emit_spirv_context_get_set.cpp 23 KB

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  1. // SPDX-FileCopyrightText: Copyright 2021 yuzu Emulator Project
  2. // SPDX-License-Identifier: GPL-2.0-or-later
  3. #include <bit>
  4. #include <tuple>
  5. #include <utility>
  6. #include "shader_recompiler/backend/spirv/emit_spirv_instructions.h"
  7. #include "shader_recompiler/backend/spirv/spirv_emit_context.h"
  8. namespace Shader::Backend::SPIRV {
  9. namespace {
  10. struct AttrInfo {
  11. Id pointer;
  12. Id id;
  13. bool needs_cast;
  14. };
  15. std::optional<AttrInfo> AttrTypes(EmitContext& ctx, u32 index) {
  16. const AttributeType type{ctx.runtime_info.generic_input_types.at(index)};
  17. switch (type) {
  18. case AttributeType::Float:
  19. return AttrInfo{ctx.input_f32, ctx.F32[1], false};
  20. case AttributeType::UnsignedInt:
  21. return AttrInfo{ctx.input_u32, ctx.U32[1], true};
  22. case AttributeType::SignedInt:
  23. return AttrInfo{ctx.input_s32, ctx.TypeInt(32, true), true};
  24. case AttributeType::Disabled:
  25. return std::nullopt;
  26. }
  27. throw InvalidArgument("Invalid attribute type {}", type);
  28. }
  29. template <typename... Args>
  30. Id AttrPointer(EmitContext& ctx, Id pointer_type, Id vertex, Id base, Args&&... args) {
  31. switch (ctx.stage) {
  32. case Stage::TessellationControl:
  33. case Stage::TessellationEval:
  34. case Stage::Geometry:
  35. return ctx.OpAccessChain(pointer_type, base, vertex, std::forward<Args>(args)...);
  36. default:
  37. return ctx.OpAccessChain(pointer_type, base, std::forward<Args>(args)...);
  38. }
  39. }
  40. template <typename... Args>
  41. Id OutputAccessChain(EmitContext& ctx, Id result_type, Id base, Args&&... args) {
  42. if (ctx.stage == Stage::TessellationControl) {
  43. const Id invocation_id{ctx.OpLoad(ctx.U32[1], ctx.invocation_id)};
  44. return ctx.OpAccessChain(result_type, base, invocation_id, std::forward<Args>(args)...);
  45. } else {
  46. return ctx.OpAccessChain(result_type, base, std::forward<Args>(args)...);
  47. }
  48. }
  49. struct OutAttr {
  50. OutAttr(Id pointer_) : pointer{pointer_} {}
  51. OutAttr(Id pointer_, Id type_) : pointer{pointer_}, type{type_} {}
  52. Id pointer{};
  53. Id type{};
  54. };
  55. std::optional<OutAttr> OutputAttrPointer(EmitContext& ctx, IR::Attribute attr) {
  56. if (IR::IsGeneric(attr)) {
  57. const u32 index{IR::GenericAttributeIndex(attr)};
  58. const u32 element{IR::GenericAttributeElement(attr)};
  59. const GenericElementInfo& info{ctx.output_generics.at(index).at(element)};
  60. if (info.num_components == 1) {
  61. return info.id;
  62. } else {
  63. const u32 index_element{element - info.first_element};
  64. const Id index_id{ctx.Const(index_element)};
  65. return OutputAccessChain(ctx, ctx.output_f32, info.id, index_id);
  66. }
  67. }
  68. switch (attr) {
  69. case IR::Attribute::PointSize:
  70. return ctx.output_point_size;
  71. case IR::Attribute::PositionX:
  72. case IR::Attribute::PositionY:
  73. case IR::Attribute::PositionZ:
  74. case IR::Attribute::PositionW: {
  75. const u32 element{static_cast<u32>(attr) % 4};
  76. const Id element_id{ctx.Const(element)};
  77. return OutputAccessChain(ctx, ctx.output_f32, ctx.output_position, element_id);
  78. }
  79. case IR::Attribute::ClipDistance0:
  80. case IR::Attribute::ClipDistance1:
  81. case IR::Attribute::ClipDistance2:
  82. case IR::Attribute::ClipDistance3:
  83. case IR::Attribute::ClipDistance4:
  84. case IR::Attribute::ClipDistance5:
  85. case IR::Attribute::ClipDistance6:
  86. case IR::Attribute::ClipDistance7: {
  87. const u32 base{static_cast<u32>(IR::Attribute::ClipDistance0)};
  88. const u32 index{static_cast<u32>(attr) - base};
  89. const Id clip_num{ctx.Const(index)};
  90. return OutputAccessChain(ctx, ctx.output_f32, ctx.clip_distances, clip_num);
  91. }
  92. case IR::Attribute::Layer:
  93. if (ctx.profile.support_viewport_index_layer_non_geometry ||
  94. ctx.stage == Shader::Stage::Geometry) {
  95. return OutAttr{ctx.layer, ctx.U32[1]};
  96. }
  97. return std::nullopt;
  98. case IR::Attribute::ViewportIndex:
  99. if (ctx.profile.support_viewport_index_layer_non_geometry ||
  100. ctx.stage == Shader::Stage::Geometry) {
  101. return OutAttr{ctx.viewport_index, ctx.U32[1]};
  102. }
  103. return std::nullopt;
  104. case IR::Attribute::ViewportMask:
  105. if (!ctx.profile.support_viewport_mask) {
  106. return std::nullopt;
  107. }
  108. return OutAttr{ctx.OpAccessChain(ctx.output_u32, ctx.viewport_mask, ctx.u32_zero_value),
  109. ctx.U32[1]};
  110. default:
  111. throw NotImplementedException("Read attribute {}", attr);
  112. }
  113. }
  114. Id GetCbuf(EmitContext& ctx, Id result_type, Id UniformDefinitions::*member_ptr, u32 element_size,
  115. const IR::Value& binding, const IR::Value& offset, const Id indirect_func) {
  116. Id buffer_offset;
  117. const Id uniform_type{ctx.uniform_types.*member_ptr};
  118. if (offset.IsImmediate()) {
  119. // Hardware been proved to read the aligned offset (e.g. LDC.U32 at 6 will read offset 4)
  120. const Id imm_offset{ctx.Const(offset.U32() / element_size)};
  121. buffer_offset = imm_offset;
  122. } else if (element_size > 1) {
  123. const u32 log2_element_size{static_cast<u32>(std::countr_zero(element_size))};
  124. const Id shift{ctx.Const(log2_element_size)};
  125. buffer_offset = ctx.OpShiftRightArithmetic(ctx.U32[1], ctx.Def(offset), shift);
  126. } else {
  127. buffer_offset = ctx.Def(offset);
  128. }
  129. if (!binding.IsImmediate()) {
  130. return ctx.OpFunctionCall(result_type, indirect_func, ctx.Def(binding), buffer_offset);
  131. }
  132. const Id cbuf{ctx.cbufs[binding.U32()].*member_ptr};
  133. const Id access_chain{ctx.OpAccessChain(uniform_type, cbuf, ctx.u32_zero_value, buffer_offset)};
  134. return ctx.OpLoad(result_type, access_chain);
  135. }
  136. Id GetCbufU32(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  137. return GetCbuf(ctx, ctx.U32[1], &UniformDefinitions::U32, sizeof(u32), binding, offset,
  138. ctx.load_const_func_u32);
  139. }
  140. Id GetCbufU32x4(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  141. return GetCbuf(ctx, ctx.U32[4], &UniformDefinitions::U32x4, sizeof(u32[4]), binding, offset,
  142. ctx.load_const_func_u32x4);
  143. }
  144. Id GetCbufElement(EmitContext& ctx, Id vector, const IR::Value& offset, u32 index_offset) {
  145. if (offset.IsImmediate()) {
  146. const u32 element{(offset.U32() / 4) % 4 + index_offset};
  147. return ctx.OpCompositeExtract(ctx.U32[1], vector, element);
  148. }
  149. const Id shift{ctx.OpShiftRightArithmetic(ctx.U32[1], ctx.Def(offset), ctx.Const(2u))};
  150. Id element{ctx.OpBitwiseAnd(ctx.U32[1], shift, ctx.Const(3u))};
  151. if (index_offset > 0) {
  152. element = ctx.OpIAdd(ctx.U32[1], element, ctx.Const(index_offset));
  153. }
  154. return ctx.OpVectorExtractDynamic(ctx.U32[1], vector, element);
  155. }
  156. } // Anonymous namespace
  157. void EmitGetRegister(EmitContext&) {
  158. throw LogicError("Unreachable instruction");
  159. }
  160. void EmitSetRegister(EmitContext&) {
  161. throw LogicError("Unreachable instruction");
  162. }
  163. void EmitGetPred(EmitContext&) {
  164. throw LogicError("Unreachable instruction");
  165. }
  166. void EmitSetPred(EmitContext&) {
  167. throw LogicError("Unreachable instruction");
  168. }
  169. void EmitSetGotoVariable(EmitContext&) {
  170. throw LogicError("Unreachable instruction");
  171. }
  172. void EmitGetGotoVariable(EmitContext&) {
  173. throw LogicError("Unreachable instruction");
  174. }
  175. void EmitSetIndirectBranchVariable(EmitContext&) {
  176. throw LogicError("Unreachable instruction");
  177. }
  178. void EmitGetIndirectBranchVariable(EmitContext&) {
  179. throw LogicError("Unreachable instruction");
  180. }
  181. Id EmitGetCbufU8(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  182. if (ctx.profile.support_descriptor_aliasing && ctx.profile.support_int8) {
  183. const Id load{GetCbuf(ctx, ctx.U8, &UniformDefinitions::U8, sizeof(u8), binding, offset,
  184. ctx.load_const_func_u8)};
  185. return ctx.OpUConvert(ctx.U32[1], load);
  186. }
  187. Id element{};
  188. if (ctx.profile.support_descriptor_aliasing) {
  189. element = GetCbufU32(ctx, binding, offset);
  190. } else {
  191. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  192. element = GetCbufElement(ctx, vector, offset, 0u);
  193. }
  194. const Id bit_offset{ctx.BitOffset8(offset)};
  195. return ctx.OpBitFieldUExtract(ctx.U32[1], element, bit_offset, ctx.Const(8u));
  196. }
  197. Id EmitGetCbufS8(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  198. if (ctx.profile.support_descriptor_aliasing && ctx.profile.support_int8) {
  199. const Id load{GetCbuf(ctx, ctx.S8, &UniformDefinitions::S8, sizeof(s8), binding, offset,
  200. ctx.load_const_func_u8)};
  201. return ctx.OpSConvert(ctx.U32[1], load);
  202. }
  203. Id element{};
  204. if (ctx.profile.support_descriptor_aliasing) {
  205. element = GetCbufU32(ctx, binding, offset);
  206. } else {
  207. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  208. element = GetCbufElement(ctx, vector, offset, 0u);
  209. }
  210. const Id bit_offset{ctx.BitOffset8(offset)};
  211. return ctx.OpBitFieldSExtract(ctx.U32[1], element, bit_offset, ctx.Const(8u));
  212. }
  213. Id EmitGetCbufU16(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  214. if (ctx.profile.support_descriptor_aliasing && ctx.profile.support_int16) {
  215. const Id load{GetCbuf(ctx, ctx.U16, &UniformDefinitions::U16, sizeof(u16), binding, offset,
  216. ctx.load_const_func_u16)};
  217. return ctx.OpUConvert(ctx.U32[1], load);
  218. }
  219. Id element{};
  220. if (ctx.profile.support_descriptor_aliasing) {
  221. element = GetCbufU32(ctx, binding, offset);
  222. } else {
  223. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  224. element = GetCbufElement(ctx, vector, offset, 0u);
  225. }
  226. const Id bit_offset{ctx.BitOffset16(offset)};
  227. return ctx.OpBitFieldUExtract(ctx.U32[1], element, bit_offset, ctx.Const(16u));
  228. }
  229. Id EmitGetCbufS16(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  230. if (ctx.profile.support_descriptor_aliasing && ctx.profile.support_int16) {
  231. const Id load{GetCbuf(ctx, ctx.S16, &UniformDefinitions::S16, sizeof(s16), binding, offset,
  232. ctx.load_const_func_u16)};
  233. return ctx.OpSConvert(ctx.U32[1], load);
  234. }
  235. Id element{};
  236. if (ctx.profile.support_descriptor_aliasing) {
  237. element = GetCbufU32(ctx, binding, offset);
  238. } else {
  239. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  240. element = GetCbufElement(ctx, vector, offset, 0u);
  241. }
  242. const Id bit_offset{ctx.BitOffset16(offset)};
  243. return ctx.OpBitFieldSExtract(ctx.U32[1], element, bit_offset, ctx.Const(16u));
  244. }
  245. Id EmitGetCbufU32(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  246. if (ctx.profile.support_descriptor_aliasing) {
  247. return GetCbufU32(ctx, binding, offset);
  248. } else {
  249. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  250. return GetCbufElement(ctx, vector, offset, 0u);
  251. }
  252. }
  253. Id EmitGetCbufF32(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  254. if (ctx.profile.support_descriptor_aliasing) {
  255. return GetCbuf(ctx, ctx.F32[1], &UniformDefinitions::F32, sizeof(f32), binding, offset,
  256. ctx.load_const_func_f32);
  257. } else {
  258. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  259. return ctx.OpBitcast(ctx.F32[1], GetCbufElement(ctx, vector, offset, 0u));
  260. }
  261. }
  262. Id EmitGetCbufU32x2(EmitContext& ctx, const IR::Value& binding, const IR::Value& offset) {
  263. if (ctx.profile.support_descriptor_aliasing) {
  264. return GetCbuf(ctx, ctx.U32[2], &UniformDefinitions::U32x2, sizeof(u32[2]), binding, offset,
  265. ctx.load_const_func_u32x2);
  266. } else {
  267. const Id vector{GetCbufU32x4(ctx, binding, offset)};
  268. return ctx.OpCompositeConstruct(ctx.U32[2], GetCbufElement(ctx, vector, offset, 0u),
  269. GetCbufElement(ctx, vector, offset, 1u));
  270. }
  271. }
  272. Id EmitGetAttribute(EmitContext& ctx, IR::Attribute attr, Id vertex) {
  273. const u32 element{static_cast<u32>(attr) % 4};
  274. if (IR::IsGeneric(attr)) {
  275. const u32 index{IR::GenericAttributeIndex(attr)};
  276. const std::optional<AttrInfo> type{AttrTypes(ctx, index)};
  277. if (!type || !ctx.runtime_info.previous_stage_stores.Generic(index, element)) {
  278. // Attribute is disabled or varying component is not written
  279. return ctx.Const(element == 3 ? 1.0f : 0.0f);
  280. }
  281. const Id generic_id{ctx.input_generics.at(index)};
  282. const Id pointer{AttrPointer(ctx, type->pointer, vertex, generic_id, ctx.Const(element))};
  283. const Id value{ctx.OpLoad(type->id, pointer)};
  284. return type->needs_cast ? ctx.OpBitcast(ctx.F32[1], value) : value;
  285. }
  286. switch (attr) {
  287. case IR::Attribute::PrimitiveId:
  288. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.primitive_id));
  289. case IR::Attribute::Layer:
  290. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.layer));
  291. case IR::Attribute::PositionX:
  292. case IR::Attribute::PositionY:
  293. case IR::Attribute::PositionZ:
  294. case IR::Attribute::PositionW:
  295. return ctx.OpLoad(
  296. ctx.F32[1],
  297. ctx.need_input_position_indirect
  298. ? AttrPointer(ctx, ctx.input_f32, vertex, ctx.input_position, ctx.u32_zero_value,
  299. ctx.Const(element))
  300. : AttrPointer(ctx, ctx.input_f32, vertex, ctx.input_position, ctx.Const(element)));
  301. case IR::Attribute::InstanceId:
  302. if (ctx.profile.support_vertex_instance_id) {
  303. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.instance_id));
  304. } else {
  305. const Id index{ctx.OpLoad(ctx.U32[1], ctx.instance_index)};
  306. const Id base{ctx.OpLoad(ctx.U32[1], ctx.base_instance)};
  307. return ctx.OpBitcast(ctx.F32[1], ctx.OpISub(ctx.U32[1], index, base));
  308. }
  309. case IR::Attribute::VertexId:
  310. if (ctx.profile.support_vertex_instance_id) {
  311. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.vertex_id));
  312. } else {
  313. const Id index{ctx.OpLoad(ctx.U32[1], ctx.vertex_index)};
  314. const Id base{ctx.OpLoad(ctx.U32[1], ctx.base_vertex)};
  315. return ctx.OpBitcast(ctx.F32[1], ctx.OpISub(ctx.U32[1], index, base));
  316. }
  317. case IR::Attribute::BaseInstance:
  318. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.base_instance));
  319. case IR::Attribute::BaseVertex:
  320. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.base_vertex));
  321. case IR::Attribute::DrawID:
  322. return ctx.OpBitcast(ctx.F32[1], ctx.OpLoad(ctx.U32[1], ctx.draw_index));
  323. case IR::Attribute::FrontFace:
  324. return ctx.OpSelect(ctx.F32[1], ctx.OpLoad(ctx.U1, ctx.front_face),
  325. ctx.OpBitcast(ctx.F32[1], ctx.Const(std::numeric_limits<u32>::max())),
  326. ctx.f32_zero_value);
  327. case IR::Attribute::PointSpriteS:
  328. return ctx.OpLoad(ctx.F32[1],
  329. ctx.OpAccessChain(ctx.input_f32, ctx.point_coord, ctx.u32_zero_value));
  330. case IR::Attribute::PointSpriteT:
  331. return ctx.OpLoad(ctx.F32[1],
  332. ctx.OpAccessChain(ctx.input_f32, ctx.point_coord, ctx.Const(1U)));
  333. case IR::Attribute::TessellationEvaluationPointU:
  334. return ctx.OpLoad(ctx.F32[1],
  335. ctx.OpAccessChain(ctx.input_f32, ctx.tess_coord, ctx.u32_zero_value));
  336. case IR::Attribute::TessellationEvaluationPointV:
  337. return ctx.OpLoad(ctx.F32[1],
  338. ctx.OpAccessChain(ctx.input_f32, ctx.tess_coord, ctx.Const(1U)));
  339. default:
  340. throw NotImplementedException("Read attribute {}", attr);
  341. }
  342. }
  343. Id EmitGetAttributeU32(EmitContext& ctx, IR::Attribute attr, Id) {
  344. switch (attr) {
  345. case IR::Attribute::PrimitiveId:
  346. return ctx.OpLoad(ctx.U32[1], ctx.primitive_id);
  347. case IR::Attribute::InstanceId:
  348. if (ctx.profile.support_vertex_instance_id) {
  349. return ctx.OpLoad(ctx.U32[1], ctx.instance_id);
  350. } else {
  351. const Id index{ctx.OpLoad(ctx.U32[1], ctx.instance_index)};
  352. const Id base{ctx.OpLoad(ctx.U32[1], ctx.base_instance)};
  353. return ctx.OpISub(ctx.U32[1], index, base);
  354. }
  355. case IR::Attribute::VertexId:
  356. if (ctx.profile.support_vertex_instance_id) {
  357. return ctx.OpLoad(ctx.U32[1], ctx.vertex_id);
  358. } else {
  359. const Id index{ctx.OpLoad(ctx.U32[1], ctx.vertex_index)};
  360. const Id base{ctx.OpLoad(ctx.U32[1], ctx.base_vertex)};
  361. return ctx.OpISub(ctx.U32[1], index, base);
  362. }
  363. case IR::Attribute::BaseInstance:
  364. return ctx.OpLoad(ctx.U32[1], ctx.base_instance);
  365. case IR::Attribute::BaseVertex:
  366. return ctx.OpLoad(ctx.U32[1], ctx.base_vertex);
  367. case IR::Attribute::DrawID:
  368. return ctx.OpLoad(ctx.U32[1], ctx.draw_index);
  369. default:
  370. throw NotImplementedException("Read U32 attribute {}", attr);
  371. }
  372. }
  373. void EmitSetAttribute(EmitContext& ctx, IR::Attribute attr, Id value, [[maybe_unused]] Id vertex) {
  374. const std::optional<OutAttr> output{OutputAttrPointer(ctx, attr)};
  375. if (!output) {
  376. return;
  377. }
  378. if (Sirit::ValidId(output->type)) {
  379. value = ctx.OpBitcast(output->type, value);
  380. }
  381. ctx.OpStore(output->pointer, value);
  382. }
  383. Id EmitGetAttributeIndexed(EmitContext& ctx, Id offset, Id vertex) {
  384. switch (ctx.stage) {
  385. case Stage::TessellationControl:
  386. case Stage::TessellationEval:
  387. case Stage::Geometry:
  388. return ctx.OpFunctionCall(ctx.F32[1], ctx.indexed_load_func, offset, vertex);
  389. default:
  390. return ctx.OpFunctionCall(ctx.F32[1], ctx.indexed_load_func, offset);
  391. }
  392. }
  393. void EmitSetAttributeIndexed(EmitContext& ctx, Id offset, Id value, [[maybe_unused]] Id vertex) {
  394. ctx.OpFunctionCall(ctx.void_id, ctx.indexed_store_func, offset, value);
  395. }
  396. Id EmitGetPatch(EmitContext& ctx, IR::Patch patch) {
  397. if (!IR::IsGeneric(patch)) {
  398. throw NotImplementedException("Non-generic patch load");
  399. }
  400. const u32 index{IR::GenericPatchIndex(patch)};
  401. const Id element{ctx.Const(IR::GenericPatchElement(patch))};
  402. const Id type{ctx.stage == Stage::TessellationControl ? ctx.output_f32 : ctx.input_f32};
  403. const Id pointer{ctx.OpAccessChain(type, ctx.patches.at(index), element)};
  404. return ctx.OpLoad(ctx.F32[1], pointer);
  405. }
  406. void EmitSetPatch(EmitContext& ctx, IR::Patch patch, Id value) {
  407. const Id pointer{[&] {
  408. if (IR::IsGeneric(patch)) {
  409. const u32 index{IR::GenericPatchIndex(patch)};
  410. const Id element{ctx.Const(IR::GenericPatchElement(patch))};
  411. return ctx.OpAccessChain(ctx.output_f32, ctx.patches.at(index), element);
  412. }
  413. switch (patch) {
  414. case IR::Patch::TessellationLodLeft:
  415. case IR::Patch::TessellationLodRight:
  416. case IR::Patch::TessellationLodTop:
  417. case IR::Patch::TessellationLodBottom: {
  418. const u32 index{static_cast<u32>(patch) - u32(IR::Patch::TessellationLodLeft)};
  419. const Id index_id{ctx.Const(index)};
  420. return ctx.OpAccessChain(ctx.output_f32, ctx.output_tess_level_outer, index_id);
  421. }
  422. case IR::Patch::TessellationLodInteriorU:
  423. return ctx.OpAccessChain(ctx.output_f32, ctx.output_tess_level_inner,
  424. ctx.u32_zero_value);
  425. case IR::Patch::TessellationLodInteriorV:
  426. return ctx.OpAccessChain(ctx.output_f32, ctx.output_tess_level_inner, ctx.Const(1u));
  427. default:
  428. throw NotImplementedException("Patch {}", patch);
  429. }
  430. }()};
  431. ctx.OpStore(pointer, value);
  432. }
  433. void EmitSetFragColor(EmitContext& ctx, u32 index, u32 component, Id value) {
  434. const Id component_id{ctx.Const(component)};
  435. const Id pointer{ctx.OpAccessChain(ctx.output_f32, ctx.frag_color.at(index), component_id)};
  436. ctx.OpStore(pointer, value);
  437. }
  438. void EmitSetSampleMask(EmitContext& ctx, Id value) {
  439. const Id pointer{ctx.OpAccessChain(ctx.output_u32, ctx.sample_mask, ctx.u32_zero_value)};
  440. ctx.OpStore(pointer, value);
  441. }
  442. void EmitSetFragDepth(EmitContext& ctx, Id value) {
  443. if (!ctx.runtime_info.convert_depth_mode || ctx.profile.support_native_ndc) {
  444. ctx.OpStore(ctx.frag_depth, value);
  445. return;
  446. }
  447. const Id unit{ctx.Const(0.5f)};
  448. const Id new_depth{ctx.OpFma(ctx.F32[1], value, unit, unit)};
  449. ctx.OpStore(ctx.frag_depth, new_depth);
  450. }
  451. void EmitGetZFlag(EmitContext&) {
  452. throw NotImplementedException("SPIR-V Instruction");
  453. }
  454. void EmitGetSFlag(EmitContext&) {
  455. throw NotImplementedException("SPIR-V Instruction");
  456. }
  457. void EmitGetCFlag(EmitContext&) {
  458. throw NotImplementedException("SPIR-V Instruction");
  459. }
  460. void EmitGetOFlag(EmitContext&) {
  461. throw NotImplementedException("SPIR-V Instruction");
  462. }
  463. void EmitSetZFlag(EmitContext&) {
  464. throw NotImplementedException("SPIR-V Instruction");
  465. }
  466. void EmitSetSFlag(EmitContext&) {
  467. throw NotImplementedException("SPIR-V Instruction");
  468. }
  469. void EmitSetCFlag(EmitContext&) {
  470. throw NotImplementedException("SPIR-V Instruction");
  471. }
  472. void EmitSetOFlag(EmitContext&) {
  473. throw NotImplementedException("SPIR-V Instruction");
  474. }
  475. Id EmitWorkgroupId(EmitContext& ctx) {
  476. return ctx.OpLoad(ctx.U32[3], ctx.workgroup_id);
  477. }
  478. Id EmitLocalInvocationId(EmitContext& ctx) {
  479. return ctx.OpLoad(ctx.U32[3], ctx.local_invocation_id);
  480. }
  481. Id EmitInvocationId(EmitContext& ctx) {
  482. return ctx.OpLoad(ctx.U32[1], ctx.invocation_id);
  483. }
  484. Id EmitInvocationInfo(EmitContext& ctx) {
  485. switch (ctx.stage) {
  486. case Stage::TessellationControl:
  487. case Stage::TessellationEval:
  488. return ctx.OpShiftLeftLogical(ctx.U32[1], ctx.OpLoad(ctx.U32[1], ctx.patch_vertices_in),
  489. ctx.Const(16u));
  490. default:
  491. LOG_WARNING(Shader, "(STUBBED) called");
  492. return ctx.Const(0x00ff0000u);
  493. }
  494. }
  495. Id EmitSampleId(EmitContext& ctx) {
  496. return ctx.OpLoad(ctx.U32[1], ctx.sample_id);
  497. }
  498. Id EmitIsHelperInvocation(EmitContext& ctx) {
  499. return ctx.OpLoad(ctx.U1, ctx.is_helper_invocation);
  500. }
  501. Id EmitYDirection(EmitContext& ctx) {
  502. return ctx.Const(ctx.runtime_info.y_negate ? -1.0f : 1.0f);
  503. }
  504. Id EmitResolutionDownFactor(EmitContext& ctx) {
  505. if (ctx.profile.unified_descriptor_binding) {
  506. const Id pointer_type{ctx.TypePointer(spv::StorageClass::PushConstant, ctx.F32[1])};
  507. const Id index{ctx.Const(ctx.rescaling_downfactor_member_index)};
  508. const Id pointer{ctx.OpAccessChain(pointer_type, ctx.rescaling_push_constants, index)};
  509. return ctx.OpLoad(ctx.F32[1], pointer);
  510. } else {
  511. const Id composite{ctx.OpLoad(ctx.F32[4], ctx.rescaling_uniform_constant)};
  512. return ctx.OpCompositeExtract(ctx.F32[1], composite, 2u);
  513. }
  514. }
  515. Id EmitRenderArea(EmitContext& ctx) {
  516. if (ctx.profile.unified_descriptor_binding) {
  517. const Id pointer_type{ctx.TypePointer(spv::StorageClass::PushConstant, ctx.F32[4])};
  518. const Id index{ctx.Const(ctx.render_are_member_index)};
  519. const Id pointer{ctx.OpAccessChain(pointer_type, ctx.render_area_push_constant, index)};
  520. return ctx.OpLoad(ctx.F32[4], pointer);
  521. } else {
  522. throw NotImplementedException("SPIR-V Instruction");
  523. }
  524. }
  525. Id EmitLoadLocal(EmitContext& ctx, Id word_offset) {
  526. const Id pointer{ctx.OpAccessChain(ctx.private_u32, ctx.local_memory, word_offset)};
  527. return ctx.OpLoad(ctx.U32[1], pointer);
  528. }
  529. void EmitWriteLocal(EmitContext& ctx, Id word_offset, Id value) {
  530. const Id pointer{ctx.OpAccessChain(ctx.private_u32, ctx.local_memory, word_offset)};
  531. ctx.OpStore(pointer, value);
  532. }
  533. } // namespace Shader::Backend::SPIRV