30#define DEBUG_TYPE "tti"
34 cl::desc(
"Recognize reduction patterns."));
38 cl::desc(
"Use this to override the target cache line size when "
39 "specified by the user."));
43 cl::desc(
"Use this to override the target's minimum page size."));
48 "Use this to override the target's predictable branch threshold (%)."));
62 std::unique_ptr<const TargetTransformInfoImplBase> Impl)
79 ScalarizationCost(ScalarizationCost) {
82 FMF = FPMO->getFastMathFlags();
87 ParamTys.insert(ParamTys.begin(), FTy->param_begin(), FTy->param_end());
95 : II(
I), RetTy(RTy), IID(Id), FMF(Flags), ScalarizationCost(ScalarCost) {
96 ParamTys.insert(ParamTys.begin(), Tys.
begin(), Tys.
end());
101 : RetTy(Ty), IID(Id) {
103 Arguments.insert(Arguments.begin(), Args.begin(), Args.end());
104 ParamTys.reserve(Arguments.size());
113 : II(
I), RetTy(RTy), IID(Id), FMF(Flags), ScalarizationCost(ScalarCost),
115 ParamTys.insert(ParamTys.begin(), Tys.
begin(), Tys.
end());
116 Arguments.insert(Arguments.begin(), Args.begin(), Args.end());
132 L->getExitingBlocks(ExitingBlocks);
137 if (!
L->isLoopLatch(BB)) {
146 if (ConstEC->getValue()->isZero())
167 bool NotAlways =
false;
169 if (!
L->contains(Pred))
204 : TTIImpl(
std::make_unique<NoTTIImpl>(
DL)) {}
209 : TTIImpl(
std::
move(Arg.TTIImpl)) {}
212 TTIImpl = std::move(RHS.TTIImpl);
217 return TTIImpl->getInliningThresholdMultiplier();
222 return TTIImpl->getInliningCostBenefitAnalysisSavingsMultiplier();
228 return TTIImpl->getInliningCostBenefitAnalysisProfitableMultiplier();
232 return TTIImpl->getInliningLastCallToStaticBonus();
237 return TTIImpl->adjustInliningThreshold(CB);
242 return TTIImpl->getCallerAllocaCost(CB, AI);
246 return TTIImpl->getInlinerVectorBonusPercent();
252 return TTIImpl->getGEPCost(PointeeType, Ptr,
Operands,
CostKind, AccessType);
260 "If pointers have same base address it has to be provided.");
261 return TTIImpl->getPointersChainCost(Ptrs,
Base, Info, AccessTy,
CostKind);
267 return TTIImpl->getEstimatedNumberOfCaseClusters(
SI, JTSize, PSI, BFI);
276 "TTI should not produce negative costs!");
283 : TTIImpl->getPredictableBranchThreshold();
287 return TTIImpl->getBranchMispredictPenalty();
291 return TTIImpl->hasBranchDivergence(
F);
299 Call->hasFnAttr(Attribute::NoDivergenceSource))
306 unsigned ToAS)
const {
307 return TTIImpl->isValidAddrSpaceCast(FromAS, ToAS);
311 unsigned ToAS)
const {
312 return TTIImpl->addrspacesMayAlias(FromAS, ToAS);
316 return TTIImpl->getFlatAddressSpace();
321 return TTIImpl->collectFlatAddressOperands(OpIndexes, IID);
325 unsigned ToAS)
const {
326 return TTIImpl->isNoopAddrSpaceCast(FromAS, ToAS);
329std::pair<KnownBits, KnownBits>
331 const Value &PtrOp)
const {
332 return TTIImpl->computeKnownBitsAddrSpaceCast(ToAS, PtrOp);
336 unsigned FromAS,
unsigned ToAS,
const KnownBits &FromPtrBits)
const {
337 return TTIImpl->computeKnownBitsAddrSpaceCast(FromAS, ToAS, FromPtrBits);
341 unsigned SrcAS,
unsigned DstAS)
const {
342 return TTIImpl->getAddrSpaceCastPreservedPtrMask(SrcAS, DstAS);
347 return TTIImpl->canHaveNonUndefGlobalInitializerInAddressSpace(AS);
351 return TTIImpl->getAssumedAddrSpace(V);
355 return TTIImpl->isSingleThreaded();
358std::pair<const Value *, unsigned>
360 return TTIImpl->getPredicatedAddrSpace(V);
365 return TTIImpl->rewriteIntrinsicWithAddressSpace(
II, OldV, NewV);
369 return TTIImpl->isLoweredToCall(
F);
375 return TTIImpl->isHardwareLoopProfitable(L, SE, AC, LibInfo, HWLoopInfo);
379 return TTIImpl->getEpilogueVectorizationMinVF();
384 return TTIImpl->preferTailFoldingOverEpilogue(TFI);
388 return TTIImpl->getPreferredTailFoldingStyle();
391std::optional<Instruction *>
394 return TTIImpl->instCombineIntrinsic(IC,
II);
399 bool &KnownBitsComputed)
const {
400 return TTIImpl->simplifyDemandedUseBitsIntrinsic(IC,
II, DemandedMask,
Known,
408 SimplifyAndSetOp)
const {
409 return TTIImpl->simplifyDemandedVectorEltsIntrinsic(
410 IC,
II, DemandedElts, UndefElts, UndefElts2, UndefElts3,
417 return TTIImpl->getUnrollingPreferences(L, SE, UP, ORE);
422 return TTIImpl->getPeelingPreferences(L, SE, PP);
426 return TTIImpl->isLegalAddImmediate(
Imm);
430 return TTIImpl->isLegalAddScalableImmediate(
Imm);
434 return TTIImpl->isLegalICmpImmediate(
Imm);
439 bool HasBaseReg, int64_t Scale,
442 int64_t ScalableOffset)
const {
443 return TTIImpl->isLegalAddressingMode(Ty, BaseGV, BaseOffset, HasBaseReg,
444 Scale, AddrSpace,
I, ScalableOffset);
449 return TTIImpl->isLSRCostLess(C1, C2);
453 return TTIImpl->isNumRegsMajorCostOfLSR();
457 return TTIImpl->shouldDropLSRSolutionIfLessProfitable();
461 return TTIImpl->isProfitableLSRChainElement(
I);
465 return TTIImpl->canMacroFuseCmp();
472 return TTIImpl->canSaveCmp(L, BI, SE, LI, DT, AC, LibInfo);
478 return TTIImpl->getPreferredAddressingMode(L, SE);
484 return TTIImpl->isLegalMaskedStore(DataType, Alignment,
AddressSpace,
491 return TTIImpl->isLegalMaskedLoad(DataType, Alignment,
AddressSpace,
496 Align Alignment)
const {
497 return TTIImpl->isLegalNTStore(DataType, Alignment);
501 return TTIImpl->isLegalNTLoad(DataType, Alignment);
506 return TTIImpl->isLegalBroadcastLoad(ElementTy, NumElements);
510 Align Alignment)
const {
511 return TTIImpl->isLegalMaskedGather(DataType, Alignment);
515 VectorType *VecTy,
unsigned Opcode0,
unsigned Opcode1,
517 return TTIImpl->isLegalAltInstr(VecTy, Opcode0, Opcode1, OpcodeMask);
521 Align Alignment)
const {
522 return TTIImpl->isLegalMaskedScatter(DataType, Alignment);
526 Align Alignment)
const {
527 return TTIImpl->forceScalarizeMaskedGather(DataType, Alignment);
531 Align Alignment)
const {
532 return TTIImpl->forceScalarizeMaskedScatter(DataType, Alignment);
536 Align Alignment)
const {
537 return TTIImpl->isLegalMaskedCompressStore(DataType, Alignment);
541 Align Alignment)
const {
542 return TTIImpl->isLegalMaskedExpandLoad(DataType, Alignment);
546 Align Alignment)
const {
547 return TTIImpl->isLegalStridedLoadStore(DataType, Alignment);
552 unsigned AddrSpace)
const {
553 return TTIImpl->isLegalInterleavedAccessType(VTy, Factor, Alignment,
558 Type *DataType)
const {
559 return TTIImpl->isLegalMaskedVectorHistogram(AddrType, DataType);
563 return TTIImpl->enableOrderedReductions();
567 return TTIImpl->hasDivRemOp(DataType, IsSigned);
571 unsigned AddrSpace)
const {
572 return TTIImpl->hasVolatileVariant(
I, AddrSpace);
576 return TTIImpl->prefersVectorizedAddressing();
581 int64_t Scale,
unsigned AddrSpace)
const {
583 Ty, BaseGV, BaseOffset, HasBaseReg, Scale, AddrSpace);
584 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
589 return TTIImpl->LSRWithInstrQueries();
593 return TTIImpl->isTruncateFree(Ty1, Ty2);
597 return TTIImpl->isProfitableToHoist(
I);
603 return TTIImpl->isTypeLegal(Ty);
607 return TTIImpl->getRegUsageForType(Ty);
611 return TTIImpl->shouldBuildLookupTables();
616 return TTIImpl->shouldBuildLookupTablesForConstant(
C);
620 return TTIImpl->getMinimumLookupTableEntryBitWidth();
624 return TTIImpl->shouldBuildRelLookupTables();
628 return TTIImpl->useColdCCForColdCall(
F);
632 return TTIImpl->useFastCCForInternalCall(
F);
637 return TTIImpl->isTargetIntrinsicWithScalarOpAtArg(ID, ScalarOpdIdx);
642 return TTIImpl->isTargetIntrinsicWithOverloadTypeAtArg(ID, OpdIdx);
647 return TTIImpl->isTargetIntrinsicWithStructReturnOverloadAtField(ID, RetIdx);
658 I->getOperand(1)->hasOneUse())
673 return TTIImpl->getScalarizationOverhead(Ty, DemandedElts, Insert, Extract,
680 return TTIImpl->getOperandsScalarizationOverhead(Tys,
CostKind, VIC);
684 return TTIImpl->supportsEfficientVectorElementLoadStore();
688 return TTIImpl->supportsTailCalls();
692 return TTIImpl->supportsTailCallFor(CB);
696 bool LoopHasReductions)
const {
697 return TTIImpl->enableAggressiveInterleaving(LoopHasReductions);
702 return TTIImpl->enableMemCmpExpansion(OptSize, IsZeroCmp);
706 return TTIImpl->enableSelectOptimize();
711 return TTIImpl->shouldTreatInstructionLikeSelect(
I);
715 return TTIImpl->enableInterleavedAccessVectorization();
719 return TTIImpl->enableMaskedInterleavedAccessVectorization();
723 return TTIImpl->isFPVectorizationPotentiallyUnsafe();
731 unsigned *
Fast)
const {
732 return TTIImpl->allowsMisalignedMemoryAccesses(Context,
BitWidth,
738 return TTIImpl->getPopcntSupport(IntTyWidthInBit);
742 return TTIImpl->haveFastSqrt(Ty);
746 return TTIImpl->haveFastClmul(Ty);
751 return TTIImpl->isExpensiveToSpeculativelyExecute(
I);
755 return TTIImpl->isFCmpOrdCheaperThanFCmpZero(Ty);
760 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
769 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
777 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
782 unsigned Opcode,
unsigned Idx,
const APInt &
Imm,
Type *Ty,
785 TTIImpl->getIntImmCostInst(Opcode, Idx,
Imm, Ty,
CostKind, Inst);
786 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
795 TTIImpl->getIntImmCostIntrin(IID, Idx,
Imm, Ty,
CostKind);
796 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
802 return TTIImpl->preferToKeepConstantsAttached(Inst, Fn);
806 return TTIImpl->getNumberOfRegisters(ClassID);
810 bool IsStore)
const {
811 return TTIImpl->hasConditionalLoadStoreForType(Ty, IsStore);
816 return TTIImpl->getRegisterClassForType(
Vector, Ty);
820 return TTIImpl->getRegisterClassName(ClassID);
825 return TTIImpl->getRegisterClassSpillCost(ClassID,
CostKind);
830 return TTIImpl->getRegisterClassReloadCost(ClassID,
CostKind);
835 return TTIImpl->getRegisterBitWidth(K);
839 return TTIImpl->getMinVectorRegisterBitWidth();
843 return TTIImpl->getVScaleForTuning();
848 return TTIImpl->shouldMaximizeVectorBandwidth(K);
852 bool IsScalable)
const {
853 return TTIImpl->getMinimumVF(ElemWidth, IsScalable);
857 unsigned Opcode)
const {
858 return TTIImpl->getMaximumVF(ElemWidth, Opcode);
864 unsigned AddrSpace)
const {
865 return TTIImpl->getStoreMinimumVF(VF, ScalarMemTy, ScalarValTy, Alignment,
870 const Instruction &
I,
bool &AllowPromotionWithoutCommonHeader)
const {
871 return TTIImpl->shouldConsiderAddressTypePromotion(
872 I, AllowPromotionWithoutCommonHeader);
877 : TTIImpl->getCacheLineSize();
880std::optional<unsigned>
882 return TTIImpl->getCacheSize(Level);
885std::optional<unsigned>
887 return TTIImpl->getCacheAssociativity(Level);
892 : TTIImpl->getMinPageSize();
896 return TTIImpl->getPrefetchDistance();
900 unsigned NumMemAccesses,
unsigned NumStridedMemAccesses,
901 unsigned NumPrefetches,
bool HasCall)
const {
902 return TTIImpl->getMinPrefetchStride(NumMemAccesses, NumStridedMemAccesses,
903 NumPrefetches, HasCall);
907 return TTIImpl->getMaxPrefetchIterationsAhead();
911 return TTIImpl->enableWritePrefetching();
915 return TTIImpl->shouldPrefetchAddressSpace(AS);
919 unsigned Opcode,
Type *InputTypeA,
Type *InputTypeB,
Type *AccumType,
923 return TTIImpl->getPartialReductionCost(Opcode, InputTypeA, InputTypeB,
924 AccumType, VF, OpAExtend, OpBExtend,
930 bool HasUnorderedReductions)
const {
931 return TTIImpl->getMaxInterleaveFactor(VF, HasUnorderedReductions);
945 if (CI->getValue().isPowerOf2())
947 else if (CI->getValue().isNegatedPowerOf2())
957 if (ShuffleInst->isZeroEltSplat())
972 if (CI->getValue().isPowerOf2())
974 else if (CI->getValue().isNegatedPowerOf2())
980 bool AllPow2 =
true, AllNegPow2 =
true;
981 for (uint64_t
I = 0, E = CDS->getNumElements();
I != E; ++
I) {
983 AllPow2 &= CI->getValue().isPowerOf2();
984 AllNegPow2 &= CI->getValue().isNegatedPowerOf2();
985 if (AllPow2 || AllNegPow2)
988 AllPow2 = AllNegPow2 =
false;
997 return {OpInfo, OpProps};
1017 if (TLibInfo && Opcode == Instruction::FRem) {
1019 LibFunc Func = TLibInfo->
getLibFunc(Instruction::FRem, Ty->getScalarType());
1020 if (VecTy && Func != NotLibFunc &&
1027 Opcode, Ty,
CostKind, Op1Info, Op2Info, Args, CxtI);
1028 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1033 VectorType *VecTy,
unsigned Opcode0,
unsigned Opcode1,
1036 TTIImpl->getAltInstrCost(VecTy, Opcode0, Opcode1, OpcodeMask,
CostKind);
1037 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1048 "Expected the Mask to match the return size if given");
1050 "Expected the same scalar types");
1052 Kind, DstTy, SrcTy,
CostKind, Mask, Index, SubTp, Args, CxtI);
1053 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1069 return Instruction::CastOps::ZExt;
1071 return Instruction::CastOps::SExt;
1073 return Instruction::CastOps::FPExt;
1084 case Instruction::CastOps::ZExt:
1086 case Instruction::CastOps::SExt:
1088 case Instruction::CastOps::FPExt:
1101 auto getLoadStoreKind = [](
const Value *V,
unsigned LdStOp,
unsigned MaskedOp,
1102 unsigned GatScatOp) {
1107 if (
I->getOpcode() == LdStOp)
1111 if (
II->getIntrinsicID() == MaskedOp)
1113 if (
II->getIntrinsicID() == GatScatOp)
1120 switch (
I->getOpcode()) {
1121 case Instruction::ZExt:
1122 case Instruction::SExt:
1123 case Instruction::FPExt:
1124 return getLoadStoreKind(
I->getOperand(0), Instruction::Load,
1125 Intrinsic::masked_load, Intrinsic::masked_gather);
1126 case Instruction::Trunc:
1127 case Instruction::FPTrunc:
1129 return getLoadStoreKind(*
I->user_begin(), Instruction::Store,
1130 Intrinsic::masked_store,
1131 Intrinsic::masked_scatter);
1143 assert((
I ==
nullptr ||
I->getOpcode() == Opcode) &&
1144 "Opcode should reflect passed instruction.");
1146 TTIImpl->getCastInstrCost(Opcode, Dst, Src, CCH,
CostKind,
I);
1147 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1155 TTIImpl->getExtractWithExtendCost(Opcode, Dst, VecTy, Index,
CostKind);
1156 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1162 assert((
I ==
nullptr ||
I->getOpcode() == Opcode) &&
1163 "Opcode should reflect passed instruction.");
1165 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1173 assert((
I ==
nullptr ||
I->getOpcode() == Opcode) &&
1174 "Opcode should reflect passed instruction.");
1176 Opcode, ValTy, CondTy, VecPred,
CostKind, Op1Info, Op2Info,
I);
1177 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1184 assert((Opcode == Instruction::InsertElement ||
1185 Opcode == Instruction::ExtractElement) &&
1186 "Expecting Opcode to be insertelement/extractelement.");
1188 TTIImpl->getVectorInstrCost(Opcode, Val,
CostKind, Index, Op0, Op1, VIC);
1189 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1195 Value *Scalar,
ArrayRef<std::tuple<Value *, User *, int>> ScalarUserAndIdx,
1197 assert((Opcode == Instruction::InsertElement ||
1198 Opcode == Instruction::ExtractElement) &&
1199 "Expecting Opcode to be insertelement/extractelement.");
1201 Opcode, Val,
CostKind, Index, Scalar, ScalarUserAndIdx, VIC);
1202 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1213 TTIImpl->getVectorInstrCost(
I, Val,
CostKind, Index, VIC);
1214 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1220 unsigned Index)
const {
1222 TTIImpl->getIndexedVectorInstrCostFromEnd(Opcode, Val,
CostKind, Index);
1223 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1229 assert((Opcode == Instruction::InsertValue ||
1230 Opcode == Instruction::ExtractValue) &&
1231 "Expecting Opcode to be insertvalue/extractvalue.");
1233 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1238 Type *EltTy,
int ReplicationFactor,
int VF,
const APInt &DemandedDstElts,
1241 EltTy, ReplicationFactor, VF, DemandedDstElts,
CostKind);
1242 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1250 assert((
I ==
nullptr ||
I->getOpcode() == Opcode) &&
1251 "Opcode should reflect passed instruction.");
1254 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1261 bool UseMaskForCond,
bool UseMaskForGaps)
const {
1264 UseMaskForCond, UseMaskForGaps);
1265 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1273 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1281 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1290 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1295 return TTIImpl->getNumberOfParts(Tp);
1302 TTIImpl->getAddressComputationCost(PtrTy, SE, Ptr,
CostKind);
1303 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1309 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1314 return TTIImpl->getMaxMemIntrinsicInlineSizeThreshold();
1318 unsigned Opcode,
VectorType *Ty, std::optional<FastMathFlags> FMF,
1321 TTIImpl->getArithmeticReductionCost(Opcode, Ty, FMF,
CostKind);
1322 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1330 TTIImpl->getMinMaxReductionCost(IID, Ty, FMF,
CostKind);
1331 assert(
Cost >= 0 &&
"TTI should not produce negative costs!");
1338 return TTIImpl->getExtendedReductionCost(Opcode, IsUnsigned, ResTy, Ty, FMF,
1343 bool IsUnsigned,
unsigned RedOpcode,
Type *ResTy,
VectorType *Ty,
1345 return TTIImpl->getMulAccReductionCost(IsUnsigned, RedOpcode, ResTy, Ty,
1351 return TTIImpl->getCostOfKeepingLiveOverCall(Tys);
1356 return TTIImpl->getTgtMemIntrinsic(Inst, Info);
1360 return TTIImpl->getAtomicMemIntrinsicMaxElementSize();
1365 return TTIImpl->getOrCreateResultFromMemIntrinsic(Inst, ExpectedType,
1371 unsigned DestAddrSpace,
Align SrcAlign,
Align DestAlign,
1372 std::optional<uint32_t> AtomicElementSize)
const {
1373 return TTIImpl->getMemcpyLoopLoweringType(Context,
Length, SrcAddrSpace,
1374 DestAddrSpace, SrcAlign, DestAlign,
1380 unsigned RemainingBytes,
unsigned SrcAddrSpace,
unsigned DestAddrSpace,
1382 std::optional<uint32_t> AtomicCpySize)
const {
1383 TTIImpl->getMemcpyLoopResidualLoweringType(
1384 OpsOut, Context, RemainingBytes, SrcAddrSpace, DestAddrSpace, SrcAlign,
1385 DestAlign, AtomicCpySize);
1390 return TTIImpl->areInlineCompatible(Caller, Callee);
1396 unsigned DefaultCallPenalty)
const {
1397 return TTIImpl->getInlineCallPenalty(
F,
Call, DefaultCallPenalty);
1402 return TTIImpl->shouldCopyAttributeWhenOutliningFrom(Caller, Attr);
1407 return TTIImpl->areTypesABICompatible(Caller, Callee, Types);
1412 return TTIImpl->isIndexedLoadLegal(Mode, Ty);
1417 return TTIImpl->isIndexedStoreLegal(Mode, Ty);
1421 return TTIImpl->getLoadStoreVecRegBitWidth(AS);
1425 return TTIImpl->isLegalToVectorizeLoad(LI);
1429 return TTIImpl->isLegalToVectorizeStore(
SI);
1433 unsigned ChainSizeInBytes,
Align Alignment,
unsigned AddrSpace)
const {
1434 return TTIImpl->isLegalToVectorizeLoadChain(ChainSizeInBytes, Alignment,
1439 unsigned ChainSizeInBytes,
Align Alignment,
unsigned AddrSpace)
const {
1440 return TTIImpl->isLegalToVectorizeStoreChain(ChainSizeInBytes, Alignment,
1446 return TTIImpl->isLegalToVectorizeReduction(RdxDesc, VF);
1450 return TTIImpl->isElementTypeLegalForScalableVector(Ty);
1455 unsigned ChainSizeInBytes,
1457 return TTIImpl->getLoadVectorFactor(VF, LoadSize, ChainSizeInBytes, VecTy);
1462 unsigned ChainSizeInBytes,
1464 return TTIImpl->getStoreVectorFactor(VF, StoreSize, ChainSizeInBytes, VecTy);
1468 return TTIImpl->preferFixedOverScalableIfEqualCost();
1473 return TTIImpl->preferInLoopReduction(Kind, Ty);
1477 return TTIImpl->preferAlternateOpcodeVectorization();
1481 return TTIImpl->preferSLPInstCountCheck();
1485 return TTIImpl->preferPredicatedReductionSelect();
1490 return TTIImpl->preferEpilogueVectorization(Iters);
1494 return TTIImpl->shouldConsiderVectorizationRegPressure();
1499 return TTIImpl->getVPLegalizationStrategy(VPI);
1503 return TTIImpl->hasArmWideBranch(Thumb);
1507 return TTIImpl->getFeatureMask(
F);
1511 return TTIImpl->getPriorityMask(
F);
1515 return TTIImpl->isMultiversionedFunction(
F);
1519 return TTIImpl->getMaxNumArgs();
1523 return TTIImpl->shouldExpandReduction(
II);
1529 return TTIImpl->getPreferredExpandedReductionShuffle(
II);
1533 return TTIImpl->getGISelRematGlobalCost();
1537 return TTIImpl->getMinTripCountTailFoldingThreshold();
1541 return TTIImpl->supportsScalableVectors();
1545 return TTIImpl->enableScalableVectorization();
1549 return TTIImpl->hasActiveVectorLength();
1554 return TTIImpl->isProfitableToSinkOperands(
I, OpsToSink);
1558 return TTIImpl->isVectorShiftByScalarCheap(Ty);
1564 return TTIImpl->getNumBytesToPadGlobalArray(
Size,
ArrayType);
1570 return TTIImpl->collectKernelLaunchBounds(
F, LB);
1574 return TTIImpl->allowVectorElementIndexingUsingGEP();
1579 return TTIImpl->isUniform(
I, UniformArgs);
1588 : TTICallback(
std::
move(TTICallback)) {}
1592 assert(!
F.isIntrinsic() &&
"Should not request TTI for intrinsics");
1593 return TTICallback(
F);
1599 return Result(
F.getDataLayout());
1604 "Target Transform Information",
false,
true)
1618 TTI = TIRA.run(
F, DummyFAM);
for(const MachineOperand &MO :llvm::drop_begin(OldMI.operands(), Desc.getNumOperands()))
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static cl::opt< OutputCostKind > CostKind("cost-kind", cl::desc("Target cost kind"), cl::init(OutputCostKind::RecipThroughput), cl::values(clEnumValN(OutputCostKind::RecipThroughput, "throughput", "Reciprocal throughput"), clEnumValN(OutputCostKind::Latency, "latency", "Instruction latency"), clEnumValN(OutputCostKind::CodeSize, "code-size", "Code size"), clEnumValN(OutputCostKind::SizeAndLatency, "size-latency", "Code size and latency"), clEnumValN(OutputCostKind::All, "all", "Print all cost kinds")))
static cl::opt< bool > ForceNestedLoop("force-nested-hardware-loop", cl::Hidden, cl::init(false), cl::desc("Force allowance of nested hardware loops"))
static cl::opt< bool > ForceHardwareLoopPHI("force-hardware-loop-phi", cl::Hidden, cl::init(false), cl::desc("Force hardware loop counter to be updated through a phi"))
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
Module.h This file contains the declarations for the Module class.
uint64_t IntrinsicInst * II
#define INITIALIZE_PASS(passName, arg, name, cfg, analysis)
This file defines the SmallVector class.
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
static SymbolRef::Type getType(const Symbol *Sym)
Class for arbitrary precision integers.
an instruction to allocate memory on the stack
This class represents an incoming formal argument to a Function.
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Class to represent array types.
A cache of @llvm.assume calls within a function.
Functions, function parameters, and return types can have attributes to indicate how they should be t...
LLVM Basic Block Representation.
BlockFrequencyInfo pass uses BlockFrequencyInfoImpl implementation to estimate IR basic block frequen...
Base class for all callable instructions (InvokeInst and CallInst) Holds everything related to callin...
Function * getCalledFunction() const
Returns the function called, or null if this is an indirect function invocation or the function signa...
User::op_iterator arg_begin()
Return the iterator pointing to the beginning of the argument list.
User::op_iterator arg_end()
Return the iterator pointing to the end of the argument list.
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Conditional Branch instruction.
This is an important base class in LLVM.
A parsed version of the target data layout string in and methods for querying it.
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
LLVM_ABI bool dominates(const BasicBlock *BB, const Use &U) const
Return true if the (end of the) basic block BB dominates the use U.
Convenience struct for specifying and reasoning about fast-math flags.
Class to represent function types.
FunctionType * getFunctionType() const
Returns the FunctionType for me.
ImmutablePass class - This class is used to provide information that does not need to be run.
The core instruction combiner logic.
Class to represent integer types.
LLVM_ABI IntrinsicCostAttributes(Intrinsic::ID Id, const CallBase &CI, InstructionCost ScalarCost=InstructionCost::getInvalid(), bool TypeBasedOnly=false)
A wrapper class for inspecting calls to intrinsic functions.
This is an important class for using LLVM in a threaded context.
An instruction for reading from memory.
Wrapper class to LoopBlocksDFS that provides a standard begin()/end() interface for the DFS reverse p...
void perform(const LoopInfo *LI)
Traverse the loop blocks and store the DFS result.
LoopT * getLoopFor(const BlockT *BB) const
Return the inner most loop that BB lives in.
Represents a single loop in the control flow graph.
Information for memory intrinsic cost model.
Analysis providing profile information.
The RecurrenceDescriptor is used to identify recurrences variables in a loop.
This class represents a constant integer value.
This class represents an analyzed expression in the program.
The main scalar evolution driver.
LLVM_ABI uint64_t getTypeSizeInBits(Type *Ty) const
Return the size in bits of the specified type, for which isSCEVable must return true.
LLVM_ABI bool isLoopInvariant(const SCEV *S, const Loop *L)
Return true if the value of the given SCEV is unchanging in the specified loop.
LLVM_ABI const SCEV * getExitCount(const Loop *L, const BasicBlock *ExitingBlock, ExitCountKind Kind=Exact)
Return the number of times the backedge executes before the given exit would be taken; if not exactly...
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StackOffset holds a fixed and a scalable offset in bytes.
An instruction for storing to memory.
Analysis pass providing the TargetTransformInfo.
LLVM_ABI Result run(const Function &F, FunctionAnalysisManager &)
TargetTransformInfo Result
LLVM_ABI TargetIRAnalysis()
Default construct a target IR analysis.
Provides information about what library functions are available for the current target.
StringRef getName(LibFunc F) const
bool isFunctionVectorizable(StringRef F, const ElementCount &VF) const
LibFunc getLibFunc(StringRef funcName) const
Searches for a particular function name.
The instances of the Type class are immutable: once they are created, they are never changed.
LLVM_ABI bool isScalableTy(SmallPtrSetImpl< const Type * > &Visited) const
Return true if this is a type whose size is a known multiple of vscale.
static LLVM_ABI IntegerType * getInt32Ty(LLVMContext &C)
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
This is the common base class for vector predication intrinsics.
LLVM Value Representation.
Type * getType() const
All values are typed, get the type of this value.
Base class of all SIMD vector types.
ElementCount getElementCount() const
Return an ElementCount instance to represent the (possibly scalable) number of elements in the vector...
constexpr ScalarTy getKnownMinValue() const
Returns the minimum value this quantity can represent.
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
initializer< Ty > init(const Ty &Val)
This is an optimization pass for GlobalISel generic memory operations.
@ Known
Known to have no common set bits.
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
VectorInstrContext
Represents a hint about the context in which a vector instruction or intrinsic is used.
@ None
The instruction is not folded.
@ Load
The value being inserted comes from a load (InsertElement only).
@ Store
The extracted value is stored (ExtractElement only).
LLVM_ABI Value * getSplatValue(const Value *V)
Get splat value if the input is a splat vector or return nullptr.
bool containsIrreducibleCFG(RPOTraversalT &RPOTraversal, const LoopInfoT &LI)
Return true if the control flow in RPOTraversal is irreducible.
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
LLVM_ABI ImmutablePass * createTargetTransformInfoWrapperPass(TargetIRAnalysis TIRA)
Create an analysis pass wrapper around a TTI object.
RecurKind
These are the kinds of recurrences that we support.
@ Fast
Assign the register banks as fast as possible (default).
constexpr unsigned BitWidth
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
auto predecessors(const MachineBasicBlock *BB)
AnalysisManager< Function > FunctionAnalysisManager
Convenience typedef for the Function analysis manager.
ValueUniformity
Enum describing how values behave with respect to uniformity and divergence, to answer the question: ...
@ NeverUniform
The result value can never be assumed to be uniform.
@ Default
The result value is uniform if and only if all operands are uniform.
Implement std::hash so that hash_code can be used in STL containers.
This struct is a compact representation of a valid (non-zero power of two) alignment.
A special type used by analysis passes to provide an address that identifies that particular analysis...
Attributes of a target dependent hardware loop.
LLVM_ABI bool canAnalyze(LoopInfo &LI)
HardwareLoopInfo()=delete
LLVM_ABI bool isHardwareLoopCandidate(ScalarEvolution &SE, LoopInfo &LI, DominatorTree &DT, bool ForceNestedLoop=false, bool ForceHardwareLoopPHI=false)
Information about a load/store intrinsic defined by the target.