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MobileGL/MobileGL/MG_Backend/DirectGLES/Managers.cpp
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2026-06-26 23:33:46 +08:00

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// MobileGL - MobileGL/MG_Backend/DirectGLES/Managers.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 "Managers.h"
#include "Utils.h"
#include "DirectGLES.h"
#include <MG_Util/BackendLoaders/OpenGL/Loader.h>
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
#include <MG_Util/Converters/MGToGL/DataTypeConverter.h>
#include <MG_Util/Converters/MGToGL/BufferEnumConverter.h>
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
#include <MG_Util/Converters/MGToGL/ProgramEnumConverter.h>
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
#include <MG_Util/Converters/MGToStr/TextureEnumConverter.h>
#include <MG_Util/Converters/MGToStr/FramebufferEnumConverter.h>
#include <MG_State/GLState/TextureState/TextureObjectBuffer.h>
#include <MG_Util/Converters/GLToMG/FramebufferEnumConverter.h>
#include <MG_Util/Converters/MGToGL/FramebufferEnumConverter.h>
#include <MG_State/GLState/FramebufferState/FramebufferObject.h>
#include <algorithm>
#include <cctype>
namespace MobileGL::MG_Backend::DirectGLES {
constexpr Bool PREFER_MAP_BUFFER_RANGE_FOR_BUFFER_SYNC = false;
constexpr const char* BASE_INSTANCE_UNIFORM_NAME = "mg_BaseInstance";
static Uint ResolveBackendEsslVersion() {
const auto& version = g_GLESCapabilities.GLESVersion;
if (version.Major > 3 || (version.Major == 3 && version.Minor >= 2)) {
return 320;
}
if (version.Major == 3 && version.Minor >= 1) {
return 310;
}
return 300;
}
String ReplaceIdentifier(String source, const String& from, const String& to) {
SizeT pos = 0;
while ((pos = source.find(from, pos)) != String::npos) {
const Bool leftIsIdent = pos > 0 &&
(std::isalnum(static_cast<unsigned char>(source[pos - 1])) || source[pos - 1] == '_');
const SizeT end = pos + from.size();
const Bool rightIsIdent = end < source.size() &&
(std::isalnum(static_cast<unsigned char>(source[end])) || source[end] == '_');
if (!leftIsIdent && !rightIsIdent) {
source.replace(pos, from.size(), to);
pos += to.size();
} else {
pos = end;
}
}
return source;
}
String InjectUniformAfterVersion(String source, const String& declaration) {
const SizeT versionPos = source.find("#version");
if (versionPos == String::npos) {
return declaration + "\n" + source;
}
const SizeT lineEnd = source.find('\n', versionPos);
if (lineEnd == String::npos) {
return source + "\n" + declaration + "\n";
}
source.insert(lineEnd + 1, declaration + "\n");
return source;
}
String EmulateBaseInstanceInVertexShader(String source, GLenum shaderType) {
if (shaderType != GL_VERTEX_SHADER || source.find("gl_BaseInstance") == String::npos) {
return source;
}
source = ReplaceIdentifier(std::move(source), "gl_BaseInstance", BASE_INSTANCE_UNIFORM_NAME);
return InjectUniformAfterVersion(std::move(source),
String("uniform highp int ") + BASE_INSTANCE_UNIFORM_NAME + ";");
}
namespace BufferImpl {
BackendBufferObject::BackendBufferObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glGenBuffers(1, &m_backendBufferId);
if (m_backendBufferId == 0) {
MGLOG_E("Failed to generate buffer object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Generated buffer object with ID: %u.", m_backendBufferId);
}
}
void BackendBufferObject::SyncToBackend(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateBufferObject) {
MGLOG_E("State buffer object is null, cannot sync to backend.");
return;
}
SizeT bufferSize = stateBufferObject->GetSize();
if (bufferSize == 0) {
MGLOG_W("Buffer size is zero, skipping sync for object with ID: %u", m_backendBufferId);
return;
}
MGLOG_D("Syncing buffer object with backend ID %u to backend for state ID %u", m_backendBufferId,
stateBufferObject->GetExternalIndex());
// Decide sync method
// glBufferData
Bool needsRegeneration =
!m_isInitialized || (stateBufferObject->GetChangeBits() & BufferChangeBits::PreferReallocationBit);
if (needsRegeneration) {
MGLOG_D("Buffer size changed significantly or not initialized, regenerating buffer with ID: %u",
m_backendBufferId);
SyncToBackend_glBufferData(stateBufferObject);
m_isInitialized = true;
m_prevBufferSize = bufferSize;
stateBufferObject->ClearDirty();
return;
}
// glMapBufferRange or glBufferSubData
Bool useInvalidationMap = !(stateBufferObject->GetChangeBits() & BufferChangeBits::ForbidInvalidationBit);
// TODO: MAY AFFECT PERFORMANCE
Bool useUnsynchronizedMap =
!(stateBufferObject->GetChangeBits() & BufferChangeBits::ForbidUnsynchronizationBit);
Bool useMapBufferRange = PREFER_MAP_BUFFER_RANGE_FOR_BUFFER_SYNC &&
(useInvalidationMap || useUnsynchronizedMap);
if (!useMapBufferRange && PREFER_MAP_BUFFER_RANGE_FOR_BUFFER_SYNC) {
auto usage = stateBufferObject->GetUsage();
if (usage == BufferUsage::DynamicDraw || usage == BufferUsage::StreamDraw ||
usage == BufferUsage::StreamCopy || usage == BufferUsage::DynamicCopy) {
useMapBufferRange = true;
}
}
if (useMapBufferRange) {
MGLOG_D("Using glMapBufferRange to sync buffer with ID: %u", m_backendBufferId);
SyncToBackend_glMapBufferRange(stateBufferObject, useInvalidationMap, useUnsynchronizedMap);
} else {
MGLOG_D("Using glBufferSubData to sync buffer with ID: %u", m_backendBufferId);
SyncToBackend_glBufferSubData(stateBufferObject);
}
// Clear dirty state
stateBufferObject->ClearDirty();
m_prevBufferSize = bufferSize;
}
void BackendBufferObject::SyncToBackend_glBufferData(
const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
MGLOG_D("Syncing buffer data (glBufferData) for object with ID : %u", m_backendBufferId);
const void* data = stateBufferObject->GetDataReadOnly()->data();
SizeT size = stateBufferObject->GetSize();
GLenum usage = MG_Util::ConvertBufferUsageToGLEnum(stateBufferObject->GetUsage());
Bind();
g_GLESFuncs.glBufferData(TempBufferTarget, (GLsizeiptr)size, data, usage);
}
void BackendBufferObject::SyncToBackend_glBufferSubData(
const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
MGLOG_D("Syncing buffer sub-data (glBufferSubData) for object with ID : %u", m_backendBufferId);
const void* data = stateBufferObject->GetDataReadOnly()->data();
// dirty range: [range.start, range.end)
auto& ranges = stateBufferObject->GetDirtyRanges();
if (ranges.empty()) {
MGLOG_D("No dirty range to sync for buffer with ID: %u", m_backendBufferId);
return;
}
for (const auto& range : ranges) {
Bind();
g_GLESFuncs.glBufferSubData(TempBufferTarget, (GLintptr)range.start,
(GLintptr)(range.end - range.start),
reinterpret_cast<const char*>(data) + range.start);
}
}
void BackendBufferObject::SyncToBackend_glMapBufferRange(
const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject, Bool invalidate, Bool unsynchronized) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
MGLOG_D("Syncing buffer map (glMapBuffer) for object with ID : %u", m_backendBufferId);
MGLOG_D("Mapping buffer with ID: %u", m_backendBufferId);
auto& ranges = stateBufferObject->GetDirtyRanges();
if (ranges.empty()) {
MGLOG_D("No dirty range to sync for buffer with ID: %u", m_backendBufferId);
return;
}
SizeT minStart = ranges.GetOverallMinStart();
SizeT maxEnd = ranges.GetOverallMaxEnd();
Bind();
void* mappedData = g_GLESFuncs.glMapBufferRange(
TempBufferTarget, (GLintptr)minStart, (GLintptr)(maxEnd - minStart),
(invalidate ? GL_MAP_INVALIDATE_RANGE_BIT : 0) | (unsynchronized ? GL_MAP_UNSYNCHRONIZED_BIT : 0) |
GL_MAP_WRITE_BIT | GL_MAP_FLUSH_EXPLICIT_BIT);
const void* data = stateBufferObject->GetDataReadOnly()->data();
if (mappedData) {
MGLOG_D("Mapped buffer data successfully for object with ID: %u", m_backendBufferId);
Memcpy(mappedData, reinterpret_cast<const char*>(data) + minStart, maxEnd - minStart);
// Explicitly flush the dirty ranges
for (const auto& range : ranges) {
g_GLESFuncs.glFlushMappedBufferRange(TempBufferTarget, (GLintptr)(range.start - minStart),
(GLintptr)(range.end - range.start));
}
g_GLESFuncs.glUnmapBuffer(TempBufferTarget);
} else {
MGLOG_E("Failed to map buffer with ID: %u", m_backendBufferId);
}
}
void BackendBufferObject::Bind(GLenum target) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (target == GL_ARRAY_BUFFER) {
if (g_boundVertexBufferObject == this) {
return;
}
g_boundVertexBufferObject = this;
}
g_GLESFuncs.glBindBuffer(target, m_backendBufferId);
}
StateBackendObjectRegistry<MG_State::GLState::BufferObject, BackendBufferObject> g_backendBufferObjects;
BackendBufferObject* g_boundVertexBufferObject = nullptr;
} // namespace BufferImpl
namespace VertexArrayImpl {
namespace {
SizeT GetDataTypeSize(DataType type) {
switch (type) {
case DataType::Int8:
case DataType::Uint8:
return 1;
case DataType::Int16:
case DataType::Uint16:
case DataType::Float16:
return 2;
case DataType::Int32:
case DataType::Uint32:
case DataType::Float32:
case DataType::Fixed32:
return 4;
case DataType::Float64:
return 8;
default:
return 0;
}
}
} // namespace
BackendVertexArrayObject::BackendVertexArrayObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
m_clientAttributeBufferIds.fill(0);
g_GLESFuncs.glGenVertexArrays(1, &m_backendVAOId);
if (m_backendVAOId == 0) {
MGLOG_E("Failed to generate vertex array object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Generated vertex array object with ID: %u.", m_backendVAOId);
}
}
BackendVertexArrayObject::~BackendVertexArrayObject() {
if (m_backendVAOId != 0) {
g_GLESFuncs.glDeleteVertexArrays(1, &m_backendVAOId);
m_backendVAOId = 0;
}
for (auto& bufferId : m_clientAttributeBufferIds) {
if (bufferId != 0) {
g_GLESFuncs.glDeleteBuffers(1, &bufferId);
bufferId = 0;
}
}
}
void BackendVertexArrayObject::Bind() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glBindVertexArray(m_backendVAOId);
}
inline Bool BindAttributeBuffer(const MG_State::GLState::VertexAttribute& attrib) {
const auto& bufferObject = attrib.Buffer;
if (!bufferObject) {
MGLOG_W("Attribute has no bound buffer, skipping.");
return false;
}
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(bufferObject.get());
if (backendBufferIt == BufferImpl::g_backendBufferObjects.end()) {
MGLOG_E("No backend buffer found for attribute's buffer, cannot bind attribute.");
return false;
}
const auto& backendBufferObject = backendBufferIt->second;
backendBufferObject->Bind(GL_ARRAY_BUFFER);
return true;
}
void BackendVertexArrayObject::SyncToBackend(
const SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateVAOObject) {
MGLOG_E("State VAO object is null, cannot sync to backend.");
return;
}
MGLOG_D("Syncing VAO with backend ID %u to backend for state ID %u", m_backendVAOId,
stateVAOObject->GetExternalIndex());
Bind();
const auto& allAttributeVersions = stateVAOObject->GetAllAttributeVersions();
const auto& allAttributes = stateVAOObject->GetAllAttributes();
for (Uint attribIndex = 0; attribIndex < allAttributes.size(); ++attribIndex) {
const auto& attrib = allAttributes[attribIndex];
Bool needsSyncSwitch = allAttributeVersions[attribIndex].SwitchVersion !=
m_syncedAttributeVersions[attribIndex].SwitchVersion;
if (needsSyncSwitch) {
if (attrib.Enabled) {
g_GLESFuncs.glEnableVertexAttribArray(attribIndex);
} else {
g_GLESFuncs.glDisableVertexAttribArray(attribIndex);
}
}
Bool needsSyncFormat = allAttributeVersions[attribIndex].FormatVersion !=
m_syncedAttributeVersions[attribIndex].FormatVersion;
Bool needsSyncBuffer = allAttributeVersions[attribIndex].BufferVersion !=
m_syncedAttributeVersions[attribIndex].BufferVersion;
if (!needsSyncFormat && !needsSyncBuffer) continue;
if (!BindAttributeBuffer(attrib)) {
continue;
}
if (!attrib.IsInteger) {
g_GLESFuncs.glVertexAttribPointer(
attribIndex, attrib.Size, MG_Util::ConvertDataTypeToGLEnum(attrib.Type),
attrib.Normalized ? GL_TRUE : GL_FALSE, attrib.Stride, (const void*)attrib.Offset);
} else {
g_GLESFuncs.glVertexAttribIPointer(attribIndex, attrib.Size,
MG_Util::ConvertDataTypeToGLEnum(attrib.Type), attrib.Stride,
(const void*)attrib.Offset);
}
if (needsSyncFormat) {
g_GLESFuncs.glVertexAttribDivisor(attribIndex, attrib.Divisor);
}
}
Uint16 currentIndexBufferVersion = stateVAOObject->GetIndexBufferBindingSlot().GetVersion();
if (currentIndexBufferVersion != m_syncedIndexBufferVersion) {
const auto& indexBufferBinding = stateVAOObject->GetIndexBufferBindingSlot().GetBoundObject();
Bool indexBufferSynced = false;
if (indexBufferBinding) {
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(indexBufferBinding.get());
if (backendBufferIt != BufferImpl::g_backendBufferObjects.end()) {
const auto& backendBufferObject = backendBufferIt->second;
backendBufferObject->Bind(GL_ELEMENT_ARRAY_BUFFER);
indexBufferSynced = true;
} else {
MGLOG_W("No backend buffer found for index buffer binding, cannot bind index buffer.");
}
} else {
g_GLESFuncs.glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, 0);
indexBufferSynced = true;
}
if (indexBufferSynced) {
m_syncedIndexBufferVersion = currentIndexBufferVersion;
}
}
m_syncedAttributeVersions = allAttributeVersions;
}
void BackendVertexArrayObject::SyncClientSideAttributesForDrawArrays(
const SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject, GLint first, GLsizei count) {
if (!stateVAOObject || count <= 0 || first < 0) {
return;
}
Bind();
const auto& allAttributes = stateVAOObject->GetAllAttributes();
for (Uint attribIndex = 0; attribIndex < allAttributes.size(); ++attribIndex) {
const auto& attrib = allAttributes[attribIndex];
if (!attrib.Enabled || attrib.Buffer) {
continue;
}
const auto* clientData = reinterpret_cast<const Uint8*>(attrib.Offset);
const SizeT componentSize = GetDataTypeSize(attrib.Type);
if (!clientData || componentSize == 0 || attrib.Size <= 0) {
continue;
}
const SizeT elementSize = componentSize * static_cast<SizeT>(attrib.Size);
const SizeT stride = attrib.Stride > 0 ? static_cast<SizeT>(attrib.Stride) : elementSize;
const SizeT uploadSize = static_cast<SizeT>(first + count - 1) * stride + elementSize;
auto& bufferId = m_clientAttributeBufferIds[attribIndex];
if (bufferId == 0) {
g_GLESFuncs.glGenBuffers(1, &bufferId);
if (bufferId == 0) {
MGLOG_E("Failed to create client-side vertex attribute upload buffer.");
continue;
}
}
g_GLESFuncs.glBindBuffer(GL_ARRAY_BUFFER, bufferId);
g_GLESFuncs.glBufferData(GL_ARRAY_BUFFER, static_cast<GLsizeiptr>(uploadSize), clientData,
GL_STREAM_DRAW);
if (!attrib.IsInteger) {
g_GLESFuncs.glVertexAttribPointer(
attribIndex, attrib.Size, MG_Util::ConvertDataTypeToGLEnum(attrib.Type),
attrib.Normalized ? GL_TRUE : GL_FALSE, static_cast<GLsizei>(stride), nullptr);
} else {
g_GLESFuncs.glVertexAttribIPointer(attribIndex, attrib.Size,
MG_Util::ConvertDataTypeToGLEnum(attrib.Type),
static_cast<GLsizei>(stride), nullptr);
}
}
BufferImpl::g_boundVertexBufferObject = nullptr;
}
StateBackendObjectRegistry<MG_State::GLState::VertexArrayObject, BackendVertexArrayObject>
g_backendVertexArrayObjects;
} // namespace VertexArrayImpl
namespace TextureImpl {
BackendTextureObject::BackendTextureObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glGenTextures(1, &m_backendTextureId);
if (m_backendTextureId == 0) {
MGLOG_E("Failed to generate texture object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Generated texture object with ID: %u.", m_backendTextureId);
}
}
void BackendTextureObject::Bind(GLenum target, Uint unit) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (g_activeTextureUnit != unit) {
ActivateTextureUnit(unit);
}
auto targetN = static_cast<SizeT>(MG_Util::ConvertGLEnumToTextureTarget(target));
if (this == g_boundTexturesCache[unit][targetN]) return;
g_GLESFuncs.glBindTexture(target, m_backendTextureId);
g_boundTexturesCache[unit][targetN] = this;
}
Uint BackendTextureObject::GetBackendTextureId() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
return m_backendTextureId;
}
class ScopedDefaultUnpackState {
public:
ScopedDefaultUnpackState() {
g_GLESFuncs.glGetIntegerv(GL_UNPACK_ALIGNMENT, &m_prevAlignment);
g_GLESFuncs.glGetIntegerv(GL_UNPACK_ROW_LENGTH, &m_prevRowLength);
g_GLESFuncs.glGetIntegerv(GL_UNPACK_SKIP_ROWS, &m_prevSkipRows);
g_GLESFuncs.glGetIntegerv(GL_UNPACK_SKIP_PIXELS, &m_prevSkipPixels);
g_GLESFuncs.glGetIntegerv(GL_UNPACK_IMAGE_HEIGHT, &m_prevImageHeight);
g_GLESFuncs.glGetIntegerv(GL_UNPACK_SKIP_IMAGES, &m_prevSkipImages);
g_GLESFuncs.glPixelStorei(GL_UNPACK_ALIGNMENT, 4);
g_GLESFuncs.glPixelStorei(GL_UNPACK_ROW_LENGTH, 0);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_ROWS, 0);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_PIXELS, 0);
g_GLESFuncs.glPixelStorei(GL_UNPACK_IMAGE_HEIGHT, 0);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_IMAGES, 0);
}
~ScopedDefaultUnpackState() {
g_GLESFuncs.glPixelStorei(GL_UNPACK_ALIGNMENT, m_prevAlignment);
g_GLESFuncs.glPixelStorei(GL_UNPACK_ROW_LENGTH, m_prevRowLength);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_ROWS, m_prevSkipRows);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_PIXELS, m_prevSkipPixels);
g_GLESFuncs.glPixelStorei(GL_UNPACK_IMAGE_HEIGHT, m_prevImageHeight);
g_GLESFuncs.glPixelStorei(GL_UNPACK_SKIP_IMAGES, m_prevSkipImages);
}
private:
GLint m_prevAlignment = 4;
GLint m_prevRowLength = 0;
GLint m_prevSkipRows = 0;
GLint m_prevSkipPixels = 0;
GLint m_prevImageHeight = 0;
GLint m_prevSkipImages = 0;
};
static Uint GetNormFallbackComponentCount(TextureInternalFormat format) {
switch (format) {
case TextureInternalFormat::R8Snorm:
case TextureInternalFormat::R16:
case TextureInternalFormat::R16Snorm:
return 1;
case TextureInternalFormat::RG8Snorm:
case TextureInternalFormat::RG16:
case TextureInternalFormat::RG16Snorm:
return 2;
case TextureInternalFormat::RGB8Snorm:
case TextureInternalFormat::RGB16:
case TextureInternalFormat::RGB16Snorm:
return 3;
case TextureInternalFormat::RGBA8Snorm:
case TextureInternalFormat::RGBA16:
case TextureInternalFormat::RGBA16Snorm:
return 4;
default:
return 0;
}
}
static Bool IsSnormFallbackFormat(TextureInternalFormat format) {
switch (format) {
case TextureInternalFormat::R8Snorm:
case TextureInternalFormat::RG8Snorm:
case TextureInternalFormat::RGB8Snorm:
case TextureInternalFormat::RGBA8Snorm:
case TextureInternalFormat::R16Snorm:
case TextureInternalFormat::RG16Snorm:
case TextureInternalFormat::RGB16Snorm:
case TextureInternalFormat::RGBA16Snorm:
return true;
default:
return false;
}
}
static Bool IsNorm8FallbackFormat(TextureInternalFormat format) {
switch (format) {
case TextureInternalFormat::R8Snorm:
case TextureInternalFormat::RG8Snorm:
case TextureInternalFormat::RGB8Snorm:
case TextureInternalFormat::RGBA8Snorm:
return true;
default:
return false;
}
}
static const void* PrepareNormFloatFallbackUpload(TextureInternalFormat format,
const IntVec3& texelSize,
const void* data,
SizeT byteSize,
GLenum uploadType,
Vector<Float>& convertedData) {
const Uint componentCount = GetNormFallbackComponentCount(format);
if (componentCount == 0 || uploadType != GL_FLOAT || data == nullptr || byteSize == 0) {
return data;
}
const SizeT texelCount = static_cast<SizeT>(std::max(texelSize.x(), 0)) *
static_cast<SizeT>(std::max(texelSize.y(), 0)) *
static_cast<SizeT>(std::max(texelSize.z(), 0));
const SizeT componentTotal = texelCount * static_cast<SizeT>(componentCount);
const SizeT sourceComponentSize = IsNorm8FallbackFormat(format) ? sizeof(Int8) : sizeof(Uint16);
const SizeT sourceComponentTotal = byteSize / sourceComponentSize;
if (componentTotal == 0 || sourceComponentTotal == 0) {
return nullptr;
}
convertedData.assign(componentTotal, 0.0f);
const SizeT copyComponentTotal = std::min(componentTotal, sourceComponentTotal);
if (IsNorm8FallbackFormat(format)) {
const Int8* src = static_cast<const Int8*>(data);
constexpr Float invMaxSnorm8 = 1.0f / 127.0f;
for (SizeT i = 0; i < copyComponentTotal; ++i) {
convertedData[i] = std::max(static_cast<Float>(src[i]) * invMaxSnorm8, -1.0f);
}
} else if (IsSnormFallbackFormat(format)) {
const Int16* src = static_cast<const Int16*>(data);
constexpr Float invMaxSnorm16 = 1.0f / 32767.0f;
for (SizeT i = 0; i < copyComponentTotal; ++i) {
convertedData[i] = std::max(static_cast<Float>(src[i]) * invMaxSnorm16, -1.0f);
}
} else {
const Uint16* src = static_cast<const Uint16*>(data);
constexpr Float invMaxUnorm16 = 1.0f / 65535.0f;
for (SizeT i = 0; i < copyComponentTotal; ++i) {
convertedData[i] = static_cast<Float>(src[i]) * invMaxUnorm16;
}
}
return convertedData.data();
}
void BackendTextureObject::SyncMipmapsToBackend(
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
}
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
MGLOG_D("Syncing texture mipmaps with backend ID %u to backend for state ID %u", m_backendTextureId,
stateTextureObject->GetExternalIndex());
GLenum target = MG_Util::ConvertTextureTargetToGLEnum(stateTextureObject->GetTarget());
auto targetInternal = stateTextureObject->GetTarget();
MGLOG_D(" Texture target for syncing is %s",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
if (!IsSupportedTextureTarget(targetInternal)) {
MGLOG_E(" Texture target %s is not supported, skipping.",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
return;
}
// The texture needs to be regenerated completely with glTexImage* calls if:
// 1. Not initialized
// 2. InternalFormat changed
// 3. Size changed
// 4. Mipmap levels changed
if (!stateTextureObject->IsComplete()) {
MGLOG_D("Texture object with ID: %u is not complete, skipping sync.",
stateTextureObject->GetExternalIndex());
return;
}
Bind(target);
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
const auto baseSize = stateTextureObject->GetBaseSize();
StateTextureBasicInfo currentTextureInfo = {stateTextureObject->GetFormat(),
static_cast<SizeT>(baseSize.x()),
static_cast<SizeT>(baseSize.y()),
static_cast<SizeT>(baseSize.z()),
0,
0,
stateTextureObject->GetSamples(),
stateTextureObject->HasFixedSampleLocations()};
switch (stateTextureObject->GetStorageType()) {
case TextureStorageType::Mipmap: {
auto* textureMipmapObject =
static_cast<MG_State::GLState::TextureObjectMipmap*>(stateTextureObject.get());
const auto mipmapCount = textureMipmapObject->GetMipmapLevelCount();
currentTextureInfo.mipmapLevels = mipmapCount;
Bool needsRegeneration = !m_isInitialized || (currentTextureInfo != m_prevTextureInfo);
const Bool canAppendMipmaps =
m_isInitialized &&
currentTextureInfo.internalFormat == m_prevTextureInfo.internalFormat &&
currentTextureInfo.width == m_prevTextureInfo.width &&
currentTextureInfo.height == m_prevTextureInfo.height &&
currentTextureInfo.depth == m_prevTextureInfo.depth &&
currentTextureInfo.bufferExternalIndex == m_prevTextureInfo.bufferExternalIndex &&
currentTextureInfo.samples == m_prevTextureInfo.samples &&
currentTextureInfo.fixedSampleLocations == m_prevTextureInfo.fixedSampleLocations &&
currentTextureInfo.mipmapLevels > m_prevTextureInfo.mipmapLevels &&
!TextureImpl::IsMultisampleTextureTarget(targetInternal);
MGLOG_D("%s: Got texture info: %dx%dx%d, mips %d, format %s", __func__, baseSize.x(), baseSize.y(),
baseSize.z(), mipmapCount,
MG_Util::ConvertTextureInternalFormatToString(textureMipmapObject->GetFormat()).c_str());
if (canAppendMipmaps) {
MGLOG_D("Texture mip count increased for backend ID %u, appending levels %zu..%zu",
m_backendTextureId, m_prevTextureInfo.mipmapLevels, mipmapCount - 1);
GLenum glInternalFormat, glType, glFormat;
TextureImpl::GenerateTextureFormatInfo(textureMipmapObject->GetFormat(), &glInternalFormat,
&glFormat, &glType, targetInternal);
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
ScopedDefaultUnpackState unpackState;
for (auto& uploadTarget : uploadTargets) {
for (SizeT level = m_prevTextureInfo.mipmapLevels; level < mipmapCount; ++level) {
auto levelTexelSize = textureMipmapObject->GetMipmapTexelSize(uploadTarget, level);
auto levelByteSize = textureMipmapObject->GetMipmapByteSize(uploadTarget, level);
bool levelDirty = textureMipmapObject->IsStorageDirty(uploadTarget, level);
auto glUploadTarget = MG_Util::ConvertTextureUploadTargetToGLEnum(uploadTarget);
auto* pData = (levelDirty && levelByteSize != 0)
? textureMipmapObject->MapMipmapData(uploadTarget, level)
: nullptr;
Vector<Float> convertedUploadData;
const void* uploadData = PrepareNormFloatFallbackUpload(
textureMipmapObject->GetFormat(), levelTexelSize, pData, levelByteSize, glType,
convertedUploadData);
DebugImpl::ErrorLopper::Clear();
g_GLESFuncs.glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
switch (stateTextureObject->GetTarget()) {
case TextureTarget::Texture2D:
case TextureTarget::TextureCubeMap:
g_GLESFuncs.glTexImage2D(
glUploadTarget, static_cast<GLint>(level), (GLint)glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()), static_cast<GLsizei>(levelTexelSize.y()),
0, glFormat, glType, uploadData);
break;
case TextureTarget::Texture3D:
g_GLESFuncs.glTexImage3D(
glUploadTarget, static_cast<GLint>(level), (GLint)glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()), static_cast<GLsizei>(levelTexelSize.y()),
static_cast<GLsizei>(levelTexelSize.z()), 0, glFormat, glType, uploadData);
break;
default:
MGLOG_E("Unhandled texture target %s",
MG_Util::ConvertTextureTargetToString(stateTextureObject->GetTarget()).c_str());
break;
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__,
glUploadTarget, glInternalFormat, glFormat, glType,
pData](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s. glTexImage*: target=%s, internalformat=%s, format=%s, "
"type=%s, pixels=%p",
func, file, line, MG_Util::ConvertGLEnumToString(err).c_str(),
MG_Util::ConvertGLEnumToString(glUploadTarget).c_str(),
MG_Util::ConvertGLEnumToString(glInternalFormat).c_str(),
MG_Util::ConvertGLEnumToString(glFormat).c_str(),
MG_Util::ConvertGLEnumToString(glType).c_str(), pData);
});
textureMipmapObject->MarkStorageDirty(uploadTarget, level, false);
}
}
needsRegeneration = false;
}
if (needsRegeneration) {
MGLOG_D("Texture state changed significantly or not initialized, regenerating texture with ID: %u",
m_backendTextureId);
// Regenerate all mipmap levels
GLenum glInternalFormat, glType, glFormat;
TextureImpl::GenerateTextureFormatInfo(textureMipmapObject->GetFormat(), &glInternalFormat,
&glFormat, &glType, targetInternal);
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
if (TextureImpl::IsMultisampleTextureTarget(targetInternal)) {
DebugImpl::ErrorLopper::Clear();
g_GLESFuncs.glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
switch (targetInternal) {
case TextureTarget::Texture2DMultisample:
g_GLESFuncs.glTexStorage2DMultisample(
target, static_cast<GLsizei>(stateTextureObject->GetSamples()), glInternalFormat,
static_cast<GLsizei>(baseSize.x()), static_cast<GLsizei>(baseSize.y()),
stateTextureObject->HasFixedSampleLocations() ? GL_TRUE : GL_FALSE);
break;
case TextureTarget::Texture2DMultisampleArray:
g_GLESFuncs.glTexStorage3DMultisample(
target, static_cast<GLsizei>(stateTextureObject->GetSamples()), glInternalFormat,
static_cast<GLsizei>(baseSize.x()), static_cast<GLsizei>(baseSize.y()),
static_cast<GLsizei>(baseSize.z()),
stateTextureObject->HasFixedSampleLocations() ? GL_TRUE : GL_FALSE);
break;
default:
MOBILEGL_ASSERT(false, "Unexpected multisample target: %d", static_cast<Int>(targetInternal));
break;
}
for (const auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
textureMipmapObject->MarkStorageDirty(uploadTarget, level, false);
}
}
} else {
ScopedDefaultUnpackState unpackState;
for (auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
auto levelTexelSize = textureMipmapObject->GetMipmapTexelSize(uploadTarget, level);
auto levelByteSize = textureMipmapObject->GetMipmapByteSize(uploadTarget, level);
bool levelDirty = textureMipmapObject->IsStorageDirty(uploadTarget, level);
auto glUploadTarget = MG_Util::ConvertTextureUploadTargetToGLEnum(uploadTarget);
auto* pData = (levelDirty && levelByteSize != 0)
? textureMipmapObject->MapMipmapData(uploadTarget, level)
: nullptr;
Vector<Float> convertedUploadData;
const void* uploadData = PrepareNormFloatFallbackUpload(
textureMipmapObject->GetFormat(), levelTexelSize, pData, levelByteSize, glType,
convertedUploadData);
MGLOG_D("%s: target: %s: syncing mip %d: %dx%dx%d, byteSize = %d, pData = %p, "
"levelDirty = %s",
__func__, MG_Util::ConvertTextureUploadTargetToString(uploadTarget).c_str(),
level, levelTexelSize.x(), levelTexelSize.y(), levelTexelSize.z(),
levelByteSize, pData, levelDirty ? "true" : "false");
DebugImpl::ErrorLopper::Clear();
g_GLESFuncs.glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
auto textureTarget = stateTextureObject->GetTarget();
// TODO: handle more texture types
switch (textureTarget) {
case TextureTarget::Texture2D:
case TextureTarget::TextureCubeMap: {
g_GLESFuncs.glTexImage2D(
glUploadTarget, static_cast<GLint>(level), (GLint)glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()),
static_cast<GLsizei>(levelTexelSize.y()), 0, glFormat, glType, uploadData);
break;
}
case TextureTarget::Texture3D: {
g_GLESFuncs.glTexImage3D(
glUploadTarget, static_cast<GLint>(level), (GLint)glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()),
static_cast<GLsizei>(levelTexelSize.y()),
static_cast<GLsizei>(levelTexelSize.z()), 0, glFormat, glType, uploadData);
break;
}
default: {
MGLOG_E("Unhandled texture target %s",
MG_Util::ConvertTextureTargetToString(textureTarget).c_str());
}
}
DebugImpl::ErrorLopper::Loop(
[file = __FILE__, line = __LINE__, func = __func__, glUploadTarget,
glInternalFormat, glFormat, glType, pData](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s. glTexImage*: target=%s, internalformat=%s, "
"format=%s, type=%s, pixels=%p",
func, file, line, MG_Util::ConvertGLEnumToString(err).c_str(),
MG_Util::ConvertGLEnumToString(glUploadTarget).c_str(),
MG_Util::ConvertGLEnumToString(glInternalFormat).c_str(),
MG_Util::ConvertGLEnumToString(glFormat).c_str(),
MG_Util::ConvertGLEnumToString(glType).c_str(), pData);
});
MGLOG_D("Regenerated mipmap level %d for texture with ID: %u", level,
m_backendTextureId);
textureMipmapObject->MarkStorageDirty(uploadTarget, level, false);
}
}
}
m_isInitialized = true;
}
{ // Update all dirty mipmap levels
if (TextureImpl::IsMultisampleTextureTarget(targetInternal)) {
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
for (const auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
if (textureMipmapObject->IsStorageDirty(uploadTarget, level)) {
textureMipmapObject->MarkStorageDirty(uploadTarget, level, false);
}
}
}
break;
}
const auto mipmapCount = textureMipmapObject->GetMipmapLevelCount();
GLenum glInternalFormat, glType, glFormat;
TextureImpl::GenerateTextureFormatInfo(textureMipmapObject->GetFormat(), &glInternalFormat,
&glFormat, &glType, targetInternal);
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
ScopedDefaultUnpackState unpackState;
for (auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
if (!textureMipmapObject->IsStorageDirty(uploadTarget, level)) {
continue;
}
auto byteSize = textureMipmapObject->GetMipmapByteSize(uploadTarget, level);
if (byteSize == 0) {
MGLOG_W("Mipmap level %d has no data, skipping update.", level);
continue;
}
if (level > 0)
MGLOG_D("%s: Updating dirty mip %d for texture ID %u, size: %dx%d, "
"byteSize: %d",
__func__, level, m_backendTextureId,
textureMipmapObject->GetMipmapTexelSize(uploadTarget, level).x(),
textureMipmapObject->GetMipmapTexelSize(uploadTarget, level).y(), byteSize);
auto glUploadTarget = MG_Util::ConvertTextureUploadTargetToGLEnum(uploadTarget);
g_GLESFuncs.glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
DebugImpl::ErrorLopper::Loop(
[file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s", func, file, line,
MG_Util::ConvertGLEnumToString(err).c_str());
});
auto texelSize = textureMipmapObject->GetMipmapTexelSize(uploadTarget, level);
const void* mipData = textureMipmapObject->MapMipmapData(uploadTarget, level);
Vector<Float> convertedUploadData;
const void* uploadData = PrepareNormFloatFallbackUpload(
textureMipmapObject->GetFormat(), texelSize, mipData, byteSize, glType,
convertedUploadData);
switch (stateTextureObject->GetTarget()) {
case TextureTarget::Texture2D:
case TextureTarget::TextureCubeMap:
g_GLESFuncs.glTexSubImage2D(glUploadTarget, static_cast<GLint>(level), 0, 0,
static_cast<GLsizei>(texelSize.x()),
static_cast<GLsizei>(texelSize.y()), glFormat, glType,
uploadData);
break;
case TextureTarget::Texture3D:
g_GLESFuncs.glTexSubImage3D(glUploadTarget, static_cast<GLint>(level), 0, 0, 0,
static_cast<GLsizei>(texelSize.x()),
static_cast<GLsizei>(texelSize.y()),
static_cast<GLsizei>(texelSize.z()), glFormat, glType,
uploadData);
break;
default:
MGLOG_E("Unhandled texture target %s",
MG_Util::ConvertTextureTargetToString(stateTextureObject->GetTarget()).c_str());
break;
}
textureMipmapObject->MarkStorageDirty(uploadTarget, level, false);
}
}
}
break;
}
case TextureStorageType::Buffer: {
auto* textureBufferObject =
static_cast<MG_State::GLState::TextureObjectBuffer*>(stateTextureObject.get());
auto& slot = textureBufferObject->GetBufferBindingSlot();
auto& buffer = slot.GetBoundObject();
if (!buffer) {
MGLOG_D("Texture buffer object with ID: %u has no bound buffer, skipping sync.",
stateTextureObject->GetExternalIndex());
return;
}
auto bufferIndex = buffer->GetExternalIndex();
currentTextureInfo.bufferExternalIndex = bufferIndex;
Bool needsRegeneration = !m_isInitialized || (currentTextureInfo != m_prevTextureInfo);
// Need to sync texture buffer if not synced yet
auto& backendBuffers = BufferImpl::g_backendBufferObjects;
SharedPtr<BufferImpl::BackendBufferObject> backendBufferObject;
const auto& backendBufferIt = backendBuffers.find(buffer.get());
if (backendBufferIt == backendBuffers.end()) {
auto& backendBufferSlot = backendBuffers.GetOrCreate(buffer);
if (!backendBufferSlot) {
backendBufferSlot = MakeShared<BufferImpl::BackendBufferObject>();
}
backendBufferObject = backendBufferSlot;
} else {
backendBufferObject = backendBufferIt->second;
}
backendBufferObject->SyncToBackend(buffer);
// Bind buffer to texture
auto backendId = backendBufferObject->GetBackendBufferId();
GLenum glInternalFormat, glType, glFormat;
TextureImpl::GenerateTextureFormatInfo(textureBufferObject->GetFormat(), &glInternalFormat, &glFormat,
&glType, TextureTarget::TextureBuffer);
if (needsRegeneration) {
MGLOG_D("Texture state changed significantly or not initialized, regenerating texture buffer with "
"ID: %u, buffer ID: %u, buffer size: %zu, format: %s",
m_backendTextureId, backendId, buffer->GetSize(),
MG_Util::ConvertGLEnumToString(glInternalFormat).c_str());
g_GLESFuncs.glTexBuffer(GL_TEXTURE_BUFFER, glInternalFormat, backendId);
DebugImpl::ErrorLopper::Loop(
[file = __FILE__, line = __LINE__, func = __func__, glInternalFormat, backendId](GLenum err) {
MGLOG_D("%s(%s:%d) glTexBuffer(format=%s, buffer=%u) ES error: %s",
func, file, line, MG_Util::ConvertGLEnumToString(glInternalFormat).c_str(),
backendId, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
break;
}
default:
THROW_UNIMPL_EXCEPTION;
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
m_prevTextureInfo = currentTextureInfo;
}
void BackendTextureObject::SyncBuiltinSamplerToBackend(
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
}
auto* samplerObject = stateTextureObject->GetSamplerObject().get();
Uint currentSamplerVersion = samplerObject->GetVersion();
if (m_syncedSamplerVersion == currentSamplerVersion) {
MGLOG_D("Sampler parameters have not changed for texture ID: %u, skipping sync.", m_backendTextureId);
return;
}
m_syncedSamplerVersion = currentSamplerVersion;
MGLOG_D("Syncing texture built-in sampler with backend ID %u to backend for state ID %u",
m_backendTextureId, stateTextureObject->GetExternalIndex());
GLenum target = MG_Util::ConvertTextureTargetToGLEnum(stateTextureObject->GetTarget());
auto targetInternal = stateTextureObject->GetTarget();
MGLOG_D(" Texture target for syncing is %s",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
if (!IsSupportedTextureTarget(targetInternal)) {
MGLOG_E(" Texture target %s is not supported, skipping.",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
return;
}
const auto& samplerParams = samplerObject->GetAllSamplerParameters();
if (TextureImpl::IsMultisampleTextureTarget(targetInternal)) {
m_cacheSamplerParameters = samplerParams;
return;
}
Bind(target);
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
// Update built-in sampler parameters
MGLOG_D("Updating sampler parameters for texture with ID: %u", m_backendTextureId);
#define SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(internalName, glName, type) \
if (m_cacheSamplerParameters.internalName != samplerParams.internalName) { \
g_GLESFuncs.glTexParameteri(target, glName, \
MG_Util::ConvertSampler##type##ToGLEnum(samplerParams.internalName)); \
m_cacheSamplerParameters.internalName = samplerParams.internalName; \
DebugImpl::ErrorLopper::Loop( \
[file = __FILE__, line = __LINE__, func = __func__, \
t = MG_Util::ConvertSampler##type##ToGLEnum(samplerParams.internalName)](GLenum err) { \
MGLOG_D("%s(%s:%d) ES error %s, GL_TEXTURE_MIN_FILTER = %s", func, file, line, \
MG_Util::ConvertGLEnumToString(err).c_str(), MG_Util::ConvertGLEnumToString(t).c_str()); \
}); \
}
if (m_cacheSamplerParameters.minFilter != samplerParams.minFilter ||
m_cacheSamplerParameters.mipmapMode != samplerParams.mipmapMode) {
g_GLESFuncs.glTexParameteri(target, GL_TEXTURE_MIN_FILTER,
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.minFilter,
samplerParams.mipmapMode));
m_cacheSamplerParameters.minFilter = samplerParams.minFilter;
m_cacheSamplerParameters.mipmapMode = samplerParams.mipmapMode;
}
if (m_cacheSamplerParameters.magFilter != samplerParams.magFilter) {
g_GLESFuncs.glTexParameteri(
target, GL_TEXTURE_MAG_FILTER,
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
m_cacheSamplerParameters.magFilter = samplerParams.magFilter;
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(wrapS, GL_TEXTURE_WRAP_S, WrapMode)
SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(wrapT, GL_TEXTURE_WRAP_T, WrapMode)
if (SupportsWrapR(targetInternal)) {
SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(wrapR, GL_TEXTURE_WRAP_R, WrapMode)
} else {
m_cacheSamplerParameters.wrapR = samplerParams.wrapR;
}
SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(compareFunc, GL_TEXTURE_COMPARE_FUNC, CompareFunc)
SYNC_TEX_SAMPLER_PARAM_IF_CHANGED(compareMode, GL_TEXTURE_COMPARE_MODE, CompareMode)
if (m_cacheSamplerParameters.minLod != samplerParams.minLod) {
g_GLESFuncs.glTexParameterf(target, GL_TEXTURE_MIN_LOD, samplerParams.minLod);
m_cacheSamplerParameters.minLod = samplerParams.minLod;
}
if (m_cacheSamplerParameters.maxLod != samplerParams.maxLod) {
g_GLESFuncs.glTexParameterf(target, GL_TEXTURE_MAX_LOD, samplerParams.maxLod);
m_cacheSamplerParameters.maxLod = samplerParams.maxLod;
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
#undef SYNC_TEX_SAMPLER_PARAM_IF_CHANGED
}
void BackendTextureObject::SyncTextureParamsToBackend(
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
}
Uint16 currentTextureParamsVersion = stateTextureObject->GetTextureParamsVersion();
if (m_syncedTextureParamsVersion == currentTextureParamsVersion) {
MGLOG_D("Texture parameters have not changed for texture ID: %u, skipping sync.", m_backendTextureId);
return;
}
m_syncedTextureParamsVersion = currentTextureParamsVersion;
MGLOG_D("Syncing texture params with backend ID %u to backend for state ID %u", m_backendTextureId,
stateTextureObject->GetExternalIndex());
GLenum target = MG_Util::ConvertTextureTargetToGLEnum(stateTextureObject->GetTarget());
auto targetInternal = stateTextureObject->GetTarget();
MGLOG_D(" Texture target for syncing is %s",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
if (!IsSupportedTextureTarget(targetInternal)) {
MGLOG_E(" Texture target %s is not supported, skipping.",
MG_Util::ConvertTextureTargetToString(targetInternal).c_str());
return;
}
if (TextureImpl::IsMultisampleTextureTarget(targetInternal)) {
m_cacheLodRange = stateTextureObject->GetLevelRange();
m_cacheSwizzleParams = stateTextureObject->GetAllSwizzleParams();
m_cacheBorderColor = stateTextureObject->GetBorderColor();
return;
}
Bind(target);
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error: %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
// Update texture parameters
MGLOG_D("Updating texture parameters for texture with ID: %u", m_backendTextureId);
const auto& levelRange = stateTextureObject->GetLevelRange();
if (m_cacheLodRange.x() != levelRange.x()) {
g_GLESFuncs.glTexParameteri(target, GL_TEXTURE_BASE_LEVEL, static_cast<GLint>(levelRange.x()));
m_cacheLodRange.x() = levelRange.x();
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
if (m_cacheLodRange.y() != levelRange.y()) {
g_GLESFuncs.glTexParameteri(target, GL_TEXTURE_MAX_LEVEL, static_cast<GLint>(levelRange.y()));
m_cacheLodRange.y() = levelRange.y();
}
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
const auto& swizzleParams = stateTextureObject->GetAllSwizzleParams();
if (swizzleParams != m_cacheSwizzleParams) {
#define SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(func, glEnum) \
if (m_cacheSwizzleParams.func != swizzleParams.func) { \
g_GLESFuncs.glTexParameteri(target, glEnum, MG_Util::ConvertTextureSwizzleParamToGLEnum(swizzleParams.func)); \
m_cacheSwizzleParams.func = swizzleParams.func; \
}
SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(r(), GL_TEXTURE_SWIZZLE_R);
SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(g(), GL_TEXTURE_SWIZZLE_G);
SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(b(), GL_TEXTURE_SWIZZLE_B);
SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(a(), GL_TEXTURE_SWIZZLE_A);
#undef SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED
m_cacheSwizzleParams = swizzleParams;
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
if (m_cacheBorderColor != stateTextureObject->GetBorderColor()) {
const auto& borderColor = stateTextureObject->GetBorderColor();
GLfloat borderColorArray[4] = {borderColor.x(), borderColor.y(), borderColor.z(), borderColor.w()};
g_GLESFuncs.glTexParameterfv(target, GL_TEXTURE_BORDER_COLOR, borderColorArray);
m_cacheBorderColor = borderColor;
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
MGLOG_D("%s(%s:%d) ES error %s", func, file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
}
void ActivateTextureUnit(Uint unit) {
if (unit == g_activeTextureUnit) {
return;
}
g_GLESFuncs.glActiveTexture(GL_TEXTURE0 + unit);
g_activeTextureUnit = unit;
}
void UnbindTexture(Uint unit, GLenum target) { // Active unit will be modified
if (unit != g_activeTextureUnit) {
ActivateTextureUnit(unit);
}
auto targetN = static_cast<SizeT>(MG_Util::ConvertGLEnumToTextureTarget(target));
if (g_boundTexturesCache[unit][targetN] == nullptr) return;
g_GLESFuncs.glBindTexture(target, 0);
g_boundTexturesCache[unit][targetN] = nullptr;
}
Uint g_activeTextureUnit = 0;
Array<Array<BackendTextureObject*, (SizeT)TextureTarget::TextureTargetCount>,
MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS>
g_boundTexturesCache;
StateBackendObjectRegistry<MG_State::GLState::ITextureObject, BackendTextureObject> g_backendTextureObjects;
} // namespace TextureImpl
namespace FramebufferImpl {
BackendFramebufferObject::BackendFramebufferObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glGenFramebuffers(1, &m_backendFBOId);
if (m_backendFBOId == 0) {
MGLOG_E("Failed to generate framebuffer object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Generated framebuffer object with ID: %u.", m_backendFBOId);
}
}
void BackendFramebufferObject::Bind(FramebufferTarget target) const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (target == FramebufferTarget::Read)
g_GLESFuncs.glBindFramebuffer(GL_READ_FRAMEBUFFER, m_backendFBOId);
else
g_GLESFuncs.glBindFramebuffer(GL_DRAW_FRAMEBUFFER, m_backendFBOId);
}
void BackendFramebufferObject::InvalidateSyncedState() {
std::fill(std::begin(m_frontendDrawBuffers), std::end(m_frontendDrawBuffers),
FramebufferAttachmentType::Unknown);
std::fill(std::begin(m_backendDrawBuffers), std::end(m_backendDrawBuffers), GL_NONE);
m_frontendReadBuffer = FramebufferAttachmentType::Unknown;
m_backendReadBuffer = GL_NONE;
std::fill(m_syncedFrontendAttachmentVersions.begin(), m_syncedFrontendAttachmentVersions.end(),
static_cast<Uint16>(~0u));
}
static Bool SyncAttachmentObject(GLenum glFBOTarget,
const MG_State::GLState::FramebufferAttachmentObject& attachmentObject,
GLenum glBackendAttachment) {
if (attachmentObject.IsTexture()) {
const auto& textureObject = attachmentObject.GetTexture();
SharedPtr<TextureImpl::BackendTextureObject> backendTextureObject;
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
auto& backendTextureSlot = TextureImpl::g_backendTextureObjects.GetOrCreate(textureObject);
if (!backendTextureSlot) {
backendTextureSlot = MakeShared<TextureImpl::BackendTextureObject>();
}
backendTextureObject = backendTextureSlot;
} else {
backendTextureObject = backendTextureIt->second;
}
if (!backendTextureObject) {
MGLOG_E("%s: No backend texture found for FBO attachment, cannot bind texture.", __func__);
return false;
}
backendTextureObject->SyncMipmapsToBackend(textureObject);
auto glTextureTarget =
MG_Util::ConvertTextureUploadTargetToGLEnum(attachmentObject.GetTextureUploadTarget());
if (glTextureTarget == GL_UNKNOWN_MGL) {
glTextureTarget = MG_Util::ConvertTextureTargetToGLEnum(textureObject->GetTarget());
}
backendTextureObject->Bind(glTextureTarget);
g_GLESFuncs.glFramebufferTexture2D(glFBOTarget, glBackendAttachment, glTextureTarget,
backendTextureObject->GetBackendTextureId(),
static_cast<GLint>(attachmentObject.GetTextureLevel()));
} else if (attachmentObject.IsRenderbuffer()) {
const auto& renderbufferObject = attachmentObject.GetRenderbuffer();
const auto& backendRenderbufferIt =
RenderbufferImpl::g_backendRenderbufferObjects.find(renderbufferObject.get());
SharedPtr<RenderbufferImpl::BackendRenderbufferObject> backendRenderbufferObject;
if (backendRenderbufferIt == RenderbufferImpl::g_backendRenderbufferObjects.end()) {
auto& backendRenderbufferSlot =
RenderbufferImpl::g_backendRenderbufferObjects.GetOrCreate(renderbufferObject);
if (!backendRenderbufferSlot) {
backendRenderbufferSlot = MakeShared<RenderbufferImpl::BackendRenderbufferObject>();
}
backendRenderbufferObject = backendRenderbufferSlot;
} else {
backendRenderbufferObject = backendRenderbufferIt->second;
}
backendRenderbufferObject->SyncToBackend(renderbufferObject);
backendRenderbufferObject->Bind();
g_GLESFuncs.glFramebufferRenderbuffer(glFBOTarget, glBackendAttachment, GL_RENDERBUFFER,
backendRenderbufferObject->GetBackendRenderbufferId());
}
return true;
}
static Bool IsRGBA8SnormFallbackAttachment(
const MG_State::GLState::FramebufferAttachmentObject& attachmentObject) {
if (attachmentObject.IsTexture()) {
const auto& textureObject = attachmentObject.GetTexture();
return textureObject && textureObject->GetFormat() == TextureInternalFormat::RGBA8Snorm &&
TextureImpl::ShouldUseCaveatTextureFormat(textureObject->GetFormat(), textureObject->GetTarget());
}
if (attachmentObject.IsRenderbuffer()) {
const auto& renderbufferObject = attachmentObject.GetRenderbuffer();
return renderbufferObject &&
renderbufferObject->GetInternalFormat() == TextureInternalFormat::RGBA8Snorm &&
TextureImpl::ShouldUseCaveatRenderbufferFormat(renderbufferObject->GetInternalFormat());
}
return false;
}
void BackendFramebufferObject::SyncToBackend(
const SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject, FramebufferTarget asTarget) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateFBOObject) {
MGLOG_E("State FBO object is null, cannot sync to backend.");
return;
}
MGLOG_D("Syncing FBO with backend ID %u to backend for state ID %u, as %s FBO", m_backendFBOId,
stateFBOObject->GetExternalIndex(), (asTarget == FramebufferTarget::Draw ? "DRAW" : "READ"));
GLenum glFBOTarget = MG_Util::ConvertFramebufferTargetToGLEnum(asTarget);
Bind(asTarget);
// -------------------- Connect attachments (set buffers) -----------------------
// 1. Remap draw buffers
auto& stateDrawBuffers = stateFBOObject->GetDrawBuffers();
Bool drawBufferClean = false;
if (memcmp(m_frontendDrawBuffers, stateDrawBuffers.data(),
FramebufferObject::MAX_DRAW_BUFFERS * sizeof(FramebufferAttachmentType)) == 0) {
drawBufferClean = true;
}
if (!drawBufferClean) {
memcpy(m_frontendDrawBuffers, stateDrawBuffers.data(),
FramebufferObject::MAX_DRAW_BUFFERS * sizeof(FramebufferAttachmentType));
std::fill(m_backendDrawBuffers, m_backendDrawBuffers + FramebufferObject::MAX_DRAW_BUFFERS, GL_NONE);
int nEffectiveBuffers = 0;
for (GLint i = 0; i < FramebufferObject::MAX_DRAW_BUFFERS; ++i) {
auto& frontendBuf = stateDrawBuffers[i];
if (frontendBuf == FramebufferAttachmentType::None) {
m_backendDrawBuffers[i] = GL_NONE;
continue;
}
// Create compacted mapping
if (frontendBuf == FramebufferAttachmentType::FrontLeft ||
frontendBuf == FramebufferAttachmentType::FrontRight ||
frontendBuf == FramebufferAttachmentType::BackLeft ||
frontendBuf == FramebufferAttachmentType::BackRight) {
MGLOG_D("%s: frontend buf token found for default fbo, shouldn't remap", __func__);
m_backendDrawBuffers[i] = MG_Util::ConvertFramebufferAttachmentTypeToGLEnum(frontendBuf);
} else {
m_backendDrawBuffers[i] = GL_COLOR_ATTACHMENT0 + i;
}
nEffectiveBuffers = i + 1;
}
g_GLESFuncs.glDrawBuffers(nEffectiveBuffers, m_backendDrawBuffers);
}
if (asTarget == FramebufferTarget::Draw) {
Uint32 clampOutputMask = 0;
for (Uint i = 0; i < FramebufferObject::MAX_DRAW_BUFFERS && i < 32; ++i) {
const auto frontendBuf = stateDrawBuffers[i];
if (frontendBuf < FramebufferAttachmentType::Color0 ||
frontendBuf > FramebufferAttachmentType::Color31) {
continue;
}
const auto& attachmentObject = stateFBOObject->GetAttachment(frontendBuf);
if (IsRGBA8SnormFallbackAttachment(attachmentObject)) {
clampOutputMask |= (1u << i);
}
}
PrgramImpl::g_rgba8SnormClampOutputMask = clampOutputMask;
}
// 2. Remap read buffer
auto frontendReadBuf = stateFBOObject->GetReadBuffer();
if (frontendReadBuf != m_frontendReadBuffer) {
m_frontendReadBuffer = frontendReadBuf;
GLenum glBackendReadBuffer = GetBackendAttachmentType(frontendReadBuf);
if (m_backendReadBuffer != glBackendReadBuffer) {
m_backendReadBuffer = glBackendReadBuffer;
g_GLESFuncs.glReadBuffer(glBackendReadBuffer);
}
}
// -------------------- Attach texture to backend FBO -----------------------
const auto& attachments = stateFBOObject->GetAllAttachmentObjects();
const auto& attachmentVersions = stateFBOObject->GetAllFramebufferAttachmentVersions();
for (SizeT i = 0; i < attachments.size(); ++i) {
const auto& attachmentObject = attachments[i];
auto frontendType = static_cast<FramebufferAttachmentType>(i);
GLenum glBackendAttachment = GL_NONE;
if (frontendType >= FramebufferAttachmentType::Color0 &&
frontendType <= FramebufferAttachmentType::Color31)
glBackendAttachment = GetBackendAttachmentType(frontendType);
else
glBackendAttachment = MG_Util::ConvertFramebufferAttachmentTypeToGLEnum(frontendType);
// relevant FRONTEND!!! version should be checked and updated
if (m_syncedFrontendAttachmentVersions[i] != attachmentVersions[i]) {
if (SyncAttachmentObject(glFBOTarget, attachmentObject, glBackendAttachment)) {
m_syncedFrontendAttachmentVersions[i] = attachmentVersions[i];
}
}
#if MOBILEGL_LOG_ACTIVE_LEVEL <= MOBILEGL_LOG_LEVEL_DEBUG
else {
MGLOG_D("%s: Skipped SyncAttachmentObject(target=%s, frontendObj=(%dx%dx%d, %s), backendAtt=%s), "
"version = %u",
__func__, MG_Util::ConvertGLEnumToString(glFBOTarget).c_str(),
attachmentObject.GetSize().x(), attachmentObject.GetSize().y(),
attachmentObject.GetSize().z(),
MG_Util::ConvertFramebufferAttachmentTypeToString(frontendType).c_str(),
MG_Util::ConvertGLEnumToString(glBackendAttachment).c_str(),
m_syncedFrontendAttachmentVersions[i]);
if (!attachmentObject.IsTexture() && !attachmentObject.IsRenderbuffer()) {
continue;
}
GLint objectType = GL_NONE;
g_GLESFuncs.glGetFramebufferAttachmentParameteriv(
glFBOTarget, glBackendAttachment, GL_FRAMEBUFFER_ATTACHMENT_OBJECT_TYPE, &objectType);
MOBILEGL_ASSERT((objectType == GL_NONE) ||
(attachmentObject.IsTexture() && objectType == GL_TEXTURE) ||
(attachmentObject.IsRenderbuffer() && objectType == GL_RENDERBUFFER),
"Attachment type not match!");
GLint objectName = 0;
g_GLESFuncs.glGetFramebufferAttachmentParameteriv(
glFBOTarget, glBackendAttachment, GL_FRAMEBUFFER_ATTACHMENT_OBJECT_NAME, &objectName);
// Verify that the backend object's name and parameters match the frontend attachment state
if (attachmentObject.IsTexture()) {
const auto& textureObject = attachmentObject.GetTexture();
auto backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
MOBILEGL_ASSERT(backendTextureIt != TextureImpl::g_backendTextureObjects.end(),
"No backend texture found while framebuffer reports texture attachment.");
GLuint backendTexId = backendTextureIt->second->GetBackendTextureId();
MOBILEGL_ASSERT(static_cast<GLint>(backendTexId) == objectName,
"Attachment texture name mismatch between GLES (%d) and backend texture object "
"(%d), frontend texture object ID=%d.",
objectName, backendTexId, textureObject->GetExternalIndex());
GLint texLevel = 0;
g_GLESFuncs.glGetFramebufferAttachmentParameteriv(
glFBOTarget, glBackendAttachment, GL_FRAMEBUFFER_ATTACHMENT_TEXTURE_LEVEL, &texLevel);
MOBILEGL_ASSERT(texLevel == static_cast<GLint>(attachmentObject.GetTextureLevel()),
"Attachment texture level mismatch between GLES and state object.");
} else if (attachmentObject.IsRenderbuffer()) {
const auto& renderbufferObject = attachmentObject.GetRenderbuffer();
auto backendRboIt =
RenderbufferImpl::g_backendRenderbufferObjects.find(renderbufferObject.get());
MOBILEGL_ASSERT(
backendRboIt != RenderbufferImpl::g_backendRenderbufferObjects.end(),
"No backend renderbuffer found while framebuffer reports renderbuffer attachment.");
GLuint backendRboId = backendRboIt->second->GetBackendRenderbufferId();
MOBILEGL_ASSERT(static_cast<GLint>(backendRboId) == objectName,
"Attachment renderbuffer name mismatch between GLES and state object.");
}
}
#endif
}
}
GLenum BackendFramebufferObject::GetBackendAttachmentType(FramebufferAttachmentType frontendAtt) const {
GLenum glBackendReadBuffer = GL_NONE;
auto it = std::find(m_frontendDrawBuffers, m_frontendDrawBuffers + FramebufferObject::MAX_DRAW_BUFFERS,
frontendAtt);
Bool notFound = (it == m_frontendDrawBuffers + FramebufferObject::MAX_DRAW_BUFFERS);
if (notFound) {
MGLOG_D(
"%s: frontendAtt not found in draw buffer (probably not remapped), just use the same as frontend",
__func__);
glBackendReadBuffer = MG_Util::ConvertFramebufferAttachmentTypeToGLEnum(frontendAtt);
} else {
MGLOG_D("%s: frontendAtt found in draw buffer, keep it consistent as in read buffers", __func__);
auto index = std::distance(m_frontendDrawBuffers, it);
glBackendReadBuffer = m_backendDrawBuffers[index];
}
return glBackendReadBuffer;
}
StateBackendObjectRegistry<MG_State::GLState::FramebufferObject, BackendFramebufferObject>
g_backendFramebufferObjects;
Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboBindVersions = {0};
} // namespace FramebufferImpl
namespace PrgramImpl {
Uint32 g_rgba8SnormClampOutputMask = 0;
StateBackendObjectRegistry<MG_State::GLState::ProgramObject, BackendProgramObjectImpl> g_backendProgramObjects;
BackendProgramObjectImpl::BackendProgramObjectImpl() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
m_backendProgramId = g_GLESFuncs.glCreateProgram();
if (m_backendProgramId == 0) {
MGLOG_E("Failed to create program object in backend.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Created backend program object with ID: %u", m_backendProgramId);
}
}
BackendProgramObjectImpl::~BackendProgramObjectImpl() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (m_backendProgramId != 0) {
MGLOG_D("Deleting backend program object with ID: %u", m_backendProgramId);
g_GLESFuncs.glDeleteProgram(m_backendProgramId);
}
}
void BackendProgramObjectImpl::SyncToBackend(
const SharedPtr<MG_State::GLState::ProgramObject>& stateProgramObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateProgramObject) {
MGLOG_E("State program object is null, skipping backend sync.");
return;
}
if (!stateProgramObject->GetLinkStatus()) {
MGLOG_E("Program object is not linked, skipping backend sync. State program ID: %u",
stateProgramObject->GetExternalIndex());
return;
}
MGLOG_D("Syncing program to backend. State program ID: %u, Backend ID: %u",
stateProgramObject->GetExternalIndex(), m_backendProgramId);
m_rgba8SnormClampOutputMask = g_rgba8SnormClampOutputMask;
// Detach all existing shaders
GLint attachedCount = 0;
g_GLESFuncs.glGetProgramiv(m_backendProgramId, GL_ATTACHED_SHADERS, &attachedCount);
MGLOG_D("Currently attached shaders count: %d", attachedCount);
if (attachedCount > 0) {
Vector<GLuint> attachedShaders(attachedCount);
GLsizei actualCount;
g_GLESFuncs.glGetAttachedShaders(m_backendProgramId, attachedCount, &actualCount,
attachedShaders.data());
MGLOG_D("Detaching %d existing shaders from program %u", actualCount, m_backendProgramId);
for (GLsizei i = 0; i < actualCount; ++i) {
MGLOG_D("Detaching shader ID: %u from program %u", attachedShaders[i], m_backendProgramId);
g_GLESFuncs.glDetachShader(m_backendProgramId, attachedShaders[i]);
}
}
// Attach current shaders
auto& attachedShaders = stateProgramObject->GetAttachedShaders();
MGLOG_D("Attaching %zu shaders to program %u", attachedShaders.size(), m_backendProgramId);
for (auto& shader : attachedShaders) {
const auto& src = shader->GetShaderSource();
const auto& stage =
MG_Util::ConvertGLEnumToString(MG_Util::ConvertShaderStageToGLEnum(shader->GetShaderStage()));
MGLOG_D("Original src @ %s: \n", stage.c_str());
MGLOG_D("%s:", src.empty() ? "" : src.c_str());
}
auto& shaderSpirvs = stateProgramObject->GetGeneratedSpirv();
for (int index = 0; index < attachedShaders.size(); ++index) {
auto& shader = attachedShaders[index];
GLenum glShaderType = MG_Util::ConvertShaderStageToGLEnum(shader->GetShaderStage());
GLuint backendShaderId = g_GLESFuncs.glCreateShader(glShaderType);
if (backendShaderId == 0) {
MGLOG_E("Failed to create backend shader for attachment.");
continue;
}
String source;
auto& spirvCode = shaderSpirvs[index];
MG_Util::ShaderTranspiler::SpvcSession spvcSession(spirvCode,
MG_Util::ShaderTranspiler::SessionUsageBit::Transpile);
spvc_compiler_options options;
spvcSession.CreateOptions(&options);
spvc_compiler_options_set_uint(options, SPVC_COMPILER_OPTION_GLSL_VERSION,
ResolveBackendEsslVersion());
spvc_compiler_options_set_bool(options, SPVC_COMPILER_OPTION_GLSL_ES, SPVC_TRUE);
spvc_compiler_options_set_bool(options, SPVC_COMPILER_OPTION_GLSL_VULKAN_SEMANTICS, SPVC_FALSE);
spvcSession.SetOptions(options);
const char* result = nullptr;
spvcSession.Compile(&result);
if (!result) {
MG_Util::ShaderTranspiler::ResultInfo r;
r.log += "Failed to compile the shader to GLSL: \n";
r.log += spvcSession.GetLastErrorString();
r.errc = -5;
MGLOG_E("%s", r.log.c_str());
continue;
}
source = result;
source = RemoveLayoutBinding(source);
source = ProcessOutColorLocations(source);
source = ForceFlatIntegerVaryings(source, glShaderType);
source = EmulateBaseInstanceInVertexShader(std::move(source), glShaderType);
source = ForceSupporterOutput(source);
source = ClampRGBA8SnormFallbackOutputs(std::move(source), glShaderType,
m_rgba8SnormClampOutputMask);
// Patch for Photon compiler precision issue
String findStr = "1000000.0";
String replaceStr = "65500.0";
auto pos = source.find(findStr);
while (pos != String::npos) {
MGLOG_D("Applying patch #2 to Photon...");
source.replace(pos, findStr.length(), replaceStr);
pos = source.find(findStr, pos);
}
const char* sourceCStr = source.c_str();
MGLOG_D("Setting shader source for backend shader ID: %u\nsrc:\n%s", backendShaderId, sourceCStr);
g_GLESFuncs.glShaderSource(backendShaderId, 1, &sourceCStr, nullptr);
g_GLESFuncs.glCompileShader(backendShaderId);
GLint compileStatus;
g_GLESFuncs.glGetShaderiv(backendShaderId, GL_COMPILE_STATUS, &compileStatus);
if (compileStatus == GL_FALSE) {
GLint logLength;
g_GLESFuncs.glGetShaderiv(backendShaderId, GL_INFO_LOG_LENGTH, &logLength);
Vector<GLchar> log(logLength);
g_GLESFuncs.glGetShaderInfoLog(backendShaderId, logLength, nullptr, log.data());
MGLOG_E("Shader compilation failed for backend ID %u: %s", backendShaderId, log.data());
continue;
}
MGLOG_D("Attaching shader ID: %u to program %u", backendShaderId, m_backendProgramId);
g_GLESFuncs.glAttachShader(m_backendProgramId, backendShaderId);
MGLOG_D("Processed shader source length: %zu", source.length());
}
// Link program
MGLOG_D("Linking program %u", m_backendProgramId);
g_GLESFuncs.glLinkProgram(m_backendProgramId);
GLint linkStatus;
g_GLESFuncs.glGetProgramiv(m_backendProgramId, GL_LINK_STATUS, &linkStatus);
if (linkStatus != GL_TRUE) {
GLint logLength;
g_GLESFuncs.glGetProgramiv(m_backendProgramId, GL_INFO_LOG_LENGTH, &logLength);
Vector<GLchar> log(logLength);
g_GLESFuncs.glGetProgramInfoLog(m_backendProgramId, logLength, nullptr, log.data());
MGLOG_E("Program %u linking failed for %u: %s", stateProgramObject->GetExternalIndex(),
m_backendProgramId, log.data());
} else {
MGLOG_D("Program linked successfully. ID: %u", m_backendProgramId);
}
m_baseInstanceUniformLocation = g_GLESFuncs.glGetUniformLocation(m_backendProgramId,
BASE_INSTANCE_UNIFORM_NAME);
// Create global UBO
if (stateProgramObject->GetUBOSize() > 0) {
g_GLESFuncs.glGenBuffers(1, &m_backendGlobalUBOId);
g_GLESFuncs.glBindBuffer(GL_UNIFORM_BUFFER, m_backendGlobalUBOId);
g_GLESFuncs.glBufferData(GL_UNIFORM_BUFFER, stateProgramObject->GetUBOSize(), nullptr, GL_STREAM_DRAW);
g_GLESFuncs.glBindBuffer(GL_UNIFORM_BUFFER, 0);
} else {
m_backendGlobalUBOId = 0;
}
m_isInitialized = true;
MGLOG_D("Program sync completed. backend ID %u", m_backendProgramId);
}
void BackendProgramObjectImpl::Use() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
MGLOG_D("Using program %u", m_backendProgramId);
g_GLESFuncs.glUseProgram(m_backendProgramId);
}
void BackendProgramObjectImpl::SetBaseInstance(Uint32 baseInstance) const {
if (m_baseInstanceUniformLocation < 0) {
return;
}
g_GLESFuncs.glUniform1i(m_baseInstanceUniformLocation, static_cast<GLint>(baseInstance));
}
} // namespace PrgramImpl
namespace SamplerImpl {
BackendSamplerObject::BackendSamplerObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glGenSamplers(1, &m_backendSamplerId);
if (m_backendSamplerId == 0) {
MGLOG_E("Failed to generate sampler object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
} else {
MGLOG_D("Generated sampler object with ID: %u.", m_backendSamplerId);
}
}
void BackendSamplerObject::SyncToBackend(
const SharedPtr<MG_State::GLState::SamplerObject>& stateSamplerObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateSamplerObject) {
MGLOG_E("State sampler object is null, cannot sync to backend.");
return;
}
Uint currentSamplerVersion = stateSamplerObject->GetVersion();
if (m_isInitialized && m_syncedSamplerVersion == currentSamplerVersion) {
MGLOG_D("Sampler parameters have not changed for sampler ID: %u, skipping sync.",
stateSamplerObject->GetExternalIndex());
return;
}
m_syncedSamplerVersion = currentSamplerVersion;
MGLOG_D("Syncing sampler with backend ID %u to backend for state ID %u", m_backendSamplerId,
stateSamplerObject->GetExternalIndex());
const auto& samplerParams = stateSamplerObject->GetAllSamplerParameters();
#define SYNC_SAMPLER_PARAM_IF_CHANGED(internalName, glName, type) \
if (m_cacheSamplerParameters.internalName != samplerParams.internalName) { \
g_GLESFuncs.glSamplerParameteri(m_backendSamplerId, glName, \
(GLint)MG_Util::ConvertSampler##type##ToGLEnum(samplerParams.internalName)); \
m_cacheSamplerParameters.internalName = samplerParams.internalName; \
}
if (m_cacheSamplerParameters.minFilter != samplerParams.minFilter ||
m_cacheSamplerParameters.mipmapMode != samplerParams.mipmapMode) {
g_GLESFuncs.glSamplerParameteri(m_backendSamplerId, GL_TEXTURE_MIN_FILTER,
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(
samplerParams.minFilter, samplerParams.mipmapMode));
m_cacheSamplerParameters.minFilter = samplerParams.minFilter;
m_cacheSamplerParameters.mipmapMode = samplerParams.mipmapMode;
}
if (m_cacheSamplerParameters.magFilter != samplerParams.magFilter) {
g_GLESFuncs.glSamplerParameteri(
m_backendSamplerId, GL_TEXTURE_MAG_FILTER,
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
m_cacheSamplerParameters.magFilter = samplerParams.magFilter;
}
SYNC_SAMPLER_PARAM_IF_CHANGED(wrapS, GL_TEXTURE_WRAP_S, WrapMode)
SYNC_SAMPLER_PARAM_IF_CHANGED(wrapT, GL_TEXTURE_WRAP_T, WrapMode)
SYNC_SAMPLER_PARAM_IF_CHANGED(wrapR, GL_TEXTURE_WRAP_R, WrapMode)
SYNC_SAMPLER_PARAM_IF_CHANGED(compareFunc, GL_TEXTURE_COMPARE_FUNC, CompareFunc)
SYNC_SAMPLER_PARAM_IF_CHANGED(compareMode, GL_TEXTURE_COMPARE_MODE, CompareMode)
if (m_cacheSamplerParameters.minLod != samplerParams.minLod) {
g_GLESFuncs.glSamplerParameterf(m_backendSamplerId, GL_TEXTURE_MIN_LOD, samplerParams.minLod);
m_cacheSamplerParameters.minLod = samplerParams.minLod;
}
if (m_cacheSamplerParameters.maxLod != samplerParams.maxLod) {
g_GLESFuncs.glSamplerParameterf(m_backendSamplerId, GL_TEXTURE_MAX_LOD, samplerParams.maxLod);
m_cacheSamplerParameters.maxLod = samplerParams.maxLod;
}
#undef SYNC_SAMPLER_PARAM_IF_CHANGED
m_isInitialized = true;
}
void BackendSamplerObject::Bind(Uint unit) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (g_boundSamplersCache[unit] == this) return;
g_GLESFuncs.glBindSampler(static_cast<GLenum>(unit), m_backendSamplerId);
g_boundSamplersCache[unit] = this;
}
Uint BackendSamplerObject::GetBackendSamplerId() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
return m_backendSamplerId;
}
void UnbindSampler(Uint unit) {
if (g_boundSamplersCache[unit] == nullptr) return;
g_GLESFuncs.glBindSampler(static_cast<GLenum>(unit), 0);
g_boundSamplersCache[unit] = nullptr;
}
Array<BackendSamplerObject*, MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS> g_boundSamplersCache;
StateBackendObjectRegistry<MG_State::GLState::SamplerObject, BackendSamplerObject> g_backendSamplerObjects;
} // namespace SamplerImpl
namespace RenderbufferImpl {
BackendRenderbufferObject::BackendRenderbufferObject() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glGenRenderbuffers(1, &m_backendRBOId);
if (m_backendRBOId == 0) {
MGLOG_E("Failed to generate renderbuffer object.");
MGLOG_E("ES glGetError(): %s", MG_Util::ConvertGLEnumToString(g_GLESFuncs.glGetError()).c_str());
}
}
void BackendRenderbufferObject::Bind() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glBindRenderbuffer(GL_RENDERBUFFER, m_backendRBOId);
}
void BackendRenderbufferObject::SyncToBackend(
const SharedPtr<MG_State::GLState::RenderbufferObject>& stateRBOObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
if (!stateRBOObject) {
MGLOG_E("State RBO object is null, cannot sync to backend.");
return;
}
MGLOG_D("Syncing RBO with backend ID %u to backend for state ID %u", m_backendRBOId,
stateRBOObject->GetExternalIndex());
if (m_isInitialized && m_cacheInternalFormat == stateRBOObject->GetInternalFormat() &&
m_cacheWidth == stateRBOObject->GetWidth() && m_cacheHeight == stateRBOObject->GetHeight() &&
m_cacheSamples == stateRBOObject->GetSamples()) {
MGLOG_D("RBO %u already initialized with matching parameters, skipping re-allocation.",
stateRBOObject->GetExternalIndex());
return;
}
Bind();
// Allocate storage
TextureInternalFormat internalFormat = stateRBOObject->GetInternalFormat();
Int width = static_cast<Int>(stateRBOObject->GetWidth());
Int height = static_cast<Int>(stateRBOObject->GetHeight());
Int samples = static_cast<Int>(stateRBOObject->GetSamples());
GLenum glInternalFormat, glType, glFormat;
TextureImpl::GenerateRenderbufferFormatInfo(internalFormat, &glInternalFormat, &glFormat, &glType);
if (samples > 0) {
g_GLESFuncs.glRenderbufferStorageMultisample(
GL_RENDERBUFFER, static_cast<GLsizei>(samples), glInternalFormat, static_cast<GLsizei>(width),
static_cast<GLsizei>(height));
} else {
g_GLESFuncs.glRenderbufferStorage(GL_RENDERBUFFER, glInternalFormat, static_cast<GLsizei>(width),
static_cast<GLsizei>(height));
}
m_cacheInternalFormat = internalFormat;
m_cacheWidth = width;
m_cacheHeight = height;
m_cacheSamples = samples;
m_isInitialized = true;
MGLOG_D("RBO %u sync completed. backend ID %u", stateRBOObject->GetExternalIndex(), m_backendRBOId);
}
StateBackendObjectRegistry<MG_State::GLState::RenderbufferObject, BackendRenderbufferObject>
g_backendRenderbufferObjects;
} // namespace RenderbufferImpl
} // namespace MobileGL::MG_Backend::DirectGLES