NvGpuEngine3d.cs 37 KB

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  1. using Ryujinx.Common;
  2. using Ryujinx.Graphics.Gal;
  3. using Ryujinx.Graphics.Memory;
  4. using Ryujinx.Graphics.Texture;
  5. using System;
  6. using System.Collections.Generic;
  7. namespace Ryujinx.Graphics
  8. {
  9. class NvGpuEngine3d : INvGpuEngine
  10. {
  11. public int[] Registers { get; private set; }
  12. private NvGpu Gpu;
  13. private Dictionary<int, NvGpuMethod> Methods;
  14. private struct ConstBuffer
  15. {
  16. public bool Enabled;
  17. public long Position;
  18. public int Size;
  19. }
  20. private ConstBuffer[][] ConstBuffers;
  21. private int CurrentInstance = 0;
  22. public NvGpuEngine3d(NvGpu Gpu)
  23. {
  24. this.Gpu = Gpu;
  25. Registers = new int[0xe00];
  26. Methods = new Dictionary<int, NvGpuMethod>();
  27. void AddMethod(int Meth, int Count, int Stride, NvGpuMethod Method)
  28. {
  29. while (Count-- > 0)
  30. {
  31. Methods.Add(Meth, Method);
  32. Meth += Stride;
  33. }
  34. }
  35. AddMethod(0x585, 1, 1, VertexEndGl);
  36. AddMethod(0x674, 1, 1, ClearBuffers);
  37. AddMethod(0x6c3, 1, 1, QueryControl);
  38. AddMethod(0x8e4, 16, 1, CbData);
  39. AddMethod(0x904, 5, 8, CbBind);
  40. ConstBuffers = new ConstBuffer[6][];
  41. for (int Index = 0; Index < ConstBuffers.Length; Index++)
  42. {
  43. ConstBuffers[Index] = new ConstBuffer[18];
  44. }
  45. //Ensure that all components are enabled by default.
  46. //FIXME: Is this correct?
  47. WriteRegister(NvGpuEngine3dReg.ColorMaskN, 0x1111);
  48. WriteRegister(NvGpuEngine3dReg.FrameBufferSrgb, 1);
  49. for (int Index = 0; Index < GalPipelineState.RenderTargetsCount; Index++)
  50. {
  51. WriteRegister(NvGpuEngine3dReg.IBlendNEquationRgb + Index * 8, (int)GalBlendEquation.FuncAdd);
  52. WriteRegister(NvGpuEngine3dReg.IBlendNFuncSrcRgb + Index * 8, (int)GalBlendFactor.One);
  53. WriteRegister(NvGpuEngine3dReg.IBlendNFuncDstRgb + Index * 8, (int)GalBlendFactor.Zero);
  54. WriteRegister(NvGpuEngine3dReg.IBlendNEquationAlpha + Index * 8, (int)GalBlendEquation.FuncAdd);
  55. WriteRegister(NvGpuEngine3dReg.IBlendNFuncSrcAlpha + Index * 8, (int)GalBlendFactor.One);
  56. WriteRegister(NvGpuEngine3dReg.IBlendNFuncDstAlpha + Index * 8, (int)GalBlendFactor.Zero);
  57. }
  58. }
  59. public void CallMethod(NvGpuVmm Vmm, GpuMethodCall MethCall)
  60. {
  61. if (Methods.TryGetValue(MethCall.Method, out NvGpuMethod Method))
  62. {
  63. Method(Vmm, MethCall);
  64. }
  65. else
  66. {
  67. WriteRegister(MethCall);
  68. }
  69. }
  70. private void VertexEndGl(NvGpuVmm Vmm, GpuMethodCall MethCall)
  71. {
  72. LockCaches();
  73. GalPipelineState State = new GalPipelineState();
  74. SetFrameBuffer(State);
  75. SetFrontFace(State);
  76. SetCullFace(State);
  77. SetDepth(State);
  78. SetStencil(State);
  79. SetBlending(State);
  80. SetColorMask(State);
  81. SetPrimitiveRestart(State);
  82. for (int FbIndex = 0; FbIndex < 8; FbIndex++)
  83. {
  84. SetFrameBuffer(Vmm, FbIndex);
  85. }
  86. SetZeta(Vmm);
  87. SetRenderTargets();
  88. long[] Keys = UploadShaders(Vmm);
  89. Gpu.Renderer.Shader.BindProgram();
  90. UploadTextures(Vmm, State, Keys);
  91. UploadConstBuffers(Vmm, State, Keys);
  92. UploadVertexArrays(Vmm, State);
  93. DispatchRender(Vmm, State);
  94. UnlockCaches();
  95. }
  96. private void LockCaches()
  97. {
  98. Gpu.Renderer.Buffer.LockCache();
  99. Gpu.Renderer.Rasterizer.LockCaches();
  100. Gpu.Renderer.Texture.LockCache();
  101. }
  102. private void UnlockCaches()
  103. {
  104. Gpu.Renderer.Buffer.UnlockCache();
  105. Gpu.Renderer.Rasterizer.UnlockCaches();
  106. Gpu.Renderer.Texture.UnlockCache();
  107. }
  108. private void ClearBuffers(NvGpuVmm Vmm, GpuMethodCall MethCall)
  109. {
  110. int Attachment = (MethCall.Argument >> 6) & 0xf;
  111. GalClearBufferFlags Flags = (GalClearBufferFlags)(MethCall.Argument & 0x3f);
  112. float Red = ReadRegisterFloat(NvGpuEngine3dReg.ClearNColor + 0);
  113. float Green = ReadRegisterFloat(NvGpuEngine3dReg.ClearNColor + 1);
  114. float Blue = ReadRegisterFloat(NvGpuEngine3dReg.ClearNColor + 2);
  115. float Alpha = ReadRegisterFloat(NvGpuEngine3dReg.ClearNColor + 3);
  116. float Depth = ReadRegisterFloat(NvGpuEngine3dReg.ClearDepth);
  117. int Stencil = ReadRegister(NvGpuEngine3dReg.ClearStencil);
  118. SetFrameBuffer(Vmm, Attachment);
  119. SetZeta(Vmm);
  120. SetRenderTargets();
  121. Gpu.Renderer.RenderTarget.Bind();
  122. Gpu.Renderer.Rasterizer.ClearBuffers(Flags, Attachment, Red, Green, Blue, Alpha, Depth, Stencil);
  123. Gpu.Renderer.Pipeline.ResetDepthMask();
  124. Gpu.Renderer.Pipeline.ResetColorMask(Attachment);
  125. }
  126. private void SetFrameBuffer(NvGpuVmm Vmm, int FbIndex)
  127. {
  128. long VA = MakeInt64From2xInt32(NvGpuEngine3dReg.FrameBufferNAddress + FbIndex * 0x10);
  129. int SurfFormat = ReadRegister(NvGpuEngine3dReg.FrameBufferNFormat + FbIndex * 0x10);
  130. if (VA == 0 || SurfFormat == 0)
  131. {
  132. Gpu.Renderer.RenderTarget.UnbindColor(FbIndex);
  133. return;
  134. }
  135. long Key = Vmm.GetPhysicalAddress(VA);
  136. int Width = ReadRegister(NvGpuEngine3dReg.FrameBufferNWidth + FbIndex * 0x10);
  137. int Height = ReadRegister(NvGpuEngine3dReg.FrameBufferNHeight + FbIndex * 0x10);
  138. int BlockDim = ReadRegister(NvGpuEngine3dReg.FrameBufferNBlockDim + FbIndex * 0x10);
  139. int GobBlockHeight = 1 << ((BlockDim >> 4) & 7);
  140. GalMemoryLayout Layout = (GalMemoryLayout)((BlockDim >> 12) & 1);
  141. float TX = ReadRegisterFloat(NvGpuEngine3dReg.ViewportNTranslateX + FbIndex * 8);
  142. float TY = ReadRegisterFloat(NvGpuEngine3dReg.ViewportNTranslateY + FbIndex * 8);
  143. float SX = ReadRegisterFloat(NvGpuEngine3dReg.ViewportNScaleX + FbIndex * 8);
  144. float SY = ReadRegisterFloat(NvGpuEngine3dReg.ViewportNScaleY + FbIndex * 8);
  145. int VpX = (int)MathF.Max(0, TX - MathF.Abs(SX));
  146. int VpY = (int)MathF.Max(0, TY - MathF.Abs(SY));
  147. int VpW = (int)(TX + MathF.Abs(SX)) - VpX;
  148. int VpH = (int)(TY + MathF.Abs(SY)) - VpY;
  149. GalImageFormat Format = ImageUtils.ConvertSurface((GalSurfaceFormat)SurfFormat);
  150. GalImage Image = new GalImage(Width, Height, 1, GobBlockHeight, Layout, Format);
  151. Gpu.ResourceManager.SendColorBuffer(Vmm, Key, FbIndex, Image);
  152. Gpu.Renderer.RenderTarget.SetViewport(FbIndex, VpX, VpY, VpW, VpH);
  153. }
  154. private void SetFrameBuffer(GalPipelineState State)
  155. {
  156. State.FramebufferSrgb = ReadRegisterBool(NvGpuEngine3dReg.FrameBufferSrgb);
  157. State.FlipX = GetFlipSign(NvGpuEngine3dReg.ViewportNScaleX);
  158. State.FlipY = GetFlipSign(NvGpuEngine3dReg.ViewportNScaleY);
  159. int ScreenYControl = ReadRegister(NvGpuEngine3dReg.ScreenYControl);
  160. bool NegateY = (ScreenYControl & 1) != 0;
  161. if (NegateY)
  162. {
  163. State.FlipY = -State.FlipY;
  164. }
  165. }
  166. private void SetZeta(NvGpuVmm Vmm)
  167. {
  168. long VA = MakeInt64From2xInt32(NvGpuEngine3dReg.ZetaAddress);
  169. int ZetaFormat = ReadRegister(NvGpuEngine3dReg.ZetaFormat);
  170. int BlockDim = ReadRegister(NvGpuEngine3dReg.ZetaBlockDimensions);
  171. int GobBlockHeight = 1 << ((BlockDim >> 4) & 7);
  172. GalMemoryLayout Layout = (GalMemoryLayout)((BlockDim >> 12) & 1); //?
  173. bool ZetaEnable = ReadRegisterBool(NvGpuEngine3dReg.ZetaEnable);
  174. if (VA == 0 || ZetaFormat == 0 || !ZetaEnable)
  175. {
  176. Gpu.Renderer.RenderTarget.UnbindZeta();
  177. return;
  178. }
  179. long Key = Vmm.GetPhysicalAddress(VA);
  180. int Width = ReadRegister(NvGpuEngine3dReg.ZetaHoriz);
  181. int Height = ReadRegister(NvGpuEngine3dReg.ZetaVert);
  182. GalImageFormat Format = ImageUtils.ConvertZeta((GalZetaFormat)ZetaFormat);
  183. GalImage Image = new GalImage(Width, Height, 1, GobBlockHeight, Layout, Format);
  184. Gpu.ResourceManager.SendZetaBuffer(Vmm, Key, Image);
  185. }
  186. private long[] UploadShaders(NvGpuVmm Vmm)
  187. {
  188. long[] Keys = new long[5];
  189. long BasePosition = MakeInt64From2xInt32(NvGpuEngine3dReg.ShaderAddress);
  190. int Index = 1;
  191. int VpAControl = ReadRegister(NvGpuEngine3dReg.ShaderNControl);
  192. bool VpAEnable = (VpAControl & 1) != 0;
  193. if (VpAEnable)
  194. {
  195. //Note: The maxwell supports 2 vertex programs, usually
  196. //only VP B is used, but in some cases VP A is also used.
  197. //In this case, it seems to function as an extra vertex
  198. //shader stage.
  199. //The graphics abstraction layer has a special overload for this
  200. //case, which should merge the two shaders into one vertex shader.
  201. int VpAOffset = ReadRegister(NvGpuEngine3dReg.ShaderNOffset);
  202. int VpBOffset = ReadRegister(NvGpuEngine3dReg.ShaderNOffset + 0x10);
  203. long VpAPos = BasePosition + (uint)VpAOffset;
  204. long VpBPos = BasePosition + (uint)VpBOffset;
  205. Keys[(int)GalShaderType.Vertex] = VpBPos;
  206. Gpu.Renderer.Shader.Create(Vmm, VpAPos, VpBPos, GalShaderType.Vertex);
  207. Gpu.Renderer.Shader.Bind(VpBPos);
  208. Index = 2;
  209. }
  210. for (; Index < 6; Index++)
  211. {
  212. GalShaderType Type = GetTypeFromProgram(Index);
  213. int Control = ReadRegister(NvGpuEngine3dReg.ShaderNControl + Index * 0x10);
  214. int Offset = ReadRegister(NvGpuEngine3dReg.ShaderNOffset + Index * 0x10);
  215. //Note: Vertex Program (B) is always enabled.
  216. bool Enable = (Control & 1) != 0 || Index == 1;
  217. if (!Enable)
  218. {
  219. Gpu.Renderer.Shader.Unbind(Type);
  220. continue;
  221. }
  222. long Key = BasePosition + (uint)Offset;
  223. Keys[(int)Type] = Key;
  224. Gpu.Renderer.Shader.Create(Vmm, Key, Type);
  225. Gpu.Renderer.Shader.Bind(Key);
  226. }
  227. return Keys;
  228. }
  229. private static GalShaderType GetTypeFromProgram(int Program)
  230. {
  231. switch (Program)
  232. {
  233. case 0:
  234. case 1: return GalShaderType.Vertex;
  235. case 2: return GalShaderType.TessControl;
  236. case 3: return GalShaderType.TessEvaluation;
  237. case 4: return GalShaderType.Geometry;
  238. case 5: return GalShaderType.Fragment;
  239. }
  240. throw new ArgumentOutOfRangeException(nameof(Program));
  241. }
  242. private void SetFrontFace(GalPipelineState State)
  243. {
  244. float SignX = GetFlipSign(NvGpuEngine3dReg.ViewportNScaleX);
  245. float SignY = GetFlipSign(NvGpuEngine3dReg.ViewportNScaleY);
  246. GalFrontFace FrontFace = (GalFrontFace)ReadRegister(NvGpuEngine3dReg.FrontFace);
  247. //Flipping breaks facing. Flipping front facing too fixes it
  248. if (SignX != SignY)
  249. {
  250. switch (FrontFace)
  251. {
  252. case GalFrontFace.CW: FrontFace = GalFrontFace.CCW; break;
  253. case GalFrontFace.CCW: FrontFace = GalFrontFace.CW; break;
  254. }
  255. }
  256. State.FrontFace = FrontFace;
  257. }
  258. private void SetCullFace(GalPipelineState State)
  259. {
  260. State.CullFaceEnabled = ReadRegisterBool(NvGpuEngine3dReg.CullFaceEnable);
  261. if (State.CullFaceEnabled)
  262. {
  263. State.CullFace = (GalCullFace)ReadRegister(NvGpuEngine3dReg.CullFace);
  264. }
  265. }
  266. private void SetDepth(GalPipelineState State)
  267. {
  268. State.DepthTestEnabled = ReadRegisterBool(NvGpuEngine3dReg.DepthTestEnable);
  269. State.DepthWriteEnabled = ReadRegisterBool(NvGpuEngine3dReg.DepthWriteEnable);
  270. if (State.DepthTestEnabled)
  271. {
  272. State.DepthFunc = (GalComparisonOp)ReadRegister(NvGpuEngine3dReg.DepthTestFunction);
  273. }
  274. State.DepthRangeNear = ReadRegisterFloat(NvGpuEngine3dReg.DepthRangeNNear);
  275. State.DepthRangeFar = ReadRegisterFloat(NvGpuEngine3dReg.DepthRangeNFar);
  276. }
  277. private void SetStencil(GalPipelineState State)
  278. {
  279. State.StencilTestEnabled = ReadRegisterBool(NvGpuEngine3dReg.StencilEnable);
  280. if (State.StencilTestEnabled)
  281. {
  282. State.StencilBackFuncFunc = (GalComparisonOp)ReadRegister(NvGpuEngine3dReg.StencilBackFuncFunc);
  283. State.StencilBackFuncRef = ReadRegister(NvGpuEngine3dReg.StencilBackFuncRef);
  284. State.StencilBackFuncMask = (uint)ReadRegister(NvGpuEngine3dReg.StencilBackFuncMask);
  285. State.StencilBackOpFail = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilBackOpFail);
  286. State.StencilBackOpZFail = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilBackOpZFail);
  287. State.StencilBackOpZPass = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilBackOpZPass);
  288. State.StencilBackMask = (uint)ReadRegister(NvGpuEngine3dReg.StencilBackMask);
  289. State.StencilFrontFuncFunc = (GalComparisonOp)ReadRegister(NvGpuEngine3dReg.StencilFrontFuncFunc);
  290. State.StencilFrontFuncRef = ReadRegister(NvGpuEngine3dReg.StencilFrontFuncRef);
  291. State.StencilFrontFuncMask = (uint)ReadRegister(NvGpuEngine3dReg.StencilFrontFuncMask);
  292. State.StencilFrontOpFail = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilFrontOpFail);
  293. State.StencilFrontOpZFail = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilFrontOpZFail);
  294. State.StencilFrontOpZPass = (GalStencilOp)ReadRegister(NvGpuEngine3dReg.StencilFrontOpZPass);
  295. State.StencilFrontMask = (uint)ReadRegister(NvGpuEngine3dReg.StencilFrontMask);
  296. }
  297. }
  298. private void SetBlending(GalPipelineState State)
  299. {
  300. bool BlendIndependent = ReadRegisterBool(NvGpuEngine3dReg.BlendIndependent);
  301. State.BlendIndependent = BlendIndependent;
  302. for (int Index = 0; Index < GalPipelineState.RenderTargetsCount; Index++)
  303. {
  304. if (BlendIndependent)
  305. {
  306. State.Blends[Index].Enabled = ReadRegisterBool(NvGpuEngine3dReg.IBlendNEnable + Index);
  307. if (State.Blends[Index].Enabled)
  308. {
  309. State.Blends[Index].SeparateAlpha = ReadRegisterBool(NvGpuEngine3dReg.IBlendNSeparateAlpha + Index * 8);
  310. State.Blends[Index].EquationRgb = ReadBlendEquation(NvGpuEngine3dReg.IBlendNEquationRgb + Index * 8);
  311. State.Blends[Index].FuncSrcRgb = ReadBlendFactor (NvGpuEngine3dReg.IBlendNFuncSrcRgb + Index * 8);
  312. State.Blends[Index].FuncDstRgb = ReadBlendFactor (NvGpuEngine3dReg.IBlendNFuncDstRgb + Index * 8);
  313. State.Blends[Index].EquationAlpha = ReadBlendEquation(NvGpuEngine3dReg.IBlendNEquationAlpha + Index * 8);
  314. State.Blends[Index].FuncSrcAlpha = ReadBlendFactor (NvGpuEngine3dReg.IBlendNFuncSrcAlpha + Index * 8);
  315. State.Blends[Index].FuncDstAlpha = ReadBlendFactor (NvGpuEngine3dReg.IBlendNFuncDstAlpha + Index * 8);
  316. }
  317. }
  318. else
  319. {
  320. //It seems that even when independent blend is disabled, the first IBlend enable
  321. //register is still set to indicate whenever blend is enabled or not (?).
  322. State.Blends[Index].Enabled = ReadRegisterBool(NvGpuEngine3dReg.IBlendNEnable);
  323. if (State.Blends[Index].Enabled)
  324. {
  325. State.Blends[Index].SeparateAlpha = ReadRegisterBool(NvGpuEngine3dReg.BlendSeparateAlpha);
  326. State.Blends[Index].EquationRgb = ReadBlendEquation(NvGpuEngine3dReg.BlendEquationRgb);
  327. State.Blends[Index].FuncSrcRgb = ReadBlendFactor (NvGpuEngine3dReg.BlendFuncSrcRgb);
  328. State.Blends[Index].FuncDstRgb = ReadBlendFactor (NvGpuEngine3dReg.BlendFuncDstRgb);
  329. State.Blends[Index].EquationAlpha = ReadBlendEquation(NvGpuEngine3dReg.BlendEquationAlpha);
  330. State.Blends[Index].FuncSrcAlpha = ReadBlendFactor (NvGpuEngine3dReg.BlendFuncSrcAlpha);
  331. State.Blends[Index].FuncDstAlpha = ReadBlendFactor (NvGpuEngine3dReg.BlendFuncDstAlpha);
  332. }
  333. }
  334. }
  335. }
  336. private GalBlendEquation ReadBlendEquation(NvGpuEngine3dReg Register)
  337. {
  338. return (GalBlendEquation)ReadRegister(Register);
  339. }
  340. private GalBlendFactor ReadBlendFactor(NvGpuEngine3dReg Register)
  341. {
  342. return (GalBlendFactor)ReadRegister(Register);
  343. }
  344. private void SetColorMask(GalPipelineState State)
  345. {
  346. bool ColorMaskCommon = ReadRegisterBool(NvGpuEngine3dReg.ColorMaskCommon);
  347. State.ColorMaskCommon = ColorMaskCommon;
  348. for (int Index = 0; Index < GalPipelineState.RenderTargetsCount; Index++)
  349. {
  350. int ColorMask = ReadRegister(NvGpuEngine3dReg.ColorMaskN + (ColorMaskCommon ? 0 : Index));
  351. State.ColorMasks[Index].Red = ((ColorMask >> 0) & 0xf) != 0;
  352. State.ColorMasks[Index].Green = ((ColorMask >> 4) & 0xf) != 0;
  353. State.ColorMasks[Index].Blue = ((ColorMask >> 8) & 0xf) != 0;
  354. State.ColorMasks[Index].Alpha = ((ColorMask >> 12) & 0xf) != 0;
  355. }
  356. }
  357. private void SetPrimitiveRestart(GalPipelineState State)
  358. {
  359. State.PrimitiveRestartEnabled = ReadRegisterBool(NvGpuEngine3dReg.PrimRestartEnable);
  360. if (State.PrimitiveRestartEnabled)
  361. {
  362. State.PrimitiveRestartIndex = (uint)ReadRegister(NvGpuEngine3dReg.PrimRestartIndex);
  363. }
  364. }
  365. private void SetRenderTargets()
  366. {
  367. //Commercial games do not seem to
  368. //bool SeparateFragData = ReadRegisterBool(NvGpuEngine3dReg.RTSeparateFragData);
  369. uint Control = (uint)(ReadRegister(NvGpuEngine3dReg.RTControl));
  370. uint Count = Control & 0xf;
  371. if (Count > 0)
  372. {
  373. int[] Map = new int[Count];
  374. for (int Index = 0; Index < Count; Index++)
  375. {
  376. int Shift = 4 + Index * 3;
  377. Map[Index] = (int)((Control >> Shift) & 7);
  378. }
  379. Gpu.Renderer.RenderTarget.SetMap(Map);
  380. }
  381. else
  382. {
  383. Gpu.Renderer.RenderTarget.SetMap(null);
  384. }
  385. }
  386. private void UploadTextures(NvGpuVmm Vmm, GalPipelineState State, long[] Keys)
  387. {
  388. long BaseShPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.ShaderAddress);
  389. int TextureCbIndex = ReadRegister(NvGpuEngine3dReg.TextureCbIndex);
  390. int TexIndex = 0;
  391. for (int Index = 0; Index < Keys.Length; Index++)
  392. {
  393. foreach (ShaderDeclInfo DeclInfo in Gpu.Renderer.Shader.GetTextureUsage(Keys[Index]))
  394. {
  395. long Position;
  396. if (DeclInfo.IsCb)
  397. {
  398. Position = ConstBuffers[Index][DeclInfo.Cbuf].Position;
  399. }
  400. else
  401. {
  402. Position = ConstBuffers[Index][TextureCbIndex].Position;
  403. }
  404. int TextureHandle = Vmm.ReadInt32(Position + DeclInfo.Index * 4);
  405. UploadTexture(Vmm, TexIndex, TextureHandle);
  406. TexIndex++;
  407. }
  408. }
  409. }
  410. private void UploadTexture(NvGpuVmm Vmm, int TexIndex, int TextureHandle)
  411. {
  412. if (TextureHandle == 0)
  413. {
  414. //FIXME: Some games like puyo puyo will use handles with the value 0.
  415. //This is a bug, most likely caused by sync issues.
  416. return;
  417. }
  418. bool LinkedTsc = ReadRegisterBool(NvGpuEngine3dReg.LinkedTsc);
  419. int TicIndex = (TextureHandle >> 0) & 0xfffff;
  420. int TscIndex = LinkedTsc ? TicIndex : (TextureHandle >> 20) & 0xfff;
  421. long TicPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.TexHeaderPoolOffset);
  422. long TscPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.TexSamplerPoolOffset);
  423. TicPosition += TicIndex * 0x20;
  424. TscPosition += TscIndex * 0x20;
  425. GalImage Image = TextureFactory.MakeTexture(Vmm, TicPosition);
  426. GalTextureSampler Sampler = TextureFactory.MakeSampler(Gpu, Vmm, TscPosition);
  427. long Key = Vmm.ReadInt64(TicPosition + 4) & 0xffffffffffff;
  428. if (Image.Layout == GalMemoryLayout.BlockLinear)
  429. {
  430. Key &= ~0x1ffL;
  431. }
  432. else if (Image.Layout == GalMemoryLayout.Pitch)
  433. {
  434. Key &= ~0x1fL;
  435. }
  436. Key = Vmm.GetPhysicalAddress(Key);
  437. if (Key == -1)
  438. {
  439. //FIXME: Shouldn't ignore invalid addresses.
  440. return;
  441. }
  442. Gpu.ResourceManager.SendTexture(Vmm, Key, Image, TexIndex);
  443. Gpu.Renderer.Texture.SetSampler(Sampler);
  444. }
  445. private void UploadConstBuffers(NvGpuVmm Vmm, GalPipelineState State, long[] Keys)
  446. {
  447. for (int Stage = 0; Stage < Keys.Length; Stage++)
  448. {
  449. foreach (ShaderDeclInfo DeclInfo in Gpu.Renderer.Shader.GetConstBufferUsage(Keys[Stage]))
  450. {
  451. ConstBuffer Cb = ConstBuffers[Stage][DeclInfo.Cbuf];
  452. if (!Cb.Enabled)
  453. {
  454. continue;
  455. }
  456. long Key = Vmm.GetPhysicalAddress(Cb.Position);
  457. if (Gpu.ResourceManager.MemoryRegionModified(Vmm, Key, Cb.Size, NvGpuBufferType.ConstBuffer))
  458. {
  459. if (Vmm.TryGetHostAddress(Cb.Position, Cb.Size, out IntPtr CbPtr))
  460. {
  461. Gpu.Renderer.Buffer.SetData(Key, Cb.Size, CbPtr);
  462. }
  463. else
  464. {
  465. Gpu.Renderer.Buffer.SetData(Key, Vmm.ReadBytes(Cb.Position, Cb.Size));
  466. }
  467. }
  468. State.ConstBufferKeys[Stage][DeclInfo.Cbuf] = Key;
  469. }
  470. }
  471. }
  472. private void UploadVertexArrays(NvGpuVmm Vmm, GalPipelineState State)
  473. {
  474. long IbPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.IndexArrayAddress);
  475. long IboKey = Vmm.GetPhysicalAddress(IbPosition);
  476. int IndexEntryFmt = ReadRegister(NvGpuEngine3dReg.IndexArrayFormat);
  477. int IndexCount = ReadRegister(NvGpuEngine3dReg.IndexBatchCount);
  478. int PrimCtrl = ReadRegister(NvGpuEngine3dReg.VertexBeginGl);
  479. GalPrimitiveType PrimType = (GalPrimitiveType)(PrimCtrl & 0xffff);
  480. GalIndexFormat IndexFormat = (GalIndexFormat)IndexEntryFmt;
  481. int IndexEntrySize = 1 << IndexEntryFmt;
  482. if (IndexEntrySize > 4)
  483. {
  484. throw new InvalidOperationException("Invalid index entry size \"" + IndexEntrySize + "\"!");
  485. }
  486. if (IndexCount != 0)
  487. {
  488. int IbSize = IndexCount * IndexEntrySize;
  489. bool IboCached = Gpu.Renderer.Rasterizer.IsIboCached(IboKey, (uint)IbSize);
  490. bool UsesLegacyQuads =
  491. PrimType == GalPrimitiveType.Quads ||
  492. PrimType == GalPrimitiveType.QuadStrip;
  493. if (!IboCached || Gpu.ResourceManager.MemoryRegionModified(Vmm, IboKey, (uint)IbSize, NvGpuBufferType.Index))
  494. {
  495. if (!UsesLegacyQuads)
  496. {
  497. if (Vmm.TryGetHostAddress(IbPosition, IbSize, out IntPtr IbPtr))
  498. {
  499. Gpu.Renderer.Rasterizer.CreateIbo(IboKey, IbSize, IbPtr);
  500. }
  501. else
  502. {
  503. Gpu.Renderer.Rasterizer.CreateIbo(IboKey, IbSize, Vmm.ReadBytes(IbPosition, IbSize));
  504. }
  505. }
  506. else
  507. {
  508. byte[] Buffer = Vmm.ReadBytes(IbPosition, IbSize);
  509. if (PrimType == GalPrimitiveType.Quads)
  510. {
  511. Buffer = QuadHelper.ConvertIbQuadsToTris(Buffer, IndexEntrySize, IndexCount);
  512. }
  513. else /* if (PrimType == GalPrimitiveType.QuadStrip) */
  514. {
  515. Buffer = QuadHelper.ConvertIbQuadStripToTris(Buffer, IndexEntrySize, IndexCount);
  516. }
  517. Gpu.Renderer.Rasterizer.CreateIbo(IboKey, IbSize, Buffer);
  518. }
  519. }
  520. if (!UsesLegacyQuads)
  521. {
  522. Gpu.Renderer.Rasterizer.SetIndexArray(IbSize, IndexFormat);
  523. }
  524. else
  525. {
  526. if (PrimType == GalPrimitiveType.Quads)
  527. {
  528. Gpu.Renderer.Rasterizer.SetIndexArray(QuadHelper.ConvertIbSizeQuadsToTris(IbSize), IndexFormat);
  529. }
  530. else /* if (PrimType == GalPrimitiveType.QuadStrip) */
  531. {
  532. Gpu.Renderer.Rasterizer.SetIndexArray(QuadHelper.ConvertIbSizeQuadStripToTris(IbSize), IndexFormat);
  533. }
  534. }
  535. }
  536. List<GalVertexAttrib>[] Attribs = new List<GalVertexAttrib>[32];
  537. for (int Attr = 0; Attr < 16; Attr++)
  538. {
  539. int Packed = ReadRegister(NvGpuEngine3dReg.VertexAttribNFormat + Attr);
  540. int ArrayIndex = Packed & 0x1f;
  541. if (Attribs[ArrayIndex] == null)
  542. {
  543. Attribs[ArrayIndex] = new List<GalVertexAttrib>();
  544. }
  545. long VbPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.VertexArrayNAddress + ArrayIndex * 4);
  546. bool IsConst = ((Packed >> 6) & 1) != 0;
  547. int Offset = (Packed >> 7) & 0x3fff;
  548. GalVertexAttribSize Size = (GalVertexAttribSize)((Packed >> 21) & 0x3f);
  549. GalVertexAttribType Type = (GalVertexAttribType)((Packed >> 27) & 0x7);
  550. bool IsRgba = ((Packed >> 31) & 1) != 0;
  551. //Note: 16 is the maximum size of an attribute,
  552. //having a component size of 32-bits with 4 elements (a vec4).
  553. byte[] Data = Vmm.ReadBytes(VbPosition + Offset, 16);
  554. Attribs[ArrayIndex].Add(new GalVertexAttrib(Attr, IsConst, Offset, Data, Size, Type, IsRgba));
  555. }
  556. State.VertexBindings = new GalVertexBinding[32];
  557. for (int Index = 0; Index < 32; Index++)
  558. {
  559. if (Attribs[Index] == null)
  560. {
  561. continue;
  562. }
  563. int Control = ReadRegister(NvGpuEngine3dReg.VertexArrayNControl + Index * 4);
  564. bool Enable = (Control & 0x1000) != 0;
  565. if (!Enable)
  566. {
  567. continue;
  568. }
  569. long VbPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.VertexArrayNAddress + Index * 4);
  570. long VbEndPos = MakeInt64From2xInt32(NvGpuEngine3dReg.VertexArrayNEndAddr + Index * 2);
  571. int VertexDivisor = ReadRegister(NvGpuEngine3dReg.VertexArrayNDivisor + Index * 4);
  572. bool Instanced = ReadRegisterBool(NvGpuEngine3dReg.VertexArrayNInstance + Index);
  573. int Stride = Control & 0xfff;
  574. if (Instanced && VertexDivisor != 0)
  575. {
  576. VbPosition += Stride * (CurrentInstance / VertexDivisor);
  577. }
  578. if (VbPosition > VbEndPos)
  579. {
  580. //Instance is invalid, ignore the draw call
  581. continue;
  582. }
  583. long VboKey = Vmm.GetPhysicalAddress(VbPosition);
  584. long VbSize = (VbEndPos - VbPosition) + 1;
  585. bool VboCached = Gpu.Renderer.Rasterizer.IsVboCached(VboKey, VbSize);
  586. if (!VboCached || Gpu.ResourceManager.MemoryRegionModified(Vmm, VboKey, VbSize, NvGpuBufferType.Vertex))
  587. {
  588. if (Vmm.TryGetHostAddress(VbPosition, VbSize, out IntPtr VbPtr))
  589. {
  590. Gpu.Renderer.Rasterizer.CreateVbo(VboKey, (int)VbSize, VbPtr);
  591. }
  592. else
  593. {
  594. Gpu.Renderer.Rasterizer.CreateVbo(VboKey, Vmm.ReadBytes(VbPosition, VbSize));
  595. }
  596. }
  597. State.VertexBindings[Index].Enabled = true;
  598. State.VertexBindings[Index].Stride = Stride;
  599. State.VertexBindings[Index].VboKey = VboKey;
  600. State.VertexBindings[Index].Instanced = Instanced;
  601. State.VertexBindings[Index].Divisor = VertexDivisor;
  602. State.VertexBindings[Index].Attribs = Attribs[Index].ToArray();
  603. }
  604. }
  605. private void DispatchRender(NvGpuVmm Vmm, GalPipelineState State)
  606. {
  607. int IndexCount = ReadRegister(NvGpuEngine3dReg.IndexBatchCount);
  608. int PrimCtrl = ReadRegister(NvGpuEngine3dReg.VertexBeginGl);
  609. GalPrimitiveType PrimType = (GalPrimitiveType)(PrimCtrl & 0xffff);
  610. bool InstanceNext = ((PrimCtrl >> 26) & 1) != 0;
  611. bool InstanceCont = ((PrimCtrl >> 27) & 1) != 0;
  612. if (InstanceNext && InstanceCont)
  613. {
  614. throw new InvalidOperationException("GPU tried to increase and reset instance count at the same time");
  615. }
  616. if (InstanceNext)
  617. {
  618. CurrentInstance++;
  619. }
  620. else if (!InstanceCont)
  621. {
  622. CurrentInstance = 0;
  623. }
  624. State.Instance = CurrentInstance;
  625. Gpu.Renderer.Pipeline.Bind(State);
  626. Gpu.Renderer.RenderTarget.Bind();
  627. if (IndexCount != 0)
  628. {
  629. int IndexEntryFmt = ReadRegister(NvGpuEngine3dReg.IndexArrayFormat);
  630. int IndexFirst = ReadRegister(NvGpuEngine3dReg.IndexBatchFirst);
  631. int VertexBase = ReadRegister(NvGpuEngine3dReg.VertexArrayElemBase);
  632. long IndexPosition = MakeInt64From2xInt32(NvGpuEngine3dReg.IndexArrayAddress);
  633. long IboKey = Vmm.GetPhysicalAddress(IndexPosition);
  634. //Quad primitive types were deprecated on OpenGL 3.x,
  635. //they are converted to a triangles index buffer on IB creation,
  636. //so we should use the triangles type here too.
  637. if (PrimType == GalPrimitiveType.Quads ||
  638. PrimType == GalPrimitiveType.QuadStrip)
  639. {
  640. PrimType = GalPrimitiveType.Triangles;
  641. //Note: We assume that index first points to the first
  642. //vertex of a quad, if it points to the middle of a
  643. //quad (First % 4 != 0 for Quads) then it will not work properly.
  644. if (PrimType == GalPrimitiveType.Quads)
  645. {
  646. IndexFirst = QuadHelper.ConvertIbSizeQuadsToTris(IndexFirst);
  647. }
  648. else /* if (PrimType == GalPrimitiveType.QuadStrip) */
  649. {
  650. IndexFirst = QuadHelper.ConvertIbSizeQuadStripToTris(IndexFirst);
  651. }
  652. }
  653. Gpu.Renderer.Rasterizer.DrawElements(IboKey, IndexFirst, VertexBase, PrimType);
  654. }
  655. else
  656. {
  657. int VertexFirst = ReadRegister(NvGpuEngine3dReg.VertexArrayFirst);
  658. int VertexCount = ReadRegister(NvGpuEngine3dReg.VertexArrayCount);
  659. Gpu.Renderer.Rasterizer.DrawArrays(VertexFirst, VertexCount, PrimType);
  660. }
  661. //Is the GPU really clearing those registers after draw?
  662. WriteRegister(NvGpuEngine3dReg.IndexBatchFirst, 0);
  663. WriteRegister(NvGpuEngine3dReg.IndexBatchCount, 0);
  664. }
  665. private enum QueryMode
  666. {
  667. WriteSeq,
  668. Sync,
  669. WriteCounterAndTimestamp
  670. }
  671. private void QueryControl(NvGpuVmm Vmm, GpuMethodCall MethCall)
  672. {
  673. WriteRegister(MethCall);
  674. long Position = MakeInt64From2xInt32(NvGpuEngine3dReg.QueryAddress);
  675. int Seq = Registers[(int)NvGpuEngine3dReg.QuerySequence];
  676. int Ctrl = Registers[(int)NvGpuEngine3dReg.QueryControl];
  677. QueryMode Mode = (QueryMode)(Ctrl & 3);
  678. switch (Mode)
  679. {
  680. case QueryMode.WriteSeq: Vmm.WriteInt32(Position, Seq); break;
  681. case QueryMode.WriteCounterAndTimestamp:
  682. {
  683. //TODO: Implement counters.
  684. long Counter = 1;
  685. long Timestamp = PerformanceCounter.ElapsedMilliseconds;
  686. Timestamp = (long)(Timestamp * 615384.615385);
  687. Vmm.WriteInt64(Position + 0, Counter);
  688. Vmm.WriteInt64(Position + 8, Timestamp);
  689. break;
  690. }
  691. }
  692. }
  693. private void CbData(NvGpuVmm Vmm, GpuMethodCall MethCall)
  694. {
  695. long Position = MakeInt64From2xInt32(NvGpuEngine3dReg.ConstBufferAddress);
  696. int Offset = ReadRegister(NvGpuEngine3dReg.ConstBufferOffset);
  697. Vmm.WriteInt32(Position + Offset, MethCall.Argument);
  698. WriteRegister(NvGpuEngine3dReg.ConstBufferOffset, Offset + 4);
  699. Gpu.ResourceManager.ClearPbCache(NvGpuBufferType.ConstBuffer);
  700. }
  701. private void CbBind(NvGpuVmm Vmm, GpuMethodCall MethCall)
  702. {
  703. int Stage = (MethCall.Method - 0x904) >> 3;
  704. int Index = MethCall.Argument;
  705. bool Enabled = (Index & 1) != 0;
  706. Index = (Index >> 4) & 0x1f;
  707. long Position = MakeInt64From2xInt32(NvGpuEngine3dReg.ConstBufferAddress);
  708. long CbKey = Vmm.GetPhysicalAddress(Position);
  709. int Size = ReadRegister(NvGpuEngine3dReg.ConstBufferSize);
  710. if (!Gpu.Renderer.Buffer.IsCached(CbKey, Size))
  711. {
  712. Gpu.Renderer.Buffer.Create(CbKey, Size);
  713. }
  714. ConstBuffer Cb = ConstBuffers[Stage][Index];
  715. if (Cb.Position != Position || Cb.Enabled != Enabled || Cb.Size != Size)
  716. {
  717. ConstBuffers[Stage][Index].Position = Position;
  718. ConstBuffers[Stage][Index].Enabled = Enabled;
  719. ConstBuffers[Stage][Index].Size = Size;
  720. }
  721. }
  722. private float GetFlipSign(NvGpuEngine3dReg Reg)
  723. {
  724. return MathF.Sign(ReadRegisterFloat(Reg));
  725. }
  726. private long MakeInt64From2xInt32(NvGpuEngine3dReg Reg)
  727. {
  728. return
  729. (long)Registers[(int)Reg + 0] << 32 |
  730. (uint)Registers[(int)Reg + 1];
  731. }
  732. private void WriteRegister(GpuMethodCall MethCall)
  733. {
  734. Registers[MethCall.Method] = MethCall.Argument;
  735. }
  736. private int ReadRegister(NvGpuEngine3dReg Reg)
  737. {
  738. return Registers[(int)Reg];
  739. }
  740. private float ReadRegisterFloat(NvGpuEngine3dReg Reg)
  741. {
  742. return BitConverter.Int32BitsToSingle(ReadRegister(Reg));
  743. }
  744. private bool ReadRegisterBool(NvGpuEngine3dReg Reg)
  745. {
  746. return (ReadRegister(Reg) & 1) != 0;
  747. }
  748. private void WriteRegister(NvGpuEngine3dReg Reg, int Value)
  749. {
  750. Registers[(int)Reg] = Value;
  751. }
  752. }
  753. }