1//===-- AMDGPUInstructions.td - Common instruction defs ---*- tablegen -*-===// 2// 3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4// See https://llvm.org/LICENSE.txt for license information. 5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6// 7//===----------------------------------------------------------------------===// 8// 9// This file contains instruction defs that are common to all hw codegen 10// targets. 11// 12//===----------------------------------------------------------------------===// 13 14class AddressSpacesImpl { 15 int Flat = 0; 16 int Global = 1; 17 int Region = 2; 18 int Local = 3; 19 int Constant = 4; 20 int Private = 5; 21} 22 23def AddrSpaces : AddressSpacesImpl; 24 25 26class AMDGPUInst <dag outs, dag ins, string asm = "", 27 list<dag> pattern = []> : Instruction { 28 field bit isRegisterLoad = 0; 29 field bit isRegisterStore = 0; 30 31 let Namespace = "AMDGPU"; 32 let OutOperandList = outs; 33 let InOperandList = ins; 34 let AsmString = asm; 35 let Pattern = pattern; 36 let Itinerary = NullALU; 37 38 // SoftFail is a field the disassembler can use to provide a way for 39 // instructions to not match without killing the whole decode process. It is 40 // mainly used for ARM, but Tablegen expects this field to exist or it fails 41 // to build the decode table. 42 field bits<64> SoftFail = 0; 43 44 let DecoderNamespace = Namespace; 45 46 let TSFlags{63} = isRegisterLoad; 47 let TSFlags{62} = isRegisterStore; 48} 49 50class AMDGPUShaderInst <dag outs, dag ins, string asm = "", 51 list<dag> pattern = []> : AMDGPUInst<outs, ins, asm, pattern> { 52 53 field bits<32> Inst = 0xffffffff; 54} 55 56//===---------------------------------------------------------------------===// 57// Return instruction 58//===---------------------------------------------------------------------===// 59 60class ILFormat<dag outs, dag ins, string asmstr, list<dag> pattern> 61: Instruction { 62 63 let Namespace = "AMDGPU"; 64 dag OutOperandList = outs; 65 dag InOperandList = ins; 66 let Pattern = pattern; 67 let AsmString = !strconcat(asmstr, "\n"); 68 let isPseudo = 1; 69 let Itinerary = NullALU; 70 bit hasIEEEFlag = 0; 71 bit hasZeroOpFlag = 0; 72 let mayLoad = 0; 73 let mayStore = 0; 74 let hasSideEffects = 0; 75 let isCodeGenOnly = 1; 76} 77 78def TruePredicate : Predicate<"">; 79 80// Add a predicate to the list if does not already exist to deduplicate it. 81class PredConcat<list<Predicate> lst, Predicate pred> { 82 list<Predicate> ret = 83 !foldl([pred], lst, acc, cur, 84 !listconcat(acc, !if(!eq(!cast<string>(cur),!cast<string>(pred)), 85 [], [cur]))); 86} 87 88class PredicateControl { 89 Predicate SubtargetPredicate = TruePredicate; 90 Predicate AssemblerPredicate = TruePredicate; 91 Predicate WaveSizePredicate = TruePredicate; 92 list<Predicate> OtherPredicates = []; 93 list<Predicate> Predicates = PredConcat< 94 PredConcat<PredConcat<OtherPredicates, 95 SubtargetPredicate>.ret, 96 AssemblerPredicate>.ret, 97 WaveSizePredicate>.ret; 98} 99 100class AMDGPUPat<dag pattern, dag result> : Pat<pattern, result>, 101 PredicateControl; 102 103let RecomputePerFunction = 1 in { 104def FP16Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">; 105def FP32Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP32Denormals()">; 106def FP64Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">; 107def NoFP16Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">; 108def NoFP32Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP32Denormals()">; 109def NoFP64Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">; 110def UnsafeFPMath : Predicate<"TM.Options.UnsafeFPMath">; 111} 112 113def FMA : Predicate<"Subtarget->hasFMA()">; 114 115def InstFlag : OperandWithDefaultOps <i32, (ops (i32 0))>; 116 117def u16ImmTarget : AsmOperandClass { 118 let Name = "U16Imm"; 119 let RenderMethod = "addImmOperands"; 120} 121 122def s16ImmTarget : AsmOperandClass { 123 let Name = "S16Imm"; 124 let RenderMethod = "addImmOperands"; 125} 126 127let OperandType = "OPERAND_IMMEDIATE" in { 128 129def u32imm : Operand<i32> { 130 let PrintMethod = "printU32ImmOperand"; 131} 132 133def u16imm : Operand<i16> { 134 let PrintMethod = "printU16ImmOperand"; 135 let ParserMatchClass = u16ImmTarget; 136} 137 138def s16imm : Operand<i16> { 139 let PrintMethod = "printU16ImmOperand"; 140 let ParserMatchClass = s16ImmTarget; 141} 142 143def u8imm : Operand<i8> { 144 let PrintMethod = "printU8ImmOperand"; 145} 146 147} // End OperandType = "OPERAND_IMMEDIATE" 148 149//===--------------------------------------------------------------------===// 150// Custom Operands 151//===--------------------------------------------------------------------===// 152def brtarget : Operand<OtherVT>; 153 154//===----------------------------------------------------------------------===// 155// Misc. PatFrags 156//===----------------------------------------------------------------------===// 157 158class HasOneUseUnaryOp<SDPatternOperator op> : PatFrag< 159 (ops node:$src0), 160 (op $src0), 161 [{ return N->hasOneUse(); }]> { 162 163 let GISelPredicateCode = [{ 164 return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg()); 165 }]; 166} 167 168class HasOneUseBinOp<SDPatternOperator op> : PatFrag< 169 (ops node:$src0, node:$src1), 170 (op $src0, $src1), 171 [{ return N->hasOneUse(); }]> { 172 let GISelPredicateCode = [{ 173 return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg()); 174 }]; 175} 176 177class HasOneUseTernaryOp<SDPatternOperator op> : PatFrag< 178 (ops node:$src0, node:$src1, node:$src2), 179 (op $src0, $src1, $src2), 180 [{ return N->hasOneUse(); }]> { 181 let GISelPredicateCode = [{ 182 return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg()); 183 }]; 184} 185 186let Properties = [SDNPCommutative, SDNPAssociative] in { 187def smax_oneuse : HasOneUseBinOp<smax>; 188def smin_oneuse : HasOneUseBinOp<smin>; 189def umax_oneuse : HasOneUseBinOp<umax>; 190def umin_oneuse : HasOneUseBinOp<umin>; 191 192def fminnum_oneuse : HasOneUseBinOp<fminnum>; 193def fmaxnum_oneuse : HasOneUseBinOp<fmaxnum>; 194 195def fminnum_ieee_oneuse : HasOneUseBinOp<fminnum_ieee>; 196def fmaxnum_ieee_oneuse : HasOneUseBinOp<fmaxnum_ieee>; 197 198 199def and_oneuse : HasOneUseBinOp<and>; 200def or_oneuse : HasOneUseBinOp<or>; 201def xor_oneuse : HasOneUseBinOp<xor>; 202} // Properties = [SDNPCommutative, SDNPAssociative] 203 204def not_oneuse : HasOneUseUnaryOp<not>; 205 206def add_oneuse : HasOneUseBinOp<add>; 207def sub_oneuse : HasOneUseBinOp<sub>; 208 209def srl_oneuse : HasOneUseBinOp<srl>; 210def shl_oneuse : HasOneUseBinOp<shl>; 211 212def select_oneuse : HasOneUseTernaryOp<select>; 213 214def AMDGPUmul_u24_oneuse : HasOneUseBinOp<AMDGPUmul_u24>; 215def AMDGPUmul_i24_oneuse : HasOneUseBinOp<AMDGPUmul_i24>; 216 217def srl_16 : PatFrag< 218 (ops node:$src0), (srl_oneuse node:$src0, (i32 16)) 219>; 220 221 222def hi_i16_elt : PatFrag< 223 (ops node:$src0), (i16 (trunc (i32 (srl_16 node:$src0)))) 224>; 225 226 227def hi_f16_elt : PatLeaf< 228 (vt), [{ 229 if (N->getOpcode() != ISD::BITCAST) 230 return false; 231 SDValue Tmp = N->getOperand(0); 232 233 if (Tmp.getOpcode() != ISD::SRL) 234 return false; 235 if (const auto *RHS = dyn_cast<ConstantSDNode>(Tmp.getOperand(1)) 236 return RHS->getZExtValue() == 16; 237 return false; 238}]>; 239 240//===----------------------------------------------------------------------===// 241// PatLeafs for floating-point comparisons 242//===----------------------------------------------------------------------===// 243 244def COND_OEQ : PatFrags<(ops), [(OtherVT SETOEQ), (OtherVT SETEQ)]>; 245def COND_ONE : PatFrags<(ops), [(OtherVT SETONE), (OtherVT SETNE)]>; 246def COND_OGT : PatFrags<(ops), [(OtherVT SETOGT), (OtherVT SETGT)]>; 247def COND_OGE : PatFrags<(ops), [(OtherVT SETOGE), (OtherVT SETGE)]>; 248def COND_OLT : PatFrags<(ops), [(OtherVT SETOLT), (OtherVT SETLT)]>; 249def COND_OLE : PatFrags<(ops), [(OtherVT SETOLE), (OtherVT SETLE)]>; 250def COND_O : PatFrags<(ops), [(OtherVT SETO)]>; 251def COND_UO : PatFrags<(ops), [(OtherVT SETUO)]>; 252 253//===----------------------------------------------------------------------===// 254// PatLeafs for unsigned / unordered comparisons 255//===----------------------------------------------------------------------===// 256 257def COND_UEQ : PatFrag<(ops), (OtherVT SETUEQ)>; 258def COND_UNE : PatFrag<(ops), (OtherVT SETUNE)>; 259def COND_UGT : PatFrag<(ops), (OtherVT SETUGT)>; 260def COND_UGE : PatFrag<(ops), (OtherVT SETUGE)>; 261def COND_ULT : PatFrag<(ops), (OtherVT SETULT)>; 262def COND_ULE : PatFrag<(ops), (OtherVT SETULE)>; 263 264// XXX - For some reason R600 version is preferring to use unordered 265// for setne? 266def COND_UNE_NE : PatFrags<(ops), [(OtherVT SETUNE), (OtherVT SETNE)]>; 267 268//===----------------------------------------------------------------------===// 269// PatLeafs for signed comparisons 270//===----------------------------------------------------------------------===// 271 272def COND_SGT : PatFrag<(ops), (OtherVT SETGT)>; 273def COND_SGE : PatFrag<(ops), (OtherVT SETGE)>; 274def COND_SLT : PatFrag<(ops), (OtherVT SETLT)>; 275def COND_SLE : PatFrag<(ops), (OtherVT SETLE)>; 276 277//===----------------------------------------------------------------------===// 278// PatLeafs for integer equality 279//===----------------------------------------------------------------------===// 280 281def COND_EQ : PatFrags<(ops), [(OtherVT SETEQ), (OtherVT SETUEQ)]>; 282def COND_NE : PatFrags<(ops), [(OtherVT SETNE), (OtherVT SETUNE)]>; 283 284// FIXME: Should not need code predicate 285//def COND_NULL : PatLeaf<(OtherVT null_frag)>; 286def COND_NULL : PatLeaf < 287 (cond), 288 [{(void)N; return false;}] 289>; 290 291//===----------------------------------------------------------------------===// 292// PatLeafs for Texture Constants 293//===----------------------------------------------------------------------===// 294 295def TEX_ARRAY : PatLeaf< 296 (imm), 297 [{uint32_t TType = (uint32_t)N->getZExtValue(); 298 return TType == 9 || TType == 10 || TType == 16; 299 }] 300>; 301 302def TEX_RECT : PatLeaf< 303 (imm), 304 [{uint32_t TType = (uint32_t)N->getZExtValue(); 305 return TType == 5; 306 }] 307>; 308 309def TEX_SHADOW : PatLeaf< 310 (imm), 311 [{uint32_t TType = (uint32_t)N->getZExtValue(); 312 return (TType >= 6 && TType <= 8) || TType == 13; 313 }] 314>; 315 316def TEX_SHADOW_ARRAY : PatLeaf< 317 (imm), 318 [{uint32_t TType = (uint32_t)N->getZExtValue(); 319 return TType == 11 || TType == 12 || TType == 17; 320 }] 321>; 322 323//===----------------------------------------------------------------------===// 324// Load/Store Pattern Fragments 325//===----------------------------------------------------------------------===// 326 327def atomic_cmp_swap_glue : SDNode <"ISD::ATOMIC_CMP_SWAP", SDTAtomic3, 328 [SDNPHasChain, SDNPMayStore, SDNPMayLoad, SDNPMemOperand, SDNPInGlue] 329>; 330 331class AddressSpaceList<list<int> AS> { 332 list<int> AddrSpaces = AS; 333} 334 335class Aligned<int Bytes> { 336 int MinAlignment = Bytes; 337} 338 339class StoreHi16<SDPatternOperator op> : PatFrag < 340 (ops node:$value, node:$ptr), (op (srl node:$value, (i32 16)), node:$ptr)> { 341 let IsStore = 1; 342} 343 344def LoadAddress_constant : AddressSpaceList<[ AddrSpaces.Constant ]>; 345def LoadAddress_global : AddressSpaceList<[ AddrSpaces.Global, AddrSpaces.Constant ]>; 346def StoreAddress_global : AddressSpaceList<[ AddrSpaces.Global ]>; 347 348def LoadAddress_flat : AddressSpaceList<[ AddrSpaces.Flat, 349 AddrSpaces.Global, 350 AddrSpaces.Constant ]>; 351def StoreAddress_flat : AddressSpaceList<[ AddrSpaces.Flat, AddrSpaces.Global ]>; 352 353def LoadAddress_private : AddressSpaceList<[ AddrSpaces.Private ]>; 354def StoreAddress_private : AddressSpaceList<[ AddrSpaces.Private ]>; 355 356def LoadAddress_local : AddressSpaceList<[ AddrSpaces.Local ]>; 357def StoreAddress_local : AddressSpaceList<[ AddrSpaces.Local ]>; 358 359def LoadAddress_region : AddressSpaceList<[ AddrSpaces.Region ]>; 360def StoreAddress_region : AddressSpaceList<[ AddrSpaces.Region ]>; 361 362 363 364foreach as = [ "global", "flat", "constant", "local", "private", "region" ] in { 365let AddressSpaces = !cast<AddressSpaceList>("LoadAddress_"#as).AddrSpaces in { 366 367def load_#as : PatFrag<(ops node:$ptr), (unindexedload node:$ptr)> { 368 let IsLoad = 1; 369 let IsNonExtLoad = 1; 370} 371 372def extloadi8_#as : PatFrag<(ops node:$ptr), (extload node:$ptr)> { 373 let IsLoad = 1; 374 let MemoryVT = i8; 375} 376 377def extloadi16_#as : PatFrag<(ops node:$ptr), (extload node:$ptr)> { 378 let IsLoad = 1; 379 let MemoryVT = i16; 380} 381 382def sextloadi8_#as : PatFrag<(ops node:$ptr), (sextload node:$ptr)> { 383 let IsLoad = 1; 384 let MemoryVT = i8; 385} 386 387def sextloadi16_#as : PatFrag<(ops node:$ptr), (sextload node:$ptr)> { 388 let IsLoad = 1; 389 let MemoryVT = i16; 390} 391 392def zextloadi8_#as : PatFrag<(ops node:$ptr), (zextload node:$ptr)> { 393 let IsLoad = 1; 394 let MemoryVT = i8; 395} 396 397def zextloadi16_#as : PatFrag<(ops node:$ptr), (zextload node:$ptr)> { 398 let IsLoad = 1; 399 let MemoryVT = i16; 400} 401 402def atomic_load_32_#as : PatFrag<(ops node:$ptr), (atomic_load_32 node:$ptr)> { 403 let IsAtomic = 1; 404 let MemoryVT = i32; 405} 406 407def atomic_load_64_#as : PatFrag<(ops node:$ptr), (atomic_load_64 node:$ptr)> { 408 let IsAtomic = 1; 409 let MemoryVT = i64; 410} 411} // End let AddressSpaces 412} // End foreach as 413 414 415foreach as = [ "global", "flat", "local", "private", "region" ] in { 416let AddressSpaces = !cast<AddressSpaceList>("StoreAddress_"#as).AddrSpaces in { 417def store_#as : PatFrag<(ops node:$val, node:$ptr), 418 (unindexedstore node:$val, node:$ptr)> { 419 let IsStore = 1; 420 let IsTruncStore = 0; 421} 422 423// truncstore fragments. 424def truncstore_#as : PatFrag<(ops node:$val, node:$ptr), 425 (unindexedstore node:$val, node:$ptr)> { 426 let IsStore = 1; 427 let IsTruncStore = 1; 428} 429 430// TODO: We don't really need the truncstore here. We can use 431// unindexedstore with MemoryVT directly, which will save an 432// unnecessary check that the memory size is less than the value type 433// in the generated matcher table. 434def truncstorei8_#as : PatFrag<(ops node:$val, node:$ptr), 435 (truncstore node:$val, node:$ptr)> { 436 let IsStore = 1; 437 let MemoryVT = i8; 438} 439 440def truncstorei16_#as : PatFrag<(ops node:$val, node:$ptr), 441 (truncstore node:$val, node:$ptr)> { 442 let IsStore = 1; 443 let MemoryVT = i16; 444} 445 446def store_hi16_#as : StoreHi16 <truncstorei16>; 447def truncstorei8_hi16_#as : StoreHi16<truncstorei8>; 448def truncstorei16_hi16_#as : StoreHi16<truncstorei16>; 449 450defm atomic_store_#as : binary_atomic_op<atomic_store>; 451 452} // End let AddressSpaces 453} // End foreach as 454 455 456multiclass ret_noret_binary_atomic_op<SDNode atomic_op, bit IsInt = 1> { 457 foreach as = [ "global", "flat", "constant", "local", "private", "region" ] in { 458 let AddressSpaces = !cast<AddressSpaceList>("LoadAddress_"#as).AddrSpaces in { 459 defm "_"#as : binary_atomic_op<atomic_op, IsInt>; 460 461 let PredicateCode = [{return (SDValue(N, 0).use_empty());}] in { 462 defm "_"#as#"_noret" : binary_atomic_op<atomic_op, IsInt>; 463 } 464 465 let PredicateCode = [{return !(SDValue(N, 0).use_empty());}] in { 466 defm "_"#as#"_ret" : binary_atomic_op<atomic_op, IsInt>; 467 } 468 } 469 } 470} 471 472defm atomic_swap : ret_noret_binary_atomic_op<atomic_swap>; 473defm atomic_load_add : ret_noret_binary_atomic_op<atomic_load_add>; 474defm atomic_load_and : ret_noret_binary_atomic_op<atomic_load_and>; 475defm atomic_load_max : ret_noret_binary_atomic_op<atomic_load_max>; 476defm atomic_load_min : ret_noret_binary_atomic_op<atomic_load_min>; 477defm atomic_load_or : ret_noret_binary_atomic_op<atomic_load_or>; 478defm atomic_load_sub : ret_noret_binary_atomic_op<atomic_load_sub>; 479defm atomic_load_umax : ret_noret_binary_atomic_op<atomic_load_umax>; 480defm atomic_load_umin : ret_noret_binary_atomic_op<atomic_load_umin>; 481defm atomic_load_xor : ret_noret_binary_atomic_op<atomic_load_xor>; 482defm atomic_load_fadd : ret_noret_binary_atomic_op<atomic_load_fadd, 0>; 483defm AMDGPUatomic_cmp_swap : ret_noret_binary_atomic_op<AMDGPUatomic_cmp_swap>; 484 485 486def load_align8_local : PatFrag <(ops node:$ptr), (load_local node:$ptr)> { 487 let IsLoad = 1; 488 let IsNonExtLoad = 1; 489 let MinAlignment = 8; 490} 491 492def load_align16_local : PatFrag <(ops node:$ptr), (load_local node:$ptr)> { 493 let IsLoad = 1; 494 let IsNonExtLoad = 1; 495 let MinAlignment = 16; 496} 497 498def store_align8_local: PatFrag<(ops node:$val, node:$ptr), 499 (store_local node:$val, node:$ptr)>, Aligned<8> { 500 let IsStore = 1; 501 let IsTruncStore = 0; 502} 503 504def store_align16_local: PatFrag<(ops node:$val, node:$ptr), 505 (store_local node:$val, node:$ptr)>, Aligned<16> { 506 let IsStore = 1; 507 let IsTruncStore = 0; 508} 509 510let AddressSpaces = StoreAddress_local.AddrSpaces in { 511defm atomic_cmp_swap_local : ternary_atomic_op<atomic_cmp_swap>; 512defm atomic_cmp_swap_local_m0 : ternary_atomic_op<atomic_cmp_swap_glue>; 513} 514 515let AddressSpaces = StoreAddress_region.AddrSpaces in { 516defm atomic_cmp_swap_region : ternary_atomic_op<atomic_cmp_swap>; 517defm atomic_cmp_swap_region_m0 : ternary_atomic_op<atomic_cmp_swap_glue>; 518} 519 520//===----------------------------------------------------------------------===// 521// Misc Pattern Fragments 522//===----------------------------------------------------------------------===// 523 524class Constants { 525int TWO_PI = 0x40c90fdb; 526int PI = 0x40490fdb; 527int TWO_PI_INV = 0x3e22f983; 528int FP_UINT_MAX_PLUS_1 = 0x4f800000; // 1 << 32 in floating point encoding 529int FP16_ONE = 0x3C00; 530int FP16_NEG_ONE = 0xBC00; 531int FP32_ONE = 0x3f800000; 532int FP32_NEG_ONE = 0xbf800000; 533int FP64_ONE = 0x3ff0000000000000; 534int FP64_NEG_ONE = 0xbff0000000000000; 535} 536def CONST : Constants; 537 538def FP_ZERO : PatLeaf < 539 (fpimm), 540 [{return N->getValueAPF().isZero();}] 541>; 542 543def FP_ONE : PatLeaf < 544 (fpimm), 545 [{return N->isExactlyValue(1.0);}] 546>; 547 548def FP_HALF : PatLeaf < 549 (fpimm), 550 [{return N->isExactlyValue(0.5);}] 551>; 552 553/* Generic helper patterns for intrinsics */ 554/* -------------------------------------- */ 555 556class POW_Common <AMDGPUInst log_ieee, AMDGPUInst exp_ieee, AMDGPUInst mul> 557 : AMDGPUPat < 558 (fpow f32:$src0, f32:$src1), 559 (exp_ieee (mul f32:$src1, (log_ieee f32:$src0))) 560>; 561 562/* Other helper patterns */ 563/* --------------------- */ 564 565/* Extract element pattern */ 566class Extract_Element <ValueType sub_type, ValueType vec_type, int sub_idx, 567 SubRegIndex sub_reg> 568 : AMDGPUPat< 569 (sub_type (extractelt vec_type:$src, sub_idx)), 570 (EXTRACT_SUBREG $src, sub_reg) 571>; 572 573/* Insert element pattern */ 574class Insert_Element <ValueType elem_type, ValueType vec_type, 575 int sub_idx, SubRegIndex sub_reg> 576 : AMDGPUPat < 577 (insertelt vec_type:$vec, elem_type:$elem, sub_idx), 578 (INSERT_SUBREG $vec, $elem, sub_reg) 579>; 580 581// XXX: Convert to new syntax and use COPY_TO_REG, once the DFAPacketizer 582// can handle COPY instructions. 583// bitconvert pattern 584class BitConvert <ValueType dt, ValueType st, RegisterClass rc> : AMDGPUPat < 585 (dt (bitconvert (st rc:$src0))), 586 (dt rc:$src0) 587>; 588 589// XXX: Convert to new syntax and use COPY_TO_REG, once the DFAPacketizer 590// can handle COPY instructions. 591class DwordAddrPat<ValueType vt, RegisterClass rc> : AMDGPUPat < 592 (vt (AMDGPUdwordaddr (vt rc:$addr))), 593 (vt rc:$addr) 594>; 595 596// BFI_INT patterns 597 598multiclass BFIPatterns <Instruction BFI_INT, 599 Instruction LoadImm32, 600 RegisterClass RC64> { 601 // Definition from ISA doc: 602 // (y & x) | (z & ~x) 603 def : AMDGPUPat < 604 (or (and i32:$y, i32:$x), (and i32:$z, (not i32:$x))), 605 (BFI_INT $x, $y, $z) 606 >; 607 608 // 64-bit version 609 def : AMDGPUPat < 610 (or (and i64:$y, i64:$x), (and i64:$z, (not i64:$x))), 611 (REG_SEQUENCE RC64, 612 (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub0)), 613 (i32 (EXTRACT_SUBREG RC64:$y, sub0)), 614 (i32 (EXTRACT_SUBREG RC64:$z, sub0))), sub0, 615 (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub1)), 616 (i32 (EXTRACT_SUBREG RC64:$y, sub1)), 617 (i32 (EXTRACT_SUBREG RC64:$z, sub1))), sub1) 618 >; 619 620 // SHA-256 Ch function 621 // z ^ (x & (y ^ z)) 622 def : AMDGPUPat < 623 (xor i32:$z, (and i32:$x, (xor i32:$y, i32:$z))), 624 (BFI_INT $x, $y, $z) 625 >; 626 627 // 64-bit version 628 def : AMDGPUPat < 629 (xor i64:$z, (and i64:$x, (xor i64:$y, i64:$z))), 630 (REG_SEQUENCE RC64, 631 (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub0)), 632 (i32 (EXTRACT_SUBREG RC64:$y, sub0)), 633 (i32 (EXTRACT_SUBREG RC64:$z, sub0))), sub0, 634 (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub1)), 635 (i32 (EXTRACT_SUBREG RC64:$y, sub1)), 636 (i32 (EXTRACT_SUBREG RC64:$z, sub1))), sub1) 637 >; 638 639 def : AMDGPUPat < 640 (fcopysign f32:$src0, f32:$src1), 641 (BFI_INT (LoadImm32 (i32 0x7fffffff)), $src0, $src1) 642 >; 643 644 def : AMDGPUPat < 645 (f32 (fcopysign f32:$src0, f64:$src1)), 646 (BFI_INT (LoadImm32 (i32 0x7fffffff)), $src0, 647 (i32 (EXTRACT_SUBREG RC64:$src1, sub1))) 648 >; 649 650 def : AMDGPUPat < 651 (f64 (fcopysign f64:$src0, f64:$src1)), 652 (REG_SEQUENCE RC64, 653 (i32 (EXTRACT_SUBREG $src0, sub0)), sub0, 654 (BFI_INT (LoadImm32 (i32 0x7fffffff)), 655 (i32 (EXTRACT_SUBREG RC64:$src0, sub1)), 656 (i32 (EXTRACT_SUBREG RC64:$src1, sub1))), sub1) 657 >; 658 659 def : AMDGPUPat < 660 (f64 (fcopysign f64:$src0, f32:$src1)), 661 (REG_SEQUENCE RC64, 662 (i32 (EXTRACT_SUBREG $src0, sub0)), sub0, 663 (BFI_INT (LoadImm32 (i32 0x7fffffff)), 664 (i32 (EXTRACT_SUBREG RC64:$src0, sub1)), 665 $src1), sub1) 666 >; 667} 668 669// SHA-256 Ma patterns 670 671// ((x & z) | (y & (x | z))) -> BFI_INT (XOR x, y), z, y 672multiclass SHA256MaPattern <Instruction BFI_INT, Instruction XOR, RegisterClass RC64> { 673 def : AMDGPUPat < 674 (or (and i32:$x, i32:$z), (and i32:$y, (or i32:$x, i32:$z))), 675 (BFI_INT (XOR i32:$x, i32:$y), i32:$z, i32:$y) 676 >; 677 678 def : AMDGPUPat < 679 (or (and i64:$x, i64:$z), (and i64:$y, (or i64:$x, i64:$z))), 680 (REG_SEQUENCE RC64, 681 (BFI_INT (XOR (i32 (EXTRACT_SUBREG RC64:$x, sub0)), 682 (i32 (EXTRACT_SUBREG RC64:$y, sub0))), 683 (i32 (EXTRACT_SUBREG RC64:$z, sub0)), 684 (i32 (EXTRACT_SUBREG RC64:$y, sub0))), sub0, 685 (BFI_INT (XOR (i32 (EXTRACT_SUBREG RC64:$x, sub1)), 686 (i32 (EXTRACT_SUBREG RC64:$y, sub1))), 687 (i32 (EXTRACT_SUBREG RC64:$z, sub1)), 688 (i32 (EXTRACT_SUBREG RC64:$y, sub1))), sub1) 689 >; 690} 691 692// Bitfield extract patterns 693 694def IMMZeroBasedBitfieldMask : ImmLeaf <i32, [{ 695 return isMask_32(Imm); 696}]>; 697 698def IMMPopCount : SDNodeXForm<imm, [{ 699 return CurDAG->getTargetConstant(countPopulation(N->getZExtValue()), SDLoc(N), 700 MVT::i32); 701}]>; 702 703multiclass BFEPattern <Instruction UBFE, Instruction SBFE, Instruction MOV> { 704 def : AMDGPUPat < 705 (i32 (and (i32 (srl i32:$src, i32:$rshift)), IMMZeroBasedBitfieldMask:$mask)), 706 (UBFE $src, $rshift, (MOV (i32 (IMMPopCount $mask)))) 707 >; 708 709 // x & ((1 << y) - 1) 710 def : AMDGPUPat < 711 (and i32:$src, (add_oneuse (shl_oneuse 1, i32:$width), -1)), 712 (UBFE $src, (MOV (i32 0)), $width) 713 >; 714 715 // x & ~(-1 << y) 716 def : AMDGPUPat < 717 (and i32:$src, (xor_oneuse (shl_oneuse -1, i32:$width), -1)), 718 (UBFE $src, (MOV (i32 0)), $width) 719 >; 720 721 // x & (-1 >> (bitwidth - y)) 722 def : AMDGPUPat < 723 (and i32:$src, (srl_oneuse -1, (sub 32, i32:$width))), 724 (UBFE $src, (MOV (i32 0)), $width) 725 >; 726 727 // x << (bitwidth - y) >> (bitwidth - y) 728 def : AMDGPUPat < 729 (srl (shl_oneuse i32:$src, (sub 32, i32:$width)), (sub 32, i32:$width)), 730 (UBFE $src, (MOV (i32 0)), $width) 731 >; 732 733 def : AMDGPUPat < 734 (sra (shl_oneuse i32:$src, (sub 32, i32:$width)), (sub 32, i32:$width)), 735 (SBFE $src, (MOV (i32 0)), $width) 736 >; 737} 738 739// fshr pattern 740class FSHRPattern <Instruction BIT_ALIGN> : AMDGPUPat < 741 (fshr i32:$src0, i32:$src1, i32:$src2), 742 (BIT_ALIGN $src0, $src1, $src2) 743>; 744 745// rotr pattern 746class ROTRPattern <Instruction BIT_ALIGN> : AMDGPUPat < 747 (rotr i32:$src0, i32:$src1), 748 (BIT_ALIGN $src0, $src0, $src1) 749>; 750 751// Special conversion patterns 752 753def cvt_rpi_i32_f32 : PatFrag < 754 (ops node:$src), 755 (fp_to_sint (ffloor (fadd $src, FP_HALF))), 756 [{ (void) N; return TM.Options.NoNaNsFPMath; }] 757>; 758 759def cvt_flr_i32_f32 : PatFrag < 760 (ops node:$src), 761 (fp_to_sint (ffloor $src)), 762 [{ (void)N; return TM.Options.NoNaNsFPMath; }] 763>; 764 765let AddedComplexity = 2 in { 766class IMad24Pat<Instruction Inst, bit HasClamp = 0> : AMDGPUPat < 767 (add (AMDGPUmul_i24 i32:$src0, i32:$src1), i32:$src2), 768 !if(HasClamp, (Inst $src0, $src1, $src2, (i1 0)), 769 (Inst $src0, $src1, $src2)) 770>; 771 772class UMad24Pat<Instruction Inst, bit HasClamp = 0> : AMDGPUPat < 773 (add (AMDGPUmul_u24 i32:$src0, i32:$src1), i32:$src2), 774 !if(HasClamp, (Inst $src0, $src1, $src2, (i1 0)), 775 (Inst $src0, $src1, $src2)) 776>; 777} // AddedComplexity. 778 779class RcpPat<Instruction RcpInst, ValueType vt> : AMDGPUPat < 780 (fdiv FP_ONE, vt:$src), 781 (RcpInst $src) 782>; 783 784class RsqPat<Instruction RsqInst, ValueType vt> : AMDGPUPat < 785 (AMDGPUrcp (fsqrt vt:$src)), 786 (RsqInst $src) 787>; 788 789// Instructions which select to the same v_min_f* 790def fminnum_like : PatFrags<(ops node:$src0, node:$src1), 791 [(fminnum_ieee node:$src0, node:$src1), 792 (fminnum node:$src0, node:$src1)] 793>; 794 795// Instructions which select to the same v_max_f* 796def fmaxnum_like : PatFrags<(ops node:$src0, node:$src1), 797 [(fmaxnum_ieee node:$src0, node:$src1), 798 (fmaxnum node:$src0, node:$src1)] 799>; 800 801def fminnum_like_oneuse : PatFrags<(ops node:$src0, node:$src1), 802 [(fminnum_ieee_oneuse node:$src0, node:$src1), 803 (fminnum_oneuse node:$src0, node:$src1)] 804>; 805 806def fmaxnum_like_oneuse : PatFrags<(ops node:$src0, node:$src1), 807 [(fmaxnum_ieee_oneuse node:$src0, node:$src1), 808 (fmaxnum_oneuse node:$src0, node:$src1)] 809>; 810 811def any_fmad : PatFrags<(ops node:$src0, node:$src1, node:$src2), 812 [(fmad node:$src0, node:$src1, node:$src2), 813 (AMDGPUfmad_ftz node:$src0, node:$src1, node:$src2)] 814>; 815