1//===- MipsInstrInfo.td - Target Description for Mips Target -*- tablegen -*-=// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file is distributed under the University of Illinois Open Source 6// License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9// 10// This file contains the Mips implementation of the TargetInstrInfo class. 11// 12//===----------------------------------------------------------------------===// 13 14 15//===----------------------------------------------------------------------===// 16// Mips profiles and nodes 17//===----------------------------------------------------------------------===// 18 19def SDT_MipsJmpLink : SDTypeProfile<0, 1, [SDTCisVT<0, iPTR>]>; 20def SDT_MipsCMov : SDTypeProfile<1, 4, [SDTCisSameAs<0, 1>, 21 SDTCisSameAs<1, 2>, 22 SDTCisSameAs<3, 4>, 23 SDTCisInt<4>]>; 24def SDT_MipsCallSeqStart : SDCallSeqStart<[SDTCisVT<0, i32>]>; 25def SDT_MipsCallSeqEnd : SDCallSeqEnd<[SDTCisVT<0, i32>, SDTCisVT<1, i32>]>; 26def SDT_MFLOHI : SDTypeProfile<1, 1, [SDTCisInt<0>, SDTCisVT<1, untyped>]>; 27def SDT_MTLOHI : SDTypeProfile<1, 2, [SDTCisVT<0, untyped>, 28 SDTCisInt<1>, SDTCisSameAs<1, 2>]>; 29def SDT_MipsMultDiv : SDTypeProfile<1, 2, [SDTCisVT<0, untyped>, SDTCisInt<1>, 30 SDTCisSameAs<1, 2>]>; 31def SDT_MipsMAddMSub : SDTypeProfile<1, 3, 32 [SDTCisVT<0, untyped>, SDTCisSameAs<0, 3>, 33 SDTCisVT<1, i32>, SDTCisSameAs<1, 2>]>; 34def SDT_MipsDivRem16 : SDTypeProfile<0, 2, [SDTCisInt<0>, SDTCisSameAs<0, 1>]>; 35 36def SDT_MipsThreadPointer : SDTypeProfile<1, 0, [SDTCisPtrTy<0>]>; 37 38def SDT_Sync : SDTypeProfile<0, 1, [SDTCisVT<0, i32>]>; 39 40def SDT_Ext : SDTypeProfile<1, 3, [SDTCisInt<0>, SDTCisSameAs<0, 1>, 41 SDTCisVT<2, i32>, SDTCisSameAs<2, 3>]>; 42def SDT_Ins : SDTypeProfile<1, 4, [SDTCisInt<0>, SDTCisSameAs<0, 1>, 43 SDTCisVT<2, i32>, SDTCisSameAs<2, 3>, 44 SDTCisSameAs<0, 4>]>; 45 46def SDTMipsLoadLR : SDTypeProfile<1, 2, 47 [SDTCisInt<0>, SDTCisPtrTy<1>, 48 SDTCisSameAs<0, 2>]>; 49 50// Call 51def MipsJmpLink : SDNode<"MipsISD::JmpLink",SDT_MipsJmpLink, 52 [SDNPHasChain, SDNPOutGlue, SDNPOptInGlue, 53 SDNPVariadic]>; 54 55// Tail call 56def MipsTailCall : SDNode<"MipsISD::TailCall", SDT_MipsJmpLink, 57 [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>; 58 59// Hi and Lo nodes are used to handle global addresses. Used on 60// MipsISelLowering to lower stuff like GlobalAddress, ExternalSymbol 61// static model. (nothing to do with Mips Registers Hi and Lo) 62def MipsHi : SDNode<"MipsISD::Hi", SDTIntUnaryOp>; 63def MipsLo : SDNode<"MipsISD::Lo", SDTIntUnaryOp>; 64def MipsGPRel : SDNode<"MipsISD::GPRel", SDTIntUnaryOp>; 65 66// TlsGd node is used to handle General Dynamic TLS 67def MipsTlsGd : SDNode<"MipsISD::TlsGd", SDTIntUnaryOp>; 68 69// TprelHi and TprelLo nodes are used to handle Local Exec TLS 70def MipsTprelHi : SDNode<"MipsISD::TprelHi", SDTIntUnaryOp>; 71def MipsTprelLo : SDNode<"MipsISD::TprelLo", SDTIntUnaryOp>; 72 73// Thread pointer 74def MipsThreadPointer: SDNode<"MipsISD::ThreadPointer", SDT_MipsThreadPointer>; 75 76// Return 77def MipsRet : SDNode<"MipsISD::Ret", SDTNone, 78 [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>; 79 80def MipsERet : SDNode<"MipsISD::ERet", SDTNone, 81 [SDNPHasChain, SDNPOptInGlue, SDNPSideEffect]>; 82 83// These are target-independent nodes, but have target-specific formats. 84def callseq_start : SDNode<"ISD::CALLSEQ_START", SDT_MipsCallSeqStart, 85 [SDNPHasChain, SDNPSideEffect, SDNPOutGlue]>; 86def callseq_end : SDNode<"ISD::CALLSEQ_END", SDT_MipsCallSeqEnd, 87 [SDNPHasChain, SDNPSideEffect, 88 SDNPOptInGlue, SDNPOutGlue]>; 89 90// Nodes used to extract LO/HI registers. 91def MipsMFHI : SDNode<"MipsISD::MFHI", SDT_MFLOHI>; 92def MipsMFLO : SDNode<"MipsISD::MFLO", SDT_MFLOHI>; 93 94// Node used to insert 32-bit integers to LOHI register pair. 95def MipsMTLOHI : SDNode<"MipsISD::MTLOHI", SDT_MTLOHI>; 96 97// Mult nodes. 98def MipsMult : SDNode<"MipsISD::Mult", SDT_MipsMultDiv>; 99def MipsMultu : SDNode<"MipsISD::Multu", SDT_MipsMultDiv>; 100 101// MAdd*/MSub* nodes 102def MipsMAdd : SDNode<"MipsISD::MAdd", SDT_MipsMAddMSub>; 103def MipsMAddu : SDNode<"MipsISD::MAddu", SDT_MipsMAddMSub>; 104def MipsMSub : SDNode<"MipsISD::MSub", SDT_MipsMAddMSub>; 105def MipsMSubu : SDNode<"MipsISD::MSubu", SDT_MipsMAddMSub>; 106 107// DivRem(u) nodes 108def MipsDivRem : SDNode<"MipsISD::DivRem", SDT_MipsMultDiv>; 109def MipsDivRemU : SDNode<"MipsISD::DivRemU", SDT_MipsMultDiv>; 110def MipsDivRem16 : SDNode<"MipsISD::DivRem16", SDT_MipsDivRem16, 111 [SDNPOutGlue]>; 112def MipsDivRemU16 : SDNode<"MipsISD::DivRemU16", SDT_MipsDivRem16, 113 [SDNPOutGlue]>; 114 115// Target constant nodes that are not part of any isel patterns and remain 116// unchanged can cause instructions with illegal operands to be emitted. 117// Wrapper node patterns give the instruction selector a chance to replace 118// target constant nodes that would otherwise remain unchanged with ADDiu 119// nodes. Without these wrapper node patterns, the following conditional move 120// instruction is emitted when function cmov2 in test/CodeGen/Mips/cmov.ll is 121// compiled: 122// movn %got(d)($gp), %got(c)($gp), $4 123// This instruction is illegal since movn can take only register operands. 124 125def MipsWrapper : SDNode<"MipsISD::Wrapper", SDTIntBinOp>; 126 127def MipsSync : SDNode<"MipsISD::Sync", SDT_Sync, [SDNPHasChain,SDNPSideEffect]>; 128 129def MipsExt : SDNode<"MipsISD::Ext", SDT_Ext>; 130def MipsIns : SDNode<"MipsISD::Ins", SDT_Ins>; 131 132def MipsLWL : SDNode<"MipsISD::LWL", SDTMipsLoadLR, 133 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 134def MipsLWR : SDNode<"MipsISD::LWR", SDTMipsLoadLR, 135 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 136def MipsSWL : SDNode<"MipsISD::SWL", SDTStore, 137 [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>; 138def MipsSWR : SDNode<"MipsISD::SWR", SDTStore, 139 [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>; 140def MipsLDL : SDNode<"MipsISD::LDL", SDTMipsLoadLR, 141 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 142def MipsLDR : SDNode<"MipsISD::LDR", SDTMipsLoadLR, 143 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 144def MipsSDL : SDNode<"MipsISD::SDL", SDTStore, 145 [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>; 146def MipsSDR : SDNode<"MipsISD::SDR", SDTStore, 147 [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>; 148 149//===----------------------------------------------------------------------===// 150// Mips Instruction Predicate Definitions. 151//===----------------------------------------------------------------------===// 152def HasMips2 : Predicate<"Subtarget->hasMips2()">, 153 AssemblerPredicate<"FeatureMips2">; 154def HasMips3_32 : Predicate<"Subtarget->hasMips3_32()">, 155 AssemblerPredicate<"FeatureMips3_32">; 156def HasMips3_32r2 : Predicate<"Subtarget->hasMips3_32r2()">, 157 AssemblerPredicate<"FeatureMips3_32r2">; 158def HasMips3 : Predicate<"Subtarget->hasMips3()">, 159 AssemblerPredicate<"FeatureMips3">; 160def HasMips4_32 : Predicate<"Subtarget->hasMips4_32()">, 161 AssemblerPredicate<"FeatureMips4_32">; 162def NotMips4_32 : Predicate<"!Subtarget->hasMips4_32()">, 163 AssemblerPredicate<"!FeatureMips4_32">; 164def HasMips4_32r2 : Predicate<"Subtarget->hasMips4_32r2()">, 165 AssemblerPredicate<"FeatureMips4_32r2">; 166def HasMips5_32r2 : Predicate<"Subtarget->hasMips5_32r2()">, 167 AssemblerPredicate<"FeatureMips5_32r2">; 168def HasMips32 : Predicate<"Subtarget->hasMips32()">, 169 AssemblerPredicate<"FeatureMips32">; 170def HasMips32r2 : Predicate<"Subtarget->hasMips32r2()">, 171 AssemblerPredicate<"FeatureMips32r2">; 172def HasMips32r5 : Predicate<"Subtarget->hasMips32r5()">, 173 AssemblerPredicate<"FeatureMips32r5">; 174def HasMips32r6 : Predicate<"Subtarget->hasMips32r6()">, 175 AssemblerPredicate<"FeatureMips32r6">; 176def NotMips32r6 : Predicate<"!Subtarget->hasMips32r6()">, 177 AssemblerPredicate<"!FeatureMips32r6">; 178def IsGP64bit : Predicate<"Subtarget->isGP64bit()">, 179 AssemblerPredicate<"FeatureGP64Bit">; 180def IsGP32bit : Predicate<"!Subtarget->isGP64bit()">, 181 AssemblerPredicate<"!FeatureGP64Bit">; 182def IsPTR64bit : Predicate<"Subtarget->isABI_N64()">, 183 AssemblerPredicate<"FeaturePTR64Bit">; 184def IsPTR32bit : Predicate<"!Subtarget->isABI_N64()">, 185 AssemblerPredicate<"!FeaturePTR64Bit">; 186def HasMips64 : Predicate<"Subtarget->hasMips64()">, 187 AssemblerPredicate<"FeatureMips64">; 188def NotMips64 : Predicate<"!Subtarget->hasMips64()">, 189 AssemblerPredicate<"!FeatureMips64">; 190def HasMips64r2 : Predicate<"Subtarget->hasMips64r2()">, 191 AssemblerPredicate<"FeatureMips64r2">; 192def HasMips64r6 : Predicate<"Subtarget->hasMips64r6()">, 193 AssemblerPredicate<"FeatureMips64r6">; 194def NotMips64r6 : Predicate<"!Subtarget->hasMips64r6()">, 195 AssemblerPredicate<"!FeatureMips64r6">; 196def HasMicroMips32r6 : Predicate<"Subtarget->inMicroMips32r6Mode()">, 197 AssemblerPredicate<"FeatureMicroMips,FeatureMips32r6">; 198def HasMicroMips64r6 : Predicate<"Subtarget->inMicroMips64r6Mode()">, 199 AssemblerPredicate<"FeatureMicroMips,FeatureMips64r6">; 200def InMips16Mode : Predicate<"Subtarget->inMips16Mode()">, 201 AssemblerPredicate<"FeatureMips16">; 202def HasCnMips : Predicate<"Subtarget->hasCnMips()">, 203 AssemblerPredicate<"FeatureCnMips">; 204def RelocNotPIC : Predicate<"!TM.isPositionIndependent()">; 205def RelocPIC : Predicate<"TM.isPositionIndependent()">; 206def NoNaNsFPMath : Predicate<"TM.Options.NoNaNsFPMath">; 207def HasStdEnc : Predicate<"Subtarget->hasStandardEncoding()">, 208 AssemblerPredicate<"!FeatureMips16">; 209def NotDSP : Predicate<"!Subtarget->hasDSP()">; 210def InMicroMips : Predicate<"Subtarget->inMicroMipsMode()">, 211 AssemblerPredicate<"FeatureMicroMips">; 212def NotInMicroMips : Predicate<"!Subtarget->inMicroMipsMode()">, 213 AssemblerPredicate<"!FeatureMicroMips">; 214def IsLE : Predicate<"Subtarget->isLittle()">; 215def IsBE : Predicate<"!Subtarget->isLittle()">; 216def IsNotNaCl : Predicate<"!Subtarget->isTargetNaCl()">; 217def UseTCCInDIV : AssemblerPredicate<"FeatureUseTCCInDIV">; 218def HasEVA : Predicate<"Subtarget->hasEVA()">, 219 AssemblerPredicate<"FeatureEVA,FeatureMips32r2">; 220def HasMSA : Predicate<"Subtarget->hasMSA()">, 221 AssemblerPredicate<"FeatureMSA">; 222 223 224//===----------------------------------------------------------------------===// 225// Mips GPR size adjectives. 226// They are mutually exclusive. 227//===----------------------------------------------------------------------===// 228 229class GPR_32 { list<Predicate> GPRPredicates = [IsGP32bit]; } 230class GPR_64 { list<Predicate> GPRPredicates = [IsGP64bit]; } 231 232class PTR_32 { list<Predicate> PTRPredicates = [IsPTR32bit]; } 233class PTR_64 { list<Predicate> PTRPredicates = [IsPTR64bit]; } 234 235//===----------------------------------------------------------------------===// 236// Mips ISA/ASE membership and instruction group membership adjectives. 237// They are mutually exclusive. 238//===----------------------------------------------------------------------===// 239 240// FIXME: I'd prefer to use additive predicates to build the instruction sets 241// but we are short on assembler feature bits at the moment. Using a 242// subtractive predicate will hopefully keep us under the 32 predicate 243// limit long enough to develop an alternative way to handle P1||P2 244// predicates. 245class ISA_MIPS1_NOT_4_32 { 246 list<Predicate> InsnPredicates = [NotMips4_32]; 247} 248class ISA_MIPS1_NOT_32R6_64R6 { 249 list<Predicate> InsnPredicates = [NotMips32r6, NotMips64r6]; 250} 251class ISA_MIPS2 { list<Predicate> InsnPredicates = [HasMips2]; } 252class ISA_MIPS2_NOT_32R6_64R6 { 253 list<Predicate> InsnPredicates = [HasMips2, NotMips32r6, NotMips64r6]; 254} 255class ISA_MIPS3 { list<Predicate> InsnPredicates = [HasMips3]; } 256class ISA_MIPS3_NOT_32R6_64R6 { 257 list<Predicate> InsnPredicates = [HasMips3, NotMips32r6, NotMips64r6]; 258} 259class ISA_MIPS32 { list<Predicate> InsnPredicates = [HasMips32]; } 260class ISA_MIPS32_NOT_32R6_64R6 { 261 list<Predicate> InsnPredicates = [HasMips32, NotMips32r6, NotMips64r6]; 262} 263class ISA_MIPS32R2 { list<Predicate> InsnPredicates = [HasMips32r2]; } 264class ISA_MIPS32R2_NOT_32R6_64R6 { 265 list<Predicate> InsnPredicates = [HasMips32r2, NotMips32r6, NotMips64r6]; 266} 267class ISA_MIPS32R5 { list<Predicate> InsnPredicates = [HasMips32r5]; } 268class ISA_MIPS64 { list<Predicate> InsnPredicates = [HasMips64]; } 269class ISA_MIPS64_NOT_64R6 { 270 list<Predicate> InsnPredicates = [HasMips64, NotMips64r6]; 271} 272class ISA_MIPS64R2 { list<Predicate> InsnPredicates = [HasMips64r2]; } 273class ISA_MIPS32R6 { list<Predicate> InsnPredicates = [HasMips32r6]; } 274class ISA_MIPS64R6 { list<Predicate> InsnPredicates = [HasMips64r6]; } 275class ISA_MICROMIPS { list<Predicate> InsnPredicates = [InMicroMips]; } 276class ISA_MICROMIPS32R6 { 277 list<Predicate> InsnPredicates = [HasMicroMips32r6]; 278} 279class ISA_MICROMIPS64R6 { 280 list<Predicate> InsnPredicates = [HasMicroMips64r6]; 281} 282class ISA_MICROMIPS32_NOT_MIPS32R6 { 283 list<Predicate> InsnPredicates = [InMicroMips, NotMips32r6]; 284} 285 286class INSN_EVA { list<Predicate> InsnPredicates = [HasEVA]; } 287class INSN_EVA_NOT_32R6_64R6 { 288 list<Predicate> InsnPredicates = [NotMips32r6, NotMips64r6, HasEVA]; 289} 290 291// The portions of MIPS-III that were also added to MIPS32 292class INSN_MIPS3_32 { list<Predicate> InsnPredicates = [HasMips3_32]; } 293 294// The portions of MIPS-III that were also added to MIPS32 but were removed in 295// MIPS32r6 and MIPS64r6. 296class INSN_MIPS3_32_NOT_32R6_64R6 { 297 list<Predicate> InsnPredicates = [HasMips3_32, NotMips32r6, NotMips64r6]; 298} 299 300// The portions of MIPS-III that were also added to MIPS32 301class INSN_MIPS3_32R2 { list<Predicate> InsnPredicates = [HasMips3_32r2]; } 302 303// The portions of MIPS-IV that were also added to MIPS32. 304class INSN_MIPS4_32 { list <Predicate> InsnPredicates = [HasMips4_32]; } 305 306// The portions of MIPS-IV that were also added to MIPS32 but were removed in 307// MIPS32r6 and MIPS64r6. 308class INSN_MIPS4_32_NOT_32R6_64R6 { 309 list<Predicate> InsnPredicates = [HasMips4_32, NotMips32r6, NotMips64r6]; 310} 311 312// The portions of MIPS-IV that were also added to MIPS32r2 but were removed in 313// MIPS32r6 and MIPS64r6. 314class INSN_MIPS4_32R2_NOT_32R6_64R6 { 315 list<Predicate> InsnPredicates = [HasMips4_32r2, NotMips32r6, NotMips64r6]; 316} 317 318// The portions of MIPS-IV that were also added to MIPS32r2. 319class INSN_MIPS4_32R2 { 320 list<Predicate> InsnPredicates = [HasMips4_32r2]; 321} 322 323// The portions of MIPS-V that were also added to MIPS32r2 but were removed in 324// MIPS32r6 and MIPS64r6. 325class INSN_MIPS5_32R2_NOT_32R6_64R6 { 326 list<Predicate> InsnPredicates = [HasMips5_32r2, NotMips32r6, NotMips64r6]; 327} 328 329class ASE_CNMIPS { 330 list<Predicate> InsnPredicates = [HasCnMips]; 331} 332 333class ASE_MIPS64_CNMIPS { 334 list<Predicate> InsnPredicates = [HasMips64, HasCnMips]; 335} 336 337class ASE_MSA { 338 list<Predicate> InsnPredicates = [HasMSA]; 339} 340 341class ASE_MSA_NOT_MSA64 { 342 list<Predicate> InsnPredicates = [HasMSA, NotMips64]; 343} 344 345class ASE_MSA64 { 346 list<Predicate> InsnPredicates = [HasMSA, HasMips64]; 347} 348 349// Class used for separating microMIPSr6 and microMIPS (r3) instruction. 350// It can be used only on instructions that doesn't inherit PredicateControl. 351class ISA_MICROMIPS_NOT_32R6_64R6 : PredicateControl { 352 let InsnPredicates = [InMicroMips, NotMips32r6, NotMips64r6]; 353} 354 355class ASE_NOT_DSP { 356 list<Predicate> InsnPredicates = [NotDSP]; 357} 358 359//===----------------------------------------------------------------------===// 360 361class MipsPat<dag pattern, dag result> : Pat<pattern, result>, PredicateControl { 362 let EncodingPredicates = [HasStdEnc]; 363} 364 365class MipsInstAlias<string Asm, dag Result, bit Emit = 0b1> : 366 InstAlias<Asm, Result, Emit>, PredicateControl; 367 368class IsCommutable { 369 bit isCommutable = 1; 370} 371 372class IsBranch { 373 bit isBranch = 1; 374 bit isCTI = 1; 375} 376 377class IsReturn { 378 bit isReturn = 1; 379 bit isCTI = 1; 380} 381 382class IsCall { 383 bit isCall = 1; 384 bit isCTI = 1; 385} 386 387class IsTailCall { 388 bit isCall = 1; 389 bit isTerminator = 1; 390 bit isReturn = 1; 391 bit isBarrier = 1; 392 bit hasExtraSrcRegAllocReq = 1; 393 bit isCodeGenOnly = 1; 394 bit isCTI = 1; 395} 396 397class IsAsCheapAsAMove { 398 bit isAsCheapAsAMove = 1; 399} 400 401class NeverHasSideEffects { 402 bit hasSideEffects = 0; 403} 404 405//===----------------------------------------------------------------------===// 406// Instruction format superclass 407//===----------------------------------------------------------------------===// 408 409include "MipsInstrFormats.td" 410 411//===----------------------------------------------------------------------===// 412// Mips Operand, Complex Patterns and Transformations Definitions. 413//===----------------------------------------------------------------------===// 414 415class ConstantSImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [], 416 int Offset = 0> : AsmOperandClass { 417 let Name = "ConstantSImm" # Bits # "_" # Offset; 418 let RenderMethod = "addConstantSImmOperands<" # Bits # ", " # Offset # ">"; 419 let PredicateMethod = "isConstantSImm<" # Bits # ", " # Offset # ">"; 420 let SuperClasses = Supers; 421 let DiagnosticType = "SImm" # Bits # "_" # Offset; 422} 423 424class SimmLslAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [], 425 int Shift = 0> : AsmOperandClass { 426 let Name = "Simm" # Bits # "_Lsl" # Shift; 427 let RenderMethod = "addImmOperands"; 428 let PredicateMethod = "isScaledSImm<" # Bits # ", " # Shift # ">"; 429 let SuperClasses = Supers; 430 let DiagnosticType = "SImm" # Bits # "_Lsl" # Shift; 431} 432 433class ConstantUImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [], 434 int Offset = 0> : AsmOperandClass { 435 let Name = "ConstantUImm" # Bits # "_" # Offset; 436 let RenderMethod = "addConstantUImmOperands<" # Bits # ", " # Offset # ">"; 437 let PredicateMethod = "isConstantUImm<" # Bits # ", " # Offset # ">"; 438 let SuperClasses = Supers; 439 let DiagnosticType = "UImm" # Bits # "_" # Offset; 440} 441 442class ConstantUImmRangeAsmOperandClass<int Bottom, int Top, 443 list<AsmOperandClass> Supers = []> 444 : AsmOperandClass { 445 let Name = "ConstantUImmRange" # Bottom # "_" # Top; 446 let RenderMethod = "addImmOperands"; 447 let PredicateMethod = "isConstantUImmRange<" # Bottom # ", " # Top # ">"; 448 let SuperClasses = Supers; 449 let DiagnosticType = "UImmRange" # Bottom # "_" # Top; 450} 451 452class SImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []> 453 : AsmOperandClass { 454 let Name = "SImm" # Bits; 455 let RenderMethod = "addSImmOperands<" # Bits # ">"; 456 let PredicateMethod = "isSImm<" # Bits # ">"; 457 let SuperClasses = Supers; 458 let DiagnosticType = "SImm" # Bits; 459} 460 461class UImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []> 462 : AsmOperandClass { 463 let Name = "UImm" # Bits; 464 let RenderMethod = "addUImmOperands<" # Bits # ">"; 465 let PredicateMethod = "isUImm<" # Bits # ">"; 466 let SuperClasses = Supers; 467 let DiagnosticType = "UImm" # Bits; 468} 469 470// Generic case - only to support certain assembly pseudo instructions. 471class UImmAnyAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []> 472 : AsmOperandClass { 473 let Name = "ImmAny"; 474 let RenderMethod = "addConstantUImmOperands<32>"; 475 let PredicateMethod = "isSImm<" # Bits # ">"; 476 let SuperClasses = Supers; 477 let DiagnosticType = "ImmAny"; 478} 479 480// AsmOperandClasses require a strict ordering which is difficult to manage 481// as a hierarchy. Instead, we use a linear ordering and impose an order that 482// is in some places arbitrary. 483// 484// Here the rules that are in use: 485// * Wider immediates are a superset of narrower immediates: 486// uimm4 < uimm5 < uimm6 487// * For the same bit-width, unsigned immediates are a superset of signed 488// immediates:: 489// simm4 < uimm4 < simm5 < uimm5 490// * For the same upper-bound, signed immediates are a superset of unsigned 491// immediates: 492// uimm3 < simm4 < uimm4 < simm4 493// * Modified immediates are a superset of ordinary immediates: 494// uimm5 < uimm5_plus1 (1..32) < uimm5_plus32 (32..63) < uimm6 495// The term 'superset' starts to break down here since the uimm5_plus* classes 496// are not true supersets of uimm5 (but they are still subsets of uimm6). 497// * 'Relaxed' immediates are supersets of the corresponding unsigned immediate. 498// uimm16 < uimm16_relaxed 499// * The codeGen pattern type is arbitrarily ordered. 500// uimm5 < uimm5_64, and uimm5 < vsplat_uimm5 501// This is entirely arbitrary. We need an ordering and what we pick is 502// unimportant since only one is possible for a given mnemonic. 503 504def UImm32CoercedAsmOperandClass : UImmAnyAsmOperandClass<33, []> { 505 let Name = "UImm32_Coerced"; 506 let DiagnosticType = "UImm32_Coerced"; 507} 508def SImm32RelaxedAsmOperandClass 509 : SImmAsmOperandClass<32, [UImm32CoercedAsmOperandClass]> { 510 let Name = "SImm32_Relaxed"; 511 let PredicateMethod = "isAnyImm<32>"; 512 let DiagnosticType = "SImm32_Relaxed"; 513} 514def SImm32AsmOperandClass 515 : SImmAsmOperandClass<32, [SImm32RelaxedAsmOperandClass]>; 516def ConstantUImm26AsmOperandClass 517 : ConstantUImmAsmOperandClass<26, [SImm32AsmOperandClass]>; 518def ConstantUImm20AsmOperandClass 519 : ConstantUImmAsmOperandClass<20, [ConstantUImm26AsmOperandClass]>; 520def ConstantSImm19Lsl2AsmOperandClass : AsmOperandClass { 521 let Name = "SImm19Lsl2"; 522 let RenderMethod = "addImmOperands"; 523 let PredicateMethod = "isScaledSImm<19, 2>"; 524 let SuperClasses = [ConstantUImm20AsmOperandClass]; 525 let DiagnosticType = "SImm19_Lsl2"; 526} 527def UImm16RelaxedAsmOperandClass 528 : UImmAsmOperandClass<16, [ConstantUImm20AsmOperandClass]> { 529 let Name = "UImm16_Relaxed"; 530 let PredicateMethod = "isAnyImm<16>"; 531 let DiagnosticType = "UImm16_Relaxed"; 532} 533// Similar to the relaxed classes which take an SImm and render it as 534// an UImm, this takes a UImm and renders it as an SImm. 535def UImm16AltRelaxedAsmOperandClass 536 : SImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]> { 537 let Name = "UImm16_AltRelaxed"; 538 let PredicateMethod = "isUImm<16>"; 539 let DiagnosticType = "UImm16_AltRelaxed"; 540} 541// FIXME: One of these should probably have UImm16AsmOperandClass as the 542// superclass instead of UImm16RelaxedasmOPerandClass. 543def UImm16AsmOperandClass 544 : UImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]>; 545def SImm16RelaxedAsmOperandClass 546 : SImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]> { 547 let Name = "SImm16_Relaxed"; 548 let PredicateMethod = "isAnyImm<16>"; 549 let DiagnosticType = "SImm16_Relaxed"; 550} 551def SImm16AsmOperandClass 552 : SImmAsmOperandClass<16, [SImm16RelaxedAsmOperandClass]>; 553def ConstantSImm10Lsl3AsmOperandClass : AsmOperandClass { 554 let Name = "SImm10Lsl3"; 555 let RenderMethod = "addImmOperands"; 556 let PredicateMethod = "isScaledSImm<10, 3>"; 557 let SuperClasses = [SImm16AsmOperandClass]; 558 let DiagnosticType = "SImm10_Lsl3"; 559} 560def ConstantSImm10Lsl2AsmOperandClass : AsmOperandClass { 561 let Name = "SImm10Lsl2"; 562 let RenderMethod = "addImmOperands"; 563 let PredicateMethod = "isScaledSImm<10, 2>"; 564 let SuperClasses = [ConstantSImm10Lsl3AsmOperandClass]; 565 let DiagnosticType = "SImm10_Lsl2"; 566} 567def ConstantSImm11AsmOperandClass 568 : ConstantSImmAsmOperandClass<11, [ConstantSImm10Lsl2AsmOperandClass]>; 569def ConstantSImm10Lsl1AsmOperandClass : AsmOperandClass { 570 let Name = "SImm10Lsl1"; 571 let RenderMethod = "addImmOperands"; 572 let PredicateMethod = "isScaledSImm<10, 1>"; 573 let SuperClasses = [ConstantSImm11AsmOperandClass]; 574 let DiagnosticType = "SImm10_Lsl1"; 575} 576def ConstantUImm10AsmOperandClass 577 : ConstantUImmAsmOperandClass<10, [ConstantSImm10Lsl1AsmOperandClass]>; 578def ConstantSImm10AsmOperandClass 579 : ConstantSImmAsmOperandClass<10, [ConstantUImm10AsmOperandClass]>; 580def ConstantSImm9AsmOperandClass 581 : ConstantSImmAsmOperandClass<9, [ConstantSImm10AsmOperandClass]>; 582def ConstantSImm7Lsl2AsmOperandClass : AsmOperandClass { 583 let Name = "SImm7Lsl2"; 584 let RenderMethod = "addImmOperands"; 585 let PredicateMethod = "isScaledSImm<7, 2>"; 586 let SuperClasses = [ConstantSImm9AsmOperandClass]; 587 let DiagnosticType = "SImm7_Lsl2"; 588} 589def ConstantUImm8AsmOperandClass 590 : ConstantUImmAsmOperandClass<8, [ConstantSImm7Lsl2AsmOperandClass]>; 591def ConstantUImm7Sub1AsmOperandClass 592 : ConstantUImmAsmOperandClass<7, [ConstantUImm8AsmOperandClass], -1> { 593 // Specify the names since the -1 offset causes invalid identifiers otherwise. 594 let Name = "UImm7_N1"; 595 let DiagnosticType = "UImm7_N1"; 596} 597def ConstantUImm7AsmOperandClass 598 : ConstantUImmAsmOperandClass<7, [ConstantUImm7Sub1AsmOperandClass]>; 599def ConstantUImm6Lsl2AsmOperandClass : AsmOperandClass { 600 let Name = "UImm6Lsl2"; 601 let RenderMethod = "addImmOperands"; 602 let PredicateMethod = "isScaledUImm<6, 2>"; 603 let SuperClasses = [ConstantUImm7AsmOperandClass]; 604 let DiagnosticType = "UImm6_Lsl2"; 605} 606def ConstantUImm6AsmOperandClass 607 : ConstantUImmAsmOperandClass<6, [ConstantUImm6Lsl2AsmOperandClass]>; 608def ConstantSImm6AsmOperandClass 609 : ConstantSImmAsmOperandClass<6, [ConstantUImm6AsmOperandClass]>; 610def ConstantUImm5Lsl2AsmOperandClass : AsmOperandClass { 611 let Name = "UImm5Lsl2"; 612 let RenderMethod = "addImmOperands"; 613 let PredicateMethod = "isScaledUImm<5, 2>"; 614 let SuperClasses = [ConstantSImm6AsmOperandClass]; 615 let DiagnosticType = "UImm5_Lsl2"; 616} 617def ConstantUImm5_Range2_64AsmOperandClass 618 : ConstantUImmRangeAsmOperandClass<2, 64, [ConstantUImm5Lsl2AsmOperandClass]>; 619def ConstantUImm5Plus33AsmOperandClass 620 : ConstantUImmAsmOperandClass<5, [ConstantUImm5_Range2_64AsmOperandClass], 621 33>; 622def ConstantUImm5ReportUImm6AsmOperandClass 623 : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus33AsmOperandClass]> { 624 let Name = "ConstantUImm5_0_Report_UImm6"; 625 let DiagnosticType = "UImm5_0_Report_UImm6"; 626} 627def ConstantUImm5Plus32AsmOperandClass 628 : ConstantUImmAsmOperandClass< 629 5, [ConstantUImm5ReportUImm6AsmOperandClass], 32>; 630def ConstantUImm5Plus32NormalizeAsmOperandClass 631 : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus32AsmOperandClass], 32> { 632 let Name = "ConstantUImm5_32_Norm"; 633 // We must also subtract 32 when we render the operand. 634 let RenderMethod = "addConstantUImmOperands<5, 32, -32>"; 635} 636def ConstantUImm5Plus1AsmOperandClass 637 : ConstantUImmAsmOperandClass< 638 5, [ConstantUImm5Plus32NormalizeAsmOperandClass], 1>; 639def ConstantUImm5AsmOperandClass 640 : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus1AsmOperandClass]>; 641def ConstantSImm5AsmOperandClass 642 : ConstantSImmAsmOperandClass<5, [ConstantUImm5AsmOperandClass]>; 643def ConstantUImm4AsmOperandClass 644 : ConstantUImmAsmOperandClass<4, [ConstantSImm5AsmOperandClass]>; 645def ConstantSImm4AsmOperandClass 646 : ConstantSImmAsmOperandClass<4, [ConstantUImm4AsmOperandClass]>; 647def ConstantUImm3AsmOperandClass 648 : ConstantUImmAsmOperandClass<3, [ConstantSImm4AsmOperandClass]>; 649def ConstantUImm2Plus1AsmOperandClass 650 : ConstantUImmAsmOperandClass<2, [ConstantUImm3AsmOperandClass], 1>; 651def ConstantUImm2AsmOperandClass 652 : ConstantUImmAsmOperandClass<2, [ConstantUImm3AsmOperandClass]>; 653def ConstantUImm1AsmOperandClass 654 : ConstantUImmAsmOperandClass<1, [ConstantUImm2AsmOperandClass]>; 655def ConstantImmzAsmOperandClass : AsmOperandClass { 656 let Name = "ConstantImmz"; 657 let RenderMethod = "addConstantUImmOperands<1>"; 658 let PredicateMethod = "isConstantImmz"; 659 let SuperClasses = [ConstantUImm1AsmOperandClass]; 660 let DiagnosticType = "Immz"; 661} 662 663def Simm19Lsl2AsmOperand 664 : SimmLslAsmOperandClass<19, [], 2>; 665 666def MipsJumpTargetAsmOperand : AsmOperandClass { 667 let Name = "JumpTarget"; 668 let ParserMethod = "parseJumpTarget"; 669 let PredicateMethod = "isImm"; 670 let RenderMethod = "addImmOperands"; 671} 672 673// Instruction operand types 674def jmptarget : Operand<OtherVT> { 675 let EncoderMethod = "getJumpTargetOpValue"; 676 let ParserMatchClass = MipsJumpTargetAsmOperand; 677} 678def brtarget : Operand<OtherVT> { 679 let EncoderMethod = "getBranchTargetOpValue"; 680 let OperandType = "OPERAND_PCREL"; 681 let DecoderMethod = "DecodeBranchTarget"; 682 let ParserMatchClass = MipsJumpTargetAsmOperand; 683} 684def brtarget1SImm16 : Operand<OtherVT> { 685 let EncoderMethod = "getBranchTargetOpValue1SImm16"; 686 let OperandType = "OPERAND_PCREL"; 687 let DecoderMethod = "DecodeBranchTarget1SImm16"; 688 let ParserMatchClass = MipsJumpTargetAsmOperand; 689} 690def calltarget : Operand<iPTR> { 691 let EncoderMethod = "getJumpTargetOpValue"; 692 let ParserMatchClass = MipsJumpTargetAsmOperand; 693} 694 695def imm64: Operand<i64>; 696 697def simm19_lsl2 : Operand<i32> { 698 let EncoderMethod = "getSimm19Lsl2Encoding"; 699 let DecoderMethod = "DecodeSimm19Lsl2"; 700 let ParserMatchClass = Simm19Lsl2AsmOperand; 701} 702 703def simm18_lsl3 : Operand<i32> { 704 let EncoderMethod = "getSimm18Lsl3Encoding"; 705 let DecoderMethod = "DecodeSimm18Lsl3"; 706 let ParserMatchClass = MipsJumpTargetAsmOperand; 707} 708 709// Zero 710def uimmz : Operand<i32> { 711 let PrintMethod = "printUImm<0>"; 712 let ParserMatchClass = ConstantImmzAsmOperandClass; 713} 714 715// size operand of ins instruction 716def uimm_range_2_64 : Operand<i32> { 717 let PrintMethod = "printUImm<6, 2>"; 718 let EncoderMethod = "getSizeInsEncoding"; 719 let DecoderMethod = "DecodeInsSize"; 720 let ParserMatchClass = ConstantUImm5_Range2_64AsmOperandClass; 721} 722 723// Unsigned Operands 724foreach I = {1, 2, 3, 4, 5, 6, 7, 8, 10, 20, 26} in 725 def uimm # I : Operand<i32> { 726 let PrintMethod = "printUImm<" # I # ">"; 727 let ParserMatchClass = 728 !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass"); 729 } 730 731def uimm2_plus1 : Operand<i32> { 732 let PrintMethod = "printUImm<2, 1>"; 733 let EncoderMethod = "getUImmWithOffsetEncoding<2, 1>"; 734 let DecoderMethod = "DecodeUImmWithOffset<2, 1>"; 735 let ParserMatchClass = ConstantUImm2Plus1AsmOperandClass; 736} 737 738def uimm5_plus1 : Operand<i32> { 739 let PrintMethod = "printUImm<5, 1>"; 740 let EncoderMethod = "getUImmWithOffsetEncoding<5, 1>"; 741 let DecoderMethod = "DecodeUImmWithOffset<5, 1>"; 742 let ParserMatchClass = ConstantUImm5Plus1AsmOperandClass; 743} 744 745def uimm5_plus32 : Operand<i32> { 746 let PrintMethod = "printUImm<5, 32>"; 747 let ParserMatchClass = ConstantUImm5Plus32AsmOperandClass; 748} 749 750def uimm5_plus33 : Operand<i32> { 751 let PrintMethod = "printUImm<5, 33>"; 752 let EncoderMethod = "getUImmWithOffsetEncoding<5, 1>"; 753 let DecoderMethod = "DecodeUImmWithOffset<5, 1>"; 754 let ParserMatchClass = ConstantUImm5Plus33AsmOperandClass; 755} 756 757def uimm5_inssize_plus1 : Operand<i32> { 758 let PrintMethod = "printUImm<6>"; 759 let ParserMatchClass = ConstantUImm5Plus1AsmOperandClass; 760 let EncoderMethod = "getSizeInsEncoding"; 761 let DecoderMethod = "DecodeInsSize"; 762} 763 764def uimm5_plus32_normalize : Operand<i32> { 765 let PrintMethod = "printUImm<5>"; 766 let ParserMatchClass = ConstantUImm5Plus32NormalizeAsmOperandClass; 767} 768 769def uimm5_lsl2 : Operand<OtherVT> { 770 let EncoderMethod = "getUImm5Lsl2Encoding"; 771 let DecoderMethod = "DecodeUImmWithOffsetAndScale<5, 0, 4>"; 772 let ParserMatchClass = ConstantUImm5Lsl2AsmOperandClass; 773} 774 775def uimm5_plus32_normalize_64 : Operand<i64> { 776 let PrintMethod = "printUImm<5>"; 777 let ParserMatchClass = ConstantUImm5Plus32NormalizeAsmOperandClass; 778} 779 780def uimm6_lsl2 : Operand<OtherVT> { 781 let EncoderMethod = "getUImm6Lsl2Encoding"; 782 let DecoderMethod = "DecodeUImmWithOffsetAndScale<6, 0, 4>"; 783 let ParserMatchClass = ConstantUImm6Lsl2AsmOperandClass; 784} 785 786foreach I = {16} in 787 def uimm # I : Operand<i32> { 788 let PrintMethod = "printUImm<" # I # ">"; 789 let ParserMatchClass = 790 !cast<AsmOperandClass>("UImm" # I # "AsmOperandClass"); 791 } 792 793// Like uimm16_64 but coerces simm16 to uimm16. 794def uimm16_relaxed : Operand<i32> { 795 let PrintMethod = "printUImm<16>"; 796 let ParserMatchClass = 797 !cast<AsmOperandClass>("UImm16RelaxedAsmOperandClass"); 798} 799 800foreach I = {5} in 801 def uimm # I # _64 : Operand<i64> { 802 let PrintMethod = "printUImm<" # I # ">"; 803 let ParserMatchClass = 804 !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass"); 805 } 806 807foreach I = {16} in 808 def uimm # I # _64 : Operand<i64> { 809 let PrintMethod = "printUImm<" # I # ">"; 810 let ParserMatchClass = 811 !cast<AsmOperandClass>("UImm" # I # "AsmOperandClass"); 812 } 813 814// Like uimm16_64 but coerces simm16 to uimm16. 815def uimm16_64_relaxed : Operand<i64> { 816 let PrintMethod = "printUImm<16>"; 817 let ParserMatchClass = 818 !cast<AsmOperandClass>("UImm16RelaxedAsmOperandClass"); 819} 820 821def uimm16_altrelaxed : Operand<i32> { 822 let PrintMethod = "printUImm<16>"; 823 let ParserMatchClass = 824 !cast<AsmOperandClass>("UImm16AltRelaxedAsmOperandClass"); 825} 826// Like uimm5 but reports a less confusing error for 32-63 when 827// an instruction alias permits that. 828def uimm5_report_uimm6 : Operand<i32> { 829 let PrintMethod = "printUImm<5>"; 830 let ParserMatchClass = ConstantUImm5ReportUImm6AsmOperandClass; 831} 832 833// Like uimm5_64 but reports a less confusing error for 32-63 when 834// an instruction alias permits that. 835def uimm5_64_report_uimm6 : Operand<i64> { 836 let PrintMethod = "printUImm<5>"; 837 let ParserMatchClass = ConstantUImm5ReportUImm6AsmOperandClass; 838} 839 840foreach I = {1, 2, 3, 4} in 841 def uimm # I # _ptr : Operand<iPTR> { 842 let PrintMethod = "printUImm<" # I # ">"; 843 let ParserMatchClass = 844 !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass"); 845 } 846 847foreach I = {1, 2, 3, 4, 5, 6, 8} in 848 def vsplat_uimm # I : Operand<vAny> { 849 let PrintMethod = "printUImm<" # I # ">"; 850 let ParserMatchClass = 851 !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass"); 852 } 853 854// Signed operands 855foreach I = {4, 5, 6, 9, 10, 11} in 856 def simm # I : Operand<i32> { 857 let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">"; 858 let ParserMatchClass = 859 !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass"); 860 } 861 862foreach I = {1, 2, 3} in 863 def simm10_lsl # I : Operand<i32> { 864 let DecoderMethod = "DecodeSImmWithOffsetAndScale<10, " # I # ">"; 865 let ParserMatchClass = 866 !cast<AsmOperandClass>("ConstantSImm10Lsl" # I # "AsmOperandClass"); 867 } 868 869foreach I = {10} in 870 def simm # I # _64 : Operand<i64> { 871 let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">"; 872 let ParserMatchClass = 873 !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass"); 874 } 875 876foreach I = {5, 10} in 877 def vsplat_simm # I : Operand<vAny> { 878 let ParserMatchClass = 879 !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass"); 880 } 881 882def simm7_lsl2 : Operand<OtherVT> { 883 let EncoderMethod = "getSImm7Lsl2Encoding"; 884 let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ", 0, 4>"; 885 let ParserMatchClass = ConstantSImm7Lsl2AsmOperandClass; 886} 887 888foreach I = {16, 32} in 889 def simm # I : Operand<i32> { 890 let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">"; 891 let ParserMatchClass = !cast<AsmOperandClass>("SImm" # I # "AsmOperandClass"); 892 } 893 894// Like simm16 but coerces uimm16 to simm16. 895def simm16_relaxed : Operand<i32> { 896 let DecoderMethod = "DecodeSImmWithOffsetAndScale<16>"; 897 let ParserMatchClass = !cast<AsmOperandClass>("SImm16RelaxedAsmOperandClass"); 898} 899 900def simm16_64 : Operand<i64> { 901 let DecoderMethod = "DecodeSImmWithOffsetAndScale<16>"; 902 let ParserMatchClass = !cast<AsmOperandClass>("SImm16AsmOperandClass"); 903} 904 905// like simm32 but coerces simm32 to uimm32. 906def uimm32_coerced : Operand<i32> { 907 let ParserMatchClass = !cast<AsmOperandClass>("UImm32CoercedAsmOperandClass"); 908} 909// Like simm32 but coerces uimm32 to simm32. 910def simm32_relaxed : Operand<i32> { 911 let DecoderMethod = "DecodeSImmWithOffsetAndScale<32>"; 912 let ParserMatchClass = !cast<AsmOperandClass>("SImm32RelaxedAsmOperandClass"); 913} 914 915// This is almost the same as a uimm7 but 0x7f is interpreted as -1. 916def li16_imm : Operand<i32> { 917 let DecoderMethod = "DecodeLi16Imm"; 918 let ParserMatchClass = ConstantUImm7Sub1AsmOperandClass; 919} 920 921def MipsMemAsmOperand : AsmOperandClass { 922 let Name = "Mem"; 923 let ParserMethod = "parseMemOperand"; 924} 925 926def MipsMemSimm9AsmOperand : AsmOperandClass { 927 let Name = "MemOffsetSimm9"; 928 let SuperClasses = [MipsMemAsmOperand]; 929 let RenderMethod = "addMemOperands"; 930 let ParserMethod = "parseMemOperand"; 931 let PredicateMethod = "isMemWithSimmOffset<9>"; 932 let DiagnosticType = "MemSImm9"; 933} 934 935def MipsMemSimm10AsmOperand : AsmOperandClass { 936 let Name = "MemOffsetSimm10"; 937 let SuperClasses = [MipsMemAsmOperand]; 938 let RenderMethod = "addMemOperands"; 939 let ParserMethod = "parseMemOperand"; 940 let PredicateMethod = "isMemWithSimmOffset<10>"; 941 let DiagnosticType = "MemSImm10"; 942} 943 944def MipsMemSimm12AsmOperand : AsmOperandClass { 945 let Name = "MemOffsetSimm12"; 946 let SuperClasses = [MipsMemAsmOperand]; 947 let RenderMethod = "addMemOperands"; 948 let ParserMethod = "parseMemOperand"; 949 let PredicateMethod = "isMemWithSimmOffset<12>"; 950 let DiagnosticType = "MemSImm12"; 951} 952 953foreach I = {1, 2, 3} in 954 def MipsMemSimm10Lsl # I # AsmOperand : AsmOperandClass { 955 let Name = "MemOffsetSimm10_" # I; 956 let SuperClasses = [MipsMemAsmOperand]; 957 let RenderMethod = "addMemOperands"; 958 let ParserMethod = "parseMemOperand"; 959 let PredicateMethod = "isMemWithSimmOffset<10, " # I # ">"; 960 let DiagnosticType = "MemSImm10Lsl" # I; 961 } 962 963def MipsMemSimm11AsmOperand : AsmOperandClass { 964 let Name = "MemOffsetSimm11"; 965 let SuperClasses = [MipsMemAsmOperand]; 966 let RenderMethod = "addMemOperands"; 967 let ParserMethod = "parseMemOperand"; 968 let PredicateMethod = "isMemWithSimmOffset<11>"; 969 let DiagnosticType = "MemSImm11"; 970} 971 972def MipsMemSimm16AsmOperand : AsmOperandClass { 973 let Name = "MemOffsetSimm16"; 974 let SuperClasses = [MipsMemAsmOperand]; 975 let RenderMethod = "addMemOperands"; 976 let ParserMethod = "parseMemOperand"; 977 let PredicateMethod = "isMemWithSimmOffset<16>"; 978 let DiagnosticType = "MemSImm16"; 979} 980 981def MipsInvertedImmoperand : AsmOperandClass { 982 let Name = "InvNum"; 983 let RenderMethod = "addImmOperands"; 984 let ParserMethod = "parseInvNum"; 985} 986 987def InvertedImOperand : Operand<i32> { 988 let ParserMatchClass = MipsInvertedImmoperand; 989} 990 991def InvertedImOperand64 : Operand<i64> { 992 let ParserMatchClass = MipsInvertedImmoperand; 993} 994 995class mem_generic : Operand<iPTR> { 996 let PrintMethod = "printMemOperand"; 997 let MIOperandInfo = (ops ptr_rc, simm16); 998 let EncoderMethod = "getMemEncoding"; 999 let ParserMatchClass = MipsMemAsmOperand; 1000 let OperandType = "OPERAND_MEMORY"; 1001} 1002 1003// Address operand 1004def mem : mem_generic; 1005 1006// MSA specific address operand 1007def mem_msa : mem_generic { 1008 let MIOperandInfo = (ops ptr_rc, simm10); 1009 let EncoderMethod = "getMSAMemEncoding"; 1010} 1011 1012def simm12 : Operand<i32> { 1013 let DecoderMethod = "DecodeSimm12"; 1014} 1015 1016def mem_simm9 : mem_generic { 1017 let MIOperandInfo = (ops ptr_rc, simm9); 1018 let EncoderMethod = "getMemEncoding"; 1019 let ParserMatchClass = MipsMemSimm9AsmOperand; 1020} 1021 1022def mem_simm10 : mem_generic { 1023 let MIOperandInfo = (ops ptr_rc, simm10); 1024 let EncoderMethod = "getMemEncoding"; 1025 let ParserMatchClass = MipsMemSimm10AsmOperand; 1026} 1027 1028foreach I = {1, 2, 3} in 1029 def mem_simm10_lsl # I : mem_generic { 1030 let MIOperandInfo = (ops ptr_rc, !cast<Operand>("simm10_lsl" # I)); 1031 let EncoderMethod = "getMemEncoding<" # I # ">"; 1032 let ParserMatchClass = 1033 !cast<AsmOperandClass>("MipsMemSimm10Lsl" # I # "AsmOperand"); 1034 } 1035 1036def mem_simm11 : mem_generic { 1037 let MIOperandInfo = (ops ptr_rc, simm11); 1038 let EncoderMethod = "getMemEncoding"; 1039 let ParserMatchClass = MipsMemSimm11AsmOperand; 1040} 1041 1042def mem_simm12 : mem_generic { 1043 let MIOperandInfo = (ops ptr_rc, simm12); 1044 let EncoderMethod = "getMemEncoding"; 1045 let ParserMatchClass = MipsMemSimm12AsmOperand; 1046} 1047 1048def mem_simm16 : mem_generic { 1049 let MIOperandInfo = (ops ptr_rc, simm16); 1050 let EncoderMethod = "getMemEncoding"; 1051 let ParserMatchClass = MipsMemSimm16AsmOperand; 1052} 1053 1054def mem_ea : Operand<iPTR> { 1055 let PrintMethod = "printMemOperandEA"; 1056 let MIOperandInfo = (ops ptr_rc, simm16); 1057 let EncoderMethod = "getMemEncoding"; 1058 let OperandType = "OPERAND_MEMORY"; 1059} 1060 1061def PtrRC : Operand<iPTR> { 1062 let MIOperandInfo = (ops ptr_rc); 1063 let DecoderMethod = "DecodePtrRegisterClass"; 1064 let ParserMatchClass = GPR32AsmOperand; 1065} 1066 1067// size operand of ins instruction 1068def size_ins : Operand<i32> { 1069 let EncoderMethod = "getSizeInsEncoding"; 1070 let DecoderMethod = "DecodeInsSize"; 1071} 1072 1073// Transformation Function - get the lower 16 bits. 1074def LO16 : SDNodeXForm<imm, [{ 1075 return getImm(N, N->getZExtValue() & 0xFFFF); 1076}]>; 1077 1078// Transformation Function - get the higher 16 bits. 1079def HI16 : SDNodeXForm<imm, [{ 1080 return getImm(N, (N->getZExtValue() >> 16) & 0xFFFF); 1081}]>; 1082 1083// Plus 1. 1084def Plus1 : SDNodeXForm<imm, [{ return getImm(N, N->getSExtValue() + 1); }]>; 1085 1086// Node immediate is zero (e.g. insve.d) 1087def immz : PatLeaf<(imm), [{ return N->getSExtValue() == 0; }]>; 1088 1089// Node immediate fits as 16-bit sign extended on target immediate. 1090// e.g. addi, andi 1091def immSExt8 : PatLeaf<(imm), [{ return isInt<8>(N->getSExtValue()); }]>; 1092 1093// Node immediate fits as 16-bit sign extended on target immediate. 1094// e.g. addi, andi 1095def immSExt16 : PatLeaf<(imm), [{ return isInt<16>(N->getSExtValue()); }]>; 1096 1097// Node immediate fits as 7-bit zero extended on target immediate. 1098def immZExt7 : PatLeaf<(imm), [{ return isUInt<7>(N->getZExtValue()); }]>; 1099 1100// Node immediate fits as 16-bit zero extended on target immediate. 1101// The LO16 param means that only the lower 16 bits of the node 1102// immediate are caught. 1103// e.g. addiu, sltiu 1104def immZExt16 : PatLeaf<(imm), [{ 1105 if (N->getValueType(0) == MVT::i32) 1106 return (uint32_t)N->getZExtValue() == (unsigned short)N->getZExtValue(); 1107 else 1108 return (uint64_t)N->getZExtValue() == (unsigned short)N->getZExtValue(); 1109}], LO16>; 1110 1111// Immediate can be loaded with LUi (32-bit int with lower 16-bit cleared). 1112def immSExt32Low16Zero : PatLeaf<(imm), [{ 1113 int64_t Val = N->getSExtValue(); 1114 return isInt<32>(Val) && !(Val & 0xffff); 1115}]>; 1116 1117// Zero-extended 32-bit unsigned int with lower 16-bit cleared. 1118def immZExt32Low16Zero : PatLeaf<(imm), [{ 1119 uint64_t Val = N->getZExtValue(); 1120 return isUInt<32>(Val) && !(Val & 0xffff); 1121}]>; 1122 1123// Note immediate fits as a 32 bit signed extended on target immediate. 1124def immSExt32 : PatLeaf<(imm), [{ return isInt<32>(N->getSExtValue()); }]>; 1125 1126// Note immediate fits as a 32 bit zero extended on target immediate. 1127def immZExt32 : PatLeaf<(imm), [{ return isUInt<32>(N->getZExtValue()); }]>; 1128 1129// shamt field must fit in 5 bits. 1130def immZExt5 : ImmLeaf<i32, [{return Imm == (Imm & 0x1f);}]>; 1131 1132def immZExt5Plus1 : PatLeaf<(imm), [{ 1133 return isUInt<5>(N->getZExtValue() - 1); 1134}]>; 1135def immZExt5Plus32 : PatLeaf<(imm), [{ 1136 return isUInt<5>(N->getZExtValue() - 32); 1137}]>; 1138def immZExt5Plus33 : PatLeaf<(imm), [{ 1139 return isUInt<5>(N->getZExtValue() - 33); 1140}]>; 1141 1142// True if (N + 1) fits in 16-bit field. 1143def immSExt16Plus1 : PatLeaf<(imm), [{ 1144 return isInt<17>(N->getSExtValue()) && isInt<16>(N->getSExtValue() + 1); 1145}]>; 1146 1147// Mips Address Mode! SDNode frameindex could possibily be a match 1148// since load and store instructions from stack used it. 1149def addr : 1150 ComplexPattern<iPTR, 2, "selectIntAddr", [frameindex]>; 1151 1152def addrRegImm : 1153 ComplexPattern<iPTR, 2, "selectAddrRegImm", [frameindex]>; 1154 1155def addrDefault : 1156 ComplexPattern<iPTR, 2, "selectAddrDefault", [frameindex]>; 1157 1158def addrimm10 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10", [frameindex]>; 1159def addrimm10lsl1 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl1", 1160 [frameindex]>; 1161def addrimm10lsl2 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl2", 1162 [frameindex]>; 1163def addrimm10lsl3 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl3", 1164 [frameindex]>; 1165 1166//===----------------------------------------------------------------------===// 1167// Instructions specific format 1168//===----------------------------------------------------------------------===// 1169 1170// Arithmetic and logical instructions with 3 register operands. 1171class ArithLogicR<string opstr, RegisterOperand RO, bit isComm = 0, 1172 InstrItinClass Itin = NoItinerary, 1173 SDPatternOperator OpNode = null_frag>: 1174 InstSE<(outs RO:$rd), (ins RO:$rs, RO:$rt), 1175 !strconcat(opstr, "\t$rd, $rs, $rt"), 1176 [(set RO:$rd, (OpNode RO:$rs, RO:$rt))], Itin, FrmR, opstr> { 1177 let isCommutable = isComm; 1178 let isReMaterializable = 1; 1179 let TwoOperandAliasConstraint = "$rd = $rs"; 1180} 1181 1182// Arithmetic and logical instructions with 2 register operands. 1183class ArithLogicI<string opstr, Operand Od, RegisterOperand RO, 1184 InstrItinClass Itin = NoItinerary, 1185 SDPatternOperator imm_type = null_frag, 1186 SDPatternOperator OpNode = null_frag> : 1187 InstSE<(outs RO:$rt), (ins RO:$rs, Od:$imm16), 1188 !strconcat(opstr, "\t$rt, $rs, $imm16"), 1189 [(set RO:$rt, (OpNode RO:$rs, imm_type:$imm16))], 1190 Itin, FrmI, opstr> { 1191 let isReMaterializable = 1; 1192 let TwoOperandAliasConstraint = "$rs = $rt"; 1193} 1194 1195// Arithmetic Multiply ADD/SUB 1196class MArithR<string opstr, InstrItinClass itin, bit isComm = 0> : 1197 InstSE<(outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt), 1198 !strconcat(opstr, "\t$rs, $rt"), [], itin, FrmR, opstr> { 1199 let Defs = [HI0, LO0]; 1200 let Uses = [HI0, LO0]; 1201 let isCommutable = isComm; 1202} 1203 1204// Logical 1205class LogicNOR<string opstr, RegisterOperand RO>: 1206 InstSE<(outs RO:$rd), (ins RO:$rs, RO:$rt), 1207 !strconcat(opstr, "\t$rd, $rs, $rt"), 1208 [(set RO:$rd, (not (or RO:$rs, RO:$rt)))], II_NOR, FrmR, opstr> { 1209 let isCommutable = 1; 1210} 1211 1212// Shifts 1213class shift_rotate_imm<string opstr, Operand ImmOpnd, 1214 RegisterOperand RO, InstrItinClass itin, 1215 SDPatternOperator OpNode = null_frag, 1216 SDPatternOperator PF = null_frag> : 1217 InstSE<(outs RO:$rd), (ins RO:$rt, ImmOpnd:$shamt), 1218 !strconcat(opstr, "\t$rd, $rt, $shamt"), 1219 [(set RO:$rd, (OpNode RO:$rt, PF:$shamt))], itin, FrmR, opstr> { 1220 let TwoOperandAliasConstraint = "$rt = $rd"; 1221} 1222 1223class shift_rotate_reg<string opstr, RegisterOperand RO, InstrItinClass itin, 1224 SDPatternOperator OpNode = null_frag>: 1225 InstSE<(outs RO:$rd), (ins RO:$rt, GPR32Opnd:$rs), 1226 !strconcat(opstr, "\t$rd, $rt, $rs"), 1227 [(set RO:$rd, (OpNode RO:$rt, GPR32Opnd:$rs))], itin, FrmR, 1228 opstr>; 1229 1230// Load Upper Immediate 1231class LoadUpper<string opstr, RegisterOperand RO, Operand Imm>: 1232 InstSE<(outs RO:$rt), (ins Imm:$imm16), !strconcat(opstr, "\t$rt, $imm16"), 1233 [], II_LUI, FrmI, opstr>, IsAsCheapAsAMove { 1234 let hasSideEffects = 0; 1235 let isReMaterializable = 1; 1236} 1237 1238// Memory Load/Store 1239class LoadMemory<string opstr, DAGOperand RO, DAGOperand MO, 1240 SDPatternOperator OpNode = null_frag, 1241 InstrItinClass Itin = NoItinerary, 1242 ComplexPattern Addr = addr> : 1243 InstSE<(outs RO:$rt), (ins MO:$addr), !strconcat(opstr, "\t$rt, $addr"), 1244 [(set RO:$rt, (OpNode Addr:$addr))], Itin, FrmI, opstr> { 1245 let DecoderMethod = "DecodeMem"; 1246 let canFoldAsLoad = 1; 1247 let mayLoad = 1; 1248} 1249 1250class Load<string opstr, DAGOperand RO, SDPatternOperator OpNode = null_frag, 1251 InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr> : 1252 LoadMemory<opstr, RO, mem, OpNode, Itin, Addr>; 1253 1254class StoreMemory<string opstr, DAGOperand RO, DAGOperand MO, 1255 SDPatternOperator OpNode = null_frag, 1256 InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr> : 1257 InstSE<(outs), (ins RO:$rt, MO:$addr), !strconcat(opstr, "\t$rt, $addr"), 1258 [(OpNode RO:$rt, Addr:$addr)], Itin, FrmI, opstr> { 1259 let DecoderMethod = "DecodeMem"; 1260 let mayStore = 1; 1261} 1262 1263class Store<string opstr, DAGOperand RO, SDPatternOperator OpNode = null_frag, 1264 InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr, 1265 DAGOperand MO = mem> : 1266 StoreMemory<opstr, RO, MO, OpNode, Itin, Addr>; 1267 1268// Load/Store Left/Right 1269let canFoldAsLoad = 1 in 1270class LoadLeftRight<string opstr, SDNode OpNode, RegisterOperand RO, 1271 InstrItinClass Itin> : 1272 InstSE<(outs RO:$rt), (ins mem:$addr, RO:$src), 1273 !strconcat(opstr, "\t$rt, $addr"), 1274 [(set RO:$rt, (OpNode addr:$addr, RO:$src))], Itin, FrmI> { 1275 let DecoderMethod = "DecodeMem"; 1276 string Constraints = "$src = $rt"; 1277} 1278 1279class StoreLeftRight<string opstr, SDNode OpNode, RegisterOperand RO, 1280 InstrItinClass Itin> : 1281 InstSE<(outs), (ins RO:$rt, mem:$addr), !strconcat(opstr, "\t$rt, $addr"), 1282 [(OpNode RO:$rt, addr:$addr)], Itin, FrmI> { 1283 let DecoderMethod = "DecodeMem"; 1284} 1285 1286// COP2 Load/Store 1287class LW_FT2<string opstr, RegisterOperand RC, InstrItinClass Itin, 1288 SDPatternOperator OpNode= null_frag> : 1289 InstSE<(outs RC:$rt), (ins mem_simm16:$addr), 1290 !strconcat(opstr, "\t$rt, $addr"), 1291 [(set RC:$rt, (OpNode addrDefault:$addr))], Itin, FrmFI, opstr> { 1292 let DecoderMethod = "DecodeFMem2"; 1293 let mayLoad = 1; 1294} 1295 1296class SW_FT2<string opstr, RegisterOperand RC, InstrItinClass Itin, 1297 SDPatternOperator OpNode= null_frag> : 1298 InstSE<(outs), (ins RC:$rt, mem_simm16:$addr), 1299 !strconcat(opstr, "\t$rt, $addr"), 1300 [(OpNode RC:$rt, addrDefault:$addr)], Itin, FrmFI, opstr> { 1301 let DecoderMethod = "DecodeFMem2"; 1302 let mayStore = 1; 1303} 1304 1305// COP3 Load/Store 1306class LW_FT3<string opstr, RegisterOperand RC, InstrItinClass Itin, 1307 SDPatternOperator OpNode= null_frag> : 1308 InstSE<(outs RC:$rt), (ins mem:$addr), !strconcat(opstr, "\t$rt, $addr"), 1309 [(set RC:$rt, (OpNode addrDefault:$addr))], Itin, FrmFI, opstr> { 1310 let DecoderMethod = "DecodeFMem3"; 1311 let mayLoad = 1; 1312} 1313 1314class SW_FT3<string opstr, RegisterOperand RC, InstrItinClass Itin, 1315 SDPatternOperator OpNode= null_frag> : 1316 InstSE<(outs), (ins RC:$rt, mem:$addr), !strconcat(opstr, "\t$rt, $addr"), 1317 [(OpNode RC:$rt, addrDefault:$addr)], Itin, FrmFI, opstr> { 1318 let DecoderMethod = "DecodeFMem3"; 1319 let mayStore = 1; 1320} 1321 1322// Conditional Branch 1323class CBranch<string opstr, DAGOperand opnd, PatFrag cond_op, 1324 RegisterOperand RO, bit DelaySlot = 1> : 1325 InstSE<(outs), (ins RO:$rs, RO:$rt, opnd:$offset), 1326 !strconcat(opstr, "\t$rs, $rt, $offset"), 1327 [(brcond (i32 (cond_op RO:$rs, RO:$rt)), bb:$offset)], II_BCC, 1328 FrmI, opstr> { 1329 let isBranch = 1; 1330 let isTerminator = 1; 1331 let hasDelaySlot = DelaySlot; 1332 let Defs = [AT]; 1333 bit isCTI = 1; 1334} 1335 1336class CBranchZero<string opstr, DAGOperand opnd, PatFrag cond_op, 1337 RegisterOperand RO, bit DelaySlot = 1> : 1338 InstSE<(outs), (ins RO:$rs, opnd:$offset), 1339 !strconcat(opstr, "\t$rs, $offset"), 1340 [(brcond (i32 (cond_op RO:$rs, 0)), bb:$offset)], II_BCCZ, 1341 FrmI, opstr> { 1342 let isBranch = 1; 1343 let isTerminator = 1; 1344 let hasDelaySlot = DelaySlot; 1345 let Defs = [AT]; 1346 bit isCTI = 1; 1347} 1348 1349// SetCC 1350class SetCC_R<string opstr, PatFrag cond_op, RegisterOperand RO> : 1351 InstSE<(outs GPR32Opnd:$rd), (ins RO:$rs, RO:$rt), 1352 !strconcat(opstr, "\t$rd, $rs, $rt"), 1353 [(set GPR32Opnd:$rd, (cond_op RO:$rs, RO:$rt))], 1354 II_SLT_SLTU, FrmR, opstr>; 1355 1356class SetCC_I<string opstr, PatFrag cond_op, Operand Od, PatLeaf imm_type, 1357 RegisterOperand RO>: 1358 InstSE<(outs GPR32Opnd:$rt), (ins RO:$rs, Od:$imm16), 1359 !strconcat(opstr, "\t$rt, $rs, $imm16"), 1360 [(set GPR32Opnd:$rt, (cond_op RO:$rs, imm_type:$imm16))], 1361 II_SLTI_SLTIU, FrmI, opstr>; 1362 1363// Jump 1364class JumpFJ<DAGOperand opnd, string opstr, SDPatternOperator operator, 1365 SDPatternOperator targetoperator, string bopstr> : 1366 InstSE<(outs), (ins opnd:$target), !strconcat(opstr, "\t$target"), 1367 [(operator targetoperator:$target)], II_J, FrmJ, bopstr> { 1368 let isTerminator=1; 1369 let isBarrier=1; 1370 let hasDelaySlot = 1; 1371 let DecoderMethod = "DecodeJumpTarget"; 1372 let Defs = [AT]; 1373 bit isCTI = 1; 1374} 1375 1376// Unconditional branch 1377class UncondBranch<Instruction BEQInst> : 1378 PseudoSE<(outs), (ins brtarget:$offset), [(br bb:$offset)], II_B>, 1379 PseudoInstExpansion<(BEQInst ZERO, ZERO, brtarget:$offset)> { 1380 let isBranch = 1; 1381 let isTerminator = 1; 1382 let isBarrier = 1; 1383 let hasDelaySlot = 1; 1384 let AdditionalPredicates = [RelocPIC]; 1385 let Defs = [AT]; 1386 bit isCTI = 1; 1387} 1388 1389// Base class for indirect branch and return instruction classes. 1390let isTerminator=1, isBarrier=1, hasDelaySlot = 1, isCTI = 1 in 1391class JumpFR<string opstr, RegisterOperand RO, 1392 SDPatternOperator operator = null_frag>: 1393 InstSE<(outs), (ins RO:$rs), "jr\t$rs", [(operator RO:$rs)], II_JR, 1394 FrmR, opstr>; 1395 1396// Indirect branch 1397class IndirectBranch<string opstr, RegisterOperand RO> : JumpFR<opstr, RO> { 1398 let isBranch = 1; 1399 let isIndirectBranch = 1; 1400} 1401 1402// Jump and Link (Call) 1403let isCall=1, hasDelaySlot=1, isCTI=1, Defs = [RA] in { 1404 class JumpLink<string opstr, DAGOperand opnd> : 1405 InstSE<(outs), (ins opnd:$target), !strconcat(opstr, "\t$target"), 1406 [(MipsJmpLink tglobaladdr:$target)], II_JAL, FrmJ, opstr> { 1407 let DecoderMethod = "DecodeJumpTarget"; 1408 } 1409 1410 class JumpLinkRegPseudo<RegisterOperand RO, Instruction JALRInst, 1411 Register RetReg, RegisterOperand ResRO = RO>: 1412 PseudoSE<(outs), (ins RO:$rs), [(MipsJmpLink RO:$rs)], II_JALR>, 1413 PseudoInstExpansion<(JALRInst RetReg, ResRO:$rs)>; 1414 1415 class JumpLinkReg<string opstr, RegisterOperand RO>: 1416 InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"), 1417 [], II_JALR, FrmR, opstr>; 1418 1419 class BGEZAL_FT<string opstr, DAGOperand opnd, 1420 RegisterOperand RO, bit DelaySlot = 1> : 1421 InstSE<(outs), (ins RO:$rs, opnd:$offset), 1422 !strconcat(opstr, "\t$rs, $offset"), [], II_BCCZAL, FrmI, opstr> { 1423 let hasDelaySlot = DelaySlot; 1424 } 1425 1426} 1427 1428let isCall = 1, isTerminator = 1, isReturn = 1, isBarrier = 1, hasDelaySlot = 1, 1429 hasExtraSrcRegAllocReq = 1, isCTI = 1, Defs = [AT] in { 1430 class TailCall<Instruction JumpInst, DAGOperand Opnd> : 1431 PseudoSE<(outs), (ins calltarget:$target), [], II_J>, 1432 PseudoInstExpansion<(JumpInst Opnd:$target)>; 1433 1434 class TailCallReg<RegisterOperand RO> : 1435 MipsPseudo<(outs), (ins RO:$rs), [(MipsTailCall RO:$rs)], II_JR>; 1436} 1437 1438class BAL_BR_Pseudo<Instruction RealInst> : 1439 PseudoSE<(outs), (ins brtarget:$offset), [], II_BCCZAL>, 1440 PseudoInstExpansion<(RealInst ZERO, brtarget:$offset)> { 1441 let isBranch = 1; 1442 let isTerminator = 1; 1443 let isBarrier = 1; 1444 let hasDelaySlot = 1; 1445 let Defs = [RA]; 1446 bit isCTI = 1; 1447} 1448 1449let isCTI = 1 in { 1450// Syscall 1451class SYS_FT<string opstr, Operand ImmOp, InstrItinClass itin = NoItinerary> : 1452 InstSE<(outs), (ins ImmOp:$code_), 1453 !strconcat(opstr, "\t$code_"), [], itin, FrmI, opstr>; 1454// Break 1455class BRK_FT<string opstr> : 1456 InstSE<(outs), (ins uimm10:$code_1, uimm10:$code_2), 1457 !strconcat(opstr, "\t$code_1, $code_2"), [], II_BREAK, 1458 FrmOther, opstr>; 1459 1460// (D)Eret 1461class ER_FT<string opstr, InstrItinClass itin = NoItinerary> : 1462 InstSE<(outs), (ins), 1463 opstr, [], itin, FrmOther, opstr>; 1464 1465// Wait 1466class WAIT_FT<string opstr> : 1467 InstSE<(outs), (ins), opstr, [], II_WAIT, FrmOther, opstr>; 1468} 1469 1470// Interrupts 1471class DEI_FT<string opstr, RegisterOperand RO, 1472 InstrItinClass itin = NoItinerary> : 1473 InstSE<(outs RO:$rt), (ins), 1474 !strconcat(opstr, "\t$rt"), [], itin, FrmOther, opstr>; 1475 1476// Sync 1477let hasSideEffects = 1 in 1478class SYNC_FT<string opstr> : 1479 InstSE<(outs), (ins uimm5:$stype), "sync $stype", 1480 [(MipsSync immZExt5:$stype)], II_SYNC, FrmOther, opstr>; 1481 1482class SYNCI_FT<string opstr> : 1483 InstSE<(outs), (ins mem_simm16:$addr), !strconcat(opstr, "\t$addr"), [], 1484 II_SYNCI, FrmOther, opstr> { 1485 let hasSideEffects = 1; 1486 let DecoderMethod = "DecodeSyncI"; 1487} 1488 1489let hasSideEffects = 1, isCTI = 1 in { 1490class TEQ_FT<string opstr, RegisterOperand RO, Operand ImmOp, 1491 InstrItinClass itin = NoItinerary> : 1492 InstSE<(outs), (ins RO:$rs, RO:$rt, ImmOp:$code_), 1493 !strconcat(opstr, "\t$rs, $rt, $code_"), [], itin, FrmI, opstr>; 1494 1495class TEQI_FT<string opstr, RegisterOperand RO, 1496 InstrItinClass itin = NoItinerary> : 1497 InstSE<(outs), (ins RO:$rs, simm16:$imm16), 1498 !strconcat(opstr, "\t$rs, $imm16"), [], itin, FrmOther, opstr>; 1499} 1500 1501// Mul, Div 1502class Mult<string opstr, InstrItinClass itin, RegisterOperand RO, 1503 list<Register> DefRegs> : 1504 InstSE<(outs), (ins RO:$rs, RO:$rt), !strconcat(opstr, "\t$rs, $rt"), [], 1505 itin, FrmR, opstr> { 1506 let isCommutable = 1; 1507 let Defs = DefRegs; 1508 let hasSideEffects = 0; 1509} 1510 1511// Pseudo multiply/divide instruction with explicit accumulator register 1512// operands. 1513class MultDivPseudo<Instruction RealInst, RegisterClass R0, RegisterOperand R1, 1514 SDPatternOperator OpNode, InstrItinClass Itin, 1515 bit IsComm = 1, bit HasSideEffects = 0, 1516 bit UsesCustomInserter = 0> : 1517 PseudoSE<(outs R0:$ac), (ins R1:$rs, R1:$rt), 1518 [(set R0:$ac, (OpNode R1:$rs, R1:$rt))], Itin>, 1519 PseudoInstExpansion<(RealInst R1:$rs, R1:$rt)> { 1520 let isCommutable = IsComm; 1521 let hasSideEffects = HasSideEffects; 1522 let usesCustomInserter = UsesCustomInserter; 1523} 1524 1525// Pseudo multiply add/sub instruction with explicit accumulator register 1526// operands. 1527class MAddSubPseudo<Instruction RealInst, SDPatternOperator OpNode, 1528 InstrItinClass itin> 1529 : PseudoSE<(outs ACC64:$ac), 1530 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, ACC64:$acin), 1531 [(set ACC64:$ac, 1532 (OpNode GPR32Opnd:$rs, GPR32Opnd:$rt, ACC64:$acin))], 1533 itin>, 1534 PseudoInstExpansion<(RealInst GPR32Opnd:$rs, GPR32Opnd:$rt)> { 1535 string Constraints = "$acin = $ac"; 1536} 1537 1538class Div<string opstr, InstrItinClass itin, RegisterOperand RO, 1539 list<Register> DefRegs> : 1540 InstSE<(outs), (ins RO:$rs, RO:$rt), !strconcat(opstr, "\t$$zero, $rs, $rt"), 1541 [], itin, FrmR, opstr> { 1542 let Defs = DefRegs; 1543} 1544 1545// Move from Hi/Lo 1546class PseudoMFLOHI<RegisterClass DstRC, RegisterClass SrcRC, SDNode OpNode> 1547 : PseudoSE<(outs DstRC:$rd), (ins SrcRC:$hilo), 1548 [(set DstRC:$rd, (OpNode SrcRC:$hilo))], II_MFHI_MFLO>; 1549 1550class MoveFromLOHI<string opstr, RegisterOperand RO, Register UseReg>: 1551 InstSE<(outs RO:$rd), (ins), !strconcat(opstr, "\t$rd"), [], II_MFHI_MFLO, 1552 FrmR, opstr> { 1553 let Uses = [UseReg]; 1554 let hasSideEffects = 0; 1555} 1556 1557class PseudoMTLOHI<RegisterClass DstRC, RegisterClass SrcRC> 1558 : PseudoSE<(outs DstRC:$lohi), (ins SrcRC:$lo, SrcRC:$hi), 1559 [(set DstRC:$lohi, (MipsMTLOHI SrcRC:$lo, SrcRC:$hi))], 1560 II_MTHI_MTLO>; 1561 1562class MoveToLOHI<string opstr, RegisterOperand RO, list<Register> DefRegs>: 1563 InstSE<(outs), (ins RO:$rs), !strconcat(opstr, "\t$rs"), [], II_MTHI_MTLO, 1564 FrmR, opstr> { 1565 let Defs = DefRegs; 1566 let hasSideEffects = 0; 1567} 1568 1569class EffectiveAddress<string opstr, RegisterOperand RO> : 1570 InstSE<(outs RO:$rt), (ins mem_ea:$addr), !strconcat(opstr, "\t$rt, $addr"), 1571 [(set RO:$rt, addr:$addr)], II_ADDIU, FrmI, 1572 !strconcat(opstr, "_lea")> { 1573 let isCodeGenOnly = 1; 1574 let hasNoSchedulingInfo = 1; 1575 let DecoderMethod = "DecodeMem"; 1576} 1577 1578// Count Leading Ones/Zeros in Word 1579class CountLeading0<string opstr, RegisterOperand RO, 1580 InstrItinClass itin = NoItinerary>: 1581 InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"), 1582 [(set RO:$rd, (ctlz RO:$rs))], itin, FrmR, opstr>; 1583 1584class CountLeading1<string opstr, RegisterOperand RO, 1585 InstrItinClass itin = NoItinerary>: 1586 InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"), 1587 [(set RO:$rd, (ctlz (not RO:$rs)))], itin, FrmR, opstr>; 1588 1589// Sign Extend in Register. 1590class SignExtInReg<string opstr, ValueType vt, RegisterOperand RO, 1591 InstrItinClass itin> : 1592 InstSE<(outs RO:$rd), (ins RO:$rt), !strconcat(opstr, "\t$rd, $rt"), 1593 [(set RO:$rd, (sext_inreg RO:$rt, vt))], itin, FrmR, opstr>; 1594 1595// Subword Swap 1596class SubwordSwap<string opstr, RegisterOperand RO, 1597 InstrItinClass itin = NoItinerary>: 1598 InstSE<(outs RO:$rd), (ins RO:$rt), !strconcat(opstr, "\t$rd, $rt"), [], itin, 1599 FrmR, opstr> { 1600 let hasSideEffects = 0; 1601} 1602 1603// Read Hardware 1604class ReadHardware<RegisterOperand CPURegOperand, RegisterOperand RO> : 1605 InstSE<(outs CPURegOperand:$rt), (ins RO:$rd), "rdhwr\t$rt, $rd", [], 1606 II_RDHWR, FrmR, "rdhwr">; 1607 1608// Ext and Ins 1609class ExtBase<string opstr, RegisterOperand RO, Operand PosOpnd, 1610 Operand SizeOpnd, PatFrag PosImm, PatFrag SizeImm, 1611 SDPatternOperator Op = null_frag> : 1612 InstSE<(outs RO:$rt), (ins RO:$rs, PosOpnd:$pos, SizeOpnd:$size), 1613 !strconcat(opstr, " $rt, $rs, $pos, $size"), 1614 [(set RO:$rt, (Op RO:$rs, PosImm:$pos, SizeImm:$size))], II_EXT, 1615 FrmR, opstr>, ISA_MIPS32R2; 1616 1617class InsBase<string opstr, RegisterOperand RO, Operand PosOpnd, 1618 Operand SizeOpnd, SDPatternOperator Op = null_frag>: 1619 InstSE<(outs RO:$rt), (ins RO:$rs, PosOpnd:$pos, SizeOpnd:$size, RO:$src), 1620 !strconcat(opstr, " $rt, $rs, $pos, $size"), 1621 [(set RO:$rt, (Op RO:$rs, imm:$pos, imm:$size, RO:$src))], 1622 II_INS, FrmR, opstr>, ISA_MIPS32R2 { 1623 let Constraints = "$src = $rt"; 1624} 1625 1626// Atomic instructions with 2 source operands (ATOMIC_SWAP & ATOMIC_LOAD_*). 1627class Atomic2Ops<PatFrag Op, RegisterClass DRC> : 1628 PseudoSE<(outs DRC:$dst), (ins PtrRC:$ptr, DRC:$incr), 1629 [(set DRC:$dst, (Op iPTR:$ptr, DRC:$incr))]>; 1630 1631// Atomic Compare & Swap. 1632class AtomicCmpSwap<PatFrag Op, RegisterClass DRC> : 1633 PseudoSE<(outs DRC:$dst), (ins PtrRC:$ptr, DRC:$cmp, DRC:$swap), 1634 [(set DRC:$dst, (Op iPTR:$ptr, DRC:$cmp, DRC:$swap))]>; 1635 1636class LLBase<string opstr, RegisterOperand RO, DAGOperand MO = mem> : 1637 InstSE<(outs RO:$rt), (ins MO:$addr), !strconcat(opstr, "\t$rt, $addr"), 1638 [], II_LL, FrmI, opstr> { 1639 let DecoderMethod = "DecodeMem"; 1640 let mayLoad = 1; 1641} 1642 1643class SCBase<string opstr, RegisterOperand RO> : 1644 InstSE<(outs RO:$dst), (ins RO:$rt, mem:$addr), 1645 !strconcat(opstr, "\t$rt, $addr"), [], II_SC, FrmI> { 1646 let DecoderMethod = "DecodeMem"; 1647 let mayStore = 1; 1648 let Constraints = "$rt = $dst"; 1649} 1650 1651class MFC3OP<string asmstr, RegisterOperand RO, RegisterOperand RD, 1652 InstrItinClass itin> : 1653 InstSE<(outs RO:$rt), (ins RD:$rd, uimm3:$sel), 1654 !strconcat(asmstr, "\t$rt, $rd, $sel"), [], itin, FrmFR>; 1655 1656class MTC3OP<string asmstr, RegisterOperand RO, RegisterOperand RD, 1657 InstrItinClass itin> : 1658 InstSE<(outs RO:$rd), (ins RD:$rt, uimm3:$sel), 1659 !strconcat(asmstr, "\t$rt, $rd, $sel"), [], itin, FrmFR>; 1660 1661class TrapBase<Instruction RealInst> 1662 : PseudoSE<(outs), (ins), [(trap)], II_TRAP>, 1663 PseudoInstExpansion<(RealInst 0, 0)> { 1664 let isBarrier = 1; 1665 let isTerminator = 1; 1666 let isCodeGenOnly = 1; 1667 let isCTI = 1; 1668} 1669 1670//===----------------------------------------------------------------------===// 1671// Pseudo instructions 1672//===----------------------------------------------------------------------===// 1673 1674// Return RA. 1675let isReturn=1, isTerminator=1, isBarrier=1, hasCtrlDep=1, isCTI=1 in { 1676 let hasDelaySlot=1 in 1677 def RetRA : PseudoSE<(outs), (ins), [(MipsRet)]>; 1678 1679 let hasSideEffects=1 in 1680 def ERet : PseudoSE<(outs), (ins), [(MipsERet)]>; 1681} 1682 1683let Defs = [SP], Uses = [SP], hasSideEffects = 1 in { 1684def ADJCALLSTACKDOWN : MipsPseudo<(outs), (ins i32imm:$amt), 1685 [(callseq_start timm:$amt)]>; 1686def ADJCALLSTACKUP : MipsPseudo<(outs), (ins i32imm:$amt1, i32imm:$amt2), 1687 [(callseq_end timm:$amt1, timm:$amt2)]>; 1688} 1689 1690let usesCustomInserter = 1 in { 1691 def ATOMIC_LOAD_ADD_I8 : Atomic2Ops<atomic_load_add_8, GPR32>; 1692 def ATOMIC_LOAD_ADD_I16 : Atomic2Ops<atomic_load_add_16, GPR32>; 1693 def ATOMIC_LOAD_ADD_I32 : Atomic2Ops<atomic_load_add_32, GPR32>; 1694 def ATOMIC_LOAD_SUB_I8 : Atomic2Ops<atomic_load_sub_8, GPR32>; 1695 def ATOMIC_LOAD_SUB_I16 : Atomic2Ops<atomic_load_sub_16, GPR32>; 1696 def ATOMIC_LOAD_SUB_I32 : Atomic2Ops<atomic_load_sub_32, GPR32>; 1697 def ATOMIC_LOAD_AND_I8 : Atomic2Ops<atomic_load_and_8, GPR32>; 1698 def ATOMIC_LOAD_AND_I16 : Atomic2Ops<atomic_load_and_16, GPR32>; 1699 def ATOMIC_LOAD_AND_I32 : Atomic2Ops<atomic_load_and_32, GPR32>; 1700 def ATOMIC_LOAD_OR_I8 : Atomic2Ops<atomic_load_or_8, GPR32>; 1701 def ATOMIC_LOAD_OR_I16 : Atomic2Ops<atomic_load_or_16, GPR32>; 1702 def ATOMIC_LOAD_OR_I32 : Atomic2Ops<atomic_load_or_32, GPR32>; 1703 def ATOMIC_LOAD_XOR_I8 : Atomic2Ops<atomic_load_xor_8, GPR32>; 1704 def ATOMIC_LOAD_XOR_I16 : Atomic2Ops<atomic_load_xor_16, GPR32>; 1705 def ATOMIC_LOAD_XOR_I32 : Atomic2Ops<atomic_load_xor_32, GPR32>; 1706 def ATOMIC_LOAD_NAND_I8 : Atomic2Ops<atomic_load_nand_8, GPR32>; 1707 def ATOMIC_LOAD_NAND_I16 : Atomic2Ops<atomic_load_nand_16, GPR32>; 1708 def ATOMIC_LOAD_NAND_I32 : Atomic2Ops<atomic_load_nand_32, GPR32>; 1709 1710 def ATOMIC_SWAP_I8 : Atomic2Ops<atomic_swap_8, GPR32>; 1711 def ATOMIC_SWAP_I16 : Atomic2Ops<atomic_swap_16, GPR32>; 1712 def ATOMIC_SWAP_I32 : Atomic2Ops<atomic_swap_32, GPR32>; 1713 1714 def ATOMIC_CMP_SWAP_I8 : AtomicCmpSwap<atomic_cmp_swap_8, GPR32>; 1715 def ATOMIC_CMP_SWAP_I16 : AtomicCmpSwap<atomic_cmp_swap_16, GPR32>; 1716 def ATOMIC_CMP_SWAP_I32 : AtomicCmpSwap<atomic_cmp_swap_32, GPR32>; 1717} 1718 1719/// Pseudo instructions for loading and storing accumulator registers. 1720let isPseudo = 1, isCodeGenOnly = 1, hasNoSchedulingInfo = 1 in { 1721 def LOAD_ACC64 : Load<"", ACC64>; 1722 def STORE_ACC64 : Store<"", ACC64>; 1723} 1724 1725// We need these two pseudo instructions to avoid offset calculation for long 1726// branches. See the comment in file MipsLongBranch.cpp for detailed 1727// explanation. 1728 1729// Expands to: lui $dst, %hi($tgt - $baltgt) 1730def LONG_BRANCH_LUi : PseudoSE<(outs GPR32Opnd:$dst), 1731 (ins brtarget:$tgt, brtarget:$baltgt), []>; 1732 1733// Expands to: addiu $dst, $src, %lo($tgt - $baltgt) 1734def LONG_BRANCH_ADDiu : PseudoSE<(outs GPR32Opnd:$dst), 1735 (ins GPR32Opnd:$src, brtarget:$tgt, brtarget:$baltgt), []>; 1736 1737//===----------------------------------------------------------------------===// 1738// Instruction definition 1739//===----------------------------------------------------------------------===// 1740//===----------------------------------------------------------------------===// 1741// MipsI Instructions 1742//===----------------------------------------------------------------------===// 1743 1744/// Arithmetic Instructions (ALU Immediate) 1745let AdditionalPredicates = [NotInMicroMips] in { 1746 def ADDiu : MMRel, StdMMR6Rel, ArithLogicI<"addiu", simm16_relaxed, GPR32Opnd, 1747 II_ADDIU, immSExt16, add>, 1748 ADDI_FM<0x9>, IsAsCheapAsAMove; 1749 1750 def ANDi : MMRel, StdMMR6Rel, 1751 ArithLogicI<"andi", uimm16, GPR32Opnd, II_ANDI, immZExt16, and>, 1752 ADDI_FM<0xc>; 1753 def ORi : MMRel, StdMMR6Rel, 1754 ArithLogicI<"ori", uimm16, GPR32Opnd, II_ORI, immZExt16, or>, 1755 ADDI_FM<0xd>; 1756 def XORi : MMRel, StdMMR6Rel, 1757 ArithLogicI<"xori", uimm16, GPR32Opnd, II_XORI, immZExt16, xor>, 1758 ADDI_FM<0xe>; 1759} 1760def ADDi : MMRel, ArithLogicI<"addi", simm16_relaxed, GPR32Opnd, II_ADDI>, ADDI_FM<0x8>, 1761 ISA_MIPS1_NOT_32R6_64R6; 1762let AdditionalPredicates = [NotInMicroMips] in { 1763 def SLTi : MMRel, SetCC_I<"slti", setlt, simm16, immSExt16, GPR32Opnd>, 1764 SLTI_FM<0xa>; 1765 def SLTiu : MMRel, SetCC_I<"sltiu", setult, simm16, immSExt16, GPR32Opnd>, 1766 SLTI_FM<0xb>; 1767} 1768def LUi : MMRel, LoadUpper<"lui", GPR32Opnd, uimm16_relaxed>, LUI_FM; 1769let AdditionalPredicates = [NotInMicroMips] in { 1770 /// Arithmetic Instructions (3-Operand, R-Type) 1771 def ADDu : MMRel, StdMMR6Rel, ArithLogicR<"addu", GPR32Opnd, 1, II_ADDU, add>, 1772 ADD_FM<0, 0x21>; 1773 def SUBu : MMRel, StdMMR6Rel, ArithLogicR<"subu", GPR32Opnd, 0, II_SUBU, sub>, 1774 ADD_FM<0, 0x23>; 1775} 1776let Defs = [HI0, LO0] in 1777def MUL : MMRel, ArithLogicR<"mul", GPR32Opnd, 1, II_MUL, mul>, 1778 ADD_FM<0x1c, 2>, ISA_MIPS32_NOT_32R6_64R6; 1779def ADD : MMRel, StdMMR6Rel, ArithLogicR<"add", GPR32Opnd, 1, II_ADD>, ADD_FM<0, 0x20>; 1780def SUB : MMRel, StdMMR6Rel, ArithLogicR<"sub", GPR32Opnd, 0, II_SUB>, ADD_FM<0, 0x22>; 1781let AdditionalPredicates = [NotInMicroMips] in { 1782 def SLT : MMRel, SetCC_R<"slt", setlt, GPR32Opnd>, ADD_FM<0, 0x2a>; 1783 def SLTu : MMRel, SetCC_R<"sltu", setult, GPR32Opnd>, ADD_FM<0, 0x2b>; 1784 def AND : MMRel, StdMMR6Rel, ArithLogicR<"and", GPR32Opnd, 1, II_AND, and>, 1785 ADD_FM<0, 0x24>; 1786 def OR : MMRel, StdMMR6Rel, ArithLogicR<"or", GPR32Opnd, 1, II_OR, or>, 1787 ADD_FM<0, 0x25>; 1788 def XOR : MMRel, StdMMR6Rel, ArithLogicR<"xor", GPR32Opnd, 1, II_XOR, xor>, 1789 ADD_FM<0, 0x26>; 1790 def NOR : MMRel, StdMMR6Rel, LogicNOR<"nor", GPR32Opnd>, ADD_FM<0, 0x27>; 1791} 1792 1793/// Shift Instructions 1794let AdditionalPredicates = [NotInMicroMips] in { 1795def SLL : MMRel, shift_rotate_imm<"sll", uimm5, GPR32Opnd, II_SLL, shl, 1796 immZExt5>, SRA_FM<0, 0>; 1797def SRL : MMRel, shift_rotate_imm<"srl", uimm5, GPR32Opnd, II_SRL, srl, 1798 immZExt5>, SRA_FM<2, 0>; 1799def SRA : MMRel, shift_rotate_imm<"sra", uimm5, GPR32Opnd, II_SRA, sra, 1800 immZExt5>, SRA_FM<3, 0>; 1801def SLLV : MMRel, shift_rotate_reg<"sllv", GPR32Opnd, II_SLLV, shl>, 1802 SRLV_FM<4, 0>; 1803def SRLV : MMRel, shift_rotate_reg<"srlv", GPR32Opnd, II_SRLV, srl>, 1804 SRLV_FM<6, 0>; 1805def SRAV : MMRel, shift_rotate_reg<"srav", GPR32Opnd, II_SRAV, sra>, 1806 SRLV_FM<7, 0>; 1807} 1808 1809// Rotate Instructions 1810let AdditionalPredicates = [NotInMicroMips] in { 1811 def ROTR : MMRel, shift_rotate_imm<"rotr", uimm5, GPR32Opnd, II_ROTR, rotr, 1812 immZExt5>, 1813 SRA_FM<2, 1>, ISA_MIPS32R2; 1814 def ROTRV : MMRel, shift_rotate_reg<"rotrv", GPR32Opnd, II_ROTRV, rotr>, 1815 SRLV_FM<6, 1>, ISA_MIPS32R2; 1816} 1817 1818/// Load and Store Instructions 1819/// aligned 1820def LB : LoadMemory<"lb", GPR32Opnd, mem_simm16, sextloadi8, II_LB>, MMRel, 1821 LW_FM<0x20>; 1822def LBu : LoadMemory<"lbu", GPR32Opnd, mem_simm16, zextloadi8, II_LBU, 1823 addrDefault>, MMRel, LW_FM<0x24>; 1824let AdditionalPredicates = [NotInMicroMips] in { 1825 def LH : LoadMemory<"lh", GPR32Opnd, mem_simm16, sextloadi16, II_LH, 1826 addrDefault>, MMRel, LW_FM<0x21>; 1827 def LHu : LoadMemory<"lhu", GPR32Opnd, mem_simm16, zextloadi16, II_LHU>, 1828 MMRel, LW_FM<0x25>; 1829 def LW : StdMMR6Rel, Load<"lw", GPR32Opnd, load, II_LW, addrDefault>, MMRel, 1830 LW_FM<0x23>; 1831} 1832def SB : StdMMR6Rel, Store<"sb", GPR32Opnd, truncstorei8, II_SB>, MMRel, 1833 LW_FM<0x28>; 1834def SH : Store<"sh", GPR32Opnd, truncstorei16, II_SH>, MMRel, LW_FM<0x29>; 1835let AdditionalPredicates = [NotInMicroMips] in { 1836def SW : Store<"sw", GPR32Opnd, store, II_SW>, MMRel, LW_FM<0x2b>; 1837} 1838 1839/// load/store left/right 1840let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug 1841 AdditionalPredicates = [NotInMicroMips] in { 1842def LWL : LoadLeftRight<"lwl", MipsLWL, GPR32Opnd, II_LWL>, LW_FM<0x22>, 1843 ISA_MIPS1_NOT_32R6_64R6; 1844def LWR : LoadLeftRight<"lwr", MipsLWR, GPR32Opnd, II_LWR>, LW_FM<0x26>, 1845 ISA_MIPS1_NOT_32R6_64R6; 1846def SWL : StoreLeftRight<"swl", MipsSWL, GPR32Opnd, II_SWL>, LW_FM<0x2a>, 1847 ISA_MIPS1_NOT_32R6_64R6; 1848def SWR : StoreLeftRight<"swr", MipsSWR, GPR32Opnd, II_SWR>, LW_FM<0x2e>, 1849 ISA_MIPS1_NOT_32R6_64R6; 1850} 1851 1852let AdditionalPredicates = [NotInMicroMips] in { 1853// COP2 Memory Instructions 1854def LWC2 : StdMMR6Rel, LW_FT2<"lwc2", COP2Opnd, II_LWC2, load>, LW_FM<0x32>, 1855 ISA_MIPS1_NOT_32R6_64R6; 1856def SWC2 : StdMMR6Rel, SW_FT2<"swc2", COP2Opnd, II_SWC2, store>, 1857 LW_FM<0x3a>, ISA_MIPS1_NOT_32R6_64R6; 1858def LDC2 : StdMMR6Rel, LW_FT2<"ldc2", COP2Opnd, II_LDC2, load>, LW_FM<0x36>, 1859 ISA_MIPS2_NOT_32R6_64R6; 1860def SDC2 : StdMMR6Rel, SW_FT2<"sdc2", COP2Opnd, II_SDC2, store>, 1861 LW_FM<0x3e>, ISA_MIPS2_NOT_32R6_64R6; 1862 1863// COP3 Memory Instructions 1864let DecoderNamespace = "COP3_" in { 1865 def LWC3 : LW_FT3<"lwc3", COP3Opnd, II_LWC3, load>, LW_FM<0x33>; 1866 def SWC3 : SW_FT3<"swc3", COP3Opnd, II_SWC3, store>, LW_FM<0x3b>; 1867 def LDC3 : LW_FT3<"ldc3", COP3Opnd, II_LDC3, load>, LW_FM<0x37>, 1868 ISA_MIPS2; 1869 def SDC3 : SW_FT3<"sdc3", COP3Opnd, II_SDC3, store>, LW_FM<0x3f>, 1870 ISA_MIPS2; 1871} 1872} 1873 1874def SYNC : MMRel, StdMMR6Rel, SYNC_FT<"sync">, SYNC_FM, 1875 ISA_MIPS32; 1876def SYNCI : MMRel, StdMMR6Rel, SYNCI_FT<"synci">, SYNCI_FM, ISA_MIPS32R2; 1877 1878let AdditionalPredicates = [NotInMicroMips] in { 1879 def TEQ : MMRel, TEQ_FT<"teq", GPR32Opnd, uimm10, II_TEQ>, TEQ_FM<0x34>, ISA_MIPS2; 1880 def TGE : MMRel, TEQ_FT<"tge", GPR32Opnd, uimm10, II_TGE>, TEQ_FM<0x30>, ISA_MIPS2; 1881 def TGEU : MMRel, TEQ_FT<"tgeu", GPR32Opnd, uimm10, II_TGEU>, TEQ_FM<0x31>, ISA_MIPS2; 1882 def TLT : MMRel, TEQ_FT<"tlt", GPR32Opnd, uimm10, II_TLT>, TEQ_FM<0x32>, ISA_MIPS2; 1883 def TLTU : MMRel, TEQ_FT<"tltu", GPR32Opnd, uimm10, II_TLTU>, TEQ_FM<0x33>, ISA_MIPS2; 1884 def TNE : MMRel, TEQ_FT<"tne", GPR32Opnd, uimm10, II_TNE>, TEQ_FM<0x36>, ISA_MIPS2; 1885} 1886 1887def TEQI : MMRel, TEQI_FT<"teqi", GPR32Opnd, II_TEQI>, TEQI_FM<0xc>, 1888 ISA_MIPS2_NOT_32R6_64R6; 1889def TGEI : MMRel, TEQI_FT<"tgei", GPR32Opnd, II_TGEI>, TEQI_FM<0x8>, 1890 ISA_MIPS2_NOT_32R6_64R6; 1891def TGEIU : MMRel, TEQI_FT<"tgeiu", GPR32Opnd, II_TGEIU>, TEQI_FM<0x9>, 1892 ISA_MIPS2_NOT_32R6_64R6; 1893def TLTI : MMRel, TEQI_FT<"tlti", GPR32Opnd, II_TLTI>, TEQI_FM<0xa>, 1894 ISA_MIPS2_NOT_32R6_64R6; 1895def TTLTIU : MMRel, TEQI_FT<"tltiu", GPR32Opnd, II_TTLTIU>, TEQI_FM<0xb>, 1896 ISA_MIPS2_NOT_32R6_64R6; 1897def TNEI : MMRel, TEQI_FT<"tnei", GPR32Opnd, II_TNEI>, TEQI_FM<0xe>, 1898 ISA_MIPS2_NOT_32R6_64R6; 1899 1900let AdditionalPredicates = [NotInMicroMips] in { 1901def BREAK : MMRel, StdMMR6Rel, BRK_FT<"break">, BRK_FM<0xd>; 1902def SYSCALL : MMRel, SYS_FT<"syscall", uimm20, II_SYSCALL>, SYS_FM<0xc>; 1903} 1904def TRAP : TrapBase<BREAK>; 1905let AdditionalPredicates = [NotInMicroMips] in { 1906def SDBBP : MMRel, SYS_FT<"sdbbp", uimm20, II_SDBBP>, SDBBP_FM, ISA_MIPS32_NOT_32R6_64R6; 1907} 1908 1909let AdditionalPredicates = [NotInMicroMips] in { 1910 def ERET : MMRel, ER_FT<"eret", II_ERET>, ER_FM<0x18, 0x0>, INSN_MIPS3_32; 1911 def ERETNC : MMRel, ER_FT<"eretnc", II_ERETNC>, ER_FM<0x18, 0x1>, ISA_MIPS32R5; 1912 def DERET : MMRel, ER_FT<"deret", II_DERET>, ER_FM<0x1f, 0x0>, ISA_MIPS32; 1913} 1914 1915let AdditionalPredicates = [NotInMicroMips] in { 1916 def EI : MMRel, StdMMR6Rel, DEI_FT<"ei", GPR32Opnd, II_EI>, EI_FM<1>, ISA_MIPS32R2; 1917 def DI : MMRel, StdMMR6Rel, DEI_FT<"di", GPR32Opnd, II_DI>, EI_FM<0>, ISA_MIPS32R2; 1918} 1919 1920let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug 1921 AdditionalPredicates = [NotInMicroMips] in { 1922def WAIT : WAIT_FT<"wait">, WAIT_FM; 1923} 1924 1925let AdditionalPredicates = [NotInMicroMips] in { 1926/// Load-linked, Store-conditional 1927def LL : LLBase<"ll", GPR32Opnd>, LW_FM<0x30>, PTR_32, ISA_MIPS2_NOT_32R6_64R6; 1928def SC : SCBase<"sc", GPR32Opnd>, LW_FM<0x38>, PTR_32, ISA_MIPS2_NOT_32R6_64R6; 1929} 1930 1931/// Jump and Branch Instructions 1932def J : MMRel, JumpFJ<jmptarget, "j", br, bb, "j">, FJ<2>, 1933 AdditionalRequires<[RelocNotPIC]>, IsBranch; 1934def JR : MMRel, IndirectBranch<"jr", GPR32Opnd>, MTLO_FM<8>, ISA_MIPS1_NOT_32R6_64R6; 1935def BEQ : MMRel, CBranch<"beq", brtarget, seteq, GPR32Opnd>, BEQ_FM<4>; 1936def BEQL : MMRel, CBranch<"beql", brtarget, seteq, GPR32Opnd, 0>, 1937 BEQ_FM<20>, ISA_MIPS2_NOT_32R6_64R6; 1938def BNE : MMRel, CBranch<"bne", brtarget, setne, GPR32Opnd>, BEQ_FM<5>; 1939def BNEL : MMRel, CBranch<"bnel", brtarget, setne, GPR32Opnd, 0>, 1940 BEQ_FM<21>, ISA_MIPS2_NOT_32R6_64R6; 1941def BGEZ : MMRel, CBranchZero<"bgez", brtarget, setge, GPR32Opnd>, 1942 BGEZ_FM<1, 1>; 1943def BGEZL : MMRel, CBranchZero<"bgezl", brtarget, setge, GPR32Opnd, 0>, 1944 BGEZ_FM<1, 3>, ISA_MIPS2_NOT_32R6_64R6; 1945def BGTZ : MMRel, CBranchZero<"bgtz", brtarget, setgt, GPR32Opnd>, 1946 BGEZ_FM<7, 0>; 1947def BGTZL : MMRel, CBranchZero<"bgtzl", brtarget, setgt, GPR32Opnd, 0>, 1948 BGEZ_FM<23, 0>, ISA_MIPS2_NOT_32R6_64R6; 1949def BLEZ : MMRel, CBranchZero<"blez", brtarget, setle, GPR32Opnd>, 1950 BGEZ_FM<6, 0>; 1951def BLEZL : MMRel, CBranchZero<"blezl", brtarget, setle, GPR32Opnd, 0>, 1952 BGEZ_FM<22, 0>, ISA_MIPS2_NOT_32R6_64R6; 1953def BLTZ : MMRel, CBranchZero<"bltz", brtarget, setlt, GPR32Opnd>, 1954 BGEZ_FM<1, 0>; 1955def BLTZL : MMRel, CBranchZero<"bltzl", brtarget, setlt, GPR32Opnd, 0>, 1956 BGEZ_FM<1, 2>, ISA_MIPS2_NOT_32R6_64R6; 1957def B : UncondBranch<BEQ>; 1958 1959def JAL : MMRel, JumpLink<"jal", calltarget>, FJ<3>; 1960let AdditionalPredicates = [NotInMicroMips] in { 1961 def JALR : JumpLinkReg<"jalr", GPR32Opnd>, JALR_FM; 1962 def JALRPseudo : JumpLinkRegPseudo<GPR32Opnd, JALR, RA>; 1963} 1964 1965def JALX : MMRel, JumpLink<"jalx", calltarget>, FJ<0x1D>, 1966 ISA_MIPS32_NOT_32R6_64R6; 1967def BGEZAL : MMRel, BGEZAL_FT<"bgezal", brtarget, GPR32Opnd>, BGEZAL_FM<0x11>, 1968 ISA_MIPS1_NOT_32R6_64R6; 1969def BGEZALL : MMRel, BGEZAL_FT<"bgezall", brtarget, GPR32Opnd, 0>, 1970 BGEZAL_FM<0x13>, ISA_MIPS2_NOT_32R6_64R6; 1971def BLTZAL : MMRel, BGEZAL_FT<"bltzal", brtarget, GPR32Opnd>, BGEZAL_FM<0x10>, 1972 ISA_MIPS1_NOT_32R6_64R6; 1973def BLTZALL : MMRel, BGEZAL_FT<"bltzall", brtarget, GPR32Opnd, 0>, 1974 BGEZAL_FM<0x12>, ISA_MIPS2_NOT_32R6_64R6; 1975def BAL_BR : BAL_BR_Pseudo<BGEZAL>; 1976 1977let Predicates = [NotInMicroMips] in { 1978 def TAILCALL : TailCall<J, jmptarget>; 1979} 1980 1981def TAILCALLREG : TailCallReg<GPR32Opnd>; 1982 1983// Indirect branches are matched as PseudoIndirectBranch/PseudoIndirectBranch64 1984// then are expanded to JR, JR64, JALR, or JALR64 depending on the ISA. 1985class PseudoIndirectBranchBase<RegisterOperand RO> : 1986 MipsPseudo<(outs), (ins RO:$rs), [(brind RO:$rs)], 1987 II_IndirectBranchPseudo> { 1988 let isTerminator=1; 1989 let isBarrier=1; 1990 let hasDelaySlot = 1; 1991 let isBranch = 1; 1992 let isIndirectBranch = 1; 1993 bit isCTI = 1; 1994} 1995 1996def PseudoIndirectBranch : PseudoIndirectBranchBase<GPR32Opnd>; 1997 1998// Return instructions are matched as a RetRA instruction, then are expanded 1999// into PseudoReturn/PseudoReturn64 after register allocation. Finally, 2000// MipsAsmPrinter expands this into JR, JR64, JALR, or JALR64 depending on the 2001// ISA. 2002class PseudoReturnBase<RegisterOperand RO> : MipsPseudo<(outs), (ins RO:$rs), 2003 [], II_ReturnPseudo> { 2004 let isTerminator = 1; 2005 let isBarrier = 1; 2006 let hasDelaySlot = 1; 2007 let isReturn = 1; 2008 let isCodeGenOnly = 1; 2009 let hasCtrlDep = 1; 2010 let hasExtraSrcRegAllocReq = 1; 2011 bit isCTI = 1; 2012} 2013 2014def PseudoReturn : PseudoReturnBase<GPR32Opnd>; 2015 2016// Exception handling related node and instructions. 2017// The conversion sequence is: 2018// ISD::EH_RETURN -> MipsISD::EH_RETURN -> 2019// MIPSeh_return -> (stack change + indirect branch) 2020// 2021// MIPSeh_return takes the place of regular return instruction 2022// but takes two arguments (V1, V0) which are used for storing 2023// the offset and return address respectively. 2024def SDT_MipsEHRET : SDTypeProfile<0, 2, [SDTCisInt<0>, SDTCisPtrTy<1>]>; 2025 2026def MIPSehret : SDNode<"MipsISD::EH_RETURN", SDT_MipsEHRET, 2027 [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>; 2028 2029let Uses = [V0, V1], isTerminator = 1, isReturn = 1, isBarrier = 1, isCTI = 1 in { 2030 def MIPSeh_return32 : MipsPseudo<(outs), (ins GPR32:$spoff, GPR32:$dst), 2031 [(MIPSehret GPR32:$spoff, GPR32:$dst)]>; 2032 def MIPSeh_return64 : MipsPseudo<(outs), (ins GPR64:$spoff, 2033 GPR64:$dst), 2034 [(MIPSehret GPR64:$spoff, GPR64:$dst)]>; 2035} 2036 2037/// Multiply and Divide Instructions. 2038def MULT : MMRel, Mult<"mult", II_MULT, GPR32Opnd, [HI0, LO0]>, 2039 MULT_FM<0, 0x18>, ISA_MIPS1_NOT_32R6_64R6; 2040def MULTu : MMRel, Mult<"multu", II_MULTU, GPR32Opnd, [HI0, LO0]>, 2041 MULT_FM<0, 0x19>, ISA_MIPS1_NOT_32R6_64R6; 2042let AdditionalPredicates = [NotInMicroMips] in { 2043 def SDIV : MMRel, Div<"div", II_DIV, GPR32Opnd, [HI0, LO0]>, 2044 MULT_FM<0, 0x1a>, ISA_MIPS1_NOT_32R6_64R6; 2045 def UDIV : MMRel, Div<"divu", II_DIVU, GPR32Opnd, [HI0, LO0]>, 2046 MULT_FM<0, 0x1b>, ISA_MIPS1_NOT_32R6_64R6; 2047} 2048def MTHI : MMRel, MoveToLOHI<"mthi", GPR32Opnd, [HI0]>, MTLO_FM<0x11>, 2049 ISA_MIPS1_NOT_32R6_64R6; 2050def MTLO : MMRel, MoveToLOHI<"mtlo", GPR32Opnd, [LO0]>, MTLO_FM<0x13>, 2051 ISA_MIPS1_NOT_32R6_64R6; 2052let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug 2053 AdditionalPredicates = [NotInMicroMips] in { 2054def MFHI : MMRel, MoveFromLOHI<"mfhi", GPR32Opnd, AC0>, MFLO_FM<0x10>, 2055 ISA_MIPS1_NOT_32R6_64R6; 2056def MFLO : MMRel, MoveFromLOHI<"mflo", GPR32Opnd, AC0>, MFLO_FM<0x12>, 2057 ISA_MIPS1_NOT_32R6_64R6; 2058} 2059 2060/// Sign Ext In Register Instructions. 2061def SEB : MMRel, StdMMR6Rel, SignExtInReg<"seb", i8, GPR32Opnd, II_SEB>, 2062 SEB_FM<0x10, 0x20>, ISA_MIPS32R2; 2063def SEH : MMRel, StdMMR6Rel, SignExtInReg<"seh", i16, GPR32Opnd, II_SEH>, 2064 SEB_FM<0x18, 0x20>, ISA_MIPS32R2; 2065 2066/// Count Leading 2067def CLZ : MMRel, CountLeading0<"clz", GPR32Opnd, II_CLZ>, CLO_FM<0x20>, 2068 ISA_MIPS32_NOT_32R6_64R6; 2069def CLO : MMRel, CountLeading1<"clo", GPR32Opnd, II_CLO>, CLO_FM<0x21>, 2070 ISA_MIPS32_NOT_32R6_64R6; 2071 2072let AdditionalPredicates = [NotInMicroMips] in { 2073 /// Word Swap Bytes Within Halfwords 2074 def WSBH : MMRel, SubwordSwap<"wsbh", GPR32Opnd, II_WSBH>, SEB_FM<2, 0x20>, 2075 ISA_MIPS32R2; 2076} 2077 2078/// No operation. 2079def NOP : PseudoSE<(outs), (ins), []>, PseudoInstExpansion<(SLL ZERO, ZERO, 0)>; 2080 2081// FrameIndexes are legalized when they are operands from load/store 2082// instructions. The same not happens for stack address copies, so an 2083// add op with mem ComplexPattern is used and the stack address copy 2084// can be matched. It's similar to Sparc LEA_ADDRi 2085def LEA_ADDiu : MMRel, EffectiveAddress<"addiu", GPR32Opnd>, LW_FM<9>; 2086 2087// MADD*/MSUB* 2088def MADD : MMRel, MArithR<"madd", II_MADD, 1>, MULT_FM<0x1c, 0>, 2089 ISA_MIPS32_NOT_32R6_64R6; 2090def MADDU : MMRel, MArithR<"maddu", II_MADDU, 1>, MULT_FM<0x1c, 1>, 2091 ISA_MIPS32_NOT_32R6_64R6; 2092def MSUB : MMRel, MArithR<"msub", II_MSUB>, MULT_FM<0x1c, 4>, 2093 ISA_MIPS32_NOT_32R6_64R6; 2094def MSUBU : MMRel, MArithR<"msubu", II_MSUBU>, MULT_FM<0x1c, 5>, 2095 ISA_MIPS32_NOT_32R6_64R6; 2096 2097let AdditionalPredicates = [NotDSP] in { 2098def PseudoMULT : MultDivPseudo<MULT, ACC64, GPR32Opnd, MipsMult, II_MULT>, 2099 ISA_MIPS1_NOT_32R6_64R6; 2100def PseudoMULTu : MultDivPseudo<MULTu, ACC64, GPR32Opnd, MipsMultu, II_MULTU>, 2101 ISA_MIPS1_NOT_32R6_64R6; 2102def PseudoMFHI : PseudoMFLOHI<GPR32, ACC64, MipsMFHI>, ISA_MIPS1_NOT_32R6_64R6; 2103def PseudoMFLO : PseudoMFLOHI<GPR32, ACC64, MipsMFLO>, ISA_MIPS1_NOT_32R6_64R6; 2104def PseudoMTLOHI : PseudoMTLOHI<ACC64, GPR32>, ISA_MIPS1_NOT_32R6_64R6; 2105def PseudoMADD : MAddSubPseudo<MADD, MipsMAdd, II_MADD>, 2106 ISA_MIPS32_NOT_32R6_64R6; 2107def PseudoMADDU : MAddSubPseudo<MADDU, MipsMAddu, II_MADDU>, 2108 ISA_MIPS32_NOT_32R6_64R6; 2109def PseudoMSUB : MAddSubPseudo<MSUB, MipsMSub, II_MSUB>, 2110 ISA_MIPS32_NOT_32R6_64R6; 2111def PseudoMSUBU : MAddSubPseudo<MSUBU, MipsMSubu, II_MSUBU>, 2112 ISA_MIPS32_NOT_32R6_64R6; 2113} 2114 2115let AdditionalPredicates = [NotInMicroMips] in { 2116 def PseudoSDIV : MultDivPseudo<SDIV, ACC64, GPR32Opnd, MipsDivRem, II_DIV, 2117 0, 1, 1>, ISA_MIPS1_NOT_32R6_64R6; 2118 def PseudoUDIV : MultDivPseudo<UDIV, ACC64, GPR32Opnd, MipsDivRemU, II_DIVU, 2119 0, 1, 1>, ISA_MIPS1_NOT_32R6_64R6; 2120 def RDHWR : MMRel, ReadHardware<GPR32Opnd, HWRegsOpnd>, RDHWR_FM; 2121 // TODO: Add '0 < pos+size <= 32' constraint check to ext instruction 2122 def EXT : MMRel, StdMMR6Rel, ExtBase<"ext", GPR32Opnd, uimm5, uimm5_plus1, 2123 immZExt5, immZExt5Plus1, MipsExt>, 2124 EXT_FM<0>; 2125 def INS : MMRel, StdMMR6Rel, InsBase<"ins", GPR32Opnd, uimm5, 2126 uimm5_inssize_plus1, MipsIns>, 2127 EXT_FM<4>; 2128} 2129/// Move Control Registers From/To CPU Registers 2130let AdditionalPredicates = [NotInMicroMips] in { 2131 def MTC0 : MTC3OP<"mtc0", COP0Opnd, GPR32Opnd, II_MTC0>, MFC3OP_FM<0x10, 4>, 2132 ISA_MIPS32; 2133 def MFC0 : MFC3OP<"mfc0", GPR32Opnd, COP0Opnd, II_MFC0>, MFC3OP_FM<0x10, 0>, 2134 ISA_MIPS32; 2135} 2136def MFC2 : MFC3OP<"mfc2", GPR32Opnd, COP2Opnd, II_MFC2>, MFC3OP_FM<0x12, 0>; 2137def MTC2 : MTC3OP<"mtc2", COP2Opnd, GPR32Opnd, II_MTC2>, MFC3OP_FM<0x12, 4>; 2138 2139class Barrier<string asmstr, InstrItinClass itin = NoItinerary> : 2140 InstSE<(outs), (ins), asmstr, [], itin, FrmOther, asmstr>; 2141 2142def SSNOP : MMRel, StdMMR6Rel, Barrier<"ssnop", II_SSNOP>, BARRIER_FM<1>; 2143def EHB : MMRel, Barrier<"ehb", II_EHB>, BARRIER_FM<3>; 2144 2145let isCTI = 1 in 2146def PAUSE : MMRel, StdMMR6Rel, Barrier<"pause", II_PAUSE>, BARRIER_FM<5>, 2147 ISA_MIPS32R2; 2148 2149// JR_HB and JALR_HB are defined here using the new style naming 2150// scheme because some of this code is shared with Mips32r6InstrInfo.td 2151// and because of that it doesn't follow the naming convention of the 2152// rest of the file. To avoid a mixture of old vs new style, the new 2153// style was chosen. 2154class JR_HB_DESC_BASE<string instr_asm, RegisterOperand GPROpnd> { 2155 dag OutOperandList = (outs); 2156 dag InOperandList = (ins GPROpnd:$rs); 2157 string AsmString = !strconcat(instr_asm, "\t$rs"); 2158 list<dag> Pattern = []; 2159} 2160 2161class JALR_HB_DESC_BASE<string instr_asm, RegisterOperand GPROpnd> { 2162 dag OutOperandList = (outs GPROpnd:$rd); 2163 dag InOperandList = (ins GPROpnd:$rs); 2164 string AsmString = !strconcat(instr_asm, "\t$rd, $rs"); 2165 list<dag> Pattern = []; 2166} 2167 2168class JR_HB_DESC : InstSE<(outs), (ins), "", [], II_JR_HB, FrmJ>, 2169 JR_HB_DESC_BASE<"jr.hb", GPR32Opnd> { 2170 let isBranch=1; 2171 let isIndirectBranch=1; 2172 let hasDelaySlot=1; 2173 let isTerminator=1; 2174 let isBarrier=1; 2175 bit isCTI = 1; 2176} 2177 2178class JALR_HB_DESC : InstSE<(outs), (ins), "", [], II_JALR_HB, FrmJ>, 2179 JALR_HB_DESC_BASE<"jalr.hb", GPR32Opnd> { 2180 let isIndirectBranch=1; 2181 let hasDelaySlot=1; 2182 bit isCTI = 1; 2183} 2184 2185class JR_HB_ENC : JR_HB_FM<8>; 2186class JALR_HB_ENC : JALR_HB_FM<9>; 2187 2188def JR_HB : JR_HB_DESC, JR_HB_ENC, ISA_MIPS32_NOT_32R6_64R6; 2189def JALR_HB : JALR_HB_DESC, JALR_HB_ENC, ISA_MIPS32; 2190 2191class TLB<string asmstr, InstrItinClass itin = NoItinerary> : 2192 InstSE<(outs), (ins), asmstr, [], itin, FrmOther, asmstr>; 2193let AdditionalPredicates = [NotInMicroMips] in { 2194def TLBP : MMRel, TLB<"tlbp", II_TLBP>, COP0_TLB_FM<0x08>; 2195def TLBR : MMRel, TLB<"tlbr", II_TLBR>, COP0_TLB_FM<0x01>; 2196def TLBWI : MMRel, TLB<"tlbwi", II_TLBWI>, COP0_TLB_FM<0x02>; 2197def TLBWR : MMRel, TLB<"tlbwr", II_TLBWR>, COP0_TLB_FM<0x06>; 2198} 2199class CacheOp<string instr_asm, Operand MemOpnd, 2200 InstrItinClass itin = NoItinerary> : 2201 InstSE<(outs), (ins MemOpnd:$addr, uimm5:$hint), 2202 !strconcat(instr_asm, "\t$hint, $addr"), [], itin, FrmOther, 2203 instr_asm> { 2204 let DecoderMethod = "DecodeCacheOp"; 2205} 2206 2207def CACHE : MMRel, CacheOp<"cache", mem, II_CACHE>, CACHEOP_FM<0b101111>, 2208 INSN_MIPS3_32_NOT_32R6_64R6; 2209def PREF : MMRel, CacheOp<"pref", mem, II_PREF>, CACHEOP_FM<0b110011>, 2210 INSN_MIPS3_32_NOT_32R6_64R6; 2211 2212def ROL : MipsAsmPseudoInst<(outs), 2213 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd), 2214 "rol\t$rs, $rt, $rd">; 2215def ROLImm : MipsAsmPseudoInst<(outs), 2216 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm), 2217 "rol\t$rs, $rt, $imm">; 2218def : MipsInstAlias<"rol $rd, $rs", 2219 (ROL GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>; 2220def : MipsInstAlias<"rol $rd, $imm", 2221 (ROLImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>; 2222 2223def ROR : MipsAsmPseudoInst<(outs), 2224 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd), 2225 "ror\t$rs, $rt, $rd">; 2226def RORImm : MipsAsmPseudoInst<(outs), 2227 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm), 2228 "ror\t$rs, $rt, $imm">; 2229def : MipsInstAlias<"ror $rd, $rs", 2230 (ROR GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>; 2231def : MipsInstAlias<"ror $rd, $imm", 2232 (RORImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>; 2233 2234def DROL : MipsAsmPseudoInst<(outs), 2235 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd), 2236 "drol\t$rs, $rt, $rd">, ISA_MIPS64; 2237def DROLImm : MipsAsmPseudoInst<(outs), 2238 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm), 2239 "drol\t$rs, $rt, $imm">, ISA_MIPS64; 2240def : MipsInstAlias<"drol $rd, $rs", 2241 (DROL GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>, ISA_MIPS64; 2242def : MipsInstAlias<"drol $rd, $imm", 2243 (DROLImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>, ISA_MIPS64; 2244 2245def DROR : MipsAsmPseudoInst<(outs), 2246 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd), 2247 "dror\t$rs, $rt, $rd">, ISA_MIPS64; 2248def DRORImm : MipsAsmPseudoInst<(outs), 2249 (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm), 2250 "dror\t$rs, $rt, $imm">, ISA_MIPS64; 2251def : MipsInstAlias<"dror $rd, $rs", 2252 (DROR GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>, ISA_MIPS64; 2253def : MipsInstAlias<"dror $rd, $imm", 2254 (DRORImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>, ISA_MIPS64; 2255 2256def ABSMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), (ins GPR32Opnd:$rs), 2257 "abs\t$rd, $rs">; 2258 2259//===----------------------------------------------------------------------===// 2260// Instruction aliases 2261//===----------------------------------------------------------------------===// 2262def : MipsInstAlias<"move $dst, $src", 2263 (OR GPR32Opnd:$dst, GPR32Opnd:$src, ZERO), 1>, 2264 GPR_32 { 2265 let AdditionalPredicates = [NotInMicroMips]; 2266} 2267def : MipsInstAlias<"move $dst, $src", 2268 (ADDu GPR32Opnd:$dst, GPR32Opnd:$src, ZERO), 1>, 2269 GPR_32 { 2270 let AdditionalPredicates = [NotInMicroMips]; 2271} 2272def : MipsInstAlias<"bal $offset", (BGEZAL ZERO, brtarget:$offset), 0>, 2273 ISA_MIPS1_NOT_32R6_64R6; 2274def : MipsInstAlias< 2275 "addu $rs, $rt, $imm", 2276 (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2277def : MipsInstAlias< 2278 "addu $rs, $imm", 2279 (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2280def : MipsInstAlias< 2281 "add $rs, $rt, $imm", 2282 (ADDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>, 2283 ISA_MIPS1_NOT_32R6_64R6; 2284def : MipsInstAlias< 2285 "add $rs, $imm", 2286 (ADDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>, 2287 ISA_MIPS1_NOT_32R6_64R6; 2288def : MipsInstAlias< 2289 "and $rs, $rt, $imm", 2290 (ANDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2291def : MipsInstAlias< 2292 "and $rs, $imm", 2293 (ANDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2294def : MipsInstAlias<"j $rs", (JR GPR32Opnd:$rs), 0>; 2295let Predicates = [NotInMicroMips] in { 2296def : MipsInstAlias<"jalr $rs", (JALR RA, GPR32Opnd:$rs), 0>; 2297} 2298def : MipsInstAlias<"jalr.hb $rs", (JALR_HB RA, GPR32Opnd:$rs), 1>, ISA_MIPS32; 2299def : MipsInstAlias<"neg $rt, $rs", 2300 (SUB GPR32Opnd:$rt, ZERO, GPR32Opnd:$rs), 1>; 2301def : MipsInstAlias<"neg $rt", 2302 (SUB GPR32Opnd:$rt, ZERO, GPR32Opnd:$rt), 1>; 2303def : MipsInstAlias<"negu $rt, $rs", 2304 (SUBu GPR32Opnd:$rt, ZERO, GPR32Opnd:$rs), 1>; 2305def : MipsInstAlias<"negu $rt", 2306 (SUBu GPR32Opnd:$rt, ZERO, GPR32Opnd:$rt), 1>; 2307let AdditionalPredicates = [NotInMicroMips] in { 2308 def : MipsInstAlias< 2309 "sgt $rd, $rs, $rt", 2310 (SLT GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2311 def : MipsInstAlias< 2312 "sgt $rs, $rt", 2313 (SLT GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2314 def : MipsInstAlias< 2315 "sgtu $rd, $rs, $rt", 2316 (SLTu GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2317 def : MipsInstAlias< 2318 "sgtu $$rs, $rt", 2319 (SLTu GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2320 def : MipsInstAlias< 2321 "slt $rs, $rt, $imm", 2322 (SLTi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2323 def : MipsInstAlias< 2324 "sltu $rt, $rs, $imm", 2325 (SLTiu GPR32Opnd:$rt, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2326 def : MipsInstAlias< 2327 "and $rs, $rt, $imm", 2328 (ANDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2329 def : MipsInstAlias< 2330 "and $rs, $imm", 2331 (ANDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2332 def : MipsInstAlias< 2333 "xor $rs, $rt, $imm", 2334 (XORi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2335 def : MipsInstAlias< 2336 "xor $rs, $imm", 2337 (XORi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2338 def : MipsInstAlias< 2339 "or $rs, $rt, $imm", 2340 (ORi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>; 2341 def : MipsInstAlias< 2342 "or $rs, $imm", 2343 (ORi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>; 2344 def : MipsInstAlias< 2345 "not $rt, $rs", 2346 (NOR GPR32Opnd:$rt, GPR32Opnd:$rs, ZERO), 0>; 2347 def : MipsInstAlias<"nop", (SLL ZERO, ZERO, 0), 1>; 2348} 2349def : MipsInstAlias<"mfc0 $rt, $rd", (MFC0 GPR32Opnd:$rt, COP0Opnd:$rd, 0), 0>; 2350def : MipsInstAlias<"mtc0 $rt, $rd", (MTC0 COP0Opnd:$rd, GPR32Opnd:$rt, 0), 0>; 2351def : MipsInstAlias<"mfc2 $rt, $rd", (MFC2 GPR32Opnd:$rt, COP2Opnd:$rd, 0), 0>; 2352def : MipsInstAlias<"mtc2 $rt, $rd", (MTC2 COP2Opnd:$rd, GPR32Opnd:$rt, 0), 0>; 2353let AdditionalPredicates = [NotInMicroMips] in { 2354def : MipsInstAlias<"b $offset", (BEQ ZERO, ZERO, brtarget:$offset), 0>; 2355} 2356def : MipsInstAlias<"bnez $rs,$offset", 2357 (BNE GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>; 2358def : MipsInstAlias<"bnezl $rs,$offset", 2359 (BNEL GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>; 2360def : MipsInstAlias<"beqz $rs,$offset", 2361 (BEQ GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>; 2362def : MipsInstAlias<"beqzl $rs,$offset", 2363 (BEQL GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>; 2364let AdditionalPredicates = [NotInMicroMips] in { 2365 def : MipsInstAlias<"syscall", (SYSCALL 0), 1>; 2366} 2367 2368def : MipsInstAlias<"break", (BREAK 0, 0), 1>; 2369def : MipsInstAlias<"break $imm", (BREAK uimm10:$imm, 0), 1>; 2370let AdditionalPredicates = [NotInMicroMips] in { 2371 def : MipsInstAlias<"ei", (EI ZERO), 1>, ISA_MIPS32R2; 2372 def : MipsInstAlias<"di", (DI ZERO), 1>, ISA_MIPS32R2; 2373} 2374let AdditionalPredicates = [NotInMicroMips] in { 2375 def : MipsInstAlias<"teq $rs, $rt", 2376 (TEQ GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2377 def : MipsInstAlias<"tge $rs, $rt", 2378 (TGE GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2379 def : MipsInstAlias<"tgeu $rs, $rt", 2380 (TGEU GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2381 def : MipsInstAlias<"tlt $rs, $rt", 2382 (TLT GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2383 def : MipsInstAlias<"tltu $rs, $rt", 2384 (TLTU GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2385 def : MipsInstAlias<"tne $rs, $rt", 2386 (TNE GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2; 2387} 2388def : MipsInstAlias<"sub, $rd, $rs, $imm", 2389 (ADDi GPR32Opnd:$rd, GPR32Opnd:$rs, 2390 InvertedImOperand:$imm), 0>, ISA_MIPS1_NOT_32R6_64R6; 2391def : MipsInstAlias<"sub $rs, $imm", 2392 (ADDi GPR32Opnd:$rs, GPR32Opnd:$rs, InvertedImOperand:$imm), 2393 0>, ISA_MIPS1_NOT_32R6_64R6; 2394def : MipsInstAlias<"subu, $rd, $rs, $imm", 2395 (ADDiu GPR32Opnd:$rd, GPR32Opnd:$rs, 2396 InvertedImOperand:$imm), 0>; 2397def : MipsInstAlias<"subu $rs, $imm", (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rs, 2398 InvertedImOperand:$imm), 0>; 2399let AdditionalPredicates = [NotInMicroMips] in { 2400 def : MipsInstAlias<"sll $rd, $rt, $rs", 2401 (SLLV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2402 def : MipsInstAlias<"sra $rd, $rt, $rs", 2403 (SRAV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2404 def : MipsInstAlias<"srl $rd, $rt, $rs", 2405 (SRLV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>; 2406 def : MipsInstAlias<"sll $rd, $rt", 2407 (SLLV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>; 2408 def : MipsInstAlias<"sra $rd, $rt", 2409 (SRAV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>; 2410 def : MipsInstAlias<"srl $rd, $rt", 2411 (SRLV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>; 2412} 2413def : MipsInstAlias<"sdbbp", (SDBBP 0)>, ISA_MIPS32_NOT_32R6_64R6; 2414def : MipsInstAlias<"sync", 2415 (SYNC 0), 1>, ISA_MIPS2; 2416//===----------------------------------------------------------------------===// 2417// Assembler Pseudo Instructions 2418//===----------------------------------------------------------------------===// 2419 2420// We use uimm32_coerced to accept a 33 bit signed number that is rendered into 2421// a 32 bit number. 2422class LoadImmediate32<string instr_asm, Operand Od, RegisterOperand RO> : 2423 MipsAsmPseudoInst<(outs RO:$rt), (ins Od:$imm32), 2424 !strconcat(instr_asm, "\t$rt, $imm32")> ; 2425def LoadImm32 : LoadImmediate32<"li", uimm32_coerced, GPR32Opnd>; 2426 2427class LoadAddressFromReg32<string instr_asm, Operand MemOpnd, 2428 RegisterOperand RO> : 2429 MipsAsmPseudoInst<(outs RO:$rt), (ins MemOpnd:$addr), 2430 !strconcat(instr_asm, "\t$rt, $addr")> ; 2431def LoadAddrReg32 : LoadAddressFromReg32<"la", mem, GPR32Opnd>; 2432 2433class LoadAddressFromImm32<string instr_asm, Operand Od, RegisterOperand RO> : 2434 MipsAsmPseudoInst<(outs RO:$rt), (ins Od:$imm32), 2435 !strconcat(instr_asm, "\t$rt, $imm32")> ; 2436def LoadAddrImm32 : LoadAddressFromImm32<"la", i32imm, GPR32Opnd>; 2437 2438def JalTwoReg : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), (ins GPR32Opnd:$rs), 2439 "jal\t$rd, $rs"> ; 2440def JalOneReg : MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs), 2441 "jal\t$rs"> ; 2442 2443def NORImm : MipsAsmPseudoInst< 2444 (outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm32:$imm), 2445 "nor\t$rs, $rt, $imm"> ; 2446 2447let hasDelaySlot = 1, isCTI = 1 in { 2448def BneImm : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), 2449 (ins imm64:$imm64, brtarget:$offset), 2450 "bne\t$rt, $imm64, $offset">; 2451def BeqImm : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), 2452 (ins imm64:$imm64, brtarget:$offset), 2453 "beq\t$rt, $imm64, $offset">; 2454 2455class CondBranchPseudo<string instr_asm> : 2456 MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt, 2457 brtarget:$offset), 2458 !strconcat(instr_asm, "\t$rs, $rt, $offset")>; 2459} 2460 2461def BLT : CondBranchPseudo<"blt">; 2462def BLE : CondBranchPseudo<"ble">; 2463def BGE : CondBranchPseudo<"bge">; 2464def BGT : CondBranchPseudo<"bgt">; 2465def BLTU : CondBranchPseudo<"bltu">; 2466def BLEU : CondBranchPseudo<"bleu">; 2467def BGEU : CondBranchPseudo<"bgeu">; 2468def BGTU : CondBranchPseudo<"bgtu">; 2469def BLTL : CondBranchPseudo<"bltl">, ISA_MIPS2_NOT_32R6_64R6; 2470def BLEL : CondBranchPseudo<"blel">, ISA_MIPS2_NOT_32R6_64R6; 2471def BGEL : CondBranchPseudo<"bgel">, ISA_MIPS2_NOT_32R6_64R6; 2472def BGTL : CondBranchPseudo<"bgtl">, ISA_MIPS2_NOT_32R6_64R6; 2473def BLTUL: CondBranchPseudo<"bltul">, ISA_MIPS2_NOT_32R6_64R6; 2474def BLEUL: CondBranchPseudo<"bleul">, ISA_MIPS2_NOT_32R6_64R6; 2475def BGEUL: CondBranchPseudo<"bgeul">, ISA_MIPS2_NOT_32R6_64R6; 2476def BGTUL: CondBranchPseudo<"bgtul">, ISA_MIPS2_NOT_32R6_64R6; 2477 2478let isCTI = 1 in 2479class CondBranchImmPseudo<string instr_asm> : 2480 MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs, imm64:$imm, brtarget:$offset), 2481 !strconcat(instr_asm, "\t$rs, $imm, $offset")>; 2482 2483def BLTImmMacro : CondBranchImmPseudo<"blt">; 2484def BLEImmMacro : CondBranchImmPseudo<"ble">; 2485def BGEImmMacro : CondBranchImmPseudo<"bge">; 2486def BGTImmMacro : CondBranchImmPseudo<"bgt">; 2487def BLTUImmMacro : CondBranchImmPseudo<"bltu">; 2488def BLEUImmMacro : CondBranchImmPseudo<"bleu">; 2489def BGEUImmMacro : CondBranchImmPseudo<"bgeu">; 2490def BGTUImmMacro : CondBranchImmPseudo<"bgtu">; 2491def BLTLImmMacro : CondBranchImmPseudo<"bltl">, ISA_MIPS2_NOT_32R6_64R6; 2492def BLELImmMacro : CondBranchImmPseudo<"blel">, ISA_MIPS2_NOT_32R6_64R6; 2493def BGELImmMacro : CondBranchImmPseudo<"bgel">, ISA_MIPS2_NOT_32R6_64R6; 2494def BGTLImmMacro : CondBranchImmPseudo<"bgtl">, ISA_MIPS2_NOT_32R6_64R6; 2495def BLTULImmMacro : CondBranchImmPseudo<"bltul">, ISA_MIPS2_NOT_32R6_64R6; 2496def BLEULImmMacro : CondBranchImmPseudo<"bleul">, ISA_MIPS2_NOT_32R6_64R6; 2497def BGEULImmMacro : CondBranchImmPseudo<"bgeul">, ISA_MIPS2_NOT_32R6_64R6; 2498def BGTULImmMacro : CondBranchImmPseudo<"bgtul">, ISA_MIPS2_NOT_32R6_64R6; 2499 2500// FIXME: Predicates are removed because instructions are matched regardless of 2501// predicates, because PredicateControl was not in the hierarchy. This was 2502// done to emit more precise error message from expansion function. 2503// Once the tablegen-erated errors are made better, this needs to be fixed and 2504// predicates needs to be restored. 2505 2506def SDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), 2507 (ins GPR32Opnd:$rs, GPR32Opnd:$rt), 2508 "div\t$rd, $rs, $rt">, 2509 ISA_MIPS1_NOT_32R6_64R6; 2510def UDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), 2511 (ins GPR32Opnd:$rs, GPR32Opnd:$rt), 2512 "divu\t$rd, $rs, $rt">, 2513 ISA_MIPS1_NOT_32R6_64R6; 2514def : MipsInstAlias<"div $rt, $rs", (SDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt, 2515 GPR32Opnd:$rs), 0>, 2516 ISA_MIPS1_NOT_32R6_64R6; 2517def : MipsInstAlias<"divu $rt, $rs", (UDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt, 2518 GPR32Opnd:$rs), 0>, 2519 ISA_MIPS1_NOT_32R6_64R6; 2520def DSDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), 2521 (ins GPR32Opnd:$rs, GPR32Opnd:$rt), 2522 "ddiv\t$rd, $rs, $rt">, 2523 ISA_MIPS64_NOT_64R6; 2524def DUDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), 2525 (ins GPR32Opnd:$rs, GPR32Opnd:$rt), 2526 "ddivu\t$rd, $rs, $rt">, 2527 ISA_MIPS64_NOT_64R6; 2528def : MipsInstAlias<"ddiv $rt, $rs", (DSDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt, 2529 GPR32Opnd:$rs), 0>, 2530 ISA_MIPS64_NOT_64R6; 2531def : MipsInstAlias<"ddivu $rt, $rs", (DUDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt, 2532 GPR32Opnd:$rs), 0>, 2533 ISA_MIPS64_NOT_64R6; 2534 2535def Ulh : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr), 2536 "ulh\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6; 2537 2538def Ulhu : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr), 2539 "ulhu\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6; 2540 2541def Ulw : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr), 2542 "ulw\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6; 2543 2544//===----------------------------------------------------------------------===// 2545// Arbitrary patterns that map to one or more instructions 2546//===----------------------------------------------------------------------===// 2547 2548// Load/store pattern templates. 2549class LoadRegImmPat<Instruction LoadInst, ValueType ValTy, PatFrag Node> : 2550 MipsPat<(ValTy (Node addrRegImm:$a)), (LoadInst addrRegImm:$a)>; 2551 2552class StoreRegImmPat<Instruction StoreInst, ValueType ValTy> : 2553 MipsPat<(store ValTy:$v, addrRegImm:$a), (StoreInst ValTy:$v, addrRegImm:$a)>; 2554 2555// Materialize constants. 2556multiclass MaterializeImms<ValueType VT, Register ZEROReg, 2557 Instruction ADDiuOp, Instruction LUiOp, 2558 Instruction ORiOp> { 2559 2560// Small immediates 2561def : MipsPat<(VT immSExt16:$imm), (ADDiuOp ZEROReg, imm:$imm)>; 2562def : MipsPat<(VT immZExt16:$imm), (ORiOp ZEROReg, imm:$imm)>; 2563 2564// Bits 32-16 set, sign/zero extended. 2565def : MipsPat<(VT immSExt32Low16Zero:$imm), (LUiOp (HI16 imm:$imm))>; 2566 2567// Arbitrary immediates 2568def : MipsPat<(VT immSExt32:$imm), (ORiOp (LUiOp (HI16 imm:$imm)), (LO16 imm:$imm))>; 2569} 2570 2571let AdditionalPredicates = [NotInMicroMips] in 2572 defm : MaterializeImms<i32, ZERO, ADDiu, LUi, ORi>; 2573 2574// Carry MipsPatterns 2575let AdditionalPredicates = [NotInMicroMips] in { 2576 def : MipsPat<(subc GPR32:$lhs, GPR32:$rhs), 2577 (SUBu GPR32:$lhs, GPR32:$rhs)>; 2578} 2579def : MipsPat<(addc GPR32:$lhs, GPR32:$rhs), 2580 (ADDu GPR32:$lhs, GPR32:$rhs)>, ASE_NOT_DSP; 2581def : MipsPat<(addc GPR32:$src, immSExt16:$imm), 2582 (ADDiu GPR32:$src, imm:$imm)>, ASE_NOT_DSP; 2583 2584// Support multiplication for pre-Mips32 targets that don't have 2585// the MUL instruction. 2586def : MipsPat<(mul GPR32:$lhs, GPR32:$rhs), 2587 (PseudoMFLO (PseudoMULT GPR32:$lhs, GPR32:$rhs))>, 2588 ISA_MIPS1_NOT_32R6_64R6; 2589 2590// SYNC 2591def : MipsPat<(MipsSync (i32 immz)), 2592 (SYNC 0)>, ISA_MIPS2; 2593 2594// Call 2595def : MipsPat<(MipsJmpLink (i32 texternalsym:$dst)), 2596 (JAL texternalsym:$dst)>; 2597//def : MipsPat<(MipsJmpLink GPR32:$dst), 2598// (JALR GPR32:$dst)>; 2599 2600// Tail call 2601def : MipsPat<(MipsTailCall (iPTR tglobaladdr:$dst)), 2602 (TAILCALL tglobaladdr:$dst)>; 2603def : MipsPat<(MipsTailCall (iPTR texternalsym:$dst)), 2604 (TAILCALL texternalsym:$dst)>; 2605// hi/lo relocs 2606def : MipsPat<(MipsHi tglobaladdr:$in), (LUi tglobaladdr:$in)>; 2607def : MipsPat<(MipsHi tblockaddress:$in), (LUi tblockaddress:$in)>; 2608def : MipsPat<(MipsHi tjumptable:$in), (LUi tjumptable:$in)>; 2609def : MipsPat<(MipsHi tconstpool:$in), (LUi tconstpool:$in)>; 2610def : MipsPat<(MipsHi tglobaltlsaddr:$in), (LUi tglobaltlsaddr:$in)>; 2611def : MipsPat<(MipsHi texternalsym:$in), (LUi texternalsym:$in)>; 2612 2613def : MipsPat<(MipsLo tglobaladdr:$in), (ADDiu ZERO, tglobaladdr:$in)>; 2614def : MipsPat<(MipsLo tblockaddress:$in), (ADDiu ZERO, tblockaddress:$in)>; 2615def : MipsPat<(MipsLo tjumptable:$in), (ADDiu ZERO, tjumptable:$in)>; 2616def : MipsPat<(MipsLo tconstpool:$in), (ADDiu ZERO, tconstpool:$in)>; 2617def : MipsPat<(MipsLo tglobaltlsaddr:$in), (ADDiu ZERO, tglobaltlsaddr:$in)>; 2618def : MipsPat<(MipsLo texternalsym:$in), (ADDiu ZERO, texternalsym:$in)>; 2619 2620def : MipsPat<(add GPR32:$hi, (MipsLo tglobaladdr:$lo)), 2621 (ADDiu GPR32:$hi, tglobaladdr:$lo)>; 2622def : MipsPat<(add GPR32:$hi, (MipsLo tblockaddress:$lo)), 2623 (ADDiu GPR32:$hi, tblockaddress:$lo)>; 2624def : MipsPat<(add GPR32:$hi, (MipsLo tjumptable:$lo)), 2625 (ADDiu GPR32:$hi, tjumptable:$lo)>; 2626def : MipsPat<(add GPR32:$hi, (MipsLo tconstpool:$lo)), 2627 (ADDiu GPR32:$hi, tconstpool:$lo)>; 2628def : MipsPat<(add GPR32:$hi, (MipsLo tglobaltlsaddr:$lo)), 2629 (ADDiu GPR32:$hi, tglobaltlsaddr:$lo)>; 2630 2631// gp_rel relocs 2632def : MipsPat<(add GPR32:$gp, (MipsGPRel tglobaladdr:$in)), 2633 (ADDiu GPR32:$gp, tglobaladdr:$in)>; 2634def : MipsPat<(add GPR32:$gp, (MipsGPRel tconstpool:$in)), 2635 (ADDiu GPR32:$gp, tconstpool:$in)>; 2636 2637// wrapper_pic 2638class WrapperPat<SDNode node, Instruction ADDiuOp, RegisterClass RC>: 2639 MipsPat<(MipsWrapper RC:$gp, node:$in), 2640 (ADDiuOp RC:$gp, node:$in)>; 2641 2642def : WrapperPat<tglobaladdr, ADDiu, GPR32>; 2643def : WrapperPat<tconstpool, ADDiu, GPR32>; 2644def : WrapperPat<texternalsym, ADDiu, GPR32>; 2645def : WrapperPat<tblockaddress, ADDiu, GPR32>; 2646def : WrapperPat<tjumptable, ADDiu, GPR32>; 2647def : WrapperPat<tglobaltlsaddr, ADDiu, GPR32>; 2648 2649let AdditionalPredicates = [NotInMicroMips] in { 2650// Mips does not have "not", so we expand our way 2651def : MipsPat<(not GPR32:$in), 2652 (NOR GPR32Opnd:$in, ZERO)>; 2653} 2654 2655// extended loads 2656def : MipsPat<(i32 (extloadi1 addr:$src)), (LBu addr:$src)>; 2657def : MipsPat<(i32 (extloadi8 addr:$src)), (LBu addr:$src)>; 2658let AdditionalPredicates = [NotInMicroMips] in { 2659 def : MipsPat<(i32 (extloadi16 addr:$src)), (LHu addr:$src)>; 2660} 2661 2662// peepholes 2663def : MipsPat<(store (i32 0), addr:$dst), (SW ZERO, addr:$dst)>; 2664 2665// brcond patterns 2666multiclass BrcondPats<RegisterClass RC, Instruction BEQOp, Instruction BEQOp1, 2667 Instruction BNEOp, Instruction SLTOp, Instruction SLTuOp, 2668 Instruction SLTiOp, Instruction SLTiuOp, 2669 Register ZEROReg> { 2670def : MipsPat<(brcond (i32 (setne RC:$lhs, 0)), bb:$dst), 2671 (BNEOp RC:$lhs, ZEROReg, bb:$dst)>; 2672def : MipsPat<(brcond (i32 (seteq RC:$lhs, 0)), bb:$dst), 2673 (BEQOp RC:$lhs, ZEROReg, bb:$dst)>; 2674 2675def : MipsPat<(brcond (i32 (setge RC:$lhs, RC:$rhs)), bb:$dst), 2676 (BEQOp1 (SLTOp RC:$lhs, RC:$rhs), ZERO, bb:$dst)>; 2677def : MipsPat<(brcond (i32 (setuge RC:$lhs, RC:$rhs)), bb:$dst), 2678 (BEQOp1 (SLTuOp RC:$lhs, RC:$rhs), ZERO, bb:$dst)>; 2679def : MipsPat<(brcond (i32 (setge RC:$lhs, immSExt16:$rhs)), bb:$dst), 2680 (BEQOp1 (SLTiOp RC:$lhs, immSExt16:$rhs), ZERO, bb:$dst)>; 2681def : MipsPat<(brcond (i32 (setuge RC:$lhs, immSExt16:$rhs)), bb:$dst), 2682 (BEQOp1 (SLTiuOp RC:$lhs, immSExt16:$rhs), ZERO, bb:$dst)>; 2683def : MipsPat<(brcond (i32 (setgt RC:$lhs, immSExt16Plus1:$rhs)), bb:$dst), 2684 (BEQOp1 (SLTiOp RC:$lhs, (Plus1 imm:$rhs)), ZERO, bb:$dst)>; 2685def : MipsPat<(brcond (i32 (setugt RC:$lhs, immSExt16Plus1:$rhs)), bb:$dst), 2686 (BEQOp1 (SLTiuOp RC:$lhs, (Plus1 imm:$rhs)), ZERO, bb:$dst)>; 2687 2688def : MipsPat<(brcond (i32 (setle RC:$lhs, RC:$rhs)), bb:$dst), 2689 (BEQOp1 (SLTOp RC:$rhs, RC:$lhs), ZERO, bb:$dst)>; 2690def : MipsPat<(brcond (i32 (setule RC:$lhs, RC:$rhs)), bb:$dst), 2691 (BEQOp1 (SLTuOp RC:$rhs, RC:$lhs), ZERO, bb:$dst)>; 2692 2693def : MipsPat<(brcond RC:$cond, bb:$dst), 2694 (BNEOp RC:$cond, ZEROReg, bb:$dst)>; 2695} 2696let AdditionalPredicates = [NotInMicroMips] in { 2697 defm : BrcondPats<GPR32, BEQ, BEQ, BNE, SLT, SLTu, SLTi, SLTiu, ZERO>; 2698} 2699def : MipsPat<(brcond (i32 (setlt i32:$lhs, 1)), bb:$dst), 2700 (BLEZ i32:$lhs, bb:$dst)>; 2701def : MipsPat<(brcond (i32 (setgt i32:$lhs, -1)), bb:$dst), 2702 (BGEZ i32:$lhs, bb:$dst)>; 2703 2704// setcc patterns 2705multiclass SeteqPats<RegisterClass RC, Instruction SLTiuOp, Instruction XOROp, 2706 Instruction SLTuOp, Register ZEROReg> { 2707 def : MipsPat<(seteq RC:$lhs, 0), 2708 (SLTiuOp RC:$lhs, 1)>; 2709 def : MipsPat<(setne RC:$lhs, 0), 2710 (SLTuOp ZEROReg, RC:$lhs)>; 2711 def : MipsPat<(seteq RC:$lhs, RC:$rhs), 2712 (SLTiuOp (XOROp RC:$lhs, RC:$rhs), 1)>; 2713 def : MipsPat<(setne RC:$lhs, RC:$rhs), 2714 (SLTuOp ZEROReg, (XOROp RC:$lhs, RC:$rhs))>; 2715} 2716 2717multiclass SetlePats<RegisterClass RC, Instruction XORiOp, Instruction SLTOp, 2718 Instruction SLTuOp> { 2719 def : MipsPat<(setle RC:$lhs, RC:$rhs), 2720 (XORiOp (SLTOp RC:$rhs, RC:$lhs), 1)>; 2721 def : MipsPat<(setule RC:$lhs, RC:$rhs), 2722 (XORiOp (SLTuOp RC:$rhs, RC:$lhs), 1)>; 2723} 2724 2725multiclass SetgtPats<RegisterClass RC, Instruction SLTOp, Instruction SLTuOp> { 2726 def : MipsPat<(setgt RC:$lhs, RC:$rhs), 2727 (SLTOp RC:$rhs, RC:$lhs)>; 2728 def : MipsPat<(setugt RC:$lhs, RC:$rhs), 2729 (SLTuOp RC:$rhs, RC:$lhs)>; 2730} 2731 2732multiclass SetgePats<RegisterClass RC, Instruction XORiOp, Instruction SLTOp, 2733 Instruction SLTuOp> { 2734 def : MipsPat<(setge RC:$lhs, RC:$rhs), 2735 (XORiOp (SLTOp RC:$lhs, RC:$rhs), 1)>; 2736 def : MipsPat<(setuge RC:$lhs, RC:$rhs), 2737 (XORiOp (SLTuOp RC:$lhs, RC:$rhs), 1)>; 2738} 2739 2740multiclass SetgeImmPats<RegisterClass RC, Instruction XORiOp, 2741 Instruction SLTiOp, Instruction SLTiuOp> { 2742 def : MipsPat<(setge RC:$lhs, immSExt16:$rhs), 2743 (XORiOp (SLTiOp RC:$lhs, immSExt16:$rhs), 1)>; 2744 def : MipsPat<(setuge RC:$lhs, immSExt16:$rhs), 2745 (XORiOp (SLTiuOp RC:$lhs, immSExt16:$rhs), 1)>; 2746} 2747 2748let AdditionalPredicates = [NotInMicroMips] in { 2749 defm : SeteqPats<GPR32, SLTiu, XOR, SLTu, ZERO>; 2750 defm : SetlePats<GPR32, XORi, SLT, SLTu>; 2751 defm : SetgtPats<GPR32, SLT, SLTu>; 2752 defm : SetgePats<GPR32, XORi, SLT, SLTu>; 2753 defm : SetgeImmPats<GPR32, XORi, SLTi, SLTiu>; 2754} 2755 2756// bswap pattern 2757def : MipsPat<(bswap GPR32:$rt), (ROTR (WSBH GPR32:$rt), 16)>; 2758 2759// Load halfword/word patterns. 2760let AddedComplexity = 40 in { 2761 def : LoadRegImmPat<LBu, i32, zextloadi8>; 2762 let AdditionalPredicates = [NotInMicroMips] in { 2763 def : LoadRegImmPat<LH, i32, sextloadi16>; 2764 def : LoadRegImmPat<LW, i32, load>; 2765 } 2766} 2767 2768// Atomic load patterns. 2769def : MipsPat<(atomic_load_8 addr:$a), (LB addr:$a)>; 2770let AdditionalPredicates = [NotInMicroMips] in { 2771 def : MipsPat<(atomic_load_16 addr:$a), (LH addr:$a)>; 2772} 2773def : MipsPat<(atomic_load_32 addr:$a), (LW addr:$a)>; 2774 2775// Atomic store patterns. 2776def : MipsPat<(atomic_store_8 addr:$a, GPR32:$v), (SB GPR32:$v, addr:$a)>; 2777def : MipsPat<(atomic_store_16 addr:$a, GPR32:$v), (SH GPR32:$v, addr:$a)>; 2778def : MipsPat<(atomic_store_32 addr:$a, GPR32:$v), (SW GPR32:$v, addr:$a)>; 2779 2780//===----------------------------------------------------------------------===// 2781// Floating Point Support 2782//===----------------------------------------------------------------------===// 2783 2784include "MipsInstrFPU.td" 2785include "Mips64InstrInfo.td" 2786include "MipsCondMov.td" 2787 2788include "Mips32r6InstrInfo.td" 2789include "Mips64r6InstrInfo.td" 2790 2791// 2792// Mips16 2793 2794include "Mips16InstrFormats.td" 2795include "Mips16InstrInfo.td" 2796 2797// DSP 2798include "MipsDSPInstrFormats.td" 2799include "MipsDSPInstrInfo.td" 2800 2801// MSA 2802include "MipsMSAInstrFormats.td" 2803include "MipsMSAInstrInfo.td" 2804 2805// EVA 2806include "MipsEVAInstrFormats.td" 2807include "MipsEVAInstrInfo.td" 2808 2809// Micromips 2810include "MicroMipsInstrFormats.td" 2811include "MicroMipsInstrInfo.td" 2812include "MicroMipsInstrFPU.td" 2813 2814// Micromips r6 2815include "MicroMips32r6InstrFormats.td" 2816include "MicroMips32r6InstrInfo.td" 2817 2818// Micromips64 r6 2819include "MicroMips64r6InstrFormats.td" 2820include "MicroMips64r6InstrInfo.td" 2821 2822// Micromips DSP 2823include "MicroMipsDSPInstrFormats.td" 2824include "MicroMipsDSPInstrInfo.td" 2825