command_processor.cpp 14 KB

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  1. // Copyright 2014 Citra Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include "clipper.h"
  5. #include "command_processor.h"
  6. #include "math.h"
  7. #include "pica.h"
  8. #include "primitive_assembly.h"
  9. #include "vertex_shader.h"
  10. #include "core/hle/service/gsp_gpu.h"
  11. #include "core/hw/gpu.h"
  12. #include "debug_utils/debug_utils.h"
  13. namespace Pica {
  14. Regs registers;
  15. namespace CommandProcessor {
  16. static int float_regs_counter = 0;
  17. static u32 uniform_write_buffer[4];
  18. // Used for VSLoadProgramData and VSLoadSwizzleData
  19. static u32 vs_binary_write_offset = 0;
  20. static u32 vs_swizzle_write_offset = 0;
  21. static inline void WritePicaReg(u32 id, u32 value, u32 mask) {
  22. if (id >= registers.NumIds())
  23. return;
  24. // If we're skipping this frame, only allow trigger IRQ
  25. if (GPU::g_skip_frame && id != PICA_REG_INDEX(trigger_irq))
  26. return;
  27. // TODO: Figure out how register masking acts on e.g. vs_uniform_setup.set_value
  28. u32 old_value = registers[id];
  29. registers[id] = (old_value & ~mask) | (value & mask);
  30. if (g_debug_context)
  31. g_debug_context->OnEvent(DebugContext::Event::CommandLoaded, reinterpret_cast<void*>(&id));
  32. DebugUtils::OnPicaRegWrite(id, registers[id]);
  33. switch(id) {
  34. // Trigger IRQ
  35. case PICA_REG_INDEX(trigger_irq):
  36. GSP_GPU::SignalInterrupt(GSP_GPU::InterruptId::P3D);
  37. return;
  38. // It seems like these trigger vertex rendering
  39. case PICA_REG_INDEX(trigger_draw):
  40. case PICA_REG_INDEX(trigger_draw_indexed):
  41. {
  42. DebugUtils::DumpTevStageConfig(registers.GetTevStages());
  43. if (g_debug_context)
  44. g_debug_context->OnEvent(DebugContext::Event::IncomingPrimitiveBatch, nullptr);
  45. const auto& attribute_config = registers.vertex_attributes;
  46. const u32 base_address = attribute_config.GetPhysicalBaseAddress();
  47. // Information about internal vertex attributes
  48. u32 vertex_attribute_sources[16];
  49. std::fill(vertex_attribute_sources, &vertex_attribute_sources[16], 0xdeadbeef);
  50. u32 vertex_attribute_strides[16];
  51. u32 vertex_attribute_formats[16];
  52. u32 vertex_attribute_elements[16];
  53. u32 vertex_attribute_element_size[16];
  54. // Setup attribute data from loaders
  55. for (int loader = 0; loader < 12; ++loader) {
  56. const auto& loader_config = attribute_config.attribute_loaders[loader];
  57. u32 load_address = base_address + loader_config.data_offset;
  58. // TODO: What happens if a loader overwrites a previous one's data?
  59. for (unsigned component = 0; component < loader_config.component_count; ++component) {
  60. u32 attribute_index = loader_config.GetComponent(component);
  61. vertex_attribute_sources[attribute_index] = load_address;
  62. vertex_attribute_strides[attribute_index] = static_cast<u32>(loader_config.byte_count);
  63. vertex_attribute_formats[attribute_index] = static_cast<u32>(attribute_config.GetFormat(attribute_index));
  64. vertex_attribute_elements[attribute_index] = attribute_config.GetNumElements(attribute_index);
  65. vertex_attribute_element_size[attribute_index] = attribute_config.GetElementSizeInBytes(attribute_index);
  66. load_address += attribute_config.GetStride(attribute_index);
  67. }
  68. }
  69. // Load vertices
  70. bool is_indexed = (id == PICA_REG_INDEX(trigger_draw_indexed));
  71. const auto& index_info = registers.index_array;
  72. const u8* index_address_8 = Memory::GetPointer(PAddrToVAddr(base_address + index_info.offset));
  73. const u16* index_address_16 = (u16*)index_address_8;
  74. bool index_u16 = index_info.format != 0;
  75. DebugUtils::GeometryDumper geometry_dumper;
  76. PrimitiveAssembler<VertexShader::OutputVertex> clipper_primitive_assembler(registers.triangle_topology.Value());
  77. PrimitiveAssembler<DebugUtils::GeometryDumper::Vertex> dumping_primitive_assembler(registers.triangle_topology.Value());
  78. for (unsigned int index = 0; index < registers.num_vertices; ++index)
  79. {
  80. unsigned int vertex = is_indexed ? (index_u16 ? index_address_16[index] : index_address_8[index]) : index;
  81. if (is_indexed) {
  82. // TODO: Implement some sort of vertex cache!
  83. }
  84. // Initialize data for the current vertex
  85. VertexShader::InputVertex input;
  86. for (int i = 0; i < attribute_config.GetNumTotalAttributes(); ++i) {
  87. for (unsigned int comp = 0; comp < vertex_attribute_elements[i]; ++comp) {
  88. const u8* srcdata = Memory::GetPointer(PAddrToVAddr(vertex_attribute_sources[i] + vertex_attribute_strides[i] * vertex + comp * vertex_attribute_element_size[i]));
  89. // TODO(neobrain): Ocarina of Time 3D has GetNumTotalAttributes return 8,
  90. // yet only provides 2 valid source data addresses. Need to figure out
  91. // what's wrong there, until then we just continue when address lookup fails
  92. if (srcdata == nullptr)
  93. continue;
  94. const float srcval = (vertex_attribute_formats[i] == 0) ? *(s8*)srcdata :
  95. (vertex_attribute_formats[i] == 1) ? *(u8*)srcdata :
  96. (vertex_attribute_formats[i] == 2) ? *(s16*)srcdata :
  97. *(float*)srcdata;
  98. input.attr[i][comp] = float24::FromFloat32(srcval);
  99. LOG_TRACE(HW_GPU, "Loaded component %x of attribute %x for vertex %x (index %x) from 0x%08x + 0x%08lx + 0x%04lx: %f",
  100. comp, i, vertex, index,
  101. attribute_config.GetPhysicalBaseAddress(),
  102. vertex_attribute_sources[i] - base_address,
  103. vertex_attribute_strides[i] * vertex + comp * vertex_attribute_element_size[i],
  104. input.attr[i][comp].ToFloat32());
  105. }
  106. }
  107. if (g_debug_context)
  108. g_debug_context->OnEvent(DebugContext::Event::VertexLoaded, (void*)&input);
  109. // NOTE: When dumping geometry, we simply assume that the first input attribute
  110. // corresponds to the position for now.
  111. DebugUtils::GeometryDumper::Vertex dumped_vertex = {
  112. input.attr[0][0].ToFloat32(), input.attr[0][1].ToFloat32(), input.attr[0][2].ToFloat32()
  113. };
  114. using namespace std::placeholders;
  115. dumping_primitive_assembler.SubmitVertex(dumped_vertex,
  116. std::bind(&DebugUtils::GeometryDumper::AddTriangle,
  117. &geometry_dumper, _1, _2, _3));
  118. // Send to vertex shader
  119. VertexShader::OutputVertex output = VertexShader::RunShader(input, attribute_config.GetNumTotalAttributes());
  120. if (is_indexed) {
  121. // TODO: Add processed vertex to vertex cache!
  122. }
  123. // Send to triangle clipper
  124. clipper_primitive_assembler.SubmitVertex(output, Clipper::ProcessTriangle);
  125. }
  126. geometry_dumper.Dump();
  127. if (g_debug_context)
  128. g_debug_context->OnEvent(DebugContext::Event::FinishedPrimitiveBatch, nullptr);
  129. break;
  130. }
  131. case PICA_REG_INDEX(vs_bool_uniforms):
  132. for (unsigned i = 0; i < 16; ++i)
  133. VertexShader::GetBoolUniform(i) = (registers.vs_bool_uniforms.Value() & (1 << i)) != 0;
  134. break;
  135. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[0], 0x2c1):
  136. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[1], 0x2c2):
  137. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[2], 0x2c3):
  138. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[3], 0x2c4):
  139. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[4], 0x2c5):
  140. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[5], 0x2c6):
  141. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[6], 0x2c7):
  142. case PICA_REG_INDEX_WORKAROUND(vs_uniform_setup.set_value[7], 0x2c8):
  143. {
  144. auto& uniform_setup = registers.vs_uniform_setup;
  145. // TODO: Does actual hardware indeed keep an intermediate buffer or does
  146. // it directly write the values?
  147. uniform_write_buffer[float_regs_counter++] = value;
  148. // Uniforms are written in a packed format such that 4 float24 values are encoded in
  149. // three 32-bit numbers. We write to internal memory once a full such vector is
  150. // written.
  151. if ((float_regs_counter >= 4 && uniform_setup.IsFloat32()) ||
  152. (float_regs_counter >= 3 && !uniform_setup.IsFloat32())) {
  153. float_regs_counter = 0;
  154. auto& uniform = VertexShader::GetFloatUniform(uniform_setup.index);
  155. if (uniform_setup.index > 95) {
  156. LOG_ERROR(HW_GPU, "Invalid VS uniform index %d", (int)uniform_setup.index);
  157. break;
  158. }
  159. // NOTE: The destination component order indeed is "backwards"
  160. if (uniform_setup.IsFloat32()) {
  161. for (auto i : {0,1,2,3})
  162. uniform[3 - i] = float24::FromFloat32(*(float*)(&uniform_write_buffer[i]));
  163. } else {
  164. // TODO: Untested
  165. uniform.w = float24::FromRawFloat24(uniform_write_buffer[0] >> 8);
  166. uniform.z = float24::FromRawFloat24(((uniform_write_buffer[0] & 0xFF)<<16) | ((uniform_write_buffer[1] >> 16) & 0xFFFF));
  167. uniform.y = float24::FromRawFloat24(((uniform_write_buffer[1] & 0xFFFF)<<8) | ((uniform_write_buffer[2] >> 24) & 0xFF));
  168. uniform.x = float24::FromRawFloat24(uniform_write_buffer[2] & 0xFFFFFF);
  169. }
  170. LOG_TRACE(HW_GPU, "Set uniform %x to (%f %f %f %f)", (int)uniform_setup.index,
  171. uniform.x.ToFloat32(), uniform.y.ToFloat32(), uniform.z.ToFloat32(),
  172. uniform.w.ToFloat32());
  173. // TODO: Verify that this actually modifies the register!
  174. uniform_setup.index = uniform_setup.index + 1;
  175. }
  176. break;
  177. }
  178. // Seems to be used to reset the write pointer for VSLoadProgramData
  179. case PICA_REG_INDEX(vs_program.begin_load):
  180. vs_binary_write_offset = 0;
  181. break;
  182. // Load shader program code
  183. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[0], 0x2cc):
  184. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[1], 0x2cd):
  185. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[2], 0x2ce):
  186. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[3], 0x2cf):
  187. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[4], 0x2d0):
  188. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[5], 0x2d1):
  189. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[6], 0x2d2):
  190. case PICA_REG_INDEX_WORKAROUND(vs_program.set_word[7], 0x2d3):
  191. {
  192. VertexShader::SubmitShaderMemoryChange(vs_binary_write_offset, value);
  193. vs_binary_write_offset++;
  194. break;
  195. }
  196. // Seems to be used to reset the write pointer for VSLoadSwizzleData
  197. case PICA_REG_INDEX(vs_swizzle_patterns.begin_load):
  198. vs_swizzle_write_offset = 0;
  199. break;
  200. // Load swizzle pattern data
  201. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[0], 0x2d6):
  202. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[1], 0x2d7):
  203. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[2], 0x2d8):
  204. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[3], 0x2d9):
  205. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[4], 0x2da):
  206. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[5], 0x2db):
  207. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[6], 0x2dc):
  208. case PICA_REG_INDEX_WORKAROUND(vs_swizzle_patterns.set_word[7], 0x2dd):
  209. {
  210. VertexShader::SubmitSwizzleDataChange(vs_swizzle_write_offset, value);
  211. vs_swizzle_write_offset++;
  212. break;
  213. }
  214. default:
  215. break;
  216. }
  217. if (g_debug_context)
  218. g_debug_context->OnEvent(DebugContext::Event::CommandProcessed, reinterpret_cast<void*>(&id));
  219. }
  220. static std::ptrdiff_t ExecuteCommandBlock(const u32* first_command_word) {
  221. const CommandHeader& header = *(const CommandHeader*)(&first_command_word[1]);
  222. u32* read_pointer = (u32*)first_command_word;
  223. const u32 write_mask = ((header.parameter_mask & 0x1) ? (0xFFu << 0) : 0u) |
  224. ((header.parameter_mask & 0x2) ? (0xFFu << 8) : 0u) |
  225. ((header.parameter_mask & 0x4) ? (0xFFu << 16) : 0u) |
  226. ((header.parameter_mask & 0x8) ? (0xFFu << 24) : 0u);
  227. WritePicaReg(header.cmd_id, *read_pointer, write_mask);
  228. read_pointer += 2;
  229. for (unsigned int i = 1; i < 1+header.extra_data_length; ++i) {
  230. u32 cmd = header.cmd_id + ((header.group_commands) ? i : 0);
  231. WritePicaReg(cmd, *read_pointer, write_mask);
  232. ++read_pointer;
  233. }
  234. // align read pointer to 8 bytes
  235. if ((first_command_word - read_pointer) % 2)
  236. ++read_pointer;
  237. return read_pointer - first_command_word;
  238. }
  239. void ProcessCommandList(const u32* list, u32 size) {
  240. u32* read_pointer = (u32*)list;
  241. u32 list_length = size / sizeof(u32);
  242. while (read_pointer < list + list_length) {
  243. read_pointer += ExecuteCommandBlock(read_pointer);
  244. }
  245. }
  246. } // namespace
  247. } // namespace