imgui_impl_vulkan.cpp 70 KB

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  1. // dear imgui: Renderer Backend for Vulkan
  2. // This needs to be used along with a Platform Backend (e.g. GLFW, SDL, Win32, custom..)
  3. // Implemented features:
  4. // [X] Renderer: Support for large meshes (64k+ vertices) with 16-bit indices.
  5. // Missing features:
  6. // [ ] Renderer: User texture binding. Changes of ImTextureID aren't supported by this backend! See https://github.com/ocornut/imgui/pull/914
  7. // You can copy and use unmodified imgui_impl_* files in your project. See examples/ folder for examples of using this.
  8. // If you are new to Dear ImGui, read documentation from the docs/ folder + read the top of imgui.cpp.
  9. // Read online: https://github.com/ocornut/imgui/tree/master/docs
  10. // The aim of imgui_impl_vulkan.h/.cpp is to be usable in your engine without any modification.
  11. // IF YOU FEEL YOU NEED TO MAKE ANY CHANGE TO THIS CODE, please share them and your feedback at https://github.com/ocornut/imgui/
  12. // Important note to the reader who wish to integrate imgui_impl_vulkan.cpp/.h in their own engine/app.
  13. // - Common ImGui_ImplVulkan_XXX functions and structures are used to interface with imgui_impl_vulkan.cpp/.h.
  14. // You will use those if you want to use this rendering backend in your engine/app.
  15. // - Helper ImGui_ImplVulkanH_XXX functions and structures are only used by this example (main.cpp) and by
  16. // the backend itself (imgui_impl_vulkan.cpp), but should PROBABLY NOT be used by your own engine/app code.
  17. // Read comments in imgui_impl_vulkan.h.
  18. // CHANGELOG
  19. // (minor and older changes stripped away, please see git history for details)
  20. // 2021-01-27: Vulkan: Added support for custom function load and IMGUI_IMPL_VULKAN_NO_PROTOTYPES by using ImGui_ImplVulkan_LoadFunctions().
  21. // 2020-11-11: Vulkan: Added support for specifying which subpass to reference during VkPipeline creation.
  22. // 2020-09-07: Vulkan: Added VkPipeline parameter to ImGui_ImplVulkan_RenderDrawData (default to one passed to ImGui_ImplVulkan_Init).
  23. // 2020-05-04: Vulkan: Fixed crash if initial frame has no vertices.
  24. // 2020-04-26: Vulkan: Fixed edge case where render callbacks wouldn't be called if the ImDrawData didn't have vertices.
  25. // 2019-08-01: Vulkan: Added support for specifying multisample count. Set ImGui_ImplVulkan_InitInfo::MSAASamples to one of the VkSampleCountFlagBits values to use, default is non-multisampled as before.
  26. // 2019-05-29: Vulkan: Added support for large mesh (64K+ vertices), enable ImGuiBackendFlags_RendererHasVtxOffset flag.
  27. // 2019-04-30: Vulkan: Added support for special ImDrawCallback_ResetRenderState callback to reset render state.
  28. // 2019-04-04: *BREAKING CHANGE*: Vulkan: Added ImageCount/MinImageCount fields in ImGui_ImplVulkan_InitInfo, required for initialization (was previously a hard #define IMGUI_VK_QUEUED_FRAMES 2). Added ImGui_ImplVulkan_SetMinImageCount().
  29. // 2019-04-04: Vulkan: Added VkInstance argument to ImGui_ImplVulkanH_CreateWindow() optional helper.
  30. // 2019-04-04: Vulkan: Avoid passing negative coordinates to vkCmdSetScissor, which debug validation layers do not like.
  31. // 2019-04-01: Vulkan: Support for 32-bit index buffer (#define ImDrawIdx unsigned int).
  32. // 2019-02-16: Vulkan: Viewport and clipping rectangles correctly using draw_data->FramebufferScale to allow retina display.
  33. // 2018-11-30: Misc: Setting up io.BackendRendererName so it can be displayed in the About Window.
  34. // 2018-08-25: Vulkan: Fixed mishandled VkSurfaceCapabilitiesKHR::maxImageCount=0 case.
  35. // 2018-06-22: Inverted the parameters to ImGui_ImplVulkan_RenderDrawData() to be consistent with other backends.
  36. // 2018-06-08: Misc: Extracted imgui_impl_vulkan.cpp/.h away from the old combined GLFW+Vulkan example.
  37. // 2018-06-08: Vulkan: Use draw_data->DisplayPos and draw_data->DisplaySize to setup projection matrix and clipping rectangle.
  38. // 2018-03-03: Vulkan: Various refactor, created a couple of ImGui_ImplVulkanH_XXX helper that the example can use and that viewport support will use.
  39. // 2018-03-01: Vulkan: Renamed ImGui_ImplVulkan_Init_Info to ImGui_ImplVulkan_InitInfo and fields to match more closely Vulkan terminology.
  40. // 2018-02-16: Misc: Obsoleted the io.RenderDrawListsFn callback, ImGui_ImplVulkan_Render() calls ImGui_ImplVulkan_RenderDrawData() itself.
  41. // 2018-02-06: Misc: Removed call to ImGui::Shutdown() which is not available from 1.60 WIP, user needs to call CreateContext/DestroyContext themselves.
  42. // 2017-05-15: Vulkan: Fix scissor offset being negative. Fix new Vulkan validation warnings. Set required depth member for buffer image copy.
  43. // 2016-11-13: Vulkan: Fix validation layer warnings and errors and redeclare gl_PerVertex.
  44. // 2016-10-18: Vulkan: Add location decorators & change to use structs as in/out in glsl, update embedded spv (produced with glslangValidator -x). Null the released resources.
  45. // 2016-08-27: Vulkan: Fix Vulkan example for use when a depth buffer is active.
  46. #include "imgui_impl_vulkan.h"
  47. #include <stdio.h>
  48. // Reusable buffers used for rendering 1 current in-flight frame, for ImGui_ImplVulkan_RenderDrawData()
  49. // [Please zero-clear before use!]
  50. struct ImGui_ImplVulkanH_FrameRenderBuffers
  51. {
  52. VkDeviceMemory VertexBufferMemory;
  53. VkDeviceMemory IndexBufferMemory;
  54. VkDeviceSize VertexBufferSize;
  55. VkDeviceSize IndexBufferSize;
  56. VkBuffer VertexBuffer;
  57. VkBuffer IndexBuffer;
  58. };
  59. // Each viewport will hold 1 ImGui_ImplVulkanH_WindowRenderBuffers
  60. // [Please zero-clear before use!]
  61. struct ImGui_ImplVulkanH_WindowRenderBuffers
  62. {
  63. uint32_t Index;
  64. uint32_t Count;
  65. ImGui_ImplVulkanH_FrameRenderBuffers* FrameRenderBuffers;
  66. };
  67. // Vulkan data
  68. static ImGui_ImplVulkan_InitInfo g_VulkanInitInfo = {};
  69. static VkRenderPass g_RenderPass = VK_NULL_HANDLE;
  70. static VkDeviceSize g_BufferMemoryAlignment = 256;
  71. static VkPipelineCreateFlags g_PipelineCreateFlags = 0x00;
  72. static VkDescriptorSetLayout g_DescriptorSetLayout = VK_NULL_HANDLE;
  73. static VkPipelineLayout g_PipelineLayout = VK_NULL_HANDLE;
  74. static VkDescriptorSet g_DescriptorSet = VK_NULL_HANDLE;
  75. static VkPipeline g_Pipeline = VK_NULL_HANDLE;
  76. static uint32_t g_Subpass = 0;
  77. static VkShaderModule g_ShaderModuleVert;
  78. static VkShaderModule g_ShaderModuleFrag;
  79. #ifdef VK_NO_PROTOTYPES
  80. static bool g_FunctionsLoaded = false;
  81. #else
  82. static bool g_FunctionsLoaded = true;
  83. #endif
  84. // Font data
  85. static VkSampler g_FontSampler = VK_NULL_HANDLE;
  86. static VkDeviceMemory g_FontMemory = VK_NULL_HANDLE;
  87. static VkImage g_FontImage = VK_NULL_HANDLE;
  88. static VkImageView g_FontView = VK_NULL_HANDLE;
  89. static VkDeviceMemory g_UploadBufferMemory = VK_NULL_HANDLE;
  90. static VkBuffer g_UploadBuffer = VK_NULL_HANDLE;
  91. // Render buffers
  92. static ImGui_ImplVulkanH_WindowRenderBuffers g_MainWindowRenderBuffers;
  93. // Forward Declarations
  94. bool ImGui_ImplVulkan_CreateDeviceObjects();
  95. void ImGui_ImplVulkan_DestroyDeviceObjects();
  96. void ImGui_ImplVulkanH_DestroyFrame(VkDevice device, ImGui_ImplVulkanH_Frame* fd, const VkAllocationCallbacks* allocator);
  97. void ImGui_ImplVulkanH_DestroyFrameSemaphores(VkDevice device, ImGui_ImplVulkanH_FrameSemaphores* fsd, const VkAllocationCallbacks* allocator);
  98. void ImGui_ImplVulkanH_DestroyFrameRenderBuffers(VkDevice device, ImGui_ImplVulkanH_FrameRenderBuffers* buffers, const VkAllocationCallbacks* allocator);
  99. void ImGui_ImplVulkanH_DestroyWindowRenderBuffers(VkDevice device, ImGui_ImplVulkanH_WindowRenderBuffers* buffers, const VkAllocationCallbacks* allocator);
  100. void ImGui_ImplVulkanH_CreateWindowSwapChain(VkPhysicalDevice physical_device, VkDevice device, ImGui_ImplVulkanH_Window* wd, const VkAllocationCallbacks* allocator, int w, int h, uint32_t min_image_count);
  101. void ImGui_ImplVulkanH_CreateWindowCommandBuffers(VkPhysicalDevice physical_device, VkDevice device, ImGui_ImplVulkanH_Window* wd, uint32_t queue_family, const VkAllocationCallbacks* allocator);
  102. // Vulkan prototypes for use with custom loaders
  103. // (see description of IMGUI_IMPL_VULKAN_NO_PROTOTYPES in imgui_impl_vulkan.h
  104. #ifdef VK_NO_PROTOTYPES
  105. #define IMGUI_VULKAN_FUNC_MAP(IMGUI_VULKAN_FUNC_MAP_MACRO) \
  106. IMGUI_VULKAN_FUNC_MAP_MACRO(vkAllocateCommandBuffers) \
  107. IMGUI_VULKAN_FUNC_MAP_MACRO(vkAllocateDescriptorSets) \
  108. IMGUI_VULKAN_FUNC_MAP_MACRO(vkAllocateMemory) \
  109. IMGUI_VULKAN_FUNC_MAP_MACRO(vkBindBufferMemory) \
  110. IMGUI_VULKAN_FUNC_MAP_MACRO(vkBindImageMemory) \
  111. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdBindDescriptorSets) \
  112. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdBindIndexBuffer) \
  113. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdBindPipeline) \
  114. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdBindVertexBuffers) \
  115. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdCopyBufferToImage) \
  116. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdDrawIndexed) \
  117. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdPipelineBarrier) \
  118. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdPushConstants) \
  119. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdSetScissor) \
  120. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCmdSetViewport) \
  121. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateBuffer) \
  122. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateCommandPool) \
  123. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateDescriptorSetLayout) \
  124. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateFence) \
  125. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateFramebuffer) \
  126. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateGraphicsPipelines) \
  127. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateImage) \
  128. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateImageView) \
  129. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreatePipelineLayout) \
  130. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateRenderPass) \
  131. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateSampler) \
  132. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateSemaphore) \
  133. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateShaderModule) \
  134. IMGUI_VULKAN_FUNC_MAP_MACRO(vkCreateSwapchainKHR) \
  135. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyBuffer) \
  136. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyCommandPool) \
  137. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyDescriptorSetLayout) \
  138. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyFence) \
  139. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyFramebuffer) \
  140. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyImage) \
  141. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyImageView) \
  142. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyPipeline) \
  143. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyPipelineLayout) \
  144. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyRenderPass) \
  145. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroySampler) \
  146. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroySemaphore) \
  147. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroyShaderModule) \
  148. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroySurfaceKHR) \
  149. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDestroySwapchainKHR) \
  150. IMGUI_VULKAN_FUNC_MAP_MACRO(vkDeviceWaitIdle) \
  151. IMGUI_VULKAN_FUNC_MAP_MACRO(vkFlushMappedMemoryRanges) \
  152. IMGUI_VULKAN_FUNC_MAP_MACRO(vkFreeCommandBuffers) \
  153. IMGUI_VULKAN_FUNC_MAP_MACRO(vkFreeMemory) \
  154. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetBufferMemoryRequirements) \
  155. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetImageMemoryRequirements) \
  156. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetPhysicalDeviceMemoryProperties) \
  157. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetPhysicalDeviceSurfaceCapabilitiesKHR) \
  158. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetPhysicalDeviceSurfaceFormatsKHR) \
  159. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetPhysicalDeviceSurfacePresentModesKHR) \
  160. IMGUI_VULKAN_FUNC_MAP_MACRO(vkGetSwapchainImagesKHR) \
  161. IMGUI_VULKAN_FUNC_MAP_MACRO(vkMapMemory) \
  162. IMGUI_VULKAN_FUNC_MAP_MACRO(vkUnmapMemory) \
  163. IMGUI_VULKAN_FUNC_MAP_MACRO(vkUpdateDescriptorSets)
  164. // Define function pointers
  165. #define IMGUI_VULKAN_FUNC_DEF(func) static PFN_##func func;
  166. IMGUI_VULKAN_FUNC_MAP(IMGUI_VULKAN_FUNC_DEF)
  167. #undef IMGUI_VULKAN_FUNC_DEF
  168. #endif // VK_NO_PROTOTYPES
  169. //-----------------------------------------------------------------------------
  170. // SHADERS
  171. //-----------------------------------------------------------------------------
  172. // glsl_shader.vert, compiled with:
  173. // # glslangValidator -V -x -o glsl_shader.vert.u32 glsl_shader.vert
  174. /*
  175. #version 450 core
  176. layout(location = 0) in vec2 aPos;
  177. layout(location = 1) in vec2 aUV;
  178. layout(location = 2) in vec4 aColor;
  179. layout(push_constant) uniform uPushConstant { vec2 uScale; vec2 uTranslate; } pc;
  180. out gl_PerVertex { vec4 gl_Position; };
  181. layout(location = 0) out struct { vec4 Color; vec2 UV; } Out;
  182. void main()
  183. {
  184. Out.Color = aColor;
  185. Out.UV = aUV;
  186. gl_Position = vec4(aPos * pc.uScale + pc.uTranslate, 0, 1);
  187. }
  188. */
  189. static uint32_t __glsl_shader_vert_spv[] =
  190. {
  191. 0x07230203,0x00010000,0x00080001,0x0000002e,0x00000000,0x00020011,0x00000001,0x0006000b,
  192. 0x00000001,0x4c534c47,0x6474732e,0x3035342e,0x00000000,0x0003000e,0x00000000,0x00000001,
  193. 0x000a000f,0x00000000,0x00000004,0x6e69616d,0x00000000,0x0000000b,0x0000000f,0x00000015,
  194. 0x0000001b,0x0000001c,0x00030003,0x00000002,0x000001c2,0x00040005,0x00000004,0x6e69616d,
  195. 0x00000000,0x00030005,0x00000009,0x00000000,0x00050006,0x00000009,0x00000000,0x6f6c6f43,
  196. 0x00000072,0x00040006,0x00000009,0x00000001,0x00005655,0x00030005,0x0000000b,0x0074754f,
  197. 0x00040005,0x0000000f,0x6c6f4361,0x0000726f,0x00030005,0x00000015,0x00565561,0x00060005,
  198. 0x00000019,0x505f6c67,0x65567265,0x78657472,0x00000000,0x00060006,0x00000019,0x00000000,
  199. 0x505f6c67,0x7469736f,0x006e6f69,0x00030005,0x0000001b,0x00000000,0x00040005,0x0000001c,
  200. 0x736f5061,0x00000000,0x00060005,0x0000001e,0x73755075,0x6e6f4368,0x6e617473,0x00000074,
  201. 0x00050006,0x0000001e,0x00000000,0x61635375,0x0000656c,0x00060006,0x0000001e,0x00000001,
  202. 0x61725475,0x616c736e,0x00006574,0x00030005,0x00000020,0x00006370,0x00040047,0x0000000b,
  203. 0x0000001e,0x00000000,0x00040047,0x0000000f,0x0000001e,0x00000002,0x00040047,0x00000015,
  204. 0x0000001e,0x00000001,0x00050048,0x00000019,0x00000000,0x0000000b,0x00000000,0x00030047,
  205. 0x00000019,0x00000002,0x00040047,0x0000001c,0x0000001e,0x00000000,0x00050048,0x0000001e,
  206. 0x00000000,0x00000023,0x00000000,0x00050048,0x0000001e,0x00000001,0x00000023,0x00000008,
  207. 0x00030047,0x0000001e,0x00000002,0x00020013,0x00000002,0x00030021,0x00000003,0x00000002,
  208. 0x00030016,0x00000006,0x00000020,0x00040017,0x00000007,0x00000006,0x00000004,0x00040017,
  209. 0x00000008,0x00000006,0x00000002,0x0004001e,0x00000009,0x00000007,0x00000008,0x00040020,
  210. 0x0000000a,0x00000003,0x00000009,0x0004003b,0x0000000a,0x0000000b,0x00000003,0x00040015,
  211. 0x0000000c,0x00000020,0x00000001,0x0004002b,0x0000000c,0x0000000d,0x00000000,0x00040020,
  212. 0x0000000e,0x00000001,0x00000007,0x0004003b,0x0000000e,0x0000000f,0x00000001,0x00040020,
  213. 0x00000011,0x00000003,0x00000007,0x0004002b,0x0000000c,0x00000013,0x00000001,0x00040020,
  214. 0x00000014,0x00000001,0x00000008,0x0004003b,0x00000014,0x00000015,0x00000001,0x00040020,
  215. 0x00000017,0x00000003,0x00000008,0x0003001e,0x00000019,0x00000007,0x00040020,0x0000001a,
  216. 0x00000003,0x00000019,0x0004003b,0x0000001a,0x0000001b,0x00000003,0x0004003b,0x00000014,
  217. 0x0000001c,0x00000001,0x0004001e,0x0000001e,0x00000008,0x00000008,0x00040020,0x0000001f,
  218. 0x00000009,0x0000001e,0x0004003b,0x0000001f,0x00000020,0x00000009,0x00040020,0x00000021,
  219. 0x00000009,0x00000008,0x0004002b,0x00000006,0x00000028,0x00000000,0x0004002b,0x00000006,
  220. 0x00000029,0x3f800000,0x00050036,0x00000002,0x00000004,0x00000000,0x00000003,0x000200f8,
  221. 0x00000005,0x0004003d,0x00000007,0x00000010,0x0000000f,0x00050041,0x00000011,0x00000012,
  222. 0x0000000b,0x0000000d,0x0003003e,0x00000012,0x00000010,0x0004003d,0x00000008,0x00000016,
  223. 0x00000015,0x00050041,0x00000017,0x00000018,0x0000000b,0x00000013,0x0003003e,0x00000018,
  224. 0x00000016,0x0004003d,0x00000008,0x0000001d,0x0000001c,0x00050041,0x00000021,0x00000022,
  225. 0x00000020,0x0000000d,0x0004003d,0x00000008,0x00000023,0x00000022,0x00050085,0x00000008,
  226. 0x00000024,0x0000001d,0x00000023,0x00050041,0x00000021,0x00000025,0x00000020,0x00000013,
  227. 0x0004003d,0x00000008,0x00000026,0x00000025,0x00050081,0x00000008,0x00000027,0x00000024,
  228. 0x00000026,0x00050051,0x00000006,0x0000002a,0x00000027,0x00000000,0x00050051,0x00000006,
  229. 0x0000002b,0x00000027,0x00000001,0x00070050,0x00000007,0x0000002c,0x0000002a,0x0000002b,
  230. 0x00000028,0x00000029,0x00050041,0x00000011,0x0000002d,0x0000001b,0x0000000d,0x0003003e,
  231. 0x0000002d,0x0000002c,0x000100fd,0x00010038
  232. };
  233. // glsl_shader.frag, compiled with:
  234. // # glslangValidator -V -x -o glsl_shader.frag.u32 glsl_shader.frag
  235. /*
  236. #version 450 core
  237. layout(location = 0) out vec4 fColor;
  238. layout(set=0, binding=0) uniform sampler2D sTexture;
  239. layout(location = 0) in struct { vec4 Color; vec2 UV; } In;
  240. void main()
  241. {
  242. fColor = In.Color * texture(sTexture, In.UV.st);
  243. }
  244. */
  245. static uint32_t __glsl_shader_frag_spv[] =
  246. {
  247. 0x07230203,0x00010000,0x00080001,0x0000001e,0x00000000,0x00020011,0x00000001,0x0006000b,
  248. 0x00000001,0x4c534c47,0x6474732e,0x3035342e,0x00000000,0x0003000e,0x00000000,0x00000001,
  249. 0x0007000f,0x00000004,0x00000004,0x6e69616d,0x00000000,0x00000009,0x0000000d,0x00030010,
  250. 0x00000004,0x00000007,0x00030003,0x00000002,0x000001c2,0x00040005,0x00000004,0x6e69616d,
  251. 0x00000000,0x00040005,0x00000009,0x6c6f4366,0x0000726f,0x00030005,0x0000000b,0x00000000,
  252. 0x00050006,0x0000000b,0x00000000,0x6f6c6f43,0x00000072,0x00040006,0x0000000b,0x00000001,
  253. 0x00005655,0x00030005,0x0000000d,0x00006e49,0x00050005,0x00000016,0x78655473,0x65727574,
  254. 0x00000000,0x00040047,0x00000009,0x0000001e,0x00000000,0x00040047,0x0000000d,0x0000001e,
  255. 0x00000000,0x00040047,0x00000016,0x00000022,0x00000000,0x00040047,0x00000016,0x00000021,
  256. 0x00000000,0x00020013,0x00000002,0x00030021,0x00000003,0x00000002,0x00030016,0x00000006,
  257. 0x00000020,0x00040017,0x00000007,0x00000006,0x00000004,0x00040020,0x00000008,0x00000003,
  258. 0x00000007,0x0004003b,0x00000008,0x00000009,0x00000003,0x00040017,0x0000000a,0x00000006,
  259. 0x00000002,0x0004001e,0x0000000b,0x00000007,0x0000000a,0x00040020,0x0000000c,0x00000001,
  260. 0x0000000b,0x0004003b,0x0000000c,0x0000000d,0x00000001,0x00040015,0x0000000e,0x00000020,
  261. 0x00000001,0x0004002b,0x0000000e,0x0000000f,0x00000000,0x00040020,0x00000010,0x00000001,
  262. 0x00000007,0x00090019,0x00000013,0x00000006,0x00000001,0x00000000,0x00000000,0x00000000,
  263. 0x00000001,0x00000000,0x0003001b,0x00000014,0x00000013,0x00040020,0x00000015,0x00000000,
  264. 0x00000014,0x0004003b,0x00000015,0x00000016,0x00000000,0x0004002b,0x0000000e,0x00000018,
  265. 0x00000001,0x00040020,0x00000019,0x00000001,0x0000000a,0x00050036,0x00000002,0x00000004,
  266. 0x00000000,0x00000003,0x000200f8,0x00000005,0x00050041,0x00000010,0x00000011,0x0000000d,
  267. 0x0000000f,0x0004003d,0x00000007,0x00000012,0x00000011,0x0004003d,0x00000014,0x00000017,
  268. 0x00000016,0x00050041,0x00000019,0x0000001a,0x0000000d,0x00000018,0x0004003d,0x0000000a,
  269. 0x0000001b,0x0000001a,0x00050057,0x00000007,0x0000001c,0x00000017,0x0000001b,0x00050085,
  270. 0x00000007,0x0000001d,0x00000012,0x0000001c,0x0003003e,0x00000009,0x0000001d,0x000100fd,
  271. 0x00010038
  272. };
  273. //-----------------------------------------------------------------------------
  274. // FUNCTIONS
  275. //-----------------------------------------------------------------------------
  276. static uint32_t ImGui_ImplVulkan_MemoryType(VkMemoryPropertyFlags properties, uint32_t type_bits)
  277. {
  278. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  279. VkPhysicalDeviceMemoryProperties prop;
  280. vkGetPhysicalDeviceMemoryProperties(v->PhysicalDevice, &prop);
  281. for (uint32_t i = 0; i < prop.memoryTypeCount; i++)
  282. if ((prop.memoryTypes[i].propertyFlags & properties) == properties && type_bits & (1 << i))
  283. return i;
  284. return 0xFFFFFFFF; // Unable to find memoryType
  285. }
  286. static void check_vk_result(VkResult err)
  287. {
  288. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  289. if (v->CheckVkResultFn)
  290. v->CheckVkResultFn(err);
  291. }
  292. static void CreateOrResizeBuffer(VkBuffer& buffer, VkDeviceMemory& buffer_memory, VkDeviceSize& p_buffer_size, size_t new_size, VkBufferUsageFlagBits usage)
  293. {
  294. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  295. VkResult err;
  296. if (buffer != VK_NULL_HANDLE)
  297. vkDestroyBuffer(v->Device, buffer, v->Allocator);
  298. if (buffer_memory != VK_NULL_HANDLE)
  299. vkFreeMemory(v->Device, buffer_memory, v->Allocator);
  300. VkDeviceSize vertex_buffer_size_aligned = ((new_size - 1) / g_BufferMemoryAlignment + 1) * g_BufferMemoryAlignment;
  301. VkBufferCreateInfo buffer_info = {};
  302. buffer_info.sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO;
  303. buffer_info.size = vertex_buffer_size_aligned;
  304. buffer_info.usage = usage;
  305. buffer_info.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
  306. err = vkCreateBuffer(v->Device, &buffer_info, v->Allocator, &buffer);
  307. check_vk_result(err);
  308. VkMemoryRequirements req;
  309. vkGetBufferMemoryRequirements(v->Device, buffer, &req);
  310. g_BufferMemoryAlignment = (g_BufferMemoryAlignment > req.alignment) ? g_BufferMemoryAlignment : req.alignment;
  311. VkMemoryAllocateInfo alloc_info = {};
  312. alloc_info.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
  313. alloc_info.allocationSize = req.size;
  314. alloc_info.memoryTypeIndex = ImGui_ImplVulkan_MemoryType(VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT, req.memoryTypeBits);
  315. err = vkAllocateMemory(v->Device, &alloc_info, v->Allocator, &buffer_memory);
  316. check_vk_result(err);
  317. err = vkBindBufferMemory(v->Device, buffer, buffer_memory, 0);
  318. check_vk_result(err);
  319. p_buffer_size = new_size;
  320. }
  321. static void ImGui_ImplVulkan_SetupRenderState(ImDrawData* draw_data, VkPipeline pipeline, VkCommandBuffer command_buffer, ImGui_ImplVulkanH_FrameRenderBuffers* rb, int fb_width, int fb_height)
  322. {
  323. // Bind pipeline and descriptor sets:
  324. {
  325. vkCmdBindPipeline(command_buffer, VK_PIPELINE_BIND_POINT_GRAPHICS, pipeline);
  326. VkDescriptorSet desc_set[1] = { g_DescriptorSet };
  327. vkCmdBindDescriptorSets(command_buffer, VK_PIPELINE_BIND_POINT_GRAPHICS, g_PipelineLayout, 0, 1, desc_set, 0, NULL);
  328. }
  329. // Bind Vertex And Index Buffer:
  330. if (draw_data->TotalVtxCount > 0)
  331. {
  332. VkBuffer vertex_buffers[1] = { rb->VertexBuffer };
  333. VkDeviceSize vertex_offset[1] = { 0 };
  334. vkCmdBindVertexBuffers(command_buffer, 0, 1, vertex_buffers, vertex_offset);
  335. vkCmdBindIndexBuffer(command_buffer, rb->IndexBuffer, 0, sizeof(ImDrawIdx) == 2 ? VK_INDEX_TYPE_UINT16 : VK_INDEX_TYPE_UINT32);
  336. }
  337. // Setup viewport:
  338. {
  339. VkViewport viewport;
  340. viewport.x = 0;
  341. viewport.y = 0;
  342. viewport.width = (float)fb_width;
  343. viewport.height = (float)fb_height;
  344. viewport.minDepth = 0.0f;
  345. viewport.maxDepth = 1.0f;
  346. vkCmdSetViewport(command_buffer, 0, 1, &viewport);
  347. }
  348. // Setup scale and translation:
  349. // Our visible imgui space lies from draw_data->DisplayPps (top left) to draw_data->DisplayPos+data_data->DisplaySize (bottom right). DisplayPos is (0,0) for single viewport apps.
  350. {
  351. float scale[2];
  352. scale[0] = 2.0f / draw_data->DisplaySize.x;
  353. scale[1] = 2.0f / draw_data->DisplaySize.y;
  354. float translate[2];
  355. translate[0] = -1.0f - draw_data->DisplayPos.x * scale[0];
  356. translate[1] = -1.0f - draw_data->DisplayPos.y * scale[1];
  357. vkCmdPushConstants(command_buffer, g_PipelineLayout, VK_SHADER_STAGE_VERTEX_BIT, sizeof(float) * 0, sizeof(float) * 2, scale);
  358. vkCmdPushConstants(command_buffer, g_PipelineLayout, VK_SHADER_STAGE_VERTEX_BIT, sizeof(float) * 2, sizeof(float) * 2, translate);
  359. }
  360. }
  361. // Render function
  362. void ImGui_ImplVulkan_RenderDrawData(ImDrawData* draw_data, VkCommandBuffer command_buffer, VkPipeline pipeline)
  363. {
  364. // Avoid rendering when minimized, scale coordinates for retina displays (screen coordinates != framebuffer coordinates)
  365. int fb_width = (int)(draw_data->DisplaySize.x * draw_data->FramebufferScale.x);
  366. int fb_height = (int)(draw_data->DisplaySize.y * draw_data->FramebufferScale.y);
  367. if (fb_width <= 0 || fb_height <= 0)
  368. return;
  369. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  370. if (pipeline == VK_NULL_HANDLE)
  371. pipeline = g_Pipeline;
  372. // Allocate array to store enough vertex/index buffers
  373. ImGui_ImplVulkanH_WindowRenderBuffers* wrb = &g_MainWindowRenderBuffers;
  374. if (wrb->FrameRenderBuffers == NULL)
  375. {
  376. wrb->Index = 0;
  377. wrb->Count = v->ImageCount;
  378. wrb->FrameRenderBuffers = (ImGui_ImplVulkanH_FrameRenderBuffers*)IM_ALLOC(sizeof(ImGui_ImplVulkanH_FrameRenderBuffers) * wrb->Count);
  379. memset(wrb->FrameRenderBuffers, 0, sizeof(ImGui_ImplVulkanH_FrameRenderBuffers) * wrb->Count);
  380. }
  381. IM_ASSERT(wrb->Count == v->ImageCount);
  382. wrb->Index = (wrb->Index + 1) % wrb->Count;
  383. ImGui_ImplVulkanH_FrameRenderBuffers* rb = &wrb->FrameRenderBuffers[wrb->Index];
  384. if (draw_data->TotalVtxCount > 0)
  385. {
  386. // Create or resize the vertex/index buffers
  387. size_t vertex_size = draw_data->TotalVtxCount * sizeof(ImDrawVert);
  388. size_t index_size = draw_data->TotalIdxCount * sizeof(ImDrawIdx);
  389. if (rb->VertexBuffer == VK_NULL_HANDLE || rb->VertexBufferSize < vertex_size)
  390. CreateOrResizeBuffer(rb->VertexBuffer, rb->VertexBufferMemory, rb->VertexBufferSize, vertex_size, VK_BUFFER_USAGE_VERTEX_BUFFER_BIT);
  391. if (rb->IndexBuffer == VK_NULL_HANDLE || rb->IndexBufferSize < index_size)
  392. CreateOrResizeBuffer(rb->IndexBuffer, rb->IndexBufferMemory, rb->IndexBufferSize, index_size, VK_BUFFER_USAGE_INDEX_BUFFER_BIT);
  393. // Upload vertex/index data into a single contiguous GPU buffer
  394. ImDrawVert* vtx_dst = NULL;
  395. ImDrawIdx* idx_dst = NULL;
  396. VkResult err = vkMapMemory(v->Device, rb->VertexBufferMemory, 0, vertex_size, 0, (void**)(&vtx_dst));
  397. check_vk_result(err);
  398. err = vkMapMemory(v->Device, rb->IndexBufferMemory, 0, index_size, 0, (void**)(&idx_dst));
  399. check_vk_result(err);
  400. for (int n = 0; n < draw_data->CmdListsCount; n++)
  401. {
  402. const ImDrawList* cmd_list = draw_data->CmdLists[n];
  403. memcpy(vtx_dst, cmd_list->VtxBuffer.Data, cmd_list->VtxBuffer.Size * sizeof(ImDrawVert));
  404. memcpy(idx_dst, cmd_list->IdxBuffer.Data, cmd_list->IdxBuffer.Size * sizeof(ImDrawIdx));
  405. vtx_dst += cmd_list->VtxBuffer.Size;
  406. idx_dst += cmd_list->IdxBuffer.Size;
  407. }
  408. VkMappedMemoryRange range[2] = {};
  409. range[0].sType = VK_STRUCTURE_TYPE_MAPPED_MEMORY_RANGE;
  410. range[0].memory = rb->VertexBufferMemory;
  411. range[0].size = VK_WHOLE_SIZE;
  412. range[1].sType = VK_STRUCTURE_TYPE_MAPPED_MEMORY_RANGE;
  413. range[1].memory = rb->IndexBufferMemory;
  414. range[1].size = VK_WHOLE_SIZE;
  415. err = vkFlushMappedMemoryRanges(v->Device, 2, range);
  416. check_vk_result(err);
  417. vkUnmapMemory(v->Device, rb->VertexBufferMemory);
  418. vkUnmapMemory(v->Device, rb->IndexBufferMemory);
  419. }
  420. // Setup desired Vulkan state
  421. ImGui_ImplVulkan_SetupRenderState(draw_data, pipeline, command_buffer, rb, fb_width, fb_height);
  422. // Will project scissor/clipping rectangles into framebuffer space
  423. ImVec2 clip_off = draw_data->DisplayPos; // (0,0) unless using multi-viewports
  424. ImVec2 clip_scale = draw_data->FramebufferScale; // (1,1) unless using retina display which are often (2,2)
  425. // Render command lists
  426. // (Because we merged all buffers into a single one, we maintain our own offset into them)
  427. int global_vtx_offset = 0;
  428. int global_idx_offset = 0;
  429. for (int n = 0; n < draw_data->CmdListsCount; n++)
  430. {
  431. const ImDrawList* cmd_list = draw_data->CmdLists[n];
  432. for (int cmd_i = 0; cmd_i < cmd_list->CmdBuffer.Size; cmd_i++)
  433. {
  434. const ImDrawCmd* pcmd = &cmd_list->CmdBuffer[cmd_i];
  435. if (pcmd->UserCallback != NULL)
  436. {
  437. // User callback, registered via ImDrawList::AddCallback()
  438. // (ImDrawCallback_ResetRenderState is a special callback value used by the user to request the renderer to reset render state.)
  439. if (pcmd->UserCallback == ImDrawCallback_ResetRenderState)
  440. ImGui_ImplVulkan_SetupRenderState(draw_data, pipeline, command_buffer, rb, fb_width, fb_height);
  441. else
  442. pcmd->UserCallback(cmd_list, pcmd);
  443. }
  444. else
  445. {
  446. // Project scissor/clipping rectangles into framebuffer space
  447. ImVec4 clip_rect;
  448. clip_rect.x = (pcmd->ClipRect.x - clip_off.x) * clip_scale.x;
  449. clip_rect.y = (pcmd->ClipRect.y - clip_off.y) * clip_scale.y;
  450. clip_rect.z = (pcmd->ClipRect.z - clip_off.x) * clip_scale.x;
  451. clip_rect.w = (pcmd->ClipRect.w - clip_off.y) * clip_scale.y;
  452. if (clip_rect.x < fb_width && clip_rect.y < fb_height && clip_rect.z >= 0.0f && clip_rect.w >= 0.0f)
  453. {
  454. // Negative offsets are illegal for vkCmdSetScissor
  455. if (clip_rect.x < 0.0f)
  456. clip_rect.x = 0.0f;
  457. if (clip_rect.y < 0.0f)
  458. clip_rect.y = 0.0f;
  459. // Apply scissor/clipping rectangle
  460. VkRect2D scissor;
  461. scissor.offset.x = (int32_t)(clip_rect.x);
  462. scissor.offset.y = (int32_t)(clip_rect.y);
  463. scissor.extent.width = (uint32_t)(clip_rect.z - clip_rect.x);
  464. scissor.extent.height = (uint32_t)(clip_rect.w - clip_rect.y);
  465. vkCmdSetScissor(command_buffer, 0, 1, &scissor);
  466. // Draw
  467. vkCmdDrawIndexed(command_buffer, pcmd->ElemCount, 1, pcmd->IdxOffset + global_idx_offset, pcmd->VtxOffset + global_vtx_offset, 0);
  468. }
  469. }
  470. }
  471. global_idx_offset += cmd_list->IdxBuffer.Size;
  472. global_vtx_offset += cmd_list->VtxBuffer.Size;
  473. }
  474. }
  475. bool ImGui_ImplVulkan_CreateFontsTexture(VkCommandBuffer command_buffer)
  476. {
  477. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  478. ImGuiIO& io = ImGui::GetIO();
  479. unsigned char* pixels;
  480. int width, height;
  481. io.Fonts->GetTexDataAsRGBA32(&pixels, &width, &height);
  482. size_t upload_size = width * height * 4 * sizeof(char);
  483. VkResult err;
  484. // Create the Image:
  485. {
  486. VkImageCreateInfo info = {};
  487. info.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
  488. info.imageType = VK_IMAGE_TYPE_2D;
  489. info.format = VK_FORMAT_R8G8B8A8_UNORM;
  490. info.extent.width = width;
  491. info.extent.height = height;
  492. info.extent.depth = 1;
  493. info.mipLevels = 1;
  494. info.arrayLayers = 1;
  495. info.samples = VK_SAMPLE_COUNT_1_BIT;
  496. info.tiling = VK_IMAGE_TILING_OPTIMAL;
  497. info.usage = VK_IMAGE_USAGE_SAMPLED_BIT | VK_IMAGE_USAGE_TRANSFER_DST_BIT;
  498. info.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
  499. info.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
  500. err = vkCreateImage(v->Device, &info, v->Allocator, &g_FontImage);
  501. check_vk_result(err);
  502. VkMemoryRequirements req;
  503. vkGetImageMemoryRequirements(v->Device, g_FontImage, &req);
  504. VkMemoryAllocateInfo alloc_info = {};
  505. alloc_info.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
  506. alloc_info.allocationSize = req.size;
  507. alloc_info.memoryTypeIndex = ImGui_ImplVulkan_MemoryType(VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT, req.memoryTypeBits);
  508. err = vkAllocateMemory(v->Device, &alloc_info, v->Allocator, &g_FontMemory);
  509. check_vk_result(err);
  510. err = vkBindImageMemory(v->Device, g_FontImage, g_FontMemory, 0);
  511. check_vk_result(err);
  512. }
  513. // Create the Image View:
  514. {
  515. VkImageViewCreateInfo info = {};
  516. info.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
  517. info.image = g_FontImage;
  518. info.viewType = VK_IMAGE_VIEW_TYPE_2D;
  519. info.format = VK_FORMAT_R8G8B8A8_UNORM;
  520. info.subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
  521. info.subresourceRange.levelCount = 1;
  522. info.subresourceRange.layerCount = 1;
  523. err = vkCreateImageView(v->Device, &info, v->Allocator, &g_FontView);
  524. check_vk_result(err);
  525. }
  526. // Update the Descriptor Set:
  527. {
  528. VkDescriptorImageInfo desc_image[1] = {};
  529. desc_image[0].sampler = g_FontSampler;
  530. desc_image[0].imageView = g_FontView;
  531. desc_image[0].imageLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
  532. VkWriteDescriptorSet write_desc[1] = {};
  533. write_desc[0].sType = VK_STRUCTURE_TYPE_WRITE_DESCRIPTOR_SET;
  534. write_desc[0].dstSet = g_DescriptorSet;
  535. write_desc[0].descriptorCount = 1;
  536. write_desc[0].descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
  537. write_desc[0].pImageInfo = desc_image;
  538. vkUpdateDescriptorSets(v->Device, 1, write_desc, 0, NULL);
  539. }
  540. // Create the Upload Buffer:
  541. {
  542. VkBufferCreateInfo buffer_info = {};
  543. buffer_info.sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO;
  544. buffer_info.size = upload_size;
  545. buffer_info.usage = VK_BUFFER_USAGE_TRANSFER_SRC_BIT;
  546. buffer_info.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
  547. err = vkCreateBuffer(v->Device, &buffer_info, v->Allocator, &g_UploadBuffer);
  548. check_vk_result(err);
  549. VkMemoryRequirements req;
  550. vkGetBufferMemoryRequirements(v->Device, g_UploadBuffer, &req);
  551. g_BufferMemoryAlignment = (g_BufferMemoryAlignment > req.alignment) ? g_BufferMemoryAlignment : req.alignment;
  552. VkMemoryAllocateInfo alloc_info = {};
  553. alloc_info.sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO;
  554. alloc_info.allocationSize = req.size;
  555. alloc_info.memoryTypeIndex = ImGui_ImplVulkan_MemoryType(VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT, req.memoryTypeBits);
  556. err = vkAllocateMemory(v->Device, &alloc_info, v->Allocator, &g_UploadBufferMemory);
  557. check_vk_result(err);
  558. err = vkBindBufferMemory(v->Device, g_UploadBuffer, g_UploadBufferMemory, 0);
  559. check_vk_result(err);
  560. }
  561. // Upload to Buffer:
  562. {
  563. char* map = NULL;
  564. err = vkMapMemory(v->Device, g_UploadBufferMemory, 0, upload_size, 0, (void**)(&map));
  565. check_vk_result(err);
  566. memcpy(map, pixels, upload_size);
  567. VkMappedMemoryRange range[1] = {};
  568. range[0].sType = VK_STRUCTURE_TYPE_MAPPED_MEMORY_RANGE;
  569. range[0].memory = g_UploadBufferMemory;
  570. range[0].size = upload_size;
  571. err = vkFlushMappedMemoryRanges(v->Device, 1, range);
  572. check_vk_result(err);
  573. vkUnmapMemory(v->Device, g_UploadBufferMemory);
  574. }
  575. // Copy to Image:
  576. {
  577. VkImageMemoryBarrier copy_barrier[1] = {};
  578. copy_barrier[0].sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
  579. copy_barrier[0].dstAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
  580. copy_barrier[0].oldLayout = VK_IMAGE_LAYOUT_UNDEFINED;
  581. copy_barrier[0].newLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
  582. copy_barrier[0].srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
  583. copy_barrier[0].dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
  584. copy_barrier[0].image = g_FontImage;
  585. copy_barrier[0].subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
  586. copy_barrier[0].subresourceRange.levelCount = 1;
  587. copy_barrier[0].subresourceRange.layerCount = 1;
  588. vkCmdPipelineBarrier(command_buffer, VK_PIPELINE_STAGE_HOST_BIT, VK_PIPELINE_STAGE_TRANSFER_BIT, 0, 0, NULL, 0, NULL, 1, copy_barrier);
  589. VkBufferImageCopy region = {};
  590. region.imageSubresource.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
  591. region.imageSubresource.layerCount = 1;
  592. region.imageExtent.width = width;
  593. region.imageExtent.height = height;
  594. region.imageExtent.depth = 1;
  595. vkCmdCopyBufferToImage(command_buffer, g_UploadBuffer, g_FontImage, VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL, 1, &region);
  596. VkImageMemoryBarrier use_barrier[1] = {};
  597. use_barrier[0].sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER;
  598. use_barrier[0].srcAccessMask = VK_ACCESS_TRANSFER_WRITE_BIT;
  599. use_barrier[0].dstAccessMask = VK_ACCESS_SHADER_READ_BIT;
  600. use_barrier[0].oldLayout = VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL;
  601. use_barrier[0].newLayout = VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL;
  602. use_barrier[0].srcQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
  603. use_barrier[0].dstQueueFamilyIndex = VK_QUEUE_FAMILY_IGNORED;
  604. use_barrier[0].image = g_FontImage;
  605. use_barrier[0].subresourceRange.aspectMask = VK_IMAGE_ASPECT_COLOR_BIT;
  606. use_barrier[0].subresourceRange.levelCount = 1;
  607. use_barrier[0].subresourceRange.layerCount = 1;
  608. vkCmdPipelineBarrier(command_buffer, VK_PIPELINE_STAGE_TRANSFER_BIT, VK_PIPELINE_STAGE_FRAGMENT_SHADER_BIT, 0, 0, NULL, 0, NULL, 1, use_barrier);
  609. }
  610. // Store our identifier
  611. io.Fonts->TexID = (ImTextureID)(intptr_t)g_FontImage;
  612. return true;
  613. }
  614. static void ImGui_ImplVulkan_CreateShaderModules(VkDevice device, const VkAllocationCallbacks* allocator)
  615. {
  616. // Create the shader modules
  617. if (g_ShaderModuleVert == NULL)
  618. {
  619. VkShaderModuleCreateInfo vert_info = {};
  620. vert_info.sType = VK_STRUCTURE_TYPE_SHADER_MODULE_CREATE_INFO;
  621. vert_info.codeSize = sizeof(__glsl_shader_vert_spv);
  622. vert_info.pCode = (uint32_t*)__glsl_shader_vert_spv;
  623. VkResult err = vkCreateShaderModule(device, &vert_info, allocator, &g_ShaderModuleVert);
  624. check_vk_result(err);
  625. }
  626. if (g_ShaderModuleFrag == NULL)
  627. {
  628. VkShaderModuleCreateInfo frag_info = {};
  629. frag_info.sType = VK_STRUCTURE_TYPE_SHADER_MODULE_CREATE_INFO;
  630. frag_info.codeSize = sizeof(__glsl_shader_frag_spv);
  631. frag_info.pCode = (uint32_t*)__glsl_shader_frag_spv;
  632. VkResult err = vkCreateShaderModule(device, &frag_info, allocator, &g_ShaderModuleFrag);
  633. check_vk_result(err);
  634. }
  635. }
  636. static void ImGui_ImplVulkan_CreateFontSampler(VkDevice device, const VkAllocationCallbacks* allocator)
  637. {
  638. if (g_FontSampler)
  639. return;
  640. VkSamplerCreateInfo info = {};
  641. info.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
  642. info.magFilter = VK_FILTER_LINEAR;
  643. info.minFilter = VK_FILTER_LINEAR;
  644. info.mipmapMode = VK_SAMPLER_MIPMAP_MODE_LINEAR;
  645. info.addressModeU = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  646. info.addressModeV = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  647. info.addressModeW = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  648. info.minLod = -1000;
  649. info.maxLod = 1000;
  650. info.maxAnisotropy = 1.0f;
  651. VkResult err = vkCreateSampler(device, &info, allocator, &g_FontSampler);
  652. check_vk_result(err);
  653. }
  654. static void ImGui_ImplVulkan_CreateDescriptorSetLayout(VkDevice device, const VkAllocationCallbacks* allocator)
  655. {
  656. if (g_DescriptorSetLayout)
  657. return;
  658. ImGui_ImplVulkan_CreateFontSampler(device, allocator);
  659. VkSampler sampler[1] = { g_FontSampler };
  660. VkDescriptorSetLayoutBinding binding[1] = {};
  661. binding[0].descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
  662. binding[0].descriptorCount = 1;
  663. binding[0].stageFlags = VK_SHADER_STAGE_FRAGMENT_BIT;
  664. binding[0].pImmutableSamplers = sampler;
  665. VkDescriptorSetLayoutCreateInfo info = {};
  666. info.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_LAYOUT_CREATE_INFO;
  667. info.bindingCount = 1;
  668. info.pBindings = binding;
  669. VkResult err = vkCreateDescriptorSetLayout(device, &info, allocator, &g_DescriptorSetLayout);
  670. check_vk_result(err);
  671. }
  672. static void ImGui_ImplVulkan_CreatePipelineLayout(VkDevice device, const VkAllocationCallbacks* allocator)
  673. {
  674. if (g_PipelineLayout)
  675. return;
  676. // Constants: we are using 'vec2 offset' and 'vec2 scale' instead of a full 3d projection matrix
  677. ImGui_ImplVulkan_CreateDescriptorSetLayout(device, allocator);
  678. VkPushConstantRange push_constants[1] = {};
  679. push_constants[0].stageFlags = VK_SHADER_STAGE_VERTEX_BIT;
  680. push_constants[0].offset = sizeof(float) * 0;
  681. push_constants[0].size = sizeof(float) * 4;
  682. VkDescriptorSetLayout set_layout[1] = { g_DescriptorSetLayout };
  683. VkPipelineLayoutCreateInfo layout_info = {};
  684. layout_info.sType = VK_STRUCTURE_TYPE_PIPELINE_LAYOUT_CREATE_INFO;
  685. layout_info.setLayoutCount = 1;
  686. layout_info.pSetLayouts = set_layout;
  687. layout_info.pushConstantRangeCount = 1;
  688. layout_info.pPushConstantRanges = push_constants;
  689. VkResult err = vkCreatePipelineLayout(device, &layout_info, allocator, &g_PipelineLayout);
  690. check_vk_result(err);
  691. }
  692. static void ImGui_ImplVulkan_CreatePipeline(VkDevice device, const VkAllocationCallbacks* allocator, VkPipelineCache pipelineCache, VkRenderPass renderPass, VkSampleCountFlagBits MSAASamples, VkPipeline* pipeline, uint32_t subpass)
  693. {
  694. ImGui_ImplVulkan_CreateShaderModules(device, allocator);
  695. VkPipelineShaderStageCreateInfo stage[2] = {};
  696. stage[0].sType = VK_STRUCTURE_TYPE_PIPELINE_SHADER_STAGE_CREATE_INFO;
  697. stage[0].stage = VK_SHADER_STAGE_VERTEX_BIT;
  698. stage[0].module = g_ShaderModuleVert;
  699. stage[0].pName = "main";
  700. stage[1].sType = VK_STRUCTURE_TYPE_PIPELINE_SHADER_STAGE_CREATE_INFO;
  701. stage[1].stage = VK_SHADER_STAGE_FRAGMENT_BIT;
  702. stage[1].module = g_ShaderModuleFrag;
  703. stage[1].pName = "main";
  704. VkVertexInputBindingDescription binding_desc[1] = {};
  705. binding_desc[0].stride = sizeof(ImDrawVert);
  706. binding_desc[0].inputRate = VK_VERTEX_INPUT_RATE_VERTEX;
  707. VkVertexInputAttributeDescription attribute_desc[3] = {};
  708. attribute_desc[0].location = 0;
  709. attribute_desc[0].binding = binding_desc[0].binding;
  710. attribute_desc[0].format = VK_FORMAT_R32G32_SFLOAT;
  711. attribute_desc[0].offset = IM_OFFSETOF(ImDrawVert, pos);
  712. attribute_desc[1].location = 1;
  713. attribute_desc[1].binding = binding_desc[0].binding;
  714. attribute_desc[1].format = VK_FORMAT_R32G32_SFLOAT;
  715. attribute_desc[1].offset = IM_OFFSETOF(ImDrawVert, uv);
  716. attribute_desc[2].location = 2;
  717. attribute_desc[2].binding = binding_desc[0].binding;
  718. attribute_desc[2].format = VK_FORMAT_R8G8B8A8_UNORM;
  719. attribute_desc[2].offset = IM_OFFSETOF(ImDrawVert, col);
  720. VkPipelineVertexInputStateCreateInfo vertex_info = {};
  721. vertex_info.sType = VK_STRUCTURE_TYPE_PIPELINE_VERTEX_INPUT_STATE_CREATE_INFO;
  722. vertex_info.vertexBindingDescriptionCount = 1;
  723. vertex_info.pVertexBindingDescriptions = binding_desc;
  724. vertex_info.vertexAttributeDescriptionCount = 3;
  725. vertex_info.pVertexAttributeDescriptions = attribute_desc;
  726. VkPipelineInputAssemblyStateCreateInfo ia_info = {};
  727. ia_info.sType = VK_STRUCTURE_TYPE_PIPELINE_INPUT_ASSEMBLY_STATE_CREATE_INFO;
  728. ia_info.topology = VK_PRIMITIVE_TOPOLOGY_TRIANGLE_LIST;
  729. VkPipelineViewportStateCreateInfo viewport_info = {};
  730. viewport_info.sType = VK_STRUCTURE_TYPE_PIPELINE_VIEWPORT_STATE_CREATE_INFO;
  731. viewport_info.viewportCount = 1;
  732. viewport_info.scissorCount = 1;
  733. VkPipelineRasterizationStateCreateInfo raster_info = {};
  734. raster_info.sType = VK_STRUCTURE_TYPE_PIPELINE_RASTERIZATION_STATE_CREATE_INFO;
  735. raster_info.polygonMode = VK_POLYGON_MODE_FILL;
  736. raster_info.cullMode = VK_CULL_MODE_NONE;
  737. raster_info.frontFace = VK_FRONT_FACE_COUNTER_CLOCKWISE;
  738. raster_info.lineWidth = 1.0f;
  739. VkPipelineMultisampleStateCreateInfo ms_info = {};
  740. ms_info.sType = VK_STRUCTURE_TYPE_PIPELINE_MULTISAMPLE_STATE_CREATE_INFO;
  741. ms_info.rasterizationSamples = (MSAASamples != 0) ? MSAASamples : VK_SAMPLE_COUNT_1_BIT;
  742. VkPipelineColorBlendAttachmentState color_attachment[1] = {};
  743. color_attachment[0].blendEnable = VK_TRUE;
  744. color_attachment[0].srcColorBlendFactor = VK_BLEND_FACTOR_SRC_ALPHA;
  745. color_attachment[0].dstColorBlendFactor = VK_BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  746. color_attachment[0].colorBlendOp = VK_BLEND_OP_ADD;
  747. color_attachment[0].srcAlphaBlendFactor = VK_BLEND_FACTOR_ONE_MINUS_SRC_ALPHA;
  748. color_attachment[0].dstAlphaBlendFactor = VK_BLEND_FACTOR_ZERO;
  749. color_attachment[0].alphaBlendOp = VK_BLEND_OP_ADD;
  750. color_attachment[0].colorWriteMask = VK_COLOR_COMPONENT_R_BIT | VK_COLOR_COMPONENT_G_BIT | VK_COLOR_COMPONENT_B_BIT | VK_COLOR_COMPONENT_A_BIT;
  751. VkPipelineDepthStencilStateCreateInfo depth_info = {};
  752. depth_info.sType = VK_STRUCTURE_TYPE_PIPELINE_DEPTH_STENCIL_STATE_CREATE_INFO;
  753. VkPipelineColorBlendStateCreateInfo blend_info = {};
  754. blend_info.sType = VK_STRUCTURE_TYPE_PIPELINE_COLOR_BLEND_STATE_CREATE_INFO;
  755. blend_info.attachmentCount = 1;
  756. blend_info.pAttachments = color_attachment;
  757. VkDynamicState dynamic_states[2] = { VK_DYNAMIC_STATE_VIEWPORT, VK_DYNAMIC_STATE_SCISSOR };
  758. VkPipelineDynamicStateCreateInfo dynamic_state = {};
  759. dynamic_state.sType = VK_STRUCTURE_TYPE_PIPELINE_DYNAMIC_STATE_CREATE_INFO;
  760. dynamic_state.dynamicStateCount = (uint32_t)IM_ARRAYSIZE(dynamic_states);
  761. dynamic_state.pDynamicStates = dynamic_states;
  762. ImGui_ImplVulkan_CreatePipelineLayout(device, allocator);
  763. VkGraphicsPipelineCreateInfo info = {};
  764. info.sType = VK_STRUCTURE_TYPE_GRAPHICS_PIPELINE_CREATE_INFO;
  765. info.flags = g_PipelineCreateFlags;
  766. info.stageCount = 2;
  767. info.pStages = stage;
  768. info.pVertexInputState = &vertex_info;
  769. info.pInputAssemblyState = &ia_info;
  770. info.pViewportState = &viewport_info;
  771. info.pRasterizationState = &raster_info;
  772. info.pMultisampleState = &ms_info;
  773. info.pDepthStencilState = &depth_info;
  774. info.pColorBlendState = &blend_info;
  775. info.pDynamicState = &dynamic_state;
  776. info.layout = g_PipelineLayout;
  777. info.renderPass = renderPass;
  778. info.subpass = subpass;
  779. VkResult err = vkCreateGraphicsPipelines(device, pipelineCache, 1, &info, allocator, pipeline);
  780. check_vk_result(err);
  781. }
  782. bool ImGui_ImplVulkan_CreateDeviceObjects()
  783. {
  784. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  785. VkResult err;
  786. if (!g_FontSampler)
  787. {
  788. VkSamplerCreateInfo info = {};
  789. info.sType = VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO;
  790. info.magFilter = VK_FILTER_LINEAR;
  791. info.minFilter = VK_FILTER_LINEAR;
  792. info.mipmapMode = VK_SAMPLER_MIPMAP_MODE_LINEAR;
  793. info.addressModeU = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  794. info.addressModeV = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  795. info.addressModeW = VK_SAMPLER_ADDRESS_MODE_REPEAT;
  796. info.minLod = -1000;
  797. info.maxLod = 1000;
  798. info.maxAnisotropy = 1.0f;
  799. err = vkCreateSampler(v->Device, &info, v->Allocator, &g_FontSampler);
  800. check_vk_result(err);
  801. }
  802. if (!g_DescriptorSetLayout)
  803. {
  804. VkSampler sampler[1] = {g_FontSampler};
  805. VkDescriptorSetLayoutBinding binding[1] = {};
  806. binding[0].descriptorType = VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER;
  807. binding[0].descriptorCount = 1;
  808. binding[0].stageFlags = VK_SHADER_STAGE_FRAGMENT_BIT;
  809. binding[0].pImmutableSamplers = sampler;
  810. VkDescriptorSetLayoutCreateInfo info = {};
  811. info.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_LAYOUT_CREATE_INFO;
  812. info.bindingCount = 1;
  813. info.pBindings = binding;
  814. err = vkCreateDescriptorSetLayout(v->Device, &info, v->Allocator, &g_DescriptorSetLayout);
  815. check_vk_result(err);
  816. }
  817. // Create Descriptor Set:
  818. {
  819. VkDescriptorSetAllocateInfo alloc_info = {};
  820. alloc_info.sType = VK_STRUCTURE_TYPE_DESCRIPTOR_SET_ALLOCATE_INFO;
  821. alloc_info.descriptorPool = v->DescriptorPool;
  822. alloc_info.descriptorSetCount = 1;
  823. alloc_info.pSetLayouts = &g_DescriptorSetLayout;
  824. err = vkAllocateDescriptorSets(v->Device, &alloc_info, &g_DescriptorSet);
  825. check_vk_result(err);
  826. }
  827. if (!g_PipelineLayout)
  828. {
  829. // Constants: we are using 'vec2 offset' and 'vec2 scale' instead of a full 3d projection matrix
  830. VkPushConstantRange push_constants[1] = {};
  831. push_constants[0].stageFlags = VK_SHADER_STAGE_VERTEX_BIT;
  832. push_constants[0].offset = sizeof(float) * 0;
  833. push_constants[0].size = sizeof(float) * 4;
  834. VkDescriptorSetLayout set_layout[1] = { g_DescriptorSetLayout };
  835. VkPipelineLayoutCreateInfo layout_info = {};
  836. layout_info.sType = VK_STRUCTURE_TYPE_PIPELINE_LAYOUT_CREATE_INFO;
  837. layout_info.setLayoutCount = 1;
  838. layout_info.pSetLayouts = set_layout;
  839. layout_info.pushConstantRangeCount = 1;
  840. layout_info.pPushConstantRanges = push_constants;
  841. err = vkCreatePipelineLayout(v->Device, &layout_info, v->Allocator, &g_PipelineLayout);
  842. check_vk_result(err);
  843. }
  844. ImGui_ImplVulkan_CreatePipeline(v->Device, v->Allocator, v->PipelineCache, g_RenderPass, v->MSAASamples, &g_Pipeline, g_Subpass);
  845. return true;
  846. }
  847. void ImGui_ImplVulkan_DestroyFontUploadObjects()
  848. {
  849. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  850. if (g_UploadBuffer)
  851. {
  852. vkDestroyBuffer(v->Device, g_UploadBuffer, v->Allocator);
  853. g_UploadBuffer = VK_NULL_HANDLE;
  854. }
  855. if (g_UploadBufferMemory)
  856. {
  857. vkFreeMemory(v->Device, g_UploadBufferMemory, v->Allocator);
  858. g_UploadBufferMemory = VK_NULL_HANDLE;
  859. }
  860. }
  861. void ImGui_ImplVulkan_DestroyDeviceObjects()
  862. {
  863. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  864. ImGui_ImplVulkanH_DestroyWindowRenderBuffers(v->Device, &g_MainWindowRenderBuffers, v->Allocator);
  865. ImGui_ImplVulkan_DestroyFontUploadObjects();
  866. if (g_ShaderModuleVert) { vkDestroyShaderModule(v->Device, g_ShaderModuleVert, v->Allocator); g_ShaderModuleVert = VK_NULL_HANDLE; }
  867. if (g_ShaderModuleFrag) { vkDestroyShaderModule(v->Device, g_ShaderModuleFrag, v->Allocator); g_ShaderModuleFrag = VK_NULL_HANDLE; }
  868. if (g_FontView) { vkDestroyImageView(v->Device, g_FontView, v->Allocator); g_FontView = VK_NULL_HANDLE; }
  869. if (g_FontImage) { vkDestroyImage(v->Device, g_FontImage, v->Allocator); g_FontImage = VK_NULL_HANDLE; }
  870. if (g_FontMemory) { vkFreeMemory(v->Device, g_FontMemory, v->Allocator); g_FontMemory = VK_NULL_HANDLE; }
  871. if (g_FontSampler) { vkDestroySampler(v->Device, g_FontSampler, v->Allocator); g_FontSampler = VK_NULL_HANDLE; }
  872. if (g_DescriptorSetLayout) { vkDestroyDescriptorSetLayout(v->Device, g_DescriptorSetLayout, v->Allocator); g_DescriptorSetLayout = VK_NULL_HANDLE; }
  873. if (g_PipelineLayout) { vkDestroyPipelineLayout(v->Device, g_PipelineLayout, v->Allocator); g_PipelineLayout = VK_NULL_HANDLE; }
  874. if (g_Pipeline) { vkDestroyPipeline(v->Device, g_Pipeline, v->Allocator); g_Pipeline = VK_NULL_HANDLE; }
  875. }
  876. bool ImGui_ImplVulkan_LoadFunctions(PFN_vkVoidFunction(*loader_func)(const char* function_name, void* user_data), void* user_data)
  877. {
  878. // Load function pointers
  879. // You can use the default Vulkan loader using:
  880. // ImGui_ImplVulkan_LoadFunctions([](const char* function_name, void*) { return vkGetInstanceProcAddr(your_vk_isntance, function_name); });
  881. // But this would be equivalent to not setting VK_NO_PROTOTYPES.
  882. #ifdef VK_NO_PROTOTYPES
  883. #define IMGUI_VULKAN_FUNC_LOAD(func) \
  884. func = reinterpret_cast<decltype(func)>(loader_func(#func, user_data)); \
  885. if (func == NULL) \
  886. return false;
  887. IMGUI_VULKAN_FUNC_MAP(IMGUI_VULKAN_FUNC_LOAD)
  888. #undef IMGUI_VULKAN_FUNC_LOAD
  889. #else
  890. IM_UNUSED(loader_func);
  891. IM_UNUSED(user_data);
  892. #endif
  893. g_FunctionsLoaded = true;
  894. return true;
  895. }
  896. bool ImGui_ImplVulkan_Init(ImGui_ImplVulkan_InitInfo* info, VkRenderPass render_pass)
  897. {
  898. IM_ASSERT(g_FunctionsLoaded && "Need to call ImGui_ImplVulkan_LoadFunctions() if IMGUI_IMPL_VULKAN_NO_PROTOTYPES or VK_NO_PROTOTYPES are set!");
  899. // Setup backend capabilities flags
  900. ImGuiIO& io = ImGui::GetIO();
  901. io.BackendRendererName = "imgui_impl_vulkan";
  902. io.BackendFlags |= ImGuiBackendFlags_RendererHasVtxOffset; // We can honor the ImDrawCmd::VtxOffset field, allowing for large meshes.
  903. IM_ASSERT(info->Instance != VK_NULL_HANDLE);
  904. IM_ASSERT(info->PhysicalDevice != VK_NULL_HANDLE);
  905. IM_ASSERT(info->Device != VK_NULL_HANDLE);
  906. IM_ASSERT(info->Queue != VK_NULL_HANDLE);
  907. IM_ASSERT(info->DescriptorPool != VK_NULL_HANDLE);
  908. IM_ASSERT(info->MinImageCount >= 2);
  909. IM_ASSERT(info->ImageCount >= info->MinImageCount);
  910. IM_ASSERT(render_pass != VK_NULL_HANDLE);
  911. g_VulkanInitInfo = *info;
  912. g_RenderPass = render_pass;
  913. g_Subpass = info->Subpass;
  914. ImGui_ImplVulkan_CreateDeviceObjects();
  915. return true;
  916. }
  917. void ImGui_ImplVulkan_Shutdown()
  918. {
  919. ImGui_ImplVulkan_DestroyDeviceObjects();
  920. }
  921. void ImGui_ImplVulkan_NewFrame()
  922. {
  923. }
  924. void ImGui_ImplVulkan_SetMinImageCount(uint32_t min_image_count)
  925. {
  926. IM_ASSERT(min_image_count >= 2);
  927. if (g_VulkanInitInfo.MinImageCount == min_image_count)
  928. return;
  929. ImGui_ImplVulkan_InitInfo* v = &g_VulkanInitInfo;
  930. VkResult err = vkDeviceWaitIdle(v->Device);
  931. check_vk_result(err);
  932. ImGui_ImplVulkanH_DestroyWindowRenderBuffers(v->Device, &g_MainWindowRenderBuffers, v->Allocator);
  933. g_VulkanInitInfo.MinImageCount = min_image_count;
  934. }
  935. //-------------------------------------------------------------------------
  936. // Internal / Miscellaneous Vulkan Helpers
  937. // (Used by example's main.cpp. Used by multi-viewport features. PROBABLY NOT used by your own app.)
  938. //-------------------------------------------------------------------------
  939. // You probably do NOT need to use or care about those functions.
  940. // Those functions only exist because:
  941. // 1) they facilitate the readability and maintenance of the multiple main.cpp examples files.
  942. // 2) the upcoming multi-viewport feature will need them internally.
  943. // Generally we avoid exposing any kind of superfluous high-level helpers in the backends,
  944. // but it is too much code to duplicate everywhere so we exceptionally expose them.
  945. //
  946. // Your engine/app will likely _already_ have code to setup all that stuff (swap chain, render pass, frame buffers, etc.).
  947. // You may read this code to learn about Vulkan, but it is recommended you use you own custom tailored code to do equivalent work.
  948. // (The ImGui_ImplVulkanH_XXX functions do not interact with any of the state used by the regular ImGui_ImplVulkan_XXX functions)
  949. //-------------------------------------------------------------------------
  950. VkSurfaceFormatKHR ImGui_ImplVulkanH_SelectSurfaceFormat(VkPhysicalDevice physical_device, VkSurfaceKHR surface, const VkFormat* request_formats, int request_formats_count, VkColorSpaceKHR request_color_space)
  951. {
  952. IM_ASSERT(g_FunctionsLoaded && "Need to call ImGui_ImplVulkan_LoadFunctions() if IMGUI_IMPL_VULKAN_NO_PROTOTYPES or VK_NO_PROTOTYPES are set!");
  953. IM_ASSERT(request_formats != NULL);
  954. IM_ASSERT(request_formats_count > 0);
  955. // Per Spec Format and View Format are expected to be the same unless VK_IMAGE_CREATE_MUTABLE_BIT was set at image creation
  956. // Assuming that the default behavior is without setting this bit, there is no need for separate Swapchain image and image view format
  957. // Additionally several new color spaces were introduced with Vulkan Spec v1.0.40,
  958. // hence we must make sure that a format with the mostly available color space, VK_COLOR_SPACE_SRGB_NONLINEAR_KHR, is found and used.
  959. uint32_t avail_count;
  960. vkGetPhysicalDeviceSurfaceFormatsKHR(physical_device, surface, &avail_count, NULL);
  961. ImVector<VkSurfaceFormatKHR> avail_format;
  962. avail_format.resize((int)avail_count);
  963. vkGetPhysicalDeviceSurfaceFormatsKHR(physical_device, surface, &avail_count, avail_format.Data);
  964. // First check if only one format, VK_FORMAT_UNDEFINED, is available, which would imply that any format is available
  965. if (avail_count == 1)
  966. {
  967. if (avail_format[0].format == VK_FORMAT_UNDEFINED)
  968. {
  969. VkSurfaceFormatKHR ret;
  970. ret.format = request_formats[0];
  971. ret.colorSpace = request_color_space;
  972. return ret;
  973. }
  974. else
  975. {
  976. // No point in searching another format
  977. return avail_format[0];
  978. }
  979. }
  980. else
  981. {
  982. // Request several formats, the first found will be used
  983. for (int request_i = 0; request_i < request_formats_count; request_i++)
  984. for (uint32_t avail_i = 0; avail_i < avail_count; avail_i++)
  985. if (avail_format[avail_i].format == request_formats[request_i] && avail_format[avail_i].colorSpace == request_color_space)
  986. return avail_format[avail_i];
  987. // If none of the requested image formats could be found, use the first available
  988. return avail_format[0];
  989. }
  990. }
  991. VkPresentModeKHR ImGui_ImplVulkanH_SelectPresentMode(VkPhysicalDevice physical_device, VkSurfaceKHR surface, const VkPresentModeKHR* request_modes, int request_modes_count)
  992. {
  993. IM_ASSERT(g_FunctionsLoaded && "Need to call ImGui_ImplVulkan_LoadFunctions() if IMGUI_IMPL_VULKAN_NO_PROTOTYPES or VK_NO_PROTOTYPES are set!");
  994. IM_ASSERT(request_modes != NULL);
  995. IM_ASSERT(request_modes_count > 0);
  996. // Request a certain mode and confirm that it is available. If not use VK_PRESENT_MODE_FIFO_KHR which is mandatory
  997. uint32_t avail_count = 0;
  998. vkGetPhysicalDeviceSurfacePresentModesKHR(physical_device, surface, &avail_count, NULL);
  999. ImVector<VkPresentModeKHR> avail_modes;
  1000. avail_modes.resize((int)avail_count);
  1001. vkGetPhysicalDeviceSurfacePresentModesKHR(physical_device, surface, &avail_count, avail_modes.Data);
  1002. //for (uint32_t avail_i = 0; avail_i < avail_count; avail_i++)
  1003. // printf("[vulkan] avail_modes[%d] = %d\n", avail_i, avail_modes[avail_i]);
  1004. for (int request_i = 0; request_i < request_modes_count; request_i++)
  1005. for (uint32_t avail_i = 0; avail_i < avail_count; avail_i++)
  1006. if (request_modes[request_i] == avail_modes[avail_i])
  1007. return request_modes[request_i];
  1008. return VK_PRESENT_MODE_FIFO_KHR; // Always available
  1009. }
  1010. void ImGui_ImplVulkanH_CreateWindowCommandBuffers(VkPhysicalDevice physical_device, VkDevice device, ImGui_ImplVulkanH_Window* wd, uint32_t queue_family, const VkAllocationCallbacks* allocator)
  1011. {
  1012. IM_ASSERT(physical_device != VK_NULL_HANDLE && device != VK_NULL_HANDLE);
  1013. (void)physical_device;
  1014. (void)allocator;
  1015. // Create Command Buffers
  1016. VkResult err;
  1017. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1018. {
  1019. ImGui_ImplVulkanH_Frame* fd = &wd->Frames[i];
  1020. ImGui_ImplVulkanH_FrameSemaphores* fsd = &wd->FrameSemaphores[i];
  1021. {
  1022. VkCommandPoolCreateInfo info = {};
  1023. info.sType = VK_STRUCTURE_TYPE_COMMAND_POOL_CREATE_INFO;
  1024. info.flags = VK_COMMAND_POOL_CREATE_RESET_COMMAND_BUFFER_BIT;
  1025. info.queueFamilyIndex = queue_family;
  1026. err = vkCreateCommandPool(device, &info, allocator, &fd->CommandPool);
  1027. check_vk_result(err);
  1028. }
  1029. {
  1030. VkCommandBufferAllocateInfo info = {};
  1031. info.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
  1032. info.commandPool = fd->CommandPool;
  1033. info.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
  1034. info.commandBufferCount = 1;
  1035. err = vkAllocateCommandBuffers(device, &info, &fd->CommandBuffer);
  1036. check_vk_result(err);
  1037. }
  1038. {
  1039. VkFenceCreateInfo info = {};
  1040. info.sType = VK_STRUCTURE_TYPE_FENCE_CREATE_INFO;
  1041. info.flags = VK_FENCE_CREATE_SIGNALED_BIT;
  1042. err = vkCreateFence(device, &info, allocator, &fd->Fence);
  1043. check_vk_result(err);
  1044. }
  1045. {
  1046. VkSemaphoreCreateInfo info = {};
  1047. info.sType = VK_STRUCTURE_TYPE_SEMAPHORE_CREATE_INFO;
  1048. err = vkCreateSemaphore(device, &info, allocator, &fsd->ImageAcquiredSemaphore);
  1049. check_vk_result(err);
  1050. err = vkCreateSemaphore(device, &info, allocator, &fsd->RenderCompleteSemaphore);
  1051. check_vk_result(err);
  1052. }
  1053. }
  1054. }
  1055. int ImGui_ImplVulkanH_GetMinImageCountFromPresentMode(VkPresentModeKHR present_mode)
  1056. {
  1057. if (present_mode == VK_PRESENT_MODE_MAILBOX_KHR)
  1058. return 3;
  1059. if (present_mode == VK_PRESENT_MODE_FIFO_KHR || present_mode == VK_PRESENT_MODE_FIFO_RELAXED_KHR)
  1060. return 2;
  1061. if (present_mode == VK_PRESENT_MODE_IMMEDIATE_KHR)
  1062. return 1;
  1063. IM_ASSERT(0);
  1064. return 1;
  1065. }
  1066. // Also destroy old swap chain and in-flight frames data, if any.
  1067. void ImGui_ImplVulkanH_CreateWindowSwapChain(VkPhysicalDevice physical_device, VkDevice device, ImGui_ImplVulkanH_Window* wd, const VkAllocationCallbacks* allocator, int w, int h, uint32_t min_image_count)
  1068. {
  1069. VkResult err;
  1070. VkSwapchainKHR old_swapchain = wd->Swapchain;
  1071. wd->Swapchain = NULL;
  1072. err = vkDeviceWaitIdle(device);
  1073. check_vk_result(err);
  1074. // We don't use ImGui_ImplVulkanH_DestroyWindow() because we want to preserve the old swapchain to create the new one.
  1075. // Destroy old Framebuffer
  1076. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1077. {
  1078. ImGui_ImplVulkanH_DestroyFrame(device, &wd->Frames[i], allocator);
  1079. ImGui_ImplVulkanH_DestroyFrameSemaphores(device, &wd->FrameSemaphores[i], allocator);
  1080. }
  1081. IM_FREE(wd->Frames);
  1082. IM_FREE(wd->FrameSemaphores);
  1083. wd->Frames = NULL;
  1084. wd->FrameSemaphores = NULL;
  1085. wd->ImageCount = 0;
  1086. if (wd->RenderPass)
  1087. vkDestroyRenderPass(device, wd->RenderPass, allocator);
  1088. if (wd->Pipeline)
  1089. vkDestroyPipeline(device, wd->Pipeline, allocator);
  1090. // If min image count was not specified, request different count of images dependent on selected present mode
  1091. if (min_image_count == 0)
  1092. min_image_count = ImGui_ImplVulkanH_GetMinImageCountFromPresentMode(wd->PresentMode);
  1093. // Create Swapchain
  1094. {
  1095. VkSwapchainCreateInfoKHR info = {};
  1096. info.sType = VK_STRUCTURE_TYPE_SWAPCHAIN_CREATE_INFO_KHR;
  1097. info.surface = wd->Surface;
  1098. info.minImageCount = min_image_count;
  1099. info.imageFormat = wd->SurfaceFormat.format;
  1100. info.imageColorSpace = wd->SurfaceFormat.colorSpace;
  1101. info.imageArrayLayers = 1;
  1102. info.imageUsage = VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT;
  1103. info.imageSharingMode = VK_SHARING_MODE_EXCLUSIVE; // Assume that graphics family == present family
  1104. info.preTransform = VK_SURFACE_TRANSFORM_IDENTITY_BIT_KHR;
  1105. info.compositeAlpha = VK_COMPOSITE_ALPHA_OPAQUE_BIT_KHR;
  1106. info.presentMode = wd->PresentMode;
  1107. info.clipped = VK_TRUE;
  1108. info.oldSwapchain = old_swapchain;
  1109. VkSurfaceCapabilitiesKHR cap;
  1110. err = vkGetPhysicalDeviceSurfaceCapabilitiesKHR(physical_device, wd->Surface, &cap);
  1111. check_vk_result(err);
  1112. if (info.minImageCount < cap.minImageCount)
  1113. info.minImageCount = cap.minImageCount;
  1114. else if (cap.maxImageCount != 0 && info.minImageCount > cap.maxImageCount)
  1115. info.minImageCount = cap.maxImageCount;
  1116. if (cap.currentExtent.width == 0xffffffff)
  1117. {
  1118. info.imageExtent.width = wd->Width = w;
  1119. info.imageExtent.height = wd->Height = h;
  1120. }
  1121. else
  1122. {
  1123. info.imageExtent.width = wd->Width = cap.currentExtent.width;
  1124. info.imageExtent.height = wd->Height = cap.currentExtent.height;
  1125. }
  1126. err = vkCreateSwapchainKHR(device, &info, allocator, &wd->Swapchain);
  1127. check_vk_result(err);
  1128. err = vkGetSwapchainImagesKHR(device, wd->Swapchain, &wd->ImageCount, NULL);
  1129. check_vk_result(err);
  1130. VkImage backbuffers[16] = {};
  1131. IM_ASSERT(wd->ImageCount >= min_image_count);
  1132. IM_ASSERT(wd->ImageCount < IM_ARRAYSIZE(backbuffers));
  1133. err = vkGetSwapchainImagesKHR(device, wd->Swapchain, &wd->ImageCount, backbuffers);
  1134. check_vk_result(err);
  1135. IM_ASSERT(wd->Frames == NULL);
  1136. wd->Frames = (ImGui_ImplVulkanH_Frame*)IM_ALLOC(sizeof(ImGui_ImplVulkanH_Frame) * wd->ImageCount);
  1137. wd->FrameSemaphores = (ImGui_ImplVulkanH_FrameSemaphores*)IM_ALLOC(sizeof(ImGui_ImplVulkanH_FrameSemaphores) * wd->ImageCount);
  1138. memset(wd->Frames, 0, sizeof(wd->Frames[0]) * wd->ImageCount);
  1139. memset(wd->FrameSemaphores, 0, sizeof(wd->FrameSemaphores[0]) * wd->ImageCount);
  1140. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1141. wd->Frames[i].Backbuffer = backbuffers[i];
  1142. }
  1143. if (old_swapchain)
  1144. vkDestroySwapchainKHR(device, old_swapchain, allocator);
  1145. // Create the Render Pass
  1146. {
  1147. VkAttachmentDescription attachment = {};
  1148. attachment.format = wd->SurfaceFormat.format;
  1149. attachment.samples = VK_SAMPLE_COUNT_1_BIT;
  1150. attachment.loadOp = wd->ClearEnable ? VK_ATTACHMENT_LOAD_OP_CLEAR : VK_ATTACHMENT_LOAD_OP_DONT_CARE;
  1151. attachment.storeOp = VK_ATTACHMENT_STORE_OP_STORE;
  1152. attachment.stencilLoadOp = VK_ATTACHMENT_LOAD_OP_DONT_CARE;
  1153. attachment.stencilStoreOp = VK_ATTACHMENT_STORE_OP_DONT_CARE;
  1154. attachment.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
  1155. attachment.finalLayout = VK_IMAGE_LAYOUT_PRESENT_SRC_KHR;
  1156. VkAttachmentReference color_attachment = {};
  1157. color_attachment.attachment = 0;
  1158. color_attachment.layout = VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL;
  1159. VkSubpassDescription subpass = {};
  1160. subpass.pipelineBindPoint = VK_PIPELINE_BIND_POINT_GRAPHICS;
  1161. subpass.colorAttachmentCount = 1;
  1162. subpass.pColorAttachments = &color_attachment;
  1163. VkSubpassDependency dependency = {};
  1164. dependency.srcSubpass = VK_SUBPASS_EXTERNAL;
  1165. dependency.dstSubpass = 0;
  1166. dependency.srcStageMask = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
  1167. dependency.dstStageMask = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
  1168. dependency.srcAccessMask = 0;
  1169. dependency.dstAccessMask = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT;
  1170. VkRenderPassCreateInfo info = {};
  1171. info.sType = VK_STRUCTURE_TYPE_RENDER_PASS_CREATE_INFO;
  1172. info.attachmentCount = 1;
  1173. info.pAttachments = &attachment;
  1174. info.subpassCount = 1;
  1175. info.pSubpasses = &subpass;
  1176. info.dependencyCount = 1;
  1177. info.pDependencies = &dependency;
  1178. err = vkCreateRenderPass(device, &info, allocator, &wd->RenderPass);
  1179. check_vk_result(err);
  1180. // We do not create a pipeline by default as this is also used by examples' main.cpp,
  1181. // but secondary viewport in multi-viewport mode may want to create one with:
  1182. //ImGui_ImplVulkan_CreatePipeline(device, allocator, VK_NULL_HANDLE, wd->RenderPass, VK_SAMPLE_COUNT_1_BIT, &wd->Pipeline, g_Subpass);
  1183. }
  1184. // Create The Image Views
  1185. {
  1186. VkImageViewCreateInfo info = {};
  1187. info.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
  1188. info.viewType = VK_IMAGE_VIEW_TYPE_2D;
  1189. info.format = wd->SurfaceFormat.format;
  1190. info.components.r = VK_COMPONENT_SWIZZLE_R;
  1191. info.components.g = VK_COMPONENT_SWIZZLE_G;
  1192. info.components.b = VK_COMPONENT_SWIZZLE_B;
  1193. info.components.a = VK_COMPONENT_SWIZZLE_A;
  1194. VkImageSubresourceRange image_range = { VK_IMAGE_ASPECT_COLOR_BIT, 0, 1, 0, 1 };
  1195. info.subresourceRange = image_range;
  1196. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1197. {
  1198. ImGui_ImplVulkanH_Frame* fd = &wd->Frames[i];
  1199. info.image = fd->Backbuffer;
  1200. err = vkCreateImageView(device, &info, allocator, &fd->BackbufferView);
  1201. check_vk_result(err);
  1202. }
  1203. }
  1204. // Create Framebuffer
  1205. {
  1206. VkImageView attachment[1];
  1207. VkFramebufferCreateInfo info = {};
  1208. info.sType = VK_STRUCTURE_TYPE_FRAMEBUFFER_CREATE_INFO;
  1209. info.renderPass = wd->RenderPass;
  1210. info.attachmentCount = 1;
  1211. info.pAttachments = attachment;
  1212. info.width = wd->Width;
  1213. info.height = wd->Height;
  1214. info.layers = 1;
  1215. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1216. {
  1217. ImGui_ImplVulkanH_Frame* fd = &wd->Frames[i];
  1218. attachment[0] = fd->BackbufferView;
  1219. err = vkCreateFramebuffer(device, &info, allocator, &fd->Framebuffer);
  1220. check_vk_result(err);
  1221. }
  1222. }
  1223. }
  1224. // Create or resize window
  1225. void ImGui_ImplVulkanH_CreateOrResizeWindow(VkInstance instance, VkPhysicalDevice physical_device, VkDevice device, ImGui_ImplVulkanH_Window* wd, uint32_t queue_family, const VkAllocationCallbacks* allocator, int width, int height, uint32_t min_image_count)
  1226. {
  1227. IM_ASSERT(g_FunctionsLoaded && "Need to call ImGui_ImplVulkan_LoadFunctions() if IMGUI_IMPL_VULKAN_NO_PROTOTYPES or VK_NO_PROTOTYPES are set!");
  1228. (void)instance;
  1229. ImGui_ImplVulkanH_CreateWindowSwapChain(physical_device, device, wd, allocator, width, height, min_image_count);
  1230. ImGui_ImplVulkanH_CreateWindowCommandBuffers(physical_device, device, wd, queue_family, allocator);
  1231. }
  1232. void ImGui_ImplVulkanH_DestroyWindow(VkInstance instance, VkDevice device, ImGui_ImplVulkanH_Window* wd, const VkAllocationCallbacks* allocator)
  1233. {
  1234. vkDeviceWaitIdle(device); // FIXME: We could wait on the Queue if we had the queue in wd-> (otherwise VulkanH functions can't use globals)
  1235. //vkQueueWaitIdle(g_Queue);
  1236. for (uint32_t i = 0; i < wd->ImageCount; i++)
  1237. {
  1238. ImGui_ImplVulkanH_DestroyFrame(device, &wd->Frames[i], allocator);
  1239. ImGui_ImplVulkanH_DestroyFrameSemaphores(device, &wd->FrameSemaphores[i], allocator);
  1240. }
  1241. IM_FREE(wd->Frames);
  1242. IM_FREE(wd->FrameSemaphores);
  1243. wd->Frames = NULL;
  1244. wd->FrameSemaphores = NULL;
  1245. vkDestroyPipeline(device, wd->Pipeline, allocator);
  1246. vkDestroyRenderPass(device, wd->RenderPass, allocator);
  1247. vkDestroySwapchainKHR(device, wd->Swapchain, allocator);
  1248. vkDestroySurfaceKHR(instance, wd->Surface, allocator);
  1249. *wd = ImGui_ImplVulkanH_Window();
  1250. }
  1251. void ImGui_ImplVulkanH_DestroyFrame(VkDevice device, ImGui_ImplVulkanH_Frame* fd, const VkAllocationCallbacks* allocator)
  1252. {
  1253. vkDestroyFence(device, fd->Fence, allocator);
  1254. vkFreeCommandBuffers(device, fd->CommandPool, 1, &fd->CommandBuffer);
  1255. vkDestroyCommandPool(device, fd->CommandPool, allocator);
  1256. fd->Fence = VK_NULL_HANDLE;
  1257. fd->CommandBuffer = VK_NULL_HANDLE;
  1258. fd->CommandPool = VK_NULL_HANDLE;
  1259. vkDestroyImageView(device, fd->BackbufferView, allocator);
  1260. vkDestroyFramebuffer(device, fd->Framebuffer, allocator);
  1261. }
  1262. void ImGui_ImplVulkanH_DestroyFrameSemaphores(VkDevice device, ImGui_ImplVulkanH_FrameSemaphores* fsd, const VkAllocationCallbacks* allocator)
  1263. {
  1264. vkDestroySemaphore(device, fsd->ImageAcquiredSemaphore, allocator);
  1265. vkDestroySemaphore(device, fsd->RenderCompleteSemaphore, allocator);
  1266. fsd->ImageAcquiredSemaphore = fsd->RenderCompleteSemaphore = VK_NULL_HANDLE;
  1267. }
  1268. void ImGui_ImplVulkanH_DestroyFrameRenderBuffers(VkDevice device, ImGui_ImplVulkanH_FrameRenderBuffers* buffers, const VkAllocationCallbacks* allocator)
  1269. {
  1270. if (buffers->VertexBuffer) { vkDestroyBuffer(device, buffers->VertexBuffer, allocator); buffers->VertexBuffer = VK_NULL_HANDLE; }
  1271. if (buffers->VertexBufferMemory) { vkFreeMemory(device, buffers->VertexBufferMemory, allocator); buffers->VertexBufferMemory = VK_NULL_HANDLE; }
  1272. if (buffers->IndexBuffer) { vkDestroyBuffer(device, buffers->IndexBuffer, allocator); buffers->IndexBuffer = VK_NULL_HANDLE; }
  1273. if (buffers->IndexBufferMemory) { vkFreeMemory(device, buffers->IndexBufferMemory, allocator); buffers->IndexBufferMemory = VK_NULL_HANDLE; }
  1274. buffers->VertexBufferSize = 0;
  1275. buffers->IndexBufferSize = 0;
  1276. }
  1277. void ImGui_ImplVulkanH_DestroyWindowRenderBuffers(VkDevice device, ImGui_ImplVulkanH_WindowRenderBuffers* buffers, const VkAllocationCallbacks* allocator)
  1278. {
  1279. for (uint32_t n = 0; n < buffers->Count; n++)
  1280. ImGui_ImplVulkanH_DestroyFrameRenderBuffers(device, &buffers->FrameRenderBuffers[n], allocator);
  1281. IM_FREE(buffers->FrameRenderBuffers);
  1282. buffers->FrameRenderBuffers = NULL;
  1283. buffers->Index = 0;
  1284. buffers->Count = 0;
  1285. }