Compare commits

...
Author SHA1 Message Date
BZLZHH 30c6f55c2d [Fix] (MG_Backend/DirectVulkan): Add namespace qualifier to Version type. 2026-05-09 08:28:46 +08:00
BZLZHH b373535d6e [Fix] (MG_Impl/Texture): Fix proxy texture object handling. 2026-04-06 02:35:04 +08:00
swung0x48 4a3a44924a [Refactor] (MG_Backend/DirectVulkan/ProgramFactory): refactor uniform reflection 2026-04-03 16:45:11 +08:00
swung0x48 1b2a7989af [Fix] (MG_Util/ShaderTranspiler/SpvcSession): use proper usage bit to select the right code path. Fix bugs along the way 2026-04-01 14:57:00 +08:00
swung0x48 83d1ce177e [Optimization] (MG_Util/ShaderTranspiler/SpvcSession): use SPIRV-Reflect to avoid full AST parse, speeding up reflection 2026-04-01 10:28:37 +08:00
swung0x48 4321c4a827 [Submodule] (3rdparty/SPIRV-Reflect): add SPIRV-Reflect as dependency 2026-03-29 00:03:57 +08:00
swung0x48 a039ce0987 [Chore] (MG_State/ProgramState): some renames 2026-03-26 09:49:05 +08:00
swung0x48 accfaab720 [Refactor] (MG_Backend/DirectVulkan): get rid of junk, and rename some symbols 2026-03-24 14:20:21 +08:00
swung0x48 35658eb998 [Refactor] (MG_Backend/DirectVulkan): move uniform reflection from UniformDescriptorBinder to ProgramFactory 2026-03-23 16:36:17 +08:00
swung0x48 ccbde0196e [Fix] (MG_Test/ProgramTest): fix wrong decomp source output 2026-03-21 23:07:27 +08:00
swung0x48 0209c5461f [Feat] (MG_Backend/DirectVulkan): implement naive transient/resident buffer, and heuristics to downgrade resident buffer to transient 2026-03-20 17:39:10 +08:00
swung0x48 810b4886c7 [Feat] (MG_Backend/DirectVulkan): supports uint8 index buffer by VK_KHR_index_type_uint8 / VK_EXT_index_type_uint8 2026-03-20 15:27:57 +08:00
swung0x48 7dfc2149d8 [Feat] (MG_Backend/DirectVulkan): unified transient buffer arena 2026-03-20 13:56:12 +08:00
swung0x48 9d1e8bd7cd [Feat] (MG_Backend/DirectVulkan): VkBufferManager transient upload now includes uniform 2026-03-20 13:31:51 +08:00
swung0x48 bfa4049ac1 [Chore] (MG_Backend/DirectVulkan): unwrap frame context initialization 2026-03-20 09:55:22 +08:00
swung0x48 87c56ce3d5 [Fix] (MG_Backend/DirectVulkan): Fix VkBufferManager initialization assertion failure 2026-03-20 09:36:37 +08:00
swung0x48 f2ab50b84e [Feat] (MG_Backend/DirectVulkan): VkBufferManager 2026-03-19 17:44:35 +08:00
swung0x48 b6ac6c182e [Feat] (MG_Backend/DirectVulkan): Buffer arena, buffer slice 2026-03-19 17:23:52 +08:00
swung0x48 5e9f0f0c70 [Chore] (MG_Backend/DirectVulkan): remove some unused stuff 2026-03-19 08:59:34 +08:00
swung0x48 e4455aed9a [Feat] (MG_Backend/DirectVulkan): add draw cmd MultiDrawIndexedCmd 2026-03-18 16:08:00 +08:00
swung0x48 bc018c9513 [Chore] (MG_Backend/DirectVulkan): add indexBufferView field for draw cmds 2026-03-18 13:25:10 +08:00
swung0x48 2ecba4d70c [Fix] (MG_Test/VertexArrayTest): fix VertexArrayTest compilation error 2026-03-18 13:07:57 +08:00
swung0x48 1e11a5950e [Fix] (MG_Test/BufferTest): fix BufferTest compilation error 2026-03-18 11:07:56 +08:00
swung0x48 b324363db0 [Chore] (MG_Backend/DirectVulkan): hard assert SetupDraw failure 2026-03-18 11:01:00 +08:00
swung0x48 a654b15190 [Feat] (MG_Backend/DirectVulkan): naively implement DrawElementsBaseVertex and MultiDrawElementsBaseVertex 2026-03-18 10:43:30 +08:00
swung0x48 75ea7f8c0c [Chore] (MG_Backend/DirectVulkan): include index buffer upload into SetupDraw 2026-03-17 16:09:02 +08:00
swung0x48 09aeee4c03 [Chore] (MG_State/VertexArrayState): add const getter to index buffer binding slot 2026-03-17 15:55:16 +08:00
swung0x48 87122973be [Chore] (MG_Backend/DirectVulkan): refactor draw cmds 2026-03-17 15:10:17 +08:00
swung0x48 8b9adc5121 [Fix] (MG_Backend/DirectVulkan/VkRenderPassManager): avoid reusing active render pass when draw FBO attachments still have pending clears 2026-03-17 14:34:50 +08:00
swung0x48 9e42e40705 [Chore] (MG_Backend/DirectVulkan): notes for MaterializePendingClearForTexture 2026-03-09 17:13:56 +08:00
swung0x48 8a91225eb1 [Chore] (MG_Backend/DirectVulkan): debug log for clear manager 2026-03-09 16:22:51 +08:00
swung0x48 e82815802e [Feat] (MG_Backend/DirectVulkan): implement texture mipmap 2026-03-09 15:09:05 +08:00
swung0x48 67069d4a12 [Fix]: compilation error after merge 2026-03-08 11:06:27 +08:00
swung0x48 4a38e7224e Merge branch 'dev' into Feat/Backend-Direct-Vulkan 2026-03-08 10:31:44 +08:00
swung0x48 645f2f748f [Fix] (MG_Backend/DirectVulkan): fix missing clear when (texture-FBO attach -> clear -> detach) occurs 2026-03-08 00:24:30 +08:00
swung0x48 5652f9ae5f [Chore] (MG_Backend/DirectVulkan): implements BlitFramebuffer using backend manager APIs 2026-03-07 19:29:33 +08:00
swung0x48 f3b0b242dd [Feat] (MG_Backend/DirectVulkan): implements BlitFramebuffer 2026-03-07 18:22:38 +08:00
swung0x48 876cb7bcd3 [Chore] (MG_Backend/DirectVulkan): asserts fbo existence 2026-03-07 09:33:05 +08:00
swung0x48 ee9a121c6f [Fix] (MG_Impl/Init): bind default fbo to draw/read slot at init 2026-03-07 09:31:42 +08:00
swung0x48 00439c5c4a [Fix] (MG_Backend/DirectVulkan): Fix sampled-texture/render-pass layout hazard 2026-03-06 21:53:50 +08:00
swung0x48 d7286a5832 [Fix] (MG_Backend/DirectVulkan): some transition fixes 2026-03-06 18:25:33 +08:00
swung0x48 972804fdc7 [Fix] (MG_Backend/DirectVulkan): fixing some layout mismatch 2026-03-06 17:16:55 +08:00
swung0x48 bca7328421 [Fix] (MG_Backend/DirectVulkan): use hash to save active render pass 2026-03-06 16:17:56 +08:00
swung0x48 8097c0d7b1 [Fix] (MG_Backend/DirectVulkan): add untreated aspect member in TextureResource move ctor 2026-03-06 15:45:19 +08:00
swung0x48 641f54e1b7 [Feat] (MG_Backend/DirectVulkan): Transition texture for sampling 2026-03-06 15:37:14 +08:00
swung0x48 c36bfe0843 [Fix] (MG_Backend/DirectVulkan): track image layout naively 2026-03-06 14:53:43 +08:00
swung0x48 8ae66521e3 [Fix] (MG_Backend/DirectVulkan/VkRenderPassManager): early return when there's an active render pass that is compatible 2026-03-06 14:46:51 +08:00
swung0x48 6e21fd9a35 [Chore] (MG_Backend/DirectVulkan): a lotta assertions & transition uploaded texture directly to VK_ACCESS_SHADER_READ_BIT 2026-03-05 23:17:27 +08:00
swung0x48 a2e8faafe5 [Fix] (MG_Backend/DirectVulkan): upload buffer using fence, without vkQueueWaitIdle 2026-03-05 18:02:28 +08:00
swung0x48 668fa3033e [Optimize] (MG_Backend/DirectVulkan): store textureResources in permanent scratch space rather than temp memory 2026-03-05 09:44:03 +08:00
swung0x48 139f3f978d [Chore] (MG_Backend/DirectVulkan): get rid of unnecessary checks 2026-03-04 16:19:35 +08:00
swung0x48 09f96e5ba5 [Fix] (MG_Backend/DirectVulkan): Properly handle front face state. save VkDevice as static member 2026-03-04 15:08:23 +08:00
swung0x48 592a69b1c4 [Feat] (MG_Backend/DirectVulkan): integrating cullmode and frontface render state into vk pipeline 2026-03-03 17:01:02 +08:00
swung0x48 9211341ae7 [Chore] (MG_Backend/DirectVulkan): remove unused functions 2026-03-03 15:16:27 +08:00
swung0x48 5f9d354adb [Fix] (CMakeLists): add absent source file 2026-03-03 15:05:33 +08:00
swung0x48 0ae36b71f5 [Chore] (MG_Backend/DirectVulkan): move ClearAttachmentsOnActiveRenderPass to VulkanRenderer 2026-03-03 14:59:03 +08:00
swung0x48 20e2768f27 [Chore] (MG_Backend/DirectVulkan): move enum conversion to MG_Utils 2026-03-03 14:17:28 +08:00
swung0x48 00c8b5ae3a [Chore] (MG_Backend/DirectVulkan): get rid of unused functions 2026-03-03 13:38:06 +08:00
swung0x48 7687c19b33 [Fix] (MG_Backend/DirectVulkan): hook up TextureManager to TextureEnumConverter 2026-03-03 13:30:33 +08:00
swung0x48 fc3a7cd5f1 [Chore] (Config): Bump version to 26.03 2026-03-03 10:50:24 +08:00
swung0x48 0b7f906533 [Fix] (MG_Backend/DirectVulkan): use proper scissor state to fix menu 2026-03-03 09:43:25 +08:00
swung0x48 c78a94ed09 [Chore] (MG_Backend/DirectVulkan): use vkCmdClearAttachments to implement clear semantics when there's one compatible render pass in flight (instead of interrupting it) 2026-03-02 17:16:18 +08:00
swung0x48 debcb171ce [Chore] (MG_Backend/DirectVulkan): relaxing byteSize checks for textures in VkTextureManager 2026-03-02 14:55:55 +08:00
swung0x48 282468c9d5 [Fix] (MG_Backend/DirectVulkan): query clear color/state inside of RenderPassManager 2026-03-02 10:13:59 +08:00
swung0x48 34b06da83b [Fix] (MG_Backend/DirectVulkan): get ImageView from swapchain when creating render pass for default FBO 2026-03-02 09:49:32 +08:00
swung0x48 3d55f38dab [Fix] (ConfigLoader): still defaults to DirectGLES backend 2026-03-02 08:58:15 +08:00
swung0x48 16426db244 [Chore] (MG_Backend/DirectVulkan): manage active renderpass inside RenderPassManager static functions 2026-03-01 23:02:54 +08:00
swung0x48 6f8c76f06c [Fix] (MG_Backend/DirectVulkan): fixing Vulkan backend initialization 2026-03-01 22:39:30 +08:00
swung0x48 43f2043478 [Fix] (MG_Backend/DirectVulkan): Vulkan backend default framebuffer initialization 2026-03-01 21:21:32 +08:00
swung0x48 f61f068e28 [Fix] (MG_Backend/DirectVulkan): refactor VkRenderPassManager and hook it up (this commit only compiles and does not work) 2026-03-01 18:17:34 +08:00
swung0x48 e234d471fe [Fix] (MG_Backend/DirectVulkan): uninitialized vars in VkRenderPassManager 2026-02-28 18:00:31 +08:00
swung0x48 6ff97a9bb1 [Feat] (MG_Backend/DirectVulkan): new VkRenderPassManager and a bunch of changes accordingly 2026-02-28 17:37:45 +08:00
swung0x48 8adf1d3b8a [Chore] (MG_Backend/DirectVulkan): get rid of junk 2026-02-27 17:36:57 +08:00
swung0x48 2935279603 [Chore] (MG_Backend/DirectVulkan): remove "transition" stuff in VkRenderTargetManager 2026-02-27 16:34:09 +08:00
swung0x48 918b39bb63 [Fix] (MG_Backend/DirectVulkan): remove weird texture binding fallback 2026-02-27 16:22:19 +08:00
swung0x48 963e88943c [Chore] (MG_Backend/DirectVulkan): manage default depth buffer in SwapchainObject 2026-02-27 15:33:01 +08:00
swung0x48 1a75bcba5e [Fix] (MG_Backend/DirectVulkan): prevent operation in assert getting compiled out in release 2026-02-27 15:05:10 +08:00
swung0x48 b64309edfc [Chore] (MG_Backend/DirectVulkan): get rid of junk 2026-02-27 14:14:11 +08:00
swung0x48 e3f1db0a9a [Chore] (MG_Backend/DirectVulkan): use VkTextureManager::TransitionImageLayout more 2026-02-27 13:59:39 +08:00
swung0x48 2c848ab44b [Chore] (MG_Backend/DirectVulkan): move TransitionImageLayout to VkTextureManager 2026-02-27 09:44:23 +08:00
swung0x48 9b23594415 [Fix] (MG_Backend/DirectVulkan): misc fixes 2026-02-25 16:49:58 +08:00
swung0x48 e2e52965df [Feat] (MG_Backend/DirectVulkan): VkClearManager 2026-02-25 16:12:33 +08:00
swung0x48 6e7907f183 [Chore] (MG_Backend/DirectVulkan): get rid of more junk 2026-02-25 12:46:47 +08:00
swung0x48 b4be1292b8 [Feat] (MG_Backend/DirectVulkan): TextureManager mipmap completeness check 2026-02-25 11:04:28 +08:00
swung0x48 db58f4c214 [Feat] (MG_Backend/DirectVulkan): TextureManager supports mipmap 2026-02-25 10:52:54 +08:00
swung0x48 59bad77176 [Chore] (MG_Backend/DirectVulkan): rename functions in VkTextureManager 2026-02-25 09:52:15 +08:00
BZLZHH 3504fca8da Merge branch 'dev' into Perf/Improvement1 2026-02-24 22:48:23 +08:00
BZLZHH e61817ff6a [Fix] (MG_Backend/DirectGLES): Improve iteration safety in CollectGarbage. 2026-02-24 22:47:18 +08:00
BZLZHH b9df28838c Merge pull request #5 from Perf/Improvement1
Merge Perf/improvement1 to dev
2026-02-24 22:09:38 +08:00
BZLZHH fff00e65c4 [Perf] (Texture|State): Replace dynamic_cast hot paths with static_cast. 2026-02-24 15:40:06 +08:00
BZLZHH 8320b4f456 [Feat|Fix] (MG_Backend/DirectGLES): Unify state-backend registries with weak-ref GC. 2026-02-24 15:27:28 +08:00
swung0x48 a757669df5 [Improvement] (MG_Backend/DirectVulkan): split TextureSamplerManager into TextureManager and SamplerManager 2026-02-24 15:19:34 +08:00
swung0x48 e16c0645c0 [Improvement] (MG_Backend/DirectVulkan): use VMA to allocate texture images 2026-02-24 14:21:24 +08:00
swung0x48 8d37763fd3 [Improvement] (MG_Backend/DirectVulkan): use VMA to allocate RT images 2026-02-24 13:09:26 +08:00
swung0x48 e0d0551e7b [Chore] (MG_Test/Backend/DirectVulkan/TestExec): FramebufferManager -> RenderTargetManager 2026-02-24 13:07:50 +08:00
swung0x48 caa814e8f9 [Chore] (MG_Test/Backend/DirectVulkan/TestExec): get rid of now useless default renderpass 2026-02-24 12:25:04 +08:00
swung0x48 2502d32a2e [Chore] (MG_Test/Backend/DirectVulkan/TestExec): get rid of necessary check 2026-02-24 12:10:44 +08:00
swung0x48 e57dd3529e [Chore] (MG_Test/Backend/DirectVulkan/TestExec): get rid of junk 2026-02-24 10:19:21 +08:00
swung0x48 4b8d809237 [Fix] (MG_Test/Backend/DirectVulkan/TestExec): initialize MobileGL first then EGL stuff 2026-02-24 09:26:46 +08:00
swung0x48 d42182befc [Fix] (MG_Backend/DirectVulkan): swap swapchain width/height on 90/270 rotation 2026-02-23 23:12:22 +08:00
swung0x48 5efdb1016e [Fix] (MG_Backend/DirectVulkan): make vk_enum_string_helper.h available on Android NDK 2026-02-23 22:11:30 +08:00
BZLZHH 15e24cda78 [Perf|Improvement] (All): Improve performance & optimize code. 2026-02-23 16:00:38 +08:00
swung0x48 5013108a7f [Chore] (MG_Backend/DirectVulkan): get rid of unnecessary checks 2026-02-22 13:17:22 +08:00
swung0x48 359ba1c572 [Fix] (MG_Backend/DirectVulkan): properly compute hash for samplers 2026-02-22 12:51:00 +08:00
swung0x48 733523011b [Chore] (MG_Backend/DirectVulkan): more hard assertions 2026-02-22 12:31:18 +08:00
swung0x48 14fc13c34d [Chore] (MG_Backend/DirectVulkan): get rid of fallback image/sampler/imageview 2026-02-22 12:18:49 +08:00
swung0x48 e9fee1358d [Chore] (MG_Backend/DirectVulkan): hard assert instead of silently fallback 2026-02-22 12:08:31 +08:00
swung0x48 dae3dd9996 [Chore] (MG_Backend/DirectVulkan): unifying framebuffer manager Transition* functiosn 2026-02-22 11:08:43 +08:00
swung0x48 556db8b02e [Chore] (MG_Backend/DirectVulkan): get rid of redundant guardrails (cont.) 2026-02-22 10:35:10 +08:00
swung0x48 96e993eecf [Chore] (MG_Backend/DirectVulkan): get rid of redundant guardrails 2026-02-22 10:19:44 +08:00
swung0x48 fb3e2123cc [Fix] (MG_Backend/DirectVulkan): dynamically retrieve Vulkan functions in loader, fixing compilation error on lower NDK versions 2026-02-22 10:11:14 +08:00
135 changed files with 13571 additions and 13151 deletions
-2
View File
@@ -14,7 +14,6 @@ bugprone-forwarding-reference-overload,
bugprone-inaccurate-erase,
bugprone-incorrect-roundings,
bugprone-integer-division,
bugprone-lambda-function-name,
bugprone-macro-parentheses,
bugprone-macro-repeated-side-effects,
bugprone-misplaced-operator-in-strlen-in-alloc,
@@ -63,7 +62,6 @@ cert-str34-c,
cppcoreguidelines-interfaces-global-init,
cppcoreguidelines-narrowing-conversions,
cppcoreguidelines-pro-type-member-init,
cppcoreguidelines-pro-type-static-cast-downcast,
cppcoreguidelines-slicing,
google-default-arguments,
google-runtime-operator,
+9
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@@ -19,3 +19,12 @@
[submodule "3rdparty/VulkanMemoryAllocator"]
path = 3rdparty/VulkanMemoryAllocator
url = https://github.com/GPUOpen-LibrariesAndSDKs/VulkanMemoryAllocator.git
[submodule "3rdparty/Vulkan-Utility-Libraries"]
path = 3rdparty/Vulkan-Utility-Libraries
url = https://github.com/KhronosGroup/Vulkan-Utility-Libraries.git
[submodule "3rdparty/Vulkan-Headers"]
path = 3rdparty/Vulkan-Headers
url = https://github.com/KhronosGroup/Vulkan-Headers.git
[submodule "3rdparty/SPIRV-Reflect"]
path = 3rdparty/SPIRV-Reflect
url = https://github.com/KhronosGroup/SPIRV-Reflect.git
Vendored Submodule
+1
Submodule 3rdparty/SPIRV-Reflect added at 10b4f09a24
Vendored Submodule
+1
Submodule 3rdparty/Vulkan-Headers added at ad9ce1235e
+20 -3
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@@ -104,10 +104,20 @@ set(SPIRV_CROSS_ENABLE_CPP OFF CACHE BOOL "Disable C++ API target" FORCE)
set(SPIRV_CROSS_CLI OFF CACHE BOOL "Disable CLI binary" FORCE)
set(SPIRV_CROSS_STATIC ON CACHE BOOL "Prefer static libs" FORCE)
set(SPIRV_REFLECT_EXECUTABLE OFF CACHE BOOL "Build spirv-reflect executable" FORCE)
set(SPIRV_REFLECT_STATIC_LIB ON CACHE BOOL "Build a SPIRV-Reflect static library" FORCE)
set(SPIRV_REFLECT_BUILD_TESTS OFF CACHE BOOL "Build the SPIRV-Reflect test suite" FORCE)
set(SPIRV_REFLECT_ENABLE_ASSERTS OFF CACHE BOOL "Enable asserts for debugging" FORCE)
set(SPIRV_REFLECT_ENABLE_ASAN OFF CACHE BOOL "Use address sanitization" FORCE)
set(SPIRV_REFLECT_INSTALL OFF CACHE BOOL "Whether to install" FORCE)
# add_subdirectory(3rdparty/DiligentCore)
add_subdirectory(3rdparty/glslang)
add_subdirectory(3rdparty/SPIRV-Cross)
add_subdirectory(3rdparty/VulkanMemoryAllocator)
add_subdirectory(3rdparty/Vulkan-Headers)
add_subdirectory(3rdparty/Vulkan-Utility-Libraries)
add_subdirectory(3rdparty/SPIRV-Reflect)
set(XXHASH_BUILD_XXHSUM OFF)
option(BUILD_SHARED_LIBS OFF)
@@ -160,6 +170,8 @@ set(SOURCE_FILES
MobileGL/MG_Util/Converters/GLToMG/RenderStateEnumConverter.cpp
MobileGL/MG_Util/Converters/GLToMG/ProgramEnumConverter.cpp
MobileGL/MG_Util/Converters/MGToMG/TextureEnumConverter.cpp
MobileGL/MG_Util/Converters/MGToVk/RenderStateEnumConverter.cpp
MobileGL/MG_Util/Converters/MGToVk/TextureEnumConverter.cpp
MobileGL/MG_Util/Classifiers/TextureEnumClassifier.cpp
@@ -219,13 +231,16 @@ set(SOURCE_FILES
MobileGL/MG_Backend/DirectVulkan/Renderer/FrameContext.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/PipelineFactory.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/ProgramFactory.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/UniformDescriptorBinder.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/UniformManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/BufferArena.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkBufferManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VertexInputStateBuilder.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VertexInputStateFactory.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkBufferObject.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkFramebufferManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkSamplerManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkClearManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkRenderPassManager.cpp
MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureSamplerManager.cpp
MobileGL/MG_State/GLState/Core.cpp
MobileGL/MG_State/EGLState/Core.cpp
@@ -262,6 +277,8 @@ set(MOBILEGL_LINK_LIBRARIES
SPIRV-Tools
xxHash::xxhash
GPUOpen::VulkanMemoryAllocator
Vulkan::UtilityHeaders
spirv-reflect-static
)
set(MOBILEGL_COMPILE_DEF
+1 -1
View File
@@ -14,7 +14,7 @@ namespace MobileGL::MG_Config {
inline const String ProjectName = "MobileGL";
inline const String CoreName = "MobileGL Core";
inline const String CoreVendor = "MobileGL-Dev (BZLZHH, Swung0x48, Tungsten)";
inline const Version CoreVersion = {26, 2, 0, "-dev", VersionType::Development};
inline const Version CoreVersion = {26, 3, 0, "-dev", VersionType::Development};
inline const VersionStringFormatAttrib DefaultVersionStringFormatAttrib = {2, 2, 0, true, true};
inline const Uint64 CacheVersion = 0;
+1 -1
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@@ -34,7 +34,7 @@
#define MOBILEGL_EGL_API MOBILEGL_API
// ====================== MobileGL configurations ======================= //
#define MOBILEGL_LOG_ACTIVE_LEVEL MOBILEGL_LOG_LEVEL_INFO
#define MOBILEGL_LOG_ACTIVE_LEVEL MOBILEGL_LOG_LEVEL_DEBUG
#define MOBILEGL_LOG_ENABLE_CONSOLE 0
#define MOBILEGL_LOG_ENABLE_FILE 1
+4 -4
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@@ -34,10 +34,10 @@ namespace MobileGL {
void Destroy() {
MGLOG_I("MobileGL closing...");
glslang::FinalizeProcess();
delete MG_State::pGLContext;
delete MG_State::pEGLContext;
delete MG_Impl::GLImpl::TextureImpl::pProxyTextureManager;
delete MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo;
MG_State::pGLContext.reset();
MG_State::pEGLContext.reset();
MG_Impl::GLImpl::TextureImpl::pProxyTextureManager.reset();
MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo.reset();
MG_Util::Debug::Close();
// TODO: add and use Destroy functions for other subsystems
+146 -145
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@@ -8,6 +8,7 @@
#include "DirectGLES.h"
#include "EGL/egl.h"
#include "MG_Util/Types.h"
#include "Utils.h"
#include "Managers.h"
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
@@ -45,7 +46,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
namespace DebugImpl {
#if MOBILEGL_LOG_ACTIVE_LEVEL <= MOBILEGL_LOG_LEVEL_DEBUG
void ErrorLopper::Loop(std::function<void(GLenum)> func) {
void ErrorLopper::Loop(const std::function<void(GLenum)>& func) {
GLenum err = g_GLESFuncs.glGetError();
while (err != GL_NO_ERROR) {
func(err);
@@ -68,14 +69,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
Clear();
}
#else
void ErrorLopper::Loop(std::function<void(GLenum)> func) {}
void ErrorLopper::Loop(const std::function<void(GLenum)>& func) {}
void ErrorLopper::Clear() {}
ErrorLopper::ErrorLopper() {}
ErrorLopper::~ErrorLopper() {}
ErrorLopper::ErrorLopper() = default;
ErrorLopper::~ErrorLopper() = default;
#endif
#if MOBILEGL_LOG_ACTIVE_LEVEL <= MOBILEGL_LOG_LEVEL_DEBUG
OpenGLScopeMarker::OpenGLScopeMarker(String scopeName) {
OpenGLScopeMarker::OpenGLScopeMarker(const String& scopeName) {
g_GLESFuncs.glPushDebugGroup(GL_DEBUG_SOURCE_APPLICATION, 0, -1, scopeName.c_str());
}
@@ -83,7 +84,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glPopDebugGroup();
}
#else
OpenGLScopeMarker::OpenGLScopeMarker(String scopeName) {}
OpenGLScopeMarker::OpenGLScopeMarker(const String& scopeName) {}
OpenGLScopeMarker::~OpenGLScopeMarker() {}
#endif
@@ -92,31 +93,28 @@ namespace MobileGL::MG_Backend::DirectGLES {
// TODO: deletion for deleted objects
namespace BufferImpl {
void CreateAndSyncBufferObject(SharedPtr<MG_State::GLState::BufferObject>& bufferObject) {
void CreateAndSyncBufferObject(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject) {
if (!(bufferObject->GetChangeBits() & BufferChangeBits::DirtyBit)) return;
const auto& backendBufferIt = g_backendBufferObjects.find(bufferObject);
SharedPtr<BackendBufferObject> backendBufferObject;
if (backendBufferIt == g_backendBufferObjects.end()) {
backendBufferObject = MakeShared<BackendBufferObject>();
g_backendBufferObjects[bufferObject] = backendBufferObject;
} else {
backendBufferObject = backendBufferIt->second;
const auto& backendBufferIt = g_backendBufferObjects.find(bufferObject.get());
Bool exist = (backendBufferIt != g_backendBufferObjects.end());
auto& backendObj = exist ? backendBufferIt->second : g_backendBufferObjects.GetOrCreate(bufferObject);
if (!exist) {
backendObj = MakeShared<BackendBufferObject>();
}
backendBufferObject->SyncToBackend(bufferObject);
backendObj->SyncToBackend(bufferObject);
}
void SyncNeccessaryBuffers(Bool includeIBO = false, Bool includeIndirectBuffer = false) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_backendBufferObjects.CollectGarbageIfNeeded();
// All buffers we need are:
// 1.VBO 2.IBO (if needed) 3.UBO 4.IndirectBuffer (if needed) 5.SSBO (TODO)
// PBO is not needed since it should be handled in frontend
// static Vector<SharedPtr<MG_State::GLState::BufferObject>> buffersToSync;
// buffersToSync.clear();
const auto& currentVAOObject = MG_State::pGLContext->GetBoundVertexArray();
if (!currentVAOObject) {
MGLOG_E("No VAO is currently bound, cannot sync necessary buffers.");
@@ -126,7 +124,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
// VBO
for (const auto& attrib : currentVAOObject->GetAllAttributes()) {
if (!attrib.Enabled) continue;
auto bufferObject = attrib.Buffer;
auto& bufferObject = attrib.Buffer;
if (bufferObject) {
CreateAndSyncBufferObject(bufferObject);
}
@@ -134,7 +132,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
// IBO
if (includeIBO) {
auto possibleIBO = currentVAOObject->GetIndexBufferBindingSlot().GetBoundObject();
auto& possibleIBO = currentVAOObject->GetIndexBufferBindingSlot().GetBoundObject();
if (possibleIBO) {
CreateAndSyncBufferObject(possibleIBO);
}
@@ -142,7 +140,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Indirect Buffer Object
if (includeIndirectBuffer) {
auto possibleIndirectBuffer =
auto& possibleIndirectBuffer =
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::DrawIndirect).GetBoundObject();
if (possibleIndirectBuffer) {
CreateAndSyncBufferObject(possibleIndirectBuffer);
@@ -153,7 +151,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
auto uboBindingPointCnt = MG_State::pGLContext->GetBufferBindingPointCount(BufferTarget::Uniform);
for (SizeT i = 0; i < uboBindingPointCnt; ++i) {
auto& point = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::Uniform, i);
auto obj = point.GetBoundObject();
auto& obj = point.GetBoundObject();
if (obj) {
CreateAndSyncBufferObject(obj);
}
@@ -166,48 +164,49 @@ namespace MobileGL::MG_Backend::DirectGLES {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
auto currentVAOObject = MG_State::pGLContext->GetBoundVertexArray();
g_backendVertexArrayObjects.CollectGarbageIfNeeded();
auto& currentVAOObject = MG_State::pGLContext->GetBoundVertexArray();
if (!currentVAOObject) {
MGLOG_E("No VAO is currently bound, cannot sync current VAO.");
return;
}
const auto& backendVAOIt = g_backendVertexArrayObjects.find(currentVAOObject);
SharedPtr<VertexArrayImpl::BackendVertexArrayObject> backendVAOObject;
if (backendVAOIt == g_backendVertexArrayObjects.end()) {
backendVAOObject = MakeShared<VertexArrayImpl::BackendVertexArrayObject>();
g_backendVertexArrayObjects[currentVAOObject] = backendVAOObject;
} else {
backendVAOObject = backendVAOIt->second;
const auto& backendVAOIt = g_backendVertexArrayObjects.find(currentVAOObject.get());
Bool exist = (backendVAOIt != g_backendVertexArrayObjects.end());
auto& backendObj = exist ? backendVAOIt->second : g_backendVertexArrayObjects.GetOrCreate(currentVAOObject);
if (!exist) {
backendObj = MakeShared<VertexArrayImpl::BackendVertexArrayObject>();
}
backendVAOObject->SyncToBackend(currentVAOObject);
backendObj->SyncToBackend(currentVAOObject);
}
} // namespace VertexArrayImpl
namespace TextureImpl {
SharedPtr<BackendTextureObject> SyncTextureObjectToBackend(
SharedPtr<MG_State::GLState::ITextureObject>& textureObject) {
SharedPtr<BackendTextureObject>& SyncTextureObjectToBackend(
const SharedPtr<MG_State::GLState::ITextureObject>& textureObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
const auto& backendTextureIt = g_backendTextureObjects.find(textureObject);
SharedPtr<BackendTextureObject> backendTextureObject;
if (backendTextureIt == g_backendTextureObjects.end()) {
backendTextureObject = MakeShared<BackendTextureObject>();
g_backendTextureObjects[textureObject] = backendTextureObject;
} else {
backendTextureObject = backendTextureIt->second;
const auto& backendTextureIt = g_backendTextureObjects.find(textureObject.get());
Bool exist = (backendTextureIt != g_backendTextureObjects.end());
auto& backendObj = exist ? backendTextureIt->second : g_backendTextureObjects.GetOrCreate(textureObject);
if (!exist) {
backendObj = MakeShared<BackendTextureObject>();
}
backendTextureObject->SyncTextureParamsToBackend(textureObject);
backendTextureObject->SyncBuiltinSamplerToBackend(textureObject);
backendTextureObject->SyncMipmapsToBackend(textureObject);
return backendTextureObject;
backendObj->SyncTextureParamsToBackend(textureObject);
backendObj->SyncBuiltinSamplerToBackend(textureObject);
backendObj->SyncMipmapsToBackend(textureObject);
return backendObj;
}
void SyncNeccessaryTextures() {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_backendTextureObjects.CollectGarbageIfNeeded();
// All textures we need are:
// 1. textures bound to texture units (TODO: only sync ones that are used in current program)
// 2. textures used in current FBO
@@ -216,7 +215,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
for (int index = 0; index < MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS; ++index) {
auto& unit = MG_State::pGLContext->GetTextureUnitObject(index);
for (const auto& bindingSlot : unit.GetAllBindingSlots()) {
auto textureObject = bindingSlot.GetBoundObject();
auto& textureObject = bindingSlot.GetBoundObject();
if (textureObject) {
SyncTextureObjectToBackend(textureObject);
}
@@ -228,7 +227,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
if (currentFBO) {
for (const auto& attachment : currentFBO->GetAllAttachmentObjects()) {
if (!attachment.IsTexture()) continue;
auto textureObject = attachment.GetTexture();
auto& textureObject = attachment.GetTexture();
if (textureObject) {
SyncTextureObjectToBackend(textureObject);
}
@@ -242,16 +241,20 @@ namespace MobileGL::MG_Backend::DirectGLES {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_backendFramebufferObjects.CollectGarbageIfNeeded();
TextureImpl::g_backendTextureObjects.CollectGarbageIfNeeded();
RenderbufferImpl::g_backendRenderbufferObjects.CollectGarbageIfNeeded();
const FramebufferTarget fboTargets[] = {FramebufferTarget::Draw, FramebufferTarget::Read};
MG_State::GLState::FramebufferObject* lastUpdatedFBO = nullptr;
for (auto target : fboTargets) {
auto slot = MG_State::pGLContext->GetFramebufferBindingSlot(target);
for (auto& target : fboTargets) {
auto& slot = MG_State::pGLContext->GetFramebufferBindingSlot(target);
auto version = slot.GetVersion();
if (version == g_fboBindVersions[SizeT(target)]) continue;
auto currentFBO = slot.GetBoundObject();
auto& currentFBO = slot.GetBoundObject();
if (!currentFBO) {
MGLOG_E("No FBO is currently bound, cannot sync current FBO.");
@@ -263,21 +266,19 @@ namespace MobileGL::MG_Backend::DirectGLES {
continue;
}
const auto& backendFBOIt = g_backendFramebufferObjects.find(currentFBO);
SharedPtr<BackendFramebufferObject> backendFBOObject;
if (backendFBOIt == g_backendFramebufferObjects.end()) {
backendFBOObject = MakeShared<BackendFramebufferObject>();
g_backendFramebufferObjects[currentFBO] = backendFBOObject;
} else {
backendFBOObject = backendFBOIt->second;
}
if (currentFBO.get() == lastUpdatedFBO) {
MGLOG_D("Draw FBO and read FBO are the same, skipping sync.");
} else {
backendFBOObject->SyncToBackend(currentFBO, target);
continue;
}
const auto& backendFBOIt = g_backendFramebufferObjects.find(currentFBO.get());
Bool exist = (backendFBOIt != g_backendFramebufferObjects.end());
auto& backendObj = exist ? backendFBOIt->second : g_backendFramebufferObjects.GetOrCreate(currentFBO);
if (!exist) {
backendObj = MakeShared<BackendFramebufferObject>();
}
backendObj->SyncToBackend(currentFBO, target);
lastUpdatedFBO = currentFBO.get();
}
}
@@ -466,21 +467,23 @@ namespace MobileGL::MG_Backend::DirectGLES {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
g_backendProgramObjects.CollectGarbageIfNeeded();
SamplerImpl::g_backendSamplerObjects.CollectGarbageIfNeeded();
auto& currentProgram = MG_State::pGLContext->GetCurrentProgram();
if (!currentProgram || !currentProgram->GetLinkStatus()) {
g_GLESFuncs.glUseProgram(0);
return;
}
const auto& backendProgramIt = g_backendProgramObjects.find(currentProgram);
SharedPtr<BackendProgramObjectImpl> backendProgram;
if (backendProgramIt == g_backendProgramObjects.end()) {
backendProgram = MakeShared<BackendProgramObjectImpl>();
g_backendProgramObjects[currentProgram] = backendProgram;
backendProgram->SyncToBackend(currentProgram);
const auto& backendProgramIt = g_backendProgramObjects.find(currentProgram.get());
Bool exist = (backendProgramIt != g_backendProgramObjects.end());
auto& backendObj = exist ? backendProgramIt->second : g_backendProgramObjects.GetOrCreate(currentProgram);
if (!exist) {
backendObj = MakeShared<BackendProgramObjectImpl>();
backendObj->SyncToBackend(currentProgram);
} else {
backendProgram = backendProgramIt->second;
if (!backendProgram->GetBackendProgramId()) {
backendProgram->SyncToBackend(currentProgram);
if (!backendObj->GetBackendProgramId()) {
backendObj->SyncToBackend(currentProgram);
}
}
}
@@ -495,7 +498,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
const auto& currentFBO = slot.GetBoundObject();
if (currentFBO && currentFBO != MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo->defaultFBO) {
const auto& backendFBOIt = FramebufferImpl::g_backendFramebufferObjects.find(currentFBO);
const auto& backendFBOIt = FramebufferImpl::g_backendFramebufferObjects.find(currentFBO.get());
if (backendFBOIt != FramebufferImpl::g_backendFramebufferObjects.end()) {
backendFBOIt->second->Bind(target);
} else {
@@ -528,7 +531,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
#endif
const auto& currentVAO = MG_State::pGLContext->GetBoundVertexArray();
if (currentVAO) {
const auto& backendVAOIt = VertexArrayImpl::g_backendVertexArrayObjects.find(currentVAO);
const auto& backendVAOIt = VertexArrayImpl::g_backendVertexArrayObjects.find(currentVAO.get());
if (backendVAOIt != VertexArrayImpl::g_backendVertexArrayObjects.end()) {
backendVAOIt->second->Bind();
}
@@ -556,7 +559,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MG_Util::ConvertTextureTargetToString(target).c_str());
continue;
}
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) continue;
GLenum targetGL = MG_Util::ConvertTextureTargetToGLEnum(target);
@@ -566,7 +569,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Bind sampler object if necessary
const auto& samplerObject = textureUnit.GetSamplerObject();
if (samplerObject) {
const auto& backendSamplerIt = SamplerImpl::g_backendSamplerObjects.find(samplerObject);
const auto& backendSamplerIt = SamplerImpl::g_backendSamplerObjects.find(samplerObject.get());
if (backendSamplerIt != SamplerImpl::g_backendSamplerObjects.end()) {
backendSamplerIt->second->Bind(unit);
}
@@ -581,7 +584,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
#ifdef TRACY_ENABLE
ZoneScopedNC("BindCurrentProgram", TRACY_ZONECOLOR_BACKEND);
#endif
const auto& backendProgramIt = PrgramImpl::g_backendProgramObjects.find(currentProgram);
const auto& backendProgramIt = PrgramImpl::g_backendProgramObjects.find(currentProgram.get());
if (backendProgramIt != PrgramImpl::g_backendProgramObjects.end()) {
backendProgramIt->second->Use();
auto backendProgramId = backendProgramIt->second->GetBackendProgramId();
@@ -623,11 +626,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Connect buffer to backend binding point
auto& point = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::Uniform, binding);
auto bufferObj = point.GetBoundObject();
auto& bufferObj = point.GetBoundObject();
auto range = point.GetRange();
if (bufferObj) {
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(bufferObj);
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(bufferObj.get());
if (backendBufferIt != BufferImpl::g_backendBufferObjects.end()) {
const auto& backendBufferObject = backendBufferIt->second;
backendBufferObject->Bind(GL_UNIFORM_BUFFER);
@@ -635,9 +638,9 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glBindBufferBase(GL_UNIFORM_BUFFER, lastUBOBinding,
backendBufferObject->GetBackendBufferId());
} else {
g_GLESFuncs.glBindBufferRange(GL_UNIFORM_BUFFER, lastUBOBinding,
backendBufferObject->GetBackendBufferId(),
range.start, range.end - range.start);
g_GLESFuncs.glBindBufferRange(
GL_UNIFORM_BUFFER, lastUBOBinding, backendBufferObject->GetBackendBufferId(),
(GLintptr)range.start, (GLintptr)(range.end - range.start));
}
} else {
MGLOG_E("No backend buffer found for UBO binding, cannot bind UBO.");
@@ -660,18 +663,18 @@ namespace MobileGL::MG_Backend::DirectGLES {
backendProgramIt->second->GetBackendProgramId(), name.c_str());
g_GLESFuncs.glUniform1i(locAtBackend, unit);
auto samplerObject = MG_State::pGLContext->GetTextureUnitObject(unit).GetSamplerObject();
auto& samplerObject = MG_State::pGLContext->GetTextureUnitObject(unit).GetSamplerObject();
if (samplerObject) {
const auto& backendSamplerIt = SamplerImpl::g_backendSamplerObjects.find(samplerObject);
SharedPtr<SamplerImpl::BackendSamplerObject> backendSamplerObject;
if (backendSamplerIt == SamplerImpl::g_backendSamplerObjects.end()) {
backendSamplerObject = MakeShared<SamplerImpl::BackendSamplerObject>();
SamplerImpl::g_backendSamplerObjects[samplerObject] = backendSamplerObject;
} else {
backendSamplerObject = backendSamplerIt->second;
const auto& backendSamplerIt =
SamplerImpl::g_backendSamplerObjects.find(samplerObject.get());
Bool exist = (backendSamplerIt != SamplerImpl::g_backendSamplerObjects.end());
auto& backendObj = exist ? backendSamplerIt->second
: SamplerImpl::g_backendSamplerObjects.GetOrCreate(samplerObject);
if (!exist) {
backendObj = MakeShared<SamplerImpl::BackendSamplerObject>();
}
backendSamplerObject->SyncToBackend(samplerObject);
backendObj->SyncToBackend(samplerObject);
} else {
SamplerImpl::UnbindSampler(unit);
}
@@ -845,30 +848,29 @@ namespace MobileGL::MG_Backend::DirectGLES {
#if MOBILEGL_LOG_ACTIVE_LEVEL <= MOBILEGL_LOG_LEVEL_DEBUG && MOBILEGL_ENABLE_SCOPE_MARKER
DebugImpl::OpenGLScopeMarker marker(__func__);
#endif
DebugImpl::ErrorLopper errorLopper;
TextureImpl::SyncNeccessaryTextures();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
FramebufferImpl::SyncCurrentFBO();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
RenderStateImpl::SyncRenderState();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
BindCurrentFBO(FramebufferTarget::Draw);
BindCurrentFBO(FramebufferTarget::Read);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
MGLOG_D("ES %s(%d, %d, %d, %d, %d, %d, %d, %d, 0x%x, %s)", __func__, srcX0, srcY0, srcX1, srcY1, dstX0, dstY0,
dstX1, dstY1, mask, MG_Util::ConvertGLEnumToString(filter).c_str());
g_GLESFuncs.glBlitFramebuffer(srcX0, srcY0, srcX1, srcY1, dstX0, dstY0, dstX1, dstY1, mask, filter);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
@@ -895,15 +897,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
MG_Util::ConvertTextureTargetToString(textureTarget).c_str());
}
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
SharedPtr<TextureImpl::BackendTextureObject> backendTextureObject;
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
backendTextureObject = MakeShared<TextureImpl::BackendTextureObject>();
TextureImpl::g_backendTextureObjects[textureObject] = backendTextureObject;
} else {
backendTextureObject = backendTextureIt->second;
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
Bool exist = (backendTextureIt != TextureImpl::g_backendTextureObjects.end());
auto& backendObj =
exist ? backendTextureIt->second : TextureImpl::g_backendTextureObjects.GetOrCreate(textureObject);
if (!exist) {
backendObj = MakeShared<TextureImpl::BackendTextureObject>();
}
backendTextureObject->Bind(target, unit);
backendObj->Bind(target, unit);
}
return true;
}
@@ -953,15 +954,15 @@ namespace MobileGL::MG_Backend::DirectGLES {
DebugImpl::ErrorLopper errorLopper;
MGLOG_D("%s: Backend", __func__);
TextureImpl::SyncNeccessaryTextures();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
FramebufferImpl::SyncCurrentFBO();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
RenderStateImpl::SyncRenderState();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
if (!UpdateTextureBindingAtTarget(target)) return;
@@ -969,10 +970,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Bind necessary FBO and texture
BindCurrentFBO(FramebufferTarget::Read);
Uint activeTextureUnit = MG_State::pGLContext->GetActiveTextureUnit();
const auto& textureObject = MG_State::pGLContext->GetTextureUnitObject(activeTextureUnit)
const auto& textureObject = MG_State::pGLContext->GetTextureUnitObject((Int)activeTextureUnit)
.GetBindingSlot(MG_Util::ConvertGLEnumToTextureTarget(target))
.GetBoundObject();
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
MGLOG_E("CopyTexSubImage2D: No backend texture found for texture %u.",
textureObject ? textureObject->GetExternalIndex() : 0);
@@ -998,19 +999,19 @@ namespace MobileGL::MG_Backend::DirectGLES {
if (!isDepthFormat) {
g_GLESFuncs.glCopyTexImage2D(target, level, internalformat, x, y, width, height, border);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
} else {
MGLOG_D("%s: Backend depth", __func__);
g_GLESFuncs.glTexImage2D(target, level, (GLint)internalformat, width, height, border, format, type,
nullptr);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
GLint currentTex = backendTextureIt->second->GetBackendTextureId();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
auto currentTex = (GLint)backendTextureIt->second->GetBackendTextureId();
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
@@ -1026,7 +1027,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glBlitFramebuffer(x, y, x + width, y + height, 0, 0, width, height,
GL_DEPTH_BUFFER_BIT | (isStencilFormat ? GL_STENCIL_BUFFER_BIT : 0),
GL_NEAREST);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
@@ -1041,15 +1042,15 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("%s: Backend", __func__);
TextureImpl::SyncNeccessaryTextures();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
FramebufferImpl::SyncCurrentFBO();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
RenderStateImpl::SyncRenderState();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
@@ -1057,11 +1058,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Bind necessary FBO and texture
BindCurrentFBO(FramebufferTarget::Read);
Uint activeTextureUnit = MG_State::pGLContext->GetActiveTextureUnit();
auto activeTextureUnit = MG_State::pGLContext->GetActiveTextureUnit();
const auto& textureObject = MG_State::pGLContext->GetTextureUnitObject(activeTextureUnit)
.GetBindingSlot(MG_Util::ConvertGLEnumToTextureTarget(target))
.GetBoundObject();
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
MGLOG_E("CopyTexSubImage2D: No backend texture found for texture %u.",
textureObject ? textureObject->GetExternalIndex() : 0);
@@ -1069,12 +1070,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
backendTextureIt->second->Bind(target, activeTextureUnit);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
GLenum internalFormat;
g_GLESFuncs.glGetTexLevelParameteriv(target, level, GL_TEXTURE_INTERNAL_FORMAT, (GLint*)&internalFormat);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
auto mgInternalFormat = MG_Util::ConvertGLEnumToTextureInternalFormat(internalFormat);
@@ -1084,19 +1085,19 @@ namespace MobileGL::MG_Backend::DirectGLES {
if (!isDepthFormat) {
g_GLESFuncs.glCopyTexSubImage2D(target, level, xoffset, yoffset, x, y, width, height);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
} else {
MGLOG_D("%s: Backend depth", __func__);
GLint currentTex = backendTextureIt->second->GetBackendTextureId();
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
auto currentTex = backendTextureIt->second->GetBackendTextureId();
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
GLenum attachment = isStencilFormat ? GL_DEPTH_STENCIL_ATTACHMENT : GL_DEPTH_ATTACHMENT;
TempFBOBinder tempFBOBinder(false);
g_GLESFuncs.glFramebufferTexture2D(GL_DRAW_FRAMEBUFFER, attachment, target, currentTex, level);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
if (g_GLESFuncs.glCheckFramebufferStatus(GL_DRAW_FRAMEBUFFER) != GL_FRAMEBUFFER_COMPLETE) {
@@ -1107,7 +1108,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glBlitFramebuffer(
x, y, x + width, y + height, xoffset, yoffset, xoffset + width, yoffset + height,
GL_DEPTH_BUFFER_BIT | (isStencilFormat ? GL_STENCIL_BUFFER_BIT : 0), GL_NEAREST);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
}
@@ -1120,8 +1121,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
auto unitIndex = MG_State::pGLContext->GetActiveTextureUnit();
auto& unit = MG_State::pGLContext->GetTextureUnitObject(unitIndex);
auto& slot = unit.GetBindingSlot(MG_Util::ConvertGLEnumToTextureTarget(target));
auto texture = slot.GetBoundObject();
auto backendTexture = TextureImpl::SyncTextureObjectToBackend(texture);
auto& texture = slot.GetBoundObject();
auto& backendTexture = TextureImpl::SyncTextureObjectToBackend(texture);
backendTexture->Bind(target, unitIndex);
g_GLESFuncs.glGenerateMipmap(target);
@@ -1184,7 +1185,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
PixelStoreParameters m_prevParams;
PixelStoreParameters QueryCurrentGLPixelStoreParams(Bool isUnpack) {
static PixelStoreParameters QueryCurrentGLPixelStoreParams(Bool isUnpack) {
PixelStoreParameters p;
if (!isUnpack) {
g_GLESFuncs.glGetIntegerv(GL_PACK_ALIGNMENT, (GLint*)&p.Alignment);
@@ -1214,7 +1215,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
return p;
}
void Sync(Bool isUnpack, const PixelStoreParameters& params) {
static void Sync(Bool isUnpack, const PixelStoreParameters& params) {
if (!isUnpack) {
g_GLESFuncs.glPixelStorei(GL_PACK_ALIGNMENT, params.Alignment);
g_GLESFuncs.glPixelStorei(GL_PACK_ROW_LENGTH, params.RowLength);
@@ -1271,7 +1272,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
// Handle PBO
auto pixelPackBufferObject =
auto& pixelPackBufferObject =
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::PixelPack).GetBoundObject();
Bool usePBO;
GLuint prevPixelPackBuffer = 0;
@@ -1279,7 +1280,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
BufferImpl::CreateAndSyncBufferObject(pixelPackBufferObject);
MGLOG_D("ReadPixels: Using PBO %u", pixelPackBufferObject->GetExternalIndex());
usePBO = true;
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(pixelPackBufferObject);
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(pixelPackBufferObject.get());
if (backendBufferIt == BufferImpl::g_backendBufferObjects.end()) {
MGLOG_E("ReadPixels: No backend buffer found for PBO %u.",
@@ -1299,8 +1300,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
if (usePBO) {
// pull back to client memory if PBO is used
MGLOG_D("ReadPixels: PBO used, mapping buffer to client memory");
GLvoid* pboMappedPtr = g_GLESFuncs.glMapBufferRange(GL_PIXEL_PACK_BUFFER, 0,
pixelPackBufferObject->GetSize(), GL_MAP_READ_BIT);
GLvoid* pboMappedPtr = g_GLESFuncs.glMapBufferRange(
GL_PIXEL_PACK_BUFFER, 0, (GLsizeiptr)pixelPackBufferObject->GetSize(), GL_MAP_READ_BIT);
if (pboMappedPtr) {
MGLOG_D("ReadPixels: Copying data from PBO to client memory");
SizeT size = pixelPackBufferObject->GetSize();
@@ -1345,7 +1346,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("GetTexImage: SyncCurrentFBO()");
FramebufferImpl::SyncCurrentFBO();
Uint activeTextureUnit = MG_State::pGLContext->GetActiveTextureUnit();
auto activeTextureUnit = MG_State::pGLContext->GetActiveTextureUnit();
MGLOG_D("GetTexImage: active texture unit = %u", activeTextureUnit);
const auto& textureObject = MG_State::pGLContext->GetTextureUnitObject(activeTextureUnit)
@@ -1355,7 +1356,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("GetTexImage: bound texture object = %p (name=%u)", textureObject.get(),
textureObject ? textureObject->GetExternalIndex() : 0);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
MGLOG_E("GetTexImage: No backend texture found for texture %u.",
@@ -1383,14 +1384,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
return;
}
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
MGLOG_D("GetTexImage: Applying TempPixelStoreParameterSync (PACK)");
TempPixelStoreParameterSync tempPackParamsSync(false);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
@@ -1404,7 +1405,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
auto* textureMipmapObject = static_cast<MG_State::GLState::TextureObjectMipmap*>(textureObject.get());
auto levelRange = textureMipmapObject->GetLevelRange();
auto& levelRange = textureMipmapObject->GetLevelRange();
MGLOG_D("GetTexImage: mipmap level range = [%d, %d)", levelRange.x(), levelRange.y());
if (level < levelRange.x() || level >= levelRange.y()) {
@@ -1421,7 +1422,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("GetTexImage: mip level %d size = %dx%d", level, size.x(), size.y());
// Handle PBO
auto pixelPackBufferObject =
auto& pixelPackBufferObject =
MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::PixelPack).GetBoundObject();
Bool usePBO;
GLuint prevPixelPackBuffer = 0;
@@ -1429,7 +1430,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
BufferImpl::CreateAndSyncBufferObject(pixelPackBufferObject);
MGLOG_D("GetTexImage: Using PBO %u", pixelPackBufferObject->GetExternalIndex());
usePBO = true;
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(pixelPackBufferObject);
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(pixelPackBufferObject.get());
if (backendBufferIt == BufferImpl::g_backendBufferObjects.end()) {
MGLOG_E("GetTexImage: No backend buffer found for PBO %u.",
pixelPackBufferObject ? pixelPackBufferObject->GetExternalIndex() : 0);
@@ -1443,7 +1444,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("GetTexImage: Not using PBO");
}
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
MGLOG_D("GetTexImage: glReadPixels(0, 0, %d, %d, %s, %s, %p)", size.x(), size.y(),
@@ -1451,14 +1452,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
pixels);
g_GLESFuncs.glReadPixels(0, 0, size.x(), size.y(), esFormat, esType, pixels);
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
if (usePBO) {
// pull back to client memory if PBO is used
MGLOG_D("ReadPixels: PBO used, mapping buffer to client memory");
GLvoid* pboMappedPtr = g_GLESFuncs.glMapBufferRange(GL_PIXEL_PACK_BUFFER, 0,
pixelPackBufferObject->GetSize(), GL_MAP_READ_BIT);
GLvoid* pboMappedPtr = g_GLESFuncs.glMapBufferRange(
GL_PIXEL_PACK_BUFFER, 0, (GLsizeiptr)pixelPackBufferObject->GetSize(), GL_MAP_READ_BIT);
if (pboMappedPtr) {
MGLOG_D("ReadPixels: Copying data from PBO to client memory");
SizeT size = pixelPackBufferObject->GetSize();
@@ -1479,7 +1480,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
errorLopper.Loop([file = __FILE__, line = __LINE__](auto err) {
DebugImpl::ErrorLopper::Loop([file = __FILE__, line = __LINE__](auto err) {
MGLOG_D("ES error (%s:%d): %s", file, line, MG_Util::ConvertGLEnumToString(err).c_str());
});
MGLOG_D("GetTexImage: finished");
+112 -106
View File
@@ -7,10 +7,6 @@
// End of Source File Header
#include "Managers.h"
#include "MG_State/GLState/TextureState/TextureEnum.h"
#include "MG_State/GLState/TextureState/TextureObject.h"
#include "MG_State/GLState/TextureState/TextureState.h"
#include "MG_Util/Converters/GLToMG/TextureEnumConverter.h"
#include "Utils.h"
#include "DirectGLES.h"
@@ -18,6 +14,7 @@
#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>
@@ -44,7 +41,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendBufferObject::SyncToBackend(SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
void BackendBufferObject::SyncToBackend(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -105,7 +102,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
void BackendBufferObject::SyncToBackend_glBufferData(
SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -117,11 +114,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
GLenum usage = MG_Util::ConvertBufferUsageToGLEnum(stateBufferObject->GetUsage());
Bind();
g_GLESFuncs.glBufferData(TempBufferTarget, size, data, usage);
g_GLESFuncs.glBufferData(TempBufferTarget, (GLsizeiptr)size, data, usage);
}
void BackendBufferObject::SyncToBackend_glBufferSubData(
SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -130,7 +127,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
const void* data = stateBufferObject->GetDataReadOnly()->data();
// dirty range: [range.start, range.end)
auto ranges = stateBufferObject->GetDirtyRanges();
auto& ranges = stateBufferObject->GetDirtyRanges();
if (ranges.empty()) {
MGLOG_D("No dirty range to sync for buffer with ID: %u", m_backendBufferId);
return;
@@ -138,20 +135,21 @@ namespace MobileGL::MG_Backend::DirectGLES {
for (const auto& range : ranges) {
Bind();
g_GLESFuncs.glBufferSubData(TempBufferTarget, range.start, range.end - range.start,
g_GLESFuncs.glBufferSubData(TempBufferTarget, (GLintptr)range.start,
(GLintptr)(range.end - range.start),
reinterpret_cast<const char*>(data) + range.start);
}
}
void BackendBufferObject::SyncToBackend_glMapBufferRange(
SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject, Bool invalidate, Bool unsynchronized) {
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();
auto& ranges = stateBufferObject->GetDirtyRanges();
if (ranges.empty()) {
MGLOG_D("No dirty range to sync for buffer with ID: %u", m_backendBufferId);
return;
@@ -159,18 +157,18 @@ namespace MobileGL::MG_Backend::DirectGLES {
SizeT minStart = ranges.GetOverallMinStart();
SizeT maxEnd = ranges.GetOverallMaxEnd();
Bind();
void* mappedData = g_GLESFuncs.glMapBufferRange(TempBufferTarget, minStart, maxEnd - minStart,
(invalidate ? GL_MAP_INVALIDATE_RANGE_BIT : 0) |
(unsynchronized ? GL_MAP_UNSYNCHRONIZED_BIT : 0) |
GL_MAP_WRITE_BIT | GL_MAP_FLUSH_EXPLICIT_BIT);
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, range.start - minStart,
range.end - range.start);
g_GLESFuncs.glFlushMappedBufferRange(TempBufferTarget, (GLintptr)(range.start - minStart),
(GLintptr)(range.end - range.start));
}
g_GLESFuncs.glUnmapBuffer(TempBufferTarget);
} else {
@@ -191,7 +189,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glBindBuffer(target, m_backendBufferId);
}
UnorderedMap<SharedPtr<MG_State::GLState::BufferObject>, SharedPtr<BackendBufferObject>> g_backendBufferObjects;
StateBackendObjectRegistry<MG_State::GLState::BufferObject, BackendBufferObject> g_backendBufferObjects;
BackendBufferObject* g_boundVertexBufferObject = nullptr;
} // namespace BufferImpl
@@ -209,22 +207,21 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendVertexArrayObject::Bind() {
void BackendVertexArrayObject::Bind() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
g_GLESFuncs.glBindVertexArray(m_backendVAOId);
}
void BackendVertexArrayObject::BindAttributeBuffer(Uint index,
const MG_State::GLState::VertexAttribute& attrib) {
inline void BindAttributeBuffer(const MG_State::GLState::VertexAttribute& attrib) {
const auto& bufferObject = attrib.Buffer;
if (!bufferObject) {
MGLOG_W("Attribute has no bound buffer, skipping.");
return;
}
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(bufferObject);
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;
@@ -234,7 +231,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
backendBufferObject->Bind(GL_ARRAY_BUFFER);
}
void BackendVertexArrayObject::SyncToBackend(SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject) {
void BackendVertexArrayObject::SyncToBackend(
const SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -268,7 +266,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
m_syncedAttributeVersions[attribIndex].BufferVersion;
if (!needsSyncFormat && !needsSyncBuffer) continue;
BindAttributeBuffer(attribIndex, attrib);
BindAttributeBuffer(attrib);
if (!attrib.IsInteger) {
g_GLESFuncs.glVertexAttribPointer(
@@ -289,7 +287,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
if (currentIndexBufferVersion != m_syncedIndexBufferVersion) {
const auto& indexBufferBinding = stateVAOObject->GetIndexBufferBindingSlot().GetBoundObject();
if (indexBufferBinding) {
const auto& backendBufferIt = BufferImpl::g_backendBufferObjects.find(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);
@@ -303,7 +301,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
m_syncedAttributeVersions = allAttributeVersions;
}
UnorderedMap<SharedPtr<MG_State::GLState::VertexArrayObject>, SharedPtr<BackendVertexArrayObject>>
StateBackendObjectRegistry<MG_State::GLState::VertexArrayObject, BackendVertexArrayObject>
g_backendVertexArrayObjects;
} // namespace VertexArrayImpl
@@ -336,7 +334,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_boundTexturesCache[unit][targetN] = this;
}
Uint BackendTextureObject::GetBackendTextureId() {
Uint BackendTextureObject::GetBackendTextureId() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -344,7 +342,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
void BackendTextureObject::SyncMipmapsToBackend(
SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
@@ -353,7 +351,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
DebugImpl::ErrorLopper errorLopper;
MGLOG_D("Syncing texture mipmaps with backend ID %u to backend for state ID %u", m_backendTextureId,
stateTextureObject->GetExternalIndex());
@@ -381,7 +378,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
Bind(target);
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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();
@@ -414,7 +411,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
&glFormat, &glType);
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
for (auto uploadTarget : uploadTargets) {
for (auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
auto levelTexelSize = textureMipmapObject->GetMipmapTexelSize(uploadTarget, level);
auto levelByteSize = textureMipmapObject->GetMipmapByteSize(uploadTarget, level);
@@ -429,22 +426,22 @@ namespace MobileGL::MG_Backend::DirectGLES {
levelTexelSize.x(), levelTexelSize.y(), levelTexelSize.z(), levelByteSize, pData,
levelDirty ? "true" : "false");
errorLopper.Clear();
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), glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()),
static_cast<GLsizei>(levelTexelSize.y()), 0, glFormat, glType,
pData);
g_GLESFuncs.glTexImage2D(
glUploadTarget, static_cast<GLint>(level), (GLint)glInternalFormat,
static_cast<GLsizei>(levelTexelSize.x()), static_cast<GLsizei>(levelTexelSize.y()),
0, glFormat, glType, pData);
break;
}
case TextureTarget::Texture3D: {
g_GLESFuncs.glTexImage3D(
glUploadTarget, static_cast<GLint>(level), glInternalFormat,
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, pData);
break;
@@ -454,8 +451,9 @@ namespace MobileGL::MG_Backend::DirectGLES {
MG_Util::ConvertTextureTargetToString(textureTarget).c_str());
}
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__, glUploadTarget,
glInternalFormat, glFormat, glType, pData](GLenum err) {
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(),
@@ -478,7 +476,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
TextureImpl::GenerateTextureFormatInfo(textureMipmapObject->GetFormat(), &glInternalFormat,
&glFormat, &glType);
const auto& uploadTargets = textureMipmapObject->GetUploadTargets();
for (auto uploadTarget : uploadTargets) {
for (auto& uploadTarget : uploadTargets) {
for (SizeT level = 0; level < mipmapCount; ++level) {
if (!textureMipmapObject->IsStorageDirty(uploadTarget, level)) {
continue;
@@ -499,10 +497,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
auto glUploadTarget = MG_Util::ConvertTextureUploadTargetToGLEnum(uploadTarget);
g_GLESFuncs.glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
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());
});
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);
g_GLESFuncs.glTexSubImage2D(glUploadTarget, static_cast<GLint>(level), 0, 0,
static_cast<GLsizei>(texelSize.x()),
@@ -518,7 +517,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
auto* textureBufferObject =
static_cast<MG_State::GLState::TextureObjectBuffer*>(stateTextureObject.get());
auto& slot = textureBufferObject->GetBufferBindingSlot();
auto buffer = slot.GetBoundObject();
auto& buffer = slot.GetBoundObject();
auto bufferIndex = buffer->GetExternalIndex();
currentTextureInfo.bufferExternalIndex = bufferIndex;
@@ -530,10 +529,13 @@ namespace MobileGL::MG_Backend::DirectGLES {
// Need to sync texture buffer if not synced yet
auto& backendBuffers = BufferImpl::g_backendBufferObjects;
SharedPtr<BufferImpl::BackendBufferObject> backendBufferObject;
const auto& backendBufferIt = backendBuffers.find(buffer);
const auto& backendBufferIt = backendBuffers.find(buffer.get());
if (backendBufferIt == backendBuffers.end()) {
backendBufferObject = MakeShared<BufferImpl::BackendBufferObject>();
backendBuffers[buffer] = backendBufferObject;
auto& backendBufferSlot = backendBuffers.GetOrCreate(buffer);
if (!backendBufferSlot) {
backendBufferSlot = MakeShared<BufferImpl::BackendBufferObject>();
}
backendBufferObject = backendBufferSlot;
} else {
backendBufferObject = backendBufferIt->second;
}
@@ -553,7 +555,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
THROW_UNIMPL_EXCEPTION;
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
@@ -561,11 +563,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
void BackendTextureObject::SyncBuiltinSamplerToBackend(
SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
DebugImpl::ErrorLopper errorLopper;
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
@@ -594,7 +596,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
Bind(target);
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
@@ -607,28 +609,29 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glTexParameteri(target, glName, \
MG_Util::ConvertSampler##type##ToGLEnum(samplerParams.internalName)); \
m_cacheSamplerParameters.internalName = samplerParams.internalName; \
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()); \
}); \
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,
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.minFilter, 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,
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
m_cacheSamplerParameters.magFilter = samplerParams.magFilter;
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
@@ -645,18 +648,18 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glTexParameterf(target, GL_TEXTURE_MAX_LOD, samplerParams.maxLod);
m_cacheSamplerParameters.maxLod = samplerParams.maxLod;
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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(
SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
DebugImpl::ErrorLopper errorLopper;
if (!stateTextureObject) {
MGLOG_E("State texture object is null, cannot sync to backend.");
return;
@@ -683,7 +686,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
Bind(target);
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
@@ -696,14 +699,14 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glTexParameteri(target, GL_TEXTURE_BASE_LEVEL, static_cast<GLint>(levelRange.x()));
m_cacheLodRange.x() = levelRange.x();
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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();
}
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
@@ -720,7 +723,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED(a(), GL_TEXTURE_SWIZZLE_A);
#undef SYNC_TEX_SWIZZLE_PARAM_IF_CHANGED
m_cacheSwizzleParams = swizzleParams;
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
}
@@ -730,7 +733,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
GLfloat borderColorArray[4] = {borderColor.x(), borderColor.y(), borderColor.z(), borderColor.w()};
g_GLESFuncs.glTexParameterfv(target, GL_TEXTURE_BORDER_COLOR, borderColorArray);
m_cacheBorderColor = borderColor;
errorLopper.Loop([file = __FILE__, line = __LINE__, func = __func__](GLenum err) {
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());
});
}
@@ -760,8 +763,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
Array<Array<BackendTextureObject*, (SizeT)TextureTarget::TextureTargetCount>,
MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS>
g_boundTexturesCache;
UnorderedMap<SharedPtr<MG_State::GLState::ITextureObject>, SharedPtr<BackendTextureObject>>
g_backendTextureObjects;
StateBackendObjectRegistry<MG_State::GLState::ITextureObject, BackendTextureObject> g_backendTextureObjects;
} // namespace TextureImpl
namespace FramebufferImpl {
@@ -778,7 +780,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendFramebufferObject::Bind(FramebufferTarget target) {
void BackendFramebufferObject::Bind(FramebufferTarget target) const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -788,12 +790,12 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_GLESFuncs.glBindFramebuffer(GL_DRAW_FRAMEBUFFER, m_backendFBOId);
}
Bool BackendFramebufferObject::SyncAttachmentObject(
GLenum glFBOTarget, const MG_State::GLState::FramebufferAttachmentObject& attachmentObject,
GLenum glBackendAttachment) {
static Bool SyncAttachmentObject(GLenum glFBOTarget,
const MG_State::GLState::FramebufferAttachmentObject& attachmentObject,
GLenum glBackendAttachment) {
if (attachmentObject.IsTexture()) {
const auto& textureObject = attachmentObject.GetTexture();
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject);
const auto& backendTextureIt = TextureImpl::g_backendTextureObjects.find(textureObject.get());
if (backendTextureIt == TextureImpl::g_backendTextureObjects.end()) {
MGLOG_E("%s: No backend texture found for FBO attachment, cannot bind texture.", __func__);
return false;
@@ -807,11 +809,15 @@ namespace MobileGL::MG_Backend::DirectGLES {
} else if (attachmentObject.IsRenderbuffer()) {
const auto& renderbufferObject = attachmentObject.GetRenderbuffer();
const auto& backendRenderbufferIt =
RenderbufferImpl::g_backendRenderbufferObjects.find(renderbufferObject);
RenderbufferImpl::g_backendRenderbufferObjects.find(renderbufferObject.get());
SharedPtr<RenderbufferImpl::BackendRenderbufferObject> backendRenderbufferObject;
if (backendRenderbufferIt == RenderbufferImpl::g_backendRenderbufferObjects.end()) {
backendRenderbufferObject = MakeShared<RenderbufferImpl::BackendRenderbufferObject>();
RenderbufferImpl::g_backendRenderbufferObjects[renderbufferObject] = backendRenderbufferObject;
auto& backendRenderbufferSlot =
RenderbufferImpl::g_backendRenderbufferObjects.GetOrCreate(renderbufferObject);
if (!backendRenderbufferSlot) {
backendRenderbufferSlot = MakeShared<RenderbufferImpl::BackendRenderbufferObject>();
}
backendRenderbufferObject = backendRenderbufferSlot;
} else {
backendRenderbufferObject = backendRenderbufferIt->second;
}
@@ -824,8 +830,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
return true;
}
void BackendFramebufferObject::SyncToBackend(SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject,
FramebufferTarget asTarget) {
void BackendFramebufferObject::SyncToBackend(
const SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject, FramebufferTarget asTarget) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -853,7 +859,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
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];
auto& frontendBuf = stateDrawBuffers[i];
if (frontendBuf == FramebufferAttachmentType::None) {
m_backendDrawBuffers[i] = GL_NONE;
continue;
@@ -892,7 +898,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
const auto& attachmentVersions = stateFBOObject->GetAllFramebufferAttachmentVersions();
for (SizeT i = 0; i < attachments.size(); ++i) {
const auto& attachmentObject = attachments[i];
FramebufferAttachmentType frontendType = static_cast<FramebufferAttachmentType>(i);
auto frontendType = static_cast<FramebufferAttachmentType>(i);
GLenum glBackendAttachment = GL_NONE;
if (frontendType >= FramebufferAttachmentType::Color0 &&
frontendType <= FramebufferAttachmentType::Color31)
@@ -928,7 +934,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
// 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);
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();
@@ -944,7 +950,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
"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);
auto backendRboIt =
RenderbufferImpl::g_backendRenderbufferObjects.find(renderbufferObject.get());
MOBILEGL_ASSERT(
backendRboIt != RenderbufferImpl::g_backendRenderbufferObjects.end(),
"No backend renderbuffer found while framebuffer reports renderbuffer attachment.");
@@ -975,14 +982,13 @@ namespace MobileGL::MG_Backend::DirectGLES {
return glBackendReadBuffer;
}
UnorderedMap<SharedPtr<MG_State::GLState::FramebufferObject>, SharedPtr<BackendFramebufferObject>>
StateBackendObjectRegistry<MG_State::GLState::FramebufferObject, BackendFramebufferObject>
g_backendFramebufferObjects;
Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboBindVersions = {0};
} // namespace FramebufferImpl
namespace PrgramImpl {
UnorderedMap<SharedPtr<MG_State::GLState::ProgramObject>, SharedPtr<BackendProgramObjectImpl>>
g_backendProgramObjects;
StateBackendObjectRegistry<MG_State::GLState::ProgramObject, BackendProgramObjectImpl> g_backendProgramObjects;
BackendProgramObjectImpl::BackendProgramObjectImpl() {
#ifdef TRACY_ENABLE
@@ -1008,7 +1014,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendProgramObjectImpl::SyncToBackend(SharedPtr<MG_State::GLState::ProgramObject>& stateProgramObject) {
void BackendProgramObjectImpl::SyncToBackend(
const SharedPtr<MG_State::GLState::ProgramObject>& stateProgramObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -1068,7 +1075,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
String source;
auto& spirvCode = shaderSpirvs[index];
MG_Util::ShaderTranspiler::SpvcSession spvcSession(spirvCode);
MG_Util::ShaderTranspiler::SpvcSession spvcSession(spirvCode,
MG_Util::ShaderTranspiler::SessionUsageBit::Transpile);
spvc_compiler_options options;
spvcSession.CreateOptions(&options);
@@ -1161,7 +1169,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("Program sync completed. backend ID %u", m_backendProgramId);
}
void BackendProgramObjectImpl::Use() {
void BackendProgramObjectImpl::Use() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -1184,7 +1192,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendSamplerObject::SyncToBackend(SharedPtr<MG_State::GLState::SamplerObject>& stateSamplerObject) {
void BackendSamplerObject::SyncToBackend(
const SharedPtr<MG_State::GLState::SamplerObject>& stateSamplerObject) {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -1210,22 +1219,22 @@ namespace MobileGL::MG_Backend::DirectGLES {
#define SYNC_SAMPLER_PARAM_IF_CHANGED(internalName, glName, type) \
if (m_cacheSamplerParameters.internalName != samplerParams.internalName) { \
g_GLESFuncs.glSamplerParameteri(m_backendSamplerId, glName, \
MG_Util::ConvertSampler##type##ToGLEnum(samplerParams.internalName)); \
(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,
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.minFilter, 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,
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
(GLint)MG_Util::ConvertSamplerFilterModeToGLEnum(samplerParams.magFilter, SamplerMipmapMode::None));
m_cacheSamplerParameters.magFilter = samplerParams.magFilter;
}
@@ -1256,7 +1265,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
g_boundSamplersCache[unit] = this;
}
Uint BackendSamplerObject::GetBackendSamplerId() {
Uint BackendSamplerObject::GetBackendSamplerId() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -1271,8 +1280,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
Array<BackendSamplerObject*, MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS> g_boundSamplersCache;
UnorderedMap<SharedPtr<MG_State::GLState::SamplerObject>, SharedPtr<BackendSamplerObject>>
g_backendSamplerObjects;
StateBackendObjectRegistry<MG_State::GLState::SamplerObject, BackendSamplerObject> g_backendSamplerObjects;
} // namespace SamplerImpl
namespace RenderbufferImpl {
@@ -1287,7 +1295,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
}
}
void BackendRenderbufferObject::Bind() {
void BackendRenderbufferObject::Bind() const {
#ifdef TRACY_ENABLE
ZoneScopedC(TRACY_ZONECOLOR_BACKEND);
#endif
@@ -1334,9 +1342,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
MGLOG_D("RBO %u sync completed. backend ID %u", stateRBOObject->GetExternalIndex(), m_backendRBOId);
}
UnorderedMap<SharedPtr<MG_State::GLState::RenderbufferObject>, SharedPtr<BackendRenderbufferObject>>
StateBackendObjectRegistry<MG_State::GLState::RenderbufferObject, BackendRenderbufferObject>
g_backendRenderbufferObjects;
} // namespace RenderbufferImpl
namespace Utils {} // namespace Utils
} // namespace MobileGL::MG_Backend::DirectGLES
+122 -34
View File
@@ -15,19 +15,113 @@
#include <MG_State/GLState/Core.h>
namespace MobileGL::MG_Backend::DirectGLES {
template <typename StateObject, typename BackendObject>
class StateBackendObjectRegistry {
public:
using StatePtr = SharedPtr<StateObject>;
using StateWeakPtr = std::weak_ptr<StateObject>;
using BackendPtr = SharedPtr<BackendObject>;
using BackendMap = UnorderedMap<StateObject*, BackendPtr>;
using StateRefMap = UnorderedMap<StateObject*, StateWeakPtr>;
using iterator = typename BackendMap::iterator;
using const_iterator = typename BackendMap::const_iterator;
BackendPtr& GetOrCreate(const StatePtr& stateObj) {
MOBILEGL_ASSERT(stateObj != nullptr, "State object must not be null");
auto* key = stateObj.get();
auto trackedStateIt = m_stateRefs.find(key);
if (trackedStateIt != m_stateRefs.end() && trackedStateIt->second.expired()) {
EraseByKey(key);
}
m_stateRefs[key] = stateObj;
return m_backendObjects[key];
}
iterator find(StateObject* stateObj) {
if (!IsAlive(stateObj)) {
EraseByKey(stateObj);
return m_backendObjects.end();
}
return m_backendObjects.find(stateObj);
}
const_iterator find(StateObject* stateObj) const {
return const_cast<StateBackendObjectRegistry*>(this)->find(stateObj);
}
iterator end() { return m_backendObjects.end(); }
const_iterator end() const { return m_backendObjects.end(); }
void CollectGarbageIfNeeded() {
++m_gcTick;
if (m_gcTick < kGCInterval) {
return;
}
CollectGarbage();
m_gcTick = 0;
}
void CollectGarbageNow() { CollectGarbage(); }
private:
bool IsAlive(StateObject* stateObj) const {
const auto trackedStateIt = m_stateRefs.find(stateObj);
if (trackedStateIt == m_stateRefs.end()) {
return false;
}
return !trackedStateIt->second.expired();
}
void EraseByKey(StateObject* stateObj) {
m_stateRefs.erase(stateObj);
m_backendObjects.erase(stateObj);
}
void CollectGarbage() {
if (m_isCollecting) {
return;
}
m_isCollecting = true;
Vector<StateObject*> staleKeys;
staleKeys.reserve(m_stateRefs.size());
for (const auto& [stateKey, stateWeakRef] : m_stateRefs) {
if (stateWeakRef.expired()) {
staleKeys.push_back(stateKey);
}
}
for (auto* stateKey : staleKeys) {
m_stateRefs.erase(stateKey);
m_backendObjects.erase(stateKey);
}
m_isCollecting = false;
}
private:
static constexpr Uint32 kGCInterval = 1024;
StateRefMap m_stateRefs;
BackendMap m_backendObjects;
Uint32 m_gcTick = 0;
Bool m_isCollecting = false;
};
namespace BufferImpl {
const GLenum TempBufferTarget = GL_ARRAY_BUFFER;
class BackendBufferObject {
public:
BackendBufferObject();
void SyncToBackend(SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
Uint GetBackendBufferId() { return m_backendBufferId; }
void SyncToBackend(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
Uint GetBackendBufferId() const { return m_backendBufferId; }
void Bind(GLenum target = TempBufferTarget);
private:
void SyncToBackend_glBufferData(SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
void SyncToBackend_glBufferSubData(SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
void SyncToBackend_glMapBufferRange(SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject,
void SyncToBackend_glBufferData(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
void SyncToBackend_glBufferSubData(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject);
void SyncToBackend_glMapBufferRange(const SharedPtr<MG_State::GLState::BufferObject>& stateBufferObject,
Bool invalidate = true, Bool unsynchronized = true);
Uint m_backendBufferId = 0;
@@ -36,21 +130,18 @@ namespace MobileGL::MG_Backend::DirectGLES {
};
extern BackendBufferObject* g_boundVertexBufferObject;
extern UnorderedMap<SharedPtr<MG_State::GLState::BufferObject>, SharedPtr<BackendBufferObject>>
g_backendBufferObjects;
extern StateBackendObjectRegistry<MG_State::GLState::BufferObject, BackendBufferObject> g_backendBufferObjects;
} // namespace BufferImpl
namespace VertexArrayImpl {
class BackendVertexArrayObject {
public:
BackendVertexArrayObject();
void SyncToBackend(SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject);
Uint GetBackendVertexArrayId() { return m_backendVAOId; }
void Bind();
void SyncToBackend(const SharedPtr<MG_State::GLState::VertexArrayObject>& stateVAOObject);
Uint GetBackendVertexArrayId() const { return m_backendVAOId; }
void Bind() const;
private:
void BindAttributeBuffer(Uint index, const MG_State::GLState::VertexAttribute& attrib);
Uint m_backendVAOId = 0;
Bool m_isInitialized = false;
Uint16 m_syncedIndexBufferVersion = 0;
@@ -58,7 +149,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
m_syncedAttributeVersions;
};
extern UnorderedMap<SharedPtr<MG_State::GLState::VertexArrayObject>, SharedPtr<BackendVertexArrayObject>>
extern StateBackendObjectRegistry<MG_State::GLState::VertexArrayObject, BackendVertexArrayObject>
g_backendVertexArrayObjects;
} // namespace VertexArrayImpl
@@ -92,11 +183,11 @@ namespace MobileGL::MG_Backend::DirectGLES {
class BackendTextureObject {
public:
BackendTextureObject();
void SyncMipmapsToBackend(SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void SyncBuiltinSamplerToBackend(SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void SyncTextureParamsToBackend(SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void SyncMipmapsToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void SyncBuiltinSamplerToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void SyncTextureParamsToBackend(const SharedPtr<MG_State::GLState::ITextureObject>& stateTextureObject);
void Bind(GLenum target, Uint unit = TempTextureUnit);
Uint GetBackendTextureId();
Uint GetBackendTextureId() const;
private:
Uint m_backendTextureId = 0;
@@ -113,7 +204,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
void ActivateTextureUnit(Uint unit);
void UnbindTexture(Uint unit, GLenum target);
extern UnorderedMap<SharedPtr<MG_State::GLState::ITextureObject>, SharedPtr<BackendTextureObject>>
extern StateBackendObjectRegistry<MG_State::GLState::ITextureObject, BackendTextureObject>
g_backendTextureObjects;
extern Array<Array<BackendTextureObject*, (SizeT)TextureTarget::TextureTargetCount>,
MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS>
@@ -125,13 +216,10 @@ namespace MobileGL::MG_Backend::DirectGLES {
class BackendFramebufferObject {
public:
BackendFramebufferObject();
void SyncToBackend(SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject,
void SyncToBackend(const SharedPtr<MG_State::GLState::FramebufferObject>& stateFBOObject,
FramebufferTarget asTarget);
Uint GetBackendFramebufferId() { return m_backendFBOId; }
void Bind(FramebufferTarget target);
bool SyncAttachmentObject(GLenum glFBOTarget,
const MG_State::GLState::FramebufferAttachmentObject& attachmentObject,
GLenum glBackendAttachment);
Uint GetBackendFramebufferId() const { return m_backendFBOId; }
void Bind(FramebufferTarget target) const;
// FramebufferAttachmentType GetCompactedAttachmentTypeAtDrawBufferIndex(Int index);
GLenum GetBackendAttachmentType(FramebufferAttachmentType frontendAtt) const;
@@ -159,7 +247,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
FramebufferObject::FramebufferAttachmentVersionArray m_syncedFrontendAttachmentVersions = {0};
};
extern UnorderedMap<SharedPtr<MG_State::GLState::FramebufferObject>, SharedPtr<BackendFramebufferObject>>
extern StateBackendObjectRegistry<MG_State::GLState::FramebufferObject, BackendFramebufferObject>
g_backendFramebufferObjects;
extern Array<Uint16, SizeT(FramebufferTarget::FramebufferTargetCount)> g_fboBindVersions;
} // namespace FramebufferImpl
@@ -169,8 +257,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
public:
BackendProgramObjectImpl();
~BackendProgramObjectImpl();
void SyncToBackend(SharedPtr<MG_State::GLState::ProgramObject>& stateProgramObject);
void Use();
void SyncToBackend(const SharedPtr<MG_State::GLState::ProgramObject>& stateProgramObject);
void Use() const;
Uint GetBackendProgramId() const { return m_backendProgramId; }
Uint GetBackendGlobalUBOId() const { return m_backendGlobalUBOId; }
@@ -180,7 +268,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
Bool m_isInitialized = false;
};
extern UnorderedMap<SharedPtr<MG_State::GLState::ProgramObject>, SharedPtr<BackendProgramObjectImpl>>
extern StateBackendObjectRegistry<MG_State::GLState::ProgramObject, BackendProgramObjectImpl>
g_backendProgramObjects;
} // namespace PrgramImpl
@@ -188,9 +276,9 @@ namespace MobileGL::MG_Backend::DirectGLES {
class BackendSamplerObject {
public:
BackendSamplerObject();
void SyncToBackend(SharedPtr<MG_State::GLState::SamplerObject>& stateSamplerObject);
void SyncToBackend(const SharedPtr<MG_State::GLState::SamplerObject>& stateSamplerObject);
void Bind(Uint unit);
Uint GetBackendSamplerId();
Uint GetBackendSamplerId() const;
private:
Uint m_backendSamplerId = 0;
@@ -203,7 +291,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
extern Array<BackendSamplerObject*, MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS>
g_boundSamplersCache;
extern UnorderedMap<SharedPtr<MG_State::GLState::SamplerObject>, SharedPtr<BackendSamplerObject>>
extern StateBackendObjectRegistry<MG_State::GLState::SamplerObject, BackendSamplerObject>
g_backendSamplerObjects;
} // namespace SamplerImpl
@@ -212,8 +300,8 @@ namespace MobileGL::MG_Backend::DirectGLES {
public:
BackendRenderbufferObject();
void SyncToBackend(const SharedPtr<MG_State::GLState::RenderbufferObject>& stateRBOObject);
Uint GetBackendRenderbufferId() { return m_backendRBOId; }
void Bind();
Uint GetBackendRenderbufferId() const { return m_backendRBOId; }
void Bind() const;
private:
Uint m_backendRBOId = 0;
@@ -223,7 +311,7 @@ namespace MobileGL::MG_Backend::DirectGLES {
Int m_cacheHeight = 0;
};
extern UnorderedMap<SharedPtr<MG_State::GLState::RenderbufferObject>, SharedPtr<BackendRenderbufferObject>>
extern StateBackendObjectRegistry<MG_State::GLState::RenderbufferObject, BackendRenderbufferObject>
g_backendRenderbufferObjects;
} // namespace RenderbufferImpl
} // namespace MobileGL::MG_Backend::DirectGLES
-9
View File
@@ -19,10 +19,6 @@
#include <MG_Util/Converters/MGToGL/FramebufferEnumConverter.h>
namespace MobileGL::MG_Backend::DirectGLES {
namespace BufferImpl {} // namespace BufferImpl
namespace VertexArrayImpl {} // namespace VertexArrayImpl
namespace TextureImpl {
void GenerateTextureFormatInfo(TextureInternalFormat internalFormat, GLenum* outInternalFormat,
GLenum* outFormat, GLenum* outType) {
@@ -36,9 +32,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
outInternalFormat, outFormat, outType);
}
} // namespace TextureImpl
namespace FramebufferImpl {} // namespace FramebufferImpl
namespace PrgramImpl {
String ProcessOutColorLocations(const String& glslCode) {
#ifdef TRACY_ENABLE
@@ -166,7 +159,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
return GL_UNIFORM_BUFFER_BINDING;
case GL_FRAMEBUFFER:
return GL_FRAMEBUFFER_BINDING;
case GL_DRAW_FRAMEBUFFER:
return GL_DRAW_FRAMEBUFFER_BINDING;
case GL_READ_FRAMEBUFFER:
@@ -176,7 +168,6 @@ namespace MobileGL::MG_Backend::DirectGLES {
return GL_RENDERBUFFER_BINDING;
case GL_VERTEX_ARRAY:
return GL_VERTEX_ARRAY_BINDING;
case GL_VERTEX_ARRAY_BINDING:
return GL_VERTEX_ARRAY_BINDING;
+3 -3
View File
@@ -14,15 +14,15 @@ namespace MobileGL::MG_Backend::DirectGLES {
namespace DebugImpl {
class ErrorLopper {
public:
void Loop(std::function<void(GLenum)>);
void Clear();
static void Loop(const std::function<void(GLenum)>&);
static void Clear();
ErrorLopper();
~ErrorLopper();
};
class OpenGLScopeMarker {
public:
explicit OpenGLScopeMarker(String scopeName);
explicit OpenGLScopeMarker(const String& scopeName);
~OpenGLScopeMarker();
};
} // namespace DebugImpl
@@ -28,6 +28,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
auto nativeWindow = reinterpret_cast<NativeWindowType>(m_windowHandle.Handle);
pVulkanRenderer = MakeUnique<MG_Backend::DirectVulkan::VulkanRenderer>(nativeWindow);
MOBILEGL_ASSERT(pVulkanRenderer != nullptr, "InitWindowSurface: VulkanRenderer creation failed");
pVulkanRenderer->Initialize();
return true;
}
+101 -390
View File
@@ -17,165 +17,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value) {}
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value) {}
void ClearBufferiv(GLenum buffer, GLint drawbuffer, const GLint* value) {}
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const GLvoid* indices, GLint basevertex) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElementsBaseVertex called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElementsBaseVertex called with null GL context");
if (count < 0) {
MGLOG_W("DrawElementsBaseVertex skipped: count (%d) must be non-negative", count);
return;
}
if (count == 0) {
return;
}
if (mode != GL_TRIANGLES) {
MGLOG_W("DrawElementsBaseVertex skipped: primitive mode %u is not supported yet", mode);
return;
}
SizeT indexSize = 0;
switch (type) {
case GL_UNSIGNED_SHORT:
indexSize = sizeof(Uint16);
break;
case GL_UNSIGNED_INT:
indexSize = sizeof(Uint32);
break;
default:
MGLOG_W("DrawElementsBaseVertex skipped: index type %u is not supported yet", type);
return;
}
const auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MGLOG_W("DrawElementsBaseVertex skipped: no bound VAO");
return;
}
const auto indexBuffer = vao->GetIndexBufferBindingSlot().GetBoundObject();
if (!indexBuffer) {
MGLOG_W("DrawElementsBaseVertex skipped: no bound ELEMENT_ARRAY_BUFFER");
return;
}
const auto indexData = indexBuffer->GetDataReadOnly();
if (!indexData || indexData->empty()) {
MGLOG_W("DrawElementsBaseVertex skipped: ELEMENT_ARRAY_BUFFER has no data");
return;
}
const SizeT byteOffset = reinterpret_cast<SizeT>(indices);
const SizeT requiredBytes = static_cast<SizeT>(count) * indexSize;
if (byteOffset + requiredBytes > indexBuffer->GetSize()) {
MGLOG_W("DrawElementsBaseVertex skipped: index range out of bounds (offset=%zu, size=%zu, buffer=%zu)",
byteOffset, requiredBytes, indexBuffer->GetSize());
return;
}
DrawElementPayload payload{};
payload.drawArray.mode = mode;
payload.drawArray.first = 0;
payload.drawArray.count = count;
const auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
payload.drawArray.program = currentProgram ? currentProgram.get() : nullptr;
payload.drawArray.vertexArray = vao.get();
payload.indexType = type;
payload.indexByteOffset = byteOffset;
payload.baseVertex = basevertex;
pVulkanRenderer->DrawElements(payload);
}
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
GLsizei drawcount, const GLint* basevertex) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElementsBaseVertex called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElementsBaseVertex called with null GL context");
if (drawcount < 0) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: drawcount (%d) must be non-negative", drawcount);
return;
}
if (drawcount == 0) {
return;
}
if (!count || !indices || !basevertex) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: count/indices/basevertex pointer is null");
return;
}
if (mode != GL_TRIANGLES) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: primitive mode %u is not supported yet", mode);
return;
}
SizeT indexSize = 0;
switch (type) {
case GL_UNSIGNED_SHORT:
indexSize = sizeof(Uint16);
break;
case GL_UNSIGNED_INT:
indexSize = sizeof(Uint32);
break;
default:
MGLOG_W("MultiDrawElementsBaseVertex skipped: index type %u is not supported yet", type);
return;
}
const auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: no bound VAO");
return;
}
const auto indexBuffer = vao->GetIndexBufferBindingSlot().GetBoundObject();
if (!indexBuffer) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: no bound ELEMENT_ARRAY_BUFFER");
return;
}
const auto indexData = indexBuffer->GetDataReadOnly();
if (!indexData || indexData->empty()) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: ELEMENT_ARRAY_BUFFER has no data");
return;
}
const auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
Vector<DrawElementPayload> payloads;
payloads.reserve(static_cast<SizeT>(drawcount));
for (GLsizei i = 0; i < drawcount; ++i) {
if (count[i] < 0) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: count[%d] (%d) must be non-negative", i, count[i]);
return;
}
if (count[i] == 0) {
continue;
}
const SizeT byteOffset = reinterpret_cast<SizeT>(indices[i]);
const SizeT requiredBytes = static_cast<SizeT>(count[i]) * indexSize;
if (byteOffset + requiredBytes > indexBuffer->GetSize()) {
MGLOG_W("MultiDrawElementsBaseVertex skipped: draw[%d] index range out of bounds (offset=%zu, "
"size=%zu, buffer=%zu)",
i, byteOffset, requiredBytes, indexBuffer->GetSize());
return;
}
DrawElementPayload payload{};
payload.drawArray.mode = mode;
payload.drawArray.first = 0;
payload.drawArray.count = count[i];
payload.drawArray.program = currentProgram ? currentProgram.get() : nullptr;
payload.drawArray.vertexArray = vao.get();
payload.indexType = type;
payload.indexByteOffset = byteOffset;
payload.baseVertex = basevertex[i];
payloads.push_back(payload);
}
if (payloads.empty()) {
return;
}
pVulkanRenderer->MultiDrawElements(payloads);
}
void MultiDrawElementsIndirect(GLenum mode, GLenum type, const void* indirect, GLsizei drawcount, GLsizei stride) {}
void MultiDrawArraysIndirect(GLenum mode, const void* indirect, GLsizei drawcount, GLsizei stride) {}
void DrawRangeElementsBaseVertex(GLenum mode, GLuint start, GLuint end, GLsizei count, GLenum type,
@@ -201,256 +43,125 @@ namespace MobileGL::MG_Backend::DirectVulkan {
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels) {}
void GetTexImage(GLenum target, GLint level, GLenum format, GLenum type, GLvoid* pixels) {}
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
GLsizei drawcount) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
if (drawcount < 0) {
MGLOG_W("MultiDrawElements skipped: drawcount (%d) must be non-negative", drawcount);
return;
}
if (drawcount == 0) {
return;
}
if (!count || !indices) {
MGLOG_W("MultiDrawElements skipped: count/indices pointer is null");
return;
}
if (mode != GL_TRIANGLES) {
MGLOG_W("MultiDrawElements skipped: primitive mode %u is not supported yet", mode);
return;
}
SizeT indexSize = 0;
switch (type) {
case GL_UNSIGNED_SHORT:
indexSize = sizeof(Uint16);
break;
case GL_UNSIGNED_INT:
indexSize = sizeof(Uint32);
break;
default:
MGLOG_W("MultiDrawElements skipped: index type %u is not supported yet", type);
return;
}
const auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MGLOG_W("MultiDrawElements skipped: no bound VAO");
return;
}
const auto indexBuffer = vao->GetIndexBufferBindingSlot().GetBoundObject();
if (!indexBuffer) {
MGLOG_W("MultiDrawElements skipped: no bound ELEMENT_ARRAY_BUFFER");
return;
}
const auto indexData = indexBuffer->GetDataReadOnly();
if (!indexData || indexData->empty()) {
MGLOG_W("MultiDrawElements skipped: ELEMENT_ARRAY_BUFFER has no data");
return;
}
const auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
Vector<DrawElementPayload> payloads;
payloads.reserve(static_cast<SizeT>(drawcount));
for (GLsizei i = 0; i < drawcount; ++i) {
if (count[i] < 0) {
MGLOG_W("MultiDrawElements skipped: count[%d] (%d) must be non-negative", i, count[i]);
return;
}
if (count[i] == 0) {
continue;
}
const auto byteOffset = reinterpret_cast<SizeT>(indices[i]);
const SizeT requiredBytes = static_cast<SizeT>(count[i]) * indexSize;
if (byteOffset + requiredBytes > indexBuffer->GetSize()) {
MGLOG_W("MultiDrawElements skipped: draw[%d] index range out of bounds (offset=%zu, size=%zu, "
"buffer=%zu)",
i, byteOffset, requiredBytes, indexBuffer->GetSize());
return;
}
DrawElementPayload payload{};
payload.drawArray.mode = mode;
payload.drawArray.first = 0;
payload.drawArray.count = count[i];
payload.drawArray.program = currentProgram ? currentProgram.get() : nullptr;
payload.drawArray.vertexArray = vao.get();
payload.indexType = type;
payload.indexByteOffset = byteOffset;
payloads.push_back(payload);
}
if (payloads.empty()) {
return;
}
pVulkanRenderer->MultiDrawElements(payloads);
}
void Clear(GLbitfield mask) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::Clear called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::Clear called with null GL context");
const auto& drawFboSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw);
const auto drawFbo = drawFboSlot.GetBoundObject();
const auto defaultFboInfo = MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo;
const auto defaultFbo = defaultFboInfo ? defaultFboInfo->defaultFBO : nullptr;
const Bool isDefaultFboTarget = (drawFbo == defaultFbo) || (drawFbo == nullptr && defaultFbo != nullptr);
Uint drawFboExternalIndex = 0;
if (drawFbo) {
drawFboExternalIndex = drawFbo->GetExternalIndex();
} else if (defaultFbo) {
drawFboExternalIndex = defaultFbo->GetExternalIndex();
}
const auto& clearColor = MG_State::pGLContext->GetClearColor();
const auto clearDepth = MG_State::pGLContext->GetClearDepth();
const auto clearStencil = static_cast<Uint32>(MG_State::pGLContext->GetClearStencil());
pVulkanRenderer->RequestClear(mask, clearColor, clearDepth, clearStencil, drawFboExternalIndex,
isDefaultFboTarget);
}
void DrawElements(GLenum mode, GLsizei count, GLenum type, const void* indices) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElements called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElements called with null GL context");
if (count < 0) {
MGLOG_W("DrawElements skipped: count (%d) must be non-negative", count);
return;
}
if (count == 0) {
return;
}
if (mode != GL_TRIANGLES) {
MGLOG_W("DrawElements skipped: primitive mode %u is not supported yet", mode);
return;
}
SizeT indexSize = 0;
switch (type) {
case GL_UNSIGNED_SHORT:
indexSize = sizeof(Uint16);
break;
case GL_UNSIGNED_INT:
indexSize = sizeof(Uint32);
break;
default:
MGLOG_W("DrawElements skipped: index type %u is not supported yet", type);
return;
}
const auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MGLOG_W("DrawElements skipped: no bound VAO");
return;
}
const auto indexBuffer = vao->GetIndexBufferBindingSlot().GetBoundObject();
if (!indexBuffer) {
MGLOG_W("DrawElements skipped: no bound ELEMENT_ARRAY_BUFFER");
return;
}
const auto indexData = indexBuffer->GetDataReadOnly();
if (!indexData || indexData->empty()) {
MGLOG_W("DrawElements skipped: ELEMENT_ARRAY_BUFFER has no data");
return;
}
const auto byteOffset = reinterpret_cast<SizeT>(indices);
const SizeT requiredBytes = static_cast<SizeT>(count) * indexSize;
if (byteOffset + requiredBytes > indexBuffer->GetSize()) {
MGLOG_W("DrawElements skipped: index range out of bounds (offset=%zu, size=%zu, buffer=%zu)", byteOffset,
requiredBytes, indexBuffer->GetSize());
return;
}
DrawElementPayload payload{};
payload.drawArray.mode = mode;
payload.drawArray.first = 0;
payload.drawArray.count = count;
const auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
payload.drawArray.program = currentProgram ? currentProgram.get() : nullptr;
payload.drawArray.vertexArray = vao.get();
payload.indexType = type;
payload.indexByteOffset = byteOffset;
pVulkanRenderer->DrawElements(payload);
pVulkanRenderer->Clear(mask);
}
void DrawArrays(GLenum mode, GLint first, GLsizei count) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawArrays called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawArrays called with null GL context");
if (first < 0) {
MGLOG_W("DrawArrays skipped: first (%d) must be non-negative", first);
return;
}
if (count < 0) {
MGLOG_W("DrawArrays skipped: count (%d) must be non-negative", count);
return;
}
if (count == 0) {
return;
}
if (mode != GL_TRIANGLES) {
MGLOG_W("DrawArrays skipped: primitive mode %u is not supported yet", mode);
return;
}
DrawArrayPayload payload{};
DrawCmd payload{};
payload.mode = mode;
payload.first = first;
payload.count = count;
const auto currentProgram = MG_State::pGLContext->GetCurrentProgram();
payload.program = currentProgram ? currentProgram.get() : nullptr;
const auto vao = MG_State::pGLContext->GetBoundVertexArray();
payload.vertexArray = vao ? vao.get() : nullptr;
payload.params.firstVertex = first;
payload.params.vertexCount = count;
pVulkanRenderer->DrawArrays(payload);
}
void DrawElements(GLenum mode, GLsizei count, GLenum type, const void* indices) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElements called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElements called with null GL context");
DrawIndexedCmd payload{};
payload.mode = mode;
payload.indexBufferView.indexType = type;
payload.indexBufferView.indexByteOffset = reinterpret_cast<SizeT>(indices);
payload.indexBufferView.indexByteSize = count * MG_Util::GetGLTypeSize(type);
payload.params.indexCount = count;
payload.params.instanceCount = 1;
pVulkanRenderer->DrawElements(payload);
}
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
GLsizei drawcount) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
// Vector<DrawElementCmd> cmds;
// cmds.reserve(static_cast<SizeT>(drawcount));
// for (GLsizei i = 0; i < drawcount; ++i) {
// if (count[i] == 0) {
// continue;
// }
//
// DrawElementCmd payload{};
// payload.mode = mode;
// payload.firstVertex = 0;
// payload.indexCount = count[i];
// payload.indexType = type;
// payload.indexByteOffset = reinterpret_cast<SizeT>(indices[i]);
// cmds.push_back(payload);
// }
//
// if (cmds.empty()) {
// return;
// }
// pVulkanRenderer->MultiDrawElements(cmds);
}
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const GLvoid* indices, GLint basevertex) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::DrawElementsBaseVertex called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::DrawElementsBaseVertex called with null GL context");
DrawIndexedCmd payload{};
payload.mode = mode;
payload.indexBufferView.indexType = type;
payload.indexBufferView.indexByteOffset = reinterpret_cast<SizeT>(indices);
payload.indexBufferView.indexByteSize = count * MG_Util::GetGLTypeSize(type);
payload.params.indexCount = count;
payload.params.instanceCount = 1;
payload.params.firstIndex = 0;
payload.params.vertexOffset = basevertex;
payload.params.firstInstance = 0;
pVulkanRenderer->DrawElements(payload);
}
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const GLvoid* const* indices,
GLsizei drawcount, const GLint* basevertex) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::MultiDrawElements called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::MultiDrawElements called with null GL context");
MultiDrawIndexedCmd payload{};
payload.mode = mode;
payload.indexBufferView.indexType = type;
// TODO: allocate draw cmd buf elsewhere
static Vector<DrawIndexedCmdParam> params;
params.clear();
params.resize(drawcount);
for (GLsizei i = 0; i < drawcount; ++i) {
if (count[i] == 0) {
continue;
}
// TODO: this index view needs a redesign, now there's a lotta redundant uploads
payload.indexBufferView.indexByteOffset = 0;
payload.indexBufferView.indexByteSize =
std::max(reinterpret_cast<SizeT>(indices[i]) + count[i] * MG_Util::GetGLTypeSize(type),
payload.indexBufferView.indexByteSize);
auto& param = params[i];
param.indexCount = count[i];
param.instanceCount = 1;
param.firstIndex = reinterpret_cast<SizeT>(indices[i]) / MG_Util::GetGLTypeSize(type);
param.vertexOffset = basevertex[i];
param.firstInstance = 0;
}
payload.drawCount = drawcount;
payload.pParams = params.data();
pVulkanRenderer->MultiDrawElements(payload);
}
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
GLint dstY1, GLbitfield mask, GLenum filter) {
MOBILEGL_ASSERT(pVulkanRenderer, "DirectVulkan::BlitFramebuffer called with null VulkanRenderer");
MOBILEGL_ASSERT(MG_State::pGLContext, "DirectVulkan::BlitFramebuffer called with null GL context");
const auto& readFboSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read);
const auto& drawFboSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw);
const auto readFbo = readFboSlot.GetBoundObject();
const auto drawFbo = drawFboSlot.GetBoundObject();
const auto defaultFboInfo = MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo;
const auto defaultFbo = defaultFboInfo ? defaultFboInfo->defaultFBO : nullptr;
const Bool readIsDefault = (readFbo == defaultFbo) || (readFbo == nullptr && defaultFbo != nullptr);
const Bool drawIsDefault = (drawFbo == defaultFbo) || (drawFbo == nullptr && defaultFbo != nullptr);
Uint readFboExternalIndex = 0;
if (readFbo) {
readFboExternalIndex = readFbo->GetExternalIndex();
} else if (defaultFbo) {
readFboExternalIndex = defaultFbo->GetExternalIndex();
}
Uint drawFboExternalIndex = 0;
if (drawFbo) {
drawFboExternalIndex = drawFbo->GetExternalIndex();
} else if (defaultFbo) {
drawFboExternalIndex = defaultFbo->GetExternalIndex();
}
pVulkanRenderer->BlitFramebuffer(srcX0, srcY0, srcX1, srcY1, dstX0, dstY0, dstX1, dstY1, mask, filter,
readFboExternalIndex, drawFboExternalIndex, readIsDefault, drawIsDefault);
pVulkanRenderer->BlitFramebuffer(srcX0, srcY0, srcX1, srcY1, dstX0, dstY0, dstX1, dstY1, mask, filter);
}
void Present() {
@@ -0,0 +1,138 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/BufferArena.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 "BufferArena.h"
namespace MobileGL::MG_Backend::DirectVulkan {
Bool BufferArena::Initialize(const BufferArenaDesc& desc) {
Shutdown();
MOBILEGL_ASSERT(desc.allocator != nullptr, "BufferArena::Initialize requires valid allocator");
MOBILEGL_ASSERT(desc.frameCount > 0, "BufferArena::Initialize requires non-zero frame count");
MOBILEGL_ASSERT(desc.usage != 0, "BufferArena::Initialize requires non-zero buffer usage");
m_desc = desc;
m_frames.clear();
m_frames.resize(desc.frameCount);
m_deferredReleases.resize(desc.frameCount);
return true;
}
void BufferArena::Shutdown() {
for (auto& frame : m_frames) {
frame.buffer.Destroy();
frame.writeCursor = 0;
}
m_frames.clear();
m_deferredReleases.clear();
m_desc = {};
}
void BufferArena::BeginFrame(Uint32 frameIndex) {
CollectDeferredReleases(frameIndex);
ResetFrame(frameIndex);
}
void BufferArena::ResetFrame(Uint32 frameIndex) {
AssertValidFrameIndex(frameIndex);
m_frames[frameIndex].writeCursor = 0;
}
void BufferArena::CollectDeferredReleases(Uint32 frameIndex) {
AssertValidFrameIndex(frameIndex);
m_deferredReleases[frameIndex].clear();
}
Bool BufferArena::Allocate(Uint32 frameIndex, VkDeviceSize size, VkDeviceSize alignment, BufferSlice& outSlice) {
AssertValidFrameIndex(frameIndex);
MOBILEGL_ASSERT(size > 0, "BufferArena::Allocate requires non-zero size");
auto& frame = m_frames[frameIndex];
const VkDeviceSize resolvedAlignment = alignment > 0 ? alignment : 1;
const VkDeviceSize offset = (frame.writeCursor + resolvedAlignment - 1) & ~(resolvedAlignment - 1);
const VkDeviceSize endOffset = offset + size;
if (!EnsureCapacity(frameIndex, endOffset)) {
return false;
}
frame.writeCursor = endOffset;
outSlice = frame.buffer.GetSlice(offset, size);
return outSlice.IsValid();
}
Bool BufferArena::Upload(Uint32 frameIndex, const void* data, VkDeviceSize size, VkDeviceSize alignment,
BufferSlice& outSlice) {
MOBILEGL_ASSERT(data != nullptr || size == 0, "BufferArena::Upload data pointer is null");
if (!Allocate(frameIndex, size, alignment, outSlice)) {
return false;
}
if (outSlice.mapped != nullptr) {
Memcpy(outSlice.mapped, data, static_cast<SizeT>(size));
return true;
}
return m_frames[frameIndex].buffer.Upload(data, size, outSlice.offset);
}
VkDeviceSize BufferArena::GetWriteCursor(Uint32 frameIndex) const {
AssertValidFrameIndex(frameIndex);
return m_frames[frameIndex].writeCursor;
}
Uint32 BufferArena::GetFrameCount() const {
return static_cast<Uint32>(m_frames.size());
}
Bool BufferArena::EnsureCapacity(Uint32 frameIndex, VkDeviceSize requiredEndOffset) {
AssertValidFrameIndex(frameIndex);
auto& frame = m_frames[frameIndex];
auto& buffer = frame.buffer;
if (buffer.IsValid() && buffer.GetSize() >= requiredEndOffset) {
return true;
}
VkDeviceSize newCapacity = buffer.IsValid() ? buffer.GetSize() : 0;
if (newCapacity < m_desc.minBufferSize) {
newCapacity = m_desc.minBufferSize;
}
if (newCapacity == 0) {
newCapacity = requiredEndOffset;
}
while (newCapacity < requiredEndOffset) {
newCapacity *= 2;
}
if (buffer.IsValid()) {
m_deferredReleases[frameIndex].push_back(std::move(buffer));
}
VkBufferObjectDesc bufferDesc{};
bufferDesc.allocator = m_desc.allocator;
bufferDesc.size = newCapacity;
bufferDesc.usage = m_desc.usage;
bufferDesc.memoryUsage = m_desc.memoryUsage;
bufferDesc.allocationFlags = m_desc.allocationFlags;
if (!buffer.Create(bufferDesc)) {
return false;
}
if (m_desc.persistentlyMapped && buffer.Map() == nullptr) {
buffer.Destroy();
return false;
}
frame.writeCursor = 0;
return true;
}
void BufferArena::AssertValidFrameIndex(Uint32 frameIndex) const {
MOBILEGL_ASSERT(frameIndex < m_frames.size(), "BufferArena frame index out of range");
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,56 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/BufferArena.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "BufferSlice.h"
#include "VkBufferObject.h"
#include "../VkIncludes.h"
#include <Includes.h>
#include <vk_mem_alloc.h>
namespace MobileGL::MG_Backend::DirectVulkan {
struct BufferArenaDesc {
VmaAllocator allocator = nullptr;
Uint32 frameCount = 0;
VkBufferUsageFlags usage = 0;
VmaMemoryUsage memoryUsage = VMA_MEMORY_USAGE_AUTO;
VmaAllocationCreateFlags allocationFlags = 0;
VkDeviceSize minBufferSize = 0;
Bool persistentlyMapped = false;
};
class BufferArena {
public:
Bool Initialize(const BufferArenaDesc& desc);
void Shutdown();
void BeginFrame(Uint32 frameIndex);
void ResetFrame(Uint32 frameIndex);
void CollectDeferredReleases(Uint32 frameIndex);
Bool Allocate(Uint32 frameIndex, VkDeviceSize size, VkDeviceSize alignment, BufferSlice& outSlice);
Bool Upload(Uint32 frameIndex, const void* data, VkDeviceSize size, VkDeviceSize alignment, BufferSlice& outSlice);
VkDeviceSize GetWriteCursor(Uint32 frameIndex) const;
Uint32 GetFrameCount() const;
private:
struct FrameResources {
VkBufferObject buffer;
VkDeviceSize writeCursor = 0;
};
Bool EnsureCapacity(Uint32 frameIndex, VkDeviceSize requiredEndOffset);
void AssertValidFrameIndex(Uint32 frameIndex) const;
BufferArenaDesc m_desc{};
Vector<FrameResources> m_frames;
Vector<Vector<VkBufferObject>> m_deferredReleases;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,23 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/BufferSlice.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include <Includes.h>
namespace MobileGL::MG_Backend::DirectVulkan {
struct BufferSlice {
VkBuffer buffer = VK_NULL_HANDLE;
VkDeviceSize offset = 0;
VkDeviceSize size = 0;
void* mapped = nullptr;
Bool IsValid() const { return buffer != VK_NULL_HANDLE; }
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -21,6 +21,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.renderPass, sizeof(payload.renderPass)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.subpass, sizeof(payload.subpass)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.topology, sizeof(payload.topology)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.cullMode, sizeof(payload.cullMode)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.frontFace, sizeof(payload.frontFace)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthTestEnable, sizeof(payload.depthTestEnable)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthWriteEnable, sizeof(payload.depthWriteEnable)));
XXHASH_VERIFY(XXH64_update(m_hashState, &payload.depthCompareOp, sizeof(payload.depthCompareOp)));
@@ -79,8 +81,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
VkPipelineRasterizationStateCreateInfo raster{VK_STRUCTURE_TYPE_PIPELINE_RASTERIZATION_STATE_CREATE_INFO};
raster.polygonMode = VK_POLYGON_MODE_FILL;
raster.cullMode = VK_CULL_MODE_NONE;
raster.frontFace = VK_FRONT_FACE_CLOCKWISE;
raster.cullMode = payload.cullMode;
raster.frontFace = payload.frontFace;
raster.lineWidth = 1.0f;
VkPipelineMultisampleStateCreateInfo ms{VK_STRUCTURE_TYPE_PIPELINE_MULTISAMPLE_STATE_CREATE_INFO};
@@ -24,6 +24,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
VkRenderPass renderPass = VK_NULL_HANDLE;
Uint32 subpass = 0;
VkPrimitiveTopology topology = VK_PRIMITIVE_TOPOLOGY_TRIANGLE_LIST;
VkCullModeFlags cullMode = VK_CULL_MODE_BACK_BIT;
VkFrontFace frontFace = VK_FRONT_FACE_CLOCKWISE;
Bool depthTestEnable = false;
Bool depthWriteEnable = false;
VkCompareOp depthCompareOp = VK_COMPARE_OP_ALWAYS;
@@ -8,6 +8,9 @@
#include "ProgramFactory.h"
#include "MG_Util/ShaderTranspiler/SpvcSession.h"
#include "MG_Util/ShaderTranspiler/Types.h"
#include <cstring>
#include <spirv-tools/libspirv.h>
#include <spirv-tools/optimizer.hpp>
#include <source/opt/constants.h>
@@ -21,6 +24,8 @@
namespace MobileGL::MG_Backend::DirectVulkan {
namespace {
using ShaderObject = MG_State::GLState::ShaderObject;
using SpvcSession = MG_Util::ShaderTranspiler::SpvcSession;
using SessionUsageBit = MG_Util::ShaderTranspiler::SessionUsageBit;
struct PositionTargetInfo {
Uint32 variableId = 0;
@@ -321,8 +326,6 @@ namespace MobileGL::MG_Backend::DirectVulkan {
}
} // namespace
ProgramFactory::~ProgramFactory() = default;
VkShaderStageFlagBits ProgramFactory::ToVkStage(ShaderStage stage) {
switch (stage) {
case ShaderStage::Vertex:
@@ -351,20 +354,184 @@ namespace MobileGL::MG_Backend::DirectVulkan {
XXHASH_VERIFY(XXH64_update(m_hashState, spv.data(), spv.size() * sizeof(Uint)));
}
XXHASH_VERIFY(XXH64_update(m_hashState, &flags, sizeof(CompileOptionFlags)));
// Include UBO block bindings in hash so different binding configurations produce different entries
const Uint32 blockCount = static_cast<Uint32>(program.GetActiveUniformBlocksCount());
XXHASH_VERIFY(XXH64_update(m_hashState, &blockCount, sizeof(blockCount)));
for (Uint32 i = 0; i < blockCount; ++i) {
const Uint32 binding = program.GetUniformBlockBinding(i);
XXHASH_VERIFY(XXH64_update(m_hashState, &binding, sizeof(binding)));
}
HashType hash = XXH64_digest(m_hashState);
return hash;
}
Vector<VkPipelineShaderStageCreateInfo>& ProgramFactory::GetOrCreatePipelineShaderStages(
TextureTarget ProgramFactory::UniformTypeToTextureTarget(GLenum glType) {
switch (glType) {
case GL_SAMPLER_1D:
case GL_INT_SAMPLER_1D:
case GL_UNSIGNED_INT_SAMPLER_1D:
return TextureTarget::Texture1D;
case GL_SAMPLER_3D:
case GL_INT_SAMPLER_3D:
case GL_UNSIGNED_INT_SAMPLER_3D:
return TextureTarget::Texture3D;
case GL_SAMPLER_CUBE:
case GL_SAMPLER_CUBE_SHADOW:
case GL_INT_SAMPLER_CUBE:
case GL_UNSIGNED_INT_SAMPLER_CUBE:
return TextureTarget::TextureCubeMap;
case GL_SAMPLER_2D_MULTISAMPLE:
case GL_INT_SAMPLER_2D_MULTISAMPLE:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE:
return TextureTarget::Texture2DMultisample;
case GL_SAMPLER_BUFFER:
case GL_INT_SAMPLER_BUFFER:
case GL_UNSIGNED_INT_SAMPLER_BUFFER:
return TextureTarget::TextureBuffer;
case GL_SAMPLER_1D_ARRAY:
case GL_SAMPLER_1D_ARRAY_SHADOW:
case GL_INT_SAMPLER_1D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_1D_ARRAY:
return TextureTarget::Texture1DArray;
case GL_SAMPLER_2D_ARRAY:
case GL_SAMPLER_2D_ARRAY_SHADOW:
case GL_INT_SAMPLER_2D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_ARRAY:
return TextureTarget::Texture2DArray;
case GL_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
return TextureTarget::Texture2DMultisampleArray;
case GL_SAMPLER_2D_RECT:
case GL_SAMPLER_2D_RECT_SHADOW:
case GL_INT_SAMPLER_2D_RECT:
case GL_UNSIGNED_INT_SAMPLER_2D_RECT:
return TextureTarget::TextureRectangle;
case GL_SAMPLER_2D:
case GL_SAMPLER_2D_SHADOW:
case GL_INT_SAMPLER_2D:
case GL_UNSIGNED_INT_SAMPLER_2D:
default:
return TextureTarget::Texture2D;
}
}
void ProgramFactory::ReflectLayout(const MG_State::GLState::ProgramObject& program,
VkProgramObject& entry) const {
// Initialize layout vectors
entry.bindingKinds.assign(m_maxBindings, DescriptorBindingKind::None);
entry.samplerUniformLocationByBinding.assign(m_maxBindings, -1);
entry.samplerTextureTargetByBinding.assign(m_maxBindings, TextureTarget::Texture2D);
entry.globalUboBinding = -1;
entry.dynamicBindings.clear();
// Use SpvcSession (Reflection mode) to reflect all SPIR-V modules in a single pass per module
const auto& spirv = program.GetGeneratedSpirv();
for (const auto& module : spirv) {
if (module.empty()) {
continue;
}
SpvcSession session(module, SessionUsageBit::Reflection);
// Reflect uniform buffers
auto ubos = session.GetShaderInterface(SPVC_RESOURCE_TYPE_UNIFORM_BUFFER);
for (const auto& ubo : ubos) {
const Uint32 binding = ubo.location; // GetShaderInterface stores binding in location field
if (binding >= m_maxBindings) {
continue;
}
if (entry.bindingKinds[binding] == DescriptorBindingKind::None) {
entry.bindingKinds[binding] = DescriptorBindingKind::UniformBufferDynamic;
}
// Check for global UBO
if (entry.globalUboBinding < 0 &&
std::strstr(ubo.name.c_str(), MG_Util::ShaderTranspiler::GLOBAL_UBO_NAME) != nullptr) {
entry.globalUboBinding = static_cast<Int>(binding);
}
}
// Reflect sampled images
auto samplers = session.GetShaderInterface(SPVC_RESOURCE_TYPE_SAMPLED_IMAGE);
for (const auto& sampler : samplers) {
const Uint32 binding = sampler.location; // GetShaderInterface stores binding in location field
if (binding >= m_maxBindings) {
continue;
}
// Sampler always wins over UBO for a binding slot
entry.bindingKinds[binding] = DescriptorBindingKind::CombinedImageSampler;
// Resolve uniform location for this sampler
String uniformName = sampler.name;
Int location = program.GetUniformLocation(uniformName);
if (location < 0) {
const auto arraySuffix = uniformName.find("[0]");
if (arraySuffix != String::npos) {
uniformName = uniformName.substr(0, arraySuffix);
location = program.GetUniformLocation(uniformName);
}
}
if (location < 0) {
continue;
}
entry.samplerUniformLocationByBinding[binding] = location;
entry.samplerTextureTargetByBinding[binding] =
UniformTypeToTextureTarget(program.GetUniformType(static_cast<Uint>(location)));
}
}
// Build Vulkan descriptor set layout and pipeline layout from reflected binding kinds
Vector<VkDescriptorSetLayoutBinding> bindings;
bindings.reserve(m_maxBindings);
for (Uint32 binding = 0; binding < m_maxBindings; ++binding) {
const auto kind = entry.bindingKinds[binding];
if (kind == DescriptorBindingKind::None) {
continue;
}
VkDescriptorSetLayoutBinding layoutBinding{};
layoutBinding.binding = binding;
layoutBinding.descriptorCount = 1;
layoutBinding.stageFlags = VK_SHADER_STAGE_ALL_GRAPHICS;
layoutBinding.pImmutableSamplers = nullptr;
if (kind == DescriptorBindingKind::UniformBufferDynamic) {
layoutBinding.descriptorType = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
entry.dynamicBindings.push_back(binding);
} else {
layoutBinding.descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
}
bindings.push_back(layoutBinding);
}
VkDescriptorSetLayoutCreateInfo setLayoutInfo{};
setLayoutInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_LAYOUT_CREATE_INFO;
setLayoutInfo.bindingCount = static_cast<Uint32>(bindings.size());
setLayoutInfo.pBindings = bindings.data();
VK_VERIFY(vkCreateDescriptorSetLayout(m_device, &setLayoutInfo, nullptr, &entry.descriptorSetLayout),
"ProgramFactory::ReflectLayout, vkCreateDescriptorSetLayout");
VkPipelineLayoutCreateInfo pipelineLayoutInfo{};
pipelineLayoutInfo.sType = VK_STRUCTURE_TYPE_PIPELINE_LAYOUT_CREATE_INFO;
pipelineLayoutInfo.setLayoutCount = 1;
pipelineLayoutInfo.pSetLayouts = &entry.descriptorSetLayout;
VK_VERIFY(vkCreatePipelineLayout(m_device, &pipelineLayoutInfo, nullptr, &entry.pipelineLayout),
"ProgramFactory::ReflectLayout, vkCreatePipelineLayout");
}
const ProgramFactory::VkProgramObject& ProgramFactory::GetOrCreateProgram(
const MG_State::GLState::ProgramObject& program, CompileOptionFlags flags) {
auto hash = ComputeHash(program, flags);
auto it = m_cache.find(hash);
if (it != m_cache.end()) {
return it->second.stages;
return it->second;
}
auto& entry = m_cache[hash];
entry.device = m_device;
entry.hash = hash;
auto& shaders = program.GetAttachedShaders();
auto& spirv = program.GetGeneratedSpirv();
@@ -401,6 +568,9 @@ namespace MobileGL::MG_Backend::DirectVulkan {
entry.stages.push_back(stage);
}
return entry.stages;
// Reflect and create layout as part of the program object
ReflectLayout(program, entry);
return entry;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -11,11 +11,19 @@
#include "../VkIncludes.h"
#include "MG_State/GLState/ProgramState/ProgramObject.h"
#include "MG_State/GLState/ProgramState/ShaderObject.h"
#include "MG_State/GLState/TextureState/TextureEnum.h"
#include <Includes.h>
namespace MobileGL::MG_Backend::DirectVulkan {
class ProgramFactory {
public:
enum class DescriptorBindingKind : Uint8 {
None = 0,
UniformBufferDynamic,
CombinedImageSampler
};
enum class CompileOptionBit : Uint {
None = 0,
PositionYFlip = 1 << 0,
@@ -26,68 +34,110 @@ namespace MobileGL::MG_Backend::DirectVulkan {
};
using CompileOptionFlags = Flags<CompileOptionBit>;
using HashType = Uint64;
struct BackendProgramObject {
struct VkProgramObject {
HashType hash = 0;
VkDevice device = VK_NULL_HANDLE;
Vector<VkPipelineShaderStageCreateInfo> stages;
Vector<VkShaderModule> modules;
BackendProgramObject() = default;
BackendProgramObject(const BackendProgramObject&) = delete;
BackendProgramObject& operator=(const BackendProgramObject&) = delete;
BackendProgramObject(BackendProgramObject&& other) noexcept {
// Layout data (previously in separate VkProgramLayout)
VkDescriptorSetLayout descriptorSetLayout = VK_NULL_HANDLE;
VkPipelineLayout pipelineLayout = VK_NULL_HANDLE;
Vector<DescriptorBindingKind> bindingKinds;
Vector<Uint32> dynamicBindings;
Vector<Int> samplerUniformLocationByBinding;
Vector<TextureTarget> samplerTextureTargetByBinding;
Int globalUboBinding = -1;
static inline VkDevice s_device = VK_NULL_HANDLE;
VkProgramObject() = default;
VkProgramObject(const VkProgramObject&) = delete;
VkProgramObject& operator=(const VkProgramObject&) = delete;
VkProgramObject(VkProgramObject&& other) noexcept {
hash = other.hash;
device = other.device;
stages = std::move(other.stages);
modules = std::move(other.modules);
descriptorSetLayout = other.descriptorSetLayout;
pipelineLayout = other.pipelineLayout;
bindingKinds = std::move(other.bindingKinds);
dynamicBindings = std::move(other.dynamicBindings);
samplerUniformLocationByBinding = std::move(other.samplerUniformLocationByBinding);
samplerTextureTargetByBinding = std::move(other.samplerTextureTargetByBinding);
globalUboBinding = other.globalUboBinding;
other.hash = 0;
other.device = VK_NULL_HANDLE;
other.descriptorSetLayout = VK_NULL_HANDLE;
other.pipelineLayout = VK_NULL_HANDLE;
other.globalUboBinding = -1;
}
BackendProgramObject& operator=(BackendProgramObject&& other) noexcept {
VkProgramObject& operator=(VkProgramObject&& other) noexcept {
if (this == &other) {
return *this;
}
DestroyModules();
stages.clear();
Destroy();
hash = other.hash;
device = other.device;
stages = std::move(other.stages);
modules = std::move(other.modules);
descriptorSetLayout = other.descriptorSetLayout;
pipelineLayout = other.pipelineLayout;
bindingKinds = std::move(other.bindingKinds);
dynamicBindings = std::move(other.dynamicBindings);
samplerUniformLocationByBinding = std::move(other.samplerUniformLocationByBinding);
samplerTextureTargetByBinding = std::move(other.samplerTextureTargetByBinding);
globalUboBinding = other.globalUboBinding;
other.hash = 0;
other.device = VK_NULL_HANDLE;
other.descriptorSetLayout = VK_NULL_HANDLE;
other.pipelineLayout = VK_NULL_HANDLE;
other.globalUboBinding = -1;
return *this;
}
~BackendProgramObject() {
DestroyModules();
stages.clear();
~VkProgramObject() {
Destroy();
}
private:
void DestroyModules() {
for (auto module : modules) {
if (module != VK_NULL_HANDLE && device != VK_NULL_HANDLE) {
vkDestroyShaderModule(device, module, nullptr);
void Destroy() {
if (s_device != VK_NULL_HANDLE) {
if (pipelineLayout != VK_NULL_HANDLE) {
vkDestroyPipelineLayout(s_device, pipelineLayout, nullptr);
pipelineLayout = VK_NULL_HANDLE;
}
if (descriptorSetLayout != VK_NULL_HANDLE) {
vkDestroyDescriptorSetLayout(s_device, descriptorSetLayout, nullptr);
descriptorSetLayout = VK_NULL_HANDLE;
}
for (auto module : modules) {
if (module != VK_NULL_HANDLE) {
vkDestroyShaderModule(s_device, module, nullptr);
}
}
}
modules.clear();
stages.clear();
}
};
explicit ProgramFactory(VkDevice device, const VulkanRendererConfig& config)
: m_device(device), m_config(config) {}
~ProgramFactory();
explicit ProgramFactory(VkDevice device, const VulkanRendererConfig& config, Uint32 maxBindings = 16)
: m_device(device), m_config(config), m_maxBindings(maxBindings) {
VkProgramObject::s_device = device;
}
~ProgramFactory() = default;
ProgramFactory(const ProgramFactory&) = delete;
HashType ComputeHash(const MG_State::GLState::ProgramObject& program, CompileOptionFlags flags) const;
Vector<VkPipelineShaderStageCreateInfo>& GetOrCreatePipelineShaderStages(
const VkProgramObject& GetOrCreateProgram(
const MG_State::GLState::ProgramObject& program, CompileOptionFlags flags);
static VkShaderStageFlagBits ToVkStage(ShaderStage stage);
private:
static TextureTarget UniformTypeToTextureTarget(GLenum glType);
void ReflectLayout(const MG_State::GLState::ProgramObject& program, VkProgramObject& entry) const;
VkDevice m_device = VK_NULL_HANDLE;
UnorderedMap<HashType, BackendProgramObject> m_cache;
Uint32 m_maxBindings = 0;
UnorderedMap<HashType, VkProgramObject> m_cache;
const VulkanRendererConfig& m_config;
static inline XXH64_state_t* m_hashState = XXH64_createState();
};
@@ -8,6 +8,9 @@
#include "SwapchainObject.h"
#include "MG_Impl/GLImpl/Framebuffer/GL_Framebuffer.h"
#include "MG_State/GLState/TextureState/TextureObject2D.h"
#if defined(__has_include)
#if __has_include(<vulkan/vk_enum_string_helper.h>)
#include <vulkan/vk_enum_string_helper.h>
@@ -38,6 +41,40 @@ static const char* string_VkSurfaceTransformFlagBitsKHR(VkSurfaceTransformFlagBi
#endif
namespace MobileGL::MG_Backend::DirectVulkan {
namespace {
Bool HasStencilComponent(VkFormat format) {
return format == VK_FORMAT_D24_UNORM_S8_UINT || format == VK_FORMAT_D32_SFLOAT_S8_UINT;
}
VkFormat FindSupportedDepthStencilFormat(VkPhysicalDevice physicalDevice) {
const VkFormat candidates[] = {VK_FORMAT_D24_UNORM_S8_UINT, VK_FORMAT_D32_SFLOAT_S8_UINT,
VK_FORMAT_D32_SFLOAT};
for (VkFormat format : candidates) {
VkFormatProperties props{};
vkGetPhysicalDeviceFormatProperties(physicalDevice, format, &props);
if ((props.optimalTilingFeatures & VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0) {
return format;
}
}
return VK_FORMAT_UNDEFINED;
}
Uint32 FindMemoryType(VkPhysicalDevice physicalDevice, Uint32 typeFilter, VkMemoryPropertyFlags properties) {
VkPhysicalDeviceMemoryProperties memProperties{};
vkGetPhysicalDeviceMemoryProperties(physicalDevice, &memProperties);
for (Uint32 i = 0; i < memProperties.memoryTypeCount; i++) {
if ((typeFilter & (1 << i)) &&
(memProperties.memoryTypes[i].propertyFlags & properties) == properties) {
return i;
}
}
MOBILEGL_ASSERT(false, "Failed to find suitable memory type.");
return 0;
}
} // namespace
SwapchainObject::SwapchainCapabilities SwapchainObject::GetSwapchainCapabilities(VkPhysicalDevice physicalDevice,
VkSurfaceKHR surface) {
SwapchainCapabilities swapchainCapabilities{};
@@ -127,6 +164,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
createInfo.imageFormat = pickedSurfaceFormat.format;
createInfo.imageColorSpace = pickedSurfaceFormat.colorSpace;
createInfo.imageExtent = swapchainCaps.currentExtent;
if (swapchainCaps.currentTransform == VK_SURFACE_TRANSFORM_ROTATE_90_BIT_KHR ||
swapchainCaps.currentTransform == VK_SURFACE_TRANSFORM_ROTATE_270_BIT_KHR) {
std::swap(createInfo.imageExtent.width, createInfo.imageExtent.height);
}
createInfo.imageArrayLayers = 1;
const VkImageUsageFlags requiredImageUsage =
VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT | VK_IMAGE_USAGE_TRANSFER_DST_BIT;
@@ -185,12 +227,133 @@ namespace MobileGL::MG_Backend::DirectVulkan {
m_imageLayouts.assign(imageCount, VK_IMAGE_LAYOUT_UNDEFINED);
CreateImageViews(device);
CreateDepthStencilResources(device, physicalDevice);
MGLOG_I("Swapchain created, extent = %dx%d, swapchain imageCount = %d", m_extent.width, m_extent.height,
imageCount);
// Properly initialize Default FBO here
auto& defaultFBOInfo = MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo;
auto* colorTex = static_cast<MG_State::GLState::TextureObject2D*>(defaultFBOInfo->colorAttachment.get());
colorTex->AllocateStorage(
TextureUploadTarget::Texture2D, 0, {
{(Int)createInfo.imageExtent.width, (Int)createInfo.imageExtent.height, 1},
createInfo.imageExtent.width * (Int)createInfo.imageExtent.height * 4}); // TODO: 4 is format size
TextureInternalFormat depthFormat = TextureInternalFormat::Depth24Stencil8;
switch (m_depthStencilFormat) {
case VK_FORMAT_D24_UNORM_S8_UINT:
depthFormat = TextureInternalFormat::Depth24Stencil8;
break;
case VK_FORMAT_D32_SFLOAT_S8_UINT:
depthFormat = TextureInternalFormat::Depth32FStencil8;
break;
case VK_FORMAT_D32_SFLOAT:
depthFormat = TextureInternalFormat::DepthComponent32F;
break;
default:
depthFormat = TextureInternalFormat::Depth24Stencil8;
break;
}
auto* depthTex = static_cast<MG_State::GLState::TextureObject2D*>(defaultFBOInfo->depthAttachment.get());
depthTex->SetInternalFormat(depthFormat);
depthTex->AllocateStorage(TextureUploadTarget::Texture2D, 0, {
{(Int)createInfo.imageExtent.width, (Int)createInfo.imageExtent.height, 1},
createInfo.imageExtent.width * createInfo.imageExtent.width * 4}); // TODO: 4 is format size
}
void SwapchainObject::CreateDepthStencilResources(VkDevice device, VkPhysicalDevice physicalDevice) {
DestroyDepthStencilResources(device);
const auto imageCount = static_cast<Uint32>(m_images.size());
if (imageCount == 0) {
return;
}
m_depthStencilFormat = FindSupportedDepthStencilFormat(physicalDevice);
MOBILEGL_ASSERT(m_depthStencilFormat != VK_FORMAT_UNDEFINED, "No supported depth/stencil format found.");
m_depthStencilImages.assign(imageCount, VK_NULL_HANDLE);
m_depthStencilImageMemories.assign(imageCount, VK_NULL_HANDLE);
m_depthStencilImageViews.assign(imageCount, VK_NULL_HANDLE);
m_depthStencilImageLayouts.assign(imageCount, VK_IMAGE_LAYOUT_UNDEFINED);
for (Uint32 i = 0; i < imageCount; ++i) {
VkImageCreateInfo imageInfo{};
imageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
imageInfo.imageType = VK_IMAGE_TYPE_2D;
imageInfo.extent.width = m_extent.width;
imageInfo.extent.height = m_extent.height;
imageInfo.extent.depth = 1;
imageInfo.mipLevels = 1;
imageInfo.arrayLayers = 1;
imageInfo.format = m_depthStencilFormat;
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
imageInfo.usage = VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
imageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateImage(device, &imageInfo, nullptr, &m_depthStencilImages[i]), "vkCreateImage(depth)");
VkMemoryRequirements memRequirements{};
vkGetImageMemoryRequirements(device, m_depthStencilImages[i], &memRequirements);
VkMemoryAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
allocInfo.allocationSize = memRequirements.size;
allocInfo.memoryTypeIndex =
FindMemoryType(physicalDevice, memRequirements.memoryTypeBits, VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT);
VK_VERIFY(vkAllocateMemory(device, &allocInfo, nullptr, &m_depthStencilImageMemories[i]),
"vkAllocateMemory(depth)");
VK_VERIFY(vkBindImageMemory(device, m_depthStencilImages[i], m_depthStencilImageMemories[i], 0),
"vkBindImageMemory(depth)");
VkImageViewCreateInfo viewInfo{};
viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
viewInfo.image = m_depthStencilImages[i];
viewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
viewInfo.format = m_depthStencilFormat;
viewInfo.subresourceRange.aspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (HasStencilComponent(m_depthStencilFormat)) {
viewInfo.subresourceRange.aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
viewInfo.subresourceRange.baseMipLevel = 0;
viewInfo.subresourceRange.levelCount = 1;
viewInfo.subresourceRange.baseArrayLayer = 0;
viewInfo.subresourceRange.layerCount = 1;
VK_VERIFY(vkCreateImageView(device, &viewInfo, nullptr, &m_depthStencilImageViews[i]),
"vkCreateImageView(depth)");
}
}
void SwapchainObject::DestroyDepthStencilResources(VkDevice device) {
for (auto view : m_depthStencilImageViews) {
if (view != VK_NULL_HANDLE) {
vkDestroyImageView(device, view, nullptr);
}
}
m_depthStencilImageViews.clear();
for (auto image : m_depthStencilImages) {
if (image != VK_NULL_HANDLE) {
vkDestroyImage(device, image, nullptr);
}
}
m_depthStencilImages.clear();
for (auto memory : m_depthStencilImageMemories) {
if (memory != VK_NULL_HANDLE) {
vkFreeMemory(device, memory, nullptr);
}
}
m_depthStencilImageMemories.clear();
m_depthStencilImageLayouts.clear();
m_depthStencilFormat = VK_FORMAT_UNDEFINED;
}
void SwapchainObject::Shutdown(VkDevice device) {
DestroyDepthStencilResources(device);
for (auto imageView : m_imageViews) {
vkDestroyImageView(device, imageView, nullptr);
}
@@ -221,6 +384,29 @@ namespace MobileGL::MG_Backend::DirectVulkan {
m_imageLayouts[index] = layout;
}
VkImage SwapchainObject::GetDepthStencilImage(Uint32 index) const {
MOBILEGL_ASSERT(index < m_depthStencilImages.size(), "Swapchain depth/stencil image index out of range");
return m_depthStencilImages[index];
}
VkImageView SwapchainObject::GetDepthStencilImageView(Uint32 index) const {
MOBILEGL_ASSERT(index < m_depthStencilImageViews.size(),
"Swapchain depth/stencil image view index out of range");
return m_depthStencilImageViews[index];
}
VkImageLayout SwapchainObject::GetDepthStencilImageLayout(Uint32 index) const {
MOBILEGL_ASSERT(index < m_depthStencilImageLayouts.size(),
"Swapchain depth/stencil image layout index out of range");
return m_depthStencilImageLayouts[index];
}
void SwapchainObject::SetDepthStencilImageLayout(Uint32 index, VkImageLayout layout) {
MOBILEGL_ASSERT(index < m_depthStencilImageLayouts.size(),
"Swapchain depth/stencil image layout index out of range");
m_depthStencilImageLayouts[index] = layout;
}
void SwapchainObject::CreateImageViews(VkDevice device) {
m_imageViews.resize(m_images.size(), VK_NULL_HANDLE);
for (SizeT i = 0; i < m_imageViews.size(); i++) {
@@ -38,6 +38,12 @@ namespace MobileGL::MG_Backend::DirectVulkan {
VkSurfaceTransformFlagBitsKHR GetPreTransform() const { return m_preTransform; }
const Vector<VkImage>& GetImages() const { return m_images; }
const Vector<VkImageView>& GetImageViews() const { return m_imageViews; }
VkFormat GetDepthStencilFormat() const { return m_depthStencilFormat; }
const Vector<VkImageView>& GetDepthStencilImageViews() const { return m_depthStencilImageViews; }
VkImage GetDepthStencilImage(Uint32 index) const;
VkImageView GetDepthStencilImageView(Uint32 index) const;
VkImageLayout GetDepthStencilImageLayout(Uint32 index) const;
void SetDepthStencilImageLayout(Uint32 index, VkImageLayout layout);
VkImage GetImage(Uint32 index) const;
VkImageLayout GetImageLayout(Uint32 index) const;
void SetImageLayout(Uint32 index, VkImageLayout layout);
@@ -45,6 +51,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
private:
void CreateImageViews(VkDevice device);
void CreateDepthStencilResources(VkDevice device, VkPhysicalDevice physicalDevice);
void DestroyDepthStencilResources(VkDevice device);
static constexpr VkPresentModeKHR s_desiredPresentModes[] {
VK_PRESENT_MODE_MAILBOX_KHR,
VK_PRESENT_MODE_IMMEDIATE_KHR,
@@ -59,5 +67,11 @@ namespace MobileGL::MG_Backend::DirectVulkan {
Vector<VkImage> m_images;
Vector<VkImageView> m_imageViews;
Vector<VkImageLayout> m_imageLayouts;
VkFormat m_depthStencilFormat = VK_FORMAT_UNDEFINED;
Vector<VkImage> m_depthStencilImages;
Vector<VkDeviceMemory> m_depthStencilImageMemories;
Vector<VkImageView> m_depthStencilImageViews;
Vector<VkImageLayout> m_depthStencilImageLayouts;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,875 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/UniformDescriptorBinder.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 "UniformDescriptorBinder.h"
#include "VkFramebufferManager.h"
#include "MG_State/GLState/Core.h"
#include "MG_State/GLState/ProgramState/ProgramObject.h"
#include "MG_Util/ShaderTranspiler/Types.h"
#include <limits>
namespace MobileGL::MG_Backend::DirectVulkan {
VkDeviceSize UniformDescriptorBinder::AlignUp(VkDeviceSize value, VkDeviceSize alignment) {
if (alignment == 0) {
return value;
}
return (value + alignment - 1) / alignment * alignment;
}
Uint64 UniformDescriptorBinder::ComputeProgramHash(const MG_State::GLState::ProgramObject& program) {
XXH64_state_t* state = XXH64_createState();
XXHASH_VERIFY(XXH64_reset(state, 0xC0D3A11ULL));
const auto& spirv = program.GetGeneratedSpirv();
for (const auto& module : spirv) {
XXHASH_VERIFY(XXH64_update(state, module.data(), module.size() * sizeof(Uint)));
}
const Uint32 blockCount = static_cast<Uint32>(program.GetActiveUniformBlocksCount());
XXHASH_VERIFY(XXH64_update(state, &blockCount, sizeof(blockCount)));
for (Uint32 i = 0; i < blockCount; ++i) {
const Uint32 binding = program.GetUniformBlockBinding(i);
XXHASH_VERIFY(XXH64_update(state, &binding, sizeof(binding)));
}
const Uint64 hash = XXH64_digest(state);
XXH64_freeState(state);
return hash;
}
Bool UniformDescriptorBinder::IsSamplerUniformType(GLenum glType) {
switch (glType) {
case GL_SAMPLER_1D:
case GL_SAMPLER_2D:
case GL_SAMPLER_3D:
case GL_SAMPLER_CUBE:
case GL_SAMPLER_1D_SHADOW:
case GL_SAMPLER_2D_SHADOW:
case GL_SAMPLER_1D_ARRAY:
case GL_SAMPLER_2D_ARRAY:
case GL_SAMPLER_1D_ARRAY_SHADOW:
case GL_SAMPLER_2D_ARRAY_SHADOW:
case GL_SAMPLER_2D_MULTISAMPLE:
case GL_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_SAMPLER_CUBE_SHADOW:
case GL_SAMPLER_BUFFER:
case GL_SAMPLER_2D_RECT:
case GL_SAMPLER_2D_RECT_SHADOW:
case GL_INT_SAMPLER_1D:
case GL_INT_SAMPLER_2D:
case GL_INT_SAMPLER_3D:
case GL_INT_SAMPLER_CUBE:
case GL_INT_SAMPLER_1D_ARRAY:
case GL_INT_SAMPLER_2D_ARRAY:
case GL_INT_SAMPLER_2D_MULTISAMPLE:
case GL_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_INT_SAMPLER_BUFFER:
case GL_INT_SAMPLER_2D_RECT:
case GL_UNSIGNED_INT_SAMPLER_1D:
case GL_UNSIGNED_INT_SAMPLER_2D:
case GL_UNSIGNED_INT_SAMPLER_3D:
case GL_UNSIGNED_INT_SAMPLER_CUBE:
case GL_UNSIGNED_INT_SAMPLER_1D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_BUFFER:
case GL_UNSIGNED_INT_SAMPLER_2D_RECT:
return true;
default:
return false;
}
}
TextureTarget UniformDescriptorBinder::UniformTypeToTextureTarget(GLenum glType) {
switch (glType) {
case GL_SAMPLER_1D:
case GL_INT_SAMPLER_1D:
case GL_UNSIGNED_INT_SAMPLER_1D:
return TextureTarget::Texture1D;
case GL_SAMPLER_3D:
case GL_INT_SAMPLER_3D:
case GL_UNSIGNED_INT_SAMPLER_3D:
return TextureTarget::Texture3D;
case GL_SAMPLER_CUBE:
case GL_SAMPLER_CUBE_SHADOW:
case GL_INT_SAMPLER_CUBE:
case GL_UNSIGNED_INT_SAMPLER_CUBE:
return TextureTarget::TextureCubeMap;
case GL_SAMPLER_2D_MULTISAMPLE:
case GL_INT_SAMPLER_2D_MULTISAMPLE:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE:
return TextureTarget::Texture2DMultisample;
case GL_SAMPLER_BUFFER:
case GL_INT_SAMPLER_BUFFER:
case GL_UNSIGNED_INT_SAMPLER_BUFFER:
return TextureTarget::TextureBuffer;
case GL_SAMPLER_1D_ARRAY:
case GL_SAMPLER_1D_ARRAY_SHADOW:
case GL_INT_SAMPLER_1D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_1D_ARRAY:
return TextureTarget::Texture1DArray;
case GL_SAMPLER_2D_ARRAY:
case GL_SAMPLER_2D_ARRAY_SHADOW:
case GL_INT_SAMPLER_2D_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_ARRAY:
return TextureTarget::Texture2DArray;
case GL_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
case GL_UNSIGNED_INT_SAMPLER_2D_MULTISAMPLE_ARRAY:
return TextureTarget::Texture2DMultisampleArray;
case GL_SAMPLER_2D_RECT:
case GL_SAMPLER_2D_RECT_SHADOW:
case GL_INT_SAMPLER_2D_RECT:
case GL_UNSIGNED_INT_SAMPLER_2D_RECT:
return TextureTarget::TextureRectangle;
case GL_SAMPLER_2D:
case GL_SAMPLER_2D_SHADOW:
case GL_INT_SAMPLER_2D:
case GL_UNSIGNED_INT_SAMPLER_2D:
default:
return TextureTarget::Texture2D;
}
}
Bool UniformDescriptorBinder::Initialize(VkDevice device, VmaAllocator allocator,
VkDeviceSize minUniformBufferOffsetAlignment, Uint32 frameCount,
Uint32 maxBindings, Uint32 setsPerFrame, VkDeviceSize perFrameUploadBytes,
VkTextureSamplerManager* textureSamplerManager,
VkFramebufferManager* framebufferManager) {
Shutdown();
MOBILEGL_ASSERT(device != VK_NULL_HANDLE, "UniformDescriptorBinder::Initialize requires valid VkDevice");
MOBILEGL_ASSERT(allocator != nullptr, "UniformDescriptorBinder::Initialize requires valid VMA allocator");
MOBILEGL_ASSERT(frameCount > 0, "UniformDescriptorBinder::Initialize requires frameCount > 0");
MOBILEGL_ASSERT(maxBindings > 0, "UniformDescriptorBinder::Initialize requires maxBindings > 0");
MOBILEGL_ASSERT(setsPerFrame > 0, "UniformDescriptorBinder::Initialize requires setsPerFrame > 0");
m_device = device;
m_allocator = allocator;
m_minDynamicOffsetAlignment = std::max<VkDeviceSize>(1, minUniformBufferOffsetAlignment);
m_perFrameUploadBytes = perFrameUploadBytes;
m_frameCount = frameCount;
m_maxBindings = maxBindings;
m_setsPerFrame = setsPerFrame;
m_peakDescriptorSetsObserved = 0;
m_textureSamplerManager = textureSamplerManager;
m_framebufferManager = framebufferManager;
m_frames.resize(m_frameCount);
for (Uint32 frameIndex = 0; frameIndex < m_frameCount; ++frameIndex) {
auto& frame = m_frames[frameIndex];
frame.writeCursor = 0;
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
frame.descriptorPools.clear();
VkDescriptorPool initialPool = VK_NULL_HANDLE;
if (!CreateDescriptorPool(m_setsPerFrame, initialPool)) {
MGLOG_E("UniformDescriptorBinder::Initialize failed: cannot create frame descriptor pool %u",
frameIndex);
Shutdown();
return false;
}
frame.descriptorPools.push_back({initialPool, m_setsPerFrame, 0});
MGLOG_D("UniformDescriptorBinder: frame %u descriptor pool created (maxSets=%u)", frameIndex, m_setsPerFrame);
const Bool created = frame.uploadBuffer.Create(
m_allocator, m_perFrameUploadBytes, VK_BUFFER_USAGE_UNIFORM_BUFFER_BIT, VMA_MEMORY_USAGE_AUTO,
VMA_ALLOCATION_CREATE_HOST_ACCESS_SEQUENTIAL_WRITE_BIT);
if (!created) {
MGLOG_E("UniformDescriptorBinder::Initialize failed: cannot create frame upload buffer %u", frameIndex);
Shutdown();
return false;
}
}
return true;
}
void UniformDescriptorBinder::Shutdown() {
for (auto& frame : m_frames) {
frame.uploadBuffer.Destroy();
if (m_device != VK_NULL_HANDLE) {
for (auto& bucket : frame.descriptorPools) {
if (bucket.handle != VK_NULL_HANDLE) {
vkDestroyDescriptorPool(m_device, bucket.handle, nullptr);
bucket.handle = VK_NULL_HANDLE;
}
}
}
frame.descriptorPools.clear();
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
frame.writeCursor = 0;
}
m_frames.clear();
DestroyProgramLayouts();
m_allocator = nullptr;
m_device = VK_NULL_HANDLE;
m_minDynamicOffsetAlignment = 1;
m_perFrameUploadBytes = 0;
m_frameCount = 0;
m_maxBindings = 0;
m_setsPerFrame = 0;
m_peakDescriptorSetsObserved = 0;
m_textureSamplerManager = nullptr;
m_framebufferManager = nullptr;
}
void UniformDescriptorBinder::BeginFrame(Uint32 frameIndex) {
MOBILEGL_ASSERT(frameIndex < m_frames.size(), "UniformDescriptorBinder::BeginFrame invalid frame index");
auto& frame = m_frames[frameIndex];
if (frame.peakAllocatedSetsThisFrame > m_peakDescriptorSetsObserved) {
m_peakDescriptorSetsObserved = frame.peakAllocatedSetsThisFrame;
MGLOG_D(
"UniformDescriptorBinder: new descriptor set peak observed=%u (base setsPerFrame=%u, frame=%u, pools=%zu)",
m_peakDescriptorSetsObserved, m_setsPerFrame, frameIndex, frame.descriptorPools.size());
}
frame.writeCursor = 0;
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
for (auto& bucket : frame.descriptorPools) {
bucket.allocatedSets = 0;
if (bucket.handle == VK_NULL_HANDLE) {
continue;
}
VK_VERIFY(vkResetDescriptorPool(m_device, bucket.handle, 0),
"UniformDescriptorBinder::BeginFrame, vkResetDescriptorPool");
}
}
Bool UniformDescriptorBinder::ReflectBindingKinds(const MG_State::GLState::ProgramObject& program,
Vector<BindingKind>& outKinds) const {
outKinds.assign(m_maxBindings, BindingKind::None);
const auto& spirv = program.GetGeneratedSpirv();
for (const auto& module : spirv) {
if (module.empty()) {
continue;
}
spvc_context context = nullptr;
spvc_parsed_ir ir = nullptr;
spvc_compiler compiler = nullptr;
spvc_resources resources = nullptr;
if (spvc_context_create(&context) != SPVC_SUCCESS) {
return false;
}
const spvc_result parseResult = spvc_context_parse_spirv(context, module.data(), module.size(), &ir);
if (parseResult != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
const spvc_result compilerResult =
spvc_context_create_compiler(context, SPVC_BACKEND_GLSL, ir, SPVC_CAPTURE_MODE_TAKE_OWNERSHIP, &compiler);
if (compilerResult != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
if (spvc_compiler_create_shader_resources(compiler, &resources) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
const auto applyBindings = [&](spvc_resource_type resourceType, BindingKind kind) {
const spvc_reflected_resource* list = nullptr;
size_t count = 0;
if (spvc_resources_get_resource_list_for_type(resources, resourceType, &list, &count) != SPVC_SUCCESS) {
return;
}
for (size_t i = 0; i < count; ++i) {
const Uint32 binding =
spvc_compiler_get_decoration(compiler, list[i].id, SpvDecorationBinding);
if (binding >= m_maxBindings) {
continue;
}
if (kind == BindingKind::CombinedImageSampler) {
outKinds[binding] = BindingKind::CombinedImageSampler;
} else if (outKinds[binding] == BindingKind::None) {
outKinds[binding] = kind;
}
}
};
applyBindings(SPVC_RESOURCE_TYPE_UNIFORM_BUFFER, BindingKind::UniformBufferDynamic);
applyBindings(SPVC_RESOURCE_TYPE_SAMPLED_IMAGE, BindingKind::CombinedImageSampler);
spvc_context_destroy(context);
}
return true;
}
Bool UniformDescriptorBinder::ReflectSamplerBindings(const MG_State::GLState::ProgramObject& program,
ProgramLayout& layout) const {
layout.samplerUniformLocationByBinding.assign(m_maxBindings, -1);
layout.samplerTextureTargetByBinding.assign(m_maxBindings, TextureTarget::Texture2D);
const auto& spirv = program.GetGeneratedSpirv();
for (const auto& module : spirv) {
if (module.empty()) {
continue;
}
spvc_context context = nullptr;
spvc_parsed_ir ir = nullptr;
spvc_compiler compiler = nullptr;
spvc_resources resources = nullptr;
if (spvc_context_create(&context) != SPVC_SUCCESS) {
return false;
}
if (spvc_context_parse_spirv(context, module.data(), module.size(), &ir) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
if (spvc_context_create_compiler(context, SPVC_BACKEND_GLSL, ir, SPVC_CAPTURE_MODE_TAKE_OWNERSHIP,
&compiler) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
if (spvc_compiler_create_shader_resources(compiler, &resources) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
const spvc_reflected_resource* list = nullptr;
size_t count = 0;
if (spvc_resources_get_resource_list_for_type(resources, SPVC_RESOURCE_TYPE_SAMPLED_IMAGE, &list, &count) ==
SPVC_SUCCESS) {
for (size_t i = 0; i < count; ++i) {
const Uint32 binding =
spvc_compiler_get_decoration(compiler, list[i].id, SpvDecorationBinding);
if (binding >= m_maxBindings) {
continue;
}
String uniformName = list[i].name ? list[i].name : "";
Int location = program.GetUniformLocation(uniformName);
if (location < 0) {
const auto arraySuffix = uniformName.find("[0]");
if (arraySuffix != String::npos) {
uniformName = uniformName.substr(0, arraySuffix);
location = program.GetUniformLocation(uniformName);
}
}
if (location < 0) {
continue;
}
layout.samplerUniformLocationByBinding[binding] = location;
layout.samplerTextureTargetByBinding[binding] =
UniformTypeToTextureTarget(program.GetUniformType(static_cast<Uint>(location)));
}
}
spvc_context_destroy(context);
}
return true;
}
Bool UniformDescriptorBinder::ReflectGlobalUboBinding(const MG_State::GLState::ProgramObject& program,
ProgramLayout& layout) const {
layout.globalUboBinding = -1;
const auto& spirv = program.GetGeneratedSpirv();
for (const auto& module : spirv) {
if (module.empty()) {
continue;
}
spvc_context context = nullptr;
spvc_parsed_ir ir = nullptr;
spvc_compiler compiler = nullptr;
spvc_resources resources = nullptr;
if (spvc_context_create(&context) != SPVC_SUCCESS) {
return false;
}
if (spvc_context_parse_spirv(context, module.data(), module.size(), &ir) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
if (spvc_context_create_compiler(context, SPVC_BACKEND_GLSL, ir, SPVC_CAPTURE_MODE_TAKE_OWNERSHIP,
&compiler) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
if (spvc_compiler_create_shader_resources(compiler, &resources) != SPVC_SUCCESS) {
spvc_context_destroy(context);
continue;
}
const spvc_reflected_resource* list = nullptr;
size_t count = 0;
if (spvc_resources_get_resource_list_for_type(resources, SPVC_RESOURCE_TYPE_UNIFORM_BUFFER, &list, &count) ==
SPVC_SUCCESS) {
for (size_t i = 0; i < count; ++i) {
const char* name = list[i].name ? list[i].name : "";
if (std::strstr(name, MG_Util::ShaderTranspiler::GLOBAL_UBO_NAME) == nullptr) {
continue;
}
const Uint32 binding =
spvc_compiler_get_decoration(compiler, list[i].id, SpvDecorationBinding);
if (binding < m_maxBindings) {
layout.globalUboBinding = static_cast<Int>(binding);
}
break;
}
}
spvc_context_destroy(context);
if (layout.globalUboBinding >= 0) {
break;
}
}
return true;
}
Bool UniformDescriptorBinder::ResolveSamplerDescriptor(VkCommandBuffer commandBuffer,
const MG_State::GLState::ProgramObject& program,
const ProgramLayout& layout, Uint32 binding,
VkDescriptorImageInfo& outImageInfo) const {
if (!m_textureSamplerManager || !MG_State::pGLContext || binding >= layout.samplerUniformLocationByBinding.size()) {
return false;
}
const Int location = layout.samplerUniformLocationByBinding[binding];
if (location < 0) {
return false;
}
const Int unit = program.GetUniformSamplerOrImageUnitIndex(static_cast<Uint>(location));
if (unit < 0) {
return false;
}
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
const auto samplerOverride = textureUnit.GetSamplerObject();
const TextureTarget preferredTarget = layout.samplerTextureTargetByBinding[binding];
auto texture = textureUnit.GetBindingSlot(preferredTarget).GetBoundObject();
if (!texture) {
auto& slots = textureUnit.GetAllBindingSlots();
for (auto& slot : slots) {
texture = slot.GetBoundObject();
if (texture) {
break;
}
}
}
if (!texture) {
return false;
}
if (m_framebufferManager &&
m_framebufferManager->TransitionOffscreenColorTextureToShaderRead(commandBuffer, texture->GetExternalIndex())) {
VkImageView offscreenView = VK_NULL_HANDLE;
if (m_framebufferManager->GetOffscreenColorViewByTexture(texture->GetExternalIndex(), offscreenView) &&
offscreenView != VK_NULL_HANDLE) {
VkDescriptorImageInfo sampledInfo{};
if (!m_textureSamplerManager->SyncTextureAndGetDescriptor(*texture, samplerOverride.get(), sampledInfo)) {
return false;
}
sampledInfo.imageView = offscreenView;
sampledInfo.imageLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
outImageInfo = sampledInfo;
return true;
}
}
return m_textureSamplerManager->SyncTextureAndGetDescriptor(*texture, samplerOverride.get(), outImageInfo);
}
UniformDescriptorBinder::ProgramLayout* UniformDescriptorBinder::GetOrCreateProgramLayout(
const MG_State::GLState::ProgramObject& program) {
const Uint64 hash = ComputeProgramHash(program);
auto it = m_programLayouts.find(hash);
if (it != m_programLayouts.end()) {
return &it->second;
}
ProgramLayout layout{};
layout.hash = hash;
if (!ReflectBindingKinds(program, layout.bindingKinds)) {
MGLOG_E("UniformDescriptorBinder::GetOrCreateProgramLayout failed: reflection failed");
return nullptr;
}
if (!ReflectSamplerBindings(program, layout)) {
MGLOG_E("UniformDescriptorBinder::GetOrCreateProgramLayout failed: sampler reflection failed");
return nullptr;
}
if (!ReflectGlobalUboBinding(program, layout)) {
MGLOG_E("UniformDescriptorBinder::GetOrCreateProgramLayout failed: global UBO reflection failed");
return nullptr;
}
Vector<VkDescriptorSetLayoutBinding> bindings;
bindings.reserve(m_maxBindings);
for (Uint32 binding = 0; binding < m_maxBindings; ++binding) {
const auto kind = layout.bindingKinds[binding];
if (kind == BindingKind::None) {
continue;
}
VkDescriptorSetLayoutBinding layoutBinding{};
layoutBinding.binding = binding;
layoutBinding.descriptorCount = 1;
layoutBinding.stageFlags = VK_SHADER_STAGE_ALL_GRAPHICS;
layoutBinding.pImmutableSamplers = nullptr;
if (kind == BindingKind::UniformBufferDynamic) {
layoutBinding.descriptorType = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
layout.dynamicBindings.push_back(binding);
} else {
layoutBinding.descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
}
bindings.push_back(layoutBinding);
}
VkDescriptorSetLayoutCreateInfo setLayoutInfo{};
setLayoutInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_LAYOUT_CREATE_INFO;
setLayoutInfo.bindingCount = static_cast<Uint32>(bindings.size());
setLayoutInfo.pBindings = bindings.data();
VK_VERIFY(vkCreateDescriptorSetLayout(m_device, &setLayoutInfo, nullptr, &layout.descriptorSetLayout),
"UniformDescriptorBinder::GetOrCreateProgramLayout, vkCreateDescriptorSetLayout");
VkPipelineLayoutCreateInfo pipelineLayoutInfo{};
pipelineLayoutInfo.sType = VK_STRUCTURE_TYPE_PIPELINE_LAYOUT_CREATE_INFO;
pipelineLayoutInfo.setLayoutCount = 1;
pipelineLayoutInfo.pSetLayouts = &layout.descriptorSetLayout;
VK_VERIFY(vkCreatePipelineLayout(m_device, &pipelineLayoutInfo, nullptr, &layout.pipelineLayout),
"UniformDescriptorBinder::GetOrCreateProgramLayout, vkCreatePipelineLayout");
auto [insertIt, _] = m_programLayouts.emplace(hash, std::move(layout));
return &insertIt->second;
}
VkPipelineLayout UniformDescriptorBinder::GetOrCreatePipelineLayout(const MG_State::GLState::ProgramObject& program) {
auto* layout = GetOrCreateProgramLayout(program);
return layout ? layout->pipelineLayout : VK_NULL_HANDLE;
}
Bool UniformDescriptorBinder::AllocateUploadRegion(FrameResources& frame, VkDeviceSize size, VkDeviceSize& outOffset) {
const VkDeviceSize alignedOffset = AlignUp(frame.writeCursor, m_minDynamicOffsetAlignment);
if (alignedOffset + size > m_perFrameUploadBytes) {
return false;
}
outOffset = alignedOffset;
frame.writeCursor = alignedOffset + size;
return true;
}
Bool UniformDescriptorBinder::GatherBindingPayloads(const MG_State::GLState::ProgramObject& program,
Vector<const void*>& outData,
Vector<VkDeviceSize>& outSizes) const {
outData.assign(m_maxBindings, nullptr);
outSizes.assign(m_maxBindings, 0);
if (MG_State::pGLContext == nullptr) {
return false;
}
const Uint32 activeUniformBlockCount = static_cast<Uint32>(program.GetActiveUniformBlocksCount());
const Uint32 uniformBindingPointCount =
static_cast<Uint32>(MG_State::pGLContext->GetBufferBindingPointCount(BufferTarget::Uniform));
for (Uint32 blockIndex = 0; blockIndex < activeUniformBlockCount; ++blockIndex) {
const Uint32 binding = program.GetUniformBlockBinding(blockIndex);
if (binding >= m_maxBindings) {
continue;
}
VkDeviceSize blockSize = static_cast<VkDeviceSize>(program.GetUBOSizeAt(blockIndex));
if (blockSize == 0) {
continue;
}
if (binding >= uniformBindingPointCount) {
continue;
}
auto& bindingPoint = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::Uniform, binding);
const auto bufferObject = bindingPoint.GetBoundObject();
if (!bufferObject) {
continue;
}
const auto bufferData = bufferObject->GetDataReadOnly();
if (!bufferData || bufferData->empty()) {
continue;
}
const auto range = bindingPoint.GetRange();
const VkDeviceSize bufferSize = static_cast<VkDeviceSize>(bufferObject->GetSize());
VkDeviceSize rangeStart = static_cast<VkDeviceSize>(range.start);
VkDeviceSize rangeEnd = static_cast<VkDeviceSize>(range.end);
if (rangeStart >= bufferSize) {
continue;
}
if (rangeEnd <= rangeStart || rangeEnd > bufferSize) {
rangeEnd = bufferSize;
}
VkDeviceSize available = rangeEnd - rangeStart;
if (available == 0) {
continue;
}
outData[binding] = bufferData->data() + static_cast<SizeT>(rangeStart);
outSizes[binding] = std::min(blockSize, available);
}
return true;
}
Bool UniformDescriptorBinder::CreateDescriptorPool(Uint32 maxSets, VkDescriptorPool& outPool) const {
outPool = VK_NULL_HANDLE;
if (m_device == VK_NULL_HANDLE || maxSets == 0 || m_maxBindings == 0) {
return false;
}
const Uint64 descriptorCount64 = static_cast<Uint64>(maxSets) * static_cast<Uint64>(m_maxBindings);
if (descriptorCount64 > static_cast<Uint64>(std::numeric_limits<Uint32>::max())) {
MGLOG_E("UniformDescriptorBinder::CreateDescriptorPool failed: descriptorCount overflow");
return false;
}
const Uint32 descriptorCount = static_cast<Uint32>(descriptorCount64);
VkDescriptorPoolSize poolSizes[2]{};
poolSizes[0].type = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
poolSizes[0].descriptorCount = descriptorCount;
poolSizes[1].type = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
poolSizes[1].descriptorCount = descriptorCount;
VkDescriptorPoolCreateInfo poolInfo{};
poolInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_POOL_CREATE_INFO;
poolInfo.maxSets = maxSets;
poolInfo.poolSizeCount = static_cast<Uint32>(std::size(poolSizes));
poolInfo.pPoolSizes = poolSizes;
const VkResult result = vkCreateDescriptorPool(m_device, &poolInfo, nullptr, &outPool);
if (result != VK_SUCCESS) {
MGLOG_E("UniformDescriptorBinder::CreateDescriptorPool failed: vkCreateDescriptorPool returned %d", result);
return false;
}
return true;
}
Bool UniformDescriptorBinder::GrowFrameDescriptorPool(FrameResources& frame, Uint32 frameIndex) {
if (frame.descriptorPools.empty()) {
return false;
}
const auto& currentBucket = frame.descriptorPools[frame.activeDescriptorPoolIndex];
const Uint32 currentMaxSets = std::max<Uint32>(1, currentBucket.maxSets);
const Uint32 grownMaxSets = currentMaxSets <= (std::numeric_limits<Uint32>::max() / 2) ? (currentMaxSets * 2)
: currentMaxSets;
VkDescriptorPool grownPool = VK_NULL_HANDLE;
if (!CreateDescriptorPool(grownMaxSets, grownPool)) {
MGLOG_E("UniformDescriptorBinder::GrowFrameDescriptorPool failed: cannot create grown pool (%u -> %u sets)",
currentMaxSets, grownMaxSets);
return false;
}
frame.descriptorPools.push_back({grownPool, grownMaxSets, 0});
frame.activeDescriptorPoolIndex = static_cast<Uint32>(frame.descriptorPools.size() - 1);
MGLOG_D(
"UniformDescriptorBinder: frame %u descriptor pool exhausted, grew pool (%u -> %u sets), poolCount=%zu",
frameIndex, currentMaxSets, grownMaxSets, frame.descriptorPools.size());
return true;
}
Bool UniformDescriptorBinder::BindProgramUniformBuffers(VkCommandBuffer commandBuffer, VkPipelineLayout pipelineLayout,
const MG_State::GLState::ProgramObject& program,
Uint32 frameIndex) {
if (m_frames.empty()) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: binder is not initialized");
return false;
}
if (frameIndex >= m_frames.size()) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: invalid frame index %u", frameIndex);
return false;
}
ProgramLayout* layout = GetOrCreateProgramLayout(program);
if (!layout || layout->pipelineLayout == VK_NULL_HANDLE || layout->descriptorSetLayout == VK_NULL_HANDLE) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: cannot get program layout");
return false;
}
if (layout->pipelineLayout != pipelineLayout) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: pipelineLayout mismatch");
return false;
}
auto& frame = m_frames[frameIndex];
if (frame.descriptorPools.empty()) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: frame descriptor pools are invalid");
return false;
}
if (frame.activeDescriptorPoolIndex >= frame.descriptorPools.size()) {
frame.activeDescriptorPoolIndex = 0;
}
VkDescriptorSetAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_ALLOCATE_INFO;
allocInfo.descriptorSetCount = 1;
allocInfo.pSetLayouts = &layout->descriptorSetLayout;
VkDescriptorSet descriptorSet = VK_NULL_HANDLE;
auto allocateFromActivePool = [&](VkResult& outResult) {
auto& bucket = frame.descriptorPools[frame.activeDescriptorPoolIndex];
allocInfo.descriptorPool = bucket.handle;
outResult = vkAllocateDescriptorSets(m_device, &allocInfo, &descriptorSet);
if (outResult == VK_SUCCESS) {
++bucket.allocatedSets;
++frame.allocatedSetsThisFrame;
frame.peakAllocatedSetsThisFrame = std::max(frame.peakAllocatedSetsThisFrame, frame.allocatedSetsThisFrame);
}
};
VkResult allocResult = VK_SUCCESS;
allocateFromActivePool(allocResult);
if (allocResult == VK_ERROR_OUT_OF_POOL_MEMORY || allocResult == VK_ERROR_FRAGMENTED_POOL) {
if (!GrowFrameDescriptorPool(frame, frameIndex)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: descriptor pool growth failed");
return false;
}
allocateFromActivePool(allocResult);
}
if (allocResult != VK_SUCCESS || descriptorSet == VK_NULL_HANDLE) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: vkAllocateDescriptorSets returned %d",
allocResult);
return false;
}
Vector<const void*> bindingData;
Vector<VkDeviceSize> bindingSizes;
if (!GatherBindingPayloads(program, bindingData, bindingSizes)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: cannot gather UBO payloads");
return false;
}
static const Uint8 kFallbackData[16] = {};
VkDescriptorImageInfo fallbackImageInfo{};
const Bool hasFallbackImage = m_textureSamplerManager && m_textureSamplerManager->GetFallbackDescriptor(fallbackImageInfo);
Vector<VkWriteDescriptorSet> writes;
writes.reserve(m_maxBindings);
Vector<VkDescriptorBufferInfo> bufferInfos;
Vector<VkDescriptorImageInfo> imageInfos;
Vector<Uint32> dynamicOffsets;
bufferInfos.reserve(m_maxBindings);
imageInfos.reserve(m_maxBindings);
dynamicOffsets.reserve(layout->dynamicBindings.size());
for (Uint32 binding = 0; binding < m_maxBindings; ++binding) {
const auto kind = layout->bindingKinds[binding];
if (kind == BindingKind::None) {
continue;
}
VkWriteDescriptorSet write{};
write.sType = VK_STRUCTURE_TYPE_WRITE_DESCRIPTOR_SET;
write.dstSet = descriptorSet;
write.dstBinding = binding;
write.dstArrayElement = 0;
write.descriptorCount = 1;
if (kind == BindingKind::UniformBufferDynamic) {
const void* payload = bindingData[binding];
VkDeviceSize payloadSize = bindingSizes[binding];
if (payload == nullptr || payloadSize == 0) {
if (layout->globalUboBinding == static_cast<Int>(binding)) {
const void* globalUboData = program.GetUBOData();
const VkDeviceSize globalUboSize = static_cast<VkDeviceSize>(program.GetUBOSize());
if (globalUboData != nullptr && globalUboSize > 0) {
payload = globalUboData;
payloadSize = globalUboSize;
}
}
if (payload == nullptr || payloadSize == 0) {
payload = kFallbackData;
payloadSize = sizeof(kFallbackData);
}
}
VkDeviceSize payloadOffset = 0;
if (!AllocateUploadRegion(frame, payloadSize, payloadOffset)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: frame upload buffer exhausted");
return false;
}
if (!frame.uploadBuffer.Upload(payload, payloadSize, payloadOffset)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: UBO upload failed on binding %u",
binding);
return false;
}
VkDescriptorBufferInfo bufferInfo{};
bufferInfo.buffer = frame.uploadBuffer.GetHandle();
bufferInfo.offset = 0;
bufferInfo.range = payloadSize;
bufferInfos.push_back(bufferInfo);
write.descriptorType = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
write.pBufferInfo = &bufferInfos.back();
writes.push_back(write);
dynamicOffsets.push_back(static_cast<Uint32>(payloadOffset));
} else {
VkDescriptorImageInfo imageInfo{};
Bool hasImage = ResolveSamplerDescriptor(commandBuffer, program, *layout, binding, imageInfo);
if (!hasImage) {
if (!hasFallbackImage) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: fallback sampler/texture is unavailable");
return false;
}
imageInfo = fallbackImageInfo;
}
if (imageInfo.sampler == VK_NULL_HANDLE || imageInfo.imageView == VK_NULL_HANDLE) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: fallback sampler/texture is unavailable");
return false;
}
imageInfos.push_back(imageInfo);
write.descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
write.pImageInfo = &imageInfos.back();
writes.push_back(write);
}
}
if (!writes.empty()) {
vkUpdateDescriptorSets(m_device, static_cast<Uint32>(writes.size()), writes.data(), 0, nullptr);
}
vkCmdBindDescriptorSets(commandBuffer, VK_PIPELINE_BIND_POINT_GRAPHICS, pipelineLayout, 0, 1, &descriptorSet,
static_cast<Uint32>(dynamicOffsets.size()), dynamicOffsets.data());
return true;
}
void UniformDescriptorBinder::DestroyProgramLayouts() {
for (auto& [_, layout] : m_programLayouts) {
if (layout.pipelineLayout != VK_NULL_HANDLE) {
vkDestroyPipelineLayout(m_device, layout.pipelineLayout, nullptr);
layout.pipelineLayout = VK_NULL_HANDLE;
}
if (layout.descriptorSetLayout != VK_NULL_HANDLE) {
vkDestroyDescriptorSetLayout(m_device, layout.descriptorSetLayout, nullptr);
layout.descriptorSetLayout = VK_NULL_HANDLE;
}
}
m_programLayouts.clear();
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,104 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/UniformDescriptorBinder.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "VkBufferObject.h"
#include "VkTextureSamplerManager.h"
#include "../VkIncludes.h"
#include <Includes.h>
#include <vk_mem_alloc.h>
namespace MobileGL::MG_State::GLState {
class ProgramObject;
}
namespace MobileGL::MG_Backend::DirectVulkan {
class VkFramebufferManager;
class UniformDescriptorBinder {
public:
enum class BindingKind : Uint8 {
None = 0,
UniformBufferDynamic,
CombinedImageSampler
};
Bool Initialize(VkDevice device, VmaAllocator allocator, VkDeviceSize minUniformBufferOffsetAlignment,
Uint32 frameCount, Uint32 maxBindings = 16, Uint32 setsPerFrame = 64,
VkDeviceSize perFrameUploadBytes = 4 * 1024 * 1024,
VkTextureSamplerManager* textureSamplerManager = nullptr,
VkFramebufferManager* framebufferManager = nullptr);
void Shutdown();
void BeginFrame(Uint32 frameIndex);
VkPipelineLayout GetOrCreatePipelineLayout(const MG_State::GLState::ProgramObject& program);
Bool BindProgramUniformBuffers(VkCommandBuffer commandBuffer, VkPipelineLayout pipelineLayout,
const MG_State::GLState::ProgramObject& program, Uint32 frameIndex);
private:
struct DescriptorPoolBucket {
VkDescriptorPool handle = VK_NULL_HANDLE;
Uint32 maxSets = 0;
Uint32 allocatedSets = 0;
};
struct FrameResources {
VkBufferObject uploadBuffer;
Vector<DescriptorPoolBucket> descriptorPools;
Uint32 activeDescriptorPoolIndex = 0;
Uint32 allocatedSetsThisFrame = 0;
Uint32 peakAllocatedSetsThisFrame = 0;
VkDeviceSize writeCursor = 0;
};
struct ProgramLayout {
Uint64 hash = 0;
VkDescriptorSetLayout descriptorSetLayout = VK_NULL_HANDLE;
VkPipelineLayout pipelineLayout = VK_NULL_HANDLE;
Vector<BindingKind> bindingKinds;
Vector<Uint32> dynamicBindings;
Vector<Int> samplerUniformLocationByBinding;
Vector<TextureTarget> samplerTextureTargetByBinding;
Int globalUboBinding = -1;
};
static VkDeviceSize AlignUp(VkDeviceSize value, VkDeviceSize alignment);
static Uint64 ComputeProgramHash(const MG_State::GLState::ProgramObject& program);
static Bool IsSamplerUniformType(GLenum glType);
static TextureTarget UniformTypeToTextureTarget(GLenum glType);
Bool ReflectSamplerBindings(const MG_State::GLState::ProgramObject& program, ProgramLayout& layout) const;
Bool ReflectGlobalUboBinding(const MG_State::GLState::ProgramObject& program, ProgramLayout& layout) const;
Bool ResolveSamplerDescriptor(VkCommandBuffer commandBuffer, const MG_State::GLState::ProgramObject& program,
const ProgramLayout& layout, Uint32 binding,
VkDescriptorImageInfo& outImageInfo) const;
Bool ReflectBindingKinds(const MG_State::GLState::ProgramObject& program, Vector<BindingKind>& outKinds) const;
ProgramLayout* GetOrCreateProgramLayout(const MG_State::GLState::ProgramObject& program);
Bool AllocateUploadRegion(FrameResources& frame, VkDeviceSize size, VkDeviceSize& outOffset);
Bool GatherBindingPayloads(const MG_State::GLState::ProgramObject& program, Vector<const void*>& outData,
Vector<VkDeviceSize>& outSizes) const;
Bool CreateDescriptorPool(Uint32 maxSets, VkDescriptorPool& outPool) const;
Bool GrowFrameDescriptorPool(FrameResources& frame, Uint32 frameIndex);
void DestroyProgramLayouts();
VkDevice m_device = VK_NULL_HANDLE;
VmaAllocator m_allocator = nullptr;
Vector<FrameResources> m_frames;
UnorderedMap<Uint64, ProgramLayout> m_programLayouts;
VkDeviceSize m_minDynamicOffsetAlignment = 1;
VkDeviceSize m_perFrameUploadBytes = 0;
Uint32 m_frameCount = 0;
Uint32 m_maxBindings = 0;
Uint32 m_setsPerFrame = 0;
Uint32 m_peakDescriptorSetsObserved = 0;
VkTextureSamplerManager* m_textureSamplerManager = nullptr;
VkFramebufferManager* m_framebufferManager = nullptr;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,556 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/UniformDescriptorBinder.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 "UniformManager.h"
#include "MG_State/GLState/Core.h"
#include "MG_State/GLState/ProgramState/ProgramObject.h"
#include "MG_Util/Converters/MGToStr/FramebufferEnumConverter.h"
#include <limits>
namespace MobileGL::MG_Backend::DirectVulkan {
static Bool FindFramebufferAttachmentForTexture(const MG_State::GLState::FramebufferObject& framebuffer,
const MG_State::GLState::ITextureObject& texture,
FramebufferAttachmentType& outAttachment, Int& outLevel) {
const auto& attachments = framebuffer.GetAllAttachmentObjects();
for (SizeT i = 0; i < attachments.size(); ++i) {
const auto attachmentType = static_cast<FramebufferAttachmentType>(i);
if (attachmentType == FramebufferAttachmentType::None) {
continue;
}
const auto& attachment = attachments[i];
if (!attachment.IsTexture()) {
continue;
}
auto attachedTexture = attachment.GetTexture();
if (attachedTexture && attachedTexture.get() == &texture) {
outAttachment = attachmentType;
outLevel = attachment.GetTextureLevel();
return true;
}
}
return false;
}
static Bool IsValidSampledImageLayout(VkImageLayout layout) {
switch (layout) {
case VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL:
case VK_IMAGE_LAYOUT_GENERAL:
case VK_IMAGE_LAYOUT_DEPTH_STENCIL_READ_ONLY_OPTIMAL:
case VK_IMAGE_LAYOUT_DEPTH_READ_ONLY_STENCIL_ATTACHMENT_OPTIMAL:
case VK_IMAGE_LAYOUT_DEPTH_ATTACHMENT_STENCIL_READ_ONLY_OPTIMAL:
return true;
default:
return false;
}
}
Bool UniformManager::Initialize(VkDevice device, VkBufferManager* bufferManager,
ProgramFactory* programFactory,
VkDeviceSize minUniformBufferOffsetAlignment, Uint32 frameCount,
Uint32 maxBindings, Uint32 setsPerFrame,
VkTextureManager* textureManager, VkSamplerManager* samplerManager) {
Shutdown();
MOBILEGL_ASSERT(device != VK_NULL_HANDLE, "UniformDescriptorBinder::Initialize requires valid VkDevice");
MOBILEGL_ASSERT(bufferManager != nullptr, "UniformDescriptorBinder::Initialize requires valid buffer manager");
MOBILEGL_ASSERT(programFactory != nullptr,
"UniformDescriptorBinder::Initialize requires valid program factory");
MOBILEGL_ASSERT(frameCount > 0, "UniformDescriptorBinder::Initialize requires frameCount > 0");
MOBILEGL_ASSERT(maxBindings > 0, "UniformDescriptorBinder::Initialize requires maxBindings > 0");
MOBILEGL_ASSERT(setsPerFrame > 0, "UniformDescriptorBinder::Initialize requires setsPerFrame > 0");
MOBILEGL_ASSERT(textureManager != nullptr,
"UniformDescriptorBinder::Initialize requires valid texture manager");
MOBILEGL_ASSERT(samplerManager != nullptr,
"UniformDescriptorBinder::Initialize requires valid sampler manager");
m_device = device;
m_bufferManager = bufferManager;
m_programFactory = programFactory;
m_minDynamicOffsetAlignment = std::max<VkDeviceSize>(1, minUniformBufferOffsetAlignment);
m_frameCount = frameCount;
m_maxBindings = maxBindings;
m_setsPerFrame = setsPerFrame;
m_peakDescriptorSetsObserved = 0;
m_textureManager = textureManager;
m_samplerManager = samplerManager;
m_frames.resize(m_frameCount);
for (Uint32 frameIndex = 0; frameIndex < m_frameCount; ++frameIndex) {
auto& frame = m_frames[frameIndex];
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
frame.descriptorPools.clear();
VkDescriptorPool initialPool = VK_NULL_HANDLE;
if (!CreateDescriptorPool(m_setsPerFrame, initialPool)) {
MGLOG_E("UniformDescriptorBinder::Initialize failed: cannot create frame descriptor pool %u",
frameIndex);
Shutdown();
return false;
}
frame.descriptorPools.push_back({initialPool, m_setsPerFrame, 0});
MGLOG_D("UniformDescriptorBinder: frame %u descriptor pool created (maxSets=%u)", frameIndex,
m_setsPerFrame);
}
return true;
}
void UniformManager::Shutdown() {
for (auto& frame : m_frames) {
if (m_device != VK_NULL_HANDLE) {
for (auto& bucket : frame.descriptorPools) {
if (bucket.handle != VK_NULL_HANDLE) {
vkDestroyDescriptorPool(m_device, bucket.handle, nullptr);
bucket.handle = VK_NULL_HANDLE;
}
}
}
frame.descriptorPools.clear();
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
}
m_frames.clear();
m_bufferManager = nullptr;
m_programFactory = nullptr;
m_device = VK_NULL_HANDLE;
m_minDynamicOffsetAlignment = 1;
m_frameCount = 0;
m_maxBindings = 0;
m_setsPerFrame = 0;
m_peakDescriptorSetsObserved = 0;
m_textureManager = nullptr;
m_samplerManager = nullptr;
}
void UniformManager::BeginFrame(Uint32 frameIndex) {
MOBILEGL_ASSERT(frameIndex < m_frames.size(), "UniformDescriptorBinder::BeginFrame invalid frame index");
auto& frame = m_frames[frameIndex];
if (frame.peakAllocatedSetsThisFrame > m_peakDescriptorSetsObserved) {
m_peakDescriptorSetsObserved = frame.peakAllocatedSetsThisFrame;
MGLOG_D(
"UniformDescriptorBinder: new descriptor set peak observed=%u (base setsPerFrame=%u, frame=%u, pools=%zu)",
m_peakDescriptorSetsObserved, m_setsPerFrame, frameIndex, frame.descriptorPools.size());
}
frame.activeDescriptorPoolIndex = 0;
frame.allocatedSetsThisFrame = 0;
frame.peakAllocatedSetsThisFrame = 0;
for (auto& bucket : frame.descriptorPools) {
bucket.allocatedSets = 0;
if (bucket.handle == VK_NULL_HANDLE) {
continue;
}
VK_VERIFY(vkResetDescriptorPool(m_device, bucket.handle, 0),
"UniformDescriptorBinder::BeginFrame, vkResetDescriptorPool");
}
}
Bool UniformManager::ResolveSamplerDescriptor(VkCommandBuffer commandBuffer,
const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj,
Uint32 binding, VkDescriptorImageInfo& outImageInfo) const {
(void)commandBuffer;
MOBILEGL_ASSERT(m_textureManager != nullptr, "ResolveSamplerDescriptor: texture manager is null");
MOBILEGL_ASSERT(m_samplerManager != nullptr, "ResolveSamplerDescriptor: sampler manager is null");
SharedPtr<MG_State::GLState::ITextureObject> texture;
if (!ResolveSamplerTexture(program, programObj, binding, texture)) {
return false;
}
const Int location = programObj.samplerUniformLocationByBinding[binding];
const Int unit = program.GetUniformSamplerOrImageUnitIndex(static_cast<Uint>(location));
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
const auto samplerOverride = textureUnit.GetSamplerObject();
if (!texture) {
return false;
}
const MG_State::GLState::SamplerObject* samplerToUse =
samplerOverride ? samplerOverride.get() : texture->GetSamplerObject().get();
if (!samplerToUse) {
return false;
}
VkTextureManager::TextureResource* resource = m_textureManager->SyncTextureAndGetDescriptor(*texture);
if (resource == nullptr) {
return false;
}
if (!IsValidSampledImageLayout(resource->layout)) {
auto drawFbo = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw).GetBoundObject();
FramebufferAttachmentType attachmentType = FramebufferAttachmentType::None;
Int attachmentLevel = 0;
if (drawFbo &&
FindFramebufferAttachmentForTexture(*drawFbo, *texture, attachmentType, attachmentLevel)) {
MOBILEGL_ASSERT(false,
"ResolveSamplerDescriptor: framebuffer feedback loop detected: textureId=%d is bound "
"for sampling at binding=%u, but is also attached to drawFbo=%u as %s (level=%d, "
"trackedLayout=%d)",
texture->GetExternalIndex(), binding, drawFbo->GetExternalIndex(),
MG_Util::ConvertFramebufferAttachmentTypeToString(attachmentType).c_str(),
attachmentLevel, static_cast<Int>(resource->layout));
}
MOBILEGL_ASSERT(false,
"ResolveSamplerDescriptor: invalid sampled image layout=%d for textureId=%d, binding=%u",
static_cast<Int>(resource->layout), texture->GetExternalIndex(), binding);
return false;
}
outImageInfo = {
.sampler = m_samplerManager->GetOrCreateSampler(*samplerToUse),
.imageView = resource->fullView,
.imageLayout = resource->layout,
};
return outImageInfo.sampler != VK_NULL_HANDLE;
}
Bool UniformManager::ResolveSamplerDescriptorOverride(
const SamplerBindingOverride& samplerBindingOverride, VkDescriptorImageInfo& outImageInfo) const {
MOBILEGL_ASSERT(m_textureManager != nullptr, "ResolveSamplerDescriptorOverride: texture manager is null");
MOBILEGL_ASSERT(m_samplerManager != nullptr, "ResolveSamplerDescriptorOverride: sampler manager is null");
if (samplerBindingOverride.texture == nullptr || samplerBindingOverride.sampler == nullptr) {
return false;
}
auto* resource = m_textureManager->SyncTextureAndGetDescriptor(*samplerBindingOverride.texture);
if (resource == nullptr || !IsValidSampledImageLayout(resource->layout)) {
return false;
}
outImageInfo = {
.sampler = m_samplerManager->GetOrCreateSampler(*samplerBindingOverride.sampler),
.imageView = resource->fullView,
.imageLayout = resource->layout,
};
return outImageInfo.sampler != VK_NULL_HANDLE;
}
Bool UniformManager::ResolveSamplerTexture(const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
SharedPtr<MG_State::GLState::ITextureObject>& outTexture) const {
outTexture.reset();
if (!MG_State::pGLContext || binding >= programObj.samplerUniformLocationByBinding.size()) {
return false;
}
const Int location = programObj.samplerUniformLocationByBinding[binding];
if (location < 0) {
return false;
}
const Int unit = program.GetUniformSamplerOrImageUnitIndex(static_cast<Uint>(location));
if (unit < 0) {
return false;
}
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
const TextureTarget preferredTarget = programObj.samplerTextureTargetByBinding[binding];
outTexture = textureUnit.GetBindingSlot(preferredTarget).GetBoundObject();
return outTexture != nullptr;
}
Bool UniformManager::CollectSampledTextures(const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj,
Vector<MG_State::GLState::ITextureObject*>& outTextures) {
outTextures.clear();
const Uint32 bindingCount =
std::min<Uint32>(m_maxBindings, static_cast<Uint32>(programObj.bindingKinds.size()));
for (Uint32 binding = 0; binding < bindingCount; ++binding) {
if (programObj.bindingKinds[binding] != ProgramFactory::DescriptorBindingKind::CombinedImageSampler) {
continue;
}
SharedPtr<MG_State::GLState::ITextureObject> texture;
if (!ResolveSamplerTexture(program, programObj, binding, texture) || !texture) {
continue;
}
auto found = std::find(outTextures.begin(), outTextures.end(), texture.get());
if (found == outTextures.end()) {
outTextures.push_back(texture.get());
}
}
return true;
}
Bool UniformManager::GatherBindingPayloads(const MG_State::GLState::ProgramObject& program,
Vector<const void*>& outData,
Vector<VkDeviceSize>& outSizes) const {
outData.assign(m_maxBindings, nullptr);
outSizes.assign(m_maxBindings, 0);
const Uint32 activeUniformBlockCount = static_cast<Uint32>(program.GetActiveUniformBlocksCount());
const Uint32 uniformBindingPointCount =
static_cast<Uint32>(MG_State::pGLContext->GetBufferBindingPointCount(BufferTarget::Uniform));
for (Uint32 blockIndex = 0; blockIndex < activeUniformBlockCount; ++blockIndex) {
const Uint32 binding = program.GetUniformBlockBinding(blockIndex);
if (binding >= m_maxBindings) {
continue;
}
VkDeviceSize blockSize = static_cast<VkDeviceSize>(program.GetUBOSizeAt(blockIndex));
if (blockSize == 0) {
continue;
}
if (binding >= uniformBindingPointCount) {
continue;
}
auto& bindingPoint = MG_State::pGLContext->GetBufferBindingPoint(BufferTarget::Uniform, binding);
const auto bufferObject = bindingPoint.GetBoundObject();
if (!bufferObject) {
continue;
}
const auto bufferData = bufferObject->GetDataReadOnly();
if (!bufferData || bufferData->empty()) {
continue;
}
const auto range = bindingPoint.GetRange();
const VkDeviceSize bufferSize = static_cast<VkDeviceSize>(bufferObject->GetSize());
VkDeviceSize rangeStart = static_cast<VkDeviceSize>(range.start);
VkDeviceSize rangeEnd = static_cast<VkDeviceSize>(range.end);
if (rangeStart >= bufferSize) {
continue;
}
if (rangeEnd <= rangeStart || rangeEnd > bufferSize) {
rangeEnd = bufferSize;
}
VkDeviceSize available = rangeEnd - rangeStart;
if (available == 0) {
continue;
}
outData[binding] = bufferData->data() + static_cast<SizeT>(rangeStart);
outSizes[binding] = std::min(blockSize, available);
}
return true;
}
Bool UniformManager::CreateDescriptorPool(Uint32 maxSets, VkDescriptorPool& outPool) const {
outPool = VK_NULL_HANDLE;
if (m_device == VK_NULL_HANDLE || maxSets == 0 || m_maxBindings == 0) {
return false;
}
const Uint64 descriptorCount64 = static_cast<Uint64>(maxSets) * static_cast<Uint64>(m_maxBindings);
if (descriptorCount64 > static_cast<Uint64>(std::numeric_limits<Uint32>::max())) {
MGLOG_E("UniformDescriptorBinder::CreateDescriptorPool failed: descriptorCount overflow");
return false;
}
const Uint32 descriptorCount = static_cast<Uint32>(descriptorCount64);
VkDescriptorPoolSize poolSizes[2]{};
poolSizes[0].type = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
poolSizes[0].descriptorCount = descriptorCount;
poolSizes[1].type = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
poolSizes[1].descriptorCount = descriptorCount;
VkDescriptorPoolCreateInfo poolInfo{};
poolInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_POOL_CREATE_INFO;
poolInfo.maxSets = maxSets;
poolInfo.poolSizeCount = static_cast<Uint32>(std::size(poolSizes));
poolInfo.pPoolSizes = poolSizes;
const VkResult result = vkCreateDescriptorPool(m_device, &poolInfo, nullptr, &outPool);
if (result != VK_SUCCESS) {
MGLOG_E("UniformDescriptorBinder::CreateDescriptorPool failed: vkCreateDescriptorPool returned %d",
result);
return false;
}
return true;
}
Bool UniformManager::GrowFrameDescriptorPool(FrameResources& frame, Uint32 frameIndex) {
if (frame.descriptorPools.empty()) {
return false;
}
const auto& currentBucket = frame.descriptorPools[frame.activeDescriptorPoolIndex];
const Uint32 currentMaxSets = std::max<Uint32>(1, currentBucket.maxSets);
const Uint32 grownMaxSets = currentMaxSets <= (std::numeric_limits<Uint32>::max() / 2) ? (currentMaxSets * 2)
: currentMaxSets;
VkDescriptorPool grownPool = VK_NULL_HANDLE;
if (!CreateDescriptorPool(grownMaxSets, grownPool)) {
MGLOG_E("UniformDescriptorBinder::GrowFrameDescriptorPool failed: cannot create grown pool (%u -> %u sets)",
currentMaxSets, grownMaxSets);
return false;
}
frame.descriptorPools.push_back({grownPool, grownMaxSets, 0});
frame.activeDescriptorPoolIndex = static_cast<Uint32>(frame.descriptorPools.size() - 1);
MGLOG_D(
"UniformDescriptorBinder: frame %u descriptor pool exhausted, grew pool (%u -> %u sets), poolCount=%zu",
frameIndex, currentMaxSets, grownMaxSets, frame.descriptorPools.size());
return true;
}
VkResult UniformManager::AllocateDescriptorSetsFromActivePool(Uint32 frameIndex, const ProgramFactory::VkProgramObject& programObj, VkDescriptorSet& outDescriptorSet) {
auto& frame = m_frames[frameIndex];
auto& bucket = frame.descriptorPools[frame.activeDescriptorPoolIndex];
VkDescriptorSetAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_ALLOCATE_INFO;
allocInfo.descriptorSetCount = 1;
allocInfo.pSetLayouts = &programObj.descriptorSetLayout;
allocInfo.descriptorPool = bucket.handle;
VkResult result = vkAllocateDescriptorSets(m_device, &allocInfo, &outDescriptorSet);
if (result == VK_SUCCESS) {
++bucket.allocatedSets;
++frame.allocatedSetsThisFrame;
frame.peakAllocatedSetsThisFrame =
std::max(frame.peakAllocatedSetsThisFrame, frame.allocatedSetsThisFrame);
}
return result;
}
Bool UniformManager::BindProgramUniformBuffers(VkCommandBuffer commandBuffer,
const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj,
Uint32 frameIndex,
const SamplerBindingOverride* samplerBindingOverride) {
auto& frame = m_frames[frameIndex];
if (frame.descriptorPools.empty()) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: frame descriptor pools are invalid");
return false;
}
if (frame.activeDescriptorPoolIndex >= frame.descriptorPools.size()) {
frame.activeDescriptorPoolIndex = 0;
}
VkDescriptorSet descriptorSet = VK_NULL_HANDLE;
VkResult allocResult = AllocateDescriptorSetsFromActivePool(frameIndex, programObj, descriptorSet);
if (allocResult == VK_ERROR_OUT_OF_POOL_MEMORY || allocResult == VK_ERROR_FRAGMENTED_POOL) {
if (!GrowFrameDescriptorPool(frame, frameIndex)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: descriptor pool growth failed");
return false;
}
allocResult = AllocateDescriptorSetsFromActivePool(frameIndex, programObj, descriptorSet);
}
if (allocResult != VK_SUCCESS || descriptorSet == VK_NULL_HANDLE) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: vkAllocateDescriptorSets returned %d",
allocResult);
return false;
}
Vector<const void*> bindingData;
Vector<VkDeviceSize> bindingSizes;
if (!GatherBindingPayloads(program, bindingData, bindingSizes)) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: cannot gather UBO payloads");
return false;
}
MOBILEGL_ASSERT(m_textureManager != nullptr, "BindProgramUniformBuffers: texture manager is null");
MOBILEGL_ASSERT(m_samplerManager != nullptr, "BindProgramUniformBuffers: sampler manager is null");
MOBILEGL_ASSERT(m_bufferManager != nullptr, "BindProgramUniformBuffers: buffer manager is null");
Vector<VkWriteDescriptorSet> writes;
writes.reserve(m_maxBindings);
Vector<VkDescriptorBufferInfo> bufferInfos;
Vector<VkDescriptorImageInfo> imageInfos;
Vector<Uint32> dynamicOffsets;
bufferInfos.reserve(m_maxBindings);
imageInfos.reserve(m_maxBindings);
dynamicOffsets.reserve(programObj.dynamicBindings.size());
const Uint32 bindingCount =
std::min<Uint32>(m_maxBindings, static_cast<Uint32>(programObj.bindingKinds.size()));
for (Uint32 binding = 0; binding < bindingCount; ++binding) {
const auto kind = programObj.bindingKinds[binding];
if (kind == ProgramFactory::DescriptorBindingKind::None) {
continue;
}
VkWriteDescriptorSet write{};
write.sType = VK_STRUCTURE_TYPE_WRITE_DESCRIPTOR_SET;
write.dstSet = descriptorSet;
write.dstBinding = binding;
write.dstArrayElement = 0;
write.descriptorCount = 1;
if (kind == ProgramFactory::DescriptorBindingKind::UniformBufferDynamic) {
const void* payload = bindingData[binding];
VkDeviceSize payloadSize = bindingSizes[binding];
if (payload == nullptr || payloadSize == 0) {
if (programObj.globalUboBinding == static_cast<Int>(binding)) {
const void* globalUboData = program.GetUBOData();
const VkDeviceSize globalUboSize = static_cast<VkDeviceSize>(program.GetUBOSize());
if (globalUboData != nullptr && globalUboSize > 0) {
payload = globalUboData;
payloadSize = globalUboSize;
}
}
}
BufferSlice slice{};
if (!m_bufferManager->UploadTransient(BufferKind::Uniform, frameIndex, payload, payloadSize,
m_minDynamicOffsetAlignment, slice)) {
MOBILEGL_ASSERT(false, "UniformDescriptorBinder::BindProgramUniformBuffers failed: UBO upload failed on binding %u",
binding);
return false;
}
VkDescriptorBufferInfo bufferInfo{};
bufferInfo.buffer = slice.buffer;
bufferInfo.offset = 0;
bufferInfo.range = payloadSize;
bufferInfos.push_back(bufferInfo);
write.descriptorType = VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC;
write.pBufferInfo = &bufferInfos.back();
writes.push_back(write);
dynamicOffsets.push_back(static_cast<Uint32>(slice.offset));
} else {
VkDescriptorImageInfo imageInfo{};
Bool hasImage = false;
if (samplerBindingOverride != nullptr &&
samplerBindingOverride->binding == binding &&
samplerBindingOverride->texture != nullptr &&
samplerBindingOverride->sampler != nullptr) {
hasImage = ResolveSamplerDescriptorOverride(*samplerBindingOverride, imageInfo);
} else {
hasImage = ResolveSamplerDescriptor(commandBuffer, program, programObj, binding, imageInfo);
}
if (!hasImage) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: sampler binding %u has no valid texture descriptor",
binding);
return false;
}
if (imageInfo.sampler == VK_NULL_HANDLE || imageInfo.imageView == VK_NULL_HANDLE) {
MGLOG_E("UniformDescriptorBinder::BindProgramUniformBuffers failed: sampler binding %u has null sampler or imageView",
binding);
return false;
}
imageInfos.push_back(imageInfo);
write.descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
write.pImageInfo = &imageInfos.back();
writes.push_back(write);
}
}
if (!writes.empty()) {
vkUpdateDescriptorSets(m_device, static_cast<Uint32>(writes.size()), writes.data(), 0, nullptr);
}
vkCmdBindDescriptorSets(commandBuffer, VK_PIPELINE_BIND_POINT_GRAPHICS, programObj.pipelineLayout, 0, 1,
&descriptorSet, static_cast<Uint32>(dynamicOffsets.size()), dynamicOffsets.data());
return true;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,93 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/UniformDescriptorBinder.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "ProgramFactory.h"
#include "VkBufferManager.h"
#include "VkSamplerManager.h"
#include "VkTextureManager.h"
#include "../VkIncludes.h"
#include <Includes.h>
namespace MobileGL::MG_State::GLState {
class ITextureObject;
class ProgramObject;
class SamplerObject;
}
namespace MobileGL::MG_Backend::DirectVulkan {
class UniformManager {
public:
struct SamplerBindingOverride {
Uint32 binding = 0;
MG_State::GLState::ITextureObject* texture = nullptr;
const MG_State::GLState::SamplerObject* sampler = nullptr;
};
Bool Initialize(VkDevice device, VkBufferManager* bufferManager,
ProgramFactory* programFactory,
VkDeviceSize minUniformBufferOffsetAlignment, Uint32 frameCount,
Uint32 maxBindings = 16, Uint32 setsPerFrame = 64,
VkTextureManager* textureManager = nullptr, VkSamplerManager* samplerManager = nullptr);
void Shutdown();
void BeginFrame(Uint32 frameIndex);
Bool CollectSampledTextures(const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj,
Vector<MG_State::GLState::ITextureObject*>& outTextures);
Bool BindProgramUniformBuffers(VkCommandBuffer commandBuffer,
const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj,
Uint32 frameIndex,
const SamplerBindingOverride* samplerBindingOverride = nullptr);
private:
struct DescriptorPoolBucket {
VkDescriptorPool handle = VK_NULL_HANDLE;
Uint32 maxSets = 0;
Uint32 allocatedSets = 0;
};
struct FrameResources {
Vector<DescriptorPoolBucket> descriptorPools;
Uint32 activeDescriptorPoolIndex = 0;
Uint32 allocatedSetsThisFrame = 0;
Uint32 peakAllocatedSetsThisFrame = 0;
};
Bool ResolveSamplerTexture(const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
SharedPtr<MG_State::GLState::ITextureObject>& outTexture) const;
Bool ResolveSamplerDescriptor(VkCommandBuffer commandBuffer, const MG_State::GLState::ProgramObject& program,
const ProgramFactory::VkProgramObject& programObj, Uint32 binding,
VkDescriptorImageInfo& outImageInfo) const;
Bool ResolveSamplerDescriptorOverride(const SamplerBindingOverride& samplerBindingOverride,
VkDescriptorImageInfo& outImageInfo) const;
Bool GatherBindingPayloads(const MG_State::GLState::ProgramObject& program, Vector<const void*>& outData,
Vector<VkDeviceSize>& outSizes) const;
Bool CreateDescriptorPool(Uint32 maxSets, VkDescriptorPool& outPool) const;
Bool GrowFrameDescriptorPool(FrameResources& frame, Uint32 frameIndex);
VkResult AllocateDescriptorSetsFromActivePool(
Uint32 frameIndex, const ProgramFactory::VkProgramObject& programObj, VkDescriptorSet& outDescriptorSet);
VkDevice m_device = VK_NULL_HANDLE;
VkBufferManager* m_bufferManager = nullptr;
ProgramFactory* m_programFactory = nullptr;
Vector<FrameResources> m_frames;
VkDeviceSize m_minDynamicOffsetAlignment = 1;
Uint32 m_frameCount = 0;
Uint32 m_maxBindings = 0;
Uint32 m_setsPerFrame = 0;
Uint32 m_peakDescriptorSetsObserved = 0;
VkTextureManager* m_textureManager = nullptr;
VkSamplerManager* m_samplerManager = nullptr;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,246 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkBufferManager.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 "VkBufferManager.h"
namespace MobileGL::MG_Backend::DirectVulkan {
namespace {
constexpr Uint32 kResidentBufferGCInterval = 60;
constexpr VmaAllocationCreateFlags kResidentBufferAllocationFlags =
VMA_ALLOCATION_CREATE_HOST_ACCESS_SEQUENTIAL_WRITE_BIT;
} // namespace
Bool VkBufferManager::Initialize(const VkBufferManagerInitInfo& initInfo) {
Shutdown();
MOBILEGL_ASSERT(initInfo.allocator != nullptr, "VkBufferManager::Initialize requires valid allocator");
MOBILEGL_ASSERT(initInfo.frameCount > 0, "VkBufferManager::Initialize requires non-zero frame count");
m_initInfo = initInfo;
m_deferredResidentReleases.resize(initInfo.frameCount);
m_currentFrameIndex = 0;
return InitializeTransientArenas();
}
void VkBufferManager::Shutdown() {
m_transientUploadArena.Shutdown();
DestroyResidentBuffers();
DestroyDeferredResidentReleases();
m_initInfo = {};
m_currentFrameIndex = 0;
m_residentGcTick = 0;
}
Bool VkBufferManager::RecreateTransientArenas(Uint32 frameCount) {
MOBILEGL_ASSERT(m_initInfo.allocator != nullptr, "VkBufferManager::RecreateTransientArenas requires initialized manager");
MOBILEGL_ASSERT(frameCount > 0, "VkBufferManager::RecreateTransientArenas requires non-zero frame count");
m_transientUploadArena.Shutdown();
m_initInfo.frameCount = frameCount;
DestroyDeferredResidentReleases();
m_deferredResidentReleases.resize(frameCount);
m_currentFrameIndex = 0;
return InitializeTransientArenas();
}
void VkBufferManager::BeginFrame(Uint32 frameIndex) {
MOBILEGL_ASSERT(frameIndex < m_deferredResidentReleases.size(),
"VkBufferManager::BeginFrame frame index out of range");
m_currentFrameIndex = frameIndex;
CollectDeferredResidentReleases(frameIndex);
m_transientUploadArena.BeginFrame(frameIndex);
}
Bool VkBufferManager::UploadTransient(BufferKind kind, Uint32 frameIndex, const void* data,
VkDeviceSize size, VkDeviceSize alignment, BufferSlice& outSlice) {
(void)kind;
return m_transientUploadArena.Upload(frameIndex, data, size, alignment, outSlice);
}
Bool VkBufferManager::InitializeTransientArenas() {
return m_transientUploadArena.Initialize({
.allocator = m_initInfo.allocator,
.frameCount = m_initInfo.frameCount,
.usage = VK_BUFFER_USAGE_VERTEX_BUFFER_BIT | VK_BUFFER_USAGE_INDEX_BUFFER_BIT |
VK_BUFFER_USAGE_UNIFORM_BUFFER_BIT,
.memoryUsage = m_initInfo.transientMemoryUsage,
.allocationFlags = m_initInfo.transientAllocationFlags,
.minBufferSize = m_initInfo.minUploadBytes,
.persistentlyMapped = m_initInfo.transientPersistentMapping,
});
}
Bool VkBufferManager::SyncResidentBuffer(BufferKind kind,
const SharedPtr<MG_State::GLState::BufferObject>& bufferObject,
BufferSlice& outSlice) {
const VkBufferUsageFlags requiredUsage = GetVkBufferUsage(kind);
MOBILEGL_ASSERT(requiredUsage != 0,
"VkBufferManager::SyncResidentBuffer only supports resident vertex/index buffers");
MOBILEGL_ASSERT(bufferObject != nullptr, "VkBufferManager::SyncResidentBuffer requires valid buffer object");
CollectResidentGarbageIfNeeded();
const auto* bufferData = bufferObject->GetDataReadOnly().get();
MOBILEGL_ASSERT(bufferData != nullptr, "VkBufferManager::SyncResidentBuffer requires frontend buffer data");
const VkDeviceSize bufferSize = static_cast<VkDeviceSize>(bufferObject->GetSize());
if (bufferSize == 0) {
MGLOG_E("VkBufferManager::SyncResidentBuffer failed: buffer size is zero");
return false;
}
auto& entry = m_residentBuffers[bufferObject.get()];
entry.aliveRef = bufferObject;
const auto changeBits = bufferObject->GetChangeBits();
const Bool needsRecreate = !entry.buffer.IsValid() || entry.size != bufferSize ||
((entry.usage & requiredUsage) != requiredUsage) ||
(changeBits & BufferChangeBits::PreferReallocationBit);
if (needsRecreate) {
const VkBufferUsageFlags recreatedUsage = entry.usage | requiredUsage;
DeferResidentRelease(std::move(entry.buffer));
const Bool created = entry.buffer.Create({
.allocator = m_initInfo.allocator,
.size = bufferSize,
.usage = recreatedUsage,
.memoryUsage = VMA_MEMORY_USAGE_AUTO,
.allocationFlags = kResidentBufferAllocationFlags,
});
if (!created || entry.buffer.Map() == nullptr) {
MGLOG_E("VkBufferManager::SyncResidentBuffer failed: unable to create resident buffer");
entry.buffer.Destroy();
entry.size = 0;
entry.usage = 0;
return false;
}
if (!entry.buffer.Upload(bufferData->data(), bufferSize, 0)) {
MGLOG_E("VkBufferManager::SyncResidentBuffer failed: initial upload failed");
entry.buffer.Destroy();
entry.size = 0;
entry.usage = 0;
return false;
}
entry.size = bufferSize;
entry.usage = recreatedUsage;
bufferObject->ClearDirty();
outSlice = entry.buffer.GetSlice(0, bufferSize);
return true;
}
if (changeBits & BufferChangeBits::DirtyBit) {
const auto& dirtyRanges = bufferObject->GetDirtyRanges();
for (const auto& range : dirtyRanges) {
const VkDeviceSize rangeOffset = static_cast<VkDeviceSize>(range.start);
const VkDeviceSize rangeSize = static_cast<VkDeviceSize>(range.end - range.start);
if (rangeSize == 0) {
continue;
}
if (!entry.buffer.Upload(bufferData->data() + range.start, rangeSize, rangeOffset)) {
MGLOG_E("VkBufferManager::SyncResidentBuffer failed: dirty range upload failed");
return false;
}
}
bufferObject->ClearDirty();
}
outSlice = entry.buffer.GetSlice(0, bufferSize);
return true;
}
void VkBufferManager::DowngradeResidentBufferToTransient(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject) {
if (bufferObject == nullptr) {
return;
}
auto it = m_residentBuffers.find(bufferObject.get());
if (it == m_residentBuffers.end()) {
return;
}
DeferResidentRelease(std::move(it->second.buffer));
m_residentBuffers.erase(it);
}
void VkBufferManager::DeferResidentRelease(VkBufferObject&& buffer) {
if (!buffer.IsValid()) {
return;
}
if (m_deferredResidentReleases.empty()) {
buffer.Destroy();
return;
}
MOBILEGL_ASSERT(m_currentFrameIndex < m_deferredResidentReleases.size(),
"VkBufferManager::DeferResidentRelease current frame index out of range");
m_deferredResidentReleases[m_currentFrameIndex].push_back(std::move(buffer));
}
void VkBufferManager::CollectDeferredResidentReleases(Uint32 frameIndex) {
MOBILEGL_ASSERT(frameIndex < m_deferredResidentReleases.size(),
"VkBufferManager::CollectDeferredResidentReleases frame index out of range");
m_deferredResidentReleases[frameIndex].clear();
}
VkBufferUsageFlags VkBufferManager::GetVkBufferUsage(BufferKind kind) {
switch (kind) {
case BufferKind::Vertex:
case BufferKind::Index:
// A GL buffer can be rebound between ARRAY_BUFFER and ELEMENT_ARRAY_BUFFER,
// and may even be used as both within the same draw setup. Keep resident
// vertex/index buffers compatible with both roles from the start so we
// never need to recreate a buffer after it has already been bound.
return VK_BUFFER_USAGE_VERTEX_BUFFER_BIT | VK_BUFFER_USAGE_INDEX_BUFFER_BIT;
case BufferKind::Uniform:
default:
return 0;
}
}
void VkBufferManager::CollectResidentGarbageIfNeeded() {
++m_residentGcTick;
if (m_residentGcTick < kResidentBufferGCInterval) {
return;
}
CollectResidentGarbageNow();
m_residentGcTick = 0;
}
void VkBufferManager::CollectResidentGarbageNow() {
Vector<MG_State::GLState::BufferObject*> staleBuffers;
staleBuffers.reserve(m_residentBuffers.size());
for (const auto& [rawBuffer, entry] : m_residentBuffers) {
if (entry.aliveRef.expired()) {
staleBuffers.push_back(rawBuffer);
}
}
for (const auto* rawBuffer : staleBuffers) {
auto it = m_residentBuffers.find(const_cast<MG_State::GLState::BufferObject*>(rawBuffer));
if (it == m_residentBuffers.end()) {
continue;
}
DeferResidentRelease(std::move(it->second.buffer));
m_residentBuffers.erase(it);
}
}
void VkBufferManager::DestroyDeferredResidentReleases() {
for (auto& deferredReleases : m_deferredResidentReleases) {
deferredReleases.clear();
}
m_deferredResidentReleases.clear();
}
void VkBufferManager::DestroyResidentBuffers() {
for (auto& [_, entry] : m_residentBuffers) {
entry.buffer.Destroy();
}
m_residentBuffers.clear();
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,72 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkBufferManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "BufferArena.h"
#include "MG_State/GLState/BufferState/BufferObject.h"
#include "../VkIncludes.h"
#include <Includes.h>
#include <vk_mem_alloc.h>
namespace MobileGL::MG_Backend::DirectVulkan {
enum class BufferKind : Uint8 {
Vertex,
Index,
Uniform,
};
struct VkBufferManagerInitInfo {
VmaAllocator allocator = nullptr;
Uint32 frameCount = 0;
VkDeviceSize minUploadBytes = 4 * 1024 * 1024;
VmaMemoryUsage transientMemoryUsage = VMA_MEMORY_USAGE_AUTO;
VmaAllocationCreateFlags transientAllocationFlags = VMA_ALLOCATION_CREATE_HOST_ACCESS_SEQUENTIAL_WRITE_BIT;
Bool transientPersistentMapping = false;
};
class VkBufferManager {
public:
Bool Initialize(const VkBufferManagerInitInfo& initInfo);
void Shutdown();
// Recreate all per-frame transient arenas
Bool RecreateTransientArenas(Uint32 frameCount);
void BeginFrame(Uint32 frameIndex);
Bool UploadTransient(BufferKind kind, Uint32 frameIndex, const void* data, VkDeviceSize size,
VkDeviceSize alignment, BufferSlice& outSlice);
Bool SyncResidentBuffer(BufferKind kind, const SharedPtr<MG_State::GLState::BufferObject>& bufferObject,
BufferSlice& outSlice);
void DowngradeResidentBufferToTransient(const SharedPtr<MG_State::GLState::BufferObject>& bufferObject);
private:
struct ResidentBufferEntry {
WeakPtr<MG_State::GLState::BufferObject> aliveRef;
VkBufferObject buffer;
VkDeviceSize size = 0;
VkBufferUsageFlags usage = 0;
};
Bool InitializeTransientArenas();
static VkBufferUsageFlags GetVkBufferUsage(BufferKind kind);
void DeferResidentRelease(VkBufferObject&& buffer);
void CollectDeferredResidentReleases(Uint32 frameIndex);
void CollectResidentGarbageIfNeeded();
void CollectResidentGarbageNow();
void DestroyDeferredResidentReleases();
void DestroyResidentBuffers();
VkBufferManagerInitInfo m_initInfo{};
BufferArena m_transientUploadArena;
UnorderedMap<MG_State::GLState::BufferObject*, ResidentBufferEntry> m_residentBuffers;
Vector<Vector<VkBufferObject>> m_deferredResidentReleases;
Uint32 m_currentFrameIndex = 0;
Uint32 m_residentGcTick = 0;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -13,11 +13,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
m_allocator = other.m_allocator;
m_buffer = other.m_buffer;
m_allocation = other.m_allocation;
m_mappedData = other.m_mappedData;
m_size = other.m_size;
other.m_allocator = nullptr;
other.m_buffer = VK_NULL_HANDLE;
other.m_allocation = nullptr;
other.m_mappedData = nullptr;
other.m_size = 0;
}
@@ -31,11 +33,13 @@ namespace MobileGL::MG_Backend::DirectVulkan {
m_allocator = other.m_allocator;
m_buffer = other.m_buffer;
m_allocation = other.m_allocation;
m_mappedData = other.m_mappedData;
m_size = other.m_size;
other.m_allocator = nullptr;
other.m_buffer = VK_NULL_HANDLE;
other.m_allocation = nullptr;
other.m_mappedData = nullptr;
other.m_size = 0;
return *this;
}
@@ -44,6 +48,10 @@ namespace MobileGL::MG_Backend::DirectVulkan {
Destroy();
}
Bool VkBufferObject::Create(const VkBufferObjectDesc& desc) {
return Create(desc.allocator, desc.size, desc.usage, desc.memoryUsage, desc.allocationFlags);
}
Bool VkBufferObject::Create(VmaAllocator allocator, VkDeviceSize size, VkBufferUsageFlags usage,
VmaMemoryUsage memoryUsage, VmaAllocationCreateFlags allocationFlags) {
MOBILEGL_ASSERT(allocator != nullptr, "VkBufferObject::Create requires valid VMA allocator");
@@ -78,6 +86,7 @@ namespace MobileGL::MG_Backend::DirectVulkan {
}
void VkBufferObject::Destroy() {
Unmap();
if (m_allocator != nullptr && m_buffer != VK_NULL_HANDLE && m_allocation != nullptr) {
vmaDestroyBuffer(m_allocator, m_buffer, m_allocation);
}
@@ -87,6 +96,33 @@ namespace MobileGL::MG_Backend::DirectVulkan {
m_size = 0;
}
void* VkBufferObject::Map() {
MOBILEGL_ASSERT(IsValid(), "VkBufferObject::Map called on invalid buffer");
if (m_mappedData != nullptr) {
return m_mappedData;
}
const VkResult mapResult = vmaMapMemory(m_allocator, m_allocation, &m_mappedData);
if (mapResult != VK_SUCCESS || m_mappedData == nullptr) {
MGLOG_E("VkBufferObject::Map failed: vmaMapMemory returned %d", mapResult);
m_mappedData = nullptr;
return nullptr;
}
return m_mappedData;
}
void VkBufferObject::Unmap() {
if (!IsValid() || m_mappedData == nullptr) {
m_mappedData = nullptr;
return;
}
vmaUnmapMemory(m_allocator, m_allocation);
m_mappedData = nullptr;
}
Bool VkBufferObject::Upload(const void* data, VkDeviceSize size, VkDeviceSize offset) {
MOBILEGL_ASSERT(IsValid(), "VkBufferObject::Upload called on invalid buffer");
MOBILEGL_ASSERT(data != nullptr || size == 0, "VkBufferObject::Upload data pointer is null");
@@ -96,15 +132,30 @@ namespace MobileGL::MG_Backend::DirectVulkan {
return true;
}
void* mapped = nullptr;
const VkResult mapResult = vmaMapMemory(m_allocator, m_allocation, &mapped);
if (mapResult != VK_SUCCESS || mapped == nullptr) {
MGLOG_E("VkBufferObject::Upload failed: vmaMapMemory returned %d", mapResult);
const Bool wasMapped = IsMapped();
void* mapped = wasMapped ? m_mappedData : Map();
if (mapped == nullptr) {
MGLOG_E("VkBufferObject::Upload failed: unable to map buffer");
return false;
}
Memcpy(static_cast<Uint8*>(mapped) + offset, data, static_cast<SizeT>(size));
vmaUnmapMemory(m_allocator, m_allocation);
if (!wasMapped) {
Unmap();
}
return true;
}
BufferSlice VkBufferObject::GetSlice(VkDeviceSize offset, VkDeviceSize size) const {
MOBILEGL_ASSERT(offset <= m_size, "VkBufferObject::GetSlice offset out of range");
const VkDeviceSize resolvedSize = (size == VK_WHOLE_SIZE) ? (m_size - offset) : size;
MOBILEGL_ASSERT(offset + resolvedSize <= m_size, "VkBufferObject::GetSlice range out of bounds");
BufferSlice slice{};
slice.buffer = m_buffer;
slice.offset = offset;
slice.size = resolvedSize;
slice.mapped = (m_mappedData != nullptr) ? static_cast<Uint8*>(m_mappedData) + offset : nullptr;
return slice;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -8,11 +8,20 @@
#pragma once
#include "BufferSlice.h"
#include "../VkIncludes.h"
#include <Includes.h>
#include <vk_mem_alloc.h>
namespace MobileGL::MG_Backend::DirectVulkan {
struct VkBufferObjectDesc {
VmaAllocator allocator = nullptr;
VkDeviceSize size = 0;
VkBufferUsageFlags usage = 0;
VmaMemoryUsage memoryUsage = VMA_MEMORY_USAGE_AUTO;
VmaAllocationCreateFlags allocationFlags = 0;
};
class VkBufferObject {
public:
VkBufferObject() = default;
@@ -23,20 +32,27 @@ namespace MobileGL::MG_Backend::DirectVulkan {
VkBufferObject(VkBufferObject&& other) noexcept;
VkBufferObject& operator=(VkBufferObject&& other) noexcept;
Bool Create(const VkBufferObjectDesc& desc);
Bool Create(VmaAllocator allocator, VkDeviceSize size, VkBufferUsageFlags usage,
VmaMemoryUsage memoryUsage, VmaAllocationCreateFlags allocationFlags = 0);
void Destroy();
void* Map();
void Unmap();
Bool Upload(const void* data, VkDeviceSize size, VkDeviceSize offset = 0);
VkBuffer GetHandle() const { return m_buffer; }
VkDeviceSize GetSize() const { return m_size; }
BufferSlice GetSlice(VkDeviceSize offset = 0, VkDeviceSize size = VK_WHOLE_SIZE) const;
void* GetMappedData() const { return m_mappedData; }
Bool IsMapped() const { return m_mappedData != nullptr; }
Bool IsValid() const { return m_allocator != nullptr && m_buffer != VK_NULL_HANDLE && m_allocation != nullptr; }
private:
VmaAllocator m_allocator = nullptr;
VkBuffer m_buffer = VK_NULL_HANDLE;
VmaAllocation m_allocation = nullptr;
void* m_mappedData = nullptr;
VkDeviceSize m_size = 0;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,118 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkClearManager.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 "VkClearManager.h"
#include "MG_Util/Converters/MGToStr/FramebufferEnumConverter.h"
#include "MG_Util/Converters/MGToStr/TextureEnumConverter.h"
namespace MobileGL::MG_Backend::DirectVulkan {
Bool VkClearManager::Initialize() {
return true;
}
void VkClearManager::Shutdown() {
}
void VkClearManager::QueueClear(GLbitfield mask, const ClearFramebufferPayload& clearPayload,
const MG_State::GLState::FramebufferObject& drawFbo) {
if (mask & GL_COLOR_BUFFER_BIT) {
auto& drawbufs = drawFbo.GetDrawBuffers();
// This should automatically work on default & offscreen FBO
for (auto drawbuf: drawbufs) {
if (drawbuf == FramebufferAttachmentType::None ||
drawFbo.GetAttachment(drawbuf).IsRenderbuffer())
continue;
QueueClear({
.color = clearPayload.color,
.attachmentType = drawbuf
}, drawFbo.GetAttachment(drawbuf).GetTexture());
MGLOG_D("%s: %s (texture %d) - color = (%.2f, %.2f, %.2f, %.2f)", __func__,
MG_Util::ConvertFramebufferAttachmentTypeToString(drawbuf).c_str(),
drawFbo.GetAttachment(drawbuf).GetTexture()->GetExternalIndex(),
clearPayload.color[0], clearPayload.color[1], clearPayload.color[2], clearPayload.color[3]);
}
}
if (mask & GL_DEPTH_BUFFER_BIT &&
!drawFbo.GetAttachment(FramebufferAttachmentType::Depth).IsRenderbuffer()) {
QueueClear({
.depth = clearPayload.depth,
.attachmentType = FramebufferAttachmentType::Depth,
}, drawFbo.GetAttachment(FramebufferAttachmentType::Depth).GetTexture());
MGLOG_D("%s: Depth (texture %d) - depth = (%.2f)", __func__,
drawFbo.GetAttachment(FramebufferAttachmentType::Depth).GetTexture()->GetExternalIndex(), clearPayload.depth);
}
if (mask & GL_STENCIL_BUFFER_BIT &&
!drawFbo.GetAttachment(FramebufferAttachmentType::Stencil).IsRenderbuffer()) {
QueueClear({
.stencil = clearPayload.stencil,
.attachmentType = FramebufferAttachmentType::Stencil,
}, drawFbo.GetAttachment(FramebufferAttachmentType::Stencil).GetTexture());
MGLOG_D("%s: Stencil (texture %d) - stencil = (%u)", __func__,
drawFbo.GetAttachment(FramebufferAttachmentType::Stencil).GetTexture()->GetExternalIndex(), clearPayload.stencil);
}
}
void VkClearManager::QueueClear(const ClearAttachmentPayload& clearPayload,
const SharedPtr<MG_State::GLState::ITextureObject>& texture) {
WeakPtr<MG_State::GLState::ITextureObject> weakTexturePtr = texture;
if (weakTexturePtr.expired())
return;
auto* pTexture = weakTexturePtr.lock().get();
m_aliveObjects[pTexture] = weakTexturePtr;
m_pendingClears[pTexture] = clearPayload;
}
Bool VkClearManager::HasPendingClear(MG_State::GLState::ITextureObject* texture) {
return m_pendingClears.find(texture) != m_pendingClears.end();
}
Bool VkClearManager::GetPendingClear(MG_State::GLState::ITextureObject* texture, ClearAttachmentPayload& outPayload) {
if (m_aliveObjects.find(texture) == m_aliveObjects.end() ||
m_pendingClears.find(texture) == m_pendingClears.end()) {
MGLOG_D("%s: Failed getting pending clear for texture %d", __func__, texture->GetExternalIndex());
return false;
}
outPayload = m_pendingClears[texture];
MGLOG_D("%s: Got pending clear for texture %d (%s), clear value: color = (%.2f, %.2f, %.2f, %.2f), depth = (%.2f), stencil = (%u)", __func__,
texture->GetExternalIndex(),
MG_Util::ConvertTextureInternalFormatToString(texture->GetFormat()).c_str(),
outPayload.color[0], outPayload.color[1], outPayload.color[2], outPayload.color[3],
outPayload.depth,
outPayload.stencil);
return true;
}
void VkClearManager::PopPendingClear(MG_State::GLState::ITextureObject* texture) {
MGLOG_D("%s: Pop pending clear for texture %d", __func__, texture->GetExternalIndex());
m_aliveObjects.erase(texture);
m_pendingClears.erase(texture);
}
SizeT VkClearManager::CollectGarbage() {
m_gcCounter++;
if (m_gcCounter != 0) {
return 0;
}
SizeT count = 0;
for (const auto& [raw, weak]: m_aliveObjects) {
if (weak.expired()) {
count++;
m_pendingClears.erase(raw);
m_aliveObjects.erase(raw);
}
}
return count;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,52 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkClearManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include "../VulkanRendererConfig.h"
#include "MG_State/GLState/FramebufferState/FramebufferObject.h"
#include "MG_Util/Math/VectorTypes.h"
#include <Includes.h>
namespace MobileGL::MG_Backend::DirectVulkan {
struct ClearFramebufferPayload {
FloatVec4 color;
Float depth{};
Uint32 stencil{};
};
struct ClearAttachmentPayload {
union {
FloatVec4 color;
Float depth{};
Uint32 stencil;
};
FramebufferAttachmentType attachmentType = FramebufferAttachmentType::Color0;
};
class VkClearManager {
public:
Bool Initialize();
void Shutdown();
void QueueClear(GLbitfield mask, const ClearFramebufferPayload& clearPayload, const MG_State::GLState::FramebufferObject& drawFbo);
void QueueClear(
const ClearAttachmentPayload& clearPayload,
const SharedPtr<MG_State::GLState::ITextureObject>& texture);
Bool HasPendingClear(MG_State::GLState::ITextureObject* texture);
Bool GetPendingClear(MG_State::GLState::ITextureObject* texture, ClearAttachmentPayload& outPayload);
void PopPendingClear(MG_State::GLState::ITextureObject* texture);
SizeT CollectGarbage();
private:
Uint8 m_gcCounter = 0;
UnorderedMap<MG_State::GLState::ITextureObject*, ClearAttachmentPayload> m_pendingClears;
UnorderedMap<MG_State::GLState::ITextureObject*, WeakPtr<MG_State::GLState::ITextureObject>> m_aliveObjects;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,547 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkFramebufferManager.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 "VkFramebufferManager.h"
#include <MG_State/GLState/RenderbufferState/RenderbufferObject.h>
#include <MG_State/GLState/TextureState/TextureEnum.h>
namespace MobileGL::MG_Backend::DirectVulkan {
Bool VkFramebufferManager::Initialize(const InitInfo& initInfo) {
m_device = initInfo.device;
m_physicalDevice = initInfo.physicalDevice;
return m_device != VK_NULL_HANDLE && m_physicalDevice != VK_NULL_HANDLE;
}
void VkFramebufferManager::Shutdown() {
for (auto& [_, target] : m_offscreenColorTargets) {
DestroyOffscreenColorTarget(target);
}
m_offscreenColorTargets.clear();
m_device = VK_NULL_HANDLE;
m_physicalDevice = VK_NULL_HANDLE;
}
Bool VkFramebufferManager::EnsureOffscreenColorTarget(Uint glFboExternalIndex,
const MG_State::GLState::FramebufferObject& glFbo) {
const auto& colorAttachment = glFbo.GetAttachment(FramebufferAttachmentType::Color0);
if (!colorAttachment.IsValid() || colorAttachment.IsEmpty()) {
MGLOG_W("VkFramebufferManager: FBO %u has no valid COLOR0 attachment", glFboExternalIndex);
return false;
}
const auto objectVersion = glFbo.GetObjectVersion();
auto& target = m_offscreenColorTargets[glFboExternalIndex];
if (target.image != VK_NULL_HANDLE && target.glObjectVersion == objectVersion) {
return true;
}
return RecreateOffscreenColorTarget(target, glFbo, colorAttachment, objectVersion);
}
Bool VkFramebufferManager::TransitionOffscreenColorToAttachment(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenColorToAttachment skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
if (!TransitionImageLayout(commandBuffer, target.image, target.layout, VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL,
VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT, 0,
VK_ACCESS_COLOR_ATTACHMENT_READ_BIT | VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT,
VK_IMAGE_ASPECT_COLOR_BIT)) {
return false;
}
if (target.depthStencilImage == VK_NULL_HANDLE) {
return true;
}
VkImageAspectFlags aspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (target.depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT ||
target.depthStencilFormat == VK_FORMAT_D32_SFLOAT_S8_UINT) {
aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
return TransitionImageLayout(
commandBuffer, target.depthStencilImage, target.depthStencilLayout,
VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT,
VK_PIPELINE_STAGE_EARLY_FRAGMENT_TESTS_BIT | VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT, 0,
VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_READ_BIT | VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT, aspectMask);
}
Bool VkFramebufferManager::TransitionOffscreenColorToTransferSrc(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenColorToTransferSrc skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
return TransitionImageLayout(commandBuffer, target.image, target.layout, VK_IMAGE_LAYOUT_TRANSFER_SRC_OPTIMAL,
VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0,
VK_ACCESS_TRANSFER_READ_BIT, VK_IMAGE_ASPECT_COLOR_BIT);
}
Bool VkFramebufferManager::TransitionOffscreenColorToTransferDst(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenColorToTransferDst skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
return TransitionImageLayout(commandBuffer, target.image, target.layout, VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL,
VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0,
VK_ACCESS_TRANSFER_WRITE_BIT, VK_IMAGE_ASPECT_COLOR_BIT);
}
Bool VkFramebufferManager::TransitionOffscreenColorToGeneral(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenColorToGeneral skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
return TransitionImageLayout(commandBuffer, target.image, target.layout, VK_IMAGE_LAYOUT_GENERAL,
VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0,
VK_ACCESS_TRANSFER_READ_BIT | VK_ACCESS_TRANSFER_WRITE_BIT,
VK_IMAGE_ASPECT_COLOR_BIT);
}
Bool VkFramebufferManager::TransitionOffscreenDepthStencilToTransferSrc(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenDepthStencilToTransferSrc skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
if (target.depthStencilImage == VK_NULL_HANDLE) {
return false;
}
VkImageAspectFlags aspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (target.depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT ||
target.depthStencilFormat == VK_FORMAT_D32_SFLOAT_S8_UINT) {
aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
return TransitionImageLayout(commandBuffer, target.depthStencilImage, target.depthStencilLayout,
VK_IMAGE_LAYOUT_TRANSFER_SRC_OPTIMAL, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT,
VK_PIPELINE_STAGE_TRANSFER_BIT, 0, VK_ACCESS_TRANSFER_READ_BIT, aspectMask);
}
Bool VkFramebufferManager::TransitionOffscreenDepthStencilToTransferDst(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenDepthStencilToTransferDst skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
if (target.depthStencilImage == VK_NULL_HANDLE) {
return false;
}
VkImageAspectFlags aspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (target.depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT ||
target.depthStencilFormat == VK_FORMAT_D32_SFLOAT_S8_UINT) {
aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
return TransitionImageLayout(commandBuffer, target.depthStencilImage, target.depthStencilLayout,
VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT,
VK_PIPELINE_STAGE_TRANSFER_BIT, 0, VK_ACCESS_TRANSFER_WRITE_BIT, aspectMask);
}
Bool VkFramebufferManager::TransitionOffscreenDepthStencilToGeneral(VkCommandBuffer commandBuffer,
Uint glFboExternalIndex) {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end()) {
MGLOG_W("VkFramebufferManager::TransitionOffscreenDepthStencilToGeneral skipped: FBO %u not found",
glFboExternalIndex);
return false;
}
auto& target = it->second;
if (target.depthStencilImage == VK_NULL_HANDLE) {
return false;
}
VkImageAspectFlags aspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (target.depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT ||
target.depthStencilFormat == VK_FORMAT_D32_SFLOAT_S8_UINT) {
aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
return TransitionImageLayout(commandBuffer, target.depthStencilImage, target.depthStencilLayout,
VK_IMAGE_LAYOUT_GENERAL, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT,
VK_PIPELINE_STAGE_TRANSFER_BIT, 0,
VK_ACCESS_TRANSFER_READ_BIT | VK_ACCESS_TRANSFER_WRITE_BIT, aspectMask);
}
Bool VkFramebufferManager::TransitionOffscreenColorTextureToShaderRead(VkCommandBuffer commandBuffer,
Uint textureExternalIndex) {
for (auto& [_, target] : m_offscreenColorTargets) {
if (target.colorTextureExternalIndex != textureExternalIndex || target.image == VK_NULL_HANDLE) {
continue;
}
const Bool fromUndefined = (target.layout == VK_IMAGE_LAYOUT_UNDEFINED);
return TransitionImageLayout(
commandBuffer, target.image, target.layout, VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL,
fromUndefined ? VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT
: (VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT | VK_PIPELINE_STAGE_TRANSFER_BIT),
VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT,
fromUndefined ? 0 : (VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT | VK_ACCESS_TRANSFER_WRITE_BIT),
VK_ACCESS_SHADER_READ_BIT, VK_IMAGE_ASPECT_COLOR_BIT);
}
return false;
}
Bool VkFramebufferManager::GetOffscreenColorImage(Uint glFboExternalIndex, VkImage& outImage,
VkExtent2D& outExtent) const {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end() || it->second.image == VK_NULL_HANDLE) {
return false;
}
outImage = it->second.image;
outExtent = it->second.extent;
return true;
}
Bool VkFramebufferManager::GetOffscreenDepthStencilImage(Uint glFboExternalIndex, VkImage& outImage,
VkExtent2D& outExtent, VkFormat& outFormat) const {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end() || it->second.depthStencilImage == VK_NULL_HANDLE) {
return false;
}
outImage = it->second.depthStencilImage;
outExtent = it->second.extent;
outFormat = it->second.depthStencilFormat;
return true;
}
Bool VkFramebufferManager::GetOffscreenColorViewByTexture(Uint textureExternalIndex,
VkImageView& outImageView) const {
for (const auto& [_, target] : m_offscreenColorTargets) {
if (target.colorTextureExternalIndex != textureExternalIndex || target.imageView == VK_NULL_HANDLE) {
continue;
}
outImageView = target.imageView;
return true;
}
return false;
}
Bool VkFramebufferManager::GetOffscreenRenderSurface(Uint glFboExternalIndex, VkImageView& outColorView,
VkFormat& outColorFormat, VkImageView& outDepthStencilView,
VkFormat& outDepthStencilFormat, VkExtent2D& outExtent) const {
auto it = m_offscreenColorTargets.find(glFboExternalIndex);
if (it == m_offscreenColorTargets.end() || it->second.imageView == VK_NULL_HANDLE) {
return false;
}
outColorView = it->second.imageView;
outColorFormat = it->second.format;
outDepthStencilView = it->second.depthStencilImageView;
outExtent = it->second.extent;
outDepthStencilFormat = it->second.depthStencilFormat;
return true;
}
Bool VkFramebufferManager::RecreateOffscreenColorTarget(
OffscreenColorTarget& target, const MG_State::GLState::FramebufferObject& glFbo,
const MG_State::GLState::FramebufferAttachmentObject& colorAttachment, Uint16 glObjectVersion) {
DestroyOffscreenColorTarget(target);
const auto size = colorAttachment.GetSize();
if (size.x() <= 0 || size.y() <= 0) {
MGLOG_W("VkFramebufferManager: COLOR0 attachment size is invalid (%d, %d)", size.x(), size.y());
return false;
}
const VkFormat format = ResolveColorFormat(colorAttachment);
if (format == VK_FORMAT_UNDEFINED) {
MGLOG_W("VkFramebufferManager: COLOR0 attachment format is unsupported for Vulkan clear");
return false;
}
VkImageCreateInfo imageInfo{};
imageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
imageInfo.imageType = VK_IMAGE_TYPE_2D;
imageInfo.extent.width = static_cast<Uint32>(size.x());
imageInfo.extent.height = static_cast<Uint32>(size.y());
imageInfo.extent.depth = 1;
imageInfo.mipLevels = 1;
imageInfo.arrayLayers = 1;
imageInfo.format = format;
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
imageInfo.usage = VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT | VK_IMAGE_USAGE_TRANSFER_DST_BIT |
VK_IMAGE_USAGE_TRANSFER_SRC_BIT | VK_IMAGE_USAGE_SAMPLED_BIT;
imageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateImage(m_device, &imageInfo, nullptr, &target.image), "vkCreateImage(offscreen color)");
VkMemoryRequirements memoryRequirements{};
vkGetImageMemoryRequirements(m_device, target.image, &memoryRequirements);
VkMemoryAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
allocInfo.allocationSize = memoryRequirements.size;
allocInfo.memoryTypeIndex =
FindMemoryType(memoryRequirements.memoryTypeBits, VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &allocInfo, nullptr, &target.memory), "vkAllocateMemory(offscreen color)");
VK_VERIFY(vkBindImageMemory(m_device, target.image, target.memory, 0), "vkBindImageMemory(offscreen color)");
VkImageViewCreateInfo viewInfo{};
viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
viewInfo.image = target.image;
viewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
viewInfo.format = format;
viewInfo.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
viewInfo.subresourceRange.baseMipLevel = 0;
viewInfo.subresourceRange.levelCount = 1;
viewInfo.subresourceRange.baseArrayLayer = 0;
viewInfo.subresourceRange.layerCount = 1;
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &target.imageView),
"vkCreateImageView(offscreen color)");
const auto& depthAttachment = glFbo.GetAttachment(FramebufferAttachmentType::Depth);
const auto& stencilAttachment = glFbo.GetAttachment(FramebufferAttachmentType::Stencil);
const Bool requestedDepthStencil = (depthAttachment.IsValid() && !depthAttachment.IsEmpty()) ||
(stencilAttachment.IsValid() && !stencilAttachment.IsEmpty());
VkFormat depthStencilFormat = ResolveDepthStencilFormat(depthAttachment, stencilAttachment);
if (depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT) {
depthStencilFormat =
FindSupportedDepthStencilFormat({VK_FORMAT_D24_UNORM_S8_UINT, VK_FORMAT_D32_SFLOAT_S8_UINT});
} else if (depthStencilFormat == VK_FORMAT_D32_SFLOAT) {
depthStencilFormat = FindSupportedDepthStencilFormat({VK_FORMAT_D32_SFLOAT, VK_FORMAT_D16_UNORM});
}
const Bool hasDepthStencil = (depthStencilFormat != VK_FORMAT_UNDEFINED);
if (requestedDepthStencil && !hasDepthStencil) {
MGLOG_W("VkFramebufferManager: FBO %u depth/stencil attachment exists but format is unsupported",
glFbo.GetExternalIndex());
}
if (hasDepthStencil) {
VkImageCreateInfo depthImageInfo{};
depthImageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
depthImageInfo.imageType = VK_IMAGE_TYPE_2D;
depthImageInfo.extent.width = static_cast<Uint32>(size.x());
depthImageInfo.extent.height = static_cast<Uint32>(size.y());
depthImageInfo.extent.depth = 1;
depthImageInfo.mipLevels = 1;
depthImageInfo.arrayLayers = 1;
depthImageInfo.format = depthStencilFormat;
depthImageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
depthImageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
depthImageInfo.usage = VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
depthImageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
depthImageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateImage(m_device, &depthImageInfo, nullptr, &target.depthStencilImage),
"vkCreateImage(offscreen depth/stencil)");
VkMemoryRequirements depthMemoryRequirements{};
vkGetImageMemoryRequirements(m_device, target.depthStencilImage, &depthMemoryRequirements);
VkMemoryAllocateInfo depthAllocInfo{};
depthAllocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
depthAllocInfo.allocationSize = depthMemoryRequirements.size;
depthAllocInfo.memoryTypeIndex =
FindMemoryType(depthMemoryRequirements.memoryTypeBits, VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &depthAllocInfo, nullptr, &target.depthStencilMemory),
"vkAllocateMemory(offscreen depth/stencil)");
VK_VERIFY(vkBindImageMemory(m_device, target.depthStencilImage, target.depthStencilMemory, 0),
"vkBindImageMemory(offscreen depth/stencil)");
VkImageAspectFlags depthAspectMask = VK_IMAGE_ASPECT_DEPTH_BIT;
if (depthStencilFormat == VK_FORMAT_D24_UNORM_S8_UINT ||
depthStencilFormat == VK_FORMAT_D32_SFLOAT_S8_UINT) {
depthAspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
VkImageViewCreateInfo depthViewInfo{};
depthViewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
depthViewInfo.image = target.depthStencilImage;
depthViewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
depthViewInfo.format = depthStencilFormat;
depthViewInfo.subresourceRange.aspectMask = depthAspectMask;
depthViewInfo.subresourceRange.baseMipLevel = 0;
depthViewInfo.subresourceRange.levelCount = 1;
depthViewInfo.subresourceRange.baseArrayLayer = 0;
depthViewInfo.subresourceRange.layerCount = 1;
VK_VERIFY(vkCreateImageView(m_device, &depthViewInfo, nullptr, &target.depthStencilImageView),
"vkCreateImageView(offscreen depth/stencil)");
}
target.layout = VK_IMAGE_LAYOUT_UNDEFINED;
target.extent = {static_cast<Uint32>(size.x()), static_cast<Uint32>(size.y())};
target.format = format;
target.depthStencilLayout = VK_IMAGE_LAYOUT_UNDEFINED;
target.depthStencilFormat = depthStencilFormat;
target.glObjectVersion = glObjectVersion;
target.colorTextureExternalIndex = (colorAttachment.IsTexture() && colorAttachment.GetTexture())
? colorAttachment.GetTexture()->GetExternalIndex()
: 0;
return true;
}
void VkFramebufferManager::DestroyOffscreenColorTarget(OffscreenColorTarget& target) {
if (target.imageView != VK_NULL_HANDLE) {
vkDestroyImageView(m_device, target.imageView, nullptr);
target.imageView = VK_NULL_HANDLE;
}
if (target.depthStencilImageView != VK_NULL_HANDLE) {
vkDestroyImageView(m_device, target.depthStencilImageView, nullptr);
target.depthStencilImageView = VK_NULL_HANDLE;
}
if (target.image != VK_NULL_HANDLE) {
vkDestroyImage(m_device, target.image, nullptr);
target.image = VK_NULL_HANDLE;
}
if (target.depthStencilImage != VK_NULL_HANDLE) {
vkDestroyImage(m_device, target.depthStencilImage, nullptr);
target.depthStencilImage = VK_NULL_HANDLE;
}
if (target.memory != VK_NULL_HANDLE) {
vkFreeMemory(m_device, target.memory, nullptr);
target.memory = VK_NULL_HANDLE;
}
if (target.depthStencilMemory != VK_NULL_HANDLE) {
vkFreeMemory(m_device, target.depthStencilMemory, nullptr);
target.depthStencilMemory = VK_NULL_HANDLE;
}
target.layout = VK_IMAGE_LAYOUT_UNDEFINED;
target.depthStencilLayout = VK_IMAGE_LAYOUT_UNDEFINED;
target.extent = {0, 0};
target.format = VK_FORMAT_UNDEFINED;
target.depthStencilFormat = VK_FORMAT_UNDEFINED;
target.glObjectVersion = 0;
target.colorTextureExternalIndex = 0;
}
Bool VkFramebufferManager::TransitionImageLayout(VkCommandBuffer commandBuffer, VkImage image,
VkImageLayout& trackedLayout, VkImageLayout newLayout,
VkPipelineStageFlags srcStageMask,
VkPipelineStageFlags dstStageMask, VkAccessFlags srcAccessMask,
VkAccessFlags dstAccessMask, VkImageAspectFlags aspectMask) {
if (image == VK_NULL_HANDLE) {
return false;
}
if (trackedLayout == newLayout) {
return true;
}
VkImageMemoryBarrier barrier{};
barrier.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
barrier.srcAccessMask = srcAccessMask;
barrier.dstAccessMask = dstAccessMask;
barrier.oldLayout = trackedLayout;
barrier.newLayout = newLayout;
barrier.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
barrier.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
barrier.image = image;
barrier.subresourceRange.aspectMask = aspectMask;
barrier.subresourceRange.baseMipLevel = 0;
barrier.subresourceRange.levelCount = 1;
barrier.subresourceRange.baseArrayLayer = 0;
barrier.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, srcStageMask, dstStageMask, 0, 0, nullptr, 0, nullptr, 1, &barrier);
trackedLayout = newLayout;
return true;
}
Uint32 VkFramebufferManager::FindMemoryType(Uint32 typeFilter, VkMemoryPropertyFlags properties) const {
VkPhysicalDeviceMemoryProperties memoryProperties{};
vkGetPhysicalDeviceMemoryProperties(m_physicalDevice, &memoryProperties);
for (Uint32 i = 0; i < memoryProperties.memoryTypeCount; ++i) {
if ((typeFilter & (1U << i)) &&
(memoryProperties.memoryTypes[i].propertyFlags & properties) == properties) {
return i;
}
}
MOBILEGL_ASSERT(false, "VkFramebufferManager::FindMemoryType failed");
return 0;
}
VkFormat VkFramebufferManager::ResolveColorFormat(
const MG_State::GLState::FramebufferAttachmentObject& colorAttachment) {
TextureInternalFormat internalFormat = TextureInternalFormat::Unknown;
if (colorAttachment.IsTexture()) {
const auto texture = colorAttachment.GetTexture();
internalFormat = texture ? texture->GetFormat() : TextureInternalFormat::Unknown;
} else if (colorAttachment.IsRenderbuffer()) {
const auto renderbuffer = colorAttachment.GetRenderbuffer();
internalFormat = renderbuffer ? renderbuffer->GetInternalFormat() : TextureInternalFormat::Unknown;
}
switch (internalFormat) {
case TextureInternalFormat::RGBA:
case TextureInternalFormat::RGBA8:
case TextureInternalFormat::SRGB8Alpha8:
return VK_FORMAT_R8G8B8A8_UNORM;
default:
return VK_FORMAT_UNDEFINED;
}
}
VkFormat VkFramebufferManager::ResolveDepthStencilFormat(
const MG_State::GLState::FramebufferAttachmentObject& depthAttachment,
const MG_State::GLState::FramebufferAttachmentObject& stencilAttachment) {
const auto resolveAttachmentFormat = [](const MG_State::GLState::FramebufferAttachmentObject& attachment) {
TextureInternalFormat internalFormat = TextureInternalFormat::Unknown;
if (attachment.IsTexture()) {
const auto texture = attachment.GetTexture();
internalFormat = texture ? texture->GetFormat() : TextureInternalFormat::Unknown;
} else if (attachment.IsRenderbuffer()) {
const auto renderbuffer = attachment.GetRenderbuffer();
internalFormat = renderbuffer ? renderbuffer->GetInternalFormat() : TextureInternalFormat::Unknown;
}
return internalFormat;
};
const auto depthFormat = resolveAttachmentFormat(depthAttachment);
const auto stencilFormat = resolveAttachmentFormat(stencilAttachment);
switch (depthFormat) {
case TextureInternalFormat::Depth24Stencil8:
case TextureInternalFormat::Depth32FStencil8:
case TextureInternalFormat::DepthStencil:
return VK_FORMAT_D24_UNORM_S8_UINT;
case TextureInternalFormat::DepthComponent16:
return VK_FORMAT_D16_UNORM;
case TextureInternalFormat::DepthComponent24:
case TextureInternalFormat::DepthComponent32:
case TextureInternalFormat::DepthComponent32F:
case TextureInternalFormat::DepthComponent:
return VK_FORMAT_D32_SFLOAT;
default:
break;
}
switch (stencilFormat) {
case TextureInternalFormat::Depth24Stencil8:
case TextureInternalFormat::Depth32FStencil8:
case TextureInternalFormat::DepthStencil:
return VK_FORMAT_D24_UNORM_S8_UINT;
default:
return VK_FORMAT_UNDEFINED;
}
}
VkFormat VkFramebufferManager::FindSupportedDepthStencilFormat(const Vector<VkFormat>& candidates) const {
for (auto format : candidates) {
VkFormatProperties properties{};
vkGetPhysicalDeviceFormatProperties(m_physicalDevice, format, &properties);
if ((properties.optimalTilingFeatures & VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0) {
return format;
}
}
return VK_FORMAT_UNDEFINED;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,83 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkFramebufferManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include <Includes.h>
#include <MG_State/GLState/FramebufferState/FramebufferObject.h>
namespace MobileGL::MG_Backend::DirectVulkan {
class VkFramebufferManager {
public:
struct InitInfo {
VkDevice device = VK_NULL_HANDLE;
VkPhysicalDevice physicalDevice = VK_NULL_HANDLE;
};
VkFramebufferManager() = default;
~VkFramebufferManager() = default;
Bool Initialize(const InitInfo& initInfo);
void Shutdown();
Bool EnsureOffscreenColorTarget(Uint glFboExternalIndex, const MG_State::GLState::FramebufferObject& glFbo);
Bool TransitionOffscreenColorToAttachment(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenColorToTransferSrc(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenColorToTransferDst(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenColorToGeneral(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenDepthStencilToTransferSrc(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenDepthStencilToTransferDst(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenDepthStencilToGeneral(VkCommandBuffer commandBuffer, Uint glFboExternalIndex);
Bool TransitionOffscreenColorTextureToShaderRead(VkCommandBuffer commandBuffer, Uint textureExternalIndex);
Bool GetOffscreenColorImage(Uint glFboExternalIndex, VkImage& outImage, VkExtent2D& outExtent) const;
Bool GetOffscreenDepthStencilImage(Uint glFboExternalIndex, VkImage& outImage, VkExtent2D& outExtent,
VkFormat& outFormat) const;
Bool GetOffscreenColorViewByTexture(Uint textureExternalIndex, VkImageView& outImageView) const;
Bool GetOffscreenRenderSurface(Uint glFboExternalIndex, VkImageView& outColorView, VkFormat& outColorFormat,
VkImageView& outDepthStencilView, VkFormat& outDepthStencilFormat,
VkExtent2D& outExtent) const;
private:
struct OffscreenColorTarget {
VkImage image = VK_NULL_HANDLE;
VkDeviceMemory memory = VK_NULL_HANDLE;
VkImageView imageView = VK_NULL_HANDLE;
VkImageLayout layout = VK_IMAGE_LAYOUT_UNDEFINED;
VkExtent2D extent = {0, 0};
VkFormat format = VK_FORMAT_UNDEFINED;
VkImage depthStencilImage = VK_NULL_HANDLE;
VkDeviceMemory depthStencilMemory = VK_NULL_HANDLE;
VkImageView depthStencilImageView = VK_NULL_HANDLE;
VkImageLayout depthStencilLayout = VK_IMAGE_LAYOUT_UNDEFINED;
VkFormat depthStencilFormat = VK_FORMAT_UNDEFINED;
Uint16 glObjectVersion = 0;
Uint colorTextureExternalIndex = 0;
};
Bool RecreateOffscreenColorTarget(OffscreenColorTarget& target,
const MG_State::GLState::FramebufferObject& glFbo,
const MG_State::GLState::FramebufferAttachmentObject& colorAttachment,
Uint16 glObjectVersion);
void DestroyOffscreenColorTarget(OffscreenColorTarget& target);
Bool TransitionImageLayout(VkCommandBuffer commandBuffer, VkImage image, VkImageLayout& trackedLayout,
VkImageLayout newLayout, VkPipelineStageFlags srcStageMask,
VkPipelineStageFlags dstStageMask, VkAccessFlags srcAccessMask,
VkAccessFlags dstAccessMask, VkImageAspectFlags aspectMask);
Uint32 FindMemoryType(Uint32 typeFilter, VkMemoryPropertyFlags properties) const;
static VkFormat ResolveColorFormat(const MG_State::GLState::FramebufferAttachmentObject& colorAttachment);
static VkFormat ResolveDepthStencilFormat(
const MG_State::GLState::FramebufferAttachmentObject& depthAttachment,
const MG_State::GLState::FramebufferAttachmentObject& stencilAttachment);
VkFormat FindSupportedDepthStencilFormat(const Vector<VkFormat>& candidates) const;
VkDevice m_device = VK_NULL_HANDLE;
VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
UnorderedMap<Uint, OffscreenColorTarget> m_offscreenColorTargets;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -8,340 +8,500 @@
#include "VkRenderPassManager.h"
#include "MG_Impl/GLImpl/Framebuffer/GL_Framebuffer.h"
#include "MG_State/GLState/TextureState/TextureObject2D.h"
#include "MG_Util/Converters/MGToVk/TextureEnumConverter.h"
namespace MobileGL::MG_Backend::DirectVulkan {
Bool VkRenderPassManager::Initialize(const InitInfo& initInfo) {
Shutdown();
VkRenderPassManager::VkRenderPassManager(VkDevice device,
const VulkanRendererConfig& config, VkClearManager& clearManager, VkTextureManager& textureManager,
SwapchainObject& swapchainObject):
m_device(device), m_config(config), m_clearManager(clearManager), m_textureManager(textureManager),
m_swapchainObject(swapchainObject) {
RenderPassEntry::s_device = m_device;
s_clearManager = &m_clearManager;
s_textureManager = &m_textureManager;
s_swapchainObject = &m_swapchainObject;
}
if (initInfo.device == VK_NULL_HANDLE || initInfo.colorFormat == VK_FORMAT_UNDEFINED ||
initInfo.depthStencilFormat == VK_FORMAT_UNDEFINED) {
return false;
}
VkRenderPassManager::~VkRenderPassManager() {}
m_device = initInfo.device;
m_colorFormat = initInfo.colorFormat;
m_depthStencilFormat = initInfo.depthStencilFormat;
m_renderPassLoad = CreateDefaultRenderPass(VK_ATTACHMENT_LOAD_OP_LOAD);
m_renderPassClear = CreateDefaultRenderPass(VK_ATTACHMENT_LOAD_OP_CLEAR);
MGLOG_D("VkRenderPassManager: RenderPasses created (LOAD/CLEAR).");
return m_renderPassLoad != VK_NULL_HANDLE && m_renderPassClear != VK_NULL_HANDLE;
Bool VkRenderPassManager::Initialize() {
return true;
}
void VkRenderPassManager::Shutdown() {
DestroyDefaultFramebuffers();
for (auto& [_, target] : m_offscreenRenderTargets) {
DestroyOffscreenRenderTarget(target);
}
m_offscreenRenderTargets.clear();
}
if (m_device != VK_NULL_HANDLE) {
if (m_renderPassClear != VK_NULL_HANDLE) {
vkDestroyRenderPass(m_device, m_renderPassClear, nullptr);
VkRenderPassManager::HashType VkRenderPassManager::ComputeHash(
const MG_State::GLState::FramebufferObject& fbo, Uint32 swapchainImageIndex, Bool includePendingClear) const {
XXHASH_VERIFY(XXH64_reset(m_hashState, m_config.CacheVersion));
const Bool isDefaultFbo = (&fbo == MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo->defaultFBO.get());
if (isDefaultFbo) {
XXHASH_VERIFY(XXH64_update(m_hashState, &swapchainImageIndex, sizeof(swapchainImageIndex)));
}
auto& drawBuffers = fbo.GetDrawBuffers();
XXHASH_VERIFY(XXH64_update(m_hashState, drawBuffers.data(), drawBuffers.size() * sizeof(drawBuffers[0])));
auto readBuffer = fbo.GetReadBuffer();
XXHASH_VERIFY(XXH64_update(m_hashState, &readBuffer, sizeof(FramebufferAttachmentType)));
Int validDrawBufCount = 0;
for (Int i = 0; i < drawBuffers.size(); ++i) {
auto drawbuf = drawBuffers[i];
if (drawbuf != FramebufferAttachmentType::None)
validDrawBufCount = std::max(validDrawBufCount, i + 1);
}
XXHASH_VERIFY(XXH64_update(m_hashState, &validDrawBufCount, sizeof(validDrawBufCount)));
auto combineFramebufferAttachmentObjHash = [&](FramebufferAttachmentType attachment) {
auto& att = fbo.GetAttachment(attachment);
Int type = 0;
if (att.IsEmpty()) type = 0;
else if (att.IsTexture()) type = 1;
else if (att.IsRenderbuffer()) type = 2;
XXHASH_VERIFY(XXH64_update(m_hashState, &type, sizeof(type)));
void* contentPtr = nullptr;
if (att.IsTexture())
contentPtr = att.GetTexture().get();
else if (att.IsRenderbuffer())
contentPtr = att.GetRenderbuffer().get();
XXHASH_VERIFY(XXH64_update(m_hashState, &contentPtr, sizeof(contentPtr)));
if (att.IsTexture()) {
const Int textureLevel = att.GetTextureLevel();
XXHASH_VERIFY(XXH64_update(m_hashState, &textureLevel, sizeof(textureLevel)));
}
if (m_renderPassLoad != VK_NULL_HANDLE) {
vkDestroyRenderPass(m_device, m_renderPassLoad, nullptr);
if (includePendingClear && att.IsTexture()) {
auto* texture = att.GetTexture().get();
auto hasClear = m_clearManager.HasPendingClear(texture);
XXHASH_VERIFY(XXH64_update(m_hashState, &hasClear, sizeof(hasClear)));
if (hasClear) {
ClearAttachmentPayload clearPayload{};
Bool hasPayload = m_clearManager.GetPendingClear(texture, clearPayload);
XXHASH_VERIFY(XXH64_update(m_hashState, &hasPayload, sizeof(hasPayload)));
if (hasPayload) {
XXHASH_VERIFY(XXH64_update(
m_hashState, &clearPayload.attachmentType, sizeof(clearPayload.attachmentType)));
}
}
VkImageLayout currentLayout = VK_IMAGE_LAYOUT_UNDEFINED;
if (isDefaultFbo) {
if (attachment >= FramebufferAttachmentType::Color0 &&
attachment <= FramebufferAttachmentType::Color31) {
currentLayout = m_swapchainObject.GetImageLayout(swapchainImageIndex);
} else if (attachment == FramebufferAttachmentType::Depth ||
attachment == FramebufferAttachmentType::Stencil) {
currentLayout = m_swapchainObject.GetDepthStencilImageLayout(swapchainImageIndex);
}
} else {
auto* resource = m_textureManager.SyncTextureAndGetDescriptor(*texture);
if (resource != nullptr) {
currentLayout = resource->layout;
}
}
XXHASH_VERIFY(XXH64_update(m_hashState, &currentLayout, sizeof(currentLayout)));
}
};
for (Int i = 0; i < validDrawBufCount; ++i) {
auto drawbuf = drawBuffers[i];
combineFramebufferAttachmentObjHash(drawbuf);
}
m_renderPassClear = VK_NULL_HANDLE;
m_renderPassLoad = VK_NULL_HANDLE;
m_colorFormat = VK_FORMAT_UNDEFINED;
m_depthStencilFormat = VK_FORMAT_UNDEFINED;
m_defaultExtent = {0, 0};
m_device = VK_NULL_HANDLE;
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Depth);
combineFramebufferAttachmentObjHash(FramebufferAttachmentType::Stencil);
return XXH64_digest(m_hashState);
}
Bool VkRenderPassManager::RecreateDefaultFramebuffers(const Vector<VkImageView>& colorViews,
const Vector<VkImageView>& depthStencilViews,
VkExtent2D extent) {
DestroyDefaultFramebuffers();
RenderPassEntry& VkRenderPassManager::GetOrCreateRenderPass(const MG_State::GLState::FramebufferObject& fbo,
Uint32 swapchainImageIndex) {
auto hasPendingClearOnFramebuffer = [&]() -> Bool {
const auto& drawBuffers = fbo.GetDrawBuffers();
for (auto attachment : drawBuffers) {
if (attachment == FramebufferAttachmentType::None) {
continue;
}
if (m_device == VK_NULL_HANDLE || m_renderPassLoad == VK_NULL_HANDLE || extent.width == 0 ||
extent.height == 0 || colorViews.empty() || colorViews.size() != depthStencilViews.size()) {
return false;
}
m_defaultFramebuffers.reserve(colorViews.size());
for (SizeT i = 0; i < colorViews.size(); ++i) {
if (colorViews[i] == VK_NULL_HANDLE || depthStencilViews[i] == VK_NULL_HANDLE) {
DestroyDefaultFramebuffers();
return false;
const auto& att = fbo.GetAttachment(attachment);
if (att.IsTexture() && m_clearManager.HasPendingClear(att.GetTexture().get())) {
return true;
}
}
VkImageView attachments[] = {colorViews[i], depthStencilViews[i]};
VkFramebufferCreateInfo createInfo{VK_STRUCTURE_TYPE_FRAMEBUFFER_CREATE_INFO};
createInfo.renderPass = m_renderPassLoad;
createInfo.attachmentCount = static_cast<Uint32>(std::size(attachments));
createInfo.pAttachments = attachments;
createInfo.width = extent.width;
createInfo.height = extent.height;
createInfo.layers = 1;
VkFramebuffer framebuffer = VK_NULL_HANDLE;
if (vkCreateFramebuffer(m_device, &createInfo, nullptr, &framebuffer) != VK_SUCCESS) {
DestroyDefaultFramebuffers();
return false;
const auto& depthAtt = fbo.GetAttachment(FramebufferAttachmentType::Depth);
if (depthAtt.IsTexture() && m_clearManager.HasPendingClear(depthAtt.GetTexture().get())) {
return true;
}
const auto& stencilAtt = fbo.GetAttachment(FramebufferAttachmentType::Stencil);
if (stencilAtt.IsTexture() && m_clearManager.HasPendingClear(stencilAtt.GetTexture().get())) {
return true;
}
m_defaultFramebuffers.push_back(framebuffer);
}
m_defaultExtent = extent;
return true;
}
Bool VkRenderPassManager::GetDefaultRenderTarget(Uint32 imageIndex, VkRenderPass& outRenderPass,
VkFramebuffer& outFramebuffer, VkExtent2D& outExtent,
VkFormat& outDepthStencilFormat) const {
if (imageIndex >= m_defaultFramebuffers.size() || m_renderPassLoad == VK_NULL_HANDLE) {
return false;
}
outRenderPass = m_renderPassLoad;
outFramebuffer = m_defaultFramebuffers[imageIndex];
outExtent = m_defaultExtent;
outDepthStencilFormat = m_depthStencilFormat;
return outFramebuffer != VK_NULL_HANDLE;
}
};
Bool VkRenderPassManager::EnsureOffscreenRenderTarget(const OffscreenRenderTargetInfo& targetInfo) {
if (m_device == VK_NULL_HANDLE || targetInfo.colorView == VK_NULL_HANDLE ||
targetInfo.colorFormat == VK_FORMAT_UNDEFINED || targetInfo.extent.width == 0 ||
targetInfo.extent.height == 0) {
return false;
// retrieve from cache first
auto* activeRenderPass = GetActiveRenderPass();
auto compatibilityHash = ComputeHash(fbo, swapchainImageIndex, false);
if (activeRenderPass != nullptr &&
activeRenderPass->CompatibleWith(compatibilityHash) &&
!hasPendingClearOnFramebuffer()) {
auto activeIt = m_renderPasses.find(activeRenderPass->hash);
MOBILEGL_ASSERT(activeIt != m_renderPasses.end(),
"GetOrCreateRenderPass: active render pass hash=0x%llx is missing from cache",
static_cast<unsigned long long>(activeRenderPass->hash));
return activeIt->second;
}
auto hash = ComputeHash(fbo, swapchainImageIndex, true);
auto it = m_renderPasses.find(hash);
if (it != m_renderPasses.end())
return it->second;
Bool isDefaultFbo = (&fbo == MG_Impl::GLImpl::FramebufferImpl::pDefaultFramebufferInfo->defaultFBO.get());
// Color attachment
auto& drawbufs = fbo.GetDrawBuffers();
Int validDrawBufCount = 0;
for (Int i = 0; i < drawbufs.size(); ++i) {
auto drawbuf = drawbufs[i];
if (drawbuf != FramebufferAttachmentType::None)
validDrawBufCount = std::max(validDrawBufCount, i + 1);
}
const Bool hasDepthStencil =
targetInfo.depthStencilView != VK_NULL_HANDLE && targetInfo.depthStencilFormat != VK_FORMAT_UNDEFINED;
Int width = 0;
Int height = 0;
Vector<VkAttachmentDescription> attachmentDescriptions(validDrawBufCount);
Vector<VkAttachmentReference> colorAttachmentRefs(validDrawBufCount);
Vector<PendingClearAttachmentInfo> pendingClearAttachments;
Vector<TrackedAttachmentLayoutInfo> trackedAttachmentLayouts;
auto& textureResources = RenderPassEntry::s_textureResourcesScratch;
textureResources.clear();
textureResources.resize(validDrawBufCount, nullptr);
Vector<VkImageView> attachmentViews(validDrawBufCount, VK_NULL_HANDLE);
// This should automatically work on default & offscreen FBO
// assuming default FBO has the right param
for (Int i = 0; i < validDrawBufCount; ++i) {
auto drawbuf = drawbufs[i];
if (drawbuf == FramebufferAttachmentType::None ||
fbo.GetAttachment(drawbuf).IsRenderbuffer())
continue;
auto& target = m_offscreenRenderTargets[targetInfo.targetExternalIndex];
if (target.framebuffer != VK_NULL_HANDLE && target.renderPassLoad != VK_NULL_HANDLE &&
target.targetVersion == targetInfo.targetVersion && target.colorView == targetInfo.colorView &&
target.colorFormat == targetInfo.colorFormat && target.depthStencilView == targetInfo.depthStencilView &&
target.depthStencilFormat == targetInfo.depthStencilFormat &&
target.extent.width == targetInfo.extent.width && target.extent.height == targetInfo.extent.height) {
return true;
auto& att = fbo.GetAttachment(drawbuf);
auto* texture = att.GetTexture().get();
const Uint32 attachmentMipLevel = static_cast<Uint32>(std::max(att.GetTextureLevel(), 0));
const auto textureTarget = texture->GetTarget();
// Color attachment description
VkAttachmentDescription& desc = attachmentDescriptions[i];
switch (textureTarget) {
case TextureTarget::Texture2D: {
auto* texture2d =
static_cast<MG_State::GLState::TextureObject2D*>(texture);
desc.flags = 0;
desc.format =
MG_Util::ConvertTextureInternalFormatToVkEnum(
texture2d->GetFormat());
desc.samples = VK_SAMPLE_COUNT_1_BIT;
ClearAttachmentPayload clearPayload{};
Bool hasClear = m_clearManager.GetPendingClear(texture, clearPayload);
VkImageLayout trackedColorLayout = VK_IMAGE_LAYOUT_UNDEFINED;
desc.loadOp = hasClear ?
VK_ATTACHMENT_LOAD_OP_CLEAR :
VK_ATTACHMENT_LOAD_OP_LOAD;
desc.storeOp = VK_ATTACHMENT_STORE_OP_STORE;
desc.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
desc.stencilStoreOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
desc.finalLayout = isDefaultFbo ?
VK_IMAGE_LAYOUT_PRESENT_SRC_KHR :
VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL;
if (hasClear) {
pendingClearAttachments.emplace_back(PendingClearAttachmentInfo {
.attachmentIndex = static_cast<Uint32>(i),
.texture = texture
});
}
if (width == 0)
width = att.GetSize().x();
if (height == 0)
height = att.GetSize().y();
if (isDefaultFbo) {
const auto& swapchainViews = m_swapchainObject.GetImageViews();
MOBILEGL_ASSERT(swapchainImageIndex < swapchainViews.size(),
"GetOrCreateRenderPass: swapchain image index out of range");
trackedColorLayout = m_swapchainObject.GetImageLayout(swapchainImageIndex);
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
.target = TrackedAttachmentTarget::SwapchainColor,
.swapchainImageIndex = swapchainImageIndex,
.finalLayout = desc.finalLayout,
});
attachmentViews[i] = swapchainViews[swapchainImageIndex];
} else {
textureResources[i] = m_textureManager.SyncTextureAndGetDescriptor(*texture);
MOBILEGL_ASSERT(textureResources[i],
"GetOrCreateRenderPass: SyncTextureAndGetDescriptor failed at color attachment %d", i);
trackedColorLayout = textureResources[i]->layout;
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
.target = TrackedAttachmentTarget::Texture,
.texture = texture,
.finalLayout = desc.finalLayout,
});
attachmentViews[i] = m_textureManager.GetOrCreateViewAtMipLevel(*texture, attachmentMipLevel);
MOBILEGL_ASSERT(attachmentViews[i] != VK_NULL_HANDLE,
"GetOrCreateRenderPass: GetOrCreateAttachmentView failed at color attachment %d", i);
}
if (!hasClear && trackedColorLayout == VK_IMAGE_LAYOUT_UNDEFINED) {
MGLOG_W("GetOrCreateRenderPass: color attachment textureId=%d starts with undefined layout and no clear; "
"using LOAD_OP_DONT_CARE",
texture->GetExternalIndex());
desc.loadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
}
desc.initialLayout = (hasClear || trackedColorLayout == VK_IMAGE_LAYOUT_UNDEFINED) ?
VK_IMAGE_LAYOUT_UNDEFINED :
trackedColorLayout;
break;
}
default:
MOBILEGL_ASSERT(false, "Unsupported texture target");
}
// Attachment reference
VkAttachmentReference& attachmentRef = colorAttachmentRefs[i];
attachmentRef.attachment = i;
attachmentRef.layout = VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL;
}
DestroyOffscreenRenderTarget(target);
const VkFormat depthStencilFormat = hasDepthStencil ? targetInfo.depthStencilFormat : VK_FORMAT_UNDEFINED;
target.renderPassLoad = CreateRenderPass(targetInfo.colorFormat, depthStencilFormat, VK_ATTACHMENT_LOAD_OP_LOAD,
VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL);
if (target.renderPassLoad == VK_NULL_HANDLE) {
return false;
// Depth attachment description
auto& depthAtt = fbo.GetAttachment(FramebufferAttachmentType::Depth);
VkAttachmentDescription depthAttachmentDescription;
VkAttachmentReference depthAttachmentRef;
depthAttachmentRef.attachment = VK_ATTACHMENT_UNUSED;
depthAttachmentRef.layout = VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
VkTextureManager::TextureResource* depthTextureResource = nullptr;
if (depthAtt.IsComplete() && depthAtt.IsTexture()) {
auto& texture = *depthAtt.GetTexture();
const Uint32 attachmentMipLevel = static_cast<Uint32>(std::max(depthAtt.GetTextureLevel(), 0));
const Uint32 depthAttachmentIndex = static_cast<Uint32>(attachmentDescriptions.size());
ClearAttachmentPayload clearPayload{};
Bool hasClear = m_clearManager.GetPendingClear(&texture, clearPayload);
Bool clearDepth = hasClear && clearPayload.attachmentType == FramebufferAttachmentType::Depth;
Bool clearStencil = hasClear && clearPayload.attachmentType == FramebufferAttachmentType::Stencil;
VkImageLayout trackedDepthLayout = isDefaultFbo ?
m_swapchainObject.GetDepthStencilImageLayout(swapchainImageIndex) :
VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
if (!isDefaultFbo) {
depthTextureResource = m_textureManager.SyncTextureAndGetDescriptor(texture);
MOBILEGL_ASSERT(depthTextureResource,
"GetOrCreateRenderPass: SyncTextureAndGetDescriptor failed at depth attachment");
trackedDepthLayout = depthTextureResource->layout;
}
depthAttachmentDescription.flags = 0;
depthAttachmentDescription.format =
MG_Util::ConvertTextureInternalFormatToVkEnum(texture.GetFormat());
depthAttachmentDescription.samples = VK_SAMPLE_COUNT_1_BIT;
depthAttachmentDescription.loadOp = clearDepth ?
VK_ATTACHMENT_LOAD_OP_CLEAR :
VK_ATTACHMENT_LOAD_OP_LOAD;
depthAttachmentDescription.storeOp = VK_ATTACHMENT_STORE_OP_STORE;
depthAttachmentDescription.stencilLoadOp = clearStencil ?
VK_ATTACHMENT_LOAD_OP_CLEAR :
VK_ATTACHMENT_LOAD_OP_LOAD;
depthAttachmentDescription.stencilStoreOp = VK_ATTACHMENT_STORE_OP_STORE;
depthAttachmentDescription.finalLayout = VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
if (trackedDepthLayout == VK_IMAGE_LAYOUT_UNDEFINED) {
if (!clearDepth) {
depthAttachmentDescription.loadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
}
if (!clearStencil) {
depthAttachmentDescription.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
}
}
depthAttachmentDescription.initialLayout =
(clearDepth && clearStencil) || trackedDepthLayout == VK_IMAGE_LAYOUT_UNDEFINED ?
VK_IMAGE_LAYOUT_UNDEFINED :
trackedDepthLayout;
if (hasClear) {
pendingClearAttachments.emplace_back(PendingClearAttachmentInfo {
.attachmentIndex = depthAttachmentIndex,
.texture = &texture
});
}
if (isDefaultFbo) {
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
.target = TrackedAttachmentTarget::SwapchainDepthStencil,
.swapchainImageIndex = swapchainImageIndex,
.finalLayout = depthAttachmentDescription.finalLayout,
});
attachmentViews.emplace_back(m_swapchainObject.GetDepthStencilImageView(swapchainImageIndex));
} else {
MOBILEGL_ASSERT(clearDepth || clearStencil || depthTextureResource->layout != VK_IMAGE_LAYOUT_UNDEFINED,
"GetOrCreateRenderPass: depth attachment textureId=%d has undefined tracked layout with LOAD_OP_LOAD",
texture.GetExternalIndex());
trackedAttachmentLayouts.emplace_back(TrackedAttachmentLayoutInfo {
.target = TrackedAttachmentTarget::Texture,
.texture = &texture,
.finalLayout = depthAttachmentDescription.finalLayout,
});
textureResources.emplace_back(depthTextureResource);
attachmentViews.emplace_back(m_textureManager.GetOrCreateViewAtMipLevel(texture, attachmentMipLevel));
MOBILEGL_ASSERT(attachmentViews.back() != VK_NULL_HANDLE,
"GetOrCreateRenderPass: GetOrCreateAttachmentView failed at depth attachment");
if (width == 0 || height == 0) {
width = depthAtt.GetSize().x();
height = depthAtt.GetSize().y();
}
}
attachmentDescriptions.emplace_back(depthAttachmentDescription);
depthAttachmentRef.attachment = depthAttachmentIndex;
}
Array<VkImageView, 2> attachments{};
attachments[0] = targetInfo.colorView;
Uint32 attachmentCount = 1;
if (hasDepthStencil) {
attachments[1] = targetInfo.depthStencilView;
attachmentCount = 2;
}
// Subpass
VkSubpassDescription subpassDesc;
subpassDesc.flags = 0;
subpassDesc.pipelineBindPoint = VK_PIPELINE_BIND_POINT_GRAPHICS;
subpassDesc.inputAttachmentCount = 0;
subpassDesc.pInputAttachments = nullptr;
subpassDesc.colorAttachmentCount = colorAttachmentRefs.size();
subpassDesc.pColorAttachments = colorAttachmentRefs.data();
subpassDesc.pResolveAttachments = nullptr;
subpassDesc.pDepthStencilAttachment = depthAtt.IsComplete() ? &depthAttachmentRef : VK_NULL_HANDLE;
subpassDesc.preserveAttachmentCount = 0;
subpassDesc.pPreserveAttachments = nullptr;
VkFramebufferCreateInfo framebufferInfo{VK_STRUCTURE_TYPE_FRAMEBUFFER_CREATE_INFO};
framebufferInfo.renderPass = target.renderPassLoad;
framebufferInfo.attachmentCount = attachmentCount;
framebufferInfo.pAttachments = attachments.data();
framebufferInfo.width = targetInfo.extent.width;
framebufferInfo.height = targetInfo.extent.height;
framebufferInfo.layers = 1;
VK_VERIFY(vkCreateFramebuffer(m_device, &framebufferInfo, nullptr, &target.framebuffer),
"vkCreateFramebuffer(offscreen)");
target.targetVersion = targetInfo.targetVersion;
target.colorView = targetInfo.colorView;
target.colorFormat = targetInfo.colorFormat;
target.depthStencilView = targetInfo.depthStencilView;
target.depthStencilFormat = targetInfo.depthStencilFormat;
target.extent = targetInfo.extent;
return true;
}
Bool VkRenderPassManager::GetOffscreenRenderTarget(Uint targetExternalIndex, VkRenderPass& outRenderPass,
VkFramebuffer& outFramebuffer, VkExtent2D& outExtent,
VkFormat& outDepthStencilFormat) const {
auto it = m_offscreenRenderTargets.find(targetExternalIndex);
if (it == m_offscreenRenderTargets.end() || it->second.renderPassLoad == VK_NULL_HANDLE ||
it->second.framebuffer == VK_NULL_HANDLE) {
return false;
}
outRenderPass = it->second.renderPassLoad;
outFramebuffer = it->second.framebuffer;
outExtent = it->second.extent;
outDepthStencilFormat = it->second.depthStencilFormat;
return true;
}
void VkRenderPassManager::RemoveOffscreenRenderTarget(Uint targetExternalIndex) {
auto it = m_offscreenRenderTargets.find(targetExternalIndex);
if (it == m_offscreenRenderTargets.end()) {
return;
}
DestroyOffscreenRenderTarget(it->second);
m_offscreenRenderTargets.erase(it);
}
void VkRenderPassManager::BeginRenderPass(VkCommandBuffer commandBuffer, VkRenderPass renderPass,
VkFramebuffer framebuffer, VkExtent2D extent) const {
VkRenderPassBeginInfo beginInfo{};
beginInfo.sType = VK_STRUCTURE_TYPE_RENDER_PASS_BEGIN_INFO;
beginInfo.renderPass = renderPass;
beginInfo.framebuffer = framebuffer;
beginInfo.renderArea.offset = {0, 0};
beginInfo.renderArea.extent = extent;
beginInfo.clearValueCount = 0;
beginInfo.pClearValues = nullptr;
vkCmdBeginRenderPass(commandBuffer, &beginInfo, VK_SUBPASS_CONTENTS_INLINE);
}
void VkRenderPassManager::EndRenderPass(VkCommandBuffer commandBuffer) const {
vkCmdEndRenderPass(commandBuffer);
}
void VkRenderPassManager::RecordColorClear(VkCommandBuffer commandBuffer, VkExtent2D extent,
const VkClearColorValue& clearColor) const {
VkClearAttachment clearAttachment{};
clearAttachment.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
clearAttachment.colorAttachment = 0;
clearAttachment.clearValue.color = clearColor;
VkClearRect clearRect{};
clearRect.rect.offset = {0, 0};
clearRect.rect.extent = extent;
clearRect.baseArrayLayer = 0;
clearRect.layerCount = 1;
vkCmdClearAttachments(commandBuffer, 1, &clearAttachment, 1, &clearRect);
}
void VkRenderPassManager::RecordDepthStencilClear(VkCommandBuffer commandBuffer, VkExtent2D extent, GLbitfield mask,
Float depth, Uint32 stencil, VkFormat depthStencilFormat) const {
if (depthStencilFormat == VK_FORMAT_UNDEFINED) {
return;
}
VkImageAspectFlags aspectMask = 0;
if ((mask & GL_DEPTH_BUFFER_BIT) != 0) {
aspectMask |= VK_IMAGE_ASPECT_DEPTH_BIT;
}
if ((mask & GL_STENCIL_BUFFER_BIT) != 0 && HasStencilComponent(depthStencilFormat)) {
aspectMask |= VK_IMAGE_ASPECT_STENCIL_BIT;
}
if (aspectMask == 0) {
return;
}
VkClearAttachment clearAttachment{};
clearAttachment.aspectMask = aspectMask;
clearAttachment.clearValue.depthStencil.depth = depth;
clearAttachment.clearValue.depthStencil.stencil = stencil;
VkClearRect clearRect{};
clearRect.rect.offset = {0, 0};
clearRect.rect.extent = extent;
clearRect.baseArrayLayer = 0;
clearRect.layerCount = 1;
vkCmdClearAttachments(commandBuffer, 1, &clearAttachment, 1, &clearRect);
}
VkRenderPass VkRenderPassManager::GetLoadRenderPass() const {
return m_renderPassLoad;
}
VkRenderPass VkRenderPassManager::GetClearRenderPass() const {
return m_renderPassClear;
}
VkRenderPass VkRenderPassManager::CreateDefaultRenderPass(VkAttachmentLoadOp colorLoadOp) const {
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE, "VkRenderPassManager: device is null");
MOBILEGL_ASSERT(m_colorFormat != VK_FORMAT_UNDEFINED, "VkRenderPassManager: color format is undefined");
MOBILEGL_ASSERT(m_depthStencilFormat != VK_FORMAT_UNDEFINED,
"VkRenderPassManager: depth/stencil format is undefined");
return CreateRenderPass(m_colorFormat, m_depthStencilFormat, colorLoadOp, VK_IMAGE_LAYOUT_PRESENT_SRC_KHR);
}
VkRenderPass VkRenderPassManager::CreateRenderPass(VkFormat colorFormat, VkFormat depthStencilFormat,
VkAttachmentLoadOp colorLoadOp,
VkImageLayout colorFinalLayout) const {
VkAttachmentDescription color{};
color.format = colorFormat;
color.samples = VK_SAMPLE_COUNT_1_BIT;
color.loadOp = colorLoadOp;
color.storeOp = VK_ATTACHMENT_STORE_OP_STORE;
color.initialLayout = VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL;
color.finalLayout = colorFinalLayout;
color.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
color.stencilStoreOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
const Bool hasDepthStencil = depthStencilFormat != VK_FORMAT_UNDEFINED;
VkAttachmentDescription depthStencil{};
if (hasDepthStencil) {
depthStencil.format = depthStencilFormat;
depthStencil.samples = VK_SAMPLE_COUNT_1_BIT;
depthStencil.loadOp = VK_ATTACHMENT_LOAD_OP_LOAD;
depthStencil.storeOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
depthStencil.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_LOAD;
depthStencil.stencilStoreOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
depthStencil.initialLayout = VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
depthStencil.finalLayout = VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL;
}
VkAttachmentReference colorRef{0, VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL};
VkAttachmentReference depthStencilRef{1, VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL};
VkSubpassDescription subpass{};
subpass.pipelineBindPoint = VK_PIPELINE_BIND_POINT_GRAPHICS;
subpass.colorAttachmentCount = 1;
subpass.pColorAttachments = &colorRef;
if (hasDepthStencil) {
subpass.pDepthStencilAttachment = &depthStencilRef;
}
Array<VkAttachmentDescription, 2> attachments{};
attachments[0] = color;
Uint32 attachmentCount = 1;
if (hasDepthStencil) {
attachments[1] = depthStencil;
attachmentCount = 2;
}
VkRenderPassCreateInfo createInfo{VK_STRUCTURE_TYPE_RENDER_PASS_CREATE_INFO};
createInfo.attachmentCount = attachmentCount;
createInfo.pAttachments = attachments.data();
createInfo.subpassCount = 1;
createInfo.pSubpasses = &subpass;
// Render Pass
VkRenderPassCreateInfo renderPassCreateInfo;
renderPassCreateInfo.sType = VK_STRUCTURE_TYPE_RENDER_PASS_CREATE_INFO;
renderPassCreateInfo.pNext = VK_NULL_HANDLE;
renderPassCreateInfo.flags = 0;
renderPassCreateInfo.attachmentCount = attachmentDescriptions.size();
renderPassCreateInfo.pAttachments = attachmentDescriptions.data();
renderPassCreateInfo.subpassCount = 1;
renderPassCreateInfo.pSubpasses = &subpassDesc;
renderPassCreateInfo.dependencyCount = 0;
renderPassCreateInfo.pDependencies = nullptr;
VkRenderPass renderPass = VK_NULL_HANDLE;
VK_VERIFY(vkCreateRenderPass(m_device, &createInfo, nullptr, &renderPass), "vkCreateRenderPass");
return renderPass;
VK_VERIFY(vkCreateRenderPass(m_device, &renderPassCreateInfo, nullptr, &renderPass));
// Framebuffer
VkFramebufferCreateInfo framebufferCreateInfo;
framebufferCreateInfo.sType = VK_STRUCTURE_TYPE_FRAMEBUFFER_CREATE_INFO;
framebufferCreateInfo.pNext = nullptr;
framebufferCreateInfo.flags = 0;
framebufferCreateInfo.renderPass = renderPass;
framebufferCreateInfo.attachmentCount = attachmentViews.size();
framebufferCreateInfo.pAttachments = attachmentViews.data();
framebufferCreateInfo.width = width;
framebufferCreateInfo.height = height;
framebufferCreateInfo.layers = 1;
VkFramebuffer framebuffer = VK_NULL_HANDLE;
VK_VERIFY(vkCreateFramebuffer(m_device, &framebufferCreateInfo, nullptr, &framebuffer));
IntVec2 extent = {width, height};
RenderPassEntry renderPassEntry {
hash,
renderPass,
framebuffer,
compatibilityHash,
Move(pendingClearAttachments),
Move(trackedAttachmentLayouts),
static_cast<Uint32>(attachmentViews.size()),
extent,
1 };
auto [insertedIt, _] = m_renderPasses.emplace(hash, Move(renderPassEntry));
return insertedIt->second;
}
void VkRenderPassManager::DestroyDefaultFramebuffers() {
for (auto framebuffer : m_defaultFramebuffers) {
if (framebuffer != VK_NULL_HANDLE) {
vkDestroyFramebuffer(m_device, framebuffer, nullptr);
Bool VkRenderPassManager::BeginRenderPass(VkCommandBuffer commandBuffer, RenderPassEntry& renderPassEntry) {
// TODO: Transition all the attachments into proper layout before starting the render pass
VkRenderPassBeginInfo renderPassBeginInfo;
renderPassBeginInfo.sType = VK_STRUCTURE_TYPE_RENDER_PASS_BEGIN_INFO;
renderPassBeginInfo.pNext = nullptr;
renderPassBeginInfo.renderPass = renderPassEntry.renderPass;
renderPassBeginInfo.framebuffer = renderPassEntry.framebuffer;
renderPassBeginInfo.renderArea.offset = { 0, 0 };
renderPassBeginInfo.renderArea.extent = {
(Uint32)renderPassEntry.extent.x(), (Uint32)renderPassEntry.extent.y() };
Vector<VkClearValue> clearValues(renderPassEntry.attachmentCount);
for (auto& clearValue: clearValues) {
clearValue.color = {0.0f, 0.0f, 0.0f, 1.0f};
clearValue.depthStencil = {1.0f, 0};
}
for (const auto& pending: renderPassEntry.pendingClearAttachments) {
if (!pending.texture || pending.attachmentIndex >= clearValues.size()) {
continue;
}
ClearAttachmentPayload clearPayload{};
if (!s_clearManager->GetPendingClear(pending.texture, clearPayload)) {
continue;
}
if (clearPayload.attachmentType >= FramebufferAttachmentType::Color0 &&
clearPayload.attachmentType <= FramebufferAttachmentType::Color31) {
clearValues[pending.attachmentIndex].color = {
clearPayload.color.x(),
clearPayload.color.y(),
clearPayload.color.z(),
clearPayload.color.w()
};
} else if (clearPayload.attachmentType == FramebufferAttachmentType::Depth) {
clearValues[pending.attachmentIndex].depthStencil.depth = clearPayload.depth;
} else if (clearPayload.attachmentType == FramebufferAttachmentType::Stencil) {
clearValues[pending.attachmentIndex].depthStencil.stencil = clearPayload.stencil;
}
}
m_defaultFramebuffers.clear();
m_defaultExtent = {0, 0};
renderPassBeginInfo.clearValueCount = static_cast<Uint32>(clearValues.size());
renderPassBeginInfo.pClearValues = clearValues.data();
vkCmdBeginRenderPass(commandBuffer, &renderPassBeginInfo, VK_SUBPASS_CONTENTS_INLINE);
for (const auto& pending: renderPassEntry.pendingClearAttachments) {
s_clearManager->PopPendingClear(pending.texture);
}
s_activeRenderPass.hash = renderPassEntry.hash;
s_activeRenderPass.compatibilityHash = renderPassEntry.compatibilityHash;
s_activeRenderPass.trackedAttachmentLayouts = renderPassEntry.trackedAttachmentLayouts;
s_activeRenderPass.extent = renderPassEntry.extent;
s_hasActiveRenderPass = true;
return true;
}
void VkRenderPassManager::DestroyOffscreenRenderTarget(OffscreenRenderTarget& target) {
if (target.framebuffer != VK_NULL_HANDLE) {
vkDestroyFramebuffer(m_device, target.framebuffer, nullptr);
target.framebuffer = VK_NULL_HANDLE;
Bool VkRenderPassManager::EndRenderPass(VkCommandBuffer commandBuffer) {
auto* activeRenderPass = GetActiveRenderPass();
vkCmdEndRenderPass(commandBuffer);
if (activeRenderPass != nullptr && !activeRenderPass->trackedAttachmentLayouts.empty()) {
for (const auto& trackedAttachment : activeRenderPass->trackedAttachmentLayouts) {
switch (trackedAttachment.target) {
case TrackedAttachmentTarget::Texture:
MOBILEGL_ASSERT(s_textureManager != nullptr, "EndRenderPass: texture manager is null");
s_textureManager->UpdateTrackedImageLayout(trackedAttachment.texture, trackedAttachment.finalLayout);
break;
case TrackedAttachmentTarget::SwapchainColor:
MOBILEGL_ASSERT(s_swapchainObject != nullptr, "EndRenderPass: swapchain object is null");
s_swapchainObject->SetImageLayout(trackedAttachment.swapchainImageIndex, trackedAttachment.finalLayout);
break;
case TrackedAttachmentTarget::SwapchainDepthStencil:
MOBILEGL_ASSERT(s_swapchainObject != nullptr, "EndRenderPass: swapchain object is null");
s_swapchainObject->SetDepthStencilImageLayout(trackedAttachment.swapchainImageIndex,
trackedAttachment.finalLayout);
break;
default:
MOBILEGL_ASSERT(false, "EndRenderPass: unsupported tracked attachment target=%d",
static_cast<Int>(trackedAttachment.target));
break;
}
}
}
if (target.renderPassLoad != VK_NULL_HANDLE) {
vkDestroyRenderPass(m_device, target.renderPassLoad, nullptr);
target.renderPassLoad = VK_NULL_HANDLE;
}
target.targetVersion = 0;
target.colorView = VK_NULL_HANDLE;
target.colorFormat = VK_FORMAT_UNDEFINED;
target.depthStencilView = VK_NULL_HANDLE;
target.depthStencilFormat = VK_FORMAT_UNDEFINED;
target.extent = {0, 0};
s_activeRenderPass = {};
s_hasActiveRenderPass = false;
return true;
}
Bool VkRenderPassManager::HasStencilComponent(VkFormat format) {
return format == VK_FORMAT_D24_UNORM_S8_UINT || format == VK_FORMAT_D32_SFLOAT_S8_UINT;
ActiveRenderPassInfo* VkRenderPassManager::GetActiveRenderPass() {
return s_hasActiveRenderPass ? &s_activeRenderPass : nullptr;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -8,79 +8,144 @@
#pragma once
#include "SwapchainObject.h"
#include "VkClearManager.h"
#include "VkTextureManager.h"
#include "../VkIncludes.h"
#include "../VulkanRendererConfig.h"
#include "MG_State/GLState/FramebufferState/FramebufferObject.h"
#include <Includes.h>
namespace MobileGL::MG_Backend::DirectVulkan {
enum class TrackedAttachmentTarget : Uint8 {
Texture,
SwapchainColor,
SwapchainDepthStencil
};
struct PendingClearAttachmentInfo {
Uint32 attachmentIndex = 0;
MG_State::GLState::ITextureObject* texture = nullptr;
};
struct TrackedAttachmentLayoutInfo {
TrackedAttachmentTarget target = TrackedAttachmentTarget::Texture;
MG_State::GLState::ITextureObject* texture = nullptr;
Uint32 swapchainImageIndex = 0;
VkImageLayout finalLayout = VK_IMAGE_LAYOUT_UNDEFINED;
};
struct RenderPassEntry {
static inline VkDevice s_device;
static inline Vector<VkTextureManager::TextureResource*> s_textureResourcesScratch;
Uint64 hash = 0;
VkRenderPass renderPass = VK_NULL_HANDLE;
VkFramebuffer framebuffer = VK_NULL_HANDLE;
Uint64 compatibilityHash = 0;
Vector<PendingClearAttachmentInfo> pendingClearAttachments;
Vector<TrackedAttachmentLayoutInfo> trackedAttachmentLayouts;
Uint32 attachmentCount = 0;
IntVec2 extent = {0, 0};
Uint32 subpass = 0;
RenderPassEntry() = default;
RenderPassEntry(const RenderPassEntry&) = delete;
RenderPassEntry(RenderPassEntry&& that) noexcept {
std::swap(hash, that.hash);
std::swap(renderPass, that.renderPass);
std::swap(framebuffer, that.framebuffer);
std::swap(compatibilityHash, that.compatibilityHash);
std::swap(pendingClearAttachments, that.pendingClearAttachments);
std::swap(trackedAttachmentLayouts, that.trackedAttachmentLayouts);
std::swap(attachmentCount, that.attachmentCount);
std::swap(extent, that.extent);
std::swap(subpass, that.subpass);
}
RenderPassEntry(
Uint64 hash,
VkRenderPass renderpass,
VkFramebuffer framebuffer,
Uint64 compatibilityHash,
const Vector<PendingClearAttachmentInfo>& pendingClearAttachments,
const Vector<TrackedAttachmentLayoutInfo>& trackedAttachmentLayouts,
Uint32 attachmentCount,
IntVec2 extent, int subpass):
hash(hash),
renderPass(renderpass),
framebuffer(framebuffer),
compatibilityHash(compatibilityHash),
pendingClearAttachments(Move(pendingClearAttachments)),
trackedAttachmentLayouts(Move(trackedAttachmentLayouts)),
attachmentCount(attachmentCount),
extent(extent),
subpass(subpass)
{}
~RenderPassEntry() {
if (renderPass != VK_NULL_HANDLE) {
vkDestroyRenderPass(s_device, renderPass, nullptr);
}
if (framebuffer != VK_NULL_HANDLE) {
vkDestroyFramebuffer(s_device, framebuffer, nullptr);
}
}
Bool CompatibleWith(const RenderPassEntry& that) const {
return this->compatibilityHash == that.compatibilityHash;
}
Bool CompatibleWith(Uint64 compatibilityHash) const {
return this->compatibilityHash == compatibilityHash;
}
};
struct ActiveRenderPassInfo {
Uint64 hash = 0;
Uint64 compatibilityHash = 0;
Vector<TrackedAttachmentLayoutInfo> trackedAttachmentLayouts;
IntVec2 extent = {0, 0};
Bool CompatibleWith(const RenderPassEntry& that) const {
return compatibilityHash == that.compatibilityHash;
}
Bool CompatibleWith(Uint64 thatCompatibilityHash) const {
return compatibilityHash == thatCompatibilityHash;
}
};
class VkRenderPassManager {
public:
struct InitInfo {
VkDevice device = VK_NULL_HANDLE;
VkFormat colorFormat = VK_FORMAT_UNDEFINED;
VkFormat depthStencilFormat = VK_FORMAT_UNDEFINED;
};
using HashType = Uint64;
VkRenderPassManager(VkDevice device,
const VulkanRendererConfig& config, VkClearManager& clearManager, VkTextureManager& textureManager,
SwapchainObject& swapchainObject);
~VkRenderPassManager();
struct OffscreenRenderTargetInfo {
Uint targetExternalIndex = 0;
Uint16 targetVersion = 0;
VkImageView colorView = VK_NULL_HANDLE;
VkFormat colorFormat = VK_FORMAT_UNDEFINED;
VkImageView depthStencilView = VK_NULL_HANDLE;
VkFormat depthStencilFormat = VK_FORMAT_UNDEFINED;
VkExtent2D extent = {0, 0};
};
Bool Initialize(const InitInfo& initInfo);
Bool Initialize();
void Shutdown();
Bool RecreateDefaultFramebuffers(const Vector<VkImageView>& colorViews,
const Vector<VkImageView>& depthStencilViews, VkExtent2D extent);
Bool GetDefaultRenderTarget(Uint32 imageIndex, VkRenderPass& outRenderPass, VkFramebuffer& outFramebuffer,
VkExtent2D& outExtent, VkFormat& outDepthStencilFormat) const;
Bool EnsureOffscreenRenderTarget(const OffscreenRenderTargetInfo& targetInfo);
Bool GetOffscreenRenderTarget(Uint targetExternalIndex, VkRenderPass& outRenderPass,
VkFramebuffer& outFramebuffer, VkExtent2D& outExtent,
VkFormat& outDepthStencilFormat) const;
void RemoveOffscreenRenderTarget(Uint targetExternalIndex);
void BeginRenderPass(VkCommandBuffer commandBuffer, VkRenderPass renderPass, VkFramebuffer framebuffer,
VkExtent2D extent) const;
void EndRenderPass(VkCommandBuffer commandBuffer) const;
void RecordColorClear(VkCommandBuffer commandBuffer, VkExtent2D extent,
const VkClearColorValue& clearColor) const;
void RecordDepthStencilClear(VkCommandBuffer commandBuffer, VkExtent2D extent, GLbitfield mask, Float depth,
Uint32 stencil, VkFormat depthStencilFormat) const;
VkRenderPass GetLoadRenderPass() const;
VkRenderPass GetClearRenderPass() const;
HashType ComputeHash(
const MG_State::GLState::FramebufferObject& fbo,
Uint32 swapchainImageIndex,
Bool includePendingClear = true) const;
RenderPassEntry& GetOrCreateRenderPass(const MG_State::GLState::FramebufferObject& fbo, Uint32 swapchainImageIndex);
static Bool BeginRenderPass(VkCommandBuffer commandBuffer, RenderPassEntry& renderPassEntry);
static Bool EndRenderPass(VkCommandBuffer commandBuffer);
static ActiveRenderPassInfo* GetActiveRenderPass();
private:
struct OffscreenRenderTarget {
Uint16 targetVersion = 0;
VkImageView colorView = VK_NULL_HANDLE;
VkFormat colorFormat = VK_FORMAT_UNDEFINED;
VkImageView depthStencilView = VK_NULL_HANDLE;
VkFormat depthStencilFormat = VK_FORMAT_UNDEFINED;
VkExtent2D extent = {0, 0};
VkRenderPass renderPassLoad = VK_NULL_HANDLE;
VkFramebuffer framebuffer = VK_NULL_HANDLE;
};
VkRenderPass CreateDefaultRenderPass(VkAttachmentLoadOp colorLoadOp) const;
VkRenderPass CreateRenderPass(VkFormat colorFormat, VkFormat depthStencilFormat, VkAttachmentLoadOp colorLoadOp,
VkImageLayout colorFinalLayout) const;
void DestroyDefaultFramebuffers();
void DestroyOffscreenRenderTarget(OffscreenRenderTarget& target);
static Bool HasStencilComponent(VkFormat format);
VkDevice m_device = VK_NULL_HANDLE;
VkFormat m_colorFormat = VK_FORMAT_UNDEFINED;
VkFormat m_depthStencilFormat = VK_FORMAT_UNDEFINED;
VkRenderPass m_renderPassLoad = VK_NULL_HANDLE;
VkRenderPass m_renderPassClear = VK_NULL_HANDLE;
Vector<VkFramebuffer> m_defaultFramebuffers;
VkExtent2D m_defaultExtent = {0, 0};
UnorderedMap<Uint, OffscreenRenderTarget> m_offscreenRenderTargets;
const VulkanRendererConfig& m_config;
VkClearManager& m_clearManager;
VkTextureManager& m_textureManager;
SwapchainObject& m_swapchainObject;
UnorderedMap<Uint64, RenderPassEntry> m_renderPasses;
static inline XXH64_state_t* m_hashState = XXH64_createState();
static inline ActiveRenderPassInfo s_activeRenderPass{};
static inline Bool s_hasActiveRenderPass = false;
static inline VkClearManager* s_clearManager = nullptr;
static inline VkTextureManager* s_textureManager = nullptr;
static inline SwapchainObject* s_swapchainObject = nullptr;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,156 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkSamplerManager.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 "VkSamplerManager.h"
#include "MG_State/GLState/Core.h"
namespace MobileGL::MG_Backend::DirectVulkan {
Bool VkSamplerManager::Initialize(const InitInfo& initInfo) {
Shutdown();
m_device = initInfo.device;
m_config = initInfo.config;
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE && m_config != nullptr,
"VkSamplerManager::Initialize failed: invalid initialization info");
return true;
}
void VkSamplerManager::Shutdown() {
for (auto& [_, sampler] : m_samplers) {
if (m_device != VK_NULL_HANDLE && sampler.handle != VK_NULL_HANDLE) {
vkDestroySampler(m_device, sampler.handle, nullptr);
}
sampler.handle = VK_NULL_HANDLE;
}
m_samplers.clear();
m_device = VK_NULL_HANDLE;
m_config = nullptr;
}
Uint64 VkSamplerManager::BuildSamplerKey(const MG_State::GLState::SamplerObject& sampler) const {
MOBILEGL_ASSERT(m_config != nullptr, "VkSamplerManager::BuildSamplerKey: m_config is null");
XXHASH_VERIFY(XXH64_reset(m_hashState, m_config->CacheVersion));
const auto minFilter = sampler.GetMinFilter();
XXHASH_VERIFY(XXH64_update(m_hashState, &minFilter, sizeof(minFilter)));
const auto magFilter = sampler.GetMagFilter();
XXHASH_VERIFY(XXH64_update(m_hashState, &magFilter, sizeof(magFilter)));
const auto mipmapMode = sampler.GetMipmapMode();
XXHASH_VERIFY(XXH64_update(m_hashState, &mipmapMode, sizeof(mipmapMode)));
const auto wrapS = sampler.GetWrapS();
XXHASH_VERIFY(XXH64_update(m_hashState, &wrapS, sizeof(wrapS)));
const auto wrapT = sampler.GetWrapT();
XXHASH_VERIFY(XXH64_update(m_hashState, &wrapT, sizeof(wrapT)));
const auto wrapR = sampler.GetWrapR();
XXHASH_VERIFY(XXH64_update(m_hashState, &wrapR, sizeof(wrapR)));
const auto minLod = sampler.GetMinLod();
XXHASH_VERIFY(XXH64_update(m_hashState, &minLod, sizeof(minLod)));
const auto maxLod = sampler.GetMaxLod();
XXHASH_VERIFY(XXH64_update(m_hashState, &maxLod, sizeof(maxLod)));
const auto lodBias = sampler.GetLodBias();
XXHASH_VERIFY(XXH64_update(m_hashState, &lodBias, sizeof(lodBias)));
const auto compareMode = sampler.GetCompareMode();
XXHASH_VERIFY(XXH64_update(m_hashState, &compareMode, sizeof(compareMode)));
const auto compareFunc = sampler.GetSamplerCompareFunc();
XXHASH_VERIFY(XXH64_update(m_hashState, &compareFunc, sizeof(compareFunc)));
return XXH64_digest(m_hashState);
}
VkSampler VkSamplerManager::GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler) {
const Uint64 key = BuildSamplerKey(sampler);
auto it = m_samplers.find(key);
if (it != m_samplers.end()) {
return it->second.handle;
}
VkSamplerCreateInfo samplerInfo{};
samplerInfo.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
samplerInfo.magFilter = ToVkFilter(sampler.GetMagFilter());
samplerInfo.minFilter = ToVkFilter(sampler.GetMinFilter());
samplerInfo.mipmapMode = ToVkMipmapMode(sampler.GetMipmapMode());
samplerInfo.addressModeU = ToVkAddressMode(sampler.GetWrapS());
samplerInfo.addressModeV = ToVkAddressMode(sampler.GetWrapT());
samplerInfo.addressModeW = ToVkAddressMode(sampler.GetWrapR());
samplerInfo.mipLodBias = sampler.GetLodBias();
samplerInfo.anisotropyEnable = VK_FALSE;
samplerInfo.maxAnisotropy = 1.0f;
samplerInfo.compareEnable = sampler.GetCompareMode() == SamplerCompareMode::CompareToTexture ? VK_TRUE : VK_FALSE;
samplerInfo.compareOp = ToVkCompareOp(sampler.GetSamplerCompareFunc());
samplerInfo.minLod = sampler.GetMinLod();
samplerInfo.maxLod = sampler.GetMaxLod();
samplerInfo.borderColor = VK_BORDER_COLOR_FLOAT_TRANSPARENT_BLACK;
samplerInfo.unnormalizedCoordinates = VK_FALSE;
VkSampler vkSampler = VK_NULL_HANDLE;
VK_VERIFY(vkCreateSampler(m_device, &samplerInfo, nullptr, &vkSampler), "vkCreateSampler(texture)");
SamplerCacheEntry entry{};
entry.handle = vkSampler;
entry.externalIndex = sampler.GetExternalIndex();
entry.version = sampler.GetVersion();
m_samplers[key] = entry;
return vkSampler;
}
VkFilter VkSamplerManager::ToVkFilter(SamplerFilterMode mode) {
return mode == SamplerFilterMode::Nearest ? VK_FILTER_NEAREST : VK_FILTER_LINEAR;
}
VkSamplerMipmapMode VkSamplerManager::ToVkMipmapMode(SamplerMipmapMode mode) {
switch (mode) {
case SamplerMipmapMode::Nearest:
return VK_SAMPLER_MIPMAP_MODE_NEAREST;
case SamplerMipmapMode::Linear:
return VK_SAMPLER_MIPMAP_MODE_LINEAR;
case SamplerMipmapMode::None:
default:
return VK_SAMPLER_MIPMAP_MODE_NEAREST;
}
}
VkSamplerAddressMode VkSamplerManager::ToVkAddressMode(SamplerWrapMode mode) {
switch (mode) {
case SamplerWrapMode::ClampToEdge:
return VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE;
case SamplerWrapMode::MirroredRepeat:
return VK_SAMPLER_ADDRESS_MODE_MIRRORED_REPEAT;
case SamplerWrapMode::Repeat:
return VK_SAMPLER_ADDRESS_MODE_REPEAT;
case SamplerWrapMode::ClampToBorder:
return VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_BORDER;
case SamplerWrapMode::MirrorClampToEdge:
return VK_SAMPLER_ADDRESS_MODE_MIRROR_CLAMP_TO_EDGE;
default:
return VK_SAMPLER_ADDRESS_MODE_REPEAT;
}
}
VkCompareOp VkSamplerManager::ToVkCompareOp(SamplerCompareFunc func) {
switch (func) {
case SamplerCompareFunc::Never:
return VK_COMPARE_OP_NEVER;
case SamplerCompareFunc::Less:
return VK_COMPARE_OP_LESS;
case SamplerCompareFunc::Equal:
return VK_COMPARE_OP_EQUAL;
case SamplerCompareFunc::LessEqual:
return VK_COMPARE_OP_LESS_OR_EQUAL;
case SamplerCompareFunc::Greater:
return VK_COMPARE_OP_GREATER;
case SamplerCompareFunc::NotEqual:
return VK_COMPARE_OP_NOT_EQUAL;
case SamplerCompareFunc::GreaterEqual:
return VK_COMPARE_OP_GREATER_OR_EQUAL;
case SamplerCompareFunc::Always:
default:
return VK_COMPARE_OP_ALWAYS;
}
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,51 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkSamplerManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include "../VulkanRendererConfig.h"
#include <Includes.h>
#include <MG_State/GLState/SamplerState/SamplerObject.h>
namespace MobileGL::MG_State::GLState {
class SamplerObject;
}
namespace MobileGL::MG_Backend::DirectVulkan {
class VkSamplerManager {
public:
struct InitInfo {
VkDevice device = VK_NULL_HANDLE;
const VulkanRendererConfig* config = nullptr;
};
Bool Initialize(const InitInfo& initInfo);
void Shutdown();
VkSampler GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler);
private:
struct SamplerCacheEntry {
VkSampler handle = VK_NULL_HANDLE;
Uint externalIndex = 0;
Uint16 version = 0;
};
Uint64 BuildSamplerKey(const MG_State::GLState::SamplerObject& sampler) const;
static VkFilter ToVkFilter(SamplerFilterMode mode);
static VkSamplerMipmapMode ToVkMipmapMode(SamplerMipmapMode mode);
static VkSamplerAddressMode ToVkAddressMode(SamplerWrapMode mode);
static VkCompareOp ToVkCompareOp(SamplerCompareFunc func);
VkDevice m_device = VK_NULL_HANDLE;
const VulkanRendererConfig* m_config = nullptr;
UnorderedMap<Uint64, SamplerCacheEntry> m_samplers;
static inline XXH64_state_t* m_hashState = XXH64_createState();
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,617 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureManager.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 "VkTextureManager.h"
#include "MG_State/GLState/Core.h"
#include "MG_Util/Converters/MGToVk/TextureEnumConverter.h"
namespace MobileGL::MG_Backend::DirectVulkan {
static constexpr VkPipelineStageFlags kGraphicsSampledReadStages = VK_PIPELINE_STAGE_ALL_GRAPHICS_BIT;
static Bool IsValidSampledImageLayout(VkImageLayout layout) {
switch (layout) {
case VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL:
case VK_IMAGE_LAYOUT_GENERAL:
case VK_IMAGE_LAYOUT_DEPTH_STENCIL_READ_ONLY_OPTIMAL:
case VK_IMAGE_LAYOUT_DEPTH_READ_ONLY_STENCIL_ATTACHMENT_OPTIMAL:
case VK_IMAGE_LAYOUT_DEPTH_ATTACHMENT_STENCIL_READ_ONLY_OPTIMAL:
return true;
default:
return false;
}
}
Bool VkTextureManager::Initialize(const InitInfo& initInfo) {
Shutdown();
m_device = initInfo.device;
m_physicalDevice = initInfo.physicalDevice;
m_allocator = initInfo.allocator;
m_commandPool = initInfo.commandPool;
m_graphicsQueue = initInfo.graphicsQueue;
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE && m_physicalDevice != VK_NULL_HANDLE && m_allocator != nullptr &&
m_commandPool != VK_NULL_HANDLE && m_graphicsQueue != VK_NULL_HANDLE,
"VkTextureManager::Initialize failed: invalid initialization info");
TextureResource::s_device = m_device;
TextureResource::s_allocator = m_allocator;
return true;
}
void VkTextureManager::Shutdown() {
m_textureResources.clear();
m_device = VK_NULL_HANDLE;
m_physicalDevice = VK_NULL_HANDLE;
m_allocator = nullptr;
m_commandPool = VK_NULL_HANDLE;
m_graphicsQueue = VK_NULL_HANDLE;
}
VkTextureManager::TextureResource* VkTextureManager::SyncTextureAndGetDescriptor(MG_State::GLState::ITextureObject& texture) {
MOBILEGL_ASSERT(m_device != VK_NULL_HANDLE, "SyncTextureAndGetDescriptor: m_device == VK_NULL_HANDLE");
auto it = m_textureResources.find(&texture);
if (it == m_textureResources.end()) {
TextureResource initial{};
auto [insertIt, _] = m_textureResources.emplace(&texture, Move(initial));
it = insertIt;
}
if (!SyncTexture(texture, it->second)) {
MGLOG_D("%s: Syncing texture %d failed", __func__, texture.GetExternalIndex());
return nullptr;
}
return &(it->second);
}
VkImageView VkTextureManager::GetOrCreateViewAtMipLevel(MG_State::GLState::ITextureObject& texture, Uint32 mipLevel) {
TextureResource* resource = SyncTextureAndGetDescriptor(texture);
if (resource == nullptr || resource->image == VK_NULL_HANDLE || mipLevel >= resource->mipLevels) {
return VK_NULL_HANDLE;
}
if (resource->perMipViews.size() != resource->mipLevels) {
resource->perMipViews.resize(resource->mipLevels, VK_NULL_HANDLE);
}
VkImageView& perMipView = resource->perMipViews[mipLevel];
if (perMipView != VK_NULL_HANDLE) {
return perMipView;
}
perMipView = CreateImageView(resource->image, resource->format, resource->aspect, mipLevel, 1);
if (perMipView == VK_NULL_HANDLE) {
MGLOG_D("%s: CreateImageView failed for textureId=%d mipLevel=%u", __func__, texture.GetExternalIndex(), mipLevel);
return VK_NULL_HANDLE;
}
return perMipView;
}
void VkTextureManager::UpdateTrackedImageLayout(MG_State::GLState::ITextureObject* texture, VkImageLayout newLayout) {
MOBILEGL_ASSERT(texture != nullptr, "UpdateTrackedImageLayout: texture is null");
auto it = m_textureResources.find(texture);
MOBILEGL_ASSERT(it != m_textureResources.end(),
"UpdateTrackedImageLayout: textureId=%d has no tracked resource", texture->GetExternalIndex());
MOBILEGL_ASSERT(it->second.image != VK_NULL_HANDLE,
"UpdateTrackedImageLayout: textureId=%d has null image", texture->GetExternalIndex());
it->second.layout = newLayout;
}
Bool VkTextureManager::TransitionTextureForSampling(VkCommandBuffer commandBuffer, MG_State::GLState::ITextureObject& texture) {
TextureResource* resource = SyncTextureAndGetDescriptor(texture);
if (resource == nullptr) {
return false;
}
if (IsValidSampledImageLayout(resource->layout)) {
return true;
}
if (resource->layout == VK_IMAGE_LAYOUT_UNDEFINED) {
MGLOG_W("TransitionTextureForSampling: textureId=%d is still in VK_IMAGE_LAYOUT_UNDEFINED before sampling",
texture.GetExternalIndex());
}
VkImageLayout targetLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
VkPipelineStageFlags srcStageMask = VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT;
VkAccessFlags srcAccessMask = 0;
if ((resource->aspect & VK_IMAGE_ASPECT_COLOR_BIT) != 0) {
MOBILEGL_ASSERT(resource->layout == VK_IMAGE_LAYOUT_UNDEFINED ||
resource->layout == VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL,
"TransitionTextureForSampling: unsupported color layout=%d for textureId=%d",
static_cast<Int>(resource->layout), texture.GetExternalIndex());
if (resource->layout == VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL) {
srcStageMask = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
srcAccessMask = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT;
}
targetLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
} else if ((resource->aspect & (VK_IMAGE_ASPECT_DEPTH_BIT | VK_IMAGE_ASPECT_STENCIL_BIT)) != 0) {
MOBILEGL_ASSERT(resource->layout == VK_IMAGE_LAYOUT_UNDEFINED ||
resource->layout == VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL,
"TransitionTextureForSampling: unsupported depth/stencil layout=%d for textureId=%d",
static_cast<Int>(resource->layout), texture.GetExternalIndex());
if (resource->layout == VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL) {
srcStageMask = VK_PIPELINE_STAGE_EARLY_FRAGMENT_TESTS_BIT | VK_PIPELINE_STAGE_LATE_FRAGMENT_TESTS_BIT;
srcAccessMask = VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT;
}
targetLayout = VK_IMAGE_LAYOUT_DEPTH_STENCIL_READ_ONLY_OPTIMAL;
} else {
MOBILEGL_ASSERT(false, "TransitionTextureForSampling: unsupported aspect mask=0x%x for textureId=%d",
static_cast<Uint32>(resource->aspect), texture.GetExternalIndex());
}
const Bool ok = TransitionImageLayout(commandBuffer, resource->image, resource->layout, targetLayout, srcStageMask,
kGraphicsSampledReadStages, srcAccessMask,
VK_ACCESS_SHADER_READ_BIT, resource->aspect, 0, resource->mipLevels);
MOBILEGL_ASSERT(ok, "TransitionTextureForSampling: transition failed for textureId=%d", texture.GetExternalIndex());
return ok;
}
Bool VkTextureManager::TransitionImageLayout(VkCommandBuffer commandBuffer, VkImage image,
VkImageLayout& trackedLayout, VkImageLayout newLayout,
VkPipelineStageFlags srcStageMask, VkPipelineStageFlags dstStageMask,
VkAccessFlags srcAccessMask, VkAccessFlags dstAccessMask,
VkImageAspectFlags aspectMask, Uint32 baseMipLevel, Uint32 levelCount) {
MOBILEGL_ASSERT(image != VK_NULL_HANDLE, "TransitionImageLayout: m_image == VK_NULL_HANDLE");
MOBILEGL_ASSERT(!((dstAccessMask & VK_ACCESS_TRANSFER_READ_BIT) != 0 &&
(dstStageMask & VK_PIPELINE_STAGE_TRANSFER_BIT) == 0),
"TransitionImageLayout: invalid dstAccess/dstStage pair (dstAccess=0x%x, dstStage=0x%x, oldLayout=%d, newLayout=%d)",
static_cast<Uint32>(dstAccessMask), static_cast<Uint32>(dstStageMask), static_cast<Int>(trackedLayout),
static_cast<Int>(newLayout));
if (trackedLayout == newLayout) {
return true;
}
VkImageMemoryBarrier barrier{};
barrier.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
barrier.srcAccessMask = srcAccessMask;
barrier.dstAccessMask = dstAccessMask;
barrier.oldLayout = trackedLayout;
barrier.newLayout = newLayout;
barrier.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
barrier.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
barrier.image = image;
barrier.subresourceRange.aspectMask = aspectMask;
barrier.subresourceRange.baseMipLevel = baseMipLevel;
barrier.subresourceRange.levelCount = levelCount;
barrier.subresourceRange.baseArrayLayer = 0;
barrier.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, srcStageMask, dstStageMask, 0, 0, nullptr, 0, nullptr, 1, &barrier);
trackedLayout = newLayout;
return true;
}
SizeT VkTextureManager::CollectGarbage() {
m_gcCounter++;
if (m_gcCounter != 0) {
return 0;
}
SizeT count = 0;
for (const auto& [raw, weak]: m_aliveObjects) {
if (weak.expired()) {
count++;
m_textureResources.erase(raw);
m_aliveObjects.erase(raw);
}
}
return count;
}
Bool VkTextureManager::SyncTexture(MG_State::GLState::ITextureObject &texture,
TextureResource &outResource) {
TextureUploadTarget uploadTarget = TextureUploadTarget::Unknown;
IntVec3 texelSize{0, 0, 0};
SizeT byteSize = 0;
Uint32 mipLevelCount = 0;
if (!CheckMipmapCompleteness(texture, uploadTarget, texelSize, byteSize, mipLevelCount)) {
MGLOG_D("%s: mipmap not complete", __func__);
return false;
}
auto* mipTexture = dynamic_cast<MG_State::GLState::TextureObjectMipmap*>(&texture);
if (!mipTexture) {
MGLOG_D("%s: not TextureObjectMipmap", __func__);
return false;
}
if (!SyncTextureResource(texture, uploadTarget, texelSize, byteSize, mipLevelCount, outResource)) {
MGLOG_D("%s: SyncTextureResource failed", __func__);
return false;
}
if (!SyncTextureViews(texture, outResource)) {
MGLOG_D("%s: SyncTextureViews failed", __func__);
return false;
}
Bool hasDirtyMipLevel = false;
for (Uint32 level = 0; level < mipLevelCount; ++level) {
if (mipTexture->IsStorageDirty(uploadTarget, level)) {
hasDirtyMipLevel = true;
break;
}
}
if (!hasDirtyMipLevel) {
return true;
}
if (!UploadDirtyMipLevels(*mipTexture, uploadTarget, outResource)) {
MGLOG_D("%s: UploadDirtyMipLevels failed", __func__);
return false;
}
return true;
}
Bool VkTextureManager::SyncTextureResource(const MG_State::GLState::ITextureObject &texture,
TextureUploadTarget uploadTarget,
const IntVec3 &texelSize, SizeT byteSize, Uint32 mipLevels,
TextureResource &resource) {
const VkFormat format = MG_Util::ConvertTextureInternalFormatToVkEnum(texture.GetFormat());
if (format == VK_FORMAT_UNDEFINED) {
MGLOG_D("%s: format == VK_FORMAT_UNDEFINED", __func__);
return false;
}
if (texelSize.x() <= 0 || texelSize.y() <= 0 /*|| byteSize == 0*/) {
MGLOG_D("%s: texelSize or byteSize is zero", __func__);
return false;
}
if (mipLevels == 0) {
MGLOG_D("%s: no mip levels", __func__);
return false;
}
if (uploadTarget != TextureUploadTarget::Texture2D) {
MGLOG_D("%s: not Texture2D, unsupported", __func__);
return false;
}
const Bool compatible = resource.image != VK_NULL_HANDLE && resource.format == format &&
resource.extent.width == static_cast<Uint32>(texelSize.x()) &&
resource.extent.height == static_cast<Uint32>(texelSize.y()) &&
resource.mipLevels == mipLevels;
if (compatible) {
if (resource.perMipViews.size() != mipLevels) {
resource.perMipViews.resize(mipLevels, VK_NULL_HANDLE);
}
return true;
}
resource.Reset();
auto aspect = GetAspectMaskForFormat(format);
VkImageCreateInfo imageInfo{};
imageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
imageInfo.imageType = VK_IMAGE_TYPE_2D;
imageInfo.extent.width = static_cast<Uint32>(texelSize.x());
imageInfo.extent.height = static_cast<Uint32>(texelSize.y());
imageInfo.extent.depth = 1;
imageInfo.mipLevels = mipLevels;
imageInfo.arrayLayers = 1;
imageInfo.format = format;
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
imageInfo.usage =
VK_IMAGE_USAGE_TRANSFER_DST_BIT | VK_IMAGE_USAGE_SAMPLED_BIT | VK_IMAGE_USAGE_TRANSFER_SRC_BIT |
((aspect & VK_IMAGE_ASPECT_COLOR_BIT) ?
VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT : 0) |
((aspect & VK_IMAGE_ASPECT_DEPTH_BIT || aspect & VK_IMAGE_ASPECT_STENCIL_BIT) ?
VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT : 0);
imageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VmaAllocationCreateInfo allocationInfo{};
allocationInfo.usage = VMA_MEMORY_USAGE_AUTO_PREFER_DEVICE;
allocationInfo.requiredFlags = VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT;
VK_VERIFY(vmaCreateImage(m_allocator, &imageInfo, &allocationInfo, &resource.image, &resource.allocation, nullptr),
"vmaCreateImage(texture)");
resource.layout = VK_IMAGE_LAYOUT_UNDEFINED;
resource.extent = {static_cast<Uint32>(texelSize.x()), static_cast<Uint32>(texelSize.y())};
resource.mipLevels = mipLevels;
resource.perMipViews.assign(mipLevels, VK_NULL_HANDLE);
resource.sampledBaseMipLevel = 0;
resource.sampledLevelCount = mipLevels;
resource.format = format;
resource.aspect = aspect;
resource.syncedTextureParamsVersion = 0;
return true;
}
Bool VkTextureManager::SyncTextureViews(const MG_State::GLState::ITextureObject& texture, TextureResource& resource) {
MOBILEGL_ASSERT(resource.image != VK_NULL_HANDLE, "SyncTextureViews: image == VK_NULL_HANDLE");
Uint32 baseMipLevel = 0;
Uint32 levelCount = 1;
ResolveViewMipRange(texture, resource.mipLevels, baseMipLevel, levelCount);
const Bool needsRecreate =
resource.fullView == VK_NULL_HANDLE ||
resource.sampledBaseMipLevel != baseMipLevel ||
resource.sampledLevelCount != levelCount ||
resource.syncedTextureParamsVersion != texture.GetTextureParamsVersion();
if (!needsRecreate) {
return true;
}
if (resource.fullView != VK_NULL_HANDLE) {
vkDestroyImageView(m_device, resource.fullView, nullptr);
resource.fullView = VK_NULL_HANDLE;
}
resource.fullView = CreateImageView(resource.image, resource.format, resource.aspect, baseMipLevel, levelCount);
if (resource.fullView == VK_NULL_HANDLE) {
return false;
}
resource.sampledBaseMipLevel = baseMipLevel;
resource.sampledLevelCount = levelCount;
resource.syncedTextureParamsVersion = texture.GetTextureParamsVersion();
return true;
}
VkImageView VkTextureManager::CreateImageView(VkImage image, VkFormat format, VkImageAspectFlags aspect,
Uint32 baseMipLevel, Uint32 levelCount) const {
VkImageViewCreateInfo viewInfo{};
viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
viewInfo.image = image;
viewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
viewInfo.format = format;
viewInfo.subresourceRange.aspectMask = aspect;
viewInfo.subresourceRange.baseMipLevel = baseMipLevel;
viewInfo.subresourceRange.levelCount = levelCount;
viewInfo.subresourceRange.baseArrayLayer = 0;
viewInfo.subresourceRange.layerCount = 1;
VkImageView view = VK_NULL_HANDLE;
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &view), "vkCreateImageView(texture)");
return view;
}
Bool VkTextureManager::UploadDirtyMipLevels(MG_State::GLState::TextureObjectMipmap &mipmapTexture,
TextureUploadTarget uploadTarget,
TextureResource &outResource) {
struct UploadItem {
Uint32 level = 0;
SizeT byteSize = 0;
IntVec3 texelSize = {0, 0, 0};
const void* source = nullptr;
VkDeviceSize offset = 0;
};
Vector<UploadItem> uploadItems;
uploadItems.reserve(outResource.mipLevels);
VkDeviceSize stagingSize = 0;
for (Uint32 level = 0; level < outResource.mipLevels; ++level) {
if (!mipmapTexture.IsStorageDirty(uploadTarget, level)) {
continue;
}
const auto texelSize = mipmapTexture.GetMipmapTexelSize(uploadTarget, level);
const auto byteSize = mipmapTexture.GetMipmapByteSize(uploadTarget, level);
if (texelSize.x() <= 0 || texelSize.y() <= 0 || byteSize == 0) {
mipmapTexture.MarkStorageDirty(uploadTarget, level, false);
continue;
}
const void* source = mipmapTexture.MapMipmapData(uploadTarget, level);
if (source == nullptr) {
MGLOG_D("%s: MapmipmapData failed at level %d", __func__, level);
return false;
}
uploadItems.push_back({level, byteSize, texelSize, source, stagingSize});
stagingSize += static_cast<VkDeviceSize>(byteSize);
}
if (uploadItems.empty()) {
return true;
}
VkBuffer stagingBuffer = VK_NULL_HANDLE;
VmaAllocation stagingAllocation = nullptr;
VkBufferCreateInfo bufferInfo{};
bufferInfo.sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO;
bufferInfo.size = stagingSize;
bufferInfo.usage = VK_BUFFER_USAGE_TRANSFER_SRC_BIT;
bufferInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VmaAllocationCreateInfo stagingAllocationInfo{};
stagingAllocationInfo.usage = VMA_MEMORY_USAGE_AUTO_PREFER_HOST;
stagingAllocationInfo.flags = VMA_ALLOCATION_CREATE_HOST_ACCESS_SEQUENTIAL_WRITE_BIT;
stagingAllocationInfo.requiredFlags = VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT | VK_MEMORY_PROPERTY_HOST_COHERENT_BIT;
VK_VERIFY(vmaCreateBuffer(m_allocator, &bufferInfo, &stagingAllocationInfo, &stagingBuffer, &stagingAllocation, nullptr),
"vmaCreateBuffer(staging texture)");
void* mapped = nullptr;
VK_VERIFY(vmaMapMemory(m_allocator, stagingAllocation, &mapped), "vmaMapMemory(staging texture)");
for (const auto& item : uploadItems) {
std::memcpy(static_cast<Uint8*>(mapped) + item.offset, item.source, item.byteSize);
}
vmaUnmapMemory(m_allocator, stagingAllocation);
VkCommandBufferAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
allocInfo.commandPool = m_commandPool;
allocInfo.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
allocInfo.commandBufferCount = 1;
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
VK_VERIFY(vkAllocateCommandBuffers(m_device, &allocInfo, &commandBuffer), "vkAllocateCommandBuffers(texture)");
VkCommandBufferBeginInfo beginInfo{};
beginInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO;
beginInfo.flags = VK_COMMAND_BUFFER_USAGE_ONE_TIME_SUBMIT_BIT;
VK_VERIFY(vkBeginCommandBuffer(commandBuffer, &beginInfo), "vkBeginCommandBuffer(texture)");
const VkImageAspectFlags aspectMask = GetAspectMaskForFormat(outResource.format);
Bool ok = TransitionImageLayout(commandBuffer, outResource.image,
outResource.layout,
VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL,
outResource.layout == VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL ?
kGraphicsSampledReadStages :
VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT,
VK_PIPELINE_STAGE_TRANSFER_BIT,
outResource.layout == VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL ? VK_ACCESS_SHADER_READ_BIT : 0,
VK_ACCESS_TRANSFER_WRITE_BIT,
aspectMask, 0, outResource.mipLevels);
MOBILEGL_ASSERT(ok, "TransitionImageLayout to VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL failed");
for (const auto& item : uploadItems) {
VkBufferImageCopy copy{};
copy.bufferOffset = item.offset;
copy.bufferRowLength = 0;
copy.bufferImageHeight = 0;
copy.imageSubresource.aspectMask = aspectMask;
copy.imageSubresource.mipLevel = item.level;
copy.imageSubresource.baseArrayLayer = 0;
copy.imageSubresource.layerCount = 1;
copy.imageOffset = {0, 0, 0};
copy.imageExtent = {static_cast<Uint32>(item.texelSize.x()), static_cast<Uint32>(item.texelSize.y()), 1};
vkCmdCopyBufferToImage(commandBuffer, stagingBuffer, outResource.image, VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL,
1, &copy);
}
ok = TransitionImageLayout(commandBuffer, outResource.image,
outResource.layout,
VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL,
VK_PIPELINE_STAGE_TRANSFER_BIT,
kGraphicsSampledReadStages,
VK_ACCESS_TRANSFER_WRITE_BIT,
VK_ACCESS_SHADER_READ_BIT,
aspectMask, 0, outResource.mipLevels);
MOBILEGL_ASSERT(ok, "TransitionImageLayout to VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL failed");
outResource.layout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
VK_VERIFY(vkEndCommandBuffer(commandBuffer), "vkEndCommandBuffer(texture)");
VkSubmitInfo submitInfo{};
submitInfo.sType = VK_STRUCTURE_TYPE_SUBMIT_INFO;
submitInfo.commandBufferCount = 1;
submitInfo.pCommandBuffers = &commandBuffer;
VkFenceCreateInfo fenceInfo{};
fenceInfo.sType = VK_STRUCTURE_TYPE_FENCE_CREATE_INFO;
VkFence uploadFence = VK_NULL_HANDLE;
VK_VERIFY(vkCreateFence(m_device, &fenceInfo, nullptr, &uploadFence), "vkCreateFence(texture upload)");
VK_VERIFY(vkQueueSubmit(m_graphicsQueue, 1, &submitInfo, uploadFence), "vkQueueSubmit(texture)");
VK_VERIFY(vkWaitForFences(m_device, 1, &uploadFence, VK_TRUE, UINT64_MAX), "vkWaitForFences(texture upload)");
vkDestroyFence(m_device, uploadFence, nullptr);
vkFreeCommandBuffers(m_device, m_commandPool, 1, &commandBuffer);
vmaDestroyBuffer(m_allocator, stagingBuffer, stagingAllocation);
if (!ok) {
MGLOG_D("%s: texture upload cmd failed", __func__);
return false;
}
for (const auto& item : uploadItems) {
mipmapTexture.MarkStorageDirty(uploadTarget, item.level, false);
}
outResource.layout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
return true;
}
Bool VkTextureManager::CheckMipmapCompleteness(const MG_State::GLState::ITextureObject& texture,
TextureUploadTarget& outTarget,
IntVec3& outTexelSize,
SizeT& outByteSize,
Uint32& outMipLevelCount) {
const auto* mipTexture = dynamic_cast<const MG_State::GLState::TextureObjectMipmap*>(&texture);
if (!mipTexture) {
MGLOG_D("%s: not TextureObjectMipmap", __func__);
return false;
}
const auto& targets = texture.GetUploadTargets();
if (targets.empty()) {
MGLOG_D("%s: upload target empty", __func__);
return false;
}
for (const auto target : targets) {
const Uint32 mipLevelCount = GetUploadMipLevelCount(*mipTexture, target);
if (mipLevelCount == 0) {
MGLOG_D("%s: mipLevelCount == 0", __func__);
continue;
}
// Backing VkImage allocation still uses storage mip 0 as the physical image extent.
// GL_TEXTURE_BASE_LEVEL / MAX_LEVEL are applied later when building the sampled view.
const auto storageBaseTexelSize = mipTexture->GetMipmapTexelSize(target, 0);
const auto storageBaseByteSize = mipTexture->GetMipmapByteSize(target, 0);
if (storageBaseTexelSize.x() <= 0 || storageBaseTexelSize.y() <= 0 /*|| storageBaseByteSize == 0*/) {
continue;
}
outTarget = target;
outTexelSize = storageBaseTexelSize;
outByteSize = storageBaseByteSize;
outMipLevelCount = mipLevelCount;
return true;
}
MGLOG_D("%s: no valid target or mipmap", __func__);
return false;
}
Uint32 VkTextureManager::GetUploadMipLevelCount(const MG_State::GLState::TextureObjectMipmap& texture,
TextureUploadTarget target) {
const Uint totalLevelCount = texture.GetMipmapLevelCount();
if (totalLevelCount == 0) {
return 0;
}
Uint32 validLevelCount = 0;
for (Uint level = 0; level < totalLevelCount; ++level) {
const auto size = texture.GetMipmapTexelSize(target, level);
const auto byteSize = texture.GetMipmapByteSize(target, level);
if (size.x() <= 0 || size.y() <= 0 /*|| byteSize == 0*/) {
break;
}
++validLevelCount;
}
return validLevelCount;
}
void VkTextureManager::ResolveViewMipRange(const MG_State::GLState::ITextureObject& texture, Uint32 mipLevels,
Uint32& outBaseMipLevel, Uint32& outLevelCount) {
MOBILEGL_ASSERT(mipLevels > 0, "ResolveViewMipRange: mipLevels must be > 0");
const auto& levelRange = texture.GetLevelRange();
const Uint32 maxAvailableMipLevel = mipLevels - 1;
const Uint32 requestedBaseMipLevel = std::min(static_cast<Uint32>(levelRange.x()), maxAvailableMipLevel);
Uint32 requestedMaxMipLevel = std::min(static_cast<Uint32>(levelRange.y()), maxAvailableMipLevel);
if (requestedMaxMipLevel < requestedBaseMipLevel) {
requestedMaxMipLevel = requestedBaseMipLevel;
}
outBaseMipLevel = requestedBaseMipLevel;
outLevelCount = requestedMaxMipLevel - requestedBaseMipLevel + 1;
}
VkImageAspectFlags VkTextureManager::GetAspectMaskForFormat(VkFormat format) {
switch (format) {
case VK_FORMAT_D16_UNORM:
case VK_FORMAT_X8_D24_UNORM_PACK32:
case VK_FORMAT_D32_SFLOAT:
return VK_IMAGE_ASPECT_DEPTH_BIT;
case VK_FORMAT_S8_UINT:
return VK_IMAGE_ASPECT_STENCIL_BIT;
case VK_FORMAT_D16_UNORM_S8_UINT:
case VK_FORMAT_D24_UNORM_S8_UINT:
case VK_FORMAT_D32_SFLOAT_S8_UINT:
return VK_IMAGE_ASPECT_DEPTH_BIT | VK_IMAGE_ASPECT_STENCIL_BIT;
default:
return VK_IMAGE_ASPECT_COLOR_BIT;
}
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -0,0 +1,146 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include <Includes.h>
#include <MG_State/GLState/TextureState/TextureObject.h>
#include <vk_mem_alloc.h>
namespace MobileGL::MG_State::GLState {
class ITextureObject;
}
namespace MobileGL::MG_Backend::DirectVulkan {
class VkTextureManager {
public:
struct InitInfo {
VkDevice device = VK_NULL_HANDLE;
VkPhysicalDevice physicalDevice = VK_NULL_HANDLE;
VmaAllocator allocator = nullptr;
VkCommandPool commandPool = VK_NULL_HANDLE;
VkQueue graphicsQueue = VK_NULL_HANDLE;
};
struct TextureResource {
VkImage image = VK_NULL_HANDLE;
VmaAllocation allocation = nullptr;
VkImageView fullView = VK_NULL_HANDLE;
Vector<VkImageView> perMipViews;
VkImageLayout layout = VK_IMAGE_LAYOUT_UNDEFINED;
VkExtent2D extent = {0, 0};
Uint32 mipLevels = 1;
Uint32 sampledBaseMipLevel = 0;
Uint32 sampledLevelCount = 1;
VkFormat format = VK_FORMAT_UNDEFINED;
VkImageAspectFlags aspect = VK_IMAGE_ASPECT_NONE;
Uint16 syncedTextureParamsVersion = 0;
TextureResource() = default;
TextureResource(const TextureResource&) = delete;
TextureResource(TextureResource&& that) noexcept {
std::swap(this->image, that.image);
std::swap(this->allocation, that.allocation);
std::swap(this->fullView, that.fullView);
std::swap(this->perMipViews, that.perMipViews);
std::swap(this->layout, that.layout);
std::swap(this->extent, that.extent);
std::swap(this->mipLevels, that.mipLevels);
std::swap(this->sampledBaseMipLevel, that.sampledBaseMipLevel);
std::swap(this->sampledLevelCount, that.sampledLevelCount);
std::swap(this->format, that.format);
std::swap(this->aspect, that.aspect);
std::swap(this->syncedTextureParamsVersion, that.syncedTextureParamsVersion);
}
void Reset() {
if (fullView != VK_NULL_HANDLE) {
vkDestroyImageView(s_device, fullView, nullptr);
}
for (const auto attachmentView : perMipViews) {
if (attachmentView != VK_NULL_HANDLE) {
vkDestroyImageView(s_device, attachmentView, nullptr);
}
}
if (image != VK_NULL_HANDLE && allocation != nullptr) {
vmaDestroyImage(s_allocator, image, allocation);
}
fullView = VK_NULL_HANDLE;
perMipViews.clear();
image = VK_NULL_HANDLE;
allocation = nullptr;
layout = VK_IMAGE_LAYOUT_UNDEFINED;
extent = {0, 0};
mipLevels = 1;
sampledBaseMipLevel = 0;
sampledLevelCount = 1;
format = VK_FORMAT_UNDEFINED;
aspect = VK_IMAGE_ASPECT_NONE;
syncedTextureParamsVersion = 0;
}
~TextureResource() {
Reset();
}
static inline VkDevice s_device = VK_NULL_HANDLE;
static inline VmaAllocator s_allocator = VK_NULL_HANDLE;
};
Bool Initialize(const InitInfo& initInfo);
void Shutdown();
TextureResource* SyncTextureAndGetDescriptor(
MG_State::GLState::ITextureObject& texture);
VkImageView GetOrCreateViewAtMipLevel(MG_State::GLState::ITextureObject& texture, Uint32 mipLevel);
void UpdateTrackedImageLayout(MG_State::GLState::ITextureObject* texture, VkImageLayout newLayout);
Bool TransitionTextureForSampling(VkCommandBuffer commandBuffer, MG_State::GLState::ITextureObject& texture);
static Bool TransitionImageLayout(VkCommandBuffer commandBuffer, VkImage image, VkImageLayout& trackedLayout,
VkImageLayout newLayout, VkPipelineStageFlags srcStageMask,
VkPipelineStageFlags dstStageMask, VkAccessFlags srcAccessMask,
VkAccessFlags dstAccessMask, VkImageAspectFlags aspectMask,
Uint32 baseMipLevel = 0, Uint32 levelCount = 1);
SizeT CollectGarbage();
private:
Bool SyncTexture(MG_State::GLState::ITextureObject &texture,
TextureResource &outResource);
Bool SyncTextureResource(const MG_State::GLState::ITextureObject &texture,
TextureUploadTarget uploadTarget,
const IntVec3 &texelSize, SizeT byteSize, Uint32 mipLevels,
TextureResource &resource);
Bool SyncTextureViews(const MG_State::GLState::ITextureObject& texture, TextureResource& resource);
VkImageView CreateImageView(VkImage image, VkFormat format, VkImageAspectFlags aspect,
Uint32 baseMipLevel, Uint32 levelCount) const;
Bool UploadDirtyMipLevels(MG_State::GLState::TextureObjectMipmap &mipmapTexture,
TextureUploadTarget uploadTarget,
TextureResource &outResource);
static Bool CheckMipmapCompleteness(const MG_State::GLState::ITextureObject& texture,
TextureUploadTarget& outTarget,
IntVec3& outTexelSize,
SizeT& outByteSize,
Uint32& outMipLevelCount);
static Uint32 GetUploadMipLevelCount(const MG_State::GLState::TextureObjectMipmap& texture, TextureUploadTarget target);
static void ResolveViewMipRange(const MG_State::GLState::ITextureObject& texture, Uint32 mipLevels,
Uint32& outBaseMipLevel, Uint32& outLevelCount);
static VkImageAspectFlags GetAspectMaskForFormat(VkFormat format);
VkDevice m_device = VK_NULL_HANDLE;
VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
VmaAllocator m_allocator = nullptr;
VkCommandPool m_commandPool = VK_NULL_HANDLE;
VkQueue m_graphicsQueue = VK_NULL_HANDLE;
Uint8 m_gcCounter = 0;
UnorderedMap<MG_State::GLState::ITextureObject*, WeakPtr<MG_State::GLState::ITextureObject>> m_aliveObjects;
UnorderedMap<MG_State::GLState::ITextureObject*, TextureResource> m_textureResources;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,644 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureSamplerManager.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 "VkTextureSamplerManager.h"
#include "MG_State/GLState/Core.h"
namespace MobileGL::MG_Backend::DirectVulkan {
namespace {
constexpr Uint64 BuildSamplerKey(Uint externalIndex, Uint16 version) {
return (static_cast<Uint64>(externalIndex) << 16) | static_cast<Uint64>(version);
}
} // namespace
Bool VkTextureSamplerManager::Initialize(const InitInfo& initInfo) {
Shutdown();
m_device = initInfo.device;
m_physicalDevice = initInfo.physicalDevice;
m_commandPool = initInfo.commandPool;
m_graphicsQueue = initInfo.graphicsQueue;
if (m_device == VK_NULL_HANDLE || m_physicalDevice == VK_NULL_HANDLE || m_commandPool == VK_NULL_HANDLE ||
m_graphicsQueue == VK_NULL_HANDLE) {
MGLOG_E("VkTextureSamplerManager::Initialize failed: invalid Vulkan handles");
Shutdown();
return false;
}
if (!UploadFallbackTexture()) {
MGLOG_E("VkTextureSamplerManager::Initialize failed: fallback texture creation failed");
Shutdown();
return false;
}
return true;
}
void VkTextureSamplerManager::Shutdown() {
for (auto& [_, resource] : m_textureResources) {
DestroyTextureResource(resource);
}
m_textureResources.clear();
for (auto& [_, sampler] : m_samplers) {
if (m_device != VK_NULL_HANDLE && sampler.handle != VK_NULL_HANDLE) {
vkDestroySampler(m_device, sampler.handle, nullptr);
}
sampler.handle = VK_NULL_HANDLE;
}
m_samplers.clear();
if (m_device != VK_NULL_HANDLE && m_fallbackSampler != VK_NULL_HANDLE) {
vkDestroySampler(m_device, m_fallbackSampler, nullptr);
}
if (m_device != VK_NULL_HANDLE && m_fallbackImageView != VK_NULL_HANDLE) {
vkDestroyImageView(m_device, m_fallbackImageView, nullptr);
}
if (m_device != VK_NULL_HANDLE && m_fallbackImage != VK_NULL_HANDLE) {
vkDestroyImage(m_device, m_fallbackImage, nullptr);
}
if (m_device != VK_NULL_HANDLE && m_fallbackImageMemory != VK_NULL_HANDLE) {
vkFreeMemory(m_device, m_fallbackImageMemory, nullptr);
}
m_fallbackSampler = VK_NULL_HANDLE;
m_fallbackImageView = VK_NULL_HANDLE;
m_fallbackImage = VK_NULL_HANDLE;
m_fallbackImageMemory = VK_NULL_HANDLE;
m_device = VK_NULL_HANDLE;
m_physicalDevice = VK_NULL_HANDLE;
m_commandPool = VK_NULL_HANDLE;
m_graphicsQueue = VK_NULL_HANDLE;
}
Bool VkTextureSamplerManager::GetFallbackDescriptor(VkDescriptorImageInfo& outImageInfo) const {
if (m_fallbackSampler == VK_NULL_HANDLE || m_fallbackImageView == VK_NULL_HANDLE) {
return false;
}
outImageInfo.sampler = m_fallbackSampler;
outImageInfo.imageView = m_fallbackImageView;
outImageInfo.imageLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
return true;
}
Bool VkTextureSamplerManager::SyncTextureAndGetDescriptor(const MG_State::GLState::ITextureObject& texture,
const MG_State::GLState::SamplerObject* samplerOverride,
VkDescriptorImageInfo& outImageInfo) {
if (m_device == VK_NULL_HANDLE) {
return GetFallbackDescriptor(outImageInfo);
}
auto it = m_textureResources.find(texture.GetExternalIndex());
if (it == m_textureResources.end()) {
TextureResource initial{};
initial.textureExternalIndex = texture.GetExternalIndex();
auto [insertIt, _] = m_textureResources.emplace(texture.GetExternalIndex(), initial);
it = insertIt;
}
if (!EnsureTextureSynced(it->second, texture)) {
return GetFallbackDescriptor(outImageInfo);
}
const MG_State::GLState::SamplerObject* samplerToUse = samplerOverride;
if (!samplerToUse) {
auto textureSampler = texture.GetSamplerObject();
if (textureSampler) {
samplerToUse = textureSampler.get();
}
}
VkSampler sampler = m_fallbackSampler;
if (samplerToUse) {
sampler = GetOrCreateSampler(*samplerToUse);
}
if (sampler == VK_NULL_HANDLE) {
sampler = m_fallbackSampler;
}
if (it->second.view == VK_NULL_HANDLE || sampler == VK_NULL_HANDLE) {
return GetFallbackDescriptor(outImageInfo);
}
outImageInfo.sampler = sampler;
outImageInfo.imageView = it->second.view;
outImageInfo.imageLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
return true;
}
Bool VkTextureSamplerManager::EnsureTextureSynced(TextureResource& resource,
const MG_State::GLState::ITextureObject& texture) {
TextureUploadTarget level0Target = TextureUploadTarget::Unknown;
IntVec3 texelSize{0, 0, 0};
SizeT byteSize = 0;
if (!ResolveLevel0(texture, level0Target, texelSize, byteSize)) {
return false;
}
if (!EnsureTextureResource(resource, texture, level0Target, texelSize, byteSize)) {
return false;
}
const auto* mipTexture = dynamic_cast<const MG_State::GLState::TextureObjectMipmap*>(&texture);
if (!mipTexture) {
return false;
}
if (!mipTexture->IsStorageDirty(level0Target, 0)) {
return true;
}
if (!UploadLevel0(resource, *mipTexture, level0Target, byteSize)) {
return false;
}
auto& mutableTexture = const_cast<MG_State::GLState::TextureObjectMipmap&>(*mipTexture);
mutableTexture.MarkStorageDirty(level0Target, 0, false);
return true;
}
Bool VkTextureSamplerManager::EnsureTextureResource(TextureResource& resource,
const MG_State::GLState::ITextureObject& texture,
TextureUploadTarget level0Target, const IntVec3& texelSize,
SizeT byteSize) {
const VkFormat format = ResolveTextureFormat(texture.GetFormat());
if (format == VK_FORMAT_UNDEFINED) {
return false;
}
if (texelSize.x() <= 0 || texelSize.y() <= 0 || byteSize == 0) {
return false;
}
if (level0Target != TextureUploadTarget::Texture2D) {
return false;
}
const Bool compatible = resource.image != VK_NULL_HANDLE && resource.format == format &&
resource.extent.width == static_cast<Uint32>(texelSize.x()) &&
resource.extent.height == static_cast<Uint32>(texelSize.y());
if (compatible) {
return true;
}
DestroyTextureResource(resource);
VkImageCreateInfo imageInfo{};
imageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
imageInfo.imageType = VK_IMAGE_TYPE_2D;
imageInfo.extent.width = static_cast<Uint32>(texelSize.x());
imageInfo.extent.height = static_cast<Uint32>(texelSize.y());
imageInfo.extent.depth = 1;
imageInfo.mipLevels = 1;
imageInfo.arrayLayers = 1;
imageInfo.format = format;
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
imageInfo.usage = VK_IMAGE_USAGE_TRANSFER_DST_BIT | VK_IMAGE_USAGE_SAMPLED_BIT | VK_IMAGE_USAGE_TRANSFER_SRC_BIT;
imageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateImage(m_device, &imageInfo, nullptr, &resource.image), "vkCreateImage(texture)");
VkMemoryRequirements requirements{};
vkGetImageMemoryRequirements(m_device, resource.image, &requirements);
VkMemoryAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
allocInfo.allocationSize = requirements.size;
allocInfo.memoryTypeIndex = FindMemoryType(requirements.memoryTypeBits, VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &allocInfo, nullptr, &resource.memory), "vkAllocateMemory(texture)");
VK_VERIFY(vkBindImageMemory(m_device, resource.image, resource.memory, 0), "vkBindImageMemory(texture)");
VkImageViewCreateInfo viewInfo{};
viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
viewInfo.image = resource.image;
viewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
viewInfo.format = format;
viewInfo.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
viewInfo.subresourceRange.baseMipLevel = 0;
viewInfo.subresourceRange.levelCount = 1;
viewInfo.subresourceRange.baseArrayLayer = 0;
viewInfo.subresourceRange.layerCount = 1;
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &resource.view), "vkCreateImageView(texture)");
resource.layout = VK_IMAGE_LAYOUT_UNDEFINED;
resource.extent = {static_cast<Uint32>(texelSize.x()), static_cast<Uint32>(texelSize.y())};
resource.format = format;
resource.textureExternalIndex = texture.GetExternalIndex();
return true;
}
Bool VkTextureSamplerManager::UploadLevel0(TextureResource& resource,
const MG_State::GLState::TextureObjectMipmap& mipmapTexture,
TextureUploadTarget level0Target, SizeT byteSize) {
auto& mutableTexture = const_cast<MG_State::GLState::TextureObjectMipmap&>(mipmapTexture);
const void* source = mutableTexture.MapMipmapData(level0Target, 0);
if (source == nullptr || byteSize == 0) {
return false;
}
VkBuffer stagingBuffer = VK_NULL_HANDLE;
VkDeviceMemory stagingMemory = VK_NULL_HANDLE;
VkBufferCreateInfo bufferInfo{};
bufferInfo.sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO;
bufferInfo.size = byteSize;
bufferInfo.usage = VK_BUFFER_USAGE_TRANSFER_SRC_BIT;
bufferInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateBuffer(m_device, &bufferInfo, nullptr, &stagingBuffer), "vkCreateBuffer(staging texture)");
VkMemoryRequirements requirements{};
vkGetBufferMemoryRequirements(m_device, stagingBuffer, &requirements);
VkMemoryAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
allocInfo.allocationSize = requirements.size;
allocInfo.memoryTypeIndex =
FindMemoryType(requirements.memoryTypeBits,
VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT | VK_MEMORY_PROPERTY_HOST_COHERENT_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &allocInfo, nullptr, &stagingMemory), "vkAllocateMemory(staging texture)");
VK_VERIFY(vkBindBufferMemory(m_device, stagingBuffer, stagingMemory, 0), "vkBindBufferMemory(staging texture)");
void* mapped = nullptr;
VK_VERIFY(vkMapMemory(m_device, stagingMemory, 0, byteSize, 0, &mapped), "vkMapMemory(staging texture)");
std::memcpy(mapped, source, byteSize);
vkUnmapMemory(m_device, stagingMemory);
const Bool ok = ExecuteImmediate([&](VkCommandBuffer commandBuffer) {
VkImageMemoryBarrier toTransferDst{};
toTransferDst.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
toTransferDst.srcAccessMask = 0;
toTransferDst.dstAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
toTransferDst.oldLayout = resource.layout;
toTransferDst.newLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
toTransferDst.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toTransferDst.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toTransferDst.image = resource.image;
toTransferDst.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
toTransferDst.subresourceRange.baseMipLevel = 0;
toTransferDst.subresourceRange.levelCount = 1;
toTransferDst.subresourceRange.baseArrayLayer = 0;
toTransferDst.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0, 0,
nullptr, 0, nullptr, 1, &toTransferDst);
VkBufferImageCopy copy{};
copy.bufferOffset = 0;
copy.bufferRowLength = 0;
copy.bufferImageHeight = 0;
copy.imageSubresource.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
copy.imageSubresource.mipLevel = 0;
copy.imageSubresource.baseArrayLayer = 0;
copy.imageSubresource.layerCount = 1;
copy.imageOffset = {0, 0, 0};
copy.imageExtent = {resource.extent.width, resource.extent.height, 1};
vkCmdCopyBufferToImage(commandBuffer, stagingBuffer, resource.image, VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL, 1,
&copy);
VkImageMemoryBarrier toSampled{};
toSampled.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
toSampled.srcAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
toSampled.dstAccessMask = VK_ACCESS_SHADER_READ_BIT;
toSampled.oldLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
toSampled.newLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
toSampled.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toSampled.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toSampled.image = resource.image;
toSampled.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
toSampled.subresourceRange.baseMipLevel = 0;
toSampled.subresourceRange.levelCount = 1;
toSampled.subresourceRange.baseArrayLayer = 0;
toSampled.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, VK_PIPELINE_STAGE_TRANSFER_BIT, VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT, 0,
0, nullptr, 0, nullptr, 1, &toSampled);
});
vkDestroyBuffer(m_device, stagingBuffer, nullptr);
vkFreeMemory(m_device, stagingMemory, nullptr);
if (!ok) {
return false;
}
resource.layout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
return true;
}
Bool VkTextureSamplerManager::ExecuteImmediate(const std::function<void(VkCommandBuffer)>& recorder) const {
VkCommandBufferAllocateInfo allocInfo{};
allocInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
allocInfo.commandPool = m_commandPool;
allocInfo.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
allocInfo.commandBufferCount = 1;
VkCommandBuffer commandBuffer = VK_NULL_HANDLE;
VK_VERIFY(vkAllocateCommandBuffers(m_device, &allocInfo, &commandBuffer), "vkAllocateCommandBuffers(texture)");
VkCommandBufferBeginInfo beginInfo{};
beginInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO;
beginInfo.flags = VK_COMMAND_BUFFER_USAGE_ONE_TIME_SUBMIT_BIT;
VK_VERIFY(vkBeginCommandBuffer(commandBuffer, &beginInfo), "vkBeginCommandBuffer(texture)");
recorder(commandBuffer);
VK_VERIFY(vkEndCommandBuffer(commandBuffer), "vkEndCommandBuffer(texture)");
VkSubmitInfo submitInfo{};
submitInfo.sType = VK_STRUCTURE_TYPE_SUBMIT_INFO;
submitInfo.commandBufferCount = 1;
submitInfo.pCommandBuffers = &commandBuffer;
VK_VERIFY(vkQueueSubmit(m_graphicsQueue, 1, &submitInfo, VK_NULL_HANDLE), "vkQueueSubmit(texture)");
VK_VERIFY(vkQueueWaitIdle(m_graphicsQueue), "vkQueueWaitIdle(texture)");
vkFreeCommandBuffers(m_device, m_commandPool, 1, &commandBuffer);
return true;
}
void VkTextureSamplerManager::DestroyTextureResource(TextureResource& resource) const {
if (m_device != VK_NULL_HANDLE && resource.view != VK_NULL_HANDLE) {
vkDestroyImageView(m_device, resource.view, nullptr);
}
if (m_device != VK_NULL_HANDLE && resource.image != VK_NULL_HANDLE) {
vkDestroyImage(m_device, resource.image, nullptr);
}
if (m_device != VK_NULL_HANDLE && resource.memory != VK_NULL_HANDLE) {
vkFreeMemory(m_device, resource.memory, nullptr);
}
resource.view = VK_NULL_HANDLE;
resource.image = VK_NULL_HANDLE;
resource.memory = VK_NULL_HANDLE;
resource.layout = VK_IMAGE_LAYOUT_UNDEFINED;
resource.extent = {0, 0};
resource.format = VK_FORMAT_UNDEFINED;
}
Bool VkTextureSamplerManager::ResolveLevel0(const MG_State::GLState::ITextureObject& texture,
TextureUploadTarget& outTarget, IntVec3& outTexelSize,
SizeT& outByteSize) {
const auto* mipTexture = dynamic_cast<const MG_State::GLState::TextureObjectMipmap*>(&texture);
if (!mipTexture) {
return false;
}
const auto& targets = texture.GetUploadTargets();
if (targets.empty()) {
return false;
}
outTarget = targets.front();
outTexelSize = mipTexture->GetMipmapTexelSize(outTarget, 0);
outByteSize = mipTexture->GetMipmapByteSize(outTarget, 0);
return outTexelSize.x() > 0 && outTexelSize.y() > 0 && outByteSize > 0;
}
VkFormat VkTextureSamplerManager::ResolveTextureFormat(TextureInternalFormat format) {
switch (format) {
case TextureInternalFormat::RGBA:
case TextureInternalFormat::RGBA8:
return VK_FORMAT_R8G8B8A8_UNORM;
case TextureInternalFormat::SRGB8Alpha8:
return VK_FORMAT_R8G8B8A8_SRGB;
default:
return VK_FORMAT_UNDEFINED;
}
}
Uint32 VkTextureSamplerManager::FindMemoryType(Uint32 typeFilter, VkMemoryPropertyFlags properties) const {
VkPhysicalDeviceMemoryProperties memProperties{};
vkGetPhysicalDeviceMemoryProperties(m_physicalDevice, &memProperties);
for (Uint32 i = 0; i < memProperties.memoryTypeCount; ++i) {
if ((typeFilter & (1u << i)) != 0 &&
(memProperties.memoryTypes[i].propertyFlags & properties) == properties) {
return i;
}
}
MOBILEGL_ASSERT(false, "VkTextureSamplerManager::FindMemoryType failed");
return 0;
}
VkSampler VkTextureSamplerManager::GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler) {
const Uint64 key = BuildSamplerKey(sampler.GetExternalIndex(), sampler.GetVersion());
auto it = m_samplers.find(key);
if (it != m_samplers.end()) {
return it->second.handle;
}
VkSamplerCreateInfo samplerInfo{};
samplerInfo.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
samplerInfo.magFilter = ToVkFilter(sampler.GetMagFilter());
samplerInfo.minFilter = ToVkFilter(sampler.GetMinFilter());
samplerInfo.mipmapMode = ToVkMipmapMode(sampler.GetMipmapMode());
samplerInfo.addressModeU = ToVkAddressMode(sampler.GetWrapS());
samplerInfo.addressModeV = ToVkAddressMode(sampler.GetWrapT());
samplerInfo.addressModeW = ToVkAddressMode(sampler.GetWrapR());
samplerInfo.mipLodBias = sampler.GetLodBias();
samplerInfo.anisotropyEnable = VK_FALSE;
samplerInfo.maxAnisotropy = 1.0f;
samplerInfo.compareEnable = sampler.GetCompareMode() == SamplerCompareMode::CompareToTexture ? VK_TRUE : VK_FALSE;
samplerInfo.compareOp = ToVkCompareOp(sampler.GetSamplerCompareFunc());
samplerInfo.minLod = sampler.GetMinLod();
samplerInfo.maxLod = sampler.GetMaxLod();
samplerInfo.borderColor = VK_BORDER_COLOR_FLOAT_TRANSPARENT_BLACK;
samplerInfo.unnormalizedCoordinates = VK_FALSE;
VkSampler vkSampler = VK_NULL_HANDLE;
VK_VERIFY(vkCreateSampler(m_device, &samplerInfo, nullptr, &vkSampler), "vkCreateSampler(texture)");
SamplerCacheEntry entry{};
entry.handle = vkSampler;
entry.externalIndex = sampler.GetExternalIndex();
entry.version = sampler.GetVersion();
m_samplers[key] = entry;
return vkSampler;
}
VkFilter VkTextureSamplerManager::ToVkFilter(SamplerFilterMode mode) {
return mode == SamplerFilterMode::Nearest ? VK_FILTER_NEAREST : VK_FILTER_LINEAR;
}
VkSamplerMipmapMode VkTextureSamplerManager::ToVkMipmapMode(SamplerMipmapMode mode) {
switch (mode) {
case SamplerMipmapMode::Nearest:
return VK_SAMPLER_MIPMAP_MODE_NEAREST;
case SamplerMipmapMode::Linear:
return VK_SAMPLER_MIPMAP_MODE_LINEAR;
case SamplerMipmapMode::None:
default:
return VK_SAMPLER_MIPMAP_MODE_NEAREST;
}
}
VkSamplerAddressMode VkTextureSamplerManager::ToVkAddressMode(SamplerWrapMode mode) {
switch (mode) {
case SamplerWrapMode::ClampToEdge:
return VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE;
case SamplerWrapMode::MirroredRepeat:
return VK_SAMPLER_ADDRESS_MODE_MIRRORED_REPEAT;
case SamplerWrapMode::Repeat:
return VK_SAMPLER_ADDRESS_MODE_REPEAT;
case SamplerWrapMode::ClampToBorder:
return VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_BORDER;
case SamplerWrapMode::MirrorClampToEdge:
return VK_SAMPLER_ADDRESS_MODE_MIRROR_CLAMP_TO_EDGE;
default:
return VK_SAMPLER_ADDRESS_MODE_REPEAT;
}
}
VkCompareOp VkTextureSamplerManager::ToVkCompareOp(SamplerCompareFunc func) {
switch (func) {
case SamplerCompareFunc::Never:
return VK_COMPARE_OP_NEVER;
case SamplerCompareFunc::Less:
return VK_COMPARE_OP_LESS;
case SamplerCompareFunc::Equal:
return VK_COMPARE_OP_EQUAL;
case SamplerCompareFunc::LessEqual:
return VK_COMPARE_OP_LESS_OR_EQUAL;
case SamplerCompareFunc::Greater:
return VK_COMPARE_OP_GREATER;
case SamplerCompareFunc::NotEqual:
return VK_COMPARE_OP_NOT_EQUAL;
case SamplerCompareFunc::GreaterEqual:
return VK_COMPARE_OP_GREATER_OR_EQUAL;
case SamplerCompareFunc::Always:
default:
return VK_COMPARE_OP_ALWAYS;
}
}
Bool VkTextureSamplerManager::UploadFallbackTexture() {
const Uint32 rgba = 0xFFFFFFFFu;
VkImageCreateInfo imageInfo{};
imageInfo.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
imageInfo.imageType = VK_IMAGE_TYPE_2D;
imageInfo.extent = {1, 1, 1};
imageInfo.mipLevels = 1;
imageInfo.arrayLayers = 1;
imageInfo.format = VK_FORMAT_R8G8B8A8_UNORM;
imageInfo.tiling = VK_IMAGE_TILING_OPTIMAL;
imageInfo.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
imageInfo.usage = VK_IMAGE_USAGE_TRANSFER_DST_BIT | VK_IMAGE_USAGE_SAMPLED_BIT;
imageInfo.samples = VK_SAMPLE_COUNT_1_BIT;
imageInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateImage(m_device, &imageInfo, nullptr, &m_fallbackImage), "vkCreateImage(fallback)");
VkMemoryRequirements imageMemReq{};
vkGetImageMemoryRequirements(m_device, m_fallbackImage, &imageMemReq);
VkMemoryAllocateInfo imageAllocInfo{};
imageAllocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
imageAllocInfo.allocationSize = imageMemReq.size;
imageAllocInfo.memoryTypeIndex = FindMemoryType(imageMemReq.memoryTypeBits, VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &imageAllocInfo, nullptr, &m_fallbackImageMemory),
"vkAllocateMemory(fallback)");
VK_VERIFY(vkBindImageMemory(m_device, m_fallbackImage, m_fallbackImageMemory, 0), "vkBindImageMemory(fallback)");
VkBuffer stagingBuffer = VK_NULL_HANDLE;
VkDeviceMemory stagingMemory = VK_NULL_HANDLE;
VkBufferCreateInfo bufferInfo{};
bufferInfo.sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO;
bufferInfo.size = sizeof(rgba);
bufferInfo.usage = VK_BUFFER_USAGE_TRANSFER_SRC_BIT;
bufferInfo.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
VK_VERIFY(vkCreateBuffer(m_device, &bufferInfo, nullptr, &stagingBuffer), "vkCreateBuffer(fallback)");
VkMemoryRequirements stagingMemReq{};
vkGetBufferMemoryRequirements(m_device, stagingBuffer, &stagingMemReq);
VkMemoryAllocateInfo stagingAllocInfo{};
stagingAllocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
stagingAllocInfo.allocationSize = stagingMemReq.size;
stagingAllocInfo.memoryTypeIndex =
FindMemoryType(stagingMemReq.memoryTypeBits,
VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT | VK_MEMORY_PROPERTY_HOST_COHERENT_BIT);
VK_VERIFY(vkAllocateMemory(m_device, &stagingAllocInfo, nullptr, &stagingMemory), "vkAllocateMemory(fallback)");
VK_VERIFY(vkBindBufferMemory(m_device, stagingBuffer, stagingMemory, 0), "vkBindBufferMemory(fallback)");
void* mapped = nullptr;
VK_VERIFY(vkMapMemory(m_device, stagingMemory, 0, sizeof(rgba), 0, &mapped), "vkMapMemory(fallback)");
std::memcpy(mapped, &rgba, sizeof(rgba));
vkUnmapMemory(m_device, stagingMemory);
const Bool uploadOk = ExecuteImmediate([&](VkCommandBuffer commandBuffer) {
VkImageMemoryBarrier toTransferDst{};
toTransferDst.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
toTransferDst.srcAccessMask = 0;
toTransferDst.dstAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
toTransferDst.oldLayout = VK_IMAGE_LAYOUT_UNDEFINED;
toTransferDst.newLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
toTransferDst.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toTransferDst.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toTransferDst.image = m_fallbackImage;
toTransferDst.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
toTransferDst.subresourceRange.baseMipLevel = 0;
toTransferDst.subresourceRange.levelCount = 1;
toTransferDst.subresourceRange.baseArrayLayer = 0;
toTransferDst.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0, 0,
nullptr, 0, nullptr, 1, &toTransferDst);
VkBufferImageCopy copy{};
copy.imageSubresource.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
copy.imageSubresource.mipLevel = 0;
copy.imageSubresource.baseArrayLayer = 0;
copy.imageSubresource.layerCount = 1;
copy.imageExtent = {1, 1, 1};
vkCmdCopyBufferToImage(commandBuffer, stagingBuffer, m_fallbackImage, VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL, 1,
&copy);
VkImageMemoryBarrier toSampled{};
toSampled.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
toSampled.srcAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
toSampled.dstAccessMask = VK_ACCESS_SHADER_READ_BIT;
toSampled.oldLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
toSampled.newLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
toSampled.srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toSampled.dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
toSampled.image = m_fallbackImage;
toSampled.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
toSampled.subresourceRange.baseMipLevel = 0;
toSampled.subresourceRange.levelCount = 1;
toSampled.subresourceRange.baseArrayLayer = 0;
toSampled.subresourceRange.layerCount = 1;
vkCmdPipelineBarrier(commandBuffer, VK_PIPELINE_STAGE_TRANSFER_BIT, VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT, 0,
0, nullptr, 0, nullptr, 1, &toSampled);
});
vkDestroyBuffer(m_device, stagingBuffer, nullptr);
vkFreeMemory(m_device, stagingMemory, nullptr);
if (!uploadOk) {
return false;
}
VkImageViewCreateInfo viewInfo{};
viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
viewInfo.image = m_fallbackImage;
viewInfo.viewType = VK_IMAGE_VIEW_TYPE_2D;
viewInfo.format = VK_FORMAT_R8G8B8A8_UNORM;
viewInfo.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
viewInfo.subresourceRange.baseMipLevel = 0;
viewInfo.subresourceRange.levelCount = 1;
viewInfo.subresourceRange.baseArrayLayer = 0;
viewInfo.subresourceRange.layerCount = 1;
VK_VERIFY(vkCreateImageView(m_device, &viewInfo, nullptr, &m_fallbackImageView), "vkCreateImageView(fallback)");
VkSamplerCreateInfo samplerInfo{};
samplerInfo.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
samplerInfo.magFilter = VK_FILTER_NEAREST;
samplerInfo.minFilter = VK_FILTER_NEAREST;
samplerInfo.mipmapMode = VK_SAMPLER_MIPMAP_MODE_NEAREST;
samplerInfo.addressModeU = VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE;
samplerInfo.addressModeV = VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE;
samplerInfo.addressModeW = VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE;
samplerInfo.compareEnable = VK_FALSE;
samplerInfo.minLod = 0.0f;
samplerInfo.maxLod = 0.0f;
samplerInfo.maxAnisotropy = 1.0f;
VK_VERIFY(vkCreateSampler(m_device, &samplerInfo, nullptr, &m_fallbackSampler), "vkCreateSampler(fallback)");
return true;
}
} // namespace MobileGL::MG_Backend::DirectVulkan
@@ -1,88 +0,0 @@
// MobileGL - MobileGL/MG_Backend/DirectVulkan/Renderer/VkTextureSamplerManager.h
// Copyright (c) 2025-2026 MobileGL-Dev
// Licensed under the GNU Lesser General Public License v3.0:
// https://www.gnu.org/licenses/gpl-3.0.txt
// https://www.gnu.org/licenses/lgpl-3.0.txt
// SPDX-License-Identifier: LGPL-3.0-only
// End of Source File Header
#pragma once
#include "../VkIncludes.h"
#include <Includes.h>
#include <MG_State/GLState/SamplerState/SamplerObject.h>
#include <MG_State/GLState/TextureState/TextureObject.h>
namespace MobileGL::MG_State::GLState {
class ITextureObject;
class SamplerObject;
}
namespace MobileGL::MG_Backend::DirectVulkan {
class VkTextureSamplerManager {
public:
struct InitInfo {
VkDevice device = VK_NULL_HANDLE;
VkPhysicalDevice physicalDevice = VK_NULL_HANDLE;
VkCommandPool commandPool = VK_NULL_HANDLE;
VkQueue graphicsQueue = VK_NULL_HANDLE;
};
Bool Initialize(const InitInfo& initInfo);
void Shutdown();
Bool GetFallbackDescriptor(VkDescriptorImageInfo& outImageInfo) const;
Bool SyncTextureAndGetDescriptor(const MG_State::GLState::ITextureObject& texture,
const MG_State::GLState::SamplerObject* samplerOverride,
VkDescriptorImageInfo& outImageInfo);
private:
struct TextureResource {
VkImage image = VK_NULL_HANDLE;
VkDeviceMemory memory = VK_NULL_HANDLE;
VkImageView view = VK_NULL_HANDLE;
VkImageLayout layout = VK_IMAGE_LAYOUT_UNDEFINED;
VkExtent2D extent = {0, 0};
VkFormat format = VK_FORMAT_UNDEFINED;
Uint textureExternalIndex = 0;
};
struct SamplerCacheEntry {
VkSampler handle = VK_NULL_HANDLE;
Uint externalIndex = 0;
Uint16 version = 0;
};
Bool EnsureTextureSynced(TextureResource& resource, const MG_State::GLState::ITextureObject& texture);
Bool EnsureTextureResource(TextureResource& resource, const MG_State::GLState::ITextureObject& texture,
TextureUploadTarget level0Target, const IntVec3& texelSize, SizeT byteSize);
Bool UploadLevel0(TextureResource& resource, const MG_State::GLState::TextureObjectMipmap& mipmapTexture,
TextureUploadTarget level0Target, SizeT byteSize);
Bool ExecuteImmediate(const std::function<void(VkCommandBuffer)>& recorder) const;
void DestroyTextureResource(TextureResource& resource) const;
static Bool ResolveLevel0(const MG_State::GLState::ITextureObject& texture, TextureUploadTarget& outTarget,
IntVec3& outTexelSize, SizeT& outByteSize);
static VkFormat ResolveTextureFormat(TextureInternalFormat format);
Uint32 FindMemoryType(Uint32 typeFilter, VkMemoryPropertyFlags properties) const;
VkSampler GetOrCreateSampler(const MG_State::GLState::SamplerObject& sampler);
static VkFilter ToVkFilter(SamplerFilterMode mode);
static VkSamplerMipmapMode ToVkMipmapMode(SamplerMipmapMode mode);
static VkSamplerAddressMode ToVkAddressMode(SamplerWrapMode mode);
static VkCompareOp ToVkCompareOp(SamplerCompareFunc func);
Bool UploadFallbackTexture();
VkDevice m_device = VK_NULL_HANDLE;
VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
VkCommandPool m_commandPool = VK_NULL_HANDLE;
VkQueue m_graphicsQueue = VK_NULL_HANDLE;
UnorderedMap<Uint, TextureResource> m_textureResources;
UnorderedMap<Uint64, SamplerCacheEntry> m_samplers;
VkImage m_fallbackImage = VK_NULL_HANDLE;
VkDeviceMemory m_fallbackImageMemory = VK_NULL_HANDLE;
VkImageView m_fallbackImageView = VK_NULL_HANDLE;
VkSampler m_fallbackSampler = VK_NULL_HANDLE;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
File diff suppressed because it is too large Load Diff
@@ -12,12 +12,14 @@
#include "PipelineFactory.h"
#include "ProgramFactory.h"
#include "SwapchainObject.h"
#include "UniformDescriptorBinder.h"
#include "UniformManager.h"
#include "VertexInputStateFactory.h"
#include "VkBufferObject.h"
#include "VkFramebufferManager.h"
#include "VkBufferManager.h"
#include "VkClearManager.h"
#include "VkRenderPassManager.h"
#include "VkTextureSamplerManager.h"
#include "VkSamplerManager.h"
#include "VkTextureManager.h"
#include "MG_Util/Math/VectorTypes.h"
#include <Includes.h>
#include <vk_mem_alloc.h>
@@ -27,23 +29,61 @@
namespace MobileGL::MG_State::GLState {
class FramebufferObject;
class ProgramObject;
class SamplerObject;
class VertexArrayObject;
} // namespace MobileGL::MG_State::GLState
namespace MobileGL::MG_Backend::DirectVulkan {
struct DrawArrayPayload {
GLenum mode = GL_TRIANGLES;
GLint first = 0;
GLsizei count = 0;
const MG_State::GLState::ProgramObject* program = nullptr;
const MG_State::GLState::VertexArrayObject* vertexArray = nullptr;
enum class DrawSetupAspect: Uint8 {
FramebufferObject = 1 << 0,
VertexArrayObject = 1 << 1,
UniformBuffer = 1 << 2,
VertexBuffer = 1 << 3,
IndexBuffer = 1 << 4,
IndirectDrawBuffer = 1 << 5,
Viewport = 1 << 6,
Scissor = 1 << 7,
};
struct DrawElementPayload {
DrawArrayPayload drawArray;
struct DrawCmdParam {
Uint32 vertexCount = 0;
Uint32 instanceCount = 1;
Uint32 firstVertex = 0;
Uint32 firstInstance = 0;
};
struct DrawIndexedCmdParam {
Uint32 indexCount = 0;
Uint32 instanceCount = 1;
Uint32 firstIndex = 0;
Int32 vertexOffset = 0;
Int32 firstInstance = 0;
};
struct DrawCmd {
GLenum mode = GL_TRIANGLES;
DrawCmdParam params;
};
struct IndexBufferView {
GLenum indexType = GL_UNSIGNED_SHORT;
SizeT indexByteOffset = 0;
GLint baseVertex = 0;
SizeT indexByteSize = 0;
};
struct DrawIndexedCmd {
GLenum mode = GL_TRIANGLES;
IndexBufferView indexBufferView;
DrawIndexedCmdParam params;
};
struct MultiDrawIndexedCmd {
GLenum mode = GL_TRIANGLES;
IndexBufferView indexBufferView;
Uint32 drawCount = 0;
DrawIndexedCmdParam* pParams = nullptr;
};
struct QueueFamilyIndices {
@@ -69,17 +109,18 @@ namespace MobileGL::MG_Backend::DirectVulkan {
void Initialize();
void Shutdown();
void RequestClear(GLbitfield mask, const FloatVec4& color, Float depth, Uint32 stencil,
Uint drawFboExternalIndex, Bool isDefaultFramebufferTarget);
Bool ConsumePendingColorClear(VkClearColorValue& outClearColor);
void EnsureFrameRecordingStarted();
void DrawArrays(const DrawArrayPayload& payload);
void DrawElements(const DrawElementPayload& payload);
void MultiDrawElements(const Vector<DrawElementPayload>& payloads);
Bool BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
GLint dstY1, GLbitfield mask, GLenum filter, Uint readFboExternalIndex,
Uint drawFboExternalIndex, Bool readIsDefaultFramebuffer, Bool drawIsDefaultFramebuffer);
void Render();
Bool SetupDraw(FrameContext::FrameData& frame, GLenum mode, Flags<DrawSetupAspect> aspects,
const IndexBufferView* pIndexBufferView = nullptr);
void ClearAttachmentsOnActiveRenderPass(VkCommandBuffer commandBuffer,
const RenderPassEntry& compatibleRenderPassEntry);
void Clear(GLbitfield mask);
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1,
GLint dstX0, GLint dstY0, GLint dstX1, GLint dstY1,
GLbitfield mask, GLenum filter);
void DrawArrays(const DrawCmd& payload);
void DrawElements(const DrawIndexedCmd& payload);
void MultiDrawElements(const MultiDrawIndexedCmd& payloads);
void Present();
const PhysicalDevice& GetPhysicalDevice() const;
@@ -88,13 +129,21 @@ namespace MobileGL::MG_Backend::DirectVulkan {
void RecreateSwapchain();
private:
struct PendingClearState {
GLbitfield mask = 0;
VkClearColorValue color = {{0.0f, 0.0f, 0.0f, 1.0f}};
Float depth = 1.0f;
Uint32 stencil = 0;
Uint drawFboExternalIndex = 0;
Bool targetsDefaultFramebuffer = true;
struct BlitUniformData {
float srcRect[4] = {0.f, 0.f, 1.f, 1.f};
float dstRect[4] = {0.f, 0.f, 1.f, 1.f};
Int surfaceTransform = 0;
Int padding[3] = {0, 0, 0};
};
struct BlitResources {
SharedPtr<MG_State::GLState::ProgramObject> program;
SharedPtr<MG_State::GLState::SamplerObject> nearestSampler;
SharedPtr<MG_State::GLState::SamplerObject> linearSampler;
Int srcRectLocation = -1;
Int dstRectLocation = -1;
Int surfaceTransformLocation = -1;
Uint32 samplerBinding = 0;
};
NativeWindowType m_window = 0;
@@ -106,56 +155,38 @@ namespace MobileGL::MG_Backend::DirectVulkan {
VkInstance m_instance = VK_NULL_HANDLE;
VkDebugUtilsMessengerEXT m_debugMessenger = VK_NULL_HANDLE;
PhysicalDevice m_physicalDevice;
// VkPhysicalDevice m_physicalDevice = VK_NULL_HANDLE;
VkDevice m_device = VK_NULL_HANDLE;
VmaAllocator m_allocator = nullptr;
VkSurfaceKHR m_surface = VK_NULL_HANDLE;
SwapchainObject m_swapchainObject;
// Vector<VkQueueFamilyProperties> m_queueFamilies;
// QueueFamilyIndices m_queueFamilyIndices;
VkQueue m_graphicsQueue = VK_NULL_HANDLE;
VkQueue m_presentQueue = VK_NULL_HANDLE;
Bool m_drawIndirectCountExtensionEnabled = false;
Bool m_indexTypeUint8ExtensionEnabled = false;
using PFNDrawIndexedIndirectCountFunc = void(VKAPI_PTR*)(VkCommandBuffer commandBuffer, VkBuffer buffer,
VkDeviceSize offset, VkBuffer countBuffer,
VkDeviceSize countBufferOffset, Uint32 maxDrawCount,
Uint32 stride);
PFNDrawIndexedIndirectCountFunc m_cmdDrawIndexedIndirectCount = nullptr;
static inline PFNDrawIndexedIndirectCountFunc s_vkCmdDrawIndexedIndirectCount = nullptr;
VkCommandPool m_commandPool = VK_NULL_HANDLE;
VkFormat m_depthStencilFormat = VK_FORMAT_UNDEFINED;
Vector<VkImage> m_depthStencilImages;
Vector<VkDeviceMemory> m_depthStencilImageMemories;
Vector<VkImageView> m_depthStencilImageViews;
Vector<VkImageLayout> m_depthStencilImageLayouts;
VkPipelineLayout m_pipelineLayout = VK_NULL_HANDLE;
Vector<VkBufferObject> m_frameVertexUploadBuffers;
Vector<VkDeviceSize> m_frameVertexUploadHeads;
Vector<VkBufferObject> m_frameIndexUploadBuffers;
Vector<VkDeviceSize> m_frameIndexUploadHeads;
Vector<Vector<VkBufferObject>> m_deferredBufferReleases;
VkBufferManager m_bufferManager;
Vector<const MG_State::GLState::BufferObject*> m_transientVertexIndexBuffersThisFrame;
Uint m_imageIndexAcquired = 0;
FrameContext m_frameContext;
UnorderedMap<Uint64, PendingClearState> m_pendingClears;
Bool m_isMainRenderPassActive = false;
VkRenderPass m_activeRenderPass = VK_NULL_HANDLE;
VkExtent2D m_activeRenderExtent = {0, 0};
VkFormat m_activeDepthStencilFormat = VK_FORMAT_UNDEFINED;
Bool m_activeRenderTargetIsDefault = true;
Uint m_activeDrawFboExternalIndex = 0;
UniquePtr<PipelineFactory> m_pipelineFactory;
UniquePtr<ProgramFactory> m_programFactory;
UniquePtr<UniformDescriptorBinder> m_uniformDescriptorBinder;
UniquePtr<UniformManager> m_uniformManager;
UniquePtr<VertexInputStateFactory> m_vertexInputStateFactory;
UniquePtr<VkFramebufferManager> m_framebufferManager;
UniquePtr<VkClearManager> m_clearManager;
UniquePtr<VkRenderPassManager> m_renderPassManager;
UniquePtr<VkTextureSamplerManager> m_textureSamplerManager;
UniquePtr<VkTextureManager> m_textureManager;
UniquePtr<VkSamplerManager> m_samplerManager;
BlitResources m_blitResources;
void CreateInstance();
VkResult SetupDebugMessenger();
@@ -168,31 +199,32 @@ namespace MobileGL::MG_Backend::DirectVulkan {
void DestroyAllocator();
void CreateSwapchain();
void CreateCommandPool();
void CreateFrameContexts();
void CreateDepthStencilResources();
void DestroyDepthStencilResources();
VkRenderPass GetDefaultLoadRenderPass() const;
Bool GetDefaultRenderTargetForCurrentImage(VkRenderPass& outRenderPass, VkFramebuffer& outFramebuffer,
VkExtent2D& outExtent, VkFormat& outDepthStencilFormat) const;
Bool EnsureOffscreenRenderTarget(Uint glFboExternalIndex, const MG_State::GLState::FramebufferObject& glFbo,
VkRenderPass& outRenderPass, VkFramebuffer& outFramebuffer,
VkExtent2D& outExtent, VkFormat& outDepthStencilFormat);
void PrepareDemoPipeline();
VkPipeline GetOrCreatePipeline(const MG_State::GLState::ProgramObject& program, VkPipelineLayout pipelineLayout,
Uint64 vertexInputHash,
const VkPipelineVertexInputStateCreateInfo& vertexInputState);
void TransitionSwapchainImageToColorAttachment(VkCommandBuffer commandBuffer, Uint32 imageIndex);
void TransitionDepthStencilImageToAttachment(VkCommandBuffer commandBuffer, Uint32 imageIndex);
void EndFrameRecordingIfNeeded();
void DeferDestroyBuffer(VkBufferObject& buffer);
void CollectDeferredBufferReleases(Uint32 frameIndex);
Bool EnsureFrameUploadBufferCapacity(Uint32 frameIndex, Bool isIndexBuffer, VkDeviceSize requiredEndOffset,
VkDeviceSize minCapacity, VkBufferUsageFlags usage);
Bool UploadAndBindVertexStreams(const VertexInputStateFactory::BackendVertexInputState& vertexInputState,
const DrawArrayPayload& payload, VkCommandBuffer commandBuffer);
VkPipeline GetOrCreatePipeline(
GLenum mode,
const MG_State::GLState::ProgramObject& program,
const MG_State::GLState::VertexArrayObject& vao,
const RenderPassEntry& renderPassEntry);
Bool UploadAndBindVertexBuffers(VkCommandBuffer commandBuffer, const MG_State::GLState::VertexArrayObject& vao);
Bool UploadAndBindIndexBuffer(FrameContext::FrameData& frame,
const MG_State::GLState::VertexArrayObject& vao,
const IndexBufferView* pIndexBufferView = nullptr);
Bool InitializeBlitResources();
void ShutdownBlitResources();
Bool TryBlitToDefaultFramebufferWithShader(FrameContext::FrameData& frame,
MG_State::GLState::FramebufferObject& readFbo,
MG_State::GLState::FramebufferObject& drawFbo,
GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1,
GLint dstX0, GLint dstY0, GLint dstX1, GLint dstY1,
GLenum filter);
Bool MaterializePendingClearForTexture(VkCommandBuffer commandBuffer,
MG_State::GLState::ITextureObject& texture);
VkPipeline GetOrCreateBlitPipeline(const RenderPassEntry& renderPassEntry);
void ShutdownSwapchain();
// Static functions
static Int GetPresentQueueFamilyIndex(const PhysicalDevice& physicalDevice, VkSurfaceKHR surface,
const Vector<VkQueueFamilyProperties>& queueFamilies,
Int preferredFamilyIndex = -1);
@@ -212,11 +244,6 @@ namespace MobileGL::MG_Backend::DirectVulkan {
static Bool GetMoreCapablePhysicalDevice(VkPhysicalDevice newVkDevice, VkSurfaceKHR surface,
const PhysicalDevice& compareWithDevice,
PhysicalDevice& outBetterDevice);
Uint32 FindMemoryType(Uint32 typeFilter, VkMemoryPropertyFlags properties) const;
static Uint64 BuildPendingClearKey(Uint drawFboExternalIndex, Bool targetsDefaultFramebuffer);
static Bool HasStencilComponent(VkFormat format);
static VkFormat FindSupportedDepthStencilFormat(VkPhysicalDevice physicalDevice);
static constexpr VkDynamicState s_dynamicStates[] = {VK_DYNAMIC_STATE_VIEWPORT, VK_DYNAMIC_STATE_SCISSOR};
static constexpr const char* s_validationLayerNames[] = {"VK_LAYER_KHRONOS_validation"};
static constexpr const char* s_deviceExtensionNames[] = {VK_KHR_SWAPCHAIN_EXTENSION_NAME};
static Bool CheckValidationLayerSupport();
@@ -13,8 +13,8 @@ namespace MobileGL::MG_Backend::DirectVulkan {
struct VulkanRendererConfig {
Uint32 MaxFramesInFlight = 2;
String AppName = "MobileGL-VulkanRenderer";
Version Version = MG_Config::CoreVersion;
MobileGL::Version Version = MG_Config::CoreVersion;
Uint64 CacheVersion = MG_Config::CacheVersion;
Bool EnableValidationLayers = true;
};
} // namespace MobileGL::MG_Backend::DirectVulkan
} // namespace MobileGL::MG_Backend::DirectVulkan
+1 -1
View File
@@ -20,7 +20,7 @@ namespace MobileGL::MG_Impl::EGLImpl {
if (!MG_State::pEGLContext) {
MGLOG_E("pEGLContext is null. MG_State may not be initialized.");
}
return MG_State::pEGLContext;
return MG_State::pEGLContext.get();
}
MG_Backend::BackendObject* GetBackendObject(EGLStateContext* state) {
File diff suppressed because it is too large Load Diff
+18 -20
View File
@@ -9,24 +9,22 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void GetBufferParameteriv(GLenum target, GLenum pname, GLint* params);
GLboolean IsBuffer(GLuint buffer);
void DeleteBuffers(GLsizei n, const GLuint* buffers);
void FlushMappedBufferRange(GLenum target, GLintptr offset, GLsizeiptr length);
GLboolean UnmapBuffer(GLenum target);
void* MapBufferRange(GLenum target, GLintptr offset, GLsizeiptr length, GLbitfield access);
void* MapBuffer(GLenum target, GLenum access);
void CopyBufferSubData(GLenum readTarget, GLenum writeTarget, GLintptr readOffset, GLintptr writeOffset,
GLsizeiptr size);
void BufferSubData(GLenum target, GLintptr offset, GLsizeiptr size, const void* data);
void BufferData(GLenum target, GLsizeiptr size, const void* data, GLenum usage);
void BindBuffer(GLenum target, GLuint buffer);
void GenBuffers(GLsizei n, GLuint* buffers);
void BindBufferBase(GLenum target, GLuint index, GLuint buffer);
void BindBufferRange(GLenum target, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size);
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void GetBufferParameteriv(GLenum target, GLenum pname, GLint* params);
GLboolean IsBuffer(GLuint buffer);
void DeleteBuffers(GLsizei n, const GLuint* buffers);
void FlushMappedBufferRange(GLenum target, GLintptr offset, GLsizeiptr length);
GLboolean UnmapBuffer(GLenum target);
void* MapBufferRange(GLenum target, GLintptr offset, GLsizeiptr length, GLbitfield access);
void* MapBuffer(GLenum target, GLenum access);
void CopyBufferSubData(GLenum readTarget, GLenum writeTarget, GLintptr readOffset, GLintptr writeOffset,
GLsizeiptr size);
void BufferSubData(GLenum target, GLintptr offset, GLsizeiptr size, const void* data);
void BufferData(GLenum target, GLsizeiptr size, const void* data, GLenum usage);
void BindBuffer(GLenum target, GLuint buffer);
void GenBuffers(GLsizei n, GLuint* buffers);
void BindBufferBase(GLenum target, GLuint index, GLuint buffer);
void BindBufferRange(GLenum target, GLuint index, GLuint buffer, GLintptr offset, GLsizeiptr size);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
} // namespace MobileGL::MG_Impl::GLImpl
+87 -92
View File
@@ -13,105 +13,100 @@
#include <MG_Util/Converters/MGToGL/BufferEnumConverter.h>
#include <MG_Util/Converters/MGToStr/BufferEnumConverter.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace BufferImpl {
Bool ValidateBufferTarget(BufferTarget target) {
if (target == BufferTarget::Unknown) {
using namespace MG_Util;
String bufferTargetStr = ConvertBufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertBufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
if (target == BufferTarget::Index && MG_State::pGLContext->GetBoundVertexArray() == nullptr) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
"ValidateBufferTarget",
"No vertex array object is bound."));
return false;
}
return true;
}
Bool ValidateBufferBindingPointTarget(BufferTarget target) {
if (target != BufferTarget::Uniform && target != BufferTarget::AtomicCounter &&
target != BufferTarget::TransformFeedback && target != BufferTarget::ShaderStorage) {
using namespace MG_Util;
String bufferTargetStr = ConvertBufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertBufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateBufferName(Uint index, Bool allowZero) {
if (index == 0) {
if (allowZero) return true;
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
"ValidateBufferName",
"Buffer name 0 is not valid."));
return false;
}
Bool isValid = MG_State::pGLContext->ValidateBufferName(index);
if (isValid) return true;
namespace MobileGL::MG_Impl::GLImpl::BufferImpl {
Bool ValidateBufferTarget(BufferTarget target) {
if (target == BufferTarget::Unknown) {
using namespace MG_Util;
String bufferTargetStr = ConvertBufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertBufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", "ValidateBufferName",
std::format("Buffer name {} is not valid.", index)));
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
Bool ValidateBufferUsage(BufferUsage usage) {
if (usage != BufferUsage::Unknown) {
return true;
}
if (target == BufferTarget::Index && MG_State::pGLContext->GetBoundVertexArray() == nullptr) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
"ValidateBufferTarget",
"No vertex array object is bound."));
return false;
}
return true;
}
Bool ValidateBufferBindingPointTarget(BufferTarget target) {
if (target != BufferTarget::Uniform && target != BufferTarget::AtomicCounter &&
target != BufferTarget::TransformFeedback && target != BufferTarget::ShaderStorage) {
using namespace MG_Util;
String bufferUsageStr = ConvertBufferUsageToString(usage);
String glUsageStr = ConvertGLEnumToString(ConvertBufferUsageToGLEnum(usage));
String bufferTargetStr = ConvertBufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertBufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateBufferName(Uint index, Bool allowZero) {
if (index == 0) {
if (allowZero) return true;
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", "ValidateBufferName",
"Buffer name 0 is not valid."));
return false;
}
Bool isValid = MG_State::pGLContext->ValidateBufferName(index);
if (isValid) return true;
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", "ValidateBufferName",
std::format("Buffer name {} is not valid.", index)));
return false;
}
Bool ValidateBufferUsage(BufferUsage usage) {
if (usage != BufferUsage::Unknown) {
return true;
}
using namespace MG_Util;
String bufferUsageStr = ConvertBufferUsageToString(usage);
String glUsageStr = ConvertGLEnumToString(ConvertBufferUsageToGLEnum(usage));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferUsage",
std::format("Usage {} ({}) is not one of the allowable values.", bufferUsageStr, glUsageStr)));
return false;
}
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits) {
if (accessBits == BufferMappingAccessBit::Null) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
"ValidateBufferMappingAccess",
"Access bits cannot be null."));
return false;
}
const auto validBits = BufferMappingAccessBit::Read | BufferMappingAccessBit::Write |
BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer |
BufferMappingAccessBit::FlushExplicit | BufferMappingAccessBit::Unsynchronized |
BufferMappingAccessBit::Persistent | BufferMappingAccessBit::Coherent;
if ((accessBits & validBits) != accessBits) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/BufferImpl", "ValidateBufferUsage",
std::format("Usage {} ({}) is not one of the allowable values.", bufferUsageStr, glUsageStr)));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", "ValidateBufferMappingAccess",
"Access bits cannot contain invalid flags."));
return false;
}
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits) {
if (accessBits == BufferMappingAccessBit::Null) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl",
"ValidateBufferMappingAccess",
"Access bits cannot be null."));
return false;
}
const auto validBits = BufferMappingAccessBit::Read | BufferMappingAccessBit::Write |
BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer |
BufferMappingAccessBit::FlushExplicit | BufferMappingAccessBit::Unsynchronized |
BufferMappingAccessBit::Persistent | BufferMappingAccessBit::Coherent;
if ((accessBits & validBits) != accessBits) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/BufferImpl", "ValidateBufferMappingAccess",
"Access bits cannot contain invalid flags."));
return false;
}
return true;
}
} // namespace BufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
return true;
}
} // namespace MobileGL::MG_Impl::GLImpl::BufferImpl
+7 -9
View File
@@ -10,12 +10,10 @@
#include <Includes.h>
#include <MG_State/GLState/BufferState/BufferObject.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace BufferImpl {
Bool ValidateBufferTarget(BufferTarget target);
Bool ValidateBufferName(Uint index, Bool allowZero = false);
Bool ValidateBufferUsage(BufferUsage usage);
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits);
Bool ValidateBufferBindingPointTarget(BufferTarget target);
} // namespace BufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
namespace MobileGL::MG_Impl::GLImpl::BufferImpl {
Bool ValidateBufferTarget(BufferTarget target);
Bool ValidateBufferName(Uint index, Bool allowZero = false);
Bool ValidateBufferUsage(BufferUsage usage);
Bool ValidateBufferMappingAccess(Flags<BufferMappingAccessBit> accessBits);
Bool ValidateBufferBindingPointTarget(BufferTarget target);
} // namespace MobileGL::MG_Impl::GLImpl::BufferImpl
+28 -31
View File
@@ -9,34 +9,31 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void MultiDrawElementsIndirect(GLenum mode, GLenum type, const void* indirect, GLsizei drawcount,
GLsizei stride);
void MultiDrawArraysIndirect(GLenum mode, const void* indirect, GLsizei drawcount, GLsizei stride);
void DrawRangeElementsBaseVertex(GLenum mode, GLuint start, GLuint end, GLsizei count, GLenum type,
const void* indices, GLint basevertex);
void DrawRangeElements(GLenum mode, GLuint start, GLuint end, GLsizei count, GLenum type, const void* indices);
void DrawElementsInstancedBaseVertexBaseInstance(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLint basevertex, GLuint baseinstance);
void DrawElementsInstancedBaseVertex(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLint basevertex);
void DrawElementsInstancedBaseInstance(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLuint baseinstance);
void DrawElementsInstanced(GLenum mode, GLsizei count, GLenum type, const void* indices, GLsizei instancecount);
void DrawElementsIndirect(GLenum mode, GLenum type, const void* indirect);
void DrawArraysInstancedBaseInstance(GLenum mode, GLint first, GLsizei count, GLsizei instancecount,
GLuint baseinstance);
void DrawArraysInstanced(GLenum mode, GLint first, GLsizei count, GLsizei instancecount);
void DrawArraysIndirect(GLenum mode, const void* indirect);
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const void* indices, GLint basevertex);
void DrawArrays(GLenum mode, GLint first, GLsizei count);
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const void* const* indices,
GLsizei drawcount);
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const void* const* indices,
GLsizei drawcount, const GLint* basevertex);
void Clear(GLbitfield mask);
void DrawElements(GLenum mode, GLsizei count, GLenum type, const void* indices);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void MultiDrawElementsIndirect(GLenum mode, GLenum type, const void* indirect, GLsizei drawcount, GLsizei stride);
void MultiDrawArraysIndirect(GLenum mode, const void* indirect, GLsizei drawcount, GLsizei stride);
void DrawRangeElementsBaseVertex(GLenum mode, GLuint start, GLuint end, GLsizei count, GLenum type,
const void* indices, GLint basevertex);
void DrawRangeElements(GLenum mode, GLuint start, GLuint end, GLsizei count, GLenum type, const void* indices);
void DrawElementsInstancedBaseVertexBaseInstance(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLint basevertex, GLuint baseinstance);
void DrawElementsInstancedBaseVertex(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLint basevertex);
void DrawElementsInstancedBaseInstance(GLenum mode, GLsizei count, GLenum type, const void* indices,
GLsizei instancecount, GLuint baseinstance);
void DrawElementsInstanced(GLenum mode, GLsizei count, GLenum type, const void* indices, GLsizei instancecount);
void DrawElementsIndirect(GLenum mode, GLenum type, const void* indirect);
void DrawArraysInstancedBaseInstance(GLenum mode, GLint first, GLsizei count, GLsizei instancecount,
GLuint baseinstance);
void DrawArraysInstanced(GLenum mode, GLint first, GLsizei count, GLsizei instancecount);
void DrawArraysIndirect(GLenum mode, const void* indirect);
void DrawElementsBaseVertex(GLenum mode, GLsizei count, GLenum type, const void* indices, GLint basevertex);
void DrawArrays(GLenum mode, GLint first, GLsizei count);
void MultiDrawElements(GLenum mode, const GLsizei* count, GLenum type, const void* const* indices,
GLsizei drawcount);
void MultiDrawElementsBaseVertex(GLenum mode, const GLsizei* count, GLenum type, const void* const* indices,
GLsizei drawcount, const GLint* basevertex);
void Clear(GLbitfield mask);
void DrawElements(GLenum mode, GLsizei count, GLenum type, const void* indices);
} // namespace MobileGL::MG_Impl::GLImpl
@@ -38,11 +38,11 @@ namespace MobileGL::MG_Impl::GLImpl {
RenderbufferTarget rbTarget = MG_Util::ConvertGLEnumToRenderbufferTarget(target);
if (!FramebufferImpl::ValidateRenderbufferTarget(rbTarget)) return;
auto& bindingSlot = MG_State::pGLContext->GetRenderbufferBindingSlot(rbTarget);
auto renderbufferObject = bindingSlot.GetBoundObject();
auto& renderbufferObject = bindingSlot.GetBoundObject();
if (!renderbufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "RenderbufferStorage_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "RenderbufferStorage_State",
"Renderbuffer target is bound to no renderbuffer object."));
return;
}
@@ -50,7 +50,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!TextureImpl::ValidateTextureInternalFormat(format)) return;
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "RenderbufferStorage_State",
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "RenderbufferStorage_State",
"Width and height must be non-negative."));
return;
}
@@ -74,10 +74,11 @@ namespace MobileGL::MG_Impl::GLImpl {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GenRenderbuffers_State", "n must be non-negative"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GenRenderbuffers_State", "n must be non-negative"));
return;
}
auto renderbufferNames = MG_State::pGLContext->GenRenderbufferNames(n);
static thread_local Vector<GLuint> renderbufferNames;
MG_State::pGLContext->GenRenderbufferNames(n, renderbufferNames);
Memcpy(renderbuffers, renderbufferNames.data(), sizeof(GLuint) * static_cast<SizeT>(n));
}
@@ -85,10 +86,11 @@ namespace MobileGL::MG_Impl::GLImpl {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GenFramebuffers_State", "n must be non-negative"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GenFramebuffers_State", "n must be non-negative"));
return;
}
auto framebuffersNames = MG_State::pGLContext->GenFramebufferNames(n);
static thread_local Vector<GLuint> framebuffersNames;
MG_State::pGLContext->GenFramebufferNames(n, framebuffersNames);
Memcpy(framebuffers, framebuffersNames.data(), sizeof(GLuint) * static_cast<SizeT>(n));
}
@@ -119,11 +121,11 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!TextureImpl::ValidateTextureName(texture, true)) return;
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(framebufferTarget);
auto framebufferObject = bindingSlot.GetBoundObject();
auto& framebufferObject = bindingSlot.GetBoundObject();
if (!framebufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferTexture2D_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferTexture2D_State",
"Framebuffer target is bound to no framebuffer object."));
return;
}
@@ -133,11 +135,11 @@ namespace MobileGL::MG_Impl::GLImpl {
return;
}
auto textureObject = MG_State::pGLContext->GetTextureObject(texture);
auto& textureObject = MG_State::pGLContext->GetTextureObject(texture);
if (!textureObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferTexture2D_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferTexture2D_State",
std::format("Texture object {} is not valid.", texture)));
return;
}
@@ -166,11 +168,11 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!FramebufferImpl::ValidateFramebufferTarget(framebufferTarget)) return;
if (!FramebufferImpl::ValidateRenderbufferName(renderbuffer)) return;
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(framebufferTarget);
auto framebufferObject = bindingSlot.GetBoundObject();
auto& framebufferObject = bindingSlot.GetBoundObject();
if (!framebufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferRenderbuffer_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferRenderbuffer_State",
"Framebuffer target is bound to no framebuffer object."));
return;
}
@@ -180,11 +182,11 @@ namespace MobileGL::MG_Impl::GLImpl {
return;
}
auto renderbufferObject = MG_State::pGLContext->GetRenderbufferObject(renderbuffer);
auto& renderbufferObject = MG_State::pGLContext->GetRenderbufferObject(renderbuffer);
if (!renderbufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferRenderbuffer_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "FramebufferRenderbuffer_State",
std::format("Renderbuffer object {} is not valid.", renderbuffer)));
return;
}
@@ -196,18 +198,18 @@ namespace MobileGL::MG_Impl::GLImpl {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "`n` is less than 0."));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "`n` is less than 0."));
return;
} else if (n > MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "`n` is greater than `GL_MAX_DRAW_BUFFERS`."));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__, "`n` is greater than `GL_MAX_DRAW_BUFFERS`."));
return;
}
// Get bound framebuffer
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw);
auto fbo = bindingSlot.GetBoundObject();
auto& fbo = bindingSlot.GetBoundObject();
bool isDefaultFBO = (fbo == FramebufferImpl::pDefaultFramebufferInfo->defaultFBO);
static int existenceMap[(SizeT)FramebufferAttachmentType::FramebufferAttachmentTypeCount] = {-1};
@@ -220,7 +222,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (attType == FramebufferAttachmentType::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
std::format("bufs[{}] = {} is not an accepted value.", i,
MG_Util::ConvertGLEnumToString(bufs[i]))));
return;
@@ -230,7 +232,7 @@ namespace MobileGL::MG_Impl::GLImpl {
attType <= FramebufferAttachmentType::Color31) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", __func__,
std::format(
"FBO is default FBO, but bufs[{}] = {} is one of the `GL_COLOR_ATTACHMENTn` tokens.", i,
@@ -242,7 +244,7 @@ namespace MobileGL::MG_Impl::GLImpl {
attType <= FramebufferAttachmentType::BackRight) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", __func__,
std::format("FBO is not default FBO, but bufs[{}] = {} is anything other than `GL_NONE` or "
"one of the `GL_COLOR_ATTACHMENTn` tokens.",
@@ -253,7 +255,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (attType != FramebufferAttachmentType::None && existenceMap[(SizeT)attType] >= 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
std::format("a symbolic constant other than `GL_NONE` appears "
"more than once in bufs. bufs[{}] == bufs[{}] == {}.",
i, existenceMap[(SizeT)attType],
@@ -267,7 +269,7 @@ namespace MobileGL::MG_Impl::GLImpl {
(SizeT)FramebufferAttachmentType::Color0 + MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", __func__,
std::format("bufs[{}] == {} indicates a color buffer that does "
"not exist in the current GL context.",
i, MG_Util::ConvertGLEnumToString(bufs[i]))));
@@ -297,7 +299,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (attType == FramebufferAttachmentType::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", __func__,
std::format("`mode` = {} is not an accepted value.", MG_Util::ConvertGLEnumToString(mode))));
return;
@@ -305,7 +307,7 @@ namespace MobileGL::MG_Impl::GLImpl {
// Get bound framebuffer
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read);
auto fbo = bindingSlot.GetBoundObject();
auto& fbo = bindingSlot.GetBoundObject();
fbo->SetReadBuffer(attType);
}
@@ -313,13 +315,13 @@ namespace MobileGL::MG_Impl::GLImpl {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteRenderbuffers_State", "n must be non-negative."));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteRenderbuffers_State", "n must be non-negative."));
return;
}
if (!renderbuffers) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteRenderbuffers_State",
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteRenderbuffers_State",
"Renderbuffer names array cannot be null."));
return;
}
@@ -336,13 +338,13 @@ namespace MobileGL::MG_Impl::GLImpl {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteFramebuffers_State", "n must be non-negative."));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteFramebuffers_State", "n must be non-negative."));
return;
}
if (!framebuffers) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteFramebuffers_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteFramebuffers_State",
"Framebuffer names array cannot be null."));
return;
}
@@ -360,11 +362,11 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!FramebufferImpl::ValidateFramebufferTarget(framebufferTarget)) return GL_FRAMEBUFFER_UNDEFINED;
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(framebufferTarget);
auto framebufferObject = bindingSlot.GetBoundObject();
auto& framebufferObject = bindingSlot.GetBoundObject();
if (!framebufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "CheckFramebufferStatus_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "CheckFramebufferStatus_State",
"Framebuffer target is bound to no framebuffer object."));
return GL_FRAMEBUFFER_UNDEFINED;
}
@@ -382,11 +384,11 @@ namespace MobileGL::MG_Impl::GLImpl {
RenderbufferTarget renderbufferTarget = MG_Util::ConvertGLEnumToRenderbufferTarget(target);
if (!FramebufferImpl::ValidateRenderbufferTarget(renderbufferTarget)) return;
auto renderbufferObject = MG_State::pGLContext->GetRenderbufferObject(renderbuffer);
if (!renderbufferObject) {
Bool doesRenderbufferCreated = MG_State::pGLContext->ValidateRenderbufferObject(renderbuffer);
if (!doesRenderbufferCreated) {
MG_State::pGLContext->CreateRenderbufferObject(renderbuffer);
renderbufferObject = MG_State::pGLContext->GetRenderbufferObject(renderbuffer);
}
auto& renderbufferObject = MG_State::pGLContext->GetRenderbufferObject(renderbuffer);
auto& bindingSlot = MG_State::pGLContext->GetRenderbufferBindingSlot(renderbufferTarget);
bindingSlot.Bind(renderbufferObject);
@@ -403,11 +405,11 @@ namespace MobileGL::MG_Impl::GLImpl {
FramebufferTarget framebufferTarget = MG_Util::ConvertGLEnumToFramebufferTarget(target);
if (!FramebufferImpl::ValidateFramebufferTarget(framebufferTarget)) return;
auto framebufferObject = MG_State::pGLContext->GetFramebufferObject(framebuffer);
if (!framebufferObject) {
Bool doesFramebufferCreated = MG_State::pGLContext->ValidateFramebufferObject(framebuffer);
if (!doesFramebufferCreated) {
MG_State::pGLContext->CreateFramebufferObject(framebuffer);
framebufferObject = MG_State::pGLContext->GetFramebufferObject(framebuffer);
}
auto& framebufferObject = MG_State::pGLContext->GetFramebufferObject(framebuffer);
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(framebufferTarget);
bindingSlot.Bind(framebufferObject);
@@ -419,11 +421,11 @@ namespace MobileGL::MG_Impl::GLImpl {
RenderbufferTarget renderbufferTarget = MG_Util::ConvertGLEnumToRenderbufferTarget(target);
if (!FramebufferImpl::ValidateRenderbufferTarget(renderbufferTarget)) return;
auto& bindingSlot = MG_State::pGLContext->GetRenderbufferBindingSlot(renderbufferTarget);
auto renderbufferObject = bindingSlot.GetBoundObject();
auto& renderbufferObject = bindingSlot.GetBoundObject();
if (!renderbufferObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GetRenderbufferParameteriv_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetRenderbufferParameteriv_State",
"Renderbuffer target is bound to no renderbuffer object."));
return;
}
@@ -462,7 +464,7 @@ namespace MobileGL::MG_Impl::GLImpl {
default:
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "GetRenderbufferParameteriv_State",
std::format("pname {} is not an accepted value.", MG_Util::ConvertGLEnumToString(pname))));
return;
@@ -492,7 +494,7 @@ namespace MobileGL::MG_Impl::GLImpl {
// Check width/height
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"Width and height must be non-negative"));
return;
}
@@ -501,7 +503,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!TextureImpl::ValidateTextureInputFormat(textureInputFormat)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Invalid format"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Invalid format"));
return;
}
@@ -509,17 +511,17 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!TextureImpl::ValidateTexturePixelDataType(texturePixelDataType)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Invalid pixel data type"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Invalid pixel data type"));
return;
}
// Get bound framebuffer
auto& bindingSlot = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read);
auto framebufferObject = bindingSlot.GetBoundObject();
auto& framebufferObject = bindingSlot.GetBoundObject();
if (!framebufferObject) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"No framebuffer bound to read target"));
return;
}
@@ -528,7 +530,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!framebufferObject->CheckCompleteness()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidFramebufferOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Framebuffer is incomplete"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State", "Framebuffer is incomplete"));
return;
}
@@ -537,7 +539,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!framebufferObject->GetAttachment(FramebufferAttachmentType::Stencil).IsValid()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"No stencil buffer for stencil index format"));
return;
}
@@ -545,7 +547,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!framebufferObject->GetAttachment(FramebufferAttachmentType::Depth).IsValid()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"No depth buffer for depth component format"));
return;
}
@@ -554,7 +556,7 @@ namespace MobileGL::MG_Impl::GLImpl {
!framebufferObject->GetAttachment(FramebufferAttachmentType::Stencil).IsValid()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"No depth/stencil buffer for depth-stencil format"));
return;
}
@@ -563,7 +565,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (texturePixelDataType != TexturePixelDataType::UnsignedInt248 &&
texturePixelDataType != TexturePixelDataType::Float32UnsignedInt248Rev) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"Invalid type for depth-stencil format"));
return;
}
@@ -577,7 +579,7 @@ namespace MobileGL::MG_Impl::GLImpl {
// Check if PBO is mapped
if (pixelPackBufferObject->IsMapped()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"Pixel pack buffer is currently mapped"));
return;
}
@@ -587,7 +589,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (reinterpret_cast<uintptr_t>(pixels) % typeSize != 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"Pixel data not aligned for pixel pack buffer"));
return;
}
@@ -595,11 +597,11 @@ namespace MobileGL::MG_Impl::GLImpl {
// Check multisampling
if (framebufferObject->GetAttachment(FramebufferAttachmentType::Color0).IsRenderbuffer()) {
auto rbo = framebufferObject->GetAttachment(FramebufferAttachmentType::Color0).GetRenderbuffer();
auto& rbo = framebufferObject->GetAttachment(FramebufferAttachmentType::Color0).GetRenderbuffer();
if (rbo && rbo->GetSamples() > 1) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ReadPixels_State",
"ReadPixels not supported for multisampled framebuffers"));
return;
}
@@ -732,6 +734,6 @@ namespace MobileGL::MG_Impl::GLImpl {
}
namespace FramebufferImpl {
DefaultFramebufferInfo* pDefaultFramebufferInfo;
UniquePtr<DefaultFramebufferInfo> pDefaultFramebufferInfo;
} // namespace FramebufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
@@ -11,51 +11,49 @@
#include <Includes.h>
#include <MG_State/GLState/Core.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels);
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value);
void ClearBufferiv(GLenum buffer, GLint drawbuffer, const GLint* value);
void RenderbufferStorageMultisample(GLenum target, GLsizei samples, GLenum internalformat, GLsizei width,
GLsizei height);
void RenderbufferStorage(GLenum target, GLenum internalformat, GLsizei width, GLsizei height);
GLboolean IsRenderbuffer(GLuint renderbuffer);
void GetRenderbufferParameteriv(GLenum target, GLenum pname, GLint* params);
void GenRenderbuffers(GLsizei n, GLuint* renderbuffers);
void FramebufferRenderbuffer(GLenum target, GLenum attachment, GLenum renderbuffertarget, GLuint renderbuffer);
void DeleteRenderbuffers(GLsizei n, const GLuint* renderbuffers);
void BindRenderbuffer(GLenum target, GLuint renderbuffer);
void SampleMaski(GLuint maskNumber, GLbitfield mask);
GLboolean IsFramebuffer(GLuint framebuffer);
void GetFramebufferAttachmentParameteriv(GLenum target, GLenum attachment, GLenum pname, GLint* params);
void GenFramebuffers(GLsizei n, GLuint* framebuffers);
void FramebufferTextureLayer(GLenum target, GLenum attachment, GLuint texture, GLint level, GLint layer);
void FramebufferTexture3D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level,
GLint zoffset);
void FramebufferTexture2D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level);
void FramebufferTexture1D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level);
void FramebufferTexture(GLenum target, GLenum attachment, GLuint texture, GLint level);
void DrawBuffer(GLenum buf);
void DrawBuffers(GLsizei n, const GLenum* bufs);
void ReadBuffer(GLenum src);
void DeleteFramebuffers(GLsizei n, const GLuint* framebuffers);
GLenum CheckFramebufferStatus(GLenum target);
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
GLint dstY1, GLbitfield mask, GLenum filter);
void BindFramebuffer(GLenum target, GLuint framebuffer);
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void ReadPixels(GLint x, GLint y, GLsizei width, GLsizei height, GLenum format, GLenum type, void* pixels);
void ClearBufferfi(GLenum buffer, GLint drawbuffer, GLfloat depth, GLint stencil);
void ClearBufferfv(GLenum buffer, GLint drawbuffer, const GLfloat* value);
void ClearBufferuiv(GLenum buffer, GLint drawbuffer, const GLuint* value);
void ClearBufferiv(GLenum buffer, GLint drawbuffer, const GLint* value);
void RenderbufferStorageMultisample(GLenum target, GLsizei samples, GLenum internalformat, GLsizei width,
GLsizei height);
void RenderbufferStorage(GLenum target, GLenum internalformat, GLsizei width, GLsizei height);
GLboolean IsRenderbuffer(GLuint renderbuffer);
void GetRenderbufferParameteriv(GLenum target, GLenum pname, GLint* params);
void GenRenderbuffers(GLsizei n, GLuint* renderbuffers);
void FramebufferRenderbuffer(GLenum target, GLenum attachment, GLenum renderbuffertarget, GLuint renderbuffer);
void DeleteRenderbuffers(GLsizei n, const GLuint* renderbuffers);
void BindRenderbuffer(GLenum target, GLuint renderbuffer);
void SampleMaski(GLuint maskNumber, GLbitfield mask);
GLboolean IsFramebuffer(GLuint framebuffer);
void GetFramebufferAttachmentParameteriv(GLenum target, GLenum attachment, GLenum pname, GLint* params);
void GenFramebuffers(GLsizei n, GLuint* framebuffers);
void FramebufferTextureLayer(GLenum target, GLenum attachment, GLuint texture, GLint level, GLint layer);
void FramebufferTexture3D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level,
GLint zoffset);
void FramebufferTexture2D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level);
void FramebufferTexture1D(GLenum target, GLenum attachment, GLenum textarget, GLuint texture, GLint level);
void FramebufferTexture(GLenum target, GLenum attachment, GLuint texture, GLint level);
void DrawBuffer(GLenum buf);
void DrawBuffers(GLsizei n, const GLenum* bufs);
void ReadBuffer(GLenum src);
void DeleteFramebuffers(GLsizei n, const GLuint* framebuffers);
GLenum CheckFramebufferStatus(GLenum target);
void BlitFramebuffer(GLint srcX0, GLint srcY0, GLint srcX1, GLint srcY1, GLint dstX0, GLint dstY0, GLint dstX1,
GLint dstY1, GLbitfield mask, GLenum filter);
void BindFramebuffer(GLenum target, GLuint framebuffer);
namespace FramebufferImpl {
struct DefaultFramebufferInfo {
SharedPtr<MG_State::GLState::FramebufferObject> defaultFBO;
SharedPtr<MG_State::GLState::ITextureObject> colorAttachment;
SharedPtr<MG_State::GLState::ITextureObject> depthAttachment;
SharedPtr<MG_State::GLState::ITextureObject> stencilAttachment;
};
namespace FramebufferImpl {
struct DefaultFramebufferInfo {
SharedPtr<MG_State::GLState::FramebufferObject> defaultFBO;
SharedPtr<MG_State::GLState::ITextureObject> colorAttachment;
SharedPtr<MG_State::GLState::ITextureObject> depthAttachment;
SharedPtr<MG_State::GLState::ITextureObject> stencilAttachment;
};
extern DefaultFramebufferInfo* pDefaultFramebufferInfo;
} // namespace FramebufferImpl
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
extern UniquePtr<DefaultFramebufferInfo> pDefaultFramebufferInfo;
} // namespace FramebufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
@@ -13,85 +13,82 @@
#include <MG_Util/Converters/MGToGL/FramebufferEnumConverter.h>
#include <MG_Util/Converters/MGToStr/FramebufferEnumConverter.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace FramebufferImpl {
Bool ValidateFramebufferTarget(FramebufferTarget target) {
if (target == FramebufferTarget::Unknown) {
using namespace MG_Util;
String bufferTargetStr = ConvertFramebufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertFramebufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateFramebufferName(Uint index, Bool allowZero) {
if (index == 0 && !allowZero) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferName",
"Framebuffer name 0 is not valid in this situation."));
return false;
}
Bool isValid = MG_State::pGLContext->ValidateFramebufferName(index);
if (isValid) return true;
namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
Bool ValidateFramebufferTarget(FramebufferTarget target) {
if (target == FramebufferTarget::Unknown) {
using namespace MG_Util;
String bufferTargetStr = ConvertFramebufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertFramebufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferName",
std::format("Framebuffer name {} is not valid.", index)));
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferTarget",
std::format("Target {} ({}) is not valid.", bufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateFramebufferAttachmentType(FramebufferAttachmentType attachment) {
if (attachment == FramebufferAttachmentType::Unknown) {
using namespace MG_Util;
String attachmentStr = ConvertFramebufferAttachmentTypeToString(attachment);
String glAttachmentStr = ConvertGLEnumToString(ConvertFramebufferAttachmentTypeToGLEnum(attachment));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferAttachmentType",
std::format("Attachment type {} ({}) is not valid.", attachmentStr, glAttachmentStr)));
return false;
}
return true;
}
Bool ValidateRenderbufferTarget(RenderbufferTarget target) {
if (target == RenderbufferTarget::Unknown) {
using namespace MG_Util;
String renderbufferTargetStr = ConvertRenderbufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertRenderbufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferTarget",
std::format("Target {} ({}) is not valid.", renderbufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateRenderbufferName(Uint index, Bool allowZero) {
if (index == 0 && !allowZero) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferName",
"Renderbuffer name 0 is not valid in this situation."));
return false;
}
Bool isValid = MG_State::pGLContext->ValidateRenderbufferName(index);
if (isValid) return true;
Bool ValidateFramebufferName(Uint index, Bool allowZero) {
if (index == 0 && !allowZero) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferName",
std::format("Renderbuffer name {} is not valid.", index)));
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferName",
"Framebuffer name 0 is not valid in this situation."));
return false;
}
} // namespace FramebufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
Bool isValid = MG_State::pGLContext->ValidateFramebufferName(index);
if (isValid) return true;
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferName",
std::format("Framebuffer name {} is not valid.", index)));
return false;
}
Bool ValidateFramebufferAttachmentType(FramebufferAttachmentType attachment) {
if (attachment == FramebufferAttachmentType::Unknown) {
using namespace MG_Util;
String attachmentStr = ConvertFramebufferAttachmentTypeToString(attachment);
String glAttachmentStr = ConvertGLEnumToString(ConvertFramebufferAttachmentTypeToGLEnum(attachment));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateFramebufferAttachmentType",
std::format("Attachment type {} ({}) is not valid.", attachmentStr, glAttachmentStr)));
return false;
}
return true;
}
Bool ValidateRenderbufferTarget(RenderbufferTarget target) {
if (target == RenderbufferTarget::Unknown) {
using namespace MG_Util;
String renderbufferTargetStr = ConvertRenderbufferTargetToString(target);
String glTargetStr = ConvertGLEnumToString(ConvertRenderbufferTargetToGLEnum(target));
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferTarget",
std::format("Target {} ({}) is not valid.", renderbufferTargetStr, glTargetStr)));
return false;
}
return true;
}
Bool ValidateRenderbufferName(Uint index, Bool allowZero) {
if (index == 0 && !allowZero) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferName",
"Renderbuffer name 0 is not valid in this situation."));
return false;
}
Bool isValid = MG_State::pGLContext->ValidateRenderbufferName(index);
if (isValid) return true;
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl/FramebufferImpl", "ValidateRenderbufferName",
std::format("Renderbuffer name {} is not valid.", index)));
return false;
}
} // namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl
@@ -10,12 +10,10 @@
#include <Includes.h>
#include <MG_State/GLState/FramebufferState/FramebufferObject.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace FramebufferImpl {
Bool ValidateFramebufferTarget(FramebufferTarget target);
Bool ValidateFramebufferName(Uint index, Bool allowZero = true);
Bool ValidateFramebufferAttachmentType(FramebufferAttachmentType attachment);
Bool ValidateRenderbufferTarget(RenderbufferTarget target);
Bool ValidateRenderbufferName(Uint index, Bool allowZero = true);
} // namespace FramebufferImpl
} // namespace MobileGL::MG_Impl::GLImpl
namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl {
Bool ValidateFramebufferTarget(FramebufferTarget target);
Bool ValidateFramebufferName(Uint index, Bool allowZero = true);
Bool ValidateFramebufferAttachmentType(FramebufferAttachmentType attachment);
Bool ValidateRenderbufferTarget(RenderbufferTarget target);
Bool ValidateRenderbufferName(Uint index, Bool allowZero = true);
} // namespace MobileGL::MG_Impl::GLImpl::FramebufferImpl
+15 -14
View File
@@ -7,8 +7,6 @@
// End of Source File Header
#include "GL_Getter.h"
#include "GL/gl.h"
#include "MG_Util/Debug/Log.h"
#include <Config.h>
#include <MGGitHash.h>
#include <MG_State/GLState/Core.h>
@@ -127,7 +125,7 @@ namespace MobileGL::MG_Impl::GLImpl {
if (!params) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GetIntegerv", "params pointer cannot be null"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetIntegerv", "params pointer cannot be null"));
return;
}
@@ -146,9 +144,9 @@ namespace MobileGL::MG_Impl::GLImpl {
*params = 0; // TODO
break;
case GL_ARRAY_BUFFER_BINDING: {
auto obj = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex).GetBoundObject();
auto& obj = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex).GetBoundObject();
if (obj)
*params = obj->GetExternalIndex();
*params = (GLint)obj->GetExternalIndex();
else
*params = 0;
break;
@@ -256,14 +254,14 @@ namespace MobileGL::MG_Impl::GLImpl {
break;
case GL_CURRENT_PROGRAM: {
const auto& currentProgram = MG_State::pGLContext->GetCurrentProgram();
*params = currentProgram ? currentProgram->GetExternalIndex() : 0;
*params = currentProgram ? (GLint)currentProgram->GetExternalIndex() : 0;
break;
}
case GL_DEPTH_CLEAR_VALUE:
*params = MG_State::pGLContext->GetClearDepth();
*params = (GLint)MG_State::pGLContext->GetClearDepth();
break;
case GL_DEPTH_FUNC:
*params = MG_Util::ConvertDepthTestFuncToGLEnum(MG_State::pGLContext->GetDepthFunc());
*params = (GLint)MG_Util::ConvertDepthTestFuncToGLEnum(MG_State::pGLContext->GetDepthFunc());
break;
case GL_DEPTH_RANGE:
*params = 0; // TODO
@@ -288,12 +286,12 @@ namespace MobileGL::MG_Impl::GLImpl {
break;
case GL_DRAW_FRAMEBUFFER_BINDING: {
const auto& FBO = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw).GetBoundObject();
*params = FBO ? FBO->GetExternalIndex() : 0;
*params = FBO ? (GLint)FBO->GetExternalIndex() : 0;
break;
}
case GL_READ_FRAMEBUFFER_BINDING: {
const auto& FBO = MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read).GetBoundObject();
*params = FBO ? FBO->GetExternalIndex() : 0;
*params = FBO ? (GLint)FBO->GetExternalIndex() : 0;
break;
}
case GL_ELEMENT_ARRAY_BUFFER_BINDING: {
@@ -302,7 +300,7 @@ namespace MobileGL::MG_Impl::GLImpl {
break;
}
const auto& bufferObject = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Index).GetBoundObject();
*params = bufferObject ? bufferObject->GetExternalIndex() : 0;
*params = bufferObject ? (GLint)bufferObject->GetExternalIndex() : 0;
break;
}
case GL_FRAGMENT_SHADER_DERIVATIVE_HINT:
@@ -886,7 +884,7 @@ namespace MobileGL::MG_Impl::GLImpl {
default:
MGLOG_E("glGetIntegerv: Invalid enum %s (0x%X)", MG_Util::ConvertGLEnumToString(pname).c_str(), pname);
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GetIntegerv",
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetIntegerv",
std::format("Invalid enum: 0x{:X}", pname)));
break;
@@ -894,7 +892,10 @@ namespace MobileGL::MG_Impl::GLImpl {
}
GLenum GetError() {
ErrorCode errorCode = MG_State::pGLContext->PopGLError().value_or(Error{ErrorCode::NoError, nullptr}).code;
return MG_Util::ConvertErrorCodeToGLEnum(errorCode);
auto error = MG_State::pGLContext->PopGLError();
if (!error || !error->get()) {
return GL_NO_ERROR;
}
return MG_Util::ConvertErrorCodeToGLEnum(error->get()->code);
}
} // namespace MobileGL::MG_Impl::GLImpl
File diff suppressed because it is too large Load Diff
+56 -58
View File
@@ -9,61 +9,59 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
void AttachShader(GLuint program, GLuint shader);
void BindAttribLocation(GLuint program, GLuint index, const GLchar* name);
void CompileShader(GLuint shader);
GLuint CreateProgram(void);
GLuint CreateShader(GLenum type);
void DeleteProgram(GLuint program);
void DeleteShader(GLuint shader);
void DetachShader(GLuint program, GLuint shader);
void GetActiveAttrib(GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLint* size, GLenum* type,
GLchar* name);
void GetActiveUniform(GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLint* size, GLenum* type,
GLchar* name);
void GetAttachedShaders(GLuint program, GLsizei maxCount, GLsizei* count, GLuint* shaders);
GLint GetAttribLocation(GLuint program, const GLchar* name);
void GetProgramiv(GLuint program, GLenum pname, GLint* params);
void GetProgramInfoLog(GLuint program, GLsizei bufSize, GLsizei* length, GLchar* infoLog);
void GetShaderiv(GLuint shader, GLenum pname, GLint* params);
void GetShaderInfoLog(GLuint shader, GLsizei bufSize, GLsizei* length, GLchar* infoLog);
void GetShaderSource(GLuint shader, GLsizei bufSize, GLsizei* length, GLchar* source);
GLint GetUniformLocation(GLuint program, const GLchar* name);
void GetUniformfv(GLuint program, GLint location, GLfloat* params);
void GetUniformiv(GLuint program, GLint location, GLint* params);
GLboolean IsProgram(GLuint program);
GLboolean IsShader(GLuint shader);
void LinkProgram(GLuint program);
void ShaderSource(GLuint shader, GLsizei count, const GLchar* const* string, const GLint* length);
void UseProgram(GLuint program);
void Uniform1f(GLint location, GLfloat v0);
void Uniform2f(GLint location, GLfloat v0, GLfloat v1);
void Uniform3f(GLint location, GLfloat v0, GLfloat v1, GLfloat v2);
void Uniform4f(GLint location, GLfloat v0, GLfloat v1, GLfloat v2, GLfloat v3);
void Uniform1i(GLint location, GLint v0);
void Uniform2i(GLint location, GLint v0, GLint v1);
void Uniform3i(GLint location, GLint v0, GLint v1, GLint v2);
void Uniform4i(GLint location, GLint v0, GLint v1, GLint v2, GLint v3);
void Uniform1fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform2fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform3fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform4fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform1iv(GLint location, GLsizei count, const GLint* value);
void Uniform2iv(GLint location, GLsizei count, const GLint* value);
void Uniform3iv(GLint location, GLsizei count, const GLint* value);
void Uniform4iv(GLint location, GLsizei count, const GLint* value);
void UniformMatrix2fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
void UniformMatrix3fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
void UniformMatrix4fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
GLuint GetUniformBlockIndex(GLuint program, const GLchar* uniformBlockName);
void UniformBlockBinding(GLuint program, GLuint uniformBlockIndex, GLuint uniformBlockBinding);
void GetActiveUniformBlockiv(GLuint program, GLuint uniformBlockIndex, GLenum pname, GLint* params);
void GetActiveUniformBlockName(GLuint program, GLuint uniformBlockIndex, GLsizei bufSize, GLsizei* length,
GLchar* uniformBlockName);
void BindFragDataLocation(GLuint program, GLuint colorNumber, const char* name);
GLint GetFragDataLocation(GLuint program, const char* name);
void ValidateProgram(GLuint program);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
void AttachShader(GLuint program, GLuint shader);
void BindAttribLocation(GLuint program, GLuint index, const GLchar* name);
void CompileShader(GLuint shader);
GLuint CreateProgram(void);
GLuint CreateShader(GLenum type);
void DeleteProgram(GLuint program);
void DeleteShader(GLuint shader);
void DetachShader(GLuint program, GLuint shader);
void GetActiveAttrib(GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLint* size, GLenum* type,
GLchar* name);
void GetActiveUniform(GLuint program, GLuint index, GLsizei bufSize, GLsizei* length, GLint* size, GLenum* type,
GLchar* name);
void GetAttachedShaders(GLuint program, GLsizei maxCount, GLsizei* count, GLuint* shaders);
GLint GetAttribLocation(GLuint program, const GLchar* name);
void GetProgramiv(GLuint program, GLenum pname, GLint* params);
void GetProgramInfoLog(GLuint program, GLsizei bufSize, GLsizei* length, GLchar* infoLog);
void GetShaderiv(GLuint shader, GLenum pname, GLint* params);
void GetShaderInfoLog(GLuint shader, GLsizei bufSize, GLsizei* length, GLchar* infoLog);
void GetShaderSource(GLuint shader, GLsizei bufSize, GLsizei* length, GLchar* source);
GLint GetUniformLocation(GLuint program, const GLchar* name);
void GetUniformfv(GLuint program, GLint location, GLfloat* params);
void GetUniformiv(GLuint program, GLint location, GLint* params);
GLboolean IsProgram(GLuint program);
GLboolean IsShader(GLuint shader);
void LinkProgram(GLuint program);
void ShaderSource(GLuint shader, GLsizei count, const GLchar* const* string, const GLint* length);
void UseProgram(GLuint program);
void Uniform1f(GLint location, GLfloat v0);
void Uniform2f(GLint location, GLfloat v0, GLfloat v1);
void Uniform3f(GLint location, GLfloat v0, GLfloat v1, GLfloat v2);
void Uniform4f(GLint location, GLfloat v0, GLfloat v1, GLfloat v2, GLfloat v3);
void Uniform1i(GLint location, GLint v0);
void Uniform2i(GLint location, GLint v0, GLint v1);
void Uniform3i(GLint location, GLint v0, GLint v1, GLint v2);
void Uniform4i(GLint location, GLint v0, GLint v1, GLint v2, GLint v3);
void Uniform1fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform2fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform3fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform4fv(GLint location, GLsizei count, const GLfloat* value);
void Uniform1iv(GLint location, GLsizei count, const GLint* value);
void Uniform2iv(GLint location, GLsizei count, const GLint* value);
void Uniform3iv(GLint location, GLsizei count, const GLint* value);
void Uniform4iv(GLint location, GLsizei count, const GLint* value);
void UniformMatrix2fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
void UniformMatrix3fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
void UniformMatrix4fv(GLint location, GLsizei count, GLboolean transpose, const GLfloat* value);
GLuint GetUniformBlockIndex(GLuint program, const GLchar* uniformBlockName);
void UniformBlockBinding(GLuint program, GLuint uniformBlockIndex, GLuint uniformBlockBinding);
void GetActiveUniformBlockiv(GLuint program, GLuint uniformBlockIndex, GLenum pname, GLint* params);
void GetActiveUniformBlockName(GLuint program, GLuint uniformBlockIndex, GLsizei bufSize, GLsizei* length,
GLchar* uniformBlockName);
void BindFragDataLocation(GLuint program, GLuint colorNumber, const char* name);
GLint GetFragDataLocation(GLuint program, const char* name);
void ValidateProgram(GLuint program);
} // namespace MobileGL::MG_Impl::GLImpl
@@ -7,474 +7,467 @@
// End of Source File Header
#include "GL_RenderState.h"
#include "MG_State/GLState/RenderState/RenderState.h"
#include "MG_Util/Converters/GLToStr/GLEnumConverter.h"
#include <MG_State/GLState/Core.h>
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
#include <MG_Util/Converters/GLToMG/RenderStateEnumConverter.h>
#include <MG_Util/Converters/MGToGL/RenderStateEnumConverter.h>
#include <MG_Util/Converters/MGToStr/RenderStateEnumConverter.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
void Viewport_State(GLint x, GLint y, GLsizei width, GLsizei height) {
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "Viewport_State",
"Width abd height must be non-negative."));
return;
}
MG_State::pGLContext->SetViewport(IntVec4(x, y, width, height));
}
void StencilOpSeparate_State(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass) {
// TODO: implement
}
void StencilOp_State(GLenum fail, GLenum zfail, GLenum zpass) {
// TODO: implement
}
void StencilMaskSeparate_State(GLenum face, GLuint mask) {
// TODO: implement
}
void StencilMask_State(GLuint mask) {
// TODO: implement
}
void StencilFuncSeparate_State(GLenum face, GLenum func, GLint ref, GLuint mask) {
// TODO: implement
}
void StencilFunc_State(GLenum func, GLint ref, GLuint mask) {
// TODO: implement
}
void Scissor_State(GLint x, GLint y, GLsizei width, GLsizei height) {
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "Scissor_State",
"Width abd height must be non-negative."));
return;
}
MG_State::pGLContext->SetScissorBox(IntVec4(x, y, width, height));
}
void SampleCoverage_State(GLfloat value, GLboolean invert) {
// TODO: implement
}
void PolygonOffset_State(GLfloat factor, GLfloat units) {
// TODO: implement
}
void PolygonMode_State(GLenum face, GLenum mode) {
// TODO: implement
}
void PointSize_State(GLfloat size) {
// TODO: implement
}
void PointParameterf_State(GLenum pname, GLfloat param) {
// TODO: implement
}
void PointParameteri_State(GLenum pname, GLint param) {
// TODO: implement
}
void PixelStorei_State(GLenum pname, GLint param) {
MGLOG_D("%s: %s = %d", __func__, MG_Util::ConvertGLEnumToString(pname).c_str(), param);
PixelStoreParam pixelStoreParam = MG_Util::ConvertGLEnumToPixelStoreParam(pname);
if (pixelStoreParam == PixelStoreParam::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "PixelStorei_State",
"Pixel store param enum " +
MG_Util::ConvertPixelStoreParamToString(pixelStoreParam) + "(" +
MG_Util::ConvertGLEnumToString(pname) + ") is not supported."));
return;
}
MG_State::pGLContext->SetPixelStoreParam(pixelStoreParam, param);
}
void LogicOp_State(GLenum opcode) {
// TODO: implement
}
void LineWidth_State(GLfloat width) {
// TODO: implement
}
GLboolean IsEnabledi_State(GLenum target, GLuint index) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "IsEnabledi_State",
"Capability enum " +
MG_Util::ConvertCapabilityInputToString(capInput) + "(" +
MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return GL_FALSE;
}
return MG_State::pGLContext->IsCapabilityEnabledIndexed(capInput, index) ? GL_TRUE : GL_FALSE;
}
GLboolean IsEnabled_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "IsEnabled_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return GL_FALSE;
}
return MG_State::pGLContext->IsCapabilityEnabled(capInput) ? GL_TRUE : GL_FALSE;
}
void Hint_State(GLenum target, GLenum mode) {
// TODO: implement
}
void FrontFace_State(GLenum mode) {
// TODO: implement
}
void Enable_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "Enable_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapability(capInput, true);
}
void Disable_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "Disable_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapability(capInput, false);
}
void DepthRange_State(GLclampd near_val, GLclampd far_val) {
// TODO: implement
}
void DepthMask_State(GLboolean flag) {
MG_State::pGLContext->SetDepthMask(flag == GL_TRUE);
}
void DepthFunc_State(GLenum func) {
DepthTestFunc depthFunc = MG_Util::ConvertGLEnumToDepthTestFunc(func);
if (depthFunc == DepthTestFunc::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DepthFunc_State",
"Depth function enum " +
MG_Util::ConvertDepthTestFuncToString(depthFunc) + "(" +
MG_Util::ConvertGLEnumToString(func) + ") is not supported."));
return;
}
MG_State::pGLContext->SetDepthFunc(depthFunc);
}
void CullFace_State(GLenum mode) {
CullFaceMode cullFaceMode = MG_Util::ConvertGLEnumToCullFaceMode(mode);
if (cullFaceMode == CullFaceMode::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "CullFace_State",
"Cull face mode enum " +
MG_Util::ConvertCullFaceModeToString(cullFaceMode) + "(" +
MG_Util::ConvertGLEnumToString(mode) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCullFaceMode(cullFaceMode);
}
void ColorMask_State(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha) {
MG_State::pGLContext->SetColorMask(
BoolVec4(red == GL_TRUE, green == GL_TRUE, blue == GL_TRUE, alpha == GL_TRUE));
}
void ClampColor_State(GLenum target, GLenum clamp) {
// TODO: implement
}
void BlendFuncSeparate_State(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha) {
BlendFactor srcRGB = MG_Util::ConvertGLEnumToBlendFactor(sfactorRGB);
BlendFactor dstRGB = MG_Util::ConvertGLEnumToBlendFactor(dfactorRGB);
BlendFactor srcAlpha = MG_Util::ConvertGLEnumToBlendFactor(sfactorAlpha);
BlendFactor dstAlpha = MG_Util::ConvertGLEnumToBlendFactor(dfactorAlpha);
if (srcRGB == BlendFactor::Unknown || dstRGB == BlendFactor::Unknown || srcAlpha == BlendFactor::Unknown ||
dstAlpha == BlendFactor::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "BlendFuncSeparate_State",
"One of the blend factor enums is not supported: srcRGB " +
MG_Util::ConvertBlendFactorToString(srcRGB) + "(" +
MG_Util::ConvertGLEnumToString(sfactorRGB) + "), dstRGB " +
MG_Util::ConvertBlendFactorToString(dstRGB) + "(" +
MG_Util::ConvertGLEnumToString(dfactorRGB) + "), srcAlpha " +
MG_Util::ConvertBlendFactorToString(srcAlpha) + "(" +
MG_Util::ConvertGLEnumToString(sfactorAlpha) + "), dstAlpha " +
MG_Util::ConvertBlendFactorToString(dstAlpha) + "(" +
MG_Util::ConvertGLEnumToString(dfactorAlpha) + ")."));
return;
}
MG_State::pGLContext->SetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void BlendFunc_State(GLenum sfactor, GLenum dfactor) {
BlendFuncSeparate_State(sfactor, dfactor, sfactor, dfactor);
}
void BlendEquation_State(GLenum mode) {
// TODO: implement
}
void BlendColor_State(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
// TODO: implement
}
void ClearStencil_State(GLint s) {
MG_State::pGLContext->SetClearStencil(static_cast<Int>(s));
}
void ClearDepth_State(GLclampd depth) {
MG_State::pGLContext->SetClearDepth(static_cast<Float>(depth));
}
namespace MobileGL::MG_Impl::GLImpl {
void Viewport_State(GLint x, GLint y, GLsizei width, GLsizei height) {
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Viewport_State",
"Width abd height must be non-negative."));
return;
}
MG_State::pGLContext->SetViewport(IntVec4(x, y, width, height));
}
void StencilOpSeparate_State(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass) {
// TODO: implement
}
void StencilOp_State(GLenum fail, GLenum zfail, GLenum zpass) {
// TODO: implement
}
void StencilMaskSeparate_State(GLenum face, GLuint mask) {
// TODO: implement
}
void StencilMask_State(GLuint mask) {
// TODO: implement
}
void StencilFuncSeparate_State(GLenum face, GLenum func, GLint ref, GLuint mask) {
// TODO: implement
}
void StencilFunc_State(GLenum func, GLint ref, GLuint mask) {
// TODO: implement
}
void Scissor_State(GLint x, GLint y, GLsizei width, GLsizei height) {
if (width < 0 || height < 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Scissor_State",
"Width abd height must be non-negative."));
return;
}
MG_State::pGLContext->SetScissorBox(IntVec4(x, y, width, height));
}
void SampleCoverage_State(GLfloat value, GLboolean invert) {
// TODO: implement
}
void PolygonOffset_State(GLfloat factor, GLfloat units) {
// TODO: implement
}
void PolygonMode_State(GLenum face, GLenum mode) {
// TODO: implement
}
void PointSize_State(GLfloat size) {
// TODO: implement
}
void PointParameterf_State(GLenum pname, GLfloat param) {
// TODO: implement
}
void PointParameteri_State(GLenum pname, GLint param) {
// TODO: implement
}
void PixelStorei_State(GLenum pname, GLint param) {
MGLOG_D("%s: %s = %d", __func__, MG_Util::ConvertGLEnumToString(pname).c_str(), param);
PixelStoreParam pixelStoreParam = MG_Util::ConvertGLEnumToPixelStoreParam(pname);
if (pixelStoreParam == PixelStoreParam::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "PixelStorei_State",
"Pixel store param enum " +
MG_Util::ConvertPixelStoreParamToString(pixelStoreParam) + "(" +
MG_Util::ConvertGLEnumToString(pname) + ") is not supported."));
return;
}
MG_State::pGLContext->SetPixelStoreParam(pixelStoreParam, param);
}
void LogicOp_State(GLenum opcode) {
// TODO: implement
}
void LineWidth_State(GLfloat width) {
// TODO: implement
}
GLboolean IsEnabledi_State(GLenum target, GLuint index) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "IsEnabledi_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return GL_FALSE;
}
return MG_State::pGLContext->IsCapabilityEnabledIndexed(capInput, index) ? GL_TRUE : GL_FALSE;
}
GLboolean IsEnabled_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "IsEnabled_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return GL_FALSE;
}
return MG_State::pGLContext->IsCapabilityEnabled(capInput) ? GL_TRUE : GL_FALSE;
}
void Hint_State(GLenum target, GLenum mode) {
// TODO: implement
}
void FrontFace_State(GLenum mode) {
// TODO: implement
}
void Enable_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Enable_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapability(capInput, true);
}
void Disable_State(GLenum cap) {
CapabilityInput capInput = MG_Util::ConvertGLEnumToCapabilityInput(cap);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Disable_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(cap) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapability(capInput, false);
}
void DepthRange_State(GLclampd near_val, GLclampd far_val) {
// TODO: implement
}
void DepthMask_State(GLboolean flag) {
MG_State::pGLContext->SetDepthMask(flag == GL_TRUE);
}
void DepthFunc_State(GLenum func) {
DepthTestFunc depthFunc = MG_Util::ConvertGLEnumToDepthTestFunc(func);
if (depthFunc == DepthTestFunc::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DepthFunc_State",
"Depth function enum " + MG_Util::ConvertDepthTestFuncToString(depthFunc) +
"(" + MG_Util::ConvertGLEnumToString(func) + ") is not supported."));
return;
}
MG_State::pGLContext->SetDepthFunc(depthFunc);
}
void CullFace_State(GLenum mode) {
CullFaceMode cullFaceMode = MG_Util::ConvertGLEnumToCullFaceMode(mode);
if (cullFaceMode == CullFaceMode::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "CullFace_State",
"Cull face mode enum " +
MG_Util::ConvertCullFaceModeToString(cullFaceMode) + "(" +
MG_Util::ConvertGLEnumToString(mode) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCullFaceMode(cullFaceMode);
}
void ColorMask_State(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha) {
MG_State::pGLContext->SetColorMask(
BoolVec4(red == GL_TRUE, green == GL_TRUE, blue == GL_TRUE, alpha == GL_TRUE));
}
void ClampColor_State(GLenum target, GLenum clamp) {
// TODO: implement
}
void BlendFuncSeparate_State(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha) {
BlendFactor srcRGB = MG_Util::ConvertGLEnumToBlendFactor(sfactorRGB);
BlendFactor dstRGB = MG_Util::ConvertGLEnumToBlendFactor(dfactorRGB);
BlendFactor srcAlpha = MG_Util::ConvertGLEnumToBlendFactor(sfactorAlpha);
BlendFactor dstAlpha = MG_Util::ConvertGLEnumToBlendFactor(dfactorAlpha);
if (srcRGB == BlendFactor::Unknown || dstRGB == BlendFactor::Unknown || srcAlpha == BlendFactor::Unknown ||
dstAlpha == BlendFactor::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BlendFuncSeparate_State",
"One of the blend factor enums is not supported: srcRGB " +
MG_Util::ConvertBlendFactorToString(srcRGB) + "(" +
MG_Util::ConvertGLEnumToString(sfactorRGB) + "), dstRGB " +
MG_Util::ConvertBlendFactorToString(dstRGB) + "(" +
MG_Util::ConvertGLEnumToString(dfactorRGB) + "), srcAlpha " +
MG_Util::ConvertBlendFactorToString(srcAlpha) + "(" +
MG_Util::ConvertGLEnumToString(sfactorAlpha) + "), dstAlpha " +
MG_Util::ConvertBlendFactorToString(dstAlpha) + "(" +
MG_Util::ConvertGLEnumToString(dfactorAlpha) + ")."));
return;
}
MG_State::pGLContext->SetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void BlendFunc_State(GLenum sfactor, GLenum dfactor) {
BlendFuncSeparate_State(sfactor, dfactor, sfactor, dfactor);
}
void BlendEquation_State(GLenum mode) {
// TODO: implement
}
void BlendColor_State(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
// TODO: implement
}
void ClearStencil_State(GLint s) {
MG_State::pGLContext->SetClearStencil(static_cast<Int>(s));
}
void ClearDepth_State(GLclampd depth) {
MG_State::pGLContext->SetClearDepth(static_cast<Float>(depth));
}
void ClearColor_State(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
MG_State::pGLContext->SetClearColor(FloatVec4(red, green, blue, alpha));
}
void BlendFuncSeparatei_State(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha) {
if (buf >= MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "BlendFuncSeparatei_State",
"Buffer index " + std::to_string(buf) + " is out of range. Max supported is " +
std::to_string(MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS - 1) + "."));
return;
}
BlendFactor srcRGBM = MG_Util::ConvertGLEnumToBlendFactor(srcRGB);
BlendFactor dstRGBM = MG_Util::ConvertGLEnumToBlendFactor(dstRGB);
BlendFactor srcAlphaM = MG_Util::ConvertGLEnumToBlendFactor(srcAlpha);
BlendFactor dstAlphaM = MG_Util::ConvertGLEnumToBlendFactor(dstAlpha);
MG_State::pGLContext->SetBlendFuncIndexed(buf, srcRGBM, dstRGBM, srcAlphaM, dstAlphaM);
}
void Disablei_State(GLenum target, GLuint index) {
auto capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Disablei_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapabilityIndexed(capInput, index, false);
}
void Enablei_State(GLenum target, GLuint index) {
auto capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "Enablei_State",
"Capability enum " + MG_Util::ConvertCapabilityInputToString(capInput) +
"(" + MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapabilityIndexed(capInput, index, true);
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void BlendFuncSeparatei(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha) {
BlendFuncSeparatei_State(buf, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void Disablei(GLenum target, GLuint index) {
Disablei_State(target, index);
}
void Enablei(GLenum target, GLuint index) {
Enablei_State(target, index);
}
void BlendFunc(GLenum sfactor, GLenum dfactor) {
BlendFunc_State(sfactor, dfactor);
}
void Viewport(GLint x, GLint y, GLsizei width, GLsizei height) {
Viewport_State(x, y, width, height);
}
void StencilOpSeparate(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass) {
StencilOpSeparate_State(face, sfail, dpfail, dppass);
}
void StencilOp(GLenum fail, GLenum zfail, GLenum zpass) {
StencilOp_State(fail, zfail, zpass);
}
void StencilMaskSeparate(GLenum face, GLuint mask) {
StencilMaskSeparate_State(face, mask);
}
void StencilMask(GLuint mask) {
StencilMask_State(mask);
}
void StencilFuncSeparate(GLenum face, GLenum func, GLint ref, GLuint mask) {
StencilFuncSeparate_State(face, func, ref, mask);
}
void StencilFunc(GLenum func, GLint ref, GLuint mask) {
StencilFunc_State(func, ref, mask);
}
void Scissor(GLint x, GLint y, GLsizei width, GLsizei height) {
Scissor_State(x, y, width, height);
}
void SampleCoverage(GLfloat value, GLboolean invert) {
SampleCoverage_State(value, invert);
}
void PolygonOffset(GLfloat factor, GLfloat units) {
PolygonOffset_State(factor, units);
}
void PolygonMode(GLenum face, GLenum mode) {
PolygonMode_State(face, mode);
}
void PointSize(GLfloat size) {
PointSize_State(size);
}
void PointParameterf(GLenum pname, GLfloat param) {
PointParameterf_State(pname, param);
}
void PointParameteri(GLenum pname, GLint param) {
PointParameteri_State(pname, param);
}
void PixelStorei(GLenum pname, GLint param) {
PixelStorei_State(pname, param);
}
void LogicOp(GLenum opcode) {
LogicOp_State(opcode);
}
void ClearColor_State(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
MG_State::pGLContext->SetClearColor(FloatVec4(red, green, blue, alpha));
}
void BlendFuncSeparatei_State(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha) {
if (buf >= MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "BlendFuncSeparatei_State",
"Buffer index " + std::to_string(buf) + " is out of range. Max supported is " +
std::to_string(MG_State::GLState::FramebufferObject::MAX_DRAW_BUFFERS - 1) + "."));
return;
}
BlendFactor srcRGBM = MG_Util::ConvertGLEnumToBlendFactor(srcRGB);
BlendFactor dstRGBM = MG_Util::ConvertGLEnumToBlendFactor(dstRGB);
BlendFactor srcAlphaM = MG_Util::ConvertGLEnumToBlendFactor(srcAlpha);
BlendFactor dstAlphaM = MG_Util::ConvertGLEnumToBlendFactor(dstAlpha);
MG_State::pGLContext->SetBlendFuncIndexed(buf, srcRGBM, dstRGBM, srcAlphaM, dstAlphaM);
}
void Disablei_State(GLenum target, GLuint index) {
auto capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "Disablei_State",
"Capability enum " +
MG_Util::ConvertCapabilityInputToString(capInput) + "(" +
MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapabilityIndexed(capInput, index, false);
}
void Enablei_State(GLenum target, GLuint index) {
auto capInput = MG_Util::ConvertGLEnumToCapabilityInput(target);
if (capInput == CapabilityInput::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "Enablei_State",
"Capability enum " +
MG_Util::ConvertCapabilityInputToString(capInput) + "(" +
MG_Util::ConvertGLEnumToString(target) + ") is not supported."));
return;
}
MG_State::pGLContext->SetCapabilityIndexed(capInput, index, true);
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void BlendFuncSeparatei(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha) {
BlendFuncSeparatei_State(buf, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void Disablei(GLenum target, GLuint index) {
Disablei_State(target, index);
}
void Enablei(GLenum target, GLuint index) {
Enablei_State(target, index);
}
void BlendFunc(GLenum sfactor, GLenum dfactor) {
BlendFunc_State(sfactor, dfactor);
}
void Viewport(GLint x, GLint y, GLsizei width, GLsizei height) {
Viewport_State(x, y, width, height);
}
void StencilOpSeparate(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass) {
StencilOpSeparate_State(face, sfail, dpfail, dppass);
}
void StencilOp(GLenum fail, GLenum zfail, GLenum zpass) {
StencilOp_State(fail, zfail, zpass);
}
void StencilMaskSeparate(GLenum face, GLuint mask) {
StencilMaskSeparate_State(face, mask);
}
void StencilMask(GLuint mask) {
StencilMask_State(mask);
}
void StencilFuncSeparate(GLenum face, GLenum func, GLint ref, GLuint mask) {
StencilFuncSeparate_State(face, func, ref, mask);
}
void StencilFunc(GLenum func, GLint ref, GLuint mask) {
StencilFunc_State(func, ref, mask);
}
void Scissor(GLint x, GLint y, GLsizei width, GLsizei height) {
Scissor_State(x, y, width, height);
}
void SampleCoverage(GLfloat value, GLboolean invert) {
SampleCoverage_State(value, invert);
}
void PolygonOffset(GLfloat factor, GLfloat units) {
PolygonOffset_State(factor, units);
}
void LineWidth(GLfloat width) {
LineWidth_State(width);
}
GLboolean IsEnabledi(GLenum target, GLuint index) {
return IsEnabledi_State(target, index);
}
GLboolean IsEnabled(GLenum cap) {
return IsEnabled_State(cap);
}
void PolygonMode(GLenum face, GLenum mode) {
PolygonMode_State(face, mode);
}
void Hint(GLenum target, GLenum mode) {
Hint_State(target, mode);
}
void PointSize(GLfloat size) {
PointSize_State(size);
}
void FrontFace(GLenum mode) {
FrontFace_State(mode);
}
void Enable(GLenum cap) {
Enable_State(cap);
}
void PointParameterf(GLenum pname, GLfloat param) {
PointParameterf_State(pname, param);
}
void Disable(GLenum cap) {
Disable_State(cap);
}
void PointParameteri(GLenum pname, GLint param) {
PointParameteri_State(pname, param);
}
void DepthRange(GLclampd near_val, GLclampd far_val) {
DepthRange_State(near_val, far_val);
}
void PixelStorei(GLenum pname, GLint param) {
PixelStorei_State(pname, param);
}
void LogicOp(GLenum opcode) {
LogicOp_State(opcode);
}
void LineWidth(GLfloat width) {
LineWidth_State(width);
}
void DepthMask(GLboolean flag) {
DepthMask_State(flag);
}
GLboolean IsEnabledi(GLenum target, GLuint index) {
return IsEnabledi_State(target, index);
}
void DepthFunc(GLenum func) {
DepthFunc_State(func);
}
GLboolean IsEnabled(GLenum cap) {
return IsEnabled_State(cap);
}
void CullFace(GLenum mode) {
CullFace_State(mode);
}
void Hint(GLenum target, GLenum mode) {
Hint_State(target, mode);
}
void ColorMask(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha) {
ColorMask_State(red, green, blue, alpha);
}
void FrontFace(GLenum mode) {
FrontFace_State(mode);
}
void ClampColor(GLenum target, GLenum clamp) {
ClampColor_State(target, clamp);
}
void Enable(GLenum cap) {
Enable_State(cap);
}
void BlendFuncSeparate(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha) {
BlendFuncSeparate_State(sfactorRGB, dfactorRGB, sfactorAlpha, dfactorAlpha);
}
void Disable(GLenum cap) {
Disable_State(cap);
}
void BlendEquation(GLenum mode) {
BlendEquation_State(mode);
}
void DepthRange(GLclampd near_val, GLclampd far_val) {
DepthRange_State(near_val, far_val);
}
void BlendColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
BlendColor_State(red, green, blue, alpha);
}
void DepthMask(GLboolean flag) {
DepthMask_State(flag);
}
void ClearStencil(GLint s) {
ClearStencil_State(s);
}
void DepthFunc(GLenum func) {
DepthFunc_State(func);
}
void ClearDepth(GLclampd depth) {
ClearDepth_State(depth);
}
void CullFace(GLenum mode) {
CullFace_State(mode);
}
void ColorMask(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha) {
ColorMask_State(red, green, blue, alpha);
}
void ClampColor(GLenum target, GLenum clamp) {
ClampColor_State(target, clamp);
}
void BlendFuncSeparate(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha) {
BlendFuncSeparate_State(sfactorRGB, dfactorRGB, sfactorAlpha, dfactorAlpha);
}
void BlendEquation(GLenum mode) {
BlendEquation_State(mode);
}
void BlendColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
BlendColor_State(red, green, blue, alpha);
}
void ClearStencil(GLint s) {
ClearStencil_State(s);
}
void ClearDepth(GLclampd depth) {
ClearDepth_State(depth);
}
void ClearColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
ClearColor_State(red, green, blue, alpha);
}
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
void ClearColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha) {
ClearColor_State(red, green, blue, alpha);
}
} // namespace MobileGL::MG_Impl::GLImpl
@@ -9,47 +9,45 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void BlendFuncSeparatei(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha);
void Disablei(GLenum target, GLuint index);
void Enablei(GLenum target, GLuint index);
void BlendFunc(GLenum sfactor, GLenum dfactor);
void Viewport(GLint x, GLint y, GLsizei width, GLsizei height);
void StencilOpSeparate(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass);
void StencilOp(GLenum fail, GLenum zfail, GLenum zpass);
void StencilMaskSeparate(GLenum face, GLuint mask);
void StencilMask(GLuint mask);
void StencilFuncSeparate(GLenum face, GLenum func, GLint ref, GLuint mask);
void StencilFunc(GLenum func, GLint ref, GLuint mask);
void Scissor(GLint x, GLint y, GLsizei width, GLsizei height);
void SampleCoverage(GLfloat value, GLboolean invert);
void PolygonOffset(GLfloat factor, GLfloat units);
void PolygonMode(GLenum face, GLenum mode);
void PointSize(GLfloat size);
void PointParameterf(GLenum pname, GLfloat param);
void PointParameteri(GLenum pname, GLint param);
void PixelStorei(GLenum pname, GLint param);
void LogicOp(GLenum opcode);
void LineWidth(GLfloat width);
GLboolean IsEnabledi(GLenum target, GLuint index);
GLboolean IsEnabled(GLenum cap);
void Hint(GLenum target, GLenum mode);
void FrontFace(GLenum mode);
void Enable(GLenum cap);
void Disable(GLenum cap);
void DepthRange(GLclampd near_val, GLclampd far_val);
void DepthMask(GLboolean flag);
void DepthFunc(GLenum func);
void CullFace(GLenum mode);
void ColorMask(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha);
void ClampColor(GLenum target, GLenum clamp);
void BlendFuncSeparate(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha);
void BlendEquation(GLenum mode);
void BlendColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha);
void ClearStencil(GLint s);
void ClearDepth(GLclampd depth);
void ClearColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void BlendFuncSeparatei(GLuint buf, GLenum srcRGB, GLenum dstRGB, GLenum srcAlpha, GLenum dstAlpha);
void Disablei(GLenum target, GLuint index);
void Enablei(GLenum target, GLuint index);
void BlendFunc(GLenum sfactor, GLenum dfactor);
void Viewport(GLint x, GLint y, GLsizei width, GLsizei height);
void StencilOpSeparate(GLenum face, GLenum sfail, GLenum dpfail, GLenum dppass);
void StencilOp(GLenum fail, GLenum zfail, GLenum zpass);
void StencilMaskSeparate(GLenum face, GLuint mask);
void StencilMask(GLuint mask);
void StencilFuncSeparate(GLenum face, GLenum func, GLint ref, GLuint mask);
void StencilFunc(GLenum func, GLint ref, GLuint mask);
void Scissor(GLint x, GLint y, GLsizei width, GLsizei height);
void SampleCoverage(GLfloat value, GLboolean invert);
void PolygonOffset(GLfloat factor, GLfloat units);
void PolygonMode(GLenum face, GLenum mode);
void PointSize(GLfloat size);
void PointParameterf(GLenum pname, GLfloat param);
void PointParameteri(GLenum pname, GLint param);
void PixelStorei(GLenum pname, GLint param);
void LogicOp(GLenum opcode);
void LineWidth(GLfloat width);
GLboolean IsEnabledi(GLenum target, GLuint index);
GLboolean IsEnabled(GLenum cap);
void Hint(GLenum target, GLenum mode);
void FrontFace(GLenum mode);
void Enable(GLenum cap);
void Disable(GLenum cap);
void DepthRange(GLclampd near_val, GLclampd far_val);
void DepthMask(GLboolean flag);
void DepthFunc(GLenum func);
void CullFace(GLenum mode);
void ColorMask(GLboolean red, GLboolean green, GLboolean blue, GLboolean alpha);
void ClampColor(GLenum target, GLenum clamp);
void BlendFuncSeparate(GLenum sfactorRGB, GLenum dfactorRGB, GLenum sfactorAlpha, GLenum dfactorAlpha);
void BlendEquation(GLenum mode);
void BlendColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha);
void ClearStencil(GLint s);
void ClearDepth(GLclampd depth);
void ClearColor(GLfloat red, GLfloat green, GLfloat blue, GLfloat alpha);
} // namespace MobileGL::MG_Impl::GLImpl
+233 -229
View File
@@ -12,254 +12,258 @@
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
#include <MG_Util/Converters/MGToGL/TextureEnumConverter.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
void SetSamplerParam_State(GLuint sampler, GLenum pname, const void* param, bool isFloat, bool isInteger) {
namespace MobileGL::MG_Impl::GLImpl {
void SetSamplerParam_State(GLuint sampler, GLenum pname, const void* param, bool isFloat, bool isInteger) {
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
Bool doesSamplerObjectCreated = MG_State::pGLContext->ValidateSamplerObject(sampler);
if (!doesSamplerObjectCreated) {
// Create one for compatibility
MG_State::pGLContext->CreateSamplerObject(sampler);
}
auto& samplerObj = MG_State::pGLContext->GetSamplerObject(sampler);
if (!SamplerImpl::ValidateSamplerObject(sampler)) return;
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
samplerObj->SetWrapS(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_WRAP_T:
samplerObj->SetWrapT(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_WRAP_R:
samplerObj->SetWrapR(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_MIN_FILTER:
samplerObj->SetMinFilter(MG_Util::ConvertGLEnumToSamplerFilterMode(*(const GLint*)param));
samplerObj->SetMipmapMode(MG_Util::ConvertGLEnumToSamplerMipmapMode(*(const GLint*)param));
break;
case GL_TEXTURE_MAG_FILTER:
samplerObj->SetMagFilter(MG_Util::ConvertGLEnumToSamplerFilterMode(*(const GLint*)param));
break;
case GL_TEXTURE_MIN_LOD:
samplerObj->SetLodRange(*(const GLfloat*)param, samplerObj->GetMaxLod());
break;
case GL_TEXTURE_MAX_LOD:
samplerObj->SetLodRange(samplerObj->GetMinLod(), *(const GLfloat*)param);
break;
case GL_TEXTURE_LOD_BIAS:
samplerObj->SetLodBias(*(const GLfloat*)param);
break;
case GL_TEXTURE_COMPARE_MODE:
samplerObj->SetCompareMode(MG_Util::ConvertGLEnumToSamplerCompareMode(*(const GLint*)param));
break;
case GL_TEXTURE_COMPARE_FUNC:
samplerObj->SetSamplerCompareFunc(MG_Util::ConvertGLEnumToSamplerCompareFunc(*(const GLint*)param));
break;
default:
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "SetSamplerParam_State",
"Invalid pname for sampler parameter"));
}
}
void GetSamplerParam_State(GLuint sampler, GLenum pname, void* params, bool isFloat, bool isInteger) {
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
Bool doesSamplerObjectCreated = MG_State::pGLContext->ValidateSamplerObject(sampler);
if (!doesSamplerObjectCreated) {
// Create one for compatibility
MG_State::pGLContext->CreateSamplerObject(sampler);
}
auto& samplerObj = MG_State::pGLContext->GetSamplerObject(sampler);
if (!SamplerImpl::ValidateSamplerObject(sampler)) return;
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
*(GLuint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapS());
break;
case GL_TEXTURE_WRAP_T:
*(GLuint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapT());
break;
case GL_TEXTURE_WRAP_R:
*(GLuint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapR());
break;
case GL_TEXTURE_MIN_FILTER:
*(GLuint*)params =
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerObj->GetMinFilter(), samplerObj->GetMipmapMode());
break;
case GL_TEXTURE_MAG_FILTER:
*(GLuint*)params =
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerObj->GetMagFilter(), SamplerMipmapMode::None);
break;
case GL_TEXTURE_MIN_LOD:
*(GLfloat*)params = samplerObj->GetMinLod();
break;
case GL_TEXTURE_MAX_LOD:
*(GLfloat*)params = samplerObj->GetMaxLod();
break;
case GL_TEXTURE_LOD_BIAS:
*(GLfloat*)params = samplerObj->GetLodBias();
break;
case GL_TEXTURE_COMPARE_MODE:
*(GLuint*)params = MG_Util::ConvertSamplerCompareModeToGLEnum(samplerObj->GetCompareMode());
break;
case GL_TEXTURE_COMPARE_FUNC:
*(GLuint*)params = MG_Util::ConvertSamplerCompareFuncToGLEnum(samplerObj->GetSamplerCompareFunc());
break;
default:
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GetSamplerParam_State",
"Invalid pname for sampler parameter"));
}
}
GLboolean IsSampler_State(GLuint sampler) {
return MG_State::pGLContext->ValidateSamplerObject(sampler) ? GL_TRUE : GL_FALSE;
}
// migrate below functions without "_State" into this section
void GenSamplers_State(GLsizei count, GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GenSamplers", "count must be non-negative"));
return;
}
static thread_local Vector<GLuint> names;
MG_State::pGLContext->GenSamplerNames(count, names);
Memcpy(samplers, names.data(), count * sizeof(GLuint));
}
void DeleteSamplers_State(GLsizei count, const GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteSamplers", "count must be non-negative"));
return;
}
for (GLsizei i = 0; i < count; ++i) {
if (samplers[i] != 0) {
MG_State::pGLContext->MarkSamplerObjectForDeletion(samplers[i]);
}
}
}
void CreateSamplers_State(GLsizei n, GLuint* samplers) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GenSamplers", "count must be non-negative"));
return;
}
static thread_local Vector<GLuint> names;
MG_State::pGLContext->GenSamplerNames(n, names);
Memcpy(samplers, names.data(), n * sizeof(GLuint));
for (GLsizei i = 0; i < n; ++i) {
samplers[i] = names[i];
MG_State::pGLContext->CreateSamplerObject(names[i]);
}
}
void BindSampler_State(GLuint unit, GLuint sampler) {
if (unit >= MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSampler", "texture unit out of range"));
return;
}
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject((Int)unit);
if (sampler == 0) {
textureUnit.SetSamplerObject(nullptr);
} else {
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
auto samplerObj = MG_State::pGLContext->GetSamplerObject(sampler);
if (!samplerObj) {
samplerObj = MG_State::pGLContext->CreateSamplerObject(sampler); // for compatibility
Bool doesSamplerObjectCreated = MG_State::pGLContext->ValidateSamplerObject(sampler);
if (!doesSamplerObjectCreated) {
MG_State::pGLContext->CreateSamplerObject(sampler);
}
if (!SamplerImpl::ValidateSamplerObject(sampler)) return;
auto& samplerObject = MG_State::pGLContext->GetSamplerObject(sampler);
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
samplerObj->SetWrapS(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_WRAP_T:
samplerObj->SetWrapT(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_WRAP_R:
samplerObj->SetWrapR(MG_Util::ConvertGLEnumToSamplerWrapMode(*(const GLint*)param));
break;
case GL_TEXTURE_MIN_FILTER:
samplerObj->SetMinFilter(MG_Util::ConvertGLEnumToSamplerFilterMode(*(const GLint*)param));
samplerObj->SetMipmapMode(MG_Util::ConvertGLEnumToSamplerMipmapMode(*(const GLint*)param));
break;
case GL_TEXTURE_MAG_FILTER:
samplerObj->SetMagFilter(MG_Util::ConvertGLEnumToSamplerFilterMode(*(const GLint*)param));
break;
case GL_TEXTURE_MIN_LOD:
samplerObj->SetLodRange(*(const GLfloat*)param, samplerObj->GetMaxLod());
break;
case GL_TEXTURE_MAX_LOD:
samplerObj->SetLodRange(samplerObj->GetMinLod(), *(const GLfloat*)param);
break;
case GL_TEXTURE_LOD_BIAS:
samplerObj->SetLodBias(*(const GLfloat*)param);
break;
case GL_TEXTURE_COMPARE_MODE:
samplerObj->SetCompareMode(MG_Util::ConvertGLEnumToSamplerCompareMode(*(const GLint*)param));
break;
case GL_TEXTURE_COMPARE_FUNC:
samplerObj->SetSamplerCompareFunc(MG_Util::ConvertGLEnumToSamplerCompareFunc(*(const GLint*)param));
break;
default:
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "SetSamplerParam_State",
"Invalid pname for sampler parameter"));
}
textureUnit.SetSamplerObject(MG_State::pGLContext->GetSamplerObject(sampler));
}
}
void BindSamplers_State(GLuint first, GLsizei count, const GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "BindSamplers", "count must be non-negative"));
return;
}
void GetSamplerParam_State(GLuint sampler, GLenum pname, void* params, bool isFloat, bool isInteger) {
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
auto samplerObj = MG_State::pGLContext->GetSamplerObject(sampler);
if (!samplerObj) {
samplerObj = MG_State::pGLContext->CreateSamplerObject(sampler); // for compatibility
}
if (!SamplerImpl::ValidateSamplerObject(sampler)) return;
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
*(GLint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapS());
break;
case GL_TEXTURE_WRAP_T:
*(GLint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapT());
break;
case GL_TEXTURE_WRAP_R:
*(GLint*)params = MG_Util::ConvertSamplerWrapModeToGLEnum(samplerObj->GetWrapR());
break;
case GL_TEXTURE_MIN_FILTER:
*(GLint*)params =
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerObj->GetMinFilter(), samplerObj->GetMipmapMode());
break;
case GL_TEXTURE_MAG_FILTER:
*(GLint*)params =
MG_Util::ConvertSamplerFilterModeToGLEnum(samplerObj->GetMagFilter(), SamplerMipmapMode::None);
break;
case GL_TEXTURE_MIN_LOD:
*(GLfloat*)params = samplerObj->GetMinLod();
break;
case GL_TEXTURE_MAX_LOD:
*(GLfloat*)params = samplerObj->GetMaxLod();
break;
case GL_TEXTURE_LOD_BIAS:
*(GLfloat*)params = samplerObj->GetLodBias();
break;
case GL_TEXTURE_COMPARE_MODE:
*(GLint*)params = MG_Util::ConvertSamplerCompareModeToGLEnum(samplerObj->GetCompareMode());
break;
case GL_TEXTURE_COMPARE_FUNC:
*(GLint*)params = MG_Util::ConvertSamplerCompareFuncToGLEnum(samplerObj->GetSamplerCompareFunc());
break;
default:
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GetSamplerParam_State",
"Invalid pname for sampler parameter"));
}
for (GLsizei i = 0; i < count; ++i) {
BindSampler_State(first + i, samplers ? samplers[i] : 0);
}
}
GLboolean IsSampler_State(GLuint sampler) {
return MG_State::pGLContext->ValidateSamplerObject(sampler) ? GL_TRUE : GL_FALSE;
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void GetSamplerParameteriv(GLuint sampler, GLenum pname, GLint* params) {
GetSamplerParam_State(sampler, pname, params, false, false);
}
// migrate below functions without "_State" into this section
void GenSamplers_State(GLsizei count, GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GenSamplers", "count must be non-negative"));
return;
}
void SamplerParameterIuiv(GLuint sampler, GLenum pname, const GLuint* param) {
SetSamplerParam_State(sampler, pname, param, false, true);
}
auto names = MG_State::pGLContext->GenSamplerNames(count);
for (GLsizei i = 0; i < count; ++i) {
samplers[i] = names[i];
}
}
void SamplerParameterIiv(GLuint sampler, GLenum pname, const GLint* param) {
SetSamplerParam_State(sampler, pname, param, false, true);
}
void DeleteSamplers_State(GLsizei count, const GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteSamplers", "count must be non-negative"));
return;
}
void SamplerParameteriv(GLuint sampler, GLenum pname, const GLint* param) {
SetSamplerParam_State(sampler, pname, param, false, false);
}
for (GLsizei i = 0; i < count; ++i) {
if (samplers[i] != 0) {
MG_State::pGLContext->MarkSamplerObjectForDeletion(samplers[i]);
}
}
}
void SamplerParameterfv(GLuint sampler, GLenum pname, const GLfloat* param) {
SetSamplerParam_State(sampler, pname, param, true, false);
}
void CreateSamplers_State(GLsizei n, GLuint* samplers) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GenSamplers", "count must be non-negative"));
return;
}
void SamplerParameteri(GLuint sampler, GLenum pname, GLint param) {
SamplerParameteriv(sampler, pname, &param);
}
auto names = MG_State::pGLContext->GenSamplerNames(n);
for (GLsizei i = 0; i < n; ++i) {
samplers[i] = names[i];
MG_State::pGLContext->CreateSamplerObject(names[i]);
}
}
void SamplerParameterf(GLuint sampler, GLenum pname, GLfloat param) {
SamplerParameterfv(sampler, pname, &param);
}
void BindSampler_State(GLuint unit, GLuint sampler) {
if (unit >= MG_State::GLState::TextureState::MAX_TEXTURE_IMAGE_UNITS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "BindSampler", "texture unit out of range"));
return;
}
GLboolean IsSampler(GLuint sampler) {
return IsSampler_State(sampler);
}
auto& textureUnit = MG_State::pGLContext->GetTextureUnitObject(unit);
if (sampler == 0) {
textureUnit.SetSamplerObject(nullptr);
} else {
if (!SamplerImpl::ValidateSamplerName(sampler)) return;
auto samplerObject = MG_State::pGLContext->GetSamplerObject(sampler);
if (!samplerObject) {
samplerObject = MG_State::pGLContext->CreateSamplerObject(sampler);
}
void GetSamplerParameterIuiv(GLuint sampler, GLenum pname, GLuint* params) {
GetSamplerParam_State(sampler, pname, params, false, true);
}
textureUnit.SetSamplerObject(MG_State::pGLContext->GetSamplerObject(sampler));
}
}
void GetSamplerParameterIiv(GLuint sampler, GLenum pname, GLint* params) {
GetSamplerParam_State(sampler, pname, params, false, true);
}
void BindSamplers_State(GLuint first, GLsizei count, const GLuint* samplers) {
if (count < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "BindSamplers", "count must be non-negative"));
return;
}
void GetSamplerParameterfv(GLuint sampler, GLenum pname, GLfloat* params) {
GetSamplerParam_State(sampler, pname, params, true, false);
}
for (GLsizei i = 0; i < count; ++i) {
BindSampler_State(first + i, samplers ? samplers[i] : 0);
}
}
void GenSamplers(GLsizei count, GLuint* samplers) {
GenSamplers_State(count, samplers);
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void GetSamplerParameteriv(GLuint sampler, GLenum pname, GLint* params) {
GetSamplerParam_State(sampler, pname, params, false, false);
}
void DeleteSamplers(GLsizei count, const GLuint* samplers) {
DeleteSamplers_State(count, samplers);
}
void SamplerParameterIuiv(GLuint sampler, GLenum pname, const GLuint* param) {
SetSamplerParam_State(sampler, pname, param, false, true);
}
void CreateSamplers(GLsizei n, GLuint* samplers) {
CreateSamplers_State(n, samplers);
}
void SamplerParameterIiv(GLuint sampler, GLenum pname, const GLint* param) {
SetSamplerParam_State(sampler, pname, param, false, true);
}
void BindSamplers(GLuint first, GLsizei count, const GLuint* samplers) {
BindSamplers_State(first, count, samplers);
}
void SamplerParameteriv(GLuint sampler, GLenum pname, const GLint* param) {
SetSamplerParam_State(sampler, pname, param, false, false);
}
void SamplerParameterfv(GLuint sampler, GLenum pname, const GLfloat* param) {
SetSamplerParam_State(sampler, pname, param, true, false);
}
void SamplerParameteri(GLuint sampler, GLenum pname, GLint param) {
SamplerParameteriv(sampler, pname, &param);
}
void SamplerParameterf(GLuint sampler, GLenum pname, GLfloat param) {
SamplerParameterfv(sampler, pname, &param);
}
GLboolean IsSampler(GLuint sampler) {
return IsSampler_State(sampler);
}
void GetSamplerParameterIuiv(GLuint sampler, GLenum pname, GLuint* params) {
GetSamplerParam_State(sampler, pname, params, false, true);
}
void GetSamplerParameterIiv(GLuint sampler, GLenum pname, GLint* params) {
GetSamplerParam_State(sampler, pname, params, false, true);
}
void GetSamplerParameterfv(GLuint sampler, GLenum pname, GLfloat* params) {
GetSamplerParam_State(sampler, pname, params, true, false);
}
void GenSamplers(GLsizei count, GLuint* samplers) {
GenSamplers_State(count, samplers);
}
void DeleteSamplers(GLsizei count, const GLuint* samplers) {
DeleteSamplers_State(count, samplers);
}
void CreateSamplers(GLsizei n, GLuint* samplers) {
CreateSamplers_State(n, samplers);
}
void BindSamplers(GLuint first, GLsizei count, const GLuint* samplers) {
BindSamplers_State(first, count, samplers);
}
void BindSampler(GLuint unit, GLuint sampler) {
BindSampler_State(unit, sampler);
}
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
void BindSampler(GLuint unit, GLuint sampler) {
BindSampler_State(unit, sampler);
}
} // namespace MobileGL::MG_Impl::GLImpl
+19 -21
View File
@@ -9,24 +9,22 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void GetSamplerParameteriv(GLuint sampler, GLenum pname, GLint* params);
void SamplerParameterIuiv(GLuint sampler, GLenum pname, const GLuint* param);
void SamplerParameterIiv(GLuint sampler, GLenum pname, const GLint* param);
void SamplerParameteriv(GLuint sampler, GLenum pname, const GLint* param);
void SamplerParameterfv(GLuint sampler, GLenum pname, const GLfloat* param);
void SamplerParameteri(GLuint sampler, GLenum pname, GLint param);
void SamplerParameterf(GLuint sampler, GLenum pname, GLfloat param);
GLboolean IsSampler(GLuint sampler);
void GetSamplerParameterIuiv(GLuint sampler, GLenum pname, GLuint* params);
void GetSamplerParameterIiv(GLuint sampler, GLenum pname, GLint* params);
void GetSamplerParameterfv(GLuint sampler, GLenum pname, GLfloat* params);
void GenSamplers(GLsizei count, GLuint* samplers);
void DeleteSamplers(GLsizei count, const GLuint* samplers);
void CreateSamplers(GLsizei n, GLuint* samplers);
void BindSamplers(GLuint first, GLsizei count, const GLuint* samplers);
void BindSampler(GLuint unit, GLuint sampler);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void GetSamplerParameteriv(GLuint sampler, GLenum pname, GLint* params);
void SamplerParameterIuiv(GLuint sampler, GLenum pname, const GLuint* param);
void SamplerParameterIiv(GLuint sampler, GLenum pname, const GLint* param);
void SamplerParameteriv(GLuint sampler, GLenum pname, const GLint* param);
void SamplerParameterfv(GLuint sampler, GLenum pname, const GLfloat* param);
void SamplerParameteri(GLuint sampler, GLenum pname, GLint param);
void SamplerParameterf(GLuint sampler, GLenum pname, GLfloat param);
GLboolean IsSampler(GLuint sampler);
void GetSamplerParameterIuiv(GLuint sampler, GLenum pname, GLuint* params);
void GetSamplerParameterIiv(GLuint sampler, GLenum pname, GLint* params);
void GetSamplerParameterfv(GLuint sampler, GLenum pname, GLfloat* params);
void GenSamplers(GLsizei count, GLuint* samplers);
void DeleteSamplers(GLsizei count, const GLuint* samplers);
void CreateSamplers(GLsizei n, GLuint* samplers);
void BindSamplers(GLuint first, GLsizei count, const GLuint* samplers);
void BindSampler(GLuint unit, GLuint sampler);
} // namespace MobileGL::MG_Impl::GLImpl
+113 -117
View File
@@ -11,126 +11,122 @@
#include <MG_State/GLState/ErrorState/Error.h>
#include <MG_Util/Converters/GLToMG/TextureEnumConverter.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace SamplerImpl {
Bool ValidateSamplerName(GLuint sampler) {
if (!MG_State::pGLContext->ValidateSamplerName(sampler)) {
namespace MobileGL::MG_Impl::GLImpl::SamplerImpl {
Bool ValidateSamplerName(GLuint sampler) {
if (!MG_State::pGLContext->ValidateSamplerName(sampler)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerName",
std::format("Invalid sampler name {}", sampler)));
return false;
}
return true;
}
Bool ValidateSamplerObject(GLuint sampler) {
if (!MG_State::pGLContext->ValidateSamplerObject(sampler)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerObject",
std::format("Sampler object {} does not exist", sampler)));
return false;
}
return true;
}
Bool ValidateSamplerParam(GLenum pname, GLenum param) {
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
case GL_TEXTURE_WRAP_T:
case GL_TEXTURE_WRAP_R:
if (MG_Util::ConvertGLEnumToSamplerWrapMode(param) == SamplerWrapMode::Unknown) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid wrap mode parameter"));
return false;
}
break;
case GL_TEXTURE_MIN_FILTER:
if (MG_Util::ConvertGLEnumToSamplerFilterMode(param) == SamplerFilterMode::Unknown) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid min filter parameter"));
return false;
}
break;
case GL_TEXTURE_MAG_FILTER:
if (param != GL_NEAREST && param != GL_LINEAR) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid mag filter parameter"));
return false;
}
break;
case GL_TEXTURE_COMPARE_MODE:
if (param != GL_NONE && param != GL_COMPARE_REF_TO_TEXTURE) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid compare mode parameter"));
return false;
}
break;
case GL_TEXTURE_COMPARE_FUNC:
if (param < GL_LEQUAL || param > GL_ALWAYS) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid compare function parameter"));
return false;
}
break;
default:
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid pname for sampler parameter"));
return false;
}
return true;
}
Bool ValidateSamplerFloatParam(GLenum pname, GLfloat param) {
switch (pname) {
case GL_TEXTURE_MIN_LOD:
case GL_TEXTURE_MAX_LOD:
case GL_TEXTURE_LOD_BIAS:
return true;
case GL_TEXTURE_BORDER_COLOR:
if (param < 0.0f || param > 1.0f) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerFloatParam",
"Border color component out of [0,1] range"));
return false;
}
return true;
default:
return ValidateSamplerParam(pname, static_cast<GLenum>(param));
}
}
Bool ValidateSamplerIntParam(GLenum pname, GLint param) {
switch (pname) {
case GL_TEXTURE_BORDER_COLOR:
if (param < 0 || param > 255) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerName",
std::format("Invalid sampler name {}", sampler)));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerIntParam",
"Border color component out of [0,255] range"));
return false;
}
return true;
default:
return ValidateSamplerParam(pname, static_cast<GLenum>(param));
}
Bool ValidateSamplerObject(GLuint sampler) {
if (!MG_State::pGLContext->ValidateSamplerObject(sampler)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerObject",
std::format("Sampler object {} does not exist", sampler)));
return false;
}
return true;
}
Bool ValidateSamplerParam(GLenum pname, GLenum param) {
using namespace MG_Util;
switch (pname) {
case GL_TEXTURE_WRAP_S:
case GL_TEXTURE_WRAP_T:
case GL_TEXTURE_WRAP_R:
if (MG_Util::ConvertGLEnumToSamplerWrapMode(param) == SamplerWrapMode::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid wrap mode parameter"));
return false;
}
break;
case GL_TEXTURE_MIN_FILTER:
if (MG_Util::ConvertGLEnumToSamplerFilterMode(param) == SamplerFilterMode::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid min filter parameter"));
return false;
}
break;
case GL_TEXTURE_MAG_FILTER:
if (param != GL_NEAREST && param != GL_LINEAR) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid mag filter parameter"));
return false;
}
break;
case GL_TEXTURE_COMPARE_MODE:
if (param != GL_NONE && param != GL_COMPARE_REF_TO_TEXTURE) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid compare mode parameter"));
return false;
}
break;
case GL_TEXTURE_COMPARE_FUNC:
if (param < GL_LEQUAL || param > GL_ALWAYS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid compare function parameter"));
return false;
}
break;
default:
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerParam",
"Invalid pname for sampler parameter"));
return false;
}
return true;
}
Bool ValidateSamplerFloatParam(GLenum pname, GLfloat param) {
switch (pname) {
case GL_TEXTURE_MIN_LOD:
case GL_TEXTURE_MAX_LOD:
case GL_TEXTURE_LOD_BIAS:
return true;
case GL_TEXTURE_BORDER_COLOR:
if (param < 0.0f || param > 1.0f) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerFloatParam",
"Border color component out of [0,1] range"));
return false;
}
return true;
default:
return ValidateSamplerParam(pname, static_cast<GLenum>(param));
}
}
Bool ValidateSamplerIntParam(GLenum pname, GLint param) {
switch (pname) {
case GL_TEXTURE_BORDER_COLOR:
if (param < 0 || param > 255) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateSamplerIntParam",
"Border color component out of [0,255] range"));
return false;
}
return true;
default:
return ValidateSamplerParam(pname, static_cast<GLenum>(param));
}
}
} // namespace SamplerImpl
} // namespace MobileGL::MG_Impl::GLImpl
}
} // namespace MobileGL::MG_Impl::GLImpl::SamplerImpl
+7 -9
View File
@@ -10,12 +10,10 @@
#include <Includes.h>
#include <MG_State/GLState/SamplerState/SamplerObject.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace SamplerImpl {
Bool ValidateSamplerName(GLuint sampler);
Bool ValidateSamplerObject(GLuint sampler);
Bool ValidateSamplerParam(GLenum pname, GLenum param);
Bool ValidateSamplerFloatParam(GLenum pname, GLfloat param);
Bool ValidateSamplerIntParam(GLenum pname, GLint param);
} // namespace SamplerImpl
} // namespace MobileGL::MG_Impl::GLImpl
namespace MobileGL::MG_Impl::GLImpl::SamplerImpl {
Bool ValidateSamplerName(GLuint sampler);
Bool ValidateSamplerObject(GLuint sampler);
Bool ValidateSamplerParam(GLenum pname, GLenum param);
Bool ValidateSamplerFloatParam(GLenum pname, GLfloat param);
Bool ValidateSamplerIntParam(GLenum pname, GLint param);
} // namespace MobileGL::MG_Impl::GLImpl::SamplerImpl
+23 -25
View File
@@ -10,36 +10,34 @@
#include "MG_State/GLState/Core.h"
namespace MobileGL {
namespace MG_Impl::GLImpl {
GLsync FenceSync_Backend(GLenum condition, GLbitfield flags) {
return 0;
}
namespace MobileGL::MG_Impl::GLImpl {
GLsync FenceSync_Backend(GLenum condition, GLbitfield flags) {
return 0;
}
GLenum ClientWaitSync_Backend(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
GLenum ClientWaitSync_Backend(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
void DeleteSync_Backend(GLsync sync) {}
void DeleteSync_Backend(GLsync sync) {}
GLsync FenceSync_State(GLenum condition, GLbitfield flags) {
return 0;
}
GLsync FenceSync_State(GLenum condition, GLbitfield flags) {
return 0;
}
GLenum ClientWaitSync_State(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
GLenum ClientWaitSync_State(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
void DeleteSync_State(GLsync sync) {}
void DeleteSync_State(GLsync sync) {}
GLsync FenceSync(GLenum condition, GLbitfield flags) {
return 0;
}
GLsync FenceSync(GLenum condition, GLbitfield flags) {
return 0;
}
GLenum ClientWaitSync(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
GLenum ClientWaitSync(GLsync sync, GLbitfield flags, GLuint64 timeout) {
return 0;
}
void DeleteSync(GLsync sync) {}
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
void DeleteSync(GLsync sync) {}
} // namespace MobileGL::MG_Impl::GLImpl
+5 -7
View File
@@ -9,10 +9,8 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
GLsync FenceSync(GLenum condition, GLbitfield flags);
GLenum ClientWaitSync(GLsync sync, GLbitfield flags, GLuint64 timeout);
void DeleteSync(GLsync sync);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
GLsync FenceSync(GLenum condition, GLbitfield flags);
GLenum ClientWaitSync(GLsync sync, GLbitfield flags, GLuint64 timeout);
void DeleteSync(GLsync sync);
} // namespace MobileGL::MG_Impl::GLImpl
File diff suppressed because it is too large Load Diff
@@ -7,48 +7,47 @@
// End of Source File Header
#include "ProxyTexture.h"
#include "MG_State/GLState/TextureState/TextureObject2D.h"
#include "MG_Util/Types.h"
#include <MG_State/GLState/TextureState/TextureObject2D.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace TextureImpl {
ProxyTextureManager* pProxyTextureManager;
namespace MobileGL::MG_Impl::GLImpl::TextureImpl {
UniquePtr<ProxyTextureManager> pProxyTextureManager;
Bool IsProxyTextureTarget(TextureUploadTarget target) {
switch (target) {
case TextureUploadTarget::ProxyCubeMap:
case TextureUploadTarget::ProxyTexture1DArray:
case TextureUploadTarget::ProxyTexture2DArray:
case TextureUploadTarget::ProxyTexture1D:
case TextureUploadTarget::ProxyTexture2D:
case TextureUploadTarget::ProxyTexture3D:
case TextureUploadTarget::ProxyTexture2DMultisample:
case TextureUploadTarget::ProxyTexture2DMultisampleArray:
case TextureUploadTarget::ProxyTextureRectangle:
case TextureUploadTarget::ProxyCubeMapArray:
return true;
default:
return false;
}
Bool IsProxyTextureTarget(TextureUploadTarget target) {
switch (target) {
case TextureUploadTarget::ProxyCubeMap:
case TextureUploadTarget::ProxyTexture1DArray:
case TextureUploadTarget::ProxyTexture2DArray:
case TextureUploadTarget::ProxyTexture1D:
case TextureUploadTarget::ProxyTexture2D:
case TextureUploadTarget::ProxyTexture3D:
case TextureUploadTarget::ProxyTexture2DMultisample:
case TextureUploadTarget::ProxyTexture2DMultisampleArray:
case TextureUploadTarget::ProxyTextureRectangle:
case TextureUploadTarget::ProxyCubeMapArray:
return true;
default:
return false;
}
}
SharedPtr<MG_State::GLState::ITextureObject> ProxyTextureManager::CreateOrReplaceProxyTextureObject(
TextureUploadTarget target) {
auto it = m_proxyTexturesMap.find(target);
if (it != m_proxyTexturesMap.end()) {
m_proxyTexturesMap.erase(it);
}
m_proxyTexturesMap[target] = MakeShared<MG_State::GLState::TextureObject2D>(0);
return m_proxyTexturesMap[target];
const SharedPtr<MG_State::GLState::ITextureObject>& ProxyTextureManager::CreateOrReplaceProxyTextureObject(
TextureUploadTarget target) {
auto it = m_proxyTexturesMap.find(target);
if (it != m_proxyTexturesMap.end()) {
m_proxyTexturesMap.erase(it);
}
auto& obj = m_proxyTexturesMap[target];
obj = MakeShared<MG_State::GLState::TextureObject2D>(0);
return obj;
}
SharedPtr<MG_State::GLState::ITextureObject> ProxyTextureManager::GetProxyTextureObject(
TextureUploadTarget target) {
auto it = m_proxyTexturesMap.find(target);
if (it != m_proxyTexturesMap.end()) {
return it->second;
}
return nullptr;
const SharedPtr<MG_State::GLState::ITextureObject>& ProxyTextureManager::GetProxyTextureObject(
TextureUploadTarget target) {
auto it = m_proxyTexturesMap.find(target);
if (it != m_proxyTexturesMap.end()) {
return it->second;
}
} // namespace TextureImpl
} // namespace MobileGL::MG_Impl::GLImpl
static SharedPtr<MG_State::GLState::ITextureObject> nullTextureObject = nullptr;
return nullTextureObject;
}
} // namespace MobileGL::MG_Impl::GLImpl::TextureImpl
+12 -13
View File
@@ -10,19 +10,18 @@
#include <Includes.h>
#include <MG_State/GLState/Core.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace TextureImpl {
Bool IsProxyTextureTarget(TextureUploadTarget target);
namespace MobileGL::MG_Impl::GLImpl::TextureImpl {
Bool IsProxyTextureTarget(TextureUploadTarget target);
class ProxyTextureManager {
public:
SharedPtr<MG_State::GLState::ITextureObject> CreateOrReplaceProxyTextureObject(TextureUploadTarget target);
SharedPtr<MG_State::GLState::ITextureObject> GetProxyTextureObject(TextureUploadTarget target);
class ProxyTextureManager {
public:
const SharedPtr<MG_State::GLState::ITextureObject>& CreateOrReplaceProxyTextureObject(
TextureUploadTarget target);
const SharedPtr<MG_State::GLState::ITextureObject>& GetProxyTextureObject(TextureUploadTarget target);
private:
UnorderedMap<TextureUploadTarget, SharedPtr<MG_State::GLState::ITextureObject>> m_proxyTexturesMap;
};
private:
UnorderedMap<TextureUploadTarget, SharedPtr<MG_State::GLState::ITextureObject>> m_proxyTexturesMap;
};
extern ProxyTextureManager* pProxyTextureManager;
} // namespace TextureImpl
} // namespace MobileGL::MG_Impl::GLImpl
extern UniquePtr<ProxyTextureManager> pProxyTextureManager;
} // namespace MobileGL::MG_Impl::GLImpl::TextureImpl
+240 -254
View File
@@ -15,309 +15,295 @@
#include <MG_Util/Converters/MGToMG/TextureEnumConverter.h>
#include <MG_Util/Converters/MGToStr/TextureEnumConverter.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace TextureImpl {
Bool ValidateTextureTarget(TextureTarget target) {
if (target == TextureTarget::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureTarget", "Invalid texture target"));
return false;
}
return true;
namespace MobileGL::MG_Impl::GLImpl::TextureImpl {
Bool ValidateTextureTarget(TextureTarget target) {
if (target == TextureTarget::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureTarget", "Invalid texture target"));
return false;
}
return true;
}
Bool ValidateTextureUploadTarget(TextureUploadTarget textureUploadTarget) {
if (textureUploadTarget == TextureUploadTarget::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureUploadTarget",
"Invalid texture upload target"));
return false;
}
return true;
}
Bool ValidateTextureName(Uint texture, Bool allowZero) {
if (texture == 0) {
if (allowZero) return true;
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureName", "Texture name cannot be zero"));
return false;
}
Bool ValidateTextureUploadTarget(TextureUploadTarget textureUploadTarget) {
if (textureUploadTarget == TextureUploadTarget::Unknown) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureUploadTarget",
"Invalid texture upload target"));
return false;
}
return true;
if (!MG_State::pGLContext->ValidateTextureName(texture)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureName", "Invalid texture name"));
return false;
}
return true;
}
Bool ValidateTextureInputFormat(TextureInputFormat format) {
if (format == TextureInputFormat::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInputFormat",
"Invalid texture input format"));
return false;
}
return true;
}
Bool ValidateTexturePixelDataType(TexturePixelDataType texturePixelDataType) {
if (texturePixelDataType == TexturePixelDataType::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTexturePixelDataType",
"Invalid texture pixel data type"));
return false;
}
return true;
}
Bool ValidateTextureLevelNumber(GLint level) {
if (level < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureLevelNumber",
"Texture level must be non-negative"));
return false;
}
Bool ValidateTextureName(Uint texture, Bool allowZero) {
if (texture == 0) {
if (allowZero) return true;
// TODO: GL_INVALID_VALUE may be generated if level is greater than log2(max), where max is the returned
// value of GL_MAX_TEXTURE_SIZE.
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureName",
"Texture name cannot be zero"));
return false;
}
return true;
}
if (!MG_State::pGLContext->ValidateTextureName(texture)) {
Bool ValidateTextureSizeWithTextureUploadTarget(TextureUploadTarget target, GLsizei width, GLsizei height) {
if (target == TextureUploadTarget::CubeMapPositiveX || target == TextureUploadTarget::CubeMapNegativeX ||
target == TextureUploadTarget::CubeMapPositiveY || target == TextureUploadTarget::CubeMapNegativeY ||
target == TextureUploadTarget::CubeMapPositiveZ || target == TextureUploadTarget::CubeMapNegativeZ) {
if (width != height) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureName", "Invalid texture name"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Width and height must be equal for cube map textures"));
return false;
}
return true;
}
Bool ValidateTextureInputFormat(TextureInputFormat format) {
if (format == TextureInputFormat::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInputFormat",
"Invalid texture input format"));
return false;
}
return true;
}
Bool ValidateTexturePixelDataType(TexturePixelDataType texturePixelDataType) {
if (texturePixelDataType == TexturePixelDataType::Unknown) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTexturePixelDataType",
"Invalid texture pixel data type"));
return false;
}
return true;
}
Bool ValidateTextureLevelNumber(GLint level) {
if (level < 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureLevelNumber",
"Texture level must be non-negative"));
return false;
}
// TODO: GL_INVALID_VALUE may be generated if level is greater than log2(max), where max is the returned
// value of GL_MAX_TEXTURE_SIZE.
return true;
}
Bool ValidateTextureSizeWithTextureUploadTarget(TextureUploadTarget target, GLsizei width, GLsizei height) {
if (target == TextureUploadTarget::CubeMapPositiveX || target == TextureUploadTarget::CubeMapNegativeX ||
target == TextureUploadTarget::CubeMapPositiveY || target == TextureUploadTarget::CubeMapNegativeY ||
target == TextureUploadTarget::CubeMapPositiveZ || target == TextureUploadTarget::CubeMapNegativeZ) {
if (width != height) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Width and height must be equal for cube map textures"));
return false;
}
}
if (!(target == TextureUploadTarget::Texture1DArray ||
target == TextureUploadTarget::ProxyTexture1DArray)) {
if (height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Height must be greater than or equal to zero"));
return false;
}
// TODO: GL_INVALID_VALUE is generated if target is not GL_TEXTURE_1D_ARRAY or GL_PROXY_TEXTURE_1D_ARRAY
// and height is greater than GL_MAX_TEXTURE_SIZE.
}
if (target == TextureUploadTarget::Texture1DArray || target == TextureUploadTarget::ProxyTexture1DArray) {
if (height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Height must be greater than or equal to zero"));
return false;
}
// TODO: GL_INVALID_VALUE is generated if target is GL_TEXTURE_1D_ARRAY or GL_PROXY_TEXTURE_1D_ARRAY and
// height is greater than GL_MAX_ARRAY_TEXTURE_LAYERS.
}
return true;
}
Bool ValidateTextureSizeRange(SizeT width, SizeT height, SizeT depth) {
if (width < 0 || height < 0 || depth < 0) {
if (!(target == TextureUploadTarget::Texture1DArray || target == TextureUploadTarget::ProxyTexture1DArray)) {
if (height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeRange",
"Width and height must be greater than zero"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Height must be greater than or equal to zero"));
return false;
}
// TODO: GL_INVALID_VALUE is generated if width is greater than GL_MAX_TEXTURE_SIZE.
return true;
// TODO: GL_INVALID_VALUE is generated if target is not GL_TEXTURE_1D_ARRAY or GL_PROXY_TEXTURE_1D_ARRAY
// and height is greater than GL_MAX_TEXTURE_SIZE.
}
Bool ValidateTextureInternalFormat(TextureInternalFormat format) {
if (format == TextureInternalFormat::Unknown) {
if (target == TextureUploadTarget::Texture1DArray || target == TextureUploadTarget::ProxyTexture1DArray) {
if (height < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormat",
"Invalid texture sized internal format"));
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeWithTarget",
"Height must be greater than or equal to zero"));
return false;
}
return true;
// TODO: GL_INVALID_VALUE is generated if target is GL_TEXTURE_1D_ARRAY or GL_PROXY_TEXTURE_1D_ARRAY and
// height is greater than GL_MAX_ARRAY_TEXTURE_LAYERS.
}
Bool ValidateTextureBorderNumber(Int border) {
if (border != 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureBorderNumber",
"Border must be zero"));
return false;
}
return true;
return true;
}
Bool ValidateTextureSizeRange(SizeT width, SizeT height, SizeT depth) {
if (width < 0 || height < 0 || depth < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSizeRange",
"Width and height must be greater than zero"));
return false;
}
Bool ValidateTextureInternalFormatCompatibleWithInput(TextureInputFormat format,
TextureInternalFormat internalFormat,
TexturePixelDataType type) {
if (type == TexturePixelDataType::UnsignedByte332 || type == TexturePixelDataType::UnsignedByte233Rev ||
type == TexturePixelDataType::UnsignedShort565 || type == TexturePixelDataType::UnsignedShort565Rev ||
type == TexturePixelDataType::UnsignedInt101111Rev) {
if (format != TextureInputFormat::RGB) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for the given type"));
return false;
}
}
// TODO: GL_INVALID_VALUE is generated if width is greater than GL_MAX_TEXTURE_SIZE.
if (type == TexturePixelDataType::UnsignedShort4444 || type == TexturePixelDataType::UnsignedShort4444Rev ||
type == TexturePixelDataType::UnsignedShort5551 || type == TexturePixelDataType::UnsignedShort1555Rev ||
type == TexturePixelDataType::UnsignedInt8888 || type == TexturePixelDataType::UnsignedInt8888Rev ||
type == TexturePixelDataType::UnsignedInt1010102 ||
type == TexturePixelDataType::UnsignedInt2101010Rev ||
type == TexturePixelDataType::UnsignedInt5999Rev) {
if (format != TextureInputFormat::RGBA && format != TextureInputFormat::BGRA) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for the given type"));
return false;
}
}
return true;
}
if (internalFormat == TextureInternalFormat::DepthComponent ||
internalFormat == TextureInternalFormat::DepthComponent16 ||
internalFormat == TextureInternalFormat::DepthComponent24 ||
internalFormat == TextureInternalFormat::DepthComponent32F) {
if (format != TextureInputFormat::DepthComponent) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for depth component internal format"));
return false;
}
}
Bool ValidateTextureInternalFormat(TextureInternalFormat format) {
if (format == TextureInternalFormat::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormat",
"Invalid texture sized internal format"));
return false;
}
return true;
}
if (format == TextureInputFormat::DepthComponent &&
(internalFormat != TextureInternalFormat::DepthComponent &&
internalFormat != TextureInternalFormat::DepthComponent16 &&
internalFormat != TextureInternalFormat::DepthComponent24 &&
internalFormat != TextureInternalFormat::DepthComponent32F &&
internalFormat != TextureInternalFormat::DepthComponent32 // workaround for Minecraft 1.21.5+
)) {
Bool ValidateTextureBorderNumber(Int border) {
if (border != 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureBorderNumber", "Border must be zero"));
return false;
}
return true;
}
Bool ValidateTextureInternalFormatCompatibleWithInput(TextureInputFormat format,
TextureInternalFormat internalFormat,
TexturePixelDataType type) {
if (type == TexturePixelDataType::UnsignedByte332 || type == TexturePixelDataType::UnsignedByte233Rev ||
type == TexturePixelDataType::UnsignedShort565 || type == TexturePixelDataType::UnsignedShort565Rev ||
type == TexturePixelDataType::UnsignedInt101111Rev) {
if (format != TextureInputFormat::RGB) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormatCompatibleWithInput",
"Invalid internal format for depth component format"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for the given type"));
return false;
}
return true;
}
Bool ValidateTextureLevelWithUploadTarget(TextureUploadTarget target, Int level) {
if (target == TextureUploadTarget::TextureRectangle ||
target == TextureUploadTarget::ProxyTextureRectangle) {
if (level != 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureLevelWithUploadTarget",
"Level must be zero for rectangle textures"));
return false;
}
}
return true;
}
Bool ValidateTextureObject(SharedPtr<MG_State::GLState::ITextureObject> textureObject) {
if (!textureObject) {
if (type == TexturePixelDataType::UnsignedShort4444 || type == TexturePixelDataType::UnsignedShort4444Rev ||
type == TexturePixelDataType::UnsignedShort5551 || type == TexturePixelDataType::UnsignedShort1555Rev ||
type == TexturePixelDataType::UnsignedInt8888 || type == TexturePixelDataType::UnsignedInt8888Rev ||
type == TexturePixelDataType::UnsignedInt1010102 || type == TexturePixelDataType::UnsignedInt2101010Rev ||
type == TexturePixelDataType::UnsignedInt5999Rev) {
if (format != TextureInputFormat::RGBA && format != TextureInputFormat::BGRA) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureObject", "Texture object is null"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for the given type"));
return false;
}
return true;
}
Bool ValidateTextureTargetUniformity(SharedPtr<MG_State::GLState::ITextureObject> textureObject,
TextureTarget target) {
if (!textureObject) return true; // should be created later
TextureTarget prevTarget = textureObject->GetTarget();
if (prevTarget != target) {
if (internalFormat == TextureInternalFormat::DepthComponent ||
internalFormat == TextureInternalFormat::DepthComponent16 ||
internalFormat == TextureInternalFormat::DepthComponent24 ||
internalFormat == TextureInternalFormat::DepthComponent32F) {
if (format != TextureInputFormat::DepthComponent) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureTargetUniformity",
"Texture target does not match the previously created texture"));
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormatCompatibleWithInput",
"Invalid format for depth component internal format"));
return false;
}
return true;
}
Bool ValidateTextureSubImageOffsets(SharedPtr<MG_State::GLState::ITextureObject> textureObject, Int xoffset,
Int width, Int yoffset, Int height, Int zoffset, Int depth) {
auto baseSize = textureObject->GetBaseSize();
if (xoffset < 0 || (xoffset + width) > baseSize.x()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"xoffset must be non-negative and (xoffset + width) must not exceed "
"the texture width."));
return false;
}
if (baseSize.y() == 0) return true;
if (yoffset < 0 || (yoffset + height) > baseSize.y()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"yoffset must be non-negative and (yoffset + height) must not exceed "
"the texture height."));
return false;
}
if (baseSize.z() == 0) return true;
if (zoffset < 0 || (zoffset + depth) > baseSize.z()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"zoffset must be non-negative and (zoffset + depth) must not exceed "
"the texture depth."));
return false;
}
return true;
if (format == TextureInputFormat::DepthComponent &&
(internalFormat != TextureInternalFormat::DepthComponent &&
internalFormat != TextureInternalFormat::DepthComponent16 &&
internalFormat != TextureInternalFormat::DepthComponent24 &&
internalFormat != TextureInternalFormat::DepthComponent32F &&
internalFormat != TextureInternalFormat::DepthComponent32 // workaround for Minecraft 1.21.5+
)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureInternalFormatCompatibleWithInput",
"Invalid internal format for depth component format"));
return false;
}
return true;
}
Bool ValidateBaseInternalFormatMatch(TextureInternalFormat format1, TextureInternalFormat format2) {
auto unsizedFormat1 = MG_Util::ConvertInternalFormatToUnsized(format1);
auto unsizedFormat2 = MG_Util::ConvertInternalFormatToUnsized(format2);
if (unsizedFormat1 != unsizedFormat2) {
Bool ValidateTextureLevelWithUploadTarget(TextureUploadTarget target, Int level) {
if (target == TextureUploadTarget::TextureRectangle || target == TextureUploadTarget::ProxyTextureRectangle) {
if (level != 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>(
std::format("MG_Impl/GLImpl", "ValidateBaseInternalFormatMatch",
"The base internal format of the two formats do not match ({} vs. {})",
MG_Util::ConvertTextureInternalFormatToString(unsizedFormat1).c_str(),
MG_Util::ConvertTextureInternalFormatToString(unsizedFormat2).c_str())));
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureLevelWithUploadTarget",
"Level must be zero for rectangle textures"));
return false;
}
return true;
} // namespace TextureImpl
}
return true;
}
Bool ValidateTextureObject(SharedPtr<MG_State::GLState::ITextureObject> textureObject) {
if (!textureObject) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureObject", "Texture object is null"));
return false;
}
return true;
}
Bool ValidateTextureTargetUniformity(SharedPtr<MG_State::GLState::ITextureObject> textureObject,
TextureTarget target) {
if (!textureObject) return true; // should be created later
TextureTarget prevTarget = textureObject->GetTarget();
if (prevTarget != target) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureTargetUniformity",
"Texture target does not match the previously created texture"));
return false;
}
return true;
}
Bool ValidateTextureSubImageOffsets(SharedPtr<MG_State::GLState::ITextureObject> textureObject, Int xoffset,
Int width, Int yoffset, Int height, Int zoffset, Int depth) {
auto baseSize = textureObject->GetBaseSize();
if (xoffset < 0 || (xoffset + width) > baseSize.x()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"xoffset must be non-negative and (xoffset + width) must not exceed "
"the texture width."));
return false;
}
if (baseSize.y() == 0) return true;
if (yoffset < 0 || (yoffset + height) > baseSize.y()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"yoffset must be non-negative and (yoffset + height) must not exceed "
"the texture height."));
return false;
}
if (baseSize.z() == 0) return true;
if (zoffset < 0 || (zoffset + depth) > baseSize.z()) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateTextureSubImageOffsets",
"zoffset must be non-negative and (zoffset + depth) must not exceed "
"the texture depth."));
return false;
}
return true;
}
Bool ValidateBaseInternalFormatMatch(TextureInternalFormat format1, TextureInternalFormat format2) {
auto unsizedFormat1 = MG_Util::ConvertInternalFormatToUnsized(format1);
auto unsizedFormat2 = MG_Util::ConvertInternalFormatToUnsized(format2);
if (unsizedFormat1 != unsizedFormat2) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>(
std::format("MG_Impl/GLImpl", "ValidateBaseInternalFormatMatch",
"The base internal format of the two formats do not match ({} vs. {})",
MG_Util::ConvertTextureInternalFormatToString(unsizedFormat1).c_str(),
MG_Util::ConvertTextureInternalFormatToString(unsizedFormat2).c_str())));
return false;
}
return true;
} // namespace TextureImpl
} // namespace MobileGL::MG_Impl::GLImpl
} // namespace MobileGL::MG_Impl::GLImpl::TextureImpl
+22 -24
View File
@@ -12,27 +12,25 @@
#include <Includes.h>
#include <MG_State/GLState/TextureState/TextureObject.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace TextureImpl {
Bool ValidateTextureTarget(TextureTarget target);
Bool ValidateTextureUploadTarget(TextureUploadTarget textureUploadTarget);
Bool ValidateTextureName(Uint texture, Bool allowZero = false);
Bool ValidateTextureInputFormat(TextureInputFormat format);
Bool ValidateTexturePixelDataType(TexturePixelDataType texturePixelDataType);
Bool ValidateTextureLevelNumber(Int level);
Bool ValidateTextureSizeWithTextureUploadTarget(TextureUploadTarget target, GLsizei width, GLsizei height);
Bool ValidateTextureSizeRange(SizeT width, SizeT height, SizeT depth);
Bool ValidateTextureInternalFormat(TextureInternalFormat format);
Bool ValidateTextureBorderNumber(Int border);
Bool ValidateTextureInternalFormatCompatibleWithInput(TextureInputFormat format,
TextureInternalFormat internalFormat,
TexturePixelDataType type);
Bool ValidateTextureLevelWithUploadTarget(TextureUploadTarget target, Int level);
Bool ValidateTextureObject(SharedPtr<MG_State::GLState::ITextureObject> textureObject);
Bool ValidateTextureTargetUniformity(SharedPtr<MG_State::GLState::ITextureObject> textureObject,
TextureTarget target);
Bool ValidateTextureSubImageOffsets(SharedPtr<MG_State::GLState::ITextureObject> textureObject, Int xoffset,
Int width, Int yoffset = 0, Int height = 0, Int zoffset = 0, Int depth = 0);
Bool ValidateBaseInternalFormatMatch(TextureInternalFormat format1, TextureInternalFormat format2);
} // namespace TextureImpl
} // namespace MobileGL::MG_Impl::GLImpl
namespace MobileGL::MG_Impl::GLImpl::TextureImpl {
Bool ValidateTextureTarget(TextureTarget target);
Bool ValidateTextureUploadTarget(TextureUploadTarget textureUploadTarget);
Bool ValidateTextureName(Uint texture, Bool allowZero = false);
Bool ValidateTextureInputFormat(TextureInputFormat format);
Bool ValidateTexturePixelDataType(TexturePixelDataType texturePixelDataType);
Bool ValidateTextureLevelNumber(Int level);
Bool ValidateTextureSizeWithTextureUploadTarget(TextureUploadTarget target, GLsizei width, GLsizei height);
Bool ValidateTextureSizeRange(SizeT width, SizeT height, SizeT depth);
Bool ValidateTextureInternalFormat(TextureInternalFormat format);
Bool ValidateTextureBorderNumber(Int border);
Bool ValidateTextureInternalFormatCompatibleWithInput(TextureInputFormat format,
TextureInternalFormat internalFormat,
TexturePixelDataType type);
Bool ValidateTextureLevelWithUploadTarget(TextureUploadTarget target, Int level);
Bool ValidateTextureObject(SharedPtr<MG_State::GLState::ITextureObject> textureObject);
Bool ValidateTextureTargetUniformity(SharedPtr<MG_State::GLState::ITextureObject> textureObject,
TextureTarget target);
Bool ValidateTextureSubImageOffsets(SharedPtr<MG_State::GLState::ITextureObject> textureObject, Int xoffset,
Int width, Int yoffset = 0, Int height = 0, Int zoffset = 0, Int depth = 0);
Bool ValidateBaseInternalFormatMatch(TextureInternalFormat format1, TextureInternalFormat format2);
} // namespace MobileGL::MG_Impl::GLImpl::TextureImpl
@@ -12,222 +12,216 @@
#include <MG_State/GLState/ErrorState/Error.h>
#include <MG_Util/Converters/GLToMG/DataTypeConverter.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
void DisableVertexAttribArray_State(GLuint index) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
namespace MobileGL::MG_Impl::GLImpl {
void DisableVertexAttribArray_State(GLuint index) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"EnableVertexAttribArray_State",
"No vertex array object is bound."));
return;
}
vao->DisableAttribute(index);
auto& vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl",
"EnableVertexAttribArray_State",
"No vertex array object is bound."));
return;
}
void EnableVertexAttribArray_State(GLuint index) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
vao->DisableAttribute(index);
}
auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"EnableVertexAttribArray_State",
"No vertex array object is bound."));
return;
}
void EnableVertexAttribArray_State(GLuint index) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
vao->EnableAttribute(index);
auto& vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl",
"EnableVertexAttribArray_State",
"No vertex array object is bound."));
return;
}
// TODO: implement GL_BGRA support
void VertexAttribIPointer_State(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
vao->EnableAttribute(index);
}
DataType dataType = MG_Util::ConvertGLEnumToDataType(type);
if (!VertexArrayImpl::ValidateVertexAttribPointerParams(index, size, dataType, stride)) return;
// TODO: implement GL_BGRA support
void VertexAttribIPointer_State(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"VertexAttribPointer_State",
"No vertex array object is bound."));
return;
}
DataType dataType = MG_Util::ConvertGLEnumToDataType(type);
if (!VertexArrayImpl::ValidateVertexAttribPointerParams(index, size, dataType, stride)) return;
auto& vboSlot = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex);
auto vbo = vboSlot.GetBoundObject();
if (!vbo) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No buffer is bound to GL_ARRAY_BUFFER."));
return;
}
SizeT offset = reinterpret_cast<SizeT>(pointer);
vao->SetAttributeFormat(index, size, dataType, false, stride, offset, true);
vao->BindAttributeBuffer(index, vbo);
auto& vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No vertex array object is bound."));
return;
}
// TODO: implement GL_BGRA support
void VertexAttribPointer_State(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
DataType dataType = MG_Util::ConvertGLEnumToDataType(type);
if (!VertexArrayImpl::ValidateVertexAttribPointerParams(index, size, dataType, stride)) return;
auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"VertexAttribPointer_State",
"No vertex array object is bound."));
return;
}
auto& vboSlot = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex);
auto vbo = vboSlot.GetBoundObject();
if (!vbo) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No buffer is bound to GL_ARRAY_BUFFER."));
return;
}
SizeT offset = reinterpret_cast<SizeT>(pointer);
vao->SetAttributeFormat(index, size, dataType, normalized, stride, offset, false);
vao->BindAttributeBuffer(index, vbo);
auto& vboSlot = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex);
auto& vbo = vboSlot.GetBoundObject();
if (!vbo) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No buffer is bound to GL_ARRAY_BUFFER."));
return;
}
void BindVertexArray_State(GLuint array) {
if (array == 0) {
auto offset = reinterpret_cast<SizeT>(pointer);
vao->SetAttributeFormat(index, size, dataType, false, stride, offset, true);
vao->BindAttributeBuffer(index, vbo);
}
// TODO: implement GL_BGRA support
void VertexAttribPointer_State(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
DataType dataType = MG_Util::ConvertGLEnumToDataType(type);
if (!VertexArrayImpl::ValidateVertexAttribPointerParams(index, size, dataType, stride)) return;
auto& vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No vertex array object is bound."));
return;
}
auto& vboSlot = MG_State::pGLContext->GetBufferBindingSlot(BufferTarget::Vertex);
auto& vbo = vboSlot.GetBoundObject();
if (!vbo) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribPointer_State",
"No buffer is bound to GL_ARRAY_BUFFER."));
return;
}
SizeT offset = reinterpret_cast<SizeT>(pointer);
vao->SetAttributeFormat(index, size, dataType, normalized, stride, offset, false);
vao->BindAttributeBuffer(index, vbo);
}
void BindVertexArray_State(GLuint array) {
if (array == 0) {
MG_State::pGLContext->BindVertexArray(0);
return;
}
if (!VertexArrayImpl::ValidateVertexArrayName(array)) return;
if (!MG_State::pGLContext->ValidateVertexArrayObject(array)) {
MG_State::pGLContext->CreateVertexArrayObject(array);
}
MG_State::pGLContext->BindVertexArray(array);
}
void DeleteVertexArrays_State(GLsizei n, const GLuint* arrays) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteVertexArrays_State", "n must be non-negative."));
return;
}
for (GLsizei i = 0; i < n; ++i) {
GLuint vao = arrays[i];
if (vao == 0) continue;
if (!VertexArrayImpl::ValidateVertexArrayName(vao)) continue;
if (MG_State::pGLContext->GetBoundVertexArray() &&
MG_State::pGLContext->GetBoundVertexArray() == MG_State::pGLContext->GetVertexArrayObject(vao)) {
MG_State::pGLContext->BindVertexArray(0);
return;
}
if (!VertexArrayImpl::ValidateVertexArrayName(array)) return;
MG_State::pGLContext->MarkVertexArrayForDeletion(vao);
}
}
if (!MG_State::pGLContext->ValidateVertexArrayObject(array)) {
MG_State::pGLContext->CreateVertexArrayObject(array);
}
MG_State::pGLContext->BindVertexArray(array);
void GenVertexArrays_State(GLsizei n, GLuint* arrays) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "GenVertexArrays_State", "n must be non-negative."));
return;
}
void DeleteVertexArrays_State(GLsizei n, const GLuint* arrays) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "DeleteVertexArrays_State",
"n must be non-negative."));
return;
}
static thread_local Vector<Uint> vaos;
MG_State::pGLContext->GenVertexArrayNames(n, vaos);
Memcpy(arrays, vaos.data(), n * sizeof(GLuint));
}
for (GLsizei i = 0; i < n; ++i) {
GLuint vao = arrays[i];
if (vao == 0) continue;
GLboolean IsVertexArray_State(GLuint array) {
if (array == 0) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "IsVertexArray_State",
"Vertex array name 0 is not supported."));
return GL_FALSE;
}
if (!VertexArrayImpl::ValidateVertexArrayName(array)) return GL_FALSE;
if (!MG_State::pGLContext->ValidateVertexArrayObject(array)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "IsVertexArray_State",
std::format("Vertex array object {} does not exist.", array)));
return GL_FALSE;
}
return GL_TRUE;
}
if (!VertexArrayImpl::ValidateVertexArrayName(vao)) continue;
void VertexAttribDivisor_State(GLuint index, GLuint divisor) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
if (MG_State::pGLContext->GetBoundVertexArray() &&
MG_State::pGLContext->GetBoundVertexArray() == MG_State::pGLContext->GetVertexArrayObject(vao)) {
MG_State::pGLContext->BindVertexArray(0);
}
MG_State::pGLContext->MarkVertexArrayForDeletion(vao);
}
auto& vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation, MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "VertexAttribDivisor_State",
"No vertex array object is bound."));
return;
}
void GenVertexArrays_State(GLsizei n, GLuint* arrays) {
if (n < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "GenVertexArrays_State", "n must be non-negative."));
return;
}
vao->SetAttributeDivisor(index, divisor);
}
auto vaoNames = MG_State::pGLContext->GenVertexArrayNames(n);
Copy(vaoNames.data(), arrays, vaoNames.size());
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void VertexAttribDivisor(GLuint index, GLuint divisor) {
VertexAttribDivisor_State(index, divisor);
}
GLboolean IsVertexArray_State(GLuint array) {
if (array == 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue, MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "IsVertexArray_State",
"Vertex array name 0 is not supported."));
return GL_FALSE;
}
if (!VertexArrayImpl::ValidateVertexArrayName(array)) return GL_FALSE;
if (!MG_State::pGLContext->ValidateVertexArrayObject(array)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "IsVertexArray_State",
std::format("Vertex array object {} does not exist.", array)));
return GL_FALSE;
}
return GL_TRUE;
}
GLboolean IsVertexArray(GLuint array) {
return IsVertexArray_State(array);
}
void VertexAttribDivisor_State(GLuint index, GLuint divisor) {
if (!VertexArrayImpl::ValidateVertexAttributeIndex(index)) return;
void DisableVertexAttribArray(GLuint index) {
DisableVertexAttribArray_State(index);
}
auto vao = MG_State::pGLContext->GetBoundVertexArray();
if (!vao) {
MG_State::pGLContext->RecordError(ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl",
"VertexAttribDivisor_State",
"No vertex array object is bound."));
return;
}
void EnableVertexAttribArray(GLuint index) {
EnableVertexAttribArray_State(index);
}
vao->SetAttributeDivisor(index, divisor);
}
void VertexAttribIPointer(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer) {
VertexAttribIPointer_State(index, size, type, stride, pointer);
}
/* @INSERTION_POINT:FUNCTION_IMPLEMENTATION@ */
void VertexAttribDivisor(GLuint index, GLuint divisor) {
VertexAttribDivisor_State(index, divisor);
}
void VertexAttribPointer(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer) {
VertexAttribPointer_State(index, size, type, normalized, stride, pointer);
}
GLboolean IsVertexArray(GLuint array) {
return IsVertexArray_State(array);
}
void BindVertexArray(GLuint array) {
BindVertexArray_State(array);
}
void DisableVertexAttribArray(GLuint index) {
DisableVertexAttribArray_State(index);
}
void DeleteVertexArrays(GLsizei n, const GLuint* arrays) {
DeleteVertexArrays_State(n, arrays);
}
void EnableVertexAttribArray(GLuint index) {
EnableVertexAttribArray_State(index);
}
void VertexAttribIPointer(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer) {
VertexAttribIPointer_State(index, size, type, stride, pointer);
}
void VertexAttribPointer(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer) {
VertexAttribPointer_State(index, size, type, normalized, stride, pointer);
}
void BindVertexArray(GLuint array) {
BindVertexArray_State(array);
}
void DeleteVertexArrays(GLsizei n, const GLuint* arrays) {
DeleteVertexArrays_State(n, arrays);
}
void GenVertexArrays(GLsizei n, GLuint* arrays) {
GenVertexArrays_State(n, arrays);
}
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
void GenVertexArrays(GLsizei n, GLuint* arrays) {
GenVertexArrays_State(n, arrays);
}
} // namespace MobileGL::MG_Impl::GLImpl
@@ -9,18 +9,16 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void VertexAttribDivisor(GLuint index, GLuint divisor);
GLboolean IsVertexArray(GLuint array);
void DisableVertexAttribArray(GLuint index);
void EnableVertexAttribArray(GLuint index);
void VertexAttribIPointer(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer);
void VertexAttribPointer(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer);
void BindVertexArray(GLuint array);
void DeleteVertexArrays(GLsizei n, const GLuint* arrays);
void GenVertexArrays(GLsizei n, GLuint* arrays);
} // namespace MG_Impl::GLImpl
} // namespace MobileGL
namespace MobileGL::MG_Impl::GLImpl {
/* @INSERTION_POINT:FUNCTION_DECLARATION@ */
void VertexAttribDivisor(GLuint index, GLuint divisor);
GLboolean IsVertexArray(GLuint array);
void DisableVertexAttribArray(GLuint index);
void EnableVertexAttribArray(GLuint index);
void VertexAttribIPointer(GLuint index, GLint size, GLenum type, GLsizei stride, const void* pointer);
void VertexAttribPointer(GLuint index, GLint size, GLenum type, GLboolean normalized, GLsizei stride,
const void* pointer);
void BindVertexArray(GLuint array);
void DeleteVertexArrays(GLsizei n, const GLuint* arrays);
void GenVertexArrays(GLsizei n, GLuint* arrays);
} // namespace MobileGL::MG_Impl::GLImpl
@@ -12,74 +12,71 @@
#include <MG_Util/Converters/MGToGL/DataTypeConverter.h>
#include <MG_Util/Converters/MGToStr/DataTypeConverter.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace VertexArrayImpl {
namespace MobileGL::MG_Impl::GLImpl::VertexArrayImpl {
Bool ValidateVertexArrayName(Uint index) {
Bool isValid = MG_State::pGLContext->ValidateVertexArrayName(index);
if (!isValid) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateVertexArrayName",
std::format("Vertex array name {} is not valid.", index)));
return false;
}
return true;
}
Bool ValidateVertexArrayName(Uint index) {
Bool isValid = MG_State::pGLContext->ValidateVertexArrayName(index);
if (!isValid) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateVertexArrayName",
std::format("Vertex array name {} is not valid.", index)));
return false;
}
return true;
Bool ValidateVertexArrayObject(Uint index) {
if (!MG_State::pGLContext->ValidateVertexArrayObject(index)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeUnique<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateVertexArrayObject",
std::format("Vertex array object {} does not exist.", index)));
return false;
}
return true;
}
Bool ValidateVertexAttributeIndex(Uint index) {
if (index >= MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttributeIndex",
std::format("Attribute index {} exceeds maximum of {}.", index,
MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS - 1)));
return false;
}
return true;
}
Bool ValidateVertexAttribPointerParams(Uint index, SizeT size, DataType type, Int stride) {
if (size < 1 || size > 4) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Invalid size {} for attribute {}. Must be 1-4.", size, index)));
return false;
}
Bool ValidateVertexArrayObject(Uint index) {
if (!MG_State::pGLContext->ValidateVertexArrayObject(index)) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidOperation,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateVertexArrayObject",
std::format("Vertex array object {} does not exist.", index)));
return false;
}
return true;
if (type == DataType::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Invalid type {} for attribute {}.", MG_Util::ConvertDataTypeToString(type), index)));
return false;
}
Bool ValidateVertexAttributeIndex(Uint index) {
if (index >= MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttributeIndex",
std::format("Attribute index {} exceeds maximum of {}.", index,
MG_State::GLState::VertexArrayObject::MAX_VERTEX_ATTRIBS - 1)));
return false;
}
return true;
if (stride < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeUnique<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Negative stride {} is not allowed for attribute {}.", stride, index)));
return false;
}
Bool ValidateVertexAttribPointerParams(Uint index, SizeT size, DataType type, Int stride) {
if (size < 1 || size > 4) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Invalid size {} for attribute {}. Must be 1-4.", size, index)));
return false;
}
if (type == DataType::Unknown) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidEnum,
MakeShared<GenericErrorInfo>("MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Invalid type {} for attribute {}.",
MG_Util::ConvertDataTypeToString(type).c_str(), index)));
return false;
}
if (stride < 0) {
MG_State::pGLContext->RecordError(
ErrorCode::InvalidValue,
MakeShared<GenericErrorInfo>(
"MG_Impl/GLImpl", "ValidateVertexAttribPointerParams",
std::format("Negative stride {} is not allowed for attribute {}.", stride, index)));
return false;
}
return true;
}
} // namespace VertexArrayImpl
} // namespace MobileGL::MG_Impl::GLImpl
return true;
}
} // namespace MobileGL::MG_Impl::GLImpl::VertexArrayImpl
@@ -10,11 +10,9 @@
#include <Includes.h>
#include <MG_State/GLState/VertexArrayState/VertexArrayObject.h>
namespace MobileGL::MG_Impl::GLImpl {
namespace VertexArrayImpl {
Bool ValidateVertexArrayName(Uint index);
Bool ValidateVertexArrayObject(Uint index);
Bool ValidateVertexAttributeIndex(Uint index);
Bool ValidateVertexAttribPointerParams(Uint index, SizeT size, DataType type, Int stride);
} // namespace VertexArrayImpl
} // namespace MobileGL::MG_Impl::GLImpl
namespace MobileGL::MG_Impl::GLImpl::VertexArrayImpl {
Bool ValidateVertexArrayName(Uint index);
Bool ValidateVertexArrayObject(Uint index);
Bool ValidateVertexAttributeIndex(Uint index);
Bool ValidateVertexAttribPointerParams(Uint index, SizeT size, DataType type, Int stride);
} // namespace MobileGL::MG_Impl::GLImpl::VertexArrayImpl
+4 -6
View File
@@ -10,9 +10,7 @@
#include <Includes.h>
#include "MG_Impl/GetProcAddress.h"
namespace MG_Impl {
namespace GLXImpl {
void* GetProcAddress(const char* name);
void* GetProcAddressARB(const char* name);
} // namespace GLXImpl
} // namespace MG_Impl
namespace MG_Impl::GLXImpl {
void* GetProcAddress(const char* name);
void* GetProcAddressARB(const char* name);
} // namespace MG_Impl::GLXImpl
File diff suppressed because it is too large Load Diff
+3 -5
View File
@@ -9,8 +9,6 @@
#pragma once
#include <Includes.h>
namespace MobileGL {
namespace MG_Impl {
void* GetProcAddress(const char* name);
} // namespace MG_Impl
} // namespace MobileGL
namespace MobileGL::MG_Impl {
void* GetProcAddress(const char* name);
} // namespace MobileGL::MG_Impl
+5 -3
View File
@@ -18,10 +18,10 @@
namespace MobileGL::MG_Impl {
void Init() {
MGLOG_D("Initializing MobileGL Implementation...");
GLImpl::TextureImpl::pProxyTextureManager = new GLImpl::TextureImpl::ProxyTextureManager();
GLImpl::TextureImpl::pProxyTextureManager = MakeUnique<GLImpl::TextureImpl::ProxyTextureManager>();
// TODO: get real info in EGL
auto fbo0 = MG_State::pGLContext->CreateFramebufferObject(0);
auto& fbo0 = MG_State::pGLContext->CreateFramebufferObject(0);
auto colorTex = MakeShared<MG_State::GLState::TextureObject2D>(0);
colorTex->SetInternalFormat(TextureInternalFormat::RGBA8);
colorTex->AllocateStorage(TextureUploadTarget::Texture2D, 0, {{512, 512, 1}, 0});
@@ -38,6 +38,8 @@ namespace MobileGL::MG_Impl {
fbo0->AttachTexture(FramebufferAttachmentType::Depth, depthTex);
fbo0->AttachTexture(FramebufferAttachmentType::Stencil, stencilTex);
GLImpl::FramebufferImpl::pDefaultFramebufferInfo =
new GLImpl::FramebufferImpl::DefaultFramebufferInfo(fbo0, colorTex, depthTex, stencilTex);
MakeUnique<GLImpl::FramebufferImpl::DefaultFramebufferInfo>(fbo0, colorTex, depthTex, stencilTex);
MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Draw).Bind(fbo0);
MG_State::pGLContext->GetFramebufferBindingSlot(FramebufferTarget::Read).Bind(fbo0);
}
} // namespace MobileGL::MG_Impl
+7 -5
View File
@@ -16,6 +16,10 @@ namespace MobileGL {
constexpr EGLint EGL_DISPLAY_MINOR_VERSION = 5;
} // namespace
Bool EGLContext::DisplayLookupKey::operator==(const DisplayLookupKey& rhs) const {
return this->NativeDisplayKey == rhs.NativeDisplayKey && this->Platform == rhs.Platform;
}
SizeT EGLContext::DisplayLookupHasher::operator()(const DisplayLookupKey& key) const {
const auto nativeHash = std::hash<Uint64>{}(key.NativeDisplayKey);
const auto platformHash = std::hash<Uint64>{}(static_cast<Uint64>(key.Platform));
@@ -388,8 +392,6 @@ namespace MobileGL {
*value = cfg->SurfaceType;
return true;
case EGL_RENDERABLE_TYPE:
*value = cfg->RenderableType;
return true;
case EGL_CONFORMANT:
*value = cfg->RenderableType;
return true;
@@ -878,8 +880,8 @@ namespace MobileGL {
Bool EGLContext::MakeCurrent(EGLDisplayHandle display, EGLSurfaceHandle draw, EGLSurfaceHandle read,
EGLContextHandle context) {
const std::lock_guard<std::recursive_mutex> lock(m_mutex);
const Bool releaseCurrentRequest = display == EGL_NO_DISPLAY && draw == EGL_NO_SURFACE &&
read == EGL_NO_SURFACE && context == nullptr;
const Bool releaseCurrentRequest =
display == EGL_NO_DISPLAY && draw == EGL_NO_SURFACE && read == EGL_NO_SURFACE && context == nullptr;
const auto threadKey = CurrentThreadKey();
if (releaseCurrentRequest) {
ReleaseThreadUnlocked(threadKey);
@@ -1130,6 +1132,6 @@ namespace MobileGL {
}
} // namespace EGLState
EGLState::EGLContext* pEGLContext;
UniquePtr<EGLState::EGLContext> pEGLContext;
} // namespace MG_State
} // namespace MobileGL
+2 -2
View File
@@ -115,7 +115,7 @@ namespace MobileGL {
Uint64 NativeDisplayKey = 0;
EGLenum Platform = EGL_NONE;
Bool operator==(const DisplayLookupKey& rhs) const = default;
Bool operator==(const DisplayLookupKey& rhs) const;
};
struct DisplayLookupHasher {
@@ -253,6 +253,6 @@ namespace MobileGL {
};
} // namespace EGLState
extern EGLState::EGLContext* pEGLContext;
extern UniquePtr<EGLState::EGLContext> pEGLContext;
} // namespace MG_State
} // namespace MobileGL
@@ -7,210 +7,203 @@
// End of Source File Header
#include "BufferObject.h"
#include "MG_Util/Types.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
BufferObject::BufferObject(Uint externalIndex)
: m_externalIndex(externalIndex), m_size(0), m_usage(BufferUsage::StaticDraw), m_isMapped(false),
m_mappingAccess(BufferMappingAccessBit::Null),
m_change(BufferChangeBits::DirtyBit | BufferChangeBits::PreferReallocationBit), m_mappedRange({0, 0}),
m_dataPtr(MakeShared<Data>()) {
m_change.DirtyRanges.reserve(BufferChange::DEFAULT_RESERVED_DIRTY_RANGES_COUNT);
}
namespace MobileGL::MG_State::GLState {
BufferObject::BufferObject(Uint externalIndex)
: m_externalIndex(externalIndex), m_size(0), m_usage(BufferUsage::StaticDraw), m_isMapped(false),
m_mappingAccess(BufferMappingAccessBit::Null),
m_change(BufferChangeBits::DirtyBit | BufferChangeBits::PreferReallocationBit), m_mappedRange({0, 0}),
m_dataPtr(MakeShared<Data>()), m_ownsStagingData{} {
m_change.DirtyRanges.reserve(BufferChange::DEFAULT_RESERVED_DIRTY_RANGES_COUNT);
}
void BufferObject::Resize(SizeT size) {
m_size = size;
m_dataPtr->reserve(std::bit_ceil(size)); // power-of-2 reserve
m_dataPtr->resize(size);
void BufferObject::Resize(SizeT size) {
m_size = size;
m_dataPtr->reserve(std::bit_ceil(size)); // power-of-2 reserve
m_dataPtr->resize(size);
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::PreferReallocationBit;
}
void BufferObject::UploadData(DataPtr data, SizeT atOffset) {
MOBILEGL_ASSERT(atOffset + data.size <= m_size,
"UploadData out of bounds: atOffset (%zu) + data.size (%zu) > m_size (%zu)", atOffset,
data.size, m_size);
MOBILEGL_ASSERT(!m_isMapped, "Cannot upload data while buffer is mapped.");
Memcpy(m_dataPtr->data() + atOffset, data.data, data.size);
m_change.DirtyRanges.Add({atOffset, atOffset + data.size});
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::ForbidInvalidationBit;
m_change.Bits |= BufferChangeBits::ForbidUnsynchronizationBit;
// This function may be called by `glBufferData`, but we still set the forbid bits above,
// because when `PreferReallocationBit` is set, those bits are ignored anyway.
// The bits can fit the `glBufferSubData` semantics
// (though `glBufferSubData` calls `UploadSubData` instead).
}
void BufferObject::SetUsage(BufferUsage usage) {
m_usage = usage;
}
void BufferObject::ReleaseMemory() {
if (!m_isMapped) return;
if (m_mappingAccess & BufferMappingAccessBit::Write) { // if we wrote to the buffer
if (!(m_mappingAccess & BufferMappingAccessBit::FlushExplicit)) { // if we didn't flush explicitly
Memcpy(m_dataPtr->data() + m_mappedRange.start, m_stagingData.data(),
m_mappedRange.end - m_mappedRange.start);
m_change.DirtyRanges.Add({m_mappedRange.start, m_mappedRange.end});
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::PreferReallocationBit;
}
void BufferObject::UploadData(DataPtr data, SizeT atOffset) {
MOBILEGL_ASSERT(atOffset + data.size <= m_size,
"UploadData out of bounds: atOffset (%zu) + data.size (%zu) > m_size (%zu)", atOffset,
data.size, m_size);
MOBILEGL_ASSERT(!m_isMapped, "Cannot upload data while buffer is mapped.");
Memcpy(m_dataPtr->data() + atOffset, data.data, data.size);
m_change.DirtyRanges.Add({atOffset, atOffset + data.size});
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::ForbidInvalidationBit;
m_change.Bits |= BufferChangeBits::ForbidUnsynchronizationBit;
// This function may be called by `glBufferData`, but we still set the forbid bits above,
// because when `PreferReallocationBit` is set, those bits are ignored anyway.
// The bits can fit the `glBufferSubData` semantics
// (though `glBufferSubData` calls `UploadSubData` instead).
}
m_stagingData.clear();
}
void BufferObject::SetUsage(BufferUsage usage) {
m_usage = usage;
}
m_isMapped = false;
m_mappingAccess = BufferMappingAccessBit::Null;
m_mappedRange = {0, 0};
m_ownsStagingData = false;
}
void BufferObject::ReleaseMemory() {
if (!m_isMapped) return;
void BufferObject::FlushMemoryRange(SizeT offset, SizeT length) {
MOBILEGL_ASSERT(m_isMapped, "Buffer must be mapped to flush memory range.");
MOBILEGL_ASSERT((m_mappingAccess & BufferMappingAccessBit::FlushExplicit),
"Buffer must be mapped with FlushExplicit access to flush memory range.");
MOBILEGL_ASSERT((m_mappingAccess & BufferMappingAccessBit::Write),
"Buffer must be mapped with Write access to flush memory range.");
if (m_mappingAccess & BufferMappingAccessBit::Write) { // if we wrote to the buffer
if (!(m_mappingAccess & BufferMappingAccessBit::FlushExplicit)) { // if we didn't flush explicitly
Memcpy(m_dataPtr->data() + m_mappedRange.start, m_stagingData.data(),
m_mappedRange.end - m_mappedRange.start);
m_change.DirtyRanges.Add({m_mappedRange.start, m_mappedRange.end});
m_change.Bits |= BufferChangeBits::DirtyBit;
}
SizeT start = m_mappedRange.start + offset;
SizeT end = start + length;
MOBILEGL_ASSERT(end <= m_mappedRange.end, "Flush range out of bounds: mappedRange.end (%zu) < end (%zu)",
m_mappedRange.end, end);
m_stagingData.clear();
Memcpy(m_dataPtr->data() + start, m_stagingData.data() + offset, length);
m_change.DirtyRanges.Add({start, end});
m_change.Bits |= BufferChangeBits::DirtyBit;
}
void BufferObject::UploadSubData(DataPtr data, SizeT atOffset) {
MOBILEGL_ASSERT(!m_isMapped, "Cannot upload sub data while buffer is mapped.");
MOBILEGL_ASSERT(atOffset + data.size <= m_size,
"UploadSubData out of bounds: atOffset (%zu) + data.size (%zu) > m_size (%zu)", atOffset,
data.size, m_size);
Memcpy(m_dataPtr->data() + atOffset, data.data, data.size);
m_change.DirtyRanges.Add({atOffset, atOffset + data.size});
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::ForbidInvalidationBit;
m_change.Bits |= BufferChangeBits::ForbidUnsynchronizationBit;
}
void BufferObject::CopyDataFrom(const SharedPtr<BufferObject>& src, SizeT srcOffset, SizeT dstOffset, SizeT size) {
MOBILEGL_ASSERT(!m_isMapped, "Cannot copy data while buffer is mapped.");
MOBILEGL_ASSERT(!src->IsMapped(), "Cannot copy data from a buffer that is mapped.");
MOBILEGL_ASSERT(srcOffset + size <= src->GetSize(),
"Source buffer copy out of bounds: srcOffset (%zu) + size (%zu) > src->GetSize() (%zu)",
srcOffset, size, src->GetSize());
MOBILEGL_ASSERT(dstOffset + size <= m_size,
"Destination buffer copy out of bounds: dstOffset (%zu) + size (%zu) > m_size (%zu)", dstOffset,
size, m_size);
const Uint8* srcData = src->m_dataPtr->data() + srcOffset;
Memcpy(m_dataPtr->data() + dstOffset, srcData, size);
m_change.DirtyRanges.Add({dstOffset, dstOffset + size});
m_change.Bits |= BufferChangeBits::DirtyBit;
}
void* BufferObject::AcquireMemory(Bool markMapped, Bool read, Bool write) {
if (markMapped) {
m_isMapped = true;
auto a = BufferMappingAccessBit::Coherent | BufferMappingAccessBit::Read;
m_mappingAccess = (read ? BufferMappingAccessBit::Read : BufferMappingAccessBit::Null) |
(write ? BufferMappingAccessBit::Write : BufferMappingAccessBit::Null);
m_mappedRange = {0, m_size};
if (m_mappingAccess & BufferMappingAccessBit::Write) {
m_stagingData.resize(m_size);
m_ownsStagingData = true;
if (!(m_mappingAccess &
(BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer))) {
Memcpy(m_stagingData.data(), m_dataPtr->data(), m_size);
}
m_isMapped = false;
m_mappingAccess = BufferMappingAccessBit::Null;
m_mappedRange = {0, 0};
m_ownsStagingData = false;
return m_stagingData.data();
}
}
return m_dataPtr->data();
}
void* BufferObject::AcquireMemoryRange(Range1D range, Flags<BufferMappingAccessBit> access) {
MOBILEGL_ASSERT(range.end <= m_size && range.start <= range.end,
"AcquireMemoryRange out of bounds: range (%zu, %zu) exceeds m_size (%zu)", range.start,
range.end, m_size);
m_isMapped = true;
m_mappingAccess = access;
m_mappedRange = range;
if (access & BufferMappingAccessBit::Write) {
m_stagingData.resize(range.end - range.start);
m_ownsStagingData = true;
if (!(access & (BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer))) {
Memcpy(m_stagingData.data(), m_dataPtr->data() + range.start, m_stagingData.size());
}
void BufferObject::FlushMemoryRange(SizeT offset, SizeT length) {
MOBILEGL_ASSERT(m_isMapped, "Buffer must be mapped to flush memory range.");
MOBILEGL_ASSERT((m_mappingAccess & BufferMappingAccessBit::FlushExplicit),
"Buffer must be mapped with FlushExplicit access to flush memory range.");
MOBILEGL_ASSERT((m_mappingAccess & BufferMappingAccessBit::Write),
"Buffer must be mapped with Write access to flush memory range.");
return m_stagingData.data();
} else {
m_ownsStagingData = false;
return m_dataPtr->data() + range.start;
}
SizeT start = m_mappedRange.start + offset;
SizeT end = start + length;
MOBILEGL_ASSERT(end <= m_mappedRange.end,
"Flush range out of bounds: mappedRange.end (%zu) < end (%zu)", m_mappedRange.end, end);
m_change.Bits |=
!(access & BufferMappingAccessBit::InvalidateBuffer || access & BufferMappingAccessBit::InvalidateRange)
? BufferChangeBits::ForbidInvalidationBit
: BufferChangeBits::None;
m_change.Bits |= !(access & BufferMappingAccessBit::Unsynchronized)
? BufferChangeBits::ForbidUnsynchronizationBit
: BufferChangeBits::None;
}
Memcpy(m_dataPtr->data() + start, m_stagingData.data() + offset, length);
m_change.DirtyRanges.Add({start, end});
m_change.Bits |= BufferChangeBits::DirtyBit;
}
const SharedPtr<Data>& BufferObject::GetDataReadOnly() const {
return m_dataPtr;
}
void BufferObject::UploadSubData(DataPtr data, SizeT atOffset) {
MOBILEGL_ASSERT(!m_isMapped, "Cannot upload sub data while buffer is mapped.");
MOBILEGL_ASSERT(atOffset + data.size <= m_size,
"UploadSubData out of bounds: atOffset (%zu) + data.size (%zu) > m_size (%zu)",
atOffset, data.size, m_size);
void BufferObject::ClearDirty() {
m_change.DirtyRanges.clear();
m_change.Bits = BufferChangeBits::None;
}
Memcpy(m_dataPtr->data() + atOffset, data.data, data.size);
m_change.DirtyRanges.Add({atOffset, atOffset + data.size});
m_change.Bits |= BufferChangeBits::DirtyBit;
m_change.Bits |= BufferChangeBits::ForbidInvalidationBit;
m_change.Bits |= BufferChangeBits::ForbidUnsynchronizationBit;
}
SizeT BufferObject::GetSize() const {
return m_size;
}
void BufferObject::CopyDataFrom(const SharedPtr<BufferObject>& src, SizeT srcOffset, SizeT dstOffset,
SizeT size) {
MOBILEGL_ASSERT(!m_isMapped, "Cannot copy data while buffer is mapped.");
MOBILEGL_ASSERT(!src->IsMapped(), "Cannot copy data from a buffer that is mapped.");
MOBILEGL_ASSERT(srcOffset + size <= src->GetSize(),
"Source buffer copy out of bounds: srcOffset (%zu) + size (%zu) > src->GetSize() (%zu)",
srcOffset, size, src->GetSize());
MOBILEGL_ASSERT(dstOffset + size <= m_size,
"Destination buffer copy out of bounds: dstOffset (%zu) + size (%zu) > m_size (%zu)",
dstOffset, size, m_size);
BufferUsage BufferObject::GetUsage() const {
return m_usage;
}
const Uint8* srcData = src->m_dataPtr->data() + srcOffset;
Memcpy(m_dataPtr->data() + dstOffset, srcData, size);
m_change.DirtyRanges.Add({dstOffset, dstOffset + size});
m_change.Bits |= BufferChangeBits::DirtyBit;
}
const VecRange1D& BufferObject::GetDirtyRanges() const {
return m_change.DirtyRanges;
}
void* BufferObject::AcquireMemory(Bool markMapped, Bool read, Bool write) {
if (markMapped) {
m_isMapped = true;
auto a = BufferMappingAccessBit::Coherent | BufferMappingAccessBit::Read;
m_mappingAccess = (read ? BufferMappingAccessBit::Read : BufferMappingAccessBit::Null) |
(write ? BufferMappingAccessBit::Write : BufferMappingAccessBit::Null);
m_mappedRange = {0, m_size};
Flags<BufferChangeBits> BufferObject::GetChangeBits() const {
return m_change.Bits;
}
if (m_mappingAccess & BufferMappingAccessBit::Write) {
m_stagingData.resize(m_size);
m_ownsStagingData = true;
Bool BufferObject::IsMapped() const {
return m_isMapped;
}
if (!(m_mappingAccess &
(BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer))) {
Memcpy(m_stagingData.data(), m_dataPtr->data(), m_size);
}
Range1D BufferObject::GetMappedRange() const {
return m_isMapped ? m_mappedRange : Range1D{0, 0};
}
return m_stagingData.data();
}
}
Flags<BufferMappingAccessBit> BufferObject::GetMappingAccess() const {
return m_isMapped ? m_mappingAccess : BufferMappingAccessBit::Null;
}
return m_dataPtr->data();
}
void* BufferObject::AcquireMemoryRange(Range1D range, Flags<BufferMappingAccessBit> access) {
MOBILEGL_ASSERT(range.end <= m_size && range.start <= range.end,
"AcquireMemoryRange out of bounds: range (%zu, %zu) exceeds m_size (%zu)", range.start,
range.end, m_size);
m_isMapped = true;
m_mappingAccess = access;
m_mappedRange = range;
if (access & BufferMappingAccessBit::Write) {
m_stagingData.resize(range.end - range.start);
m_ownsStagingData = true;
if (!(access &
(BufferMappingAccessBit::InvalidateRange | BufferMappingAccessBit::InvalidateBuffer))) {
Memcpy(m_stagingData.data(), m_dataPtr->data() + range.start, m_stagingData.size());
}
return m_stagingData.data();
} else {
m_ownsStagingData = false;
return m_dataPtr->data() + range.start;
}
m_change.Bits |= !(access & BufferMappingAccessBit::InvalidateBuffer ||
access & BufferMappingAccessBit::InvalidateRange)
? BufferChangeBits::ForbidInvalidationBit
: BufferChangeBits::None;
m_change.Bits |= !(access & BufferMappingAccessBit::Unsynchronized)
? BufferChangeBits::ForbidUnsynchronizationBit
: BufferChangeBits::None;
}
const SharedPtr<Data> BufferObject::GetDataReadOnly() const {
return m_dataPtr;
}
void BufferObject::ClearDirty() {
m_change.DirtyRanges.clear();
m_change.Bits = BufferChangeBits::None;
}
SizeT BufferObject::GetSize() const {
return m_size;
}
BufferUsage BufferObject::GetUsage() const {
return m_usage;
}
const VecRange1D& BufferObject::GetDirtyRanges() const {
return m_change.DirtyRanges;
}
Flags<BufferChangeBits> BufferObject::GetChangeBits() const {
return m_change.Bits;
}
Bool BufferObject::IsMapped() const {
return m_isMapped;
}
Range1D BufferObject::GetMappedRange() const {
return m_isMapped ? m_mappedRange : Range1D{0, 0};
}
Flags<BufferMappingAccessBit> BufferObject::GetMappingAccess() const {
return m_isMapped ? m_mappingAccess : BufferMappingAccessBit::Null;
}
Uint BufferObject::GetExternalIndex() const {
return m_externalIndex;
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
Uint BufferObject::GetExternalIndex() const {
return m_externalIndex;
}
} // namespace MobileGL::MG_State::GLState
@@ -7,7 +7,6 @@
// End of Source File Header
#pragma once
#include "MG_Util/Types.h"
#include <Includes.h>
#include <MG_Util/Math/VectorTypes.h>
@@ -73,47 +72,45 @@ namespace MobileGL {
VecRange1D DirtyRanges;
};
namespace MG_State {
namespace GLState {
class BufferObject {
public:
using TargetEnum = BufferTarget;
namespace MG_State::GLState {
class BufferObject {
public:
using TargetEnum = BufferTarget;
BufferObject(Uint externalIndex);
BufferObject(Uint externalIndex);
void Resize(SizeT size);
void UploadData(DataPtr data, SizeT atOffset);
void SetUsage(BufferUsage usage);
void* AcquireMemory(Bool markMapped, Bool read, Bool write);
void* AcquireMemoryRange(Range1D range, Flags<BufferMappingAccessBit> access);
void ReleaseMemory();
void FlushMemoryRange(SizeT offset, SizeT length);
void UploadSubData(DataPtr data, SizeT atOffset);
void CopyDataFrom(const SharedPtr<BufferObject>& src, SizeT srcOffset, SizeT dstOffset, SizeT size);
void ClearDirty();
void Resize(SizeT size);
void UploadData(DataPtr data, SizeT atOffset);
void SetUsage(BufferUsage usage);
void* AcquireMemory(Bool markMapped, Bool read, Bool write);
void* AcquireMemoryRange(Range1D range, Flags<BufferMappingAccessBit> access);
void ReleaseMemory();
void FlushMemoryRange(SizeT offset, SizeT length);
void UploadSubData(DataPtr data, SizeT atOffset);
void CopyDataFrom(const SharedPtr<BufferObject>& src, SizeT srcOffset, SizeT dstOffset, SizeT size);
void ClearDirty();
Bool IsMapped() const;
SizeT GetSize() const;
BufferUsage GetUsage() const;
Range1D GetMappedRange() const;
const SharedPtr<Data> GetDataReadOnly() const;
Flags<BufferMappingAccessBit> GetMappingAccess() const;
Uint GetExternalIndex() const;
const VecRange1D& GetDirtyRanges() const;
Flags<BufferChangeBits> GetChangeBits() const;
Bool IsMapped() const;
SizeT GetSize() const;
BufferUsage GetUsage() const;
Range1D GetMappedRange() const;
const SharedPtr<Data>& GetDataReadOnly() const;
Flags<BufferMappingAccessBit> GetMappingAccess() const;
Uint GetExternalIndex() const;
const VecRange1D& GetDirtyRanges() const;
Flags<BufferChangeBits> GetChangeBits() const;
private:
const Uint m_externalIndex = 0;
SizeT m_size = 0;
BufferUsage m_usage = BufferUsage::StaticDraw;
SharedPtr<Data> m_dataPtr;
Bool m_isMapped;
Flags<BufferMappingAccessBit> m_mappingAccess;
BufferChange m_change;
Range1D m_mappedRange;
Vector<Uint8> m_stagingData;
Bool m_ownsStagingData;
};
} // namespace GLState
} // namespace MG_State
private:
const Uint m_externalIndex = 0;
SizeT m_size = 0;
BufferUsage m_usage = BufferUsage::StaticDraw;
SharedPtr<Data> m_dataPtr;
Bool m_isMapped;
Flags<BufferMappingAccessBit> m_mappingAccess;
BufferChange m_change;
Range1D m_mappedRange;
Vector<Uint8> m_stagingData;
Bool m_ownsStagingData;
};
} // namespace MG_State::GLState
} // namespace MobileGL
@@ -8,78 +8,75 @@
#include "BufferState.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
BufferState::BufferState() : m_indexGenerator(1024, 1) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
m_bindingSlots[i] = BindingSlot<BufferObject>(GlobalBufferTargets[i]);
}
}
namespace MobileGL::MG_State::GLState {
BufferState::BufferState() : m_indexGenerator(1024, 1) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
m_bindingSlots[i] = BindingSlot<BufferObject>(GlobalBufferTargets[i]);
}
}
SharedPtr<BufferObject> BufferState::GetBufferObject(Uint index) {
auto it = m_bufferObjects.find(index);
if (it != m_bufferObjects.end()) {
return it->second;
}
return nullptr;
}
const SharedPtr<BufferObject>& BufferState::GetBufferObject(Uint index) {
auto it = m_bufferObjects.find(index);
if (it != m_bufferObjects.end()) {
return it->second;
}
static SharedPtr<BufferObject> nullBufferObject = nullptr;
return nullBufferObject;
}
Vector<Uint> BufferState::GenerateNames(Uint number) {
Vector<Uint> buffers(number);
m_indexGenerator.Generate(number, buffers.data());
return buffers;
}
void BufferState::GenerateNames(Uint number, Vector<Uint>& buffers) {
buffers.resize(number);
m_indexGenerator.Generate(number, buffers.data());
}
SharedPtr<BufferObject> BufferState::CreateBufferObject(Uint index) {
auto bufferObject = MakeShared<BufferObject>(index);
m_bufferObjects[index] = bufferObject;
return bufferObject;
}
const SharedPtr<BufferObject>& BufferState::CreateBufferObject(Uint index) {
auto& bufferObj = m_bufferObjects[index];
if (!bufferObj) {
bufferObj = MakeShared<BufferObject>(index);
}
return bufferObj;
}
BindingSlot<BufferObject>& BufferState::GetBindingSlot(BufferTarget target) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
if (m_bindingSlots[i].GetTarget() == target) {
return m_bindingSlots[i];
BindingSlot<BufferObject>& BufferState::GetBindingSlot(BufferTarget target) {
for (auto& bindingSlot : m_bindingSlots) {
if (bindingSlot.GetTarget() == target) {
return bindingSlot;
}
}
MOBILEGL_ASSERT(false, "Invalid BufferTarget enum value: %d", static_cast<int>(target));
return m_bindingSlots[0];
}
void BufferState::MarkBufferObjectForDeletion(Uint index) {
if (m_indexGenerator.IsValid(index)) {
auto it = m_bufferObjects.find(index);
if (it != m_bufferObjects.end()) {
for (auto& bindingSlot : m_bindingSlots) {
if (bindingSlot.GetBoundObject() == it->second) {
bindingSlot.Bind(nullptr);
}
}
MOBILEGL_ASSERT(false, "Invalid BufferTarget enum value: %d", static_cast<int>(target));
return m_bindingSlots[0];
m_bufferObjects.erase(it);
}
m_indexGenerator.Delete(index);
}
}
void BufferState::MarkBufferObjectForDeletion(Uint index) {
if (m_indexGenerator.IsValid(index)) {
auto it = m_bufferObjects.find(index);
if (it != m_bufferObjects.end()) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
if (m_bindingSlots[i].GetBoundObject() == it->second) {
m_bindingSlots[i].Bind(nullptr);
}
}
m_bufferObjects.erase(it);
}
m_indexGenerator.Delete(index);
}
}
Bool BufferState::ValidateName(Uint index) const {
return m_indexGenerator.IsValid(index);
}
Bool BufferState::ValidateName(Uint index) const {
return m_indexGenerator.IsValid(index);
}
Bool BufferState::ValidateBufferObject(Uint index) const {
return m_bufferObjects.find(index) != m_bufferObjects.end();
}
Bool BufferState::ValidateBufferObject(Uint index) const {
return m_bufferObjects.find(index) != m_bufferObjects.end();
BindingSlotRange1D<BufferObject>& BufferState::GetBindingPoint(BufferTarget target, Uint index) {
for (SizeT i = 0; i < BufferBindPointTargets.size(); ++i) {
if (BufferBindPointTargets[i] == target) {
return m_bufferBindPointTargets[i][index];
}
BindingSlotRange1D<BufferObject>& BufferState::GetBindingPoint(BufferTarget target, Uint index) {
for (SizeT i = 0; i < BufferBindPointTargets.size(); ++i) {
if (BufferBindPointTargets[i] == target) {
return m_bufferBindPointTargets[i][index];
}
}
MOBILEGL_ASSERT(false, "Invalid BufferTarget enum value for binding point: %d",
static_cast<int>(target));
return m_bufferBindPointTargets[0][index];
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
}
MOBILEGL_ASSERT(false, "Invalid BufferTarget enum value for binding point: %d", static_cast<int>(target));
return m_bufferBindPointTargets[0][index];
}
} // namespace MobileGL::MG_State::GLState
@@ -11,46 +11,40 @@
#include <MG_Util/Miscellany/IndexGenerator.h>
#include "BufferObject.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
constexpr const auto GlobalBufferTargets =
ToArray(BufferTarget::Vertex, BufferTarget::Uniform, BufferTarget::CopyRead, BufferTarget::CopyWrite,
BufferTarget::PixelPack, BufferTarget::PixelUnpack, BufferTarget::Query, BufferTarget::Texture,
BufferTarget::TransformFeedback, BufferTarget::AtomicCounter, BufferTarget::DispatchIndirect,
BufferTarget::DrawIndirect, BufferTarget::ShaderStorage);
constexpr const auto BufferBindPointTargets =
ToArray(BufferTarget::Uniform, BufferTarget::TransformFeedback, BufferTarget::AtomicCounter,
BufferTarget::ShaderStorage);
namespace MobileGL::MG_State::GLState {
constexpr const auto GlobalBufferTargets =
ToArray(BufferTarget::Vertex, BufferTarget::Uniform, BufferTarget::CopyRead, BufferTarget::CopyWrite,
BufferTarget::PixelPack, BufferTarget::PixelUnpack, BufferTarget::Query, BufferTarget::Texture,
BufferTarget::TransformFeedback, BufferTarget::AtomicCounter, BufferTarget::DispatchIndirect,
BufferTarget::DrawIndirect, BufferTarget::ShaderStorage);
constexpr const auto BufferBindPointTargets = ToArray(BufferTarget::Uniform, BufferTarget::TransformFeedback,
BufferTarget::AtomicCounter, BufferTarget::ShaderStorage);
class BufferState {
public:
BufferState();
class BufferState {
public:
BufferState();
SharedPtr<BufferObject> GetBufferObject(Uint index);
Vector<Uint> GenerateNames(Uint number);
SharedPtr<BufferObject> CreateBufferObject(Uint index);
BindingSlot<BufferObject>& GetBindingSlot(BufferTarget target);
// For glBindBufferBase / glBindBufferRange
BindingSlotRange1D<BufferObject>& GetBindingPoint(BufferTarget target, Uint index);
constexpr SizeT GetBindingPointCount(const BufferTarget target) const {
auto it = std::find(BufferBindPointTargets.begin(), BufferBindPointTargets.end(), target);
auto index = std::distance(BufferBindPointTargets.begin(), it);
return m_bufferBindPointTargets[index].size();
}
void MarkBufferObjectForDeletion(Uint index);
Bool ValidateName(Uint index) const;
Bool ValidateBufferObject(Uint index) const;
const SharedPtr<BufferObject>& GetBufferObject(Uint index);
void GenerateNames(Uint number, Vector<Uint>& buffers);
const SharedPtr<BufferObject>& CreateBufferObject(Uint index);
BindingSlot<BufferObject>& GetBindingSlot(BufferTarget target);
// For glBindBufferBase / glBindBufferRange
BindingSlotRange1D<BufferObject>& GetBindingPoint(BufferTarget target, Uint index);
constexpr SizeT GetBindingPointCount(const BufferTarget target) const {
auto it = std::find(BufferBindPointTargets.begin(), BufferBindPointTargets.end(), target);
auto index = std::distance(BufferBindPointTargets.begin(), it);
return m_bufferBindPointTargets[index].size();
}
void MarkBufferObjectForDeletion(Uint index);
Bool ValidateName(Uint index) const;
Bool ValidateBufferObject(Uint index) const;
private:
UnorderedMap<Uint, SharedPtr<BufferObject>> m_bufferObjects;
IndexGenerator<Uint> m_indexGenerator;
Array<BindingSlot<BufferObject>, GlobalBufferTargets.size()> m_bindingSlots;
// TODO: query the count somewhere globally?
// For glBindBufferBase / glBindBufferRange
Array<Array<BindingSlotRange1D<BufferObject>, 16>, BufferBindPointTargets.size()>
m_bufferBindPointTargets;
};
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
private:
UnorderedMap<Uint, SharedPtr<BufferObject>> m_bufferObjects;
IndexGenerator<Uint> m_indexGenerator;
Array<BindingSlot<BufferObject>, GlobalBufferTargets.size()> m_bindingSlots;
// TODO: query the count somewhere globally?
// For glBindBufferBase / glBindBufferRange
Array<Array<BindingSlotRange1D<BufferObject>, 16>, BufferBindPointTargets.size()> m_bufferBindPointTargets;
};
} // namespace MobileGL::MG_State::GLState
+336 -336
View File
@@ -10,436 +10,436 @@
#include "MG_State/GLState/RenderbufferState/RenderbufferObject.h"
#include "MG_State/EGLState/Core.h"
namespace MobileGL {
namespace MG_State {
void Init() {
MGLOG_D("Initializing MobileGL State...");
pGLContext = new MG_State::GLState::GLContext();
pEGLContext = new MG_State::EGLState::EGLContext();
namespace MobileGL::MG_State {
void Init() {
MGLOG_D("Initializing MobileGL State...");
pGLContext = MakeUnique<GLState::GLContext>();
pEGLContext = MakeUnique<EGLState::EGLContext>();
}
namespace GLState {
// Error
void GLContext::RecordError(ErrorCode code, UniquePtr<ErrorInfo> info) {
m_errorState.RecordError(code, Move(info));
}
namespace GLState {
// Error
void GLContext::RecordError(ErrorCode code, SharedPtr<ErrorInfo> info) {
m_errorState.RecordError(code, info);
Bool GLContext::HasGLError() const {
return m_errorState.HasGLError();
}
Optional<const Error*> GLContext::PeekGLError() const {
return m_errorState.PeekGLError();
}
Optional<UniquePtr<Error>> GLContext::PopGLError() {
return Move(m_errorState.PopGLError());
}
Bool GLContext::HasNonGLError() const {
return m_errorState.HasNonGLError();
}
Optional<const Error*> GLContext::PeekNonGLError() const {
return m_errorState.PeekNonGLError();
}
Optional<UniquePtr<Error>> GLContext::PopNonGLError() {
return Move(m_errorState.PopNonGLError());
}
void GLContext::ClearErrors() {
m_errorState.Clear();
}
// Buffer
void GLContext::GenBufferNames(Uint number, Vector<Uint>& buffers) {
m_bufferState.GenerateNames(number, buffers);
}
const SharedPtr<BufferObject>& GLContext::GetBufferObject(Uint index) {
return m_bufferState.GetBufferObject(index);
}
BindingSlot<BufferObject>& GLContext::GetBufferBindingSlot(BufferTarget target) {
if (target == BufferTarget::Index) {
const auto& vao = m_vertexArrayState.GetBoundVertexArray();
MOBILEGL_ASSERT(vao != nullptr, "No VAO is currently bound when accessing index buffer binding slot.");
return vao->GetIndexBufferBindingSlot();
}
Bool GLContext::HasGLError() const {
return m_errorState.HasGLError();
}
return m_bufferState.GetBindingSlot(target);
}
Optional<const Error> GLContext::PeekGLError() const {
return m_errorState.PeekGLError();
}
BindingSlotRange1D<BufferObject>& GLContext::GetBufferBindingPoint(BufferTarget target, Uint index) {
return m_bufferState.GetBindingPoint(target, index);
}
Optional<Error> GLContext::PopGLError() {
return m_errorState.PopGLError();
}
const SharedPtr<BufferObject>& GLContext::CreateBufferObject(Uint index) {
return m_bufferState.CreateBufferObject(index);
}
Bool GLContext::HasNonGLError() const {
return m_errorState.HasNonGLError();
}
void GLContext::MarkBufferObjectForDeletion(Uint index) {
if (ValidateBufferObject(index)) {
auto bufferObject = m_bufferState.GetBufferObject(index);
auto& vaos = m_vertexArrayState.GetAllVertexArrays();
for (auto& vao : vaos) {
if (vao == nullptr) continue;
Optional<const Error> GLContext::PeekNonGLError() const {
return m_errorState.PeekNonGLError();
}
Optional<Error> GLContext::PopNonGLError() {
return m_errorState.PopNonGLError();
}
void GLContext::ClearErrors() {
m_errorState.Clear();
}
// Buffer
Vector<Uint> GLContext::GenBufferNames(Uint number) {
return m_bufferState.GenerateNames(number);
}
SharedPtr<BufferObject> GLContext::GetBufferObject(Uint index) {
return m_bufferState.GetBufferObject(index);
}
BindingSlot<BufferObject>& GLContext::GetBufferBindingSlot(BufferTarget target) {
if (target == BufferTarget::Index) {
const auto& vao = m_vertexArrayState.GetBoundVertexArray();
MOBILEGL_ASSERT(vao != nullptr,
"No VAO is currently bound when accessing index buffer binding slot.");
return vao->GetIndexBufferBindingSlot();
}
return m_bufferState.GetBindingSlot(target);
}
BindingSlotRange1D<BufferObject>& GLContext::GetBufferBindingPoint(BufferTarget target, Uint index) {
return m_bufferState.GetBindingPoint(target, index);
}
SharedPtr<BufferObject> GLContext::CreateBufferObject(Uint index) {
return m_bufferState.CreateBufferObject(index);
}
void GLContext::MarkBufferObjectForDeletion(Uint index) {
if (ValidateBufferObject(index)) {
auto bufferObject = m_bufferState.GetBufferObject(index);
auto& vaos = m_vertexArrayState.GetAllVertexArrays();
for (SizeT i = 0; i < vaos.size(); ++i) {
auto vao = vaos[i];
if (vao == nullptr) continue;
if (vao->GetIndexBufferBindingSlot().GetBoundObject() == bufferObject) {
vao->GetIndexBufferBindingSlot().Bind(nullptr);
}
for (SizeT j = 0; j < VertexArrayObject::MAX_VERTEX_ATTRIBS; ++j) {
if (vao->GetAttribute(j).Buffer == bufferObject) {
vao->BindAttributeBuffer(j, nullptr);
}
if (vao->GetIndexBufferBindingSlot().GetBoundObject() == bufferObject) {
vao->GetIndexBufferBindingSlot().Bind(nullptr);
}
for (SizeT j = 0; j < VertexArrayObject::MAX_VERTEX_ATTRIBS; ++j) {
if (vao->GetAttribute(j).Buffer == bufferObject) {
vao->BindAttributeBuffer(j, nullptr);
}
}
}
m_bufferState.MarkBufferObjectForDeletion(index);
}
Bool GLContext::ValidateBufferName(Uint index) const {
return m_bufferState.ValidateName(index);
}
m_bufferState.MarkBufferObjectForDeletion(index);
}
Bool GLContext::ValidateBufferObject(Uint index) const {
return m_bufferState.ValidateBufferObject(index);
}
Bool GLContext::ValidateBufferName(Uint index) const {
return m_bufferState.ValidateName(index);
}
// VertexArray
Vector<Uint> GLContext::GenVertexArrayNames(Uint number) {
return m_vertexArrayState.GenerateNames(number);
}
Bool GLContext::ValidateBufferObject(Uint index) const {
return m_bufferState.ValidateBufferObject(index);
}
SharedPtr<VertexArrayObject> GLContext::GetVertexArrayObject(Uint index) {
return m_vertexArrayState.GetVertexArrayObject(index);
}
// VertexArray
void GLContext::GenVertexArrayNames(Uint number, Vector<Uint>& vertexArrays) {
m_vertexArrayState.GenerateNames(number, vertexArrays);
}
void GLContext::BindVertexArray(Uint index) {
m_vertexArrayState.Bind(index);
}
const SharedPtr<VertexArrayObject>& GLContext::GetVertexArrayObject(Uint index) {
return m_vertexArrayState.GetVertexArrayObject(index);
}
SharedPtr<VertexArrayObject> GLContext::CreateVertexArrayObject(Uint index) {
return m_vertexArrayState.CreateVertexArrayObject(index);
}
void GLContext::BindVertexArray(Uint index) {
m_vertexArrayState.Bind(index);
}
void GLContext::MarkVertexArrayForDeletion(Uint index) {
m_vertexArrayState.MarkVertexArrayForDeletion(index);
}
const SharedPtr<VertexArrayObject>& GLContext::CreateVertexArrayObject(Uint index) {
return m_vertexArrayState.CreateVertexArrayObject(index);
}
Bool GLContext::ValidateVertexArrayName(Uint index) const {
return m_vertexArrayState.ValidateName(index);
}
void GLContext::MarkVertexArrayForDeletion(Uint index) {
m_vertexArrayState.MarkVertexArrayForDeletion(index);
}
Bool GLContext::ValidateVertexArrayObject(Uint index) const {
return m_vertexArrayState.ValidateVertexArrayObject(index);
}
Bool GLContext::ValidateVertexArrayName(Uint index) const {
return m_vertexArrayState.ValidateName(index);
}
SharedPtr<VertexArrayObject> GLContext::GetBoundVertexArray() {
return m_vertexArrayState.GetBoundVertexArray();
}
Bool GLContext::ValidateVertexArrayObject(Uint index) const {
return m_vertexArrayState.ValidateVertexArrayObject(index);
}
// Texture
Vector<Uint> GLContext::GenTextureNames(Uint number) {
return m_textureState.GenerateNames(number);
}
const SharedPtr<VertexArrayObject>& GLContext::GetBoundVertexArray() {
return m_vertexArrayState.GetBoundVertexArray();
}
SharedPtr<ITextureObject> GLContext::GetTextureObject(Uint index) {
return m_textureState.GetTextureObject(index);
}
// Texture
void GLContext::GenTextureNames(Uint number, Vector<Uint>& textures) {
m_textureState.GenerateNames(number, textures);
}
SharedPtr<ITextureObject> GLContext::CreateTextureObject(Uint index, TextureTarget target) {
return m_textureState.CreateTextureObject(index, target);
}
const SharedPtr<ITextureObject>& GLContext::GetTextureObject(Uint index) {
return m_textureState.GetTextureObject(index);
}
void GLContext::MarkTextureObjectForDeletion(Uint index) {
m_textureState.MarkTextureObjectForDeletion(index);
}
const SharedPtr<ITextureObject>& GLContext::CreateTextureObject(Uint index, TextureTarget target) {
return m_textureState.CreateTextureObject(index, target);
}
TextureUnit& GLContext::GetTextureUnitObject(Int unit) {
return m_textureState.GetUnitObject(unit);
}
void GLContext::MarkTextureObjectForDeletion(Uint index) {
m_textureState.MarkTextureObjectForDeletion(index);
}
Bool GLContext::ValidateTextureName(Uint index) const {
return m_textureState.ValidateName(index);
}
TextureUnit& GLContext::GetTextureUnitObject(Int unit) {
return m_textureState.GetUnitObject(unit);
}
Bool GLContext::ValidateTextureObject(Uint index) const {
return m_textureState.ValidateTextureObject(index);
}
Bool GLContext::ValidateTextureName(Uint index) const {
return m_textureState.ValidateName(index);
}
Int GLContext::GetActiveTextureUnit() const {
return m_textureState.GetActiveTextureUnit();
}
Bool GLContext::ValidateTextureObject(Uint index) const {
return m_textureState.ValidateTextureObject(index);
}
void GLContext::SetActiveTextureUnit(Int unit) {
m_textureState.SetActiveTextureUnit(unit);
}
Int GLContext::GetActiveTextureUnit() const {
return m_textureState.GetActiveTextureUnit();
}
// Program
Uint GLContext::CreateProgram() {
return m_programState.CreateProgram();
}
void GLContext::SetActiveTextureUnit(Int unit) {
m_textureState.SetActiveTextureUnit(unit);
}
Uint GLContext::CreateShader(const ShaderStage stage) {
return m_programState.CreateShader(stage);
}
// Program
Uint GLContext::CreateProgram() {
return m_programState.CreateProgram();
}
void GLContext::MarkProgramForDeletion(const Uint index) {
return m_programState.MarkProgramObjectForDeletion(index);
}
Uint GLContext::CreateShader(const ShaderStage stage) {
return m_programState.CreateShader(stage);
}
void GLContext::MarkShaderForDeletion(const Uint index) {
return m_programState.MarkShaderObjectForDeletion(index);
}
void GLContext::MarkProgramForDeletion(const Uint index) {
return m_programState.MarkProgramObjectForDeletion(index);
}
Bool GLContext::ValidateProgramName(const Uint index) const {
return m_programState.ValidateProgramObject(index);
}
void GLContext::MarkShaderForDeletion(const Uint index) {
return m_programState.MarkShaderObjectForDeletion(index);
}
Bool GLContext::ValidateShaderName(const Uint index) const {
return m_programState.ValidateShaderObject(index);
}
Bool GLContext::ValidateProgramName(const Uint index) const {
return m_programState.ValidateProgramObject(index);
}
SharedPtr<ProgramObject> GLContext::GetProgramObject(const Uint index) {
return m_programState.GetProgramObject(index);
}
Bool GLContext::ValidateShaderName(const Uint index) const {
return m_programState.ValidateShaderObject(index);
}
SharedPtr<ShaderObject> GLContext::GetShaderObject(const Uint index) {
return m_programState.GetShaderObject(index);
}
const SharedPtr<ProgramObject>& GLContext::GetProgramObject(const Uint index) {
return m_programState.GetProgramObject(index);
}
void GLContext::UseProgram(Uint program) {
return m_programState.UseProgram(program);
}
const SharedPtr<ShaderObject>& GLContext::GetShaderObject(const Uint index) {
return m_programState.GetShaderObject(index);
}
SharedPtr<ProgramObject> GLContext::GetCurrentProgram() {
return m_programState.GetCurrentProgram();
}
void GLContext::UseProgram(Uint program) {
return m_programState.UseProgram(program);
}
// RenderState
Uint GLContext::GetRenderStateParametersVersion() const {
return m_renderState.GetVersion();
}
const SharedPtr<ProgramObject>& GLContext::GetCurrentProgram() {
return m_programState.GetCurrentProgram();
}
const RenderStateParameters& GLContext::GetRenderStateParameters() const {
return m_renderState.GetAllParameters();
}
// RenderState
Uint GLContext::GetRenderStateParametersVersion() const {
return m_renderState.GetVersion();
}
void GLContext::SetViewport(IntVec4 viewport) {
m_renderState.SetViewport(viewport);
}
const RenderStateParameters& GLContext::GetRenderStateParameters() const {
return m_renderState.GetAllParameters();
}
const IntVec4& GLContext::GetViewport() const {
return m_renderState.GetViewport();
}
void GLContext::SetViewport(IntVec4 viewport) {
m_renderState.SetViewport(viewport);
}
void GLContext::SetCapability(CapabilityInput cap, Bool enabled) {
m_renderState.SetCapability(cap, enabled);
}
const IntVec4& GLContext::GetViewport() const {
return m_renderState.GetViewport();
}
Bool GLContext::IsCapabilityEnabled(CapabilityInput cap) const {
return m_renderState.IsCapabilityEnabled(cap);
}
void GLContext::SetCapability(CapabilityInput cap, Bool enabled) {
m_renderState.SetCapability(cap, enabled);
}
void GLContext::SetCapabilityIndexed(CapabilityInput cap, Uint index, Bool enabled) {
m_renderState.SetCapabilityIndexed(cap, index, enabled);
}
Bool GLContext::IsCapabilityEnabled(CapabilityInput cap) const {
return m_renderState.IsCapabilityEnabled(cap);
}
Bool GLContext::IsCapabilityEnabledIndexed(CapabilityInput cap, Uint index) const {
return m_renderState.IsCapabilityEnabledIndexed(cap, index);
}
void GLContext::SetCapabilityIndexed(CapabilityInput cap, Uint index, Bool enabled) {
m_renderState.SetCapabilityIndexed(cap, index, enabled);
}
void GLContext::SetBlendFunc(BlendFactor srcRGB, BlendFactor dstRGB, BlendFactor srcAlpha,
BlendFactor dstAlpha) {
m_renderState.SetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
Bool GLContext::IsCapabilityEnabledIndexed(CapabilityInput cap, Uint index) const {
return m_renderState.IsCapabilityEnabledIndexed(cap, index);
}
void GLContext::GetBlendFunc(BlendFactor& srcRGB, BlendFactor& dstRGB, BlendFactor& srcAlpha,
BlendFactor& dstAlpha) const {
m_renderState.GetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::SetBlendFunc(BlendFactor srcRGB, BlendFactor dstRGB, BlendFactor srcAlpha,
BlendFactor dstAlpha) {
m_renderState.SetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::SetBlendFuncIndexed(Uint index, BlendFactor srcRGB, BlendFactor dstRGB,
BlendFactor srcAlpha, BlendFactor dstAlpha) {
m_renderState.SetBlendFuncIndexed(index, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::GetBlendFunc(BlendFactor& srcRGB, BlendFactor& dstRGB, BlendFactor& srcAlpha,
BlendFactor& dstAlpha) const {
m_renderState.GetBlendFunc(srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::GetBlendFuncIndexed(Uint index, BlendFactor& srcRGB, BlendFactor& dstRGB,
BlendFactor& srcAlpha, BlendFactor& dstAlpha) const {
m_renderState.GetBlendFuncIndexed(index, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::SetBlendFuncIndexed(Uint index, BlendFactor srcRGB, BlendFactor dstRGB, BlendFactor srcAlpha,
BlendFactor dstAlpha) {
m_renderState.SetBlendFuncIndexed(index, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
void GLContext::SetDepthFunc(DepthTestFunc func) {
m_renderState.SetDepthFunc(func);
}
void GLContext::GetBlendFuncIndexed(Uint index, BlendFactor& srcRGB, BlendFactor& dstRGB, BlendFactor& srcAlpha,
BlendFactor& dstAlpha) const {
m_renderState.GetBlendFuncIndexed(index, srcRGB, dstRGB, srcAlpha, dstAlpha);
}
DepthTestFunc GLContext::GetDepthFunc() const {
return m_renderState.GetDepthFunc();
}
void GLContext::SetDepthFunc(DepthTestFunc func) {
m_renderState.SetDepthFunc(func);
}
void GLContext::SetDepthMask(Bool flag) {
m_renderState.SetDepthMask(flag);
}
DepthTestFunc GLContext::GetDepthFunc() const {
return m_renderState.GetDepthFunc();
}
Bool GLContext::GetDepthMask() const {
return m_renderState.GetDepthMask();
}
void GLContext::SetDepthMask(Bool flag) {
m_renderState.SetDepthMask(flag);
}
void GLContext::SetColorMask(BoolVec4 mask) {
m_renderState.SetColorMask(mask);
}
Bool GLContext::GetDepthMask() const {
return m_renderState.GetDepthMask();
}
const BoolVec4 GLContext::GetColorMask() const {
return m_renderState.GetColorMask();
}
void GLContext::SetColorMask(BoolVec4 mask) {
m_renderState.SetColorMask(mask);
}
void GLContext::SetClearColor(FloatVec4 color) {
m_renderState.SetClearColor(color);
}
BoolVec4 GLContext::GetColorMask() const {
return m_renderState.GetColorMask();
}
const FloatVec4& GLContext::GetClearColor() const {
return m_renderState.GetClearColor();
}
void GLContext::SetClearColor(FloatVec4 color) {
m_renderState.SetClearColor(color);
}
void GLContext::SetClearDepth(Float depth) {
m_renderState.SetClearDepth(depth);
}
const FloatVec4& GLContext::GetClearColor() const {
return m_renderState.GetClearColor();
}
Float GLContext::GetClearDepth() const {
return m_renderState.GetClearDepth();
}
void GLContext::SetClearDepth(Float depth) {
m_renderState.SetClearDepth(depth);
}
void GLContext::SetClearStencil(Int stencil) {
m_renderState.SetClearStencil(stencil);
}
Float GLContext::GetClearDepth() const {
return m_renderState.GetClearDepth();
}
Int GLContext::GetClearStencil() const {
void GLContext::SetClearStencil(Int stencil) {
m_renderState.SetClearStencil(stencil);
}
Uint32 GLContext::GetClearStencil() const {
return m_renderState.GetClearStencil();
}
void GLContext::SetPixelStoreParam(PixelStoreParam param, Int value) {
m_renderState.SetPixelStoreParam(param, value);
}
void GLContext::SetPixelStoreParam(PixelStoreParam param, Int value) {
m_renderState.SetPixelStoreParam(param, value);
}
Int GLContext::GetPixelStoreParam(PixelStoreParam param) const {
return m_renderState.GetPixelStoreParam(param);
}
Int GLContext::GetPixelStoreParam(PixelStoreParam param) const {
return m_renderState.GetPixelStoreParam(param);
}
PixelStoreParameters GLContext::GetPixelStoreParameters(Bool isUnpack) const {
return m_renderState.GetPixelStoreParameters(isUnpack);
}
PixelStoreParameters GLContext::GetPixelStoreParameters(Bool isUnpack) const {
return m_renderState.GetPixelStoreParameters(isUnpack);
}
void GLContext::SetCullFaceMode(CullFaceMode mode) {
m_renderState.SetCullFaceMode(mode);
}
void GLContext::SetCullFaceMode(CullFaceMode mode) {
m_renderState.SetCullFaceMode(mode);
}
CullFaceMode GLContext::GetCullFaceMode() const {
return m_renderState.GetCullFaceMode();
}
CullFaceMode GLContext::GetCullFaceMode() const {
return m_renderState.GetCullFaceMode();
}
void GLContext::SetScissorBox(IntVec4 box) {
m_renderState.SetScissorBox(box);
}
void GLContext::SetScissorBox(IntVec4 box) {
m_renderState.SetScissorBox(box);
}
const IntVec4& GLContext::GetScissorBox() const {
return m_renderState.GetScissorBox();
}
const IntVec4& GLContext::GetScissorBox() const {
return m_renderState.GetScissorBox();
}
// Framebuffer
Vector<Uint> GLContext::GenFramebufferNames(Uint number) {
return m_framebufferState.GenerateNames(number);
}
// Framebuffer
void GLContext::GenFramebufferNames(Uint number, Vector<Uint>& framebuffers) {
m_framebufferState.GenerateNames(number, framebuffers);
}
SharedPtr<FramebufferObject> GLContext::GetFramebufferObject(Uint index) {
return m_framebufferState.GetFramebufferObject(index);
}
const SharedPtr<FramebufferObject>& GLContext::GetFramebufferObject(Uint index) {
return m_framebufferState.GetFramebufferObject(index);
}
BindingSlot<FramebufferObject>& GLContext::GetFramebufferBindingSlot(FramebufferTarget target) {
return m_framebufferState.GetBindingSlot(target);
}
BindingSlot<FramebufferObject>& GLContext::GetFramebufferBindingSlot(FramebufferTarget target) {
return m_framebufferState.GetBindingSlot(target);
}
SharedPtr<FramebufferObject> GLContext::CreateFramebufferObject(Uint index) {
return m_framebufferState.CreateFramebufferObject(index);
}
const SharedPtr<FramebufferObject>& GLContext::CreateFramebufferObject(Uint index) {
return m_framebufferState.CreateFramebufferObject(index);
}
void GLContext::MarkFramebufferObjectForDeletion(Uint index) {
m_framebufferState.MarkFramebufferObjectForDeletion(index);
}
void GLContext::MarkFramebufferObjectForDeletion(Uint index) {
m_framebufferState.MarkFramebufferObjectForDeletion(index);
}
Bool GLContext::ValidateFramebufferName(Uint index) const {
return m_framebufferState.ValidateName(index);
}
Bool GLContext::ValidateFramebufferName(Uint index) const {
return m_framebufferState.ValidateName(index);
}
Bool GLContext::ValidateFramebufferObject(Uint index) const {
return m_framebufferState.ValidateFramebufferObject(index);
}
Bool GLContext::ValidateFramebufferObject(Uint index) const {
return m_framebufferState.ValidateFramebufferObject(index);
}
// Sampler
Vector<Uint> GLContext::GenSamplerNames(Uint number) {
return m_samplerState.GenerateNames(number);
}
// Sampler
void GLContext::GenSamplerNames(Uint number, Vector<Uint>& samplers) {
m_samplerState.GenerateNames(number, samplers);
}
SharedPtr<SamplerObject> GLContext::GetSamplerObject(Uint index) {
return m_samplerState.GetSamplerObject(index);
}
const SharedPtr<SamplerObject>& GLContext::GetSamplerObject(Uint index) {
return m_samplerState.GetSamplerObject(index);
}
SharedPtr<SamplerObject> GLContext::CreateSamplerObject(Uint index) {
return m_samplerState.CreateSamplerObject(index);
}
const SharedPtr<SamplerObject>& GLContext::CreateSamplerObject(Uint index) {
return m_samplerState.CreateSamplerObject(index);
}
void GLContext::MarkSamplerObjectForDeletion(Uint index) {
// Unbind the sampler from all texture units
if (ValidateSamplerObject(index)) {
auto sampler = m_samplerState.GetSamplerObject(index);
for (Int unit = 0; unit < TextureState::MAX_TEXTURE_IMAGE_UNITS; ++unit) {
auto& textureUnit = m_textureState.GetUnitObject(unit);
if (textureUnit.GetSamplerObject() == sampler) {
textureUnit.SetSamplerObject(nullptr);
}
void GLContext::MarkSamplerObjectForDeletion(Uint index) {
// Unbind the sampler from all texture units
if (ValidateSamplerObject(index)) {
auto sampler = m_samplerState.GetSamplerObject(index);
for (Int unit = 0; unit < TextureState::MAX_TEXTURE_IMAGE_UNITS; ++unit) {
auto& textureUnit = m_textureState.GetUnitObject(unit);
if (textureUnit.GetSamplerObject() == sampler) {
textureUnit.SetSamplerObject(nullptr);
}
}
m_samplerState.MarkSamplerObjectForDeletion(index);
}
m_samplerState.MarkSamplerObjectForDeletion(index);
}
Bool GLContext::ValidateSamplerName(Uint index) const {
return m_samplerState.ValidateName(index);
}
Bool GLContext::ValidateSamplerName(Uint index) const {
return m_samplerState.ValidateName(index);
}
Bool GLContext::ValidateSamplerObject(Uint index) const {
return m_samplerState.ValidateSamplerObject(index);
}
Bool GLContext::ValidateSamplerObject(Uint index) const {
return m_samplerState.ValidateSamplerObject(index);
}
// Renderbuffer
Vector<Uint> GLContext::GenRenderbufferNames(Uint number) {
return m_renderbufferState.GenerateNames(number);
}
// Renderbuffer
void GLContext::GenRenderbufferNames(Uint number, Vector<Uint>& renderbuffers) {
m_renderbufferState.GenerateNames(number, renderbuffers);
}
SharedPtr<RenderbufferObject> GLContext::GetRenderbufferObject(Uint index) {
return m_renderbufferState.GetRenderbufferObject(index);
}
const SharedPtr<RenderbufferObject>& GLContext::GetRenderbufferObject(Uint index) {
return m_renderbufferState.GetRenderbufferObject(index);
}
BindingSlot<RenderbufferObject>& GLContext::GetRenderbufferBindingSlot(RenderbufferTarget target) {
return m_renderbufferState.GetBindingSlot(target);
}
BindingSlot<RenderbufferObject>& GLContext::GetRenderbufferBindingSlot(RenderbufferTarget target) {
return m_renderbufferState.GetBindingSlot(target);
}
SharedPtr<RenderbufferObject> GLContext::CreateRenderbufferObject(Uint index) {
return m_renderbufferState.CreateRenderbufferObject(index);
}
const SharedPtr<RenderbufferObject>& GLContext::CreateRenderbufferObject(Uint index) {
return m_renderbufferState.CreateRenderbufferObject(index);
}
void GLContext::MarkRenderbufferObjectForDeletion(Uint index) {
m_renderbufferState.MarkRenderbufferObjectForDeletion(index);
}
void GLContext::MarkRenderbufferObjectForDeletion(Uint index) {
m_renderbufferState.MarkRenderbufferObjectForDeletion(index);
}
Bool GLContext::ValidateRenderbufferName(Uint index) const {
return m_renderbufferState.ValidateName(index);
}
} // namespace GLState
Bool GLContext::ValidateRenderbufferName(Uint index) const {
return m_renderbufferState.ValidateName(index);
}
GLState::GLContext* pGLContext;
} // namespace MG_State
} // namespace MobileGL
Bool GLContext::ValidateRenderbufferObject(Uint index) const {
return m_renderbufferState.ValidateRenderbufferObject(index);
}
} // namespace GLState
UniquePtr<GLState::GLContext> pGLContext;
} // namespace MobileGL::MG_State
+30 -30
View File
@@ -30,42 +30,42 @@ namespace MobileGL {
GLContext() = default;
// Error
void RecordError(ErrorCode code, SharedPtr<ErrorInfo> info = nullptr);
void RecordError(ErrorCode code, UniquePtr<ErrorInfo> info);
Bool HasGLError() const;
Optional<const Error> PeekGLError() const;
Optional<Error> PopGLError();
Optional<const Error*> PeekNonGLError() const;
Optional<UniquePtr<Error>> PopNonGLError();
Bool HasNonGLError() const;
Optional<const Error> PeekNonGLError() const;
Optional<Error> PopNonGLError();
Optional<const Error*> PeekGLError() const;
Optional<UniquePtr<Error>> PopGLError();
void ClearErrors();
// Buffer
Vector<Uint> GenBufferNames(Uint number);
SharedPtr<BufferObject> GetBufferObject(Uint index);
void GenBufferNames(Uint number, Vector<Uint>& buffers);
const SharedPtr<BufferObject>& GetBufferObject(Uint index);
BindingSlot<BufferObject>& GetBufferBindingSlot(BufferTarget target);
BindingSlotRange1D<BufferObject>& GetBufferBindingPoint(BufferTarget target, Uint index);
constexpr SizeT GetBufferBindingPointCount(BufferTarget target) const {
return m_bufferState.GetBindingPointCount(target);
}
SharedPtr<BufferObject> CreateBufferObject(Uint index);
const SharedPtr<BufferObject>& CreateBufferObject(Uint index);
void MarkBufferObjectForDeletion(Uint index);
Bool ValidateBufferName(Uint index) const;
Bool ValidateBufferObject(Uint index) const;
// VertexArray
Vector<Uint> GenVertexArrayNames(Uint number);
SharedPtr<VertexArrayObject> GetVertexArrayObject(Uint index);
void GenVertexArrayNames(Uint number, Vector<Uint>& vertexArrays);
const SharedPtr<VertexArrayObject>& GetVertexArrayObject(Uint index);
void BindVertexArray(Uint index);
SharedPtr<VertexArrayObject> CreateVertexArrayObject(Uint index);
const SharedPtr<VertexArrayObject>& CreateVertexArrayObject(Uint index);
void MarkVertexArrayForDeletion(Uint index);
Bool ValidateVertexArrayName(Uint index) const;
Bool ValidateVertexArrayObject(Uint index) const;
SharedPtr<VertexArrayObject> GetBoundVertexArray();
const SharedPtr<VertexArrayObject>& GetBoundVertexArray();
// Texture
Vector<Uint> GenTextureNames(Uint number);
SharedPtr<ITextureObject> GetTextureObject(Uint index);
SharedPtr<ITextureObject> CreateTextureObject(Uint index, TextureTarget target);
void GenTextureNames(Uint number, Vector<Uint>& textures);
const SharedPtr<ITextureObject>& GetTextureObject(Uint index);
const SharedPtr<ITextureObject>& CreateTextureObject(Uint index, TextureTarget target);
void MarkTextureObjectForDeletion(Uint index);
TextureUnit& GetTextureUnitObject(Int unit);
Bool ValidateTextureName(Uint index) const;
@@ -80,10 +80,10 @@ namespace MobileGL {
void MarkShaderForDeletion(Uint index);
Bool ValidateProgramName(Uint index) const;
Bool ValidateShaderName(Uint index) const;
SharedPtr<ProgramObject> GetProgramObject(Uint index);
SharedPtr<ShaderObject> GetShaderObject(Uint index);
const SharedPtr<ProgramObject>& GetProgramObject(Uint index);
const SharedPtr<ShaderObject>& GetShaderObject(Uint index);
void UseProgram(Uint program);
SharedPtr<ProgramObject> GetCurrentProgram();
const SharedPtr<ProgramObject>& GetCurrentProgram();
// RenderState
Uint GetRenderStateParametersVersion() const;
@@ -106,13 +106,13 @@ namespace MobileGL {
void SetDepthMask(Bool flag);
Bool GetDepthMask() const;
void SetColorMask(BoolVec4 mask);
const BoolVec4 GetColorMask() const;
BoolVec4 GetColorMask() const;
void SetClearColor(FloatVec4 color);
const FloatVec4& GetClearColor() const;
void SetClearDepth(Float depth);
Float GetClearDepth() const;
void SetClearStencil(Int stencil);
Int GetClearStencil() const;
Uint32 GetClearStencil() const;
void SetPixelStoreParam(PixelStoreParam param, Int value);
Int GetPixelStoreParam(PixelStoreParam param) const;
PixelStoreParameters GetPixelStoreParameters(Bool isUnpack) const;
@@ -122,27 +122,27 @@ namespace MobileGL {
const IntVec4& GetScissorBox() const; // x, y, width, height
// Framebuffer
Vector<Uint> GenFramebufferNames(Uint number);
SharedPtr<FramebufferObject> GetFramebufferObject(Uint index);
void GenFramebufferNames(Uint number, Vector<Uint>& framebuffers);
const SharedPtr<FramebufferObject>& GetFramebufferObject(Uint index);
BindingSlot<FramebufferObject>& GetFramebufferBindingSlot(FramebufferTarget target);
SharedPtr<FramebufferObject> CreateFramebufferObject(Uint index);
const SharedPtr<FramebufferObject>& CreateFramebufferObject(Uint index);
void MarkFramebufferObjectForDeletion(Uint index);
Bool ValidateFramebufferName(Uint index) const;
Bool ValidateFramebufferObject(Uint index) const;
// Sampler
Vector<Uint> GenSamplerNames(Uint number);
SharedPtr<SamplerObject> GetSamplerObject(Uint index);
SharedPtr<SamplerObject> CreateSamplerObject(Uint index);
void GenSamplerNames(Uint number, Vector<Uint>& samplers);
const SharedPtr<SamplerObject>& GetSamplerObject(Uint index);
const SharedPtr<SamplerObject>& CreateSamplerObject(Uint index);
void MarkSamplerObjectForDeletion(Uint index);
Bool ValidateSamplerName(Uint index) const;
Bool ValidateSamplerObject(Uint index) const;
// Renderbuffer
Vector<Uint> GenRenderbufferNames(Uint number);
SharedPtr<RenderbufferObject> GetRenderbufferObject(Uint index);
void GenRenderbufferNames(Uint number, Vector<Uint>& renderbuffers);
const SharedPtr<RenderbufferObject>& GetRenderbufferObject(Uint index);
BindingSlot<RenderbufferObject>& GetRenderbufferBindingSlot(RenderbufferTarget target);
SharedPtr<RenderbufferObject> CreateRenderbufferObject(Uint index);
const SharedPtr<RenderbufferObject>& CreateRenderbufferObject(Uint index);
void MarkRenderbufferObjectForDeletion(Uint index);
Bool ValidateRenderbufferName(Uint index) const;
Bool ValidateRenderbufferObject(Uint index) const;
@@ -161,6 +161,6 @@ namespace MobileGL {
};
} // namespace GLState
extern GLState::GLContext* pGLContext;
extern UniquePtr<GLState::GLContext> pGLContext;
} // namespace MG_State
} // namespace MobileGL
+43 -47
View File
@@ -10,57 +10,53 @@
#include <MG_Util/Converters/GLToStr/GLEnumConverter.h>
#include <MG_Util/Converters/MGToGL/ErrorCodeConverter.h>
namespace MobileGL {
namespace MG_State {
namespace GLState {
void ErrorState::RecordError(ErrorCode code, SharedPtr<ErrorInfo> info) {
if (code == ErrorCode::NoError) {
MGLOG_E("Recording Non-OpenGL error:\n%s", info->ToString().c_str());
m_nonGLErrors.push_back(Error{code, info});
} else {
MGLOG_E("Recording OpenGL error (%s):\n%s",
MG_Util::ConvertGLEnumToString(MG_Util::ConvertErrorCodeToGLEnum(code)).c_str(),
info->ToString().c_str());
m_errors.push_back(Error{code, info});
}
}
namespace MobileGL::MG_State::GLState {
void ErrorState::RecordError(ErrorCode code, UniquePtr<ErrorInfo> info) {
if (code == ErrorCode::NoError) {
MGLOG_E("Recording Non-OpenGL error:\n%s", info->toString().c_str());
m_nonGLErrors.push_back(MakeUnique<Error>(code, Move(info)));
} else {
MGLOG_E("Recording OpenGL error (%s):\n%s",
MG_Util::ConvertGLEnumToString(MG_Util::ConvertErrorCodeToGLEnum(code)).c_str(),
info->toString().c_str());
m_errors.push_back(MakeUnique<Error>(code, Move(info)));
}
}
Bool ErrorState::HasNonGLError() const {
return !m_nonGLErrors.empty();
}
Bool ErrorState::HasNonGLError() const {
return !m_nonGLErrors.empty();
}
Optional<const Error> ErrorState::PeekNonGLError() const {
if (m_nonGLErrors.empty()) return Optional<const Error>{};
return Optional<const Error>{m_nonGLErrors.front()};
}
Optional<const Error*> ErrorState::PeekNonGLError() const {
if (m_nonGLErrors.empty()) return Nullopt;
return Optional<const Error*>{m_nonGLErrors.front().get()};
}
Optional<Error> ErrorState::PopNonGLError() {
if (m_nonGLErrors.empty()) return Optional<const Error>{};
auto error = Move(m_nonGLErrors.front());
m_nonGLErrors.erase(m_nonGLErrors.begin());
return Optional<const Error>{error};
}
Optional<UniquePtr<Error>> ErrorState::PopNonGLError() {
if (m_nonGLErrors.empty()) return Nullopt;
auto error = Move(m_nonGLErrors.front());
m_nonGLErrors.erase(m_nonGLErrors.begin());
return Move(error);
}
Bool ErrorState::HasGLError() const {
return !m_errors.empty();
}
Bool ErrorState::HasGLError() const {
return !m_errors.empty();
}
Optional<const Error> ErrorState::PeekGLError() const {
if (m_errors.empty()) return Optional<const Error>{};
return Optional<const Error>{m_errors.front()};
}
Optional<const Error*> ErrorState::PeekGLError() const {
if (m_errors.empty()) return Optional<const Error*>{};
return Optional<const Error*>{m_errors.front().get()};
}
Optional<Error> ErrorState::PopGLError() {
if (m_errors.empty()) return Optional<const Error>{};
auto error = Move(m_errors.front());
m_errors.erase(m_errors.begin());
return Optional<const Error>{error};
}
Optional<UniquePtr<Error>> ErrorState::PopGLError() {
if (m_errors.empty()) return Nullopt;
auto error = Move(m_errors.front());
m_errors.erase(m_errors.begin());
return Move(error);
}
void ErrorState::Clear() {
m_errors.clear();
m_nonGLErrors.clear();
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
void ErrorState::Clear() {
m_errors.clear();
m_nonGLErrors.clear();
}
} // namespace MobileGL::MG_State::GLState
+18 -20
View File
@@ -14,26 +14,24 @@
namespace MobileGL {
struct Error {
ErrorCode code;
SharedPtr<ErrorInfo> info;
UniquePtr<ErrorInfo> info;
};
namespace MG_State {
namespace GLState {
class ErrorState {
public:
void RecordError(ErrorCode code, SharedPtr<ErrorInfo> info = nullptr);
Bool HasNonGLError() const;
Optional<const Error> PeekNonGLError() const;
Optional<Error> PopNonGLError();
Bool HasGLError() const;
Optional<const Error> PeekGLError() const;
Optional<Error> PopGLError();
void Clear();
namespace MG_State::GLState {
class ErrorState {
public:
void RecordError(ErrorCode code, UniquePtr<ErrorInfo> info);
Bool HasNonGLError() const;
Optional<const Error*> PeekNonGLError() const;
Optional<UniquePtr<Error>> PopNonGLError();
Bool HasGLError() const;
Optional<const Error*> PeekGLError() const;
Optional<UniquePtr<Error>> PopGLError();
void Clear();
private:
Vector<Error> m_errors;
Vector<Error> m_nonGLErrors;
};
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
private:
Vector<UniquePtr<Error>> m_errors;
Vector<UniquePtr<Error>> m_nonGLErrors;
};
} // namespace MG_State::GLState
} // namespace MobileGL
@@ -13,7 +13,7 @@ namespace MobileGL {
class ErrorInfo {
public:
virtual ~ErrorInfo() = default;
virtual String ToString() const = 0;
virtual String toString() const = 0;
};
class GenericErrorInfo : public ErrorInfo {
@@ -24,7 +24,7 @@ namespace MobileGL {
explicit GenericErrorInfo(String m_prefix, String m_prefix_2, String message)
: m_message(Move(message)), m_prefix(Move(m_prefix)), m_prefix_2(Move(m_prefix_2)) {}
String ToString() const override {
String toString() const override {
StringStream ss;
if (m_prefix.has_value()) {
ss << "[" << m_prefix.value() << "] ";
@@ -9,157 +9,153 @@
#include "FramebufferObject.h"
#include "MG_Util/Types.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
// FramebufferAttachmentObject
FramebufferAttachmentObject::FramebufferAttachmentObject(
SharedPtr<MG_State::GLState::ITextureObject> texture, Int level)
: m_texture(texture), m_textureLevel(level) {}
FramebufferAttachmentObject::FramebufferAttachmentObject(SharedPtr<RenderbufferObject> renderbuffer)
: m_renderbuffer(renderbuffer) {}
FramebufferAttachmentObject::FramebufferAttachmentObject(Bool IsValid)
: m_texture(nullptr), m_renderbuffer(nullptr) {
m_isValid = IsValid;
}
namespace MobileGL::MG_State::GLState {
// FramebufferAttachmentObject
FramebufferAttachmentObject::FramebufferAttachmentObject(
const SharedPtr<MG_State::GLState::ITextureObject>& texture, Int level)
: m_texture(texture), m_textureLevel(level) {}
FramebufferAttachmentObject::FramebufferAttachmentObject(const SharedPtr<RenderbufferObject>& renderbuffer)
: m_renderbuffer(renderbuffer) {}
FramebufferAttachmentObject::FramebufferAttachmentObject(Bool IsValid)
: m_texture(nullptr), m_renderbuffer(nullptr) {
m_isValid = IsValid;
}
Bool FramebufferAttachmentObject::IsTexture() const {
return m_texture != nullptr;
}
Bool FramebufferAttachmentObject::IsTexture() const {
return m_texture != nullptr;
}
Bool FramebufferAttachmentObject::IsRenderbuffer() const {
return m_renderbuffer != nullptr;
}
Bool FramebufferAttachmentObject::IsRenderbuffer() const {
return m_renderbuffer != nullptr;
}
Bool FramebufferAttachmentObject::IsEmpty() const {
return m_texture == nullptr && m_renderbuffer == nullptr;
}
Bool FramebufferAttachmentObject::IsEmpty() const {
return m_texture == nullptr && m_renderbuffer == nullptr;
}
SharedPtr<MG_State::GLState::ITextureObject> FramebufferAttachmentObject::GetTexture() const {
return m_texture;
}
const SharedPtr<MG_State::GLState::ITextureObject>& FramebufferAttachmentObject::GetTexture() const {
return m_texture;
}
SharedPtr<RenderbufferObject> FramebufferAttachmentObject::GetRenderbuffer() const {
return m_renderbuffer;
}
const SharedPtr<RenderbufferObject>& FramebufferAttachmentObject::GetRenderbuffer() const {
return m_renderbuffer;
}
Int FramebufferAttachmentObject::GetTextureLevel() const {
return m_textureLevel;
}
Int FramebufferAttachmentObject::GetTextureLevel() const {
return m_textureLevel;
}
Bool FramebufferAttachmentObject::IsComplete() const {
if (IsTexture()) {
Bool complete = m_texture->IsComplete();
return complete;
} else if (IsRenderbuffer()) {
Bool complete = m_renderbuffer->IsAllocated();
return complete;
}
Bool FramebufferAttachmentObject::IsComplete() const {
if (IsTexture()) {
Bool complete = m_texture->IsComplete();
return complete;
} else if (IsRenderbuffer()) {
Bool complete = m_renderbuffer->IsAllocated();
return complete;
}
return false;
}
IntVec3 FramebufferAttachmentObject::GetSize() const {
if (IsTexture()) {
// TODO: get correct upload target
MOBILEGL_ASSERT(nullptr != static_cast<MG_State::GLState::TextureObjectMipmap*>(m_texture.get()),
"Texture object here should always be an object with mipmap");
auto textureMipmapObject = static_cast<MG_State::GLState::TextureObjectMipmap*>(m_texture.get());
return textureMipmapObject->GetMipmapTexelSize(TextureUploadTarget::Texture2D, m_textureLevel);
} else if (IsRenderbuffer()) {
return {m_renderbuffer->GetWidth(), m_renderbuffer->GetHeight(), 1};
}
return {0, 0, 0};
}
Bool FramebufferAttachmentObject::IsValid() const {
return m_isValid;
}
// FramebufferObject
FramebufferObject::FramebufferObject(Uint externalIndex)
: m_externalIndex(externalIndex), m_attachmentVersions{}, m_drawBuffers{} {
m_attachmentObjects.fill(FramebufferAttachmentObject(false));
m_drawBuffers.fill(FramebufferAttachmentType::None);
m_drawBuffers[0] = FramebufferAttachmentType::Color0;
m_attachmentVersions.fill(0);
}
void FramebufferObject::AttachTexture(FramebufferAttachmentType type, const SharedPtr<ITextureObject>& texture,
int level) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(texture, level);
BumpAttachmentVersion(type);
}
void FramebufferObject::AttachRenderbuffer(FramebufferAttachmentType type,
const SharedPtr<RenderbufferObject>& renderbuffer) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(renderbuffer);
BumpAttachmentVersion(type);
}
void FramebufferObject::Detach(FramebufferAttachmentType type) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(false);
BumpAttachmentVersion(type);
}
const FramebufferAttachmentObject& FramebufferObject::GetAttachment(FramebufferAttachmentType type) const {
return m_attachmentObjects[static_cast<SizeT>(type)];
}
const FramebufferObject::FramebufferAttachmentObjectArray& FramebufferObject::GetAllAttachmentObjects() const {
return m_attachmentObjects;
}
Bool FramebufferObject::CheckCompleteness() const {
if (m_attachmentObjects.empty()) {
return false;
}
Int width = -1, height = -1;
Int validAttachmentCount = 0;
for (const auto& attachmentObject : m_attachmentObjects) {
if (!attachmentObject.IsValid()) continue;
++validAttachmentCount;
const auto& attachment = attachmentObject;
auto attachmentSize = attachment.GetSize();
Int w = attachmentSize.x();
Int h = attachmentSize.y();
if (width == -1) {
width = w;
height = h;
} else if (width != w || height != h) {
return false;
}
IntVec3 FramebufferAttachmentObject::GetSize() const {
if (IsTexture()) {
// TODO: get correct upload target
MOBILEGL_ASSERT(nullptr != dynamic_cast<MG_State::GLState::TextureObjectMipmap*>(m_texture.get()),
"Texture object here should always be an object with mipmap");
auto textureMipmapObject = static_cast<MG_State::GLState::TextureObjectMipmap*>(m_texture.get());
return textureMipmapObject->GetMipmapTexelSize(TextureUploadTarget::Texture2D, m_textureLevel);
} else if (IsRenderbuffer()) {
return IntVec3(m_renderbuffer->GetWidth(), m_renderbuffer->GetHeight(), 1);
}
return {0, 0, 0};
if (!attachment.IsComplete()) {
return false;
}
}
Bool FramebufferAttachmentObject::IsValid() const {
return m_isValid;
}
if (validAttachmentCount == 0) return false;
return true;
}
// FramebufferObject
FramebufferObject::FramebufferObject(Uint externalIndex) : m_externalIndex(externalIndex) {
m_attachmentObjects.fill(FramebufferAttachmentObject(false));
m_drawBuffers.fill(FramebufferAttachmentType::None);
m_drawBuffers[0] = FramebufferAttachmentType::Color0;
m_attachmentVersions.fill(0);
}
void FramebufferObject::SetDrawBuffer(Uint index, FramebufferAttachmentType buffer) {
if (m_drawBuffers[index] == buffer) return;
m_drawBuffers[index] = buffer;
BumpAttachmentVersion(buffer);
}
void FramebufferObject::AttachTexture(FramebufferAttachmentType type, SharedPtr<ITextureObject> texture,
int level) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(std::move(texture), level);
BumpAttachmentVersion(type);
}
const FramebufferObject::FramebufferAttachmentArray& FramebufferObject::GetDrawBuffers() const {
return m_drawBuffers;
}
void FramebufferObject::AttachRenderbuffer(FramebufferAttachmentType type,
std::shared_ptr<RenderbufferObject> renderbuffer) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(renderbuffer);
BumpAttachmentVersion(type);
}
Uint FramebufferObject::GetExternalIndex() const {
return m_externalIndex;
}
void FramebufferObject::Detach(FramebufferAttachmentType type) {
m_attachmentObjects[static_cast<SizeT>(type)] = FramebufferAttachmentObject(false);
BumpAttachmentVersion(type);
}
const FramebufferAttachmentObject& FramebufferObject::GetAttachment(FramebufferAttachmentType type) const {
return m_attachmentObjects[static_cast<SizeT>(type)];
}
const FramebufferObject::FramebufferAttachmentObjectArray& FramebufferObject::GetAllAttachmentObjects()
const {
return m_attachmentObjects;
}
Bool FramebufferObject::CheckCompleteness() const {
if (m_attachmentObjects.empty()) {
return false;
}
Int width = -1, height = -1;
Int validAttachmentCount = 0;
for (SizeT i = 0; i < m_attachmentObjects.size(); ++i) {
if (!m_attachmentObjects[i].IsValid()) continue;
++validAttachmentCount;
const auto& attachment = m_attachmentObjects[i];
auto attachmentSize = attachment.GetSize();
Int w = attachmentSize.x();
Int h = attachmentSize.y();
if (width == -1) {
width = w;
height = h;
} else if (width != w || height != h) {
return false;
}
if (!attachment.IsComplete()) {
return false;
}
}
if (validAttachmentCount == 0) return false;
return true;
}
void FramebufferObject::SetDrawBuffer(Uint index, FramebufferAttachmentType buffer) {
if (m_drawBuffers[index] == buffer) return;
m_drawBuffers[index] = buffer;
BumpAttachmentVersion(buffer);
}
const FramebufferObject::FramebufferAttachmentArray& FramebufferObject::GetDrawBuffers() const {
return m_drawBuffers;
}
Uint FramebufferObject::GetExternalIndex() const {
return m_externalIndex;
}
void FramebufferObject::BumpAttachmentVersion(FramebufferAttachmentType type) {
++m_attachmentVersions[static_cast<SizeT>(type)];
++m_objectVersion;
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
void FramebufferObject::BumpAttachmentVersion(FramebufferAttachmentType type) {
++m_attachmentVersions[static_cast<SizeT>(type)];
++m_objectVersion;
}
} // namespace MobileGL::MG_State::GLState
@@ -7,6 +7,7 @@
// End of Source File Header
#pragma once
#include "MG_Util/Types.h"
#include <Includes.h>
#include <MG_State/GLState/TextureState/TextureObject.h>
#include <MG_State/GLState/RenderbufferState/RenderbufferObject.h>
@@ -62,86 +63,84 @@ namespace MobileGL {
Color29,
Color30,
Color31,
ColorMax = Color31,
FramebufferAttachmentTypeCount,
Unknown = -1
};
namespace MG_State {
namespace GLState {
class FramebufferAttachmentObject {
public:
explicit FramebufferAttachmentObject(SharedPtr<MG_State::GLState::ITextureObject> texture,
Int level = 0);
explicit FramebufferAttachmentObject(SharedPtr<RenderbufferObject> renderbuffer);
explicit FramebufferAttachmentObject(Bool IsValid = true);
namespace MG_State::GLState {
class FramebufferAttachmentObject {
public:
explicit FramebufferAttachmentObject(const SharedPtr<MG_State::GLState::ITextureObject>& texture,
Int level = 0);
explicit FramebufferAttachmentObject(const SharedPtr<RenderbufferObject>& renderbuffer);
explicit FramebufferAttachmentObject(Bool IsValid = true);
Bool IsTexture() const;
Bool IsRenderbuffer() const;
Bool IsEmpty() const;
SharedPtr<MG_State::GLState::ITextureObject> GetTexture() const;
SharedPtr<RenderbufferObject> GetRenderbuffer() const;
Int GetTextureLevel() const;
Bool IsComplete() const;
IntVec3 GetSize() const;
Bool IsValid() const;
Bool IsTexture() const;
Bool IsRenderbuffer() const;
Bool IsEmpty() const;
const SharedPtr<MG_State::GLState::ITextureObject>& GetTexture() const;
const SharedPtr<RenderbufferObject>& GetRenderbuffer() const;
Int GetTextureLevel() const;
Bool IsComplete() const;
IntVec3 GetSize() const;
Bool IsValid() const;
private:
SharedPtr<MG_State::GLState::ITextureObject> m_texture = nullptr;
SharedPtr<RenderbufferObject> m_renderbuffer = nullptr;
Int m_textureLevel = 0;
Bool m_isValid = true;
};
private:
SharedPtr<MG_State::GLState::ITextureObject> m_texture = nullptr;
SharedPtr<RenderbufferObject> m_renderbuffer = nullptr;
Int m_textureLevel = 0;
Bool m_isValid = true;
};
class FramebufferObject {
public:
static constexpr Uint MAX_DRAW_BUFFERS = 8;
class FramebufferObject {
public:
static constexpr Uint MAX_DRAW_BUFFERS = 8;
using TargetEnum = FramebufferTarget;
using FramebufferAttachmentObjectArray =
Array<FramebufferAttachmentObject,
static_cast<SizeT>(FramebufferAttachmentType::FramebufferAttachmentTypeCount)>;
using FramebufferAttachmentArray = Array<FramebufferAttachmentType, MAX_DRAW_BUFFERS>;
using FramebufferAttachmentVersionArray =
Array<Uint16, static_cast<SizeT>(FramebufferAttachmentType::FramebufferAttachmentTypeCount)>;
using TargetEnum = FramebufferTarget;
using FramebufferAttachmentObjectArray =
Array<FramebufferAttachmentObject,
static_cast<SizeT>(FramebufferAttachmentType::FramebufferAttachmentTypeCount)>;
using FramebufferAttachmentArray = Array<FramebufferAttachmentType, MAX_DRAW_BUFFERS>;
using FramebufferAttachmentVersionArray =
Array<Uint16, static_cast<SizeT>(FramebufferAttachmentType::FramebufferAttachmentTypeCount)>;
FramebufferObject(Uint externalIndex);
FramebufferObject(Uint externalIndex);
void AttachTexture(FramebufferAttachmentType type, SharedPtr<ITextureObject> texture, int level = 0);
void AttachRenderbuffer(FramebufferAttachmentType type,
std::shared_ptr<RenderbufferObject> renderbuffer);
void Detach(FramebufferAttachmentType type);
const FramebufferAttachmentObject& GetAttachment(FramebufferAttachmentType type) const;
const FramebufferAttachmentObjectArray& GetAllAttachmentObjects() const;
Bool CheckCompleteness() const;
// aka. `buffer` as in glDrawBuffers/glReadBuffers
void SetDrawBuffer(Uint index, FramebufferAttachmentType buffer);
const FramebufferAttachmentArray& GetDrawBuffers() const;
void SetReadBuffer(FramebufferAttachmentType buf) { m_readBuffer = buf; }
FramebufferAttachmentType GetReadBuffer() const { return m_readBuffer; }
void AttachTexture(FramebufferAttachmentType type, const SharedPtr<ITextureObject>& texture, int level = 0);
void AttachRenderbuffer(FramebufferAttachmentType type, const SharedPtr<RenderbufferObject>& renderbuffer);
void Detach(FramebufferAttachmentType type);
const FramebufferAttachmentObject& GetAttachment(FramebufferAttachmentType type) const;
const FramebufferAttachmentObjectArray& GetAllAttachmentObjects() const;
Bool CheckCompleteness() const;
// aka. `buffer` as in glDrawBuffers/glReadBuffers
void SetDrawBuffer(Uint index, FramebufferAttachmentType buffer);
const FramebufferAttachmentArray& GetDrawBuffers() const;
void SetReadBuffer(FramebufferAttachmentType buf) { m_readBuffer = buf; }
FramebufferAttachmentType GetReadBuffer() const { return m_readBuffer; }
const FramebufferAttachmentVersionArray GetAllFramebufferAttachmentVersions() const {
return m_attachmentVersions;
}
FramebufferAttachmentVersionArray GetAllFramebufferAttachmentVersions() const {
return m_attachmentVersions;
}
Uint16 GetObjectVersion() const { return m_objectVersion; }
Uint16 GetObjectVersion() const { return m_objectVersion; }
Uint GetExternalIndex() const;
Uint GetExternalIndex() const;
private:
void BumpAttachmentVersion(FramebufferAttachmentType type);
private:
void BumpAttachmentVersion(FramebufferAttachmentType type);
const Uint m_externalIndex = 0;
FramebufferAttachmentObjectArray m_attachmentObjects;
FramebufferAttachmentVersionArray m_attachmentVersions;
const Uint m_externalIndex = 0;
FramebufferAttachmentObjectArray m_attachmentObjects;
FramebufferAttachmentVersionArray m_attachmentVersions;
FramebufferAttachmentArray m_drawBuffers; // Probably no versioning needed for this, just check equality
FramebufferAttachmentType m_readBuffer = FramebufferAttachmentType::Color0; // ditto
FramebufferAttachmentArray m_drawBuffers; // Probably no versioning needed for this, just check equality
FramebufferAttachmentType m_readBuffer = FramebufferAttachmentType::Color0; // ditto
// This version will bump when draw/read buffer changes (by `glDrawBuffer(s)`/`glReadBuffer`)
Uint16 m_objectVersion = 0;
};
// This version will bump when draw/read buffer changes (by `glDrawBuffer(s)`/`glReadBuffer`)
Uint16 m_objectVersion = 0;
};
} // namespace GLState
} // namespace MG_State
} // namespace MG_State::GLState
} // namespace MobileGL
@@ -9,74 +9,73 @@
#include "FramebufferState.h"
#include "MG_State/GLState/FramebufferState/FramebufferObject.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
FramebufferState::FramebufferState() {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
m_bindingSlots[i] = BindingSlot<FramebufferObject>(static_cast<FramebufferTarget>(i));
}
}
namespace MobileGL::MG_State::GLState {
FramebufferState::FramebufferState() {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
m_bindingSlots[i] = BindingSlot<FramebufferObject>(static_cast<FramebufferTarget>(i));
}
}
SharedPtr<FramebufferObject> FramebufferState::GetFramebufferObject(Uint index) {
auto it = m_framebufferObjects.find(index);
if (it != m_framebufferObjects.end()) {
return it->second;
}
return nullptr;
}
const SharedPtr<FramebufferObject>& FramebufferState::GetFramebufferObject(Uint index) {
auto it = m_framebufferObjects.find(index);
if (it != m_framebufferObjects.end()) {
return it->second;
}
static SharedPtr<FramebufferObject> nullFramebufferObject = nullptr;
return nullFramebufferObject;
}
Vector<Uint> FramebufferState::GenerateNames(Uint number) {
Vector<Uint> buffers(number);
m_indexGenerator.Generate(number, buffers.data());
return buffers;
}
void FramebufferState::GenerateNames(Uint number, Vector<Uint>& buffers) {
buffers.resize(number);
m_indexGenerator.Generate(number, buffers.data());
}
SharedPtr<FramebufferObject> FramebufferState::CreateFramebufferObject(Uint index) {
if (index == 0) {
if (!m_indexGenerator.IsValid(0)) {
m_indexGenerator.Insert(0);
} else {
return nullptr;
const SharedPtr<FramebufferObject>& FramebufferState::CreateFramebufferObject(Uint index) {
if (index == 0) {
if (!m_indexGenerator.IsValid(0)) {
m_indexGenerator.Insert(0);
} else {
static SharedPtr<FramebufferObject> nullFramebufferObject = nullptr;
return nullFramebufferObject;
}
}
auto& framebufferObject = m_framebufferObjects[index];
if (!framebufferObject) {
framebufferObject = MakeShared<FramebufferObject>(index);
}
return framebufferObject;
}
BindingSlot<FramebufferObject>& FramebufferState::GetBindingSlot(FramebufferTarget target) {
for (auto& bindingSlot : m_bindingSlots) {
if (bindingSlot.GetTarget() == target) {
return bindingSlot;
}
}
MOBILEGL_ASSERT(false, "Invalid FramebufferTarget enum value: %d", static_cast<int>(target));
return m_bindingSlots[0];
}
void FramebufferState::MarkFramebufferObjectForDeletion(Uint index) {
if (m_indexGenerator.IsValid(index)) {
auto it = m_framebufferObjects.find(index);
if (it != m_framebufferObjects.end()) {
for (auto& bindingSlot : m_bindingSlots) {
if (bindingSlot.GetBoundObject() == it->second) {
bindingSlot.Bind(nullptr);
}
}
auto bufferObject = MakeShared<FramebufferObject>(index);
m_framebufferObjects[index] = bufferObject;
return bufferObject;
m_framebufferObjects.erase(it);
}
m_indexGenerator.Delete(index);
}
}
BindingSlot<FramebufferObject>& FramebufferState::GetBindingSlot(FramebufferTarget target) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
if (m_bindingSlots[i].GetTarget() == target) {
return m_bindingSlots[i];
}
}
MOBILEGL_ASSERT(false, "Invalid FramebufferTarget enum value: %d", static_cast<int>(target));
return m_bindingSlots[0];
}
Bool FramebufferState::ValidateName(Uint index) const {
return m_indexGenerator.IsValid(index);
}
void FramebufferState::MarkFramebufferObjectForDeletion(Uint index) {
if (m_indexGenerator.IsValid(index)) {
auto it = m_framebufferObjects.find(index);
if (it != m_framebufferObjects.end()) {
for (SizeT i = 0; i < m_bindingSlots.size(); ++i) {
if (m_bindingSlots[i].GetBoundObject() == it->second) {
m_bindingSlots[i].Bind(nullptr);
}
}
m_framebufferObjects.erase(it);
}
m_indexGenerator.Delete(index);
}
}
Bool FramebufferState::ValidateName(Uint index) const {
return m_indexGenerator.IsValid(index);
}
Bool FramebufferState::ValidateFramebufferObject(Uint index) const {
return m_framebufferObjects.find(index) != m_framebufferObjects.end();
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
Bool FramebufferState::ValidateFramebufferObject(Uint index) const {
return m_framebufferObjects.find(index) != m_framebufferObjects.end();
}
} // namespace MobileGL::MG_State::GLState
@@ -11,28 +11,24 @@
#include <MG_Util/Miscellany/IndexGenerator.h>
#include "FramebufferObject.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
class FramebufferState {
public:
FramebufferState();
namespace MobileGL::MG_State::GLState {
class FramebufferState {
public:
FramebufferState();
// FBO 0 should be created by MG_Backend when initializing the context
SharedPtr<FramebufferObject> GetFramebufferObject(Uint index);
Vector<Uint> GenerateNames(Uint number);
SharedPtr<FramebufferObject> CreateFramebufferObject(Uint index);
BindingSlot<FramebufferObject>& GetBindingSlot(FramebufferTarget target);
void MarkFramebufferObjectForDeletion(Uint index);
Bool ValidateName(Uint index) const;
Bool ValidateFramebufferObject(Uint index) const;
// FBO 0 should be created by MG_Backend when initializing the context
const SharedPtr<FramebufferObject>& GetFramebufferObject(Uint index);
void GenerateNames(Uint number, Vector<Uint>& framebuffers);
const SharedPtr<FramebufferObject>& CreateFramebufferObject(Uint index);
BindingSlot<FramebufferObject>& GetBindingSlot(FramebufferTarget target);
void MarkFramebufferObjectForDeletion(Uint index);
Bool ValidateName(Uint index) const;
Bool ValidateFramebufferObject(Uint index) const;
private:
UnorderedMap<Uint, SharedPtr<FramebufferObject>> m_framebufferObjects;
IndexGenerator<Uint> m_indexGenerator;
Array<BindingSlot<FramebufferObject>, static_cast<SizeT>(FramebufferTarget::FramebufferTargetCount)>
m_bindingSlots;
};
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
private:
UnorderedMap<Uint, SharedPtr<FramebufferObject>> m_framebufferObjects;
IndexGenerator<Uint> m_indexGenerator;
Array<BindingSlot<FramebufferObject>, static_cast<SizeT>(FramebufferTarget::FramebufferTargetCount)>
m_bindingSlots;
};
} // namespace MobileGL::MG_State::GLState
File diff suppressed because it is too large Load Diff
@@ -9,180 +9,173 @@
#pragma once
#include <Includes.h>
#include "ShaderObject.h"
#include "MG_Util/Metrics/BufferMetrics.h"
#include "MG_Util/ShaderTranspiler/SpvcSession.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
class ProgramObject {
public:
ProgramObject(Uint externalIndex) : m_externalIndex(externalIndex) {}
bool ShaderIsAttached(SharedPtr<ShaderObject> shader);
bool AttachShader(SharedPtr<ShaderObject> shader);
SizeT DetachShader(SharedPtr<ShaderObject> shader);
SizeT RemoveShader(SharedPtr<ShaderObject> shader);
void Link(Bool addDefaultFSIfMissingForRenderingPipelineProgram = false);
void MarkAsDeleted();
#include <MG_Util/Metrics/BufferMetrics.h>
#include <MG_Util/ShaderTranspiler/SpvcSession.h>
void SetExplicitVertexInLocation(Uint index, const char* name);
void SetExplicitFragmentOutLocation(Uint index, const char* name);
Int GetFragmentDataLocation(const char* name);
namespace MobileGL::MG_State::GLState {
class ProgramObject {
public:
ProgramObject(Uint externalIndex) : m_externalIndex(externalIndex) {}
bool ShaderIsAttached(const SharedPtr<ShaderObject>& shader);
bool AttachShader(const SharedPtr<ShaderObject>& shader);
SizeT DetachShader(const SharedPtr<ShaderObject>& shader);
SizeT RemoveShader(const SharedPtr<ShaderObject>& shader);
void Link(Bool addDefaultFSIfMissingForRenderingPipelineProgram = false);
void MarkAsDeleted();
Vector<SharedPtr<ShaderObject>>& GetAttachedShaders();
const Vector<SharedPtr<ShaderObject>>& GetAttachedShaders() const;
const String& GetInfoLog() const { return m_infoLog; }
Int GetUniformMaxLength() const { return m_uniformNameMaxLength; }
Uint GetUniformCount() { return m_activeUniformCount; }
Uint GetMaxUniformLocation() const { return m_maxUniformLocation; }
Int GetUniformLocation(const String& name) const {
const auto it = m_uniformLocations.find(name);
if (it == m_uniformLocations.end()) return -1;
return (Int)it->second;
}
void SetExplicitVertexInLocation(Uint index, const char* name);
void SetExplicitFragmentOutLocation(Uint index, const char* name);
Int GetFragmentDataLocation(const char* name);
GLenum GetUniformType(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.glDefineType;
}
Vector<SharedPtr<ShaderObject>>& GetAttachedShaders();
const Vector<SharedPtr<ShaderObject>>& GetAttachedShaders() const;
const String& GetInfoLog() const { return m_infoLog; }
Int GetUniformMaxLength() const { return m_uniformNameMaxLength; }
Uint GetUniformCount() const { return m_activeUniformCount; }
Uint GetMaxUniformLocation() const { return m_maxUniformLocation; }
Int GetUniformLocation(const String& name) const {
const auto it = m_uniformLocations.find(name);
if (it == m_uniformLocations.end()) return -1;
return (Int)it->second;
}
const glslang::TType* GetUniformTType(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.getType();
}
GLenum GetUniformType(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.glDefineType;
}
Bool IsUniformOpaqueAtLocation(Uint location) const { return GetUniformTType(location)->isOpaque(); }
const glslang::TType* GetUniformTType(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.getType();
}
const String& GetUniformName(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.name;
}
Uint GetUniformOffset(Uint location) const { return m_uniformOffsets[location]; }
Uint GetUniformSizesInBytes(Uint location) const {
return MG_Util::GetGLTypeSize(GetUniformType(location));
}
Bool IsUniformOpaqueAtLocation(Uint location) const { return GetUniformTType(location)->isOpaque(); }
Int GetAttributeLocation(const String& name) {
const auto it = std::find(m_attribs.begin(), m_attribs.end(), name);
return (it == m_attribs.end()) ? -1 : std::distance(m_attribs.begin(), it);
}
GLenum GetAttribType(Uint index) const { return m_attribTypes[index]; }
const String& GetAttribName(Uint index) const { return m_attribs[index]; }
void* MapUBO() { return m_uboScratch.data(); }
const void* GetUBOData() const { return m_uboScratch.data(); }
Uint GetUBOSize() const { return static_cast<Uint>(m_uboScratch.size()); }
const String& GetUniformName(Uint location) const {
auto& uniform = m_program->getUniform(m_uniformIndexInTProgram[location]);
return uniform.name;
}
Uint GetUniformOffset(Uint location) const { return m_uniformOffsets[location]; }
Uint GetUniformSizesInBytes(Uint location) const { return MG_Util::GetGLTypeSize(GetUniformType(location)); }
void SetUniformSamplerOrImageUnitIndex(Uint location, Int unit) {
m_uniformSamplerOrImageUnitIndex[location] = unit;
}
Int GetAttributeLocation(const String& name) {
const auto it = std::find(m_attribs.begin(), m_attribs.end(), name);
return (it == m_attribs.end()) ? -1 : (Int)std::distance(m_attribs.begin(), it);
}
GLenum GetAttribType(Uint index) const { return m_attribTypes[index]; }
const String& GetAttribName(Uint index) const { return m_attribs[index]; }
void* MapUBO() { return m_globalUboScratch.data(); }
const void* GetUBOData() const { return m_globalUboScratch.data(); }
Uint GetUBOSize() const { return static_cast<Uint>(m_globalUboScratch.size()); }
Int GetUniformSamplerOrImageUnitIndex(Uint location) const {
return m_uniformSamplerOrImageUnitIndex[location];
}
void SetUniformSamplerOrImageUnitIndex(Uint location, Int unit) {
m_uniformSamplerOrImageUnitIndex[location] = unit;
}
Bool GetDeleteStatus() const { return m_deleteStatus; }
Bool GetLinkStatus() const { return m_linkStatus; }
Bool GetValidateStatus() const { return m_validateStatus; }
Int GetActiveAtomicCounterCount() const { return m_program->getNumAtomicCounters(); }
Int GetActiveAttributesCount() const { return m_program->getNumPipeInputs(); }
Int GetActiveUniformBlocksCount() const { return m_program->getNumUniformBlocks(); }
Int GetActiveAttributesMaxLength() const { return m_attribInNameMaxLength; }
Int GetActiveUniformBlocksMaxNameLength() const { return m_uniformBlockNameMaxLength; }
Uint GetUniformBlockIndex(const char* name) const {
auto it = m_uniformBlockIndexByName.find(name);
if (it != m_uniformBlockIndexByName.end()) return it->second;
return 0xFFFFFFFFu; // GL_INVALID_INDEX
}
Bool IsActiveUniformBlock(Uint index) const {
if (index >= GetActiveUniformBlocksCount()) return false;
return true;
}
Uint GetUBOSizeAt(Uint index) const {
if (!IsActiveUniformBlock(index)) return 0;
return m_program->getUniformBlock(index).size;
}
Int GetUniformSamplerOrImageUnitIndex(Uint location) const {
return m_uniformSamplerOrImageUnitIndex[location];
}
const String& GetUniformBlockName(Uint index) const {
auto& ubo = m_program->getUniformBlock(index);
return ubo.name;
}
Bool GetDeleteStatus() const { return m_deleteStatus; }
Bool GetLinkStatus() const { return m_linkStatus; }
Bool GetValidateStatus() const { return m_validateStatus; }
Int GetActiveAtomicCounterCount() const { return m_program->getNumAtomicCounters(); }
Int GetActiveAttributesCount() const { return m_program->getNumPipeInputs(); }
Int GetActiveUniformBlocksCount() const { return m_program->getNumUniformBlocks(); }
Int GetActiveAttributesMaxLength() const { return m_attribInNameMaxLength; }
Int GetActiveUniformBlocksMaxNameLength() const { return m_uniformBlockNameMaxLength; }
Uint GetUniformBlockIndex(const char* name) const {
auto it = m_uniformBlockIndexByName.find(name);
if (it != m_uniformBlockIndexByName.end()) return it->second;
return 0xFFFFFFFFu; // GL_INVALID_INDEX
}
Bool IsActiveUniformBlock(Uint index) const {
if (index >= GetActiveUniformBlocksCount()) return false;
return true;
}
Uint GetUBOSizeAt(Uint index) const {
if (!IsActiveUniformBlock(index)) return 0;
return m_program->getUniformBlock((Int)index).size;
}
// Set by glUniformBlockBinding
void SetUniformBlockBinding(Uint index, Uint binding) { m_uniformBlockBinding[index] = binding; }
const String& GetUniformBlockName(Uint index) const {
auto& ubo = m_program->getUniformBlock((Int)index);
return ubo.name;
}
Uint GetUniformBlockBinding(Uint index) const { return m_uniformBlockBinding[index]; }
// Set by glUniformBlockBinding
void SetUniformBlockBinding(Uint index, Uint binding) { m_uniformBlockBinding[index] = (Int)binding; }
Vector<Vector<unsigned>>& GetGeneratedSpirv() { return m_generatedSpirv; }
const Vector<Vector<unsigned>>& GetGeneratedSpirv() const { return m_generatedSpirv; }
Uint GetUniformBlockBinding(Uint index) const { return m_uniformBlockBinding[index]; }
Int GetShaderIndexByStage(ShaderStage stage) const {
auto it = std::find_if(m_shaders.begin(), m_shaders.end(),
[stage](const SharedPtr<ShaderObject>& shader) { return shader->GetShaderStage() == stage; });
return it == m_shaders.end() ? -1 : std::distance(m_shaders.begin(), it);
}
Vector<Vector<unsigned>>& GetGeneratedSpirv() { return m_generatedSpirv; }
const Vector<Vector<unsigned>>& GetGeneratedSpirv() const { return m_generatedSpirv; }
Uint GetExternalIndex() const { return m_externalIndex; }
Int GetShaderIndexByStage(ShaderStage stage) const {
auto it = std::find_if(m_shaders.begin(), m_shaders.end(), [stage](const SharedPtr<ShaderObject>& shader) {
return shader->GetShaderStage() == stage;
});
return it == m_shaders.end() ? -1 : (Int)std::distance(m_shaders.begin(), it);
}
// const UnorderedMap<String, Uint>& GetAttribLocationMap() const { return
// m_attribLocation; }
Uint GetExternalIndex() const { return m_externalIndex; }
private:
void DoReflection();
void GenerateBinary();
void WaitUntilGenerationCompleted();
void AddDefaultFragmentShaderIfMissing();
private:
void DoReflection();
void GenerateBinary();
void WaitUntilGenerationCompleted() const;
void AddDefaultFragmentShaderIfMissing();
const Uint m_externalIndex = 0;
Vector<SharedPtr<ShaderObject>> m_shaders;
Vector<SharedPtr<ShaderObject>> m_detachedShaders; // Store detached shaders and remove on next link
const Uint m_externalIndex = 0;
Vector<SharedPtr<ShaderObject>> m_shaders;
Vector<SharedPtr<ShaderObject>> m_detachedShaders; // Store detached shaders and remove on next link
SharedPtr<glslang::TProgram> m_program;
SharedPtr<glslang::TProgram> m_program;
Vector<Vector<unsigned>> m_generatedSpirv;
Vector<Vector<unsigned>> m_generatedSpirv;
// Attributes (Vertex in)
UnorderedMap<String, Uint> m_explicitAttribLocations;
Vector<String> m_attribs;
Vector<GLenum> m_attribTypes;
// For SpvcSession::SetVertexAttribLocation()
// UnorderedMap<String, Uint> m_attribLocation;
// Attributes (Vertex in)
UnorderedMap<String, Uint> m_explicitAttribLocations;
Vector<String> m_attribs;
Vector<GLenum> m_attribTypes;
// FragData (Frag out)
UnorderedMap<String, Uint> m_explicitFragDataLocation;
// FragData (Frag out)
UnorderedMap<String, Uint> m_explicitFragDataLocation;
// Uniforms
UnorderedMap<String, Uint> m_uniformLocations;
// Ordered by location,
// aka. m_uniformIndexInTProgram[loc] == "uniform index of TProgram at location `loc`"
Vector<Int> m_uniformIndexInTProgram;
// ditto. Will be set at glUniform1i
Vector<Int> m_uniformSamplerOrImageUnitIndex;
// Uniforms
UnorderedMap<String, Uint> m_uniformLocations;
// Ordered by location,
// aka. m_uniformIndexInTProgram[loc] == "uniform index of TProgram at location `loc`"
Vector<Int> m_uniformIndexInTProgram;
// ditto. Will be set at glUniform1i
Vector<Int> m_uniformSamplerOrImageUnitIndex;
// Ordered by uniform block index
// index is DIFFERENT from binding!!!
//
// Let's define UniformBlockIndex == the order at glslang getUniformBlock()
// aka `i = glGetUniformBlockIndex(prog, "BlockName")` implies:
// `prog->getUniformBlock(i) == "BlockName"`
UnorderedMap<String, Uint> m_uniformBlockIndexByName;
Vector<Int> m_uniformBlockBinding;
// Ordered by uniform block index
// index is DIFFERENT from binding!!!
//
// Let's define UniformBlockIndex == the order at glslang getUniformBlock()
// aka `i = glGetUniformBlockIndex(prog, "BlockName")` implies:
// `prog->getUniformBlock(i) == "BlockName"`
// These stuff are present for GL semantics, not for backend inspection
// These may change after-link (because GL spec decided to have `glUniformBlockBinding`)
UnorderedMap<String, Uint> m_uniformBlockIndexByName;
Vector<Int> m_uniformBlockBinding;
// Need to be reflected after linking of SPIR-V binary
Vector<Uint> m_uniformOffsets;
Vector<Uint> m_uniformSizesInBytes;
Vector<Uint8> m_uboScratch;
// Need to be reflected after linking of SPIR-V binary
Vector<Uint> m_uniformOffsets;
Vector<Uint> m_uniformSizesInBytes;
Vector<Uint8> m_globalUboScratch;
Uint m_activeUniformCount = 0;
Uint m_maxUniformLocation = 0;
Int m_uniformNameMaxLength = 0;
Int m_attribInNameMaxLength = 0;
Int m_uniformBlockNameMaxLength = 0;
Uint m_activeUniformCount = 0;
Uint m_maxUniformLocation = 0;
Int m_uniformNameMaxLength = 0;
Int m_attribInNameMaxLength = 0;
Int m_uniformBlockNameMaxLength = 0;
String m_infoLog;
Bool m_deleteStatus = false;
Bool m_linkStatus = false;
Bool m_validateStatus = true;
};
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
String m_infoLog;
Bool m_deleteStatus = false;
Bool m_linkStatus = false;
Bool m_validateStatus = true;
};
} // namespace MobileGL::MG_State::GLState
@@ -8,73 +8,71 @@
#include "ProgramState.h"
namespace MobileGL {
namespace MG_State {
namespace GLState {
Uint ProgramState::CreateProgram() {
Uint programId = 0;
m_programIndexGenerator.Generate(1, &programId);
EnsureIndexAvail(programId, m_programObjects);
auto programObject = MakeShared<ProgramObject>(programId);
if (programObject == nullptr) return 0;
m_programObjects[programId] = programObject;
return programId;
}
namespace MobileGL::MG_State::GLState {
Uint ProgramState::CreateProgram() {
Uint programId = 0;
m_programIndexGenerator.Generate(1, &programId);
EnsureIndexAvail(programId, m_programObjects);
auto programObject = MakeShared<ProgramObject>(programId);
if (programObject == nullptr) return 0;
m_programObjects[programId] = programObject;
return programId;
}
SharedPtr<ProgramObject> ProgramState::GetProgramObject(const Uint id) {
if (!CheckIndexAvail(id, m_programObjects)) return nullptr; // FIXME: add error reporting here
return m_programObjects[id];
}
const SharedPtr<ProgramObject>& ProgramState::GetProgramObject(const Uint id) {
static SharedPtr<ProgramObject> nullProgramObject = nullptr;
if (!CheckIndexAvail(id, m_programObjects)) return nullProgramObject; // FIXME: add error reporting here
return m_programObjects[id];
}
void ProgramState::MarkProgramObjectForDeletion(const Uint program) {
if (!CheckIndexAvail(program, m_programObjects)) return; // FIXME: add error reporting here
auto& programObject = m_programObjects[program];
if (programObject != nullptr) {
programObject->MarkAsDeleted();
programObject.reset();
m_programIndexGenerator.Delete(program);
}
}
void ProgramState::MarkProgramObjectForDeletion(const Uint program) {
if (!CheckIndexAvail(program, m_programObjects)) return; // FIXME: add error reporting here
auto& programObject = m_programObjects[program];
if (programObject != nullptr) {
programObject->MarkAsDeleted();
programObject.reset();
m_programIndexGenerator.Delete(program);
}
}
Bool ProgramState::ValidateProgramObject(const Uint program) const {
return CheckIndexAvail(program, m_programObjects) && m_programObjects[program] != nullptr;
}
Bool ProgramState::ValidateProgramObject(const Uint program) const {
return CheckIndexAvail(program, m_programObjects) && m_programObjects[program] != nullptr;
}
void ProgramState::UseProgram(Uint program) {
if (program == 0) m_currentProgram.reset();
void ProgramState::UseProgram(Uint program) {
if (program == 0) m_currentProgram.reset();
if (!CheckIndexAvail(program, m_programObjects)) return;
m_currentProgram = m_programObjects[program];
}
if (!CheckIndexAvail(program, m_programObjects)) return;
m_currentProgram = m_programObjects[program];
}
Uint ProgramState::CreateShader(ShaderStage stage) {
Uint shaderId = 0;
m_shaderIndexGenerator.Generate(1, &shaderId);
EnsureIndexAvail(shaderId, m_shaderObjects);
auto shaderObject = MakeShared<ShaderObject>(stage, shaderId);
if (shaderObject == nullptr) return 0;
m_shaderObjects[shaderId] = shaderObject;
return shaderId;
}
Uint ProgramState::CreateShader(ShaderStage stage) {
Uint shaderId = 0;
m_shaderIndexGenerator.Generate(1, &shaderId);
EnsureIndexAvail(shaderId, m_shaderObjects);
auto shaderObject = MakeShared<ShaderObject>(stage, shaderId);
if (shaderObject == nullptr) return 0;
m_shaderObjects[shaderId] = shaderObject;
return shaderId;
}
SharedPtr<ShaderObject> ProgramState::GetShaderObject(const Uint shader) {
if (!CheckIndexAvail(shader, m_shaderObjects)) return nullptr;
return m_shaderObjects[shader];
}
const SharedPtr<ShaderObject>& ProgramState::GetShaderObject(const Uint shader) {
static SharedPtr<ShaderObject> nullShaderObject = nullptr;
if (!CheckIndexAvail(shader, m_shaderObjects)) return nullShaderObject;
return m_shaderObjects[shader];
}
void ProgramState::MarkShaderObjectForDeletion(Uint shader) {
if (!CheckIndexAvail(shader, m_shaderObjects)) return;
auto& shaderObject = m_shaderObjects[shader];
if (shaderObject != nullptr) {
m_shaderObjects[shader]->MarkAsDeleted();
m_shaderObjects[shader].reset();
m_shaderIndexGenerator.Delete(shader);
}
}
void ProgramState::MarkShaderObjectForDeletion(Uint shader) {
if (!CheckIndexAvail(shader, m_shaderObjects)) return;
auto& shaderObject = m_shaderObjects[shader];
if (shaderObject != nullptr) {
m_shaderObjects[shader]->MarkAsDeleted();
m_shaderObjects[shader].reset();
m_shaderIndexGenerator.Delete(shader);
}
}
Bool ProgramState::ValidateShaderObject(Uint shader) const {
return CheckIndexAvail(shader, m_shaderObjects) && m_shaderObjects[shader] != nullptr;
}
} // namespace GLState
} // namespace MG_State
} // namespace MobileGL
Bool ProgramState::ValidateShaderObject(Uint shader) const {
return CheckIndexAvail(shader, m_shaderObjects) && m_shaderObjects[shader] != nullptr;
}
} // namespace MobileGL::MG_State::GLState

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