14#ifndef LLVM_CODEGEN_GLOBALISEL_LEGALIZERINFO_H
15#define LLVM_CODEGEN_GLOBALISEL_LEGALIZERINFO_H
39class LostDebugLocObserver;
41class MachineRegisterInfo;
44namespace LegalizeActions {
125 MMO.getSuccessOrdering()) {}
195 std::tie(
RHS.Action,
RHS.TypeIdx,
RHS.NewType);
201 std::function<std::pair<unsigned, LLT>(
const LegalityQuery &)>;
203namespace LegalityPredicates {
232template<
typename Predicate>
235 return P0(Query) && P1(Query);
239template<
typename Predicate,
typename... Args>
245template<
typename Predicate>
248 return P0(Query) || P1(Query);
252template<
typename Predicate,
typename... Args>
261 std::initializer_list<LLT> TypesInit);
266 return Query.Types[TypeIdx] !=
Type;
274 std::initializer_list<std::pair<LLT, LLT>> TypesInit);
279 std::initializer_list<std::tuple<LLT, LLT, LLT>> TypesInit);
283 unsigned TypeIdx0,
unsigned TypeIdx1,
unsigned MMOIdx,
284 std::initializer_list<TypePairAndMemDesc> TypesAndMemDescInit);
362namespace LegalizeMutations {
371 unsigned FromTypeIdx);
379 unsigned FromTypeIdx);
389 unsigned FromTypeIdx);
415 LegalizeAction Action;
434 return std::make_pair(0,
LLT{});
440 unsigned AliasOf = 0;
442 bool IsAliasedByAnother =
false;
459 unsigned typeIdx(
unsigned TypeIdx) {
462 "Type Index is out of bounds");
464 TypeIdxsCovered.
set(TypeIdx);
469 void markAllIdxsAsCovered() {
471 TypeIdxsCovered.
set();
472 ImmIdxsCovered.
set();
478 "RuleSet is aliased, change the representative opcode instead");
501 std::initializer_list<LLT> Types) {
502 using namespace LegalityPredicates;
503 return actionIf(Action, typeInSet(typeIdx(0), Types));
508 std::initializer_list<LLT> Types,
510 using namespace LegalityPredicates;
511 return actionIf(Action, typeInSet(typeIdx(0), Types),
Mutation);
517 std::initializer_list<std::pair<LLT, LLT>> Types) {
518 using namespace LegalityPredicates;
519 return actionIf(Action, typePairInSet(typeIdx(0), typeIdx(1), Types));
523 actionFor(LegalizeAction Action,
524 std::initializer_list<std::tuple<LLT, LLT, LLT>> Types) {
525 using namespace LegalityPredicates;
526 return actionIf(Action,
527 typeTupleInSet(typeIdx(0), typeIdx(1), typeIdx(2), Types));
534 std::initializer_list<std::pair<LLT, LLT>> Types,
536 using namespace LegalityPredicates;
537 return actionIf(Action, typePairInSet(typeIdx(0), typeIdx(1), Types),
544 std::initializer_list<LLT> Types) {
545 using namespace LegalityPredicates;
547 return actionIf(Action, typeInSet(typeIdx(0), Types));
551 LegalizeAction Action, std::initializer_list<std::pair<LLT, LLT>> Types) {
552 using namespace LegalityPredicates;
554 return actionIf(Action, typePairInSet(typeIdx(0), typeIdx(1), Types));
561 std::initializer_list<LLT> Types) {
562 using namespace LegalityPredicates;
563 return actionIf(Action, all(typeInSet(typeIdx(0), Types),
564 typeInSet(typeIdx(1), Types)));
571 actionForCartesianProduct(LegalizeAction Action,
572 std::initializer_list<LLT> Types0,
573 std::initializer_list<LLT> Types1) {
574 using namespace LegalityPredicates;
575 return actionIf(Action, all(typeInSet(typeIdx(0), Types0),
576 typeInSet(typeIdx(1), Types1)));
583 LegalizeAction Action, std::initializer_list<LLT> Types0,
584 std::initializer_list<LLT> Types1, std::initializer_list<LLT> Types2) {
585 using namespace LegalityPredicates;
586 return actionIf(Action, all(typeInSet(typeIdx(0), Types0),
587 all(typeInSet(typeIdx(1), Types1),
588 typeInSet(typeIdx(2), Types2))));
597 assert((AliasOf == 0 || AliasOf == Opcode) &&
598 "Opcode is already aliased to another opcode");
599 assert(Rules.
empty() &&
"Aliasing will discard rules");
607 "Imm Index is out of bounds");
609 ImmIdxsCovered.
set(ImmIdx);
618 markAllIdxsAsCovered();
619 return actionIf(LegalizeAction::Legal,
Predicate);
623 return actionFor(LegalizeAction::Legal, Types);
628 return actionFor(LegalizeAction::Legal, Types);
633 return actionFor(LegalizeAction::Legal, Types);
636 std::initializer_list<std::pair<LLT, LLT>> Types) {
639 return actionFor(LegalizeAction::Legal, Types);
642 legalFor(
bool Pred, std::initializer_list<std::tuple<LLT, LLT, LLT>> Types) {
645 return actionFor(LegalizeAction::Legal, Types);
650 markAllIdxsAsCovered();
651 return actionForTypeWithAnyImm(LegalizeAction::Legal, Types);
655 std::initializer_list<std::pair<LLT, LLT>> Types) {
656 markAllIdxsAsCovered();
657 return actionForTypeWithAnyImm(LegalizeAction::Legal, Types);
663 std::initializer_list<LegalityPredicates::TypePairAndMemDesc>
665 return actionIf(LegalizeAction::Legal,
667 typeIdx(0), typeIdx(1), 0, TypesAndMemDesc));
672 return actionForCartesianProduct(LegalizeAction::Legal, Types);
677 std::initializer_list<LLT> Types1) {
678 return actionForCartesianProduct(LegalizeAction::Legal, Types0, Types1);
683 std::initializer_list<LLT> Types1,
684 std::initializer_list<LLT> Types2) {
685 return actionForCartesianProduct(LegalizeAction::Legal, Types0, Types1,
690 using namespace LegalizeMutations;
691 markAllIdxsAsCovered();
692 return actionIf(LegalizeAction::Legal, always);
700 markAllIdxsAsCovered();
706 using namespace LegalizeMutations;
709 markAllIdxsAsCovered();
710 return actionIf(LegalizeAction::Lower, always);
715 using namespace LegalizeMutations;
718 markAllIdxsAsCovered();
719 return actionIf(LegalizeAction::Lower,
Predicate);
726 markAllIdxsAsCovered();
732 return actionFor(LegalizeAction::Lower, Types);
738 return actionFor(LegalizeAction::Lower, Types,
Mutation);
743 return actionFor(LegalizeAction::Lower, Types);
749 return actionFor(LegalizeAction::Lower, Types,
Mutation);
754 std::initializer_list<LLT> Types1) {
755 using namespace LegalityPredicates;
756 return actionForCartesianProduct(LegalizeAction::Lower, Types0, Types1);
761 std::initializer_list<LLT> Types1,
762 std::initializer_list<LLT> Types2) {
763 using namespace LegalityPredicates;
764 return actionForCartesianProduct(LegalizeAction::Lower, Types0, Types1,
770 using namespace LegalizeMutations;
773 markAllIdxsAsCovered();
774 return actionIf(LegalizeAction::Libcall, always);
781 markAllIdxsAsCovered();
782 return actionIf(LegalizeAction::Libcall,
Predicate);
785 return actionFor(LegalizeAction::Libcall, Types);
790 return actionFor(LegalizeAction::Libcall, Types);
793 libcallFor(std::initializer_list<std::pair<LLT, LLT>> Types) {
794 return actionFor(LegalizeAction::Libcall, Types);
797 libcallFor(
bool Pred, std::initializer_list<std::pair<LLT, LLT>> Types) {
800 return actionFor(LegalizeAction::Libcall, Types);
804 return actionForCartesianProduct(LegalizeAction::Libcall, Types);
808 std::initializer_list<LLT> Types1) {
809 return actionForCartesianProduct(LegalizeAction::Libcall, Types0, Types1);
818 markAllIdxsAsCovered();
827 markAllIdxsAsCovered();
835 return actionFor(LegalizeAction::NarrowScalar, Types,
Mutation);
844 markAllIdxsAsCovered();
853 markAllIdxsAsCovered();
859 markAllIdxsAsCovered();
860 return actionIf(LegalizeAction::Unsupported, always);
863 return actionIf(LegalizeAction::Unsupported,
Predicate);
867 return actionFor(LegalizeAction::Unsupported, Types);
871 return actionIf(LegalizeAction::Unsupported,
879 return actionIf(LegalizeAction::Lower,
887 return actionIf(LegalizeAction::Lower,
894 markAllIdxsAsCovered();
895 return actionIf(LegalizeAction::Custom,
Predicate);
898 return actionFor(LegalizeAction::Custom, Types);
903 return actionFor(LegalizeAction::Custom, Types);
909 return actionFor(LegalizeAction::Custom, Types);
912 std::initializer_list<std::pair<LLT, LLT>> Types) {
915 return actionFor(LegalizeAction::Custom, Types);
919 return actionForCartesianProduct(LegalizeAction::Custom, Types);
925 std::initializer_list<LLT> Types1) {
926 return actionForCartesianProduct(LegalizeAction::Custom, Types0, Types1);
932 std::initializer_list<LLT> Types1,
933 std::initializer_list<LLT> Types2) {
934 return actionForCartesianProduct(LegalizeAction::Custom, Types0, Types1,
942 std::initializer_list<LLT> Types1) {
945 return actionForCartesianProduct(LegalizeAction::Custom, Types0, Types1);
957 unsigned MinSize = 0) {
958 using namespace LegalityPredicates;
960 LegalizeAction::WidenScalar, sizeNotPow2(typeIdx(TypeIdx)),
968 using namespace LegalityPredicates;
970 LegalizeAction::WidenScalar, sizeNotMultipleOf(typeIdx(TypeIdx),
Size),
977 unsigned MinSize = 0) {
978 using namespace LegalityPredicates;
980 LegalizeAction::WidenScalar, scalarOrEltSizeNotPow2(typeIdx(TypeIdx)),
987 unsigned MinSize = 0) {
988 using namespace LegalityPredicates;
990 LegalizeAction::WidenScalar,
991 any(scalarOrEltNarrowerThan(TypeIdx, MinSize),
992 scalarOrEltSizeNotPow2(typeIdx(TypeIdx))),
997 using namespace LegalityPredicates;
998 return actionIf(LegalizeAction::NarrowScalar, isScalar(typeIdx(TypeIdx)),
1003 using namespace LegalityPredicates;
1004 return actionIf(LegalizeAction::FewerElements, isVector(typeIdx(TypeIdx)),
1009 using namespace LegalityPredicates;
1010 return actionIf(LegalizeAction::FewerElements,
1011 all(
Predicate, isVector(typeIdx(TypeIdx))),
1017 using namespace LegalityPredicates;
1018 using namespace LegalizeMutations;
1019 return actionIf(LegalizeAction::WidenScalar,
1021 changeElementTo(typeIdx(TypeIdx), Ty));
1026 unsigned TypeIdx,
const LLT Ty) {
1027 using namespace LegalityPredicates;
1028 using namespace LegalizeMutations;
1029 return actionIf(LegalizeAction::WidenScalar,
1032 changeElementTo(typeIdx(TypeIdx), Ty));
1038 unsigned VectorSize) {
1039 using namespace LegalityPredicates;
1040 using namespace LegalizeMutations;
1042 LegalizeAction::WidenScalar,
1044 const LLT VecTy = Query.
Types[TypeIdx];
1048 const LLT VecTy = Query.
Types[TypeIdx];
1050 unsigned MinSize = VectorSize / NumElts;
1052 return std::make_pair(TypeIdx, NewTy);
1058 using namespace LegalityPredicates;
1059 using namespace LegalizeMutations;
1060 return actionIf(LegalizeAction::WidenScalar,
1062 changeTo(typeIdx(TypeIdx), Ty));
1073 using namespace LegalityPredicates;
1074 using namespace LegalizeMutations;
1076 LegalizeAction::WidenScalar,
1078 const LLT QueryTy = Query.
Types[TypeIdx];
1083 changeTo(typeIdx(TypeIdx), Ty));
1088 using namespace LegalityPredicates;
1089 using namespace LegalizeMutations;
1090 return actionIf(LegalizeAction::NarrowScalar,
1092 changeElementTo(typeIdx(TypeIdx), Ty));
1097 using namespace LegalityPredicates;
1098 using namespace LegalizeMutations;
1099 return actionIf(LegalizeAction::NarrowScalar,
1101 changeTo(typeIdx(TypeIdx), Ty));
1109 using namespace LegalityPredicates;
1110 using namespace LegalizeMutations;
1112 LegalizeAction::NarrowScalar,
1114 const LLT QueryTy = Query.
Types[TypeIdx];
1119 changeElementTo(typeIdx(TypeIdx), Ty));
1146 LegalizeAction::WidenScalar,
1148 return Query.
Types[LargeTypeIdx].getScalarSizeInBits() >
1149 Query.
Types[TypeIdx].getSizeInBits();
1158 LegalizeAction::NarrowScalar,
1160 return Query.
Types[NarrowTypeIdx].getScalarSizeInBits() <
1161 Query.
Types[TypeIdx].getSizeInBits();
1175 unsigned TypeIdx,
unsigned LargeTypeIdx) {
1179 return Query.
Types[LargeTypeIdx].getScalarSizeInBits() >
1180 Query.
Types[TypeIdx].getScalarSizeInBits() &&
1185 if (
T.isPointerVector())
1187 return std::make_pair(TypeIdx,
T);
1194 unsigned SmallTypeIdx) {
1198 return Query.
Types[SmallTypeIdx].getScalarSizeInBits() <
1199 Query.
Types[TypeIdx].getScalarSizeInBits() &&
1204 return std::make_pair(TypeIdx,
T);
1212 using namespace LegalityPredicates;
1213 return actionIf(LegalizeAction::MoreElements,
1214 numElementsNotPow2(typeIdx(TypeIdx)),
1220 unsigned MinElements) {
1224 LegalizeAction::MoreElements,
1232 return std::make_pair(
1242 LegalizeAction::MoreElements,
1251 return std::make_pair(
1258 unsigned MaxElements) {
1262 LegalizeAction::FewerElements,
1272 return std::make_pair(TypeIdx, NewTy);
1284 "Expected element types to agree");
1287 "Unexpected scalable vectors");
1310 add({always, LegalizeAction::UseLegacyRules});
1336 unsigned getOpcodeIdxForOpcode(
unsigned Opcode)
const;
1337 unsigned getActionDefinitionsIdx(
unsigned Opcode)
const;
1368 getActionDefinitionsBuilder(std::initializer_list<unsigned> Opcodes);
1369 void aliasActionDefinitions(
unsigned OpcodeTo,
unsigned OpcodeFrom);
1385 return getAction(Query).Action == LegalizeAction::Legal;
1389 auto Action = getAction(Query).Action;
1390 return Action == LegalizeAction::Legal || Action == LegalizeAction::Custom;
1416 virtual unsigned getExtOpcodeForWideningConstant(
LLT SmallTy)
const;
1419 static const int FirstOp = TargetOpcode::PRE_ISEL_GENERIC_OPCODE_START;
1420 static const int LastOp = TargetOpcode::PRE_ISEL_GENERIC_OPCODE_END;
unsigned const MachineRegisterInfo * MRI
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
Atomic ordering constants.
Given that RA is a live value
Interface for Targets to specify which operations they can successfully select and how the others sho...
Implement a low-level type suitable for MachineInstr level instruction selection.
This file implements the SmallBitVector class.
This file defines the SmallVector class.
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
static constexpr ElementCount getFixed(ScalarTy MinVal)
constexpr bool isScalableVector() const
Returns true if the LLT is a scalable vector.
constexpr unsigned getScalarSizeInBits() const
constexpr bool isScalar() const
static constexpr LLT scalar(unsigned SizeInBits)
Get a low-level scalar or aggregate "bag of bits".
constexpr uint16_t getNumElements() const
Returns the number of elements in a vector LLT.
constexpr TypeSize getSizeInBits() const
Returns the total size of the type. Must only be called on sized types.
constexpr LLT getElementType() const
Returns the vector's element type. Only valid for vector types.
static constexpr LLT fixed_vector(unsigned NumElements, unsigned ScalarSizeInBits)
Get a low-level fixed-width vector of some number of elements and element width.
constexpr bool isFixedVector() const
Returns true if the LLT is a fixed vector.
static constexpr LLT scalarOrVector(ElementCount EC, LLT ScalarTy)
LegalizeRuleSet & minScalar(unsigned TypeIdx, const LLT Ty)
Ensure the scalar is at least as wide as Ty.
LegalizeRuleSet & clampScalar(bool Pred, unsigned TypeIdx, const LLT MinTy, const LLT MaxTy)
LegalizeRuleSet & maxScalarSameAs(unsigned TypeIdx, unsigned NarrowTypeIdx)
Narrow the scalar to match the size of another.
LegalizeRuleSet & widenScalarOrEltToNextPow2OrMinSize(unsigned TypeIdx, unsigned MinSize=0)
Widen the scalar or vector element type to the next power of two that is at least MinSize.
LegalizeRuleSet & customForCartesianProduct(bool Pred, std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1)
The instruction is custom when the predicate is true and type indexes 0 and 1 are all in their respec...
LegalizeRuleSet & legalFor(std::initializer_list< LLT > Types)
The instruction is legal when type index 0 is any type in the given list.
LegalizeRuleSet & maxScalarEltSameAsIf(LegalityPredicate Predicate, unsigned TypeIdx, unsigned SmallTypeIdx)
Conditionally narrow the scalar or elt to match the size of another.
LegalizeRuleSet & unsupported()
The instruction is unsupported.
LegalizeRuleSet & legalFor(bool Pred, std::initializer_list< std::tuple< LLT, LLT, LLT > > Types)
LegalizeRuleSet & scalarSameSizeAs(unsigned TypeIdx, unsigned SameSizeIdx)
Change the type TypeIdx to have the same scalar size as type SameSizeIdx.
LegalizeRuleSet & fewerElementsIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
Remove elements to reach the type selected by the mutation if the predicate is true.
LegalizeRuleSet & clampScalarOrElt(unsigned TypeIdx, const LLT MinTy, const LLT MaxTy)
Limit the range of scalar sizes to MinTy and MaxTy.
void aliasTo(unsigned Opcode)
LegalizeRuleSet & bitcastIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
The specified type index is coerced if predicate is true.
LegalizeRuleSet & libcall()
The instruction is emitted as a library call.
LegalizeRuleSet & libcallFor(std::initializer_list< LLT > Types)
LLVM_ABI bool verifyImmIdxsCoverage(unsigned NumImmIdxs) const
Check if there is no imm index which is obviously not handled by the LegalizeRuleSet in any way at al...
LegalizeRuleSet & maxScalar(unsigned TypeIdx, const LLT Ty)
Ensure the scalar is at most as wide as Ty.
LegalizeRuleSet & minScalarOrElt(unsigned TypeIdx, const LLT Ty)
Ensure the scalar or element is at least as wide as Ty.
LegalizeRuleSet()=default
LegalizeRuleSet & clampMaxNumElements(unsigned TypeIdx, const LLT EltTy, unsigned MaxElements)
Limit the number of elements in EltTy vectors to at most MaxElements.
LegalizeRuleSet & clampMinNumElements(unsigned TypeIdx, const LLT EltTy, unsigned MinElements)
Limit the number of elements in EltTy vectors to at least MinElements.
LegalizeRuleSet & libcallForCartesianProduct(std::initializer_list< LLT > Types)
LegalizeRuleSet & unsupportedFor(std::initializer_list< LLT > Types)
LegalizeRuleSet & legalFor(bool Pred, std::initializer_list< LLT > Types)
LegalizeRuleSet & widenVectorEltsToVectorMinSize(unsigned TypeIdx, unsigned VectorSize)
Ensure the vector size is at least as wide as VectorSize by promoting the element.
LegalizeRuleSet & legalForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1)
The instruction is legal when type indexes 0 and 1 are both their respective lists.
LegalizeRuleSet & lowerIfMemSizeNotPow2()
Lower a memory operation if the memory size, rounded to bytes, is not a power of 2.
LegalizeRuleSet & lowerFor(std::initializer_list< LLT > Types, LegalizeMutation Mutation)
The instruction is lowered when type index 0 is any type in the given list.
LegalizeRuleSet & minScalarEltSameAsIf(LegalityPredicate Predicate, unsigned TypeIdx, unsigned LargeTypeIdx)
Conditionally widen the scalar or elt to match the size of another.
LegalizeRuleSet & customForCartesianProduct(std::initializer_list< LLT > Types)
LegalizeRuleSet & lowerIfMemSizeNotByteSizePow2()
Lower a memory operation if the memory access size is not a round power of 2 byte size.
LegalizeRuleSet & minScalar(bool Pred, unsigned TypeIdx, const LLT Ty)
LegalizeRuleSet & moreElementsToNextPow2(unsigned TypeIdx)
Add more elements to the vector to reach the next power of two.
LegalizeRuleSet & customForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1)
The instruction is custom when type indexes 0 and 1 are both in their respective lists.
LegalizeRuleSet & legalForTypeWithAnyImm(std::initializer_list< std::pair< LLT, LLT > > Types)
LegalizeRuleSet & lowerFor(std::initializer_list< std::pair< LLT, LLT > > Types)
The instruction is lowered when type indexes 0 and 1 is any type pair in the given list.
LegalizeRuleSet & narrowScalarIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
Narrow the scalar to the one selected by the mutation if the predicate is true.
LegalizeRuleSet & lower()
The instruction is lowered.
LegalizeRuleSet & moreElementsIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
Add more elements to reach the type selected by the mutation if the predicate is true.
LegalizeRuleSet & narrowScalarFor(std::initializer_list< std::pair< LLT, LLT > > Types, LegalizeMutation Mutation)
Narrow the scalar, specified in mutation, when type indexes 0 and 1 is any type pair in the given lis...
LegalizeRuleSet & narrowScalar(unsigned TypeIdx, LegalizeMutation Mutation)
LegalizeRuleSet & customFor(bool Pred, std::initializer_list< std::pair< LLT, LLT > > Types)
LegalizeRuleSet & lowerFor(std::initializer_list< LLT > Types)
The instruction is lowered when type index 0 is any type in the given list.
LegalizeRuleSet & scalarizeIf(LegalityPredicate Predicate, unsigned TypeIdx)
LegalizeRuleSet & lowerIf(LegalityPredicate Predicate)
The instruction is lowered if predicate is true.
bool isAliasedByAnother()
LegalizeRuleSet & clampScalar(unsigned TypeIdx, const LLT MinTy, const LLT MaxTy)
Limit the range of scalar sizes to MinTy and MaxTy.
LegalizeRuleSet & legalForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1, std::initializer_list< LLT > Types2)
The instruction is legal when type indexes 0, 1, and 2 are both their respective lists.
LegalizeRuleSet & alignNumElementsTo(unsigned TypeIdx, const LLT EltTy, unsigned NumElts)
Set number of elements to nearest larger multiple of NumElts.
LegalizeRuleSet & custom()
Unconditionally custom lower.
LegalizeRuleSet & libcallForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1)
LegalizeRuleSet & clampMaxNumElementsStrict(unsigned TypeIdx, const LLT EltTy, unsigned NumElts)
Express EltTy vectors strictly using vectors with NumElts elements (or scalars when NumElts equals 1)...
LegalizeRuleSet & minScalarSameAs(unsigned TypeIdx, unsigned LargeTypeIdx)
Widen the scalar to match the size of another.
LegalizeRuleSet & unsupportedIf(LegalityPredicate Predicate)
LegalizeRuleSet & minScalarOrEltIf(LegalityPredicate Predicate, unsigned TypeIdx, const LLT Ty)
Ensure the scalar or element is at least as wide as Ty.
LegalizeRuleSet & widenScalarIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
Widen the scalar to the one selected by the mutation if the predicate is true.
LegalizeRuleSet & libcallFor(std::initializer_list< std::pair< LLT, LLT > > Types)
LegalizeRuleSet & customFor(bool Pred, std::initializer_list< LLT > Types)
LegalizeRuleSet & fallback()
Fallback on the previous implementation.
LegalizeRuleSet & legalForTypeWithAnyImm(std::initializer_list< LLT > Types)
The instruction is legal when type index 0 is any type in the given list and imm index 0 is anything.
LegalizeRuleSet & lowerForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1, std::initializer_list< LLT > Types2)
The instruction is lowered when type indexes 0, 1, and 2 are all in their respective lists.
LegalizeRuleSet & legalFor(std::initializer_list< std::pair< LLT, LLT > > Types)
The instruction is legal when type indexes 0 and 1 is any type pair in the given list.
LegalizeRuleSet & libcallFor(bool Pred, std::initializer_list< LLT > Types)
LegalizeRuleSet & libcallFor(bool Pred, std::initializer_list< std::pair< LLT, LLT > > Types)
LegalizeRuleSet & alwaysLegal()
LegalizeRuleSet & legalFor(bool Pred, std::initializer_list< std::pair< LLT, LLT > > Types)
unsigned getAlias() const
LegalizeRuleSet & clampNumElements(unsigned TypeIdx, const LLT MinTy, const LLT MaxTy)
Limit the number of elements for the given vectors to at least MinTy's number of elements and at most...
LegalizeRuleSet & unsupportedIfMemSizeNotPow2()
LegalizeRuleSet & maxScalarIf(LegalityPredicate Predicate, unsigned TypeIdx, const LLT Ty)
Conditionally limit the maximum size of the scalar.
LegalizeRuleSet & customIf(LegalityPredicate Predicate)
LegalizeRuleSet & customForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1, std::initializer_list< LLT > Types2)
The instruction is custom when type indexes 0, 1, and 2 are all in their respective lists.
LegalizeRuleSet & widenScalarToNextPow2(unsigned TypeIdx, unsigned MinSize=0)
Widen the scalar to the next power of two that is at least MinSize.
LegalizeRuleSet & scalarize(unsigned TypeIdx)
void setIsAliasedByAnother()
LegalizeRuleSet & legalForCartesianProduct(std::initializer_list< LLT > Types)
The instruction is legal when type indexes 0 and 1 are both in the given list.
LegalizeRuleSet & lowerForCartesianProduct(std::initializer_list< LLT > Types0, std::initializer_list< LLT > Types1)
The instruction is lowered when type indexes 0 and 1 are both in their respective lists.
LegalizeRuleSet & lowerIf(LegalityPredicate Predicate, LegalizeMutation Mutation)
The instruction is lowered if predicate is true.
LegalizeRuleSet & legalForTypesWithMemDesc(std::initializer_list< LegalityPredicates::TypePairAndMemDesc > TypesAndMemDesc)
The instruction is legal when type indexes 0 and 1 along with the memory size and minimum alignment i...
LegalizeRuleSet & libcallIf(LegalityPredicate Predicate)
Like legalIf, but for the Libcall action.
LegalizeRuleSet & maxScalarOrElt(unsigned TypeIdx, const LLT Ty)
Ensure the scalar is at most as wide as Ty.
LegalizeRuleSet & customFor(std::initializer_list< std::pair< LLT, LLT > > Types)
The instruction is custom when type indexes 0 and 1 is any type pair in the given list.
LegalizeRuleSet & minScalarIf(LegalityPredicate Predicate, unsigned TypeIdx, const LLT Ty)
Ensure the scalar is at least as wide as Ty if condition is met.
unsigned immIdx(unsigned ImmIdx)
LLVM_ABI bool verifyTypeIdxsCoverage(unsigned NumTypeIdxs) const
Check if there is no type index which is obviously not handled by the LegalizeRuleSet in any way at a...
LegalizeRuleSet & widenScalarOrEltToNextPow2(unsigned TypeIdx, unsigned MinSize=0)
Widen the scalar or vector element type to the next power of two that is at least MinSize.
LLVM_ABI LegalizeActionStep apply(const LegalityQuery &Query) const
Apply the ruleset to the given LegalityQuery.
LegalizeRuleSet & lowerFor(std::initializer_list< std::pair< LLT, LLT > > Types, LegalizeMutation Mutation)
The instruction is lowered when type indexes 0 and 1 is any type pair in the given list.
LegalizeRuleSet & legalIf(LegalityPredicate Predicate)
The instruction is legal if predicate is true.
LegalizeRuleSet & customFor(std::initializer_list< LLT > Types)
LegalizeRuleSet & widenScalarToNextMultipleOf(unsigned TypeIdx, unsigned Size)
Widen the scalar to the next multiple of Size.
A single rule in a legalizer info ruleset.
std::pair< unsigned, LLT > determineMutation(const LegalityQuery &Query) const
Determine the change to make.
bool match(const LegalityQuery &Query) const
Test whether the LegalityQuery matches.
LegalizeRule(LegalityPredicate Predicate, LegalizeAction Action, LegalizeMutation Mutation=nullptr)
LegalizeAction getAction() const
virtual ~LegalizerInfo()=default
const LegacyLegalizerInfo & getLegacyLegalizerInfo() const
LegacyLegalizerInfo & getLegacyLegalizerInfo()
bool isLegalOrCustom(const LegalityQuery &Query) const
virtual bool legalizeCustom(LegalizerHelper &Helper, MachineInstr &MI, LostDebugLocObserver &LocObserver) const
Called for instructions with the Custom LegalizationAction.
bool isLegal(const LegalityQuery &Query) const
virtual bool legalizeIntrinsic(LegalizerHelper &Helper, MachineInstr &MI) const
Interface to description of machine instruction set.
Representation of each machine instruction.
A description of a memory reference used in the backend.
MachineRegisterInfo - Keep track of information for virtual and physical registers,...
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
The instances of the Type class are immutable: once they are created, they are never changed.
This class implements an extremely fast bulk output stream that can only output to a stream.
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
@ Bitcast
Perform the operation on a different, but equivalently sized type.
@ MoreElements
The (vector) operation should be implemented by widening the input vector and ignoring the lanes adde...
@ Legal
The operation is expected to be selectable directly by the target, and no transformation is necessary...
@ FewerElements
The (vector) operation should be implemented by splitting it into sub-vectors where the operation is ...
@ Unsupported
This operation is completely unsupported on the target.
@ NarrowScalar
The operation should be synthesized from multiple instructions acting on a narrower scalar base-type.
@ Lower
The operation itself must be expressed in terms of simpler actions on this target.
@ Custom
The target wants to do something special with this combination of operand and type.
@ NotFound
Sentinel value for when no action was found in the specified table.
@ WidenScalar
The operation should be implemented in terms of a wider scalar base-type.
@ Libcall
The operation should be implemented as a call to some kind of runtime support library.
LLVM_ABI LegalityPredicate scalarOrEltWiderThan(unsigned TypeIdx, unsigned Size)
True iff the specified type index is a scalar or a vector with an element type that's wider than the ...
LLVM_ABI LegalityPredicate isScalar(unsigned TypeIdx)
True iff the specified type index is a scalar.
LLVM_ABI LegalityPredicate memSizeInBytesNotPow2(unsigned MMOIdx)
True iff the specified MMO index has a size (rounded to bytes) that is not a power of 2.
LLVM_ABI LegalityPredicate numElementsNotPow2(unsigned TypeIdx)
True iff the specified type index is a vector whose element count is not a power of 2.
LLVM_ABI LegalityPredicate isPointerVector(unsigned TypeIdx)
True iff the specified type index is a vector of pointers (with any address space).
LLVM_ABI LegalityPredicate isPointer(unsigned TypeIdx)
True iff the specified type index is a pointer (with any address space).
LLVM_ABI LegalityPredicate typeInSet(unsigned TypeIdx, std::initializer_list< LLT > TypesInit)
True iff the given type index is one of the specified types.
LLVM_ABI LegalityPredicate smallerThan(unsigned TypeIdx0, unsigned TypeIdx1)
True iff the first type index has a smaller total bit size than second type index.
LLVM_ABI LegalityPredicate atomicOrderingAtLeastOrStrongerThan(unsigned MMOIdx, AtomicOrdering Ordering)
True iff the specified MMO index has at an atomic ordering of at Ordering or stronger.
LLVM_ABI LegalityPredicate scalarOrEltSizeNotPow2(unsigned TypeIdx)
True iff the specified type index is a scalar or vector whose element size is not a power of 2.
LLVM_ABI LegalityPredicate largerThan(unsigned TypeIdx0, unsigned TypeIdx1)
True iff the first type index has a larger total bit size than second type index.
LLVM_ABI LegalityPredicate typePairInSet(unsigned TypeIdx0, unsigned TypeIdx1, std::initializer_list< std::pair< LLT, LLT > > TypesInit)
True iff the given types for the given pair of type indexes is one of the specified type pairs.
LLVM_ABI LegalityPredicate memSizeNotByteSizePow2(unsigned MMOIdx)
True iff the specified MMO index has a size that is not an even byte size, or that even byte size is ...
Predicate any(Predicate P0, Predicate P1)
True iff P0 or P1 are true.
LLVM_ABI LegalityPredicate elementTypeIs(unsigned TypeIdx, LLT EltTy)
True if the type index is a vector with element type EltTy.
LLVM_ABI LegalityPredicate sameSize(unsigned TypeIdx0, unsigned TypeIdx1)
True iff the specified type indices are both the same bit size.
LLVM_ABI LegalityPredicate scalarOrEltNarrowerThan(unsigned TypeIdx, unsigned Size)
True iff the specified type index is a scalar or vector with an element type that's narrower than the...
LLVM_ABI LegalityPredicate sizeIs(unsigned TypeIdx, unsigned Size)
True if the total bitwidth of the specified type index is Size bits.
LegalityPredicate typeIsNot(unsigned TypeIdx, LLT Type)
True iff the given type index is not the specified type.
LLVM_ABI LegalityPredicate isVector(unsigned TypeIdx)
True iff the specified type index is a vector.
LLVM_ABI LegalityPredicate sizeNotPow2(unsigned TypeIdx)
True iff the specified type index is a scalar whose size is not a power of.
LLVM_ABI LegalityPredicate typeTupleInSet(unsigned TypeIdx0, unsigned TypeIdx1, unsigned Type2, std::initializer_list< std::tuple< LLT, LLT, LLT > > TypesInit)
True iff the given types for the given tuple of type indexes is one of the specified type tuple.
Predicate all(Predicate P0, Predicate P1)
True iff P0 and P1 are true.
LLVM_ABI LegalityPredicate typePairAndMemDescInSet(unsigned TypeIdx0, unsigned TypeIdx1, unsigned MMOIdx, std::initializer_list< TypePairAndMemDesc > TypesAndMemDescInit)
True iff the given types for the given pair of type indexes is one of the specified type pairs.
LLVM_ABI LegalityPredicate sizeNotMultipleOf(unsigned TypeIdx, unsigned Size)
True iff the specified type index is a scalar whose size is not a multiple of Size.
LLVM_ABI LegalityPredicate typeIs(unsigned TypeIdx, LLT TypesInit)
True iff the given type index is the specified type.
Predicate predNot(Predicate P)
True iff P is false.
LLVM_ABI LegalityPredicate scalarWiderThan(unsigned TypeIdx, unsigned Size)
True iff the specified type index is a scalar that's wider than the given size.
LLVM_ABI LegalityPredicate scalarNarrowerThan(unsigned TypeIdx, unsigned Size)
True iff the specified type index is a scalar that's narrower than the given size.
@ FewerElements
The (vector) operation should be implemented by splitting it into sub-vectors where the operation is ...
@ Legal
The operation is expected to be selectable directly by the target, and no transformation is necessary...
@ Libcall
The operation should be implemented as a call to some kind of runtime support library.
@ Unsupported
This operation is completely unsupported on the target.
@ Lower
The operation itself must be expressed in terms of simpler actions on this target.
@ UseLegacyRules
Fall back onto the old rules.
@ WidenScalar
The operation should be implemented in terms of a wider scalar base-type.
@ Bitcast
Perform the operation on a different, but equivalently sized type.
@ NarrowScalar
The operation should be synthesized from multiple instructions acting on a narrower scalar base-type.
@ Custom
The target wants to do something special with this combination of operand and type.
@ NotFound
Sentinel value for when no action was found in the specified table.
@ MoreElements
The (vector) operation should be implemented by widening the input vector and ignoring the lanes adde...
LLVM_ABI LegalizeMutation moreElementsToNextPow2(unsigned TypeIdx, unsigned Min=0)
Add more elements to the type for the given type index to the next power of.
LLVM_ABI LegalizeMutation changeElementCountTo(unsigned TypeIdx, unsigned FromTypeIdx)
Keep the same scalar or element type as TypeIdx, but take the number of elements from FromTypeIdx.
LLVM_ABI LegalizeMutation scalarize(unsigned TypeIdx)
Break up the vector type for the given type index into the element type.
LLVM_ABI LegalizeMutation changeElementTo(unsigned TypeIdx, unsigned FromTypeIdx)
Keep the same scalar or element type as the given type index.
LLVM_ABI LegalizeMutation widenScalarOrEltToNextPow2(unsigned TypeIdx, unsigned Min=0)
Widen the scalar type or vector element type for the given type index to the next power of 2.
LLVM_ABI LegalizeMutation changeTo(unsigned TypeIdx, LLT Ty)
Select this specific type for the given type index.
LLVM_ABI LegalizeMutation widenScalarOrEltToNextMultipleOf(unsigned TypeIdx, unsigned Size)
Widen the scalar type or vector element type for the given type index to next multiple of Size.
LLVM_ABI LegalizeMutation changeElementSizeTo(unsigned TypeIdx, unsigned FromTypeIdx)
Change the scalar size or element size to have the same scalar size as type index FromIndex.
@ OPERAND_FIRST_GENERIC_IMM
@ OPERAND_LAST_GENERIC_IMM
template class LLVM_TEMPLATE_ABI opt< bool >
This is an optimization pass for GlobalISel generic memory operations.
MaybeAlign getAlign(const CallInst &I, unsigned Index)
LLVM_ABI cl::opt< bool > DisableGISelLegalityCheck
std::function< std::pair< unsigned, LLT >(const LegalityQuery &)> LegalizeMutation
const MachineInstr * machineFunctionIsIllegal(const MachineFunction &MF)
Checks that MIR is fully legal, returns an illegal instruction if it's not, nullptr otherwise.
AtomicOrdering
Atomic ordering for LLVM's memory model.
uint64_t alignTo(uint64_t Size, Align A)
Returns a multiple of A needed to store Size bytes.
raw_ostream & operator<<(raw_ostream &OS, const APFixedPoint &FX)
std::function< bool(const LegalityQuery &)> LegalityPredicate
This struct is a compact representation of a valid (non-zero power of two) alignment.
LegacyLegalizeActions::LegacyLegalizeAction Action
The action to take or the final answer.
bool operator==(const TypePairAndMemDesc &Other) const
bool isCompatible(const TypePairAndMemDesc &Other) const
MemDesc(const MachineMemOperand &MMO)
MemDesc(LLT MemoryTy, uint64_t AlignInBits, AtomicOrdering Ordering)
The LegalityQuery object bundles together all the information that's needed to decide whether a given...
ArrayRef< MemDesc > MMODescrs
Operations which require memory can use this to place requirements on the memory type for each MMO.
LLVM_ABI raw_ostream & print(raw_ostream &OS) const
constexpr LegalityQuery(unsigned Opcode, ArrayRef< LLT > Types, ArrayRef< MemDesc > MMODescrs={})
LegalizeAction Action
The action to take or the final answer.
LegalizeActionStep(LegacyLegalizeActionStep Step)
LLT NewType
If describing an action, the new type for TypeIdx. Otherwise LLT{}.
unsigned TypeIdx
If describing an action, the type index to change. Otherwise zero.
LegalizeActionStep(LegalizeAction Action, unsigned TypeIdx, const LLT NewType)
bool operator==(const LegalizeActionStep &RHS) const