;
|
||||
for (long i = 0; i < a; ++i) {
|
||||
const size_t slot = (size_t)(((long)frame * a + i) % (long)slots);
|
||||
glBindBufferRange(GL_UNIFORM_BUFFER, 0, g_uboRing, (GLintptr)(slot * g_uboSlot),
|
||||
(GLsizeiptr)g_uboSlot);
|
||||
glBindBuffer(GL_UNIFORM_BUFFER, g_uboRing);
|
||||
glDrawElementsBaseVertex(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0, 0);
|
||||
}
|
||||
}
|
||||
|
||||
/* vanilla's animated-sprite path: every upload is wrapped in the pixel-store
|
||||
* and filter state Blaze3D re-sets around it. a = uploads per frame. */
|
||||
static void case_mc_tex_stream(int frame, long a, long b) {
|
||||
(void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glPixelStorei(GL_UNPACK_ALIGNMENT, 4);
|
||||
glPixelStorei(GL_UNPACK_ROW_LENGTH, 0);
|
||||
glPixelStorei(GL_UNPACK_SKIP_ROWS, 0);
|
||||
glPixelStorei(GL_UNPACK_SKIP_PIXELS, 0);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_CLAMP_TO_EDGE);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_CLAMP_TO_EDGE);
|
||||
int x = (int)((frame * 13 + i * 17) % (1024 - 16));
|
||||
int y = (int)((frame * 7 + i * 29) % (512 - 16));
|
||||
glTexSubImage2D(GL_TEXTURE_2D, 0, x, y, 16, 16, GL_RGBA, GL_UNSIGNED_BYTE, g_scratch);
|
||||
}
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
|
||||
/* Blaze3D re-resolves uniform locations by name every frame. a = lookups. */
|
||||
static void case_mc_uniform_lookup(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
static const char* names[4] = {"uMvp", "uOffset", "uAtlas", "uLight"};
|
||||
volatile GLint sink = 0;
|
||||
for (long i = 0; i < a; ++i) sink += glGetUniformLocation(g_progChunk, names[i & 3]);
|
||||
(void)sink;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
|
||||
/* 26.2 rebinds a sampler object per texture unit switch. a = switches. */
|
||||
static void case_mc_sampler_churn(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glActiveTexture(GL_TEXTURE0 + (GLenum)(i & 3));
|
||||
glBindTexture(GL_TEXTURE_2D, (i & 1) ? g_texEntity : g_texAtlas);
|
||||
glBindSampler((GLuint)(i & 3), g_sampler);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
glActiveTexture(GL_TEXTURE0);
|
||||
}
|
||||
|
||||
|
||||
/* 26.2 switches render targets constantly: 132 glBindFramebuffer and 198
|
||||
* glDrawBuffers per frame. Pass switching is where a Vulkan backend pays for
|
||||
* render-pass breaks, so this case is the one to watch on Magma. a = passes. */
|
||||
static void case_mc_pass_switch(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
static const GLenum kColor0[1] = {GL_COLOR_ATTACHMENT0};
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glBindFramebuffer(GL_FRAMEBUFFER, g_passFbo[i & 1]);
|
||||
glDrawBuffers(1, kColor0);
|
||||
glViewport(0, 0, 256, 256);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
glBindFramebuffer(GL_FRAMEBUFFER, g_mainFbo);
|
||||
glViewport(0, 0, 1280, 720);
|
||||
}
|
||||
|
||||
/* Blaze3D toggles blend around batches: 46 glEnable/glDisable pairs and 28
|
||||
* glBlendFuncSeparate per vanilla frame. a = toggle pairs. */
|
||||
static void case_mc_state_toggle(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
glEnable(GL_BLEND);
|
||||
glBlendFuncSeparate(GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA, GL_ONE, GL_ZERO);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
glDisable(GL_BLEND);
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
}
|
||||
|
||||
/* 26.2 re-sets texture parameters relentlessly - 612 glTexParameteri per frame,
|
||||
* almost always to the value already in place. Measures redundant-param
|
||||
* filtering. a = parameter writes. */
|
||||
static void case_mc_tex_param(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
glBindTexture(GL_TEXTURE_2D, g_texAtlas);
|
||||
for (long i = 0; i < a; i += 4) {
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_CLAMP_TO_EDGE);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_CLAMP_TO_EDGE);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_NEAREST_MIPMAP_LINEAR);
|
||||
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_NEAREST);
|
||||
}
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
|
||||
/* Sodium switches programs mid-frame far more than vanilla: 62 glUseProgram and
|
||||
* 60 mat4 uploads per frame. a = program switches. */
|
||||
static void case_mc_use_program(int frame, long a, long b) {
|
||||
(void)frame; (void)b;
|
||||
glBindVertexArray(g_vao[0]);
|
||||
for (long i = 0; i < a; ++i) {
|
||||
if (i & 1) {
|
||||
glUseProgram(g_progEntity);
|
||||
glUniformMatrix4fv(g_uMvpEntity, 1, 0, g_mvp);
|
||||
} else {
|
||||
glUseProgram(g_progChunk);
|
||||
glUniformMatrix4fv(g_uMvpChunk, 1, 0, g_mvp);
|
||||
}
|
||||
glDrawElements(GL_TRIANGLES, g_quadsPerSection * 6, GL_UNSIGNED_INT, 0);
|
||||
}
|
||||
glUseProgram(g_progChunk);
|
||||
}
|
||||
|
||||
/* ---- the case table both harnesses iterate --------------------------------
|
||||
* a/b are the case's own knobs; opsPerFrame is what one bench frame is
|
||||
* normalised by, so ns_per_op compares across renderers. The mc_* rates are
|
||||
* the per-frame call counts measured from the captured traces.
|
||||
*/
|
||||
typedef void (*bench_case_fn)(int frame, long a, long b);
|
||||
|
||||
typedef struct {
|
||||
const char* name;
|
||||
bench_case_fn fn;
|
||||
long a, b, opsPerFrame;
|
||||
} BenchCaseDesc;
|
||||
|
||||
static const BenchCaseDesc kBenchCases[] = {
|
||||
{"mc_vanilla_draw", case_mc_vanilla_draw, 5495, 0, 5495},
|
||||
{"mc_sodium_multidraw", case_mc_sodium_multidraw, 132, 32, 132},
|
||||
{"mc_ubo_range", case_mc_ubo_range, 3401, 0, 3401},
|
||||
{"mc_tex_stream", case_mc_tex_stream, 95, 0, 95},
|
||||
{"mc_uniform_lookup", case_mc_uniform_lookup, 41, 0, 41},
|
||||
{"mc_sampler_churn", case_mc_sampler_churn, 306, 0, 306},
|
||||
{"mc_pass_switch", case_mc_pass_switch, 132, 0, 132},
|
||||
{"mc_state_toggle", case_mc_state_toggle, 46, 0, 46},
|
||||
{"mc_tex_param", case_mc_tex_param, 612, 0, 612},
|
||||
{"mc_use_program", case_mc_use_program, 62, 0, 62},
|
||||
{"draw_tiny", case_draw_tiny, 2048, 0, 2048},
|
||||
{"draw_uniform", case_draw_uniform, 2048, 0, 2048},
|
||||
{"draw_multi_vao", case_draw_multi_vao, 2048, 0, 2048},
|
||||
{"tex_pingpong", case_tex_pingpong, 1024, 0, 1024},
|
||||
{"program_pingpong", case_program_pingpong, 512, 0, 512},
|
||||
{"chunk_upload", case_chunk_upload, 24, 0, 24},
|
||||
{"atlas_sprite", case_atlas_sprite, 32, 0, 32},
|
||||
{"lightmap", case_lightmap, 4, 0, 4},
|
||||
{"scene_mix", case_scene_mix, 2048, 12, 2048},
|
||||
};
|
||||
static const int kBenchCaseCount = (int)(sizeof kBenchCases / sizeof kBenchCases[0]);
|
||||
@@ -0,0 +1,41 @@
|
||||
#!/bin/bash
|
||||
# Run the headless EGL DriverBench on one renderer:
|
||||
# ./run_driver_bench.sh native [bench args...]
|
||||
# ./run_driver_bench.sh espryt <libMobileGL.so> [bench args...]
|
||||
# ./run_driver_bench.sh magma <libMobileGL.so> [bench args...]
|
||||
# The bench dlopens exactly one EGL provider (DRIVERBENCH_EGL_LIB): the system
|
||||
# libEGL.so.1 for native, or the given libMobileGL.so for a MobileGL backend -
|
||||
# no LD_LIBRARY_PATH shadowing, so MobileGL's own loader still finds the real
|
||||
# driver underneath.
|
||||
#
|
||||
# Pin the vendor libraries explicitly. A bare libEGL.so.1 on a glvnd system
|
||||
# picks whatever vendor eglGetDisplay(EGL_DEFAULT_DISPLAY) resolves first,
|
||||
# which is Mesa/llvmpipe here - a software rasteriser silently replacing the
|
||||
# GPU under a benchmark. Override MGL_EGL_VENDOR / MGL_VK_ICD to test another
|
||||
# driver.
|
||||
set -eu
|
||||
HERE=$(cd "$(dirname "$0")" && pwd)
|
||||
BENCH=${DRIVERBENCH_BIN:-$HERE/DriverBench}
|
||||
EGL_VENDOR=${MGL_EGL_VENDOR:-/usr/share/glvnd/egl_vendor.d/10_nvidia.json}
|
||||
VK_ICD=${MGL_VK_ICD:-/usr/share/vulkan/icd.d/nvidia_icd.x86_64.json}
|
||||
MODE=$1; shift
|
||||
|
||||
export __EGL_VENDOR_LIBRARY_FILENAMES=$EGL_VENDOR
|
||||
export EGL_PLATFORM=${EGL_PLATFORM:-x11}
|
||||
|
||||
case "$MODE" in
|
||||
native)
|
||||
export DRIVERBENCH_EGL_LIB=${DRIVERBENCH_EGL_LIB:-libEGL.so.1}
|
||||
;;
|
||||
espryt)
|
||||
export DRIVERBENCH_EGL_LIB=$(readlink -f "$1"); shift
|
||||
export MOBILEGL_BACKEND_TYPE=DirectGLES
|
||||
;;
|
||||
magma)
|
||||
export DRIVERBENCH_EGL_LIB=$(readlink -f "$1"); shift
|
||||
export MOBILEGL_BACKEND_TYPE=DirectVulkan
|
||||
export VK_ICD_FILENAMES=$VK_ICD
|
||||
;;
|
||||
*) echo "unknown mode: $MODE (native|espryt|magma)"; exit 1 ;;
|
||||
esac
|
||||
exec "$BENCH" "$@"
|
||||
@@ -16,4 +16,5 @@ target_link_libraries(
|
||||
${LINK_LIBRARIES}
|
||||
)
|
||||
|
||||
add_test(NAME ProgramBench COMMAND ProgramBench --benchmark_counters_tabular=true)
|
||||
add_test(NAME ProgramBench COMMAND ProgramBench --benchmark_counters_tabular=true)
|
||||
set_tests_properties(ProgramBench PROPERTIES LABELS benchmark)
|
||||
@@ -24,6 +24,7 @@ namespace MobileGL::MG_Impl::CGLImpl {
|
||||
GLint Samples = 0;
|
||||
GLint Profile = kCGLOGLPVersion_3_2_Core;
|
||||
GLint RendererId = 0x4d474c;
|
||||
GLint DisplayMask = 0;
|
||||
};
|
||||
|
||||
struct ContextObject {
|
||||
@@ -134,6 +135,9 @@ namespace MobileGL::MG_Impl::CGLImpl {
|
||||
case kCGLPFARendererID:
|
||||
pixelFormat.RendererId = value;
|
||||
break;
|
||||
case kCGLPFADisplayMask:
|
||||
pixelFormat.DisplayMask = value;
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
@@ -343,6 +347,9 @@ namespace MobileGL::MG_Impl::CGLImpl {
|
||||
case kCGLPFARendererID:
|
||||
*value = pixelFormat->RendererId;
|
||||
return kCGLNoError;
|
||||
case kCGLPFADisplayMask:
|
||||
*value = pixelFormat->DisplayMask;
|
||||
return kCGLNoError;
|
||||
case kCGLPFAOpenGLProfile:
|
||||
*value = pixelFormat->Profile;
|
||||
return kCGLNoError;
|
||||
@@ -481,6 +488,32 @@ namespace MobileGL::MG_Impl::CGLImpl {
|
||||
return it == currentContexts.end() ? nullptr : it->second;
|
||||
}
|
||||
|
||||
CGLError SetVirtualScreen(CGLContextObj ctx, GLint screen) {
|
||||
const std::lock_guard<std::recursive_mutex> lock(RegistryMutex());
|
||||
auto* object = TryGetContext(ctx);
|
||||
if (!object) {
|
||||
return kCGLBadContext;
|
||||
}
|
||||
if (screen != 0) {
|
||||
return kCGLBadValue;
|
||||
}
|
||||
object->VirtualScreen = screen;
|
||||
return kCGLNoError;
|
||||
}
|
||||
|
||||
CGLError GetVirtualScreen(CGLContextObj ctx, GLint* screen) {
|
||||
const std::lock_guard<std::recursive_mutex> lock(RegistryMutex());
|
||||
auto* object = TryGetContext(ctx);
|
||||
if (!object) {
|
||||
return kCGLBadContext;
|
||||
}
|
||||
if (!screen) {
|
||||
return kCGLBadAddress;
|
||||
}
|
||||
*screen = object->VirtualScreen;
|
||||
return kCGLNoError;
|
||||
}
|
||||
|
||||
CGLError SetParameter(CGLContextObj ctx, CGLContextParameter pname, const GLint* params) {
|
||||
const std::lock_guard<std::recursive_mutex> lock(RegistryMutex());
|
||||
auto* object = TryGetContext(ctx);
|
||||
|
||||
@@ -32,6 +32,8 @@ namespace MobileGL::MG_Impl::CGLImpl {
|
||||
|
||||
CGLError SetCurrentContext(CGLContextObj ctx);
|
||||
CGLContextObj GetCurrentContext();
|
||||
CGLError SetVirtualScreen(CGLContextObj ctx, GLint screen);
|
||||
CGLError GetVirtualScreen(CGLContextObj ctx, GLint* screen);
|
||||
CGLError SetParameter(CGLContextObj ctx, CGLContextParameter pname, const GLint* params);
|
||||
CGLError GetParameter(CGLContextObj ctx, CGLContextParameter pname, GLint* params);
|
||||
CGLError UpdateContext(CGLContextObj ctx);
|
||||
|
||||
@@ -71,6 +71,14 @@ MOBILEGL_CGL_API CGLContextObj CGLGetCurrentContext(void) {
|
||||
return MobileGL::MG_Impl::CGLImpl::GetCurrentContext();
|
||||
}
|
||||
|
||||
MOBILEGL_CGL_API CGLError CGLSetVirtualScreen(CGLContextObj ctx, GLint screen) {
|
||||
return MobileGL::MG_Impl::CGLImpl::SetVirtualScreen(ctx, screen);
|
||||
}
|
||||
|
||||
MOBILEGL_CGL_API CGLError CGLGetVirtualScreen(CGLContextObj ctx, GLint* screen) {
|
||||
return MobileGL::MG_Impl::CGLImpl::GetVirtualScreen(ctx, screen);
|
||||
}
|
||||
|
||||
MOBILEGL_CGL_API CGLError CGLSetParameter(CGLContextObj ctx, CGLContextParameter pname, const GLint* params) {
|
||||
return MobileGL::MG_Impl::CGLImpl::SetParameter(ctx, pname, params);
|
||||
}
|
||||
|
||||
@@ -10,8 +10,12 @@
|
||||
|
||||
#if defined(__APPLE__)
|
||||
|
||||
#include "MG_Impl/CGLImpl/CGLImpl.h"
|
||||
#include "MG_Impl/GetProcAddress.h"
|
||||
|
||||
#include <CoreGraphics/CoreGraphics.h>
|
||||
#include <CoreVideo/CVDisplayLink.h>
|
||||
#include <cstdint>
|
||||
#include <dlfcn.h>
|
||||
|
||||
namespace {
|
||||
@@ -47,10 +51,52 @@ namespace {
|
||||
return dlsym(handle, symbol);
|
||||
}
|
||||
|
||||
CGDirectDisplayID DisplayForMask(GLint displayMask) {
|
||||
constexpr std::uint32_t MaxDisplays = sizeof(CGOpenGLDisplayMask) * 8;
|
||||
CGDirectDisplayID displays[MaxDisplays] = {};
|
||||
std::uint32_t displayCount = 0;
|
||||
if (displayMask != 0 &&
|
||||
CGGetActiveDisplayList(MaxDisplays, displays, &displayCount) == kCGErrorSuccess) {
|
||||
const auto mask = static_cast<CGOpenGLDisplayMask>(displayMask);
|
||||
for (std::uint32_t i = 0; i < displayCount; ++i) {
|
||||
if ((CGDisplayIDToOpenGLDisplayMask(displays[i]) & mask) != 0) {
|
||||
return displays[i];
|
||||
}
|
||||
}
|
||||
}
|
||||
return CGMainDisplayID();
|
||||
}
|
||||
|
||||
#pragma clang diagnostic push
|
||||
#pragma clang diagnostic ignored "-Wdeprecated-declarations"
|
||||
CVReturn MobileGLCVDisplayLinkSetCurrentCGDisplayFromOpenGLContext(
|
||||
CVDisplayLinkRef displayLink,
|
||||
CGLContextObj context,
|
||||
CGLPixelFormatObj pixelFormat) {
|
||||
GLint virtualScreen = 0;
|
||||
if (MobileGL::MG_Impl::CGLImpl::GetVirtualScreen(context, &virtualScreen) == kCGLNoError) {
|
||||
GLint displayMask = 0;
|
||||
if (!displayLink ||
|
||||
MobileGL::MG_Impl::CGLImpl::DescribePixelFormat(
|
||||
pixelFormat, virtualScreen, kCGLPFADisplayMask, &displayMask) != kCGLNoError) {
|
||||
return kCVReturnInvalidArgument;
|
||||
}
|
||||
return CVDisplayLinkSetCurrentCGDisplay(displayLink, DisplayForMask(displayMask));
|
||||
}
|
||||
|
||||
using OriginalFunction = CVReturn (*)(CVDisplayLinkRef, CGLContextObj, CGLPixelFormatObj);
|
||||
static const auto original = reinterpret_cast<OriginalFunction>(
|
||||
dlsym(RTLD_NEXT, "CVDisplayLinkSetCurrentCGDisplayFromOpenGLContext"));
|
||||
return original ? original(displayLink, context, pixelFormat) : kCVReturnError;
|
||||
}
|
||||
|
||||
__attribute__((used)) static const DyldInterposeEntry kMobileGLDyldInterpose[]
|
||||
__attribute__((section("__DATA,__interpose"))) = {
|
||||
{reinterpret_cast<const void*>(MobileGLDlsym), reinterpret_cast<const void*>(dlsym)},
|
||||
{reinterpret_cast<const void*>(MobileGLCVDisplayLinkSetCurrentCGDisplayFromOpenGLContext),
|
||||
reinterpret_cast<const void*>(CVDisplayLinkSetCurrentCGDisplayFromOpenGLContext)},
|
||||
};
|
||||
#pragma clang diagnostic pop
|
||||
} // namespace
|
||||
|
||||
#endif
|
||||
|
||||
@@ -0,0 +1,10 @@
|
||||
# Public CGL entry points.
|
||||
_CGL*
|
||||
|
||||
# Public EGL entry points.
|
||||
_egl*
|
||||
|
||||
# Public OpenGL and GLX entry points. OpenGL function names always use an
|
||||
# uppercase letter or digit after the "gl" prefix; excluding lowercase here
|
||||
# deliberately prevents glslang_* from matching this pattern.
|
||||
_gl[A-Z0-9]*
|
||||
@@ -8,6 +8,7 @@
|
||||
|
||||
#include "EGLImpl.h"
|
||||
#include "../GetProcAddress.h"
|
||||
#include <Init.h>
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
#include <MG_State/EGLState/Core.h>
|
||||
#include <mutex>
|
||||
@@ -25,6 +26,17 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
return MG_State::pEGLContext.get();
|
||||
}
|
||||
|
||||
// Entry points that can legitimately be an application's FIRST EGL
|
||||
// call (display/proc-address/string queries) lazily bring MobileGL
|
||||
// up here, so the library needs no static constructor and can
|
||||
// re-initialize after the last eglTerminate tore everything down.
|
||||
// Teardown-ish entry points keep using GetState() and fail benignly
|
||||
// when MobileGL is not initialized.
|
||||
EGLStateContext* GetStateEnsureInitialized() {
|
||||
MobileGL::EnsureInitialized();
|
||||
return GetState();
|
||||
}
|
||||
|
||||
MG_Backend::BackendObject* GetBackendObject(EGLStateContext* state) {
|
||||
auto* backendObject = MG_Backend::pActiveBackendObject.get();
|
||||
if (!backendObject && state) {
|
||||
@@ -49,6 +61,8 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
return MG_Backend::WindowBackend::Android;
|
||||
#elif defined(__APPLE__)
|
||||
return MG_Backend::WindowBackend::MetalLayer;
|
||||
#elif defined(_WIN32)
|
||||
return MG_Backend::WindowBackend::Win32;
|
||||
#elif defined(__linux__)
|
||||
return MG_Backend::WindowBackend::X11;
|
||||
#else
|
||||
@@ -187,7 +201,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
}
|
||||
|
||||
EGLBoolean Initialize(EGLDisplay dpy, EGLint* major, EGLint* minor) {
|
||||
auto* state = GetState();
|
||||
auto* state = GetStateEnsureInitialized();
|
||||
if (!state) {
|
||||
return EGL_FALSE;
|
||||
}
|
||||
@@ -208,7 +222,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
}
|
||||
|
||||
EGLDisplay GetDisplay(NativeDisplayType display) {
|
||||
auto* state = GetState();
|
||||
auto* state = GetStateEnsureInitialized();
|
||||
if (!state) {
|
||||
return EGL_NO_DISPLAY;
|
||||
}
|
||||
@@ -313,6 +327,14 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
if (auto* backendObject = MG_Backend::pActiveBackendObject.get()) {
|
||||
backendObject->ReleaseEGLResources();
|
||||
}
|
||||
// The last initialized display is gone and nothing is current on any
|
||||
// thread: tear the whole library down deterministically inside the
|
||||
// EGL lifecycle (backend, GL/EGL state, glslang). A later EGL call
|
||||
// re-initializes lazily via GetStateEnsureInitialized(); process exit
|
||||
// then has nothing left to destroy.
|
||||
if (!state->HasAnyInitializedDisplay() && !state->HasAnyCurrentContext()) {
|
||||
MobileGL::Destroy();
|
||||
}
|
||||
return EGL_TRUE;
|
||||
}
|
||||
|
||||
@@ -345,7 +367,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
}
|
||||
|
||||
EGLBoolean BindAPI(EGLenum api) {
|
||||
auto* state = GetState();
|
||||
auto* state = GetStateEnsureInitialized();
|
||||
if (!state) {
|
||||
return EGL_FALSE;
|
||||
}
|
||||
@@ -378,7 +400,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
}
|
||||
|
||||
char const* QueryString(EGLDisplay display, EGLint name) {
|
||||
auto* state = GetState();
|
||||
auto* state = GetStateEnsureInitialized();
|
||||
if (!state) {
|
||||
return nullptr;
|
||||
}
|
||||
@@ -641,7 +663,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
EGLDisplay GetPlatformDisplay(EGLenum platform, void* native_display, const EGLAttrib* attrib_list) {
|
||||
(void)attrib_list;
|
||||
|
||||
auto* state = GetState();
|
||||
auto* state = GetStateEnsureInitialized();
|
||||
if (!state) {
|
||||
return EGL_NO_DISPLAY;
|
||||
}
|
||||
@@ -737,6 +759,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
|
||||
if (!name) {
|
||||
return nullptr;
|
||||
}
|
||||
MobileGL::EnsureInitialized();
|
||||
|
||||
MGLOG_D("eglGetProcAddress(%s)", name);
|
||||
void* proc = MG_Impl::GetProcAddress(name);
|
||||
|
||||
@@ -8,6 +8,10 @@
|
||||
|
||||
#include "GL_Buffer.h"
|
||||
#include "Validators.h"
|
||||
#include "../Texture/GL_Texture.h"
|
||||
#include "../Getter/GL_Getter.h"
|
||||
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
|
||||
#include <MG_Util/Metrics/TextureMetrics.h>
|
||||
#include <Config.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_State/GLState/ErrorState/Error.h>
|
||||
@@ -38,6 +42,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GetNamedBufferParameteriv,
|
||||
GetNamedBufferParameteri64v,
|
||||
GetNamedBufferPointerv,
|
||||
GetNamedBufferSubData,
|
||||
};
|
||||
|
||||
const char* GetBufferOpName(BufferOp op) {
|
||||
@@ -76,6 +81,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return "UnmapNamedBuffer";
|
||||
case BufferOp::FlushMappedNamedBufferRange:
|
||||
return "FlushMappedNamedBufferRange";
|
||||
case BufferOp::GetNamedBufferSubData:
|
||||
return "GetNamedBufferSubData";
|
||||
case BufferOp::GetNamedBufferParameteriv:
|
||||
return "GetNamedBufferParameteriv";
|
||||
case BufferOp::GetNamedBufferParameteri64v:
|
||||
@@ -89,25 +96,64 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
SharedPtr<MG_State::GLState::BufferObject> GetNamedBufferObject(GLuint buffer, BufferOp op);
|
||||
|
||||
// The size of one cleared element, which is what offset and size must be multiples of
|
||||
// (GL 4.6 core 6.3). `internalformat` is restricted to the buffer-texture format table, and
|
||||
// `format`/`type` describe the client-side pattern, so both are validated here and the
|
||||
// caller only has to know how wide an element is.
|
||||
SizeT GetClearPatternSize(GLenum internalformat, GLenum format, GLenum type, BufferOp op) {
|
||||
if (format != GL_RED_INTEGER) {
|
||||
if (!IsBufferTextureInternalFormat(internalformat)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
"Only GL_RED_INTEGER buffer clears are currently supported."));
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
std::format("internalformat 0x{:X} is not one of the sized formats a buffer clear accepts.",
|
||||
internalformat)));
|
||||
return 0;
|
||||
}
|
||||
|
||||
if (internalformat == GL_R8UI && type == GL_UNSIGNED_BYTE) return sizeof(GLubyte);
|
||||
if (internalformat == GL_R32UI && type == GL_UNSIGNED_INT) return sizeof(GLuint);
|
||||
// Unlike internalformat, a bad format or type here is INVALID_VALUE rather than
|
||||
// INVALID_ENUM (GL 4.6 core 6.3) - the odd one out among the enum arguments.
|
||||
const TextureInputFormat inputFormat = MG_Util::ConvertGLEnumToTextureInputFormat(format);
|
||||
if (inputFormat == TextureInputFormat::Unknown) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
std::format("format 0x{:X} is not a pixel format.", format)));
|
||||
return 0;
|
||||
}
|
||||
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
std::format("Unsupported clear format tuple: internalformat=0x{:X}, "
|
||||
"format=0x{:X}, type=0x{:X}",
|
||||
internalformat, format, type)));
|
||||
return 0;
|
||||
const TexturePixelDataType pixelType = MG_Util::ConvertGLEnumToTexturePixelDataType(type);
|
||||
if (pixelType == TexturePixelDataType::Unknown) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
std::format("type 0x{:X} is not a pixel type.", type)));
|
||||
return 0;
|
||||
}
|
||||
|
||||
const TextureInternalFormat internal =
|
||||
MG_Util::ConvertGLEnumToTextureInternalFormat(internalformat);
|
||||
const SizeT elementSize = MG_Util::GetSizedInternalFormatSizeInBytes(internal);
|
||||
if (elementSize == 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", GetBufferOpName(op),
|
||||
std::format("internalformat 0x{:X} has no known element size.",
|
||||
internalformat)));
|
||||
return 0;
|
||||
}
|
||||
|
||||
// The pattern is replicated verbatim, which is only the whole story while the client
|
||||
// layout already matches the internal format - the case every entry point in practice
|
||||
// uses, and the only one the conversion machinery here can express. Say so rather than
|
||||
// quietly writing a differently-sized pattern.
|
||||
const SizeT sourceSize = MG_Util::GetInputBytesPerPixel(inputFormat, pixelType);
|
||||
if (sourceSize != elementSize) {
|
||||
MGLOG_W("%s: clear pattern is %zu bytes but internalformat 0x%X stores %zu; "
|
||||
"converting between them is not implemented",
|
||||
GetBufferOpName(op), sourceSize, internalformat, elementSize);
|
||||
}
|
||||
return elementSize;
|
||||
}
|
||||
|
||||
Bool ValidateBufferClearRange(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject, GLintptr offset,
|
||||
@@ -330,12 +376,21 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
} else if (access & BufferMappingAccessBit::Write) {
|
||||
*params = GL_WRITE_ONLY;
|
||||
} else {
|
||||
*params = 0;
|
||||
*params = GL_READ_WRITE;
|
||||
}
|
||||
} else {
|
||||
*params = 0;
|
||||
// Initial value, and what glUnmapBuffer restores (GL 4.6 core table 6.2).
|
||||
*params = GL_READ_WRITE;
|
||||
}
|
||||
break;
|
||||
case GL_BUFFER_ACCESS_FLAGS:
|
||||
// The MapBufferRange flags verbatim; glMapBuffer's access enum has already been
|
||||
// normalised into the same bits. Zero while the buffer is not mapped.
|
||||
*params = bufferObject->IsMapped()
|
||||
? static_cast<GLint>(
|
||||
MG_Util::ConvertBufferMappingAccessToGLEnum(bufferObject->GetMappingAccess()))
|
||||
: 0;
|
||||
break;
|
||||
case GL_BUFFER_MAPPED:
|
||||
*params = bufferObject->IsMapped() ? GL_TRUE : GL_FALSE;
|
||||
break;
|
||||
@@ -441,7 +496,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
for (SizeT i = 0; i < static_cast<SizeT>(n); ++i) {
|
||||
Uint bufferName = buffers[i];
|
||||
if (bufferName == 0) continue;
|
||||
if (!BufferImpl::ValidateBufferName(bufferName, true)) continue;
|
||||
// GL 3.3 core 2.9: names that do not correspond to an existing buffer are silently
|
||||
// ignored here, so probe with the non-recording query - the shared validator would
|
||||
// record INVALID_OPERATION, which is only correct on the bind path.
|
||||
if (!MG_State::pGLContext->ValidateBufferName(bufferName)) continue;
|
||||
MG_State::pGLContext->MarkBufferObjectForDeletion(bufferName);
|
||||
}
|
||||
}
|
||||
@@ -804,6 +862,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
Range1D mappedRange = bufferObject->GetMappedRange();
|
||||
auto mappingAccess = bufferObject->GetMappingAccess();
|
||||
// GL 4.6 6.5: the error is on OVERLAP with the mapped range, i.e. a half-open
|
||||
// intersection test. There used to be a second test below this one asking only
|
||||
// `offset + size >= mappedRange.start`, which rejects every write that starts
|
||||
// before a mapped tail as well - it made a legal disjoint glBufferSubData fail.
|
||||
if (bufferObject->IsMapped() && !(mappingAccess & BufferMappingAccessBit::Persistent) &&
|
||||
(offset < mappedRange.end) && (offset + size > mappedRange.start)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
@@ -814,18 +876,6 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return;
|
||||
}
|
||||
|
||||
if (bufferObject->IsMapped() && !(mappingAccess & BufferMappingAccessBit::Persistent)) {
|
||||
Range1D mappedRange = bufferObject->GetMappedRange();
|
||||
if (offset + size >= mappedRange.start) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BufferSubData_State",
|
||||
"Cannot modify a mapped buffer object unless it was "
|
||||
"mapped with GL_MAP_PERSISTENT_BIT."));
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
bufferObject->UploadSubData({(void*)data, (SizeT)size}, offset);
|
||||
}
|
||||
|
||||
@@ -875,6 +925,45 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return;
|
||||
}
|
||||
|
||||
bufferObject->SyncGpuWrites();
|
||||
bufferObject->DownloadSubData(data, static_cast<SizeT>(offset), static_cast<SizeT>(size));
|
||||
}
|
||||
|
||||
void GetNamedBufferSubData_State(GLuint buffer, GLintptr offset, GLsizeiptr size, void* data) {
|
||||
if (!data) {
|
||||
// Match GetBufferSubData_State: a null pointer is a caller bug, not a GL-specified error.
|
||||
return;
|
||||
}
|
||||
|
||||
if (size < 0 || offset < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetNamedBufferSubData_State",
|
||||
"Offset and size must be non-negative."));
|
||||
return;
|
||||
}
|
||||
|
||||
auto bufferObject = GetNamedBufferObject(buffer, BufferOp::GetNamedBufferSubData);
|
||||
if (!bufferObject) return;
|
||||
|
||||
if (static_cast<SizeT>(offset) + static_cast<SizeT>(size) > bufferObject->GetSize()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetNamedBufferSubData_State",
|
||||
"Offset and size exceed buffer size."));
|
||||
return;
|
||||
}
|
||||
|
||||
if (bufferObject->IsMapped() &&
|
||||
!(bufferObject->GetMappingAccess() & BufferMappingAccessBit::Persistent)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetNamedBufferSubData_State",
|
||||
"Cannot read from a buffer object mapped without GL_MAP_PERSISTENT_BIT."));
|
||||
return;
|
||||
}
|
||||
|
||||
bufferObject->SyncGpuWrites();
|
||||
bufferObject->DownloadSubData(data, static_cast<SizeT>(offset), static_cast<SizeT>(size));
|
||||
}
|
||||
|
||||
@@ -917,6 +1006,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
void BufferStorage_State(GLenum target, GLsizeiptr size, const void* data, GLbitfield flags) {
|
||||
// Error precedence: "no buffer is bound to target" outranks a bad size or bad
|
||||
// flags, so the binding has to be resolved before either is validated.
|
||||
auto bufferObject = GetBoundBufferObject(target, BufferOp::BufferStorage);
|
||||
if (!bufferObject) return;
|
||||
|
||||
if (size <= 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
@@ -925,8 +1019,6 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
if (!ValidateStorageFlags(flags, BufferOp::BufferStorage)) return;
|
||||
|
||||
auto bufferObject = GetBoundBufferObject(target, BufferOp::BufferStorage);
|
||||
if (!bufferObject) return;
|
||||
if (bufferObject->IsImmutableStorage()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
@@ -961,6 +1053,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
void NamedBufferStorage_State(GLuint buffer, GLsizeiptr size, const void* data, GLbitfield flags) {
|
||||
// Same precedence as BufferStorage_State: the buffer-name error comes first.
|
||||
auto bufferObject = GetNamedBufferObject(buffer, BufferOp::NamedBufferStorage);
|
||||
if (!bufferObject) return;
|
||||
|
||||
if (size <= 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
@@ -969,8 +1065,6 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
if (!ValidateStorageFlags(flags, BufferOp::NamedBufferStorage)) return;
|
||||
|
||||
auto bufferObject = GetNamedBufferObject(buffer, BufferOp::NamedBufferStorage);
|
||||
if (!bufferObject) return;
|
||||
if (bufferObject->IsImmutableStorage()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
@@ -1348,6 +1442,14 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
BufferTarget bufferTarget = MG_Util::ConvertGLEnumToBufferTarget(target);
|
||||
if (!BufferImpl::ValidateBufferBindingPointTarget(bufferTarget)) return;
|
||||
if (!BufferImpl::ValidateBufferBindingPointIndex(bufferTarget, pointIndex)) return;
|
||||
if (bufferTarget == BufferTarget::TransformFeedback && MG_State::pGLContext->IsTransformFeedbackActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Transform feedback buffer bindings cannot change while transform "
|
||||
"feedback is active."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->TouchBufferBindingPoint(bufferTarget, pointIndex);
|
||||
|
||||
auto& point = MG_State::pGLContext->GetBufferBindingPoint(bufferTarget, pointIndex);
|
||||
@@ -1355,6 +1457,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
if (buffer == 0) {
|
||||
point.Bind(nullptr);
|
||||
point.SetRange(Range1D(0, 0));
|
||||
GetBufferBindingSlot(bufferTarget).Bind(nullptr);
|
||||
return;
|
||||
}
|
||||
|
||||
@@ -1373,6 +1476,70 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
} else {
|
||||
point.ClearRange();
|
||||
}
|
||||
// The indexed bind also binds to the generic binding point of the same target
|
||||
// (GL 4.6 core 6.1.1). Callers rely on it: the texture_gather tests set up their
|
||||
// SSBO with BindBufferBase and then size it through glBufferData on the generic
|
||||
// target alone, which would otherwise raise GL_INVALID_OPERATION and leave the
|
||||
// buffer with no storage.
|
||||
GetBufferBindingSlot(bufferTarget).Bind(bufferObject);
|
||||
}
|
||||
|
||||
// GL 4.6 core 6.1.1: the constraints glBindBufferRange puts on the (offset, size) pair.
|
||||
// Every one of them is INVALID_VALUE, and all of them are checked before a single piece
|
||||
// of state is written - a rejected bind must leave the binding point exactly as it was.
|
||||
// They apply only to a non-zero buffer: buffer 0 detaches the binding point and ignores
|
||||
// offset and size, which is also how glBindBuffersRange spells "reset this element"
|
||||
// (a NULL buffers array, or a zero entry inside one).
|
||||
static Bool ValidateBufferRangeOffsetAndSize(GLenum target, GLintptr offset, GLsizeiptr size,
|
||||
const char* funcName) {
|
||||
if (size <= 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", funcName,
|
||||
std::format("size ({}) must be greater than zero.", size)));
|
||||
return false;
|
||||
}
|
||||
if (offset < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", funcName,
|
||||
std::format("offset ({}) must not be negative.", offset)));
|
||||
return false;
|
||||
}
|
||||
// GL_UNIFORM_BUFFER and GL_SHADER_STORAGE_BUFFER each constrain the offset to their own
|
||||
// implementation-defined alignment, which glGetIntegerv already answers.
|
||||
GLenum alignmentQuery = GL_NONE;
|
||||
if (target == GL_SHADER_STORAGE_BUFFER) {
|
||||
alignmentQuery = GL_SHADER_STORAGE_BUFFER_OFFSET_ALIGNMENT;
|
||||
} else if (target == GL_UNIFORM_BUFFER) {
|
||||
alignmentQuery = GL_UNIFORM_BUFFER_OFFSET_ALIGNMENT;
|
||||
}
|
||||
if (alignmentQuery != GL_NONE) {
|
||||
GLint alignment = 0;
|
||||
GetIntegerv(alignmentQuery, &alignment);
|
||||
if (alignment > 0 && (offset % static_cast<GLintptr>(alignment)) != 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", funcName,
|
||||
std::format("offset ({}) must be a multiple of {} ({}).", offset,
|
||||
MG_Util::ConvertGLEnumToString(alignmentQuery), alignment)));
|
||||
return false;
|
||||
}
|
||||
}
|
||||
// A transform feedback capture binding is addressed in 32-bit components, so BOTH the
|
||||
// offset and the size must be multiples of 4.
|
||||
if (target == GL_TRANSFORM_FEEDBACK_BUFFER && ((offset % 4) != 0 || (size % 4) != 0)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", funcName,
|
||||
std::format("offset ({}) and size ({}) must both be multiples of 4 for "
|
||||
"GL_TRANSFORM_FEEDBACK_BUFFER.",
|
||||
offset, size)));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
void BindBufferRange_State(GLenum target, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size) {
|
||||
@@ -1381,6 +1548,15 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
BufferTarget bufferTarget = MG_Util::ConvertGLEnumToBufferTarget(target);
|
||||
if (!BufferImpl::ValidateBufferBindingPointTarget(bufferTarget)) return;
|
||||
if (!BufferImpl::ValidateBufferBindingPointIndex(bufferTarget, index)) return;
|
||||
if (buffer != 0 && !ValidateBufferRangeOffsetAndSize(target, offset, size, __func__)) return;
|
||||
if (bufferTarget == BufferTarget::TransformFeedback && MG_State::pGLContext->IsTransformFeedbackActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Transform feedback buffer bindings cannot change while transform "
|
||||
"feedback is active."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->TouchBufferBindingPoint(bufferTarget, index);
|
||||
|
||||
auto& point = MG_State::pGLContext->GetBufferBindingPoint(bufferTarget, index);
|
||||
@@ -1388,6 +1564,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
if (buffer == 0) {
|
||||
point.Bind(nullptr);
|
||||
point.SetRange(Range1D(0, 0));
|
||||
GetBufferBindingSlot(bufferTarget).Bind(nullptr);
|
||||
return;
|
||||
}
|
||||
|
||||
@@ -1405,6 +1582,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
} else {
|
||||
point.ClearRange();
|
||||
}
|
||||
// Also the generic binding point, exactly as BindBufferBase (GL 4.6 core 6.1.1).
|
||||
GetBufferBindingSlot(bufferTarget).Bind(bufferObject);
|
||||
}
|
||||
|
||||
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
|
||||
@@ -1514,6 +1693,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
BufferSubData_State(target, offset, size, data);
|
||||
}
|
||||
|
||||
void GetNamedBufferSubData(GLuint buffer, GLintptr offset, GLsizeiptr size, void* data) {
|
||||
GetNamedBufferSubData_State(buffer, offset, size, data);
|
||||
}
|
||||
|
||||
void GetBufferSubData(GLenum target, GLintptr offset, GLsizeiptr size, void* data) {
|
||||
GetBufferSubData_State(target, offset, size, data);
|
||||
}
|
||||
@@ -1539,15 +1722,32 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
// ARB_multi_bind: defined by the spec as equivalent to a loop over the single-bind entry
|
||||
// points (with buffer 0 resetting the binding point).
|
||||
// points (with buffer 0 resetting the binding point) - but only AFTER an up-front check
|
||||
// of the whole [first, first + count) range. Looping straight into the single-bind entry
|
||||
// points reports the single-bind INVALID_VALUE for an out-of-range index instead of the
|
||||
// multi-bind INVALID_OPERATION, and binds the in-range prefix before failing.
|
||||
static Bool ValidateMultiBindBufferRange(GLenum target, GLuint first, GLsizei count, const char* funcName) {
|
||||
BufferTarget bufferTarget = MG_Util::ConvertGLEnumToBufferTarget(target);
|
||||
if (!BufferImpl::ValidateBufferBindingPointTarget(bufferTarget)) return false;
|
||||
return BufferImpl::ValidateBufferBindingPointRange(bufferTarget, first, count, funcName);
|
||||
}
|
||||
|
||||
void BindBuffersBase(GLenum target, GLuint first, GLsizei count, const GLuint* buffers) {
|
||||
if (!ValidateMultiBindBufferRange(target, first, count, __func__)) return;
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
BindBufferBase_State(target, first + i, buffers ? buffers[i] : 0);
|
||||
}
|
||||
}
|
||||
|
||||
// The (offset, size) constraints are the one part of glBindBuffersRange that stays
|
||||
// per-element: ARB_multi_bind checks them separately for each binding point, leaves that
|
||||
// point unchanged on failure, and still applies the remaining elements - which is exactly
|
||||
// what looping into BindBufferRange_State does. Only the [first, first + count) range is
|
||||
// an up-front, all-or-nothing check. Elements that name buffer 0 (or a NULL buffers array)
|
||||
// reset the binding point through BindBufferBase_State and carry no offset/size to check.
|
||||
void BindBuffersRange(GLenum target, GLuint first, GLsizei count, const GLuint* buffers, const GLintptr* offsets,
|
||||
const GLsizeiptr* sizes) {
|
||||
if (!ValidateMultiBindBufferRange(target, first, count, __func__)) return;
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
if (!buffers || buffers[i] == 0) {
|
||||
BindBufferBase_State(target, first + i, 0);
|
||||
|
||||
@@ -41,6 +41,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GLsizeiptr size);
|
||||
void BufferSubData(GLenum target, GLintptr offset, GLsizeiptr size, const void* data);
|
||||
void GetBufferSubData(GLenum target, GLintptr offset, GLsizeiptr size, void* data);
|
||||
void GetNamedBufferSubData(GLuint buffer, GLintptr offset, GLsizeiptr size, void* data);
|
||||
void BufferData(GLenum target, GLsizeiptr size, const void* data, GLenum usage);
|
||||
void BindBuffer(GLenum target, GLuint buffer);
|
||||
void GenBuffers(GLsizei n, GLuint* buffers);
|
||||
|
||||
@@ -53,13 +53,46 @@ namespace MobileGL::MG_Impl::GLImpl::BufferImpl {
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateBufferBindingPointIndex(BufferTarget target, Uint index) {
|
||||
SizeT pointCount = MG_State::pGLContext->GetBufferBindingPointCount(target);
|
||||
if (target == BufferTarget::ShaderStorage && MG_Backend::pActiveBackendObject) {
|
||||
const Int backendCount =
|
||||
MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxShaderStorageBufferBindings;
|
||||
pointCount = std::min(pointCount, static_cast<SizeT>(std::max(backendCount, 0)));
|
||||
namespace {
|
||||
// The GL-visible number of indexed binding points for `target`.
|
||||
SizeT GetBufferBindingPointLimit(BufferTarget target) {
|
||||
SizeT pointCount = MG_State::pGLContext->GetBufferBindingPointCount(target);
|
||||
if (target == BufferTarget::ShaderStorage && MG_Backend::pActiveBackendObject) {
|
||||
const Int backendCount =
|
||||
MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxShaderStorageBufferBindings;
|
||||
pointCount = std::min(pointCount, static_cast<SizeT>(std::max(backendCount, 0)));
|
||||
}
|
||||
if (target == BufferTarget::TransformFeedback) {
|
||||
// GL_MAX_TRANSFORM_FEEDBACK_SEPARATE_ATTRIBS bounds the indexed capture
|
||||
// binding points in GL 3.3 (no ARB_transform_feedback3).
|
||||
pointCount = std::min<SizeT>(pointCount, 4);
|
||||
}
|
||||
return pointCount;
|
||||
}
|
||||
} // namespace
|
||||
|
||||
Bool ValidateBufferBindingPointRange(BufferTarget target, Uint first, GLsizei count, const char* funcName) {
|
||||
if (count < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", funcName,
|
||||
"count must be non-negative."));
|
||||
return false;
|
||||
}
|
||||
const SizeT pointCount = GetBufferBindingPointLimit(target);
|
||||
if (static_cast<Uint64>(first) + static_cast<Uint64>(count) > static_cast<Uint64>(pointCount)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl/BufferImpl", funcName,
|
||||
std::format("first + count ({} + {}) exceeds the {} indexed binding points of target {}.", first,
|
||||
count, pointCount, MG_Util::ConvertBufferTargetToString(target))));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateBufferBindingPointIndex(BufferTarget target, Uint index) {
|
||||
const SizeT pointCount = GetBufferBindingPointLimit(target);
|
||||
|
||||
if (index < pointCount) {
|
||||
return true;
|
||||
@@ -107,14 +140,10 @@ namespace MobileGL::MG_Impl::GLImpl::BufferImpl {
|
||||
}
|
||||
|
||||
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits) {
|
||||
if (accessBits == BufferMappingAccessBit::Null) {
|
||||
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
|
||||
"ValidateBufferMappingAccess",
|
||||
"Access bits cannot be null."));
|
||||
return false;
|
||||
}
|
||||
|
||||
// An empty mask is a legal value for a bitfield - it just fails the rule that a mapping
|
||||
// must ask for read or write access, which is INVALID_OPERATION and belongs to the callers
|
||||
// (both of them check it immediately after this). Rejecting it here as INVALID_ENUM
|
||||
// reported the wrong error and hid theirs.
|
||||
const auto validBits = BufferMappingAccessBit::Read | BufferMappingAccessBit::Write |
|
||||
BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer |
|
||||
BufferMappingAccessBit::FlushExplicit | BufferMappingAccessBit::Unsynchronized |
|
||||
|
||||
@@ -17,4 +17,8 @@ namespace MobileGL::MG_Impl::GLImpl::BufferImpl {
|
||||
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits);
|
||||
Bool ValidateBufferBindingPointTarget(BufferTarget target);
|
||||
Bool ValidateBufferBindingPointIndex(BufferTarget target, Uint index);
|
||||
// ARB_multi_bind: glBindBuffersBase/Range validate the whole [first, first + count) range
|
||||
// up front and report INVALID_OPERATION, where a single out-of-range index would be
|
||||
// INVALID_VALUE. Naively looping the single-bind entry points reports the wrong class.
|
||||
Bool ValidateBufferBindingPointRange(BufferTarget target, Uint first, GLsizei count, const char* funcName);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl::BufferImpl
|
||||
|
||||
@@ -11,10 +11,11 @@
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_State/EGLState/Core.h>
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
#include "../Getter/GL_Getter.h"
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
static Bool ValidateCurrentProgramForExecution(const char* functionName) {
|
||||
const auto& currentProgram = MG_State::pGLContext->GetCurrentProgram();
|
||||
const auto& currentProgram = MG_State::pGLContext->GetProgramForDraw();
|
||||
if (!currentProgram) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
@@ -36,7 +37,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
static Bool ValidateCurrentProgramForCompute(const char* functionName) {
|
||||
if (!ValidateCurrentProgramForExecution(functionName)) return false;
|
||||
|
||||
const auto& currentProgram = MG_State::pGLContext->GetCurrentProgram();
|
||||
const auto& currentProgram = MG_State::pGLContext->GetProgramForDraw();
|
||||
if (currentProgram->GetShaderIndexByStage(ShaderStage::Compute) < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
@@ -48,7 +49,109 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return true;
|
||||
}
|
||||
|
||||
// Primitives a draw of `count` vertices in `mode` assembles (0 for
|
||||
// incomplete primitives). Used for the CPU-side transform feedback
|
||||
// primitive accounting.
|
||||
static Uint64 CountPrimitivesForDraw(GLenum mode, GLsizei count) {
|
||||
if (count <= 0) return 0;
|
||||
switch (mode) {
|
||||
case GL_POINTS: return static_cast<Uint64>(count);
|
||||
case GL_LINES: return static_cast<Uint64>(count / 2);
|
||||
case GL_LINE_STRIP: return count >= 2 ? static_cast<Uint64>(count - 1) : 0;
|
||||
case GL_LINE_LOOP: return count >= 2 ? static_cast<Uint64>(count) : 0;
|
||||
case GL_TRIANGLES: return static_cast<Uint64>(count / 3);
|
||||
case GL_TRIANGLE_STRIP:
|
||||
case GL_TRIANGLE_FAN: return count >= 3 ? static_cast<Uint64>(count - 2) : 0;
|
||||
default: return 0;
|
||||
}
|
||||
}
|
||||
|
||||
// Accumulate the transform feedback primitive counter for a captured draw.
|
||||
// Draws without a geometry stage write exactly the primitives they assemble,
|
||||
// clamped by the capture buffers' remaining capacity (a full buffer stops
|
||||
// recording whole primitives, which is what PRIMITIVES_WRITTEN reports).
|
||||
// Geometry amplification is not modelled here.
|
||||
static void AccountTransformFeedbackPrimitives(GLenum mode, GLsizei count) {
|
||||
if (!MG_State::pGLContext->IsTransformFeedbackActive()) return;
|
||||
// A paused span captures nothing, so a draw made while paused contributes to
|
||||
// PRIMITIVES_GENERATED but not to TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN.
|
||||
if (MG_State::pGLContext->IsTransformFeedbackPaused()) {
|
||||
MG_State::pGLContext->AddTransformFeedbackPausedPrimitives(CountPrimitivesForDraw(mode, count));
|
||||
return;
|
||||
}
|
||||
Uint64 primitives = CountPrimitivesForDraw(mode, count);
|
||||
if (primitives == 0) return;
|
||||
MG_State::pGLContext->AddTransformFeedbackInputPrimitives(primitives);
|
||||
|
||||
Uint64 verticesPerPrimitive = 1;
|
||||
switch (mode) {
|
||||
case GL_LINES:
|
||||
case GL_LINE_STRIP:
|
||||
case GL_LINE_LOOP:
|
||||
verticesPerPrimitive = 2;
|
||||
break;
|
||||
case GL_TRIANGLES:
|
||||
case GL_TRIANGLE_STRIP:
|
||||
case GL_TRIANGLE_FAN:
|
||||
verticesPerPrimitive = 3;
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
|
||||
const auto& program = MG_State::pGLContext->GetTransformFeedbackProgram();
|
||||
if (program != nullptr) {
|
||||
// Capacity in captured vertices = the tightest bound buffer.
|
||||
Uint64 capacityVertices = ~0ull;
|
||||
for (SizeT i = 0; i < program->GetTransformFeedbackBufferCount(); ++i) {
|
||||
const Uint32 stride = program->GetTransformFeedbackStride(static_cast<Uint32>(i));
|
||||
if (stride == 0) continue;
|
||||
const auto& point = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::TransformFeedback,
|
||||
static_cast<Uint>(i));
|
||||
const Range1D range = point.GetRange();
|
||||
const Uint64 bytes = range.end > range.start ? static_cast<Uint64>(range.end - range.start) : 0;
|
||||
capacityVertices = std::min<Uint64>(capacityVertices, bytes / stride);
|
||||
}
|
||||
if (capacityVertices != ~0ull) {
|
||||
const Uint64 usedVertices = MG_State::pGLContext->GetTransformFeedbackCapturedVertices();
|
||||
const Uint64 remainingVertices = capacityVertices > usedVertices ? capacityVertices - usedVertices : 0;
|
||||
primitives = std::min<Uint64>(primitives, remainingVertices / verticesPerPrimitive);
|
||||
}
|
||||
}
|
||||
MG_State::pGLContext->AddTransformFeedbackPrimitives(primitives);
|
||||
MG_State::pGLContext->AddTransformFeedbackCapturedVertices(primitives * verticesPerPrimitive);
|
||||
}
|
||||
|
||||
// Every primitive mode a draw command accepts (GL 4.6 core table 10.1, plus
|
||||
// GL_PATCHES for the tessellation pipeline). Anything else is GL_INVALID_ENUM.
|
||||
static Bool IsAcceptedPrimitiveMode(GLenum mode) {
|
||||
switch (mode) {
|
||||
case GL_POINTS:
|
||||
case GL_LINES:
|
||||
case GL_LINE_LOOP:
|
||||
case GL_LINE_STRIP:
|
||||
case GL_LINES_ADJACENCY:
|
||||
case GL_LINE_STRIP_ADJACENCY:
|
||||
case GL_TRIANGLES:
|
||||
case GL_TRIANGLE_STRIP:
|
||||
case GL_TRIANGLE_FAN:
|
||||
case GL_TRIANGLES_ADJACENCY:
|
||||
case GL_TRIANGLE_STRIP_ADJACENCY:
|
||||
case GL_PATCHES:
|
||||
return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
static Bool ValidatePrimitiveModeForBackend(const char* functionName, GLenum mode) {
|
||||
if (!IsAcceptedPrimitiveMode(mode)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName, "mode is not an accepted primitive type."));
|
||||
return false;
|
||||
}
|
||||
|
||||
const auto& activeBackendObject = MG_Backend::pActiveBackendObject;
|
||||
if (!activeBackendObject) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
@@ -57,17 +160,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return false;
|
||||
}
|
||||
|
||||
if (activeBackendObject->GetBackendType() == BackendType::DirectVulkan && mode == GL_LINE_LOOP) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", functionName,
|
||||
"Primitive mode GL_LINE_LOOP is not supported by the DirectVulkan backend."));
|
||||
return false;
|
||||
}
|
||||
|
||||
const auto& vao = MG_State::pGLContext->GetBoundVertexArray();
|
||||
if (MG_State::pEGLContext->IsCurrentContextOpenGLCoreProfile() && vao && vao->GetExternalIndex() == 0) {
|
||||
if (vao && vao->GetExternalIndex() == 0 && !MG_State::IsRelaxedSemanticsActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
@@ -75,9 +169,133 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return false;
|
||||
}
|
||||
|
||||
// A geometry stage only accepts the primitive types that decompose into its declared
|
||||
// input primitive (GL 4.6 core 11.3.1); anything else is INVALID_OPERATION. GL_PATCHES
|
||||
// is the tessellation pipeline's input and reaches the geometry stage already
|
||||
// converted, so it is not constrained here.
|
||||
const auto& currentProgram = MG_State::pGLContext->GetProgramForDraw();
|
||||
const GLenum gsInput = currentProgram ? currentProgram->GetGeometryInputType() : GL_NONE;
|
||||
if (gsInput != GL_NONE && mode != GL_PATCHES) {
|
||||
Bool compatible = false;
|
||||
switch (gsInput) {
|
||||
case GL_POINTS:
|
||||
compatible = mode == GL_POINTS;
|
||||
break;
|
||||
case GL_LINES:
|
||||
compatible = mode == GL_LINES || mode == GL_LINE_STRIP || mode == GL_LINE_LOOP;
|
||||
break;
|
||||
case GL_LINES_ADJACENCY:
|
||||
compatible = mode == GL_LINES_ADJACENCY || mode == GL_LINE_STRIP_ADJACENCY;
|
||||
break;
|
||||
case GL_TRIANGLES:
|
||||
compatible = mode == GL_TRIANGLES || mode == GL_TRIANGLE_STRIP || mode == GL_TRIANGLE_FAN;
|
||||
break;
|
||||
case GL_TRIANGLES_ADJACENCY:
|
||||
compatible = mode == GL_TRIANGLES_ADJACENCY || mode == GL_TRIANGLE_STRIP_ADJACENCY;
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
if (!compatible) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", functionName,
|
||||
"Primitive mode is incompatible with the geometry shader's input primitive type."));
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
// While transform feedback is active the draw's primitive type must match
|
||||
// the feedback primitive mode (GL 3.3 core 13.2.2). With a geometry shader
|
||||
// the constraint moves to the shader's output primitive type instead, so
|
||||
// the draw mode itself is unconstrained here. A paused span is exempt: it
|
||||
// captures nothing, so there is nothing for the mode to be incompatible with
|
||||
// (GL 4.6 core 13.2.3).
|
||||
if (MG_State::pGLContext->IsTransformFeedbackActive() &&
|
||||
!MG_State::pGLContext->IsTransformFeedbackPaused() &&
|
||||
!(MG_State::pGLContext->GetTransformFeedbackProgram() &&
|
||||
MG_State::pGLContext->GetTransformFeedbackProgram()->GetShaderIndexByStage(ShaderStage::Geometry) >= 0)) {
|
||||
const GLenum feedbackMode = MG_State::pGLContext->GetTransformFeedbackPrimitiveMode();
|
||||
Bool compatible = false;
|
||||
switch (feedbackMode) {
|
||||
case GL_POINTS:
|
||||
compatible = mode == GL_POINTS;
|
||||
break;
|
||||
case GL_LINES:
|
||||
compatible = mode == GL_LINES || mode == GL_LINE_STRIP || mode == GL_LINE_LOOP;
|
||||
break;
|
||||
case GL_TRIANGLES:
|
||||
compatible = mode == GL_TRIANGLES || mode == GL_TRIANGLE_STRIP || mode == GL_TRIANGLE_FAN;
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
if (!compatible) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", functionName,
|
||||
"Primitive mode is incompatible with the active transform feedback primitive mode."));
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
return true;
|
||||
}
|
||||
|
||||
// Byte size of the command structures the indirect draws read (GL 4.6 core 10.3.10).
|
||||
constexpr SizeT kDrawArraysIndirectCommandBytes = 4 * sizeof(Uint32);
|
||||
constexpr SizeT kDrawElementsIndirectCommandBytes = 5 * sizeof(Uint32);
|
||||
|
||||
// Shared preconditions of every *Indirect draw: `indirect` is a byte offset into the
|
||||
// buffer bound to GL_DRAW_INDIRECT_BUFFER, must be 4-byte aligned, and the whole
|
||||
// command has to lie inside that buffer.
|
||||
static Bool ValidateIndirectDrawSource(const char* functionName, const void* indirect, SizeT commandBytes) {
|
||||
const auto offset = reinterpret_cast<uintptr_t>(indirect);
|
||||
if (offset % 4 != 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"indirect offset must be a multiple of 4."));
|
||||
return false;
|
||||
}
|
||||
|
||||
const auto& buffer = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DrawIndirect).GetBoundObject();
|
||||
if (!buffer) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"No buffer is bound to GL_DRAW_INDIRECT_BUFFER."));
|
||||
return false;
|
||||
}
|
||||
|
||||
if (offset + commandBytes > buffer->GetSize()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"The indirect command extends past the end of the bound "
|
||||
"GL_DRAW_INDIRECT_BUFFER."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// Index type accepted by the DrawElements family (GL 4.6 core 10.3.9).
|
||||
static Bool ValidateDrawElementsIndexType(const char* functionName, GLenum type) {
|
||||
switch (type) {
|
||||
case GL_UNSIGNED_BYTE:
|
||||
case GL_UNSIGNED_SHORT:
|
||||
case GL_UNSIGNED_INT:
|
||||
return true;
|
||||
default:
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName, "type is not an accepted index type."));
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
void Clear_Backend(GLbitfield mask) {
|
||||
#ifdef TRACY_ENABLE
|
||||
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
|
||||
@@ -256,6 +474,21 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return;
|
||||
}
|
||||
if (!ValidateCurrentProgramForCompute(__func__)) return;
|
||||
// GL 4.6 core 19: each num_groups_* must be within GL_MAX_COMPUTE_WORK_GROUP_COUNT
|
||||
// for its dimension. GetIntegeri_v already floors that at the spec minimum.
|
||||
const GLuint numGroups[3] = {numGroupsX, numGroupsY, numGroupsZ};
|
||||
for (GLuint dimension = 0; dimension < 3; ++dimension) {
|
||||
GLint maxGroups = 0;
|
||||
GetIntegeri_v(GL_MAX_COMPUTE_WORK_GROUP_COUNT, dimension, &maxGroups);
|
||||
if (numGroups[dimension] > static_cast<GLuint>(std::max(maxGroups, 0))) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"num_groups exceeds GL_MAX_COMPUTE_WORK_GROUP_COUNT for dimension " +
|
||||
std::to_string(dimension) + "."));
|
||||
return;
|
||||
}
|
||||
}
|
||||
dispatchCompute(numGroupsX, numGroupsY, numGroupsZ);
|
||||
}
|
||||
|
||||
@@ -269,9 +502,49 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return;
|
||||
}
|
||||
if (!ValidateCurrentProgramForCompute(__func__)) return;
|
||||
// GL 4.6 core 19: `indirect` is a byte offset into GL_DISPATCH_INDIRECT_BUFFER -
|
||||
// negative or misaligned is INVALID_VALUE, nothing bound is INVALID_OPERATION.
|
||||
if (indirect < 0 || (indirect % 4) != 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"indirect must be non-negative and a multiple of 4."));
|
||||
return;
|
||||
}
|
||||
const auto& indirectBuffer =
|
||||
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DispatchIndirect).GetBoundObject();
|
||||
if (!indirectBuffer) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"No buffer is bound to GL_DISPATCH_INDIRECT_BUFFER."));
|
||||
return;
|
||||
}
|
||||
dispatchComputeIndirect(indirect);
|
||||
}
|
||||
|
||||
void PatchParameteri(GLenum pname, GLint value) {
|
||||
if (pname != GL_PATCH_VERTICES) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "pname must be GL_PATCH_VERTICES."));
|
||||
return;
|
||||
}
|
||||
GLint maxPatchVertices = 32;
|
||||
GetIntegerv(GL_MAX_PATCH_VERTICES, &maxPatchVertices);
|
||||
if (value <= 0 || value > maxPatchVertices) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"value must be in [1, GL_MAX_PATCH_VERTICES]."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->SetPatchVertices(static_cast<Uint>(value));
|
||||
if (const auto patchParameteri = MG_Backend::gBackendFunctionsTable.GL.PatchParameteri) {
|
||||
patchParameteri(pname, value);
|
||||
}
|
||||
}
|
||||
|
||||
void MemoryBarrier(GLbitfield barriers) {
|
||||
auto memoryBarrier = MG_Backend::gBackendFunctionsTable.GL.MemoryBarrier;
|
||||
if (!memoryBarrier) {
|
||||
@@ -377,6 +650,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void DrawElementsIndirect(GLenum mode, GLenum type, const void* indirect) {
|
||||
if (!ValidateCurrentProgramForExecution(__func__)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(__func__, mode)) return;
|
||||
if (!ValidateDrawElementsIndexType(__func__, type)) return;
|
||||
if (!ValidateIndirectDrawSource(__func__, indirect, kDrawElementsIndirectCommandBytes)) return;
|
||||
DrawElementsIndirect_Backend(mode, type, indirect);
|
||||
}
|
||||
|
||||
@@ -396,18 +671,21 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void DrawArraysIndirect(GLenum mode, const void* indirect) {
|
||||
if (!ValidateCurrentProgramForExecution(__func__)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(__func__, mode)) return;
|
||||
if (!ValidateIndirectDrawSource(__func__, indirect, kDrawArraysIndirectCommandBytes)) return;
|
||||
DrawArraysIndirect_Backend(mode, indirect);
|
||||
}
|
||||
|
||||
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const void* indices, GLint basevertex) {
|
||||
if (!ValidateCurrentProgramForExecution(__func__)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(__func__, mode)) return;
|
||||
AccountTransformFeedbackPrimitives(mode, count);
|
||||
DrawElementsBaseVertex_Backend(mode, count, type, indices, basevertex);
|
||||
}
|
||||
|
||||
void DrawArrays(GLenum mode, GLint first, GLsizei count) {
|
||||
if (!ValidateCurrentProgramForExecution(__func__)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(__func__, mode)) return;
|
||||
AccountTransformFeedbackPrimitives(mode, count);
|
||||
DrawArrays_Backend(mode, first, count);
|
||||
}
|
||||
|
||||
@@ -444,7 +722,487 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void DrawElements(GLenum mode, GLsizei count, GLenum type, const void* indices) {
|
||||
if (!ValidateCurrentProgramForExecution(__func__)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(__func__, mode)) return;
|
||||
AccountTransformFeedbackPrimitives(mode, count);
|
||||
DrawElements_Backend(mode, count, type, indices);
|
||||
}
|
||||
|
||||
void BeginTransformFeedback(GLenum primitiveMode) {
|
||||
if (primitiveMode != GL_POINTS && primitiveMode != GL_LINES && primitiveMode != GL_TRIANGLES) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"primitiveMode must be GL_POINTS, GL_LINES or GL_TRIANGLES."));
|
||||
return;
|
||||
}
|
||||
if (MG_State::pGLContext->IsTransformFeedbackActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "Transform feedback is already active."));
|
||||
return;
|
||||
}
|
||||
const auto& program = MG_State::pGLContext->GetProgramForDraw();
|
||||
if (!program || !program->GetLinkStatus() || program->GetTransformFeedbackVaryingCount() == 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", __func__,
|
||||
"No program with transform feedback varyings is active."));
|
||||
return;
|
||||
}
|
||||
// Every capture buffer slot the program's mode uses must have a buffer bound. A slot
|
||||
// of stride 0 - two consecutive gl_NextBuffer entries - captures nothing and so needs
|
||||
// no binding.
|
||||
const SizeT usedBufferCount = program->GetTransformFeedbackBufferCount();
|
||||
for (SizeT i = 0; i < usedBufferCount; ++i) {
|
||||
if (program->GetTransformFeedbackStride(static_cast<Uint32>(i)) == 0) continue;
|
||||
const auto& point = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::TransformFeedback,
|
||||
static_cast<Uint>(i));
|
||||
if (point.GetBoundObject() == nullptr) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl", __func__,
|
||||
"Transform feedback buffer binding point " + std::to_string(i) + " has no buffer bound."));
|
||||
return;
|
||||
}
|
||||
}
|
||||
MG_State::pGLContext->BeginTransformFeedback(primitiveMode, program);
|
||||
if (const auto beginXfb = MG_Backend::gBackendFunctionsTable.GL.BeginTransformFeedback) {
|
||||
beginXfb(primitiveMode);
|
||||
}
|
||||
}
|
||||
|
||||
// Vulkan transform feedback captures triangle strips in plain (i, i+1, i+2)
|
||||
// vertex order, but GL decomposes odd strip triangles as (i+1, i, i+2)
|
||||
// (GL 4.6 table 10.1). With the geometry stage's statically-known strip
|
||||
// lengths the captured records are reordered in place: swap the first two
|
||||
// vertex records of every odd triangle within each emitted strip.
|
||||
static void FixupGsStripCaptureOrder(const SharedPtr<MG_State::GLState::ProgramObject>& program,
|
||||
Uint64 inputPrimitives) {
|
||||
// Only Vulkan-order captures need this. A backend that runs the capture on its
|
||||
// own GL/ES driver (it owns the span, hence the EndTransformFeedback entry) has
|
||||
// already produced GL's vertex order, and reordering it again would corrupt it.
|
||||
if (MG_Backend::gBackendFunctionsTable.GL.EndTransformFeedback != nullptr) {
|
||||
return;
|
||||
}
|
||||
if (program == nullptr || !program->HasGsTriangleStripCaptureFixup() || inputPrimitives == 0) {
|
||||
return;
|
||||
}
|
||||
const auto& stripTriangles = program->GetGsStripTriangles();
|
||||
|
||||
// Global triangle indices whose leading vertex pair must swap.
|
||||
Vector<Uint64> swapTriangles;
|
||||
Uint64 triangleBase = 0;
|
||||
for (Uint64 input = 0; input < inputPrimitives; ++input) {
|
||||
for (const Uint32 stripLength : stripTriangles) {
|
||||
for (Uint32 t = 1; t < stripLength; t += 2) {
|
||||
swapTriangles.push_back(triangleBase + t);
|
||||
}
|
||||
triangleBase += stripLength;
|
||||
}
|
||||
}
|
||||
if (swapTriangles.empty()) {
|
||||
return;
|
||||
}
|
||||
|
||||
for (SizeT bufferIndex = 0; bufferIndex < program->GetTransformFeedbackBufferCount(); ++bufferIndex) {
|
||||
const Uint32 stride = program->GetTransformFeedbackStride(static_cast<Uint32>(bufferIndex));
|
||||
if (stride == 0) continue;
|
||||
const auto& bindingPoint =
|
||||
MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::TransformFeedback,
|
||||
static_cast<Uint>(bufferIndex));
|
||||
const auto& buffer = bindingPoint.GetBoundObject();
|
||||
if (buffer == nullptr) continue;
|
||||
const Range1D range = bindingPoint.GetRange();
|
||||
const Uint8* mapped = buffer->MappedData();
|
||||
if (mapped == nullptr) continue;
|
||||
// The geometry stage amplifies, so the CPU vertex counter does not bound
|
||||
// the capture; the binding range's whole-triangle capacity does.
|
||||
const Uint64 rangeBytes = range.end > range.start ? static_cast<Uint64>(range.end - range.start) : 0;
|
||||
const Uint64 capturedTriangles = std::min<Uint64>(triangleBase, (rangeBytes / stride) / 3);
|
||||
|
||||
// Observed Vulkan capture order for odd strip triangles is (i, i+2, i+1)
|
||||
// (winding preserved by swapping the trailing pair); GL wants
|
||||
// (i+1, i, i+2), which is one rotation away: (a,b,c) -> (c,a,b).
|
||||
Vector<Uint8> scratch(stride);
|
||||
for (const Uint64 triangle : swapTriangles) {
|
||||
if (triangle >= capturedTriangles) break;
|
||||
const SizeT v0Offset = static_cast<SizeT>(range.start) + static_cast<SizeT>(triangle * 3) * stride;
|
||||
const SizeT v1Offset = v0Offset + stride;
|
||||
const SizeT v2Offset = v1Offset + stride;
|
||||
Memcpy(scratch.data(), mapped + v2Offset, stride);
|
||||
buffer->WritebackFromBackend({const_cast<Uint8*>(mapped) + v1Offset, stride}, v2Offset);
|
||||
buffer->WritebackFromBackend({const_cast<Uint8*>(mapped) + v0Offset, stride}, v1Offset);
|
||||
buffer->WritebackFromBackend({scratch.data(), stride}, v0Offset);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
void EndTransformFeedback(void) {
|
||||
if (!MG_State::pGLContext->IsTransformFeedbackActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "Transform feedback is not active."));
|
||||
return;
|
||||
}
|
||||
const auto capturedProgram = MG_State::pGLContext->GetTransformFeedbackProgram();
|
||||
const Uint64 inputPrimitives = MG_State::pGLContext->GetTransformFeedbackInputPrimitives();
|
||||
// Closed while the capture state is still active: a backend that captures
|
||||
// through its own driver reads the capture program and buffer bindings here.
|
||||
if (const auto endXfb = MG_Backend::gBackendFunctionsTable.GL.EndTransformFeedback) {
|
||||
endXfb();
|
||||
}
|
||||
MG_State::pGLContext->EndTransformFeedback();
|
||||
// Captured results must be visible to MapBuffer/GetBufferSubData after
|
||||
// End; the capture targets are host-coherent GPU memory, so completing
|
||||
// the GPU work is all that is required.
|
||||
auto& backendGL = MG_Backend::gBackendFunctionsTable.GL;
|
||||
if (backendGL.FenceSync && backendGL.ClientWaitSync) {
|
||||
if (auto sync = backendGL.FenceSync()) {
|
||||
backendGL.ClientWaitSync(sync, GL_SYNC_FLUSH_COMMANDS_BIT, ~0ull);
|
||||
if (backendGL.DeleteSync) {
|
||||
backendGL.DeleteSync(sync);
|
||||
}
|
||||
}
|
||||
}
|
||||
FixupGsStripCaptureOrder(capturedProgram, inputPrimitives);
|
||||
}
|
||||
|
||||
void PauseTransformFeedback(void) {
|
||||
if (!MG_State::pGLContext->IsTransformFeedbackActive() ||
|
||||
MG_State::pGLContext->IsTransformFeedbackPaused()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Transform feedback is not active, or is already paused."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->SetTransformFeedbackPaused(true);
|
||||
if (const auto pauseXfb = MG_Backend::gBackendFunctionsTable.GL.PauseTransformFeedback) {
|
||||
pauseXfb();
|
||||
}
|
||||
}
|
||||
|
||||
void ResumeTransformFeedback(void) {
|
||||
if (!MG_State::pGLContext->IsTransformFeedbackActive() ||
|
||||
!MG_State::pGLContext->IsTransformFeedbackPaused()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "Transform feedback is not paused."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->SetTransformFeedbackPaused(false);
|
||||
if (const auto resumeXfb = MG_Backend::gBackendFunctionsTable.GL.ResumeTransformFeedback) {
|
||||
resumeXfb();
|
||||
}
|
||||
}
|
||||
|
||||
void GenTransformFeedbacks(GLsizei n, GLuint* ids) {
|
||||
if (n < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "n must be non-negative."));
|
||||
return;
|
||||
}
|
||||
if (n == 0 || ids == nullptr) return;
|
||||
Vector<Uint> names;
|
||||
MG_State::pGLContext->GenTransformFeedbackNames(static_cast<Uint>(n), names);
|
||||
Memcpy(ids, names.data(), static_cast<SizeT>(n) * sizeof(GLuint));
|
||||
}
|
||||
|
||||
void CreateTransformFeedbacks(GLsizei n, GLuint* ids) {
|
||||
if (n < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "n must be non-negative."));
|
||||
return;
|
||||
}
|
||||
if (n == 0 || ids == nullptr) return;
|
||||
Vector<Uint> names;
|
||||
MG_State::pGLContext->GenTransformFeedbackNames(static_cast<Uint>(n), names);
|
||||
// Unlike glGenTransformFeedbacks, the names are objects immediately: there is no bind step
|
||||
// to create them from (GL 4.6 core 13.2.1).
|
||||
for (const Uint name : names) {
|
||||
MG_State::pGLContext->CreateTransformFeedbackObject(name);
|
||||
}
|
||||
Memcpy(ids, names.data(), static_cast<SizeT>(n) * sizeof(GLuint));
|
||||
}
|
||||
|
||||
namespace {
|
||||
// Shared front half of the by-name transform feedback entry points: the object has to exist
|
||||
// (INVALID_OPERATION otherwise) before anything else about the call is looked at.
|
||||
Bool ValidateNamedTransformFeedback(GLuint xfb, const char* functionName) {
|
||||
if (!MG_State::pGLContext->IsTransformFeedbackObject(xfb)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
std::to_string(xfb) + " is not a transform feedback object."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateTransformFeedbackBufferIndex(GLuint index, const char* functionName) {
|
||||
if (index >= MG_State::GLState::GLContext::MAX_TRANSFORM_FEEDBACK_BUFFERS) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"index exceeds GL_MAX_TRANSFORM_FEEDBACK_BUFFERS."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// A capture binding may not be changed while the object is capturing (GL 4.6 core 13.2.2).
|
||||
Bool ValidateNamedTransformFeedbackNotActive(GLuint xfb, const char* functionName) {
|
||||
if (MG_State::pGLContext->IsNamedTransformFeedbackActive(xfb)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"The transform feedback object is capturing."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
SharedPtr<MG_State::GLState::BufferObject> ResolveTransformFeedbackBuffer(GLuint buffer,
|
||||
const char* functionName) {
|
||||
if (buffer == 0) return nullptr;
|
||||
if (!MG_State::pGLContext->ValidateBufferName(buffer)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
std::to_string(buffer) + " is not a buffer object."));
|
||||
return nullptr;
|
||||
}
|
||||
return MG_State::pGLContext->GetBufferObject(buffer);
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void TransformFeedbackBufferBase(GLuint xfb, GLuint index, GLuint buffer) {
|
||||
if (!ValidateNamedTransformFeedback(xfb, __func__)) return;
|
||||
if (!ValidateTransformFeedbackBufferIndex(index, __func__)) return;
|
||||
if (!ValidateNamedTransformFeedbackNotActive(xfb, __func__)) return;
|
||||
if (buffer != 0 && !MG_State::pGLContext->ValidateBufferName(buffer)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
std::to_string(buffer) + " is not a buffer object."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->SetNamedTransformFeedbackBinding(xfb, index,
|
||||
ResolveTransformFeedbackBuffer(buffer, __func__), {},
|
||||
false);
|
||||
}
|
||||
|
||||
void TransformFeedbackBufferRange(GLuint xfb, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size) {
|
||||
if (!ValidateNamedTransformFeedback(xfb, __func__)) return;
|
||||
if (!ValidateTransformFeedbackBufferIndex(index, __func__)) return;
|
||||
if (!ValidateNamedTransformFeedbackNotActive(xfb, __func__)) return;
|
||||
if (offset < 0 || size <= 0 || (offset % 4) != 0 || (size % 4) != 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"offset and size must be non-negative multiples of 4."));
|
||||
return;
|
||||
}
|
||||
if (buffer != 0 && !MG_State::pGLContext->ValidateBufferName(buffer)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
std::to_string(buffer) + " is not a buffer object."));
|
||||
return;
|
||||
}
|
||||
auto bufferObject = ResolveTransformFeedbackBuffer(buffer, __func__);
|
||||
const Range1D range{static_cast<SizeT>(offset), static_cast<SizeT>(offset) + static_cast<SizeT>(size)};
|
||||
MG_State::pGLContext->SetNamedTransformFeedbackBinding(xfb, index, bufferObject, range,
|
||||
bufferObject != nullptr);
|
||||
}
|
||||
|
||||
void GetTransformFeedbackiv(GLuint xfb, GLenum pname, GLint* param) {
|
||||
if (!ValidateNamedTransformFeedback(xfb, __func__)) return;
|
||||
if (!param) return;
|
||||
switch (pname) {
|
||||
case GL_TRANSFORM_FEEDBACK_ACTIVE:
|
||||
*param = MG_State::pGLContext->IsNamedTransformFeedbackActive(xfb) ? GL_TRUE : GL_FALSE;
|
||||
return;
|
||||
case GL_TRANSFORM_FEEDBACK_PAUSED:
|
||||
*param = MG_State::pGLContext->IsNamedTransformFeedbackPaused(xfb) ? GL_TRUE : GL_FALSE;
|
||||
return;
|
||||
default:
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"pname must be GL_TRANSFORM_FEEDBACK_ACTIVE or _PAUSED."));
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
void GetTransformFeedbacki_v(GLuint xfb, GLenum pname, GLuint index, GLint* param) {
|
||||
if (!ValidateNamedTransformFeedback(xfb, __func__)) return;
|
||||
if (pname != GL_TRANSFORM_FEEDBACK_BUFFER_BINDING) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"pname must be GL_TRANSFORM_FEEDBACK_BUFFER_BINDING."));
|
||||
return;
|
||||
}
|
||||
if (!ValidateTransformFeedbackBufferIndex(index, __func__)) return;
|
||||
if (!param) return;
|
||||
const auto binding = MG_State::pGLContext->GetNamedTransformFeedbackBinding(xfb, index);
|
||||
*param = binding.Buffer ? static_cast<GLint>(binding.Buffer->GetExternalIndex()) : 0;
|
||||
}
|
||||
|
||||
void GetTransformFeedbacki64_v(GLuint xfb, GLenum pname, GLuint index, GLint64* param) {
|
||||
if (!ValidateNamedTransformFeedback(xfb, __func__)) return;
|
||||
if (pname != GL_TRANSFORM_FEEDBACK_BUFFER_START && pname != GL_TRANSFORM_FEEDBACK_BUFFER_SIZE) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"pname must be GL_TRANSFORM_FEEDBACK_BUFFER_START or _SIZE."));
|
||||
return;
|
||||
}
|
||||
if (!ValidateTransformFeedbackBufferIndex(index, __func__)) return;
|
||||
if (!param) return;
|
||||
const auto binding = MG_State::pGLContext->GetNamedTransformFeedbackBinding(xfb, index);
|
||||
// glTransformFeedbackBufferBase leaves both at zero; only the range form sets them
|
||||
// (GL 4.6 core table 23.48).
|
||||
if (!binding.Buffer || !binding.HasExplicitRange) {
|
||||
*param = 0;
|
||||
return;
|
||||
}
|
||||
*param = (pname == GL_TRANSFORM_FEEDBACK_BUFFER_START)
|
||||
? static_cast<GLint64>(binding.Range.start)
|
||||
: static_cast<GLint64>(binding.Range.end - binding.Range.start);
|
||||
}
|
||||
|
||||
void DeleteTransformFeedbacks(GLsizei n, const GLuint* ids) {
|
||||
if (n < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "n must be non-negative."));
|
||||
return;
|
||||
}
|
||||
if (ids == nullptr) return;
|
||||
for (GLsizei i = 0; i < n; ++i) {
|
||||
const GLuint id = ids[i];
|
||||
// Unknown names and 0 are silently ignored; an object whose capture span is
|
||||
// still open is not (GL 4.6 core 13.2.1).
|
||||
if (id == 0 || !MG_State::pGLContext->ValidateTransformFeedbackName(id)) continue;
|
||||
if (id == MG_State::pGLContext->GetBoundTransformFeedbackName() &&
|
||||
MG_State::pGLContext->IsTransformFeedbackActive()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Cannot delete a transform feedback object whose capture is active."));
|
||||
continue;
|
||||
}
|
||||
if (const auto deleteXfb = MG_Backend::gBackendFunctionsTable.GL.DeleteTransformFeedback) {
|
||||
deleteXfb(id);
|
||||
}
|
||||
MG_State::pGLContext->MarkTransformFeedbackObjectForDeletion(id);
|
||||
}
|
||||
}
|
||||
|
||||
void BindTransformFeedback(GLenum target, GLuint id) {
|
||||
if (target != GL_TRANSFORM_FEEDBACK) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "target must be GL_TRANSFORM_FEEDBACK."));
|
||||
return;
|
||||
}
|
||||
// A running capture pins its object; only a paused one may be swapped out.
|
||||
if (MG_State::pGLContext->IsTransformFeedbackActive() &&
|
||||
!MG_State::pGLContext->IsTransformFeedbackPaused()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Transform feedback is active and not paused."));
|
||||
return;
|
||||
}
|
||||
if (!MG_State::pGLContext->ValidateTransformFeedbackName(id)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
std::to_string(id) + " is not a transform feedback object name."));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->BindTransformFeedbackObject(id);
|
||||
if (const auto bindXfb = MG_Backend::gBackendFunctionsTable.GL.BindTransformFeedback) {
|
||||
bindXfb(id);
|
||||
}
|
||||
}
|
||||
|
||||
GLboolean IsTransformFeedback(GLuint id) {
|
||||
// Name 0 is the default object, and a name glGenTransformFeedbacks handed out only
|
||||
// becomes the name of an object once it has been bound.
|
||||
return MG_State::pGLContext->IsTransformFeedbackObject(id) ? GL_TRUE : GL_FALSE;
|
||||
}
|
||||
|
||||
// glDrawTransformFeedback[Stream][Instanced]: replays the vertices the named object
|
||||
// captured in its last completed span, as if by glDrawArraysInstanced with that count
|
||||
// (GL 4.6 core 10.3.7).
|
||||
static void DrawTransformFeedbackImpl(const char* functionName, GLenum mode, GLuint id, GLuint stream,
|
||||
GLsizei instancecount) {
|
||||
if (!ValidateCurrentProgramForExecution(functionName)) return;
|
||||
if (!ValidatePrimitiveModeForBackend(functionName, mode)) return;
|
||||
if (instancecount < 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName, "instancecount must be non-negative."));
|
||||
return;
|
||||
}
|
||||
if (!MG_State::pGLContext->ValidateTransformFeedbackName(id)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
std::to_string(id) + " is not a transform feedback object name."));
|
||||
return;
|
||||
}
|
||||
// GL_MAX_VERTEX_STREAMS is 1, so stream 0 is the only one that exists.
|
||||
if (stream != 0) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"stream must be less than GL_MAX_VERTEX_STREAMS."));
|
||||
return;
|
||||
}
|
||||
// Drawing from an object whose capture is currently open is legal and deliberate:
|
||||
// it is how a transform feedback result is fed straight back into the next span
|
||||
// (ARB_transform_feedback2 lists no such restriction).
|
||||
if (!MG_State::pGLContext->HasTransformFeedbackCompletedSpan(id)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", functionName,
|
||||
"glEndTransformFeedback has never been called for this object."));
|
||||
return;
|
||||
}
|
||||
|
||||
const Uint64 vertices = MG_State::pGLContext->GetTransformFeedbackRecordedVertices(id);
|
||||
if (vertices == 0) return;
|
||||
const auto count = static_cast<GLsizei>(vertices);
|
||||
AccountTransformFeedbackPrimitives(mode, count);
|
||||
if (instancecount == 1) {
|
||||
DrawArrays_Backend(mode, 0, count);
|
||||
} else {
|
||||
DrawArraysInstanced_Backend(mode, 0, count, instancecount);
|
||||
}
|
||||
}
|
||||
|
||||
void DrawTransformFeedback(GLenum mode, GLuint id) {
|
||||
DrawTransformFeedbackImpl(__func__, mode, id, 0, 1);
|
||||
}
|
||||
|
||||
void DrawTransformFeedbackInstanced(GLenum mode, GLuint id, GLsizei instancecount) {
|
||||
DrawTransformFeedbackImpl(__func__, mode, id, 0, instancecount);
|
||||
}
|
||||
|
||||
void DrawTransformFeedbackStream(GLenum mode, GLuint id, GLuint stream) {
|
||||
DrawTransformFeedbackImpl(__func__, mode, id, stream, 1);
|
||||
}
|
||||
|
||||
void DrawTransformFeedbackStreamInstanced(GLenum mode, GLuint id, GLuint stream, GLsizei instancecount) {
|
||||
DrawTransformFeedbackImpl(__func__, mode, id, stream, instancecount);
|
||||
}
|
||||
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -11,8 +11,27 @@
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
|
||||
void BeginTransformFeedback(GLenum primitiveMode);
|
||||
void EndTransformFeedback(void);
|
||||
void PauseTransformFeedback(void);
|
||||
void ResumeTransformFeedback(void);
|
||||
void GenTransformFeedbacks(GLsizei n, GLuint* ids);
|
||||
void CreateTransformFeedbacks(GLsizei n, GLuint* ids);
|
||||
void DeleteTransformFeedbacks(GLsizei n, const GLuint* ids);
|
||||
void TransformFeedbackBufferBase(GLuint xfb, GLuint index, GLuint buffer);
|
||||
void TransformFeedbackBufferRange(GLuint xfb, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size);
|
||||
void GetTransformFeedbackiv(GLuint xfb, GLenum pname, GLint* param);
|
||||
void GetTransformFeedbacki_v(GLuint xfb, GLenum pname, GLuint index, GLint* param);
|
||||
void GetTransformFeedbacki64_v(GLuint xfb, GLenum pname, GLuint index, GLint64* param);
|
||||
void BindTransformFeedback(GLenum target, GLuint id);
|
||||
GLboolean IsTransformFeedback(GLuint id);
|
||||
void DrawTransformFeedback(GLenum mode, GLuint id);
|
||||
void DrawTransformFeedbackInstanced(GLenum mode, GLuint id, GLsizei instancecount);
|
||||
void DrawTransformFeedbackStream(GLenum mode, GLuint id, GLuint stream);
|
||||
void DrawTransformFeedbackStreamInstanced(GLenum mode, GLuint id, GLuint stream, GLsizei instancecount);
|
||||
void DispatchCompute(GLuint numGroupsX, GLuint numGroupsY, GLuint numGroupsZ);
|
||||
void DispatchComputeIndirect(GLintptr indirect);
|
||||
void PatchParameteri(GLenum pname, GLint value);
|
||||
void MemoryBarrier(GLbitfield barriers);
|
||||
void MemoryBarrierByRegion(GLbitfield barriers);
|
||||
void MultiDrawElementsIndirect(GLenum mode, GLenum type, const void* indirect, GLsizei drawcount, GLsizei stride);
|
||||
|
||||
@@ -15,6 +15,7 @@
|
||||
#include "../Texture/GL_Texture.h"
|
||||
#include "../Drawing/GL_Drawing.h"
|
||||
#include "../Program/GL_Program.h"
|
||||
#include "../Program/GL_ProgramPipeline.h"
|
||||
#include "../RenderState/GL_RenderState.h"
|
||||
#include "../Framebuffer/GL_Framebuffer.h"
|
||||
#include "../VertexArray/GL_VertexArray.h"
|
||||
@@ -236,12 +237,12 @@ DECLARE_GL_FUNCTION_HEAD(void, DeleteVertexArrays, GLsizei n, const GLuint* arra
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GenVertexArrays, GLsizei n, GLuint* arrays) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GenVertexArrays, n, arrays)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLboolean, IsVertexArray, GLuint array) DECLARE_GL_FUNCTION_END(GLboolean, IsVertexArray, array)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetIntegeri_v, GLenum target, GLuint index, GLint* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetIntegeri_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BeginTransformFeedback, GLenum primitiveMode) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BeginTransformFeedback, primitiveMode)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, EndTransformFeedback) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, EndTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BeginTransformFeedback, GLenum primitiveMode) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BeginTransformFeedback, primitiveMode)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, EndTransformFeedback) DECLARE_GL_FUNCTION_END_NO_RETURN(void, EndTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindBufferRange, GLenum target, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindBufferRange, target, index, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindBufferBase, GLenum target, GLuint index, GLuint buffer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindBufferBase, target, index, buffer)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TransformFeedbackVaryings, GLuint program, GLsizei count, const GLchar* const* varyings, GLenum bufferMode) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TransformFeedbackVaryings, program, count, varyings, bufferMode)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetTransformFeedbackVarying, GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLsizei* size, GLenum* type, GLchar* name) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetTransformFeedbackVarying, program, index, bufSize, length, size, type, name)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TransformFeedbackVaryings, GLuint program, GLsizei count, const GLchar* const* varyings, GLenum bufferMode) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TransformFeedbackVaryings, program, count, varyings, bufferMode)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTransformFeedbackVarying, GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLsizei* size, GLenum* type, GLchar* name) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTransformFeedbackVarying, program, index, bufSize, length, size, type, name)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexAttribIPointer, GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexAttribIPointer, index, size, type, stride, pointer)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetVertexAttribIiv, GLuint index, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetVertexAttribIiv, index, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetVertexAttribIuiv, GLuint index, GLenum pname, GLuint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetVertexAttribIuiv, index, pname, params)
|
||||
@@ -292,17 +293,17 @@ DECLARE_GL_FUNCTION_HEAD(void, SamplerParameterfv, GLuint sampler, GLenum pname,
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetSamplerParameteriv, GLuint sampler, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetSamplerParameteriv, sampler, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetSamplerParameterfv, GLuint sampler, GLenum pname, GLfloat* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetSamplerParameterfv, sampler, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexAttribDivisor, GLuint index, GLuint divisor) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexAttribDivisor, index, divisor)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BindTransformFeedback, GLenum target, GLuint id) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BindTransformFeedback, target, id)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DeleteTransformFeedbacks, GLsizei n, const GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DeleteTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GenTransformFeedbacks, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GenTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLboolean, IsTransformFeedback, GLuint id) DECLARE_GL_FUNCTION_STUB_END(GLboolean, IsTransformFeedback, id)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PauseTransformFeedback) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PauseTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ResumeTransformFeedback) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ResumeTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetProgramBinary, GLuint program, GLsizei bufSize, GLsizei* length, GLenum* binaryFormat, void* binary) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetProgramBinary, program, bufSize, length, binaryFormat, binary)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramBinary, GLuint program, GLenum binaryFormat, const void* binary, GLsizei length) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramBinary, program, binaryFormat, binary, length)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramParameteri, GLuint program, GLenum pname, GLint value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramParameteri, program, pname, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, InvalidateFramebuffer, GLenum target, GLsizei numAttachments, const GLenum* attachments) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, InvalidateFramebuffer, target, numAttachments, attachments)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, InvalidateSubFramebuffer, GLenum target, GLsizei numAttachments, const GLenum* attachments, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, InvalidateSubFramebuffer, target, numAttachments, attachments, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindTransformFeedback, GLenum target, GLuint id) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindTransformFeedback, target, id)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DeleteTransformFeedbacks, GLsizei n, const GLuint* ids) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DeleteTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GenTransformFeedbacks, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GenTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLboolean, IsTransformFeedback, GLuint id) DECLARE_GL_FUNCTION_END(GLboolean, IsTransformFeedback, id)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, PauseTransformFeedback) DECLARE_GL_FUNCTION_END_NO_RETURN(void, PauseTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ResumeTransformFeedback) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ResumeTransformFeedback)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramBinary, GLuint program, GLsizei bufSize, GLsizei* length, GLenum* binaryFormat, void* binary) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramBinary, program, bufSize, length, binaryFormat, binary)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramBinary, GLuint program, GLenum binaryFormat, const void* binary, GLsizei length) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramBinary, program, binaryFormat, binary, length)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramParameteri, GLuint program, GLenum pname, GLint value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramParameteri, program, pname, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, InvalidateFramebuffer, GLenum target, GLsizei numAttachments, const GLenum* attachments) DECLARE_GL_FUNCTION_END_NO_RETURN(void, InvalidateFramebuffer, target, numAttachments, attachments)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, InvalidateSubFramebuffer, GLenum target, GLsizei numAttachments, const GLenum* attachments, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, InvalidateSubFramebuffer, target, numAttachments, attachments, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexStorage2D, GLenum target, GLsizei levels, GLenum internalformat, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexStorage2D, target, levels, internalformat, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexStorage3D, GLenum target, GLsizei levels, GLenum internalformat, GLsizei width, GLsizei height, GLsizei depth) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexStorage3D, target, levels, internalformat, width, height, depth)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetInternalformativ, GLenum target, GLenum internalformat, GLenum pname, GLsizei bufSize, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetInternalformativ, target, internalformat, pname, bufSize, params)
|
||||
@@ -310,21 +311,21 @@ DECLARE_GL_FUNCTION_HEAD(void, DispatchCompute, GLuint num_groups_x, GLuint num_
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DispatchComputeIndirect, GLintptr indirect) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DispatchComputeIndirect, indirect)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawArraysIndirect, GLenum mode, const void* indirect) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawArraysIndirect, mode, indirect)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawElementsIndirect, GLenum mode, GLenum type, const void* indirect) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawElementsIndirect, mode, type, indirect)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, FramebufferParameteri, GLenum target, GLenum pname, GLint param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, FramebufferParameteri, target, pname, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetFramebufferParameteriv, GLenum target, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetFramebufferParameteriv, target, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, FramebufferParameteri, GLenum target, GLenum pname, GLint param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, FramebufferParameteri, target, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetFramebufferParameteriv, GLenum target, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetFramebufferParameteriv, target, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramInterfaceiv, GLuint program, GLenum programInterface, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramInterfaceiv, program, programInterface, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLuint, GetProgramResourceIndex, GLuint program, GLenum programInterface, const GLchar* name) DECLARE_GL_FUNCTION_END(GLuint, GetProgramResourceIndex, program, programInterface, name)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramResourceName, GLuint program, GLenum programInterface, GLuint index, GLsizei bufSize, GLsizei* length, GLchar* name) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramResourceName, program, programInterface, index, bufSize, length, name)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramResourceiv, GLuint program, GLenum programInterface, GLuint index, GLsizei propCount, const GLenum* props, GLsizei bufSize, GLsizei* length, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramResourceiv, program, programInterface, index, propCount, props, bufSize, length, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLint, GetProgramResourceLocation, GLuint program, GLenum programInterface, const GLchar* name) DECLARE_GL_FUNCTION_END(GLint, GetProgramResourceLocation, program, programInterface, name)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UseProgramStages, GLuint pipeline, GLbitfield stages, GLuint program) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UseProgramStages, pipeline, stages, program)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ActiveShaderProgram, GLuint pipeline, GLuint program) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ActiveShaderProgram, pipeline, program)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLuint, CreateShaderProgramv, GLenum type, GLsizei count, const GLchar* const* strings) DECLARE_GL_FUNCTION_STUB_END(GLuint, CreateShaderProgramv, type, count, strings)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BindProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BindProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DeleteProgramPipelines, GLsizei n, const GLuint* pipelines) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DeleteProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GenProgramPipelines, GLsizei n, GLuint* pipelines) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GenProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLboolean, IsProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_STUB_END(GLboolean, IsProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetProgramPipelineiv, GLuint pipeline, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetProgramPipelineiv, pipeline, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UseProgramStages, GLuint pipeline, GLbitfield stages, GLuint program) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UseProgramStages, pipeline, stages, program)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ActiveShaderProgram, GLuint pipeline, GLuint program) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ActiveShaderProgram, pipeline, program)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLuint, CreateShaderProgramv, GLenum type, GLsizei count, const GLchar* const* strings) DECLARE_GL_FUNCTION_END(GLuint, CreateShaderProgramv, type, count, strings)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DeleteProgramPipelines, GLsizei n, const GLuint* pipelines) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DeleteProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GenProgramPipelines, GLsizei n, GLuint* pipelines) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GenProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLboolean, IsProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_END(GLboolean, IsProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramPipelineiv, GLuint pipeline, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramPipelineiv, pipeline, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform1i, GLuint program, GLint location, GLint v0) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform1i, program, location, v0)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform2i, GLuint program, GLint location, GLint v0, GLint v1) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform2i, program, location, v0, v1)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform3i, GLuint program, GLint location, GLint v0, GLint v1, GLint v2) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform3i, program, location, v0, v1, v2)
|
||||
@@ -358,8 +359,8 @@ DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix2x4fv, GLuint program, GLint
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix4x2fv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLfloat* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix4x2fv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix3x4fv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLfloat* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix3x4fv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix4x3fv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLfloat* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix4x3fv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ValidateProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ValidateProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetProgramPipelineInfoLog, GLuint pipeline, GLsizei bufSize, GLsizei* length, GLchar* infoLog) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetProgramPipelineInfoLog, pipeline, bufSize, length, infoLog)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ValidateProgramPipeline, GLuint pipeline) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ValidateProgramPipeline, pipeline)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetProgramPipelineInfoLog, GLuint pipeline, GLsizei bufSize, GLsizei* length, GLchar* infoLog) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetProgramPipelineInfoLog, pipeline, bufSize, length, infoLog)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindImageTexture, GLuint unit, GLuint texture, GLint level, GLboolean layered, GLint layer, GLenum access, GLenum format) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindImageTexture, unit, texture, level, layered, layer, access, format)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetBooleani_v, GLenum target, GLuint index, GLboolean* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetBooleani_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, MemoryBarrier, GLbitfield barriers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, MemoryBarrier, barriers)
|
||||
@@ -418,13 +419,13 @@ DECLARE_GL_FUNCTION_HEAD(void, DrawRangeElementsBaseVertex, GLenum mode, GLuint
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawElementsInstancedBaseVertex, GLenum mode, GLsizei count, GLenum type, const void* indices, GLsizei instancecount, GLint basevertex) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawElementsInstancedBaseVertex, mode, count, type, indices, instancecount, basevertex)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, FramebufferTexture, GLenum target, GLenum attachment, GLuint texture, GLint level) DECLARE_GL_FUNCTION_END_NO_RETURN(void, FramebufferTexture, target, attachment, texture, level)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PrimitiveBoundingBox, GLfloat minX, GLfloat minY, GLfloat minZ, GLfloat minW, GLfloat maxX, GLfloat maxY, GLfloat maxZ, GLfloat maxW) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PrimitiveBoundingBox, minX, minY, minZ, minW, maxX, maxY, maxZ, maxW)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLenum, GetGraphicsResetStatus) DECLARE_GL_FUNCTION_STUB_END(GLenum, GetGraphicsResetStatus)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ReadnPixels, GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, GLsizei bufSize, void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ReadnPixels, x, y, width, height, format, type, bufSize, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLenum, GetGraphicsResetStatus) DECLARE_GL_FUNCTION_END(GLenum, GetGraphicsResetStatus)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ReadnPixels, GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, GLsizei bufSize, void* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ReadnPixels, x, y, width, height, format, type, bufSize, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetnUniformfv, GLuint program, GLint location, GLsizei bufSize, GLfloat* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetnUniformfv, program, location, bufSize, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetnUniformiv, GLuint program, GLint location, GLsizei bufSize, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetnUniformiv, program, location, bufSize, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetnUniformuiv, GLuint program, GLint location, GLsizei bufSize, GLuint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetnUniformuiv, program, location, bufSize, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MinSampleShading, GLfloat value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MinSampleShading, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PatchParameteri, GLenum pname, GLint value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PatchParameteri, pname, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, PatchParameteri, GLenum pname, GLint value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, PatchParameteri, pname, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexParameterIiv, GLenum target, GLenum pname, const GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexParameterIiv, target, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexParameterIuiv, GLenum target, GLenum pname, const GLuint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexParameterIuiv, target, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTexParameterIiv, GLenum target, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTexParameterIiv, target, pname, params)
|
||||
@@ -434,7 +435,7 @@ DECLARE_GL_FUNCTION_HEAD(void, SamplerParameterIuiv, GLuint sampler, GLenum pnam
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetSamplerParameterIiv, GLuint sampler, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetSamplerParameterIiv, sampler, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetSamplerParameterIuiv, GLuint sampler, GLenum pname, GLuint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetSamplerParameterIuiv, sampler, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexBuffer, GLenum target, GLenum internalformat, GLuint buffer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexBuffer, target, internalformat, buffer)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TexBufferRange, GLenum target, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TexBufferRange, target, internalformat, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexBufferRange, GLenum target, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexBufferRange, target, internalformat, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TexStorage3DMultisample, GLenum target, GLsizei samples, GLenum internalformat, GLsizei width, GLsizei height, GLsizei depth, GLboolean fixedsamplelocations) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TexStorage3DMultisample, target, samples, internalformat, width, height, depth, fixedsamplelocations)
|
||||
DECLARE_GL_FUNCTION_HEAD(void*, MapBufferRange, GLenum target, GLintptr offset, GLsizeiptr length, GLbitfield access) DECLARE_GL_FUNCTION_END(void*, MapBufferRange, target, offset, length, access)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearIndex, GLfloat c) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearIndex, c)
|
||||
@@ -909,24 +910,24 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, ColorP4ui, GLenum type, GLuint color) DECLAR
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ColorP4uiv, GLenum type, const GLuint* color) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ColorP4uiv, type, color)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, SecondaryColorP3ui, GLenum type, GLuint color) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, SecondaryColorP3ui, type, color)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, SecondaryColorP3uiv, GLenum type, const GLuint* color) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, SecondaryColorP3uiv, type, color)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform1d, GLint location, GLdouble x) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform1d, location, x)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform2d, GLint location, GLdouble x, GLdouble y) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform2d, location, x, y)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform3d, GLint location, GLdouble x, GLdouble y, GLdouble z) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform3d, location, x, y, z)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform4d, GLint location, GLdouble x, GLdouble y, GLdouble z, GLdouble w) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform4d, location, x, y, z, w)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform1dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform1dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform2dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform2dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform3dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform3dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, Uniform4dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, Uniform4dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix2x3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix2x3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix2x4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix2x4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix3x2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix3x2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix3x4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix3x4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix4x2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix4x2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformMatrix4x3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, UniformMatrix4x3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetUniformdv, GLuint program, GLint location, GLdouble* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetUniformdv, program, location, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform1d, GLint location, GLdouble x) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform1d, location, x)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform2d, GLint location, GLdouble x, GLdouble y) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform2d, location, x, y)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform3d, GLint location, GLdouble x, GLdouble y, GLdouble z) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform3d, location, x, y, z)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform4d, GLint location, GLdouble x, GLdouble y, GLdouble z, GLdouble w) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform4d, location, x, y, z, w)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform1dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform1dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform2dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform2dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform3dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform3dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, Uniform4dv, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, Uniform4dv, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix2x3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix2x3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix2x4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix2x4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix3x2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix3x2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix3x4dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix3x4dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix4x2dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix4x2dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, UniformMatrix4x3dv, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, UniformMatrix4x3dv, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetUniformdv, GLuint program, GLint location, GLdouble* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetUniformdv, program, location, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLint, GetSubroutineUniformLocation, GLuint program, GLenum shadertype, const GLchar* name) DECLARE_GL_FUNCTION_STUB_END(GLint, GetSubroutineUniformLocation, program, shadertype, name)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLuint, GetSubroutineIndex, GLuint program, GLenum shadertype, const GLchar* name) DECLARE_GL_FUNCTION_STUB_END(GLuint, GetSubroutineIndex, program, shadertype, name)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetActiveSubroutineUniformiv, GLuint program, GLenum shadertype, GLuint index, GLenum pname, GLint* values) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetActiveSubroutineUniformiv, program, shadertype, index, pname, values)
|
||||
@@ -936,28 +937,28 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, UniformSubroutinesuiv, GLenum shadertype, GL
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetUniformSubroutineuiv, GLenum shadertype, GLint location, GLuint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetUniformSubroutineuiv, shadertype, location, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetProgramStageiv, GLuint program, GLenum shadertype, GLenum pname, GLint* values) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetProgramStageiv, program, shadertype, pname, values)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PatchParameterfv, GLenum pname, const GLfloat* values) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PatchParameterfv, pname, values)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DrawTransformFeedback, GLenum mode, GLuint id) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DrawTransformFeedback, mode, id)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DrawTransformFeedbackStream, GLenum mode, GLuint id, GLuint stream) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DrawTransformFeedbackStream, mode, id, stream)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BeginQueryIndexed, GLenum target, GLuint index, GLuint id) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BeginQueryIndexed, target, index, id)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, EndQueryIndexed, GLenum target, GLuint index) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, EndQueryIndexed, target, index)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryIndexediv, GLenum target, GLuint index, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryIndexediv, target, index, pname, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform1d, GLuint program, GLint location, GLdouble v0) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform1d, program, location, v0)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform1dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform1dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform2d, GLuint program, GLint location, GLdouble v0, GLdouble v1) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform2d, program, location, v0, v1)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform2dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform2dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform3d, GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform3d, program, location, v0, v1, v2)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform3dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform3dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform4d, GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2, GLdouble v3) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform4d, program, location, v0, v1, v2, v3)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniform4dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniform4dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix2x3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix2x3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix3x2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix3x2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix2x4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix2x4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix4x2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix4x2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix3x4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix3x4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ProgramUniformMatrix4x3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ProgramUniformMatrix4x3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawTransformFeedback, GLenum mode, GLuint id) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawTransformFeedback, mode, id)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawTransformFeedbackStream, GLenum mode, GLuint id, GLuint stream) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawTransformFeedbackStream, mode, id, stream)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BeginQueryIndexed, GLenum target, GLuint index, GLuint id) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BeginQueryIndexed, target, index, id)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, EndQueryIndexed, GLenum target, GLuint index) DECLARE_GL_FUNCTION_END_NO_RETURN(void, EndQueryIndexed, target, index)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetQueryIndexediv, GLenum target, GLuint index, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetQueryIndexediv, target, index, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform1d, GLuint program, GLint location, GLdouble v0) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform1d, program, location, v0)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform1dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform1dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform2d, GLuint program, GLint location, GLdouble v0, GLdouble v1) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform2d, program, location, v0, v1)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform2dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform2dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform3d, GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform3d, program, location, v0, v1, v2)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform3dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform3dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform4d, GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2, GLdouble v3) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform4d, program, location, v0, v1, v2, v3)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniform4dv, GLuint program, GLint location, GLsizei count, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniform4dv, program, location, count, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix2x3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix2x3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix3x2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix3x2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix2x4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix2x4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix4x2dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix4x2dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix3x4dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix3x4dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ProgramUniformMatrix4x3dv, GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ProgramUniformMatrix4x3dv, program, location, count, transpose, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, VertexAttribL1d, GLuint index, GLdouble x) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, VertexAttribL1d, index, x)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, VertexAttribL2d, GLuint index, GLdouble x, GLdouble y) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, VertexAttribL2d, index, x, y)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, VertexAttribL3d, GLuint index, GLdouble x, GLdouble y, GLdouble z) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, VertexAttribL3d, index, x, y, z)
|
||||
@@ -976,14 +977,14 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, ScissorIndexed, GLuint index, GLint left, GL
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ScissorIndexedv, GLuint index, const GLint* v) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ScissorIndexedv, index, v)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DepthRangeArrayv, GLuint first, GLsizei count, const GLdouble* v) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DepthRangeArrayv, first, count, v)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DepthRangeIndexed, GLuint index, GLdouble n, GLdouble f) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DepthRangeIndexed, index, n, f)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetFloati_v, GLenum target, GLuint index, GLfloat* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetFloati_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetDoublei_v, GLenum target, GLuint index, GLdouble* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetDoublei_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetFloati_v, GLenum target, GLuint index, GLfloat* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetFloati_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetDoublei_v, GLenum target, GLuint index, GLdouble* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetDoublei_v, target, index, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawArraysInstancedBaseInstance, GLenum mode, GLint first, GLsizei count, GLsizei instancecount, GLuint baseinstance) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawArraysInstancedBaseInstance, mode, first, count, instancecount, baseinstance)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawElementsInstancedBaseInstance, GLenum mode, GLsizei count, GLenum type, const void* indices, GLsizei instancecount, GLuint baseinstance) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawElementsInstancedBaseInstance, mode, count, type, indices, instancecount, baseinstance)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawElementsInstancedBaseVertexBaseInstance, GLenum mode, GLsizei count, GLenum type, const void* indices, GLsizei instancecount, GLint basevertex, GLuint baseinstance) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawElementsInstancedBaseVertexBaseInstance, mode, count, type, indices, instancecount, basevertex, baseinstance)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetActiveAtomicCounterBufferiv, GLuint program, GLuint bufferIndex, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetActiveAtomicCounterBufferiv, program, bufferIndex, pname, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DrawTransformFeedbackInstanced, GLenum mode, GLuint id, GLsizei instancecount) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DrawTransformFeedbackInstanced, mode, id, instancecount)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DrawTransformFeedbackStreamInstanced, GLenum mode, GLuint id, GLuint stream, GLsizei instancecount) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DrawTransformFeedbackStreamInstanced, mode, id, stream, instancecount)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawTransformFeedbackInstanced, GLenum mode, GLuint id, GLsizei instancecount) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawTransformFeedbackInstanced, mode, id, instancecount)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, DrawTransformFeedbackStreamInstanced, GLenum mode, GLuint id, GLuint stream, GLsizei instancecount) DECLARE_GL_FUNCTION_END_NO_RETURN(void, DrawTransformFeedbackStreamInstanced, mode, id, stream, instancecount)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearBufferData, GLenum target, GLenum internalformat, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearBufferData, target, internalformat, format, type, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearBufferSubData, GLenum target, GLenum internalformat, GLintptr offset, GLsizeiptr size, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearBufferSubData, target, internalformat, offset, size, format, type, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetInternalformati64v, GLenum target, GLenum internalformat, GLenum pname, GLsizei count, GLint64* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetInternalformati64v, target, internalformat, pname, count, params)
|
||||
@@ -996,10 +997,10 @@ DECLARE_GL_FUNCTION_HEAD(void, MultiDrawElementsIndirect, GLenum mode, GLenum ty
|
||||
DECLARE_GL_FUNCTION_HEAD(GLint, GetProgramResourceLocationIndex, GLuint program, GLenum programInterface, const GLchar* name) DECLARE_GL_FUNCTION_END(GLint, GetProgramResourceLocationIndex, program, programInterface, name)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ShaderStorageBlockBinding, GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ShaderStorageBlockBinding, program, storageBlockIndex, storageBlockBinding)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TextureView, GLuint texture, GLenum target, GLuint origtexture, GLenum internalformat, GLuint minlevel, GLuint numlevels, GLuint minlayer, GLuint numlayers) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TextureView, texture, target, origtexture, internalformat, minlevel, numlevels, minlayer, numlayers)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, VertexAttribLFormat, GLuint attribindex, GLint size, GLenum type, GLuint relativeoffset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, VertexAttribLFormat, attribindex, size, type, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexAttribLFormat, GLuint attribindex, GLint size, GLenum type, GLuint relativeoffset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexAttribLFormat, attribindex, size, type, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BufferStorage, GLenum target, GLsizeiptr size, const void* data, GLbitfield flags) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BufferStorage, target, size, data, flags)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearTexImage, GLuint texture, GLint level, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearTexImage, texture, level, format, type, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearTexSubImage, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width, GLsizei height, GLsizei depth, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearTexSubImage, texture, level, xoffset, yoffset, zoffset, width, height, depth, format, type, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearTexImage, GLuint texture, GLint level, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearTexImage, texture, level, format, type, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearTexSubImage, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width, GLsizei height, GLsizei depth, GLenum format, GLenum type, const void* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearTexSubImage, texture, level, xoffset, yoffset, zoffset, width, height, depth, format, type, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindBuffersBase, GLenum target, GLuint first, GLsizei count, const GLuint* buffers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindBuffersBase, target, first, count, buffers)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindBuffersRange, GLenum target, GLuint first, GLsizei count, const GLuint* buffers, const GLintptr* offsets, const GLsizeiptr* sizes) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindBuffersRange, target, first, count, buffers, offsets, sizes)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BindTextures, GLuint first, GLsizei count, const GLuint* textures) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BindTextures, first, count, textures)
|
||||
@@ -1007,12 +1008,12 @@ DECLARE_GL_FUNCTION_HEAD(void, BindSamplers, GLuint first, GLsizei count, const
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BindImageTextures, GLuint first, GLsizei count, const GLuint* textures) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BindImageTextures, first, count, textures)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindVertexBuffers, GLuint first, GLsizei count, const GLuint* buffers, const GLintptr* offsets, const GLsizei* strides) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindVertexBuffers, first, count, buffers, offsets, strides)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClipControl, GLenum origin, GLenum depth) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClipControl, origin, depth)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CreateTransformFeedbacks, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CreateTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TransformFeedbackBufferBase, GLuint xfb, GLuint index, GLuint buffer) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TransformFeedbackBufferBase, xfb, index, buffer)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TransformFeedbackBufferRange, GLuint xfb, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TransformFeedbackBufferRange, xfb, index, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetTransformFeedbackiv, GLuint xfb, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetTransformFeedbackiv, xfb, pname, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetTransformFeedbacki_v, GLuint xfb, GLenum pname, GLuint index, GLint* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetTransformFeedbacki_v, xfb, pname, index, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetTransformFeedbacki64_v, GLuint xfb, GLenum pname, GLuint index, GLint64* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetTransformFeedbacki64_v, xfb, pname, index, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateTransformFeedbacks, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateTransformFeedbacks, n, ids)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TransformFeedbackBufferBase, GLuint xfb, GLuint index, GLuint buffer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TransformFeedbackBufferBase, xfb, index, buffer)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TransformFeedbackBufferRange, GLuint xfb, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TransformFeedbackBufferRange, xfb, index, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTransformFeedbackiv, GLuint xfb, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTransformFeedbackiv, xfb, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTransformFeedbacki_v, GLuint xfb, GLenum pname, GLuint index, GLint* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTransformFeedbacki_v, xfb, pname, index, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTransformFeedbacki64_v, GLuint xfb, GLenum pname, GLuint index, GLint64* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTransformFeedbacki64_v, xfb, pname, index, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateBuffers, GLsizei n, GLuint* buffers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateBuffers, n, buffers)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedBufferStorage, GLuint buffer, GLsizeiptr size, const void* data, GLbitfield flags) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedBufferStorage, buffer, size, data, flags)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedBufferData, GLuint buffer, GLsizeiptr size, const void* data, GLenum usage) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedBufferData, buffer, size, data, usage)
|
||||
@@ -1025,32 +1026,32 @@ DECLARE_GL_FUNCTION_HEAD(void, FlushMappedNamedBufferRange, GLuint buffer, GLint
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedBufferParameteriv, GLuint buffer, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedBufferParameteriv, buffer, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedBufferParameteri64v, GLuint buffer, GLenum pname, GLint64* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedBufferParameteri64v, buffer, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedBufferPointerv, GLuint buffer, GLenum pname, void** params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedBufferPointerv, buffer, pname, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetNamedBufferSubData, GLuint buffer, GLintptr offset, GLsizeiptr size, void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetNamedBufferSubData, buffer, offset, size, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedBufferSubData, GLuint buffer, GLintptr offset, GLsizeiptr size, void* data) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedBufferSubData, buffer, offset, size, data)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateFramebuffers, GLsizei n, GLuint* framebuffers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateFramebuffers, n, framebuffers)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferRenderbuffer, GLuint framebuffer, GLenum attachment, GLenum renderbuffertarget, GLuint renderbuffer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferRenderbuffer, framebuffer, attachment, renderbuffertarget, renderbuffer)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, NamedFramebufferParameteri, GLuint framebuffer, GLenum pname, GLint param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, NamedFramebufferParameteri, framebuffer, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferParameteri, GLuint framebuffer, GLenum pname, GLint param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferParameteri, framebuffer, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferTexture, GLuint framebuffer, GLenum attachment, GLuint texture, GLint level) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferTexture, framebuffer, attachment, texture, level)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferTextureLayer, GLuint framebuffer, GLenum attachment, GLuint texture, GLint level, GLint layer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferTextureLayer, framebuffer, attachment, texture, level, layer)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferDrawBuffer, GLuint framebuffer, GLenum buf) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferDrawBuffer, framebuffer, buf)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferDrawBuffers, GLuint framebuffer, GLsizei n, const GLenum* bufs) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferDrawBuffers, framebuffer, n, bufs)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedFramebufferReadBuffer, GLuint framebuffer, GLenum src) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedFramebufferReadBuffer, framebuffer, src)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, InvalidateNamedFramebufferData, GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, InvalidateNamedFramebufferData, framebuffer, numAttachments, attachments)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, InvalidateNamedFramebufferSubData, GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, InvalidateNamedFramebufferSubData, framebuffer, numAttachments, attachments, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearNamedFramebufferiv, GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLint* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearNamedFramebufferiv, framebuffer, buffer, drawbuffer, value)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ClearNamedFramebufferuiv, GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLuint* value) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ClearNamedFramebufferuiv, framebuffer, buffer, drawbuffer, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, InvalidateNamedFramebufferData, GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments) DECLARE_GL_FUNCTION_END_NO_RETURN(void, InvalidateNamedFramebufferData, framebuffer, numAttachments, attachments)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, InvalidateNamedFramebufferSubData, GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, InvalidateNamedFramebufferSubData, framebuffer, numAttachments, attachments, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearNamedFramebufferiv, GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLint* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearNamedFramebufferiv, framebuffer, buffer, drawbuffer, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearNamedFramebufferuiv, GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLuint* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearNamedFramebufferuiv, framebuffer, buffer, drawbuffer, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearNamedFramebufferfv, GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLfloat* value) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearNamedFramebufferfv, framebuffer, buffer, drawbuffer, value)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, ClearNamedFramebufferfi, GLuint framebuffer, GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil) DECLARE_GL_FUNCTION_END_NO_RETURN(void, ClearNamedFramebufferfi, framebuffer, buffer, drawbuffer, depth, stencil)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BlitNamedFramebuffer, GLuint readFramebuffer, GLuint drawFramebuffer, GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1, GLint dstY1, GLbitfield mask, GLenum filter) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BlitNamedFramebuffer, readFramebuffer, drawFramebuffer, srcX0, srcY0, srcX1, srcY1, dstX0, dstY0, dstX1, dstY1, mask, filter)
|
||||
DECLARE_GL_FUNCTION_HEAD(GLenum, CheckNamedFramebufferStatus, GLuint framebuffer, GLenum target) DECLARE_GL_FUNCTION_END(GLenum, CheckNamedFramebufferStatus, framebuffer, target)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetNamedFramebufferParameteriv, GLuint framebuffer, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetNamedFramebufferParameteriv, framebuffer, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedFramebufferParameteriv, GLuint framebuffer, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedFramebufferParameteriv, framebuffer, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedFramebufferAttachmentParameteriv, GLuint framebuffer, GLenum attachment, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedFramebufferAttachmentParameteriv, framebuffer, attachment, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateRenderbuffers, GLsizei n, GLuint* renderbuffers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateRenderbuffers, n, renderbuffers)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedRenderbufferStorage, GLuint renderbuffer, GLenum internalformat, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedRenderbufferStorage, renderbuffer, internalformat, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, NamedRenderbufferStorageMultisample, GLuint renderbuffer, GLsizei samples, GLenum internalformat, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, NamedRenderbufferStorageMultisample, renderbuffer, samples, internalformat, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetNamedRenderbufferParameteriv, GLuint renderbuffer, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetNamedRenderbufferParameteriv, renderbuffer, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateTextures, GLenum target, GLsizei n, GLuint* textures) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateTextures, target, n, textures)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TextureBuffer, GLuint texture, GLenum internalformat, GLuint buffer) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TextureBuffer, texture, internalformat, buffer)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, TextureBufferRange, GLuint texture, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, TextureBufferRange, texture, internalformat, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureBuffer, GLuint texture, GLenum internalformat, GLuint buffer) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureBuffer, texture, internalformat, buffer)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureBufferRange, GLuint texture, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureBufferRange, texture, internalformat, buffer, offset, size)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureStorage1D, GLuint texture, GLsizei levels, GLenum internalformat, GLsizei width) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureStorage1D, texture, levels, internalformat, width)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureStorage2D, GLuint texture, GLsizei levels, GLenum internalformat, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureStorage2D, texture, levels, internalformat, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureStorage3D, GLuint texture, GLsizei levels, GLenum internalformat, GLsizei width, GLsizei height, GLsizei depth) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureStorage3D, texture, levels, internalformat, width, height, depth)
|
||||
@@ -1062,9 +1063,9 @@ DECLARE_GL_FUNCTION_HEAD(void, TextureSubImage3D, GLuint texture, GLint level, G
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CompressedTextureSubImage1D, GLuint texture, GLint level, GLint xoffset, GLsizei width, GLenum format, GLsizei imageSize, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CompressedTextureSubImage1D, texture, level, xoffset, width, format, imageSize, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CompressedTextureSubImage2D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLsizei width, GLsizei height, GLenum format, GLsizei imageSize, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CompressedTextureSubImage2D, texture, level, xoffset, yoffset, width, height, format, imageSize, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CompressedTextureSubImage3D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width, GLsizei height, GLsizei depth, GLenum format, GLsizei imageSize, const void* data) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CompressedTextureSubImage3D, texture, level, xoffset, yoffset, zoffset, width, height, depth, format, imageSize, data)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CopyTextureSubImage1D, GLuint texture, GLint level, GLint xoffset, GLint x, GLint y, GLsizei width) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CopyTextureSubImage1D, texture, level, xoffset, x, y, width)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CopyTextureSubImage2D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CopyTextureSubImage2D, texture, level, xoffset, yoffset, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CopyTextureSubImage3D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CopyTextureSubImage3D, texture, level, xoffset, yoffset, zoffset, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CopyTextureSubImage1D, GLuint texture, GLint level, GLint xoffset, GLint x, GLint y, GLsizei width) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CopyTextureSubImage1D, texture, level, xoffset, x, y, width)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CopyTextureSubImage2D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CopyTextureSubImage2D, texture, level, xoffset, yoffset, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CopyTextureSubImage3D, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLint x, GLint y, GLsizei width, GLsizei height) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CopyTextureSubImage3D, texture, level, xoffset, yoffset, zoffset, x, y, width, height)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureParameterf, GLuint texture, GLenum pname, GLfloat param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureParameterf, texture, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureParameterfv, GLuint texture, GLenum pname, const GLfloat* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureParameterfv, texture, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, TextureParameteri, GLuint texture, GLenum pname, GLint param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, TextureParameteri, texture, pname, param)
|
||||
@@ -1074,7 +1075,7 @@ DECLARE_GL_FUNCTION_HEAD(void, TextureParameteriv, GLuint texture, GLenum pname,
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GenerateTextureMipmap, GLuint texture) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GenerateTextureMipmap, texture)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, BindTextureUnit, GLuint unit, GLuint texture) DECLARE_GL_FUNCTION_END_NO_RETURN(void, BindTextureUnit, unit, texture)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTextureImage, GLuint texture, GLint level, GLenum format, GLenum type, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTextureImage, texture, level, format, type, bufSize, pixels)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetCompressedTextureImage, GLuint texture, GLint level, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetCompressedTextureImage, texture, level, bufSize, pixels)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetCompressedTextureImage, GLuint texture, GLint level, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetCompressedTextureImage, texture, level, bufSize, pixels)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTextureLevelParameterfv, GLuint texture, GLint level, GLenum pname, GLfloat* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTextureLevelParameterfv, texture, level, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTextureLevelParameteriv, GLuint texture, GLint level, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTextureLevelParameteriv, texture, level, pname, params)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTextureParameterfv, GLuint texture, GLenum pname, GLfloat* params) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTextureParameterfv, texture, pname, params)
|
||||
@@ -1090,18 +1091,18 @@ DECLARE_GL_FUNCTION_HEAD(void, VertexArrayVertexBuffers, GLuint vaobj, GLuint fi
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexArrayAttribBinding, GLuint vaobj, GLuint attribindex, GLuint bindingindex) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexArrayAttribBinding, vaobj, attribindex, bindingindex)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexArrayAttribFormat, GLuint vaobj, GLuint attribindex, GLint size, GLenum type, GLboolean normalized, GLuint relativeoffset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexArrayAttribFormat, vaobj, attribindex, size, type, normalized, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexArrayAttribIFormat, GLuint vaobj, GLuint attribindex, GLint size, GLenum type, GLuint relativeoffset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexArrayAttribIFormat, vaobj, attribindex, size, type, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, VertexArrayAttribLFormat, GLuint vaobj, GLuint attribindex, GLint size, GLenum type, GLuint relativeoffset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, VertexArrayAttribLFormat, vaobj, attribindex, size, type, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexArrayAttribLFormat, GLuint vaobj, GLuint attribindex, GLint size, GLenum type, GLuint relativeoffset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexArrayAttribLFormat, vaobj, attribindex, size, type, relativeoffset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, VertexArrayBindingDivisor, GLuint vaobj, GLuint bindingindex, GLuint divisor) DECLARE_GL_FUNCTION_END_NO_RETURN(void, VertexArrayBindingDivisor, vaobj, bindingindex, divisor)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetVertexArrayiv, GLuint vaobj, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetVertexArrayiv, vaobj, pname, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetVertexArrayIndexediv, GLuint vaobj, GLuint index, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetVertexArrayIndexediv, vaobj, index, pname, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetVertexArrayIndexed64iv, GLuint vaobj, GLuint index, GLenum pname, GLint64* param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetVertexArrayIndexed64iv, vaobj, index, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetVertexArrayiv, GLuint vaobj, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetVertexArrayiv, vaobj, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetVertexArrayIndexediv, GLuint vaobj, GLuint index, GLenum pname, GLint* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetVertexArrayIndexediv, vaobj, index, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetVertexArrayIndexed64iv, GLuint vaobj, GLuint index, GLenum pname, GLint64* param) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetVertexArrayIndexed64iv, vaobj, index, pname, param)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateSamplers, GLsizei n, GLuint* samplers) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateSamplers, n, samplers)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CreateProgramPipelines, GLsizei n, GLuint* pipelines) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CreateProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, CreateQueries, GLenum target, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, CreateQueries, target, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryBufferObjecti64v, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryBufferObjecti64v, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryBufferObjectiv, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryBufferObjectiv, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryBufferObjectui64v, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryBufferObjectui64v, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryBufferObjectuiv, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryBufferObjectuiv, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateProgramPipelines, GLsizei n, GLuint* pipelines) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateProgramPipelines, n, pipelines)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, CreateQueries, GLenum target, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_END_NO_RETURN(void, CreateQueries, target, n, ids)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetQueryBufferObjecti64v, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetQueryBufferObjecti64v, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetQueryBufferObjectiv, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetQueryBufferObjectiv, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetQueryBufferObjectui64v, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetQueryBufferObjectui64v, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetQueryBufferObjectuiv, GLuint id, GLuint buffer, GLenum pname, GLintptr offset) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetQueryBufferObjectuiv, id, buffer, pname, offset)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, GetTextureSubImage, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width, GLsizei height, GLsizei depth, GLenum format, GLenum type, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_END_NO_RETURN(void, GetTextureSubImage, texture, level, xoffset, yoffset, zoffset, width, height, depth, format, type, bufSize, pixels)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetCompressedTextureSubImage, GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width, GLsizei height, GLsizei depth, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetCompressedTextureSubImage, texture, level, xoffset, yoffset, zoffset, width, height, depth, bufSize, pixels)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetnCompressedTexImage, GLenum target, GLint lod, GLsizei bufSize, void* pixels) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetnCompressedTexImage, target, lod, bufSize, pixels)
|
||||
@@ -1272,7 +1273,7 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord4ivARB, GLenum target, const GL
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord4sARB, GLenum target, GLshort s, GLshort t, GLshort r, GLshort q) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MultiTexCoord4sARB, target, s, t, r, q)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord4svARB, GLenum target, const GLshort* v) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MultiTexCoord4svARB, target, v)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetQueryObjectivARB, GLuint id, GLenum pname, GLint* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetQueryObjectivARB, id, pname, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MaxShaderCompilerThreadsARB, GLuint count) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MaxShaderCompilerThreadsARB, count)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, MaxShaderCompilerThreadsARB, GLuint count) DECLARE_GL_FUNCTION_END_NO_RETURN(void, MaxShaderCompilerThreadsARB, count)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PointParameterfARB, GLenum pname, GLfloat param) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PointParameterfARB, pname, param)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PointParameterfvARB, GLenum pname, const GLfloat* params) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PointParameterfvARB, pname, params)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GetnTexImageARB, GLenum target, GLint level, GLenum format, GLenum type, GLsizei bufSize, void* img) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GetnTexImageARB, target, level, format, type, bufSize, img)
|
||||
@@ -1380,7 +1381,7 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, WindowPos3ivARB, const GLint* v) DECLARE_GL_
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, WindowPos3sARB, GLshort x, GLshort y, GLshort z) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, WindowPos3sARB, x, y, z)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, WindowPos3svARB, const GLshort* v) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, WindowPos3svARB, v)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BlendBarrierKHR, void) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BlendBarrierKHR, )
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MaxShaderCompilerThreadsKHR, GLuint count) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MaxShaderCompilerThreadsKHR, count)
|
||||
DECLARE_GL_FUNCTION_HEAD(void, MaxShaderCompilerThreadsKHR, GLuint count) DECLARE_GL_FUNCTION_END_NO_RETURN(void, MaxShaderCompilerThreadsKHR, count)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord1bOES, GLenum texture, GLbyte s) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MultiTexCoord1bOES, texture, s)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord1bvOES, GLenum texture, const GLbyte* coords) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MultiTexCoord1bvOES, texture, coords)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, MultiTexCoord2bOES, GLenum texture, GLbyte s, GLbyte t) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, MultiTexCoord2bOES, texture, s, t)
|
||||
@@ -2583,7 +2584,10 @@ DECLARE_GL_FUNCTION_STUB_HEAD(void, TransformFeedbackStreamAttribsNV, GLsizei co
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, BindTransformFeedbackNV, GLenum target, GLuint id) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, BindTransformFeedbackNV, target, id)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DeleteTransformFeedbacksNV, GLsizei n, const GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DeleteTransformFeedbacksNV, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, GenTransformFeedbacksNV, GLsizei n, GLuint* ids) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, GenTransformFeedbacksNV, n, ids)
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(GLboolean, IsTransformFeedbackNV, GLuint id) DECLARE_GL_FUNCTION_STUB_END(GLboolean, IsTransformFeedbackNV, id)
|
||||
MOBILEGL_GL_API GLboolean glIsTransformFeedbackNV(GLuint id) {
|
||||
MGLOG_W("Stub function: %s(...)", __FUNCTION__);
|
||||
return GL_FALSE;
|
||||
}
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, PauseTransformFeedbackNV, void) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, PauseTransformFeedbackNV, )
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, ResumeTransformFeedbackNV, void) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, ResumeTransformFeedbackNV, )
|
||||
DECLARE_GL_FUNCTION_STUB_HEAD(void, DrawTransformFeedbackNV, GLenum mode, GLuint id) DECLARE_GL_FUNCTION_STUB_END_NO_RETURN(void, DrawTransformFeedbackNV, mode, id)
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -14,6 +14,8 @@
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
|
||||
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels);
|
||||
void ReadnPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, GLsizei bufSize,
|
||||
void* data);
|
||||
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
@@ -56,7 +58,19 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void NamedFramebufferReadBuffer(GLuint framebuffer, GLenum src);
|
||||
void ClearNamedFramebufferfv(GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLfloat* value);
|
||||
void ClearNamedFramebufferfi(GLuint framebuffer, GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
|
||||
void InvalidateNamedFramebufferData(GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments);
|
||||
void InvalidateNamedFramebufferSubData(GLuint framebuffer, GLsizei numAttachments, const GLenum* attachments,
|
||||
GLint x, GLint y, GLsizei width, GLsizei height);
|
||||
void InvalidateFramebuffer(GLenum target, GLsizei numAttachments, const GLenum* attachments);
|
||||
void InvalidateSubFramebuffer(GLenum target, GLsizei numAttachments, const GLenum* attachments, GLint x, GLint y,
|
||||
GLsizei width, GLsizei height);
|
||||
void ClearNamedFramebufferiv(GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLint* value);
|
||||
void ClearNamedFramebufferuiv(GLuint framebuffer, GLenum buffer, GLint drawbuffer, const GLuint* value);
|
||||
GLenum CheckNamedFramebufferStatus(GLuint framebuffer, GLenum target);
|
||||
void GetFramebufferParameteriv(GLenum target, GLenum pname, GLint* params);
|
||||
void FramebufferParameteri(GLenum target, GLenum pname, GLint param);
|
||||
void GetNamedFramebufferParameteriv(GLuint framebuffer, GLenum pname, GLint* params);
|
||||
void NamedFramebufferParameteri(GLuint framebuffer, GLenum pname, GLint param);
|
||||
void GetNamedFramebufferAttachmentParameteriv(GLuint framebuffer, GLenum attachment, GLenum pname, GLint* params);
|
||||
void BlitNamedFramebuffer(GLuint readFramebuffer, GLuint drawFramebuffer, GLint srcX0, GLint srcY0, GLint srcX1,
|
||||
GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1, GLint dstY1, GLbitfield mask,
|
||||
@@ -78,6 +92,6 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
SharedPtr<MG_State::GLState::ITextureObject> stencilAttachment;
|
||||
};
|
||||
|
||||
extern UniquePtr<DefaultFramebufferInfo> pDefaultFramebufferInfo;
|
||||
extern UniquePtr<DefaultFramebufferInfo>& pDefaultFramebufferInfo;
|
||||
} // namespace FramebufferImpl
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -7,6 +7,7 @@
|
||||
// End of Source File Header
|
||||
|
||||
#include "Validators.h"
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_State/GLState/ErrorState/Error.h>
|
||||
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
|
||||
@@ -60,6 +61,26 @@ namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateColorAttachmentInRange(FramebufferAttachmentType attachment, const char* caller) {
|
||||
const auto first = static_cast<SizeT>(FramebufferAttachmentType::Color0);
|
||||
const auto index = static_cast<SizeT>(attachment);
|
||||
if (index < first) return true;
|
||||
const auto colorIndex = index - first;
|
||||
const auto limit = static_cast<SizeT>(
|
||||
MG_Backend::pActiveBackendObject ? MG_Backend::pActiveBackendObject->GetDynamicParameters()
|
||||
.MaxColorAttachments
|
||||
: static_cast<Int>(MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS));
|
||||
if (colorIndex >= limit) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
std::format("Colour attachment {} is beyond GL_MAX_COLOR_ATTACHMENTS ({}).", colorIndex, limit)));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateRenderbufferTarget(RenderbufferTarget target) {
|
||||
if (target == RenderbufferTarget::Unknown) {
|
||||
using namespace MG_Util;
|
||||
@@ -76,7 +97,13 @@ namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
|
||||
}
|
||||
|
||||
Bool ValidateRenderbufferName(Uint index, Bool allowZero) {
|
||||
if (index == 0 && !allowZero) {
|
||||
if (index == 0) {
|
||||
// Zero is never a GenRenderbuffers name, so it must not reach the name-table lookup
|
||||
// below: where it is allowed (glBindRenderbuffer / FramebufferRenderbuffer detach) it
|
||||
// means "unbind", and looking it up would record a bogus INVALID_OPERATION - GL CTS's
|
||||
// per-case state reset calls glBindRenderbuffer(GL_RENDERBUFFER, 0) after every case.
|
||||
if (allowZero) return true;
|
||||
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferName",
|
||||
@@ -91,4 +118,100 @@ namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
|
||||
std::format("Renderbuffer name {} is not valid.", index)));
|
||||
return false;
|
||||
}
|
||||
|
||||
Bool ValidateFramebufferParameterPname(GLenum pname, Bool isDefaultFramebuffer, Bool forSetter,
|
||||
const char* caller) {
|
||||
Bool isDefaultParameter = false;
|
||||
switch (pname) {
|
||||
case GL_FRAMEBUFFER_DEFAULT_WIDTH:
|
||||
case GL_FRAMEBUFFER_DEFAULT_HEIGHT:
|
||||
case GL_FRAMEBUFFER_DEFAULT_LAYERS:
|
||||
case GL_FRAMEBUFFER_DEFAULT_SAMPLES:
|
||||
case GL_FRAMEBUFFER_DEFAULT_FIXED_SAMPLE_LOCATIONS:
|
||||
isDefaultParameter = true;
|
||||
break;
|
||||
case GL_DOUBLEBUFFER:
|
||||
case GL_IMPLEMENTATION_COLOR_READ_FORMAT:
|
||||
case GL_IMPLEMENTATION_COLOR_READ_TYPE:
|
||||
case GL_SAMPLES:
|
||||
case GL_SAMPLE_BUFFERS:
|
||||
case GL_STEREO:
|
||||
// Queryable only; glFramebufferParameteri sets none of these.
|
||||
if (forSetter) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
std::format("pname {} is not settable on a framebuffer.",
|
||||
MG_Util::ConvertGLEnumToString(pname))));
|
||||
return false;
|
||||
}
|
||||
break;
|
||||
default:
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
std::format("pname {} is not a framebuffer parameter.",
|
||||
MG_Util::ConvertGLEnumToString(pname))));
|
||||
return false;
|
||||
}
|
||||
|
||||
// The default framebuffer has no DEFAULT_* state of its own - its shape comes from the
|
||||
// surface - so those names are accepted enums it simply cannot answer or accept.
|
||||
if (isDefaultFramebuffer && isDefaultParameter) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>(
|
||||
"MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
std::format("pname {} does not apply to the default framebuffer.",
|
||||
MG_Util::ConvertGLEnumToString(pname))));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool ValidateReadFramebufferForCopy(const char* caller) {
|
||||
auto& framebufferObject =
|
||||
MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read).GetBoundObject();
|
||||
if (!framebufferObject || !framebufferObject->CheckCompleteness()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidFramebufferOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
"Read framebuffer is not framebuffer complete."));
|
||||
return false;
|
||||
}
|
||||
|
||||
const FramebufferAttachmentType readBuffer = framebufferObject->GetReadBuffer();
|
||||
if (readBuffer == FramebufferAttachmentType::None ||
|
||||
!framebufferObject->GetAttachment(readBuffer).IsValid()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
"Read buffer names no attachment of the read framebuffer."));
|
||||
return false;
|
||||
}
|
||||
|
||||
// SAMPLE_BUFFERS is one whenever the read buffer resolves to multisample storage. A
|
||||
// multisample texture says so by its target - its sample count can legally be one - while a
|
||||
// renderbuffer says so by having been given a non-zero sample count.
|
||||
const auto& readAttachment = framebufferObject->GetAttachment(readBuffer);
|
||||
Bool isMultisampled = false;
|
||||
if (readAttachment.IsRenderbuffer() && readAttachment.GetRenderbuffer()) {
|
||||
isMultisampled = readAttachment.GetRenderbuffer()->GetSamples() > 0;
|
||||
} else if (readAttachment.IsTexture() && readAttachment.GetTexture()) {
|
||||
const auto target = readAttachment.GetTexture()->GetTarget();
|
||||
isMultisampled = target == TextureTarget::Texture2DMultisample ||
|
||||
target == TextureTarget::Texture2DMultisampleArray;
|
||||
}
|
||||
if (isMultisampled) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", caller,
|
||||
"Cannot copy from a multisampled read framebuffer."));
|
||||
return false;
|
||||
}
|
||||
|
||||
return true;
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl
|
||||
|
||||
@@ -14,6 +14,21 @@ namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
|
||||
Bool ValidateFramebufferTarget(FramebufferTarget target);
|
||||
Bool ValidateFramebufferName(Uint index, Bool allowZero = true);
|
||||
Bool ValidateFramebufferAttachmentType(FramebufferAttachmentType attachment);
|
||||
// GL_COLOR_ATTACHMENTn is a token per n up to 31, but only the first GL_MAX_COLOR_ATTACHMENTS of
|
||||
// them name an attachment point of a framebuffer object; the rest are INVALID_OPERATION for the
|
||||
// attaching entry points (GL 4.6 core 9.2.7). Non-colour attachments pass through unchanged.
|
||||
Bool ValidateColorAttachmentInRange(FramebufferAttachmentType attachment, const char* caller);
|
||||
Bool ValidateRenderbufferTarget(RenderbufferTarget target);
|
||||
Bool ValidateRenderbufferName(Uint index, Bool allowZero = true);
|
||||
// The read-framebuffer preconditions the CopyTexSubImage family shares (GL 4.6 core 8.6): the
|
||||
// read framebuffer must be complete, its read buffer must name a real attachment, and it must
|
||||
// not be multisampled. Incompleteness is INVALID_FRAMEBUFFER_OPERATION, the other two are
|
||||
// INVALID_OPERATION.
|
||||
Bool ValidateReadFramebufferForCopy(const char* caller);
|
||||
// The pname sets of glGet/FramebufferParameteri (GL 4.6 core 9.2.3). Order matters and is part
|
||||
// of the contract: a name outside the table is INVALID_ENUM, and only then is a name that the
|
||||
// DEFAULT framebuffer does not answer INVALID_OPERATION. Testing the framebuffer kind first
|
||||
// would turn GL_FRAMEBUFFER_DEFAULT_WIDTH on framebuffer zero into the wrong error.
|
||||
Bool ValidateFramebufferParameterPname(GLenum pname, Bool isDefaultFramebuffer, Bool forSetter,
|
||||
const char* caller);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl
|
||||
|
||||
@@ -23,6 +23,7 @@
|
||||
#include <MG_Util/Converters/MGToGL/RenderStateEnumConverter.h>
|
||||
#include <MG_State/GLState/FramebufferState/FramebufferObject.h>
|
||||
#include <MG_Util/Texture/TextureFormatProcessor.h>
|
||||
#include <MG_Util/Async/ShaderCompilePool.h>
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
@@ -50,6 +51,14 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
constexpr GLint kFrontendMaxTessControlAtomicCounters = 0;
|
||||
constexpr GLint kFrontendMaxTessEvaluationAtomicCounters = 0;
|
||||
constexpr GLint kFrontendMaxVertexAtomicCounters = 0;
|
||||
// One atomic counter is a uint, and a buffer never has to hold more counters than the
|
||||
// combined limit the frontend advertises. GL 4.6 table 23.63 floors this at 32 bytes.
|
||||
constexpr GLint kFrontendMaxAtomicCounterBufferSize =
|
||||
kFrontendMaxCombinedAtomicCounters * static_cast<GLint>(sizeof(GLuint));
|
||||
// KHR_debug minima (GL 4.6 table 23.66); the debug entry points are stubs, but the
|
||||
// limits they advertise still have to be legal.
|
||||
constexpr GLint kFrontendMaxDebugGroupStackDepth = 64;
|
||||
constexpr GLint kFrontendMaxDebugLoggedMessages = 1;
|
||||
constexpr GLint kFrontendMaxVertexUniformComponents = 4096;
|
||||
constexpr GLint kFrontendMaxVertexUniformVectors = 128;
|
||||
constexpr GLint kFrontendMaxVertexUniformBlocks = 14;
|
||||
@@ -213,8 +222,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
GLint maxSamples = 0;
|
||||
for (const auto& attachment : drawFbo->GetAllAttachmentObjects()) {
|
||||
if (!attachment.IsRenderbuffer() || !attachment.GetRenderbuffer()) continue;
|
||||
maxSamples = std::max(maxSamples, static_cast<GLint>(attachment.GetRenderbuffer()->GetSamples()));
|
||||
if (attachment.IsRenderbuffer() && attachment.GetRenderbuffer()) {
|
||||
maxSamples = std::max(maxSamples, static_cast<GLint>(attachment.GetRenderbuffer()->GetSamples()));
|
||||
} else if (attachment.IsTexture() && attachment.GetTexture()) {
|
||||
// Multisample texture attachments count too (GL_SAMPLE_BUFFERS must
|
||||
// report 1 for any multisampled draw framebuffer).
|
||||
maxSamples = std::max(maxSamples, static_cast<GLint>(attachment.GetTexture()->GetSamples()));
|
||||
}
|
||||
}
|
||||
return maxSamples;
|
||||
}
|
||||
@@ -258,6 +272,60 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return true;
|
||||
}
|
||||
|
||||
// GL_TEXTURE_BINDING_* is per-texture-unit state: glGetIntegerv answers for the
|
||||
// active unit, glGetIntegeri_v answers for unit `index`. Both need the same
|
||||
// pname -> target decode, so it lives here instead of being spelled out twice.
|
||||
bool TryDecodeTextureUnitBindingPname(GLenum pname, TextureTarget& outTarget) {
|
||||
switch (pname) {
|
||||
case GL_TEXTURE_BINDING_1D: outTarget = TextureTarget::Texture1D; return true;
|
||||
case GL_TEXTURE_BINDING_1D_ARRAY: outTarget = TextureTarget::Texture1DArray; return true;
|
||||
case GL_TEXTURE_BINDING_2D: outTarget = TextureTarget::Texture2D; return true;
|
||||
case GL_TEXTURE_BINDING_2D_ARRAY: outTarget = TextureTarget::Texture2DArray; return true;
|
||||
case GL_TEXTURE_BINDING_2D_MULTISAMPLE: outTarget = TextureTarget::Texture2DMultisample; return true;
|
||||
case GL_TEXTURE_BINDING_2D_MULTISAMPLE_ARRAY:
|
||||
outTarget = TextureTarget::Texture2DMultisampleArray;
|
||||
return true;
|
||||
case GL_TEXTURE_BINDING_3D: outTarget = TextureTarget::Texture3D; return true;
|
||||
case GL_TEXTURE_BINDING_BUFFER: outTarget = TextureTarget::TextureBuffer; return true;
|
||||
case GL_TEXTURE_BINDING_CUBE_MAP: outTarget = TextureTarget::TextureCubeMap; return true;
|
||||
case GL_TEXTURE_BINDING_CUBE_MAP_ARRAY: outTarget = TextureTarget::TextureCubeMapArray; return true;
|
||||
case GL_TEXTURE_BINDING_RECTANGLE: outTarget = TextureTarget::TextureRectangle; return true;
|
||||
default: return false;
|
||||
}
|
||||
}
|
||||
|
||||
GLint QueryTextureBindingOnUnit(Int unit, TextureTarget target) {
|
||||
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& obj = textureUnit.GetBindingSlot(target).GetBoundObject();
|
||||
return obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
}
|
||||
|
||||
GLint QuerySamplerBindingOnUnit(Int unit) {
|
||||
const auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& sampler = textureUnit.GetSamplerObject();
|
||||
return sampler ? static_cast<GLint>(sampler->GetExternalIndex()) : 0;
|
||||
}
|
||||
|
||||
// The ARB_viewport_array indexed rectangles. MobileGL keeps exactly one viewport, one
|
||||
// scissor box and one depth range, so every in-range index answers with that single
|
||||
// value - but it has to come from the frontend state the non-indexed getters read.
|
||||
// The generic path at the bottom of GetIntegeri_v is a raw backend passthrough that
|
||||
// has no case for these, so routing them through it returned zeros.
|
||||
Bool IsIndexedViewportQuery(GLenum target) {
|
||||
return target == GL_VIEWPORT || target == GL_SCISSOR_BOX || target == GL_DEPTH_RANGE;
|
||||
}
|
||||
|
||||
// ARB_viewport_array: `index` selects a viewport and MAX_VIEWPORTS bounds it.
|
||||
Bool ValidateViewportQueryIndex(GLuint index, const char* caller) {
|
||||
GLint maxViewports = 0;
|
||||
GetIntegerv(GL_MAX_VIEWPORTS, &maxViewports);
|
||||
if (index < static_cast<GLuint>(std::max(maxViewports, 1))) return true;
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", caller, "Viewport index is out of range."));
|
||||
return false;
|
||||
}
|
||||
|
||||
void CopyIntsToBooleans(const GLint* src, SizeT count, GLboolean* dst) {
|
||||
for (SizeT i = 0; i < count; ++i) {
|
||||
dst[i] = src[i] ? GL_TRUE : GL_FALSE;
|
||||
@@ -465,6 +533,14 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_STENCIL_TEST:
|
||||
*params = MG_State::pGLContext->IsCapabilityEnabled(CapabilityInput::StencilTest) ? GL_TRUE : GL_FALSE;
|
||||
return;
|
||||
case GL_MIN_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
case GL_MAX_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
case GL_FRAGMENT_INTERPOLATION_OFFSET_BITS: {
|
||||
GLfloat value = 0.0f;
|
||||
GetFloatv(pname, &value);
|
||||
*params = value != 0.0f ? GL_TRUE : GL_FALSE;
|
||||
return;
|
||||
}
|
||||
default:
|
||||
break;
|
||||
}
|
||||
@@ -520,6 +596,19 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
params[1] = dynamicParameters.ViewportBoundsRangeMax;
|
||||
return;
|
||||
}
|
||||
case GL_MIN_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
case GL_MAX_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
case GL_FRAGMENT_INTERPOLATION_OFFSET_BITS: {
|
||||
const auto& dynamicParameters = MG_Backend::pActiveBackendObject->GetDynamicParameters();
|
||||
if (pname == GL_MIN_FRAGMENT_INTERPOLATION_OFFSET) {
|
||||
params[0] = dynamicParameters.MinFragmentInterpolationOffset;
|
||||
} else if (pname == GL_MAX_FRAGMENT_INTERPOLATION_OFFSET) {
|
||||
params[0] = dynamicParameters.MaxFragmentInterpolationOffset;
|
||||
} else {
|
||||
params[0] = static_cast<GLfloat>(dynamicParameters.FragmentInterpolationOffsetBits);
|
||||
}
|
||||
return;
|
||||
}
|
||||
case GL_DEPTH_CLEAR_VALUE:
|
||||
params[0] = MG_State::pGLContext->GetClearDepth();
|
||||
return;
|
||||
@@ -529,6 +618,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
params[1] = dynamicParameters.AliasedLineWidthRangeMax;
|
||||
return;
|
||||
}
|
||||
case GL_MAX_TEXTURE_MAX_ANISOTROPY_EXT: {
|
||||
// EXT_texture_filter_anisotropic queries this as a float; the integer path below widens
|
||||
// from here, so this case is the authoritative one.
|
||||
const auto& dynamicParameters = MG_Backend::pActiveBackendObject->GetDynamicParameters();
|
||||
params[0] = dynamicParameters.MaxTextureMaxAnisotropy;
|
||||
return;
|
||||
}
|
||||
case GL_ALIASED_POINT_SIZE_RANGE:
|
||||
case GL_POINT_SIZE_RANGE: {
|
||||
const auto& dynamicParameters = MG_Backend::pActiveBackendObject->GetDynamicParameters();
|
||||
@@ -637,7 +733,71 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
}
|
||||
|
||||
// Per-texture-unit bindings: GL 4.6 core table 23.19 makes every GL_TEXTURE_BINDING_*
|
||||
// and GL_SAMPLER_BINDING indexed by texture unit. Without this they fell through to
|
||||
// the raw backend passthrough at the bottom, which knows nothing about the
|
||||
// frontend's binding state.
|
||||
if (TextureTarget textureBindingTarget = TextureTarget::Unknown;
|
||||
TryDecodeTextureUnitBindingPname(target, textureBindingTarget) || target == GL_SAMPLER_BINDING) {
|
||||
GLint maxUnits = 0;
|
||||
GetIntegerv(GL_MAX_COMBINED_TEXTURE_IMAGE_UNITS, &maxUnits);
|
||||
maxUnits = std::min<GLint>(maxUnits, MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
if (index >= static_cast<GLuint>(std::max(maxUnits, 0))) {
|
||||
*data = 0;
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "Texture unit index is out of range."));
|
||||
return;
|
||||
}
|
||||
*data = target == GL_SAMPLER_BINDING
|
||||
? QuerySamplerBindingOnUnit(static_cast<Int>(index))
|
||||
: QueryTextureBindingOnUnit(static_cast<Int>(index), textureBindingTarget);
|
||||
return;
|
||||
}
|
||||
|
||||
switch (target) {
|
||||
// ARB_viewport_array queries the indexed rectangles through glGetIntegeri_v as well
|
||||
// (gl4cMultiBindTests and the viewport_array group both do). The frontend keeps one
|
||||
// viewport and one scissor box, so every in-range index reports that one.
|
||||
case GL_VIEWPORT:
|
||||
case GL_SCISSOR_BOX:
|
||||
if (!ValidateViewportQueryIndex(index, __func__)) return;
|
||||
GetIntegerv(target, data);
|
||||
return;
|
||||
// The vertex buffer binding points of the vertex array object that is bound. Indexed by
|
||||
// binding point, not by attribute (GL 4.6 core 10.3.1).
|
||||
case GL_VERTEX_BINDING_BUFFER:
|
||||
case GL_VERTEX_BINDING_DIVISOR:
|
||||
case GL_VERTEX_BINDING_OFFSET:
|
||||
case GL_VERTEX_BINDING_STRIDE: {
|
||||
if (index >= VertexArrayImpl::GetMaxVertexAttribBindings()) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
|
||||
"Vertex buffer binding index is out of range."));
|
||||
return;
|
||||
}
|
||||
const auto& vao = MG_State::pGLContext->GetBoundVertexArray();
|
||||
if (!vao) {
|
||||
*data = 0;
|
||||
return;
|
||||
}
|
||||
const auto& binding = vao->GetBindingPoint(index);
|
||||
switch (target) {
|
||||
case GL_VERTEX_BINDING_BUFFER:
|
||||
*data = binding.Buffer ? static_cast<GLint>(binding.Buffer->GetExternalIndex()) : 0;
|
||||
return;
|
||||
case GL_VERTEX_BINDING_DIVISOR:
|
||||
*data = static_cast<GLint>(binding.Divisor);
|
||||
return;
|
||||
case GL_VERTEX_BINDING_OFFSET:
|
||||
*data = static_cast<GLint>(binding.Offset);
|
||||
return;
|
||||
default:
|
||||
*data = static_cast<GLint>(binding.Stride);
|
||||
return;
|
||||
}
|
||||
}
|
||||
case GL_IMAGE_BINDING_NAME:
|
||||
case GL_IMAGE_BINDING_LEVEL:
|
||||
case GL_IMAGE_BINDING_LAYERED:
|
||||
@@ -715,6 +875,46 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
getIntegeri(target, index, data);
|
||||
}
|
||||
|
||||
// GL_ARB_viewport_array's typed indexed getters. They were no-op stubs, which left the
|
||||
// caller's output buffer holding whatever was on the stack. The multi-component indexed
|
||||
// rectangles are answered from the frontend's own viewport/scissor/depth-range state, via
|
||||
// the non-indexed getter of the matching type - GL_DEPTH_RANGE is float state, so putting
|
||||
// it through the integer query would round it to 0/1. Everything else MobileGL answers
|
||||
// indexed is scalar integer-domain state, where converting the integer query is exact.
|
||||
void GetFloati_v(GLenum target, GLuint index, GLfloat* data) {
|
||||
if (!data) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "data pointer cannot be null"));
|
||||
return;
|
||||
}
|
||||
if (IsIndexedViewportQuery(target)) {
|
||||
if (!ValidateViewportQueryIndex(index, __func__)) return;
|
||||
GetFloatv(target, data);
|
||||
return;
|
||||
}
|
||||
GLint ints[4] = {};
|
||||
GetIntegeri_v(target, index, ints);
|
||||
data[0] = static_cast<GLfloat>(ints[0]);
|
||||
}
|
||||
|
||||
void GetDoublei_v(GLenum target, GLuint index, GLdouble* data) {
|
||||
if (!data) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "data pointer cannot be null"));
|
||||
return;
|
||||
}
|
||||
if (IsIndexedViewportQuery(target)) {
|
||||
if (!ValidateViewportQueryIndex(index, __func__)) return;
|
||||
GetDoublev(target, data);
|
||||
return;
|
||||
}
|
||||
GLint ints[4] = {};
|
||||
GetIntegeri_v(target, index, ints);
|
||||
data[0] = static_cast<GLdouble>(ints[0]);
|
||||
}
|
||||
|
||||
void GetInteger64i_v(GLenum target, GLuint index, GLint64* data) {
|
||||
if (!data) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
@@ -891,6 +1091,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return;
|
||||
}
|
||||
|
||||
// Per-texture-unit bindings: the non-indexed query reports the active unit.
|
||||
if (TextureTarget textureBindingTarget = TextureTarget::Unknown;
|
||||
TryDecodeTextureUnitBindingPname(pname, textureBindingTarget)) {
|
||||
*params = QueryTextureBindingOnUnit(MG_State::pGLContext->GetActiveTextureUnit(), textureBindingTarget);
|
||||
return;
|
||||
}
|
||||
|
||||
switch (pname) {
|
||||
case GL_ACTIVE_TEXTURE:
|
||||
*params = MG_State::pGLContext->GetActiveTextureUnit() + GL_TEXTURE0;
|
||||
@@ -997,12 +1204,37 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_DRAW_INDIRECT_BUFFER_BINDING: {
|
||||
auto& obj = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DrawIndirect).GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_MAX_SHADER_COMPILER_THREADS_KHR:
|
||||
// GL_KHR_parallel_shader_compile (GL_MAX_SHADER_COMPILER_THREADS_ARB is the same
|
||||
// 0x91B0). The number of threads MobileGL's compile pool would actually use, so
|
||||
// an application sizing its own submission batches gets a real answer.
|
||||
//
|
||||
// Zero when asynchronous compilation is off, which is the honest reply and the
|
||||
// one the extension defines for an implementation with no compiler threads: the
|
||||
// extension string is withdrawn in that configuration too, so a conforming
|
||||
// application never reaches this query, and one that asks anyway is told there
|
||||
// are none rather than being handed a thread count nothing will use.
|
||||
*params = MG_Util::Async::AsyncShaderCompileEnabled()
|
||||
? static_cast<GLint>(MG_Util::Async::ShaderCompilePool::Get().GetThreadCount())
|
||||
: 0;
|
||||
return;
|
||||
case GL_MAX_DEBUG_GROUP_STACK_DEPTH:
|
||||
*params = 0; // debug-group entrypoints are stubbed
|
||||
// KHR_debug floors this at 64 even when the group entry points are stubs: the
|
||||
// limit describes how deep glPushDebugGroup may nest, and 0 is not a legal answer.
|
||||
*params = kFrontendMaxDebugGroupStackDepth;
|
||||
return;
|
||||
case GL_MAX_DEBUG_MESSAGE_LENGTH:
|
||||
*params = 1024; // debug-message entrypoints are stubbed, but KHR_debug requires a valid limit
|
||||
return;
|
||||
case GL_MAX_DEBUG_LOGGED_MESSAGES:
|
||||
// Size of the message log ring; KHR_debug requires at least 1.
|
||||
*params = kFrontendMaxDebugLoggedMessages;
|
||||
return;
|
||||
case GL_DEBUG_GROUP_STACK_DEPTH:
|
||||
*params = 0; // debug-group entrypoints are stubbed
|
||||
return;
|
||||
@@ -1168,10 +1400,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = kFrontendMaxFragmentInputComponents;
|
||||
return;
|
||||
case GL_MAX_FRAGMENT_IMAGE_UNIFORMS:
|
||||
// TODO: Track per-stage image uniform limits separately instead of reusing the compute/backend stage cap.
|
||||
*params = MG_Backend::pActiveBackendObject
|
||||
? MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxComputeImageUniforms
|
||||
: MG_Backend::DynamicBackendParameters{}.MaxComputeImageUniforms;
|
||||
? MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxFragmentImageUniforms
|
||||
: MG_Backend::DynamicBackendParameters{}.MaxFragmentImageUniforms;
|
||||
return;
|
||||
case GL_MAX_FRAGMENT_UNIFORM_COMPONENTS:
|
||||
*params = kFrontendMaxFragmentUniformComponents;
|
||||
@@ -1201,7 +1432,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = kFrontendMaxGeometryTextureImageUnits;
|
||||
return;
|
||||
case GL_MAX_GEOMETRY_IMAGE_UNIFORMS:
|
||||
*params = 0;
|
||||
*params = MG_Backend::pActiveBackendObject
|
||||
? MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxGeometryImageUniforms
|
||||
: MG_Backend::DynamicBackendParameters{}.MaxGeometryImageUniforms;
|
||||
return;
|
||||
case GL_MAX_GEOMETRY_TOTAL_OUTPUT_COMPONENTS:
|
||||
*params = kFrontendMaxGeometryTotalOutputComponents;
|
||||
@@ -1270,7 +1503,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = kFrontendMaxVertexAtomicCounters;
|
||||
return;
|
||||
case GL_MAX_VERTEX_IMAGE_UNIFORMS:
|
||||
*params = 0;
|
||||
*params = MG_Backend::pActiveBackendObject
|
||||
? MG_Backend::pActiveBackendObject->GetDynamicParameters().MaxVertexImageUniforms
|
||||
: MG_Backend::DynamicBackendParameters{}.MaxVertexImageUniforms;
|
||||
return;
|
||||
case GL_MAX_VERTEX_SHADER_STORAGE_BLOCKS:
|
||||
*params = 16; // TODO
|
||||
@@ -1357,7 +1592,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = 0; // program-binary entrypoints are stubbed
|
||||
return;
|
||||
case GL_PROGRAM_PIPELINE_BINDING:
|
||||
*params = 0; // program-pipeline entrypoints are stubbed
|
||||
*params = static_cast<GLint>(MG_State::pGLContext->GetBoundProgramPipelineName());
|
||||
return;
|
||||
case GL_PROGRAM_POINT_SIZE:
|
||||
*params = MG_State::pGLContext->IsCapabilityEnabled(CapabilityInput::ProgramPointSize) ? GL_TRUE : GL_FALSE;
|
||||
@@ -1441,13 +1676,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_SAMPLE_MASK_VALUE:
|
||||
*params = static_cast<GLint>(MG_State::pGLContext->GetSampleMaskValue());
|
||||
return;
|
||||
case GL_SAMPLER_BINDING: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
const auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& sampler = tu.GetSamplerObject();
|
||||
*params = sampler ? static_cast<GLint>(sampler->GetExternalIndex()) : 0;
|
||||
case GL_SAMPLER_BINDING:
|
||||
*params = QuerySamplerBindingOnUnit(MG_State::pGLContext->GetActiveTextureUnit());
|
||||
return;
|
||||
}
|
||||
case GL_SAMPLES:
|
||||
*params = ResolveDrawFramebufferSampleCount();
|
||||
return;
|
||||
@@ -1543,92 +1774,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_STEREO:
|
||||
*params = 0; // stereo surfaces are not exposed
|
||||
return;
|
||||
case GL_TEXTURE_BINDING_1D: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture1D);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_1D_ARRAY: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture1DArray);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_2D: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture2D);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
MGLOG_D("Get GL_TEXTURE_BINDING_2D: %d", *params);
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_2D_ARRAY: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture2DArray);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_2D_MULTISAMPLE: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture2DMultisample);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_2D_MULTISAMPLE_ARRAY: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture2DMultisampleArray);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_3D: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::Texture3D);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_BUFFER: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::TextureBuffer);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_CUBE_MAP: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::TextureCubeMap);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_BINDING_RECTANGLE: {
|
||||
Int unit = MG_State::pGLContext->GetActiveTextureUnit();
|
||||
auto& tu = MG_State::pGLContext->GetTextureUnitObject(unit);
|
||||
const auto& slot = tu.GetBindingSlot(TextureTarget::TextureRectangle);
|
||||
const auto& obj = slot.GetBoundObject();
|
||||
*params = obj ? static_cast<GLint>(obj->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
case GL_TEXTURE_COMPRESSION_HINT:
|
||||
*params = static_cast<GLint>(MG_State::pGLContext->GetHint(pname));
|
||||
return;
|
||||
case GL_TEXTURE_BUFFER_OFFSET_ALIGNMENT:
|
||||
*params = 0; // texture-buffer range entrypoints are stubbed
|
||||
*params = MG_Backend::pActiveBackendObject->GetDynamicParameters().TextureBufferOffsetAlignment;
|
||||
return;
|
||||
case GL_TIMESTAMP: {
|
||||
Int64 timestamp = 0;
|
||||
@@ -1697,20 +1847,22 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = vao ? static_cast<GLint>(vao->GetExternalIndex()) : 0;
|
||||
return;
|
||||
}
|
||||
// The vertex buffer binding points are per-binding-index state, so the non-indexed getter
|
||||
// has nothing to answer with (GL 4.6 core table 23.4).
|
||||
case GL_VERTEX_BINDING_BUFFER:
|
||||
case GL_VERTEX_BINDING_DIVISOR:
|
||||
*params = 0; // vertex-binding entrypoints are stubbed
|
||||
return;
|
||||
case GL_VERTEX_BINDING_OFFSET:
|
||||
*params = 0; // vertex-binding entrypoints are stubbed
|
||||
return;
|
||||
case GL_VERTEX_BINDING_STRIDE:
|
||||
*params = 0; // vertex-binding entrypoints are stubbed
|
||||
RecordIndexedOnlyGetterError(__func__, pname);
|
||||
return;
|
||||
case GL_MAX_VERTEX_ATTRIB_RELATIVE_OFFSET:
|
||||
*params = 0; // vertex-binding entrypoints are stubbed
|
||||
*params = static_cast<GLint>(VertexArrayImpl::GetMaxVertexAttribRelativeOffset());
|
||||
return;
|
||||
case GL_MAX_VERTEX_ATTRIB_BINDINGS:
|
||||
*params = 0; // vertex-binding entrypoints are stubbed
|
||||
*params = static_cast<GLint>(VertexArrayImpl::GetMaxVertexAttribBindings());
|
||||
return;
|
||||
case GL_MAX_VERTEX_ATTRIB_STRIDE:
|
||||
*params = static_cast<GLint>(VertexArrayImpl::GetMaxVertexAttribStride());
|
||||
return;
|
||||
case GL_VIEWPORT: {
|
||||
const auto& vp = MG_State::pGLContext->GetViewport();
|
||||
@@ -1727,7 +1879,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = 1024 * 1024; // TODO
|
||||
return;
|
||||
case GL_CONTEXT_PROFILE_MASK:
|
||||
*params = GL_CONTEXT_CORE_PROFILE_BIT;
|
||||
// Reports the requested context profile (EGL defaults 3.x contexts to core);
|
||||
// MOBILEGL_RELAXED_SEMANTICS loosens behavior without changing the identity.
|
||||
*params = MG_State::pEGLContext && MG_State::pEGLContext->IsCurrentContextOpenGLCompatibilityProfile()
|
||||
? GL_CONTEXT_COMPATIBILITY_PROFILE_BIT
|
||||
: GL_CONTEXT_CORE_PROFILE_BIT;
|
||||
return;
|
||||
default:
|
||||
break;
|
||||
@@ -1872,9 +2028,36 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_MAX_SAMPLE_MASK_WORDS:
|
||||
*params = dynamicParameters.MaxSampleMaskWords;
|
||||
break;
|
||||
case GL_PATCH_VERTICES:
|
||||
*params = static_cast<GLint>(MG_State::pGLContext->GetPatchVertices());
|
||||
break;
|
||||
case GL_MAX_PATCH_VERTICES:
|
||||
*params = dynamicParameters.MaxPatchVertices;
|
||||
break;
|
||||
case GL_MAX_TESS_GEN_LEVEL:
|
||||
*params = dynamicParameters.MaxTessGenLevel;
|
||||
break;
|
||||
case GL_MIN_PROGRAM_TEXTURE_GATHER_OFFSET:
|
||||
*params = dynamicParameters.MinProgramTextureGatherOffset;
|
||||
break;
|
||||
case GL_MAX_PROGRAM_TEXTURE_GATHER_OFFSET:
|
||||
*params = dynamicParameters.MaxProgramTextureGatherOffset;
|
||||
break;
|
||||
case GL_MAX_SHADER_STORAGE_BUFFER_BINDINGS:
|
||||
*params = static_cast<GLint>(GetIndexedBufferQueryPointCount(BufferTarget::ShaderStorage));
|
||||
break;
|
||||
case GL_MAX_SHADER_STORAGE_BLOCK_SIZE:
|
||||
// 64-bit state (see GetInteger64v); the 32-bit query saturates, per the GL
|
||||
// state-query conversion rules.
|
||||
*params = static_cast<GLint>(std::min<Uint64>(dynamicParameters.MaxShaderStorageBlockSize,
|
||||
static_cast<Uint64>(INT32_MAX)));
|
||||
break;
|
||||
case GL_MAX_ATOMIC_COUNTER_BUFFER_BINDINGS:
|
||||
*params = static_cast<GLint>(GetIndexedBufferQueryPointCount(BufferTarget::AtomicCounter));
|
||||
break;
|
||||
case GL_MAX_ATOMIC_COUNTER_BUFFER_SIZE:
|
||||
*params = kFrontendMaxAtomicCounterBufferSize;
|
||||
break;
|
||||
case GL_MAX_TEXTURE_BUFFER_SIZE:
|
||||
*params = dynamicParameters.MaxTextureBufferSize;
|
||||
break;
|
||||
@@ -1887,6 +2070,25 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_MAX_TRANSFORM_FEEDBACK_SEPARATE_COMPONENTS:
|
||||
*params = kFrontendMaxTransformFeedbackSeparateComponents;
|
||||
break;
|
||||
// ARB_transform_feedback3 limits. The GL CTS queries these before checking
|
||||
// whether the extension is advertised and requires no GL error; desktop
|
||||
// drivers all accept them, so answer with the separate-attrib capacity and
|
||||
// the single vertex stream the backends provide.
|
||||
case GL_MAX_TRANSFORM_FEEDBACK_BUFFERS:
|
||||
*params = kFrontendMaxTransformFeedbackSeparateAttribs;
|
||||
break;
|
||||
case GL_MAX_VERTEX_STREAMS:
|
||||
*params = 1;
|
||||
break;
|
||||
case GL_TRANSFORM_FEEDBACK_ACTIVE:
|
||||
*params = MG_State::pGLContext->IsTransformFeedbackActive() ? 1 : 0;
|
||||
break;
|
||||
case GL_TRANSFORM_FEEDBACK_PAUSED:
|
||||
*params = MG_State::pGLContext->IsTransformFeedbackPaused() ? 1 : 0;
|
||||
break;
|
||||
case GL_TRANSFORM_FEEDBACK_BINDING:
|
||||
*params = static_cast<GLint>(MG_State::pGLContext->GetBoundTransformFeedbackName());
|
||||
break;
|
||||
case GL_MAX_TEXTURE_IMAGE_UNITS:
|
||||
*params = dynamicParameters.MaxTextureImageUnits;
|
||||
break;
|
||||
@@ -1894,7 +2096,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
*params = dynamicParameters.MaxTextureSize;
|
||||
break;
|
||||
case GL_MAX_UNIFORM_BUFFER_BINDINGS:
|
||||
*params = std::max(dynamicParameters.MaxUniformBufferBindings, kFrontendMinUniformBufferBindings);
|
||||
// Never advertise more bindings than the state layer's indexed-binding array can track
|
||||
// (BufferState::BufferBindingPointCount): glBindBufferBase rejects indices past that
|
||||
// capacity, and the GL CTS per-case state reset calls glBindBufferBase on every
|
||||
// advertised index and expects no error. The floor equals the GL 3.3 core minimum
|
||||
// (36), so the clamp never under-advertises.
|
||||
*params = std::clamp(dynamicParameters.MaxUniformBufferBindings, kFrontendMinUniformBufferBindings,
|
||||
static_cast<GLint>(MG_State::GLState::BufferBindingPointCount));
|
||||
break;
|
||||
case GL_MAX_UNIFORM_BLOCK_SIZE:
|
||||
*params = dynamicParameters.MaxUniformBlockSize;
|
||||
@@ -1937,6 +2145,15 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_SUBPIXEL_BITS:
|
||||
*params = std::max(dynamicParameters.ViewportSubpixelBits, kFrontendSubpixelBits);
|
||||
break;
|
||||
case GL_MIN_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
*params = static_cast<GLint>(std::lround(dynamicParameters.MinFragmentInterpolationOffset));
|
||||
break;
|
||||
case GL_MAX_FRAGMENT_INTERPOLATION_OFFSET:
|
||||
*params = static_cast<GLint>(std::lround(dynamicParameters.MaxFragmentInterpolationOffset));
|
||||
break;
|
||||
case GL_FRAGMENT_INTERPOLATION_OFFSET_BITS:
|
||||
*params = dynamicParameters.FragmentInterpolationOffsetBits;
|
||||
break;
|
||||
case GL_UNIFORM_BUFFER_OFFSET_ALIGNMENT:
|
||||
*params = static_cast<Int>(dynamicParameters.UniformBufferOffsetAlignment);
|
||||
break;
|
||||
@@ -1955,6 +2172,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_MAX_SAMPLES:
|
||||
*params = std::max(dynamicParameters.MaxSamples, kFrontendMaxSamples);
|
||||
break;
|
||||
case GL_MAX_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
// Float state (see GetFloatv); rounded to nearest for the integer query per GL 3.3 6.1.2.
|
||||
*params = static_cast<GLint>(std::lround(dynamicParameters.MaxTextureMaxAnisotropy));
|
||||
break;
|
||||
default:
|
||||
MGLOG_E("glGetIntegerv: Invalid enum %s (0x%X)", MG_Util::ConvertGLEnumToString(pname).c_str(), pname);
|
||||
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
|
||||
@@ -1972,4 +2193,12 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
return MG_Util::ConvertErrorCodeToGLEnum(error->get()->code);
|
||||
}
|
||||
|
||||
GLenum GetGraphicsResetStatus() {
|
||||
// MobileGL does not implement robustness reset notification, so report GL_NO_ERROR
|
||||
// ("no reset detected"). Returning the generic stub's (GLenum)1 makes dEQP read a lost
|
||||
// device after every case (gl3cTestPackages.cpp:121) and, under the default
|
||||
// --deqp-terminate-on-device-lost=enable, tear the whole CTS run down.
|
||||
return GL_NO_ERROR;
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -19,6 +19,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void GetIntegerv(GLenum pname, GLint* params);
|
||||
void GetInteger64v(GLenum pname, GLint64* params);
|
||||
void GetIntegeri_v(GLenum target, GLuint index, GLint* data);
|
||||
void GetFloati_v(GLenum target, GLuint index, GLfloat* data);
|
||||
void GetDoublei_v(GLenum target, GLuint index, GLdouble* data);
|
||||
void GetInteger64i_v(GLenum target, GLuint index, GLint64* data);
|
||||
GLenum GetError();
|
||||
GLenum GetGraphicsResetStatus();
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -42,6 +42,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GLboolean IsProgram(GLuint program);
|
||||
GLboolean IsShader(GLuint shader);
|
||||
void LinkProgram(GLuint program);
|
||||
// GL_KHR_parallel_shader_compile / GL_ARB_parallel_shader_compile. Both names are the
|
||||
// same entry point; see MaxShaderCompilerThreadsKHR_State for the semantics of count.
|
||||
void MaxShaderCompilerThreadsKHR(GLuint count);
|
||||
void MaxShaderCompilerThreadsARB(GLuint count);
|
||||
void ShaderSource(GLuint shader, GLsizei count, const GLchar* const* string, const GLint* length);
|
||||
void UseProgram(GLuint program);
|
||||
void Uniform1f(GLint location, GLfloat v0);
|
||||
@@ -137,5 +141,47 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GLint GetProgramResourceLocation(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
GLint GetProgramResourceLocationIndex(GLuint program, GLenum programInterface, const GLchar* name);
|
||||
void ShaderStorageBlockBinding(GLuint program, GLuint storageBlockIndex, GLuint storageBlockBinding);
|
||||
void Uniform1d(GLint location, GLdouble v0);
|
||||
void Uniform1dv(GLint location, GLsizei count, const GLdouble* value);
|
||||
void ProgramUniform1d(GLuint program, GLint location, GLdouble v0);
|
||||
void ProgramUniform1dv(GLuint program, GLint location, GLsizei count, const GLdouble* value);
|
||||
void Uniform2d(GLint location, GLdouble v0, GLdouble v1);
|
||||
void Uniform2dv(GLint location, GLsizei count, const GLdouble* value);
|
||||
void ProgramUniform2d(GLuint program, GLint location, GLdouble v0, GLdouble v1);
|
||||
void ProgramUniform2dv(GLuint program, GLint location, GLsizei count, const GLdouble* value);
|
||||
void Uniform3d(GLint location, GLdouble v0, GLdouble v1, GLdouble v2);
|
||||
void Uniform3dv(GLint location, GLsizei count, const GLdouble* value);
|
||||
void ProgramUniform3d(GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2);
|
||||
void ProgramUniform3dv(GLuint program, GLint location, GLsizei count, const GLdouble* value);
|
||||
void Uniform4d(GLint location, GLdouble v0, GLdouble v1, GLdouble v2, GLdouble v3);
|
||||
void Uniform4dv(GLint location, GLsizei count, const GLdouble* value);
|
||||
void ProgramUniform4d(GLuint program, GLint location, GLdouble v0, GLdouble v1, GLdouble v2, GLdouble v3);
|
||||
void ProgramUniform4dv(GLuint program, GLint location, GLsizei count, const GLdouble* value);
|
||||
void UniformMatrix2dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix2dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix3dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix3dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix4dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix4dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix2x3dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix2x3dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix2x4dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix2x4dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix3x2dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix3x2dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix3x4dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix3x4dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix4x2dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix4x2dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void UniformMatrix4x3dv(GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void ProgramUniformMatrix4x3dv(GLuint program, GLint location, GLsizei count, GLboolean transpose, const GLdouble* value);
|
||||
void GetUniformdv(GLuint program, GLint location, GLdouble* params);
|
||||
void ValidateProgram(GLuint program);
|
||||
void ProgramParameteri(GLuint program, GLenum pname, GLint value);
|
||||
GLuint CreateShaderProgramv(GLenum type, GLsizei count, const GLchar* const* strings);
|
||||
void GetProgramBinary(GLuint program, GLsizei bufSize, GLsizei* length, GLenum* binaryFormat, void* binary);
|
||||
void ProgramBinary(GLuint program, GLenum binaryFormat, const void* binary, GLsizei length);
|
||||
void TransformFeedbackVaryings(GLuint program, GLsizei count, const GLchar* const* varyings, GLenum bufferMode);
|
||||
void GetTransformFeedbackVarying(GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLsizei* size,
|
||||
GLenum* type, GLchar* name);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -0,0 +1,231 @@
|
||||
// MobileGL - MobileGL/MG_Impl/GLImpl/Program/GL_ProgramPipeline.cpp
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#include "GL_ProgramPipeline.h"
|
||||
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_State/GLState/ErrorState/ErrorInfo.h>
|
||||
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
namespace {
|
||||
void RecordPipelineError(ErrorCode code, const char* function, String message) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
code, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", function, Move(message)));
|
||||
}
|
||||
|
||||
// A pipeline name only names an object once it has been bound or created; querying a
|
||||
// reserved-but-unmaterialised name is INVALID_OPERATION (GL 4.6 core 7.4).
|
||||
const SharedPtr<MG_State::GLState::ProgramPipelineObject>* TryGetPipeline(GLuint pipeline,
|
||||
const char* function) {
|
||||
if (!MG_State::pGLContext->IsProgramPipelineObject(pipeline)) {
|
||||
RecordPipelineError(ErrorCode::InvalidOperation, function,
|
||||
std::format("Program pipeline {} does not exist.", pipeline));
|
||||
return nullptr;
|
||||
}
|
||||
return &MG_State::pGLContext->GetProgramPipelineObject(pipeline);
|
||||
}
|
||||
|
||||
Bool ValidatePipelineCount(GLsizei n, const char* function) {
|
||||
if (n < 0) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, function, "n must be non-negative.");
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// GL 4.6 core table 7.1 maps each stage bit onto a shader stage.
|
||||
Bool TryResolveStageBit(GLbitfield bit, ShaderStage& outStage) {
|
||||
switch (bit) {
|
||||
case GL_VERTEX_SHADER_BIT: outStage = ShaderStage::Vertex; return true;
|
||||
case GL_TESS_CONTROL_SHADER_BIT: outStage = ShaderStage::TessControl; return true;
|
||||
case GL_TESS_EVALUATION_SHADER_BIT: outStage = ShaderStage::TessEval; return true;
|
||||
case GL_GEOMETRY_SHADER_BIT: outStage = ShaderStage::Geometry; return true;
|
||||
case GL_FRAGMENT_SHADER_BIT: outStage = ShaderStage::Fragment; return true;
|
||||
case GL_COMPUTE_SHADER_BIT: outStage = ShaderStage::Compute; return true;
|
||||
default: return false;
|
||||
}
|
||||
}
|
||||
|
||||
constexpr GLbitfield kAllStageBits = GL_VERTEX_SHADER_BIT | GL_TESS_CONTROL_SHADER_BIT |
|
||||
GL_TESS_EVALUATION_SHADER_BIT | GL_GEOMETRY_SHADER_BIT |
|
||||
GL_FRAGMENT_SHADER_BIT | GL_COMPUTE_SHADER_BIT;
|
||||
} // namespace
|
||||
|
||||
void GenProgramPipelines(GLsizei n, GLuint* pipelines) {
|
||||
if (!ValidatePipelineCount(n, __func__)) return;
|
||||
if (n == 0 || !pipelines) return;
|
||||
|
||||
static thread_local Vector<GLuint> names;
|
||||
MG_State::pGLContext->GenProgramPipelineNames(static_cast<Uint>(n), names);
|
||||
Memcpy(pipelines, names.data(), static_cast<SizeT>(n) * sizeof(GLuint));
|
||||
}
|
||||
|
||||
void CreateProgramPipelines(GLsizei n, GLuint* pipelines) {
|
||||
if (!ValidatePipelineCount(n, __func__)) return;
|
||||
if (n == 0 || !pipelines) return;
|
||||
|
||||
static thread_local Vector<GLuint> names;
|
||||
MG_State::pGLContext->GenProgramPipelineNames(static_cast<Uint>(n), names);
|
||||
for (GLsizei i = 0; i < n; ++i) {
|
||||
pipelines[i] = names[static_cast<SizeT>(i)];
|
||||
MG_State::pGLContext->CreateProgramPipelineObject(names[static_cast<SizeT>(i)]);
|
||||
}
|
||||
}
|
||||
|
||||
void DeleteProgramPipelines(GLsizei n, const GLuint* pipelines) {
|
||||
if (!ValidatePipelineCount(n, __func__)) return;
|
||||
if (!pipelines) return;
|
||||
|
||||
for (GLsizei i = 0; i < n; ++i) {
|
||||
// Deleting zero, an unknown name, or a name that was only reserved is silently ignored.
|
||||
MG_State::pGLContext->MarkProgramPipelineForDeletion(pipelines[i]);
|
||||
}
|
||||
}
|
||||
|
||||
void BindProgramPipeline(GLuint pipeline) {
|
||||
if (pipeline != 0 && !MG_State::pGLContext->ValidateProgramPipelineName(pipeline)) {
|
||||
RecordPipelineError(ErrorCode::InvalidOperation, __func__,
|
||||
std::format("Program pipeline name {} is not valid.", pipeline));
|
||||
return;
|
||||
}
|
||||
MG_State::pGLContext->BindProgramPipelineObject(pipeline);
|
||||
}
|
||||
|
||||
GLboolean IsProgramPipeline(GLuint pipeline) {
|
||||
return MG_State::pGLContext->IsProgramPipelineObject(pipeline) ? GL_TRUE : GL_FALSE;
|
||||
}
|
||||
|
||||
void GetProgramPipelineiv(GLuint pipeline, GLenum pname, GLint* params) {
|
||||
const auto* pipelineObject = TryGetPipeline(pipeline, __func__);
|
||||
if (!pipelineObject || !params) return;
|
||||
|
||||
const auto stageProgramName = [&](ShaderStage stage) -> GLint {
|
||||
const auto& program = (*pipelineObject)->GetStageProgram(stage);
|
||||
return program ? static_cast<GLint>(program->GetExternalIndex()) : 0;
|
||||
};
|
||||
|
||||
switch (pname) {
|
||||
case GL_ACTIVE_PROGRAM: {
|
||||
const auto& active = (*pipelineObject)->GetActiveProgram();
|
||||
*params = active ? static_cast<GLint>(active->GetExternalIndex()) : 0;
|
||||
break;
|
||||
}
|
||||
case GL_VERTEX_SHADER: *params = stageProgramName(ShaderStage::Vertex); break;
|
||||
case GL_TESS_CONTROL_SHADER: *params = stageProgramName(ShaderStage::TessControl); break;
|
||||
case GL_TESS_EVALUATION_SHADER: *params = stageProgramName(ShaderStage::TessEval); break;
|
||||
case GL_GEOMETRY_SHADER: *params = stageProgramName(ShaderStage::Geometry); break;
|
||||
case GL_FRAGMENT_SHADER: *params = stageProgramName(ShaderStage::Fragment); break;
|
||||
case GL_COMPUTE_SHADER: *params = stageProgramName(ShaderStage::Compute); break;
|
||||
case GL_VALIDATE_STATUS: *params = (*pipelineObject)->GetValidateStatus() ? GL_TRUE : GL_FALSE; break;
|
||||
case GL_INFO_LOG_LENGTH: {
|
||||
// GL counts the null terminator, and reports 0 rather than 1 for an empty log.
|
||||
const auto& log = (*pipelineObject)->GetInfoLog();
|
||||
*params = log.empty() ? 0 : static_cast<GLint>(log.length()) + 1;
|
||||
break;
|
||||
}
|
||||
default:
|
||||
RecordPipelineError(ErrorCode::InvalidEnum, __func__,
|
||||
std::format("pname {} is not a program pipeline parameter.",
|
||||
MG_Util::ConvertGLEnumToString(pname)));
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
void GetProgramPipelineInfoLog(GLuint pipeline, GLsizei bufSize, GLsizei* length, GLchar* infoLog) {
|
||||
const auto* pipelineObject = TryGetPipeline(pipeline, __func__);
|
||||
if (!pipelineObject) return;
|
||||
if (bufSize < 0) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__, "bufSize must be non-negative.");
|
||||
return;
|
||||
}
|
||||
if (bufSize == 0 || !infoLog) {
|
||||
if (length) *length = 0;
|
||||
return;
|
||||
}
|
||||
|
||||
const auto& log = (*pipelineObject)->GetInfoLog();
|
||||
const auto copied = std::min<GLsizei>(bufSize - 1, static_cast<GLsizei>(log.length()));
|
||||
if (copied > 0) Memcpy(infoLog, log.data(), static_cast<SizeT>(copied));
|
||||
infoLog[copied] = '\0';
|
||||
if (length) *length = copied;
|
||||
}
|
||||
|
||||
void UseProgramStages(GLuint pipeline, GLbitfield stages, GLuint program) {
|
||||
if (stages != GL_ALL_SHADER_BITS && (stages & ~kAllStageBits) != 0) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__, "stages names a bit that is not a shader stage.");
|
||||
return;
|
||||
}
|
||||
const auto* pipelineObject = TryGetPipeline(pipeline, __func__);
|
||||
if (!pipelineObject) return;
|
||||
|
||||
SharedPtr<MG_State::GLState::ProgramObject> programObject;
|
||||
if (program != 0) {
|
||||
if (!MG_State::pGLContext->ValidateProgramName(program)) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__,
|
||||
std::format("{} is not the name of a program object.", program));
|
||||
return;
|
||||
}
|
||||
programObject = MG_State::pGLContext->GetProgramObject(program);
|
||||
if (!programObject) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__,
|
||||
std::format("{} is not the name of a program object.", program));
|
||||
return;
|
||||
}
|
||||
if (!programObject->GetLinkStatus()) {
|
||||
RecordPipelineError(ErrorCode::InvalidOperation, __func__,
|
||||
std::format("Program {} has not been linked successfully.", program));
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
const GLbitfield selected = stages == GL_ALL_SHADER_BITS ? kAllStageBits : stages;
|
||||
for (GLbitfield bit = 1; bit != 0 && bit <= kAllStageBits; bit <<= 1) {
|
||||
if ((selected & bit) == 0) continue;
|
||||
ShaderStage stage = ShaderStage::Unknown;
|
||||
if (!TryResolveStageBit(bit, stage)) continue;
|
||||
// program == 0 clears the stage, which is what a null program reference means here.
|
||||
(*pipelineObject)->SetStageProgram(stage, programObject);
|
||||
}
|
||||
}
|
||||
|
||||
void ActiveShaderProgram(GLuint pipeline, GLuint program) {
|
||||
const auto* pipelineObject = TryGetPipeline(pipeline, __func__);
|
||||
if (!pipelineObject) return;
|
||||
|
||||
if (program == 0) {
|
||||
(*pipelineObject)->SetActiveProgram(nullptr);
|
||||
return;
|
||||
}
|
||||
if (!MG_State::pGLContext->ValidateProgramName(program)) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__,
|
||||
std::format("{} is not the name of a program object.", program));
|
||||
return;
|
||||
}
|
||||
auto programObject = MG_State::pGLContext->GetProgramObject(program);
|
||||
if (!programObject) {
|
||||
RecordPipelineError(ErrorCode::InvalidValue, __func__,
|
||||
std::format("{} is not the name of a program object.", program));
|
||||
return;
|
||||
}
|
||||
if (!programObject->GetLinkStatus()) {
|
||||
RecordPipelineError(ErrorCode::InvalidOperation, __func__,
|
||||
std::format("Program {} has not been linked successfully.", program));
|
||||
return;
|
||||
}
|
||||
(*pipelineObject)->SetActiveProgram(programObject);
|
||||
}
|
||||
|
||||
void ValidateProgramPipeline(GLuint pipeline) {
|
||||
const auto* pipelineObject = TryGetPipeline(pipeline, __func__);
|
||||
if (!pipelineObject) return;
|
||||
// Nothing here can fail today: MobileGL links each stage program on its own, so there is no
|
||||
// cross-stage interface to re-check at validation time. The log stays empty, which GL allows.
|
||||
(*pipelineObject)->SetValidateStatus(true);
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
@@ -0,0 +1,23 @@
|
||||
// MobileGL - MobileGL/MG_Impl/GLImpl/Program/GL_ProgramPipeline.h
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#pragma once
|
||||
#include <Includes.h>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
void GenProgramPipelines(GLsizei n, GLuint* pipelines);
|
||||
void CreateProgramPipelines(GLsizei n, GLuint* pipelines);
|
||||
void DeleteProgramPipelines(GLsizei n, const GLuint* pipelines);
|
||||
void BindProgramPipeline(GLuint pipeline);
|
||||
GLboolean IsProgramPipeline(GLuint pipeline);
|
||||
void GetProgramPipelineiv(GLuint pipeline, GLenum pname, GLint* params);
|
||||
void GetProgramPipelineInfoLog(GLuint pipeline, GLsizei bufSize, GLsizei* length, GLchar* infoLog);
|
||||
void UseProgramStages(GLuint pipeline, GLbitfield stages, GLuint program);
|
||||
void ActiveShaderProgram(GLuint pipeline, GLuint program);
|
||||
void ValidateProgramPipeline(GLuint pipeline);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
@@ -0,0 +1,841 @@
|
||||
// MobileGL - MobileGL/MG_Impl/GLImpl/Program/ProgramInterface.cpp
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#include "ProgramInterface.h"
|
||||
|
||||
#include <MG_State/GLState/ProgramState/ProgramObject.h>
|
||||
#include <MG_Util/ShaderTranspiler/Types.h>
|
||||
|
||||
#include <cstring>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl::ProgramInterface {
|
||||
namespace {
|
||||
// glslang folds atomic counters into synthesized blocks named
|
||||
// "<getAtomicCounterBlockName()>_<binding>" (ParseContextBase.cpp), one per GL
|
||||
// atomic-counter binding point. That block IS the GL_ATOMIC_COUNTER_BUFFER resource
|
||||
// and its trailing number IS GL_BUFFER_BINDING; its members stay GL_UNIFORMs.
|
||||
constexpr const char* kAtomicCounterBlockPrefix = "gl_AtomicCounterBlock";
|
||||
|
||||
enum class BlockKind {
|
||||
Uniform, // a real GL uniform block
|
||||
GlobalUbo, // the synthesized MGL_GLOBAL_UBO: GL sees its members as default-block
|
||||
AtomicCounter, // gl_AtomicCounterBlock_<binding>
|
||||
Storage, // a shader storage block
|
||||
};
|
||||
|
||||
// One row of any interface. Fields a given interface does not have keep the
|
||||
// spec-mandated "not applicable" value, so a prop read never has to special-case
|
||||
// the interface a second time.
|
||||
struct Resource {
|
||||
String name;
|
||||
GLenum type = GL_NONE;
|
||||
GLint arraySize = 1;
|
||||
GLint location = -1;
|
||||
GLint locationIndex = -1;
|
||||
GLint blockIndex = -1;
|
||||
GLint offset = -1;
|
||||
GLint arrayStride = -1;
|
||||
GLint matrixStride = -1;
|
||||
GLint isRowMajor = 0;
|
||||
GLint atomicCounterBufferIndex = -1;
|
||||
GLint topLevelArraySize = 0;
|
||||
GLint topLevelArrayStride = 0;
|
||||
GLint bufferBinding = 0;
|
||||
GLint bufferDataSize = 0;
|
||||
GLint isPerPatch = 0;
|
||||
GLint xfbBufferIndex = 0;
|
||||
Uint32 stages = 0; // EShLanguageMask
|
||||
Vector<GLuint> activeVariables;
|
||||
};
|
||||
|
||||
using ResourceList = Vector<Resource>;
|
||||
|
||||
struct Model {
|
||||
ResourceList uniforms;
|
||||
ResourceList uniformBlocks;
|
||||
ResourceList atomicCounterBuffers;
|
||||
ResourceList bufferVariables;
|
||||
ResourceList storageBlocks;
|
||||
ResourceList programInputs;
|
||||
ResourceList programOutputs;
|
||||
ResourceList xfbVaryings;
|
||||
Bool valid = false;
|
||||
};
|
||||
|
||||
const ResourceList& EmptyList() {
|
||||
static const ResourceList empty;
|
||||
return empty;
|
||||
}
|
||||
|
||||
// ---- name spelling (cluster 6) -------------------------------------------------
|
||||
|
||||
Bool EndsWithZeroSubscript(const String& name) {
|
||||
return name.length() >= 3 && name.compare(name.length() - 3, 3, "[0]") == 0;
|
||||
}
|
||||
|
||||
// The enumerated spelling of an array resource is "name[0]". glslang already applies
|
||||
// that to uniforms and buffer variables (EShReflectionBasicArraySuffix), but never to
|
||||
// stage inputs/outputs, so those get it here.
|
||||
String WithArraySuffix(const String& name, const glslang::TType* type) {
|
||||
if (type == nullptr || !type->isArray() || EndsWithZeroSubscript(name)) return name;
|
||||
return name + "[0]";
|
||||
}
|
||||
|
||||
// GL_ARRAY_SIZE: element count for a sized array, 0 for a runtime-sized one
|
||||
// (a shader storage block's unsized trailing member), 1 for a non-array.
|
||||
GLint ArraySizeOf(const glslang::TType* type, GLint reflectedSize) {
|
||||
if (type != nullptr && type->isArray()) {
|
||||
if (!type->isSizedArray()) return 0;
|
||||
return type->getOuterArraySize();
|
||||
}
|
||||
return reflectedSize < 1 ? 1 : reflectedSize;
|
||||
}
|
||||
|
||||
// Two spellings name the same resource when they are equal, or differ only by the
|
||||
// "[0]" the enumeration appends to an array.
|
||||
Bool NamesMatch(const String& resourceName, const String& query) {
|
||||
if (resourceName == query) return true;
|
||||
if (EndsWithZeroSubscript(resourceName) &&
|
||||
resourceName.compare(0, resourceName.length() - 3, query) == 0) {
|
||||
return true;
|
||||
}
|
||||
return EndsWithZeroSubscript(query) && query.compare(0, query.length() - 3, resourceName) == 0;
|
||||
}
|
||||
|
||||
// Splits "base[k]" into ("base", k). GL 4.6 §7.3.1.1 requires the subscript to be a
|
||||
// decimal integer with no white space and no leading zeros, which is exactly what
|
||||
// separates array-names' "a[1]" (resolves) from "a[01]", "a[0 + 0]" and "a[ 0]" (do
|
||||
// not). Returns false when there is no trailing subscript at all; sets `malformed`
|
||||
// when there is one but it is not a strict decimal.
|
||||
Bool SplitTrailingSubscript(const String& name, String& outBase, Uint& outElement, Bool& outMalformed) {
|
||||
outMalformed = false;
|
||||
if (name.empty() || name.back() != ']') return false;
|
||||
const SizeT bracket = name.rfind('[');
|
||||
if (bracket == String::npos) return false;
|
||||
const SizeT first = bracket + 1;
|
||||
const SizeT last = name.length() - 1; // one past the digits
|
||||
if (first >= last) {
|
||||
outMalformed = true;
|
||||
return false;
|
||||
}
|
||||
// No leading zeros: "0" is the only spelling that may start with '0'.
|
||||
if (name[first] == '0' && last - first > 1) {
|
||||
outMalformed = true;
|
||||
return false;
|
||||
}
|
||||
Uint element = 0;
|
||||
for (SizeT i = first; i < last; ++i) {
|
||||
if (name[i] < '0' || name[i] > '9') {
|
||||
outMalformed = true;
|
||||
return false;
|
||||
}
|
||||
element = element * 10 + static_cast<Uint>(name[i] - '0');
|
||||
if (element > 0x0FFFFFFFu) {
|
||||
outMalformed = true;
|
||||
return false;
|
||||
}
|
||||
}
|
||||
outBase = name.substr(0, bracket);
|
||||
outElement = element;
|
||||
return true;
|
||||
}
|
||||
|
||||
// ---- block classification ------------------------------------------------------
|
||||
|
||||
Bool IsAtomicCounterBlockName(const String& name) {
|
||||
return name.compare(0, std::strlen(kAtomicCounterBlockPrefix), kAtomicCounterBlockPrefix) == 0;
|
||||
}
|
||||
|
||||
// "gl_AtomicCounterBlock_5" -> 5. The suffix is the GL binding the counters were
|
||||
// declared with, which glslang does NOT keep in the block's own layout qualifier
|
||||
// (that one is remapped to a plain buffer binding).
|
||||
GLint AtomicCounterBlockBinding(const String& name) {
|
||||
const SizeT underscore = name.rfind('_');
|
||||
if (underscore == String::npos || underscore + 1 >= name.length()) return 0;
|
||||
GLint binding = 0;
|
||||
for (SizeT i = underscore + 1; i < name.length(); ++i) {
|
||||
if (name[i] < '0' || name[i] > '9') return 0;
|
||||
binding = binding * 10 + (name[i] - '0');
|
||||
}
|
||||
return binding;
|
||||
}
|
||||
|
||||
// Element index of an arrayed block instance ("TrickyBuffer[1]" -> 1).
|
||||
GLint BlockArrayElement(const String& name) {
|
||||
String base;
|
||||
Uint element = 0;
|
||||
Bool malformed = false;
|
||||
if (!SplitTrailingSubscript(name, base, element, malformed)) return 0;
|
||||
return static_cast<GLint>(element);
|
||||
}
|
||||
|
||||
BlockKind ClassifyBlock(const glslang::TObjectReflection& block) {
|
||||
if (std::strstr(block.name.c_str(), MG_Util::ShaderTranspiler::GLOBAL_UBO_NAME) != nullptr) {
|
||||
return BlockKind::GlobalUbo;
|
||||
}
|
||||
if (IsAtomicCounterBlockName(block.name)) return BlockKind::AtomicCounter;
|
||||
const glslang::TType* type = block.getType();
|
||||
if (type != nullptr && type->getQualifier().storage == glslang::EvqBuffer) return BlockKind::Storage;
|
||||
return BlockKind::Uniform;
|
||||
}
|
||||
|
||||
// std140/std430 column stride, the same vec4-rounded rule ProgramObject applies to
|
||||
// uniform matrices. 0 for a non-matrix.
|
||||
GLint MatrixStrideOf(const glslang::TType* type) {
|
||||
if (type == nullptr || !type->isMatrix()) return 0;
|
||||
const bool rowMajor = type->getQualifier().layoutMatrix == glslang::ElmRowMajor;
|
||||
const int strideVectorComponents = rowMajor ? type->getMatrixCols() : type->getMatrixRows();
|
||||
constexpr int scalarSize = 4;
|
||||
const int vectorAlignment = (strideVectorComponents <= 1) ? scalarSize
|
||||
: (strideVectorComponents == 2) ? 2 * scalarSize
|
||||
: 4 * scalarSize;
|
||||
return (vectorAlignment + 15) & ~15;
|
||||
}
|
||||
|
||||
GLint IsRowMajorOf(const glslang::TType* type) {
|
||||
if (type == nullptr || !type->isMatrix()) return 0;
|
||||
return type->getQualifier().layoutMatrix == glslang::ElmRowMajor ? 1 : 0;
|
||||
}
|
||||
|
||||
GLint MappedLocation(Int rawLocation) {
|
||||
// glslang parks "no location" at layoutLocationEnd; GL spells it -1.
|
||||
if (rawLocation < 0 || rawLocation >= static_cast<Int>(glslang::TQualifier::layoutLocationEnd)) return -1;
|
||||
return rawLocation;
|
||||
}
|
||||
|
||||
// ---- model construction --------------------------------------------------------
|
||||
|
||||
void BuildBlocks(ProgramObject& program, const glslang::TProgram& reflection, Model& model,
|
||||
Vector<BlockKind>& blockKind, Vector<Int>& blockInterfaceIndex) {
|
||||
const Int blockCount = const_cast<glslang::TProgram&>(reflection).getNumUniformBlocks();
|
||||
blockKind.assign(blockCount, BlockKind::Uniform);
|
||||
blockInterfaceIndex.assign(blockCount, -1);
|
||||
|
||||
for (Int tIndex = 0; tIndex < blockCount; ++tIndex) {
|
||||
const auto& block = const_cast<glslang::TProgram&>(reflection).getUniformBlock(tIndex);
|
||||
const BlockKind kind = ClassifyBlock(block);
|
||||
blockKind[tIndex] = kind;
|
||||
if (kind == BlockKind::AtomicCounter) {
|
||||
Resource resource;
|
||||
// GL_ATOMIC_COUNTER_BUFFER resources have no name (and GetProgramResource
|
||||
// Index/Name reject the interface outright, which is why this stays empty).
|
||||
resource.bufferBinding = AtomicCounterBlockBinding(block.name);
|
||||
resource.bufferDataSize = block.size;
|
||||
resource.stages = static_cast<Uint32>(block.stages);
|
||||
blockInterfaceIndex[tIndex] = static_cast<Int>(model.atomicCounterBuffers.size());
|
||||
model.atomicCounterBuffers.push_back(Move(resource));
|
||||
} else if (kind == BlockKind::Storage) {
|
||||
Resource resource;
|
||||
resource.name = block.name;
|
||||
// glslang reports the DECLARED binding for every instance of an arrayed
|
||||
// block; GL gives element k the binding base + k. That is only the initial
|
||||
// value: GL_BUFFER_BINDING must report the CURRENT binding, so a later
|
||||
// glShaderStorageBlockBinding wins over the declaration (GL 4.6 §7.6.2 -
|
||||
// exactly the same rule GL_UNIFORM_BLOCK follows through
|
||||
// GetUniformBlockBinding below).
|
||||
const GLint declared = block.getBinding();
|
||||
resource.bufferBinding = declared < 0 ? 0 : declared + BlockArrayElement(block.name);
|
||||
const Int rebound = program.GetShaderStorageBlockBindingOverride(block.name);
|
||||
if (rebound >= 0) resource.bufferBinding = static_cast<GLint>(rebound);
|
||||
resource.bufferDataSize = block.size;
|
||||
resource.stages = static_cast<Uint32>(block.stages);
|
||||
blockInterfaceIndex[tIndex] = static_cast<Int>(model.storageBlocks.size());
|
||||
model.storageBlocks.push_back(Move(resource));
|
||||
}
|
||||
}
|
||||
|
||||
// GL_UNIFORM_BLOCK keeps the index space glUniformBlockBinding and
|
||||
// glGetActiveUniformBlockiv already use, so an index handed out here is usable
|
||||
// with them (which is exactly what the CTS does).
|
||||
const Int glBlockCount = program.GetActiveUniformBlocksCount();
|
||||
for (Int glIndex = 0; glIndex < glBlockCount; ++glIndex) {
|
||||
Resource resource;
|
||||
resource.name = program.GetUniformBlockName(glIndex);
|
||||
resource.bufferBinding = static_cast<GLint>(program.GetUniformBlockBinding(glIndex));
|
||||
resource.bufferDataSize = static_cast<GLint>(program.GetUBOSizeAt(glIndex));
|
||||
const Int tIndex = program.TProgramBlockIndex(static_cast<Uint>(glIndex));
|
||||
if (tIndex >= 0 && tIndex < blockCount) {
|
||||
resource.stages =
|
||||
static_cast<Uint32>(const_cast<glslang::TProgram&>(reflection).getUniformBlock(tIndex).stages);
|
||||
}
|
||||
model.uniformBlocks.push_back(Move(resource));
|
||||
}
|
||||
}
|
||||
|
||||
void BuildUniformsAndBufferVariables(ProgramObject& program, const glslang::TProgram& reflection, Model& model,
|
||||
const Vector<BlockKind>& blockKind,
|
||||
const Vector<Int>& blockInterfaceIndex) {
|
||||
const Uint uniformCount = program.GetUniformCount();
|
||||
for (Uint glIndex = 0; glIndex < uniformCount; ++glIndex) {
|
||||
const Int tIndex = program.TProgramUniformIndex(glIndex);
|
||||
const auto& refl = const_cast<glslang::TProgram&>(reflection).getUniform(tIndex);
|
||||
const glslang::TType* type = refl.getType();
|
||||
const Int owner = refl.index;
|
||||
const BlockKind kind = (owner >= 0 && owner < static_cast<Int>(blockKind.size()))
|
||||
? blockKind[owner]
|
||||
: BlockKind::GlobalUbo;
|
||||
|
||||
Resource resource;
|
||||
resource.name = refl.name;
|
||||
resource.type = static_cast<GLenum>(refl.glDefineType);
|
||||
resource.arraySize = ArraySizeOf(type, refl.size);
|
||||
resource.stages = static_cast<Uint32>(refl.stages);
|
||||
|
||||
if (kind == BlockKind::Storage) {
|
||||
resource.blockIndex = blockInterfaceIndex[owner];
|
||||
resource.offset = refl.offset;
|
||||
resource.arrayStride = refl.arrayStride;
|
||||
resource.matrixStride = MatrixStrideOf(type);
|
||||
resource.isRowMajor = IsRowMajorOf(type);
|
||||
// GL requires 1 for a member that is not inside a top-level array (and for
|
||||
// the top-level array itself); glslang leaves 0/-1 there.
|
||||
resource.topLevelArraySize = refl.topLevelArraySize > 0 ? refl.topLevelArraySize : 1;
|
||||
resource.topLevelArrayStride = refl.topLevelArrayStride;
|
||||
model.bufferVariables.push_back(Move(resource));
|
||||
continue;
|
||||
}
|
||||
|
||||
if (kind == BlockKind::AtomicCounter) {
|
||||
// An atomic counter is a default-block uniform with no location and no
|
||||
// owning uniform block; what it does have is a buffer to point at.
|
||||
resource.type = GL_UNSIGNED_INT_ATOMIC_COUNTER;
|
||||
resource.blockIndex = -1;
|
||||
resource.offset = refl.offset;
|
||||
resource.arrayStride = refl.arrayStride;
|
||||
resource.matrixStride = 0;
|
||||
resource.atomicCounterBufferIndex = blockInterfaceIndex[owner];
|
||||
resource.location = -1;
|
||||
} else {
|
||||
resource.blockIndex = program.GetActiveUniformBlockIndex(glIndex);
|
||||
resource.offset = program.GetActiveUniformOffset(glIndex);
|
||||
resource.arrayStride = program.GetActiveUniformArrayStride(glIndex);
|
||||
resource.matrixStride = program.GetActiveUniformMatrixStride(glIndex);
|
||||
resource.isRowMajor = program.GetActiveUniformIsRowMajor(glIndex);
|
||||
// A member of a named uniform block has no location, whatever the
|
||||
// frontend's own location table says (it hands one out to every uniform
|
||||
// so glUniform* can address block members through the global UBO).
|
||||
resource.location =
|
||||
resource.blockIndex >= 0 ? -1 : program.GetUniformLocation(refl.name);
|
||||
}
|
||||
model.uniforms.push_back(Move(resource));
|
||||
}
|
||||
|
||||
// GL_ACTIVE_VARIABLES, both directions.
|
||||
for (SizeT i = 0; i < model.uniforms.size(); ++i) {
|
||||
const Resource& uniform = model.uniforms[i];
|
||||
if (uniform.atomicCounterBufferIndex >= 0 &&
|
||||
uniform.atomicCounterBufferIndex < static_cast<GLint>(model.atomicCounterBuffers.size())) {
|
||||
model.atomicCounterBuffers[uniform.atomicCounterBufferIndex].activeVariables.push_back(
|
||||
static_cast<GLuint>(i));
|
||||
}
|
||||
}
|
||||
for (SizeT blockIndex = 0; blockIndex < model.uniformBlocks.size(); ++blockIndex) {
|
||||
// Members of an arrayed block are reflected once, against instance [0].
|
||||
const Int owner = static_cast<Int>(program.GetUniformBlockMemberOwnerIndex(static_cast<Uint>(blockIndex)));
|
||||
for (SizeT i = 0; i < model.uniforms.size(); ++i) {
|
||||
if (model.uniforms[i].blockIndex == owner) {
|
||||
model.uniformBlocks[blockIndex].activeVariables.push_back(static_cast<GLuint>(i));
|
||||
}
|
||||
}
|
||||
}
|
||||
for (SizeT blockIndex = 0; blockIndex < model.storageBlocks.size(); ++blockIndex) {
|
||||
for (SizeT i = 0; i < model.bufferVariables.size(); ++i) {
|
||||
if (model.bufferVariables[i].blockIndex == static_cast<GLint>(blockIndex)) {
|
||||
model.storageBlocks[blockIndex].activeVariables.push_back(static_cast<GLuint>(i));
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
void BuildStageIO(ProgramObject& program, const glslang::TProgram& reflection, Model& model) {
|
||||
auto& mutableReflection = const_cast<glslang::TProgram&>(reflection);
|
||||
|
||||
const Int inputCount = mutableReflection.getNumPipeInputs();
|
||||
for (Int index = 0; index < inputCount; ++index) {
|
||||
const auto& refl = mutableReflection.getPipeInput(index);
|
||||
const glslang::TType* type = refl.getType();
|
||||
Resource resource;
|
||||
// The Vulkan-semantics parse reflects the vertex builtins under their SPIR-V
|
||||
// names; GL enumerates the GL spellings.
|
||||
const String& glName = ProgramObject::NormalizeBuiltinPipeInputName(refl.name);
|
||||
resource.name = WithArraySuffix(glName, type);
|
||||
resource.type = static_cast<GLenum>(refl.glDefineType);
|
||||
resource.arraySize = ArraySizeOf(type, refl.size);
|
||||
resource.location = program.GetAttributeLocation(refl.name);
|
||||
if (resource.location < 0) resource.location = MappedLocation(static_cast<Int>(refl.layoutLocation()));
|
||||
resource.isPerPatch = (type != nullptr && type->getQualifier().patch) ? 1 : 0;
|
||||
resource.stages = static_cast<Uint32>(refl.stages);
|
||||
model.programInputs.push_back(Move(resource));
|
||||
}
|
||||
|
||||
const Int outputCount = mutableReflection.getNumPipeOutputs();
|
||||
for (Int index = 0; index < outputCount; ++index) {
|
||||
const auto& refl = mutableReflection.getPipeOutput(index);
|
||||
const glslang::TType* type = refl.getType();
|
||||
Resource resource;
|
||||
resource.name = WithArraySuffix(refl.name, type);
|
||||
resource.type = static_cast<GLenum>(refl.glDefineType);
|
||||
resource.arraySize = ArraySizeOf(type, refl.size);
|
||||
resource.location = MappedLocation(program.GetFragmentDataLocation(refl.name.c_str()));
|
||||
if (resource.location < 0) {
|
||||
// A built-in output (gl_FragDepth, gl_SampleMask) and a non-fragment stage
|
||||
// output both have no location, and therefore no color index either.
|
||||
resource.locationIndex = -1;
|
||||
} else {
|
||||
resource.locationIndex = program.GetFragmentDataIndex(refl.name.c_str());
|
||||
// glBindFragDataLocationIndexed wins; otherwise the shader's
|
||||
// layout(index = N), which the frag-data maps never saw.
|
||||
if (resource.locationIndex == 0 && type != nullptr && type->getQualifier().hasIndex()) {
|
||||
resource.locationIndex = static_cast<GLint>(type->getQualifier().layoutIndex);
|
||||
}
|
||||
}
|
||||
resource.isPerPatch = (type != nullptr && type->getQualifier().patch) ? 1 : 0;
|
||||
resource.stages = static_cast<Uint32>(refl.stages);
|
||||
model.programOutputs.push_back(Move(resource));
|
||||
}
|
||||
}
|
||||
|
||||
void BuildXfb(ProgramObject& program, Model& model) {
|
||||
const auto& requested = program.GetTransformFeedbackInterfaceNames();
|
||||
const auto& captured = program.GetTransformFeedbackVaryings();
|
||||
for (const String& name : requested) {
|
||||
Resource resource;
|
||||
resource.name = name;
|
||||
// ARB_transform_feedback3's layout controls are enumerated as resources of
|
||||
// type NONE: gl_NextBuffer with array size 0, gl_SkipComponentsN with N.
|
||||
if (name == "gl_NextBuffer") {
|
||||
resource.type = GL_NONE;
|
||||
resource.arraySize = 0;
|
||||
} else if (name.size() == 18 && name.compare(0, 17, "gl_SkipComponents") == 0 && name[17] >= '1' &&
|
||||
name[17] <= '4') {
|
||||
resource.type = GL_NONE;
|
||||
resource.arraySize = name[17] - '0';
|
||||
} else {
|
||||
resource.type = GL_NONE;
|
||||
resource.arraySize = 1;
|
||||
for (const auto& varying : captured) {
|
||||
if (varying.name != name) continue;
|
||||
resource.type = varying.type;
|
||||
resource.arraySize = varying.size < 1 ? 1 : varying.size;
|
||||
resource.offset = static_cast<GLint>(varying.offsetBytes);
|
||||
resource.xfbBufferIndex = static_cast<GLint>(varying.bufferIndex);
|
||||
break;
|
||||
}
|
||||
}
|
||||
model.xfbVaryings.push_back(Move(resource));
|
||||
}
|
||||
}
|
||||
|
||||
Model BuildModel(ProgramObject& program) {
|
||||
Model model;
|
||||
if (!program.GetLinkStatus()) return model;
|
||||
const glslang::TProgram* reflection = program.GetReflection();
|
||||
if (reflection == nullptr) return model;
|
||||
model.valid = true;
|
||||
|
||||
Vector<BlockKind> blockKind;
|
||||
Vector<Int> blockInterfaceIndex;
|
||||
BuildBlocks(program, *reflection, model, blockKind, blockInterfaceIndex);
|
||||
BuildUniformsAndBufferVariables(program, *reflection, model, blockKind, blockInterfaceIndex);
|
||||
BuildStageIO(program, *reflection, model);
|
||||
BuildXfb(program, model);
|
||||
return model;
|
||||
}
|
||||
|
||||
const ResourceList& Select(const Model& model, GLenum programInterface) {
|
||||
switch (programInterface) {
|
||||
case GL_UNIFORM:
|
||||
return model.uniforms;
|
||||
case GL_UNIFORM_BLOCK:
|
||||
return model.uniformBlocks;
|
||||
case GL_ATOMIC_COUNTER_BUFFER:
|
||||
return model.atomicCounterBuffers;
|
||||
case GL_BUFFER_VARIABLE:
|
||||
return model.bufferVariables;
|
||||
case GL_SHADER_STORAGE_BLOCK:
|
||||
return model.storageBlocks;
|
||||
case GL_PROGRAM_INPUT:
|
||||
return model.programInputs;
|
||||
case GL_PROGRAM_OUTPUT:
|
||||
return model.programOutputs;
|
||||
case GL_TRANSFORM_FEEDBACK_VARYING:
|
||||
return model.xfbVaryings;
|
||||
default:
|
||||
// The subroutine interfaces are accepted by the API but nothing can populate
|
||||
// them: glslang refuses `subroutine` when generating SPIR-V, so a program
|
||||
// using one never links. Zero active resources is the honest answer.
|
||||
return EmptyList();
|
||||
}
|
||||
}
|
||||
} // namespace
|
||||
|
||||
Bool IsInterfaceEnum(GLenum programInterface) {
|
||||
switch (programInterface) {
|
||||
case GL_UNIFORM:
|
||||
case GL_UNIFORM_BLOCK:
|
||||
case GL_PROGRAM_INPUT:
|
||||
case GL_PROGRAM_OUTPUT:
|
||||
case GL_BUFFER_VARIABLE:
|
||||
case GL_SHADER_STORAGE_BLOCK:
|
||||
case GL_ATOMIC_COUNTER_BUFFER:
|
||||
case GL_TRANSFORM_FEEDBACK_VARYING:
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER:
|
||||
case GL_VERTEX_SUBROUTINE:
|
||||
case GL_TESS_CONTROL_SUBROUTINE:
|
||||
case GL_TESS_EVALUATION_SUBROUTINE:
|
||||
case GL_GEOMETRY_SUBROUTINE:
|
||||
case GL_FRAGMENT_SUBROUTINE:
|
||||
case GL_COMPUTE_SUBROUTINE:
|
||||
case GL_VERTEX_SUBROUTINE_UNIFORM:
|
||||
case GL_TESS_CONTROL_SUBROUTINE_UNIFORM:
|
||||
case GL_TESS_EVALUATION_SUBROUTINE_UNIFORM:
|
||||
case GL_GEOMETRY_SUBROUTINE_UNIFORM:
|
||||
case GL_FRAGMENT_SUBROUTINE_UNIFORM:
|
||||
case GL_COMPUTE_SUBROUTINE_UNIFORM:
|
||||
return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
Bool IsNamedInterface(GLenum programInterface) {
|
||||
// GL 4.6 §7.3.1.2: the two buffer interfaces have no resource names, and asking for
|
||||
// one is INVALID_ENUM (deliberately asymmetric with GetProgramInterfaceiv, which
|
||||
// does count them).
|
||||
return IsInterfaceEnum(programInterface) && programInterface != GL_ATOMIC_COUNTER_BUFFER &&
|
||||
programInterface != GL_TRANSFORM_FEEDBACK_BUFFER;
|
||||
}
|
||||
|
||||
Bool InterfaceHasLocations(GLenum programInterface) {
|
||||
switch (programInterface) {
|
||||
case GL_UNIFORM:
|
||||
case GL_PROGRAM_INPUT:
|
||||
case GL_PROGRAM_OUTPUT:
|
||||
case GL_VERTEX_SUBROUTINE_UNIFORM:
|
||||
case GL_TESS_CONTROL_SUBROUTINE_UNIFORM:
|
||||
case GL_TESS_EVALUATION_SUBROUTINE_UNIFORM:
|
||||
case GL_GEOMETRY_SUBROUTINE_UNIFORM:
|
||||
case GL_FRAGMENT_SUBROUTINE_UNIFORM:
|
||||
case GL_COMPUTE_SUBROUTINE_UNIFORM:
|
||||
return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
Bool IsResourceProp(GLenum prop) {
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
case GL_TYPE:
|
||||
case GL_ARRAY_SIZE:
|
||||
case GL_OFFSET:
|
||||
case GL_BLOCK_INDEX:
|
||||
case GL_ARRAY_STRIDE:
|
||||
case GL_MATRIX_STRIDE:
|
||||
case GL_IS_ROW_MAJOR:
|
||||
case GL_ATOMIC_COUNTER_BUFFER_INDEX:
|
||||
case GL_BUFFER_BINDING:
|
||||
case GL_BUFFER_DATA_SIZE:
|
||||
case GL_NUM_ACTIVE_VARIABLES:
|
||||
case GL_ACTIVE_VARIABLES:
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
case GL_TOP_LEVEL_ARRAY_SIZE:
|
||||
case GL_TOP_LEVEL_ARRAY_STRIDE:
|
||||
case GL_LOCATION:
|
||||
case GL_LOCATION_INDEX:
|
||||
case GL_IS_PER_PATCH:
|
||||
case GL_LOCATION_COMPONENT:
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER_INDEX:
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER_STRIDE:
|
||||
case GL_NUM_COMPATIBLE_SUBROUTINES:
|
||||
case GL_COMPATIBLE_SUBROUTINES:
|
||||
return true;
|
||||
default:
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
// GL 4.6 Table 7.2, transcribed row by row: which interfaces each property applies to.
|
||||
// Too tight a table turns a currently-answered prop into a fresh INVALID_OPERATION, so
|
||||
// the rows below are deliberately no narrower than the spec's.
|
||||
Bool InterfaceSupportsProp(GLenum programInterface, GLenum prop) {
|
||||
const Bool isSubroutine =
|
||||
programInterface == GL_VERTEX_SUBROUTINE || programInterface == GL_TESS_CONTROL_SUBROUTINE ||
|
||||
programInterface == GL_TESS_EVALUATION_SUBROUTINE || programInterface == GL_GEOMETRY_SUBROUTINE ||
|
||||
programInterface == GL_FRAGMENT_SUBROUTINE || programInterface == GL_COMPUTE_SUBROUTINE;
|
||||
const Bool isSubroutineUniform =
|
||||
programInterface == GL_VERTEX_SUBROUTINE_UNIFORM ||
|
||||
programInterface == GL_TESS_CONTROL_SUBROUTINE_UNIFORM ||
|
||||
programInterface == GL_TESS_EVALUATION_SUBROUTINE_UNIFORM ||
|
||||
programInterface == GL_GEOMETRY_SUBROUTINE_UNIFORM ||
|
||||
programInterface == GL_FRAGMENT_SUBROUTINE_UNIFORM || programInterface == GL_COMPUTE_SUBROUTINE_UNIFORM;
|
||||
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
return programInterface != GL_ATOMIC_COUNTER_BUFFER && programInterface != GL_TRANSFORM_FEEDBACK_BUFFER;
|
||||
case GL_TYPE:
|
||||
case GL_ARRAY_SIZE:
|
||||
return programInterface == GL_UNIFORM || programInterface == GL_PROGRAM_INPUT ||
|
||||
programInterface == GL_PROGRAM_OUTPUT || programInterface == GL_BUFFER_VARIABLE ||
|
||||
programInterface == GL_TRANSFORM_FEEDBACK_VARYING ||
|
||||
(prop == GL_ARRAY_SIZE && isSubroutineUniform);
|
||||
case GL_OFFSET:
|
||||
return programInterface == GL_UNIFORM || programInterface == GL_BUFFER_VARIABLE ||
|
||||
programInterface == GL_TRANSFORM_FEEDBACK_VARYING;
|
||||
case GL_BLOCK_INDEX:
|
||||
case GL_ARRAY_STRIDE:
|
||||
case GL_MATRIX_STRIDE:
|
||||
case GL_IS_ROW_MAJOR:
|
||||
return programInterface == GL_UNIFORM || programInterface == GL_BUFFER_VARIABLE;
|
||||
case GL_ATOMIC_COUNTER_BUFFER_INDEX:
|
||||
return programInterface == GL_UNIFORM;
|
||||
case GL_BUFFER_BINDING:
|
||||
case GL_NUM_ACTIVE_VARIABLES:
|
||||
case GL_ACTIVE_VARIABLES:
|
||||
// Table 7.2 lists GL_TRANSFORM_FEEDBACK_BUFFER on these three rows too. This
|
||||
// implementation enumerates no resources on that interface, so the query still
|
||||
// ends in an error - but INVALID_VALUE for the out-of-range index, not the
|
||||
// INVALID_OPERATION a narrower table would invent.
|
||||
return programInterface == GL_UNIFORM_BLOCK || programInterface == GL_ATOMIC_COUNTER_BUFFER ||
|
||||
programInterface == GL_SHADER_STORAGE_BLOCK ||
|
||||
programInterface == GL_TRANSFORM_FEEDBACK_BUFFER;
|
||||
case GL_BUFFER_DATA_SIZE:
|
||||
return programInterface == GL_UNIFORM_BLOCK || programInterface == GL_ATOMIC_COUNTER_BUFFER ||
|
||||
programInterface == GL_SHADER_STORAGE_BLOCK;
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
return programInterface == GL_UNIFORM || programInterface == GL_UNIFORM_BLOCK ||
|
||||
programInterface == GL_ATOMIC_COUNTER_BUFFER || programInterface == GL_BUFFER_VARIABLE ||
|
||||
programInterface == GL_SHADER_STORAGE_BLOCK || programInterface == GL_PROGRAM_INPUT ||
|
||||
programInterface == GL_PROGRAM_OUTPUT || isSubroutineUniform;
|
||||
case GL_TOP_LEVEL_ARRAY_SIZE:
|
||||
case GL_TOP_LEVEL_ARRAY_STRIDE:
|
||||
return programInterface == GL_BUFFER_VARIABLE;
|
||||
case GL_LOCATION:
|
||||
return InterfaceHasLocations(programInterface);
|
||||
case GL_LOCATION_INDEX:
|
||||
return programInterface == GL_PROGRAM_OUTPUT;
|
||||
case GL_IS_PER_PATCH:
|
||||
case GL_LOCATION_COMPONENT:
|
||||
return programInterface == GL_PROGRAM_INPUT || programInterface == GL_PROGRAM_OUTPUT;
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER_INDEX:
|
||||
return programInterface == GL_TRANSFORM_FEEDBACK_VARYING;
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER_STRIDE:
|
||||
return programInterface == GL_TRANSFORM_FEEDBACK_BUFFER;
|
||||
case GL_NUM_COMPATIBLE_SUBROUTINES:
|
||||
case GL_COMPATIBLE_SUBROUTINES:
|
||||
return isSubroutineUniform;
|
||||
default:
|
||||
(void)isSubroutine;
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
Int GetActiveResourceCount(ProgramObject& program, GLenum programInterface) {
|
||||
const Model model = BuildModel(program);
|
||||
return static_cast<Int>(Select(model, programInterface).size());
|
||||
}
|
||||
|
||||
Int GetMaxNameLength(ProgramObject& program, GLenum programInterface) {
|
||||
if (!IsNamedInterface(programInterface)) return 0;
|
||||
const Model model = BuildModel(program);
|
||||
SizeT longest = 0;
|
||||
for (const Resource& resource : Select(model, programInterface)) {
|
||||
longest = std::max(longest, resource.name.length() + 1);
|
||||
}
|
||||
return static_cast<Int>(longest);
|
||||
}
|
||||
|
||||
Int GetMaxNumActiveVariables(ProgramObject& program, GLenum programInterface) {
|
||||
const Model model = BuildModel(program);
|
||||
SizeT longest = 0;
|
||||
for (const Resource& resource : Select(model, programInterface)) {
|
||||
longest = std::max(longest, resource.activeVariables.size());
|
||||
}
|
||||
return static_cast<Int>(longest);
|
||||
}
|
||||
|
||||
GLuint GetResourceIndex(ProgramObject& program, GLenum programInterface, const char* name) {
|
||||
if (name == nullptr || name[0] == '\0') return GL_INVALID_INDEX;
|
||||
const Model model = BuildModel(program);
|
||||
const ResourceList& resources = Select(model, programInterface);
|
||||
const String query = name;
|
||||
// The layout controls of an interleaved capture are enumerable but not addressable
|
||||
// by name (GL 4.6 §7.3.1.1).
|
||||
if (programInterface == GL_TRANSFORM_FEEDBACK_VARYING &&
|
||||
(query == "gl_NextBuffer" ||
|
||||
(query.size() == 18 && query.compare(0, 17, "gl_SkipComponents") == 0))) {
|
||||
return GL_INVALID_INDEX;
|
||||
}
|
||||
for (SizeT i = 0; i < resources.size(); ++i) {
|
||||
if (NamesMatch(resources[i].name, query)) return static_cast<GLuint>(i);
|
||||
}
|
||||
return GL_INVALID_INDEX;
|
||||
}
|
||||
|
||||
Bool GetResourceName(ProgramObject& program, GLenum programInterface, GLuint index, String& outName) {
|
||||
const Model model = BuildModel(program);
|
||||
const ResourceList& resources = Select(model, programInterface);
|
||||
if (index >= resources.size()) return false;
|
||||
outName = resources[index].name;
|
||||
return true;
|
||||
}
|
||||
|
||||
Bool GetResourceProp(ProgramObject& program, GLenum programInterface, GLuint index, GLenum prop,
|
||||
Vector<GLint>& outValues) {
|
||||
const Model model = BuildModel(program);
|
||||
const ResourceList& resources = Select(model, programInterface);
|
||||
if (index >= resources.size()) return false;
|
||||
const Resource& resource = resources[index];
|
||||
|
||||
const auto referencedBy = [&resource](EShLanguage stage) {
|
||||
return (resource.stages & static_cast<Uint32>(1u << stage)) != 0 ? GL_TRUE : GL_FALSE;
|
||||
};
|
||||
|
||||
switch (prop) {
|
||||
case GL_NAME_LENGTH:
|
||||
outValues.push_back(static_cast<GLint>(resource.name.length() + 1));
|
||||
break;
|
||||
case GL_TYPE:
|
||||
outValues.push_back(static_cast<GLint>(resource.type));
|
||||
break;
|
||||
case GL_ARRAY_SIZE:
|
||||
outValues.push_back(resource.arraySize);
|
||||
break;
|
||||
case GL_OFFSET:
|
||||
outValues.push_back(resource.offset);
|
||||
break;
|
||||
case GL_BLOCK_INDEX:
|
||||
outValues.push_back(resource.blockIndex);
|
||||
break;
|
||||
case GL_ARRAY_STRIDE:
|
||||
outValues.push_back(resource.arrayStride);
|
||||
break;
|
||||
case GL_MATRIX_STRIDE:
|
||||
outValues.push_back(resource.matrixStride);
|
||||
break;
|
||||
case GL_IS_ROW_MAJOR:
|
||||
outValues.push_back(resource.isRowMajor);
|
||||
break;
|
||||
case GL_ATOMIC_COUNTER_BUFFER_INDEX:
|
||||
outValues.push_back(resource.atomicCounterBufferIndex);
|
||||
break;
|
||||
case GL_BUFFER_BINDING:
|
||||
outValues.push_back(resource.bufferBinding);
|
||||
break;
|
||||
case GL_BUFFER_DATA_SIZE:
|
||||
outValues.push_back(resource.bufferDataSize);
|
||||
break;
|
||||
case GL_NUM_ACTIVE_VARIABLES:
|
||||
outValues.push_back(static_cast<GLint>(resource.activeVariables.size()));
|
||||
break;
|
||||
case GL_ACTIVE_VARIABLES:
|
||||
for (const GLuint variable : resource.activeVariables) outValues.push_back(static_cast<GLint>(variable));
|
||||
break;
|
||||
case GL_REFERENCED_BY_VERTEX_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangVertex));
|
||||
break;
|
||||
case GL_REFERENCED_BY_TESS_CONTROL_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangTessControl));
|
||||
break;
|
||||
case GL_REFERENCED_BY_TESS_EVALUATION_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangTessEvaluation));
|
||||
break;
|
||||
case GL_REFERENCED_BY_GEOMETRY_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangGeometry));
|
||||
break;
|
||||
case GL_REFERENCED_BY_FRAGMENT_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangFragment));
|
||||
break;
|
||||
case GL_REFERENCED_BY_COMPUTE_SHADER:
|
||||
outValues.push_back(referencedBy(EShLangCompute));
|
||||
break;
|
||||
case GL_TOP_LEVEL_ARRAY_SIZE:
|
||||
outValues.push_back(resource.topLevelArraySize);
|
||||
break;
|
||||
case GL_TOP_LEVEL_ARRAY_STRIDE:
|
||||
outValues.push_back(resource.topLevelArrayStride);
|
||||
break;
|
||||
case GL_LOCATION:
|
||||
outValues.push_back(resource.location);
|
||||
break;
|
||||
case GL_LOCATION_INDEX:
|
||||
outValues.push_back(resource.locationIndex);
|
||||
break;
|
||||
case GL_IS_PER_PATCH:
|
||||
outValues.push_back(resource.isPerPatch);
|
||||
break;
|
||||
case GL_LOCATION_COMPONENT:
|
||||
outValues.push_back(0);
|
||||
break;
|
||||
case GL_TRANSFORM_FEEDBACK_BUFFER_INDEX:
|
||||
outValues.push_back(resource.xfbBufferIndex);
|
||||
break;
|
||||
default:
|
||||
outValues.push_back(0);
|
||||
break;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
GLint GetResourceLocation(ProgramObject& program, GLenum programInterface, const char* name) {
|
||||
if (name == nullptr || name[0] == '\0') return -1;
|
||||
const String query = name;
|
||||
|
||||
String base;
|
||||
Uint element = 0;
|
||||
Bool malformed = false;
|
||||
const Bool subscripted = SplitTrailingSubscript(query, base, element, malformed);
|
||||
if (malformed) return -1;
|
||||
|
||||
const Model model = BuildModel(program);
|
||||
const ResourceList& resources = Select(model, programInterface);
|
||||
for (const Resource& resource : resources) {
|
||||
if (NamesMatch(resource.name, query)) return resource.location;
|
||||
}
|
||||
if (!subscripted || element == 0) return -1;
|
||||
// "d[1]" addresses the second element of an array resource enumerated as "d[0]".
|
||||
for (const Resource& resource : resources) {
|
||||
if (!NamesMatch(resource.name, base)) continue;
|
||||
if (resource.location < 0 || static_cast<GLint>(element) >= resource.arraySize) return -1;
|
||||
return resource.location + static_cast<GLint>(element);
|
||||
}
|
||||
return -1;
|
||||
}
|
||||
|
||||
GLint GetResourceLocationIndex(ProgramObject& program, GLenum programInterface, const char* name) {
|
||||
if (programInterface != GL_PROGRAM_OUTPUT || name == nullptr || name[0] == '\0') return -1;
|
||||
const String query = name;
|
||||
String base;
|
||||
Uint element = 0;
|
||||
Bool malformed = false;
|
||||
const Bool subscripted = SplitTrailingSubscript(query, base, element, malformed);
|
||||
if (malformed) return -1;
|
||||
|
||||
const Model model = BuildModel(program);
|
||||
for (const Resource& resource : model.programOutputs) {
|
||||
if (NamesMatch(resource.name, query)) return resource.locationIndex;
|
||||
}
|
||||
if (!subscripted) return -1;
|
||||
for (const Resource& resource : model.programOutputs) {
|
||||
if (!NamesMatch(resource.name, base)) continue;
|
||||
if (resource.location < 0 || static_cast<GLint>(element) >= resource.arraySize) return -1;
|
||||
return resource.locationIndex;
|
||||
}
|
||||
return -1;
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl::ProgramInterface
|
||||
@@ -0,0 +1,66 @@
|
||||
// MobileGL - MobileGL/MG_Impl/GLImpl/Program/ProgramInterface.h
|
||||
// Copyright (c) 2025-2026 MobileGL-Dev
|
||||
// Licensed under the GNU Lesser General Public License v3.0:
|
||||
// https://www.gnu.org/licenses/gpl-3.0.txt
|
||||
// https://www.gnu.org/licenses/lgpl-3.0.txt
|
||||
// SPDX-License-Identifier: LGPL-3.0-only
|
||||
// End of Source File Header
|
||||
|
||||
#pragma once
|
||||
#include <Includes.h>
|
||||
|
||||
namespace MobileGL::MG_State::GLState {
|
||||
class ProgramObject;
|
||||
}
|
||||
|
||||
// The GL program interface (ARB_program_interface_query / GL 4.3 §7.3.1) as a frontend
|
||||
// resource model.
|
||||
//
|
||||
// WHY IT IS HERE AND NOT IN A BACKEND. glGetProgramResource* describes the program the
|
||||
// APPLICATION wrote, in the application's namespace. Neither backend program is in that
|
||||
// namespace: DirectGLES compiles SPIRV-Cross-generated ESSL where default-block uniforms
|
||||
// live inside the synthesized MGL_GLOBAL_UBO (so a GL_UNIFORM location query against it is
|
||||
// structurally -1) and stage in/out names are rewritten; DirectVulkan has no GL-level
|
||||
// reflection at all and can only re-derive a partial, diverging copy. The one authoritative
|
||||
// source is the frontend glslang reflection a link already produced, which is the same
|
||||
// place glGetActiveUniform answers from. This layer generalizes that rule to every
|
||||
// interface, so the six entry points never consult gBackendFunctionsTable.
|
||||
//
|
||||
// NAMING RULES LIVE HERE, NOT IN ProgramObject. The interface query spells resources
|
||||
// differently from glGetActiveUniform / glGetActiveAttrib (an array is "name[0]", a lookup
|
||||
// accepts both "name" and "name[0]", a subscript must be a strict decimal). Those two
|
||||
// getters are what GL30-33 exercises and they must not move, so every normalization is
|
||||
// applied on the way in and out of THIS file.
|
||||
namespace MobileGL::MG_Impl::GLImpl::ProgramInterface {
|
||||
using ProgramObject = MG_State::GLState::ProgramObject;
|
||||
|
||||
// <programInterface> is one of the GL 4.6 Table 7.1 interfaces.
|
||||
Bool IsInterfaceEnum(GLenum programInterface);
|
||||
// Interfaces whose resources have names (everything except GL_ATOMIC_COUNTER_BUFFER).
|
||||
Bool IsNamedInterface(GLenum programInterface);
|
||||
// <prop> is a property token GetProgramResourceiv knows at all (else GL_INVALID_ENUM).
|
||||
Bool IsResourceProp(GLenum prop);
|
||||
// <prop> applies to <programInterface> (else GL_INVALID_OPERATION).
|
||||
Bool InterfaceSupportsProp(GLenum programInterface, GLenum prop);
|
||||
// Interfaces GetProgramResourceLocation accepts (else GL_INVALID_ENUM).
|
||||
Bool InterfaceHasLocations(GLenum programInterface);
|
||||
|
||||
// GL_ACTIVE_RESOURCES / GL_MAX_NAME_LENGTH / GL_MAX_NUM_ACTIVE_VARIABLES. All three
|
||||
// report zero for an interface this implementation cannot enumerate and for a program
|
||||
// that has not linked successfully - which is what the spec requires of a program with
|
||||
// no active resources.
|
||||
Int GetActiveResourceCount(ProgramObject& program, GLenum programInterface);
|
||||
Int GetMaxNameLength(ProgramObject& program, GLenum programInterface);
|
||||
Int GetMaxNumActiveVariables(ProgramObject& program, GLenum programInterface);
|
||||
|
||||
// GL_INVALID_INDEX when <name> names no active resource of the interface.
|
||||
GLuint GetResourceIndex(ProgramObject& program, GLenum programInterface, const char* name);
|
||||
// False when <index> is out of range for the interface (the caller raises INVALID_VALUE).
|
||||
Bool GetResourceName(ProgramObject& program, GLenum programInterface, GLuint index, String& outName);
|
||||
// Appends the value(s) of <prop> for the resource; GL_ACTIVE_VARIABLES appends several.
|
||||
// False when <index> is out of range.
|
||||
Bool GetResourceProp(ProgramObject& program, GLenum programInterface, GLuint index, GLenum prop,
|
||||
Vector<GLint>& outValues);
|
||||
GLint GetResourceLocation(ProgramObject& program, GLenum programInterface, const char* name);
|
||||
GLint GetResourceLocationIndex(ProgramObject& program, GLenum programInterface, const char* name);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl::ProgramInterface
|
||||
@@ -7,6 +7,7 @@
|
||||
// End of Source File Header
|
||||
|
||||
#include "GL_Query.h"
|
||||
#include "../Getter/GL_Getter.h"
|
||||
#include <Config.h>
|
||||
#include <MG_Backend/BackendObjects.h>
|
||||
#include <MG_State/GLState/Core.h>
|
||||
@@ -22,11 +23,16 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
struct QueryObject {
|
||||
GLuint id = 0;
|
||||
GLenum target = 0; // 0 = gen'd but never used with BeginQuery/QueryCounter
|
||||
// glCreateQueries makes the object outright; glGenQueries only reserves the name,
|
||||
// and the object appears when the name is first used (GL 4.6 core 4.2.1).
|
||||
Bool created = false;
|
||||
MG_Backend::BackendQueryHandle backendHandle = nullptr;
|
||||
Bool active = false;
|
||||
Bool ended = false;
|
||||
Bool resultCached = false;
|
||||
Uint64 cachedResult = 0;
|
||||
// Transform feedback primitive counter at BeginQuery time.
|
||||
Uint64 counterSnapshot = 0;
|
||||
};
|
||||
|
||||
// Query calls may arrive from any thread (launchers migrate the context
|
||||
@@ -41,6 +47,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GLuint g_nextQueryId = 1;
|
||||
// Id of the query currently active on GL_TIME_ELAPSED (0 = none).
|
||||
GLuint g_activeTimeElapsedQueryId = 0;
|
||||
// Ids of the queries active on the transform feedback targets (0 = none).
|
||||
GLuint g_activePrimitivesWrittenQueryId = 0;
|
||||
GLuint g_activePrimitivesGeneratedQueryId = 0;
|
||||
// Id of the query active on GL_SAMPLES_PASSED (0 = none).
|
||||
GLuint g_activeSamplesPassedQueryId = 0;
|
||||
|
||||
Bool TimerQueryDisabled() {
|
||||
return MG_Config::Features.DisableTimerQuery;
|
||||
@@ -51,6 +62,34 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", function, message));
|
||||
}
|
||||
|
||||
// The by-buffer query getters write the result into a buffer object instead of client
|
||||
// memory. Everything about the query itself - the name, whether it is still active, the
|
||||
// parameter - is checked by GetQueryObjectValue; what is left is the destination, so this
|
||||
// resolves the buffer and confirms the write lands inside it (GL 4.6 core 4.2.1).
|
||||
Bool ResolveQueryResultDestination(GLuint buffer, GLintptr offset, SizeT writeSize, const char* function,
|
||||
SharedPtr<MG_State::GLState::BufferObject>& outBuffer) {
|
||||
if (offset < 0) {
|
||||
RecordQueryError(ErrorCode::InvalidValue, function, "Offset cannot be negative.");
|
||||
return false;
|
||||
}
|
||||
if (!MG_State::pGLContext->ValidateBufferObject(buffer)) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, function, "Buffer object does not exist.");
|
||||
return false;
|
||||
}
|
||||
auto bufferObject = MG_State::pGLContext->GetBufferObject(buffer);
|
||||
if (!bufferObject) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, function, "Buffer object does not exist.");
|
||||
return false;
|
||||
}
|
||||
if (static_cast<SizeT>(offset) + writeSize > bufferObject->GetSize()) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, function,
|
||||
"The query result does not fit in the buffer object at this offset.");
|
||||
return false;
|
||||
}
|
||||
outBuffer = bufferObject;
|
||||
return true;
|
||||
}
|
||||
|
||||
// Callers must hold g_queryObjectsMutex.
|
||||
QueryObject* FindQueryObjectLocked(GLuint id) {
|
||||
const auto it = g_liveQueryObjects.find(id);
|
||||
@@ -84,8 +123,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
// Shared GetQueryObject* implementation. Returns false when an error
|
||||
// was recorded and no value should be written back.
|
||||
Bool GetQueryObjectValue(GLuint id, GLenum pname, const char* function, Uint64& outValue) {
|
||||
// was recorded and no value should be written back. `outValueProduced`, when given,
|
||||
// additionally distinguishes "succeeded with a value" from "succeeded but the result is not
|
||||
// ready" - the GL_QUERY_RESULT_NO_WAIT case, where GL_ARB_query_buffer_object says the
|
||||
// destination is left alone rather than written with a placeholder.
|
||||
Bool GetQueryObjectValue(GLuint id, GLenum pname, const char* function, Uint64& outValue,
|
||||
Bool* outValueProduced = nullptr) {
|
||||
if (outValueProduced) *outValueProduced = true;
|
||||
const std::lock_guard<std::mutex> lock(g_queryObjectsMutex);
|
||||
auto* queryObject = FindQueryObjectLocked(id);
|
||||
if (!queryObject) {
|
||||
@@ -98,6 +142,41 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
switch (pname) {
|
||||
case GL_QUERY_TARGET:
|
||||
// The target a query was begun with (or created with, for glCreateQueries) - state
|
||||
// the object has carried all along, GL 4.6 core table 23.35.
|
||||
outValue = queryObject->target;
|
||||
return true;
|
||||
case GL_QUERY_RESULT_NO_WAIT: {
|
||||
if (queryObject->resultCached) {
|
||||
outValue = queryObject->cachedResult;
|
||||
return true;
|
||||
}
|
||||
Uint64 result = 0;
|
||||
const auto getQueryResult64 = MG_Backend::gBackendFunctionsTable.GL.GetQueryResult64;
|
||||
if (queryObject->backendHandle && getQueryResult64 &&
|
||||
!getQueryResult64(queryObject->backendHandle, /*wait=*/false, &result)) {
|
||||
// Not ready. The whole point of the no-wait form is that the caller's
|
||||
// destination keeps whatever it already held.
|
||||
if (outValueProduced) *outValueProduced = false;
|
||||
outValue = 0;
|
||||
return true;
|
||||
}
|
||||
if (queryObject->target == GL_ANY_SAMPLES_PASSED ||
|
||||
queryObject->target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) {
|
||||
result = result != 0 ? 1 : 0;
|
||||
}
|
||||
if (queryObject->backendHandle) {
|
||||
if (const auto deleteBackendQuery = MG_Backend::gBackendFunctionsTable.GL.DeleteBackendQuery) {
|
||||
deleteBackendQuery(queryObject->backendHandle);
|
||||
}
|
||||
queryObject->backendHandle = nullptr;
|
||||
}
|
||||
queryObject->cachedResult = result;
|
||||
queryObject->resultCached = true;
|
||||
outValue = result;
|
||||
return true;
|
||||
}
|
||||
case GL_QUERY_RESULT_AVAILABLE: {
|
||||
if (queryObject->resultCached || !queryObject->backendHandle) {
|
||||
outValue = 1;
|
||||
@@ -126,6 +205,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
outValue = 0;
|
||||
return true;
|
||||
}
|
||||
// ANY_SAMPLES_PASSED* report a boolean.
|
||||
if (queryObject->target == GL_ANY_SAMPLES_PASSED ||
|
||||
queryObject->target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) {
|
||||
result = result != 0 ? 1 : 0;
|
||||
}
|
||||
// Final value produced (or no GetQueryResult64 hook: the
|
||||
// query degrades to a zero result); the backend handle is
|
||||
// consumed and the value cached for later reads.
|
||||
@@ -144,6 +228,21 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
template <typename T>
|
||||
void GetQueryBufferObject(GLuint id, GLuint buffer, GLenum pname, GLintptr offset, const char* function) {
|
||||
SharedPtr<MG_State::GLState::BufferObject> bufferObject;
|
||||
if (!ResolveQueryResultDestination(buffer, offset, sizeof(T), function, bufferObject)) return;
|
||||
|
||||
Uint64 value = 0;
|
||||
Bool valueProduced = false;
|
||||
if (!GetQueryObjectValue(id, pname, function, value, &valueProduced)) return;
|
||||
// GL_QUERY_RESULT_NO_WAIT on a result that has not landed writes nothing at all.
|
||||
if (!valueProduced) return;
|
||||
|
||||
const T narrowed = static_cast<T>(value);
|
||||
bufferObject->UploadSubData({const_cast<T*>(&narrowed), sizeof(T)}, static_cast<SizeT>(offset));
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void GenQueries(GLsizei n, GLuint* ids) {
|
||||
@@ -164,6 +263,41 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
}
|
||||
|
||||
// glCreateQueries differs from glGenQueries in creating the objects outright, with their
|
||||
// target already fixed and the rest of their state at the defaults (GL 4.6 core 4.2.1).
|
||||
void CreateQueries(GLenum target, GLsizei n, GLuint* ids) {
|
||||
switch (target) {
|
||||
case GL_SAMPLES_PASSED:
|
||||
case GL_ANY_SAMPLES_PASSED:
|
||||
case GL_ANY_SAMPLES_PASSED_CONSERVATIVE:
|
||||
case GL_TIME_ELAPSED:
|
||||
case GL_TIMESTAMP:
|
||||
case GL_PRIMITIVES_GENERATED:
|
||||
case GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN:
|
||||
break;
|
||||
default:
|
||||
RecordQueryError(ErrorCode::InvalidEnum, __FUNCTION__, "Query target is not accepted.");
|
||||
return;
|
||||
}
|
||||
if (n < 0) {
|
||||
RecordQueryError(ErrorCode::InvalidValue, __FUNCTION__, "n cannot be negative.");
|
||||
return;
|
||||
}
|
||||
if (!ids) {
|
||||
return;
|
||||
}
|
||||
const std::lock_guard<std::mutex> lock(g_queryObjectsMutex);
|
||||
for (GLsizei i = 0; i < n; ++i) {
|
||||
const GLuint id = g_nextQueryId++;
|
||||
auto* queryObject = new QueryObject;
|
||||
queryObject->id = id;
|
||||
queryObject->target = target;
|
||||
queryObject->created = true;
|
||||
g_liveQueryObjects[id] = queryObject;
|
||||
ids[i] = id;
|
||||
}
|
||||
}
|
||||
|
||||
void DeleteQueries(GLsizei n, const GLuint* ids) {
|
||||
if (n < 0) {
|
||||
RecordQueryError(ErrorCode::InvalidValue, __FUNCTION__, "n cannot be negative.");
|
||||
@@ -180,7 +314,24 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
QueryObject* queryObject = it->second;
|
||||
if (queryObject->active) {
|
||||
EndTimeElapsedQueryLocked(queryObject); // implicitly end before deletion
|
||||
// Implicitly end before deletion, releasing the matching active slot.
|
||||
if (queryObject->target == GL_SAMPLES_PASSED || queryObject->target == GL_ANY_SAMPLES_PASSED ||
|
||||
queryObject->target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) {
|
||||
if (const auto endOcclusionQuery = MG_Backend::gBackendFunctionsTable.GL.EndOcclusionQuery;
|
||||
endOcclusionQuery && queryObject->backendHandle) {
|
||||
endOcclusionQuery(queryObject->backendHandle);
|
||||
}
|
||||
queryObject->active = false;
|
||||
g_activeSamplesPassedQueryId = 0;
|
||||
} else if (queryObject->target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN ||
|
||||
queryObject->target == GL_PRIMITIVES_GENERATED) {
|
||||
queryObject->active = false;
|
||||
(queryObject->target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN
|
||||
? g_activePrimitivesWrittenQueryId
|
||||
: g_activePrimitivesGeneratedQueryId) = 0;
|
||||
} else {
|
||||
EndTimeElapsedQueryLocked(queryObject);
|
||||
}
|
||||
}
|
||||
if (queryObject->backendHandle) {
|
||||
if (const auto deleteBackendQuery = MG_Backend::gBackendFunctionsTable.GL.DeleteBackendQuery) {
|
||||
@@ -198,16 +349,23 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
return GL_FALSE;
|
||||
}
|
||||
const std::lock_guard<std::mutex> lock(g_queryObjectsMutex);
|
||||
// Gen'd ids count as query objects here: the registry creates live
|
||||
// objects at GenQueries time.
|
||||
return FindQueryObjectLocked(id) != nullptr ? GL_TRUE : GL_FALSE;
|
||||
// A name from glGenQueries is not yet a query object: it becomes one when it is first
|
||||
// used with BeginQuery/QueryCounter (which is what a non-zero target records), or
|
||||
// immediately if it came from glCreateQueries.
|
||||
const auto* queryObject = FindQueryObjectLocked(id);
|
||||
return (queryObject != nullptr && (queryObject->created || queryObject->target != 0)) ? GL_TRUE : GL_FALSE;
|
||||
}
|
||||
|
||||
void BeginQuery(GLenum target, GLuint id) {
|
||||
if (target != GL_TIME_ELAPSED) {
|
||||
// Only GL_TIME_ELAPSED timer queries are implemented (occlusion and
|
||||
// primitive queries remain stubs); GL_TIMESTAMP is not a valid
|
||||
// BeginQuery target either.
|
||||
const Bool isTransformFeedbackQuery =
|
||||
target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN || target == GL_PRIMITIVES_GENERATED;
|
||||
const Bool isOcclusionQuery =
|
||||
(target == GL_SAMPLES_PASSED || target == GL_ANY_SAMPLES_PASSED ||
|
||||
target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) &&
|
||||
MG_Backend::gBackendFunctionsTable.GL.BeginOcclusionQuery != nullptr;
|
||||
if (target != GL_TIME_ELAPSED && !isTransformFeedbackQuery && !isOcclusionQuery) {
|
||||
// GL_TIMESTAMP is not a valid BeginQuery target; the occlusion targets
|
||||
// need backend support.
|
||||
RecordQueryError(ErrorCode::InvalidEnum, __FUNCTION__, "Query target is not supported.");
|
||||
return;
|
||||
}
|
||||
@@ -221,9 +379,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, __FUNCTION__, "Query object does not exist.");
|
||||
return;
|
||||
}
|
||||
if (g_activeTimeElapsedQueryId != 0) {
|
||||
GLuint& activeQueryId = isTransformFeedbackQuery
|
||||
? (target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN ? g_activePrimitivesWrittenQueryId
|
||||
: g_activePrimitivesGeneratedQueryId)
|
||||
: (isOcclusionQuery ? g_activeSamplesPassedQueryId : g_activeTimeElapsedQueryId);
|
||||
if (activeQueryId != 0) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, __FUNCTION__,
|
||||
"A query is already active on GL_TIME_ELAPSED.");
|
||||
"A query is already active on this target.");
|
||||
return;
|
||||
}
|
||||
if (queryObject->active) {
|
||||
@@ -239,25 +401,72 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
ResetQueryObjectLocked(queryObject); // discard any previous result
|
||||
queryObject->target = target;
|
||||
queryObject->active = true;
|
||||
const auto beginTimeElapsedQuery = MG_Backend::gBackendFunctionsTable.GL.BeginTimeElapsedQuery;
|
||||
queryObject->backendHandle =
|
||||
(!TimerQueryDisabled() && beginTimeElapsedQuery) ? beginTimeElapsedQuery() : nullptr;
|
||||
g_activeTimeElapsedQueryId = id;
|
||||
if (isTransformFeedbackQuery) {
|
||||
// Prefer real GPU transform-feedback queries (exact with geometry shaders);
|
||||
// the CPU accounting delta stays as the fallback when the backend lacks them.
|
||||
const auto beginXfbPrimitivesQuery = MG_Backend::gBackendFunctionsTable.GL.BeginXfbPrimitivesQuery;
|
||||
queryObject->backendHandle =
|
||||
beginXfbPrimitivesQuery ? beginXfbPrimitivesQuery(target == GL_PRIMITIVES_GENERATED) : nullptr;
|
||||
queryObject->counterSnapshot = MG_State::pGLContext->GetTransformFeedbackPrimitiveCounter();
|
||||
} else if (isOcclusionQuery) {
|
||||
queryObject->backendHandle = MG_Backend::gBackendFunctionsTable.GL.BeginOcclusionQuery();
|
||||
} else {
|
||||
const auto beginTimeElapsedQuery = MG_Backend::gBackendFunctionsTable.GL.BeginTimeElapsedQuery;
|
||||
queryObject->backendHandle =
|
||||
(!TimerQueryDisabled() && beginTimeElapsedQuery) ? beginTimeElapsedQuery() : nullptr;
|
||||
}
|
||||
activeQueryId = id;
|
||||
}
|
||||
|
||||
void EndQuery(GLenum target) {
|
||||
if (target != GL_TIME_ELAPSED) {
|
||||
const Bool isTransformFeedbackQuery =
|
||||
target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN || target == GL_PRIMITIVES_GENERATED;
|
||||
const Bool isOcclusionQuery =
|
||||
(target == GL_SAMPLES_PASSED || target == GL_ANY_SAMPLES_PASSED ||
|
||||
target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) &&
|
||||
MG_Backend::gBackendFunctionsTable.GL.BeginOcclusionQuery != nullptr;
|
||||
if (target != GL_TIME_ELAPSED && !isTransformFeedbackQuery && !isOcclusionQuery) {
|
||||
RecordQueryError(ErrorCode::InvalidEnum, __FUNCTION__, "Query target is not supported.");
|
||||
return;
|
||||
}
|
||||
const std::lock_guard<std::mutex> lock(g_queryObjectsMutex);
|
||||
if (g_activeTimeElapsedQueryId == 0) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, __FUNCTION__, "No query is active on GL_TIME_ELAPSED.");
|
||||
GLuint& activeQueryId = isTransformFeedbackQuery
|
||||
? (target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN ? g_activePrimitivesWrittenQueryId
|
||||
: g_activePrimitivesGeneratedQueryId)
|
||||
: (isOcclusionQuery ? g_activeSamplesPassedQueryId : g_activeTimeElapsedQueryId);
|
||||
if (activeQueryId == 0) {
|
||||
RecordQueryError(ErrorCode::InvalidOperation, __FUNCTION__, "No query is active on this target.");
|
||||
return;
|
||||
}
|
||||
auto* queryObject = FindQueryObjectLocked(g_activeTimeElapsedQueryId);
|
||||
auto* queryObject = FindQueryObjectLocked(activeQueryId);
|
||||
if (!queryObject) {
|
||||
g_activeTimeElapsedQueryId = 0; // should not happen; keep state consistent
|
||||
activeQueryId = 0; // should not happen; keep state consistent
|
||||
return;
|
||||
}
|
||||
if (isTransformFeedbackQuery) {
|
||||
if (queryObject->backendHandle) {
|
||||
if (const auto endXfbPrimitivesQuery = MG_Backend::gBackendFunctionsTable.GL.EndXfbPrimitivesQuery) {
|
||||
endXfbPrimitivesQuery(queryObject->backendHandle);
|
||||
}
|
||||
// Result comes from the GPU query at read time.
|
||||
} else {
|
||||
queryObject->cachedResult =
|
||||
MG_State::pGLContext->GetTransformFeedbackPrimitiveCounter() - queryObject->counterSnapshot;
|
||||
queryObject->resultCached = true;
|
||||
}
|
||||
queryObject->active = false;
|
||||
queryObject->ended = true;
|
||||
activeQueryId = 0;
|
||||
return;
|
||||
}
|
||||
if (isOcclusionQuery) {
|
||||
if (const auto endOcclusionQuery = MG_Backend::gBackendFunctionsTable.GL.EndOcclusionQuery;
|
||||
endOcclusionQuery && queryObject->backendHandle) {
|
||||
endOcclusionQuery(queryObject->backendHandle);
|
||||
}
|
||||
queryObject->active = false;
|
||||
queryObject->ended = true;
|
||||
activeQueryId = 0;
|
||||
return;
|
||||
}
|
||||
EndTimeElapsedQueryLocked(queryObject);
|
||||
@@ -303,9 +512,25 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
switch (pname) {
|
||||
case GL_CURRENT_QUERY: {
|
||||
const std::lock_guard<std::mutex> lock(g_queryObjectsMutex);
|
||||
// Only GL_TIME_ELAPSED queries can be active; GL_TIMESTAMP queries
|
||||
// never are, and other targets remain unimplemented.
|
||||
*params = target == GL_TIME_ELAPSED ? static_cast<GLint>(g_activeTimeElapsedQueryId) : 0;
|
||||
switch (target) {
|
||||
case GL_TIME_ELAPSED:
|
||||
*params = static_cast<GLint>(g_activeTimeElapsedQueryId);
|
||||
break;
|
||||
case GL_SAMPLES_PASSED:
|
||||
case GL_ANY_SAMPLES_PASSED:
|
||||
case GL_ANY_SAMPLES_PASSED_CONSERVATIVE:
|
||||
*params = static_cast<GLint>(g_activeSamplesPassedQueryId);
|
||||
break;
|
||||
case GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN:
|
||||
*params = static_cast<GLint>(g_activePrimitivesWrittenQueryId);
|
||||
break;
|
||||
case GL_PRIMITIVES_GENERATED:
|
||||
*params = static_cast<GLint>(g_activePrimitivesGeneratedQueryId);
|
||||
break;
|
||||
default:
|
||||
*params = 0;
|
||||
break;
|
||||
}
|
||||
return;
|
||||
}
|
||||
case GL_QUERY_COUNTER_BITS: {
|
||||
@@ -313,7 +538,13 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
// time: IsTimerQuerySupported is the dynamic truth (extension /
|
||||
// entry points / timestamp valid bits at call time, not at table
|
||||
// init), and the MOBILEGL_DISABLE_TIMERQUERY kill switch always
|
||||
// wins. Non-timer targets remain unimplemented and report 0.
|
||||
// wins.
|
||||
if (target == GL_SAMPLES_PASSED || target == GL_ANY_SAMPLES_PASSED ||
|
||||
target == GL_ANY_SAMPLES_PASSED_CONSERVATIVE) {
|
||||
const Bool occlusionSupported = MG_Backend::gBackendFunctionsTable.GL.BeginOcclusionQuery != nullptr;
|
||||
*params = occlusionSupported ? (target == GL_SAMPLES_PASSED ? 32 : 1) : 0;
|
||||
return;
|
||||
}
|
||||
const Bool timerTarget = target == GL_TIME_ELAPSED || target == GL_TIMESTAMP;
|
||||
const auto isTimerQuerySupported = MG_Backend::gBackendFunctionsTable.GL.IsTimerQuerySupported;
|
||||
const Bool supported =
|
||||
@@ -327,9 +558,26 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
}
|
||||
|
||||
void GetQueryBufferObjectiv(GLuint id, GLuint buffer, GLenum pname, GLintptr offset) {
|
||||
GetQueryBufferObject<GLint>(id, buffer, pname, offset, __FUNCTION__);
|
||||
}
|
||||
|
||||
void GetQueryBufferObjectuiv(GLuint id, GLuint buffer, GLenum pname, GLintptr offset) {
|
||||
GetQueryBufferObject<GLuint>(id, buffer, pname, offset, __FUNCTION__);
|
||||
}
|
||||
|
||||
void GetQueryBufferObjecti64v(GLuint id, GLuint buffer, GLenum pname, GLintptr offset) {
|
||||
GetQueryBufferObject<GLint64>(id, buffer, pname, offset, __FUNCTION__);
|
||||
}
|
||||
|
||||
void GetQueryBufferObjectui64v(GLuint id, GLuint buffer, GLenum pname, GLintptr offset) {
|
||||
GetQueryBufferObject<GLuint64>(id, buffer, pname, offset, __FUNCTION__);
|
||||
}
|
||||
|
||||
void GetQueryObjectiv(GLuint id, GLenum pname, GLint* params) {
|
||||
Uint64 value = 0;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value) || !params) {
|
||||
Bool valueProduced = false;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value, &valueProduced) || !valueProduced || !params) {
|
||||
return;
|
||||
}
|
||||
constexpr Uint64 kMaxInt = static_cast<Uint64>(INT_MAX);
|
||||
@@ -338,7 +586,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
void GetQueryObjectuiv(GLuint id, GLenum pname, GLuint* params) {
|
||||
Uint64 value = 0;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value) || !params) {
|
||||
Bool valueProduced = false;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value, &valueProduced) || !valueProduced || !params) {
|
||||
return;
|
||||
}
|
||||
*params = static_cast<GLuint>(value & 0xFFFFFFFFull);
|
||||
@@ -346,7 +595,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
void GetQueryObjecti64v(GLuint id, GLenum pname, GLint64* params) {
|
||||
Uint64 value = 0;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value) || !params) {
|
||||
Bool valueProduced = false;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value, &valueProduced) || !valueProduced || !params) {
|
||||
return;
|
||||
}
|
||||
*params = static_cast<GLint64>(value);
|
||||
@@ -354,9 +604,48 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
|
||||
void GetQueryObjectui64v(GLuint id, GLenum pname, GLuint64* params) {
|
||||
Uint64 value = 0;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value) || !params) {
|
||||
Bool valueProduced = false;
|
||||
if (!GetQueryObjectValue(id, pname, __FUNCTION__, value, &valueProduced) || !valueProduced || !params) {
|
||||
return;
|
||||
}
|
||||
*params = static_cast<GLuint64>(value);
|
||||
}
|
||||
|
||||
namespace {
|
||||
// The indexed query entry points differ from the plain ones only in the vertex
|
||||
// stream they address (GL 4.6 core 4.2.1): index must be below GL_MAX_VERTEX_STREAMS
|
||||
// for the two transform feedback targets and zero for every other target. With a
|
||||
// single vertex stream both bounds are 1, so a valid call is always index 0 and
|
||||
// forwards to the unindexed implementation.
|
||||
Bool ValidateQueryStreamIndex(const char* function, GLenum target, GLuint index) {
|
||||
const Bool perStreamTarget =
|
||||
target == GL_PRIMITIVES_GENERATED || target == GL_TRANSFORM_FEEDBACK_PRIMITIVES_WRITTEN;
|
||||
GLint maxVertexStreams = 1;
|
||||
if (perStreamTarget) {
|
||||
GetIntegerv(GL_MAX_VERTEX_STREAMS, &maxVertexStreams);
|
||||
}
|
||||
if (index < static_cast<GLuint>(std::max(maxVertexStreams, 1))) {
|
||||
return true;
|
||||
}
|
||||
RecordQueryError(ErrorCode::InvalidValue, function,
|
||||
perStreamTarget ? "index is not less than GL_MAX_VERTEX_STREAMS."
|
||||
: "index must be zero for this query target.");
|
||||
return false;
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void BeginQueryIndexed(GLenum target, GLuint index, GLuint id) {
|
||||
if (!ValidateQueryStreamIndex(__FUNCTION__, target, index)) return;
|
||||
BeginQuery(target, id);
|
||||
}
|
||||
|
||||
void EndQueryIndexed(GLenum target, GLuint index) {
|
||||
if (!ValidateQueryStreamIndex(__FUNCTION__, target, index)) return;
|
||||
EndQuery(target);
|
||||
}
|
||||
|
||||
void GetQueryIndexediv(GLenum target, GLuint index, GLenum pname, GLint* params) {
|
||||
if (!ValidateQueryStreamIndex(__FUNCTION__, target, index)) return;
|
||||
GetQueryiv(target, pname, params);
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -11,14 +11,22 @@
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
void GenQueries(GLsizei n, GLuint* ids);
|
||||
void CreateQueries(GLenum target, GLsizei n, GLuint* ids);
|
||||
void DeleteQueries(GLsizei n, const GLuint* ids);
|
||||
GLboolean IsQuery(GLuint id);
|
||||
void BeginQuery(GLenum target, GLuint id);
|
||||
void EndQuery(GLenum target);
|
||||
void GetQueryiv(GLenum target, GLenum pname, GLint* params);
|
||||
void BeginQueryIndexed(GLenum target, GLuint index, GLuint id);
|
||||
void EndQueryIndexed(GLenum target, GLuint index);
|
||||
void GetQueryIndexediv(GLenum target, GLuint index, GLenum pname, GLint* params);
|
||||
void GetQueryObjectiv(GLuint id, GLenum pname, GLint* params);
|
||||
void GetQueryObjectuiv(GLuint id, GLenum pname, GLuint* params);
|
||||
void GetQueryObjecti64v(GLuint id, GLenum pname, GLint64* params);
|
||||
void GetQueryObjectui64v(GLuint id, GLenum pname, GLuint64* params);
|
||||
void GetQueryBufferObjectiv(GLuint id, GLuint buffer, GLenum pname, GLintptr offset);
|
||||
void GetQueryBufferObjectuiv(GLuint id, GLuint buffer, GLenum pname, GLintptr offset);
|
||||
void GetQueryBufferObjecti64v(GLuint id, GLuint buffer, GLenum pname, GLintptr offset);
|
||||
void GetQueryBufferObjectui64v(GLuint id, GLuint buffer, GLenum pname, GLintptr offset);
|
||||
void QueryCounter(GLuint id, GLenum target);
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -649,7 +649,9 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
void ClearDepth_State(GLclampd depth) {
|
||||
MG_State::pGLContext->SetClearDepth(static_cast<Float>(depth));
|
||||
// GL 3.3 §4.2.3: the clear depth is clamped to [0,1] at specification time (Vulkan clear
|
||||
// values additionally require it: VUID-VkClearDepthStencilValue-depth-00022).
|
||||
MG_State::pGLContext->SetClearDepth(ClampUnitFloat(static_cast<Float>(depth)));
|
||||
}
|
||||
|
||||
void ClearColor_State(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
|
||||
|
||||
@@ -8,13 +8,20 @@
|
||||
|
||||
#include "GL_Sampler.h"
|
||||
#include "Validators.h"
|
||||
#include "../Getter/GL_Getter.h"
|
||||
#include <MG_State/GLState/Core.h>
|
||||
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
|
||||
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
namespace {
|
||||
Bool ValidateSamplerParameterValue(GLenum pname, const void* param, Bool isFloat, Bool isInteger) {
|
||||
Float ReadSamplerScalar(const void* param, Bool isFloat, Bool isUnsignedInteger) {
|
||||
if (isFloat) return *(const GLfloat*)param;
|
||||
if (isUnsignedInteger) return static_cast<Float>(*(const GLuint*)param);
|
||||
return static_cast<Float>(*(const GLint*)param);
|
||||
}
|
||||
|
||||
Bool ValidateSamplerParameterValue(GLenum pname, const void* param, Bool isFloat, Bool isUnsignedInteger) {
|
||||
if (param == nullptr) return false;
|
||||
|
||||
switch (pname) {
|
||||
@@ -22,6 +29,18 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_TEXTURE_MAX_LOD:
|
||||
case GL_TEXTURE_LOD_BIAS:
|
||||
return true;
|
||||
// Four components, and GL puts no range on them - a border colour outside [0,1] is
|
||||
// clamped when a fixed-point format is sampled, not rejected here. The scalar readers
|
||||
// below would look at one component and invent an error.
|
||||
case GL_TEXTURE_BORDER_COLOR:
|
||||
return true;
|
||||
case GL_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
if (ReadSamplerScalar(param, isFloat, isUnsignedInteger) >= 1.0f) return true;
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "SetSamplerParam_State",
|
||||
"GL_TEXTURE_MAX_ANISOTROPY_EXT must be at least 1.0."));
|
||||
return false;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
@@ -29,14 +48,15 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
if (isFloat) {
|
||||
return SamplerImpl::ValidateSamplerFloatParam(pname, *(const GLfloat*)param);
|
||||
}
|
||||
if (isInteger) {
|
||||
if (isUnsignedInteger) {
|
||||
return SamplerImpl::ValidateSamplerIntParam(pname, static_cast<GLint>(*(const GLuint*)param));
|
||||
}
|
||||
return SamplerImpl::ValidateSamplerIntParam(pname, *(const GLint*)param);
|
||||
}
|
||||
} // namespace
|
||||
|
||||
void SetSamplerParam_State(GLuint sampler, GLenum pname, const void* param, bool isFloat, bool isInteger) {
|
||||
void SetSamplerParam_State(GLuint sampler, GLenum pname, const void* param, bool isFloat,
|
||||
bool isUnsignedInteger) {
|
||||
if (param == nullptr) return;
|
||||
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
|
||||
|
||||
@@ -47,7 +67,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
auto& samplerObj = MG_State::pGLContext->GetSamplerObject(sampler);
|
||||
if (!SamplerImpl::ValidateSamplerObject(sampler)) return;
|
||||
if (!ValidateSamplerParameterValue(pname, param, isFloat, isInteger)) return;
|
||||
if (!ValidateSamplerParameterValue(pname, param, isFloat, isUnsignedInteger)) return;
|
||||
|
||||
using namespace MG_Util;
|
||||
switch (pname) {
|
||||
@@ -76,12 +96,29 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_TEXTURE_LOD_BIAS:
|
||||
samplerObj->SetLodBias(*(const GLfloat*)param);
|
||||
break;
|
||||
case GL_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
samplerObj->SetMaxAnisotropy(ReadSamplerScalar(param, isFloat, isUnsignedInteger));
|
||||
break;
|
||||
case GL_TEXTURE_COMPARE_MODE:
|
||||
samplerObj->SetCompareMode(MG_Util::ConvertGLEnumToSamplerCompareMode(*(const GLint*)param));
|
||||
break;
|
||||
case GL_TEXTURE_COMPARE_FUNC:
|
||||
samplerObj->SetSamplerCompareFunc(MG_Util::ConvertGLEnumToSamplerCompareFunc(*(const GLint*)param));
|
||||
break;
|
||||
case GL_TEXTURE_BORDER_COLOR:
|
||||
// The only four-component sampler parameter: the caller's form decides which
|
||||
// representation is authoritative, and SamplerObject keeps the other two in step.
|
||||
if (isFloat) {
|
||||
const auto* values = (const GLfloat*)param;
|
||||
samplerObj->SetBorderColor(FloatVec4(values[0], values[1], values[2], values[3]));
|
||||
} else if (isUnsignedInteger) {
|
||||
const auto* values = (const GLuint*)param;
|
||||
samplerObj->SetBorderColorUI(UintVec4(values[0], values[1], values[2], values[3]));
|
||||
} else {
|
||||
const auto* values = (const GLint*)param;
|
||||
samplerObj->SetBorderColorI(IntVec4(values[0], values[1], values[2], values[3]));
|
||||
}
|
||||
break;
|
||||
default:
|
||||
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "SetSamplerParam_State",
|
||||
@@ -89,7 +126,8 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
}
|
||||
|
||||
void GetSamplerParam_State(GLuint sampler, GLenum pname, void* params, bool isFloat, bool isInteger) {
|
||||
void GetSamplerParam_State(GLuint sampler, GLenum pname, void* params, bool isFloat,
|
||||
bool isUnsignedInteger) {
|
||||
if (params == nullptr) return;
|
||||
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
|
||||
|
||||
@@ -129,12 +167,46 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
case GL_TEXTURE_LOD_BIAS:
|
||||
*(GLfloat*)params = samplerObj->GetLodBias();
|
||||
break;
|
||||
case GL_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
if (isFloat) {
|
||||
*(GLfloat*)params = samplerObj->GetMaxAnisotropy();
|
||||
} else if (isUnsignedInteger) {
|
||||
*(GLuint*)params = static_cast<GLuint>(samplerObj->GetMaxAnisotropy());
|
||||
} else {
|
||||
*(GLint*)params = static_cast<GLint>(samplerObj->GetMaxAnisotropy());
|
||||
}
|
||||
break;
|
||||
case GL_TEXTURE_COMPARE_MODE:
|
||||
*(GLuint*)params = MG_Util::ConvertSamplerCompareModeToGLEnum(samplerObj->GetCompareMode());
|
||||
break;
|
||||
case GL_TEXTURE_COMPARE_FUNC:
|
||||
*(GLuint*)params = MG_Util::ConvertSamplerCompareFuncToGLEnum(samplerObj->GetSamplerCompareFunc());
|
||||
break;
|
||||
case GL_TEXTURE_BORDER_COLOR: {
|
||||
if (isFloat) {
|
||||
const auto& color = samplerObj->GetBorderColor();
|
||||
auto* out = (GLfloat*)params;
|
||||
out[0] = color.x();
|
||||
out[1] = color.y();
|
||||
out[2] = color.z();
|
||||
out[3] = color.w();
|
||||
} else if (isUnsignedInteger) {
|
||||
const auto& color = samplerObj->GetBorderColorUI();
|
||||
auto* out = (GLuint*)params;
|
||||
out[0] = color.x();
|
||||
out[1] = color.y();
|
||||
out[2] = color.z();
|
||||
out[3] = color.w();
|
||||
} else {
|
||||
const auto& color = samplerObj->GetBorderColorI();
|
||||
auto* out = (GLint*)params;
|
||||
out[0] = color.x();
|
||||
out[1] = color.y();
|
||||
out[2] = color.z();
|
||||
out[3] = color.w();
|
||||
}
|
||||
break;
|
||||
}
|
||||
default:
|
||||
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetSamplerParam_State",
|
||||
@@ -158,6 +230,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
static thread_local Vector<GLuint> names;
|
||||
MG_State::pGLContext->GenSamplerNames(count, names);
|
||||
Memcpy(samplers, names.data(), count * sizeof(GLuint));
|
||||
// Unlike textures/buffers, glGenSamplers CREATES the sampler objects: each name
|
||||
// is immediately a sampler (glIsSampler == GL_TRUE before any bind).
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
MG_State::pGLContext->CreateSamplerObject(names[i]);
|
||||
}
|
||||
}
|
||||
|
||||
void DeleteSamplers_State(GLsizei count, const GLuint* samplers) {
|
||||
@@ -192,9 +269,20 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
}
|
||||
|
||||
// The number of texture units a sampler may be bound to. GL 3.3 core 3.8.2 names
|
||||
// GL_MAX_COMBINED_TEXTURE_IMAGE_UNITS, which is what the backend advertises; the frontend's
|
||||
// MAX_TEXTURE_IMAGE_UNITS is only the capacity of the unit array, so it is a clamp on the
|
||||
// answer and never the answer itself - gating on it alone accepts every unit up to 192 no
|
||||
// matter what the driver reports.
|
||||
static GLint GetSamplerBindableTextureUnitCount() {
|
||||
GLint maxTextureUnits = 0;
|
||||
GetIntegerv(GL_MAX_COMBINED_TEXTURE_IMAGE_UNITS, &maxTextureUnits);
|
||||
return std::min<GLint>(std::max(maxTextureUnits, 0), MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
|
||||
}
|
||||
|
||||
void BindSampler_State(GLuint unit, GLuint sampler) {
|
||||
MGLOG_D("BindSampler_State: unit = %u, sampler = %u", unit, sampler);
|
||||
if (unit >= MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS) {
|
||||
if (static_cast<Uint64>(unit) >= static_cast<Uint64>(GetSamplerBindableTextureUnitCount())) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSampler", "texture unit out of range"));
|
||||
@@ -206,7 +294,16 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
if (sampler == 0) {
|
||||
textureUnit.SetSamplerObject(nullptr);
|
||||
} else {
|
||||
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
|
||||
// GL 3.3 core 3.8.2: BindSampler on a name GenSamplers never returned - or one already
|
||||
// deleted - is INVALID_OPERATION. SamplerParameter* raises INVALID_VALUE for the same
|
||||
// name, which is why this cannot go through the shared SamplerImpl validator.
|
||||
if (!MG_State::pGLContext->ValidateSamplerName(sampler)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSampler_State",
|
||||
std::format("Invalid sampler name {}", sampler)));
|
||||
return;
|
||||
}
|
||||
Bool doesSamplerObjectCreated = MG_State::pGLContext->ValidateSamplerObject(sampler);
|
||||
if (!doesSamplerObjectCreated) {
|
||||
MG_State::pGLContext->CreateSamplerObject(sampler);
|
||||
@@ -224,6 +321,20 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSamplers", "count must be non-negative"));
|
||||
return;
|
||||
}
|
||||
// ARB_multi_bind: the whole [first, first + count) range is checked up front and a
|
||||
// range that runs past the last texture unit is INVALID_OPERATION - not the
|
||||
// INVALID_VALUE the single-bind BindSampler_State reports per element, and nothing is
|
||||
// bound when it fails. Both gates read the same limit (see
|
||||
// GetSamplerBindableTextureUnitCount), so an out-of-range multi-bind can no longer slip
|
||||
// past this check and be caught one element at a time with the wrong error class.
|
||||
const GLint maxTextureUnits = GetSamplerBindableTextureUnitCount();
|
||||
if (static_cast<Uint64>(first) + static_cast<Uint64>(count) > static_cast<Uint64>(maxTextureUnits)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidOperation,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSamplers",
|
||||
"first + count exceeds the number of texture units."));
|
||||
return;
|
||||
}
|
||||
|
||||
for (GLsizei i = 0; i < count; ++i) {
|
||||
BindSampler_State(first + i, samplers ? samplers[i] : 0);
|
||||
@@ -240,7 +351,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
void SamplerParameterIiv(GLuint sampler, GLenum pname, const GLint* param) {
|
||||
SetSamplerParam_State(sampler, pname, param, false, true);
|
||||
SetSamplerParam_State(sampler, pname, param, false, false);
|
||||
}
|
||||
|
||||
void SamplerParameteriv(GLuint sampler, GLenum pname, const GLint* param) {
|
||||
@@ -268,7 +379,7 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
}
|
||||
|
||||
void GetSamplerParameterIiv(GLuint sampler, GLenum pname, GLint* params) {
|
||||
GetSamplerParam_State(sampler, pname, params, false, true);
|
||||
GetSamplerParam_State(sampler, pname, params, false, false);
|
||||
}
|
||||
|
||||
void GetSamplerParameterfv(GLuint sampler, GLenum pname, GLfloat* params) {
|
||||
|
||||
@@ -75,7 +75,11 @@ namespace MobileGL::MG_Impl::GLImpl::SamplerImpl {
|
||||
break;
|
||||
|
||||
case GL_TEXTURE_COMPARE_FUNC:
|
||||
if (param < GL_LEQUAL || param > GL_ALWAYS) {
|
||||
// The eight depth-compare functions are contiguous from GL_NEVER (0x0200) to
|
||||
// GL_ALWAYS (0x0207); GL_LEQUAL sits in the middle of that block, so starting
|
||||
// the range there rejected NEVER/LESS/EQUAL and let GREATER/NOTEQUAL/GEQUAL
|
||||
// through only by accident of them being above LEQUAL.
|
||||
if (param < GL_NEVER || param > GL_ALWAYS) {
|
||||
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
|
||||
"Invalid compare function parameter"));
|
||||
@@ -99,6 +103,16 @@ namespace MobileGL::MG_Impl::GLImpl::SamplerImpl {
|
||||
case GL_TEXTURE_LOD_BIAS:
|
||||
return true;
|
||||
|
||||
case GL_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
if (!(param >= 1.0f)) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerFloatParam",
|
||||
"GL_TEXTURE_MAX_ANISOTROPY_EXT must be at least 1.0."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
|
||||
case GL_TEXTURE_BORDER_COLOR:
|
||||
if (param < 0.0f || param > 1.0f) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
@@ -125,6 +139,16 @@ namespace MobileGL::MG_Impl::GLImpl::SamplerImpl {
|
||||
}
|
||||
return true;
|
||||
|
||||
case GL_TEXTURE_MAX_ANISOTROPY_EXT:
|
||||
if (param < 1) {
|
||||
MG_State::pGLContext->RecordError(
|
||||
ErrorCode::InvalidValue,
|
||||
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerIntParam",
|
||||
"GL_TEXTURE_MAX_ANISOTROPY_EXT must be at least 1."));
|
||||
return false;
|
||||
}
|
||||
return true;
|
||||
|
||||
default:
|
||||
return ValidateSamplerParam(pname, static_cast<GLenum>(param));
|
||||
}
|
||||
|
||||
@@ -133,4 +133,33 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
values[0] = value;
|
||||
}
|
||||
}
|
||||
|
||||
void DestroyAllSyncObjects() {
|
||||
// Detach the registry under the lock, release outside it. Entries the app
|
||||
// already deleted were erased by DeleteSync, so nothing here double-frees;
|
||||
// a DeleteSync racing this sweep finds an empty registry and returns. A
|
||||
// thread still blocked inside ClientWaitSync/GetSynciv during teardown
|
||||
// holds a raw SyncObject* these deletes invalidate - the same undefined
|
||||
// race an app-driven DeleteSync already has.
|
||||
UnorderedMap<GLsync, SyncObject*> orphans;
|
||||
{
|
||||
const std::lock_guard<std::mutex> lock(g_syncObjectsMutex);
|
||||
orphans.swap(g_liveSyncObjects);
|
||||
}
|
||||
if (orphans.empty()) {
|
||||
return;
|
||||
}
|
||||
// Both backends' DeleteSync only free the heap wrapper once their GL
|
||||
// context/renderer is gone (generation/current-thread guards), so this is
|
||||
// safe after the backend has released its EGL resources - but not after
|
||||
// the function table itself is cleared.
|
||||
const auto backendDeleteSync = MG_Backend::gBackendFunctionsTable.GL.DeleteSync;
|
||||
for (const auto& [_, syncObject] : orphans) {
|
||||
if (backendDeleteSync && syncObject->backendHandle) {
|
||||
backendDeleteSync(syncObject->backendHandle);
|
||||
}
|
||||
delete syncObject;
|
||||
}
|
||||
MGLOG_D("DestroyAllSyncObjects: reclaimed %zu sync object(s) the app left undeleted", orphans.size());
|
||||
}
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
@@ -16,4 +16,12 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void WaitSync(GLsync sync, GLbitfield flags, GLuint64 timeout);
|
||||
void DeleteSync(GLsync sync);
|
||||
void GetSynciv(GLsync sync, GLenum pname, GLsizei bufSize, GLsizei* length, GLint* values);
|
||||
// Destroys every still-registered sync object exactly as DeleteSync would.
|
||||
// GL requires syncs to die with their context; called only from full library
|
||||
// teardown (DestroyImpl), where no context survives on any thread, so the
|
||||
// process-global registry can be drained wholesale. Must run while the
|
||||
// backend function table is still populated: each backend handle has to be
|
||||
// released by the backend that created it, never by a later re-initialized
|
||||
// one.
|
||||
void DestroyAllSyncObjects();
|
||||
} // namespace MobileGL::MG_Impl::GLImpl
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -11,6 +11,13 @@
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl {
|
||||
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
|
||||
// The sized internal formats a buffer texture accepts (GL 4.6 core table 8.16). The buffer
|
||||
// clears take the same list, so it is shared rather than written out twice.
|
||||
Bool IsBufferTextureInternalFormat(GLenum internalformat);
|
||||
|
||||
void ClearTexImage(GLuint texture, GLint level, GLenum format, GLenum type, const void* data);
|
||||
void ClearTexSubImage(GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width,
|
||||
GLsizei height, GLsizei depth, GLenum format, GLenum type, const void* data);
|
||||
void BindImageTexture(GLuint unit, GLuint texture, GLint level, GLboolean layered, GLint layer, GLenum access,
|
||||
GLenum format);
|
||||
void GenerateMipmap(GLenum target);
|
||||
@@ -39,6 +46,10 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
void GenerateTextureMipmap(GLuint texture);
|
||||
void BindTextureUnit(GLuint unit, GLuint texture);
|
||||
void GetTextureImage(GLuint texture, GLint level, GLenum format, GLenum type, GLsizei bufSize, void* pixels);
|
||||
void GetCompressedTextureImage(GLuint texture, GLint level, GLsizei bufSize, void* pixels);
|
||||
void TexBufferRange(GLenum target, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size);
|
||||
void TextureBuffer(GLuint texture, GLenum internalformat, GLuint buffer);
|
||||
void TextureBufferRange(GLuint texture, GLenum internalformat, GLuint buffer, GLintptr offset, GLsizeiptr size);
|
||||
void GetTextureSubImage(GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLsizei width,
|
||||
GLsizei height, GLsizei depth, GLenum format, GLenum type, GLsizei bufSize, void* pixels);
|
||||
void GetTextureParameterfv(GLuint texture, GLenum pname, GLfloat* params);
|
||||
@@ -95,6 +106,11 @@ namespace MobileGL::MG_Impl::GLImpl {
|
||||
GLsizei width, GLsizei height);
|
||||
void CopyTexSubImage2D(GLenum target, GLint level, GLint xoffset, GLint yoffset, GLint x, GLint y, GLsizei width,
|
||||
GLsizei height);
|
||||
void CopyTextureSubImage1D(GLuint texture, GLint level, GLint xoffset, GLint x, GLint y, GLsizei width);
|
||||
void CopyTextureSubImage3D(GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint zoffset, GLint x,
|
||||
GLint y, GLsizei width, GLsizei height);
|
||||
void CopyTextureSubImage2D(GLuint texture, GLint level, GLint xoffset, GLint yoffset, GLint x, GLint y,
|
||||
GLsizei width, GLsizei height);
|
||||
void CopyTexSubImage1D(GLenum target, GLint level, GLint xoffset, GLint x, GLint y, GLsizei width);
|
||||
void CopyTexImage2D(GLenum target, GLint level, GLenum internalformat, GLint x, GLint y, GLsizei width,
|
||||
GLsizei height, GLint border);
|
||||
|
||||
@@ -14,7 +14,8 @@
|
||||
#include <MG_State/GLState/TextureState/TextureObjectStubs.h>
|
||||
|
||||
namespace MobileGL::MG_Impl::GLImpl::TextureImpl {
|
||||
UniquePtr<ProxyTextureManager> pProxyTextureManager;
|
||||
// Leak-at-exit storage; see GlobalObjects.cpp.
|
||||
UniquePtr<ProxyTextureManager>& pProxyTextureManager = *new UniquePtr<ProxyTextureManager>();
|
||||
|
||||
Bool IsProxyTextureTarget(TextureUploadTarget target) {
|
||||
switch (target) {
|
||||
|
||||
Some files were not shown because too many files have changed in this diff Show More
Reference in New Issue
Block a user