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MobileGL/MobileGL/MG_Test/SanityTest.cpp
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// MobileGL - MobileGL/MG_Test/SanityTest.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 <gtest/gtest.h>
#include <algorithm>
#include <cstdlib>
#include <filesystem>
#include <fstream>
#include <string>
#include <MG_Backend/DirectGLES/BackendObject_DirectGLES.h>
#include <MG_Backend/DirectGLES/Managers.h>
#include <MG_Backend/DirectVulkan/BackendObject_DirectVulkan.h>
#include <MG_Backend/BackendObjects.h>
#include <MG_Impl/GLImpl/Getter/GL_Getter.h>
#include <MG_Impl/GLImpl/RenderState/GL_RenderState.h>
#include <MG_Impl/GLImpl/Texture/GL_Texture.h>
#include <MG_Impl/GLImpl/VertexArray/Validators.h>
#include <MG_State/GLState/Core.h>
#include <MG_State/GLState/FramebufferState/FramebufferObject.h>
#include <MG_State/GLState/TextureState/TextureState.h>
#include <MG_Backend/DirectVulkan/Renderer/ProgramFactory.h>
#include <MG_Backend/DirectVulkan/Renderer/UniformManager.h>
#include <MG_Backend/DirectVulkan/Renderer/VkRenderPassManager.h>
#include <MG_Backend/DirectVulkan/Renderer/VkTextureManager.h>
#include <MG_Backend/DirectVulkan/Renderer/VulkanRenderer.h>
#include <MG_Util/ShaderTranspiler/ShaderCompiler.h>
#include <MG_Util/ShaderTranspiler/ShaderSourceProcessor.h>
#include <MG_Util/Debug/Log.h>
namespace {
class DynamicParameterBackend final : public MobileGL::MG_Backend::BackendObject {
public:
explicit DynamicParameterBackend(MobileGL::MG_Backend::DynamicBackendParameters params):
m_params(params) {}
void Initialize() override {}
MobileGL::Bool InitCapabilities() override { return true; }
MobileGL::Bool InitWindowSurface() override { return true; }
const MobileGL::RendererInfo& GetRendererInfo() const override { return m_info; }
MobileGL::String GetBackendAPIVersionString() const override { return "test"; }
const MobileGL::MG_Backend::GlobalBackendFunctionsTable& GetBackendFunctions() const override {
return m_functions;
}
const MobileGL::MG_Backend::DynamicBackendParameters& GetDynamicParameters() const override {
return m_params;
}
MobileGL::BackendType GetBackendType() const override { return MobileGL::BackendType::Unknown; }
private:
MobileGL::MG_Backend::DynamicBackendParameters m_params;
MobileGL::MG_Backend::GlobalBackendFunctionsTable m_functions{};
MobileGL::RendererInfo m_info{
.RendererName = "Test",
.BackendName = "DynamicParameterBackend",
.ExtraVendor = MobileGL::Nullopt,
.RendererGLInfo = {.TargetGLVersion = {3, 3, 0},
.TargetGLSLVersion = {4, 6, 0},
.Extensions = {},
.IsCompatibilityProfile = false},
.StaticBackendCapability = {.AllowVSOnlyPrograms = false}};
};
void SetEnvVar(const char* name, const char* value) {
#if defined(_WIN32)
_putenv_s(name, value);
#else
setenv(name, value, 1);
#endif
}
void UnsetEnvVar(const char* name) {
#if defined(_WIN32)
_putenv_s(name, "");
#else
unsetenv(name);
#endif
}
MobileGL::SizeT CountOccurrences(const MobileGL::String& haystack, const MobileGL::String& needle) {
MobileGL::SizeT count = 0;
for (MobileGL::SizeT pos = haystack.find(needle); pos != MobileGL::String::npos;
pos = haystack.find(needle, pos + needle.size())) {
++count;
}
return count;
}
// Snapshots the DirectGLES capability globals on construction and restores them on
// destruction, so tests that mutate g_GLESCapabilities cannot leak state into later
// tests even if an assertion or exception unwinds the test body early.
struct ScopedGLESCapabilitiesOverride {
ScopedGLESCapabilitiesOverride():
m_snapshot(MobileGL::MG_Backend::DirectGLES::g_GLESCapabilities) {}
~ScopedGLESCapabilitiesOverride() {
MobileGL::MG_Backend::DirectGLES::g_GLESCapabilities = m_snapshot;
}
ScopedGLESCapabilitiesOverride(const ScopedGLESCapabilitiesOverride&) = delete;
ScopedGLESCapabilitiesOverride& operator=(const ScopedGLESCapabilitiesOverride&) = delete;
private:
MobileGL::MG_External::GLESCapabilities m_snapshot;
};
struct TextureBindCall {
GLenum target;
GLuint texture;
};
MobileGL::Vector<TextureBindCall>* g_textureBindCalls = nullptr;
GLuint g_nextBackendTextureId = 73;
void RecordTextureBind(GLenum target, GLuint texture) {
if (g_textureBindCalls) {
g_textureBindCalls->push_back({target, texture});
}
}
void GenerateBackendTextures(GLsizei count, GLuint* textures) {
for (GLsizei i = 0; i < count; ++i) {
textures[i] = g_nextBackendTextureId++;
}
}
void DeleteBackendTextures(GLsizei, const GLuint*) {}
GLenum NoBackendError() {
return GL_NO_ERROR;
}
// Isolates the DirectGLES globals touched by the binding-cache regression test. The test
// installs only the native ES entry points needed to construct/bind a backend texture and
// restores the process-wide state even when a gtest assertion unwinds the test body.
struct ScopedDirectGLESTextureBindings {
ScopedDirectGLESTextureBindings():
previousContext(MobileGL::Move(MobileGL::MG_State::pGLContext)),
previousFunctions(MobileGL::MG_Backend::DirectGLES::g_GLESFuncs),
previousActiveUnit(MobileGL::MG_Backend::DirectGLES::TextureImpl::g_activeTextureUnit),
previousCache(MobileGL::MG_Backend::DirectGLES::TextureImpl::g_boundTexturesCache),
previousRegistry(MobileGL::MG_Backend::DirectGLES::TextureImpl::g_backendTextureObjects) {
MobileGL::MG_State::pGLContext = MobileGL::MakeUnique<MobileGL::MG_State::GLState::GLContext>();
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_activeTextureUnit = 0;
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_boundTexturesCache = {};
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_backendTextureObjects = {};
MobileGL::MG_External::GLESFunctionsTable functions{};
functions.glBindTexture = RecordTextureBind;
functions.glDeleteTextures = DeleteBackendTextures;
functions.glGenTextures = GenerateBackendTextures;
functions.glGetError = NoBackendError;
MobileGL::MG_Backend::DirectGLES::SetGLESFuncsTable(functions);
g_textureBindCalls = &bindCalls;
}
~ScopedDirectGLESTextureBindings() {
g_textureBindCalls = nullptr;
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_boundTexturesCache = {};
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_backendTextureObjects = previousRegistry;
MobileGL::MG_Backend::DirectGLES::SetGLESFuncsTable(previousFunctions);
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_activeTextureUnit = previousActiveUnit;
MobileGL::MG_Backend::DirectGLES::TextureImpl::g_boundTexturesCache = previousCache;
MobileGL::MG_State::pGLContext = MobileGL::Move(previousContext);
}
ScopedDirectGLESTextureBindings(const ScopedDirectGLESTextureBindings&) = delete;
ScopedDirectGLESTextureBindings& operator=(const ScopedDirectGLESTextureBindings&) = delete;
MobileGL::Vector<TextureBindCall> bindCalls;
private:
MobileGL::UniquePtr<MobileGL::MG_State::GLState::GLContext> previousContext;
MobileGL::MG_External::GLESFunctionsTable previousFunctions;
MobileGL::Uint previousActiveUnit;
decltype(MobileGL::MG_Backend::DirectGLES::TextureImpl::g_boundTexturesCache) previousCache;
decltype(MobileGL::MG_Backend::DirectGLES::TextureImpl::g_backendTextureObjects) previousRegistry;
};
} // namespace
TEST(Sanity, BasicAssertions) {
// Expect two strings not to be equal.
EXPECT_STRNE("hello", "world");
// Expect equality.
EXPECT_EQ(7 * 6, 42);
}
TEST(DirectGLESSanity, AdvertisesDepthTextureForGlmarkShadowScenes) {
MobileGL::MG_Backend::DirectGLES::BackendObject_DirectGLES backend;
const auto& extensions = backend.GetRendererInfo().RendererGLInfo.Extensions;
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_depth_texture), extensions.end());
}
TEST(DirectGLESSanity, AdvertisesVoxyRequiredRenderingExtensionsWithoutRaisingGLVersion) {
MobileGL::MG_Backend::DirectGLES::BackendObject_DirectGLES backend;
const auto& rendererInfo = backend.GetRendererInfo().RendererGLInfo;
const auto& extensions = rendererInfo.Extensions;
EXPECT_EQ(rendererInfo.TargetGLVersion.Major, 3);
EXPECT_EQ(rendererInfo.TargetGLVersion.Minor, 3);
EXPECT_EQ(rendererInfo.TargetGLVersion.Patch, 0);
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_compute_shader),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_shader_storage_buffer_object),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_texture_storage),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_direct_state_access),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_multi_draw_indirect),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_indirect_parameters),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_shader_draw_parameters),
extensions.end());
EXPECT_EQ(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_gpu_shader_int64),
extensions.end());
EXPECT_EQ(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_KHR_shader_subgroup),
extensions.end());
}
TEST(DirectGLESSanity, BindingZeroClearsPreviousNativeTextureBinding) {
using namespace MobileGL;
namespace DirectGLES = MG_Backend::DirectGLES;
ScopedDirectGLESTextureBindings state;
GLuint frontendTexture = 0;
MG_Impl::GLImpl::GenTextures(1, &frontendTexture);
ASSERT_NE(frontendTexture, 0u);
MG_Impl::GLImpl::BindTexture(GL_TEXTURE_2D, frontendTexture);
const auto& frontendTextureObject = MG_State::pGLContext->GetTextureUnitObject(0)
.GetBindingSlot(TextureTarget::Texture2D)
.GetBoundObject();
ASSERT_NE(frontendTextureObject, nullptr);
ASSERT_EQ(frontendTextureObject->GetExternalIndex(), frontendTexture);
auto& backendTexture = DirectGLES::TextureImpl::g_backendTextureObjects.GetOrCreate(frontendTextureObject);
backendTexture = MakeShared<DirectGLES::TextureImpl::BackendTextureObject>();
const GLuint backendTextureId = backendTexture->GetBackendTextureId();
DirectGLES::BindCurrentTextures();
ASSERT_EQ(state.bindCalls.size(), 1u);
EXPECT_EQ(state.bindCalls[0].target, GL_TEXTURE_2D);
EXPECT_EQ(state.bindCalls[0].texture, backendTextureId);
// The default 1D slot maps to the same native ES target as 2D. It must not clear and force a
// redundant rebind while the real 2D frontend object remains current.
DirectGLES::BindCurrentTextures();
EXPECT_EQ(state.bindCalls.size(), 1u);
MG_Impl::GLImpl::BindTexture(GL_TEXTURE_2D, 0);
ASSERT_TRUE(MG_State::GLState::IsUndefinedDefaultTexture(
MG_State::pGLContext->GetTextureUnitObject(0)
.GetBindingSlot(TextureTarget::Texture2D)
.GetBoundObject()
.get()));
DirectGLES::BindCurrentTextures();
ASSERT_EQ(state.bindCalls.size(), 2u);
EXPECT_EQ(state.bindCalls[1].target, GL_TEXTURE_2D);
EXPECT_EQ(state.bindCalls[1].texture, 0u);
EXPECT_EQ(DirectGLES::TextureImpl::g_boundTexturesCache[0][static_cast<SizeT>(TextureTarget::Texture2D)],
nullptr);
}
TEST(DirectGLESSanity, ProvidesNamedFramebufferBlitForDirectStateAccess) {
MobileGL::MG_Backend::DirectGLES::BackendObject_DirectGLES backend;
const auto& funcs = backend.GetBackendFunctions().GL;
EXPECT_NE(funcs.ClearNamedFramebufferfv, nullptr);
EXPECT_NE(funcs.ClearNamedFramebufferfi, nullptr);
EXPECT_NE(funcs.BlitFramebuffer, nullptr);
EXPECT_NE(funcs.BlitNamedFramebuffer, nullptr);
}
TEST(DirectGLESSanity, RewritesBaseInstanceBuiltinForEsslVertexShaders) {
const MobileGL::String source = R"(#version 320 es
void main() {
uint drawId = gl_BaseInstance;
uint untouched = my_gl_BaseInstance_value;
}
)";
const auto rewritten = MobileGL::MG_Backend::DirectGLES::EmulateBaseInstanceInVertexShader(
source, GL_VERTEX_SHADER);
EXPECT_NE(rewritten.find("uniform highp int mg_BaseInstance;"), MobileGL::String::npos);
EXPECT_NE(rewritten.find("uint drawId = mg_BaseInstance;"), MobileGL::String::npos);
EXPECT_NE(rewritten.find("my_gl_BaseInstance_value"), MobileGL::String::npos);
EXPECT_EQ(rewritten.find("uint drawId = gl_BaseInstance;"), MobileGL::String::npos);
}
TEST(DirectGLESSanity, LeavesBaseInstanceBuiltinAloneOutsideVertexShaders) {
const MobileGL::String source = "#version 320 es\nuint value = gl_BaseInstance;\n";
const auto rewritten = MobileGL::MG_Backend::DirectGLES::EmulateBaseInstanceInVertexShader(
source, GL_FRAGMENT_SHADER);
EXPECT_EQ(rewritten, source);
}
TEST(DirectGLESSanity, RebasesInstanceIdWhenIndirectDrawsLeakBaseInstance) {
const ScopedGLESCapabilitiesOverride capsGuard;
auto& caps = MobileGL::MG_Backend::DirectGLES::g_GLESCapabilities;
caps.IndirectDrawInstanceIdIncludesBaseInstance = true;
// Deliberately not the GLESCapabilities default (8): the injected block must land at
// MaxShaderStorageBufferBindings - 1 = 12, so a regression that stops reading the
// probed cap and falls back to the struct default would surface as "binding = 7".
caps.MaxShaderStorageBufferBindings = 13;
const MobileGL::String source = R"(#version 310 es
highp int mg_BaseInstanceLowered;
void main() {
int instance = gl_InstanceID + mg_BaseInstanceLowered;
gl_Position = vec4(float(instance));
}
)";
const auto rewritten = MobileGL::MG_Backend::DirectGLES::PromoteDrawParameterGlobalsToUniforms(
source, GL_VERTEX_SHADER);
EXPECT_NE(rewritten.find("int instance = mg_ZeroBasedInstanceID + mg_BaseInstanceLowered;"),
MobileGL::String::npos);
EXPECT_NE(rewritten.find("#define mg_ZeroBasedInstanceID (gl_InstanceID - ((mg_BaseInstanceWordIndex >= 0) ? "
"int(mg_indirectWords[uint(mg_BaseInstanceWordIndex)]) : 0))"),
MobileGL::String::npos);
EXPECT_NE(rewritten.find(
"layout(std430, binding = 12) readonly buffer mg_IndirectParams { highp uint mg_indirectWords[]; };"),
MobileGL::String::npos);
// The one inside the #define machinery must be the only surviving gl_InstanceID.
EXPECT_EQ(CountOccurrences(rewritten, "gl_InstanceID"), 1u);
}
TEST(DirectGLESSanity, KeepsInstanceIdWhenIndirectDrawsAreConforming) {
const ScopedGLESCapabilitiesOverride capsGuard;
auto& caps = MobileGL::MG_Backend::DirectGLES::g_GLESCapabilities;
caps.IndirectDrawInstanceIdIncludesBaseInstance = false;
caps.MaxShaderStorageBufferBindings = 13;
const MobileGL::String source = R"(#version 310 es
highp int mg_BaseInstanceLowered;
void main() {
int instance = gl_InstanceID + mg_BaseInstanceLowered;
gl_Position = vec4(float(instance));
}
)";
const auto rewritten = MobileGL::MG_Backend::DirectGLES::PromoteDrawParameterGlobalsToUniforms(
source, GL_VERTEX_SHADER);
EXPECT_EQ(rewritten.find("mg_ZeroBasedInstanceID"), MobileGL::String::npos);
EXPECT_NE(rewritten.find("int instance = gl_InstanceID + mg_BaseInstanceLowered;"), MobileGL::String::npos);
}
TEST(DirectGLESSanity, LeavesDrawParameterGlobalsAloneOutsideVertexShaders) {
const ScopedGLESCapabilitiesOverride capsGuard;
auto& caps = MobileGL::MG_Backend::DirectGLES::g_GLESCapabilities;
caps.IndirectDrawInstanceIdIncludesBaseInstance = true;
caps.MaxShaderStorageBufferBindings = 13;
const MobileGL::String source =
"#version 310 es\nhighp int mg_BaseInstanceLowered;\nint value = gl_InstanceID + mg_BaseInstanceLowered;\n";
const auto rewritten = MobileGL::MG_Backend::DirectGLES::PromoteDrawParameterGlobalsToUniforms(
source, GL_FRAGMENT_SHADER);
EXPECT_EQ(rewritten, source);
}
TEST(DirectVulkanSanity, AdvertisesTextureStorageForDirectStateAccess) {
MobileGL::MG_Backend::DirectVulkan::BackendObject_DirectVulkan backend;
const auto& extensions = backend.GetRendererInfo().RendererGLInfo.Extensions;
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_direct_state_access),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_texture_storage), extensions.end());
}
TEST(DirectVulkanSanity, RenderPassExtentUsesSwapchainSizeOnlyForDefaultFramebuffer) {
using MobileGL::MG_Backend::DirectVulkan::ResolveRenderPassFramebufferExtent;
const MobileGL::TextureSize attachmentExtent = {512, 512, 1};
const VkExtent2D swapchainExtent = {3200u, 1440u};
EXPECT_EQ(ResolveRenderPassFramebufferExtent(true, attachmentExtent, swapchainExtent),
MobileGL::IntVec2(3200, 1440));
EXPECT_EQ(ResolveRenderPassFramebufferExtent(false, attachmentExtent, swapchainExtent),
MobileGL::IntVec2(512, 512));
}
TEST(DirectVulkanSanity, AdvertisesVoxyRequiredRenderingExtensionsWithoutRaisingGLVersion) {
MobileGL::MG_Backend::DirectVulkan::BackendObject_DirectVulkan backend;
const auto& rendererInfo = backend.GetRendererInfo().RendererGLInfo;
const auto& extensions = rendererInfo.Extensions;
EXPECT_EQ(rendererInfo.TargetGLVersion.Major, 3);
EXPECT_EQ(rendererInfo.TargetGLVersion.Minor, 3);
EXPECT_EQ(rendererInfo.TargetGLVersion.Patch, 0);
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_compute_shader),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_shader_storage_buffer_object),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_multi_draw_indirect),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_indirect_parameters),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_shader_draw_parameters),
extensions.end());
EXPECT_NE(std::find(extensions.begin(), extensions.end(), MobileGL::E_GL_ARB_gpu_shader_int64),
extensions.end());
}
TEST(DirectVulkanSanity, ClampsAdvertisedTextureAndDrawBufferLimitsToFrontendState) {
using namespace MobileGL;
MG_Backend::DirectVulkan::BackendObject_DirectVulkan backend;
MG_External::VulkanCapabilities highCaps;
highCaps.MaxTextureImageUnits = 256;
highCaps.MaxVertexTextureImageUnits = 256;
highCaps.MaxComputeTextureImageUnits = 256;
highCaps.MaxCombinedTextureImageUnits = 256;
highCaps.MaxDrawBuffers = 128;
highCaps.MaxColorAttachments = 128;
backend.ApplyVulkanCapabilitiesForTesting(highCaps);
const auto& highParams = backend.GetDynamicParameters();
// Per-stage sampler limits clamp to the desktop-conventional per-stage cap (kept well under
// Blaze3D's 128-entry TEXTURES[] so Iris' unbind loop cannot index out of bounds); the combined
// limit clamps to the full texture-unit array capacity.
EXPECT_EQ(highParams.MaxTextureImageUnits, MG_State::GLState::TextureState::MAX_PER_STAGE_TEXTURE_IMAGE_UNITS);
EXPECT_EQ(highParams.MaxVertexTextureImageUnits, MG_State::GLState::TextureState::MAX_PER_STAGE_TEXTURE_IMAGE_UNITS);
EXPECT_EQ(highParams.MaxComputeTextureImageUnits, MG_State::GLState::TextureState::MAX_PER_STAGE_TEXTURE_IMAGE_UNITS);
EXPECT_LE(highParams.MaxTextureImageUnits, 128);
EXPECT_EQ(highParams.MaxCombinedTextureImageUnits, MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS);
EXPECT_EQ(highParams.MaxDrawBuffers, MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS);
EXPECT_EQ(highParams.MaxColorAttachments, MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS);
MG_External::VulkanCapabilities lowCaps;
lowCaps.MaxTextureImageUnits = 16;
lowCaps.MaxVertexTextureImageUnits = 12;
lowCaps.MaxComputeTextureImageUnits = 10;
lowCaps.MaxCombinedTextureImageUnits = 20;
lowCaps.MaxDrawBuffers = 4;
lowCaps.MaxColorAttachments = 6;
backend.ApplyVulkanCapabilitiesForTesting(lowCaps);
const auto& lowParams = backend.GetDynamicParameters();
EXPECT_EQ(lowParams.MaxTextureImageUnits, 16);
EXPECT_EQ(lowParams.MaxVertexTextureImageUnits, 12);
EXPECT_EQ(lowParams.MaxComputeTextureImageUnits, 10);
EXPECT_EQ(lowParams.MaxCombinedTextureImageUnits, 20);
EXPECT_EQ(lowParams.MaxDrawBuffers, 4);
EXPECT_EQ(lowParams.MaxColorAttachments, 6);
}
TEST(DirectVulkanSanity, GatesPerStageImageUniformLimitsOnPhysicalDeviceFeatures) {
using namespace MobileGL;
MG_Backend::DirectVulkan::BackendObject_DirectVulkan backend;
MG_External::VulkanCapabilities caps;
caps.MaxImageUnits = 12;
caps.MaxCombinedImageUniforms = 10;
caps.MaxComputeImageUniforms = 9;
caps.SupportsVertexPipelineStoresAndAtomics = true;
caps.SupportsFragmentStoresAndAtomics = true;
caps.SupportsGeometryShader = false;
backend.ApplyVulkanCapabilitiesForTesting(caps);
const auto& withoutGeometry = backend.GetDynamicParameters();
EXPECT_EQ(withoutGeometry.MaxVertexImageUniforms, 10);
EXPECT_EQ(withoutGeometry.MaxGeometryImageUniforms, 0);
EXPECT_EQ(withoutGeometry.MaxFragmentImageUniforms, 10);
EXPECT_EQ(withoutGeometry.MaxComputeImageUniforms, 9);
caps.SupportsGeometryShader = true;
backend.ApplyVulkanCapabilitiesForTesting(caps);
EXPECT_EQ(backend.GetDynamicParameters().MaxGeometryImageUniforms, 10);
caps.SupportsVertexPipelineStoresAndAtomics = false;
caps.SupportsFragmentStoresAndAtomics = false;
backend.ApplyVulkanCapabilitiesForTesting(caps);
EXPECT_EQ(backend.GetDynamicParameters().MaxVertexImageUniforms, 0);
EXPECT_EQ(backend.GetDynamicParameters().MaxGeometryImageUniforms, 0);
EXPECT_EQ(backend.GetDynamicParameters().MaxFragmentImageUniforms, 0);
EXPECT_EQ(backend.GetDynamicParameters().MaxComputeImageUniforms, 9);
}
TEST(DirectGLESSanity, PreservesHostPerStageImageUniformLimits) {
using namespace MobileGL;
MG_Backend::DirectGLES::BackendObject_DirectGLES backend;
MG_External::GLESCapabilities caps;
caps.MaxImageUnits = 8;
caps.MaxCombinedImageUniforms = 16;
caps.MaxVertexImageUniforms = 2;
caps.MaxGeometryImageUniforms = 3;
caps.MaxFragmentImageUniforms = 4;
caps.MaxComputeImageUniforms = 5;
backend.ApplyGLESCapabilitiesForTesting(caps);
const auto& params = backend.GetDynamicParameters();
EXPECT_EQ(params.MaxVertexImageUniforms, 2);
EXPECT_EQ(params.MaxGeometryImageUniforms, 3);
EXPECT_EQ(params.MaxFragmentImageUniforms, 4);
EXPECT_EQ(params.MaxComputeImageUniforms, 5);
}
TEST(DirectVulkanSanity, AdvertisesSubgroupOnlyWhenVulkanReportsUsableSupport) {
using namespace MobileGL;
MG_Backend::DirectVulkan::BackendObject_DirectVulkan backend;
MG_External::VulkanCapabilities unsupportedCaps;
unsupportedCaps.SupportsShaderSubgroup = false;
unsupportedCaps.SubgroupSize = 32;
unsupportedCaps.SubgroupSupportedStages = VK_SHADER_STAGE_COMPUTE_BIT;
unsupportedCaps.SubgroupSupportedOperations = VK_SUBGROUP_FEATURE_BASIC_BIT;
backend.ApplyVulkanCapabilitiesForTesting(unsupportedCaps);
const auto& unsupportedExtensions = backend.GetRendererInfo().RendererGLInfo.Extensions;
EXPECT_EQ(std::find(unsupportedExtensions.begin(), unsupportedExtensions.end(), E_GL_KHR_shader_subgroup),
unsupportedExtensions.end());
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSize, 0u);
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSupportedStages, 0u);
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSupportedFeatures, 0u);
MG_External::VulkanCapabilities supportedCaps;
supportedCaps.SupportsShaderSubgroup = true;
supportedCaps.SubgroupSize = 32;
supportedCaps.SubgroupSupportedStages = VK_SHADER_STAGE_FRAGMENT_BIT | VK_SHADER_STAGE_COMPUTE_BIT;
supportedCaps.SubgroupSupportedOperations =
VK_SUBGROUP_FEATURE_BASIC_BIT | VK_SUBGROUP_FEATURE_ARITHMETIC_BIT | VK_SUBGROUP_FEATURE_QUAD_BIT;
supportedCaps.SubgroupQuadOperationsInAllStages = true;
backend.ApplyVulkanCapabilitiesForTesting(supportedCaps);
const auto& supportedExtensions = backend.GetRendererInfo().RendererGLInfo.Extensions;
EXPECT_NE(std::find(supportedExtensions.begin(), supportedExtensions.end(), E_GL_KHR_shader_subgroup),
supportedExtensions.end());
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSize, 32u);
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSupportedStages,
static_cast<Uint32>(GL_FRAGMENT_SHADER_BIT | GL_COMPUTE_SHADER_BIT));
EXPECT_EQ(backend.GetDynamicParameters().SubgroupSupportedFeatures,
static_cast<Uint32>(GL_SUBGROUP_FEATURE_BASIC_BIT_KHR |
GL_SUBGROUP_FEATURE_ARITHMETIC_BIT_KHR |
GL_SUBGROUP_FEATURE_QUAD_BIT_KHR));
EXPECT_TRUE(backend.GetDynamicParameters().SubgroupQuadOperationsInAllStages);
}
TEST(DirectVulkanSanity, KeepsOptionalGpuShaderInt64BranchForVoxyQuadDecode) {
using namespace MobileGL;
MG_Backend::pActiveBackendObject = MakeUnique<MG_Backend::DirectVulkan::BackendObject_DirectVulkan>();
String source = R"(#version 460 core
#extension GL_ARB_gpu_shader_int64 : enable
#ifdef GL_ARB_gpu_shader_int64
uint getLowBits(uint64_t v) {
return uint(v & uint64_t(0xffu));
}
#else
#error int64 branch should be enabled for DirectVulkan
#endif
void main() {
gl_Position = vec4(float(getLowBits(uint64_t(0x2au))));
}
)";
MG_Util::ShaderTranspiler::PreprocessShaderSource(ShaderStage::Vertex, source);
EXPECT_NE(source.find("#extension GL_ARB_gpu_shader_int64"), String::npos);
EXPECT_NE(source.find("GL_ARB_gpu_shader_int64"), String::npos);
auto shaderResult = MG_Util::ShaderTranspiler::ShaderCompiler::CompileShader({
.shaderType = GL_VERTEX_SHADER,
.sourceStr = source,
.flags = MG_Util::ShaderTranspiler::ShaderCompileBits::CompileForOpenGL,
});
EXPECT_TRUE(shaderResult) << (shaderResult ? "" : shaderResult.error().log);
MG_Backend::pActiveBackendObject.reset();
}
// GL_MAX_VERTEX_ATTRIBS must follow the backend but never exceed the state layer's current-value
// storage: the DirectVulkan draw path indexes that array by shader input location, so advertising more
// than it can hold is an out-of-bounds read waiting to happen.
TEST(GetterSanity, ClampsMaxVertexAttribsToCurrentValueStorageCapacity) {
using namespace MobileGL;
constexpr GLint capacity = MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// A driver reporting more attributes than MobileGL can store gets clamped.
{
MG_Backend::DynamicBackendParameters params;
params.MaxVertexAttribs = capacity * 2;
MG_Backend::pActiveBackendObject = MakeUnique<DynamicParameterBackend>(params);
EXPECT_EQ(MG_Impl::GLImpl::VertexArrayImpl::GetMaxVertexAttribs(), static_cast<Uint>(capacity));
GLint reported = 0;
MG_Impl::GLImpl::GetIntegerv(GL_MAX_VERTEX_ATTRIBS, &reported);
EXPECT_EQ(reported, capacity);
MG_Backend::pActiveBackendObject.reset();
}
// A driver below the capacity is followed exactly, and validation enforces that same bound.
{
MG_Backend::DynamicBackendParameters params;
params.MaxVertexAttribs = 16;
MG_Backend::pActiveBackendObject = MakeUnique<DynamicParameterBackend>(params);
EXPECT_EQ(MG_Impl::GLImpl::VertexArrayImpl::GetMaxVertexAttribs(), 16u);
GLint reported = 0;
MG_Impl::GLImpl::GetIntegerv(GL_MAX_VERTEX_ATTRIBS, &reported);
EXPECT_EQ(reported, 16);
MG_State::pGLContext->ClearErrors();
EXPECT_FALSE(MG_Impl::GLImpl::VertexArrayImpl::ValidateVertexAttributeIndex(16));
EXPECT_TRUE(MG_State::pGLContext->HasGLError());
MG_State::pGLContext->ClearErrors();
EXPECT_TRUE(MG_Impl::GLImpl::VertexArrayImpl::ValidateVertexAttributeIndex(15));
EXPECT_FALSE(MG_State::pGLContext->HasGLError());
MG_Backend::pActiveBackendObject.reset();
}
// With no active backend the storage capacity is the bound, and nothing dereferences a null backend.
EXPECT_EQ(MG_Impl::GLImpl::VertexArrayImpl::GetMaxVertexAttribs(), static_cast<Uint>(capacity));
MG_State::pGLContext.reset();
}
TEST(GetterSanity, PerStageImageUniformQueriesMatchShaderCompilerLimits) {
using namespace MobileGL;
MG_Backend::DynamicBackendParameters params;
params.MaxImageUnits = 8;
params.MaxCombinedImageUniforms = 8;
params.MaxVertexImageUniforms = 1;
params.MaxGeometryImageUniforms = 2;
params.MaxFragmentImageUniforms = 3;
params.MaxComputeImageUniforms = 4;
MG_Backend::pActiveBackendObject = MakeUnique<DynamicParameterBackend>(params);
GLint reported = -1;
MG_Impl::GLImpl::GetIntegerv(GL_MAX_VERTEX_IMAGE_UNIFORMS, &reported);
EXPECT_EQ(reported, 1);
MG_Impl::GLImpl::GetIntegerv(GL_MAX_GEOMETRY_IMAGE_UNIFORMS, &reported);
EXPECT_EQ(reported, 2);
MG_Impl::GLImpl::GetIntegerv(GL_MAX_FRAGMENT_IMAGE_UNIFORMS, &reported);
EXPECT_EQ(reported, 3);
MG_Impl::GLImpl::GetIntegerv(GL_MAX_COMPUTE_IMAGE_UNIFORMS, &reported);
EXPECT_EQ(reported, 4);
const String vertexImageStore = R"(#version 430 core
layout(r32ui, binding = 0) uniform uimage2D targetImages[gl_MaxVertexImageUniforms];
void main() {
imageStore(targetImages[0], ivec2(0), uvec4(1));
gl_Position = vec4(0.0, 0.0, 0.0, 1.0);
}
)";
auto supported = MG_Util::ShaderTranspiler::ShaderCompiler::CompileShader({
.shaderType = GL_VERTEX_SHADER,
.sourceStr = vertexImageStore,
});
EXPECT_TRUE(supported) << (supported ? "" : supported.error().log);
params.MaxVertexImageUniforms = 0;
MG_Backend::pActiveBackendObject = MakeUnique<DynamicParameterBackend>(params);
MG_Impl::GLImpl::GetIntegerv(GL_MAX_VERTEX_IMAGE_UNIFORMS, &reported);
EXPECT_EQ(reported, 0);
auto unsupported = MG_Util::ShaderTranspiler::ShaderCompiler::CompileShader({
.shaderType = GL_VERTEX_SHADER,
.sourceStr = vertexImageStore,
});
EXPECT_FALSE(unsupported);
MG_Backend::pActiveBackendObject.reset();
}
TEST(GetterSanity, ReportsKhrSubgroupDynamicParameters) {
using namespace MobileGL;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
MG_Backend::DynamicBackendParameters params;
params.SubgroupSize = 32;
params.SubgroupSupportedStages = GL_VERTEX_SHADER_BIT | GL_FRAGMENT_SHADER_BIT | GL_COMPUTE_SHADER_BIT;
params.SubgroupSupportedFeatures = GL_SUBGROUP_FEATURE_BASIC_BIT_KHR |
GL_SUBGROUP_FEATURE_ARITHMETIC_BIT_KHR |
GL_SUBGROUP_FEATURE_CLUSTERED_BIT_KHR |
GL_SUBGROUP_FEATURE_QUAD_BIT_KHR;
params.SubgroupQuadOperationsInAllStages = true;
MG_Backend::pActiveBackendObject = MakeUnique<DynamicParameterBackend>(params);
GLint intValue = 0;
MG_Impl::GLImpl::GetIntegerv(GL_SUBGROUP_SIZE_KHR, &intValue);
EXPECT_EQ(intValue, 32);
MG_Impl::GLImpl::GetIntegerv(GL_SUBGROUP_SUPPORTED_STAGES_KHR, &intValue);
EXPECT_EQ(intValue, static_cast<GLint>(params.SubgroupSupportedStages));
MG_Impl::GLImpl::GetIntegerv(GL_SUBGROUP_SUPPORTED_FEATURES_KHR, &intValue);
EXPECT_EQ(intValue, static_cast<GLint>(params.SubgroupSupportedFeatures));
MG_Impl::GLImpl::GetIntegerv(GL_SUBGROUP_QUAD_ALL_STAGES_KHR, &intValue);
EXPECT_EQ(intValue, GL_TRUE);
GLint64 int64Value = 0;
MG_Impl::GLImpl::GetInteger64v(GL_SUBGROUP_SUPPORTED_FEATURES_KHR, &int64Value);
EXPECT_EQ(int64Value, static_cast<GLint64>(params.SubgroupSupportedFeatures));
EXPECT_EQ(MG_Impl::GLImpl::GetError(), GL_NO_ERROR);
MG_Backend::pActiveBackendObject.reset();
MG_State::pGLContext.reset();
}
TEST(DirectVulkanSanity, CommandMemoryBarrierMakesIndirectDrawCommandsVisible) {
using namespace MobileGL;
using namespace MobileGL::MG_Backend::DirectVulkan;
const VkMemoryBarrier commandBarrier =
VulkanRenderer::BuildMemoryBarrierForGlBarriers(GL_COMMAND_BARRIER_BIT | GL_SHADER_STORAGE_BARRIER_BIT);
EXPECT_NE(commandBarrier.dstAccessMask & VK_ACCESS_INDIRECT_COMMAND_READ_BIT, 0u);
const VkMemoryBarrier storageOnlyBarrier =
VulkanRenderer::BuildMemoryBarrierForGlBarriers(GL_SHADER_STORAGE_BARRIER_BIT);
EXPECT_EQ(storageOnlyBarrier.dstAccessMask & VK_ACCESS_INDIRECT_COMMAND_READ_BIT, 0u);
}
TEST(DirectVulkanSanity, DrawIndexedIndirectCommandMatchesGlAndVulkanLayout) {
using namespace MobileGL::MG_Backend::DirectVulkan;
EXPECT_EQ(sizeof(DrawIndexedCmdParam), 20u);
EXPECT_EQ(offsetof(DrawIndexedCmdParam, indexCount), 0u);
EXPECT_EQ(offsetof(DrawIndexedCmdParam, instanceCount), 4u);
EXPECT_EQ(offsetof(DrawIndexedCmdParam, firstIndex), 8u);
EXPECT_EQ(offsetof(DrawIndexedCmdParam, vertexOffset), 12u);
EXPECT_EQ(offsetof(DrawIndexedCmdParam, firstInstance), 16u);
}
TEST(DirectVulkanSanity, UndefinedDepthStencilLayoutUsesDontCareForUnclearedAspects) {
using namespace MobileGL;
using namespace MobileGL::MG_Backend::DirectVulkan;
auto noClear = ResolveDepthStencilAttachmentLoadInfo(VK_IMAGE_LAYOUT_UNDEFINED, false, false);
EXPECT_EQ(noClear.depthLoadOp, VK_ATTACHMENT_LOAD_OP_DONT_CARE);
EXPECT_EQ(noClear.stencilLoadOp, VK_ATTACHMENT_LOAD_OP_DONT_CARE);
EXPECT_EQ(noClear.initialLayout, VK_IMAGE_LAYOUT_UNDEFINED);
auto depthOnlyClear = ResolveDepthStencilAttachmentLoadInfo(VK_IMAGE_LAYOUT_UNDEFINED, true, false);
EXPECT_EQ(depthOnlyClear.depthLoadOp, VK_ATTACHMENT_LOAD_OP_CLEAR);
EXPECT_EQ(depthOnlyClear.stencilLoadOp, VK_ATTACHMENT_LOAD_OP_DONT_CARE);
EXPECT_EQ(depthOnlyClear.initialLayout, VK_IMAGE_LAYOUT_UNDEFINED);
auto knownLayout = ResolveDepthStencilAttachmentLoadInfo(
VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL, false, false);
EXPECT_EQ(knownLayout.depthLoadOp, VK_ATTACHMENT_LOAD_OP_LOAD);
EXPECT_EQ(knownLayout.stencilLoadOp, VK_ATTACHMENT_LOAD_OP_LOAD);
EXPECT_EQ(knownLayout.initialLayout, VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL);
}
TEST(DirectVulkanSanity, SampledDepthStencilViewUsesSingleDepthAspect) {
using namespace MobileGL::MG_Backend::DirectVulkan;
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewAspectMask(VK_IMAGE_ASPECT_COLOR_BIT),
VK_IMAGE_ASPECT_COLOR_BIT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewAspectMask(VK_IMAGE_ASPECT_DEPTH_BIT),
VK_IMAGE_ASPECT_DEPTH_BIT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewAspectMask(VK_IMAGE_ASPECT_STENCIL_BIT),
VK_IMAGE_ASPECT_STENCIL_BIT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewAspectMask(
VK_IMAGE_ASPECT_DEPTH_BIT | VK_IMAGE_ASPECT_STENCIL_BIT),
VK_IMAGE_ASPECT_DEPTH_BIT);
}
TEST(DirectVulkanSanity, SpirvStorageImageFormatsMapToVulkanFormats) {
using MobileGL::MG_Backend::DirectVulkan::ProgramFactory;
struct FormatCase {
SpvImageFormat spirv;
VkFormat vulkan;
};
const FormatCase cases[] = {
{SpvImageFormatUnknown, VK_FORMAT_UNDEFINED},
{SpvImageFormatRgba32f, VK_FORMAT_R32G32B32A32_SFLOAT},
{SpvImageFormatRgba16f, VK_FORMAT_R16G16B16A16_SFLOAT},
{SpvImageFormatR32f, VK_FORMAT_R32_SFLOAT},
{SpvImageFormatRgba8, VK_FORMAT_R8G8B8A8_UNORM},
{SpvImageFormatRgba8Snorm, VK_FORMAT_R8G8B8A8_SNORM},
{SpvImageFormatRg32f, VK_FORMAT_R32G32_SFLOAT},
{SpvImageFormatRg16f, VK_FORMAT_R16G16_SFLOAT},
{SpvImageFormatR11fG11fB10f, VK_FORMAT_B10G11R11_UFLOAT_PACK32},
{SpvImageFormatR16f, VK_FORMAT_R16_SFLOAT},
{SpvImageFormatRgba16, VK_FORMAT_R16G16B16A16_UNORM},
{SpvImageFormatRgb10A2, VK_FORMAT_A2R10G10B10_UNORM_PACK32},
{SpvImageFormatRg16, VK_FORMAT_R16G16_UNORM},
{SpvImageFormatRg8, VK_FORMAT_R8G8_UNORM},
{SpvImageFormatR16, VK_FORMAT_R16_UNORM},
{SpvImageFormatR8, VK_FORMAT_R8_UNORM},
{SpvImageFormatRgba16Snorm, VK_FORMAT_R16G16B16A16_SNORM},
{SpvImageFormatRg16Snorm, VK_FORMAT_R16G16_SNORM},
{SpvImageFormatRg8Snorm, VK_FORMAT_R8G8_SNORM},
{SpvImageFormatR16Snorm, VK_FORMAT_R16_SNORM},
{SpvImageFormatR8Snorm, VK_FORMAT_R8_SNORM},
{SpvImageFormatRgba32i, VK_FORMAT_R32G32B32A32_SINT},
{SpvImageFormatRgba16i, VK_FORMAT_R16G16B16A16_SINT},
{SpvImageFormatRgba8i, VK_FORMAT_R8G8B8A8_SINT},
{SpvImageFormatR32i, VK_FORMAT_R32_SINT},
{SpvImageFormatRg32i, VK_FORMAT_R32G32_SINT},
{SpvImageFormatRg16i, VK_FORMAT_R16G16_SINT},
{SpvImageFormatRg8i, VK_FORMAT_R8G8_SINT},
{SpvImageFormatR16i, VK_FORMAT_R16_SINT},
{SpvImageFormatR8i, VK_FORMAT_R8_SINT},
{SpvImageFormatRgba32ui, VK_FORMAT_R32G32B32A32_UINT},
{SpvImageFormatRgba16ui, VK_FORMAT_R16G16B16A16_UINT},
{SpvImageFormatRgba8ui, VK_FORMAT_R8G8B8A8_UINT},
{SpvImageFormatR32ui, VK_FORMAT_R32_UINT},
{SpvImageFormatRgb10a2ui, VK_FORMAT_A2R10G10B10_UINT_PACK32},
{SpvImageFormatRg32ui, VK_FORMAT_R32G32_UINT},
{SpvImageFormatRg16ui, VK_FORMAT_R16G16_UINT},
{SpvImageFormatRg8ui, VK_FORMAT_R8G8_UINT},
{SpvImageFormatR16ui, VK_FORMAT_R16_UINT},
{SpvImageFormatR8ui, VK_FORMAT_R8_UINT},
{SpvImageFormatR64ui, VK_FORMAT_R64_UINT},
{SpvImageFormatR64i, VK_FORMAT_R64_SINT},
};
for (const auto& testCase : cases) {
EXPECT_EQ(ProgramFactory::ConvertSpirvImageFormatToVkFormat(testCase.spirv), testCase.vulkan)
<< "SpvImageFormat=" << static_cast<int>(testCase.spirv);
}
}
TEST(DirectVulkanSanity, MutableStorageImageViewsUseVulkanCompatibilityClasses) {
using MobileGL::MG_Backend::DirectVulkan::VkTextureManager;
EXPECT_TRUE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R32_UINT));
EXPECT_TRUE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_UINT, VK_FORMAT_R32_SINT));
EXPECT_TRUE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R16G16B16A16_UNORM, VK_FORMAT_R16G16B16A16_SFLOAT));
EXPECT_TRUE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R8G8B8A8_UINT));
EXPECT_TRUE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R32_SFLOAT));
EXPECT_FALSE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R16G16B16A16_SFLOAT));
EXPECT_FALSE(VkTextureManager::AreStorageImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_D32_SFLOAT));
}
TEST(DirectVulkanSanity, StorageImageViewFormatUsesBindingOnlyForFormatlessFloatPolicy) {
using MobileGL::MG_Backend::DirectVulkan::UniformManager;
EXPECT_EQ(UniformManager::ResolveStorageImageViewFormat(
VK_FORMAT_UNDEFINED, GL_RGBA16F, VK_FORMAT_R16G16B16A16_UNORM, true),
VK_FORMAT_R16G16B16A16_SFLOAT);
EXPECT_EQ(UniformManager::ResolveStorageImageViewFormat(
VK_FORMAT_UNDEFINED, GL_RGBA16, VK_FORMAT_R16G16B16A16_SFLOAT, true),
VK_FORMAT_R16G16B16A16_UNORM);
EXPECT_EQ(UniformManager::ResolveStorageImageViewFormat(
VK_FORMAT_R32_UINT, GL_RGBA16F, VK_FORMAT_R32_SFLOAT, false),
VK_FORMAT_R32_UINT);
EXPECT_EQ(UniformManager::ResolveStorageImageViewFormat(
VK_FORMAT_UNDEFINED, GL_RGBA16F, VK_FORMAT_R32_SFLOAT, false),
VK_FORMAT_R32_SFLOAT);
EXPECT_EQ(UniformManager::ResolveStorageImageViewFormat(
VK_FORMAT_UNDEFINED, GL_NONE, VK_FORMAT_R16G16B16A16_SFLOAT, true),
VK_FORMAT_UNDEFINED);
}
TEST(DirectVulkanSanity, ProgramObjectMovePreservesStorageImageFormatPolicy) {
using MobileGL::MG_Backend::DirectVulkan::ProgramFactory;
ProgramFactory::VkProgramObject source;
source.storageImageFormatByBinding = {VK_FORMAT_UNDEFINED, VK_FORMAT_R32_UINT};
source.storageImageUsesBindingFormatByBinding = {true, false};
ProgramFactory::VkProgramObject moved(std::move(source));
ASSERT_EQ(moved.storageImageFormatByBinding.size(), 2u);
ASSERT_EQ(moved.storageImageUsesBindingFormatByBinding.size(), 2u);
EXPECT_EQ(moved.storageImageFormatByBinding[0], VK_FORMAT_UNDEFINED);
EXPECT_EQ(moved.storageImageFormatByBinding[1], VK_FORMAT_R32_UINT);
EXPECT_TRUE(moved.storageImageUsesBindingFormatByBinding[0]);
EXPECT_FALSE(moved.storageImageUsesBindingFormatByBinding[1]);
ProgramFactory::VkProgramObject assigned;
assigned = std::move(moved);
ASSERT_EQ(assigned.storageImageFormatByBinding.size(), 2u);
ASSERT_EQ(assigned.storageImageUsesBindingFormatByBinding.size(), 2u);
EXPECT_TRUE(assigned.storageImageUsesBindingFormatByBinding[0]);
EXPECT_FALSE(assigned.storageImageUsesBindingFormatByBinding[1]);
}
TEST(DirectVulkanSanity, SamplerUniformTypesPreserveTheirNumericDomain) {
using namespace MobileGL::MG_Backend::DirectVulkan;
EXPECT_EQ(ProgramFactory::UniformTypeToSamplerNumericDomain(GL_SAMPLER_2D),
SamplerNumericDomain::Float);
EXPECT_EQ(ProgramFactory::UniformTypeToSamplerNumericDomain(GL_SAMPLER_CUBE_MAP_ARRAY_SHADOW),
SamplerNumericDomain::Float);
EXPECT_EQ(ProgramFactory::UniformTypeToSamplerNumericDomain(GL_INT_SAMPLER_2D_ARRAY),
SamplerNumericDomain::SignedInteger);
EXPECT_EQ(ProgramFactory::UniformTypeToSamplerNumericDomain(GL_UNSIGNED_INT_SAMPLER_2D),
SamplerNumericDomain::UnsignedInteger);
EXPECT_EQ(ProgramFactory::UniformTypeToSamplerNumericDomain(GL_IMAGE_2D),
SamplerNumericDomain::Unknown);
}
TEST(DirectVulkanSanity, SampledViewFormatMatchesSamplerNumericDomainWithoutChangingComponentLayout) {
using namespace MobileGL::MG_Backend::DirectVulkan;
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R32_SFLOAT, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_R32_UINT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R32_SFLOAT, SamplerNumericDomain::SignedInteger),
VK_FORMAT_R32_SINT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R32_UINT, SamplerNumericDomain::Float),
VK_FORMAT_R32_SFLOAT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R16G16B16A16_SFLOAT, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_R16G16B16A16_UINT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R8G8B8A8_UNORM, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_R8G8B8A8_UINT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_R32_UINT, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_R32_UINT);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_B10G11R11_UFLOAT_PACK32, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_UNDEFINED);
EXPECT_EQ(VkTextureManager::ResolveSampledImageViewFormat(
VK_FORMAT_D32_SFLOAT, SamplerNumericDomain::UnsignedInteger),
VK_FORMAT_UNDEFINED);
EXPECT_TRUE(VkTextureManager::AreSampledImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R32_UINT));
EXPECT_FALSE(VkTextureManager::AreSampledImageViewFormatsCompatible(
VK_FORMAT_R32_SFLOAT, VK_FORMAT_R16G16B16A16_UINT));
}
TEST(RenderStateSanity, ProvokingVertexUpdatesStateAndValidatesEnum) {
using namespace MobileGL;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
MG_Backend::pActiveBackendObject = MakeUnique<MG_Backend::DirectGLES::BackendObject_DirectGLES>();
GLint mode = 0;
MG_Impl::GLImpl::GetIntegerv(GL_PROVOKING_VERTEX, &mode);
EXPECT_EQ(mode, GL_LAST_VERTEX_CONVENTION);
const Uint initialVersion = MG_State::pGLContext->GetRenderStateParametersVersion();
MG_Impl::GLImpl::ProvokingVertex(GL_FIRST_VERTEX_CONVENTION);
MG_Impl::GLImpl::GetIntegerv(GL_PROVOKING_VERTEX, &mode);
EXPECT_EQ(mode, GL_FIRST_VERTEX_CONVENTION);
EXPECT_GT(MG_State::pGLContext->GetRenderStateParametersVersion(), initialVersion);
const Uint updatedVersion = MG_State::pGLContext->GetRenderStateParametersVersion();
MG_Impl::GLImpl::ProvokingVertex(GL_FIRST_VERTEX_CONVENTION);
EXPECT_EQ(MG_State::pGLContext->GetRenderStateParametersVersion(), updatedVersion);
MG_Impl::GLImpl::ProvokingVertex(GL_TRIANGLES);
EXPECT_EQ(MG_Impl::GLImpl::GetError(), GL_INVALID_ENUM);
MG_Impl::GLImpl::GetIntegerv(GL_PROVOKING_VERTEX, &mode);
EXPECT_EQ(mode, GL_FIRST_VERTEX_CONVENTION);
MG_Backend::pActiveBackendObject.reset();
MG_State::pGLContext.reset();
}
TEST(LogSanity, UsesEnvOverrideForFilePath) {
namespace fs = std::filesystem;
MobileGL::MG_Util::Debug::Close();
const fs::path logPath = fs::temp_directory_path() / "mobilegl-log-env-override-test.log";
const std::string message = "mobilegl-log-env-override-regression";
fs::remove(logPath);
SetEnvVar("MOBILEGL_LOG_FILE_PATH", logPath.string().c_str());
MobileGL::MG_Util::Debug::Log("INFO", ANDROID_LOG_INFO, "%s", message.c_str());
MobileGL::MG_Util::Debug::Close();
UnsetEnvVar("MOBILEGL_LOG_FILE_PATH");
{
std::ifstream logFile(logPath);
ASSERT_TRUE(logFile.good());
const std::string contents((std::istreambuf_iterator<char>(logFile)), std::istreambuf_iterator<char>());
EXPECT_NE(contents.find(message), std::string::npos);
}
fs::remove(logPath);
}
// ---- Pure-state entry points: glHint / glPointParameter* / glPixelStoref / glGetDoublev -----------
TEST(RenderStateSanity, HintStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Default is GL_DONT_CARE.
GLint value = -1;
GetIntegerv(GL_LINE_SMOOTH_HINT, &value);
EXPECT_EQ(value, GL_DONT_CARE);
// Each of the 4 core targets round-trips.
Hint(GL_LINE_SMOOTH_HINT, GL_NICEST);
Hint(GL_POLYGON_SMOOTH_HINT, GL_FASTEST);
Hint(GL_TEXTURE_COMPRESSION_HINT, GL_NICEST);
Hint(GL_FRAGMENT_SHADER_DERIVATIVE_HINT, GL_FASTEST);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetIntegerv(GL_LINE_SMOOTH_HINT, &value);
EXPECT_EQ(value, GL_NICEST);
GetIntegerv(GL_POLYGON_SMOOTH_HINT, &value);
EXPECT_EQ(value, GL_FASTEST);
GetIntegerv(GL_TEXTURE_COMPRESSION_HINT, &value);
EXPECT_EQ(value, GL_NICEST);
GetIntegerv(GL_FRAGMENT_SHADER_DERIVATIVE_HINT, &value);
EXPECT_EQ(value, GL_FASTEST);
// glGetBooleanv on a hint is always GL_TRUE (all hint enums are non-zero).
GLboolean b = GL_FALSE;
GetBooleanv(GL_LINE_SMOOTH_HINT, &b);
EXPECT_EQ(b, GL_TRUE);
// A compatibility-only target and a bad mode both raise GL_INVALID_ENUM and change nothing.
Hint(GL_PERSPECTIVE_CORRECTION_HINT, GL_NICEST);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
Hint(GL_LINE_SMOOTH_HINT, GL_LINEAR);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
GetIntegerv(GL_LINE_SMOOTH_HINT, &value);
EXPECT_EQ(value, GL_NICEST); // unchanged by the failed calls
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, PointParameterStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Defaults: fade threshold 1.0, coord origin GL_UPPER_LEFT.
GLfloat f = -1.0f;
GetFloatv(GL_POINT_FADE_THRESHOLD_SIZE, &f);
EXPECT_FLOAT_EQ(f, 1.0f);
GLint origin = -1;
GetIntegerv(GL_POINT_SPRITE_COORD_ORIGIN, &origin);
EXPECT_EQ(origin, GL_UPPER_LEFT);
// Scalar float sets the fade threshold; GetFloatv keeps the fractional part, GetIntegerv rounds.
PointParameterf(GL_POINT_FADE_THRESHOLD_SIZE, 2.5f);
GetFloatv(GL_POINT_FADE_THRESHOLD_SIZE, &f);
EXPECT_FLOAT_EQ(f, 2.5f);
GLint fi = 0;
GetIntegerv(GL_POINT_FADE_THRESHOLD_SIZE, &fi);
EXPECT_EQ(fi, 3); // 2.5 rounds to nearest (to even or up; lround gives 3)
// The v-form reads params[0]; the integer form sets the coord-origin enum.
const GLint lowerLeft = GL_LOWER_LEFT;
PointParameteriv(GL_POINT_SPRITE_COORD_ORIGIN, &lowerLeft);
GetIntegerv(GL_POINT_SPRITE_COORD_ORIGIN, &origin);
EXPECT_EQ(origin, GL_LOWER_LEFT);
EXPECT_EQ(GetError(), GL_NO_ERROR);
// Errors: negative fade -> GL_INVALID_VALUE; bad coord-origin -> GL_INVALID_ENUM; compat pname ->
// GL_INVALID_ENUM. None change state.
PointParameterf(GL_POINT_FADE_THRESHOLD_SIZE, -1.0f);
EXPECT_EQ(GetError(), GL_INVALID_VALUE);
PointParameteri(GL_POINT_SPRITE_COORD_ORIGIN, GL_FASTEST);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
PointParameterf(GL_POINT_SIZE_MIN, 0.0f);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
GetFloatv(GL_POINT_FADE_THRESHOLD_SIZE, &f);
EXPECT_FLOAT_EQ(f, 2.5f); // unchanged
GetIntegerv(GL_POINT_SPRITE_COORD_ORIGIN, &origin);
EXPECT_EQ(origin, GL_LOWER_LEFT); // unchanged
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, PixelStorefRoundsAndZeroTestsBooleans) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Integer pname: round to nearest.
PixelStoref(GL_UNPACK_ROW_LENGTH, 7.4f);
GLint iv = 0;
GetIntegerv(GL_UNPACK_ROW_LENGTH, &iv);
EXPECT_EQ(iv, 7);
PixelStoref(GL_UNPACK_ROW_LENGTH, 7.6f);
GetIntegerv(GL_UNPACK_ROW_LENGTH, &iv);
EXPECT_EQ(iv, 8);
// Boolean pname: a fractional value must map to TRUE via a zero-test, NOT round-to-zero.
PixelStoref(GL_PACK_SWAP_BYTES, 0.4f);
GLboolean bv = GL_FALSE;
GetBooleanv(GL_PACK_SWAP_BYTES, &bv);
EXPECT_EQ(bv, GL_TRUE);
PixelStoref(GL_PACK_SWAP_BYTES, 0.0f);
GetBooleanv(GL_PACK_SWAP_BYTES, &bv);
EXPECT_EQ(bv, GL_FALSE);
// glPixelStoref matches glPixelStorei for an integer pname.
PixelStorei(GL_PACK_ALIGNMENT, 8);
GLint viaI = 0;
GetIntegerv(GL_PACK_ALIGNMENT, &viaI);
PixelStoref(GL_PACK_ALIGNMENT, 8.0f);
GLint viaF = 0;
GetIntegerv(GL_PACK_ALIGNMENT, &viaF);
EXPECT_EQ(viaI, viaF);
EXPECT_EQ(GetError(), GL_NO_ERROR);
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, GetDoublevMatchesGetFloatvWidened) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Single-component pname.
PointParameterf(GL_POINT_FADE_THRESHOLD_SIZE, 2.5f);
GLdouble d1[4] = {-1, -1, -1, -1};
GetDoublev(GL_POINT_FADE_THRESHOLD_SIZE, d1);
EXPECT_DOUBLE_EQ(d1[0], 2.5);
EXPECT_DOUBLE_EQ(d1[1], -1.0); // second component untouched (1-component pname)
// 2-component pname: GL_DEPTH_RANGE (default 0..1).
GLdouble d2[2] = {-1, -1};
GetDoublev(GL_DEPTH_RANGE, d2);
EXPECT_DOUBLE_EQ(d2[0], 0.0);
EXPECT_DOUBLE_EQ(d2[1], 1.0);
// 4-component pname: GL_COLOR_CLEAR_VALUE (default 0,0,0,1) matches GetFloatv widened.
GLfloat cf[4] = {};
GetFloatv(GL_COLOR_CLEAR_VALUE, cf);
GLdouble cd[4] = {};
GetDoublev(GL_COLOR_CLEAR_VALUE, cd);
for (int i = 0; i < 4; ++i) EXPECT_DOUBLE_EQ(cd[i], static_cast<GLdouble>(cf[i]));
// Null params -> GL_INVALID_VALUE.
GetDoublev(GL_DEPTH_RANGE, nullptr);
EXPECT_EQ(GetError(), GL_INVALID_VALUE);
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, ClampColorStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Default GL_CLAMP_READ_COLOR is GL_FIXED_ONLY (NOT GL_TRUE/GL_FALSE). glGetIntegerv is the only
// getter that faithfully round-trips the tri-state.
GLint value = -1;
GetIntegerv(GL_CLAMP_READ_COLOR, &value);
EXPECT_EQ(value, GL_FIXED_ONLY);
// All three legal clamp values round-trip.
ClampColor(GL_CLAMP_READ_COLOR, GL_TRUE);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetIntegerv(GL_CLAMP_READ_COLOR, &value);
EXPECT_EQ(value, GL_TRUE);
ClampColor(GL_CLAMP_READ_COLOR, GL_FALSE);
GetIntegerv(GL_CLAMP_READ_COLOR, &value);
EXPECT_EQ(value, GL_FALSE);
// GL_FIXED_ONLY MUST be accepted: the Khronos man page's Errors section wrongly omits it, but the
// spec lists it as legal and it is the default. A man-page-faithful implementation would reject
// this call -- this assertion is the guard against that regression.
ClampColor(GL_CLAMP_READ_COLOR, GL_FIXED_ONLY);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetIntegerv(GL_CLAMP_READ_COLOR, &value);
EXPECT_EQ(value, GL_FIXED_ONLY);
// glGetBooleanv converts nonzero to GL_TRUE, so GL_FIXED_ONLY reads back as GL_TRUE (and cannot be
// distinguished from GL_TRUE); only GL_FALSE reads GL_FALSE.
GLboolean b = GL_FALSE;
GetBooleanv(GL_CLAMP_READ_COLOR, &b);
EXPECT_EQ(b, GL_TRUE);
ClampColor(GL_CLAMP_READ_COLOR, GL_FALSE);
GetBooleanv(GL_CLAMP_READ_COLOR, &b);
EXPECT_EQ(b, GL_FALSE);
// Errors leave state unchanged. A non-GL_CLAMP_READ_COLOR target (here GL_FRONT, standing in for
// any illegal/compat target) and a bad clamp value both raise GL_INVALID_ENUM.
ClampColor(GL_FRONT, GL_TRUE);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
ClampColor(GL_CLAMP_READ_COLOR, GL_NICEST);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
GetIntegerv(GL_CLAMP_READ_COLOR, &value);
EXPECT_EQ(value, GL_FALSE); // unchanged by the failed calls
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, PolygonModeStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// GL_POLYGON_MODE reports TWO values (front, back); default GL_FILL for both.
GLint mode[2] = {-1, -1};
GetIntegerv(GL_POLYGON_MODE, mode);
EXPECT_EQ(mode[0], GL_FILL);
EXPECT_EQ(mode[1], GL_FILL);
// Core sets both faces together; each legal mode round-trips into both slots.
PolygonMode(GL_FRONT_AND_BACK, GL_LINE);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetIntegerv(GL_POLYGON_MODE, mode);
EXPECT_EQ(mode[0], GL_LINE);
EXPECT_EQ(mode[1], GL_LINE);
PolygonMode(GL_FRONT_AND_BACK, GL_POINT);
GetIntegerv(GL_POLYGON_MODE, mode);
EXPECT_EQ(mode[0], GL_POINT);
EXPECT_EQ(mode[1], GL_POINT);
// Core rejects separate faces: GL_FRONT/GL_BACK were removed in 3.1 core -> GL_INVALID_ENUM, no
// state change. (Some desktop drivers leniently accept them; this guards against copying that.)
PolygonMode(GL_FRONT, GL_FILL);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
PolygonMode(GL_BACK, GL_FILL);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
// A bad mode also raises GL_INVALID_ENUM.
PolygonMode(GL_FRONT_AND_BACK, GL_LINEAR);
EXPECT_EQ(GetError(), GL_INVALID_ENUM);
GetIntegerv(GL_POLYGON_MODE, mode);
EXPECT_EQ(mode[0], GL_POINT); // unchanged by the failed calls
EXPECT_EQ(mode[1], GL_POINT);
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, ColorMaskIndexedStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
constexpr GLuint kMaxDrawBuffers = MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Default: every draw buffer's writemask is all-true.
GLboolean b0[4] = {GL_FALSE, GL_FALSE, GL_FALSE, GL_FALSE};
GetBooleanv(GL_COLOR_WRITEMASK, b0);
EXPECT_EQ(b0[0], GL_TRUE); EXPECT_EQ(b0[1], GL_TRUE);
EXPECT_EQ(b0[2], GL_TRUE); EXPECT_EQ(b0[3], GL_TRUE);
GLboolean bi[4] = {GL_FALSE, GL_FALSE, GL_FALSE, GL_FALSE};
GetBooleani_v(GL_COLOR_WRITEMASK, 3, bi);
EXPECT_EQ(bi[0], GL_TRUE); EXPECT_EQ(bi[3], GL_TRUE);
EXPECT_EQ(GetError(), GL_NO_ERROR);
// glColorMaski sets ONLY the addressed draw buffer; buffer 0 stays untouched, and the non-indexed
// glGetBooleanv still reports buffer 0.
ColorMaski(2, GL_FALSE, GL_TRUE, GL_FALSE, GL_TRUE);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetBooleani_v(GL_COLOR_WRITEMASK, 2, bi);
EXPECT_EQ(bi[0], GL_FALSE); EXPECT_EQ(bi[1], GL_TRUE);
EXPECT_EQ(bi[2], GL_FALSE); EXPECT_EQ(bi[3], GL_TRUE);
GetBooleanv(GL_COLOR_WRITEMASK, b0);
EXPECT_EQ(b0[0], GL_TRUE); EXPECT_EQ(b0[1], GL_TRUE); // buffer 0 unchanged by ColorMaski(2, ...)
// GLboolean coercion: any nonzero byte enables the component (NOT == GL_TRUE).
ColorMaski(1, static_cast<GLboolean>(2), static_cast<GLboolean>(0),
static_cast<GLboolean>(2), static_cast<GLboolean>(0));
GetBooleani_v(GL_COLOR_WRITEMASK, 1, bi);
EXPECT_EQ(bi[0], GL_TRUE); // 2 -> TRUE
EXPECT_EQ(bi[1], GL_FALSE); // 0 -> FALSE
EXPECT_EQ(bi[2], GL_TRUE);
EXPECT_EQ(bi[3], GL_FALSE);
// glColorMask (non-indexed) broadcasts to EVERY draw buffer, overwriting the per-buffer masks.
ColorMask(GL_FALSE, GL_FALSE, GL_TRUE, GL_TRUE);
GetBooleani_v(GL_COLOR_WRITEMASK, 2, bi);
EXPECT_EQ(bi[0], GL_FALSE); EXPECT_EQ(bi[2], GL_TRUE); // buffer 2 was overwritten by the broadcast
GetBooleani_v(GL_COLOR_WRITEMASK, 1, bi);
EXPECT_EQ(bi[0], GL_FALSE); EXPECT_EQ(bi[3], GL_TRUE);
// Out-of-range index -> GL_INVALID_VALUE, no state change.
ColorMaski(kMaxDrawBuffers, GL_TRUE, GL_TRUE, GL_TRUE, GL_TRUE);
EXPECT_EQ(GetError(), GL_INVALID_VALUE);
GetBooleani_v(GL_COLOR_WRITEMASK, 2, bi);
EXPECT_EQ(bi[0], GL_FALSE); // unchanged (still the broadcast value)
EXPECT_EQ(bi[2], GL_TRUE);
MG_State::pGLContext.reset();
}
TEST(RenderStateSanity, PrimitiveRestartIndexStoresAndReadsBack) {
using namespace MobileGL;
using namespace MobileGL::MG_Impl::GLImpl;
MG_State::pGLContext = MakeUnique<MG_State::GLState::GLContext>();
// Default is 0.
GLint value = -1;
GetIntegerv(GL_PRIMITIVE_RESTART_INDEX, &value);
EXPECT_EQ(value, 0);
// Any GLuint round-trips and generates no error.
PrimitiveRestartIndex(0xFFFFu);
EXPECT_EQ(GetError(), GL_NO_ERROR);
GetIntegerv(GL_PRIMITIVE_RESTART_INDEX, &value);
EXPECT_EQ(value, 0xFFFF);
// The full 32-bit range round-trips (read back as the same bit pattern).
PrimitiveRestartIndex(0xFFFFFFFFu);
GetIntegerv(GL_PRIMITIVE_RESTART_INDEX, &value);
EXPECT_EQ(static_cast<GLuint>(value), 0xFFFFFFFFu);
EXPECT_EQ(GetError(), GL_NO_ERROR);
MG_State::pGLContext.reset();
}