xref: /llvm-project-15.0.7/clang/lib/AST/Type.cpp (revision 16ba78ee)
1 //===- Type.cpp - Type representation and manipulation --------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  This file implements type-related functionality.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "clang/AST/Type.h"
14 #include "Linkage.h"
15 #include "clang/AST/ASTContext.h"
16 #include "clang/AST/Attr.h"
17 #include "clang/AST/CharUnits.h"
18 #include "clang/AST/Decl.h"
19 #include "clang/AST/DeclBase.h"
20 #include "clang/AST/DeclCXX.h"
21 #include "clang/AST/DeclObjC.h"
22 #include "clang/AST/DeclTemplate.h"
23 #include "clang/AST/DependenceFlags.h"
24 #include "clang/AST/Expr.h"
25 #include "clang/AST/NestedNameSpecifier.h"
26 #include "clang/AST/NonTrivialTypeVisitor.h"
27 #include "clang/AST/PrettyPrinter.h"
28 #include "clang/AST/TemplateBase.h"
29 #include "clang/AST/TemplateName.h"
30 #include "clang/AST/TypeVisitor.h"
31 #include "clang/Basic/AddressSpaces.h"
32 #include "clang/Basic/ExceptionSpecificationType.h"
33 #include "clang/Basic/IdentifierTable.h"
34 #include "clang/Basic/LLVM.h"
35 #include "clang/Basic/LangOptions.h"
36 #include "clang/Basic/Linkage.h"
37 #include "clang/Basic/Specifiers.h"
38 #include "clang/Basic/TargetCXXABI.h"
39 #include "clang/Basic/TargetInfo.h"
40 #include "clang/Basic/Visibility.h"
41 #include "llvm/ADT/APInt.h"
42 #include "llvm/ADT/APSInt.h"
43 #include "llvm/ADT/ArrayRef.h"
44 #include "llvm/ADT/FoldingSet.h"
45 #include "llvm/ADT/None.h"
46 #include "llvm/ADT/SmallVector.h"
47 #include "llvm/Support/Casting.h"
48 #include "llvm/Support/ErrorHandling.h"
49 #include "llvm/Support/MathExtras.h"
50 #include <algorithm>
51 #include <cassert>
52 #include <cstdint>
53 #include <cstring>
54 #include <type_traits>
55 
56 using namespace clang;
57 
58 bool Qualifiers::isStrictSupersetOf(Qualifiers Other) const {
59   return (*this != Other) &&
60     // CVR qualifiers superset
61     (((Mask & CVRMask) | (Other.Mask & CVRMask)) == (Mask & CVRMask)) &&
62     // ObjC GC qualifiers superset
63     ((getObjCGCAttr() == Other.getObjCGCAttr()) ||
64      (hasObjCGCAttr() && !Other.hasObjCGCAttr())) &&
65     // Address space superset.
66     ((getAddressSpace() == Other.getAddressSpace()) ||
67      (hasAddressSpace()&& !Other.hasAddressSpace())) &&
68     // Lifetime qualifier superset.
69     ((getObjCLifetime() == Other.getObjCLifetime()) ||
70      (hasObjCLifetime() && !Other.hasObjCLifetime()));
71 }
72 
73 const IdentifierInfo* QualType::getBaseTypeIdentifier() const {
74   const Type* ty = getTypePtr();
75   NamedDecl *ND = nullptr;
76   if (ty->isPointerType() || ty->isReferenceType())
77     return ty->getPointeeType().getBaseTypeIdentifier();
78   else if (ty->isRecordType())
79     ND = ty->castAs<RecordType>()->getDecl();
80   else if (ty->isEnumeralType())
81     ND = ty->castAs<EnumType>()->getDecl();
82   else if (ty->getTypeClass() == Type::Typedef)
83     ND = ty->castAs<TypedefType>()->getDecl();
84   else if (ty->isArrayType())
85     return ty->castAsArrayTypeUnsafe()->
86         getElementType().getBaseTypeIdentifier();
87 
88   if (ND)
89     return ND->getIdentifier();
90   return nullptr;
91 }
92 
93 bool QualType::mayBeDynamicClass() const {
94   const auto *ClassDecl = getTypePtr()->getPointeeCXXRecordDecl();
95   return ClassDecl && ClassDecl->mayBeDynamicClass();
96 }
97 
98 bool QualType::mayBeNotDynamicClass() const {
99   const auto *ClassDecl = getTypePtr()->getPointeeCXXRecordDecl();
100   return !ClassDecl || ClassDecl->mayBeNonDynamicClass();
101 }
102 
103 bool QualType::isConstant(QualType T, const ASTContext &Ctx) {
104   if (T.isConstQualified())
105     return true;
106 
107   if (const ArrayType *AT = Ctx.getAsArrayType(T))
108     return AT->getElementType().isConstant(Ctx);
109 
110   return T.getAddressSpace() == LangAS::opencl_constant;
111 }
112 
113 // C++ [temp.dep.type]p1:
114 //   A type is dependent if it is...
115 //     - an array type constructed from any dependent type or whose
116 //       size is specified by a constant expression that is
117 //       value-dependent,
118 ArrayType::ArrayType(TypeClass tc, QualType et, QualType can,
119                      ArraySizeModifier sm, unsigned tq, const Expr *sz)
120     // Note, we need to check for DependentSizedArrayType explicitly here
121     // because we use a DependentSizedArrayType with no size expression as the
122     // type of a dependent array of unknown bound with a dependent braced
123     // initializer:
124     //
125     //   template<int ...N> int arr[] = {N...};
126     : Type(tc, can,
127            et->getDependence() |
128                (sz ? toTypeDependence(
129                          turnValueToTypeDependence(sz->getDependence()))
130                    : TypeDependence::None) |
131                (tc == VariableArray ? TypeDependence::VariablyModified
132                                     : TypeDependence::None) |
133                (tc == DependentSizedArray
134                     ? TypeDependence::DependentInstantiation
135                     : TypeDependence::None)),
136       ElementType(et) {
137   ArrayTypeBits.IndexTypeQuals = tq;
138   ArrayTypeBits.SizeModifier = sm;
139 }
140 
141 unsigned ConstantArrayType::getNumAddressingBits(const ASTContext &Context,
142                                                  QualType ElementType,
143                                                const llvm::APInt &NumElements) {
144   uint64_t ElementSize = Context.getTypeSizeInChars(ElementType).getQuantity();
145 
146   // Fast path the common cases so we can avoid the conservative computation
147   // below, which in common cases allocates "large" APSInt values, which are
148   // slow.
149 
150   // If the element size is a power of 2, we can directly compute the additional
151   // number of addressing bits beyond those required for the element count.
152   if (llvm::isPowerOf2_64(ElementSize)) {
153     return NumElements.getActiveBits() + llvm::Log2_64(ElementSize);
154   }
155 
156   // If both the element count and element size fit in 32-bits, we can do the
157   // computation directly in 64-bits.
158   if ((ElementSize >> 32) == 0 && NumElements.getBitWidth() <= 64 &&
159       (NumElements.getZExtValue() >> 32) == 0) {
160     uint64_t TotalSize = NumElements.getZExtValue() * ElementSize;
161     return 64 - llvm::countLeadingZeros(TotalSize);
162   }
163 
164   // Otherwise, use APSInt to handle arbitrary sized values.
165   llvm::APSInt SizeExtended(NumElements, true);
166   unsigned SizeTypeBits = Context.getTypeSize(Context.getSizeType());
167   SizeExtended = SizeExtended.extend(std::max(SizeTypeBits,
168                                               SizeExtended.getBitWidth()) * 2);
169 
170   llvm::APSInt TotalSize(llvm::APInt(SizeExtended.getBitWidth(), ElementSize));
171   TotalSize *= SizeExtended;
172 
173   return TotalSize.getActiveBits();
174 }
175 
176 unsigned ConstantArrayType::getMaxSizeBits(const ASTContext &Context) {
177   unsigned Bits = Context.getTypeSize(Context.getSizeType());
178 
179   // Limit the number of bits in size_t so that maximal bit size fits 64 bit
180   // integer (see PR8256).  We can do this as currently there is no hardware
181   // that supports full 64-bit virtual space.
182   if (Bits > 61)
183     Bits = 61;
184 
185   return Bits;
186 }
187 
188 void ConstantArrayType::Profile(llvm::FoldingSetNodeID &ID,
189                                 const ASTContext &Context, QualType ET,
190                                 const llvm::APInt &ArraySize,
191                                 const Expr *SizeExpr, ArraySizeModifier SizeMod,
192                                 unsigned TypeQuals) {
193   ID.AddPointer(ET.getAsOpaquePtr());
194   ID.AddInteger(ArraySize.getZExtValue());
195   ID.AddInteger(SizeMod);
196   ID.AddInteger(TypeQuals);
197   ID.AddBoolean(SizeExpr != 0);
198   if (SizeExpr)
199     SizeExpr->Profile(ID, Context, true);
200 }
201 
202 DependentSizedArrayType::DependentSizedArrayType(const ASTContext &Context,
203                                                  QualType et, QualType can,
204                                                  Expr *e, ArraySizeModifier sm,
205                                                  unsigned tq,
206                                                  SourceRange brackets)
207     : ArrayType(DependentSizedArray, et, can, sm, tq, e),
208       Context(Context), SizeExpr((Stmt*) e), Brackets(brackets) {}
209 
210 void DependentSizedArrayType::Profile(llvm::FoldingSetNodeID &ID,
211                                       const ASTContext &Context,
212                                       QualType ET,
213                                       ArraySizeModifier SizeMod,
214                                       unsigned TypeQuals,
215                                       Expr *E) {
216   ID.AddPointer(ET.getAsOpaquePtr());
217   ID.AddInteger(SizeMod);
218   ID.AddInteger(TypeQuals);
219   E->Profile(ID, Context, true);
220 }
221 
222 DependentVectorType::DependentVectorType(const ASTContext &Context,
223                                          QualType ElementType,
224                                          QualType CanonType, Expr *SizeExpr,
225                                          SourceLocation Loc,
226                                          VectorType::VectorKind VecKind)
227     : Type(DependentVector, CanonType,
228            TypeDependence::DependentInstantiation |
229                ElementType->getDependence() |
230                (SizeExpr ? toTypeDependence(SizeExpr->getDependence())
231                          : TypeDependence::None)),
232       Context(Context), ElementType(ElementType), SizeExpr(SizeExpr), Loc(Loc) {
233   VectorTypeBits.VecKind = VecKind;
234 }
235 
236 void DependentVectorType::Profile(llvm::FoldingSetNodeID &ID,
237                                   const ASTContext &Context,
238                                   QualType ElementType, const Expr *SizeExpr,
239                                   VectorType::VectorKind VecKind) {
240   ID.AddPointer(ElementType.getAsOpaquePtr());
241   ID.AddInteger(VecKind);
242   SizeExpr->Profile(ID, Context, true);
243 }
244 
245 DependentSizedExtVectorType::DependentSizedExtVectorType(
246     const ASTContext &Context, QualType ElementType, QualType can,
247     Expr *SizeExpr, SourceLocation loc)
248     : Type(DependentSizedExtVector, can,
249            TypeDependence::DependentInstantiation |
250                ElementType->getDependence() |
251                (SizeExpr ? toTypeDependence(SizeExpr->getDependence())
252                          : TypeDependence::None)),
253       Context(Context), SizeExpr(SizeExpr), ElementType(ElementType), loc(loc) {
254 }
255 
256 void
257 DependentSizedExtVectorType::Profile(llvm::FoldingSetNodeID &ID,
258                                      const ASTContext &Context,
259                                      QualType ElementType, Expr *SizeExpr) {
260   ID.AddPointer(ElementType.getAsOpaquePtr());
261   SizeExpr->Profile(ID, Context, true);
262 }
263 
264 DependentAddressSpaceType::DependentAddressSpaceType(const ASTContext &Context,
265                                                      QualType PointeeType,
266                                                      QualType can,
267                                                      Expr *AddrSpaceExpr,
268                                                      SourceLocation loc)
269     : Type(DependentAddressSpace, can,
270            TypeDependence::DependentInstantiation |
271                PointeeType->getDependence() |
272                (AddrSpaceExpr ? toTypeDependence(AddrSpaceExpr->getDependence())
273                               : TypeDependence::None)),
274       Context(Context), AddrSpaceExpr(AddrSpaceExpr), PointeeType(PointeeType),
275       loc(loc) {}
276 
277 void DependentAddressSpaceType::Profile(llvm::FoldingSetNodeID &ID,
278                                         const ASTContext &Context,
279                                         QualType PointeeType,
280                                         Expr *AddrSpaceExpr) {
281   ID.AddPointer(PointeeType.getAsOpaquePtr());
282   AddrSpaceExpr->Profile(ID, Context, true);
283 }
284 
285 MatrixType::MatrixType(TypeClass tc, QualType matrixType, QualType canonType,
286                        const Expr *RowExpr, const Expr *ColumnExpr)
287     : Type(tc, canonType,
288            (RowExpr ? (matrixType->getDependence() | TypeDependence::Dependent |
289                        TypeDependence::Instantiation |
290                        (matrixType->isVariablyModifiedType()
291                             ? TypeDependence::VariablyModified
292                             : TypeDependence::None) |
293                        (matrixType->containsUnexpandedParameterPack() ||
294                                 (RowExpr &&
295                                  RowExpr->containsUnexpandedParameterPack()) ||
296                                 (ColumnExpr &&
297                                  ColumnExpr->containsUnexpandedParameterPack())
298                             ? TypeDependence::UnexpandedPack
299                             : TypeDependence::None))
300                     : matrixType->getDependence())),
301       ElementType(matrixType) {}
302 
303 ConstantMatrixType::ConstantMatrixType(QualType matrixType, unsigned nRows,
304                                        unsigned nColumns, QualType canonType)
305     : ConstantMatrixType(ConstantMatrix, matrixType, nRows, nColumns,
306                          canonType) {}
307 
308 ConstantMatrixType::ConstantMatrixType(TypeClass tc, QualType matrixType,
309                                        unsigned nRows, unsigned nColumns,
310                                        QualType canonType)
311     : MatrixType(tc, matrixType, canonType), NumRows(nRows),
312       NumColumns(nColumns) {}
313 
314 DependentSizedMatrixType::DependentSizedMatrixType(
315     const ASTContext &CTX, QualType ElementType, QualType CanonicalType,
316     Expr *RowExpr, Expr *ColumnExpr, SourceLocation loc)
317     : MatrixType(DependentSizedMatrix, ElementType, CanonicalType, RowExpr,
318                  ColumnExpr),
319       Context(CTX), RowExpr(RowExpr), ColumnExpr(ColumnExpr), loc(loc) {}
320 
321 void DependentSizedMatrixType::Profile(llvm::FoldingSetNodeID &ID,
322                                        const ASTContext &CTX,
323                                        QualType ElementType, Expr *RowExpr,
324                                        Expr *ColumnExpr) {
325   ID.AddPointer(ElementType.getAsOpaquePtr());
326   RowExpr->Profile(ID, CTX, true);
327   ColumnExpr->Profile(ID, CTX, true);
328 }
329 
330 VectorType::VectorType(QualType vecType, unsigned nElements, QualType canonType,
331                        VectorKind vecKind)
332     : VectorType(Vector, vecType, nElements, canonType, vecKind) {}
333 
334 VectorType::VectorType(TypeClass tc, QualType vecType, unsigned nElements,
335                        QualType canonType, VectorKind vecKind)
336     : Type(tc, canonType, vecType->getDependence()), ElementType(vecType) {
337   VectorTypeBits.VecKind = vecKind;
338   VectorTypeBits.NumElements = nElements;
339 }
340 
341 ExtIntType::ExtIntType(bool IsUnsigned, unsigned NumBits)
342     : Type(ExtInt, QualType{}, TypeDependence::None), IsUnsigned(IsUnsigned),
343       NumBits(NumBits) {}
344 
345 DependentExtIntType::DependentExtIntType(const ASTContext &Context,
346                                          bool IsUnsigned, Expr *NumBitsExpr)
347     : Type(DependentExtInt, QualType{},
348            toTypeDependence(NumBitsExpr->getDependence())),
349       Context(Context), ExprAndUnsigned(NumBitsExpr, IsUnsigned) {}
350 
351 bool DependentExtIntType::isUnsigned() const {
352   return ExprAndUnsigned.getInt();
353 }
354 
355 clang::Expr *DependentExtIntType::getNumBitsExpr() const {
356   return ExprAndUnsigned.getPointer();
357 }
358 
359 void DependentExtIntType::Profile(llvm::FoldingSetNodeID &ID,
360                                   const ASTContext &Context, bool IsUnsigned,
361                                   Expr *NumBitsExpr) {
362   ID.AddBoolean(IsUnsigned);
363   NumBitsExpr->Profile(ID, Context, true);
364 }
365 
366 /// getArrayElementTypeNoTypeQual - If this is an array type, return the
367 /// element type of the array, potentially with type qualifiers missing.
368 /// This method should never be used when type qualifiers are meaningful.
369 const Type *Type::getArrayElementTypeNoTypeQual() const {
370   // If this is directly an array type, return it.
371   if (const auto *ATy = dyn_cast<ArrayType>(this))
372     return ATy->getElementType().getTypePtr();
373 
374   // If the canonical form of this type isn't the right kind, reject it.
375   if (!isa<ArrayType>(CanonicalType))
376     return nullptr;
377 
378   // If this is a typedef for an array type, strip the typedef off without
379   // losing all typedef information.
380   return cast<ArrayType>(getUnqualifiedDesugaredType())
381     ->getElementType().getTypePtr();
382 }
383 
384 /// getDesugaredType - Return the specified type with any "sugar" removed from
385 /// the type.  This takes off typedefs, typeof's etc.  If the outer level of
386 /// the type is already concrete, it returns it unmodified.  This is similar
387 /// to getting the canonical type, but it doesn't remove *all* typedefs.  For
388 /// example, it returns "T*" as "T*", (not as "int*"), because the pointer is
389 /// concrete.
390 QualType QualType::getDesugaredType(QualType T, const ASTContext &Context) {
391   SplitQualType split = getSplitDesugaredType(T);
392   return Context.getQualifiedType(split.Ty, split.Quals);
393 }
394 
395 QualType QualType::getSingleStepDesugaredTypeImpl(QualType type,
396                                                   const ASTContext &Context) {
397   SplitQualType split = type.split();
398   QualType desugar = split.Ty->getLocallyUnqualifiedSingleStepDesugaredType();
399   return Context.getQualifiedType(desugar, split.Quals);
400 }
401 
402 // Check that no type class is polymorphic. LLVM style RTTI should be used
403 // instead. If absolutely needed an exception can still be added here by
404 // defining the appropriate macro (but please don't do this).
405 #define TYPE(CLASS, BASE) \
406   static_assert(!std::is_polymorphic<CLASS##Type>::value, \
407                 #CLASS "Type should not be polymorphic!");
408 #include "clang/AST/TypeNodes.inc"
409 
410 // Check that no type class has a non-trival destructor. Types are
411 // allocated with the BumpPtrAllocator from ASTContext and therefore
412 // their destructor is not executed.
413 //
414 // FIXME: ConstantArrayType is not trivially destructible because of its
415 // APInt member. It should be replaced in favor of ASTContext allocation.
416 #define TYPE(CLASS, BASE)                                                      \
417   static_assert(std::is_trivially_destructible<CLASS##Type>::value ||          \
418                     std::is_same<CLASS##Type, ConstantArrayType>::value,       \
419                 #CLASS "Type should be trivially destructible!");
420 #include "clang/AST/TypeNodes.inc"
421 
422 QualType Type::getLocallyUnqualifiedSingleStepDesugaredType() const {
423   switch (getTypeClass()) {
424 #define ABSTRACT_TYPE(Class, Parent)
425 #define TYPE(Class, Parent) \
426   case Type::Class: { \
427     const auto *ty = cast<Class##Type>(this); \
428     if (!ty->isSugared()) return QualType(ty, 0); \
429     return ty->desugar(); \
430   }
431 #include "clang/AST/TypeNodes.inc"
432   }
433   llvm_unreachable("bad type kind!");
434 }
435 
436 SplitQualType QualType::getSplitDesugaredType(QualType T) {
437   QualifierCollector Qs;
438 
439   QualType Cur = T;
440   while (true) {
441     const Type *CurTy = Qs.strip(Cur);
442     switch (CurTy->getTypeClass()) {
443 #define ABSTRACT_TYPE(Class, Parent)
444 #define TYPE(Class, Parent) \
445     case Type::Class: { \
446       const auto *Ty = cast<Class##Type>(CurTy); \
447       if (!Ty->isSugared()) \
448         return SplitQualType(Ty, Qs); \
449       Cur = Ty->desugar(); \
450       break; \
451     }
452 #include "clang/AST/TypeNodes.inc"
453     }
454   }
455 }
456 
457 SplitQualType QualType::getSplitUnqualifiedTypeImpl(QualType type) {
458   SplitQualType split = type.split();
459 
460   // All the qualifiers we've seen so far.
461   Qualifiers quals = split.Quals;
462 
463   // The last type node we saw with any nodes inside it.
464   const Type *lastTypeWithQuals = split.Ty;
465 
466   while (true) {
467     QualType next;
468 
469     // Do a single-step desugar, aborting the loop if the type isn't
470     // sugared.
471     switch (split.Ty->getTypeClass()) {
472 #define ABSTRACT_TYPE(Class, Parent)
473 #define TYPE(Class, Parent) \
474     case Type::Class: { \
475       const auto *ty = cast<Class##Type>(split.Ty); \
476       if (!ty->isSugared()) goto done; \
477       next = ty->desugar(); \
478       break; \
479     }
480 #include "clang/AST/TypeNodes.inc"
481     }
482 
483     // Otherwise, split the underlying type.  If that yields qualifiers,
484     // update the information.
485     split = next.split();
486     if (!split.Quals.empty()) {
487       lastTypeWithQuals = split.Ty;
488       quals.addConsistentQualifiers(split.Quals);
489     }
490   }
491 
492  done:
493   return SplitQualType(lastTypeWithQuals, quals);
494 }
495 
496 QualType QualType::IgnoreParens(QualType T) {
497   // FIXME: this seems inherently un-qualifiers-safe.
498   while (const auto *PT = T->getAs<ParenType>())
499     T = PT->getInnerType();
500   return T;
501 }
502 
503 /// This will check for a T (which should be a Type which can act as
504 /// sugar, such as a TypedefType) by removing any existing sugar until it
505 /// reaches a T or a non-sugared type.
506 template<typename T> static const T *getAsSugar(const Type *Cur) {
507   while (true) {
508     if (const auto *Sugar = dyn_cast<T>(Cur))
509       return Sugar;
510     switch (Cur->getTypeClass()) {
511 #define ABSTRACT_TYPE(Class, Parent)
512 #define TYPE(Class, Parent) \
513     case Type::Class: { \
514       const auto *Ty = cast<Class##Type>(Cur); \
515       if (!Ty->isSugared()) return 0; \
516       Cur = Ty->desugar().getTypePtr(); \
517       break; \
518     }
519 #include "clang/AST/TypeNodes.inc"
520     }
521   }
522 }
523 
524 template <> const TypedefType *Type::getAs() const {
525   return getAsSugar<TypedefType>(this);
526 }
527 
528 template <> const TemplateSpecializationType *Type::getAs() const {
529   return getAsSugar<TemplateSpecializationType>(this);
530 }
531 
532 template <> const AttributedType *Type::getAs() const {
533   return getAsSugar<AttributedType>(this);
534 }
535 
536 /// getUnqualifiedDesugaredType - Pull any qualifiers and syntactic
537 /// sugar off the given type.  This should produce an object of the
538 /// same dynamic type as the canonical type.
539 const Type *Type::getUnqualifiedDesugaredType() const {
540   const Type *Cur = this;
541 
542   while (true) {
543     switch (Cur->getTypeClass()) {
544 #define ABSTRACT_TYPE(Class, Parent)
545 #define TYPE(Class, Parent) \
546     case Class: { \
547       const auto *Ty = cast<Class##Type>(Cur); \
548       if (!Ty->isSugared()) return Cur; \
549       Cur = Ty->desugar().getTypePtr(); \
550       break; \
551     }
552 #include "clang/AST/TypeNodes.inc"
553     }
554   }
555 }
556 
557 bool Type::isClassType() const {
558   if (const auto *RT = getAs<RecordType>())
559     return RT->getDecl()->isClass();
560   return false;
561 }
562 
563 bool Type::isStructureType() const {
564   if (const auto *RT = getAs<RecordType>())
565     return RT->getDecl()->isStruct();
566   return false;
567 }
568 
569 bool Type::isObjCBoxableRecordType() const {
570   if (const auto *RT = getAs<RecordType>())
571     return RT->getDecl()->hasAttr<ObjCBoxableAttr>();
572   return false;
573 }
574 
575 bool Type::isInterfaceType() const {
576   if (const auto *RT = getAs<RecordType>())
577     return RT->getDecl()->isInterface();
578   return false;
579 }
580 
581 bool Type::isStructureOrClassType() const {
582   if (const auto *RT = getAs<RecordType>()) {
583     RecordDecl *RD = RT->getDecl();
584     return RD->isStruct() || RD->isClass() || RD->isInterface();
585   }
586   return false;
587 }
588 
589 bool Type::isVoidPointerType() const {
590   if (const auto *PT = getAs<PointerType>())
591     return PT->getPointeeType()->isVoidType();
592   return false;
593 }
594 
595 bool Type::isUnionType() const {
596   if (const auto *RT = getAs<RecordType>())
597     return RT->getDecl()->isUnion();
598   return false;
599 }
600 
601 bool Type::isComplexType() const {
602   if (const auto *CT = dyn_cast<ComplexType>(CanonicalType))
603     return CT->getElementType()->isFloatingType();
604   return false;
605 }
606 
607 bool Type::isComplexIntegerType() const {
608   // Check for GCC complex integer extension.
609   return getAsComplexIntegerType();
610 }
611 
612 bool Type::isScopedEnumeralType() const {
613   if (const auto *ET = getAs<EnumType>())
614     return ET->getDecl()->isScoped();
615   return false;
616 }
617 
618 const ComplexType *Type::getAsComplexIntegerType() const {
619   if (const auto *Complex = getAs<ComplexType>())
620     if (Complex->getElementType()->isIntegerType())
621       return Complex;
622   return nullptr;
623 }
624 
625 QualType Type::getPointeeType() const {
626   if (const auto *PT = getAs<PointerType>())
627     return PT->getPointeeType();
628   if (const auto *OPT = getAs<ObjCObjectPointerType>())
629     return OPT->getPointeeType();
630   if (const auto *BPT = getAs<BlockPointerType>())
631     return BPT->getPointeeType();
632   if (const auto *RT = getAs<ReferenceType>())
633     return RT->getPointeeType();
634   if (const auto *MPT = getAs<MemberPointerType>())
635     return MPT->getPointeeType();
636   if (const auto *DT = getAs<DecayedType>())
637     return DT->getPointeeType();
638   return {};
639 }
640 
641 const RecordType *Type::getAsStructureType() const {
642   // If this is directly a structure type, return it.
643   if (const auto *RT = dyn_cast<RecordType>(this)) {
644     if (RT->getDecl()->isStruct())
645       return RT;
646   }
647 
648   // If the canonical form of this type isn't the right kind, reject it.
649   if (const auto *RT = dyn_cast<RecordType>(CanonicalType)) {
650     if (!RT->getDecl()->isStruct())
651       return nullptr;
652 
653     // If this is a typedef for a structure type, strip the typedef off without
654     // losing all typedef information.
655     return cast<RecordType>(getUnqualifiedDesugaredType());
656   }
657   return nullptr;
658 }
659 
660 const RecordType *Type::getAsUnionType() const {
661   // If this is directly a union type, return it.
662   if (const auto *RT = dyn_cast<RecordType>(this)) {
663     if (RT->getDecl()->isUnion())
664       return RT;
665   }
666 
667   // If the canonical form of this type isn't the right kind, reject it.
668   if (const auto *RT = dyn_cast<RecordType>(CanonicalType)) {
669     if (!RT->getDecl()->isUnion())
670       return nullptr;
671 
672     // If this is a typedef for a union type, strip the typedef off without
673     // losing all typedef information.
674     return cast<RecordType>(getUnqualifiedDesugaredType());
675   }
676 
677   return nullptr;
678 }
679 
680 bool Type::isObjCIdOrObjectKindOfType(const ASTContext &ctx,
681                                       const ObjCObjectType *&bound) const {
682   bound = nullptr;
683 
684   const auto *OPT = getAs<ObjCObjectPointerType>();
685   if (!OPT)
686     return false;
687 
688   // Easy case: id.
689   if (OPT->isObjCIdType())
690     return true;
691 
692   // If it's not a __kindof type, reject it now.
693   if (!OPT->isKindOfType())
694     return false;
695 
696   // If it's Class or qualified Class, it's not an object type.
697   if (OPT->isObjCClassType() || OPT->isObjCQualifiedClassType())
698     return false;
699 
700   // Figure out the type bound for the __kindof type.
701   bound = OPT->getObjectType()->stripObjCKindOfTypeAndQuals(ctx)
702             ->getAs<ObjCObjectType>();
703   return true;
704 }
705 
706 bool Type::isObjCClassOrClassKindOfType() const {
707   const auto *OPT = getAs<ObjCObjectPointerType>();
708   if (!OPT)
709     return false;
710 
711   // Easy case: Class.
712   if (OPT->isObjCClassType())
713     return true;
714 
715   // If it's not a __kindof type, reject it now.
716   if (!OPT->isKindOfType())
717     return false;
718 
719   // If it's Class or qualified Class, it's a class __kindof type.
720   return OPT->isObjCClassType() || OPT->isObjCQualifiedClassType();
721 }
722 
723 ObjCTypeParamType::ObjCTypeParamType(const ObjCTypeParamDecl *D, QualType can,
724                                      ArrayRef<ObjCProtocolDecl *> protocols)
725     : Type(ObjCTypeParam, can,
726            can->getDependence() & ~TypeDependence::UnexpandedPack),
727       OTPDecl(const_cast<ObjCTypeParamDecl *>(D)) {
728   initialize(protocols);
729 }
730 
731 ObjCObjectType::ObjCObjectType(QualType Canonical, QualType Base,
732                                ArrayRef<QualType> typeArgs,
733                                ArrayRef<ObjCProtocolDecl *> protocols,
734                                bool isKindOf)
735     : Type(ObjCObject, Canonical, Base->getDependence()), BaseType(Base) {
736   ObjCObjectTypeBits.IsKindOf = isKindOf;
737 
738   ObjCObjectTypeBits.NumTypeArgs = typeArgs.size();
739   assert(getTypeArgsAsWritten().size() == typeArgs.size() &&
740          "bitfield overflow in type argument count");
741   if (!typeArgs.empty())
742     memcpy(getTypeArgStorage(), typeArgs.data(),
743            typeArgs.size() * sizeof(QualType));
744 
745   for (auto typeArg : typeArgs) {
746     addDependence(typeArg->getDependence() & ~TypeDependence::VariablyModified);
747   }
748   // Initialize the protocol qualifiers. The protocol storage is known
749   // after we set number of type arguments.
750   initialize(protocols);
751 }
752 
753 bool ObjCObjectType::isSpecialized() const {
754   // If we have type arguments written here, the type is specialized.
755   if (ObjCObjectTypeBits.NumTypeArgs > 0)
756     return true;
757 
758   // Otherwise, check whether the base type is specialized.
759   if (const auto objcObject = getBaseType()->getAs<ObjCObjectType>()) {
760     // Terminate when we reach an interface type.
761     if (isa<ObjCInterfaceType>(objcObject))
762       return false;
763 
764     return objcObject->isSpecialized();
765   }
766 
767   // Not specialized.
768   return false;
769 }
770 
771 ArrayRef<QualType> ObjCObjectType::getTypeArgs() const {
772   // We have type arguments written on this type.
773   if (isSpecializedAsWritten())
774     return getTypeArgsAsWritten();
775 
776   // Look at the base type, which might have type arguments.
777   if (const auto objcObject = getBaseType()->getAs<ObjCObjectType>()) {
778     // Terminate when we reach an interface type.
779     if (isa<ObjCInterfaceType>(objcObject))
780       return {};
781 
782     return objcObject->getTypeArgs();
783   }
784 
785   // No type arguments.
786   return {};
787 }
788 
789 bool ObjCObjectType::isKindOfType() const {
790   if (isKindOfTypeAsWritten())
791     return true;
792 
793   // Look at the base type, which might have type arguments.
794   if (const auto objcObject = getBaseType()->getAs<ObjCObjectType>()) {
795     // Terminate when we reach an interface type.
796     if (isa<ObjCInterfaceType>(objcObject))
797       return false;
798 
799     return objcObject->isKindOfType();
800   }
801 
802   // Not a "__kindof" type.
803   return false;
804 }
805 
806 QualType ObjCObjectType::stripObjCKindOfTypeAndQuals(
807            const ASTContext &ctx) const {
808   if (!isKindOfType() && qual_empty())
809     return QualType(this, 0);
810 
811   // Recursively strip __kindof.
812   SplitQualType splitBaseType = getBaseType().split();
813   QualType baseType(splitBaseType.Ty, 0);
814   if (const auto *baseObj = splitBaseType.Ty->getAs<ObjCObjectType>())
815     baseType = baseObj->stripObjCKindOfTypeAndQuals(ctx);
816 
817   return ctx.getObjCObjectType(ctx.getQualifiedType(baseType,
818                                                     splitBaseType.Quals),
819                                getTypeArgsAsWritten(),
820                                /*protocols=*/{},
821                                /*isKindOf=*/false);
822 }
823 
824 const ObjCObjectPointerType *ObjCObjectPointerType::stripObjCKindOfTypeAndQuals(
825                                const ASTContext &ctx) const {
826   if (!isKindOfType() && qual_empty())
827     return this;
828 
829   QualType obj = getObjectType()->stripObjCKindOfTypeAndQuals(ctx);
830   return ctx.getObjCObjectPointerType(obj)->castAs<ObjCObjectPointerType>();
831 }
832 
833 namespace {
834 
835 /// Visitor used to perform a simple type transformation that does not change
836 /// the semantics of the type.
837 template <typename Derived>
838 struct SimpleTransformVisitor : public TypeVisitor<Derived, QualType> {
839   ASTContext &Ctx;
840 
841   QualType recurse(QualType type) {
842     // Split out the qualifiers from the type.
843     SplitQualType splitType = type.split();
844 
845     // Visit the type itself.
846     QualType result = static_cast<Derived *>(this)->Visit(splitType.Ty);
847     if (result.isNull())
848       return result;
849 
850     // Reconstruct the transformed type by applying the local qualifiers
851     // from the split type.
852     return Ctx.getQualifiedType(result, splitType.Quals);
853   }
854 
855 public:
856   explicit SimpleTransformVisitor(ASTContext &ctx) : Ctx(ctx) {}
857 
858   // None of the clients of this transformation can occur where
859   // there are dependent types, so skip dependent types.
860 #define TYPE(Class, Base)
861 #define DEPENDENT_TYPE(Class, Base) \
862   QualType Visit##Class##Type(const Class##Type *T) { return QualType(T, 0); }
863 #include "clang/AST/TypeNodes.inc"
864 
865 #define TRIVIAL_TYPE_CLASS(Class) \
866   QualType Visit##Class##Type(const Class##Type *T) { return QualType(T, 0); }
867 #define SUGARED_TYPE_CLASS(Class) \
868   QualType Visit##Class##Type(const Class##Type *T) { \
869     if (!T->isSugared()) \
870       return QualType(T, 0); \
871     QualType desugaredType = recurse(T->desugar()); \
872     if (desugaredType.isNull()) \
873       return {}; \
874     if (desugaredType.getAsOpaquePtr() == T->desugar().getAsOpaquePtr()) \
875       return QualType(T, 0); \
876     return desugaredType; \
877   }
878 
879   TRIVIAL_TYPE_CLASS(Builtin)
880 
881   QualType VisitComplexType(const ComplexType *T) {
882     QualType elementType = recurse(T->getElementType());
883     if (elementType.isNull())
884       return {};
885 
886     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
887       return QualType(T, 0);
888 
889     return Ctx.getComplexType(elementType);
890   }
891 
892   QualType VisitPointerType(const PointerType *T) {
893     QualType pointeeType = recurse(T->getPointeeType());
894     if (pointeeType.isNull())
895       return {};
896 
897     if (pointeeType.getAsOpaquePtr() == T->getPointeeType().getAsOpaquePtr())
898       return QualType(T, 0);
899 
900     return Ctx.getPointerType(pointeeType);
901   }
902 
903   QualType VisitBlockPointerType(const BlockPointerType *T) {
904     QualType pointeeType = recurse(T->getPointeeType());
905     if (pointeeType.isNull())
906       return {};
907 
908     if (pointeeType.getAsOpaquePtr() == T->getPointeeType().getAsOpaquePtr())
909       return QualType(T, 0);
910 
911     return Ctx.getBlockPointerType(pointeeType);
912   }
913 
914   QualType VisitLValueReferenceType(const LValueReferenceType *T) {
915     QualType pointeeType = recurse(T->getPointeeTypeAsWritten());
916     if (pointeeType.isNull())
917       return {};
918 
919     if (pointeeType.getAsOpaquePtr()
920           == T->getPointeeTypeAsWritten().getAsOpaquePtr())
921       return QualType(T, 0);
922 
923     return Ctx.getLValueReferenceType(pointeeType, T->isSpelledAsLValue());
924   }
925 
926   QualType VisitRValueReferenceType(const RValueReferenceType *T) {
927     QualType pointeeType = recurse(T->getPointeeTypeAsWritten());
928     if (pointeeType.isNull())
929       return {};
930 
931     if (pointeeType.getAsOpaquePtr()
932           == T->getPointeeTypeAsWritten().getAsOpaquePtr())
933       return QualType(T, 0);
934 
935     return Ctx.getRValueReferenceType(pointeeType);
936   }
937 
938   QualType VisitMemberPointerType(const MemberPointerType *T) {
939     QualType pointeeType = recurse(T->getPointeeType());
940     if (pointeeType.isNull())
941       return {};
942 
943     if (pointeeType.getAsOpaquePtr() == T->getPointeeType().getAsOpaquePtr())
944       return QualType(T, 0);
945 
946     return Ctx.getMemberPointerType(pointeeType, T->getClass());
947   }
948 
949   QualType VisitConstantArrayType(const ConstantArrayType *T) {
950     QualType elementType = recurse(T->getElementType());
951     if (elementType.isNull())
952       return {};
953 
954     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
955       return QualType(T, 0);
956 
957     return Ctx.getConstantArrayType(elementType, T->getSize(), T->getSizeExpr(),
958                                     T->getSizeModifier(),
959                                     T->getIndexTypeCVRQualifiers());
960   }
961 
962   QualType VisitVariableArrayType(const VariableArrayType *T) {
963     QualType elementType = recurse(T->getElementType());
964     if (elementType.isNull())
965       return {};
966 
967     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
968       return QualType(T, 0);
969 
970     return Ctx.getVariableArrayType(elementType, T->getSizeExpr(),
971                                     T->getSizeModifier(),
972                                     T->getIndexTypeCVRQualifiers(),
973                                     T->getBracketsRange());
974   }
975 
976   QualType VisitIncompleteArrayType(const IncompleteArrayType *T) {
977     QualType elementType = recurse(T->getElementType());
978     if (elementType.isNull())
979       return {};
980 
981     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
982       return QualType(T, 0);
983 
984     return Ctx.getIncompleteArrayType(elementType, T->getSizeModifier(),
985                                       T->getIndexTypeCVRQualifiers());
986   }
987 
988   QualType VisitVectorType(const VectorType *T) {
989     QualType elementType = recurse(T->getElementType());
990     if (elementType.isNull())
991       return {};
992 
993     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
994       return QualType(T, 0);
995 
996     return Ctx.getVectorType(elementType, T->getNumElements(),
997                              T->getVectorKind());
998   }
999 
1000   QualType VisitExtVectorType(const ExtVectorType *T) {
1001     QualType elementType = recurse(T->getElementType());
1002     if (elementType.isNull())
1003       return {};
1004 
1005     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
1006       return QualType(T, 0);
1007 
1008     return Ctx.getExtVectorType(elementType, T->getNumElements());
1009   }
1010 
1011   QualType VisitConstantMatrixType(const ConstantMatrixType *T) {
1012     QualType elementType = recurse(T->getElementType());
1013     if (elementType.isNull())
1014       return {};
1015     if (elementType.getAsOpaquePtr() == T->getElementType().getAsOpaquePtr())
1016       return QualType(T, 0);
1017 
1018     return Ctx.getConstantMatrixType(elementType, T->getNumRows(),
1019                                      T->getNumColumns());
1020   }
1021 
1022   QualType VisitFunctionNoProtoType(const FunctionNoProtoType *T) {
1023     QualType returnType = recurse(T->getReturnType());
1024     if (returnType.isNull())
1025       return {};
1026 
1027     if (returnType.getAsOpaquePtr() == T->getReturnType().getAsOpaquePtr())
1028       return QualType(T, 0);
1029 
1030     return Ctx.getFunctionNoProtoType(returnType, T->getExtInfo());
1031   }
1032 
1033   QualType VisitFunctionProtoType(const FunctionProtoType *T) {
1034     QualType returnType = recurse(T->getReturnType());
1035     if (returnType.isNull())
1036       return {};
1037 
1038     // Transform parameter types.
1039     SmallVector<QualType, 4> paramTypes;
1040     bool paramChanged = false;
1041     for (auto paramType : T->getParamTypes()) {
1042       QualType newParamType = recurse(paramType);
1043       if (newParamType.isNull())
1044         return {};
1045 
1046       if (newParamType.getAsOpaquePtr() != paramType.getAsOpaquePtr())
1047         paramChanged = true;
1048 
1049       paramTypes.push_back(newParamType);
1050     }
1051 
1052     // Transform extended info.
1053     FunctionProtoType::ExtProtoInfo info = T->getExtProtoInfo();
1054     bool exceptionChanged = false;
1055     if (info.ExceptionSpec.Type == EST_Dynamic) {
1056       SmallVector<QualType, 4> exceptionTypes;
1057       for (auto exceptionType : info.ExceptionSpec.Exceptions) {
1058         QualType newExceptionType = recurse(exceptionType);
1059         if (newExceptionType.isNull())
1060           return {};
1061 
1062         if (newExceptionType.getAsOpaquePtr() != exceptionType.getAsOpaquePtr())
1063           exceptionChanged = true;
1064 
1065         exceptionTypes.push_back(newExceptionType);
1066       }
1067 
1068       if (exceptionChanged) {
1069         info.ExceptionSpec.Exceptions =
1070             llvm::makeArrayRef(exceptionTypes).copy(Ctx);
1071       }
1072     }
1073 
1074     if (returnType.getAsOpaquePtr() == T->getReturnType().getAsOpaquePtr() &&
1075         !paramChanged && !exceptionChanged)
1076       return QualType(T, 0);
1077 
1078     return Ctx.getFunctionType(returnType, paramTypes, info);
1079   }
1080 
1081   QualType VisitParenType(const ParenType *T) {
1082     QualType innerType = recurse(T->getInnerType());
1083     if (innerType.isNull())
1084       return {};
1085 
1086     if (innerType.getAsOpaquePtr() == T->getInnerType().getAsOpaquePtr())
1087       return QualType(T, 0);
1088 
1089     return Ctx.getParenType(innerType);
1090   }
1091 
1092   SUGARED_TYPE_CLASS(Typedef)
1093   SUGARED_TYPE_CLASS(ObjCTypeParam)
1094   SUGARED_TYPE_CLASS(MacroQualified)
1095 
1096   QualType VisitAdjustedType(const AdjustedType *T) {
1097     QualType originalType = recurse(T->getOriginalType());
1098     if (originalType.isNull())
1099       return {};
1100 
1101     QualType adjustedType = recurse(T->getAdjustedType());
1102     if (adjustedType.isNull())
1103       return {};
1104 
1105     if (originalType.getAsOpaquePtr()
1106           == T->getOriginalType().getAsOpaquePtr() &&
1107         adjustedType.getAsOpaquePtr() == T->getAdjustedType().getAsOpaquePtr())
1108       return QualType(T, 0);
1109 
1110     return Ctx.getAdjustedType(originalType, adjustedType);
1111   }
1112 
1113   QualType VisitDecayedType(const DecayedType *T) {
1114     QualType originalType = recurse(T->getOriginalType());
1115     if (originalType.isNull())
1116       return {};
1117 
1118     if (originalType.getAsOpaquePtr()
1119           == T->getOriginalType().getAsOpaquePtr())
1120       return QualType(T, 0);
1121 
1122     return Ctx.getDecayedType(originalType);
1123   }
1124 
1125   SUGARED_TYPE_CLASS(TypeOfExpr)
1126   SUGARED_TYPE_CLASS(TypeOf)
1127   SUGARED_TYPE_CLASS(Decltype)
1128   SUGARED_TYPE_CLASS(UnaryTransform)
1129   TRIVIAL_TYPE_CLASS(Record)
1130   TRIVIAL_TYPE_CLASS(Enum)
1131 
1132   // FIXME: Non-trivial to implement, but important for C++
1133   SUGARED_TYPE_CLASS(Elaborated)
1134 
1135   QualType VisitAttributedType(const AttributedType *T) {
1136     QualType modifiedType = recurse(T->getModifiedType());
1137     if (modifiedType.isNull())
1138       return {};
1139 
1140     QualType equivalentType = recurse(T->getEquivalentType());
1141     if (equivalentType.isNull())
1142       return {};
1143 
1144     if (modifiedType.getAsOpaquePtr()
1145           == T->getModifiedType().getAsOpaquePtr() &&
1146         equivalentType.getAsOpaquePtr()
1147           == T->getEquivalentType().getAsOpaquePtr())
1148       return QualType(T, 0);
1149 
1150     return Ctx.getAttributedType(T->getAttrKind(), modifiedType,
1151                                  equivalentType);
1152   }
1153 
1154   QualType VisitSubstTemplateTypeParmType(const SubstTemplateTypeParmType *T) {
1155     QualType replacementType = recurse(T->getReplacementType());
1156     if (replacementType.isNull())
1157       return {};
1158 
1159     if (replacementType.getAsOpaquePtr()
1160           == T->getReplacementType().getAsOpaquePtr())
1161       return QualType(T, 0);
1162 
1163     return Ctx.getSubstTemplateTypeParmType(T->getReplacedParameter(),
1164                                             replacementType);
1165   }
1166 
1167   // FIXME: Non-trivial to implement, but important for C++
1168   SUGARED_TYPE_CLASS(TemplateSpecialization)
1169 
1170   QualType VisitAutoType(const AutoType *T) {
1171     if (!T->isDeduced())
1172       return QualType(T, 0);
1173 
1174     QualType deducedType = recurse(T->getDeducedType());
1175     if (deducedType.isNull())
1176       return {};
1177 
1178     if (deducedType.getAsOpaquePtr()
1179           == T->getDeducedType().getAsOpaquePtr())
1180       return QualType(T, 0);
1181 
1182     return Ctx.getAutoType(deducedType, T->getKeyword(),
1183                            T->isDependentType(), /*IsPack=*/false,
1184                            T->getTypeConstraintConcept(),
1185                            T->getTypeConstraintArguments());
1186   }
1187 
1188   QualType VisitObjCObjectType(const ObjCObjectType *T) {
1189     QualType baseType = recurse(T->getBaseType());
1190     if (baseType.isNull())
1191       return {};
1192 
1193     // Transform type arguments.
1194     bool typeArgChanged = false;
1195     SmallVector<QualType, 4> typeArgs;
1196     for (auto typeArg : T->getTypeArgsAsWritten()) {
1197       QualType newTypeArg = recurse(typeArg);
1198       if (newTypeArg.isNull())
1199         return {};
1200 
1201       if (newTypeArg.getAsOpaquePtr() != typeArg.getAsOpaquePtr())
1202         typeArgChanged = true;
1203 
1204       typeArgs.push_back(newTypeArg);
1205     }
1206 
1207     if (baseType.getAsOpaquePtr() == T->getBaseType().getAsOpaquePtr() &&
1208         !typeArgChanged)
1209       return QualType(T, 0);
1210 
1211     return Ctx.getObjCObjectType(baseType, typeArgs,
1212                                  llvm::makeArrayRef(T->qual_begin(),
1213                                                     T->getNumProtocols()),
1214                                  T->isKindOfTypeAsWritten());
1215   }
1216 
1217   TRIVIAL_TYPE_CLASS(ObjCInterface)
1218 
1219   QualType VisitObjCObjectPointerType(const ObjCObjectPointerType *T) {
1220     QualType pointeeType = recurse(T->getPointeeType());
1221     if (pointeeType.isNull())
1222       return {};
1223 
1224     if (pointeeType.getAsOpaquePtr()
1225           == T->getPointeeType().getAsOpaquePtr())
1226       return QualType(T, 0);
1227 
1228     return Ctx.getObjCObjectPointerType(pointeeType);
1229   }
1230 
1231   QualType VisitAtomicType(const AtomicType *T) {
1232     QualType valueType = recurse(T->getValueType());
1233     if (valueType.isNull())
1234       return {};
1235 
1236     if (valueType.getAsOpaquePtr()
1237           == T->getValueType().getAsOpaquePtr())
1238       return QualType(T, 0);
1239 
1240     return Ctx.getAtomicType(valueType);
1241   }
1242 
1243 #undef TRIVIAL_TYPE_CLASS
1244 #undef SUGARED_TYPE_CLASS
1245 };
1246 
1247 struct SubstObjCTypeArgsVisitor
1248     : public SimpleTransformVisitor<SubstObjCTypeArgsVisitor> {
1249   using BaseType = SimpleTransformVisitor<SubstObjCTypeArgsVisitor>;
1250 
1251   ArrayRef<QualType> TypeArgs;
1252   ObjCSubstitutionContext SubstContext;
1253 
1254   SubstObjCTypeArgsVisitor(ASTContext &ctx, ArrayRef<QualType> typeArgs,
1255                            ObjCSubstitutionContext context)
1256       : BaseType(ctx), TypeArgs(typeArgs), SubstContext(context) {}
1257 
1258   QualType VisitObjCTypeParamType(const ObjCTypeParamType *OTPTy) {
1259     // Replace an Objective-C type parameter reference with the corresponding
1260     // type argument.
1261     ObjCTypeParamDecl *typeParam = OTPTy->getDecl();
1262     // If we have type arguments, use them.
1263     if (!TypeArgs.empty()) {
1264       QualType argType = TypeArgs[typeParam->getIndex()];
1265       if (OTPTy->qual_empty())
1266         return argType;
1267 
1268       // Apply protocol lists if exists.
1269       bool hasError;
1270       SmallVector<ObjCProtocolDecl *, 8> protocolsVec;
1271       protocolsVec.append(OTPTy->qual_begin(), OTPTy->qual_end());
1272       ArrayRef<ObjCProtocolDecl *> protocolsToApply = protocolsVec;
1273       return Ctx.applyObjCProtocolQualifiers(
1274           argType, protocolsToApply, hasError, true/*allowOnPointerType*/);
1275     }
1276 
1277     switch (SubstContext) {
1278     case ObjCSubstitutionContext::Ordinary:
1279     case ObjCSubstitutionContext::Parameter:
1280     case ObjCSubstitutionContext::Superclass:
1281       // Substitute the bound.
1282       return typeParam->getUnderlyingType();
1283 
1284     case ObjCSubstitutionContext::Result:
1285     case ObjCSubstitutionContext::Property: {
1286       // Substitute the __kindof form of the underlying type.
1287       const auto *objPtr =
1288           typeParam->getUnderlyingType()->castAs<ObjCObjectPointerType>();
1289 
1290       // __kindof types, id, and Class don't need an additional
1291       // __kindof.
1292       if (objPtr->isKindOfType() || objPtr->isObjCIdOrClassType())
1293         return typeParam->getUnderlyingType();
1294 
1295       // Add __kindof.
1296       const auto *obj = objPtr->getObjectType();
1297       QualType resultTy = Ctx.getObjCObjectType(
1298           obj->getBaseType(), obj->getTypeArgsAsWritten(), obj->getProtocols(),
1299           /*isKindOf=*/true);
1300 
1301       // Rebuild object pointer type.
1302       return Ctx.getObjCObjectPointerType(resultTy);
1303     }
1304     }
1305     llvm_unreachable("Unexpected ObjCSubstitutionContext!");
1306   }
1307 
1308   QualType VisitFunctionType(const FunctionType *funcType) {
1309     // If we have a function type, update the substitution context
1310     // appropriately.
1311 
1312     //Substitute result type.
1313     QualType returnType = funcType->getReturnType().substObjCTypeArgs(
1314         Ctx, TypeArgs, ObjCSubstitutionContext::Result);
1315     if (returnType.isNull())
1316       return {};
1317 
1318     // Handle non-prototyped functions, which only substitute into the result
1319     // type.
1320     if (isa<FunctionNoProtoType>(funcType)) {
1321       // If the return type was unchanged, do nothing.
1322       if (returnType.getAsOpaquePtr() ==
1323           funcType->getReturnType().getAsOpaquePtr())
1324         return BaseType::VisitFunctionType(funcType);
1325 
1326       // Otherwise, build a new type.
1327       return Ctx.getFunctionNoProtoType(returnType, funcType->getExtInfo());
1328     }
1329 
1330     const auto *funcProtoType = cast<FunctionProtoType>(funcType);
1331 
1332     // Transform parameter types.
1333     SmallVector<QualType, 4> paramTypes;
1334     bool paramChanged = false;
1335     for (auto paramType : funcProtoType->getParamTypes()) {
1336       QualType newParamType = paramType.substObjCTypeArgs(
1337           Ctx, TypeArgs, ObjCSubstitutionContext::Parameter);
1338       if (newParamType.isNull())
1339         return {};
1340 
1341       if (newParamType.getAsOpaquePtr() != paramType.getAsOpaquePtr())
1342         paramChanged = true;
1343 
1344       paramTypes.push_back(newParamType);
1345     }
1346 
1347     // Transform extended info.
1348     FunctionProtoType::ExtProtoInfo info = funcProtoType->getExtProtoInfo();
1349     bool exceptionChanged = false;
1350     if (info.ExceptionSpec.Type == EST_Dynamic) {
1351       SmallVector<QualType, 4> exceptionTypes;
1352       for (auto exceptionType : info.ExceptionSpec.Exceptions) {
1353         QualType newExceptionType = exceptionType.substObjCTypeArgs(
1354             Ctx, TypeArgs, ObjCSubstitutionContext::Ordinary);
1355         if (newExceptionType.isNull())
1356           return {};
1357 
1358         if (newExceptionType.getAsOpaquePtr() != exceptionType.getAsOpaquePtr())
1359           exceptionChanged = true;
1360 
1361         exceptionTypes.push_back(newExceptionType);
1362       }
1363 
1364       if (exceptionChanged) {
1365         info.ExceptionSpec.Exceptions =
1366             llvm::makeArrayRef(exceptionTypes).copy(Ctx);
1367       }
1368     }
1369 
1370     if (returnType.getAsOpaquePtr() ==
1371             funcProtoType->getReturnType().getAsOpaquePtr() &&
1372         !paramChanged && !exceptionChanged)
1373       return BaseType::VisitFunctionType(funcType);
1374 
1375     return Ctx.getFunctionType(returnType, paramTypes, info);
1376   }
1377 
1378   QualType VisitObjCObjectType(const ObjCObjectType *objcObjectType) {
1379     // Substitute into the type arguments of a specialized Objective-C object
1380     // type.
1381     if (objcObjectType->isSpecializedAsWritten()) {
1382       SmallVector<QualType, 4> newTypeArgs;
1383       bool anyChanged = false;
1384       for (auto typeArg : objcObjectType->getTypeArgsAsWritten()) {
1385         QualType newTypeArg = typeArg.substObjCTypeArgs(
1386             Ctx, TypeArgs, ObjCSubstitutionContext::Ordinary);
1387         if (newTypeArg.isNull())
1388           return {};
1389 
1390         if (newTypeArg.getAsOpaquePtr() != typeArg.getAsOpaquePtr()) {
1391           // If we're substituting based on an unspecialized context type,
1392           // produce an unspecialized type.
1393           ArrayRef<ObjCProtocolDecl *> protocols(
1394               objcObjectType->qual_begin(), objcObjectType->getNumProtocols());
1395           if (TypeArgs.empty() &&
1396               SubstContext != ObjCSubstitutionContext::Superclass) {
1397             return Ctx.getObjCObjectType(
1398                 objcObjectType->getBaseType(), {}, protocols,
1399                 objcObjectType->isKindOfTypeAsWritten());
1400           }
1401 
1402           anyChanged = true;
1403         }
1404 
1405         newTypeArgs.push_back(newTypeArg);
1406       }
1407 
1408       if (anyChanged) {
1409         ArrayRef<ObjCProtocolDecl *> protocols(
1410             objcObjectType->qual_begin(), objcObjectType->getNumProtocols());
1411         return Ctx.getObjCObjectType(objcObjectType->getBaseType(), newTypeArgs,
1412                                      protocols,
1413                                      objcObjectType->isKindOfTypeAsWritten());
1414       }
1415     }
1416 
1417     return BaseType::VisitObjCObjectType(objcObjectType);
1418   }
1419 
1420   QualType VisitAttributedType(const AttributedType *attrType) {
1421     QualType newType = BaseType::VisitAttributedType(attrType);
1422     if (newType.isNull())
1423       return {};
1424 
1425     const auto *newAttrType = dyn_cast<AttributedType>(newType.getTypePtr());
1426     if (!newAttrType || newAttrType->getAttrKind() != attr::ObjCKindOf)
1427       return newType;
1428 
1429     // Find out if it's an Objective-C object or object pointer type;
1430     QualType newEquivType = newAttrType->getEquivalentType();
1431     const ObjCObjectPointerType *ptrType =
1432         newEquivType->getAs<ObjCObjectPointerType>();
1433     const ObjCObjectType *objType = ptrType
1434                                         ? ptrType->getObjectType()
1435                                         : newEquivType->getAs<ObjCObjectType>();
1436     if (!objType)
1437       return newType;
1438 
1439     // Rebuild the "equivalent" type, which pushes __kindof down into
1440     // the object type.
1441     newEquivType = Ctx.getObjCObjectType(
1442         objType->getBaseType(), objType->getTypeArgsAsWritten(),
1443         objType->getProtocols(),
1444         // There is no need to apply kindof on an unqualified id type.
1445         /*isKindOf=*/objType->isObjCUnqualifiedId() ? false : true);
1446 
1447     // If we started with an object pointer type, rebuild it.
1448     if (ptrType)
1449       newEquivType = Ctx.getObjCObjectPointerType(newEquivType);
1450 
1451     // Rebuild the attributed type.
1452     return Ctx.getAttributedType(newAttrType->getAttrKind(),
1453                                  newAttrType->getModifiedType(), newEquivType);
1454   }
1455 };
1456 
1457 struct StripObjCKindOfTypeVisitor
1458     : public SimpleTransformVisitor<StripObjCKindOfTypeVisitor> {
1459   using BaseType = SimpleTransformVisitor<StripObjCKindOfTypeVisitor>;
1460 
1461   explicit StripObjCKindOfTypeVisitor(ASTContext &ctx) : BaseType(ctx) {}
1462 
1463   QualType VisitObjCObjectType(const ObjCObjectType *objType) {
1464     if (!objType->isKindOfType())
1465       return BaseType::VisitObjCObjectType(objType);
1466 
1467     QualType baseType = objType->getBaseType().stripObjCKindOfType(Ctx);
1468     return Ctx.getObjCObjectType(baseType, objType->getTypeArgsAsWritten(),
1469                                  objType->getProtocols(),
1470                                  /*isKindOf=*/false);
1471   }
1472 };
1473 
1474 } // namespace
1475 
1476 /// Substitute the given type arguments for Objective-C type
1477 /// parameters within the given type, recursively.
1478 QualType QualType::substObjCTypeArgs(ASTContext &ctx,
1479                                      ArrayRef<QualType> typeArgs,
1480                                      ObjCSubstitutionContext context) const {
1481   SubstObjCTypeArgsVisitor visitor(ctx, typeArgs, context);
1482   return visitor.recurse(*this);
1483 }
1484 
1485 QualType QualType::substObjCMemberType(QualType objectType,
1486                                        const DeclContext *dc,
1487                                        ObjCSubstitutionContext context) const {
1488   if (auto subs = objectType->getObjCSubstitutions(dc))
1489     return substObjCTypeArgs(dc->getParentASTContext(), *subs, context);
1490 
1491   return *this;
1492 }
1493 
1494 QualType QualType::stripObjCKindOfType(const ASTContext &constCtx) const {
1495   // FIXME: Because ASTContext::getAttributedType() is non-const.
1496   auto &ctx = const_cast<ASTContext &>(constCtx);
1497   StripObjCKindOfTypeVisitor visitor(ctx);
1498   return visitor.recurse(*this);
1499 }
1500 
1501 QualType QualType::getAtomicUnqualifiedType() const {
1502   if (const auto AT = getTypePtr()->getAs<AtomicType>())
1503     return AT->getValueType().getUnqualifiedType();
1504   return getUnqualifiedType();
1505 }
1506 
1507 Optional<ArrayRef<QualType>> Type::getObjCSubstitutions(
1508                                const DeclContext *dc) const {
1509   // Look through method scopes.
1510   if (const auto method = dyn_cast<ObjCMethodDecl>(dc))
1511     dc = method->getDeclContext();
1512 
1513   // Find the class or category in which the type we're substituting
1514   // was declared.
1515   const auto *dcClassDecl = dyn_cast<ObjCInterfaceDecl>(dc);
1516   const ObjCCategoryDecl *dcCategoryDecl = nullptr;
1517   ObjCTypeParamList *dcTypeParams = nullptr;
1518   if (dcClassDecl) {
1519     // If the class does not have any type parameters, there's no
1520     // substitution to do.
1521     dcTypeParams = dcClassDecl->getTypeParamList();
1522     if (!dcTypeParams)
1523       return None;
1524   } else {
1525     // If we are in neither a class nor a category, there's no
1526     // substitution to perform.
1527     dcCategoryDecl = dyn_cast<ObjCCategoryDecl>(dc);
1528     if (!dcCategoryDecl)
1529       return None;
1530 
1531     // If the category does not have any type parameters, there's no
1532     // substitution to do.
1533     dcTypeParams = dcCategoryDecl->getTypeParamList();
1534     if (!dcTypeParams)
1535       return None;
1536 
1537     dcClassDecl = dcCategoryDecl->getClassInterface();
1538     if (!dcClassDecl)
1539       return None;
1540   }
1541   assert(dcTypeParams && "No substitutions to perform");
1542   assert(dcClassDecl && "No class context");
1543 
1544   // Find the underlying object type.
1545   const ObjCObjectType *objectType;
1546   if (const auto *objectPointerType = getAs<ObjCObjectPointerType>()) {
1547     objectType = objectPointerType->getObjectType();
1548   } else if (getAs<BlockPointerType>()) {
1549     ASTContext &ctx = dc->getParentASTContext();
1550     objectType = ctx.getObjCObjectType(ctx.ObjCBuiltinIdTy, {}, {})
1551                    ->castAs<ObjCObjectType>();
1552   } else {
1553     objectType = getAs<ObjCObjectType>();
1554   }
1555 
1556   /// Extract the class from the receiver object type.
1557   ObjCInterfaceDecl *curClassDecl = objectType ? objectType->getInterface()
1558                                                : nullptr;
1559   if (!curClassDecl) {
1560     // If we don't have a context type (e.g., this is "id" or some
1561     // variant thereof), substitute the bounds.
1562     return llvm::ArrayRef<QualType>();
1563   }
1564 
1565   // Follow the superclass chain until we've mapped the receiver type
1566   // to the same class as the context.
1567   while (curClassDecl != dcClassDecl) {
1568     // Map to the superclass type.
1569     QualType superType = objectType->getSuperClassType();
1570     if (superType.isNull()) {
1571       objectType = nullptr;
1572       break;
1573     }
1574 
1575     objectType = superType->castAs<ObjCObjectType>();
1576     curClassDecl = objectType->getInterface();
1577   }
1578 
1579   // If we don't have a receiver type, or the receiver type does not
1580   // have type arguments, substitute in the defaults.
1581   if (!objectType || objectType->isUnspecialized()) {
1582     return llvm::ArrayRef<QualType>();
1583   }
1584 
1585   // The receiver type has the type arguments we want.
1586   return objectType->getTypeArgs();
1587 }
1588 
1589 bool Type::acceptsObjCTypeParams() const {
1590   if (auto *IfaceT = getAsObjCInterfaceType()) {
1591     if (auto *ID = IfaceT->getInterface()) {
1592       if (ID->getTypeParamList())
1593         return true;
1594     }
1595   }
1596 
1597   return false;
1598 }
1599 
1600 void ObjCObjectType::computeSuperClassTypeSlow() const {
1601   // Retrieve the class declaration for this type. If there isn't one
1602   // (e.g., this is some variant of "id" or "Class"), then there is no
1603   // superclass type.
1604   ObjCInterfaceDecl *classDecl = getInterface();
1605   if (!classDecl) {
1606     CachedSuperClassType.setInt(true);
1607     return;
1608   }
1609 
1610   // Extract the superclass type.
1611   const ObjCObjectType *superClassObjTy = classDecl->getSuperClassType();
1612   if (!superClassObjTy) {
1613     CachedSuperClassType.setInt(true);
1614     return;
1615   }
1616 
1617   ObjCInterfaceDecl *superClassDecl = superClassObjTy->getInterface();
1618   if (!superClassDecl) {
1619     CachedSuperClassType.setInt(true);
1620     return;
1621   }
1622 
1623   // If the superclass doesn't have type parameters, then there is no
1624   // substitution to perform.
1625   QualType superClassType(superClassObjTy, 0);
1626   ObjCTypeParamList *superClassTypeParams = superClassDecl->getTypeParamList();
1627   if (!superClassTypeParams) {
1628     CachedSuperClassType.setPointerAndInt(
1629       superClassType->castAs<ObjCObjectType>(), true);
1630     return;
1631   }
1632 
1633   // If the superclass reference is unspecialized, return it.
1634   if (superClassObjTy->isUnspecialized()) {
1635     CachedSuperClassType.setPointerAndInt(superClassObjTy, true);
1636     return;
1637   }
1638 
1639   // If the subclass is not parameterized, there aren't any type
1640   // parameters in the superclass reference to substitute.
1641   ObjCTypeParamList *typeParams = classDecl->getTypeParamList();
1642   if (!typeParams) {
1643     CachedSuperClassType.setPointerAndInt(
1644       superClassType->castAs<ObjCObjectType>(), true);
1645     return;
1646   }
1647 
1648   // If the subclass type isn't specialized, return the unspecialized
1649   // superclass.
1650   if (isUnspecialized()) {
1651     QualType unspecializedSuper
1652       = classDecl->getASTContext().getObjCInterfaceType(
1653           superClassObjTy->getInterface());
1654     CachedSuperClassType.setPointerAndInt(
1655       unspecializedSuper->castAs<ObjCObjectType>(),
1656       true);
1657     return;
1658   }
1659 
1660   // Substitute the provided type arguments into the superclass type.
1661   ArrayRef<QualType> typeArgs = getTypeArgs();
1662   assert(typeArgs.size() == typeParams->size());
1663   CachedSuperClassType.setPointerAndInt(
1664     superClassType.substObjCTypeArgs(classDecl->getASTContext(), typeArgs,
1665                                      ObjCSubstitutionContext::Superclass)
1666       ->castAs<ObjCObjectType>(),
1667     true);
1668 }
1669 
1670 const ObjCInterfaceType *ObjCObjectPointerType::getInterfaceType() const {
1671   if (auto interfaceDecl = getObjectType()->getInterface()) {
1672     return interfaceDecl->getASTContext().getObjCInterfaceType(interfaceDecl)
1673              ->castAs<ObjCInterfaceType>();
1674   }
1675 
1676   return nullptr;
1677 }
1678 
1679 QualType ObjCObjectPointerType::getSuperClassType() const {
1680   QualType superObjectType = getObjectType()->getSuperClassType();
1681   if (superObjectType.isNull())
1682     return superObjectType;
1683 
1684   ASTContext &ctx = getInterfaceDecl()->getASTContext();
1685   return ctx.getObjCObjectPointerType(superObjectType);
1686 }
1687 
1688 const ObjCObjectType *Type::getAsObjCQualifiedInterfaceType() const {
1689   // There is no sugar for ObjCObjectType's, just return the canonical
1690   // type pointer if it is the right class.  There is no typedef information to
1691   // return and these cannot be Address-space qualified.
1692   if (const auto *T = getAs<ObjCObjectType>())
1693     if (T->getNumProtocols() && T->getInterface())
1694       return T;
1695   return nullptr;
1696 }
1697 
1698 bool Type::isObjCQualifiedInterfaceType() const {
1699   return getAsObjCQualifiedInterfaceType() != nullptr;
1700 }
1701 
1702 const ObjCObjectPointerType *Type::getAsObjCQualifiedIdType() const {
1703   // There is no sugar for ObjCQualifiedIdType's, just return the canonical
1704   // type pointer if it is the right class.
1705   if (const auto *OPT = getAs<ObjCObjectPointerType>()) {
1706     if (OPT->isObjCQualifiedIdType())
1707       return OPT;
1708   }
1709   return nullptr;
1710 }
1711 
1712 const ObjCObjectPointerType *Type::getAsObjCQualifiedClassType() const {
1713   // There is no sugar for ObjCQualifiedClassType's, just return the canonical
1714   // type pointer if it is the right class.
1715   if (const auto *OPT = getAs<ObjCObjectPointerType>()) {
1716     if (OPT->isObjCQualifiedClassType())
1717       return OPT;
1718   }
1719   return nullptr;
1720 }
1721 
1722 const ObjCObjectType *Type::getAsObjCInterfaceType() const {
1723   if (const auto *OT = getAs<ObjCObjectType>()) {
1724     if (OT->getInterface())
1725       return OT;
1726   }
1727   return nullptr;
1728 }
1729 
1730 const ObjCObjectPointerType *Type::getAsObjCInterfacePointerType() const {
1731   if (const auto *OPT = getAs<ObjCObjectPointerType>()) {
1732     if (OPT->getInterfaceType())
1733       return OPT;
1734   }
1735   return nullptr;
1736 }
1737 
1738 const CXXRecordDecl *Type::getPointeeCXXRecordDecl() const {
1739   QualType PointeeType;
1740   if (const auto *PT = getAs<PointerType>())
1741     PointeeType = PT->getPointeeType();
1742   else if (const auto *RT = getAs<ReferenceType>())
1743     PointeeType = RT->getPointeeType();
1744   else
1745     return nullptr;
1746 
1747   if (const auto *RT = PointeeType->getAs<RecordType>())
1748     return dyn_cast<CXXRecordDecl>(RT->getDecl());
1749 
1750   return nullptr;
1751 }
1752 
1753 CXXRecordDecl *Type::getAsCXXRecordDecl() const {
1754   return dyn_cast_or_null<CXXRecordDecl>(getAsTagDecl());
1755 }
1756 
1757 RecordDecl *Type::getAsRecordDecl() const {
1758   return dyn_cast_or_null<RecordDecl>(getAsTagDecl());
1759 }
1760 
1761 TagDecl *Type::getAsTagDecl() const {
1762   if (const auto *TT = getAs<TagType>())
1763     return TT->getDecl();
1764   if (const auto *Injected = getAs<InjectedClassNameType>())
1765     return Injected->getDecl();
1766 
1767   return nullptr;
1768 }
1769 
1770 bool Type::hasAttr(attr::Kind AK) const {
1771   const Type *Cur = this;
1772   while (const auto *AT = Cur->getAs<AttributedType>()) {
1773     if (AT->getAttrKind() == AK)
1774       return true;
1775     Cur = AT->getEquivalentType().getTypePtr();
1776   }
1777   return false;
1778 }
1779 
1780 namespace {
1781 
1782   class GetContainedDeducedTypeVisitor :
1783     public TypeVisitor<GetContainedDeducedTypeVisitor, Type*> {
1784     bool Syntactic;
1785 
1786   public:
1787     GetContainedDeducedTypeVisitor(bool Syntactic = false)
1788         : Syntactic(Syntactic) {}
1789 
1790     using TypeVisitor<GetContainedDeducedTypeVisitor, Type*>::Visit;
1791 
1792     Type *Visit(QualType T) {
1793       if (T.isNull())
1794         return nullptr;
1795       return Visit(T.getTypePtr());
1796     }
1797 
1798     // The deduced type itself.
1799     Type *VisitDeducedType(const DeducedType *AT) {
1800       return const_cast<DeducedType*>(AT);
1801     }
1802 
1803     // Only these types can contain the desired 'auto' type.
1804 
1805     Type *VisitElaboratedType(const ElaboratedType *T) {
1806       return Visit(T->getNamedType());
1807     }
1808 
1809     Type *VisitPointerType(const PointerType *T) {
1810       return Visit(T->getPointeeType());
1811     }
1812 
1813     Type *VisitBlockPointerType(const BlockPointerType *T) {
1814       return Visit(T->getPointeeType());
1815     }
1816 
1817     Type *VisitReferenceType(const ReferenceType *T) {
1818       return Visit(T->getPointeeTypeAsWritten());
1819     }
1820 
1821     Type *VisitMemberPointerType(const MemberPointerType *T) {
1822       return Visit(T->getPointeeType());
1823     }
1824 
1825     Type *VisitArrayType(const ArrayType *T) {
1826       return Visit(T->getElementType());
1827     }
1828 
1829     Type *VisitDependentSizedExtVectorType(
1830       const DependentSizedExtVectorType *T) {
1831       return Visit(T->getElementType());
1832     }
1833 
1834     Type *VisitVectorType(const VectorType *T) {
1835       return Visit(T->getElementType());
1836     }
1837 
1838     Type *VisitDependentSizedMatrixType(const DependentSizedMatrixType *T) {
1839       return Visit(T->getElementType());
1840     }
1841 
1842     Type *VisitConstantMatrixType(const ConstantMatrixType *T) {
1843       return Visit(T->getElementType());
1844     }
1845 
1846     Type *VisitFunctionProtoType(const FunctionProtoType *T) {
1847       if (Syntactic && T->hasTrailingReturn())
1848         return const_cast<FunctionProtoType*>(T);
1849       return VisitFunctionType(T);
1850     }
1851 
1852     Type *VisitFunctionType(const FunctionType *T) {
1853       return Visit(T->getReturnType());
1854     }
1855 
1856     Type *VisitParenType(const ParenType *T) {
1857       return Visit(T->getInnerType());
1858     }
1859 
1860     Type *VisitAttributedType(const AttributedType *T) {
1861       return Visit(T->getModifiedType());
1862     }
1863 
1864     Type *VisitMacroQualifiedType(const MacroQualifiedType *T) {
1865       return Visit(T->getUnderlyingType());
1866     }
1867 
1868     Type *VisitAdjustedType(const AdjustedType *T) {
1869       return Visit(T->getOriginalType());
1870     }
1871 
1872     Type *VisitPackExpansionType(const PackExpansionType *T) {
1873       return Visit(T->getPattern());
1874     }
1875   };
1876 
1877 } // namespace
1878 
1879 DeducedType *Type::getContainedDeducedType() const {
1880   return cast_or_null<DeducedType>(
1881       GetContainedDeducedTypeVisitor().Visit(this));
1882 }
1883 
1884 bool Type::hasAutoForTrailingReturnType() const {
1885   return dyn_cast_or_null<FunctionType>(
1886       GetContainedDeducedTypeVisitor(true).Visit(this));
1887 }
1888 
1889 bool Type::hasIntegerRepresentation() const {
1890   if (const auto *VT = dyn_cast<VectorType>(CanonicalType))
1891     return VT->getElementType()->isIntegerType();
1892   else
1893     return isIntegerType();
1894 }
1895 
1896 /// Determine whether this type is an integral type.
1897 ///
1898 /// This routine determines whether the given type is an integral type per
1899 /// C++ [basic.fundamental]p7. Although the C standard does not define the
1900 /// term "integral type", it has a similar term "integer type", and in C++
1901 /// the two terms are equivalent. However, C's "integer type" includes
1902 /// enumeration types, while C++'s "integer type" does not. The \c ASTContext
1903 /// parameter is used to determine whether we should be following the C or
1904 /// C++ rules when determining whether this type is an integral/integer type.
1905 ///
1906 /// For cases where C permits "an integer type" and C++ permits "an integral
1907 /// type", use this routine.
1908 ///
1909 /// For cases where C permits "an integer type" and C++ permits "an integral
1910 /// or enumeration type", use \c isIntegralOrEnumerationType() instead.
1911 ///
1912 /// \param Ctx The context in which this type occurs.
1913 ///
1914 /// \returns true if the type is considered an integral type, false otherwise.
1915 bool Type::isIntegralType(const ASTContext &Ctx) const {
1916   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1917     return BT->getKind() >= BuiltinType::Bool &&
1918            BT->getKind() <= BuiltinType::Int128;
1919 
1920   // Complete enum types are integral in C.
1921   if (!Ctx.getLangOpts().CPlusPlus)
1922     if (const auto *ET = dyn_cast<EnumType>(CanonicalType))
1923       return ET->getDecl()->isComplete();
1924 
1925   return isExtIntType();
1926 }
1927 
1928 bool Type::isIntegralOrUnscopedEnumerationType() const {
1929   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1930     return BT->getKind() >= BuiltinType::Bool &&
1931            BT->getKind() <= BuiltinType::Int128;
1932 
1933   if (isExtIntType())
1934     return true;
1935 
1936   return isUnscopedEnumerationType();
1937 }
1938 
1939 bool Type::isUnscopedEnumerationType() const {
1940   if (const auto *ET = dyn_cast<EnumType>(CanonicalType))
1941     return !ET->getDecl()->isScoped();
1942 
1943   return false;
1944 }
1945 
1946 bool Type::isCharType() const {
1947   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1948     return BT->getKind() == BuiltinType::Char_U ||
1949            BT->getKind() == BuiltinType::UChar ||
1950            BT->getKind() == BuiltinType::Char_S ||
1951            BT->getKind() == BuiltinType::SChar;
1952   return false;
1953 }
1954 
1955 bool Type::isWideCharType() const {
1956   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1957     return BT->getKind() == BuiltinType::WChar_S ||
1958            BT->getKind() == BuiltinType::WChar_U;
1959   return false;
1960 }
1961 
1962 bool Type::isChar8Type() const {
1963   if (const BuiltinType *BT = dyn_cast<BuiltinType>(CanonicalType))
1964     return BT->getKind() == BuiltinType::Char8;
1965   return false;
1966 }
1967 
1968 bool Type::isChar16Type() const {
1969   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1970     return BT->getKind() == BuiltinType::Char16;
1971   return false;
1972 }
1973 
1974 bool Type::isChar32Type() const {
1975   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
1976     return BT->getKind() == BuiltinType::Char32;
1977   return false;
1978 }
1979 
1980 /// Determine whether this type is any of the built-in character
1981 /// types.
1982 bool Type::isAnyCharacterType() const {
1983   const auto *BT = dyn_cast<BuiltinType>(CanonicalType);
1984   if (!BT) return false;
1985   switch (BT->getKind()) {
1986   default: return false;
1987   case BuiltinType::Char_U:
1988   case BuiltinType::UChar:
1989   case BuiltinType::WChar_U:
1990   case BuiltinType::Char8:
1991   case BuiltinType::Char16:
1992   case BuiltinType::Char32:
1993   case BuiltinType::Char_S:
1994   case BuiltinType::SChar:
1995   case BuiltinType::WChar_S:
1996     return true;
1997   }
1998 }
1999 
2000 /// isSignedIntegerType - Return true if this is an integer type that is
2001 /// signed, according to C99 6.2.5p4 [char, signed char, short, int, long..],
2002 /// an enum decl which has a signed representation
2003 bool Type::isSignedIntegerType() const {
2004   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType)) {
2005     return BT->getKind() >= BuiltinType::Char_S &&
2006            BT->getKind() <= BuiltinType::Int128;
2007   }
2008 
2009   if (const EnumType *ET = dyn_cast<EnumType>(CanonicalType)) {
2010     // Incomplete enum types are not treated as integer types.
2011     // FIXME: In C++, enum types are never integer types.
2012     if (ET->getDecl()->isComplete() && !ET->getDecl()->isScoped())
2013       return ET->getDecl()->getIntegerType()->isSignedIntegerType();
2014   }
2015 
2016   if (const ExtIntType *IT = dyn_cast<ExtIntType>(CanonicalType))
2017     return IT->isSigned();
2018 
2019   return false;
2020 }
2021 
2022 bool Type::isSignedIntegerOrEnumerationType() const {
2023   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType)) {
2024     return BT->getKind() >= BuiltinType::Char_S &&
2025            BT->getKind() <= BuiltinType::Int128;
2026   }
2027 
2028   if (const auto *ET = dyn_cast<EnumType>(CanonicalType)) {
2029     if (ET->getDecl()->isComplete())
2030       return ET->getDecl()->getIntegerType()->isSignedIntegerType();
2031   }
2032 
2033   if (const ExtIntType *IT = dyn_cast<ExtIntType>(CanonicalType))
2034     return IT->isSigned();
2035 
2036 
2037   return false;
2038 }
2039 
2040 bool Type::hasSignedIntegerRepresentation() const {
2041   if (const auto *VT = dyn_cast<VectorType>(CanonicalType))
2042     return VT->getElementType()->isSignedIntegerOrEnumerationType();
2043   else
2044     return isSignedIntegerOrEnumerationType();
2045 }
2046 
2047 /// isUnsignedIntegerType - Return true if this is an integer type that is
2048 /// unsigned, according to C99 6.2.5p6 [which returns true for _Bool], an enum
2049 /// decl which has an unsigned representation
2050 bool Type::isUnsignedIntegerType() const {
2051   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType)) {
2052     return BT->getKind() >= BuiltinType::Bool &&
2053            BT->getKind() <= BuiltinType::UInt128;
2054   }
2055 
2056   if (const auto *ET = dyn_cast<EnumType>(CanonicalType)) {
2057     // Incomplete enum types are not treated as integer types.
2058     // FIXME: In C++, enum types are never integer types.
2059     if (ET->getDecl()->isComplete() && !ET->getDecl()->isScoped())
2060       return ET->getDecl()->getIntegerType()->isUnsignedIntegerType();
2061   }
2062 
2063   if (const ExtIntType *IT = dyn_cast<ExtIntType>(CanonicalType))
2064     return IT->isUnsigned();
2065 
2066   return false;
2067 }
2068 
2069 bool Type::isUnsignedIntegerOrEnumerationType() const {
2070   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType)) {
2071     return BT->getKind() >= BuiltinType::Bool &&
2072     BT->getKind() <= BuiltinType::UInt128;
2073   }
2074 
2075   if (const auto *ET = dyn_cast<EnumType>(CanonicalType)) {
2076     if (ET->getDecl()->isComplete())
2077       return ET->getDecl()->getIntegerType()->isUnsignedIntegerType();
2078   }
2079 
2080   if (const ExtIntType *IT = dyn_cast<ExtIntType>(CanonicalType))
2081     return IT->isUnsigned();
2082 
2083   return false;
2084 }
2085 
2086 bool Type::hasUnsignedIntegerRepresentation() const {
2087   if (const auto *VT = dyn_cast<VectorType>(CanonicalType))
2088     return VT->getElementType()->isUnsignedIntegerOrEnumerationType();
2089   else
2090     return isUnsignedIntegerOrEnumerationType();
2091 }
2092 
2093 bool Type::isFloatingType() const {
2094   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
2095     return BT->getKind() >= BuiltinType::Half &&
2096            BT->getKind() <= BuiltinType::Float128;
2097   if (const auto *CT = dyn_cast<ComplexType>(CanonicalType))
2098     return CT->getElementType()->isFloatingType();
2099   return false;
2100 }
2101 
2102 bool Type::hasFloatingRepresentation() const {
2103   if (const auto *VT = dyn_cast<VectorType>(CanonicalType))
2104     return VT->getElementType()->isFloatingType();
2105   else
2106     return isFloatingType();
2107 }
2108 
2109 bool Type::isRealFloatingType() const {
2110   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
2111     return BT->isFloatingPoint();
2112   return false;
2113 }
2114 
2115 bool Type::isRealType() const {
2116   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
2117     return BT->getKind() >= BuiltinType::Bool &&
2118            BT->getKind() <= BuiltinType::Float128;
2119   if (const auto *ET = dyn_cast<EnumType>(CanonicalType))
2120       return ET->getDecl()->isComplete() && !ET->getDecl()->isScoped();
2121   return isExtIntType();
2122 }
2123 
2124 bool Type::isArithmeticType() const {
2125   if (const auto *BT = dyn_cast<BuiltinType>(CanonicalType))
2126     return BT->getKind() >= BuiltinType::Bool &&
2127            BT->getKind() <= BuiltinType::Float128 &&
2128            BT->getKind() != BuiltinType::BFloat16;
2129   if (const auto *ET = dyn_cast<EnumType>(CanonicalType))
2130     // GCC allows forward declaration of enum types (forbid by C99 6.7.2.3p2).
2131     // If a body isn't seen by the time we get here, return false.
2132     //
2133     // C++0x: Enumerations are not arithmetic types. For now, just return
2134     // false for scoped enumerations since that will disable any
2135     // unwanted implicit conversions.
2136     return !ET->getDecl()->isScoped() && ET->getDecl()->isComplete();
2137   return isa<ComplexType>(CanonicalType) || isExtIntType();
2138 }
2139 
2140 Type::ScalarTypeKind Type::getScalarTypeKind() const {
2141   assert(isScalarType());
2142 
2143   const Type *T = CanonicalType.getTypePtr();
2144   if (const auto *BT = dyn_cast<BuiltinType>(T)) {
2145     if (BT->getKind() == BuiltinType::Bool) return STK_Bool;
2146     if (BT->getKind() == BuiltinType::NullPtr) return STK_CPointer;
2147     if (BT->isInteger()) return STK_Integral;
2148     if (BT->isFloatingPoint()) return STK_Floating;
2149     if (BT->isFixedPointType()) return STK_FixedPoint;
2150     llvm_unreachable("unknown scalar builtin type");
2151   } else if (isa<PointerType>(T)) {
2152     return STK_CPointer;
2153   } else if (isa<BlockPointerType>(T)) {
2154     return STK_BlockPointer;
2155   } else if (isa<ObjCObjectPointerType>(T)) {
2156     return STK_ObjCObjectPointer;
2157   } else if (isa<MemberPointerType>(T)) {
2158     return STK_MemberPointer;
2159   } else if (isa<EnumType>(T)) {
2160     assert(cast<EnumType>(T)->getDecl()->isComplete());
2161     return STK_Integral;
2162   } else if (const auto *CT = dyn_cast<ComplexType>(T)) {
2163     if (CT->getElementType()->isRealFloatingType())
2164       return STK_FloatingComplex;
2165     return STK_IntegralComplex;
2166   } else if (isExtIntType()) {
2167     return STK_Integral;
2168   }
2169 
2170   llvm_unreachable("unknown scalar type");
2171 }
2172 
2173 /// Determines whether the type is a C++ aggregate type or C
2174 /// aggregate or union type.
2175 ///
2176 /// An aggregate type is an array or a class type (struct, union, or
2177 /// class) that has no user-declared constructors, no private or
2178 /// protected non-static data members, no base classes, and no virtual
2179 /// functions (C++ [dcl.init.aggr]p1). The notion of an aggregate type
2180 /// subsumes the notion of C aggregates (C99 6.2.5p21) because it also
2181 /// includes union types.
2182 bool Type::isAggregateType() const {
2183   if (const auto *Record = dyn_cast<RecordType>(CanonicalType)) {
2184     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(Record->getDecl()))
2185       return ClassDecl->isAggregate();
2186 
2187     return true;
2188   }
2189 
2190   return isa<ArrayType>(CanonicalType);
2191 }
2192 
2193 /// isConstantSizeType - Return true if this is not a variable sized type,
2194 /// according to the rules of C99 6.7.5p3.  It is not legal to call this on
2195 /// incomplete types or dependent types.
2196 bool Type::isConstantSizeType() const {
2197   assert(!isIncompleteType() && "This doesn't make sense for incomplete types");
2198   assert(!isDependentType() && "This doesn't make sense for dependent types");
2199   // The VAT must have a size, as it is known to be complete.
2200   return !isa<VariableArrayType>(CanonicalType);
2201 }
2202 
2203 /// isIncompleteType - Return true if this is an incomplete type (C99 6.2.5p1)
2204 /// - a type that can describe objects, but which lacks information needed to
2205 /// determine its size.
2206 bool Type::isIncompleteType(NamedDecl **Def) const {
2207   if (Def)
2208     *Def = nullptr;
2209 
2210   switch (CanonicalType->getTypeClass()) {
2211   default: return false;
2212   case Builtin:
2213     // Void is the only incomplete builtin type.  Per C99 6.2.5p19, it can never
2214     // be completed.
2215     return isVoidType();
2216   case Enum: {
2217     EnumDecl *EnumD = cast<EnumType>(CanonicalType)->getDecl();
2218     if (Def)
2219       *Def = EnumD;
2220     return !EnumD->isComplete();
2221   }
2222   case Record: {
2223     // A tagged type (struct/union/enum/class) is incomplete if the decl is a
2224     // forward declaration, but not a full definition (C99 6.2.5p22).
2225     RecordDecl *Rec = cast<RecordType>(CanonicalType)->getDecl();
2226     if (Def)
2227       *Def = Rec;
2228     return !Rec->isCompleteDefinition();
2229   }
2230   case ConstantArray:
2231     // An array is incomplete if its element type is incomplete
2232     // (C++ [dcl.array]p1).
2233     // We don't handle variable arrays (they're not allowed in C++) or
2234     // dependent-sized arrays (dependent types are never treated as incomplete).
2235     return cast<ArrayType>(CanonicalType)->getElementType()
2236              ->isIncompleteType(Def);
2237   case IncompleteArray:
2238     // An array of unknown size is an incomplete type (C99 6.2.5p22).
2239     return true;
2240   case MemberPointer: {
2241     // Member pointers in the MS ABI have special behavior in
2242     // RequireCompleteType: they attach a MSInheritanceAttr to the CXXRecordDecl
2243     // to indicate which inheritance model to use.
2244     auto *MPTy = cast<MemberPointerType>(CanonicalType);
2245     const Type *ClassTy = MPTy->getClass();
2246     // Member pointers with dependent class types don't get special treatment.
2247     if (ClassTy->isDependentType())
2248       return false;
2249     const CXXRecordDecl *RD = ClassTy->getAsCXXRecordDecl();
2250     ASTContext &Context = RD->getASTContext();
2251     // Member pointers not in the MS ABI don't get special treatment.
2252     if (!Context.getTargetInfo().getCXXABI().isMicrosoft())
2253       return false;
2254     // The inheritance attribute might only be present on the most recent
2255     // CXXRecordDecl, use that one.
2256     RD = RD->getMostRecentNonInjectedDecl();
2257     // Nothing interesting to do if the inheritance attribute is already set.
2258     if (RD->hasAttr<MSInheritanceAttr>())
2259       return false;
2260     return true;
2261   }
2262   case ObjCObject:
2263     return cast<ObjCObjectType>(CanonicalType)->getBaseType()
2264              ->isIncompleteType(Def);
2265   case ObjCInterface: {
2266     // ObjC interfaces are incomplete if they are @class, not @interface.
2267     ObjCInterfaceDecl *Interface
2268       = cast<ObjCInterfaceType>(CanonicalType)->getDecl();
2269     if (Def)
2270       *Def = Interface;
2271     return !Interface->hasDefinition();
2272   }
2273   }
2274 }
2275 
2276 bool Type::isSizelessBuiltinType() const {
2277   if (const BuiltinType *BT = getAs<BuiltinType>()) {
2278     switch (BT->getKind()) {
2279       // SVE Types
2280 #define SVE_TYPE(Name, Id, SingletonId) case BuiltinType::Id:
2281 #include "clang/Basic/AArch64SVEACLETypes.def"
2282       return true;
2283     default:
2284       return false;
2285     }
2286   }
2287   return false;
2288 }
2289 
2290 bool Type::isSizelessType() const { return isSizelessBuiltinType(); }
2291 
2292 bool Type::isVLSTBuiltinType() const {
2293   if (const BuiltinType *BT = getAs<BuiltinType>()) {
2294     switch (BT->getKind()) {
2295     case BuiltinType::SveInt8:
2296     case BuiltinType::SveInt16:
2297     case BuiltinType::SveInt32:
2298     case BuiltinType::SveInt64:
2299     case BuiltinType::SveUint8:
2300     case BuiltinType::SveUint16:
2301     case BuiltinType::SveUint32:
2302     case BuiltinType::SveUint64:
2303     case BuiltinType::SveFloat16:
2304     case BuiltinType::SveFloat32:
2305     case BuiltinType::SveFloat64:
2306     case BuiltinType::SveBFloat16:
2307     case BuiltinType::SveBool:
2308       return true;
2309     default:
2310       return false;
2311     }
2312   }
2313   return false;
2314 }
2315 
2316 QualType Type::getSveEltType(const ASTContext &Ctx) const {
2317   assert(isVLSTBuiltinType() && "unsupported type!");
2318 
2319   const BuiltinType *BTy = getAs<BuiltinType>();
2320   switch (BTy->getKind()) {
2321   default:
2322     llvm_unreachable("Unknown builtin SVE type!");
2323   case BuiltinType::SveInt8:
2324     return Ctx.SignedCharTy;
2325   case BuiltinType::SveUint8:
2326   case BuiltinType::SveBool:
2327     // Represent predicates as i8 rather than i1 to avoid any layout issues.
2328     // The type is bitcasted to a scalable predicate type when casting between
2329     // scalable and fixed-length vectors.
2330     return Ctx.UnsignedCharTy;
2331   case BuiltinType::SveInt16:
2332     return Ctx.ShortTy;
2333   case BuiltinType::SveUint16:
2334     return Ctx.UnsignedShortTy;
2335   case BuiltinType::SveInt32:
2336     return Ctx.IntTy;
2337   case BuiltinType::SveUint32:
2338     return Ctx.UnsignedIntTy;
2339   case BuiltinType::SveInt64:
2340     return Ctx.LongTy;
2341   case BuiltinType::SveUint64:
2342     return Ctx.UnsignedLongTy;
2343   case BuiltinType::SveFloat16:
2344     return Ctx.Float16Ty;
2345   case BuiltinType::SveBFloat16:
2346     return Ctx.BFloat16Ty;
2347   case BuiltinType::SveFloat32:
2348     return Ctx.FloatTy;
2349   case BuiltinType::SveFloat64:
2350     return Ctx.DoubleTy;
2351   }
2352 }
2353 
2354 bool QualType::isPODType(const ASTContext &Context) const {
2355   // C++11 has a more relaxed definition of POD.
2356   if (Context.getLangOpts().CPlusPlus11)
2357     return isCXX11PODType(Context);
2358 
2359   return isCXX98PODType(Context);
2360 }
2361 
2362 bool QualType::isCXX98PODType(const ASTContext &Context) const {
2363   // The compiler shouldn't query this for incomplete types, but the user might.
2364   // We return false for that case. Except for incomplete arrays of PODs, which
2365   // are PODs according to the standard.
2366   if (isNull())
2367     return false;
2368 
2369   if ((*this)->isIncompleteArrayType())
2370     return Context.getBaseElementType(*this).isCXX98PODType(Context);
2371 
2372   if ((*this)->isIncompleteType())
2373     return false;
2374 
2375   if (hasNonTrivialObjCLifetime())
2376     return false;
2377 
2378   QualType CanonicalType = getTypePtr()->CanonicalType;
2379   switch (CanonicalType->getTypeClass()) {
2380     // Everything not explicitly mentioned is not POD.
2381   default: return false;
2382   case Type::VariableArray:
2383   case Type::ConstantArray:
2384     // IncompleteArray is handled above.
2385     return Context.getBaseElementType(*this).isCXX98PODType(Context);
2386 
2387   case Type::ObjCObjectPointer:
2388   case Type::BlockPointer:
2389   case Type::Builtin:
2390   case Type::Complex:
2391   case Type::Pointer:
2392   case Type::MemberPointer:
2393   case Type::Vector:
2394   case Type::ExtVector:
2395   case Type::ExtInt:
2396     return true;
2397 
2398   case Type::Enum:
2399     return true;
2400 
2401   case Type::Record:
2402     if (const auto *ClassDecl =
2403             dyn_cast<CXXRecordDecl>(cast<RecordType>(CanonicalType)->getDecl()))
2404       return ClassDecl->isPOD();
2405 
2406     // C struct/union is POD.
2407     return true;
2408   }
2409 }
2410 
2411 bool QualType::isTrivialType(const ASTContext &Context) const {
2412   // The compiler shouldn't query this for incomplete types, but the user might.
2413   // We return false for that case. Except for incomplete arrays of PODs, which
2414   // are PODs according to the standard.
2415   if (isNull())
2416     return false;
2417 
2418   if ((*this)->isArrayType())
2419     return Context.getBaseElementType(*this).isTrivialType(Context);
2420 
2421   if ((*this)->isSizelessBuiltinType())
2422     return true;
2423 
2424   // Return false for incomplete types after skipping any incomplete array
2425   // types which are expressly allowed by the standard and thus our API.
2426   if ((*this)->isIncompleteType())
2427     return false;
2428 
2429   if (hasNonTrivialObjCLifetime())
2430     return false;
2431 
2432   QualType CanonicalType = getTypePtr()->CanonicalType;
2433   if (CanonicalType->isDependentType())
2434     return false;
2435 
2436   // C++0x [basic.types]p9:
2437   //   Scalar types, trivial class types, arrays of such types, and
2438   //   cv-qualified versions of these types are collectively called trivial
2439   //   types.
2440 
2441   // As an extension, Clang treats vector types as Scalar types.
2442   if (CanonicalType->isScalarType() || CanonicalType->isVectorType())
2443     return true;
2444   if (const auto *RT = CanonicalType->getAs<RecordType>()) {
2445     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl())) {
2446       // C++11 [class]p6:
2447       //   A trivial class is a class that has a default constructor,
2448       //   has no non-trivial default constructors, and is trivially
2449       //   copyable.
2450       return ClassDecl->hasDefaultConstructor() &&
2451              !ClassDecl->hasNonTrivialDefaultConstructor() &&
2452              ClassDecl->isTriviallyCopyable();
2453     }
2454 
2455     return true;
2456   }
2457 
2458   // No other types can match.
2459   return false;
2460 }
2461 
2462 bool QualType::isTriviallyCopyableType(const ASTContext &Context) const {
2463   if ((*this)->isArrayType())
2464     return Context.getBaseElementType(*this).isTriviallyCopyableType(Context);
2465 
2466   if (hasNonTrivialObjCLifetime())
2467     return false;
2468 
2469   // C++11 [basic.types]p9 - See Core 2094
2470   //   Scalar types, trivially copyable class types, arrays of such types, and
2471   //   cv-qualified versions of these types are collectively
2472   //   called trivially copyable types.
2473 
2474   QualType CanonicalType = getCanonicalType();
2475   if (CanonicalType->isDependentType())
2476     return false;
2477 
2478   if (CanonicalType->isSizelessBuiltinType())
2479     return true;
2480 
2481   // Return false for incomplete types after skipping any incomplete array types
2482   // which are expressly allowed by the standard and thus our API.
2483   if (CanonicalType->isIncompleteType())
2484     return false;
2485 
2486   // As an extension, Clang treats vector types as Scalar types.
2487   if (CanonicalType->isScalarType() || CanonicalType->isVectorType())
2488     return true;
2489 
2490   if (const auto *RT = CanonicalType->getAs<RecordType>()) {
2491     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl())) {
2492       if (!ClassDecl->isTriviallyCopyable()) return false;
2493     }
2494 
2495     return true;
2496   }
2497 
2498   // No other types can match.
2499   return false;
2500 }
2501 
2502 bool QualType::isNonWeakInMRRWithObjCWeak(const ASTContext &Context) const {
2503   return !Context.getLangOpts().ObjCAutoRefCount &&
2504          Context.getLangOpts().ObjCWeak &&
2505          getObjCLifetime() != Qualifiers::OCL_Weak;
2506 }
2507 
2508 bool QualType::hasNonTrivialToPrimitiveDefaultInitializeCUnion(const RecordDecl *RD) {
2509   return RD->hasNonTrivialToPrimitiveDefaultInitializeCUnion();
2510 }
2511 
2512 bool QualType::hasNonTrivialToPrimitiveDestructCUnion(const RecordDecl *RD) {
2513   return RD->hasNonTrivialToPrimitiveDestructCUnion();
2514 }
2515 
2516 bool QualType::hasNonTrivialToPrimitiveCopyCUnion(const RecordDecl *RD) {
2517   return RD->hasNonTrivialToPrimitiveCopyCUnion();
2518 }
2519 
2520 QualType::PrimitiveDefaultInitializeKind
2521 QualType::isNonTrivialToPrimitiveDefaultInitialize() const {
2522   if (const auto *RT =
2523           getTypePtr()->getBaseElementTypeUnsafe()->getAs<RecordType>())
2524     if (RT->getDecl()->isNonTrivialToPrimitiveDefaultInitialize())
2525       return PDIK_Struct;
2526 
2527   switch (getQualifiers().getObjCLifetime()) {
2528   case Qualifiers::OCL_Strong:
2529     return PDIK_ARCStrong;
2530   case Qualifiers::OCL_Weak:
2531     return PDIK_ARCWeak;
2532   default:
2533     return PDIK_Trivial;
2534   }
2535 }
2536 
2537 QualType::PrimitiveCopyKind QualType::isNonTrivialToPrimitiveCopy() const {
2538   if (const auto *RT =
2539           getTypePtr()->getBaseElementTypeUnsafe()->getAs<RecordType>())
2540     if (RT->getDecl()->isNonTrivialToPrimitiveCopy())
2541       return PCK_Struct;
2542 
2543   Qualifiers Qs = getQualifiers();
2544   switch (Qs.getObjCLifetime()) {
2545   case Qualifiers::OCL_Strong:
2546     return PCK_ARCStrong;
2547   case Qualifiers::OCL_Weak:
2548     return PCK_ARCWeak;
2549   default:
2550     return Qs.hasVolatile() ? PCK_VolatileTrivial : PCK_Trivial;
2551   }
2552 }
2553 
2554 QualType::PrimitiveCopyKind
2555 QualType::isNonTrivialToPrimitiveDestructiveMove() const {
2556   return isNonTrivialToPrimitiveCopy();
2557 }
2558 
2559 bool Type::isLiteralType(const ASTContext &Ctx) const {
2560   if (isDependentType())
2561     return false;
2562 
2563   // C++1y [basic.types]p10:
2564   //   A type is a literal type if it is:
2565   //   -- cv void; or
2566   if (Ctx.getLangOpts().CPlusPlus14 && isVoidType())
2567     return true;
2568 
2569   // C++11 [basic.types]p10:
2570   //   A type is a literal type if it is:
2571   //   [...]
2572   //   -- an array of literal type other than an array of runtime bound; or
2573   if (isVariableArrayType())
2574     return false;
2575   const Type *BaseTy = getBaseElementTypeUnsafe();
2576   assert(BaseTy && "NULL element type");
2577 
2578   // Return false for incomplete types after skipping any incomplete array
2579   // types; those are expressly allowed by the standard and thus our API.
2580   if (BaseTy->isIncompleteType())
2581     return false;
2582 
2583   // C++11 [basic.types]p10:
2584   //   A type is a literal type if it is:
2585   //    -- a scalar type; or
2586   // As an extension, Clang treats vector types and complex types as
2587   // literal types.
2588   if (BaseTy->isScalarType() || BaseTy->isVectorType() ||
2589       BaseTy->isAnyComplexType())
2590     return true;
2591   //    -- a reference type; or
2592   if (BaseTy->isReferenceType())
2593     return true;
2594   //    -- a class type that has all of the following properties:
2595   if (const auto *RT = BaseTy->getAs<RecordType>()) {
2596     //    -- a trivial destructor,
2597     //    -- every constructor call and full-expression in the
2598     //       brace-or-equal-initializers for non-static data members (if any)
2599     //       is a constant expression,
2600     //    -- it is an aggregate type or has at least one constexpr
2601     //       constructor or constructor template that is not a copy or move
2602     //       constructor, and
2603     //    -- all non-static data members and base classes of literal types
2604     //
2605     // We resolve DR1361 by ignoring the second bullet.
2606     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl()))
2607       return ClassDecl->isLiteral();
2608 
2609     return true;
2610   }
2611 
2612   // We treat _Atomic T as a literal type if T is a literal type.
2613   if (const auto *AT = BaseTy->getAs<AtomicType>())
2614     return AT->getValueType()->isLiteralType(Ctx);
2615 
2616   // If this type hasn't been deduced yet, then conservatively assume that
2617   // it'll work out to be a literal type.
2618   if (isa<AutoType>(BaseTy->getCanonicalTypeInternal()))
2619     return true;
2620 
2621   return false;
2622 }
2623 
2624 bool Type::isStandardLayoutType() const {
2625   if (isDependentType())
2626     return false;
2627 
2628   // C++0x [basic.types]p9:
2629   //   Scalar types, standard-layout class types, arrays of such types, and
2630   //   cv-qualified versions of these types are collectively called
2631   //   standard-layout types.
2632   const Type *BaseTy = getBaseElementTypeUnsafe();
2633   assert(BaseTy && "NULL element type");
2634 
2635   // Return false for incomplete types after skipping any incomplete array
2636   // types which are expressly allowed by the standard and thus our API.
2637   if (BaseTy->isIncompleteType())
2638     return false;
2639 
2640   // As an extension, Clang treats vector types as Scalar types.
2641   if (BaseTy->isScalarType() || BaseTy->isVectorType()) return true;
2642   if (const auto *RT = BaseTy->getAs<RecordType>()) {
2643     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl()))
2644       if (!ClassDecl->isStandardLayout())
2645         return false;
2646 
2647     // Default to 'true' for non-C++ class types.
2648     // FIXME: This is a bit dubious, but plain C structs should trivially meet
2649     // all the requirements of standard layout classes.
2650     return true;
2651   }
2652 
2653   // No other types can match.
2654   return false;
2655 }
2656 
2657 // This is effectively the intersection of isTrivialType and
2658 // isStandardLayoutType. We implement it directly to avoid redundant
2659 // conversions from a type to a CXXRecordDecl.
2660 bool QualType::isCXX11PODType(const ASTContext &Context) const {
2661   const Type *ty = getTypePtr();
2662   if (ty->isDependentType())
2663     return false;
2664 
2665   if (hasNonTrivialObjCLifetime())
2666     return false;
2667 
2668   // C++11 [basic.types]p9:
2669   //   Scalar types, POD classes, arrays of such types, and cv-qualified
2670   //   versions of these types are collectively called trivial types.
2671   const Type *BaseTy = ty->getBaseElementTypeUnsafe();
2672   assert(BaseTy && "NULL element type");
2673 
2674   if (BaseTy->isSizelessBuiltinType())
2675     return true;
2676 
2677   // Return false for incomplete types after skipping any incomplete array
2678   // types which are expressly allowed by the standard and thus our API.
2679   if (BaseTy->isIncompleteType())
2680     return false;
2681 
2682   // As an extension, Clang treats vector types as Scalar types.
2683   if (BaseTy->isScalarType() || BaseTy->isVectorType()) return true;
2684   if (const auto *RT = BaseTy->getAs<RecordType>()) {
2685     if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl())) {
2686       // C++11 [class]p10:
2687       //   A POD struct is a non-union class that is both a trivial class [...]
2688       if (!ClassDecl->isTrivial()) return false;
2689 
2690       // C++11 [class]p10:
2691       //   A POD struct is a non-union class that is both a trivial class and
2692       //   a standard-layout class [...]
2693       if (!ClassDecl->isStandardLayout()) return false;
2694 
2695       // C++11 [class]p10:
2696       //   A POD struct is a non-union class that is both a trivial class and
2697       //   a standard-layout class, and has no non-static data members of type
2698       //   non-POD struct, non-POD union (or array of such types). [...]
2699       //
2700       // We don't directly query the recursive aspect as the requirements for
2701       // both standard-layout classes and trivial classes apply recursively
2702       // already.
2703     }
2704 
2705     return true;
2706   }
2707 
2708   // No other types can match.
2709   return false;
2710 }
2711 
2712 bool Type::isNothrowT() const {
2713   if (const auto *RD = getAsCXXRecordDecl()) {
2714     IdentifierInfo *II = RD->getIdentifier();
2715     if (II && II->isStr("nothrow_t") && RD->isInStdNamespace())
2716       return true;
2717   }
2718   return false;
2719 }
2720 
2721 bool Type::isAlignValT() const {
2722   if (const auto *ET = getAs<EnumType>()) {
2723     IdentifierInfo *II = ET->getDecl()->getIdentifier();
2724     if (II && II->isStr("align_val_t") && ET->getDecl()->isInStdNamespace())
2725       return true;
2726   }
2727   return false;
2728 }
2729 
2730 bool Type::isStdByteType() const {
2731   if (const auto *ET = getAs<EnumType>()) {
2732     IdentifierInfo *II = ET->getDecl()->getIdentifier();
2733     if (II && II->isStr("byte") && ET->getDecl()->isInStdNamespace())
2734       return true;
2735   }
2736   return false;
2737 }
2738 
2739 bool Type::isPromotableIntegerType() const {
2740   if (const auto *BT = getAs<BuiltinType>())
2741     switch (BT->getKind()) {
2742     case BuiltinType::Bool:
2743     case BuiltinType::Char_S:
2744     case BuiltinType::Char_U:
2745     case BuiltinType::SChar:
2746     case BuiltinType::UChar:
2747     case BuiltinType::Short:
2748     case BuiltinType::UShort:
2749     case BuiltinType::WChar_S:
2750     case BuiltinType::WChar_U:
2751     case BuiltinType::Char8:
2752     case BuiltinType::Char16:
2753     case BuiltinType::Char32:
2754       return true;
2755     default:
2756       return false;
2757     }
2758 
2759   // Enumerated types are promotable to their compatible integer types
2760   // (C99 6.3.1.1) a.k.a. its underlying type (C++ [conv.prom]p2).
2761   if (const auto *ET = getAs<EnumType>()){
2762     if (this->isDependentType() || ET->getDecl()->getPromotionType().isNull()
2763         || ET->getDecl()->isScoped())
2764       return false;
2765 
2766     return true;
2767   }
2768 
2769   return false;
2770 }
2771 
2772 bool Type::isSpecifierType() const {
2773   // Note that this intentionally does not use the canonical type.
2774   switch (getTypeClass()) {
2775   case Builtin:
2776   case Record:
2777   case Enum:
2778   case Typedef:
2779   case Complex:
2780   case TypeOfExpr:
2781   case TypeOf:
2782   case TemplateTypeParm:
2783   case SubstTemplateTypeParm:
2784   case TemplateSpecialization:
2785   case Elaborated:
2786   case DependentName:
2787   case DependentTemplateSpecialization:
2788   case ObjCInterface:
2789   case ObjCObject:
2790   case ObjCObjectPointer: // FIXME: object pointers aren't really specifiers
2791     return true;
2792   default:
2793     return false;
2794   }
2795 }
2796 
2797 ElaboratedTypeKeyword
2798 TypeWithKeyword::getKeywordForTypeSpec(unsigned TypeSpec) {
2799   switch (TypeSpec) {
2800   default: return ETK_None;
2801   case TST_typename: return ETK_Typename;
2802   case TST_class: return ETK_Class;
2803   case TST_struct: return ETK_Struct;
2804   case TST_interface: return ETK_Interface;
2805   case TST_union: return ETK_Union;
2806   case TST_enum: return ETK_Enum;
2807   }
2808 }
2809 
2810 TagTypeKind
2811 TypeWithKeyword::getTagTypeKindForTypeSpec(unsigned TypeSpec) {
2812   switch(TypeSpec) {
2813   case TST_class: return TTK_Class;
2814   case TST_struct: return TTK_Struct;
2815   case TST_interface: return TTK_Interface;
2816   case TST_union: return TTK_Union;
2817   case TST_enum: return TTK_Enum;
2818   }
2819 
2820   llvm_unreachable("Type specifier is not a tag type kind.");
2821 }
2822 
2823 ElaboratedTypeKeyword
2824 TypeWithKeyword::getKeywordForTagTypeKind(TagTypeKind Kind) {
2825   switch (Kind) {
2826   case TTK_Class: return ETK_Class;
2827   case TTK_Struct: return ETK_Struct;
2828   case TTK_Interface: return ETK_Interface;
2829   case TTK_Union: return ETK_Union;
2830   case TTK_Enum: return ETK_Enum;
2831   }
2832   llvm_unreachable("Unknown tag type kind.");
2833 }
2834 
2835 TagTypeKind
2836 TypeWithKeyword::getTagTypeKindForKeyword(ElaboratedTypeKeyword Keyword) {
2837   switch (Keyword) {
2838   case ETK_Class: return TTK_Class;
2839   case ETK_Struct: return TTK_Struct;
2840   case ETK_Interface: return TTK_Interface;
2841   case ETK_Union: return TTK_Union;
2842   case ETK_Enum: return TTK_Enum;
2843   case ETK_None: // Fall through.
2844   case ETK_Typename:
2845     llvm_unreachable("Elaborated type keyword is not a tag type kind.");
2846   }
2847   llvm_unreachable("Unknown elaborated type keyword.");
2848 }
2849 
2850 bool
2851 TypeWithKeyword::KeywordIsTagTypeKind(ElaboratedTypeKeyword Keyword) {
2852   switch (Keyword) {
2853   case ETK_None:
2854   case ETK_Typename:
2855     return false;
2856   case ETK_Class:
2857   case ETK_Struct:
2858   case ETK_Interface:
2859   case ETK_Union:
2860   case ETK_Enum:
2861     return true;
2862   }
2863   llvm_unreachable("Unknown elaborated type keyword.");
2864 }
2865 
2866 StringRef TypeWithKeyword::getKeywordName(ElaboratedTypeKeyword Keyword) {
2867   switch (Keyword) {
2868   case ETK_None: return {};
2869   case ETK_Typename: return "typename";
2870   case ETK_Class:  return "class";
2871   case ETK_Struct: return "struct";
2872   case ETK_Interface: return "__interface";
2873   case ETK_Union:  return "union";
2874   case ETK_Enum:   return "enum";
2875   }
2876 
2877   llvm_unreachable("Unknown elaborated type keyword.");
2878 }
2879 
2880 DependentTemplateSpecializationType::DependentTemplateSpecializationType(
2881     ElaboratedTypeKeyword Keyword, NestedNameSpecifier *NNS,
2882     const IdentifierInfo *Name, ArrayRef<TemplateArgument> Args, QualType Canon)
2883     : TypeWithKeyword(Keyword, DependentTemplateSpecialization, Canon,
2884                       TypeDependence::DependentInstantiation |
2885                           (NNS ? toTypeDependence(NNS->getDependence())
2886                                : TypeDependence::None)),
2887       NNS(NNS), Name(Name) {
2888   DependentTemplateSpecializationTypeBits.NumArgs = Args.size();
2889   assert((!NNS || NNS->isDependent()) &&
2890          "DependentTemplateSpecializatonType requires dependent qualifier");
2891   TemplateArgument *ArgBuffer = getArgBuffer();
2892   for (const TemplateArgument &Arg : Args) {
2893     addDependence(toTypeDependence(Arg.getDependence() &
2894                                    TemplateArgumentDependence::UnexpandedPack));
2895 
2896     new (ArgBuffer++) TemplateArgument(Arg);
2897   }
2898 }
2899 
2900 void
2901 DependentTemplateSpecializationType::Profile(llvm::FoldingSetNodeID &ID,
2902                                              const ASTContext &Context,
2903                                              ElaboratedTypeKeyword Keyword,
2904                                              NestedNameSpecifier *Qualifier,
2905                                              const IdentifierInfo *Name,
2906                                              ArrayRef<TemplateArgument> Args) {
2907   ID.AddInteger(Keyword);
2908   ID.AddPointer(Qualifier);
2909   ID.AddPointer(Name);
2910   for (const TemplateArgument &Arg : Args)
2911     Arg.Profile(ID, Context);
2912 }
2913 
2914 bool Type::isElaboratedTypeSpecifier() const {
2915   ElaboratedTypeKeyword Keyword;
2916   if (const auto *Elab = dyn_cast<ElaboratedType>(this))
2917     Keyword = Elab->getKeyword();
2918   else if (const auto *DepName = dyn_cast<DependentNameType>(this))
2919     Keyword = DepName->getKeyword();
2920   else if (const auto *DepTST =
2921                dyn_cast<DependentTemplateSpecializationType>(this))
2922     Keyword = DepTST->getKeyword();
2923   else
2924     return false;
2925 
2926   return TypeWithKeyword::KeywordIsTagTypeKind(Keyword);
2927 }
2928 
2929 const char *Type::getTypeClassName() const {
2930   switch (TypeBits.TC) {
2931 #define ABSTRACT_TYPE(Derived, Base)
2932 #define TYPE(Derived, Base) case Derived: return #Derived;
2933 #include "clang/AST/TypeNodes.inc"
2934   }
2935 
2936   llvm_unreachable("Invalid type class.");
2937 }
2938 
2939 StringRef BuiltinType::getName(const PrintingPolicy &Policy) const {
2940   switch (getKind()) {
2941   case Void:
2942     return "void";
2943   case Bool:
2944     return Policy.Bool ? "bool" : "_Bool";
2945   case Char_S:
2946     return "char";
2947   case Char_U:
2948     return "char";
2949   case SChar:
2950     return "signed char";
2951   case Short:
2952     return "short";
2953   case Int:
2954     return "int";
2955   case Long:
2956     return "long";
2957   case LongLong:
2958     return "long long";
2959   case Int128:
2960     return "__int128";
2961   case UChar:
2962     return "unsigned char";
2963   case UShort:
2964     return "unsigned short";
2965   case UInt:
2966     return "unsigned int";
2967   case ULong:
2968     return "unsigned long";
2969   case ULongLong:
2970     return "unsigned long long";
2971   case UInt128:
2972     return "unsigned __int128";
2973   case Half:
2974     return Policy.Half ? "half" : "__fp16";
2975   case BFloat16:
2976     return "__bf16";
2977   case Float:
2978     return "float";
2979   case Double:
2980     return "double";
2981   case LongDouble:
2982     return "long double";
2983   case ShortAccum:
2984     return "short _Accum";
2985   case Accum:
2986     return "_Accum";
2987   case LongAccum:
2988     return "long _Accum";
2989   case UShortAccum:
2990     return "unsigned short _Accum";
2991   case UAccum:
2992     return "unsigned _Accum";
2993   case ULongAccum:
2994     return "unsigned long _Accum";
2995   case BuiltinType::ShortFract:
2996     return "short _Fract";
2997   case BuiltinType::Fract:
2998     return "_Fract";
2999   case BuiltinType::LongFract:
3000     return "long _Fract";
3001   case BuiltinType::UShortFract:
3002     return "unsigned short _Fract";
3003   case BuiltinType::UFract:
3004     return "unsigned _Fract";
3005   case BuiltinType::ULongFract:
3006     return "unsigned long _Fract";
3007   case BuiltinType::SatShortAccum:
3008     return "_Sat short _Accum";
3009   case BuiltinType::SatAccum:
3010     return "_Sat _Accum";
3011   case BuiltinType::SatLongAccum:
3012     return "_Sat long _Accum";
3013   case BuiltinType::SatUShortAccum:
3014     return "_Sat unsigned short _Accum";
3015   case BuiltinType::SatUAccum:
3016     return "_Sat unsigned _Accum";
3017   case BuiltinType::SatULongAccum:
3018     return "_Sat unsigned long _Accum";
3019   case BuiltinType::SatShortFract:
3020     return "_Sat short _Fract";
3021   case BuiltinType::SatFract:
3022     return "_Sat _Fract";
3023   case BuiltinType::SatLongFract:
3024     return "_Sat long _Fract";
3025   case BuiltinType::SatUShortFract:
3026     return "_Sat unsigned short _Fract";
3027   case BuiltinType::SatUFract:
3028     return "_Sat unsigned _Fract";
3029   case BuiltinType::SatULongFract:
3030     return "_Sat unsigned long _Fract";
3031   case Float16:
3032     return "_Float16";
3033   case Float128:
3034     return "__float128";
3035   case WChar_S:
3036   case WChar_U:
3037     return Policy.MSWChar ? "__wchar_t" : "wchar_t";
3038   case Char8:
3039     return "char8_t";
3040   case Char16:
3041     return "char16_t";
3042   case Char32:
3043     return "char32_t";
3044   case NullPtr:
3045     return "nullptr_t";
3046   case Overload:
3047     return "<overloaded function type>";
3048   case BoundMember:
3049     return "<bound member function type>";
3050   case PseudoObject:
3051     return "<pseudo-object type>";
3052   case Dependent:
3053     return "<dependent type>";
3054   case UnknownAny:
3055     return "<unknown type>";
3056   case ARCUnbridgedCast:
3057     return "<ARC unbridged cast type>";
3058   case BuiltinFn:
3059     return "<builtin fn type>";
3060   case ObjCId:
3061     return "id";
3062   case ObjCClass:
3063     return "Class";
3064   case ObjCSel:
3065     return "SEL";
3066 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
3067   case Id: \
3068     return "__" #Access " " #ImgType "_t";
3069 #include "clang/Basic/OpenCLImageTypes.def"
3070   case OCLSampler:
3071     return "sampler_t";
3072   case OCLEvent:
3073     return "event_t";
3074   case OCLClkEvent:
3075     return "clk_event_t";
3076   case OCLQueue:
3077     return "queue_t";
3078   case OCLReserveID:
3079     return "reserve_id_t";
3080   case IncompleteMatrixIdx:
3081     return "<incomplete matrix index type>";
3082   case OMPArraySection:
3083     return "<OpenMP array section type>";
3084   case OMPArrayShaping:
3085     return "<OpenMP array shaping type>";
3086   case OMPIterator:
3087     return "<OpenMP iterator type>";
3088 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \
3089   case Id: \
3090     return #ExtType;
3091 #include "clang/Basic/OpenCLExtensionTypes.def"
3092 #define SVE_TYPE(Name, Id, SingletonId) \
3093   case Id: \
3094     return Name;
3095 #include "clang/Basic/AArch64SVEACLETypes.def"
3096   }
3097 
3098   llvm_unreachable("Invalid builtin type.");
3099 }
3100 
3101 QualType QualType::getNonPackExpansionType() const {
3102   // We never wrap type sugar around a PackExpansionType.
3103   if (auto *PET = dyn_cast<PackExpansionType>(getTypePtr()))
3104     return PET->getPattern();
3105   return *this;
3106 }
3107 
3108 QualType QualType::getNonLValueExprType(const ASTContext &Context) const {
3109   if (const auto *RefType = getTypePtr()->getAs<ReferenceType>())
3110     return RefType->getPointeeType();
3111 
3112   // C++0x [basic.lval]:
3113   //   Class prvalues can have cv-qualified types; non-class prvalues always
3114   //   have cv-unqualified types.
3115   //
3116   // See also C99 6.3.2.1p2.
3117   if (!Context.getLangOpts().CPlusPlus ||
3118       (!getTypePtr()->isDependentType() && !getTypePtr()->isRecordType()))
3119     return getUnqualifiedType();
3120 
3121   return *this;
3122 }
3123 
3124 StringRef FunctionType::getNameForCallConv(CallingConv CC) {
3125   switch (CC) {
3126   case CC_C: return "cdecl";
3127   case CC_X86StdCall: return "stdcall";
3128   case CC_X86FastCall: return "fastcall";
3129   case CC_X86ThisCall: return "thiscall";
3130   case CC_X86Pascal: return "pascal";
3131   case CC_X86VectorCall: return "vectorcall";
3132   case CC_Win64: return "ms_abi";
3133   case CC_X86_64SysV: return "sysv_abi";
3134   case CC_X86RegCall : return "regcall";
3135   case CC_AAPCS: return "aapcs";
3136   case CC_AAPCS_VFP: return "aapcs-vfp";
3137   case CC_AArch64VectorCall: return "aarch64_vector_pcs";
3138   case CC_IntelOclBicc: return "intel_ocl_bicc";
3139   case CC_SpirFunction: return "spir_function";
3140   case CC_OpenCLKernel: return "opencl_kernel";
3141   case CC_Swift: return "swiftcall";
3142   case CC_PreserveMost: return "preserve_most";
3143   case CC_PreserveAll: return "preserve_all";
3144   }
3145 
3146   llvm_unreachable("Invalid calling convention.");
3147 }
3148 
3149 FunctionProtoType::FunctionProtoType(QualType result, ArrayRef<QualType> params,
3150                                      QualType canonical,
3151                                      const ExtProtoInfo &epi)
3152     : FunctionType(FunctionProto, result, canonical, result->getDependence(),
3153                    epi.ExtInfo) {
3154   FunctionTypeBits.FastTypeQuals = epi.TypeQuals.getFastQualifiers();
3155   FunctionTypeBits.RefQualifier = epi.RefQualifier;
3156   FunctionTypeBits.NumParams = params.size();
3157   assert(getNumParams() == params.size() && "NumParams overflow!");
3158   FunctionTypeBits.ExceptionSpecType = epi.ExceptionSpec.Type;
3159   FunctionTypeBits.HasExtParameterInfos = !!epi.ExtParameterInfos;
3160   FunctionTypeBits.Variadic = epi.Variadic;
3161   FunctionTypeBits.HasTrailingReturn = epi.HasTrailingReturn;
3162 
3163   // Fill in the extra trailing bitfields if present.
3164   if (hasExtraBitfields(epi.ExceptionSpec.Type)) {
3165     auto &ExtraBits = *getTrailingObjects<FunctionTypeExtraBitfields>();
3166     ExtraBits.NumExceptionType = epi.ExceptionSpec.Exceptions.size();
3167   }
3168 
3169   // Fill in the trailing argument array.
3170   auto *argSlot = getTrailingObjects<QualType>();
3171   for (unsigned i = 0; i != getNumParams(); ++i) {
3172     addDependence(params[i]->getDependence() &
3173                   ~TypeDependence::VariablyModified);
3174     argSlot[i] = params[i];
3175   }
3176 
3177   // Fill in the exception type array if present.
3178   if (getExceptionSpecType() == EST_Dynamic) {
3179     assert(hasExtraBitfields() && "missing trailing extra bitfields!");
3180     auto *exnSlot =
3181         reinterpret_cast<QualType *>(getTrailingObjects<ExceptionType>());
3182     unsigned I = 0;
3183     for (QualType ExceptionType : epi.ExceptionSpec.Exceptions) {
3184       // Note that, before C++17, a dependent exception specification does
3185       // *not* make a type dependent; it's not even part of the C++ type
3186       // system.
3187       addDependence(
3188           ExceptionType->getDependence() &
3189           (TypeDependence::Instantiation | TypeDependence::UnexpandedPack));
3190 
3191       exnSlot[I++] = ExceptionType;
3192     }
3193   }
3194   // Fill in the Expr * in the exception specification if present.
3195   else if (isComputedNoexcept(getExceptionSpecType())) {
3196     assert(epi.ExceptionSpec.NoexceptExpr && "computed noexcept with no expr");
3197     assert((getExceptionSpecType() == EST_DependentNoexcept) ==
3198            epi.ExceptionSpec.NoexceptExpr->isValueDependent());
3199 
3200     // Store the noexcept expression and context.
3201     *getTrailingObjects<Expr *>() = epi.ExceptionSpec.NoexceptExpr;
3202 
3203     addDependence(
3204         toTypeDependence(epi.ExceptionSpec.NoexceptExpr->getDependence()) &
3205         (TypeDependence::Instantiation | TypeDependence::UnexpandedPack));
3206   }
3207   // Fill in the FunctionDecl * in the exception specification if present.
3208   else if (getExceptionSpecType() == EST_Uninstantiated) {
3209     // Store the function decl from which we will resolve our
3210     // exception specification.
3211     auto **slot = getTrailingObjects<FunctionDecl *>();
3212     slot[0] = epi.ExceptionSpec.SourceDecl;
3213     slot[1] = epi.ExceptionSpec.SourceTemplate;
3214     // This exception specification doesn't make the type dependent, because
3215     // it's not instantiated as part of instantiating the type.
3216   } else if (getExceptionSpecType() == EST_Unevaluated) {
3217     // Store the function decl from which we will resolve our
3218     // exception specification.
3219     auto **slot = getTrailingObjects<FunctionDecl *>();
3220     slot[0] = epi.ExceptionSpec.SourceDecl;
3221   }
3222 
3223   // If this is a canonical type, and its exception specification is dependent,
3224   // then it's a dependent type. This only happens in C++17 onwards.
3225   if (isCanonicalUnqualified()) {
3226     if (getExceptionSpecType() == EST_Dynamic ||
3227         getExceptionSpecType() == EST_DependentNoexcept) {
3228       assert(hasDependentExceptionSpec() && "type should not be canonical");
3229       addDependence(TypeDependence::DependentInstantiation);
3230     }
3231   } else if (getCanonicalTypeInternal()->isDependentType()) {
3232     // Ask our canonical type whether our exception specification was dependent.
3233     addDependence(TypeDependence::DependentInstantiation);
3234   }
3235 
3236   // Fill in the extra parameter info if present.
3237   if (epi.ExtParameterInfos) {
3238     auto *extParamInfos = getTrailingObjects<ExtParameterInfo>();
3239     for (unsigned i = 0; i != getNumParams(); ++i)
3240       extParamInfos[i] = epi.ExtParameterInfos[i];
3241   }
3242 
3243   if (epi.TypeQuals.hasNonFastQualifiers()) {
3244     FunctionTypeBits.HasExtQuals = 1;
3245     *getTrailingObjects<Qualifiers>() = epi.TypeQuals;
3246   } else {
3247     FunctionTypeBits.HasExtQuals = 0;
3248   }
3249 
3250   // Fill in the Ellipsis location info if present.
3251   if (epi.Variadic) {
3252     auto &EllipsisLoc = *getTrailingObjects<SourceLocation>();
3253     EllipsisLoc = epi.EllipsisLoc;
3254   }
3255 }
3256 
3257 bool FunctionProtoType::hasDependentExceptionSpec() const {
3258   if (Expr *NE = getNoexceptExpr())
3259     return NE->isValueDependent();
3260   for (QualType ET : exceptions())
3261     // A pack expansion with a non-dependent pattern is still dependent,
3262     // because we don't know whether the pattern is in the exception spec
3263     // or not (that depends on whether the pack has 0 expansions).
3264     if (ET->isDependentType() || ET->getAs<PackExpansionType>())
3265       return true;
3266   return false;
3267 }
3268 
3269 bool FunctionProtoType::hasInstantiationDependentExceptionSpec() const {
3270   if (Expr *NE = getNoexceptExpr())
3271     return NE->isInstantiationDependent();
3272   for (QualType ET : exceptions())
3273     if (ET->isInstantiationDependentType())
3274       return true;
3275   return false;
3276 }
3277 
3278 CanThrowResult FunctionProtoType::canThrow() const {
3279   switch (getExceptionSpecType()) {
3280   case EST_Unparsed:
3281   case EST_Unevaluated:
3282   case EST_Uninstantiated:
3283     llvm_unreachable("should not call this with unresolved exception specs");
3284 
3285   case EST_DynamicNone:
3286   case EST_BasicNoexcept:
3287   case EST_NoexceptTrue:
3288   case EST_NoThrow:
3289     return CT_Cannot;
3290 
3291   case EST_None:
3292   case EST_MSAny:
3293   case EST_NoexceptFalse:
3294     return CT_Can;
3295 
3296   case EST_Dynamic:
3297     // A dynamic exception specification is throwing unless every exception
3298     // type is an (unexpanded) pack expansion type.
3299     for (unsigned I = 0; I != getNumExceptions(); ++I)
3300       if (!getExceptionType(I)->getAs<PackExpansionType>())
3301         return CT_Can;
3302     return CT_Dependent;
3303 
3304   case EST_DependentNoexcept:
3305     return CT_Dependent;
3306   }
3307 
3308   llvm_unreachable("unexpected exception specification kind");
3309 }
3310 
3311 bool FunctionProtoType::isTemplateVariadic() const {
3312   for (unsigned ArgIdx = getNumParams(); ArgIdx; --ArgIdx)
3313     if (isa<PackExpansionType>(getParamType(ArgIdx - 1)))
3314       return true;
3315 
3316   return false;
3317 }
3318 
3319 void FunctionProtoType::Profile(llvm::FoldingSetNodeID &ID, QualType Result,
3320                                 const QualType *ArgTys, unsigned NumParams,
3321                                 const ExtProtoInfo &epi,
3322                                 const ASTContext &Context, bool Canonical) {
3323   // We have to be careful not to get ambiguous profile encodings.
3324   // Note that valid type pointers are never ambiguous with anything else.
3325   //
3326   // The encoding grammar begins:
3327   //      type type* bool int bool
3328   // If that final bool is true, then there is a section for the EH spec:
3329   //      bool type*
3330   // This is followed by an optional "consumed argument" section of the
3331   // same length as the first type sequence:
3332   //      bool*
3333   // Finally, we have the ext info and trailing return type flag:
3334   //      int bool
3335   //
3336   // There is no ambiguity between the consumed arguments and an empty EH
3337   // spec because of the leading 'bool' which unambiguously indicates
3338   // whether the following bool is the EH spec or part of the arguments.
3339 
3340   ID.AddPointer(Result.getAsOpaquePtr());
3341   for (unsigned i = 0; i != NumParams; ++i)
3342     ID.AddPointer(ArgTys[i].getAsOpaquePtr());
3343   // This method is relatively performance sensitive, so as a performance
3344   // shortcut, use one AddInteger call instead of four for the next four
3345   // fields.
3346   assert(!(unsigned(epi.Variadic) & ~1) &&
3347          !(unsigned(epi.RefQualifier) & ~3) &&
3348          !(unsigned(epi.ExceptionSpec.Type) & ~15) &&
3349          "Values larger than expected.");
3350   ID.AddInteger(unsigned(epi.Variadic) +
3351                 (epi.RefQualifier << 1) +
3352                 (epi.ExceptionSpec.Type << 3));
3353   ID.Add(epi.TypeQuals);
3354   if (epi.ExceptionSpec.Type == EST_Dynamic) {
3355     for (QualType Ex : epi.ExceptionSpec.Exceptions)
3356       ID.AddPointer(Ex.getAsOpaquePtr());
3357   } else if (isComputedNoexcept(epi.ExceptionSpec.Type)) {
3358     epi.ExceptionSpec.NoexceptExpr->Profile(ID, Context, Canonical);
3359   } else if (epi.ExceptionSpec.Type == EST_Uninstantiated ||
3360              epi.ExceptionSpec.Type == EST_Unevaluated) {
3361     ID.AddPointer(epi.ExceptionSpec.SourceDecl->getCanonicalDecl());
3362   }
3363   if (epi.ExtParameterInfos) {
3364     for (unsigned i = 0; i != NumParams; ++i)
3365       ID.AddInteger(epi.ExtParameterInfos[i].getOpaqueValue());
3366   }
3367   epi.ExtInfo.Profile(ID);
3368   ID.AddBoolean(epi.HasTrailingReturn);
3369 }
3370 
3371 void FunctionProtoType::Profile(llvm::FoldingSetNodeID &ID,
3372                                 const ASTContext &Ctx) {
3373   Profile(ID, getReturnType(), param_type_begin(), getNumParams(),
3374           getExtProtoInfo(), Ctx, isCanonicalUnqualified());
3375 }
3376 
3377 TypedefType::TypedefType(TypeClass tc, const TypedefNameDecl *D, QualType can)
3378     : Type(tc, can, D->getUnderlyingType()->getDependence()),
3379       Decl(const_cast<TypedefNameDecl *>(D)) {
3380   assert(!isa<TypedefType>(can) && "Invalid canonical type");
3381 }
3382 
3383 QualType TypedefType::desugar() const {
3384   return getDecl()->getUnderlyingType();
3385 }
3386 
3387 QualType MacroQualifiedType::desugar() const { return getUnderlyingType(); }
3388 
3389 QualType MacroQualifiedType::getModifiedType() const {
3390   // Step over MacroQualifiedTypes from the same macro to find the type
3391   // ultimately qualified by the macro qualifier.
3392   QualType Inner = cast<AttributedType>(getUnderlyingType())->getModifiedType();
3393   while (auto *InnerMQT = dyn_cast<MacroQualifiedType>(Inner)) {
3394     if (InnerMQT->getMacroIdentifier() != getMacroIdentifier())
3395       break;
3396     Inner = InnerMQT->getModifiedType();
3397   }
3398   return Inner;
3399 }
3400 
3401 TypeOfExprType::TypeOfExprType(Expr *E, QualType can)
3402     : Type(TypeOfExpr, can,
3403            toTypeDependence(E->getDependence()) |
3404                (E->getType()->getDependence() &
3405                 TypeDependence::VariablyModified)),
3406       TOExpr(E) {}
3407 
3408 bool TypeOfExprType::isSugared() const {
3409   return !TOExpr->isTypeDependent();
3410 }
3411 
3412 QualType TypeOfExprType::desugar() const {
3413   if (isSugared())
3414     return getUnderlyingExpr()->getType();
3415 
3416   return QualType(this, 0);
3417 }
3418 
3419 void DependentTypeOfExprType::Profile(llvm::FoldingSetNodeID &ID,
3420                                       const ASTContext &Context, Expr *E) {
3421   E->Profile(ID, Context, true);
3422 }
3423 
3424 DecltypeType::DecltypeType(Expr *E, QualType underlyingType, QualType can)
3425     // C++11 [temp.type]p2: "If an expression e involves a template parameter,
3426     // decltype(e) denotes a unique dependent type." Hence a decltype type is
3427     // type-dependent even if its expression is only instantiation-dependent.
3428     : Type(Decltype, can,
3429            toTypeDependence(E->getDependence()) |
3430                (E->isInstantiationDependent() ? TypeDependence::Dependent
3431                                               : TypeDependence::None) |
3432                (E->getType()->getDependence() &
3433                 TypeDependence::VariablyModified)),
3434       E(E), UnderlyingType(underlyingType) {}
3435 
3436 bool DecltypeType::isSugared() const { return !E->isInstantiationDependent(); }
3437 
3438 QualType DecltypeType::desugar() const {
3439   if (isSugared())
3440     return getUnderlyingType();
3441 
3442   return QualType(this, 0);
3443 }
3444 
3445 DependentDecltypeType::DependentDecltypeType(const ASTContext &Context, Expr *E)
3446     : DecltypeType(E, Context.DependentTy), Context(Context) {}
3447 
3448 void DependentDecltypeType::Profile(llvm::FoldingSetNodeID &ID,
3449                                     const ASTContext &Context, Expr *E) {
3450   E->Profile(ID, Context, true);
3451 }
3452 
3453 UnaryTransformType::UnaryTransformType(QualType BaseType,
3454                                        QualType UnderlyingType, UTTKind UKind,
3455                                        QualType CanonicalType)
3456     : Type(UnaryTransform, CanonicalType, BaseType->getDependence()),
3457       BaseType(BaseType), UnderlyingType(UnderlyingType), UKind(UKind) {}
3458 
3459 DependentUnaryTransformType::DependentUnaryTransformType(const ASTContext &C,
3460                                                          QualType BaseType,
3461                                                          UTTKind UKind)
3462      : UnaryTransformType(BaseType, C.DependentTy, UKind, QualType()) {}
3463 
3464 TagType::TagType(TypeClass TC, const TagDecl *D, QualType can)
3465     : Type(TC, can,
3466            D->isDependentType() ? TypeDependence::DependentInstantiation
3467                                 : TypeDependence::None),
3468       decl(const_cast<TagDecl *>(D)) {}
3469 
3470 static TagDecl *getInterestingTagDecl(TagDecl *decl) {
3471   for (auto I : decl->redecls()) {
3472     if (I->isCompleteDefinition() || I->isBeingDefined())
3473       return I;
3474   }
3475   // If there's no definition (not even in progress), return what we have.
3476   return decl;
3477 }
3478 
3479 TagDecl *TagType::getDecl() const {
3480   return getInterestingTagDecl(decl);
3481 }
3482 
3483 bool TagType::isBeingDefined() const {
3484   return getDecl()->isBeingDefined();
3485 }
3486 
3487 bool RecordType::hasConstFields() const {
3488   std::vector<const RecordType*> RecordTypeList;
3489   RecordTypeList.push_back(this);
3490   unsigned NextToCheckIndex = 0;
3491 
3492   while (RecordTypeList.size() > NextToCheckIndex) {
3493     for (FieldDecl *FD :
3494          RecordTypeList[NextToCheckIndex]->getDecl()->fields()) {
3495       QualType FieldTy = FD->getType();
3496       if (FieldTy.isConstQualified())
3497         return true;
3498       FieldTy = FieldTy.getCanonicalType();
3499       if (const auto *FieldRecTy = FieldTy->getAs<RecordType>()) {
3500         if (llvm::find(RecordTypeList, FieldRecTy) == RecordTypeList.end())
3501           RecordTypeList.push_back(FieldRecTy);
3502       }
3503     }
3504     ++NextToCheckIndex;
3505   }
3506   return false;
3507 }
3508 
3509 bool AttributedType::isQualifier() const {
3510   // FIXME: Generate this with TableGen.
3511   switch (getAttrKind()) {
3512   // These are type qualifiers in the traditional C sense: they annotate
3513   // something about a specific value/variable of a type.  (They aren't
3514   // always part of the canonical type, though.)
3515   case attr::ObjCGC:
3516   case attr::ObjCOwnership:
3517   case attr::ObjCInertUnsafeUnretained:
3518   case attr::TypeNonNull:
3519   case attr::TypeNullable:
3520   case attr::TypeNullUnspecified:
3521   case attr::LifetimeBound:
3522   case attr::AddressSpace:
3523     return true;
3524 
3525   // All other type attributes aren't qualifiers; they rewrite the modified
3526   // type to be a semantically different type.
3527   default:
3528     return false;
3529   }
3530 }
3531 
3532 bool AttributedType::isMSTypeSpec() const {
3533   // FIXME: Generate this with TableGen?
3534   switch (getAttrKind()) {
3535   default: return false;
3536   case attr::Ptr32:
3537   case attr::Ptr64:
3538   case attr::SPtr:
3539   case attr::UPtr:
3540     return true;
3541   }
3542   llvm_unreachable("invalid attr kind");
3543 }
3544 
3545 bool AttributedType::isCallingConv() const {
3546   // FIXME: Generate this with TableGen.
3547   switch (getAttrKind()) {
3548   default: return false;
3549   case attr::Pcs:
3550   case attr::CDecl:
3551   case attr::FastCall:
3552   case attr::StdCall:
3553   case attr::ThisCall:
3554   case attr::RegCall:
3555   case attr::SwiftCall:
3556   case attr::VectorCall:
3557   case attr::AArch64VectorPcs:
3558   case attr::Pascal:
3559   case attr::MSABI:
3560   case attr::SysVABI:
3561   case attr::IntelOclBicc:
3562   case attr::PreserveMost:
3563   case attr::PreserveAll:
3564     return true;
3565   }
3566   llvm_unreachable("invalid attr kind");
3567 }
3568 
3569 CXXRecordDecl *InjectedClassNameType::getDecl() const {
3570   return cast<CXXRecordDecl>(getInterestingTagDecl(Decl));
3571 }
3572 
3573 IdentifierInfo *TemplateTypeParmType::getIdentifier() const {
3574   return isCanonicalUnqualified() ? nullptr : getDecl()->getIdentifier();
3575 }
3576 
3577 SubstTemplateTypeParmPackType::SubstTemplateTypeParmPackType(
3578     const TemplateTypeParmType *Param, QualType Canon,
3579     const TemplateArgument &ArgPack)
3580     : Type(SubstTemplateTypeParmPack, Canon,
3581            TypeDependence::DependentInstantiation |
3582                TypeDependence::UnexpandedPack),
3583       Replaced(Param), Arguments(ArgPack.pack_begin()) {
3584   SubstTemplateTypeParmPackTypeBits.NumArgs = ArgPack.pack_size();
3585 }
3586 
3587 TemplateArgument SubstTemplateTypeParmPackType::getArgumentPack() const {
3588   return TemplateArgument(llvm::makeArrayRef(Arguments, getNumArgs()));
3589 }
3590 
3591 void SubstTemplateTypeParmPackType::Profile(llvm::FoldingSetNodeID &ID) {
3592   Profile(ID, getReplacedParameter(), getArgumentPack());
3593 }
3594 
3595 void SubstTemplateTypeParmPackType::Profile(llvm::FoldingSetNodeID &ID,
3596                                            const TemplateTypeParmType *Replaced,
3597                                             const TemplateArgument &ArgPack) {
3598   ID.AddPointer(Replaced);
3599   ID.AddInteger(ArgPack.pack_size());
3600   for (const auto &P : ArgPack.pack_elements())
3601     ID.AddPointer(P.getAsType().getAsOpaquePtr());
3602 }
3603 
3604 bool TemplateSpecializationType::
3605 anyDependentTemplateArguments(const TemplateArgumentListInfo &Args,
3606                               bool &InstantiationDependent) {
3607   return anyDependentTemplateArguments(Args.arguments(),
3608                                        InstantiationDependent);
3609 }
3610 
3611 bool TemplateSpecializationType::
3612 anyDependentTemplateArguments(ArrayRef<TemplateArgumentLoc> Args,
3613                               bool &InstantiationDependent) {
3614   for (const TemplateArgumentLoc &ArgLoc : Args) {
3615     if (ArgLoc.getArgument().isDependent()) {
3616       InstantiationDependent = true;
3617       return true;
3618     }
3619 
3620     if (ArgLoc.getArgument().isInstantiationDependent())
3621       InstantiationDependent = true;
3622   }
3623   return false;
3624 }
3625 
3626 TemplateSpecializationType::TemplateSpecializationType(
3627     TemplateName T, ArrayRef<TemplateArgument> Args, QualType Canon,
3628     QualType AliasedType)
3629     : Type(TemplateSpecialization, Canon.isNull() ? QualType(this, 0) : Canon,
3630            (Canon.isNull()
3631                 ? TypeDependence::DependentInstantiation
3632                 : Canon->getDependence() & ~(TypeDependence::VariablyModified |
3633                                              TypeDependence::UnexpandedPack)) |
3634                (toTypeDependence(T.getDependence()) &
3635                 TypeDependence::UnexpandedPack)),
3636       Template(T) {
3637   TemplateSpecializationTypeBits.NumArgs = Args.size();
3638   TemplateSpecializationTypeBits.TypeAlias = !AliasedType.isNull();
3639 
3640   assert(!T.getAsDependentTemplateName() &&
3641          "Use DependentTemplateSpecializationType for dependent template-name");
3642   assert((T.getKind() == TemplateName::Template ||
3643           T.getKind() == TemplateName::SubstTemplateTemplateParm ||
3644           T.getKind() == TemplateName::SubstTemplateTemplateParmPack) &&
3645          "Unexpected template name for TemplateSpecializationType");
3646 
3647   auto *TemplateArgs = reinterpret_cast<TemplateArgument *>(this + 1);
3648   for (const TemplateArgument &Arg : Args) {
3649     // Update instantiation-dependent, variably-modified, and error bits.
3650     // If the canonical type exists and is non-dependent, the template
3651     // specialization type can be non-dependent even if one of the type
3652     // arguments is. Given:
3653     //   template<typename T> using U = int;
3654     // U<T> is always non-dependent, irrespective of the type T.
3655     // However, U<Ts> contains an unexpanded parameter pack, even though
3656     // its expansion (and thus its desugared type) doesn't.
3657     addDependence(toTypeDependence(Arg.getDependence()) &
3658                   ~TypeDependence::Dependent);
3659     if (Arg.getKind() == TemplateArgument::Type)
3660       addDependence(Arg.getAsType()->getDependence() &
3661                     TypeDependence::VariablyModified);
3662     new (TemplateArgs++) TemplateArgument(Arg);
3663   }
3664 
3665   // Store the aliased type if this is a type alias template specialization.
3666   if (isTypeAlias()) {
3667     auto *Begin = reinterpret_cast<TemplateArgument *>(this + 1);
3668     *reinterpret_cast<QualType*>(Begin + getNumArgs()) = AliasedType;
3669   }
3670 }
3671 
3672 void
3673 TemplateSpecializationType::Profile(llvm::FoldingSetNodeID &ID,
3674                                     TemplateName T,
3675                                     ArrayRef<TemplateArgument> Args,
3676                                     const ASTContext &Context) {
3677   T.Profile(ID);
3678   for (const TemplateArgument &Arg : Args)
3679     Arg.Profile(ID, Context);
3680 }
3681 
3682 QualType
3683 QualifierCollector::apply(const ASTContext &Context, QualType QT) const {
3684   if (!hasNonFastQualifiers())
3685     return QT.withFastQualifiers(getFastQualifiers());
3686 
3687   return Context.getQualifiedType(QT, *this);
3688 }
3689 
3690 QualType
3691 QualifierCollector::apply(const ASTContext &Context, const Type *T) const {
3692   if (!hasNonFastQualifiers())
3693     return QualType(T, getFastQualifiers());
3694 
3695   return Context.getQualifiedType(T, *this);
3696 }
3697 
3698 void ObjCObjectTypeImpl::Profile(llvm::FoldingSetNodeID &ID,
3699                                  QualType BaseType,
3700                                  ArrayRef<QualType> typeArgs,
3701                                  ArrayRef<ObjCProtocolDecl *> protocols,
3702                                  bool isKindOf) {
3703   ID.AddPointer(BaseType.getAsOpaquePtr());
3704   ID.AddInteger(typeArgs.size());
3705   for (auto typeArg : typeArgs)
3706     ID.AddPointer(typeArg.getAsOpaquePtr());
3707   ID.AddInteger(protocols.size());
3708   for (auto proto : protocols)
3709     ID.AddPointer(proto);
3710   ID.AddBoolean(isKindOf);
3711 }
3712 
3713 void ObjCObjectTypeImpl::Profile(llvm::FoldingSetNodeID &ID) {
3714   Profile(ID, getBaseType(), getTypeArgsAsWritten(),
3715           llvm::makeArrayRef(qual_begin(), getNumProtocols()),
3716           isKindOfTypeAsWritten());
3717 }
3718 
3719 void ObjCTypeParamType::Profile(llvm::FoldingSetNodeID &ID,
3720                                 const ObjCTypeParamDecl *OTPDecl,
3721                                 QualType CanonicalType,
3722                                 ArrayRef<ObjCProtocolDecl *> protocols) {
3723   ID.AddPointer(OTPDecl);
3724   ID.AddPointer(CanonicalType.getAsOpaquePtr());
3725   ID.AddInteger(protocols.size());
3726   for (auto proto : protocols)
3727     ID.AddPointer(proto);
3728 }
3729 
3730 void ObjCTypeParamType::Profile(llvm::FoldingSetNodeID &ID) {
3731   Profile(ID, getDecl(), getCanonicalTypeInternal(),
3732           llvm::makeArrayRef(qual_begin(), getNumProtocols()));
3733 }
3734 
3735 namespace {
3736 
3737 /// The cached properties of a type.
3738 class CachedProperties {
3739   Linkage L;
3740   bool local;
3741 
3742 public:
3743   CachedProperties(Linkage L, bool local) : L(L), local(local) {}
3744 
3745   Linkage getLinkage() const { return L; }
3746   bool hasLocalOrUnnamedType() const { return local; }
3747 
3748   friend CachedProperties merge(CachedProperties L, CachedProperties R) {
3749     Linkage MergedLinkage = minLinkage(L.L, R.L);
3750     return CachedProperties(MergedLinkage,
3751                          L.hasLocalOrUnnamedType() | R.hasLocalOrUnnamedType());
3752   }
3753 };
3754 
3755 } // namespace
3756 
3757 static CachedProperties computeCachedProperties(const Type *T);
3758 
3759 namespace clang {
3760 
3761 /// The type-property cache.  This is templated so as to be
3762 /// instantiated at an internal type to prevent unnecessary symbol
3763 /// leakage.
3764 template <class Private> class TypePropertyCache {
3765 public:
3766   static CachedProperties get(QualType T) {
3767     return get(T.getTypePtr());
3768   }
3769 
3770   static CachedProperties get(const Type *T) {
3771     ensure(T);
3772     return CachedProperties(T->TypeBits.getLinkage(),
3773                             T->TypeBits.hasLocalOrUnnamedType());
3774   }
3775 
3776   static void ensure(const Type *T) {
3777     // If the cache is valid, we're okay.
3778     if (T->TypeBits.isCacheValid()) return;
3779 
3780     // If this type is non-canonical, ask its canonical type for the
3781     // relevant information.
3782     if (!T->isCanonicalUnqualified()) {
3783       const Type *CT = T->getCanonicalTypeInternal().getTypePtr();
3784       ensure(CT);
3785       T->TypeBits.CacheValid = true;
3786       T->TypeBits.CachedLinkage = CT->TypeBits.CachedLinkage;
3787       T->TypeBits.CachedLocalOrUnnamed = CT->TypeBits.CachedLocalOrUnnamed;
3788       return;
3789     }
3790 
3791     // Compute the cached properties and then set the cache.
3792     CachedProperties Result = computeCachedProperties(T);
3793     T->TypeBits.CacheValid = true;
3794     T->TypeBits.CachedLinkage = Result.getLinkage();
3795     T->TypeBits.CachedLocalOrUnnamed = Result.hasLocalOrUnnamedType();
3796   }
3797 };
3798 
3799 } // namespace clang
3800 
3801 // Instantiate the friend template at a private class.  In a
3802 // reasonable implementation, these symbols will be internal.
3803 // It is terrible that this is the best way to accomplish this.
3804 namespace {
3805 
3806 class Private {};
3807 
3808 } // namespace
3809 
3810 using Cache = TypePropertyCache<Private>;
3811 
3812 static CachedProperties computeCachedProperties(const Type *T) {
3813   switch (T->getTypeClass()) {
3814 #define TYPE(Class,Base)
3815 #define NON_CANONICAL_TYPE(Class,Base) case Type::Class:
3816 #include "clang/AST/TypeNodes.inc"
3817     llvm_unreachable("didn't expect a non-canonical type here");
3818 
3819 #define TYPE(Class,Base)
3820 #define DEPENDENT_TYPE(Class,Base) case Type::Class:
3821 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class,Base) case Type::Class:
3822 #include "clang/AST/TypeNodes.inc"
3823     // Treat instantiation-dependent types as external.
3824     if (!T->isInstantiationDependentType()) T->dump();
3825     assert(T->isInstantiationDependentType());
3826     return CachedProperties(ExternalLinkage, false);
3827 
3828   case Type::Auto:
3829   case Type::DeducedTemplateSpecialization:
3830     // Give non-deduced 'auto' types external linkage. We should only see them
3831     // here in error recovery.
3832     return CachedProperties(ExternalLinkage, false);
3833 
3834   case Type::ExtInt:
3835   case Type::Builtin:
3836     // C++ [basic.link]p8:
3837     //   A type is said to have linkage if and only if:
3838     //     - it is a fundamental type (3.9.1); or
3839     return CachedProperties(ExternalLinkage, false);
3840 
3841   case Type::Record:
3842   case Type::Enum: {
3843     const TagDecl *Tag = cast<TagType>(T)->getDecl();
3844 
3845     // C++ [basic.link]p8:
3846     //     - it is a class or enumeration type that is named (or has a name
3847     //       for linkage purposes (7.1.3)) and the name has linkage; or
3848     //     -  it is a specialization of a class template (14); or
3849     Linkage L = Tag->getLinkageInternal();
3850     bool IsLocalOrUnnamed =
3851       Tag->getDeclContext()->isFunctionOrMethod() ||
3852       !Tag->hasNameForLinkage();
3853     return CachedProperties(L, IsLocalOrUnnamed);
3854   }
3855 
3856     // C++ [basic.link]p8:
3857     //   - it is a compound type (3.9.2) other than a class or enumeration,
3858     //     compounded exclusively from types that have linkage; or
3859   case Type::Complex:
3860     return Cache::get(cast<ComplexType>(T)->getElementType());
3861   case Type::Pointer:
3862     return Cache::get(cast<PointerType>(T)->getPointeeType());
3863   case Type::BlockPointer:
3864     return Cache::get(cast<BlockPointerType>(T)->getPointeeType());
3865   case Type::LValueReference:
3866   case Type::RValueReference:
3867     return Cache::get(cast<ReferenceType>(T)->getPointeeType());
3868   case Type::MemberPointer: {
3869     const auto *MPT = cast<MemberPointerType>(T);
3870     return merge(Cache::get(MPT->getClass()),
3871                  Cache::get(MPT->getPointeeType()));
3872   }
3873   case Type::ConstantArray:
3874   case Type::IncompleteArray:
3875   case Type::VariableArray:
3876     return Cache::get(cast<ArrayType>(T)->getElementType());
3877   case Type::Vector:
3878   case Type::ExtVector:
3879     return Cache::get(cast<VectorType>(T)->getElementType());
3880   case Type::ConstantMatrix:
3881     return Cache::get(cast<ConstantMatrixType>(T)->getElementType());
3882   case Type::FunctionNoProto:
3883     return Cache::get(cast<FunctionType>(T)->getReturnType());
3884   case Type::FunctionProto: {
3885     const auto *FPT = cast<FunctionProtoType>(T);
3886     CachedProperties result = Cache::get(FPT->getReturnType());
3887     for (const auto &ai : FPT->param_types())
3888       result = merge(result, Cache::get(ai));
3889     return result;
3890   }
3891   case Type::ObjCInterface: {
3892     Linkage L = cast<ObjCInterfaceType>(T)->getDecl()->getLinkageInternal();
3893     return CachedProperties(L, false);
3894   }
3895   case Type::ObjCObject:
3896     return Cache::get(cast<ObjCObjectType>(T)->getBaseType());
3897   case Type::ObjCObjectPointer:
3898     return Cache::get(cast<ObjCObjectPointerType>(T)->getPointeeType());
3899   case Type::Atomic:
3900     return Cache::get(cast<AtomicType>(T)->getValueType());
3901   case Type::Pipe:
3902     return Cache::get(cast<PipeType>(T)->getElementType());
3903   }
3904 
3905   llvm_unreachable("unhandled type class");
3906 }
3907 
3908 /// Determine the linkage of this type.
3909 Linkage Type::getLinkage() const {
3910   Cache::ensure(this);
3911   return TypeBits.getLinkage();
3912 }
3913 
3914 bool Type::hasUnnamedOrLocalType() const {
3915   Cache::ensure(this);
3916   return TypeBits.hasLocalOrUnnamedType();
3917 }
3918 
3919 LinkageInfo LinkageComputer::computeTypeLinkageInfo(const Type *T) {
3920   switch (T->getTypeClass()) {
3921 #define TYPE(Class,Base)
3922 #define NON_CANONICAL_TYPE(Class,Base) case Type::Class:
3923 #include "clang/AST/TypeNodes.inc"
3924     llvm_unreachable("didn't expect a non-canonical type here");
3925 
3926 #define TYPE(Class,Base)
3927 #define DEPENDENT_TYPE(Class,Base) case Type::Class:
3928 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class,Base) case Type::Class:
3929 #include "clang/AST/TypeNodes.inc"
3930     // Treat instantiation-dependent types as external.
3931     assert(T->isInstantiationDependentType());
3932     return LinkageInfo::external();
3933 
3934   case Type::ExtInt:
3935   case Type::Builtin:
3936     return LinkageInfo::external();
3937 
3938   case Type::Auto:
3939   case Type::DeducedTemplateSpecialization:
3940     return LinkageInfo::external();
3941 
3942   case Type::Record:
3943   case Type::Enum:
3944     return getDeclLinkageAndVisibility(cast<TagType>(T)->getDecl());
3945 
3946   case Type::Complex:
3947     return computeTypeLinkageInfo(cast<ComplexType>(T)->getElementType());
3948   case Type::Pointer:
3949     return computeTypeLinkageInfo(cast<PointerType>(T)->getPointeeType());
3950   case Type::BlockPointer:
3951     return computeTypeLinkageInfo(cast<BlockPointerType>(T)->getPointeeType());
3952   case Type::LValueReference:
3953   case Type::RValueReference:
3954     return computeTypeLinkageInfo(cast<ReferenceType>(T)->getPointeeType());
3955   case Type::MemberPointer: {
3956     const auto *MPT = cast<MemberPointerType>(T);
3957     LinkageInfo LV = computeTypeLinkageInfo(MPT->getClass());
3958     LV.merge(computeTypeLinkageInfo(MPT->getPointeeType()));
3959     return LV;
3960   }
3961   case Type::ConstantArray:
3962   case Type::IncompleteArray:
3963   case Type::VariableArray:
3964     return computeTypeLinkageInfo(cast<ArrayType>(T)->getElementType());
3965   case Type::Vector:
3966   case Type::ExtVector:
3967     return computeTypeLinkageInfo(cast<VectorType>(T)->getElementType());
3968   case Type::ConstantMatrix:
3969     return computeTypeLinkageInfo(
3970         cast<ConstantMatrixType>(T)->getElementType());
3971   case Type::FunctionNoProto:
3972     return computeTypeLinkageInfo(cast<FunctionType>(T)->getReturnType());
3973   case Type::FunctionProto: {
3974     const auto *FPT = cast<FunctionProtoType>(T);
3975     LinkageInfo LV = computeTypeLinkageInfo(FPT->getReturnType());
3976     for (const auto &ai : FPT->param_types())
3977       LV.merge(computeTypeLinkageInfo(ai));
3978     return LV;
3979   }
3980   case Type::ObjCInterface:
3981     return getDeclLinkageAndVisibility(cast<ObjCInterfaceType>(T)->getDecl());
3982   case Type::ObjCObject:
3983     return computeTypeLinkageInfo(cast<ObjCObjectType>(T)->getBaseType());
3984   case Type::ObjCObjectPointer:
3985     return computeTypeLinkageInfo(
3986         cast<ObjCObjectPointerType>(T)->getPointeeType());
3987   case Type::Atomic:
3988     return computeTypeLinkageInfo(cast<AtomicType>(T)->getValueType());
3989   case Type::Pipe:
3990     return computeTypeLinkageInfo(cast<PipeType>(T)->getElementType());
3991   }
3992 
3993   llvm_unreachable("unhandled type class");
3994 }
3995 
3996 bool Type::isLinkageValid() const {
3997   if (!TypeBits.isCacheValid())
3998     return true;
3999 
4000   Linkage L = LinkageComputer{}
4001                   .computeTypeLinkageInfo(getCanonicalTypeInternal())
4002                   .getLinkage();
4003   return L == TypeBits.getLinkage();
4004 }
4005 
4006 LinkageInfo LinkageComputer::getTypeLinkageAndVisibility(const Type *T) {
4007   if (!T->isCanonicalUnqualified())
4008     return computeTypeLinkageInfo(T->getCanonicalTypeInternal());
4009 
4010   LinkageInfo LV = computeTypeLinkageInfo(T);
4011   assert(LV.getLinkage() == T->getLinkage());
4012   return LV;
4013 }
4014 
4015 LinkageInfo Type::getLinkageAndVisibility() const {
4016   return LinkageComputer{}.getTypeLinkageAndVisibility(this);
4017 }
4018 
4019 Optional<NullabilityKind>
4020 Type::getNullability(const ASTContext &Context) const {
4021   QualType Type(this, 0);
4022   while (const auto *AT = Type->getAs<AttributedType>()) {
4023     // Check whether this is an attributed type with nullability
4024     // information.
4025     if (auto Nullability = AT->getImmediateNullability())
4026       return Nullability;
4027 
4028     Type = AT->getEquivalentType();
4029   }
4030   return None;
4031 }
4032 
4033 bool Type::canHaveNullability(bool ResultIfUnknown) const {
4034   QualType type = getCanonicalTypeInternal();
4035 
4036   switch (type->getTypeClass()) {
4037   // We'll only see canonical types here.
4038 #define NON_CANONICAL_TYPE(Class, Parent)       \
4039   case Type::Class:                             \
4040     llvm_unreachable("non-canonical type");
4041 #define TYPE(Class, Parent)
4042 #include "clang/AST/TypeNodes.inc"
4043 
4044   // Pointer types.
4045   case Type::Pointer:
4046   case Type::BlockPointer:
4047   case Type::MemberPointer:
4048   case Type::ObjCObjectPointer:
4049     return true;
4050 
4051   // Dependent types that could instantiate to pointer types.
4052   case Type::UnresolvedUsing:
4053   case Type::TypeOfExpr:
4054   case Type::TypeOf:
4055   case Type::Decltype:
4056   case Type::UnaryTransform:
4057   case Type::TemplateTypeParm:
4058   case Type::SubstTemplateTypeParmPack:
4059   case Type::DependentName:
4060   case Type::DependentTemplateSpecialization:
4061   case Type::Auto:
4062     return ResultIfUnknown;
4063 
4064   // Dependent template specializations can instantiate to pointer
4065   // types unless they're known to be specializations of a class
4066   // template.
4067   case Type::TemplateSpecialization:
4068     if (TemplateDecl *templateDecl
4069           = cast<TemplateSpecializationType>(type.getTypePtr())
4070               ->getTemplateName().getAsTemplateDecl()) {
4071       if (isa<ClassTemplateDecl>(templateDecl))
4072         return false;
4073     }
4074     return ResultIfUnknown;
4075 
4076   case Type::Builtin:
4077     switch (cast<BuiltinType>(type.getTypePtr())->getKind()) {
4078       // Signed, unsigned, and floating-point types cannot have nullability.
4079 #define SIGNED_TYPE(Id, SingletonId) case BuiltinType::Id:
4080 #define UNSIGNED_TYPE(Id, SingletonId) case BuiltinType::Id:
4081 #define FLOATING_TYPE(Id, SingletonId) case BuiltinType::Id:
4082 #define BUILTIN_TYPE(Id, SingletonId)
4083 #include "clang/AST/BuiltinTypes.def"
4084       return false;
4085 
4086     // Dependent types that could instantiate to a pointer type.
4087     case BuiltinType::Dependent:
4088     case BuiltinType::Overload:
4089     case BuiltinType::BoundMember:
4090     case BuiltinType::PseudoObject:
4091     case BuiltinType::UnknownAny:
4092     case BuiltinType::ARCUnbridgedCast:
4093       return ResultIfUnknown;
4094 
4095     case BuiltinType::Void:
4096     case BuiltinType::ObjCId:
4097     case BuiltinType::ObjCClass:
4098     case BuiltinType::ObjCSel:
4099 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
4100     case BuiltinType::Id:
4101 #include "clang/Basic/OpenCLImageTypes.def"
4102 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \
4103     case BuiltinType::Id:
4104 #include "clang/Basic/OpenCLExtensionTypes.def"
4105     case BuiltinType::OCLSampler:
4106     case BuiltinType::OCLEvent:
4107     case BuiltinType::OCLClkEvent:
4108     case BuiltinType::OCLQueue:
4109     case BuiltinType::OCLReserveID:
4110 #define SVE_TYPE(Name, Id, SingletonId) \
4111     case BuiltinType::Id:
4112 #include "clang/Basic/AArch64SVEACLETypes.def"
4113     case BuiltinType::BuiltinFn:
4114     case BuiltinType::NullPtr:
4115     case BuiltinType::IncompleteMatrixIdx:
4116     case BuiltinType::OMPArraySection:
4117     case BuiltinType::OMPArrayShaping:
4118     case BuiltinType::OMPIterator:
4119       return false;
4120     }
4121     llvm_unreachable("unknown builtin type");
4122 
4123   // Non-pointer types.
4124   case Type::Complex:
4125   case Type::LValueReference:
4126   case Type::RValueReference:
4127   case Type::ConstantArray:
4128   case Type::IncompleteArray:
4129   case Type::VariableArray:
4130   case Type::DependentSizedArray:
4131   case Type::DependentVector:
4132   case Type::DependentSizedExtVector:
4133   case Type::Vector:
4134   case Type::ExtVector:
4135   case Type::ConstantMatrix:
4136   case Type::DependentSizedMatrix:
4137   case Type::DependentAddressSpace:
4138   case Type::FunctionProto:
4139   case Type::FunctionNoProto:
4140   case Type::Record:
4141   case Type::DeducedTemplateSpecialization:
4142   case Type::Enum:
4143   case Type::InjectedClassName:
4144   case Type::PackExpansion:
4145   case Type::ObjCObject:
4146   case Type::ObjCInterface:
4147   case Type::Atomic:
4148   case Type::Pipe:
4149   case Type::ExtInt:
4150   case Type::DependentExtInt:
4151     return false;
4152   }
4153   llvm_unreachable("bad type kind!");
4154 }
4155 
4156 llvm::Optional<NullabilityKind>
4157 AttributedType::getImmediateNullability() const {
4158   if (getAttrKind() == attr::TypeNonNull)
4159     return NullabilityKind::NonNull;
4160   if (getAttrKind() == attr::TypeNullable)
4161     return NullabilityKind::Nullable;
4162   if (getAttrKind() == attr::TypeNullUnspecified)
4163     return NullabilityKind::Unspecified;
4164   return None;
4165 }
4166 
4167 Optional<NullabilityKind> AttributedType::stripOuterNullability(QualType &T) {
4168   QualType AttrTy = T;
4169   if (auto MacroTy = dyn_cast<MacroQualifiedType>(T))
4170     AttrTy = MacroTy->getUnderlyingType();
4171 
4172   if (auto attributed = dyn_cast<AttributedType>(AttrTy)) {
4173     if (auto nullability = attributed->getImmediateNullability()) {
4174       T = attributed->getModifiedType();
4175       return nullability;
4176     }
4177   }
4178 
4179   return None;
4180 }
4181 
4182 bool Type::isBlockCompatibleObjCPointerType(ASTContext &ctx) const {
4183   const auto *objcPtr = getAs<ObjCObjectPointerType>();
4184   if (!objcPtr)
4185     return false;
4186 
4187   if (objcPtr->isObjCIdType()) {
4188     // id is always okay.
4189     return true;
4190   }
4191 
4192   // Blocks are NSObjects.
4193   if (ObjCInterfaceDecl *iface = objcPtr->getInterfaceDecl()) {
4194     if (iface->getIdentifier() != ctx.getNSObjectName())
4195       return false;
4196 
4197     // Continue to check qualifiers, below.
4198   } else if (objcPtr->isObjCQualifiedIdType()) {
4199     // Continue to check qualifiers, below.
4200   } else {
4201     return false;
4202   }
4203 
4204   // Check protocol qualifiers.
4205   for (ObjCProtocolDecl *proto : objcPtr->quals()) {
4206     // Blocks conform to NSObject and NSCopying.
4207     if (proto->getIdentifier() != ctx.getNSObjectName() &&
4208         proto->getIdentifier() != ctx.getNSCopyingName())
4209       return false;
4210   }
4211 
4212   return true;
4213 }
4214 
4215 Qualifiers::ObjCLifetime Type::getObjCARCImplicitLifetime() const {
4216   if (isObjCARCImplicitlyUnretainedType())
4217     return Qualifiers::OCL_ExplicitNone;
4218   return Qualifiers::OCL_Strong;
4219 }
4220 
4221 bool Type::isObjCARCImplicitlyUnretainedType() const {
4222   assert(isObjCLifetimeType() &&
4223          "cannot query implicit lifetime for non-inferrable type");
4224 
4225   const Type *canon = getCanonicalTypeInternal().getTypePtr();
4226 
4227   // Walk down to the base type.  We don't care about qualifiers for this.
4228   while (const auto *array = dyn_cast<ArrayType>(canon))
4229     canon = array->getElementType().getTypePtr();
4230 
4231   if (const auto *opt = dyn_cast<ObjCObjectPointerType>(canon)) {
4232     // Class and Class<Protocol> don't require retention.
4233     if (opt->getObjectType()->isObjCClass())
4234       return true;
4235   }
4236 
4237   return false;
4238 }
4239 
4240 bool Type::isObjCNSObjectType() const {
4241   const Type *cur = this;
4242   while (true) {
4243     if (const auto *typedefType = dyn_cast<TypedefType>(cur))
4244       return typedefType->getDecl()->hasAttr<ObjCNSObjectAttr>();
4245 
4246     // Single-step desugar until we run out of sugar.
4247     QualType next = cur->getLocallyUnqualifiedSingleStepDesugaredType();
4248     if (next.getTypePtr() == cur) return false;
4249     cur = next.getTypePtr();
4250   }
4251 }
4252 
4253 bool Type::isObjCIndependentClassType() const {
4254   if (const auto *typedefType = dyn_cast<TypedefType>(this))
4255     return typedefType->getDecl()->hasAttr<ObjCIndependentClassAttr>();
4256   return false;
4257 }
4258 
4259 bool Type::isObjCRetainableType() const {
4260   return isObjCObjectPointerType() ||
4261          isBlockPointerType() ||
4262          isObjCNSObjectType();
4263 }
4264 
4265 bool Type::isObjCIndirectLifetimeType() const {
4266   if (isObjCLifetimeType())
4267     return true;
4268   if (const auto *OPT = getAs<PointerType>())
4269     return OPT->getPointeeType()->isObjCIndirectLifetimeType();
4270   if (const auto *Ref = getAs<ReferenceType>())
4271     return Ref->getPointeeType()->isObjCIndirectLifetimeType();
4272   if (const auto *MemPtr = getAs<MemberPointerType>())
4273     return MemPtr->getPointeeType()->isObjCIndirectLifetimeType();
4274   return false;
4275 }
4276 
4277 /// Returns true if objects of this type have lifetime semantics under
4278 /// ARC.
4279 bool Type::isObjCLifetimeType() const {
4280   const Type *type = this;
4281   while (const ArrayType *array = type->getAsArrayTypeUnsafe())
4282     type = array->getElementType().getTypePtr();
4283   return type->isObjCRetainableType();
4284 }
4285 
4286 /// Determine whether the given type T is a "bridgable" Objective-C type,
4287 /// which is either an Objective-C object pointer type or an
4288 bool Type::isObjCARCBridgableType() const {
4289   return isObjCObjectPointerType() || isBlockPointerType();
4290 }
4291 
4292 /// Determine whether the given type T is a "bridgeable" C type.
4293 bool Type::isCARCBridgableType() const {
4294   const auto *Pointer = getAs<PointerType>();
4295   if (!Pointer)
4296     return false;
4297 
4298   QualType Pointee = Pointer->getPointeeType();
4299   return Pointee->isVoidType() || Pointee->isRecordType();
4300 }
4301 
4302 /// Check if the specified type is the CUDA device builtin surface type.
4303 bool Type::isCUDADeviceBuiltinSurfaceType() const {
4304   if (const auto *RT = getAs<RecordType>())
4305     return RT->getDecl()->hasAttr<CUDADeviceBuiltinSurfaceTypeAttr>();
4306   return false;
4307 }
4308 
4309 /// Check if the specified type is the CUDA device builtin texture type.
4310 bool Type::isCUDADeviceBuiltinTextureType() const {
4311   if (const auto *RT = getAs<RecordType>())
4312     return RT->getDecl()->hasAttr<CUDADeviceBuiltinTextureTypeAttr>();
4313   return false;
4314 }
4315 
4316 bool Type::hasSizedVLAType() const {
4317   if (!isVariablyModifiedType()) return false;
4318 
4319   if (const auto *ptr = getAs<PointerType>())
4320     return ptr->getPointeeType()->hasSizedVLAType();
4321   if (const auto *ref = getAs<ReferenceType>())
4322     return ref->getPointeeType()->hasSizedVLAType();
4323   if (const ArrayType *arr = getAsArrayTypeUnsafe()) {
4324     if (isa<VariableArrayType>(arr) &&
4325         cast<VariableArrayType>(arr)->getSizeExpr())
4326       return true;
4327 
4328     return arr->getElementType()->hasSizedVLAType();
4329   }
4330 
4331   return false;
4332 }
4333 
4334 QualType::DestructionKind QualType::isDestructedTypeImpl(QualType type) {
4335   switch (type.getObjCLifetime()) {
4336   case Qualifiers::OCL_None:
4337   case Qualifiers::OCL_ExplicitNone:
4338   case Qualifiers::OCL_Autoreleasing:
4339     break;
4340 
4341   case Qualifiers::OCL_Strong:
4342     return DK_objc_strong_lifetime;
4343   case Qualifiers::OCL_Weak:
4344     return DK_objc_weak_lifetime;
4345   }
4346 
4347   if (const auto *RT =
4348           type->getBaseElementTypeUnsafe()->getAs<RecordType>()) {
4349     const RecordDecl *RD = RT->getDecl();
4350     if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
4351       /// Check if this is a C++ object with a non-trivial destructor.
4352       if (CXXRD->hasDefinition() && !CXXRD->hasTrivialDestructor())
4353         return DK_cxx_destructor;
4354     } else {
4355       /// Check if this is a C struct that is non-trivial to destroy or an array
4356       /// that contains such a struct.
4357       if (RD->isNonTrivialToPrimitiveDestroy())
4358         return DK_nontrivial_c_struct;
4359     }
4360   }
4361 
4362   return DK_none;
4363 }
4364 
4365 CXXRecordDecl *MemberPointerType::getMostRecentCXXRecordDecl() const {
4366   return getClass()->getAsCXXRecordDecl()->getMostRecentNonInjectedDecl();
4367 }
4368 
4369 void clang::FixedPointValueToString(SmallVectorImpl<char> &Str,
4370                                     llvm::APSInt Val, unsigned Scale) {
4371   llvm::FixedPointSemantics FXSema(Val.getBitWidth(), Scale, Val.isSigned(),
4372                                    /*IsSaturated=*/false,
4373                                    /*HasUnsignedPadding=*/false);
4374   llvm::APFixedPoint(Val, FXSema).toString(Str);
4375 }
4376 
4377 AutoType::AutoType(QualType DeducedAsType, AutoTypeKeyword Keyword,
4378                    TypeDependence ExtraDependence,
4379                    ConceptDecl *TypeConstraintConcept,
4380                    ArrayRef<TemplateArgument> TypeConstraintArgs)
4381     : DeducedType(Auto, DeducedAsType, ExtraDependence) {
4382   AutoTypeBits.Keyword = (unsigned)Keyword;
4383   AutoTypeBits.NumArgs = TypeConstraintArgs.size();
4384   this->TypeConstraintConcept = TypeConstraintConcept;
4385   if (TypeConstraintConcept) {
4386     TemplateArgument *ArgBuffer = getArgBuffer();
4387     for (const TemplateArgument &Arg : TypeConstraintArgs) {
4388       addDependence(toTypeDependence(
4389           Arg.getDependence() & TemplateArgumentDependence::UnexpandedPack));
4390 
4391       new (ArgBuffer++) TemplateArgument(Arg);
4392     }
4393   }
4394 }
4395 
4396 void AutoType::Profile(llvm::FoldingSetNodeID &ID, const ASTContext &Context,
4397                       QualType Deduced, AutoTypeKeyword Keyword,
4398                       bool IsDependent, ConceptDecl *CD,
4399                       ArrayRef<TemplateArgument> Arguments) {
4400   ID.AddPointer(Deduced.getAsOpaquePtr());
4401   ID.AddInteger((unsigned)Keyword);
4402   ID.AddBoolean(IsDependent);
4403   ID.AddPointer(CD);
4404   for (const TemplateArgument &Arg : Arguments)
4405     Arg.Profile(ID, Context);
4406 }
4407