1 //===-- llvm/CodeGen/GlobalISel/LegalizerHelper.cpp -----------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 /// \file This file implements the LegalizerHelper class to legalize 10 /// individual instructions and the LegalizeMachineIR wrapper pass for the 11 /// primary legalization. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/CodeGen/GlobalISel/LegalizerHelper.h" 16 #include "llvm/CodeGen/GlobalISel/CallLowering.h" 17 #include "llvm/CodeGen/GlobalISel/GISelChangeObserver.h" 18 #include "llvm/CodeGen/GlobalISel/LegalizerInfo.h" 19 #include "llvm/CodeGen/MachineRegisterInfo.h" 20 #include "llvm/CodeGen/TargetFrameLowering.h" 21 #include "llvm/CodeGen/TargetInstrInfo.h" 22 #include "llvm/CodeGen/TargetLowering.h" 23 #include "llvm/CodeGen/TargetSubtargetInfo.h" 24 #include "llvm/Support/Debug.h" 25 #include "llvm/Support/MathExtras.h" 26 #include "llvm/Support/raw_ostream.h" 27 28 #define DEBUG_TYPE "legalizer" 29 30 using namespace llvm; 31 using namespace LegalizeActions; 32 33 /// Try to break down \p OrigTy into \p NarrowTy sized pieces. 34 /// 35 /// Returns the number of \p NarrowTy elements needed to reconstruct \p OrigTy, 36 /// with any leftover piece as type \p LeftoverTy 37 /// 38 /// Returns -1 in the first element of the pair if the breakdown is not 39 /// satisfiable. 40 static std::pair<int, int> 41 getNarrowTypeBreakDown(LLT OrigTy, LLT NarrowTy, LLT &LeftoverTy) { 42 assert(!LeftoverTy.isValid() && "this is an out argument"); 43 44 unsigned Size = OrigTy.getSizeInBits(); 45 unsigned NarrowSize = NarrowTy.getSizeInBits(); 46 unsigned NumParts = Size / NarrowSize; 47 unsigned LeftoverSize = Size - NumParts * NarrowSize; 48 assert(Size > NarrowSize); 49 50 if (LeftoverSize == 0) 51 return {NumParts, 0}; 52 53 if (NarrowTy.isVector()) { 54 unsigned EltSize = OrigTy.getScalarSizeInBits(); 55 if (LeftoverSize % EltSize != 0) 56 return {-1, -1}; 57 LeftoverTy = LLT::scalarOrVector(LeftoverSize / EltSize, EltSize); 58 } else { 59 LeftoverTy = LLT::scalar(LeftoverSize); 60 } 61 62 int NumLeftover = LeftoverSize / LeftoverTy.getSizeInBits(); 63 return std::make_pair(NumParts, NumLeftover); 64 } 65 66 static LLT getGCDType(LLT OrigTy, LLT TargetTy) { 67 if (OrigTy.isVector() && TargetTy.isVector()) { 68 assert(OrigTy.getElementType() == TargetTy.getElementType()); 69 int GCD = greatestCommonDivisor(OrigTy.getNumElements(), 70 TargetTy.getNumElements()); 71 return LLT::scalarOrVector(GCD, OrigTy.getElementType()); 72 } 73 74 if (OrigTy.isVector() && !TargetTy.isVector()) { 75 assert(OrigTy.getElementType() == TargetTy); 76 return TargetTy; 77 } 78 79 assert(!OrigTy.isVector() && !TargetTy.isVector() && 80 "GCD type of vector and scalar not implemented"); 81 82 int GCD = greatestCommonDivisor(OrigTy.getSizeInBits(), 83 TargetTy.getSizeInBits()); 84 return LLT::scalar(GCD); 85 } 86 87 static LLT getLCMType(LLT Ty0, LLT Ty1) { 88 if (!Ty0.isVector() && !Ty1.isVector()) { 89 unsigned Mul = Ty0.getSizeInBits() * Ty1.getSizeInBits(); 90 int GCDSize = greatestCommonDivisor(Ty0.getSizeInBits(), 91 Ty1.getSizeInBits()); 92 return LLT::scalar(Mul / GCDSize); 93 } 94 95 if (Ty0.isVector() && !Ty1.isVector()) { 96 assert(Ty0.getElementType() == Ty1 && "not yet handled"); 97 return Ty0; 98 } 99 100 if (Ty1.isVector() && !Ty0.isVector()) { 101 assert(Ty1.getElementType() == Ty0 && "not yet handled"); 102 return Ty1; 103 } 104 105 if (Ty0.isVector() && Ty1.isVector()) { 106 assert(Ty0.getElementType() == Ty1.getElementType() && "not yet handled"); 107 108 int GCDElts = greatestCommonDivisor(Ty0.getNumElements(), 109 Ty1.getNumElements()); 110 111 int Mul = Ty0.getNumElements() * Ty1.getNumElements(); 112 return LLT::vector(Mul / GCDElts, Ty0.getElementType()); 113 } 114 115 llvm_unreachable("not yet handled"); 116 } 117 118 LegalizerHelper::LegalizerHelper(MachineFunction &MF, 119 GISelChangeObserver &Observer, 120 MachineIRBuilder &Builder) 121 : MIRBuilder(Builder), MRI(MF.getRegInfo()), 122 LI(*MF.getSubtarget().getLegalizerInfo()), Observer(Observer) { 123 MIRBuilder.setMF(MF); 124 MIRBuilder.setChangeObserver(Observer); 125 } 126 127 LegalizerHelper::LegalizerHelper(MachineFunction &MF, const LegalizerInfo &LI, 128 GISelChangeObserver &Observer, 129 MachineIRBuilder &B) 130 : MIRBuilder(B), MRI(MF.getRegInfo()), LI(LI), Observer(Observer) { 131 MIRBuilder.setMF(MF); 132 MIRBuilder.setChangeObserver(Observer); 133 } 134 LegalizerHelper::LegalizeResult 135 LegalizerHelper::legalizeInstrStep(MachineInstr &MI) { 136 LLVM_DEBUG(dbgs() << "Legalizing: "; MI.print(dbgs())); 137 138 if (MI.getOpcode() == TargetOpcode::G_INTRINSIC || 139 MI.getOpcode() == TargetOpcode::G_INTRINSIC_W_SIDE_EFFECTS) 140 return LI.legalizeIntrinsic(MI, MIRBuilder, Observer) ? Legalized 141 : UnableToLegalize; 142 auto Step = LI.getAction(MI, MRI); 143 switch (Step.Action) { 144 case Legal: 145 LLVM_DEBUG(dbgs() << ".. Already legal\n"); 146 return AlreadyLegal; 147 case Libcall: 148 LLVM_DEBUG(dbgs() << ".. Convert to libcall\n"); 149 return libcall(MI); 150 case NarrowScalar: 151 LLVM_DEBUG(dbgs() << ".. Narrow scalar\n"); 152 return narrowScalar(MI, Step.TypeIdx, Step.NewType); 153 case WidenScalar: 154 LLVM_DEBUG(dbgs() << ".. Widen scalar\n"); 155 return widenScalar(MI, Step.TypeIdx, Step.NewType); 156 case Lower: 157 LLVM_DEBUG(dbgs() << ".. Lower\n"); 158 return lower(MI, Step.TypeIdx, Step.NewType); 159 case FewerElements: 160 LLVM_DEBUG(dbgs() << ".. Reduce number of elements\n"); 161 return fewerElementsVector(MI, Step.TypeIdx, Step.NewType); 162 case MoreElements: 163 LLVM_DEBUG(dbgs() << ".. Increase number of elements\n"); 164 return moreElementsVector(MI, Step.TypeIdx, Step.NewType); 165 case Custom: 166 LLVM_DEBUG(dbgs() << ".. Custom legalization\n"); 167 return LI.legalizeCustom(MI, MRI, MIRBuilder, Observer) ? Legalized 168 : UnableToLegalize; 169 default: 170 LLVM_DEBUG(dbgs() << ".. Unable to legalize\n"); 171 return UnableToLegalize; 172 } 173 } 174 175 void LegalizerHelper::extractParts(Register Reg, LLT Ty, int NumParts, 176 SmallVectorImpl<Register> &VRegs) { 177 for (int i = 0; i < NumParts; ++i) 178 VRegs.push_back(MRI.createGenericVirtualRegister(Ty)); 179 MIRBuilder.buildUnmerge(VRegs, Reg); 180 } 181 182 bool LegalizerHelper::extractParts(Register Reg, LLT RegTy, 183 LLT MainTy, LLT &LeftoverTy, 184 SmallVectorImpl<Register> &VRegs, 185 SmallVectorImpl<Register> &LeftoverRegs) { 186 assert(!LeftoverTy.isValid() && "this is an out argument"); 187 188 unsigned RegSize = RegTy.getSizeInBits(); 189 unsigned MainSize = MainTy.getSizeInBits(); 190 unsigned NumParts = RegSize / MainSize; 191 unsigned LeftoverSize = RegSize - NumParts * MainSize; 192 193 // Use an unmerge when possible. 194 if (LeftoverSize == 0) { 195 for (unsigned I = 0; I < NumParts; ++I) 196 VRegs.push_back(MRI.createGenericVirtualRegister(MainTy)); 197 MIRBuilder.buildUnmerge(VRegs, Reg); 198 return true; 199 } 200 201 if (MainTy.isVector()) { 202 unsigned EltSize = MainTy.getScalarSizeInBits(); 203 if (LeftoverSize % EltSize != 0) 204 return false; 205 LeftoverTy = LLT::scalarOrVector(LeftoverSize / EltSize, EltSize); 206 } else { 207 LeftoverTy = LLT::scalar(LeftoverSize); 208 } 209 210 // For irregular sizes, extract the individual parts. 211 for (unsigned I = 0; I != NumParts; ++I) { 212 Register NewReg = MRI.createGenericVirtualRegister(MainTy); 213 VRegs.push_back(NewReg); 214 MIRBuilder.buildExtract(NewReg, Reg, MainSize * I); 215 } 216 217 for (unsigned Offset = MainSize * NumParts; Offset < RegSize; 218 Offset += LeftoverSize) { 219 Register NewReg = MRI.createGenericVirtualRegister(LeftoverTy); 220 LeftoverRegs.push_back(NewReg); 221 MIRBuilder.buildExtract(NewReg, Reg, Offset); 222 } 223 224 return true; 225 } 226 227 void LegalizerHelper::insertParts(Register DstReg, 228 LLT ResultTy, LLT PartTy, 229 ArrayRef<Register> PartRegs, 230 LLT LeftoverTy, 231 ArrayRef<Register> LeftoverRegs) { 232 if (!LeftoverTy.isValid()) { 233 assert(LeftoverRegs.empty()); 234 235 if (!ResultTy.isVector()) { 236 MIRBuilder.buildMerge(DstReg, PartRegs); 237 return; 238 } 239 240 if (PartTy.isVector()) 241 MIRBuilder.buildConcatVectors(DstReg, PartRegs); 242 else 243 MIRBuilder.buildBuildVector(DstReg, PartRegs); 244 return; 245 } 246 247 unsigned PartSize = PartTy.getSizeInBits(); 248 unsigned LeftoverPartSize = LeftoverTy.getSizeInBits(); 249 250 Register CurResultReg = MRI.createGenericVirtualRegister(ResultTy); 251 MIRBuilder.buildUndef(CurResultReg); 252 253 unsigned Offset = 0; 254 for (Register PartReg : PartRegs) { 255 Register NewResultReg = MRI.createGenericVirtualRegister(ResultTy); 256 MIRBuilder.buildInsert(NewResultReg, CurResultReg, PartReg, Offset); 257 CurResultReg = NewResultReg; 258 Offset += PartSize; 259 } 260 261 for (unsigned I = 0, E = LeftoverRegs.size(); I != E; ++I) { 262 // Use the original output register for the final insert to avoid a copy. 263 Register NewResultReg = (I + 1 == E) ? 264 DstReg : MRI.createGenericVirtualRegister(ResultTy); 265 266 MIRBuilder.buildInsert(NewResultReg, CurResultReg, LeftoverRegs[I], Offset); 267 CurResultReg = NewResultReg; 268 Offset += LeftoverPartSize; 269 } 270 } 271 272 /// Return the result registers of G_UNMERGE_VALUES \p MI in \p Regs 273 static void getUnmergeResults(SmallVectorImpl<Register> &Regs, 274 const MachineInstr &MI) { 275 assert(MI.getOpcode() == TargetOpcode::G_UNMERGE_VALUES); 276 277 const int NumResults = MI.getNumOperands() - 1; 278 Regs.resize(NumResults); 279 for (int I = 0; I != NumResults; ++I) 280 Regs[I] = MI.getOperand(I).getReg(); 281 } 282 283 LLT LegalizerHelper::extractGCDType(SmallVectorImpl<Register> &Parts, LLT DstTy, 284 LLT NarrowTy, Register SrcReg) { 285 LLT SrcTy = MRI.getType(SrcReg); 286 287 LLT GCDTy = getGCDType(DstTy, getGCDType(SrcTy, NarrowTy)); 288 if (SrcTy == GCDTy) { 289 // If the source already evenly divides the result type, we don't need to do 290 // anything. 291 Parts.push_back(SrcReg); 292 } else { 293 // Need to split into common type sized pieces. 294 auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg); 295 getUnmergeResults(Parts, *Unmerge); 296 } 297 298 return GCDTy; 299 } 300 301 LLT LegalizerHelper::buildLCMMergePieces(LLT DstTy, LLT NarrowTy, LLT GCDTy, 302 SmallVectorImpl<Register> &VRegs, 303 unsigned PadStrategy) { 304 LLT LCMTy = getLCMType(DstTy, NarrowTy); 305 306 int NumParts = LCMTy.getSizeInBits() / NarrowTy.getSizeInBits(); 307 int NumSubParts = NarrowTy.getSizeInBits() / GCDTy.getSizeInBits(); 308 int NumOrigSrc = VRegs.size(); 309 310 Register PadReg; 311 312 // Get a value we can use to pad the source value if the sources won't evenly 313 // cover the result type. 314 if (NumOrigSrc < NumParts * NumSubParts) { 315 if (PadStrategy == TargetOpcode::G_ZEXT) 316 PadReg = MIRBuilder.buildConstant(GCDTy, 0).getReg(0); 317 else if (PadStrategy == TargetOpcode::G_ANYEXT) 318 PadReg = MIRBuilder.buildUndef(GCDTy).getReg(0); 319 else { 320 assert(PadStrategy == TargetOpcode::G_SEXT); 321 322 // Shift the sign bit of the low register through the high register. 323 auto ShiftAmt = 324 MIRBuilder.buildConstant(LLT::scalar(64), GCDTy.getSizeInBits() - 1); 325 PadReg = MIRBuilder.buildAShr(GCDTy, VRegs.back(), ShiftAmt).getReg(0); 326 } 327 } 328 329 // Registers for the final merge to be produced. 330 SmallVector<Register, 4> Remerge; 331 Remerge.resize(NumParts); 332 333 // Registers needed for intermediate merges, which will be merged into a 334 // source for Remerge. 335 SmallVector<Register, 4> SubMerge; 336 SubMerge.resize(NumSubParts); 337 338 // Once we've fully read off the end of the original source bits, we can reuse 339 // the same high bits for remaining padding elements. 340 Register AllPadReg; 341 342 // Build merges to the LCM type to cover the original result type. 343 for (int I = 0; I != NumParts; ++I) { 344 bool AllMergePartsArePadding = true; 345 346 // Build the requested merges to the requested type. 347 for (int J = 0; J != NumSubParts; ++J) { 348 int Idx = I * NumSubParts + J; 349 if (Idx >= NumOrigSrc) { 350 SubMerge[J] = PadReg; 351 continue; 352 } 353 354 SubMerge[J] = VRegs[Idx]; 355 356 // There are meaningful bits here we can't reuse later. 357 AllMergePartsArePadding = false; 358 } 359 360 // If we've filled up a complete piece with padding bits, we can directly 361 // emit the natural sized constant if applicable, rather than a merge of 362 // smaller constants. 363 if (AllMergePartsArePadding && !AllPadReg) { 364 if (PadStrategy == TargetOpcode::G_ANYEXT) 365 AllPadReg = MIRBuilder.buildUndef(NarrowTy).getReg(0); 366 else if (PadStrategy == TargetOpcode::G_ZEXT) 367 AllPadReg = MIRBuilder.buildConstant(NarrowTy, 0).getReg(0); 368 369 // If this is a sign extension, we can't materialize a trivial constant 370 // with the right type and have to produce a merge. 371 } 372 373 if (AllPadReg) { 374 // Avoid creating additional instructions if we're just adding additional 375 // copies of padding bits. 376 Remerge[I] = AllPadReg; 377 continue; 378 } 379 380 if (NumSubParts == 1) 381 Remerge[I] = SubMerge[0]; 382 else 383 Remerge[I] = MIRBuilder.buildMerge(NarrowTy, SubMerge).getReg(0); 384 385 // In the sign extend padding case, re-use the first all-signbit merge. 386 if (AllMergePartsArePadding && !AllPadReg) 387 AllPadReg = Remerge[I]; 388 } 389 390 VRegs = std::move(Remerge); 391 return LCMTy; 392 } 393 394 void LegalizerHelper::buildWidenedRemergeToDst(Register DstReg, LLT LCMTy, 395 ArrayRef<Register> RemergeRegs) { 396 LLT DstTy = MRI.getType(DstReg); 397 398 // Create the merge to the widened source, and extract the relevant bits into 399 // the result. 400 401 if (DstTy == LCMTy) { 402 MIRBuilder.buildMerge(DstReg, RemergeRegs); 403 return; 404 } 405 406 auto Remerge = MIRBuilder.buildMerge(LCMTy, RemergeRegs); 407 if (DstTy.isScalar() && LCMTy.isScalar()) { 408 MIRBuilder.buildTrunc(DstReg, Remerge); 409 return; 410 } 411 412 if (LCMTy.isVector()) { 413 MIRBuilder.buildExtract(DstReg, Remerge, 0); 414 return; 415 } 416 417 llvm_unreachable("unhandled case"); 418 } 419 420 static RTLIB::Libcall getRTLibDesc(unsigned Opcode, unsigned Size) { 421 switch (Opcode) { 422 case TargetOpcode::G_SDIV: 423 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 424 switch (Size) { 425 case 32: 426 return RTLIB::SDIV_I32; 427 case 64: 428 return RTLIB::SDIV_I64; 429 case 128: 430 return RTLIB::SDIV_I128; 431 default: 432 llvm_unreachable("unexpected size"); 433 } 434 case TargetOpcode::G_UDIV: 435 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 436 switch (Size) { 437 case 32: 438 return RTLIB::UDIV_I32; 439 case 64: 440 return RTLIB::UDIV_I64; 441 case 128: 442 return RTLIB::UDIV_I128; 443 default: 444 llvm_unreachable("unexpected size"); 445 } 446 case TargetOpcode::G_SREM: 447 assert((Size == 32 || Size == 64) && "Unsupported size"); 448 return Size == 64 ? RTLIB::SREM_I64 : RTLIB::SREM_I32; 449 case TargetOpcode::G_UREM: 450 assert((Size == 32 || Size == 64) && "Unsupported size"); 451 return Size == 64 ? RTLIB::UREM_I64 : RTLIB::UREM_I32; 452 case TargetOpcode::G_CTLZ_ZERO_UNDEF: 453 assert(Size == 32 && "Unsupported size"); 454 return RTLIB::CTLZ_I32; 455 case TargetOpcode::G_FADD: 456 assert((Size == 32 || Size == 64) && "Unsupported size"); 457 return Size == 64 ? RTLIB::ADD_F64 : RTLIB::ADD_F32; 458 case TargetOpcode::G_FSUB: 459 assert((Size == 32 || Size == 64) && "Unsupported size"); 460 return Size == 64 ? RTLIB::SUB_F64 : RTLIB::SUB_F32; 461 case TargetOpcode::G_FMUL: 462 assert((Size == 32 || Size == 64) && "Unsupported size"); 463 return Size == 64 ? RTLIB::MUL_F64 : RTLIB::MUL_F32; 464 case TargetOpcode::G_FDIV: 465 assert((Size == 32 || Size == 64) && "Unsupported size"); 466 return Size == 64 ? RTLIB::DIV_F64 : RTLIB::DIV_F32; 467 case TargetOpcode::G_FEXP: 468 assert((Size == 32 || Size == 64) && "Unsupported size"); 469 return Size == 64 ? RTLIB::EXP_F64 : RTLIB::EXP_F32; 470 case TargetOpcode::G_FEXP2: 471 assert((Size == 32 || Size == 64) && "Unsupported size"); 472 return Size == 64 ? RTLIB::EXP2_F64 : RTLIB::EXP2_F32; 473 case TargetOpcode::G_FREM: 474 return Size == 64 ? RTLIB::REM_F64 : RTLIB::REM_F32; 475 case TargetOpcode::G_FPOW: 476 return Size == 64 ? RTLIB::POW_F64 : RTLIB::POW_F32; 477 case TargetOpcode::G_FMA: 478 assert((Size == 32 || Size == 64) && "Unsupported size"); 479 return Size == 64 ? RTLIB::FMA_F64 : RTLIB::FMA_F32; 480 case TargetOpcode::G_FSIN: 481 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 482 return Size == 128 ? RTLIB::SIN_F128 483 : Size == 64 ? RTLIB::SIN_F64 : RTLIB::SIN_F32; 484 case TargetOpcode::G_FCOS: 485 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 486 return Size == 128 ? RTLIB::COS_F128 487 : Size == 64 ? RTLIB::COS_F64 : RTLIB::COS_F32; 488 case TargetOpcode::G_FLOG10: 489 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 490 return Size == 128 ? RTLIB::LOG10_F128 491 : Size == 64 ? RTLIB::LOG10_F64 : RTLIB::LOG10_F32; 492 case TargetOpcode::G_FLOG: 493 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 494 return Size == 128 ? RTLIB::LOG_F128 495 : Size == 64 ? RTLIB::LOG_F64 : RTLIB::LOG_F32; 496 case TargetOpcode::G_FLOG2: 497 assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size"); 498 return Size == 128 ? RTLIB::LOG2_F128 499 : Size == 64 ? RTLIB::LOG2_F64 : RTLIB::LOG2_F32; 500 case TargetOpcode::G_FCEIL: 501 assert((Size == 32 || Size == 64) && "Unsupported size"); 502 return Size == 64 ? RTLIB::CEIL_F64 : RTLIB::CEIL_F32; 503 case TargetOpcode::G_FFLOOR: 504 assert((Size == 32 || Size == 64) && "Unsupported size"); 505 return Size == 64 ? RTLIB::FLOOR_F64 : RTLIB::FLOOR_F32; 506 } 507 llvm_unreachable("Unknown libcall function"); 508 } 509 510 /// True if an instruction is in tail position in its caller. Intended for 511 /// legalizing libcalls as tail calls when possible. 512 static bool isLibCallInTailPosition(MachineInstr &MI) { 513 const Function &F = MI.getParent()->getParent()->getFunction(); 514 515 // Conservatively require the attributes of the call to match those of 516 // the return. Ignore NoAlias and NonNull because they don't affect the 517 // call sequence. 518 AttributeList CallerAttrs = F.getAttributes(); 519 if (AttrBuilder(CallerAttrs, AttributeList::ReturnIndex) 520 .removeAttribute(Attribute::NoAlias) 521 .removeAttribute(Attribute::NonNull) 522 .hasAttributes()) 523 return false; 524 525 // It's not safe to eliminate the sign / zero extension of the return value. 526 if (CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::ZExt) || 527 CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::SExt)) 528 return false; 529 530 // Only tail call if the following instruction is a standard return. 531 auto &TII = *MI.getMF()->getSubtarget().getInstrInfo(); 532 MachineInstr *Next = MI.getNextNode(); 533 if (!Next || TII.isTailCall(*Next) || !Next->isReturn()) 534 return false; 535 536 return true; 537 } 538 539 LegalizerHelper::LegalizeResult 540 llvm::createLibcall(MachineIRBuilder &MIRBuilder, RTLIB::Libcall Libcall, 541 const CallLowering::ArgInfo &Result, 542 ArrayRef<CallLowering::ArgInfo> Args) { 543 auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering(); 544 auto &TLI = *MIRBuilder.getMF().getSubtarget().getTargetLowering(); 545 const char *Name = TLI.getLibcallName(Libcall); 546 547 CallLowering::CallLoweringInfo Info; 548 Info.CallConv = TLI.getLibcallCallingConv(Libcall); 549 Info.Callee = MachineOperand::CreateES(Name); 550 Info.OrigRet = Result; 551 std::copy(Args.begin(), Args.end(), std::back_inserter(Info.OrigArgs)); 552 if (!CLI.lowerCall(MIRBuilder, Info)) 553 return LegalizerHelper::UnableToLegalize; 554 555 return LegalizerHelper::Legalized; 556 } 557 558 // Useful for libcalls where all operands have the same type. 559 static LegalizerHelper::LegalizeResult 560 simpleLibcall(MachineInstr &MI, MachineIRBuilder &MIRBuilder, unsigned Size, 561 Type *OpType) { 562 auto Libcall = getRTLibDesc(MI.getOpcode(), Size); 563 564 SmallVector<CallLowering::ArgInfo, 3> Args; 565 for (unsigned i = 1; i < MI.getNumOperands(); i++) 566 Args.push_back({MI.getOperand(i).getReg(), OpType}); 567 return createLibcall(MIRBuilder, Libcall, {MI.getOperand(0).getReg(), OpType}, 568 Args); 569 } 570 571 LegalizerHelper::LegalizeResult 572 llvm::createMemLibcall(MachineIRBuilder &MIRBuilder, MachineRegisterInfo &MRI, 573 MachineInstr &MI) { 574 assert(MI.getOpcode() == TargetOpcode::G_INTRINSIC_W_SIDE_EFFECTS); 575 auto &Ctx = MIRBuilder.getMF().getFunction().getContext(); 576 577 SmallVector<CallLowering::ArgInfo, 3> Args; 578 // Add all the args, except for the last which is an imm denoting 'tail'. 579 for (unsigned i = 1; i < MI.getNumOperands() - 1; i++) { 580 Register Reg = MI.getOperand(i).getReg(); 581 582 // Need derive an IR type for call lowering. 583 LLT OpLLT = MRI.getType(Reg); 584 Type *OpTy = nullptr; 585 if (OpLLT.isPointer()) 586 OpTy = Type::getInt8PtrTy(Ctx, OpLLT.getAddressSpace()); 587 else 588 OpTy = IntegerType::get(Ctx, OpLLT.getSizeInBits()); 589 Args.push_back({Reg, OpTy}); 590 } 591 592 auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering(); 593 auto &TLI = *MIRBuilder.getMF().getSubtarget().getTargetLowering(); 594 Intrinsic::ID ID = MI.getOperand(0).getIntrinsicID(); 595 RTLIB::Libcall RTLibcall; 596 switch (ID) { 597 case Intrinsic::memcpy: 598 RTLibcall = RTLIB::MEMCPY; 599 break; 600 case Intrinsic::memset: 601 RTLibcall = RTLIB::MEMSET; 602 break; 603 case Intrinsic::memmove: 604 RTLibcall = RTLIB::MEMMOVE; 605 break; 606 default: 607 return LegalizerHelper::UnableToLegalize; 608 } 609 const char *Name = TLI.getLibcallName(RTLibcall); 610 611 MIRBuilder.setInstr(MI); 612 613 CallLowering::CallLoweringInfo Info; 614 Info.CallConv = TLI.getLibcallCallingConv(RTLibcall); 615 Info.Callee = MachineOperand::CreateES(Name); 616 Info.OrigRet = CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx)); 617 Info.IsTailCall = MI.getOperand(MI.getNumOperands() - 1).getImm() == 1 && 618 isLibCallInTailPosition(MI); 619 620 std::copy(Args.begin(), Args.end(), std::back_inserter(Info.OrigArgs)); 621 if (!CLI.lowerCall(MIRBuilder, Info)) 622 return LegalizerHelper::UnableToLegalize; 623 624 if (Info.LoweredTailCall) { 625 assert(Info.IsTailCall && "Lowered tail call when it wasn't a tail call?"); 626 // We must have a return following the call to get past 627 // isLibCallInTailPosition. 628 assert(MI.getNextNode() && MI.getNextNode()->isReturn() && 629 "Expected instr following MI to be a return?"); 630 631 // We lowered a tail call, so the call is now the return from the block. 632 // Delete the old return. 633 MI.getNextNode()->eraseFromParent(); 634 } 635 636 return LegalizerHelper::Legalized; 637 } 638 639 static RTLIB::Libcall getConvRTLibDesc(unsigned Opcode, Type *ToType, 640 Type *FromType) { 641 auto ToMVT = MVT::getVT(ToType); 642 auto FromMVT = MVT::getVT(FromType); 643 644 switch (Opcode) { 645 case TargetOpcode::G_FPEXT: 646 return RTLIB::getFPEXT(FromMVT, ToMVT); 647 case TargetOpcode::G_FPTRUNC: 648 return RTLIB::getFPROUND(FromMVT, ToMVT); 649 case TargetOpcode::G_FPTOSI: 650 return RTLIB::getFPTOSINT(FromMVT, ToMVT); 651 case TargetOpcode::G_FPTOUI: 652 return RTLIB::getFPTOUINT(FromMVT, ToMVT); 653 case TargetOpcode::G_SITOFP: 654 return RTLIB::getSINTTOFP(FromMVT, ToMVT); 655 case TargetOpcode::G_UITOFP: 656 return RTLIB::getUINTTOFP(FromMVT, ToMVT); 657 } 658 llvm_unreachable("Unsupported libcall function"); 659 } 660 661 static LegalizerHelper::LegalizeResult 662 conversionLibcall(MachineInstr &MI, MachineIRBuilder &MIRBuilder, Type *ToType, 663 Type *FromType) { 664 RTLIB::Libcall Libcall = getConvRTLibDesc(MI.getOpcode(), ToType, FromType); 665 return createLibcall(MIRBuilder, Libcall, {MI.getOperand(0).getReg(), ToType}, 666 {{MI.getOperand(1).getReg(), FromType}}); 667 } 668 669 LegalizerHelper::LegalizeResult 670 LegalizerHelper::libcall(MachineInstr &MI) { 671 LLT LLTy = MRI.getType(MI.getOperand(0).getReg()); 672 unsigned Size = LLTy.getSizeInBits(); 673 auto &Ctx = MIRBuilder.getMF().getFunction().getContext(); 674 675 MIRBuilder.setInstr(MI); 676 677 switch (MI.getOpcode()) { 678 default: 679 return UnableToLegalize; 680 case TargetOpcode::G_SDIV: 681 case TargetOpcode::G_UDIV: 682 case TargetOpcode::G_SREM: 683 case TargetOpcode::G_UREM: 684 case TargetOpcode::G_CTLZ_ZERO_UNDEF: { 685 Type *HLTy = IntegerType::get(Ctx, Size); 686 auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy); 687 if (Status != Legalized) 688 return Status; 689 break; 690 } 691 case TargetOpcode::G_FADD: 692 case TargetOpcode::G_FSUB: 693 case TargetOpcode::G_FMUL: 694 case TargetOpcode::G_FDIV: 695 case TargetOpcode::G_FMA: 696 case TargetOpcode::G_FPOW: 697 case TargetOpcode::G_FREM: 698 case TargetOpcode::G_FCOS: 699 case TargetOpcode::G_FSIN: 700 case TargetOpcode::G_FLOG10: 701 case TargetOpcode::G_FLOG: 702 case TargetOpcode::G_FLOG2: 703 case TargetOpcode::G_FEXP: 704 case TargetOpcode::G_FEXP2: 705 case TargetOpcode::G_FCEIL: 706 case TargetOpcode::G_FFLOOR: { 707 if (Size > 64) { 708 LLVM_DEBUG(dbgs() << "Size " << Size << " too large to legalize.\n"); 709 return UnableToLegalize; 710 } 711 Type *HLTy = Size == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx); 712 auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy); 713 if (Status != Legalized) 714 return Status; 715 break; 716 } 717 case TargetOpcode::G_FPEXT: { 718 // FIXME: Support other floating point types (half, fp128 etc) 719 unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 720 unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 721 if (ToSize != 64 || FromSize != 32) 722 return UnableToLegalize; 723 LegalizeResult Status = conversionLibcall( 724 MI, MIRBuilder, Type::getDoubleTy(Ctx), Type::getFloatTy(Ctx)); 725 if (Status != Legalized) 726 return Status; 727 break; 728 } 729 case TargetOpcode::G_FPTRUNC: { 730 // FIXME: Support other floating point types (half, fp128 etc) 731 unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 732 unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 733 if (ToSize != 32 || FromSize != 64) 734 return UnableToLegalize; 735 LegalizeResult Status = conversionLibcall( 736 MI, MIRBuilder, Type::getFloatTy(Ctx), Type::getDoubleTy(Ctx)); 737 if (Status != Legalized) 738 return Status; 739 break; 740 } 741 case TargetOpcode::G_FPTOSI: 742 case TargetOpcode::G_FPTOUI: { 743 // FIXME: Support other types 744 unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 745 unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 746 if ((ToSize != 32 && ToSize != 64) || (FromSize != 32 && FromSize != 64)) 747 return UnableToLegalize; 748 LegalizeResult Status = conversionLibcall( 749 MI, MIRBuilder, 750 ToSize == 32 ? Type::getInt32Ty(Ctx) : Type::getInt64Ty(Ctx), 751 FromSize == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx)); 752 if (Status != Legalized) 753 return Status; 754 break; 755 } 756 case TargetOpcode::G_SITOFP: 757 case TargetOpcode::G_UITOFP: { 758 // FIXME: Support other types 759 unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 760 unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 761 if ((FromSize != 32 && FromSize != 64) || (ToSize != 32 && ToSize != 64)) 762 return UnableToLegalize; 763 LegalizeResult Status = conversionLibcall( 764 MI, MIRBuilder, 765 ToSize == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx), 766 FromSize == 32 ? Type::getInt32Ty(Ctx) : Type::getInt64Ty(Ctx)); 767 if (Status != Legalized) 768 return Status; 769 break; 770 } 771 } 772 773 MI.eraseFromParent(); 774 return Legalized; 775 } 776 777 LegalizerHelper::LegalizeResult LegalizerHelper::narrowScalar(MachineInstr &MI, 778 unsigned TypeIdx, 779 LLT NarrowTy) { 780 MIRBuilder.setInstr(MI); 781 782 uint64_t SizeOp0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 783 uint64_t NarrowSize = NarrowTy.getSizeInBits(); 784 785 switch (MI.getOpcode()) { 786 default: 787 return UnableToLegalize; 788 case TargetOpcode::G_IMPLICIT_DEF: { 789 // FIXME: add support for when SizeOp0 isn't an exact multiple of 790 // NarrowSize. 791 if (SizeOp0 % NarrowSize != 0) 792 return UnableToLegalize; 793 int NumParts = SizeOp0 / NarrowSize; 794 795 SmallVector<Register, 2> DstRegs; 796 for (int i = 0; i < NumParts; ++i) 797 DstRegs.push_back( 798 MIRBuilder.buildUndef(NarrowTy).getReg(0)); 799 800 Register DstReg = MI.getOperand(0).getReg(); 801 if(MRI.getType(DstReg).isVector()) 802 MIRBuilder.buildBuildVector(DstReg, DstRegs); 803 else 804 MIRBuilder.buildMerge(DstReg, DstRegs); 805 MI.eraseFromParent(); 806 return Legalized; 807 } 808 case TargetOpcode::G_CONSTANT: { 809 LLT Ty = MRI.getType(MI.getOperand(0).getReg()); 810 const APInt &Val = MI.getOperand(1).getCImm()->getValue(); 811 unsigned TotalSize = Ty.getSizeInBits(); 812 unsigned NarrowSize = NarrowTy.getSizeInBits(); 813 int NumParts = TotalSize / NarrowSize; 814 815 SmallVector<Register, 4> PartRegs; 816 for (int I = 0; I != NumParts; ++I) { 817 unsigned Offset = I * NarrowSize; 818 auto K = MIRBuilder.buildConstant(NarrowTy, 819 Val.lshr(Offset).trunc(NarrowSize)); 820 PartRegs.push_back(K.getReg(0)); 821 } 822 823 LLT LeftoverTy; 824 unsigned LeftoverBits = TotalSize - NumParts * NarrowSize; 825 SmallVector<Register, 1> LeftoverRegs; 826 if (LeftoverBits != 0) { 827 LeftoverTy = LLT::scalar(LeftoverBits); 828 auto K = MIRBuilder.buildConstant( 829 LeftoverTy, 830 Val.lshr(NumParts * NarrowSize).trunc(LeftoverBits)); 831 LeftoverRegs.push_back(K.getReg(0)); 832 } 833 834 insertParts(MI.getOperand(0).getReg(), 835 Ty, NarrowTy, PartRegs, LeftoverTy, LeftoverRegs); 836 837 MI.eraseFromParent(); 838 return Legalized; 839 } 840 case TargetOpcode::G_SEXT: 841 case TargetOpcode::G_ZEXT: 842 case TargetOpcode::G_ANYEXT: 843 return narrowScalarExt(MI, TypeIdx, NarrowTy); 844 case TargetOpcode::G_TRUNC: { 845 if (TypeIdx != 1) 846 return UnableToLegalize; 847 848 uint64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 849 if (NarrowTy.getSizeInBits() * 2 != SizeOp1) { 850 LLVM_DEBUG(dbgs() << "Can't narrow trunc to type " << NarrowTy << "\n"); 851 return UnableToLegalize; 852 } 853 854 auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1)); 855 MIRBuilder.buildCopy(MI.getOperand(0), Unmerge.getReg(0)); 856 MI.eraseFromParent(); 857 return Legalized; 858 } 859 860 case TargetOpcode::G_ADD: { 861 // FIXME: add support for when SizeOp0 isn't an exact multiple of 862 // NarrowSize. 863 if (SizeOp0 % NarrowSize != 0) 864 return UnableToLegalize; 865 // Expand in terms of carry-setting/consuming G_ADDE instructions. 866 int NumParts = SizeOp0 / NarrowTy.getSizeInBits(); 867 868 SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs; 869 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src1Regs); 870 extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src2Regs); 871 872 Register CarryIn; 873 for (int i = 0; i < NumParts; ++i) { 874 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy); 875 Register CarryOut = MRI.createGenericVirtualRegister(LLT::scalar(1)); 876 877 if (i == 0) 878 MIRBuilder.buildUAddo(DstReg, CarryOut, Src1Regs[i], Src2Regs[i]); 879 else { 880 MIRBuilder.buildUAdde(DstReg, CarryOut, Src1Regs[i], 881 Src2Regs[i], CarryIn); 882 } 883 884 DstRegs.push_back(DstReg); 885 CarryIn = CarryOut; 886 } 887 Register DstReg = MI.getOperand(0).getReg(); 888 if(MRI.getType(DstReg).isVector()) 889 MIRBuilder.buildBuildVector(DstReg, DstRegs); 890 else 891 MIRBuilder.buildMerge(DstReg, DstRegs); 892 MI.eraseFromParent(); 893 return Legalized; 894 } 895 case TargetOpcode::G_SUB: { 896 // FIXME: add support for when SizeOp0 isn't an exact multiple of 897 // NarrowSize. 898 if (SizeOp0 % NarrowSize != 0) 899 return UnableToLegalize; 900 901 int NumParts = SizeOp0 / NarrowTy.getSizeInBits(); 902 903 SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs; 904 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src1Regs); 905 extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src2Regs); 906 907 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy); 908 Register BorrowOut = MRI.createGenericVirtualRegister(LLT::scalar(1)); 909 MIRBuilder.buildInstr(TargetOpcode::G_USUBO, {DstReg, BorrowOut}, 910 {Src1Regs[0], Src2Regs[0]}); 911 DstRegs.push_back(DstReg); 912 Register BorrowIn = BorrowOut; 913 for (int i = 1; i < NumParts; ++i) { 914 DstReg = MRI.createGenericVirtualRegister(NarrowTy); 915 BorrowOut = MRI.createGenericVirtualRegister(LLT::scalar(1)); 916 917 MIRBuilder.buildInstr(TargetOpcode::G_USUBE, {DstReg, BorrowOut}, 918 {Src1Regs[i], Src2Regs[i], BorrowIn}); 919 920 DstRegs.push_back(DstReg); 921 BorrowIn = BorrowOut; 922 } 923 MIRBuilder.buildMerge(MI.getOperand(0), DstRegs); 924 MI.eraseFromParent(); 925 return Legalized; 926 } 927 case TargetOpcode::G_MUL: 928 case TargetOpcode::G_UMULH: 929 return narrowScalarMul(MI, NarrowTy); 930 case TargetOpcode::G_EXTRACT: 931 return narrowScalarExtract(MI, TypeIdx, NarrowTy); 932 case TargetOpcode::G_INSERT: 933 return narrowScalarInsert(MI, TypeIdx, NarrowTy); 934 case TargetOpcode::G_LOAD: { 935 const auto &MMO = **MI.memoperands_begin(); 936 Register DstReg = MI.getOperand(0).getReg(); 937 LLT DstTy = MRI.getType(DstReg); 938 if (DstTy.isVector()) 939 return UnableToLegalize; 940 941 if (8 * MMO.getSize() != DstTy.getSizeInBits()) { 942 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy); 943 auto &MMO = **MI.memoperands_begin(); 944 MIRBuilder.buildLoad(TmpReg, MI.getOperand(1), MMO); 945 MIRBuilder.buildAnyExt(DstReg, TmpReg); 946 MI.eraseFromParent(); 947 return Legalized; 948 } 949 950 return reduceLoadStoreWidth(MI, TypeIdx, NarrowTy); 951 } 952 case TargetOpcode::G_ZEXTLOAD: 953 case TargetOpcode::G_SEXTLOAD: { 954 bool ZExt = MI.getOpcode() == TargetOpcode::G_ZEXTLOAD; 955 Register DstReg = MI.getOperand(0).getReg(); 956 Register PtrReg = MI.getOperand(1).getReg(); 957 958 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy); 959 auto &MMO = **MI.memoperands_begin(); 960 if (MMO.getSizeInBits() == NarrowSize) { 961 MIRBuilder.buildLoad(TmpReg, PtrReg, MMO); 962 } else { 963 MIRBuilder.buildLoadInstr(MI.getOpcode(), TmpReg, PtrReg, MMO); 964 } 965 966 if (ZExt) 967 MIRBuilder.buildZExt(DstReg, TmpReg); 968 else 969 MIRBuilder.buildSExt(DstReg, TmpReg); 970 971 MI.eraseFromParent(); 972 return Legalized; 973 } 974 case TargetOpcode::G_STORE: { 975 const auto &MMO = **MI.memoperands_begin(); 976 977 Register SrcReg = MI.getOperand(0).getReg(); 978 LLT SrcTy = MRI.getType(SrcReg); 979 if (SrcTy.isVector()) 980 return UnableToLegalize; 981 982 int NumParts = SizeOp0 / NarrowSize; 983 unsigned HandledSize = NumParts * NarrowTy.getSizeInBits(); 984 unsigned LeftoverBits = SrcTy.getSizeInBits() - HandledSize; 985 if (SrcTy.isVector() && LeftoverBits != 0) 986 return UnableToLegalize; 987 988 if (8 * MMO.getSize() != SrcTy.getSizeInBits()) { 989 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy); 990 auto &MMO = **MI.memoperands_begin(); 991 MIRBuilder.buildTrunc(TmpReg, SrcReg); 992 MIRBuilder.buildStore(TmpReg, MI.getOperand(1), MMO); 993 MI.eraseFromParent(); 994 return Legalized; 995 } 996 997 return reduceLoadStoreWidth(MI, 0, NarrowTy); 998 } 999 case TargetOpcode::G_SELECT: 1000 return narrowScalarSelect(MI, TypeIdx, NarrowTy); 1001 case TargetOpcode::G_AND: 1002 case TargetOpcode::G_OR: 1003 case TargetOpcode::G_XOR: { 1004 // Legalize bitwise operation: 1005 // A = BinOp<Ty> B, C 1006 // into: 1007 // B1, ..., BN = G_UNMERGE_VALUES B 1008 // C1, ..., CN = G_UNMERGE_VALUES C 1009 // A1 = BinOp<Ty/N> B1, C2 1010 // ... 1011 // AN = BinOp<Ty/N> BN, CN 1012 // A = G_MERGE_VALUES A1, ..., AN 1013 return narrowScalarBasic(MI, TypeIdx, NarrowTy); 1014 } 1015 case TargetOpcode::G_SHL: 1016 case TargetOpcode::G_LSHR: 1017 case TargetOpcode::G_ASHR: 1018 return narrowScalarShift(MI, TypeIdx, NarrowTy); 1019 case TargetOpcode::G_CTLZ: 1020 case TargetOpcode::G_CTLZ_ZERO_UNDEF: 1021 case TargetOpcode::G_CTTZ: 1022 case TargetOpcode::G_CTTZ_ZERO_UNDEF: 1023 case TargetOpcode::G_CTPOP: 1024 if (TypeIdx == 1) 1025 switch (MI.getOpcode()) { 1026 case TargetOpcode::G_CTLZ: 1027 return narrowScalarCTLZ(MI, TypeIdx, NarrowTy); 1028 case TargetOpcode::G_CTTZ: 1029 return narrowScalarCTTZ(MI, TypeIdx, NarrowTy); 1030 case TargetOpcode::G_CTPOP: 1031 return narrowScalarCTPOP(MI, TypeIdx, NarrowTy); 1032 default: 1033 return UnableToLegalize; 1034 } 1035 1036 Observer.changingInstr(MI); 1037 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT); 1038 Observer.changedInstr(MI); 1039 return Legalized; 1040 case TargetOpcode::G_INTTOPTR: 1041 if (TypeIdx != 1) 1042 return UnableToLegalize; 1043 1044 Observer.changingInstr(MI); 1045 narrowScalarSrc(MI, NarrowTy, 1); 1046 Observer.changedInstr(MI); 1047 return Legalized; 1048 case TargetOpcode::G_PTRTOINT: 1049 if (TypeIdx != 0) 1050 return UnableToLegalize; 1051 1052 Observer.changingInstr(MI); 1053 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT); 1054 Observer.changedInstr(MI); 1055 return Legalized; 1056 case TargetOpcode::G_PHI: { 1057 unsigned NumParts = SizeOp0 / NarrowSize; 1058 SmallVector<Register, 2> DstRegs; 1059 SmallVector<SmallVector<Register, 2>, 2> SrcRegs; 1060 DstRegs.resize(NumParts); 1061 SrcRegs.resize(MI.getNumOperands() / 2); 1062 Observer.changingInstr(MI); 1063 for (unsigned i = 1; i < MI.getNumOperands(); i += 2) { 1064 MachineBasicBlock &OpMBB = *MI.getOperand(i + 1).getMBB(); 1065 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator()); 1066 extractParts(MI.getOperand(i).getReg(), NarrowTy, NumParts, 1067 SrcRegs[i / 2]); 1068 } 1069 MachineBasicBlock &MBB = *MI.getParent(); 1070 MIRBuilder.setInsertPt(MBB, MI); 1071 for (unsigned i = 0; i < NumParts; ++i) { 1072 DstRegs[i] = MRI.createGenericVirtualRegister(NarrowTy); 1073 MachineInstrBuilder MIB = 1074 MIRBuilder.buildInstr(TargetOpcode::G_PHI).addDef(DstRegs[i]); 1075 for (unsigned j = 1; j < MI.getNumOperands(); j += 2) 1076 MIB.addUse(SrcRegs[j / 2][i]).add(MI.getOperand(j + 1)); 1077 } 1078 MIRBuilder.setInsertPt(MBB, MBB.getFirstNonPHI()); 1079 MIRBuilder.buildMerge(MI.getOperand(0), DstRegs); 1080 Observer.changedInstr(MI); 1081 MI.eraseFromParent(); 1082 return Legalized; 1083 } 1084 case TargetOpcode::G_EXTRACT_VECTOR_ELT: 1085 case TargetOpcode::G_INSERT_VECTOR_ELT: { 1086 if (TypeIdx != 2) 1087 return UnableToLegalize; 1088 1089 int OpIdx = MI.getOpcode() == TargetOpcode::G_EXTRACT_VECTOR_ELT ? 2 : 3; 1090 Observer.changingInstr(MI); 1091 narrowScalarSrc(MI, NarrowTy, OpIdx); 1092 Observer.changedInstr(MI); 1093 return Legalized; 1094 } 1095 case TargetOpcode::G_ICMP: { 1096 uint64_t SrcSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 1097 if (NarrowSize * 2 != SrcSize) 1098 return UnableToLegalize; 1099 1100 Observer.changingInstr(MI); 1101 Register LHSL = MRI.createGenericVirtualRegister(NarrowTy); 1102 Register LHSH = MRI.createGenericVirtualRegister(NarrowTy); 1103 MIRBuilder.buildUnmerge({LHSL, LHSH}, MI.getOperand(2)); 1104 1105 Register RHSL = MRI.createGenericVirtualRegister(NarrowTy); 1106 Register RHSH = MRI.createGenericVirtualRegister(NarrowTy); 1107 MIRBuilder.buildUnmerge({RHSL, RHSH}, MI.getOperand(3)); 1108 1109 CmpInst::Predicate Pred = 1110 static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate()); 1111 LLT ResTy = MRI.getType(MI.getOperand(0).getReg()); 1112 1113 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE) { 1114 MachineInstrBuilder XorL = MIRBuilder.buildXor(NarrowTy, LHSL, RHSL); 1115 MachineInstrBuilder XorH = MIRBuilder.buildXor(NarrowTy, LHSH, RHSH); 1116 MachineInstrBuilder Or = MIRBuilder.buildOr(NarrowTy, XorL, XorH); 1117 MachineInstrBuilder Zero = MIRBuilder.buildConstant(NarrowTy, 0); 1118 MIRBuilder.buildICmp(Pred, MI.getOperand(0), Or, Zero); 1119 } else { 1120 MachineInstrBuilder CmpH = MIRBuilder.buildICmp(Pred, ResTy, LHSH, RHSH); 1121 MachineInstrBuilder CmpHEQ = 1122 MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_EQ, ResTy, LHSH, RHSH); 1123 MachineInstrBuilder CmpLU = MIRBuilder.buildICmp( 1124 ICmpInst::getUnsignedPredicate(Pred), ResTy, LHSL, RHSL); 1125 MIRBuilder.buildSelect(MI.getOperand(0), CmpHEQ, CmpLU, CmpH); 1126 } 1127 Observer.changedInstr(MI); 1128 MI.eraseFromParent(); 1129 return Legalized; 1130 } 1131 case TargetOpcode::G_SEXT_INREG: { 1132 if (TypeIdx != 0) 1133 return UnableToLegalize; 1134 1135 if (!MI.getOperand(2).isImm()) 1136 return UnableToLegalize; 1137 int64_t SizeInBits = MI.getOperand(2).getImm(); 1138 1139 // So long as the new type has more bits than the bits we're extending we 1140 // don't need to break it apart. 1141 if (NarrowTy.getScalarSizeInBits() >= SizeInBits) { 1142 Observer.changingInstr(MI); 1143 // We don't lose any non-extension bits by truncating the src and 1144 // sign-extending the dst. 1145 MachineOperand &MO1 = MI.getOperand(1); 1146 auto TruncMIB = MIRBuilder.buildTrunc(NarrowTy, MO1); 1147 MO1.setReg(TruncMIB.getReg(0)); 1148 1149 MachineOperand &MO2 = MI.getOperand(0); 1150 Register DstExt = MRI.createGenericVirtualRegister(NarrowTy); 1151 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1152 MIRBuilder.buildSExt(MO2, DstExt); 1153 MO2.setReg(DstExt); 1154 Observer.changedInstr(MI); 1155 return Legalized; 1156 } 1157 1158 // Break it apart. Components below the extension point are unmodified. The 1159 // component containing the extension point becomes a narrower SEXT_INREG. 1160 // Components above it are ashr'd from the component containing the 1161 // extension point. 1162 if (SizeOp0 % NarrowSize != 0) 1163 return UnableToLegalize; 1164 int NumParts = SizeOp0 / NarrowSize; 1165 1166 // List the registers where the destination will be scattered. 1167 SmallVector<Register, 2> DstRegs; 1168 // List the registers where the source will be split. 1169 SmallVector<Register, 2> SrcRegs; 1170 1171 // Create all the temporary registers. 1172 for (int i = 0; i < NumParts; ++i) { 1173 Register SrcReg = MRI.createGenericVirtualRegister(NarrowTy); 1174 1175 SrcRegs.push_back(SrcReg); 1176 } 1177 1178 // Explode the big arguments into smaller chunks. 1179 MIRBuilder.buildUnmerge(SrcRegs, MI.getOperand(1)); 1180 1181 Register AshrCstReg = 1182 MIRBuilder.buildConstant(NarrowTy, NarrowTy.getScalarSizeInBits() - 1) 1183 .getReg(0); 1184 Register FullExtensionReg = 0; 1185 Register PartialExtensionReg = 0; 1186 1187 // Do the operation on each small part. 1188 for (int i = 0; i < NumParts; ++i) { 1189 if ((i + 1) * NarrowTy.getScalarSizeInBits() < SizeInBits) 1190 DstRegs.push_back(SrcRegs[i]); 1191 else if (i * NarrowTy.getScalarSizeInBits() > SizeInBits) { 1192 assert(PartialExtensionReg && 1193 "Expected to visit partial extension before full"); 1194 if (FullExtensionReg) { 1195 DstRegs.push_back(FullExtensionReg); 1196 continue; 1197 } 1198 DstRegs.push_back( 1199 MIRBuilder.buildAShr(NarrowTy, PartialExtensionReg, AshrCstReg) 1200 .getReg(0)); 1201 FullExtensionReg = DstRegs.back(); 1202 } else { 1203 DstRegs.push_back( 1204 MIRBuilder 1205 .buildInstr( 1206 TargetOpcode::G_SEXT_INREG, {NarrowTy}, 1207 {SrcRegs[i], SizeInBits % NarrowTy.getScalarSizeInBits()}) 1208 .getReg(0)); 1209 PartialExtensionReg = DstRegs.back(); 1210 } 1211 } 1212 1213 // Gather the destination registers into the final destination. 1214 Register DstReg = MI.getOperand(0).getReg(); 1215 MIRBuilder.buildMerge(DstReg, DstRegs); 1216 MI.eraseFromParent(); 1217 return Legalized; 1218 } 1219 case TargetOpcode::G_BSWAP: 1220 case TargetOpcode::G_BITREVERSE: { 1221 if (SizeOp0 % NarrowSize != 0) 1222 return UnableToLegalize; 1223 1224 Observer.changingInstr(MI); 1225 SmallVector<Register, 2> SrcRegs, DstRegs; 1226 unsigned NumParts = SizeOp0 / NarrowSize; 1227 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs); 1228 1229 for (unsigned i = 0; i < NumParts; ++i) { 1230 auto DstPart = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy}, 1231 {SrcRegs[NumParts - 1 - i]}); 1232 DstRegs.push_back(DstPart.getReg(0)); 1233 } 1234 1235 MIRBuilder.buildMerge(MI.getOperand(0), DstRegs); 1236 1237 Observer.changedInstr(MI); 1238 MI.eraseFromParent(); 1239 return Legalized; 1240 } 1241 } 1242 } 1243 1244 void LegalizerHelper::widenScalarSrc(MachineInstr &MI, LLT WideTy, 1245 unsigned OpIdx, unsigned ExtOpcode) { 1246 MachineOperand &MO = MI.getOperand(OpIdx); 1247 auto ExtB = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {MO}); 1248 MO.setReg(ExtB.getReg(0)); 1249 } 1250 1251 void LegalizerHelper::narrowScalarSrc(MachineInstr &MI, LLT NarrowTy, 1252 unsigned OpIdx) { 1253 MachineOperand &MO = MI.getOperand(OpIdx); 1254 auto ExtB = MIRBuilder.buildTrunc(NarrowTy, MO); 1255 MO.setReg(ExtB.getReg(0)); 1256 } 1257 1258 void LegalizerHelper::widenScalarDst(MachineInstr &MI, LLT WideTy, 1259 unsigned OpIdx, unsigned TruncOpcode) { 1260 MachineOperand &MO = MI.getOperand(OpIdx); 1261 Register DstExt = MRI.createGenericVirtualRegister(WideTy); 1262 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1263 MIRBuilder.buildInstr(TruncOpcode, {MO}, {DstExt}); 1264 MO.setReg(DstExt); 1265 } 1266 1267 void LegalizerHelper::narrowScalarDst(MachineInstr &MI, LLT NarrowTy, 1268 unsigned OpIdx, unsigned ExtOpcode) { 1269 MachineOperand &MO = MI.getOperand(OpIdx); 1270 Register DstTrunc = MRI.createGenericVirtualRegister(NarrowTy); 1271 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1272 MIRBuilder.buildInstr(ExtOpcode, {MO}, {DstTrunc}); 1273 MO.setReg(DstTrunc); 1274 } 1275 1276 void LegalizerHelper::moreElementsVectorDst(MachineInstr &MI, LLT WideTy, 1277 unsigned OpIdx) { 1278 MachineOperand &MO = MI.getOperand(OpIdx); 1279 Register DstExt = MRI.createGenericVirtualRegister(WideTy); 1280 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1281 MIRBuilder.buildExtract(MO, DstExt, 0); 1282 MO.setReg(DstExt); 1283 } 1284 1285 void LegalizerHelper::moreElementsVectorSrc(MachineInstr &MI, LLT MoreTy, 1286 unsigned OpIdx) { 1287 MachineOperand &MO = MI.getOperand(OpIdx); 1288 1289 LLT OldTy = MRI.getType(MO.getReg()); 1290 unsigned OldElts = OldTy.getNumElements(); 1291 unsigned NewElts = MoreTy.getNumElements(); 1292 1293 unsigned NumParts = NewElts / OldElts; 1294 1295 // Use concat_vectors if the result is a multiple of the number of elements. 1296 if (NumParts * OldElts == NewElts) { 1297 SmallVector<Register, 8> Parts; 1298 Parts.push_back(MO.getReg()); 1299 1300 Register ImpDef = MIRBuilder.buildUndef(OldTy).getReg(0); 1301 for (unsigned I = 1; I != NumParts; ++I) 1302 Parts.push_back(ImpDef); 1303 1304 auto Concat = MIRBuilder.buildConcatVectors(MoreTy, Parts); 1305 MO.setReg(Concat.getReg(0)); 1306 return; 1307 } 1308 1309 Register MoreReg = MRI.createGenericVirtualRegister(MoreTy); 1310 Register ImpDef = MIRBuilder.buildUndef(MoreTy).getReg(0); 1311 MIRBuilder.buildInsert(MoreReg, ImpDef, MO.getReg(), 0); 1312 MO.setReg(MoreReg); 1313 } 1314 1315 LegalizerHelper::LegalizeResult 1316 LegalizerHelper::widenScalarMergeValues(MachineInstr &MI, unsigned TypeIdx, 1317 LLT WideTy) { 1318 if (TypeIdx != 1) 1319 return UnableToLegalize; 1320 1321 Register DstReg = MI.getOperand(0).getReg(); 1322 LLT DstTy = MRI.getType(DstReg); 1323 if (DstTy.isVector()) 1324 return UnableToLegalize; 1325 1326 Register Src1 = MI.getOperand(1).getReg(); 1327 LLT SrcTy = MRI.getType(Src1); 1328 const int DstSize = DstTy.getSizeInBits(); 1329 const int SrcSize = SrcTy.getSizeInBits(); 1330 const int WideSize = WideTy.getSizeInBits(); 1331 const int NumMerge = (DstSize + WideSize - 1) / WideSize; 1332 1333 unsigned NumOps = MI.getNumOperands(); 1334 unsigned NumSrc = MI.getNumOperands() - 1; 1335 unsigned PartSize = DstTy.getSizeInBits() / NumSrc; 1336 1337 if (WideSize >= DstSize) { 1338 // Directly pack the bits in the target type. 1339 Register ResultReg = MIRBuilder.buildZExt(WideTy, Src1).getReg(0); 1340 1341 for (unsigned I = 2; I != NumOps; ++I) { 1342 const unsigned Offset = (I - 1) * PartSize; 1343 1344 Register SrcReg = MI.getOperand(I).getReg(); 1345 assert(MRI.getType(SrcReg) == LLT::scalar(PartSize)); 1346 1347 auto ZextInput = MIRBuilder.buildZExt(WideTy, SrcReg); 1348 1349 Register NextResult = I + 1 == NumOps && WideTy == DstTy ? DstReg : 1350 MRI.createGenericVirtualRegister(WideTy); 1351 1352 auto ShiftAmt = MIRBuilder.buildConstant(WideTy, Offset); 1353 auto Shl = MIRBuilder.buildShl(WideTy, ZextInput, ShiftAmt); 1354 MIRBuilder.buildOr(NextResult, ResultReg, Shl); 1355 ResultReg = NextResult; 1356 } 1357 1358 if (WideSize > DstSize) 1359 MIRBuilder.buildTrunc(DstReg, ResultReg); 1360 else if (DstTy.isPointer()) 1361 MIRBuilder.buildIntToPtr(DstReg, ResultReg); 1362 1363 MI.eraseFromParent(); 1364 return Legalized; 1365 } 1366 1367 // Unmerge the original values to the GCD type, and recombine to the next 1368 // multiple greater than the original type. 1369 // 1370 // %3:_(s12) = G_MERGE_VALUES %0:_(s4), %1:_(s4), %2:_(s4) -> s6 1371 // %4:_(s2), %5:_(s2) = G_UNMERGE_VALUES %0 1372 // %6:_(s2), %7:_(s2) = G_UNMERGE_VALUES %1 1373 // %8:_(s2), %9:_(s2) = G_UNMERGE_VALUES %2 1374 // %10:_(s6) = G_MERGE_VALUES %4, %5, %6 1375 // %11:_(s6) = G_MERGE_VALUES %7, %8, %9 1376 // %12:_(s12) = G_MERGE_VALUES %10, %11 1377 // 1378 // Padding with undef if necessary: 1379 // 1380 // %2:_(s8) = G_MERGE_VALUES %0:_(s4), %1:_(s4) -> s6 1381 // %3:_(s2), %4:_(s2) = G_UNMERGE_VALUES %0 1382 // %5:_(s2), %6:_(s2) = G_UNMERGE_VALUES %1 1383 // %7:_(s2) = G_IMPLICIT_DEF 1384 // %8:_(s6) = G_MERGE_VALUES %3, %4, %5 1385 // %9:_(s6) = G_MERGE_VALUES %6, %7, %7 1386 // %10:_(s12) = G_MERGE_VALUES %8, %9 1387 1388 const int GCD = greatestCommonDivisor(SrcSize, WideSize); 1389 LLT GCDTy = LLT::scalar(GCD); 1390 1391 SmallVector<Register, 8> Parts; 1392 SmallVector<Register, 8> NewMergeRegs; 1393 SmallVector<Register, 8> Unmerges; 1394 LLT WideDstTy = LLT::scalar(NumMerge * WideSize); 1395 1396 // Decompose the original operands if they don't evenly divide. 1397 for (int I = 1, E = MI.getNumOperands(); I != E; ++I) { 1398 Register SrcReg = MI.getOperand(I).getReg(); 1399 if (GCD == SrcSize) { 1400 Unmerges.push_back(SrcReg); 1401 } else { 1402 auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg); 1403 for (int J = 0, JE = Unmerge->getNumOperands() - 1; J != JE; ++J) 1404 Unmerges.push_back(Unmerge.getReg(J)); 1405 } 1406 } 1407 1408 // Pad with undef to the next size that is a multiple of the requested size. 1409 if (static_cast<int>(Unmerges.size()) != NumMerge * WideSize) { 1410 Register UndefReg = MIRBuilder.buildUndef(GCDTy).getReg(0); 1411 for (int I = Unmerges.size(); I != NumMerge * WideSize; ++I) 1412 Unmerges.push_back(UndefReg); 1413 } 1414 1415 const int PartsPerGCD = WideSize / GCD; 1416 1417 // Build merges of each piece. 1418 ArrayRef<Register> Slicer(Unmerges); 1419 for (int I = 0; I != NumMerge; ++I, Slicer = Slicer.drop_front(PartsPerGCD)) { 1420 auto Merge = MIRBuilder.buildMerge(WideTy, Slicer.take_front(PartsPerGCD)); 1421 NewMergeRegs.push_back(Merge.getReg(0)); 1422 } 1423 1424 // A truncate may be necessary if the requested type doesn't evenly divide the 1425 // original result type. 1426 if (DstTy.getSizeInBits() == WideDstTy.getSizeInBits()) { 1427 MIRBuilder.buildMerge(DstReg, NewMergeRegs); 1428 } else { 1429 auto FinalMerge = MIRBuilder.buildMerge(WideDstTy, NewMergeRegs); 1430 MIRBuilder.buildTrunc(DstReg, FinalMerge.getReg(0)); 1431 } 1432 1433 MI.eraseFromParent(); 1434 return Legalized; 1435 } 1436 1437 LegalizerHelper::LegalizeResult 1438 LegalizerHelper::widenScalarUnmergeValues(MachineInstr &MI, unsigned TypeIdx, 1439 LLT WideTy) { 1440 if (TypeIdx != 0) 1441 return UnableToLegalize; 1442 1443 int NumDst = MI.getNumOperands() - 1; 1444 Register SrcReg = MI.getOperand(NumDst).getReg(); 1445 LLT SrcTy = MRI.getType(SrcReg); 1446 if (SrcTy.isVector()) 1447 return UnableToLegalize; 1448 1449 Register Dst0Reg = MI.getOperand(0).getReg(); 1450 LLT DstTy = MRI.getType(Dst0Reg); 1451 if (!DstTy.isScalar()) 1452 return UnableToLegalize; 1453 1454 if (WideTy.getSizeInBits() == SrcTy.getSizeInBits()) { 1455 if (SrcTy.isPointer()) { 1456 const DataLayout &DL = MIRBuilder.getDataLayout(); 1457 if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace())) { 1458 LLVM_DEBUG(dbgs() << "Not casting non-integral address space integer\n"); 1459 return UnableToLegalize; 1460 } 1461 1462 SrcTy = LLT::scalar(SrcTy.getSizeInBits()); 1463 SrcReg = MIRBuilder.buildPtrToInt(SrcTy, SrcReg).getReg(0); 1464 } 1465 1466 // Theres no unmerge type to target. Directly extract the bits from the 1467 // source type 1468 unsigned DstSize = DstTy.getSizeInBits(); 1469 1470 MIRBuilder.buildTrunc(Dst0Reg, SrcReg); 1471 for (int I = 1; I != NumDst; ++I) { 1472 auto ShiftAmt = MIRBuilder.buildConstant(SrcTy, DstSize * I); 1473 auto Shr = MIRBuilder.buildLShr(SrcTy, SrcReg, ShiftAmt); 1474 MIRBuilder.buildTrunc(MI.getOperand(I), Shr); 1475 } 1476 1477 MI.eraseFromParent(); 1478 return Legalized; 1479 } 1480 1481 // TODO 1482 if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) 1483 return UnableToLegalize; 1484 1485 // Extend the source to a wider type. 1486 LLT LCMTy = getLCMType(SrcTy, WideTy); 1487 1488 Register WideSrc = SrcReg; 1489 if (LCMTy.getSizeInBits() != SrcTy.getSizeInBits()) { 1490 // TODO: If this is an integral address space, cast to integer and anyext. 1491 if (SrcTy.isPointer()) { 1492 LLVM_DEBUG(dbgs() << "Widening pointer source types not implemented\n"); 1493 return UnableToLegalize; 1494 } 1495 1496 WideSrc = MIRBuilder.buildAnyExt(LCMTy, WideSrc).getReg(0); 1497 } 1498 1499 auto Unmerge = MIRBuilder.buildUnmerge(WideTy, WideSrc); 1500 1501 // Create a sequence of unmerges to the original results. since we may have 1502 // widened the source, we will need to pad the results with dead defs to cover 1503 // the source register. 1504 // e.g. widen s16 to s32: 1505 // %1:_(s16), %2:_(s16), %3:_(s16) = G_UNMERGE_VALUES %0:_(s48) 1506 // 1507 // => 1508 // %4:_(s64) = G_ANYEXT %0:_(s48) 1509 // %5:_(s32), %6:_(s32) = G_UNMERGE_VALUES %4 ; Requested unmerge 1510 // %1:_(s16), %2:_(s16) = G_UNMERGE_VALUES %5 ; unpack to original regs 1511 // %3:_(s16), dead %7 = G_UNMERGE_VALUES %6 ; original reg + extra dead def 1512 1513 const int NumUnmerge = Unmerge->getNumOperands() - 1; 1514 const int PartsPerUnmerge = WideTy.getSizeInBits() / DstTy.getSizeInBits(); 1515 1516 for (int I = 0; I != NumUnmerge; ++I) { 1517 auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES); 1518 1519 for (int J = 0; J != PartsPerUnmerge; ++J) { 1520 int Idx = I * PartsPerUnmerge + J; 1521 if (Idx < NumDst) 1522 MIB.addDef(MI.getOperand(Idx).getReg()); 1523 else { 1524 // Create dead def for excess components. 1525 MIB.addDef(MRI.createGenericVirtualRegister(DstTy)); 1526 } 1527 } 1528 1529 MIB.addUse(Unmerge.getReg(I)); 1530 } 1531 1532 MI.eraseFromParent(); 1533 return Legalized; 1534 } 1535 1536 LegalizerHelper::LegalizeResult 1537 LegalizerHelper::widenScalarExtract(MachineInstr &MI, unsigned TypeIdx, 1538 LLT WideTy) { 1539 Register DstReg = MI.getOperand(0).getReg(); 1540 Register SrcReg = MI.getOperand(1).getReg(); 1541 LLT SrcTy = MRI.getType(SrcReg); 1542 1543 LLT DstTy = MRI.getType(DstReg); 1544 unsigned Offset = MI.getOperand(2).getImm(); 1545 1546 if (TypeIdx == 0) { 1547 if (SrcTy.isVector() || DstTy.isVector()) 1548 return UnableToLegalize; 1549 1550 SrcOp Src(SrcReg); 1551 if (SrcTy.isPointer()) { 1552 // Extracts from pointers can be handled only if they are really just 1553 // simple integers. 1554 const DataLayout &DL = MIRBuilder.getDataLayout(); 1555 if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace())) 1556 return UnableToLegalize; 1557 1558 LLT SrcAsIntTy = LLT::scalar(SrcTy.getSizeInBits()); 1559 Src = MIRBuilder.buildPtrToInt(SrcAsIntTy, Src); 1560 SrcTy = SrcAsIntTy; 1561 } 1562 1563 if (DstTy.isPointer()) 1564 return UnableToLegalize; 1565 1566 if (Offset == 0) { 1567 // Avoid a shift in the degenerate case. 1568 MIRBuilder.buildTrunc(DstReg, 1569 MIRBuilder.buildAnyExtOrTrunc(WideTy, Src)); 1570 MI.eraseFromParent(); 1571 return Legalized; 1572 } 1573 1574 // Do a shift in the source type. 1575 LLT ShiftTy = SrcTy; 1576 if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) { 1577 Src = MIRBuilder.buildAnyExt(WideTy, Src); 1578 ShiftTy = WideTy; 1579 } else if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) 1580 return UnableToLegalize; 1581 1582 auto LShr = MIRBuilder.buildLShr( 1583 ShiftTy, Src, MIRBuilder.buildConstant(ShiftTy, Offset)); 1584 MIRBuilder.buildTrunc(DstReg, LShr); 1585 MI.eraseFromParent(); 1586 return Legalized; 1587 } 1588 1589 if (SrcTy.isScalar()) { 1590 Observer.changingInstr(MI); 1591 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1592 Observer.changedInstr(MI); 1593 return Legalized; 1594 } 1595 1596 if (!SrcTy.isVector()) 1597 return UnableToLegalize; 1598 1599 if (DstTy != SrcTy.getElementType()) 1600 return UnableToLegalize; 1601 1602 if (Offset % SrcTy.getScalarSizeInBits() != 0) 1603 return UnableToLegalize; 1604 1605 Observer.changingInstr(MI); 1606 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1607 1608 MI.getOperand(2).setImm((WideTy.getSizeInBits() / SrcTy.getSizeInBits()) * 1609 Offset); 1610 widenScalarDst(MI, WideTy.getScalarType(), 0); 1611 Observer.changedInstr(MI); 1612 return Legalized; 1613 } 1614 1615 LegalizerHelper::LegalizeResult 1616 LegalizerHelper::widenScalarInsert(MachineInstr &MI, unsigned TypeIdx, 1617 LLT WideTy) { 1618 if (TypeIdx != 0) 1619 return UnableToLegalize; 1620 Observer.changingInstr(MI); 1621 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1622 widenScalarDst(MI, WideTy); 1623 Observer.changedInstr(MI); 1624 return Legalized; 1625 } 1626 1627 LegalizerHelper::LegalizeResult 1628 LegalizerHelper::widenScalar(MachineInstr &MI, unsigned TypeIdx, LLT WideTy) { 1629 MIRBuilder.setInstr(MI); 1630 1631 switch (MI.getOpcode()) { 1632 default: 1633 return UnableToLegalize; 1634 case TargetOpcode::G_EXTRACT: 1635 return widenScalarExtract(MI, TypeIdx, WideTy); 1636 case TargetOpcode::G_INSERT: 1637 return widenScalarInsert(MI, TypeIdx, WideTy); 1638 case TargetOpcode::G_MERGE_VALUES: 1639 return widenScalarMergeValues(MI, TypeIdx, WideTy); 1640 case TargetOpcode::G_UNMERGE_VALUES: 1641 return widenScalarUnmergeValues(MI, TypeIdx, WideTy); 1642 case TargetOpcode::G_UADDO: 1643 case TargetOpcode::G_USUBO: { 1644 if (TypeIdx == 1) 1645 return UnableToLegalize; // TODO 1646 auto LHSZext = MIRBuilder.buildZExt(WideTy, MI.getOperand(2)); 1647 auto RHSZext = MIRBuilder.buildZExt(WideTy, MI.getOperand(3)); 1648 unsigned Opcode = MI.getOpcode() == TargetOpcode::G_UADDO 1649 ? TargetOpcode::G_ADD 1650 : TargetOpcode::G_SUB; 1651 // Do the arithmetic in the larger type. 1652 auto NewOp = MIRBuilder.buildInstr(Opcode, {WideTy}, {LHSZext, RHSZext}); 1653 LLT OrigTy = MRI.getType(MI.getOperand(0).getReg()); 1654 APInt Mask = 1655 APInt::getLowBitsSet(WideTy.getSizeInBits(), OrigTy.getSizeInBits()); 1656 auto AndOp = MIRBuilder.buildAnd( 1657 WideTy, NewOp, MIRBuilder.buildConstant(WideTy, Mask)); 1658 // There is no overflow if the AndOp is the same as NewOp. 1659 MIRBuilder.buildICmp(CmpInst::ICMP_NE, MI.getOperand(1), NewOp, AndOp); 1660 // Now trunc the NewOp to the original result. 1661 MIRBuilder.buildTrunc(MI.getOperand(0), NewOp); 1662 MI.eraseFromParent(); 1663 return Legalized; 1664 } 1665 case TargetOpcode::G_CTTZ: 1666 case TargetOpcode::G_CTTZ_ZERO_UNDEF: 1667 case TargetOpcode::G_CTLZ: 1668 case TargetOpcode::G_CTLZ_ZERO_UNDEF: 1669 case TargetOpcode::G_CTPOP: { 1670 if (TypeIdx == 0) { 1671 Observer.changingInstr(MI); 1672 widenScalarDst(MI, WideTy, 0); 1673 Observer.changedInstr(MI); 1674 return Legalized; 1675 } 1676 1677 Register SrcReg = MI.getOperand(1).getReg(); 1678 1679 // First ZEXT the input. 1680 auto MIBSrc = MIRBuilder.buildZExt(WideTy, SrcReg); 1681 LLT CurTy = MRI.getType(SrcReg); 1682 if (MI.getOpcode() == TargetOpcode::G_CTTZ) { 1683 // The count is the same in the larger type except if the original 1684 // value was zero. This can be handled by setting the bit just off 1685 // the top of the original type. 1686 auto TopBit = 1687 APInt::getOneBitSet(WideTy.getSizeInBits(), CurTy.getSizeInBits()); 1688 MIBSrc = MIRBuilder.buildOr( 1689 WideTy, MIBSrc, MIRBuilder.buildConstant(WideTy, TopBit)); 1690 } 1691 1692 // Perform the operation at the larger size. 1693 auto MIBNewOp = MIRBuilder.buildInstr(MI.getOpcode(), {WideTy}, {MIBSrc}); 1694 // This is already the correct result for CTPOP and CTTZs 1695 if (MI.getOpcode() == TargetOpcode::G_CTLZ || 1696 MI.getOpcode() == TargetOpcode::G_CTLZ_ZERO_UNDEF) { 1697 // The correct result is NewOp - (Difference in widety and current ty). 1698 unsigned SizeDiff = WideTy.getSizeInBits() - CurTy.getSizeInBits(); 1699 MIBNewOp = MIRBuilder.buildSub( 1700 WideTy, MIBNewOp, MIRBuilder.buildConstant(WideTy, SizeDiff)); 1701 } 1702 1703 MIRBuilder.buildZExtOrTrunc(MI.getOperand(0), MIBNewOp); 1704 MI.eraseFromParent(); 1705 return Legalized; 1706 } 1707 case TargetOpcode::G_BSWAP: { 1708 Observer.changingInstr(MI); 1709 Register DstReg = MI.getOperand(0).getReg(); 1710 1711 Register ShrReg = MRI.createGenericVirtualRegister(WideTy); 1712 Register DstExt = MRI.createGenericVirtualRegister(WideTy); 1713 Register ShiftAmtReg = MRI.createGenericVirtualRegister(WideTy); 1714 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1715 1716 MI.getOperand(0).setReg(DstExt); 1717 1718 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1719 1720 LLT Ty = MRI.getType(DstReg); 1721 unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits(); 1722 MIRBuilder.buildConstant(ShiftAmtReg, DiffBits); 1723 MIRBuilder.buildLShr(ShrReg, DstExt, ShiftAmtReg); 1724 1725 MIRBuilder.buildTrunc(DstReg, ShrReg); 1726 Observer.changedInstr(MI); 1727 return Legalized; 1728 } 1729 case TargetOpcode::G_BITREVERSE: { 1730 Observer.changingInstr(MI); 1731 1732 Register DstReg = MI.getOperand(0).getReg(); 1733 LLT Ty = MRI.getType(DstReg); 1734 unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits(); 1735 1736 Register DstExt = MRI.createGenericVirtualRegister(WideTy); 1737 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1738 MI.getOperand(0).setReg(DstExt); 1739 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 1740 1741 auto ShiftAmt = MIRBuilder.buildConstant(WideTy, DiffBits); 1742 auto Shift = MIRBuilder.buildLShr(WideTy, DstExt, ShiftAmt); 1743 MIRBuilder.buildTrunc(DstReg, Shift); 1744 Observer.changedInstr(MI); 1745 return Legalized; 1746 } 1747 case TargetOpcode::G_ADD: 1748 case TargetOpcode::G_AND: 1749 case TargetOpcode::G_MUL: 1750 case TargetOpcode::G_OR: 1751 case TargetOpcode::G_XOR: 1752 case TargetOpcode::G_SUB: 1753 // Perform operation at larger width (any extension is fines here, high bits 1754 // don't affect the result) and then truncate the result back to the 1755 // original type. 1756 Observer.changingInstr(MI); 1757 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1758 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT); 1759 widenScalarDst(MI, WideTy); 1760 Observer.changedInstr(MI); 1761 return Legalized; 1762 1763 case TargetOpcode::G_SHL: 1764 Observer.changingInstr(MI); 1765 1766 if (TypeIdx == 0) { 1767 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 1768 widenScalarDst(MI, WideTy); 1769 } else { 1770 assert(TypeIdx == 1); 1771 // The "number of bits to shift" operand must preserve its value as an 1772 // unsigned integer: 1773 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT); 1774 } 1775 1776 Observer.changedInstr(MI); 1777 return Legalized; 1778 1779 case TargetOpcode::G_SDIV: 1780 case TargetOpcode::G_SREM: 1781 case TargetOpcode::G_SMIN: 1782 case TargetOpcode::G_SMAX: 1783 Observer.changingInstr(MI); 1784 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT); 1785 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT); 1786 widenScalarDst(MI, WideTy); 1787 Observer.changedInstr(MI); 1788 return Legalized; 1789 1790 case TargetOpcode::G_ASHR: 1791 case TargetOpcode::G_LSHR: 1792 Observer.changingInstr(MI); 1793 1794 if (TypeIdx == 0) { 1795 unsigned CvtOp = MI.getOpcode() == TargetOpcode::G_ASHR ? 1796 TargetOpcode::G_SEXT : TargetOpcode::G_ZEXT; 1797 1798 widenScalarSrc(MI, WideTy, 1, CvtOp); 1799 widenScalarDst(MI, WideTy); 1800 } else { 1801 assert(TypeIdx == 1); 1802 // The "number of bits to shift" operand must preserve its value as an 1803 // unsigned integer: 1804 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT); 1805 } 1806 1807 Observer.changedInstr(MI); 1808 return Legalized; 1809 case TargetOpcode::G_UDIV: 1810 case TargetOpcode::G_UREM: 1811 case TargetOpcode::G_UMIN: 1812 case TargetOpcode::G_UMAX: 1813 Observer.changingInstr(MI); 1814 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT); 1815 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT); 1816 widenScalarDst(MI, WideTy); 1817 Observer.changedInstr(MI); 1818 return Legalized; 1819 1820 case TargetOpcode::G_SELECT: 1821 Observer.changingInstr(MI); 1822 if (TypeIdx == 0) { 1823 // Perform operation at larger width (any extension is fine here, high 1824 // bits don't affect the result) and then truncate the result back to the 1825 // original type. 1826 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT); 1827 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ANYEXT); 1828 widenScalarDst(MI, WideTy); 1829 } else { 1830 bool IsVec = MRI.getType(MI.getOperand(1).getReg()).isVector(); 1831 // Explicit extension is required here since high bits affect the result. 1832 widenScalarSrc(MI, WideTy, 1, MIRBuilder.getBoolExtOp(IsVec, false)); 1833 } 1834 Observer.changedInstr(MI); 1835 return Legalized; 1836 1837 case TargetOpcode::G_FPTOSI: 1838 case TargetOpcode::G_FPTOUI: 1839 Observer.changingInstr(MI); 1840 1841 if (TypeIdx == 0) 1842 widenScalarDst(MI, WideTy); 1843 else 1844 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_FPEXT); 1845 1846 Observer.changedInstr(MI); 1847 return Legalized; 1848 case TargetOpcode::G_SITOFP: 1849 if (TypeIdx != 1) 1850 return UnableToLegalize; 1851 Observer.changingInstr(MI); 1852 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT); 1853 Observer.changedInstr(MI); 1854 return Legalized; 1855 1856 case TargetOpcode::G_UITOFP: 1857 if (TypeIdx != 1) 1858 return UnableToLegalize; 1859 Observer.changingInstr(MI); 1860 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT); 1861 Observer.changedInstr(MI); 1862 return Legalized; 1863 1864 case TargetOpcode::G_LOAD: 1865 case TargetOpcode::G_SEXTLOAD: 1866 case TargetOpcode::G_ZEXTLOAD: 1867 Observer.changingInstr(MI); 1868 widenScalarDst(MI, WideTy); 1869 Observer.changedInstr(MI); 1870 return Legalized; 1871 1872 case TargetOpcode::G_STORE: { 1873 if (TypeIdx != 0) 1874 return UnableToLegalize; 1875 1876 LLT Ty = MRI.getType(MI.getOperand(0).getReg()); 1877 if (!isPowerOf2_32(Ty.getSizeInBits())) 1878 return UnableToLegalize; 1879 1880 Observer.changingInstr(MI); 1881 1882 unsigned ExtType = Ty.getScalarSizeInBits() == 1 ? 1883 TargetOpcode::G_ZEXT : TargetOpcode::G_ANYEXT; 1884 widenScalarSrc(MI, WideTy, 0, ExtType); 1885 1886 Observer.changedInstr(MI); 1887 return Legalized; 1888 } 1889 case TargetOpcode::G_CONSTANT: { 1890 MachineOperand &SrcMO = MI.getOperand(1); 1891 LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext(); 1892 unsigned ExtOpc = LI.getExtOpcodeForWideningConstant( 1893 MRI.getType(MI.getOperand(0).getReg())); 1894 assert((ExtOpc == TargetOpcode::G_ZEXT || ExtOpc == TargetOpcode::G_SEXT || 1895 ExtOpc == TargetOpcode::G_ANYEXT) && 1896 "Illegal Extend"); 1897 const APInt &SrcVal = SrcMO.getCImm()->getValue(); 1898 const APInt &Val = (ExtOpc == TargetOpcode::G_SEXT) 1899 ? SrcVal.sext(WideTy.getSizeInBits()) 1900 : SrcVal.zext(WideTy.getSizeInBits()); 1901 Observer.changingInstr(MI); 1902 SrcMO.setCImm(ConstantInt::get(Ctx, Val)); 1903 1904 widenScalarDst(MI, WideTy); 1905 Observer.changedInstr(MI); 1906 return Legalized; 1907 } 1908 case TargetOpcode::G_FCONSTANT: { 1909 MachineOperand &SrcMO = MI.getOperand(1); 1910 LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext(); 1911 APFloat Val = SrcMO.getFPImm()->getValueAPF(); 1912 bool LosesInfo; 1913 switch (WideTy.getSizeInBits()) { 1914 case 32: 1915 Val.convert(APFloat::IEEEsingle(), APFloat::rmNearestTiesToEven, 1916 &LosesInfo); 1917 break; 1918 case 64: 1919 Val.convert(APFloat::IEEEdouble(), APFloat::rmNearestTiesToEven, 1920 &LosesInfo); 1921 break; 1922 default: 1923 return UnableToLegalize; 1924 } 1925 1926 assert(!LosesInfo && "extend should always be lossless"); 1927 1928 Observer.changingInstr(MI); 1929 SrcMO.setFPImm(ConstantFP::get(Ctx, Val)); 1930 1931 widenScalarDst(MI, WideTy, 0, TargetOpcode::G_FPTRUNC); 1932 Observer.changedInstr(MI); 1933 return Legalized; 1934 } 1935 case TargetOpcode::G_IMPLICIT_DEF: { 1936 Observer.changingInstr(MI); 1937 widenScalarDst(MI, WideTy); 1938 Observer.changedInstr(MI); 1939 return Legalized; 1940 } 1941 case TargetOpcode::G_BRCOND: 1942 Observer.changingInstr(MI); 1943 widenScalarSrc(MI, WideTy, 0, MIRBuilder.getBoolExtOp(false, false)); 1944 Observer.changedInstr(MI); 1945 return Legalized; 1946 1947 case TargetOpcode::G_FCMP: 1948 Observer.changingInstr(MI); 1949 if (TypeIdx == 0) 1950 widenScalarDst(MI, WideTy); 1951 else { 1952 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_FPEXT); 1953 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_FPEXT); 1954 } 1955 Observer.changedInstr(MI); 1956 return Legalized; 1957 1958 case TargetOpcode::G_ICMP: 1959 Observer.changingInstr(MI); 1960 if (TypeIdx == 0) 1961 widenScalarDst(MI, WideTy); 1962 else { 1963 unsigned ExtOpcode = CmpInst::isSigned(static_cast<CmpInst::Predicate>( 1964 MI.getOperand(1).getPredicate())) 1965 ? TargetOpcode::G_SEXT 1966 : TargetOpcode::G_ZEXT; 1967 widenScalarSrc(MI, WideTy, 2, ExtOpcode); 1968 widenScalarSrc(MI, WideTy, 3, ExtOpcode); 1969 } 1970 Observer.changedInstr(MI); 1971 return Legalized; 1972 1973 case TargetOpcode::G_PTR_ADD: 1974 assert(TypeIdx == 1 && "unable to legalize pointer of G_PTR_ADD"); 1975 Observer.changingInstr(MI); 1976 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT); 1977 Observer.changedInstr(MI); 1978 return Legalized; 1979 1980 case TargetOpcode::G_PHI: { 1981 assert(TypeIdx == 0 && "Expecting only Idx 0"); 1982 1983 Observer.changingInstr(MI); 1984 for (unsigned I = 1; I < MI.getNumOperands(); I += 2) { 1985 MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB(); 1986 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator()); 1987 widenScalarSrc(MI, WideTy, I, TargetOpcode::G_ANYEXT); 1988 } 1989 1990 MachineBasicBlock &MBB = *MI.getParent(); 1991 MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI()); 1992 widenScalarDst(MI, WideTy); 1993 Observer.changedInstr(MI); 1994 return Legalized; 1995 } 1996 case TargetOpcode::G_EXTRACT_VECTOR_ELT: { 1997 if (TypeIdx == 0) { 1998 Register VecReg = MI.getOperand(1).getReg(); 1999 LLT VecTy = MRI.getType(VecReg); 2000 Observer.changingInstr(MI); 2001 2002 widenScalarSrc(MI, LLT::vector(VecTy.getNumElements(), 2003 WideTy.getSizeInBits()), 2004 1, TargetOpcode::G_SEXT); 2005 2006 widenScalarDst(MI, WideTy, 0); 2007 Observer.changedInstr(MI); 2008 return Legalized; 2009 } 2010 2011 if (TypeIdx != 2) 2012 return UnableToLegalize; 2013 Observer.changingInstr(MI); 2014 // TODO: Probably should be zext 2015 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT); 2016 Observer.changedInstr(MI); 2017 return Legalized; 2018 } 2019 case TargetOpcode::G_INSERT_VECTOR_ELT: { 2020 if (TypeIdx == 1) { 2021 Observer.changingInstr(MI); 2022 2023 Register VecReg = MI.getOperand(1).getReg(); 2024 LLT VecTy = MRI.getType(VecReg); 2025 LLT WideVecTy = LLT::vector(VecTy.getNumElements(), WideTy); 2026 2027 widenScalarSrc(MI, WideVecTy, 1, TargetOpcode::G_ANYEXT); 2028 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT); 2029 widenScalarDst(MI, WideVecTy, 0); 2030 Observer.changedInstr(MI); 2031 return Legalized; 2032 } 2033 2034 if (TypeIdx == 2) { 2035 Observer.changingInstr(MI); 2036 // TODO: Probably should be zext 2037 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_SEXT); 2038 Observer.changedInstr(MI); 2039 } 2040 2041 return Legalized; 2042 } 2043 case TargetOpcode::G_FADD: 2044 case TargetOpcode::G_FMUL: 2045 case TargetOpcode::G_FSUB: 2046 case TargetOpcode::G_FMA: 2047 case TargetOpcode::G_FMAD: 2048 case TargetOpcode::G_FNEG: 2049 case TargetOpcode::G_FABS: 2050 case TargetOpcode::G_FCANONICALIZE: 2051 case TargetOpcode::G_FMINNUM: 2052 case TargetOpcode::G_FMAXNUM: 2053 case TargetOpcode::G_FMINNUM_IEEE: 2054 case TargetOpcode::G_FMAXNUM_IEEE: 2055 case TargetOpcode::G_FMINIMUM: 2056 case TargetOpcode::G_FMAXIMUM: 2057 case TargetOpcode::G_FDIV: 2058 case TargetOpcode::G_FREM: 2059 case TargetOpcode::G_FCEIL: 2060 case TargetOpcode::G_FFLOOR: 2061 case TargetOpcode::G_FCOS: 2062 case TargetOpcode::G_FSIN: 2063 case TargetOpcode::G_FLOG10: 2064 case TargetOpcode::G_FLOG: 2065 case TargetOpcode::G_FLOG2: 2066 case TargetOpcode::G_FRINT: 2067 case TargetOpcode::G_FNEARBYINT: 2068 case TargetOpcode::G_FSQRT: 2069 case TargetOpcode::G_FEXP: 2070 case TargetOpcode::G_FEXP2: 2071 case TargetOpcode::G_FPOW: 2072 case TargetOpcode::G_INTRINSIC_TRUNC: 2073 case TargetOpcode::G_INTRINSIC_ROUND: 2074 assert(TypeIdx == 0); 2075 Observer.changingInstr(MI); 2076 2077 for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) 2078 widenScalarSrc(MI, WideTy, I, TargetOpcode::G_FPEXT); 2079 2080 widenScalarDst(MI, WideTy, 0, TargetOpcode::G_FPTRUNC); 2081 Observer.changedInstr(MI); 2082 return Legalized; 2083 case TargetOpcode::G_INTTOPTR: 2084 if (TypeIdx != 1) 2085 return UnableToLegalize; 2086 2087 Observer.changingInstr(MI); 2088 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT); 2089 Observer.changedInstr(MI); 2090 return Legalized; 2091 case TargetOpcode::G_PTRTOINT: 2092 if (TypeIdx != 0) 2093 return UnableToLegalize; 2094 2095 Observer.changingInstr(MI); 2096 widenScalarDst(MI, WideTy, 0); 2097 Observer.changedInstr(MI); 2098 return Legalized; 2099 case TargetOpcode::G_BUILD_VECTOR: { 2100 Observer.changingInstr(MI); 2101 2102 const LLT WideEltTy = TypeIdx == 1 ? WideTy : WideTy.getElementType(); 2103 for (int I = 1, E = MI.getNumOperands(); I != E; ++I) 2104 widenScalarSrc(MI, WideEltTy, I, TargetOpcode::G_ANYEXT); 2105 2106 // Avoid changing the result vector type if the source element type was 2107 // requested. 2108 if (TypeIdx == 1) { 2109 auto &TII = *MI.getMF()->getSubtarget().getInstrInfo(); 2110 MI.setDesc(TII.get(TargetOpcode::G_BUILD_VECTOR_TRUNC)); 2111 } else { 2112 widenScalarDst(MI, WideTy, 0); 2113 } 2114 2115 Observer.changedInstr(MI); 2116 return Legalized; 2117 } 2118 case TargetOpcode::G_SEXT_INREG: 2119 if (TypeIdx != 0) 2120 return UnableToLegalize; 2121 2122 Observer.changingInstr(MI); 2123 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT); 2124 widenScalarDst(MI, WideTy, 0, TargetOpcode::G_TRUNC); 2125 Observer.changedInstr(MI); 2126 return Legalized; 2127 } 2128 } 2129 2130 static void getUnmergePieces(SmallVectorImpl<Register> &Pieces, 2131 MachineIRBuilder &B, Register Src, LLT Ty) { 2132 auto Unmerge = B.buildUnmerge(Ty, Src); 2133 for (int I = 0, E = Unmerge->getNumOperands() - 1; I != E; ++I) 2134 Pieces.push_back(Unmerge.getReg(I)); 2135 } 2136 2137 LegalizerHelper::LegalizeResult 2138 LegalizerHelper::lowerBitcast(MachineInstr &MI) { 2139 Register Dst = MI.getOperand(0).getReg(); 2140 Register Src = MI.getOperand(1).getReg(); 2141 LLT DstTy = MRI.getType(Dst); 2142 LLT SrcTy = MRI.getType(Src); 2143 2144 if (SrcTy.isVector() && !DstTy.isVector()) { 2145 SmallVector<Register, 8> SrcRegs; 2146 getUnmergePieces(SrcRegs, MIRBuilder, Src, SrcTy.getElementType()); 2147 MIRBuilder.buildMerge(Dst, SrcRegs); 2148 MI.eraseFromParent(); 2149 return Legalized; 2150 } 2151 2152 if (DstTy.isVector() && !SrcTy.isVector()) { 2153 SmallVector<Register, 8> SrcRegs; 2154 getUnmergePieces(SrcRegs, MIRBuilder, Src, DstTy.getElementType()); 2155 MIRBuilder.buildMerge(Dst, SrcRegs); 2156 MI.eraseFromParent(); 2157 return Legalized; 2158 } 2159 2160 return UnableToLegalize; 2161 } 2162 2163 LegalizerHelper::LegalizeResult 2164 LegalizerHelper::lower(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 2165 using namespace TargetOpcode; 2166 MIRBuilder.setInstr(MI); 2167 2168 switch(MI.getOpcode()) { 2169 default: 2170 return UnableToLegalize; 2171 case TargetOpcode::G_BITCAST: 2172 return lowerBitcast(MI); 2173 case TargetOpcode::G_SREM: 2174 case TargetOpcode::G_UREM: { 2175 Register QuotReg = MRI.createGenericVirtualRegister(Ty); 2176 MIRBuilder.buildInstr(MI.getOpcode() == G_SREM ? G_SDIV : G_UDIV, {QuotReg}, 2177 {MI.getOperand(1), MI.getOperand(2)}); 2178 2179 Register ProdReg = MRI.createGenericVirtualRegister(Ty); 2180 MIRBuilder.buildMul(ProdReg, QuotReg, MI.getOperand(2)); 2181 MIRBuilder.buildSub(MI.getOperand(0), MI.getOperand(1), ProdReg); 2182 MI.eraseFromParent(); 2183 return Legalized; 2184 } 2185 case TargetOpcode::G_SADDO: 2186 case TargetOpcode::G_SSUBO: 2187 return lowerSADDO_SSUBO(MI); 2188 case TargetOpcode::G_SMULO: 2189 case TargetOpcode::G_UMULO: { 2190 // Generate G_UMULH/G_SMULH to check for overflow and a normal G_MUL for the 2191 // result. 2192 Register Res = MI.getOperand(0).getReg(); 2193 Register Overflow = MI.getOperand(1).getReg(); 2194 Register LHS = MI.getOperand(2).getReg(); 2195 Register RHS = MI.getOperand(3).getReg(); 2196 2197 unsigned Opcode = MI.getOpcode() == TargetOpcode::G_SMULO 2198 ? TargetOpcode::G_SMULH 2199 : TargetOpcode::G_UMULH; 2200 2201 Observer.changingInstr(MI); 2202 const auto &TII = MIRBuilder.getTII(); 2203 MI.setDesc(TII.get(TargetOpcode::G_MUL)); 2204 MI.RemoveOperand(1); 2205 Observer.changedInstr(MI); 2206 2207 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt()); 2208 2209 auto HiPart = MIRBuilder.buildInstr(Opcode, {Ty}, {LHS, RHS}); 2210 2211 Register Zero = MRI.createGenericVirtualRegister(Ty); 2212 MIRBuilder.buildConstant(Zero, 0); 2213 2214 // For *signed* multiply, overflow is detected by checking: 2215 // (hi != (lo >> bitwidth-1)) 2216 if (Opcode == TargetOpcode::G_SMULH) { 2217 auto ShiftAmt = MIRBuilder.buildConstant(Ty, Ty.getSizeInBits() - 1); 2218 auto Shifted = MIRBuilder.buildAShr(Ty, Res, ShiftAmt); 2219 MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Shifted); 2220 } else { 2221 MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Zero); 2222 } 2223 return Legalized; 2224 } 2225 case TargetOpcode::G_FNEG: { 2226 // TODO: Handle vector types once we are able to 2227 // represent them. 2228 if (Ty.isVector()) 2229 return UnableToLegalize; 2230 Register Res = MI.getOperand(0).getReg(); 2231 Type *ZeroTy; 2232 LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext(); 2233 switch (Ty.getSizeInBits()) { 2234 case 16: 2235 ZeroTy = Type::getHalfTy(Ctx); 2236 break; 2237 case 32: 2238 ZeroTy = Type::getFloatTy(Ctx); 2239 break; 2240 case 64: 2241 ZeroTy = Type::getDoubleTy(Ctx); 2242 break; 2243 case 128: 2244 ZeroTy = Type::getFP128Ty(Ctx); 2245 break; 2246 default: 2247 llvm_unreachable("unexpected floating-point type"); 2248 } 2249 ConstantFP &ZeroForNegation = 2250 *cast<ConstantFP>(ConstantFP::getZeroValueForNegation(ZeroTy)); 2251 auto Zero = MIRBuilder.buildFConstant(Ty, ZeroForNegation); 2252 Register SubByReg = MI.getOperand(1).getReg(); 2253 Register ZeroReg = Zero.getReg(0); 2254 MIRBuilder.buildFSub(Res, ZeroReg, SubByReg, MI.getFlags()); 2255 MI.eraseFromParent(); 2256 return Legalized; 2257 } 2258 case TargetOpcode::G_FSUB: { 2259 // Lower (G_FSUB LHS, RHS) to (G_FADD LHS, (G_FNEG RHS)). 2260 // First, check if G_FNEG is marked as Lower. If so, we may 2261 // end up with an infinite loop as G_FSUB is used to legalize G_FNEG. 2262 if (LI.getAction({G_FNEG, {Ty}}).Action == Lower) 2263 return UnableToLegalize; 2264 Register Res = MI.getOperand(0).getReg(); 2265 Register LHS = MI.getOperand(1).getReg(); 2266 Register RHS = MI.getOperand(2).getReg(); 2267 Register Neg = MRI.createGenericVirtualRegister(Ty); 2268 MIRBuilder.buildFNeg(Neg, RHS); 2269 MIRBuilder.buildFAdd(Res, LHS, Neg, MI.getFlags()); 2270 MI.eraseFromParent(); 2271 return Legalized; 2272 } 2273 case TargetOpcode::G_FMAD: 2274 return lowerFMad(MI); 2275 case TargetOpcode::G_INTRINSIC_ROUND: 2276 return lowerIntrinsicRound(MI); 2277 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: { 2278 Register OldValRes = MI.getOperand(0).getReg(); 2279 Register SuccessRes = MI.getOperand(1).getReg(); 2280 Register Addr = MI.getOperand(2).getReg(); 2281 Register CmpVal = MI.getOperand(3).getReg(); 2282 Register NewVal = MI.getOperand(4).getReg(); 2283 MIRBuilder.buildAtomicCmpXchg(OldValRes, Addr, CmpVal, NewVal, 2284 **MI.memoperands_begin()); 2285 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, SuccessRes, OldValRes, CmpVal); 2286 MI.eraseFromParent(); 2287 return Legalized; 2288 } 2289 case TargetOpcode::G_LOAD: 2290 case TargetOpcode::G_SEXTLOAD: 2291 case TargetOpcode::G_ZEXTLOAD: { 2292 // Lower to a memory-width G_LOAD and a G_SEXT/G_ZEXT/G_ANYEXT 2293 Register DstReg = MI.getOperand(0).getReg(); 2294 Register PtrReg = MI.getOperand(1).getReg(); 2295 LLT DstTy = MRI.getType(DstReg); 2296 auto &MMO = **MI.memoperands_begin(); 2297 2298 if (DstTy.getSizeInBits() == MMO.getSizeInBits()) { 2299 if (MI.getOpcode() == TargetOpcode::G_LOAD) { 2300 // This load needs splitting into power of 2 sized loads. 2301 if (DstTy.isVector()) 2302 return UnableToLegalize; 2303 if (isPowerOf2_32(DstTy.getSizeInBits())) 2304 return UnableToLegalize; // Don't know what we're being asked to do. 2305 2306 // Our strategy here is to generate anyextending loads for the smaller 2307 // types up to next power-2 result type, and then combine the two larger 2308 // result values together, before truncating back down to the non-pow-2 2309 // type. 2310 // E.g. v1 = i24 load => 2311 // v2 = i32 load (2 byte) 2312 // v3 = i32 load (1 byte) 2313 // v4 = i32 shl v3, 16 2314 // v5 = i32 or v4, v2 2315 // v1 = i24 trunc v5 2316 // By doing this we generate the correct truncate which should get 2317 // combined away as an artifact with a matching extend. 2318 uint64_t LargeSplitSize = PowerOf2Floor(DstTy.getSizeInBits()); 2319 uint64_t SmallSplitSize = DstTy.getSizeInBits() - LargeSplitSize; 2320 2321 MachineFunction &MF = MIRBuilder.getMF(); 2322 MachineMemOperand *LargeMMO = 2323 MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8); 2324 MachineMemOperand *SmallMMO = MF.getMachineMemOperand( 2325 &MMO, LargeSplitSize / 8, SmallSplitSize / 8); 2326 2327 LLT PtrTy = MRI.getType(PtrReg); 2328 unsigned AnyExtSize = NextPowerOf2(DstTy.getSizeInBits()); 2329 LLT AnyExtTy = LLT::scalar(AnyExtSize); 2330 Register LargeLdReg = MRI.createGenericVirtualRegister(AnyExtTy); 2331 Register SmallLdReg = MRI.createGenericVirtualRegister(AnyExtTy); 2332 auto LargeLoad = 2333 MIRBuilder.buildLoad(LargeLdReg, PtrReg, *LargeMMO); 2334 2335 auto OffsetCst = MIRBuilder.buildConstant( 2336 LLT::scalar(PtrTy.getSizeInBits()), LargeSplitSize / 8); 2337 Register PtrAddReg = MRI.createGenericVirtualRegister(PtrTy); 2338 auto SmallPtr = 2339 MIRBuilder.buildPtrAdd(PtrAddReg, PtrReg, OffsetCst.getReg(0)); 2340 auto SmallLoad = MIRBuilder.buildLoad(SmallLdReg, SmallPtr.getReg(0), 2341 *SmallMMO); 2342 2343 auto ShiftAmt = MIRBuilder.buildConstant(AnyExtTy, LargeSplitSize); 2344 auto Shift = MIRBuilder.buildShl(AnyExtTy, SmallLoad, ShiftAmt); 2345 auto Or = MIRBuilder.buildOr(AnyExtTy, Shift, LargeLoad); 2346 MIRBuilder.buildTrunc(DstReg, {Or.getReg(0)}); 2347 MI.eraseFromParent(); 2348 return Legalized; 2349 } 2350 MIRBuilder.buildLoad(DstReg, PtrReg, MMO); 2351 MI.eraseFromParent(); 2352 return Legalized; 2353 } 2354 2355 if (DstTy.isScalar()) { 2356 Register TmpReg = 2357 MRI.createGenericVirtualRegister(LLT::scalar(MMO.getSizeInBits())); 2358 MIRBuilder.buildLoad(TmpReg, PtrReg, MMO); 2359 switch (MI.getOpcode()) { 2360 default: 2361 llvm_unreachable("Unexpected opcode"); 2362 case TargetOpcode::G_LOAD: 2363 MIRBuilder.buildExtOrTrunc(TargetOpcode::G_ANYEXT, DstReg, TmpReg); 2364 break; 2365 case TargetOpcode::G_SEXTLOAD: 2366 MIRBuilder.buildSExt(DstReg, TmpReg); 2367 break; 2368 case TargetOpcode::G_ZEXTLOAD: 2369 MIRBuilder.buildZExt(DstReg, TmpReg); 2370 break; 2371 } 2372 MI.eraseFromParent(); 2373 return Legalized; 2374 } 2375 2376 return UnableToLegalize; 2377 } 2378 case TargetOpcode::G_STORE: { 2379 // Lower a non-power of 2 store into multiple pow-2 stores. 2380 // E.g. split an i24 store into an i16 store + i8 store. 2381 // We do this by first extending the stored value to the next largest power 2382 // of 2 type, and then using truncating stores to store the components. 2383 // By doing this, likewise with G_LOAD, generate an extend that can be 2384 // artifact-combined away instead of leaving behind extracts. 2385 Register SrcReg = MI.getOperand(0).getReg(); 2386 Register PtrReg = MI.getOperand(1).getReg(); 2387 LLT SrcTy = MRI.getType(SrcReg); 2388 MachineMemOperand &MMO = **MI.memoperands_begin(); 2389 if (SrcTy.getSizeInBits() != MMO.getSizeInBits()) 2390 return UnableToLegalize; 2391 if (SrcTy.isVector()) 2392 return UnableToLegalize; 2393 if (isPowerOf2_32(SrcTy.getSizeInBits())) 2394 return UnableToLegalize; // Don't know what we're being asked to do. 2395 2396 // Extend to the next pow-2. 2397 const LLT ExtendTy = LLT::scalar(NextPowerOf2(SrcTy.getSizeInBits())); 2398 auto ExtVal = MIRBuilder.buildAnyExt(ExtendTy, SrcReg); 2399 2400 // Obtain the smaller value by shifting away the larger value. 2401 uint64_t LargeSplitSize = PowerOf2Floor(SrcTy.getSizeInBits()); 2402 uint64_t SmallSplitSize = SrcTy.getSizeInBits() - LargeSplitSize; 2403 auto ShiftAmt = MIRBuilder.buildConstant(ExtendTy, LargeSplitSize); 2404 auto SmallVal = MIRBuilder.buildLShr(ExtendTy, ExtVal, ShiftAmt); 2405 2406 // Generate the PtrAdd and truncating stores. 2407 LLT PtrTy = MRI.getType(PtrReg); 2408 auto OffsetCst = MIRBuilder.buildConstant( 2409 LLT::scalar(PtrTy.getSizeInBits()), LargeSplitSize / 8); 2410 Register PtrAddReg = MRI.createGenericVirtualRegister(PtrTy); 2411 auto SmallPtr = 2412 MIRBuilder.buildPtrAdd(PtrAddReg, PtrReg, OffsetCst.getReg(0)); 2413 2414 MachineFunction &MF = MIRBuilder.getMF(); 2415 MachineMemOperand *LargeMMO = 2416 MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8); 2417 MachineMemOperand *SmallMMO = 2418 MF.getMachineMemOperand(&MMO, LargeSplitSize / 8, SmallSplitSize / 8); 2419 MIRBuilder.buildStore(ExtVal.getReg(0), PtrReg, *LargeMMO); 2420 MIRBuilder.buildStore(SmallVal.getReg(0), SmallPtr.getReg(0), *SmallMMO); 2421 MI.eraseFromParent(); 2422 return Legalized; 2423 } 2424 case TargetOpcode::G_CTLZ_ZERO_UNDEF: 2425 case TargetOpcode::G_CTTZ_ZERO_UNDEF: 2426 case TargetOpcode::G_CTLZ: 2427 case TargetOpcode::G_CTTZ: 2428 case TargetOpcode::G_CTPOP: 2429 return lowerBitCount(MI, TypeIdx, Ty); 2430 case G_UADDO: { 2431 Register Res = MI.getOperand(0).getReg(); 2432 Register CarryOut = MI.getOperand(1).getReg(); 2433 Register LHS = MI.getOperand(2).getReg(); 2434 Register RHS = MI.getOperand(3).getReg(); 2435 2436 MIRBuilder.buildAdd(Res, LHS, RHS); 2437 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CarryOut, Res, RHS); 2438 2439 MI.eraseFromParent(); 2440 return Legalized; 2441 } 2442 case G_UADDE: { 2443 Register Res = MI.getOperand(0).getReg(); 2444 Register CarryOut = MI.getOperand(1).getReg(); 2445 Register LHS = MI.getOperand(2).getReg(); 2446 Register RHS = MI.getOperand(3).getReg(); 2447 Register CarryIn = MI.getOperand(4).getReg(); 2448 2449 Register TmpRes = MRI.createGenericVirtualRegister(Ty); 2450 Register ZExtCarryIn = MRI.createGenericVirtualRegister(Ty); 2451 2452 MIRBuilder.buildAdd(TmpRes, LHS, RHS); 2453 MIRBuilder.buildZExt(ZExtCarryIn, CarryIn); 2454 MIRBuilder.buildAdd(Res, TmpRes, ZExtCarryIn); 2455 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CarryOut, Res, LHS); 2456 2457 MI.eraseFromParent(); 2458 return Legalized; 2459 } 2460 case G_USUBO: { 2461 Register Res = MI.getOperand(0).getReg(); 2462 Register BorrowOut = MI.getOperand(1).getReg(); 2463 Register LHS = MI.getOperand(2).getReg(); 2464 Register RHS = MI.getOperand(3).getReg(); 2465 2466 MIRBuilder.buildSub(Res, LHS, RHS); 2467 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, BorrowOut, LHS, RHS); 2468 2469 MI.eraseFromParent(); 2470 return Legalized; 2471 } 2472 case G_USUBE: { 2473 Register Res = MI.getOperand(0).getReg(); 2474 Register BorrowOut = MI.getOperand(1).getReg(); 2475 Register LHS = MI.getOperand(2).getReg(); 2476 Register RHS = MI.getOperand(3).getReg(); 2477 Register BorrowIn = MI.getOperand(4).getReg(); 2478 2479 Register TmpRes = MRI.createGenericVirtualRegister(Ty); 2480 Register ZExtBorrowIn = MRI.createGenericVirtualRegister(Ty); 2481 Register LHS_EQ_RHS = MRI.createGenericVirtualRegister(LLT::scalar(1)); 2482 Register LHS_ULT_RHS = MRI.createGenericVirtualRegister(LLT::scalar(1)); 2483 2484 MIRBuilder.buildSub(TmpRes, LHS, RHS); 2485 MIRBuilder.buildZExt(ZExtBorrowIn, BorrowIn); 2486 MIRBuilder.buildSub(Res, TmpRes, ZExtBorrowIn); 2487 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LHS_EQ_RHS, LHS, RHS); 2488 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, LHS_ULT_RHS, LHS, RHS); 2489 MIRBuilder.buildSelect(BorrowOut, LHS_EQ_RHS, BorrowIn, LHS_ULT_RHS); 2490 2491 MI.eraseFromParent(); 2492 return Legalized; 2493 } 2494 case G_UITOFP: 2495 return lowerUITOFP(MI, TypeIdx, Ty); 2496 case G_SITOFP: 2497 return lowerSITOFP(MI, TypeIdx, Ty); 2498 case G_FPTOUI: 2499 return lowerFPTOUI(MI, TypeIdx, Ty); 2500 case G_FPTOSI: 2501 return lowerFPTOSI(MI); 2502 case G_SMIN: 2503 case G_SMAX: 2504 case G_UMIN: 2505 case G_UMAX: 2506 return lowerMinMax(MI, TypeIdx, Ty); 2507 case G_FCOPYSIGN: 2508 return lowerFCopySign(MI, TypeIdx, Ty); 2509 case G_FMINNUM: 2510 case G_FMAXNUM: 2511 return lowerFMinNumMaxNum(MI); 2512 case G_UNMERGE_VALUES: 2513 return lowerUnmergeValues(MI); 2514 case TargetOpcode::G_SEXT_INREG: { 2515 assert(MI.getOperand(2).isImm() && "Expected immediate"); 2516 int64_t SizeInBits = MI.getOperand(2).getImm(); 2517 2518 Register DstReg = MI.getOperand(0).getReg(); 2519 Register SrcReg = MI.getOperand(1).getReg(); 2520 LLT DstTy = MRI.getType(DstReg); 2521 Register TmpRes = MRI.createGenericVirtualRegister(DstTy); 2522 2523 auto MIBSz = MIRBuilder.buildConstant(DstTy, DstTy.getScalarSizeInBits() - SizeInBits); 2524 MIRBuilder.buildShl(TmpRes, SrcReg, MIBSz->getOperand(0)); 2525 MIRBuilder.buildAShr(DstReg, TmpRes, MIBSz->getOperand(0)); 2526 MI.eraseFromParent(); 2527 return Legalized; 2528 } 2529 case G_SHUFFLE_VECTOR: 2530 return lowerShuffleVector(MI); 2531 case G_DYN_STACKALLOC: 2532 return lowerDynStackAlloc(MI); 2533 case G_EXTRACT: 2534 return lowerExtract(MI); 2535 case G_INSERT: 2536 return lowerInsert(MI); 2537 case G_BSWAP: 2538 return lowerBswap(MI); 2539 case G_BITREVERSE: 2540 return lowerBitreverse(MI); 2541 case G_READ_REGISTER: 2542 case G_WRITE_REGISTER: 2543 return lowerReadWriteRegister(MI); 2544 } 2545 } 2546 2547 LegalizerHelper::LegalizeResult LegalizerHelper::fewerElementsVectorImplicitDef( 2548 MachineInstr &MI, unsigned TypeIdx, LLT NarrowTy) { 2549 SmallVector<Register, 2> DstRegs; 2550 2551 unsigned NarrowSize = NarrowTy.getSizeInBits(); 2552 Register DstReg = MI.getOperand(0).getReg(); 2553 unsigned Size = MRI.getType(DstReg).getSizeInBits(); 2554 int NumParts = Size / NarrowSize; 2555 // FIXME: Don't know how to handle the situation where the small vectors 2556 // aren't all the same size yet. 2557 if (Size % NarrowSize != 0) 2558 return UnableToLegalize; 2559 2560 for (int i = 0; i < NumParts; ++i) { 2561 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy); 2562 MIRBuilder.buildUndef(TmpReg); 2563 DstRegs.push_back(TmpReg); 2564 } 2565 2566 if (NarrowTy.isVector()) 2567 MIRBuilder.buildConcatVectors(DstReg, DstRegs); 2568 else 2569 MIRBuilder.buildBuildVector(DstReg, DstRegs); 2570 2571 MI.eraseFromParent(); 2572 return Legalized; 2573 } 2574 2575 LegalizerHelper::LegalizeResult 2576 LegalizerHelper::fewerElementsVectorBasic(MachineInstr &MI, unsigned TypeIdx, 2577 LLT NarrowTy) { 2578 const unsigned Opc = MI.getOpcode(); 2579 const unsigned NumOps = MI.getNumOperands() - 1; 2580 const unsigned NarrowSize = NarrowTy.getSizeInBits(); 2581 const Register DstReg = MI.getOperand(0).getReg(); 2582 const unsigned Flags = MI.getFlags(); 2583 const LLT DstTy = MRI.getType(DstReg); 2584 const unsigned Size = DstTy.getSizeInBits(); 2585 const int NumParts = Size / NarrowSize; 2586 const LLT EltTy = DstTy.getElementType(); 2587 const unsigned EltSize = EltTy.getSizeInBits(); 2588 const unsigned BitsForNumParts = NarrowSize * NumParts; 2589 2590 // Check if we have any leftovers. If we do, then only handle the case where 2591 // the leftover is one element. 2592 if (BitsForNumParts != Size && BitsForNumParts + EltSize != Size) 2593 return UnableToLegalize; 2594 2595 if (BitsForNumParts != Size) { 2596 Register AccumDstReg = MRI.createGenericVirtualRegister(DstTy); 2597 MIRBuilder.buildUndef(AccumDstReg); 2598 2599 // Handle the pieces which evenly divide into the requested type with 2600 // extract/op/insert sequence. 2601 for (unsigned Offset = 0; Offset < BitsForNumParts; Offset += NarrowSize) { 2602 SmallVector<SrcOp, 4> SrcOps; 2603 for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) { 2604 Register PartOpReg = MRI.createGenericVirtualRegister(NarrowTy); 2605 MIRBuilder.buildExtract(PartOpReg, MI.getOperand(I), Offset); 2606 SrcOps.push_back(PartOpReg); 2607 } 2608 2609 Register PartDstReg = MRI.createGenericVirtualRegister(NarrowTy); 2610 MIRBuilder.buildInstr(Opc, {PartDstReg}, SrcOps, Flags); 2611 2612 Register PartInsertReg = MRI.createGenericVirtualRegister(DstTy); 2613 MIRBuilder.buildInsert(PartInsertReg, AccumDstReg, PartDstReg, Offset); 2614 AccumDstReg = PartInsertReg; 2615 } 2616 2617 // Handle the remaining element sized leftover piece. 2618 SmallVector<SrcOp, 4> SrcOps; 2619 for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) { 2620 Register PartOpReg = MRI.createGenericVirtualRegister(EltTy); 2621 MIRBuilder.buildExtract(PartOpReg, MI.getOperand(I), BitsForNumParts); 2622 SrcOps.push_back(PartOpReg); 2623 } 2624 2625 Register PartDstReg = MRI.createGenericVirtualRegister(EltTy); 2626 MIRBuilder.buildInstr(Opc, {PartDstReg}, SrcOps, Flags); 2627 MIRBuilder.buildInsert(DstReg, AccumDstReg, PartDstReg, BitsForNumParts); 2628 MI.eraseFromParent(); 2629 2630 return Legalized; 2631 } 2632 2633 SmallVector<Register, 2> DstRegs, Src0Regs, Src1Regs, Src2Regs; 2634 2635 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src0Regs); 2636 2637 if (NumOps >= 2) 2638 extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src1Regs); 2639 2640 if (NumOps >= 3) 2641 extractParts(MI.getOperand(3).getReg(), NarrowTy, NumParts, Src2Regs); 2642 2643 for (int i = 0; i < NumParts; ++i) { 2644 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy); 2645 2646 if (NumOps == 1) 2647 MIRBuilder.buildInstr(Opc, {DstReg}, {Src0Regs[i]}, Flags); 2648 else if (NumOps == 2) { 2649 MIRBuilder.buildInstr(Opc, {DstReg}, {Src0Regs[i], Src1Regs[i]}, Flags); 2650 } else if (NumOps == 3) { 2651 MIRBuilder.buildInstr(Opc, {DstReg}, 2652 {Src0Regs[i], Src1Regs[i], Src2Regs[i]}, Flags); 2653 } 2654 2655 DstRegs.push_back(DstReg); 2656 } 2657 2658 if (NarrowTy.isVector()) 2659 MIRBuilder.buildConcatVectors(DstReg, DstRegs); 2660 else 2661 MIRBuilder.buildBuildVector(DstReg, DstRegs); 2662 2663 MI.eraseFromParent(); 2664 return Legalized; 2665 } 2666 2667 // Handle splitting vector operations which need to have the same number of 2668 // elements in each type index, but each type index may have a different element 2669 // type. 2670 // 2671 // e.g. <4 x s64> = G_SHL <4 x s64>, <4 x s32> -> 2672 // <2 x s64> = G_SHL <2 x s64>, <2 x s32> 2673 // <2 x s64> = G_SHL <2 x s64>, <2 x s32> 2674 // 2675 // Also handles some irregular breakdown cases, e.g. 2676 // e.g. <3 x s64> = G_SHL <3 x s64>, <3 x s32> -> 2677 // <2 x s64> = G_SHL <2 x s64>, <2 x s32> 2678 // s64 = G_SHL s64, s32 2679 LegalizerHelper::LegalizeResult 2680 LegalizerHelper::fewerElementsVectorMultiEltType( 2681 MachineInstr &MI, unsigned TypeIdx, LLT NarrowTyArg) { 2682 if (TypeIdx != 0) 2683 return UnableToLegalize; 2684 2685 const LLT NarrowTy0 = NarrowTyArg; 2686 const unsigned NewNumElts = 2687 NarrowTy0.isVector() ? NarrowTy0.getNumElements() : 1; 2688 2689 const Register DstReg = MI.getOperand(0).getReg(); 2690 LLT DstTy = MRI.getType(DstReg); 2691 LLT LeftoverTy0; 2692 2693 // All of the operands need to have the same number of elements, so if we can 2694 // determine a type breakdown for the result type, we can for all of the 2695 // source types. 2696 int NumParts = getNarrowTypeBreakDown(DstTy, NarrowTy0, LeftoverTy0).first; 2697 if (NumParts < 0) 2698 return UnableToLegalize; 2699 2700 SmallVector<MachineInstrBuilder, 4> NewInsts; 2701 2702 SmallVector<Register, 4> DstRegs, LeftoverDstRegs; 2703 SmallVector<Register, 4> PartRegs, LeftoverRegs; 2704 2705 for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) { 2706 LLT LeftoverTy; 2707 Register SrcReg = MI.getOperand(I).getReg(); 2708 LLT SrcTyI = MRI.getType(SrcReg); 2709 LLT NarrowTyI = LLT::scalarOrVector(NewNumElts, SrcTyI.getScalarType()); 2710 LLT LeftoverTyI; 2711 2712 // Split this operand into the requested typed registers, and any leftover 2713 // required to reproduce the original type. 2714 if (!extractParts(SrcReg, SrcTyI, NarrowTyI, LeftoverTyI, PartRegs, 2715 LeftoverRegs)) 2716 return UnableToLegalize; 2717 2718 if (I == 1) { 2719 // For the first operand, create an instruction for each part and setup 2720 // the result. 2721 for (Register PartReg : PartRegs) { 2722 Register PartDstReg = MRI.createGenericVirtualRegister(NarrowTy0); 2723 NewInsts.push_back(MIRBuilder.buildInstrNoInsert(MI.getOpcode()) 2724 .addDef(PartDstReg) 2725 .addUse(PartReg)); 2726 DstRegs.push_back(PartDstReg); 2727 } 2728 2729 for (Register LeftoverReg : LeftoverRegs) { 2730 Register PartDstReg = MRI.createGenericVirtualRegister(LeftoverTy0); 2731 NewInsts.push_back(MIRBuilder.buildInstrNoInsert(MI.getOpcode()) 2732 .addDef(PartDstReg) 2733 .addUse(LeftoverReg)); 2734 LeftoverDstRegs.push_back(PartDstReg); 2735 } 2736 } else { 2737 assert(NewInsts.size() == PartRegs.size() + LeftoverRegs.size()); 2738 2739 // Add the newly created operand splits to the existing instructions. The 2740 // odd-sized pieces are ordered after the requested NarrowTyArg sized 2741 // pieces. 2742 unsigned InstCount = 0; 2743 for (unsigned J = 0, JE = PartRegs.size(); J != JE; ++J) 2744 NewInsts[InstCount++].addUse(PartRegs[J]); 2745 for (unsigned J = 0, JE = LeftoverRegs.size(); J != JE; ++J) 2746 NewInsts[InstCount++].addUse(LeftoverRegs[J]); 2747 } 2748 2749 PartRegs.clear(); 2750 LeftoverRegs.clear(); 2751 } 2752 2753 // Insert the newly built operations and rebuild the result register. 2754 for (auto &MIB : NewInsts) 2755 MIRBuilder.insertInstr(MIB); 2756 2757 insertParts(DstReg, DstTy, NarrowTy0, DstRegs, LeftoverTy0, LeftoverDstRegs); 2758 2759 MI.eraseFromParent(); 2760 return Legalized; 2761 } 2762 2763 LegalizerHelper::LegalizeResult 2764 LegalizerHelper::fewerElementsVectorCasts(MachineInstr &MI, unsigned TypeIdx, 2765 LLT NarrowTy) { 2766 if (TypeIdx != 0) 2767 return UnableToLegalize; 2768 2769 Register DstReg = MI.getOperand(0).getReg(); 2770 Register SrcReg = MI.getOperand(1).getReg(); 2771 LLT DstTy = MRI.getType(DstReg); 2772 LLT SrcTy = MRI.getType(SrcReg); 2773 2774 LLT NarrowTy0 = NarrowTy; 2775 LLT NarrowTy1; 2776 unsigned NumParts; 2777 2778 if (NarrowTy.isVector()) { 2779 // Uneven breakdown not handled. 2780 NumParts = DstTy.getNumElements() / NarrowTy.getNumElements(); 2781 if (NumParts * NarrowTy.getNumElements() != DstTy.getNumElements()) 2782 return UnableToLegalize; 2783 2784 NarrowTy1 = LLT::vector(NumParts, SrcTy.getElementType().getSizeInBits()); 2785 } else { 2786 NumParts = DstTy.getNumElements(); 2787 NarrowTy1 = SrcTy.getElementType(); 2788 } 2789 2790 SmallVector<Register, 4> SrcRegs, DstRegs; 2791 extractParts(SrcReg, NarrowTy1, NumParts, SrcRegs); 2792 2793 for (unsigned I = 0; I < NumParts; ++I) { 2794 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0); 2795 MachineInstr *NewInst = 2796 MIRBuilder.buildInstr(MI.getOpcode(), {DstReg}, {SrcRegs[I]}); 2797 2798 NewInst->setFlags(MI.getFlags()); 2799 DstRegs.push_back(DstReg); 2800 } 2801 2802 if (NarrowTy.isVector()) 2803 MIRBuilder.buildConcatVectors(DstReg, DstRegs); 2804 else 2805 MIRBuilder.buildBuildVector(DstReg, DstRegs); 2806 2807 MI.eraseFromParent(); 2808 return Legalized; 2809 } 2810 2811 LegalizerHelper::LegalizeResult 2812 LegalizerHelper::fewerElementsVectorCmp(MachineInstr &MI, unsigned TypeIdx, 2813 LLT NarrowTy) { 2814 Register DstReg = MI.getOperand(0).getReg(); 2815 Register Src0Reg = MI.getOperand(2).getReg(); 2816 LLT DstTy = MRI.getType(DstReg); 2817 LLT SrcTy = MRI.getType(Src0Reg); 2818 2819 unsigned NumParts; 2820 LLT NarrowTy0, NarrowTy1; 2821 2822 if (TypeIdx == 0) { 2823 unsigned NewElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1; 2824 unsigned OldElts = DstTy.getNumElements(); 2825 2826 NarrowTy0 = NarrowTy; 2827 NumParts = NarrowTy.isVector() ? (OldElts / NewElts) : DstTy.getNumElements(); 2828 NarrowTy1 = NarrowTy.isVector() ? 2829 LLT::vector(NarrowTy.getNumElements(), SrcTy.getScalarSizeInBits()) : 2830 SrcTy.getElementType(); 2831 2832 } else { 2833 unsigned NewElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1; 2834 unsigned OldElts = SrcTy.getNumElements(); 2835 2836 NumParts = NarrowTy.isVector() ? (OldElts / NewElts) : 2837 NarrowTy.getNumElements(); 2838 NarrowTy0 = LLT::vector(NarrowTy.getNumElements(), 2839 DstTy.getScalarSizeInBits()); 2840 NarrowTy1 = NarrowTy; 2841 } 2842 2843 // FIXME: Don't know how to handle the situation where the small vectors 2844 // aren't all the same size yet. 2845 if (NarrowTy1.isVector() && 2846 NarrowTy1.getNumElements() * NumParts != DstTy.getNumElements()) 2847 return UnableToLegalize; 2848 2849 CmpInst::Predicate Pred 2850 = static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate()); 2851 2852 SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs; 2853 extractParts(MI.getOperand(2).getReg(), NarrowTy1, NumParts, Src1Regs); 2854 extractParts(MI.getOperand(3).getReg(), NarrowTy1, NumParts, Src2Regs); 2855 2856 for (unsigned I = 0; I < NumParts; ++I) { 2857 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0); 2858 DstRegs.push_back(DstReg); 2859 2860 if (MI.getOpcode() == TargetOpcode::G_ICMP) 2861 MIRBuilder.buildICmp(Pred, DstReg, Src1Regs[I], Src2Regs[I]); 2862 else { 2863 MachineInstr *NewCmp 2864 = MIRBuilder.buildFCmp(Pred, DstReg, Src1Regs[I], Src2Regs[I]); 2865 NewCmp->setFlags(MI.getFlags()); 2866 } 2867 } 2868 2869 if (NarrowTy1.isVector()) 2870 MIRBuilder.buildConcatVectors(DstReg, DstRegs); 2871 else 2872 MIRBuilder.buildBuildVector(DstReg, DstRegs); 2873 2874 MI.eraseFromParent(); 2875 return Legalized; 2876 } 2877 2878 LegalizerHelper::LegalizeResult 2879 LegalizerHelper::fewerElementsVectorSelect(MachineInstr &MI, unsigned TypeIdx, 2880 LLT NarrowTy) { 2881 Register DstReg = MI.getOperand(0).getReg(); 2882 Register CondReg = MI.getOperand(1).getReg(); 2883 2884 unsigned NumParts = 0; 2885 LLT NarrowTy0, NarrowTy1; 2886 2887 LLT DstTy = MRI.getType(DstReg); 2888 LLT CondTy = MRI.getType(CondReg); 2889 unsigned Size = DstTy.getSizeInBits(); 2890 2891 assert(TypeIdx == 0 || CondTy.isVector()); 2892 2893 if (TypeIdx == 0) { 2894 NarrowTy0 = NarrowTy; 2895 NarrowTy1 = CondTy; 2896 2897 unsigned NarrowSize = NarrowTy0.getSizeInBits(); 2898 // FIXME: Don't know how to handle the situation where the small vectors 2899 // aren't all the same size yet. 2900 if (Size % NarrowSize != 0) 2901 return UnableToLegalize; 2902 2903 NumParts = Size / NarrowSize; 2904 2905 // Need to break down the condition type 2906 if (CondTy.isVector()) { 2907 if (CondTy.getNumElements() == NumParts) 2908 NarrowTy1 = CondTy.getElementType(); 2909 else 2910 NarrowTy1 = LLT::vector(CondTy.getNumElements() / NumParts, 2911 CondTy.getScalarSizeInBits()); 2912 } 2913 } else { 2914 NumParts = CondTy.getNumElements(); 2915 if (NarrowTy.isVector()) { 2916 // TODO: Handle uneven breakdown. 2917 if (NumParts * NarrowTy.getNumElements() != CondTy.getNumElements()) 2918 return UnableToLegalize; 2919 2920 return UnableToLegalize; 2921 } else { 2922 NarrowTy0 = DstTy.getElementType(); 2923 NarrowTy1 = NarrowTy; 2924 } 2925 } 2926 2927 SmallVector<Register, 2> DstRegs, Src0Regs, Src1Regs, Src2Regs; 2928 if (CondTy.isVector()) 2929 extractParts(MI.getOperand(1).getReg(), NarrowTy1, NumParts, Src0Regs); 2930 2931 extractParts(MI.getOperand(2).getReg(), NarrowTy0, NumParts, Src1Regs); 2932 extractParts(MI.getOperand(3).getReg(), NarrowTy0, NumParts, Src2Regs); 2933 2934 for (unsigned i = 0; i < NumParts; ++i) { 2935 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0); 2936 MIRBuilder.buildSelect(DstReg, CondTy.isVector() ? Src0Regs[i] : CondReg, 2937 Src1Regs[i], Src2Regs[i]); 2938 DstRegs.push_back(DstReg); 2939 } 2940 2941 if (NarrowTy0.isVector()) 2942 MIRBuilder.buildConcatVectors(DstReg, DstRegs); 2943 else 2944 MIRBuilder.buildBuildVector(DstReg, DstRegs); 2945 2946 MI.eraseFromParent(); 2947 return Legalized; 2948 } 2949 2950 LegalizerHelper::LegalizeResult 2951 LegalizerHelper::fewerElementsVectorPhi(MachineInstr &MI, unsigned TypeIdx, 2952 LLT NarrowTy) { 2953 const Register DstReg = MI.getOperand(0).getReg(); 2954 LLT PhiTy = MRI.getType(DstReg); 2955 LLT LeftoverTy; 2956 2957 // All of the operands need to have the same number of elements, so if we can 2958 // determine a type breakdown for the result type, we can for all of the 2959 // source types. 2960 int NumParts, NumLeftover; 2961 std::tie(NumParts, NumLeftover) 2962 = getNarrowTypeBreakDown(PhiTy, NarrowTy, LeftoverTy); 2963 if (NumParts < 0) 2964 return UnableToLegalize; 2965 2966 SmallVector<Register, 4> DstRegs, LeftoverDstRegs; 2967 SmallVector<MachineInstrBuilder, 4> NewInsts; 2968 2969 const int TotalNumParts = NumParts + NumLeftover; 2970 2971 // Insert the new phis in the result block first. 2972 for (int I = 0; I != TotalNumParts; ++I) { 2973 LLT Ty = I < NumParts ? NarrowTy : LeftoverTy; 2974 Register PartDstReg = MRI.createGenericVirtualRegister(Ty); 2975 NewInsts.push_back(MIRBuilder.buildInstr(TargetOpcode::G_PHI) 2976 .addDef(PartDstReg)); 2977 if (I < NumParts) 2978 DstRegs.push_back(PartDstReg); 2979 else 2980 LeftoverDstRegs.push_back(PartDstReg); 2981 } 2982 2983 MachineBasicBlock *MBB = MI.getParent(); 2984 MIRBuilder.setInsertPt(*MBB, MBB->getFirstNonPHI()); 2985 insertParts(DstReg, PhiTy, NarrowTy, DstRegs, LeftoverTy, LeftoverDstRegs); 2986 2987 SmallVector<Register, 4> PartRegs, LeftoverRegs; 2988 2989 // Insert code to extract the incoming values in each predecessor block. 2990 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) { 2991 PartRegs.clear(); 2992 LeftoverRegs.clear(); 2993 2994 Register SrcReg = MI.getOperand(I).getReg(); 2995 MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB(); 2996 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator()); 2997 2998 LLT Unused; 2999 if (!extractParts(SrcReg, PhiTy, NarrowTy, Unused, PartRegs, 3000 LeftoverRegs)) 3001 return UnableToLegalize; 3002 3003 // Add the newly created operand splits to the existing instructions. The 3004 // odd-sized pieces are ordered after the requested NarrowTyArg sized 3005 // pieces. 3006 for (int J = 0; J != TotalNumParts; ++J) { 3007 MachineInstrBuilder MIB = NewInsts[J]; 3008 MIB.addUse(J < NumParts ? PartRegs[J] : LeftoverRegs[J - NumParts]); 3009 MIB.addMBB(&OpMBB); 3010 } 3011 } 3012 3013 MI.eraseFromParent(); 3014 return Legalized; 3015 } 3016 3017 LegalizerHelper::LegalizeResult 3018 LegalizerHelper::fewerElementsVectorUnmergeValues(MachineInstr &MI, 3019 unsigned TypeIdx, 3020 LLT NarrowTy) { 3021 if (TypeIdx != 1) 3022 return UnableToLegalize; 3023 3024 const int NumDst = MI.getNumOperands() - 1; 3025 const Register SrcReg = MI.getOperand(NumDst).getReg(); 3026 LLT SrcTy = MRI.getType(SrcReg); 3027 3028 LLT DstTy = MRI.getType(MI.getOperand(0).getReg()); 3029 3030 // TODO: Create sequence of extracts. 3031 if (DstTy == NarrowTy) 3032 return UnableToLegalize; 3033 3034 LLT GCDTy = getGCDType(SrcTy, NarrowTy); 3035 if (DstTy == GCDTy) { 3036 // This would just be a copy of the same unmerge. 3037 // TODO: Create extracts, pad with undef and create intermediate merges. 3038 return UnableToLegalize; 3039 } 3040 3041 auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg); 3042 const int NumUnmerge = Unmerge->getNumOperands() - 1; 3043 const int PartsPerUnmerge = NumDst / NumUnmerge; 3044 3045 for (int I = 0; I != NumUnmerge; ++I) { 3046 auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES); 3047 3048 for (int J = 0; J != PartsPerUnmerge; ++J) 3049 MIB.addDef(MI.getOperand(I * PartsPerUnmerge + J).getReg()); 3050 MIB.addUse(Unmerge.getReg(I)); 3051 } 3052 3053 MI.eraseFromParent(); 3054 return Legalized; 3055 } 3056 3057 LegalizerHelper::LegalizeResult 3058 LegalizerHelper::fewerElementsVectorBuildVector(MachineInstr &MI, 3059 unsigned TypeIdx, 3060 LLT NarrowTy) { 3061 assert(TypeIdx == 0 && "not a vector type index"); 3062 Register DstReg = MI.getOperand(0).getReg(); 3063 LLT DstTy = MRI.getType(DstReg); 3064 LLT SrcTy = DstTy.getElementType(); 3065 3066 int DstNumElts = DstTy.getNumElements(); 3067 int NarrowNumElts = NarrowTy.getNumElements(); 3068 int NumConcat = (DstNumElts + NarrowNumElts - 1) / NarrowNumElts; 3069 LLT WidenedDstTy = LLT::vector(NarrowNumElts * NumConcat, SrcTy); 3070 3071 SmallVector<Register, 8> ConcatOps; 3072 SmallVector<Register, 8> SubBuildVector; 3073 3074 Register UndefReg; 3075 if (WidenedDstTy != DstTy) 3076 UndefReg = MIRBuilder.buildUndef(SrcTy).getReg(0); 3077 3078 // Create a G_CONCAT_VECTORS of NarrowTy pieces, padding with undef as 3079 // necessary. 3080 // 3081 // %3:_(<3 x s16>) = G_BUILD_VECTOR %0, %1, %2 3082 // -> <2 x s16> 3083 // 3084 // %4:_(s16) = G_IMPLICIT_DEF 3085 // %5:_(<2 x s16>) = G_BUILD_VECTOR %0, %1 3086 // %6:_(<2 x s16>) = G_BUILD_VECTOR %2, %4 3087 // %7:_(<4 x s16>) = G_CONCAT_VECTORS %5, %6 3088 // %3:_(<3 x s16>) = G_EXTRACT %7, 0 3089 for (int I = 0; I != NumConcat; ++I) { 3090 for (int J = 0; J != NarrowNumElts; ++J) { 3091 int SrcIdx = NarrowNumElts * I + J; 3092 3093 if (SrcIdx < DstNumElts) { 3094 Register SrcReg = MI.getOperand(SrcIdx + 1).getReg(); 3095 SubBuildVector.push_back(SrcReg); 3096 } else 3097 SubBuildVector.push_back(UndefReg); 3098 } 3099 3100 auto BuildVec = MIRBuilder.buildBuildVector(NarrowTy, SubBuildVector); 3101 ConcatOps.push_back(BuildVec.getReg(0)); 3102 SubBuildVector.clear(); 3103 } 3104 3105 if (DstTy == WidenedDstTy) 3106 MIRBuilder.buildConcatVectors(DstReg, ConcatOps); 3107 else { 3108 auto Concat = MIRBuilder.buildConcatVectors(WidenedDstTy, ConcatOps); 3109 MIRBuilder.buildExtract(DstReg, Concat, 0); 3110 } 3111 3112 MI.eraseFromParent(); 3113 return Legalized; 3114 } 3115 3116 LegalizerHelper::LegalizeResult 3117 LegalizerHelper::reduceLoadStoreWidth(MachineInstr &MI, unsigned TypeIdx, 3118 LLT NarrowTy) { 3119 // FIXME: Don't know how to handle secondary types yet. 3120 if (TypeIdx != 0) 3121 return UnableToLegalize; 3122 3123 MachineMemOperand *MMO = *MI.memoperands_begin(); 3124 3125 // This implementation doesn't work for atomics. Give up instead of doing 3126 // something invalid. 3127 if (MMO->getOrdering() != AtomicOrdering::NotAtomic || 3128 MMO->getFailureOrdering() != AtomicOrdering::NotAtomic) 3129 return UnableToLegalize; 3130 3131 bool IsLoad = MI.getOpcode() == TargetOpcode::G_LOAD; 3132 Register ValReg = MI.getOperand(0).getReg(); 3133 Register AddrReg = MI.getOperand(1).getReg(); 3134 LLT ValTy = MRI.getType(ValReg); 3135 3136 int NumParts = -1; 3137 int NumLeftover = -1; 3138 LLT LeftoverTy; 3139 SmallVector<Register, 8> NarrowRegs, NarrowLeftoverRegs; 3140 if (IsLoad) { 3141 std::tie(NumParts, NumLeftover) = getNarrowTypeBreakDown(ValTy, NarrowTy, LeftoverTy); 3142 } else { 3143 if (extractParts(ValReg, ValTy, NarrowTy, LeftoverTy, NarrowRegs, 3144 NarrowLeftoverRegs)) { 3145 NumParts = NarrowRegs.size(); 3146 NumLeftover = NarrowLeftoverRegs.size(); 3147 } 3148 } 3149 3150 if (NumParts == -1) 3151 return UnableToLegalize; 3152 3153 const LLT OffsetTy = LLT::scalar(MRI.getType(AddrReg).getScalarSizeInBits()); 3154 3155 unsigned TotalSize = ValTy.getSizeInBits(); 3156 3157 // Split the load/store into PartTy sized pieces starting at Offset. If this 3158 // is a load, return the new registers in ValRegs. For a store, each elements 3159 // of ValRegs should be PartTy. Returns the next offset that needs to be 3160 // handled. 3161 auto splitTypePieces = [=](LLT PartTy, SmallVectorImpl<Register> &ValRegs, 3162 unsigned Offset) -> unsigned { 3163 MachineFunction &MF = MIRBuilder.getMF(); 3164 unsigned PartSize = PartTy.getSizeInBits(); 3165 for (unsigned Idx = 0, E = NumParts; Idx != E && Offset < TotalSize; 3166 Offset += PartSize, ++Idx) { 3167 unsigned ByteSize = PartSize / 8; 3168 unsigned ByteOffset = Offset / 8; 3169 Register NewAddrReg; 3170 3171 MIRBuilder.materializePtrAdd(NewAddrReg, AddrReg, OffsetTy, ByteOffset); 3172 3173 MachineMemOperand *NewMMO = 3174 MF.getMachineMemOperand(MMO, ByteOffset, ByteSize); 3175 3176 if (IsLoad) { 3177 Register Dst = MRI.createGenericVirtualRegister(PartTy); 3178 ValRegs.push_back(Dst); 3179 MIRBuilder.buildLoad(Dst, NewAddrReg, *NewMMO); 3180 } else { 3181 MIRBuilder.buildStore(ValRegs[Idx], NewAddrReg, *NewMMO); 3182 } 3183 } 3184 3185 return Offset; 3186 }; 3187 3188 unsigned HandledOffset = splitTypePieces(NarrowTy, NarrowRegs, 0); 3189 3190 // Handle the rest of the register if this isn't an even type breakdown. 3191 if (LeftoverTy.isValid()) 3192 splitTypePieces(LeftoverTy, NarrowLeftoverRegs, HandledOffset); 3193 3194 if (IsLoad) { 3195 insertParts(ValReg, ValTy, NarrowTy, NarrowRegs, 3196 LeftoverTy, NarrowLeftoverRegs); 3197 } 3198 3199 MI.eraseFromParent(); 3200 return Legalized; 3201 } 3202 3203 LegalizerHelper::LegalizeResult 3204 LegalizerHelper::fewerElementsVectorSextInReg(MachineInstr &MI, unsigned TypeIdx, 3205 LLT NarrowTy) { 3206 Register DstReg = MI.getOperand(0).getReg(); 3207 Register SrcReg = MI.getOperand(1).getReg(); 3208 int64_t Imm = MI.getOperand(2).getImm(); 3209 3210 LLT DstTy = MRI.getType(DstReg); 3211 3212 SmallVector<Register, 8> Parts; 3213 LLT GCDTy = extractGCDType(Parts, DstTy, NarrowTy, SrcReg); 3214 LLT LCMTy = buildLCMMergePieces(DstTy, NarrowTy, GCDTy, Parts); 3215 3216 for (Register &R : Parts) 3217 R = MIRBuilder.buildSExtInReg(NarrowTy, R, Imm).getReg(0); 3218 3219 buildWidenedRemergeToDst(DstReg, LCMTy, Parts); 3220 3221 MI.eraseFromParent(); 3222 return Legalized; 3223 } 3224 3225 LegalizerHelper::LegalizeResult 3226 LegalizerHelper::fewerElementsVector(MachineInstr &MI, unsigned TypeIdx, 3227 LLT NarrowTy) { 3228 using namespace TargetOpcode; 3229 3230 MIRBuilder.setInstr(MI); 3231 switch (MI.getOpcode()) { 3232 case G_IMPLICIT_DEF: 3233 return fewerElementsVectorImplicitDef(MI, TypeIdx, NarrowTy); 3234 case G_AND: 3235 case G_OR: 3236 case G_XOR: 3237 case G_ADD: 3238 case G_SUB: 3239 case G_MUL: 3240 case G_SMULH: 3241 case G_UMULH: 3242 case G_FADD: 3243 case G_FMUL: 3244 case G_FSUB: 3245 case G_FNEG: 3246 case G_FABS: 3247 case G_FCANONICALIZE: 3248 case G_FDIV: 3249 case G_FREM: 3250 case G_FMA: 3251 case G_FMAD: 3252 case G_FPOW: 3253 case G_FEXP: 3254 case G_FEXP2: 3255 case G_FLOG: 3256 case G_FLOG2: 3257 case G_FLOG10: 3258 case G_FNEARBYINT: 3259 case G_FCEIL: 3260 case G_FFLOOR: 3261 case G_FRINT: 3262 case G_INTRINSIC_ROUND: 3263 case G_INTRINSIC_TRUNC: 3264 case G_FCOS: 3265 case G_FSIN: 3266 case G_FSQRT: 3267 case G_BSWAP: 3268 case G_BITREVERSE: 3269 case G_SDIV: 3270 case G_UDIV: 3271 case G_SREM: 3272 case G_UREM: 3273 case G_SMIN: 3274 case G_SMAX: 3275 case G_UMIN: 3276 case G_UMAX: 3277 case G_FMINNUM: 3278 case G_FMAXNUM: 3279 case G_FMINNUM_IEEE: 3280 case G_FMAXNUM_IEEE: 3281 case G_FMINIMUM: 3282 case G_FMAXIMUM: 3283 return fewerElementsVectorBasic(MI, TypeIdx, NarrowTy); 3284 case G_SHL: 3285 case G_LSHR: 3286 case G_ASHR: 3287 case G_CTLZ: 3288 case G_CTLZ_ZERO_UNDEF: 3289 case G_CTTZ: 3290 case G_CTTZ_ZERO_UNDEF: 3291 case G_CTPOP: 3292 case G_FCOPYSIGN: 3293 return fewerElementsVectorMultiEltType(MI, TypeIdx, NarrowTy); 3294 case G_ZEXT: 3295 case G_SEXT: 3296 case G_ANYEXT: 3297 case G_FPEXT: 3298 case G_FPTRUNC: 3299 case G_SITOFP: 3300 case G_UITOFP: 3301 case G_FPTOSI: 3302 case G_FPTOUI: 3303 case G_INTTOPTR: 3304 case G_PTRTOINT: 3305 case G_ADDRSPACE_CAST: 3306 return fewerElementsVectorCasts(MI, TypeIdx, NarrowTy); 3307 case G_ICMP: 3308 case G_FCMP: 3309 return fewerElementsVectorCmp(MI, TypeIdx, NarrowTy); 3310 case G_SELECT: 3311 return fewerElementsVectorSelect(MI, TypeIdx, NarrowTy); 3312 case G_PHI: 3313 return fewerElementsVectorPhi(MI, TypeIdx, NarrowTy); 3314 case G_UNMERGE_VALUES: 3315 return fewerElementsVectorUnmergeValues(MI, TypeIdx, NarrowTy); 3316 case G_BUILD_VECTOR: 3317 return fewerElementsVectorBuildVector(MI, TypeIdx, NarrowTy); 3318 case G_LOAD: 3319 case G_STORE: 3320 return reduceLoadStoreWidth(MI, TypeIdx, NarrowTy); 3321 case G_SEXT_INREG: 3322 return fewerElementsVectorSextInReg(MI, TypeIdx, NarrowTy); 3323 default: 3324 return UnableToLegalize; 3325 } 3326 } 3327 3328 LegalizerHelper::LegalizeResult 3329 LegalizerHelper::narrowScalarShiftByConstant(MachineInstr &MI, const APInt &Amt, 3330 const LLT HalfTy, const LLT AmtTy) { 3331 3332 Register InL = MRI.createGenericVirtualRegister(HalfTy); 3333 Register InH = MRI.createGenericVirtualRegister(HalfTy); 3334 MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1)); 3335 3336 if (Amt.isNullValue()) { 3337 MIRBuilder.buildMerge(MI.getOperand(0), {InL, InH}); 3338 MI.eraseFromParent(); 3339 return Legalized; 3340 } 3341 3342 LLT NVT = HalfTy; 3343 unsigned NVTBits = HalfTy.getSizeInBits(); 3344 unsigned VTBits = 2 * NVTBits; 3345 3346 SrcOp Lo(Register(0)), Hi(Register(0)); 3347 if (MI.getOpcode() == TargetOpcode::G_SHL) { 3348 if (Amt.ugt(VTBits)) { 3349 Lo = Hi = MIRBuilder.buildConstant(NVT, 0); 3350 } else if (Amt.ugt(NVTBits)) { 3351 Lo = MIRBuilder.buildConstant(NVT, 0); 3352 Hi = MIRBuilder.buildShl(NVT, InL, 3353 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits)); 3354 } else if (Amt == NVTBits) { 3355 Lo = MIRBuilder.buildConstant(NVT, 0); 3356 Hi = InL; 3357 } else { 3358 Lo = MIRBuilder.buildShl(NVT, InL, MIRBuilder.buildConstant(AmtTy, Amt)); 3359 auto OrLHS = 3360 MIRBuilder.buildShl(NVT, InH, MIRBuilder.buildConstant(AmtTy, Amt)); 3361 auto OrRHS = MIRBuilder.buildLShr( 3362 NVT, InL, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits)); 3363 Hi = MIRBuilder.buildOr(NVT, OrLHS, OrRHS); 3364 } 3365 } else if (MI.getOpcode() == TargetOpcode::G_LSHR) { 3366 if (Amt.ugt(VTBits)) { 3367 Lo = Hi = MIRBuilder.buildConstant(NVT, 0); 3368 } else if (Amt.ugt(NVTBits)) { 3369 Lo = MIRBuilder.buildLShr(NVT, InH, 3370 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits)); 3371 Hi = MIRBuilder.buildConstant(NVT, 0); 3372 } else if (Amt == NVTBits) { 3373 Lo = InH; 3374 Hi = MIRBuilder.buildConstant(NVT, 0); 3375 } else { 3376 auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt); 3377 3378 auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst); 3379 auto OrRHS = MIRBuilder.buildShl( 3380 NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits)); 3381 3382 Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS); 3383 Hi = MIRBuilder.buildLShr(NVT, InH, ShiftAmtConst); 3384 } 3385 } else { 3386 if (Amt.ugt(VTBits)) { 3387 Hi = Lo = MIRBuilder.buildAShr( 3388 NVT, InH, MIRBuilder.buildConstant(AmtTy, NVTBits - 1)); 3389 } else if (Amt.ugt(NVTBits)) { 3390 Lo = MIRBuilder.buildAShr(NVT, InH, 3391 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits)); 3392 Hi = MIRBuilder.buildAShr(NVT, InH, 3393 MIRBuilder.buildConstant(AmtTy, NVTBits - 1)); 3394 } else if (Amt == NVTBits) { 3395 Lo = InH; 3396 Hi = MIRBuilder.buildAShr(NVT, InH, 3397 MIRBuilder.buildConstant(AmtTy, NVTBits - 1)); 3398 } else { 3399 auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt); 3400 3401 auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst); 3402 auto OrRHS = MIRBuilder.buildShl( 3403 NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits)); 3404 3405 Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS); 3406 Hi = MIRBuilder.buildAShr(NVT, InH, ShiftAmtConst); 3407 } 3408 } 3409 3410 MIRBuilder.buildMerge(MI.getOperand(0), {Lo.getReg(), Hi.getReg()}); 3411 MI.eraseFromParent(); 3412 3413 return Legalized; 3414 } 3415 3416 // TODO: Optimize if constant shift amount. 3417 LegalizerHelper::LegalizeResult 3418 LegalizerHelper::narrowScalarShift(MachineInstr &MI, unsigned TypeIdx, 3419 LLT RequestedTy) { 3420 if (TypeIdx == 1) { 3421 Observer.changingInstr(MI); 3422 narrowScalarSrc(MI, RequestedTy, 2); 3423 Observer.changedInstr(MI); 3424 return Legalized; 3425 } 3426 3427 Register DstReg = MI.getOperand(0).getReg(); 3428 LLT DstTy = MRI.getType(DstReg); 3429 if (DstTy.isVector()) 3430 return UnableToLegalize; 3431 3432 Register Amt = MI.getOperand(2).getReg(); 3433 LLT ShiftAmtTy = MRI.getType(Amt); 3434 const unsigned DstEltSize = DstTy.getScalarSizeInBits(); 3435 if (DstEltSize % 2 != 0) 3436 return UnableToLegalize; 3437 3438 // Ignore the input type. We can only go to exactly half the size of the 3439 // input. If that isn't small enough, the resulting pieces will be further 3440 // legalized. 3441 const unsigned NewBitSize = DstEltSize / 2; 3442 const LLT HalfTy = LLT::scalar(NewBitSize); 3443 const LLT CondTy = LLT::scalar(1); 3444 3445 if (const MachineInstr *KShiftAmt = 3446 getOpcodeDef(TargetOpcode::G_CONSTANT, Amt, MRI)) { 3447 return narrowScalarShiftByConstant( 3448 MI, KShiftAmt->getOperand(1).getCImm()->getValue(), HalfTy, ShiftAmtTy); 3449 } 3450 3451 // TODO: Expand with known bits. 3452 3453 // Handle the fully general expansion by an unknown amount. 3454 auto NewBits = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize); 3455 3456 Register InL = MRI.createGenericVirtualRegister(HalfTy); 3457 Register InH = MRI.createGenericVirtualRegister(HalfTy); 3458 MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1)); 3459 3460 auto AmtExcess = MIRBuilder.buildSub(ShiftAmtTy, Amt, NewBits); 3461 auto AmtLack = MIRBuilder.buildSub(ShiftAmtTy, NewBits, Amt); 3462 3463 auto Zero = MIRBuilder.buildConstant(ShiftAmtTy, 0); 3464 auto IsShort = MIRBuilder.buildICmp(ICmpInst::ICMP_ULT, CondTy, Amt, NewBits); 3465 auto IsZero = MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, CondTy, Amt, Zero); 3466 3467 Register ResultRegs[2]; 3468 switch (MI.getOpcode()) { 3469 case TargetOpcode::G_SHL: { 3470 // Short: ShAmt < NewBitSize 3471 auto LoS = MIRBuilder.buildShl(HalfTy, InL, Amt); 3472 3473 auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, AmtLack); 3474 auto HiOr = MIRBuilder.buildShl(HalfTy, InH, Amt); 3475 auto HiS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr); 3476 3477 // Long: ShAmt >= NewBitSize 3478 auto LoL = MIRBuilder.buildConstant(HalfTy, 0); // Lo part is zero. 3479 auto HiL = MIRBuilder.buildShl(HalfTy, InL, AmtExcess); // Hi from Lo part. 3480 3481 auto Lo = MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL); 3482 auto Hi = MIRBuilder.buildSelect( 3483 HalfTy, IsZero, InH, MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL)); 3484 3485 ResultRegs[0] = Lo.getReg(0); 3486 ResultRegs[1] = Hi.getReg(0); 3487 break; 3488 } 3489 case TargetOpcode::G_LSHR: 3490 case TargetOpcode::G_ASHR: { 3491 // Short: ShAmt < NewBitSize 3492 auto HiS = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy}, {InH, Amt}); 3493 3494 auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, Amt); 3495 auto HiOr = MIRBuilder.buildShl(HalfTy, InH, AmtLack); 3496 auto LoS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr); 3497 3498 // Long: ShAmt >= NewBitSize 3499 MachineInstrBuilder HiL; 3500 if (MI.getOpcode() == TargetOpcode::G_LSHR) { 3501 HiL = MIRBuilder.buildConstant(HalfTy, 0); // Hi part is zero. 3502 } else { 3503 auto ShiftAmt = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize - 1); 3504 HiL = MIRBuilder.buildAShr(HalfTy, InH, ShiftAmt); // Sign of Hi part. 3505 } 3506 auto LoL = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy}, 3507 {InH, AmtExcess}); // Lo from Hi part. 3508 3509 auto Lo = MIRBuilder.buildSelect( 3510 HalfTy, IsZero, InL, MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL)); 3511 3512 auto Hi = MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL); 3513 3514 ResultRegs[0] = Lo.getReg(0); 3515 ResultRegs[1] = Hi.getReg(0); 3516 break; 3517 } 3518 default: 3519 llvm_unreachable("not a shift"); 3520 } 3521 3522 MIRBuilder.buildMerge(DstReg, ResultRegs); 3523 MI.eraseFromParent(); 3524 return Legalized; 3525 } 3526 3527 LegalizerHelper::LegalizeResult 3528 LegalizerHelper::moreElementsVectorPhi(MachineInstr &MI, unsigned TypeIdx, 3529 LLT MoreTy) { 3530 assert(TypeIdx == 0 && "Expecting only Idx 0"); 3531 3532 Observer.changingInstr(MI); 3533 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) { 3534 MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB(); 3535 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator()); 3536 moreElementsVectorSrc(MI, MoreTy, I); 3537 } 3538 3539 MachineBasicBlock &MBB = *MI.getParent(); 3540 MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI()); 3541 moreElementsVectorDst(MI, MoreTy, 0); 3542 Observer.changedInstr(MI); 3543 return Legalized; 3544 } 3545 3546 LegalizerHelper::LegalizeResult 3547 LegalizerHelper::moreElementsVector(MachineInstr &MI, unsigned TypeIdx, 3548 LLT MoreTy) { 3549 MIRBuilder.setInstr(MI); 3550 unsigned Opc = MI.getOpcode(); 3551 switch (Opc) { 3552 case TargetOpcode::G_IMPLICIT_DEF: 3553 case TargetOpcode::G_LOAD: { 3554 if (TypeIdx != 0) 3555 return UnableToLegalize; 3556 Observer.changingInstr(MI); 3557 moreElementsVectorDst(MI, MoreTy, 0); 3558 Observer.changedInstr(MI); 3559 return Legalized; 3560 } 3561 case TargetOpcode::G_STORE: 3562 if (TypeIdx != 0) 3563 return UnableToLegalize; 3564 Observer.changingInstr(MI); 3565 moreElementsVectorSrc(MI, MoreTy, 0); 3566 Observer.changedInstr(MI); 3567 return Legalized; 3568 case TargetOpcode::G_AND: 3569 case TargetOpcode::G_OR: 3570 case TargetOpcode::G_XOR: 3571 case TargetOpcode::G_SMIN: 3572 case TargetOpcode::G_SMAX: 3573 case TargetOpcode::G_UMIN: 3574 case TargetOpcode::G_UMAX: 3575 case TargetOpcode::G_FMINNUM: 3576 case TargetOpcode::G_FMAXNUM: 3577 case TargetOpcode::G_FMINNUM_IEEE: 3578 case TargetOpcode::G_FMAXNUM_IEEE: 3579 case TargetOpcode::G_FMINIMUM: 3580 case TargetOpcode::G_FMAXIMUM: { 3581 Observer.changingInstr(MI); 3582 moreElementsVectorSrc(MI, MoreTy, 1); 3583 moreElementsVectorSrc(MI, MoreTy, 2); 3584 moreElementsVectorDst(MI, MoreTy, 0); 3585 Observer.changedInstr(MI); 3586 return Legalized; 3587 } 3588 case TargetOpcode::G_EXTRACT: 3589 if (TypeIdx != 1) 3590 return UnableToLegalize; 3591 Observer.changingInstr(MI); 3592 moreElementsVectorSrc(MI, MoreTy, 1); 3593 Observer.changedInstr(MI); 3594 return Legalized; 3595 case TargetOpcode::G_INSERT: 3596 if (TypeIdx != 0) 3597 return UnableToLegalize; 3598 Observer.changingInstr(MI); 3599 moreElementsVectorSrc(MI, MoreTy, 1); 3600 moreElementsVectorDst(MI, MoreTy, 0); 3601 Observer.changedInstr(MI); 3602 return Legalized; 3603 case TargetOpcode::G_SELECT: 3604 if (TypeIdx != 0) 3605 return UnableToLegalize; 3606 if (MRI.getType(MI.getOperand(1).getReg()).isVector()) 3607 return UnableToLegalize; 3608 3609 Observer.changingInstr(MI); 3610 moreElementsVectorSrc(MI, MoreTy, 2); 3611 moreElementsVectorSrc(MI, MoreTy, 3); 3612 moreElementsVectorDst(MI, MoreTy, 0); 3613 Observer.changedInstr(MI); 3614 return Legalized; 3615 case TargetOpcode::G_UNMERGE_VALUES: { 3616 if (TypeIdx != 1) 3617 return UnableToLegalize; 3618 3619 LLT DstTy = MRI.getType(MI.getOperand(0).getReg()); 3620 int NumDst = MI.getNumOperands() - 1; 3621 moreElementsVectorSrc(MI, MoreTy, NumDst); 3622 3623 auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES); 3624 for (int I = 0; I != NumDst; ++I) 3625 MIB.addDef(MI.getOperand(I).getReg()); 3626 3627 int NewNumDst = MoreTy.getSizeInBits() / DstTy.getSizeInBits(); 3628 for (int I = NumDst; I != NewNumDst; ++I) 3629 MIB.addDef(MRI.createGenericVirtualRegister(DstTy)); 3630 3631 MIB.addUse(MI.getOperand(NumDst).getReg()); 3632 MI.eraseFromParent(); 3633 return Legalized; 3634 } 3635 case TargetOpcode::G_PHI: 3636 return moreElementsVectorPhi(MI, TypeIdx, MoreTy); 3637 default: 3638 return UnableToLegalize; 3639 } 3640 } 3641 3642 void LegalizerHelper::multiplyRegisters(SmallVectorImpl<Register> &DstRegs, 3643 ArrayRef<Register> Src1Regs, 3644 ArrayRef<Register> Src2Regs, 3645 LLT NarrowTy) { 3646 MachineIRBuilder &B = MIRBuilder; 3647 unsigned SrcParts = Src1Regs.size(); 3648 unsigned DstParts = DstRegs.size(); 3649 3650 unsigned DstIdx = 0; // Low bits of the result. 3651 Register FactorSum = 3652 B.buildMul(NarrowTy, Src1Regs[DstIdx], Src2Regs[DstIdx]).getReg(0); 3653 DstRegs[DstIdx] = FactorSum; 3654 3655 unsigned CarrySumPrevDstIdx; 3656 SmallVector<Register, 4> Factors; 3657 3658 for (DstIdx = 1; DstIdx < DstParts; DstIdx++) { 3659 // Collect low parts of muls for DstIdx. 3660 for (unsigned i = DstIdx + 1 < SrcParts ? 0 : DstIdx - SrcParts + 1; 3661 i <= std::min(DstIdx, SrcParts - 1); ++i) { 3662 MachineInstrBuilder Mul = 3663 B.buildMul(NarrowTy, Src1Regs[DstIdx - i], Src2Regs[i]); 3664 Factors.push_back(Mul.getReg(0)); 3665 } 3666 // Collect high parts of muls from previous DstIdx. 3667 for (unsigned i = DstIdx < SrcParts ? 0 : DstIdx - SrcParts; 3668 i <= std::min(DstIdx - 1, SrcParts - 1); ++i) { 3669 MachineInstrBuilder Umulh = 3670 B.buildUMulH(NarrowTy, Src1Regs[DstIdx - 1 - i], Src2Regs[i]); 3671 Factors.push_back(Umulh.getReg(0)); 3672 } 3673 // Add CarrySum from additions calculated for previous DstIdx. 3674 if (DstIdx != 1) { 3675 Factors.push_back(CarrySumPrevDstIdx); 3676 } 3677 3678 Register CarrySum; 3679 // Add all factors and accumulate all carries into CarrySum. 3680 if (DstIdx != DstParts - 1) { 3681 MachineInstrBuilder Uaddo = 3682 B.buildUAddo(NarrowTy, LLT::scalar(1), Factors[0], Factors[1]); 3683 FactorSum = Uaddo.getReg(0); 3684 CarrySum = B.buildZExt(NarrowTy, Uaddo.getReg(1)).getReg(0); 3685 for (unsigned i = 2; i < Factors.size(); ++i) { 3686 MachineInstrBuilder Uaddo = 3687 B.buildUAddo(NarrowTy, LLT::scalar(1), FactorSum, Factors[i]); 3688 FactorSum = Uaddo.getReg(0); 3689 MachineInstrBuilder Carry = B.buildZExt(NarrowTy, Uaddo.getReg(1)); 3690 CarrySum = B.buildAdd(NarrowTy, CarrySum, Carry).getReg(0); 3691 } 3692 } else { 3693 // Since value for the next index is not calculated, neither is CarrySum. 3694 FactorSum = B.buildAdd(NarrowTy, Factors[0], Factors[1]).getReg(0); 3695 for (unsigned i = 2; i < Factors.size(); ++i) 3696 FactorSum = B.buildAdd(NarrowTy, FactorSum, Factors[i]).getReg(0); 3697 } 3698 3699 CarrySumPrevDstIdx = CarrySum; 3700 DstRegs[DstIdx] = FactorSum; 3701 Factors.clear(); 3702 } 3703 } 3704 3705 LegalizerHelper::LegalizeResult 3706 LegalizerHelper::narrowScalarMul(MachineInstr &MI, LLT NarrowTy) { 3707 Register DstReg = MI.getOperand(0).getReg(); 3708 Register Src1 = MI.getOperand(1).getReg(); 3709 Register Src2 = MI.getOperand(2).getReg(); 3710 3711 LLT Ty = MRI.getType(DstReg); 3712 if (Ty.isVector()) 3713 return UnableToLegalize; 3714 3715 unsigned SrcSize = MRI.getType(Src1).getSizeInBits(); 3716 unsigned DstSize = Ty.getSizeInBits(); 3717 unsigned NarrowSize = NarrowTy.getSizeInBits(); 3718 if (DstSize % NarrowSize != 0 || SrcSize % NarrowSize != 0) 3719 return UnableToLegalize; 3720 3721 unsigned NumDstParts = DstSize / NarrowSize; 3722 unsigned NumSrcParts = SrcSize / NarrowSize; 3723 bool IsMulHigh = MI.getOpcode() == TargetOpcode::G_UMULH; 3724 unsigned DstTmpParts = NumDstParts * (IsMulHigh ? 2 : 1); 3725 3726 SmallVector<Register, 2> Src1Parts, Src2Parts, DstTmpRegs; 3727 extractParts(Src1, NarrowTy, NumSrcParts, Src1Parts); 3728 extractParts(Src2, NarrowTy, NumSrcParts, Src2Parts); 3729 DstTmpRegs.resize(DstTmpParts); 3730 multiplyRegisters(DstTmpRegs, Src1Parts, Src2Parts, NarrowTy); 3731 3732 // Take only high half of registers if this is high mul. 3733 ArrayRef<Register> DstRegs( 3734 IsMulHigh ? &DstTmpRegs[DstTmpParts / 2] : &DstTmpRegs[0], NumDstParts); 3735 MIRBuilder.buildMerge(DstReg, DstRegs); 3736 MI.eraseFromParent(); 3737 return Legalized; 3738 } 3739 3740 LegalizerHelper::LegalizeResult 3741 LegalizerHelper::narrowScalarExtract(MachineInstr &MI, unsigned TypeIdx, 3742 LLT NarrowTy) { 3743 if (TypeIdx != 1) 3744 return UnableToLegalize; 3745 3746 uint64_t NarrowSize = NarrowTy.getSizeInBits(); 3747 3748 int64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3749 // FIXME: add support for when SizeOp1 isn't an exact multiple of 3750 // NarrowSize. 3751 if (SizeOp1 % NarrowSize != 0) 3752 return UnableToLegalize; 3753 int NumParts = SizeOp1 / NarrowSize; 3754 3755 SmallVector<Register, 2> SrcRegs, DstRegs; 3756 SmallVector<uint64_t, 2> Indexes; 3757 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs); 3758 3759 Register OpReg = MI.getOperand(0).getReg(); 3760 uint64_t OpStart = MI.getOperand(2).getImm(); 3761 uint64_t OpSize = MRI.getType(OpReg).getSizeInBits(); 3762 for (int i = 0; i < NumParts; ++i) { 3763 unsigned SrcStart = i * NarrowSize; 3764 3765 if (SrcStart + NarrowSize <= OpStart || SrcStart >= OpStart + OpSize) { 3766 // No part of the extract uses this subregister, ignore it. 3767 continue; 3768 } else if (SrcStart == OpStart && NarrowTy == MRI.getType(OpReg)) { 3769 // The entire subregister is extracted, forward the value. 3770 DstRegs.push_back(SrcRegs[i]); 3771 continue; 3772 } 3773 3774 // OpSegStart is where this destination segment would start in OpReg if it 3775 // extended infinitely in both directions. 3776 int64_t ExtractOffset; 3777 uint64_t SegSize; 3778 if (OpStart < SrcStart) { 3779 ExtractOffset = 0; 3780 SegSize = std::min(NarrowSize, OpStart + OpSize - SrcStart); 3781 } else { 3782 ExtractOffset = OpStart - SrcStart; 3783 SegSize = std::min(SrcStart + NarrowSize - OpStart, OpSize); 3784 } 3785 3786 Register SegReg = SrcRegs[i]; 3787 if (ExtractOffset != 0 || SegSize != NarrowSize) { 3788 // A genuine extract is needed. 3789 SegReg = MRI.createGenericVirtualRegister(LLT::scalar(SegSize)); 3790 MIRBuilder.buildExtract(SegReg, SrcRegs[i], ExtractOffset); 3791 } 3792 3793 DstRegs.push_back(SegReg); 3794 } 3795 3796 Register DstReg = MI.getOperand(0).getReg(); 3797 if(MRI.getType(DstReg).isVector()) 3798 MIRBuilder.buildBuildVector(DstReg, DstRegs); 3799 else 3800 MIRBuilder.buildMerge(DstReg, DstRegs); 3801 MI.eraseFromParent(); 3802 return Legalized; 3803 } 3804 3805 LegalizerHelper::LegalizeResult 3806 LegalizerHelper::narrowScalarInsert(MachineInstr &MI, unsigned TypeIdx, 3807 LLT NarrowTy) { 3808 // FIXME: Don't know how to handle secondary types yet. 3809 if (TypeIdx != 0) 3810 return UnableToLegalize; 3811 3812 uint64_t SizeOp0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3813 uint64_t NarrowSize = NarrowTy.getSizeInBits(); 3814 3815 // FIXME: add support for when SizeOp0 isn't an exact multiple of 3816 // NarrowSize. 3817 if (SizeOp0 % NarrowSize != 0) 3818 return UnableToLegalize; 3819 3820 int NumParts = SizeOp0 / NarrowSize; 3821 3822 SmallVector<Register, 2> SrcRegs, DstRegs; 3823 SmallVector<uint64_t, 2> Indexes; 3824 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs); 3825 3826 Register OpReg = MI.getOperand(2).getReg(); 3827 uint64_t OpStart = MI.getOperand(3).getImm(); 3828 uint64_t OpSize = MRI.getType(OpReg).getSizeInBits(); 3829 for (int i = 0; i < NumParts; ++i) { 3830 unsigned DstStart = i * NarrowSize; 3831 3832 if (DstStart + NarrowSize <= OpStart || DstStart >= OpStart + OpSize) { 3833 // No part of the insert affects this subregister, forward the original. 3834 DstRegs.push_back(SrcRegs[i]); 3835 continue; 3836 } else if (DstStart == OpStart && NarrowTy == MRI.getType(OpReg)) { 3837 // The entire subregister is defined by this insert, forward the new 3838 // value. 3839 DstRegs.push_back(OpReg); 3840 continue; 3841 } 3842 3843 // OpSegStart is where this destination segment would start in OpReg if it 3844 // extended infinitely in both directions. 3845 int64_t ExtractOffset, InsertOffset; 3846 uint64_t SegSize; 3847 if (OpStart < DstStart) { 3848 InsertOffset = 0; 3849 ExtractOffset = DstStart - OpStart; 3850 SegSize = std::min(NarrowSize, OpStart + OpSize - DstStart); 3851 } else { 3852 InsertOffset = OpStart - DstStart; 3853 ExtractOffset = 0; 3854 SegSize = 3855 std::min(NarrowSize - InsertOffset, OpStart + OpSize - DstStart); 3856 } 3857 3858 Register SegReg = OpReg; 3859 if (ExtractOffset != 0 || SegSize != OpSize) { 3860 // A genuine extract is needed. 3861 SegReg = MRI.createGenericVirtualRegister(LLT::scalar(SegSize)); 3862 MIRBuilder.buildExtract(SegReg, OpReg, ExtractOffset); 3863 } 3864 3865 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy); 3866 MIRBuilder.buildInsert(DstReg, SrcRegs[i], SegReg, InsertOffset); 3867 DstRegs.push_back(DstReg); 3868 } 3869 3870 assert(DstRegs.size() == (unsigned)NumParts && "not all parts covered"); 3871 Register DstReg = MI.getOperand(0).getReg(); 3872 if(MRI.getType(DstReg).isVector()) 3873 MIRBuilder.buildBuildVector(DstReg, DstRegs); 3874 else 3875 MIRBuilder.buildMerge(DstReg, DstRegs); 3876 MI.eraseFromParent(); 3877 return Legalized; 3878 } 3879 3880 LegalizerHelper::LegalizeResult 3881 LegalizerHelper::narrowScalarBasic(MachineInstr &MI, unsigned TypeIdx, 3882 LLT NarrowTy) { 3883 Register DstReg = MI.getOperand(0).getReg(); 3884 LLT DstTy = MRI.getType(DstReg); 3885 3886 assert(MI.getNumOperands() == 3 && TypeIdx == 0); 3887 3888 SmallVector<Register, 4> DstRegs, DstLeftoverRegs; 3889 SmallVector<Register, 4> Src0Regs, Src0LeftoverRegs; 3890 SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs; 3891 LLT LeftoverTy; 3892 if (!extractParts(MI.getOperand(1).getReg(), DstTy, NarrowTy, LeftoverTy, 3893 Src0Regs, Src0LeftoverRegs)) 3894 return UnableToLegalize; 3895 3896 LLT Unused; 3897 if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, Unused, 3898 Src1Regs, Src1LeftoverRegs)) 3899 llvm_unreachable("inconsistent extractParts result"); 3900 3901 for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) { 3902 auto Inst = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy}, 3903 {Src0Regs[I], Src1Regs[I]}); 3904 DstRegs.push_back(Inst.getReg(0)); 3905 } 3906 3907 for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) { 3908 auto Inst = MIRBuilder.buildInstr( 3909 MI.getOpcode(), 3910 {LeftoverTy}, {Src0LeftoverRegs[I], Src1LeftoverRegs[I]}); 3911 DstLeftoverRegs.push_back(Inst.getReg(0)); 3912 } 3913 3914 insertParts(DstReg, DstTy, NarrowTy, DstRegs, 3915 LeftoverTy, DstLeftoverRegs); 3916 3917 MI.eraseFromParent(); 3918 return Legalized; 3919 } 3920 3921 LegalizerHelper::LegalizeResult 3922 LegalizerHelper::narrowScalarExt(MachineInstr &MI, unsigned TypeIdx, 3923 LLT NarrowTy) { 3924 if (TypeIdx != 0) 3925 return UnableToLegalize; 3926 3927 Register DstReg = MI.getOperand(0).getReg(); 3928 Register SrcReg = MI.getOperand(1).getReg(); 3929 3930 LLT DstTy = MRI.getType(DstReg); 3931 if (DstTy.isVector()) 3932 return UnableToLegalize; 3933 3934 SmallVector<Register, 8> Parts; 3935 LLT GCDTy = extractGCDType(Parts, DstTy, NarrowTy, SrcReg); 3936 LLT LCMTy = buildLCMMergePieces(DstTy, NarrowTy, GCDTy, Parts, MI.getOpcode()); 3937 buildWidenedRemergeToDst(DstReg, LCMTy, Parts); 3938 3939 MI.eraseFromParent(); 3940 return Legalized; 3941 } 3942 3943 LegalizerHelper::LegalizeResult 3944 LegalizerHelper::narrowScalarSelect(MachineInstr &MI, unsigned TypeIdx, 3945 LLT NarrowTy) { 3946 if (TypeIdx != 0) 3947 return UnableToLegalize; 3948 3949 Register CondReg = MI.getOperand(1).getReg(); 3950 LLT CondTy = MRI.getType(CondReg); 3951 if (CondTy.isVector()) // TODO: Handle vselect 3952 return UnableToLegalize; 3953 3954 Register DstReg = MI.getOperand(0).getReg(); 3955 LLT DstTy = MRI.getType(DstReg); 3956 3957 SmallVector<Register, 4> DstRegs, DstLeftoverRegs; 3958 SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs; 3959 SmallVector<Register, 4> Src2Regs, Src2LeftoverRegs; 3960 LLT LeftoverTy; 3961 if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, LeftoverTy, 3962 Src1Regs, Src1LeftoverRegs)) 3963 return UnableToLegalize; 3964 3965 LLT Unused; 3966 if (!extractParts(MI.getOperand(3).getReg(), DstTy, NarrowTy, Unused, 3967 Src2Regs, Src2LeftoverRegs)) 3968 llvm_unreachable("inconsistent extractParts result"); 3969 3970 for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) { 3971 auto Select = MIRBuilder.buildSelect(NarrowTy, 3972 CondReg, Src1Regs[I], Src2Regs[I]); 3973 DstRegs.push_back(Select.getReg(0)); 3974 } 3975 3976 for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) { 3977 auto Select = MIRBuilder.buildSelect( 3978 LeftoverTy, CondReg, Src1LeftoverRegs[I], Src2LeftoverRegs[I]); 3979 DstLeftoverRegs.push_back(Select.getReg(0)); 3980 } 3981 3982 insertParts(DstReg, DstTy, NarrowTy, DstRegs, 3983 LeftoverTy, DstLeftoverRegs); 3984 3985 MI.eraseFromParent(); 3986 return Legalized; 3987 } 3988 3989 LegalizerHelper::LegalizeResult 3990 LegalizerHelper::narrowScalarCTLZ(MachineInstr &MI, unsigned TypeIdx, 3991 LLT NarrowTy) { 3992 if (TypeIdx != 1) 3993 return UnableToLegalize; 3994 3995 LLT SrcTy = MRI.getType(MI.getOperand(1).getReg()); 3996 unsigned NarrowSize = NarrowTy.getSizeInBits(); 3997 3998 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) { 3999 MachineIRBuilder &B = MIRBuilder; 4000 auto UnmergeSrc = B.buildUnmerge(NarrowTy, MI.getOperand(1)); 4001 // ctlz(Hi:Lo) -> Hi == 0 ? (NarrowSize + ctlz(Lo)) : ctlz(Hi) 4002 auto C_0 = B.buildConstant(NarrowTy, 0); 4003 auto HiIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1), 4004 UnmergeSrc.getReg(1), C_0); 4005 auto LoCTLZ = B.buildCTLZ(NarrowTy, UnmergeSrc.getReg(0)); 4006 auto C_NarrowSize = B.buildConstant(NarrowTy, NarrowSize); 4007 auto HiIsZeroCTLZ = B.buildAdd(NarrowTy, LoCTLZ, C_NarrowSize); 4008 auto HiCTLZ = B.buildCTLZ_ZERO_UNDEF(NarrowTy, UnmergeSrc.getReg(1)); 4009 auto LoOut = B.buildSelect(NarrowTy, HiIsZero, HiIsZeroCTLZ, HiCTLZ); 4010 4011 B.buildMerge(MI.getOperand(0), {LoOut.getReg(0), C_0.getReg(0)}); 4012 4013 MI.eraseFromParent(); 4014 return Legalized; 4015 } 4016 4017 return UnableToLegalize; 4018 } 4019 4020 LegalizerHelper::LegalizeResult 4021 LegalizerHelper::narrowScalarCTTZ(MachineInstr &MI, unsigned TypeIdx, 4022 LLT NarrowTy) { 4023 if (TypeIdx != 1) 4024 return UnableToLegalize; 4025 4026 LLT SrcTy = MRI.getType(MI.getOperand(1).getReg()); 4027 unsigned NarrowSize = NarrowTy.getSizeInBits(); 4028 4029 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) { 4030 MachineIRBuilder &B = MIRBuilder; 4031 auto UnmergeSrc = B.buildUnmerge(NarrowTy, MI.getOperand(1)); 4032 // cttz(Hi:Lo) -> Lo == 0 ? (cttz(Hi) + NarrowSize) : cttz(Lo) 4033 auto C_0 = B.buildConstant(NarrowTy, 0); 4034 auto LoIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1), 4035 UnmergeSrc.getReg(0), C_0); 4036 auto HiCTTZ = B.buildCTTZ(NarrowTy, UnmergeSrc.getReg(1)); 4037 auto C_NarrowSize = B.buildConstant(NarrowTy, NarrowSize); 4038 auto LoIsZeroCTTZ = B.buildAdd(NarrowTy, HiCTTZ, C_NarrowSize); 4039 auto LoCTTZ = B.buildCTTZ_ZERO_UNDEF(NarrowTy, UnmergeSrc.getReg(0)); 4040 auto LoOut = B.buildSelect(NarrowTy, LoIsZero, LoIsZeroCTTZ, LoCTTZ); 4041 4042 B.buildMerge(MI.getOperand(0), {LoOut.getReg(0), C_0.getReg(0)}); 4043 4044 MI.eraseFromParent(); 4045 return Legalized; 4046 } 4047 4048 return UnableToLegalize; 4049 } 4050 4051 LegalizerHelper::LegalizeResult 4052 LegalizerHelper::narrowScalarCTPOP(MachineInstr &MI, unsigned TypeIdx, 4053 LLT NarrowTy) { 4054 if (TypeIdx != 1) 4055 return UnableToLegalize; 4056 4057 LLT SrcTy = MRI.getType(MI.getOperand(1).getReg()); 4058 unsigned NarrowSize = NarrowTy.getSizeInBits(); 4059 4060 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) { 4061 auto UnmergeSrc = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1)); 4062 4063 auto LoCTPOP = MIRBuilder.buildCTPOP(NarrowTy, UnmergeSrc.getReg(0)); 4064 auto HiCTPOP = MIRBuilder.buildCTPOP(NarrowTy, UnmergeSrc.getReg(1)); 4065 auto Out = MIRBuilder.buildAdd(NarrowTy, HiCTPOP, LoCTPOP); 4066 MIRBuilder.buildZExt(MI.getOperand(0), Out); 4067 4068 MI.eraseFromParent(); 4069 return Legalized; 4070 } 4071 4072 return UnableToLegalize; 4073 } 4074 4075 LegalizerHelper::LegalizeResult 4076 LegalizerHelper::lowerBitCount(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4077 unsigned Opc = MI.getOpcode(); 4078 auto &TII = *MI.getMF()->getSubtarget().getInstrInfo(); 4079 auto isSupported = [this](const LegalityQuery &Q) { 4080 auto QAction = LI.getAction(Q).Action; 4081 return QAction == Legal || QAction == Libcall || QAction == Custom; 4082 }; 4083 switch (Opc) { 4084 default: 4085 return UnableToLegalize; 4086 case TargetOpcode::G_CTLZ_ZERO_UNDEF: { 4087 // This trivially expands to CTLZ. 4088 Observer.changingInstr(MI); 4089 MI.setDesc(TII.get(TargetOpcode::G_CTLZ)); 4090 Observer.changedInstr(MI); 4091 return Legalized; 4092 } 4093 case TargetOpcode::G_CTLZ: { 4094 Register SrcReg = MI.getOperand(1).getReg(); 4095 unsigned Len = Ty.getSizeInBits(); 4096 if (isSupported({TargetOpcode::G_CTLZ_ZERO_UNDEF, {Ty, Ty}})) { 4097 // If CTLZ_ZERO_UNDEF is supported, emit that and a select for zero. 4098 auto MIBCtlzZU = MIRBuilder.buildCTLZ_ZERO_UNDEF(Ty, SrcReg); 4099 auto MIBZero = MIRBuilder.buildConstant(Ty, 0); 4100 auto MIBLen = MIRBuilder.buildConstant(Ty, Len); 4101 auto MIBICmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1), 4102 SrcReg, MIBZero); 4103 MIRBuilder.buildSelect(MI.getOperand(0), MIBICmp, MIBLen, MIBCtlzZU); 4104 MI.eraseFromParent(); 4105 return Legalized; 4106 } 4107 // for now, we do this: 4108 // NewLen = NextPowerOf2(Len); 4109 // x = x | (x >> 1); 4110 // x = x | (x >> 2); 4111 // ... 4112 // x = x | (x >>16); 4113 // x = x | (x >>32); // for 64-bit input 4114 // Upto NewLen/2 4115 // return Len - popcount(x); 4116 // 4117 // Ref: "Hacker's Delight" by Henry Warren 4118 Register Op = SrcReg; 4119 unsigned NewLen = PowerOf2Ceil(Len); 4120 for (unsigned i = 0; (1U << i) <= (NewLen / 2); ++i) { 4121 auto MIBShiftAmt = MIRBuilder.buildConstant(Ty, 1ULL << i); 4122 auto MIBOp = 4123 MIRBuilder.buildOr(Ty, Op, MIRBuilder.buildLShr(Ty, Op, MIBShiftAmt)); 4124 Op = MIBOp.getReg(0); 4125 } 4126 auto MIBPop = MIRBuilder.buildCTPOP(Ty, Op); 4127 MIRBuilder.buildSub(MI.getOperand(0), MIRBuilder.buildConstant(Ty, Len), 4128 MIBPop); 4129 MI.eraseFromParent(); 4130 return Legalized; 4131 } 4132 case TargetOpcode::G_CTTZ_ZERO_UNDEF: { 4133 // This trivially expands to CTTZ. 4134 Observer.changingInstr(MI); 4135 MI.setDesc(TII.get(TargetOpcode::G_CTTZ)); 4136 Observer.changedInstr(MI); 4137 return Legalized; 4138 } 4139 case TargetOpcode::G_CTTZ: { 4140 Register SrcReg = MI.getOperand(1).getReg(); 4141 unsigned Len = Ty.getSizeInBits(); 4142 if (isSupported({TargetOpcode::G_CTTZ_ZERO_UNDEF, {Ty, Ty}})) { 4143 // If CTTZ_ZERO_UNDEF is legal or custom, emit that and a select with 4144 // zero. 4145 auto MIBCttzZU = MIRBuilder.buildCTTZ_ZERO_UNDEF(Ty, SrcReg); 4146 auto MIBZero = MIRBuilder.buildConstant(Ty, 0); 4147 auto MIBLen = MIRBuilder.buildConstant(Ty, Len); 4148 auto MIBICmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1), 4149 SrcReg, MIBZero); 4150 MIRBuilder.buildSelect(MI.getOperand(0), MIBICmp, MIBLen, MIBCttzZU); 4151 MI.eraseFromParent(); 4152 return Legalized; 4153 } 4154 // for now, we use: { return popcount(~x & (x - 1)); } 4155 // unless the target has ctlz but not ctpop, in which case we use: 4156 // { return 32 - nlz(~x & (x-1)); } 4157 // Ref: "Hacker's Delight" by Henry Warren 4158 auto MIBCstNeg1 = MIRBuilder.buildConstant(Ty, -1); 4159 auto MIBNot = MIRBuilder.buildXor(Ty, SrcReg, MIBCstNeg1); 4160 auto MIBTmp = MIRBuilder.buildAnd( 4161 Ty, MIBNot, MIRBuilder.buildAdd(Ty, SrcReg, MIBCstNeg1)); 4162 if (!isSupported({TargetOpcode::G_CTPOP, {Ty, Ty}}) && 4163 isSupported({TargetOpcode::G_CTLZ, {Ty, Ty}})) { 4164 auto MIBCstLen = MIRBuilder.buildConstant(Ty, Len); 4165 MIRBuilder.buildSub(MI.getOperand(0), MIBCstLen, 4166 MIRBuilder.buildCTLZ(Ty, MIBTmp)); 4167 MI.eraseFromParent(); 4168 return Legalized; 4169 } 4170 MI.setDesc(TII.get(TargetOpcode::G_CTPOP)); 4171 MI.getOperand(1).setReg(MIBTmp.getReg(0)); 4172 return Legalized; 4173 } 4174 case TargetOpcode::G_CTPOP: { 4175 unsigned Size = Ty.getSizeInBits(); 4176 MachineIRBuilder &B = MIRBuilder; 4177 4178 // Count set bits in blocks of 2 bits. Default approach would be 4179 // B2Count = { val & 0x55555555 } + { (val >> 1) & 0x55555555 } 4180 // We use following formula instead: 4181 // B2Count = val - { (val >> 1) & 0x55555555 } 4182 // since it gives same result in blocks of 2 with one instruction less. 4183 auto C_1 = B.buildConstant(Ty, 1); 4184 auto B2Set1LoTo1Hi = B.buildLShr(Ty, MI.getOperand(1).getReg(), C_1); 4185 APInt B2Mask1HiTo0 = APInt::getSplat(Size, APInt(8, 0x55)); 4186 auto C_B2Mask1HiTo0 = B.buildConstant(Ty, B2Mask1HiTo0); 4187 auto B2Count1Hi = B.buildAnd(Ty, B2Set1LoTo1Hi, C_B2Mask1HiTo0); 4188 auto B2Count = B.buildSub(Ty, MI.getOperand(1).getReg(), B2Count1Hi); 4189 4190 // In order to get count in blocks of 4 add values from adjacent block of 2. 4191 // B4Count = { B2Count & 0x33333333 } + { (B2Count >> 2) & 0x33333333 } 4192 auto C_2 = B.buildConstant(Ty, 2); 4193 auto B4Set2LoTo2Hi = B.buildLShr(Ty, B2Count, C_2); 4194 APInt B4Mask2HiTo0 = APInt::getSplat(Size, APInt(8, 0x33)); 4195 auto C_B4Mask2HiTo0 = B.buildConstant(Ty, B4Mask2HiTo0); 4196 auto B4HiB2Count = B.buildAnd(Ty, B4Set2LoTo2Hi, C_B4Mask2HiTo0); 4197 auto B4LoB2Count = B.buildAnd(Ty, B2Count, C_B4Mask2HiTo0); 4198 auto B4Count = B.buildAdd(Ty, B4HiB2Count, B4LoB2Count); 4199 4200 // For count in blocks of 8 bits we don't have to mask high 4 bits before 4201 // addition since count value sits in range {0,...,8} and 4 bits are enough 4202 // to hold such binary values. After addition high 4 bits still hold count 4203 // of set bits in high 4 bit block, set them to zero and get 8 bit result. 4204 // B8Count = { B4Count + (B4Count >> 4) } & 0x0F0F0F0F 4205 auto C_4 = B.buildConstant(Ty, 4); 4206 auto B8HiB4Count = B.buildLShr(Ty, B4Count, C_4); 4207 auto B8CountDirty4Hi = B.buildAdd(Ty, B8HiB4Count, B4Count); 4208 APInt B8Mask4HiTo0 = APInt::getSplat(Size, APInt(8, 0x0F)); 4209 auto C_B8Mask4HiTo0 = B.buildConstant(Ty, B8Mask4HiTo0); 4210 auto B8Count = B.buildAnd(Ty, B8CountDirty4Hi, C_B8Mask4HiTo0); 4211 4212 assert(Size<=128 && "Scalar size is too large for CTPOP lower algorithm"); 4213 // 8 bits can hold CTPOP result of 128 bit int or smaller. Mul with this 4214 // bitmask will set 8 msb in ResTmp to sum of all B8Counts in 8 bit blocks. 4215 auto MulMask = B.buildConstant(Ty, APInt::getSplat(Size, APInt(8, 0x01))); 4216 auto ResTmp = B.buildMul(Ty, B8Count, MulMask); 4217 4218 // Shift count result from 8 high bits to low bits. 4219 auto C_SizeM8 = B.buildConstant(Ty, Size - 8); 4220 B.buildLShr(MI.getOperand(0).getReg(), ResTmp, C_SizeM8); 4221 4222 MI.eraseFromParent(); 4223 return Legalized; 4224 } 4225 } 4226 } 4227 4228 // Expand s32 = G_UITOFP s64 using bit operations to an IEEE float 4229 // representation. 4230 LegalizerHelper::LegalizeResult 4231 LegalizerHelper::lowerU64ToF32BitOps(MachineInstr &MI) { 4232 Register Dst = MI.getOperand(0).getReg(); 4233 Register Src = MI.getOperand(1).getReg(); 4234 const LLT S64 = LLT::scalar(64); 4235 const LLT S32 = LLT::scalar(32); 4236 const LLT S1 = LLT::scalar(1); 4237 4238 assert(MRI.getType(Src) == S64 && MRI.getType(Dst) == S32); 4239 4240 // unsigned cul2f(ulong u) { 4241 // uint lz = clz(u); 4242 // uint e = (u != 0) ? 127U + 63U - lz : 0; 4243 // u = (u << lz) & 0x7fffffffffffffffUL; 4244 // ulong t = u & 0xffffffffffUL; 4245 // uint v = (e << 23) | (uint)(u >> 40); 4246 // uint r = t > 0x8000000000UL ? 1U : (t == 0x8000000000UL ? v & 1U : 0U); 4247 // return as_float(v + r); 4248 // } 4249 4250 auto Zero32 = MIRBuilder.buildConstant(S32, 0); 4251 auto Zero64 = MIRBuilder.buildConstant(S64, 0); 4252 4253 auto LZ = MIRBuilder.buildCTLZ_ZERO_UNDEF(S32, Src); 4254 4255 auto K = MIRBuilder.buildConstant(S32, 127U + 63U); 4256 auto Sub = MIRBuilder.buildSub(S32, K, LZ); 4257 4258 auto NotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, Src, Zero64); 4259 auto E = MIRBuilder.buildSelect(S32, NotZero, Sub, Zero32); 4260 4261 auto Mask0 = MIRBuilder.buildConstant(S64, (-1ULL) >> 1); 4262 auto ShlLZ = MIRBuilder.buildShl(S64, Src, LZ); 4263 4264 auto U = MIRBuilder.buildAnd(S64, ShlLZ, Mask0); 4265 4266 auto Mask1 = MIRBuilder.buildConstant(S64, 0xffffffffffULL); 4267 auto T = MIRBuilder.buildAnd(S64, U, Mask1); 4268 4269 auto UShl = MIRBuilder.buildLShr(S64, U, MIRBuilder.buildConstant(S64, 40)); 4270 auto ShlE = MIRBuilder.buildShl(S32, E, MIRBuilder.buildConstant(S32, 23)); 4271 auto V = MIRBuilder.buildOr(S32, ShlE, MIRBuilder.buildTrunc(S32, UShl)); 4272 4273 auto C = MIRBuilder.buildConstant(S64, 0x8000000000ULL); 4274 auto RCmp = MIRBuilder.buildICmp(CmpInst::ICMP_UGT, S1, T, C); 4275 auto TCmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, S1, T, C); 4276 auto One = MIRBuilder.buildConstant(S32, 1); 4277 4278 auto VTrunc1 = MIRBuilder.buildAnd(S32, V, One); 4279 auto Select0 = MIRBuilder.buildSelect(S32, TCmp, VTrunc1, Zero32); 4280 auto R = MIRBuilder.buildSelect(S32, RCmp, One, Select0); 4281 MIRBuilder.buildAdd(Dst, V, R); 4282 4283 return Legalized; 4284 } 4285 4286 LegalizerHelper::LegalizeResult 4287 LegalizerHelper::lowerUITOFP(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4288 Register Dst = MI.getOperand(0).getReg(); 4289 Register Src = MI.getOperand(1).getReg(); 4290 LLT DstTy = MRI.getType(Dst); 4291 LLT SrcTy = MRI.getType(Src); 4292 4293 if (SrcTy == LLT::scalar(1)) { 4294 auto True = MIRBuilder.buildFConstant(DstTy, 1.0); 4295 auto False = MIRBuilder.buildFConstant(DstTy, 0.0); 4296 MIRBuilder.buildSelect(Dst, Src, True, False); 4297 MI.eraseFromParent(); 4298 return Legalized; 4299 } 4300 4301 if (SrcTy != LLT::scalar(64)) 4302 return UnableToLegalize; 4303 4304 if (DstTy == LLT::scalar(32)) { 4305 // TODO: SelectionDAG has several alternative expansions to port which may 4306 // be more reasonble depending on the available instructions. If a target 4307 // has sitofp, does not have CTLZ, or can efficiently use f64 as an 4308 // intermediate type, this is probably worse. 4309 return lowerU64ToF32BitOps(MI); 4310 } 4311 4312 return UnableToLegalize; 4313 } 4314 4315 LegalizerHelper::LegalizeResult 4316 LegalizerHelper::lowerSITOFP(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4317 Register Dst = MI.getOperand(0).getReg(); 4318 Register Src = MI.getOperand(1).getReg(); 4319 LLT DstTy = MRI.getType(Dst); 4320 LLT SrcTy = MRI.getType(Src); 4321 4322 const LLT S64 = LLT::scalar(64); 4323 const LLT S32 = LLT::scalar(32); 4324 const LLT S1 = LLT::scalar(1); 4325 4326 if (SrcTy == S1) { 4327 auto True = MIRBuilder.buildFConstant(DstTy, -1.0); 4328 auto False = MIRBuilder.buildFConstant(DstTy, 0.0); 4329 MIRBuilder.buildSelect(Dst, Src, True, False); 4330 MI.eraseFromParent(); 4331 return Legalized; 4332 } 4333 4334 if (SrcTy != S64) 4335 return UnableToLegalize; 4336 4337 if (DstTy == S32) { 4338 // signed cl2f(long l) { 4339 // long s = l >> 63; 4340 // float r = cul2f((l + s) ^ s); 4341 // return s ? -r : r; 4342 // } 4343 Register L = Src; 4344 auto SignBit = MIRBuilder.buildConstant(S64, 63); 4345 auto S = MIRBuilder.buildAShr(S64, L, SignBit); 4346 4347 auto LPlusS = MIRBuilder.buildAdd(S64, L, S); 4348 auto Xor = MIRBuilder.buildXor(S64, LPlusS, S); 4349 auto R = MIRBuilder.buildUITOFP(S32, Xor); 4350 4351 auto RNeg = MIRBuilder.buildFNeg(S32, R); 4352 auto SignNotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, S, 4353 MIRBuilder.buildConstant(S64, 0)); 4354 MIRBuilder.buildSelect(Dst, SignNotZero, RNeg, R); 4355 return Legalized; 4356 } 4357 4358 return UnableToLegalize; 4359 } 4360 4361 LegalizerHelper::LegalizeResult 4362 LegalizerHelper::lowerFPTOUI(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4363 Register Dst = MI.getOperand(0).getReg(); 4364 Register Src = MI.getOperand(1).getReg(); 4365 LLT DstTy = MRI.getType(Dst); 4366 LLT SrcTy = MRI.getType(Src); 4367 const LLT S64 = LLT::scalar(64); 4368 const LLT S32 = LLT::scalar(32); 4369 4370 if (SrcTy != S64 && SrcTy != S32) 4371 return UnableToLegalize; 4372 if (DstTy != S32 && DstTy != S64) 4373 return UnableToLegalize; 4374 4375 // FPTOSI gives same result as FPTOUI for positive signed integers. 4376 // FPTOUI needs to deal with fp values that convert to unsigned integers 4377 // greater or equal to 2^31 for float or 2^63 for double. For brevity 2^Exp. 4378 4379 APInt TwoPExpInt = APInt::getSignMask(DstTy.getSizeInBits()); 4380 APFloat TwoPExpFP(SrcTy.getSizeInBits() == 32 ? APFloat::IEEEsingle() 4381 : APFloat::IEEEdouble(), 4382 APInt::getNullValue(SrcTy.getSizeInBits())); 4383 TwoPExpFP.convertFromAPInt(TwoPExpInt, false, APFloat::rmNearestTiesToEven); 4384 4385 MachineInstrBuilder FPTOSI = MIRBuilder.buildFPTOSI(DstTy, Src); 4386 4387 MachineInstrBuilder Threshold = MIRBuilder.buildFConstant(SrcTy, TwoPExpFP); 4388 // For fp Value greater or equal to Threshold(2^Exp), we use FPTOSI on 4389 // (Value - 2^Exp) and add 2^Exp by setting highest bit in result to 1. 4390 MachineInstrBuilder FSub = MIRBuilder.buildFSub(SrcTy, Src, Threshold); 4391 MachineInstrBuilder ResLowBits = MIRBuilder.buildFPTOSI(DstTy, FSub); 4392 MachineInstrBuilder ResHighBit = MIRBuilder.buildConstant(DstTy, TwoPExpInt); 4393 MachineInstrBuilder Res = MIRBuilder.buildXor(DstTy, ResLowBits, ResHighBit); 4394 4395 const LLT S1 = LLT::scalar(1); 4396 4397 MachineInstrBuilder FCMP = 4398 MIRBuilder.buildFCmp(CmpInst::FCMP_ULT, S1, Src, Threshold); 4399 MIRBuilder.buildSelect(Dst, FCMP, FPTOSI, Res); 4400 4401 MI.eraseFromParent(); 4402 return Legalized; 4403 } 4404 4405 LegalizerHelper::LegalizeResult LegalizerHelper::lowerFPTOSI(MachineInstr &MI) { 4406 Register Dst = MI.getOperand(0).getReg(); 4407 Register Src = MI.getOperand(1).getReg(); 4408 LLT DstTy = MRI.getType(Dst); 4409 LLT SrcTy = MRI.getType(Src); 4410 const LLT S64 = LLT::scalar(64); 4411 const LLT S32 = LLT::scalar(32); 4412 4413 // FIXME: Only f32 to i64 conversions are supported. 4414 if (SrcTy.getScalarType() != S32 || DstTy.getScalarType() != S64) 4415 return UnableToLegalize; 4416 4417 // Expand f32 -> i64 conversion 4418 // This algorithm comes from compiler-rt's implementation of fixsfdi: 4419 // https://github.com/llvm/llvm-project/blob/master/compiler-rt/lib/builtins/fixsfdi.c 4420 4421 unsigned SrcEltBits = SrcTy.getScalarSizeInBits(); 4422 4423 auto ExponentMask = MIRBuilder.buildConstant(SrcTy, 0x7F800000); 4424 auto ExponentLoBit = MIRBuilder.buildConstant(SrcTy, 23); 4425 4426 auto AndExpMask = MIRBuilder.buildAnd(SrcTy, Src, ExponentMask); 4427 auto ExponentBits = MIRBuilder.buildLShr(SrcTy, AndExpMask, ExponentLoBit); 4428 4429 auto SignMask = MIRBuilder.buildConstant(SrcTy, 4430 APInt::getSignMask(SrcEltBits)); 4431 auto AndSignMask = MIRBuilder.buildAnd(SrcTy, Src, SignMask); 4432 auto SignLowBit = MIRBuilder.buildConstant(SrcTy, SrcEltBits - 1); 4433 auto Sign = MIRBuilder.buildAShr(SrcTy, AndSignMask, SignLowBit); 4434 Sign = MIRBuilder.buildSExt(DstTy, Sign); 4435 4436 auto MantissaMask = MIRBuilder.buildConstant(SrcTy, 0x007FFFFF); 4437 auto AndMantissaMask = MIRBuilder.buildAnd(SrcTy, Src, MantissaMask); 4438 auto K = MIRBuilder.buildConstant(SrcTy, 0x00800000); 4439 4440 auto R = MIRBuilder.buildOr(SrcTy, AndMantissaMask, K); 4441 R = MIRBuilder.buildZExt(DstTy, R); 4442 4443 auto Bias = MIRBuilder.buildConstant(SrcTy, 127); 4444 auto Exponent = MIRBuilder.buildSub(SrcTy, ExponentBits, Bias); 4445 auto SubExponent = MIRBuilder.buildSub(SrcTy, Exponent, ExponentLoBit); 4446 auto ExponentSub = MIRBuilder.buildSub(SrcTy, ExponentLoBit, Exponent); 4447 4448 auto Shl = MIRBuilder.buildShl(DstTy, R, SubExponent); 4449 auto Srl = MIRBuilder.buildLShr(DstTy, R, ExponentSub); 4450 4451 const LLT S1 = LLT::scalar(1); 4452 auto CmpGt = MIRBuilder.buildICmp(CmpInst::ICMP_SGT, 4453 S1, Exponent, ExponentLoBit); 4454 4455 R = MIRBuilder.buildSelect(DstTy, CmpGt, Shl, Srl); 4456 4457 auto XorSign = MIRBuilder.buildXor(DstTy, R, Sign); 4458 auto Ret = MIRBuilder.buildSub(DstTy, XorSign, Sign); 4459 4460 auto ZeroSrcTy = MIRBuilder.buildConstant(SrcTy, 0); 4461 4462 auto ExponentLt0 = MIRBuilder.buildICmp(CmpInst::ICMP_SLT, 4463 S1, Exponent, ZeroSrcTy); 4464 4465 auto ZeroDstTy = MIRBuilder.buildConstant(DstTy, 0); 4466 MIRBuilder.buildSelect(Dst, ExponentLt0, ZeroDstTy, Ret); 4467 4468 MI.eraseFromParent(); 4469 return Legalized; 4470 } 4471 4472 static CmpInst::Predicate minMaxToCompare(unsigned Opc) { 4473 switch (Opc) { 4474 case TargetOpcode::G_SMIN: 4475 return CmpInst::ICMP_SLT; 4476 case TargetOpcode::G_SMAX: 4477 return CmpInst::ICMP_SGT; 4478 case TargetOpcode::G_UMIN: 4479 return CmpInst::ICMP_ULT; 4480 case TargetOpcode::G_UMAX: 4481 return CmpInst::ICMP_UGT; 4482 default: 4483 llvm_unreachable("not in integer min/max"); 4484 } 4485 } 4486 4487 LegalizerHelper::LegalizeResult 4488 LegalizerHelper::lowerMinMax(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4489 Register Dst = MI.getOperand(0).getReg(); 4490 Register Src0 = MI.getOperand(1).getReg(); 4491 Register Src1 = MI.getOperand(2).getReg(); 4492 4493 const CmpInst::Predicate Pred = minMaxToCompare(MI.getOpcode()); 4494 LLT CmpType = MRI.getType(Dst).changeElementSize(1); 4495 4496 auto Cmp = MIRBuilder.buildICmp(Pred, CmpType, Src0, Src1); 4497 MIRBuilder.buildSelect(Dst, Cmp, Src0, Src1); 4498 4499 MI.eraseFromParent(); 4500 return Legalized; 4501 } 4502 4503 LegalizerHelper::LegalizeResult 4504 LegalizerHelper::lowerFCopySign(MachineInstr &MI, unsigned TypeIdx, LLT Ty) { 4505 Register Dst = MI.getOperand(0).getReg(); 4506 Register Src0 = MI.getOperand(1).getReg(); 4507 Register Src1 = MI.getOperand(2).getReg(); 4508 4509 const LLT Src0Ty = MRI.getType(Src0); 4510 const LLT Src1Ty = MRI.getType(Src1); 4511 4512 const int Src0Size = Src0Ty.getScalarSizeInBits(); 4513 const int Src1Size = Src1Ty.getScalarSizeInBits(); 4514 4515 auto SignBitMask = MIRBuilder.buildConstant( 4516 Src0Ty, APInt::getSignMask(Src0Size)); 4517 4518 auto NotSignBitMask = MIRBuilder.buildConstant( 4519 Src0Ty, APInt::getLowBitsSet(Src0Size, Src0Size - 1)); 4520 4521 auto And0 = MIRBuilder.buildAnd(Src0Ty, Src0, NotSignBitMask); 4522 MachineInstr *Or; 4523 4524 if (Src0Ty == Src1Ty) { 4525 auto And1 = MIRBuilder.buildAnd(Src1Ty, Src0, SignBitMask); 4526 Or = MIRBuilder.buildOr(Dst, And0, And1); 4527 } else if (Src0Size > Src1Size) { 4528 auto ShiftAmt = MIRBuilder.buildConstant(Src0Ty, Src0Size - Src1Size); 4529 auto Zext = MIRBuilder.buildZExt(Src0Ty, Src1); 4530 auto Shift = MIRBuilder.buildShl(Src0Ty, Zext, ShiftAmt); 4531 auto And1 = MIRBuilder.buildAnd(Src0Ty, Shift, SignBitMask); 4532 Or = MIRBuilder.buildOr(Dst, And0, And1); 4533 } else { 4534 auto ShiftAmt = MIRBuilder.buildConstant(Src1Ty, Src1Size - Src0Size); 4535 auto Shift = MIRBuilder.buildLShr(Src1Ty, Src1, ShiftAmt); 4536 auto Trunc = MIRBuilder.buildTrunc(Src0Ty, Shift); 4537 auto And1 = MIRBuilder.buildAnd(Src0Ty, Trunc, SignBitMask); 4538 Or = MIRBuilder.buildOr(Dst, And0, And1); 4539 } 4540 4541 // Be careful about setting nsz/nnan/ninf on every instruction, since the 4542 // constants are a nan and -0.0, but the final result should preserve 4543 // everything. 4544 if (unsigned Flags = MI.getFlags()) 4545 Or->setFlags(Flags); 4546 4547 MI.eraseFromParent(); 4548 return Legalized; 4549 } 4550 4551 LegalizerHelper::LegalizeResult 4552 LegalizerHelper::lowerFMinNumMaxNum(MachineInstr &MI) { 4553 unsigned NewOp = MI.getOpcode() == TargetOpcode::G_FMINNUM ? 4554 TargetOpcode::G_FMINNUM_IEEE : TargetOpcode::G_FMAXNUM_IEEE; 4555 4556 Register Dst = MI.getOperand(0).getReg(); 4557 Register Src0 = MI.getOperand(1).getReg(); 4558 Register Src1 = MI.getOperand(2).getReg(); 4559 LLT Ty = MRI.getType(Dst); 4560 4561 if (!MI.getFlag(MachineInstr::FmNoNans)) { 4562 // Insert canonicalizes if it's possible we need to quiet to get correct 4563 // sNaN behavior. 4564 4565 // Note this must be done here, and not as an optimization combine in the 4566 // absence of a dedicate quiet-snan instruction as we're using an 4567 // omni-purpose G_FCANONICALIZE. 4568 if (!isKnownNeverSNaN(Src0, MRI)) 4569 Src0 = MIRBuilder.buildFCanonicalize(Ty, Src0, MI.getFlags()).getReg(0); 4570 4571 if (!isKnownNeverSNaN(Src1, MRI)) 4572 Src1 = MIRBuilder.buildFCanonicalize(Ty, Src1, MI.getFlags()).getReg(0); 4573 } 4574 4575 // If there are no nans, it's safe to simply replace this with the non-IEEE 4576 // version. 4577 MIRBuilder.buildInstr(NewOp, {Dst}, {Src0, Src1}, MI.getFlags()); 4578 MI.eraseFromParent(); 4579 return Legalized; 4580 } 4581 4582 LegalizerHelper::LegalizeResult LegalizerHelper::lowerFMad(MachineInstr &MI) { 4583 // Expand G_FMAD a, b, c -> G_FADD (G_FMUL a, b), c 4584 Register DstReg = MI.getOperand(0).getReg(); 4585 LLT Ty = MRI.getType(DstReg); 4586 unsigned Flags = MI.getFlags(); 4587 4588 auto Mul = MIRBuilder.buildFMul(Ty, MI.getOperand(1), MI.getOperand(2), 4589 Flags); 4590 MIRBuilder.buildFAdd(DstReg, Mul, MI.getOperand(3), Flags); 4591 MI.eraseFromParent(); 4592 return Legalized; 4593 } 4594 4595 LegalizerHelper::LegalizeResult 4596 LegalizerHelper::lowerIntrinsicRound(MachineInstr &MI) { 4597 Register DstReg = MI.getOperand(0).getReg(); 4598 Register SrcReg = MI.getOperand(1).getReg(); 4599 unsigned Flags = MI.getFlags(); 4600 LLT Ty = MRI.getType(DstReg); 4601 const LLT CondTy = Ty.changeElementSize(1); 4602 4603 // result = trunc(src); 4604 // if (src < 0.0 && src != result) 4605 // result += -1.0. 4606 4607 auto Zero = MIRBuilder.buildFConstant(Ty, 0.0); 4608 auto Trunc = MIRBuilder.buildIntrinsicTrunc(Ty, SrcReg, Flags); 4609 4610 auto Lt0 = MIRBuilder.buildFCmp(CmpInst::FCMP_OLT, CondTy, 4611 SrcReg, Zero, Flags); 4612 auto NeTrunc = MIRBuilder.buildFCmp(CmpInst::FCMP_ONE, CondTy, 4613 SrcReg, Trunc, Flags); 4614 auto And = MIRBuilder.buildAnd(CondTy, Lt0, NeTrunc); 4615 auto AddVal = MIRBuilder.buildSITOFP(Ty, And); 4616 4617 MIRBuilder.buildFAdd(DstReg, Trunc, AddVal); 4618 MI.eraseFromParent(); 4619 return Legalized; 4620 } 4621 4622 LegalizerHelper::LegalizeResult 4623 LegalizerHelper::lowerUnmergeValues(MachineInstr &MI) { 4624 const unsigned NumDst = MI.getNumOperands() - 1; 4625 const Register SrcReg = MI.getOperand(NumDst).getReg(); 4626 LLT SrcTy = MRI.getType(SrcReg); 4627 4628 Register Dst0Reg = MI.getOperand(0).getReg(); 4629 LLT DstTy = MRI.getType(Dst0Reg); 4630 4631 4632 // Expand scalarizing unmerge as bitcast to integer and shift. 4633 if (!DstTy.isVector() && SrcTy.isVector() && 4634 SrcTy.getElementType() == DstTy) { 4635 LLT IntTy = LLT::scalar(SrcTy.getSizeInBits()); 4636 Register Cast = MIRBuilder.buildBitcast(IntTy, SrcReg).getReg(0); 4637 4638 MIRBuilder.buildTrunc(Dst0Reg, Cast); 4639 4640 const unsigned DstSize = DstTy.getSizeInBits(); 4641 unsigned Offset = DstSize; 4642 for (unsigned I = 1; I != NumDst; ++I, Offset += DstSize) { 4643 auto ShiftAmt = MIRBuilder.buildConstant(IntTy, Offset); 4644 auto Shift = MIRBuilder.buildLShr(IntTy, Cast, ShiftAmt); 4645 MIRBuilder.buildTrunc(MI.getOperand(I), Shift); 4646 } 4647 4648 MI.eraseFromParent(); 4649 return Legalized; 4650 } 4651 4652 return UnableToLegalize; 4653 } 4654 4655 LegalizerHelper::LegalizeResult 4656 LegalizerHelper::lowerShuffleVector(MachineInstr &MI) { 4657 Register DstReg = MI.getOperand(0).getReg(); 4658 Register Src0Reg = MI.getOperand(1).getReg(); 4659 Register Src1Reg = MI.getOperand(2).getReg(); 4660 LLT Src0Ty = MRI.getType(Src0Reg); 4661 LLT DstTy = MRI.getType(DstReg); 4662 LLT IdxTy = LLT::scalar(32); 4663 4664 ArrayRef<int> Mask = MI.getOperand(3).getShuffleMask(); 4665 4666 if (DstTy.isScalar()) { 4667 if (Src0Ty.isVector()) 4668 return UnableToLegalize; 4669 4670 // This is just a SELECT. 4671 assert(Mask.size() == 1 && "Expected a single mask element"); 4672 Register Val; 4673 if (Mask[0] < 0 || Mask[0] > 1) 4674 Val = MIRBuilder.buildUndef(DstTy).getReg(0); 4675 else 4676 Val = Mask[0] == 0 ? Src0Reg : Src1Reg; 4677 MIRBuilder.buildCopy(DstReg, Val); 4678 MI.eraseFromParent(); 4679 return Legalized; 4680 } 4681 4682 Register Undef; 4683 SmallVector<Register, 32> BuildVec; 4684 LLT EltTy = DstTy.getElementType(); 4685 4686 for (int Idx : Mask) { 4687 if (Idx < 0) { 4688 if (!Undef.isValid()) 4689 Undef = MIRBuilder.buildUndef(EltTy).getReg(0); 4690 BuildVec.push_back(Undef); 4691 continue; 4692 } 4693 4694 if (Src0Ty.isScalar()) { 4695 BuildVec.push_back(Idx == 0 ? Src0Reg : Src1Reg); 4696 } else { 4697 int NumElts = Src0Ty.getNumElements(); 4698 Register SrcVec = Idx < NumElts ? Src0Reg : Src1Reg; 4699 int ExtractIdx = Idx < NumElts ? Idx : Idx - NumElts; 4700 auto IdxK = MIRBuilder.buildConstant(IdxTy, ExtractIdx); 4701 auto Extract = MIRBuilder.buildExtractVectorElement(EltTy, SrcVec, IdxK); 4702 BuildVec.push_back(Extract.getReg(0)); 4703 } 4704 } 4705 4706 MIRBuilder.buildBuildVector(DstReg, BuildVec); 4707 MI.eraseFromParent(); 4708 return Legalized; 4709 } 4710 4711 LegalizerHelper::LegalizeResult 4712 LegalizerHelper::lowerDynStackAlloc(MachineInstr &MI) { 4713 Register Dst = MI.getOperand(0).getReg(); 4714 Register AllocSize = MI.getOperand(1).getReg(); 4715 unsigned Align = MI.getOperand(2).getImm(); 4716 4717 const auto &MF = *MI.getMF(); 4718 const auto &TLI = *MF.getSubtarget().getTargetLowering(); 4719 4720 LLT PtrTy = MRI.getType(Dst); 4721 LLT IntPtrTy = LLT::scalar(PtrTy.getSizeInBits()); 4722 4723 Register SPReg = TLI.getStackPointerRegisterToSaveRestore(); 4724 auto SPTmp = MIRBuilder.buildCopy(PtrTy, SPReg); 4725 SPTmp = MIRBuilder.buildCast(IntPtrTy, SPTmp); 4726 4727 // Subtract the final alloc from the SP. We use G_PTRTOINT here so we don't 4728 // have to generate an extra instruction to negate the alloc and then use 4729 // G_PTR_ADD to add the negative offset. 4730 auto Alloc = MIRBuilder.buildSub(IntPtrTy, SPTmp, AllocSize); 4731 if (Align) { 4732 APInt AlignMask(IntPtrTy.getSizeInBits(), Align, true); 4733 AlignMask.negate(); 4734 auto AlignCst = MIRBuilder.buildConstant(IntPtrTy, AlignMask); 4735 Alloc = MIRBuilder.buildAnd(IntPtrTy, Alloc, AlignCst); 4736 } 4737 4738 SPTmp = MIRBuilder.buildCast(PtrTy, Alloc); 4739 MIRBuilder.buildCopy(SPReg, SPTmp); 4740 MIRBuilder.buildCopy(Dst, SPTmp); 4741 4742 MI.eraseFromParent(); 4743 return Legalized; 4744 } 4745 4746 LegalizerHelper::LegalizeResult 4747 LegalizerHelper::lowerExtract(MachineInstr &MI) { 4748 Register Dst = MI.getOperand(0).getReg(); 4749 Register Src = MI.getOperand(1).getReg(); 4750 unsigned Offset = MI.getOperand(2).getImm(); 4751 4752 LLT DstTy = MRI.getType(Dst); 4753 LLT SrcTy = MRI.getType(Src); 4754 4755 if (DstTy.isScalar() && 4756 (SrcTy.isScalar() || 4757 (SrcTy.isVector() && DstTy == SrcTy.getElementType()))) { 4758 LLT SrcIntTy = SrcTy; 4759 if (!SrcTy.isScalar()) { 4760 SrcIntTy = LLT::scalar(SrcTy.getSizeInBits()); 4761 Src = MIRBuilder.buildBitcast(SrcIntTy, Src).getReg(0); 4762 } 4763 4764 if (Offset == 0) 4765 MIRBuilder.buildTrunc(Dst, Src); 4766 else { 4767 auto ShiftAmt = MIRBuilder.buildConstant(SrcIntTy, Offset); 4768 auto Shr = MIRBuilder.buildLShr(SrcIntTy, Src, ShiftAmt); 4769 MIRBuilder.buildTrunc(Dst, Shr); 4770 } 4771 4772 MI.eraseFromParent(); 4773 return Legalized; 4774 } 4775 4776 return UnableToLegalize; 4777 } 4778 4779 LegalizerHelper::LegalizeResult LegalizerHelper::lowerInsert(MachineInstr &MI) { 4780 Register Dst = MI.getOperand(0).getReg(); 4781 Register Src = MI.getOperand(1).getReg(); 4782 Register InsertSrc = MI.getOperand(2).getReg(); 4783 uint64_t Offset = MI.getOperand(3).getImm(); 4784 4785 LLT DstTy = MRI.getType(Src); 4786 LLT InsertTy = MRI.getType(InsertSrc); 4787 4788 if (InsertTy.isScalar() && 4789 (DstTy.isScalar() || 4790 (DstTy.isVector() && DstTy.getElementType() == InsertTy))) { 4791 LLT IntDstTy = DstTy; 4792 if (!DstTy.isScalar()) { 4793 IntDstTy = LLT::scalar(DstTy.getSizeInBits()); 4794 Src = MIRBuilder.buildBitcast(IntDstTy, Src).getReg(0); 4795 } 4796 4797 Register ExtInsSrc = MIRBuilder.buildZExt(IntDstTy, InsertSrc).getReg(0); 4798 if (Offset != 0) { 4799 auto ShiftAmt = MIRBuilder.buildConstant(IntDstTy, Offset); 4800 ExtInsSrc = MIRBuilder.buildShl(IntDstTy, ExtInsSrc, ShiftAmt).getReg(0); 4801 } 4802 4803 APInt MaskVal = APInt::getBitsSetWithWrap(DstTy.getSizeInBits(), 4804 Offset + InsertTy.getSizeInBits(), 4805 Offset); 4806 4807 auto Mask = MIRBuilder.buildConstant(IntDstTy, MaskVal); 4808 auto MaskedSrc = MIRBuilder.buildAnd(IntDstTy, Src, Mask); 4809 auto Or = MIRBuilder.buildOr(IntDstTy, MaskedSrc, ExtInsSrc); 4810 4811 MIRBuilder.buildBitcast(Dst, Or); 4812 MI.eraseFromParent(); 4813 return Legalized; 4814 } 4815 4816 return UnableToLegalize; 4817 } 4818 4819 LegalizerHelper::LegalizeResult 4820 LegalizerHelper::lowerSADDO_SSUBO(MachineInstr &MI) { 4821 Register Dst0 = MI.getOperand(0).getReg(); 4822 Register Dst1 = MI.getOperand(1).getReg(); 4823 Register LHS = MI.getOperand(2).getReg(); 4824 Register RHS = MI.getOperand(3).getReg(); 4825 const bool IsAdd = MI.getOpcode() == TargetOpcode::G_SADDO; 4826 4827 LLT Ty = MRI.getType(Dst0); 4828 LLT BoolTy = MRI.getType(Dst1); 4829 4830 if (IsAdd) 4831 MIRBuilder.buildAdd(Dst0, LHS, RHS); 4832 else 4833 MIRBuilder.buildSub(Dst0, LHS, RHS); 4834 4835 // TODO: If SADDSAT/SSUBSAT is legal, compare results to detect overflow. 4836 4837 auto Zero = MIRBuilder.buildConstant(Ty, 0); 4838 4839 // For an addition, the result should be less than one of the operands (LHS) 4840 // if and only if the other operand (RHS) is negative, otherwise there will 4841 // be overflow. 4842 // For a subtraction, the result should be less than one of the operands 4843 // (LHS) if and only if the other operand (RHS) is (non-zero) positive, 4844 // otherwise there will be overflow. 4845 auto ResultLowerThanLHS = 4846 MIRBuilder.buildICmp(CmpInst::ICMP_SLT, BoolTy, Dst0, LHS); 4847 auto ConditionRHS = MIRBuilder.buildICmp( 4848 IsAdd ? CmpInst::ICMP_SLT : CmpInst::ICMP_SGT, BoolTy, RHS, Zero); 4849 4850 MIRBuilder.buildXor(Dst1, ConditionRHS, ResultLowerThanLHS); 4851 MI.eraseFromParent(); 4852 return Legalized; 4853 } 4854 4855 LegalizerHelper::LegalizeResult 4856 LegalizerHelper::lowerBswap(MachineInstr &MI) { 4857 Register Dst = MI.getOperand(0).getReg(); 4858 Register Src = MI.getOperand(1).getReg(); 4859 const LLT Ty = MRI.getType(Src); 4860 unsigned SizeInBytes = Ty.getSizeInBytes(); 4861 unsigned BaseShiftAmt = (SizeInBytes - 1) * 8; 4862 4863 // Swap most and least significant byte, set remaining bytes in Res to zero. 4864 auto ShiftAmt = MIRBuilder.buildConstant(Ty, BaseShiftAmt); 4865 auto LSByteShiftedLeft = MIRBuilder.buildShl(Ty, Src, ShiftAmt); 4866 auto MSByteShiftedRight = MIRBuilder.buildLShr(Ty, Src, ShiftAmt); 4867 auto Res = MIRBuilder.buildOr(Ty, MSByteShiftedRight, LSByteShiftedLeft); 4868 4869 // Set i-th high/low byte in Res to i-th low/high byte from Src. 4870 for (unsigned i = 1; i < SizeInBytes / 2; ++i) { 4871 // AND with Mask leaves byte i unchanged and sets remaining bytes to 0. 4872 APInt APMask(SizeInBytes * 8, 0xFF << (i * 8)); 4873 auto Mask = MIRBuilder.buildConstant(Ty, APMask); 4874 auto ShiftAmt = MIRBuilder.buildConstant(Ty, BaseShiftAmt - 16 * i); 4875 // Low byte shifted left to place of high byte: (Src & Mask) << ShiftAmt. 4876 auto LoByte = MIRBuilder.buildAnd(Ty, Src, Mask); 4877 auto LoShiftedLeft = MIRBuilder.buildShl(Ty, LoByte, ShiftAmt); 4878 Res = MIRBuilder.buildOr(Ty, Res, LoShiftedLeft); 4879 // High byte shifted right to place of low byte: (Src >> ShiftAmt) & Mask. 4880 auto SrcShiftedRight = MIRBuilder.buildLShr(Ty, Src, ShiftAmt); 4881 auto HiShiftedRight = MIRBuilder.buildAnd(Ty, SrcShiftedRight, Mask); 4882 Res = MIRBuilder.buildOr(Ty, Res, HiShiftedRight); 4883 } 4884 Res.getInstr()->getOperand(0).setReg(Dst); 4885 4886 MI.eraseFromParent(); 4887 return Legalized; 4888 } 4889 4890 //{ (Src & Mask) >> N } | { (Src << N) & Mask } 4891 static MachineInstrBuilder SwapN(unsigned N, DstOp Dst, MachineIRBuilder &B, 4892 MachineInstrBuilder Src, APInt Mask) { 4893 const LLT Ty = Dst.getLLTTy(*B.getMRI()); 4894 MachineInstrBuilder C_N = B.buildConstant(Ty, N); 4895 MachineInstrBuilder MaskLoNTo0 = B.buildConstant(Ty, Mask); 4896 auto LHS = B.buildLShr(Ty, B.buildAnd(Ty, Src, MaskLoNTo0), C_N); 4897 auto RHS = B.buildAnd(Ty, B.buildShl(Ty, Src, C_N), MaskLoNTo0); 4898 return B.buildOr(Dst, LHS, RHS); 4899 } 4900 4901 LegalizerHelper::LegalizeResult 4902 LegalizerHelper::lowerBitreverse(MachineInstr &MI) { 4903 Register Dst = MI.getOperand(0).getReg(); 4904 Register Src = MI.getOperand(1).getReg(); 4905 const LLT Ty = MRI.getType(Src); 4906 unsigned Size = Ty.getSizeInBits(); 4907 4908 MachineInstrBuilder BSWAP = 4909 MIRBuilder.buildInstr(TargetOpcode::G_BSWAP, {Ty}, {Src}); 4910 4911 // swap high and low 4 bits in 8 bit blocks 7654|3210 -> 3210|7654 4912 // [(val & 0xF0F0F0F0) >> 4] | [(val & 0x0F0F0F0F) << 4] 4913 // -> [(val & 0xF0F0F0F0) >> 4] | [(val << 4) & 0xF0F0F0F0] 4914 MachineInstrBuilder Swap4 = 4915 SwapN(4, Ty, MIRBuilder, BSWAP, APInt::getSplat(Size, APInt(8, 0xF0))); 4916 4917 // swap high and low 2 bits in 4 bit blocks 32|10 76|54 -> 10|32 54|76 4918 // [(val & 0xCCCCCCCC) >> 2] & [(val & 0x33333333) << 2] 4919 // -> [(val & 0xCCCCCCCC) >> 2] & [(val << 2) & 0xCCCCCCCC] 4920 MachineInstrBuilder Swap2 = 4921 SwapN(2, Ty, MIRBuilder, Swap4, APInt::getSplat(Size, APInt(8, 0xCC))); 4922 4923 // swap high and low 1 bit in 2 bit blocks 1|0 3|2 5|4 7|6 -> 0|1 2|3 4|5 6|7 4924 // [(val & 0xAAAAAAAA) >> 1] & [(val & 0x55555555) << 1] 4925 // -> [(val & 0xAAAAAAAA) >> 1] & [(val << 1) & 0xAAAAAAAA] 4926 SwapN(1, Dst, MIRBuilder, Swap2, APInt::getSplat(Size, APInt(8, 0xAA))); 4927 4928 MI.eraseFromParent(); 4929 return Legalized; 4930 } 4931 4932 LegalizerHelper::LegalizeResult 4933 LegalizerHelper::lowerReadWriteRegister(MachineInstr &MI) { 4934 MachineFunction &MF = MIRBuilder.getMF(); 4935 const TargetSubtargetInfo &STI = MF.getSubtarget(); 4936 const TargetLowering *TLI = STI.getTargetLowering(); 4937 4938 bool IsRead = MI.getOpcode() == TargetOpcode::G_READ_REGISTER; 4939 int NameOpIdx = IsRead ? 1 : 0; 4940 int ValRegIndex = IsRead ? 0 : 1; 4941 4942 Register ValReg = MI.getOperand(ValRegIndex).getReg(); 4943 const LLT Ty = MRI.getType(ValReg); 4944 const MDString *RegStr = cast<MDString>( 4945 cast<MDNode>(MI.getOperand(NameOpIdx).getMetadata())->getOperand(0)); 4946 4947 Register PhysReg = TLI->getRegisterByName(RegStr->getString().data(), Ty, MF); 4948 if (!PhysReg.isValid()) 4949 return UnableToLegalize; 4950 4951 if (IsRead) 4952 MIRBuilder.buildCopy(ValReg, PhysReg); 4953 else 4954 MIRBuilder.buildCopy(PhysReg, ValReg); 4955 4956 MI.eraseFromParent(); 4957 return Legalized; 4958 } 4959