ir_emitter.cpp 54 KB

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  1. // Copyright 2021 yuzu Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include "common/bit_cast.h"
  5. #include "shader_recompiler/frontend/ir/ir_emitter.h"
  6. #include "shader_recompiler/frontend/ir/value.h"
  7. namespace Shader::IR {
  8. namespace {
  9. [[noreturn]] void ThrowInvalidType(Type type) {
  10. throw InvalidArgument("Invalid type {}", type);
  11. }
  12. Value MakeLodClampPair(IREmitter& ir, const F32& bias_lod, const F32& lod_clamp) {
  13. if (!bias_lod.IsEmpty() && !lod_clamp.IsEmpty()) {
  14. return ir.CompositeConstruct(bias_lod, lod_clamp);
  15. } else if (!bias_lod.IsEmpty()) {
  16. return bias_lod;
  17. } else if (!lod_clamp.IsEmpty()) {
  18. return lod_clamp;
  19. } else {
  20. return Value{};
  21. }
  22. }
  23. } // Anonymous namespace
  24. U1 IREmitter::Imm1(bool value) const {
  25. return U1{Value{value}};
  26. }
  27. U8 IREmitter::Imm8(u8 value) const {
  28. return U8{Value{value}};
  29. }
  30. U16 IREmitter::Imm16(u16 value) const {
  31. return U16{Value{value}};
  32. }
  33. U32 IREmitter::Imm32(u32 value) const {
  34. return U32{Value{value}};
  35. }
  36. U32 IREmitter::Imm32(s32 value) const {
  37. return U32{Value{static_cast<u32>(value)}};
  38. }
  39. F32 IREmitter::Imm32(f32 value) const {
  40. return F32{Value{value}};
  41. }
  42. U64 IREmitter::Imm64(u64 value) const {
  43. return U64{Value{value}};
  44. }
  45. U64 IREmitter::Imm64(s64 value) const {
  46. return U64{Value{static_cast<u64>(value)}};
  47. }
  48. F64 IREmitter::Imm64(f64 value) const {
  49. return F64{Value{value}};
  50. }
  51. void IREmitter::Branch(Block* label) {
  52. label->AddImmediatePredecessor(block);
  53. block->SetBranch(label);
  54. Inst(Opcode::Branch, label);
  55. }
  56. void IREmitter::BranchConditional(const U1& condition, Block* true_label, Block* false_label) {
  57. block->SetBranches(IR::Condition{true}, true_label, false_label);
  58. true_label->AddImmediatePredecessor(block);
  59. false_label->AddImmediatePredecessor(block);
  60. Inst(Opcode::BranchConditional, condition, true_label, false_label);
  61. }
  62. void IREmitter::LoopMerge(Block* merge_block, Block* continue_target) {
  63. Inst(Opcode::LoopMerge, merge_block, continue_target);
  64. }
  65. void IREmitter::SelectionMerge(Block* merge_block) {
  66. Inst(Opcode::SelectionMerge, merge_block);
  67. }
  68. void IREmitter::Barrier() {
  69. Inst(Opcode::Barrier);
  70. }
  71. void IREmitter::MemoryBarrier(MemoryScope scope) {
  72. switch (scope) {
  73. case MemoryScope::Workgroup:
  74. Inst(Opcode::MemoryBarrierWorkgroupLevel);
  75. break;
  76. case MemoryScope::Device:
  77. Inst(Opcode::MemoryBarrierDeviceLevel);
  78. break;
  79. case MemoryScope::System:
  80. Inst(Opcode::MemoryBarrierSystemLevel);
  81. break;
  82. default:
  83. throw InvalidArgument("Invalid memory scope {}", scope);
  84. }
  85. }
  86. void IREmitter::Return() {
  87. block->SetReturn();
  88. Inst(Opcode::Return);
  89. }
  90. void IREmitter::Unreachable() {
  91. Inst(Opcode::Unreachable);
  92. }
  93. void IREmitter::DemoteToHelperInvocation(Block* continue_label) {
  94. block->SetBranch(continue_label);
  95. continue_label->AddImmediatePredecessor(block);
  96. Inst(Opcode::DemoteToHelperInvocation, continue_label);
  97. }
  98. void IREmitter::Prologue() {
  99. Inst(Opcode::Prologue);
  100. }
  101. void IREmitter::Epilogue() {
  102. Inst(Opcode::Epilogue);
  103. }
  104. U32 IREmitter::GetReg(IR::Reg reg) {
  105. return Inst<U32>(Opcode::GetRegister, reg);
  106. }
  107. void IREmitter::SetReg(IR::Reg reg, const U32& value) {
  108. Inst(Opcode::SetRegister, reg, value);
  109. }
  110. U1 IREmitter::GetPred(IR::Pred pred, bool is_negated) {
  111. const U1 value{Inst<U1>(Opcode::GetPred, pred)};
  112. if (is_negated) {
  113. return Inst<U1>(Opcode::LogicalNot, value);
  114. } else {
  115. return value;
  116. }
  117. }
  118. U1 IREmitter::GetGotoVariable(u32 id) {
  119. return Inst<U1>(Opcode::GetGotoVariable, id);
  120. }
  121. void IREmitter::SetGotoVariable(u32 id, const U1& value) {
  122. Inst(Opcode::SetGotoVariable, id, value);
  123. }
  124. U32 IREmitter::GetIndirectBranchVariable() {
  125. return Inst<U32>(Opcode::GetIndirectBranchVariable);
  126. }
  127. void IREmitter::SetIndirectBranchVariable(const U32& value) {
  128. Inst(Opcode::SetIndirectBranchVariable, value);
  129. }
  130. void IREmitter::SetPred(IR::Pred pred, const U1& value) {
  131. Inst(Opcode::SetPred, pred, value);
  132. }
  133. U32 IREmitter::GetCbuf(const U32& binding, const U32& byte_offset) {
  134. return Inst<U32>(Opcode::GetCbufU32, binding, byte_offset);
  135. }
  136. Value IREmitter::GetCbuf(const U32& binding, const U32& byte_offset, size_t bitsize,
  137. bool is_signed) {
  138. switch (bitsize) {
  139. case 8:
  140. return Inst<U32>(is_signed ? Opcode::GetCbufS8 : Opcode::GetCbufU8, binding, byte_offset);
  141. case 16:
  142. return Inst<U32>(is_signed ? Opcode::GetCbufS16 : Opcode::GetCbufU16, binding, byte_offset);
  143. case 32:
  144. return Inst<U32>(Opcode::GetCbufU32, binding, byte_offset);
  145. case 64:
  146. return Inst(Opcode::GetCbufU32x2, binding, byte_offset);
  147. default:
  148. throw InvalidArgument("Invalid bit size {}", bitsize);
  149. }
  150. }
  151. F32 IREmitter::GetFloatCbuf(const U32& binding, const U32& byte_offset) {
  152. return Inst<F32>(Opcode::GetCbufF32, binding, byte_offset);
  153. }
  154. U1 IREmitter::GetZFlag() {
  155. return Inst<U1>(Opcode::GetZFlag);
  156. }
  157. U1 IREmitter::GetSFlag() {
  158. return Inst<U1>(Opcode::GetSFlag);
  159. }
  160. U1 IREmitter::GetCFlag() {
  161. return Inst<U1>(Opcode::GetCFlag);
  162. }
  163. U1 IREmitter::GetOFlag() {
  164. return Inst<U1>(Opcode::GetOFlag);
  165. }
  166. void IREmitter::SetZFlag(const U1& value) {
  167. Inst(Opcode::SetZFlag, value);
  168. }
  169. void IREmitter::SetSFlag(const U1& value) {
  170. Inst(Opcode::SetSFlag, value);
  171. }
  172. void IREmitter::SetCFlag(const U1& value) {
  173. Inst(Opcode::SetCFlag, value);
  174. }
  175. void IREmitter::SetOFlag(const U1& value) {
  176. Inst(Opcode::SetOFlag, value);
  177. }
  178. static U1 GetFlowTest(IREmitter& ir, FlowTest flow_test) {
  179. switch (flow_test) {
  180. case FlowTest::F:
  181. return ir.Imm1(false);
  182. case FlowTest::LT:
  183. return ir.LogicalXor(ir.LogicalAnd(ir.GetSFlag(), ir.LogicalNot(ir.GetZFlag())),
  184. ir.GetOFlag());
  185. case FlowTest::EQ:
  186. return ir.LogicalAnd(ir.LogicalNot(ir.GetSFlag()), ir.GetZFlag());
  187. case FlowTest::LE:
  188. return ir.LogicalXor(ir.GetSFlag(), ir.LogicalOr(ir.GetZFlag(), ir.GetOFlag()));
  189. case FlowTest::GT:
  190. return ir.LogicalAnd(ir.LogicalXor(ir.LogicalNot(ir.GetSFlag()), ir.GetOFlag()),
  191. ir.LogicalNot(ir.GetZFlag()));
  192. case FlowTest::NE:
  193. return ir.LogicalNot(ir.GetZFlag());
  194. case FlowTest::GE:
  195. return ir.LogicalNot(ir.LogicalXor(ir.GetSFlag(), ir.GetOFlag()));
  196. case FlowTest::NUM:
  197. return ir.LogicalOr(ir.LogicalNot(ir.GetSFlag()), ir.LogicalNot(ir.GetZFlag()));
  198. case FlowTest::NaN:
  199. return ir.LogicalAnd(ir.GetSFlag(), ir.GetZFlag());
  200. case FlowTest::LTU:
  201. return ir.LogicalXor(ir.GetSFlag(), ir.GetOFlag());
  202. case FlowTest::EQU:
  203. return ir.GetZFlag();
  204. case FlowTest::LEU:
  205. return ir.LogicalOr(ir.LogicalXor(ir.GetSFlag(), ir.GetOFlag()), ir.GetZFlag());
  206. case FlowTest::GTU:
  207. return ir.LogicalXor(ir.LogicalNot(ir.GetSFlag()),
  208. ir.LogicalOr(ir.GetZFlag(), ir.GetOFlag()));
  209. case FlowTest::NEU:
  210. return ir.LogicalOr(ir.GetSFlag(), ir.LogicalNot(ir.GetZFlag()));
  211. case FlowTest::GEU:
  212. return ir.LogicalXor(ir.LogicalOr(ir.LogicalNot(ir.GetSFlag()), ir.GetZFlag()),
  213. ir.GetOFlag());
  214. case FlowTest::T:
  215. return ir.Imm1(true);
  216. case FlowTest::OFF:
  217. return ir.LogicalNot(ir.GetOFlag());
  218. case FlowTest::LO:
  219. return ir.LogicalNot(ir.GetCFlag());
  220. case FlowTest::SFF:
  221. return ir.LogicalNot(ir.GetSFlag());
  222. case FlowTest::LS:
  223. return ir.LogicalOr(ir.GetZFlag(), ir.LogicalNot(ir.GetCFlag()));
  224. case FlowTest::HI:
  225. return ir.LogicalAnd(ir.GetCFlag(), ir.LogicalNot(ir.GetZFlag()));
  226. case FlowTest::SFT:
  227. return ir.GetSFlag();
  228. case FlowTest::HS:
  229. return ir.GetCFlag();
  230. case FlowTest::OFT:
  231. return ir.GetOFlag();
  232. case FlowTest::RLE:
  233. return ir.LogicalOr(ir.GetSFlag(), ir.GetZFlag());
  234. case FlowTest::RGT:
  235. return ir.LogicalAnd(ir.LogicalNot(ir.GetSFlag()), ir.LogicalNot(ir.GetZFlag()));
  236. case FlowTest::FCSM_TR:
  237. // LOG_WARNING(ShaderDecompiler, "FCSM_TR CC State (Stubbed)");
  238. return ir.Imm1(false);
  239. case FlowTest::CSM_TA:
  240. case FlowTest::CSM_TR:
  241. case FlowTest::CSM_MX:
  242. case FlowTest::FCSM_TA:
  243. case FlowTest::FCSM_MX:
  244. default:
  245. throw NotImplementedException("Flow test {}", flow_test);
  246. }
  247. }
  248. U1 IREmitter::Condition(IR::Condition cond) {
  249. const FlowTest flow_test{cond.FlowTest()};
  250. const auto [pred, is_negated]{cond.Pred()};
  251. return LogicalAnd(GetPred(pred, is_negated), GetFlowTest(*this, flow_test));
  252. }
  253. U1 IREmitter::GetFlowTestResult(FlowTest test) {
  254. return GetFlowTest(*this, test);
  255. }
  256. F32 IREmitter::GetAttribute(IR::Attribute attribute) {
  257. return Inst<F32>(Opcode::GetAttribute, attribute);
  258. }
  259. void IREmitter::SetAttribute(IR::Attribute attribute, const F32& value) {
  260. Inst(Opcode::SetAttribute, attribute, value);
  261. }
  262. void IREmitter::SetFragColor(u32 index, u32 component, const F32& value) {
  263. Inst(Opcode::SetFragColor, Imm32(index), Imm32(component), value);
  264. }
  265. void IREmitter::SetFragDepth(const F32& value) {
  266. Inst(Opcode::SetFragDepth, value);
  267. }
  268. U32 IREmitter::WorkgroupIdX() {
  269. return U32{CompositeExtract(Inst(Opcode::WorkgroupId), 0)};
  270. }
  271. U32 IREmitter::WorkgroupIdY() {
  272. return U32{CompositeExtract(Inst(Opcode::WorkgroupId), 1)};
  273. }
  274. U32 IREmitter::WorkgroupIdZ() {
  275. return U32{CompositeExtract(Inst(Opcode::WorkgroupId), 2)};
  276. }
  277. U32 IREmitter::LocalInvocationIdX() {
  278. return U32{CompositeExtract(Inst(Opcode::LocalInvocationId), 0)};
  279. }
  280. U32 IREmitter::LocalInvocationIdY() {
  281. return U32{CompositeExtract(Inst(Opcode::LocalInvocationId), 1)};
  282. }
  283. U32 IREmitter::LocalInvocationIdZ() {
  284. return U32{CompositeExtract(Inst(Opcode::LocalInvocationId), 2)};
  285. }
  286. U32 IREmitter::LaneId() {
  287. return Inst<U32>(Opcode::LaneId);
  288. }
  289. U32 IREmitter::LoadGlobalU8(const U64& address) {
  290. return Inst<U32>(Opcode::LoadGlobalU8, address);
  291. }
  292. U32 IREmitter::LoadGlobalS8(const U64& address) {
  293. return Inst<U32>(Opcode::LoadGlobalS8, address);
  294. }
  295. U32 IREmitter::LoadGlobalU16(const U64& address) {
  296. return Inst<U32>(Opcode::LoadGlobalU16, address);
  297. }
  298. U32 IREmitter::LoadGlobalS16(const U64& address) {
  299. return Inst<U32>(Opcode::LoadGlobalS16, address);
  300. }
  301. U32 IREmitter::LoadGlobal32(const U64& address) {
  302. return Inst<U32>(Opcode::LoadGlobal32, address);
  303. }
  304. Value IREmitter::LoadGlobal64(const U64& address) {
  305. return Inst<Value>(Opcode::LoadGlobal64, address);
  306. }
  307. Value IREmitter::LoadGlobal128(const U64& address) {
  308. return Inst<Value>(Opcode::LoadGlobal128, address);
  309. }
  310. void IREmitter::WriteGlobalU8(const U64& address, const U32& value) {
  311. Inst(Opcode::WriteGlobalU8, address, value);
  312. }
  313. void IREmitter::WriteGlobalS8(const U64& address, const U32& value) {
  314. Inst(Opcode::WriteGlobalS8, address, value);
  315. }
  316. void IREmitter::WriteGlobalU16(const U64& address, const U32& value) {
  317. Inst(Opcode::WriteGlobalU16, address, value);
  318. }
  319. void IREmitter::WriteGlobalS16(const U64& address, const U32& value) {
  320. Inst(Opcode::WriteGlobalS16, address, value);
  321. }
  322. void IREmitter::WriteGlobal32(const U64& address, const U32& value) {
  323. Inst(Opcode::WriteGlobal32, address, value);
  324. }
  325. void IREmitter::WriteGlobal64(const U64& address, const IR::Value& vector) {
  326. Inst(Opcode::WriteGlobal64, address, vector);
  327. }
  328. void IREmitter::WriteGlobal128(const U64& address, const IR::Value& vector) {
  329. Inst(Opcode::WriteGlobal128, address, vector);
  330. }
  331. U32 IREmitter::LoadLocal(const IR::U32& word_offset) {
  332. return Inst<U32>(Opcode::LoadLocal, word_offset);
  333. }
  334. void IREmitter::WriteLocal(const IR::U32& word_offset, const IR::U32& value) {
  335. Inst(Opcode::WriteLocal, word_offset, value);
  336. }
  337. Value IREmitter::LoadShared(int bit_size, bool is_signed, const IR::U32& offset) {
  338. switch (bit_size) {
  339. case 8:
  340. return Inst(is_signed ? Opcode::LoadSharedS8 : Opcode::LoadSharedU8, offset);
  341. case 16:
  342. return Inst(is_signed ? Opcode::LoadSharedS16 : Opcode::LoadSharedU16, offset);
  343. case 32:
  344. return Inst(Opcode::LoadSharedU32, offset);
  345. case 64:
  346. return Inst(Opcode::LoadSharedU64, offset);
  347. case 128:
  348. return Inst(Opcode::LoadSharedU128, offset);
  349. }
  350. throw InvalidArgument("Invalid bit size {}", bit_size);
  351. }
  352. void IREmitter::WriteShared(int bit_size, const IR::U32& offset, const IR::Value& value) {
  353. switch (bit_size) {
  354. case 8:
  355. Inst(Opcode::WriteSharedU8, offset, value);
  356. break;
  357. case 16:
  358. Inst(Opcode::WriteSharedU16, offset, value);
  359. break;
  360. case 32:
  361. Inst(Opcode::WriteSharedU32, offset, value);
  362. break;
  363. case 64:
  364. Inst(Opcode::WriteSharedU64, offset, value);
  365. break;
  366. case 128:
  367. Inst(Opcode::WriteSharedU128, offset, value);
  368. break;
  369. default:
  370. throw InvalidArgument("Invalid bit size {}", bit_size);
  371. }
  372. }
  373. U1 IREmitter::GetZeroFromOp(const Value& op) {
  374. return Inst<U1>(Opcode::GetZeroFromOp, op);
  375. }
  376. U1 IREmitter::GetSignFromOp(const Value& op) {
  377. return Inst<U1>(Opcode::GetSignFromOp, op);
  378. }
  379. U1 IREmitter::GetCarryFromOp(const Value& op) {
  380. return Inst<U1>(Opcode::GetCarryFromOp, op);
  381. }
  382. U1 IREmitter::GetOverflowFromOp(const Value& op) {
  383. return Inst<U1>(Opcode::GetOverflowFromOp, op);
  384. }
  385. U1 IREmitter::GetSparseFromOp(const Value& op) {
  386. return Inst<U1>(Opcode::GetSparseFromOp, op);
  387. }
  388. U1 IREmitter::GetInBoundsFromOp(const Value& op) {
  389. return Inst<U1>(Opcode::GetInBoundsFromOp, op);
  390. }
  391. F16F32F64 IREmitter::FPAdd(const F16F32F64& a, const F16F32F64& b, FpControl control) {
  392. if (a.Type() != b.Type()) {
  393. throw InvalidArgument("Mismatching types {} and {}", a.Type(), b.Type());
  394. }
  395. switch (a.Type()) {
  396. case Type::F16:
  397. return Inst<F16>(Opcode::FPAdd16, Flags{control}, a, b);
  398. case Type::F32:
  399. return Inst<F32>(Opcode::FPAdd32, Flags{control}, a, b);
  400. case Type::F64:
  401. return Inst<F64>(Opcode::FPAdd64, Flags{control}, a, b);
  402. default:
  403. ThrowInvalidType(a.Type());
  404. }
  405. }
  406. Value IREmitter::CompositeConstruct(const Value& e1, const Value& e2) {
  407. if (e1.Type() != e2.Type()) {
  408. throw InvalidArgument("Mismatching types {} and {}", e1.Type(), e2.Type());
  409. }
  410. switch (e1.Type()) {
  411. case Type::U32:
  412. return Inst(Opcode::CompositeConstructU32x2, e1, e2);
  413. case Type::F16:
  414. return Inst(Opcode::CompositeConstructF16x2, e1, e2);
  415. case Type::F32:
  416. return Inst(Opcode::CompositeConstructF32x2, e1, e2);
  417. case Type::F64:
  418. return Inst(Opcode::CompositeConstructF64x2, e1, e2);
  419. default:
  420. ThrowInvalidType(e1.Type());
  421. }
  422. }
  423. Value IREmitter::CompositeConstruct(const Value& e1, const Value& e2, const Value& e3) {
  424. if (e1.Type() != e2.Type() || e1.Type() != e3.Type()) {
  425. throw InvalidArgument("Mismatching types {}, {}, and {}", e1.Type(), e2.Type(), e3.Type());
  426. }
  427. switch (e1.Type()) {
  428. case Type::U32:
  429. return Inst(Opcode::CompositeConstructU32x3, e1, e2, e3);
  430. case Type::F16:
  431. return Inst(Opcode::CompositeConstructF16x3, e1, e2, e3);
  432. case Type::F32:
  433. return Inst(Opcode::CompositeConstructF32x3, e1, e2, e3);
  434. case Type::F64:
  435. return Inst(Opcode::CompositeConstructF64x3, e1, e2, e3);
  436. default:
  437. ThrowInvalidType(e1.Type());
  438. }
  439. }
  440. Value IREmitter::CompositeConstruct(const Value& e1, const Value& e2, const Value& e3,
  441. const Value& e4) {
  442. if (e1.Type() != e2.Type() || e1.Type() != e3.Type() || e1.Type() != e4.Type()) {
  443. throw InvalidArgument("Mismatching types {}, {}, {}, and {}", e1.Type(), e2.Type(),
  444. e3.Type(), e4.Type());
  445. }
  446. switch (e1.Type()) {
  447. case Type::U32:
  448. return Inst(Opcode::CompositeConstructU32x4, e1, e2, e3, e4);
  449. case Type::F16:
  450. return Inst(Opcode::CompositeConstructF16x4, e1, e2, e3, e4);
  451. case Type::F32:
  452. return Inst(Opcode::CompositeConstructF32x4, e1, e2, e3, e4);
  453. case Type::F64:
  454. return Inst(Opcode::CompositeConstructF64x4, e1, e2, e3, e4);
  455. default:
  456. ThrowInvalidType(e1.Type());
  457. }
  458. }
  459. Value IREmitter::CompositeExtract(const Value& vector, size_t element) {
  460. const auto read{[&](Opcode opcode, size_t limit) -> Value {
  461. if (element >= limit) {
  462. throw InvalidArgument("Out of bounds element {}", element);
  463. }
  464. return Inst(opcode, vector, Value{static_cast<u32>(element)});
  465. }};
  466. switch (vector.Type()) {
  467. case Type::U32x2:
  468. return read(Opcode::CompositeExtractU32x2, 2);
  469. case Type::U32x3:
  470. return read(Opcode::CompositeExtractU32x3, 3);
  471. case Type::U32x4:
  472. return read(Opcode::CompositeExtractU32x4, 4);
  473. case Type::F16x2:
  474. return read(Opcode::CompositeExtractF16x2, 2);
  475. case Type::F16x3:
  476. return read(Opcode::CompositeExtractF16x3, 3);
  477. case Type::F16x4:
  478. return read(Opcode::CompositeExtractF16x4, 4);
  479. case Type::F32x2:
  480. return read(Opcode::CompositeExtractF32x2, 2);
  481. case Type::F32x3:
  482. return read(Opcode::CompositeExtractF32x3, 3);
  483. case Type::F32x4:
  484. return read(Opcode::CompositeExtractF32x4, 4);
  485. case Type::F64x2:
  486. return read(Opcode::CompositeExtractF64x2, 2);
  487. case Type::F64x3:
  488. return read(Opcode::CompositeExtractF64x3, 3);
  489. case Type::F64x4:
  490. return read(Opcode::CompositeExtractF64x4, 4);
  491. default:
  492. ThrowInvalidType(vector.Type());
  493. }
  494. }
  495. Value IREmitter::CompositeInsert(const Value& vector, const Value& object, size_t element) {
  496. const auto insert{[&](Opcode opcode, size_t limit) {
  497. if (element >= limit) {
  498. throw InvalidArgument("Out of bounds element {}", element);
  499. }
  500. return Inst(opcode, vector, object, Value{static_cast<u32>(element)});
  501. }};
  502. switch (vector.Type()) {
  503. case Type::U32x2:
  504. return insert(Opcode::CompositeInsertU32x2, 2);
  505. case Type::U32x3:
  506. return insert(Opcode::CompositeInsertU32x3, 3);
  507. case Type::U32x4:
  508. return insert(Opcode::CompositeInsertU32x4, 4);
  509. case Type::F16x2:
  510. return insert(Opcode::CompositeInsertF16x2, 2);
  511. case Type::F16x3:
  512. return insert(Opcode::CompositeInsertF16x3, 3);
  513. case Type::F16x4:
  514. return insert(Opcode::CompositeInsertF16x4, 4);
  515. case Type::F32x2:
  516. return insert(Opcode::CompositeInsertF32x2, 2);
  517. case Type::F32x3:
  518. return insert(Opcode::CompositeInsertF32x3, 3);
  519. case Type::F32x4:
  520. return insert(Opcode::CompositeInsertF32x4, 4);
  521. case Type::F64x2:
  522. return insert(Opcode::CompositeInsertF64x2, 2);
  523. case Type::F64x3:
  524. return insert(Opcode::CompositeInsertF64x3, 3);
  525. case Type::F64x4:
  526. return insert(Opcode::CompositeInsertF64x4, 4);
  527. default:
  528. ThrowInvalidType(vector.Type());
  529. }
  530. }
  531. Value IREmitter::Select(const U1& condition, const Value& true_value, const Value& false_value) {
  532. if (true_value.Type() != false_value.Type()) {
  533. throw InvalidArgument("Mismatching types {} and {}", true_value.Type(), false_value.Type());
  534. }
  535. switch (true_value.Type()) {
  536. case Type::U1:
  537. return Inst(Opcode::SelectU1, condition, true_value, false_value);
  538. case Type::U8:
  539. return Inst(Opcode::SelectU8, condition, true_value, false_value);
  540. case Type::U16:
  541. return Inst(Opcode::SelectU16, condition, true_value, false_value);
  542. case Type::U32:
  543. return Inst(Opcode::SelectU32, condition, true_value, false_value);
  544. case Type::U64:
  545. return Inst(Opcode::SelectU64, condition, true_value, false_value);
  546. case Type::F32:
  547. return Inst(Opcode::SelectF32, condition, true_value, false_value);
  548. case Type::F64:
  549. return Inst(Opcode::SelectF64, condition, true_value, false_value);
  550. default:
  551. throw InvalidArgument("Invalid type {}", true_value.Type());
  552. }
  553. }
  554. template <>
  555. IR::U32 IREmitter::BitCast<IR::U32, IR::F32>(const IR::F32& value) {
  556. return Inst<IR::U32>(Opcode::BitCastU32F32, value);
  557. }
  558. template <>
  559. IR::F32 IREmitter::BitCast<IR::F32, IR::U32>(const IR::U32& value) {
  560. return Inst<IR::F32>(Opcode::BitCastF32U32, value);
  561. }
  562. template <>
  563. IR::U16 IREmitter::BitCast<IR::U16, IR::F16>(const IR::F16& value) {
  564. return Inst<IR::U16>(Opcode::BitCastU16F16, value);
  565. }
  566. template <>
  567. IR::F16 IREmitter::BitCast<IR::F16, IR::U16>(const IR::U16& value) {
  568. return Inst<IR::F16>(Opcode::BitCastF16U16, value);
  569. }
  570. template <>
  571. IR::U64 IREmitter::BitCast<IR::U64, IR::F64>(const IR::F64& value) {
  572. return Inst<IR::U64>(Opcode::BitCastU64F64, value);
  573. }
  574. template <>
  575. IR::F64 IREmitter::BitCast<IR::F64, IR::U64>(const IR::U64& value) {
  576. return Inst<IR::F64>(Opcode::BitCastF64U64, value);
  577. }
  578. U64 IREmitter::PackUint2x32(const Value& vector) {
  579. return Inst<U64>(Opcode::PackUint2x32, vector);
  580. }
  581. Value IREmitter::UnpackUint2x32(const U64& value) {
  582. return Inst<Value>(Opcode::UnpackUint2x32, value);
  583. }
  584. U32 IREmitter::PackFloat2x16(const Value& vector) {
  585. return Inst<U32>(Opcode::PackFloat2x16, vector);
  586. }
  587. Value IREmitter::UnpackFloat2x16(const U32& value) {
  588. return Inst(Opcode::UnpackFloat2x16, value);
  589. }
  590. U32 IREmitter::PackHalf2x16(const Value& vector) {
  591. return Inst<U32>(Opcode::PackHalf2x16, vector);
  592. }
  593. Value IREmitter::UnpackHalf2x16(const U32& value) {
  594. return Inst(Opcode::UnpackHalf2x16, value);
  595. }
  596. F64 IREmitter::PackDouble2x32(const Value& vector) {
  597. return Inst<F64>(Opcode::PackDouble2x32, vector);
  598. }
  599. Value IREmitter::UnpackDouble2x32(const F64& value) {
  600. return Inst<Value>(Opcode::UnpackDouble2x32, value);
  601. }
  602. F16F32F64 IREmitter::FPMul(const F16F32F64& a, const F16F32F64& b, FpControl control) {
  603. if (a.Type() != b.Type()) {
  604. throw InvalidArgument("Mismatching types {} and {}", a.Type(), b.Type());
  605. }
  606. switch (a.Type()) {
  607. case Type::F16:
  608. return Inst<F16>(Opcode::FPMul16, Flags{control}, a, b);
  609. case Type::F32:
  610. return Inst<F32>(Opcode::FPMul32, Flags{control}, a, b);
  611. case Type::F64:
  612. return Inst<F64>(Opcode::FPMul64, Flags{control}, a, b);
  613. default:
  614. ThrowInvalidType(a.Type());
  615. }
  616. }
  617. F16F32F64 IREmitter::FPFma(const F16F32F64& a, const F16F32F64& b, const F16F32F64& c,
  618. FpControl control) {
  619. if (a.Type() != b.Type() || a.Type() != c.Type()) {
  620. throw InvalidArgument("Mismatching types {}, {}, and {}", a.Type(), b.Type(), c.Type());
  621. }
  622. switch (a.Type()) {
  623. case Type::F16:
  624. return Inst<F16>(Opcode::FPFma16, Flags{control}, a, b, c);
  625. case Type::F32:
  626. return Inst<F32>(Opcode::FPFma32, Flags{control}, a, b, c);
  627. case Type::F64:
  628. return Inst<F64>(Opcode::FPFma64, Flags{control}, a, b, c);
  629. default:
  630. ThrowInvalidType(a.Type());
  631. }
  632. }
  633. F16F32F64 IREmitter::FPAbs(const F16F32F64& value) {
  634. switch (value.Type()) {
  635. case Type::F16:
  636. return Inst<F16>(Opcode::FPAbs16, value);
  637. case Type::F32:
  638. return Inst<F32>(Opcode::FPAbs32, value);
  639. case Type::F64:
  640. return Inst<F64>(Opcode::FPAbs64, value);
  641. default:
  642. ThrowInvalidType(value.Type());
  643. }
  644. }
  645. F16F32F64 IREmitter::FPNeg(const F16F32F64& value) {
  646. switch (value.Type()) {
  647. case Type::F16:
  648. return Inst<F16>(Opcode::FPNeg16, value);
  649. case Type::F32:
  650. return Inst<F32>(Opcode::FPNeg32, value);
  651. case Type::F64:
  652. return Inst<F64>(Opcode::FPNeg64, value);
  653. default:
  654. ThrowInvalidType(value.Type());
  655. }
  656. }
  657. F16F32F64 IREmitter::FPAbsNeg(const F16F32F64& value, bool abs, bool neg) {
  658. F16F32F64 result{value};
  659. if (abs) {
  660. result = FPAbs(result);
  661. }
  662. if (neg) {
  663. result = FPNeg(result);
  664. }
  665. return result;
  666. }
  667. F32 IREmitter::FPCos(const F32& value) {
  668. return Inst<F32>(Opcode::FPCos, value);
  669. }
  670. F32 IREmitter::FPSin(const F32& value) {
  671. return Inst<F32>(Opcode::FPSin, value);
  672. }
  673. F32 IREmitter::FPExp2(const F32& value) {
  674. return Inst<F32>(Opcode::FPExp2, value);
  675. }
  676. F32 IREmitter::FPLog2(const F32& value) {
  677. return Inst<F32>(Opcode::FPLog2, value);
  678. }
  679. F32F64 IREmitter::FPRecip(const F32F64& value) {
  680. switch (value.Type()) {
  681. case Type::F32:
  682. return Inst<F32>(Opcode::FPRecip32, value);
  683. case Type::F64:
  684. return Inst<F64>(Opcode::FPRecip64, value);
  685. default:
  686. ThrowInvalidType(value.Type());
  687. }
  688. }
  689. F32F64 IREmitter::FPRecipSqrt(const F32F64& value) {
  690. switch (value.Type()) {
  691. case Type::F32:
  692. return Inst<F32>(Opcode::FPRecipSqrt32, value);
  693. case Type::F64:
  694. return Inst<F64>(Opcode::FPRecipSqrt64, value);
  695. default:
  696. ThrowInvalidType(value.Type());
  697. }
  698. }
  699. F32 IREmitter::FPSqrt(const F32& value) {
  700. return Inst<F32>(Opcode::FPSqrt, value);
  701. }
  702. F16F32F64 IREmitter::FPSaturate(const F16F32F64& value) {
  703. switch (value.Type()) {
  704. case Type::F16:
  705. return Inst<F16>(Opcode::FPSaturate16, value);
  706. case Type::F32:
  707. return Inst<F32>(Opcode::FPSaturate32, value);
  708. case Type::F64:
  709. return Inst<F64>(Opcode::FPSaturate64, value);
  710. default:
  711. ThrowInvalidType(value.Type());
  712. }
  713. }
  714. F16F32F64 IREmitter::FPClamp(const F16F32F64& value, const F16F32F64& min_value,
  715. const F16F32F64& max_value) {
  716. if (value.Type() != min_value.Type() || value.Type() != max_value.Type()) {
  717. throw InvalidArgument("Mismatching types {}, {}, and {}", value.Type(), min_value.Type(),
  718. max_value.Type());
  719. }
  720. switch (value.Type()) {
  721. case Type::F16:
  722. return Inst<F16>(Opcode::FPClamp16, value, min_value, max_value);
  723. case Type::F32:
  724. return Inst<F32>(Opcode::FPClamp32, value, min_value, max_value);
  725. case Type::F64:
  726. return Inst<F64>(Opcode::FPClamp64, value, min_value, max_value);
  727. default:
  728. ThrowInvalidType(value.Type());
  729. }
  730. }
  731. F16F32F64 IREmitter::FPRoundEven(const F16F32F64& value, FpControl control) {
  732. switch (value.Type()) {
  733. case Type::F16:
  734. return Inst<F16>(Opcode::FPRoundEven16, Flags{control}, value);
  735. case Type::F32:
  736. return Inst<F32>(Opcode::FPRoundEven32, Flags{control}, value);
  737. case Type::F64:
  738. return Inst<F64>(Opcode::FPRoundEven64, Flags{control}, value);
  739. default:
  740. ThrowInvalidType(value.Type());
  741. }
  742. }
  743. F16F32F64 IREmitter::FPFloor(const F16F32F64& value, FpControl control) {
  744. switch (value.Type()) {
  745. case Type::F16:
  746. return Inst<F16>(Opcode::FPFloor16, Flags{control}, value);
  747. case Type::F32:
  748. return Inst<F32>(Opcode::FPFloor32, Flags{control}, value);
  749. case Type::F64:
  750. return Inst<F64>(Opcode::FPFloor64, Flags{control}, value);
  751. default:
  752. ThrowInvalidType(value.Type());
  753. }
  754. }
  755. F16F32F64 IREmitter::FPCeil(const F16F32F64& value, FpControl control) {
  756. switch (value.Type()) {
  757. case Type::F16:
  758. return Inst<F16>(Opcode::FPCeil16, Flags{control}, value);
  759. case Type::F32:
  760. return Inst<F32>(Opcode::FPCeil32, Flags{control}, value);
  761. case Type::F64:
  762. return Inst<F64>(Opcode::FPCeil64, Flags{control}, value);
  763. default:
  764. ThrowInvalidType(value.Type());
  765. }
  766. }
  767. F16F32F64 IREmitter::FPTrunc(const F16F32F64& value, FpControl control) {
  768. switch (value.Type()) {
  769. case Type::F16:
  770. return Inst<F16>(Opcode::FPTrunc16, Flags{control}, value);
  771. case Type::F32:
  772. return Inst<F32>(Opcode::FPTrunc32, Flags{control}, value);
  773. case Type::F64:
  774. return Inst<F64>(Opcode::FPTrunc64, Flags{control}, value);
  775. default:
  776. ThrowInvalidType(value.Type());
  777. }
  778. }
  779. U1 IREmitter::FPEqual(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control, bool ordered) {
  780. if (lhs.Type() != rhs.Type()) {
  781. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  782. }
  783. switch (lhs.Type()) {
  784. case Type::F16:
  785. return Inst<U1>(ordered ? Opcode::FPOrdEqual16 : Opcode::FPUnordEqual16, Flags{control},
  786. lhs, rhs);
  787. case Type::F32:
  788. return Inst<U1>(ordered ? Opcode::FPOrdEqual32 : Opcode::FPUnordEqual32, Flags{control},
  789. lhs, rhs);
  790. case Type::F64:
  791. return Inst<U1>(ordered ? Opcode::FPOrdEqual64 : Opcode::FPUnordEqual64, Flags{control},
  792. lhs, rhs);
  793. default:
  794. ThrowInvalidType(lhs.Type());
  795. }
  796. }
  797. U1 IREmitter::FPNotEqual(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control,
  798. bool ordered) {
  799. if (lhs.Type() != rhs.Type()) {
  800. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  801. }
  802. switch (lhs.Type()) {
  803. case Type::F16:
  804. return Inst<U1>(ordered ? Opcode::FPOrdNotEqual16 : Opcode::FPUnordNotEqual16,
  805. Flags{control}, lhs, rhs);
  806. case Type::F32:
  807. return Inst<U1>(ordered ? Opcode::FPOrdNotEqual32 : Opcode::FPUnordNotEqual32,
  808. Flags{control}, lhs, rhs);
  809. case Type::F64:
  810. return Inst<U1>(ordered ? Opcode::FPOrdNotEqual64 : Opcode::FPUnordNotEqual64,
  811. Flags{control}, lhs, rhs);
  812. default:
  813. ThrowInvalidType(lhs.Type());
  814. }
  815. }
  816. U1 IREmitter::FPLessThan(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control,
  817. bool ordered) {
  818. if (lhs.Type() != rhs.Type()) {
  819. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  820. }
  821. switch (lhs.Type()) {
  822. case Type::F16:
  823. return Inst<U1>(ordered ? Opcode::FPOrdLessThan16 : Opcode::FPUnordLessThan16,
  824. Flags{control}, lhs, rhs);
  825. case Type::F32:
  826. return Inst<U1>(ordered ? Opcode::FPOrdLessThan32 : Opcode::FPUnordLessThan32,
  827. Flags{control}, lhs, rhs);
  828. case Type::F64:
  829. return Inst<U1>(ordered ? Opcode::FPOrdLessThan64 : Opcode::FPUnordLessThan64,
  830. Flags{control}, lhs, rhs);
  831. default:
  832. ThrowInvalidType(lhs.Type());
  833. }
  834. }
  835. U1 IREmitter::FPGreaterThan(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control,
  836. bool ordered) {
  837. if (lhs.Type() != rhs.Type()) {
  838. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  839. }
  840. switch (lhs.Type()) {
  841. case Type::F16:
  842. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThan16 : Opcode::FPUnordGreaterThan16,
  843. Flags{control}, lhs, rhs);
  844. case Type::F32:
  845. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThan32 : Opcode::FPUnordGreaterThan32,
  846. Flags{control}, lhs, rhs);
  847. case Type::F64:
  848. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThan64 : Opcode::FPUnordGreaterThan64,
  849. Flags{control}, lhs, rhs);
  850. default:
  851. ThrowInvalidType(lhs.Type());
  852. }
  853. }
  854. U1 IREmitter::FPLessThanEqual(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control,
  855. bool ordered) {
  856. if (lhs.Type() != rhs.Type()) {
  857. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  858. }
  859. switch (lhs.Type()) {
  860. case Type::F16:
  861. return Inst<U1>(ordered ? Opcode::FPOrdLessThanEqual16 : Opcode::FPUnordLessThanEqual16,
  862. Flags{control}, lhs, rhs);
  863. case Type::F32:
  864. return Inst<U1>(ordered ? Opcode::FPOrdLessThanEqual32 : Opcode::FPUnordLessThanEqual32,
  865. Flags{control}, lhs, rhs);
  866. case Type::F64:
  867. return Inst<U1>(ordered ? Opcode::FPOrdLessThanEqual64 : Opcode::FPUnordLessThanEqual64,
  868. Flags{control}, lhs, rhs);
  869. default:
  870. ThrowInvalidType(lhs.Type());
  871. }
  872. }
  873. U1 IREmitter::FPGreaterThanEqual(const F16F32F64& lhs, const F16F32F64& rhs, FpControl control,
  874. bool ordered) {
  875. if (lhs.Type() != rhs.Type()) {
  876. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  877. }
  878. switch (lhs.Type()) {
  879. case Type::F16:
  880. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThanEqual16
  881. : Opcode::FPUnordGreaterThanEqual16,
  882. Flags{control}, lhs, rhs);
  883. case Type::F32:
  884. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThanEqual32
  885. : Opcode::FPUnordGreaterThanEqual32,
  886. Flags{control}, lhs, rhs);
  887. case Type::F64:
  888. return Inst<U1>(ordered ? Opcode::FPOrdGreaterThanEqual64
  889. : Opcode::FPUnordGreaterThanEqual64,
  890. Flags{control}, lhs, rhs);
  891. default:
  892. ThrowInvalidType(lhs.Type());
  893. }
  894. }
  895. U1 IREmitter::FPIsNan(const F16F32F64& value) {
  896. switch (value.Type()) {
  897. case Type::F16:
  898. return Inst<U1>(Opcode::FPIsNan16, value);
  899. case Type::F32:
  900. return Inst<U1>(Opcode::FPIsNan32, value);
  901. case Type::F64:
  902. return Inst<U1>(Opcode::FPIsNan64, value);
  903. default:
  904. ThrowInvalidType(value.Type());
  905. }
  906. }
  907. U1 IREmitter::FPOrdered(const F16F32F64& lhs, const F16F32F64& rhs) {
  908. if (lhs.Type() != rhs.Type()) {
  909. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  910. }
  911. return LogicalAnd(LogicalNot(FPIsNan(lhs)), LogicalNot(FPIsNan(rhs)));
  912. }
  913. U1 IREmitter::FPUnordered(const F16F32F64& lhs, const F16F32F64& rhs) {
  914. if (lhs.Type() != rhs.Type()) {
  915. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  916. }
  917. return LogicalOr(FPIsNan(lhs), FPIsNan(rhs));
  918. }
  919. F32F64 IREmitter::FPMax(const F32F64& lhs, const F32F64& rhs, FpControl control) {
  920. if (lhs.Type() != rhs.Type()) {
  921. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  922. }
  923. switch (lhs.Type()) {
  924. case Type::F32:
  925. return Inst<F32>(Opcode::FPMax32, Flags{control}, lhs, rhs);
  926. case Type::F64:
  927. return Inst<F64>(Opcode::FPMax64, Flags{control}, lhs, rhs);
  928. default:
  929. ThrowInvalidType(lhs.Type());
  930. }
  931. }
  932. F32F64 IREmitter::FPMin(const F32F64& lhs, const F32F64& rhs, FpControl control) {
  933. if (lhs.Type() != rhs.Type()) {
  934. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  935. }
  936. switch (lhs.Type()) {
  937. case Type::F32:
  938. return Inst<F32>(Opcode::FPMin32, Flags{control}, lhs, rhs);
  939. case Type::F64:
  940. return Inst<F64>(Opcode::FPMin64, Flags{control}, lhs, rhs);
  941. default:
  942. ThrowInvalidType(lhs.Type());
  943. }
  944. }
  945. U32U64 IREmitter::IAdd(const U32U64& a, const U32U64& b) {
  946. if (a.Type() != b.Type()) {
  947. throw InvalidArgument("Mismatching types {} and {}", a.Type(), b.Type());
  948. }
  949. switch (a.Type()) {
  950. case Type::U32:
  951. return Inst<U32>(Opcode::IAdd32, a, b);
  952. case Type::U64:
  953. return Inst<U64>(Opcode::IAdd64, a, b);
  954. default:
  955. ThrowInvalidType(a.Type());
  956. }
  957. }
  958. U32U64 IREmitter::ISub(const U32U64& a, const U32U64& b) {
  959. if (a.Type() != b.Type()) {
  960. throw InvalidArgument("Mismatching types {} and {}", a.Type(), b.Type());
  961. }
  962. switch (a.Type()) {
  963. case Type::U32:
  964. return Inst<U32>(Opcode::ISub32, a, b);
  965. case Type::U64:
  966. return Inst<U64>(Opcode::ISub64, a, b);
  967. default:
  968. ThrowInvalidType(a.Type());
  969. }
  970. }
  971. U32 IREmitter::IMul(const U32& a, const U32& b) {
  972. return Inst<U32>(Opcode::IMul32, a, b);
  973. }
  974. U32U64 IREmitter::INeg(const U32U64& value) {
  975. switch (value.Type()) {
  976. case Type::U32:
  977. return Inst<U32>(Opcode::INeg32, value);
  978. case Type::U64:
  979. return Inst<U64>(Opcode::INeg64, value);
  980. default:
  981. ThrowInvalidType(value.Type());
  982. }
  983. }
  984. U32U64 IREmitter::IAbs(const U32U64& value) {
  985. switch (value.Type()) {
  986. case Type::U32:
  987. return Inst<U32>(Opcode::IAbs32, value);
  988. case Type::U64:
  989. return Inst<U64>(Opcode::IAbs64, value);
  990. default:
  991. ThrowInvalidType(value.Type());
  992. }
  993. }
  994. U32U64 IREmitter::ShiftLeftLogical(const U32U64& base, const U32& shift) {
  995. switch (base.Type()) {
  996. case Type::U32:
  997. return Inst<U32>(Opcode::ShiftLeftLogical32, base, shift);
  998. case Type::U64:
  999. return Inst<U64>(Opcode::ShiftLeftLogical64, base, shift);
  1000. default:
  1001. ThrowInvalidType(base.Type());
  1002. }
  1003. }
  1004. U32U64 IREmitter::ShiftRightLogical(const U32U64& base, const U32& shift) {
  1005. switch (base.Type()) {
  1006. case Type::U32:
  1007. return Inst<U32>(Opcode::ShiftRightLogical32, base, shift);
  1008. case Type::U64:
  1009. return Inst<U64>(Opcode::ShiftRightLogical64, base, shift);
  1010. default:
  1011. ThrowInvalidType(base.Type());
  1012. }
  1013. }
  1014. U32U64 IREmitter::ShiftRightArithmetic(const U32U64& base, const U32& shift) {
  1015. switch (base.Type()) {
  1016. case Type::U32:
  1017. return Inst<U32>(Opcode::ShiftRightArithmetic32, base, shift);
  1018. case Type::U64:
  1019. return Inst<U64>(Opcode::ShiftRightArithmetic64, base, shift);
  1020. default:
  1021. ThrowInvalidType(base.Type());
  1022. }
  1023. }
  1024. U32 IREmitter::BitwiseAnd(const U32& a, const U32& b) {
  1025. return Inst<U32>(Opcode::BitwiseAnd32, a, b);
  1026. }
  1027. U32 IREmitter::BitwiseOr(const U32& a, const U32& b) {
  1028. return Inst<U32>(Opcode::BitwiseOr32, a, b);
  1029. }
  1030. U32 IREmitter::BitwiseXor(const U32& a, const U32& b) {
  1031. return Inst<U32>(Opcode::BitwiseXor32, a, b);
  1032. }
  1033. U32 IREmitter::BitFieldInsert(const U32& base, const U32& insert, const U32& offset,
  1034. const U32& count) {
  1035. return Inst<U32>(Opcode::BitFieldInsert, base, insert, offset, count);
  1036. }
  1037. U32 IREmitter::BitFieldExtract(const U32& base, const U32& offset, const U32& count,
  1038. bool is_signed) {
  1039. return Inst<U32>(is_signed ? Opcode::BitFieldSExtract : Opcode::BitFieldUExtract, base, offset,
  1040. count);
  1041. }
  1042. U32 IREmitter::BitReverse(const U32& value) {
  1043. return Inst<U32>(Opcode::BitReverse32, value);
  1044. }
  1045. U32 IREmitter::BitCount(const U32& value) {
  1046. return Inst<U32>(Opcode::BitCount32, value);
  1047. }
  1048. U32 IREmitter::BitwiseNot(const U32& value) {
  1049. return Inst<U32>(Opcode::BitwiseNot32, value);
  1050. }
  1051. U32 IREmitter::FindSMsb(const U32& value) {
  1052. return Inst<U32>(Opcode::FindSMsb32, value);
  1053. }
  1054. U32 IREmitter::FindUMsb(const U32& value) {
  1055. return Inst<U32>(Opcode::FindUMsb32, value);
  1056. }
  1057. U32 IREmitter::SMin(const U32& a, const U32& b) {
  1058. return Inst<U32>(Opcode::SMin32, a, b);
  1059. }
  1060. U32 IREmitter::UMin(const U32& a, const U32& b) {
  1061. return Inst<U32>(Opcode::UMin32, a, b);
  1062. }
  1063. U32 IREmitter::IMin(const U32& a, const U32& b, bool is_signed) {
  1064. return is_signed ? SMin(a, b) : UMin(a, b);
  1065. }
  1066. U32 IREmitter::SMax(const U32& a, const U32& b) {
  1067. return Inst<U32>(Opcode::SMax32, a, b);
  1068. }
  1069. U32 IREmitter::UMax(const U32& a, const U32& b) {
  1070. return Inst<U32>(Opcode::UMax32, a, b);
  1071. }
  1072. U32 IREmitter::IMax(const U32& a, const U32& b, bool is_signed) {
  1073. return is_signed ? SMax(a, b) : UMax(a, b);
  1074. }
  1075. U32 IREmitter::SClamp(const U32& value, const U32& min, const U32& max) {
  1076. return Inst<U32>(Opcode::SClamp32, value, min, max);
  1077. }
  1078. U32 IREmitter::UClamp(const U32& value, const U32& min, const U32& max) {
  1079. return Inst<U32>(Opcode::UClamp32, value, min, max);
  1080. }
  1081. U1 IREmitter::ILessThan(const U32& lhs, const U32& rhs, bool is_signed) {
  1082. return Inst<U1>(is_signed ? Opcode::SLessThan : Opcode::ULessThan, lhs, rhs);
  1083. }
  1084. U1 IREmitter::IEqual(const U32U64& lhs, const U32U64& rhs) {
  1085. if (lhs.Type() != rhs.Type()) {
  1086. throw InvalidArgument("Mismatching types {} and {}", lhs.Type(), rhs.Type());
  1087. }
  1088. switch (lhs.Type()) {
  1089. case Type::U32:
  1090. return Inst<U1>(Opcode::IEqual, lhs, rhs);
  1091. case Type::U64: {
  1092. // Manually compare the unpacked values
  1093. const Value lhs_vector{UnpackUint2x32(lhs)};
  1094. const Value rhs_vector{UnpackUint2x32(rhs)};
  1095. return LogicalAnd(IEqual(IR::U32{CompositeExtract(lhs_vector, 0)},
  1096. IR::U32{CompositeExtract(rhs_vector, 0)}),
  1097. IEqual(IR::U32{CompositeExtract(lhs_vector, 1)},
  1098. IR::U32{CompositeExtract(rhs_vector, 1)}));
  1099. }
  1100. default:
  1101. ThrowInvalidType(lhs.Type());
  1102. }
  1103. }
  1104. U1 IREmitter::ILessThanEqual(const U32& lhs, const U32& rhs, bool is_signed) {
  1105. return Inst<U1>(is_signed ? Opcode::SLessThanEqual : Opcode::ULessThanEqual, lhs, rhs);
  1106. }
  1107. U1 IREmitter::IGreaterThan(const U32& lhs, const U32& rhs, bool is_signed) {
  1108. return Inst<U1>(is_signed ? Opcode::SGreaterThan : Opcode::UGreaterThan, lhs, rhs);
  1109. }
  1110. U1 IREmitter::INotEqual(const U32& lhs, const U32& rhs) {
  1111. return Inst<U1>(Opcode::INotEqual, lhs, rhs);
  1112. }
  1113. U1 IREmitter::IGreaterThanEqual(const U32& lhs, const U32& rhs, bool is_signed) {
  1114. return Inst<U1>(is_signed ? Opcode::SGreaterThanEqual : Opcode::UGreaterThanEqual, lhs, rhs);
  1115. }
  1116. U1 IREmitter::LogicalOr(const U1& a, const U1& b) {
  1117. return Inst<U1>(Opcode::LogicalOr, a, b);
  1118. }
  1119. U1 IREmitter::LogicalAnd(const U1& a, const U1& b) {
  1120. return Inst<U1>(Opcode::LogicalAnd, a, b);
  1121. }
  1122. U1 IREmitter::LogicalXor(const U1& a, const U1& b) {
  1123. return Inst<U1>(Opcode::LogicalXor, a, b);
  1124. }
  1125. U1 IREmitter::LogicalNot(const U1& value) {
  1126. return Inst<U1>(Opcode::LogicalNot, value);
  1127. }
  1128. U32U64 IREmitter::ConvertFToS(size_t bitsize, const F16F32F64& value) {
  1129. switch (bitsize) {
  1130. case 16:
  1131. switch (value.Type()) {
  1132. case Type::F16:
  1133. return Inst<U32>(Opcode::ConvertS16F16, value);
  1134. case Type::F32:
  1135. return Inst<U32>(Opcode::ConvertS16F32, value);
  1136. case Type::F64:
  1137. return Inst<U32>(Opcode::ConvertS16F64, value);
  1138. default:
  1139. ThrowInvalidType(value.Type());
  1140. }
  1141. case 32:
  1142. switch (value.Type()) {
  1143. case Type::F16:
  1144. return Inst<U32>(Opcode::ConvertS32F16, value);
  1145. case Type::F32:
  1146. return Inst<U32>(Opcode::ConvertS32F32, value);
  1147. case Type::F64:
  1148. return Inst<U32>(Opcode::ConvertS32F64, value);
  1149. default:
  1150. ThrowInvalidType(value.Type());
  1151. }
  1152. case 64:
  1153. switch (value.Type()) {
  1154. case Type::F16:
  1155. return Inst<U64>(Opcode::ConvertS64F16, value);
  1156. case Type::F32:
  1157. return Inst<U64>(Opcode::ConvertS64F32, value);
  1158. case Type::F64:
  1159. return Inst<U64>(Opcode::ConvertS64F64, value);
  1160. default:
  1161. ThrowInvalidType(value.Type());
  1162. }
  1163. default:
  1164. throw InvalidArgument("Invalid destination bitsize {}", bitsize);
  1165. }
  1166. }
  1167. U32U64 IREmitter::ConvertFToU(size_t bitsize, const F16F32F64& value) {
  1168. switch (bitsize) {
  1169. case 16:
  1170. switch (value.Type()) {
  1171. case Type::F16:
  1172. return Inst<U32>(Opcode::ConvertU16F16, value);
  1173. case Type::F32:
  1174. return Inst<U32>(Opcode::ConvertU16F32, value);
  1175. case Type::F64:
  1176. return Inst<U32>(Opcode::ConvertU16F64, value);
  1177. default:
  1178. ThrowInvalidType(value.Type());
  1179. }
  1180. case 32:
  1181. switch (value.Type()) {
  1182. case Type::F16:
  1183. return Inst<U32>(Opcode::ConvertU32F16, value);
  1184. case Type::F32:
  1185. return Inst<U32>(Opcode::ConvertU32F32, value);
  1186. case Type::F64:
  1187. return Inst<U32>(Opcode::ConvertU32F64, value);
  1188. default:
  1189. ThrowInvalidType(value.Type());
  1190. }
  1191. case 64:
  1192. switch (value.Type()) {
  1193. case Type::F16:
  1194. return Inst<U64>(Opcode::ConvertU64F16, value);
  1195. case Type::F32:
  1196. return Inst<U64>(Opcode::ConvertU64F32, value);
  1197. case Type::F64:
  1198. return Inst<U64>(Opcode::ConvertU64F64, value);
  1199. default:
  1200. ThrowInvalidType(value.Type());
  1201. }
  1202. default:
  1203. throw InvalidArgument("Invalid destination bitsize {}", bitsize);
  1204. }
  1205. }
  1206. U32U64 IREmitter::ConvertFToI(size_t bitsize, bool is_signed, const F16F32F64& value) {
  1207. return is_signed ? ConvertFToS(bitsize, value) : ConvertFToU(bitsize, value);
  1208. }
  1209. F16F32F64 IREmitter::ConvertSToF(size_t dest_bitsize, size_t src_bitsize, const Value& value) {
  1210. switch (dest_bitsize) {
  1211. case 16:
  1212. switch (src_bitsize) {
  1213. case 8:
  1214. return Inst<F16>(Opcode::ConvertF16S8, value);
  1215. case 16:
  1216. return Inst<F16>(Opcode::ConvertF16S16, value);
  1217. case 32:
  1218. return Inst<F16>(Opcode::ConvertF16S32, value);
  1219. case 64:
  1220. return Inst<F16>(Opcode::ConvertF16S64, value);
  1221. }
  1222. break;
  1223. case 32:
  1224. switch (src_bitsize) {
  1225. case 8:
  1226. return Inst<F32>(Opcode::ConvertF32S8, value);
  1227. case 16:
  1228. return Inst<F32>(Opcode::ConvertF32S16, value);
  1229. case 32:
  1230. return Inst<F32>(Opcode::ConvertF32S32, value);
  1231. case 64:
  1232. return Inst<F32>(Opcode::ConvertF32S64, value);
  1233. }
  1234. break;
  1235. case 64:
  1236. switch (src_bitsize) {
  1237. case 8:
  1238. return Inst<F64>(Opcode::ConvertF64S8, value);
  1239. case 16:
  1240. return Inst<F64>(Opcode::ConvertF64S16, value);
  1241. case 32:
  1242. return Inst<F64>(Opcode::ConvertF64S32, value);
  1243. case 64:
  1244. return Inst<F64>(Opcode::ConvertF64S64, value);
  1245. }
  1246. break;
  1247. }
  1248. throw InvalidArgument("Invalid bit size combination dst={} src={}", dest_bitsize, src_bitsize);
  1249. }
  1250. F16F32F64 IREmitter::ConvertUToF(size_t dest_bitsize, size_t src_bitsize, const Value& value) {
  1251. switch (dest_bitsize) {
  1252. case 16:
  1253. switch (src_bitsize) {
  1254. case 8:
  1255. return Inst<F16>(Opcode::ConvertF16U8, value);
  1256. case 16:
  1257. return Inst<F16>(Opcode::ConvertF16U16, value);
  1258. case 32:
  1259. return Inst<F16>(Opcode::ConvertF16U32, value);
  1260. case 64:
  1261. return Inst<F16>(Opcode::ConvertF16U64, value);
  1262. }
  1263. break;
  1264. case 32:
  1265. switch (src_bitsize) {
  1266. case 8:
  1267. return Inst<F32>(Opcode::ConvertF32U8, value);
  1268. case 16:
  1269. return Inst<F32>(Opcode::ConvertF32U16, value);
  1270. case 32:
  1271. return Inst<F32>(Opcode::ConvertF32U32, value);
  1272. case 64:
  1273. return Inst<F32>(Opcode::ConvertF32U64, value);
  1274. }
  1275. break;
  1276. case 64:
  1277. switch (src_bitsize) {
  1278. case 8:
  1279. return Inst<F64>(Opcode::ConvertF64U8, value);
  1280. case 16:
  1281. return Inst<F64>(Opcode::ConvertF64U16, value);
  1282. case 32:
  1283. return Inst<F64>(Opcode::ConvertF64U32, value);
  1284. case 64:
  1285. return Inst<F64>(Opcode::ConvertF64U64, value);
  1286. }
  1287. break;
  1288. }
  1289. throw InvalidArgument("Invalid bit size combination dst={} src={}", dest_bitsize, src_bitsize);
  1290. }
  1291. F16F32F64 IREmitter::ConvertIToF(size_t dest_bitsize, size_t src_bitsize, bool is_signed,
  1292. const Value& value) {
  1293. return is_signed ? ConvertSToF(dest_bitsize, src_bitsize, value)
  1294. : ConvertUToF(dest_bitsize, src_bitsize, value);
  1295. }
  1296. U32U64 IREmitter::UConvert(size_t result_bitsize, const U32U64& value) {
  1297. switch (result_bitsize) {
  1298. case 32:
  1299. switch (value.Type()) {
  1300. case Type::U32:
  1301. // Nothing to do
  1302. return value;
  1303. case Type::U64:
  1304. return Inst<U32>(Opcode::ConvertU32U64, value);
  1305. default:
  1306. break;
  1307. }
  1308. break;
  1309. case 64:
  1310. switch (value.Type()) {
  1311. case Type::U32:
  1312. return Inst<U64>(Opcode::ConvertU64U32, value);
  1313. case Type::U64:
  1314. // Nothing to do
  1315. return value;
  1316. default:
  1317. break;
  1318. }
  1319. }
  1320. throw NotImplementedException("Conversion from {} to {} bits", value.Type(), result_bitsize);
  1321. }
  1322. F16F32F64 IREmitter::FPConvert(size_t result_bitsize, const F16F32F64& value, FpControl control) {
  1323. switch (result_bitsize) {
  1324. case 16:
  1325. switch (value.Type()) {
  1326. case Type::F16:
  1327. // Nothing to do
  1328. return value;
  1329. case Type::F32:
  1330. return Inst<F16>(Opcode::ConvertF16F32, Flags{control}, value);
  1331. case Type::F64:
  1332. throw LogicError("Illegal conversion from F64 to F16");
  1333. default:
  1334. break;
  1335. }
  1336. break;
  1337. case 32:
  1338. switch (value.Type()) {
  1339. case Type::F16:
  1340. return Inst<F32>(Opcode::ConvertF32F16, Flags{control}, value);
  1341. case Type::F32:
  1342. // Nothing to do
  1343. return value;
  1344. case Type::F64:
  1345. return Inst<F32>(Opcode::ConvertF32F64, Flags{control}, value);
  1346. default:
  1347. break;
  1348. }
  1349. break;
  1350. case 64:
  1351. switch (value.Type()) {
  1352. case Type::F16:
  1353. throw LogicError("Illegal conversion from F16 to F64");
  1354. case Type::F32:
  1355. return Inst<F64>(Opcode::ConvertF64F32, Flags{control}, value);
  1356. case Type::F64:
  1357. // Nothing to do
  1358. return value;
  1359. default:
  1360. break;
  1361. }
  1362. break;
  1363. }
  1364. throw NotImplementedException("Conversion from {} to {} bits", value.Type(), result_bitsize);
  1365. }
  1366. Value IREmitter::ImageSampleImplicitLod(const Value& handle, const Value& coords, const F32& bias,
  1367. const Value& offset, const F32& lod_clamp,
  1368. TextureInstInfo info) {
  1369. const Value bias_lc{MakeLodClampPair(*this, bias, lod_clamp)};
  1370. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageSampleImplicitLod
  1371. : Opcode::BindlessImageSampleImplicitLod};
  1372. return Inst(op, Flags{info}, handle, coords, bias_lc, offset);
  1373. }
  1374. Value IREmitter::ImageSampleExplicitLod(const Value& handle, const Value& coords, const F32& lod,
  1375. const Value& offset, const F32& lod_clamp,
  1376. TextureInstInfo info) {
  1377. const Value lod_lc{MakeLodClampPair(*this, lod, lod_clamp)};
  1378. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageSampleExplicitLod
  1379. : Opcode::BindlessImageSampleExplicitLod};
  1380. return Inst(op, Flags{info}, handle, coords, lod_lc, offset);
  1381. }
  1382. F32 IREmitter::ImageSampleDrefImplicitLod(const Value& handle, const Value& coords, const F32& dref,
  1383. const F32& bias, const Value& offset,
  1384. const F32& lod_clamp, TextureInstInfo info) {
  1385. const Value bias_lc{MakeLodClampPair(*this, bias, lod_clamp)};
  1386. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageSampleDrefImplicitLod
  1387. : Opcode::BindlessImageSampleDrefImplicitLod};
  1388. return Inst<F32>(op, Flags{info}, handle, coords, dref, bias_lc, offset);
  1389. }
  1390. F32 IREmitter::ImageSampleDrefExplicitLod(const Value& handle, const Value& coords, const F32& dref,
  1391. const F32& lod, const Value& offset, const F32& lod_clamp,
  1392. TextureInstInfo info) {
  1393. const Value lod_lc{MakeLodClampPair(*this, lod, lod_clamp)};
  1394. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageSampleDrefExplicitLod
  1395. : Opcode::BindlessImageSampleDrefExplicitLod};
  1396. return Inst<F32>(op, Flags{info}, handle, coords, dref, lod_lc, offset);
  1397. }
  1398. Value IREmitter::ImageGather(const Value& handle, const Value& coords, const Value& offset,
  1399. const Value& offset2, TextureInstInfo info) {
  1400. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageGather : Opcode::BindlessImageGather};
  1401. return Inst(op, Flags{info}, handle, coords, offset, offset2);
  1402. }
  1403. Value IREmitter::ImageGatherDref(const Value& handle, const Value& coords, const Value& offset,
  1404. const Value& offset2, const F32& dref, TextureInstInfo info) {
  1405. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageGatherDref
  1406. : Opcode::BindlessImageGatherDref};
  1407. return Inst(op, Flags{info}, handle, coords, offset, offset2, dref);
  1408. }
  1409. Value IREmitter::ImageFetch(const Value& handle, const Value& coords, const Value& offset,
  1410. const U32& lod, const U32& multisampling, TextureInstInfo info) {
  1411. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageFetch : Opcode::BindlessImageFetch};
  1412. return Inst(op, Flags{info}, handle, coords, offset, lod, multisampling);
  1413. }
  1414. Value IREmitter::ImageQueryDimension(const Value& handle, const IR::U32& lod) {
  1415. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageQueryDimensions
  1416. : Opcode::BindlessImageQueryDimensions};
  1417. return Inst(op, handle, lod);
  1418. }
  1419. Value IREmitter::ImageQueryLod(const Value& handle, const Value& coords, TextureInstInfo info) {
  1420. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageQueryLod
  1421. : Opcode::BindlessImageQueryLod};
  1422. return Inst(op, Flags{info}, handle, coords);
  1423. }
  1424. Value IREmitter::ImageGradient(const Value& handle, const Value& coords, const Value& derivates,
  1425. const Value& offset, const F32& lod_clamp, TextureInstInfo info) {
  1426. const Opcode op{handle.IsImmediate() ? Opcode::BoundImageGradient
  1427. : Opcode::BindlessImageGradient};
  1428. return Inst(op, Flags{info}, handle, coords, derivates, offset, lod_clamp);
  1429. }
  1430. U1 IREmitter::VoteAll(const U1& value) {
  1431. return Inst<U1>(Opcode::VoteAll, value);
  1432. }
  1433. U1 IREmitter::VoteAny(const U1& value) {
  1434. return Inst<U1>(Opcode::VoteAny, value);
  1435. }
  1436. U1 IREmitter::VoteEqual(const U1& value) {
  1437. return Inst<U1>(Opcode::VoteEqual, value);
  1438. }
  1439. U32 IREmitter::SubgroupBallot(const U1& value) {
  1440. return Inst<U32>(Opcode::SubgroupBallot, value);
  1441. }
  1442. U32 IREmitter::SubgroupEqMask() {
  1443. return Inst<U32>(Opcode::SubgroupEqMask);
  1444. }
  1445. U32 IREmitter::SubgroupLtMask() {
  1446. return Inst<U32>(Opcode::SubgroupLtMask);
  1447. }
  1448. U32 IREmitter::SubgroupLeMask() {
  1449. return Inst<U32>(Opcode::SubgroupLeMask);
  1450. }
  1451. U32 IREmitter::SubgroupGtMask() {
  1452. return Inst<U32>(Opcode::SubgroupGtMask);
  1453. }
  1454. U32 IREmitter::SubgroupGeMask() {
  1455. return Inst<U32>(Opcode::SubgroupGeMask);
  1456. }
  1457. U32 IREmitter::ShuffleIndex(const IR::U32& value, const IR::U32& index, const IR::U32& clamp,
  1458. const IR::U32& seg_mask) {
  1459. return Inst<U32>(Opcode::ShuffleIndex, value, index, clamp, seg_mask);
  1460. }
  1461. U32 IREmitter::ShuffleUp(const IR::U32& value, const IR::U32& index, const IR::U32& clamp,
  1462. const IR::U32& seg_mask) {
  1463. return Inst<U32>(Opcode::ShuffleUp, value, index, clamp, seg_mask);
  1464. }
  1465. U32 IREmitter::ShuffleDown(const IR::U32& value, const IR::U32& index, const IR::U32& clamp,
  1466. const IR::U32& seg_mask) {
  1467. return Inst<U32>(Opcode::ShuffleDown, value, index, clamp, seg_mask);
  1468. }
  1469. U32 IREmitter::ShuffleButterfly(const IR::U32& value, const IR::U32& index, const IR::U32& clamp,
  1470. const IR::U32& seg_mask) {
  1471. return Inst<U32>(Opcode::ShuffleButterfly, value, index, clamp, seg_mask);
  1472. }
  1473. F32 IREmitter::FSwizzleAdd(const F32& a, const F32& b, const U32& swizzle, FpControl control) {
  1474. return Inst<F32>(Opcode::FSwizzleAdd, Flags{control}, a, b, swizzle);
  1475. }
  1476. } // namespace Shader::IR