1 //===--- SemaType.cpp - Semantic Analysis for Types -----------------------===//
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 semantic analysis.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "TypeLocBuilder.h"
14 #include "clang/AST/ASTConsumer.h"
15 #include "clang/AST/ASTContext.h"
16 #include "clang/AST/ASTMutationListener.h"
17 #include "clang/AST/ASTStructuralEquivalence.h"
18 #include "clang/AST/CXXInheritance.h"
19 #include "clang/AST/DeclObjC.h"
20 #include "clang/AST/DeclTemplate.h"
21 #include "clang/AST/Expr.h"
22 #include "clang/AST/TypeLoc.h"
23 #include "clang/AST/TypeLocVisitor.h"
24 #include "clang/Basic/PartialDiagnostic.h"
25 #include "clang/Basic/TargetInfo.h"
26 #include "clang/Lex/Preprocessor.h"
27 #include "clang/Sema/DeclSpec.h"
28 #include "clang/Sema/DelayedDiagnostic.h"
29 #include "clang/Sema/Lookup.h"
30 #include "clang/Sema/ParsedTemplate.h"
31 #include "clang/Sema/ScopeInfo.h"
32 #include "clang/Sema/SemaInternal.h"
33 #include "clang/Sema/Template.h"
34 #include "clang/Sema/TemplateInstCallback.h"
35 #include "llvm/ADT/SmallPtrSet.h"
36 #include "llvm/ADT/SmallString.h"
37 #include "llvm/ADT/StringSwitch.h"
38 #include "llvm/IR/DerivedTypes.h"
39 #include "llvm/Support/ErrorHandling.h"
40 
41 using namespace clang;
42 
43 enum TypeDiagSelector {
44   TDS_Function,
45   TDS_Pointer,
46   TDS_ObjCObjOrBlock
47 };
48 
49 /// isOmittedBlockReturnType - Return true if this declarator is missing a
50 /// return type because this is a omitted return type on a block literal.
51 static bool isOmittedBlockReturnType(const Declarator &D) {
52   if (D.getContext() != DeclaratorContext::BlockLiteralContext ||
53       D.getDeclSpec().hasTypeSpecifier())
54     return false;
55 
56   if (D.getNumTypeObjects() == 0)
57     return true;   // ^{ ... }
58 
59   if (D.getNumTypeObjects() == 1 &&
60       D.getTypeObject(0).Kind == DeclaratorChunk::Function)
61     return true;   // ^(int X, float Y) { ... }
62 
63   return false;
64 }
65 
66 /// diagnoseBadTypeAttribute - Diagnoses a type attribute which
67 /// doesn't apply to the given type.
68 static void diagnoseBadTypeAttribute(Sema &S, const ParsedAttr &attr,
69                                      QualType type) {
70   TypeDiagSelector WhichType;
71   bool useExpansionLoc = true;
72   switch (attr.getKind()) {
73   case ParsedAttr::AT_ObjCGC:
74     WhichType = TDS_Pointer;
75     break;
76   case ParsedAttr::AT_ObjCOwnership:
77     WhichType = TDS_ObjCObjOrBlock;
78     break;
79   default:
80     // Assume everything else was a function attribute.
81     WhichType = TDS_Function;
82     useExpansionLoc = false;
83     break;
84   }
85 
86   SourceLocation loc = attr.getLoc();
87   StringRef name = attr.getAttrName()->getName();
88 
89   // The GC attributes are usually written with macros;  special-case them.
90   IdentifierInfo *II = attr.isArgIdent(0) ? attr.getArgAsIdent(0)->Ident
91                                           : nullptr;
92   if (useExpansionLoc && loc.isMacroID() && II) {
93     if (II->isStr("strong")) {
94       if (S.findMacroSpelling(loc, "__strong")) name = "__strong";
95     } else if (II->isStr("weak")) {
96       if (S.findMacroSpelling(loc, "__weak")) name = "__weak";
97     }
98   }
99 
100   S.Diag(loc, diag::warn_type_attribute_wrong_type) << name << WhichType
101     << type;
102 }
103 
104 // objc_gc applies to Objective-C pointers or, otherwise, to the
105 // smallest available pointer type (i.e. 'void*' in 'void**').
106 #define OBJC_POINTER_TYPE_ATTRS_CASELIST                                       \
107   case ParsedAttr::AT_ObjCGC:                                                  \
108   case ParsedAttr::AT_ObjCOwnership
109 
110 // Calling convention attributes.
111 #define CALLING_CONV_ATTRS_CASELIST                                            \
112   case ParsedAttr::AT_CDecl:                                                   \
113   case ParsedAttr::AT_FastCall:                                                \
114   case ParsedAttr::AT_StdCall:                                                 \
115   case ParsedAttr::AT_ThisCall:                                                \
116   case ParsedAttr::AT_RegCall:                                                 \
117   case ParsedAttr::AT_Pascal:                                                  \
118   case ParsedAttr::AT_SwiftCall:                                               \
119   case ParsedAttr::AT_VectorCall:                                              \
120   case ParsedAttr::AT_AArch64VectorPcs:                                        \
121   case ParsedAttr::AT_MSABI:                                                   \
122   case ParsedAttr::AT_SysVABI:                                                 \
123   case ParsedAttr::AT_Pcs:                                                     \
124   case ParsedAttr::AT_IntelOclBicc:                                            \
125   case ParsedAttr::AT_PreserveMost:                                            \
126   case ParsedAttr::AT_PreserveAll
127 
128 // Function type attributes.
129 #define FUNCTION_TYPE_ATTRS_CASELIST                                           \
130   case ParsedAttr::AT_NSReturnsRetained:                                       \
131   case ParsedAttr::AT_NoReturn:                                                \
132   case ParsedAttr::AT_Regparm:                                                 \
133   case ParsedAttr::AT_CmseNSCall:                                              \
134   case ParsedAttr::AT_AnyX86NoCallerSavedRegisters:                            \
135   case ParsedAttr::AT_AnyX86NoCfCheck:                                         \
136     CALLING_CONV_ATTRS_CASELIST
137 
138 // Microsoft-specific type qualifiers.
139 #define MS_TYPE_ATTRS_CASELIST                                                 \
140   case ParsedAttr::AT_Ptr32:                                                   \
141   case ParsedAttr::AT_Ptr64:                                                   \
142   case ParsedAttr::AT_SPtr:                                                    \
143   case ParsedAttr::AT_UPtr
144 
145 // Nullability qualifiers.
146 #define NULLABILITY_TYPE_ATTRS_CASELIST                                        \
147   case ParsedAttr::AT_TypeNonNull:                                             \
148   case ParsedAttr::AT_TypeNullable:                                            \
149   case ParsedAttr::AT_TypeNullUnspecified
150 
151 namespace {
152   /// An object which stores processing state for the entire
153   /// GetTypeForDeclarator process.
154   class TypeProcessingState {
155     Sema &sema;
156 
157     /// The declarator being processed.
158     Declarator &declarator;
159 
160     /// The index of the declarator chunk we're currently processing.
161     /// May be the total number of valid chunks, indicating the
162     /// DeclSpec.
163     unsigned chunkIndex;
164 
165     /// Whether there are non-trivial modifications to the decl spec.
166     bool trivial;
167 
168     /// Whether we saved the attributes in the decl spec.
169     bool hasSavedAttrs;
170 
171     /// The original set of attributes on the DeclSpec.
172     SmallVector<ParsedAttr *, 2> savedAttrs;
173 
174     /// A list of attributes to diagnose the uselessness of when the
175     /// processing is complete.
176     SmallVector<ParsedAttr *, 2> ignoredTypeAttrs;
177 
178     /// Attributes corresponding to AttributedTypeLocs that we have not yet
179     /// populated.
180     // FIXME: The two-phase mechanism by which we construct Types and fill
181     // their TypeLocs makes it hard to correctly assign these. We keep the
182     // attributes in creation order as an attempt to make them line up
183     // properly.
184     using TypeAttrPair = std::pair<const AttributedType*, const Attr*>;
185     SmallVector<TypeAttrPair, 8> AttrsForTypes;
186     bool AttrsForTypesSorted = true;
187 
188     /// MacroQualifiedTypes mapping to macro expansion locations that will be
189     /// stored in a MacroQualifiedTypeLoc.
190     llvm::DenseMap<const MacroQualifiedType *, SourceLocation> LocsForMacros;
191 
192     /// Flag to indicate we parsed a noderef attribute. This is used for
193     /// validating that noderef was used on a pointer or array.
194     bool parsedNoDeref;
195 
196   public:
197     TypeProcessingState(Sema &sema, Declarator &declarator)
198         : sema(sema), declarator(declarator),
199           chunkIndex(declarator.getNumTypeObjects()), trivial(true),
200           hasSavedAttrs(false), parsedNoDeref(false) {}
201 
202     Sema &getSema() const {
203       return sema;
204     }
205 
206     Declarator &getDeclarator() const {
207       return declarator;
208     }
209 
210     bool isProcessingDeclSpec() const {
211       return chunkIndex == declarator.getNumTypeObjects();
212     }
213 
214     unsigned getCurrentChunkIndex() const {
215       return chunkIndex;
216     }
217 
218     void setCurrentChunkIndex(unsigned idx) {
219       assert(idx <= declarator.getNumTypeObjects());
220       chunkIndex = idx;
221     }
222 
223     ParsedAttributesView &getCurrentAttributes() const {
224       if (isProcessingDeclSpec())
225         return getMutableDeclSpec().getAttributes();
226       return declarator.getTypeObject(chunkIndex).getAttrs();
227     }
228 
229     /// Save the current set of attributes on the DeclSpec.
230     void saveDeclSpecAttrs() {
231       // Don't try to save them multiple times.
232       if (hasSavedAttrs) return;
233 
234       DeclSpec &spec = getMutableDeclSpec();
235       for (ParsedAttr &AL : spec.getAttributes())
236         savedAttrs.push_back(&AL);
237       trivial &= savedAttrs.empty();
238       hasSavedAttrs = true;
239     }
240 
241     /// Record that we had nowhere to put the given type attribute.
242     /// We will diagnose such attributes later.
243     void addIgnoredTypeAttr(ParsedAttr &attr) {
244       ignoredTypeAttrs.push_back(&attr);
245     }
246 
247     /// Diagnose all the ignored type attributes, given that the
248     /// declarator worked out to the given type.
249     void diagnoseIgnoredTypeAttrs(QualType type) const {
250       for (auto *Attr : ignoredTypeAttrs)
251         diagnoseBadTypeAttribute(getSema(), *Attr, type);
252     }
253 
254     /// Get an attributed type for the given attribute, and remember the Attr
255     /// object so that we can attach it to the AttributedTypeLoc.
256     QualType getAttributedType(Attr *A, QualType ModifiedType,
257                                QualType EquivType) {
258       QualType T =
259           sema.Context.getAttributedType(A->getKind(), ModifiedType, EquivType);
260       AttrsForTypes.push_back({cast<AttributedType>(T.getTypePtr()), A});
261       AttrsForTypesSorted = false;
262       return T;
263     }
264 
265     /// Completely replace the \c auto in \p TypeWithAuto by
266     /// \p Replacement. Also replace \p TypeWithAuto in \c TypeAttrPair if
267     /// necessary.
268     QualType ReplaceAutoType(QualType TypeWithAuto, QualType Replacement) {
269       QualType T = sema.ReplaceAutoType(TypeWithAuto, Replacement);
270       if (auto *AttrTy = TypeWithAuto->getAs<AttributedType>()) {
271         // Attributed type still should be an attributed type after replacement.
272         auto *NewAttrTy = cast<AttributedType>(T.getTypePtr());
273         for (TypeAttrPair &A : AttrsForTypes) {
274           if (A.first == AttrTy)
275             A.first = NewAttrTy;
276         }
277         AttrsForTypesSorted = false;
278       }
279       return T;
280     }
281 
282     /// Extract and remove the Attr* for a given attributed type.
283     const Attr *takeAttrForAttributedType(const AttributedType *AT) {
284       if (!AttrsForTypesSorted) {
285         llvm::stable_sort(AttrsForTypes, llvm::less_first());
286         AttrsForTypesSorted = true;
287       }
288 
289       // FIXME: This is quadratic if we have lots of reuses of the same
290       // attributed type.
291       for (auto It = std::partition_point(
292                AttrsForTypes.begin(), AttrsForTypes.end(),
293                [=](const TypeAttrPair &A) { return A.first < AT; });
294            It != AttrsForTypes.end() && It->first == AT; ++It) {
295         if (It->second) {
296           const Attr *Result = It->second;
297           It->second = nullptr;
298           return Result;
299         }
300       }
301 
302       llvm_unreachable("no Attr* for AttributedType*");
303     }
304 
305     SourceLocation
306     getExpansionLocForMacroQualifiedType(const MacroQualifiedType *MQT) const {
307       auto FoundLoc = LocsForMacros.find(MQT);
308       assert(FoundLoc != LocsForMacros.end() &&
309              "Unable to find macro expansion location for MacroQualifedType");
310       return FoundLoc->second;
311     }
312 
313     void setExpansionLocForMacroQualifiedType(const MacroQualifiedType *MQT,
314                                               SourceLocation Loc) {
315       LocsForMacros[MQT] = Loc;
316     }
317 
318     void setParsedNoDeref(bool parsed) { parsedNoDeref = parsed; }
319 
320     bool didParseNoDeref() const { return parsedNoDeref; }
321 
322     ~TypeProcessingState() {
323       if (trivial) return;
324 
325       restoreDeclSpecAttrs();
326     }
327 
328   private:
329     DeclSpec &getMutableDeclSpec() const {
330       return const_cast<DeclSpec&>(declarator.getDeclSpec());
331     }
332 
333     void restoreDeclSpecAttrs() {
334       assert(hasSavedAttrs);
335 
336       getMutableDeclSpec().getAttributes().clearListOnly();
337       for (ParsedAttr *AL : savedAttrs)
338         getMutableDeclSpec().getAttributes().addAtEnd(AL);
339     }
340   };
341 } // end anonymous namespace
342 
343 static void moveAttrFromListToList(ParsedAttr &attr,
344                                    ParsedAttributesView &fromList,
345                                    ParsedAttributesView &toList) {
346   fromList.remove(&attr);
347   toList.addAtEnd(&attr);
348 }
349 
350 /// The location of a type attribute.
351 enum TypeAttrLocation {
352   /// The attribute is in the decl-specifier-seq.
353   TAL_DeclSpec,
354   /// The attribute is part of a DeclaratorChunk.
355   TAL_DeclChunk,
356   /// The attribute is immediately after the declaration's name.
357   TAL_DeclName
358 };
359 
360 static void processTypeAttrs(TypeProcessingState &state, QualType &type,
361                              TypeAttrLocation TAL, ParsedAttributesView &attrs);
362 
363 static bool handleFunctionTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
364                                    QualType &type);
365 
366 static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &state,
367                                              ParsedAttr &attr, QualType &type);
368 
369 static bool handleObjCGCTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
370                                  QualType &type);
371 
372 static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state,
373                                         ParsedAttr &attr, QualType &type);
374 
375 static bool handleObjCPointerTypeAttr(TypeProcessingState &state,
376                                       ParsedAttr &attr, QualType &type) {
377   if (attr.getKind() == ParsedAttr::AT_ObjCGC)
378     return handleObjCGCTypeAttr(state, attr, type);
379   assert(attr.getKind() == ParsedAttr::AT_ObjCOwnership);
380   return handleObjCOwnershipTypeAttr(state, attr, type);
381 }
382 
383 /// Given the index of a declarator chunk, check whether that chunk
384 /// directly specifies the return type of a function and, if so, find
385 /// an appropriate place for it.
386 ///
387 /// \param i - a notional index which the search will start
388 ///   immediately inside
389 ///
390 /// \param onlyBlockPointers Whether we should only look into block
391 /// pointer types (vs. all pointer types).
392 static DeclaratorChunk *maybeMovePastReturnType(Declarator &declarator,
393                                                 unsigned i,
394                                                 bool onlyBlockPointers) {
395   assert(i <= declarator.getNumTypeObjects());
396 
397   DeclaratorChunk *result = nullptr;
398 
399   // First, look inwards past parens for a function declarator.
400   for (; i != 0; --i) {
401     DeclaratorChunk &fnChunk = declarator.getTypeObject(i-1);
402     switch (fnChunk.Kind) {
403     case DeclaratorChunk::Paren:
404       continue;
405 
406     // If we find anything except a function, bail out.
407     case DeclaratorChunk::Pointer:
408     case DeclaratorChunk::BlockPointer:
409     case DeclaratorChunk::Array:
410     case DeclaratorChunk::Reference:
411     case DeclaratorChunk::MemberPointer:
412     case DeclaratorChunk::Pipe:
413       return result;
414 
415     // If we do find a function declarator, scan inwards from that,
416     // looking for a (block-)pointer declarator.
417     case DeclaratorChunk::Function:
418       for (--i; i != 0; --i) {
419         DeclaratorChunk &ptrChunk = declarator.getTypeObject(i-1);
420         switch (ptrChunk.Kind) {
421         case DeclaratorChunk::Paren:
422         case DeclaratorChunk::Array:
423         case DeclaratorChunk::Function:
424         case DeclaratorChunk::Reference:
425         case DeclaratorChunk::Pipe:
426           continue;
427 
428         case DeclaratorChunk::MemberPointer:
429         case DeclaratorChunk::Pointer:
430           if (onlyBlockPointers)
431             continue;
432 
433           LLVM_FALLTHROUGH;
434 
435         case DeclaratorChunk::BlockPointer:
436           result = &ptrChunk;
437           goto continue_outer;
438         }
439         llvm_unreachable("bad declarator chunk kind");
440       }
441 
442       // If we run out of declarators doing that, we're done.
443       return result;
444     }
445     llvm_unreachable("bad declarator chunk kind");
446 
447     // Okay, reconsider from our new point.
448   continue_outer: ;
449   }
450 
451   // Ran out of chunks, bail out.
452   return result;
453 }
454 
455 /// Given that an objc_gc attribute was written somewhere on a
456 /// declaration *other* than on the declarator itself (for which, use
457 /// distributeObjCPointerTypeAttrFromDeclarator), and given that it
458 /// didn't apply in whatever position it was written in, try to move
459 /// it to a more appropriate position.
460 static void distributeObjCPointerTypeAttr(TypeProcessingState &state,
461                                           ParsedAttr &attr, QualType type) {
462   Declarator &declarator = state.getDeclarator();
463 
464   // Move it to the outermost normal or block pointer declarator.
465   for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
466     DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
467     switch (chunk.Kind) {
468     case DeclaratorChunk::Pointer:
469     case DeclaratorChunk::BlockPointer: {
470       // But don't move an ARC ownership attribute to the return type
471       // of a block.
472       DeclaratorChunk *destChunk = nullptr;
473       if (state.isProcessingDeclSpec() &&
474           attr.getKind() == ParsedAttr::AT_ObjCOwnership)
475         destChunk = maybeMovePastReturnType(declarator, i - 1,
476                                             /*onlyBlockPointers=*/true);
477       if (!destChunk) destChunk = &chunk;
478 
479       moveAttrFromListToList(attr, state.getCurrentAttributes(),
480                              destChunk->getAttrs());
481       return;
482     }
483 
484     case DeclaratorChunk::Paren:
485     case DeclaratorChunk::Array:
486       continue;
487 
488     // We may be starting at the return type of a block.
489     case DeclaratorChunk::Function:
490       if (state.isProcessingDeclSpec() &&
491           attr.getKind() == ParsedAttr::AT_ObjCOwnership) {
492         if (DeclaratorChunk *dest = maybeMovePastReturnType(
493                                       declarator, i,
494                                       /*onlyBlockPointers=*/true)) {
495           moveAttrFromListToList(attr, state.getCurrentAttributes(),
496                                  dest->getAttrs());
497           return;
498         }
499       }
500       goto error;
501 
502     // Don't walk through these.
503     case DeclaratorChunk::Reference:
504     case DeclaratorChunk::MemberPointer:
505     case DeclaratorChunk::Pipe:
506       goto error;
507     }
508   }
509  error:
510 
511   diagnoseBadTypeAttribute(state.getSema(), attr, type);
512 }
513 
514 /// Distribute an objc_gc type attribute that was written on the
515 /// declarator.
516 static void distributeObjCPointerTypeAttrFromDeclarator(
517     TypeProcessingState &state, ParsedAttr &attr, QualType &declSpecType) {
518   Declarator &declarator = state.getDeclarator();
519 
520   // objc_gc goes on the innermost pointer to something that's not a
521   // pointer.
522   unsigned innermost = -1U;
523   bool considerDeclSpec = true;
524   for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
525     DeclaratorChunk &chunk = declarator.getTypeObject(i);
526     switch (chunk.Kind) {
527     case DeclaratorChunk::Pointer:
528     case DeclaratorChunk::BlockPointer:
529       innermost = i;
530       continue;
531 
532     case DeclaratorChunk::Reference:
533     case DeclaratorChunk::MemberPointer:
534     case DeclaratorChunk::Paren:
535     case DeclaratorChunk::Array:
536     case DeclaratorChunk::Pipe:
537       continue;
538 
539     case DeclaratorChunk::Function:
540       considerDeclSpec = false;
541       goto done;
542     }
543   }
544  done:
545 
546   // That might actually be the decl spec if we weren't blocked by
547   // anything in the declarator.
548   if (considerDeclSpec) {
549     if (handleObjCPointerTypeAttr(state, attr, declSpecType)) {
550       // Splice the attribute into the decl spec.  Prevents the
551       // attribute from being applied multiple times and gives
552       // the source-location-filler something to work with.
553       state.saveDeclSpecAttrs();
554       declarator.getMutableDeclSpec().getAttributes().takeOneFrom(
555           declarator.getAttributes(), &attr);
556       return;
557     }
558   }
559 
560   // Otherwise, if we found an appropriate chunk, splice the attribute
561   // into it.
562   if (innermost != -1U) {
563     moveAttrFromListToList(attr, declarator.getAttributes(),
564                            declarator.getTypeObject(innermost).getAttrs());
565     return;
566   }
567 
568   // Otherwise, diagnose when we're done building the type.
569   declarator.getAttributes().remove(&attr);
570   state.addIgnoredTypeAttr(attr);
571 }
572 
573 /// A function type attribute was written somewhere in a declaration
574 /// *other* than on the declarator itself or in the decl spec.  Given
575 /// that it didn't apply in whatever position it was written in, try
576 /// to move it to a more appropriate position.
577 static void distributeFunctionTypeAttr(TypeProcessingState &state,
578                                        ParsedAttr &attr, QualType type) {
579   Declarator &declarator = state.getDeclarator();
580 
581   // Try to push the attribute from the return type of a function to
582   // the function itself.
583   for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
584     DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
585     switch (chunk.Kind) {
586     case DeclaratorChunk::Function:
587       moveAttrFromListToList(attr, state.getCurrentAttributes(),
588                              chunk.getAttrs());
589       return;
590 
591     case DeclaratorChunk::Paren:
592     case DeclaratorChunk::Pointer:
593     case DeclaratorChunk::BlockPointer:
594     case DeclaratorChunk::Array:
595     case DeclaratorChunk::Reference:
596     case DeclaratorChunk::MemberPointer:
597     case DeclaratorChunk::Pipe:
598       continue;
599     }
600   }
601 
602   diagnoseBadTypeAttribute(state.getSema(), attr, type);
603 }
604 
605 /// Try to distribute a function type attribute to the innermost
606 /// function chunk or type.  Returns true if the attribute was
607 /// distributed, false if no location was found.
608 static bool distributeFunctionTypeAttrToInnermost(
609     TypeProcessingState &state, ParsedAttr &attr,
610     ParsedAttributesView &attrList, QualType &declSpecType) {
611   Declarator &declarator = state.getDeclarator();
612 
613   // Put it on the innermost function chunk, if there is one.
614   for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
615     DeclaratorChunk &chunk = declarator.getTypeObject(i);
616     if (chunk.Kind != DeclaratorChunk::Function) continue;
617 
618     moveAttrFromListToList(attr, attrList, chunk.getAttrs());
619     return true;
620   }
621 
622   return handleFunctionTypeAttr(state, attr, declSpecType);
623 }
624 
625 /// A function type attribute was written in the decl spec.  Try to
626 /// apply it somewhere.
627 static void distributeFunctionTypeAttrFromDeclSpec(TypeProcessingState &state,
628                                                    ParsedAttr &attr,
629                                                    QualType &declSpecType) {
630   state.saveDeclSpecAttrs();
631 
632   // C++11 attributes before the decl specifiers actually appertain to
633   // the declarators. Move them straight there. We don't support the
634   // 'put them wherever you like' semantics we allow for GNU attributes.
635   if (attr.isCXX11Attribute()) {
636     moveAttrFromListToList(attr, state.getCurrentAttributes(),
637                            state.getDeclarator().getAttributes());
638     return;
639   }
640 
641   // Try to distribute to the innermost.
642   if (distributeFunctionTypeAttrToInnermost(
643           state, attr, state.getCurrentAttributes(), declSpecType))
644     return;
645 
646   // If that failed, diagnose the bad attribute when the declarator is
647   // fully built.
648   state.addIgnoredTypeAttr(attr);
649 }
650 
651 /// A function type attribute was written on the declarator.  Try to
652 /// apply it somewhere.
653 static void distributeFunctionTypeAttrFromDeclarator(TypeProcessingState &state,
654                                                      ParsedAttr &attr,
655                                                      QualType &declSpecType) {
656   Declarator &declarator = state.getDeclarator();
657 
658   // Try to distribute to the innermost.
659   if (distributeFunctionTypeAttrToInnermost(
660           state, attr, declarator.getAttributes(), declSpecType))
661     return;
662 
663   // If that failed, diagnose the bad attribute when the declarator is
664   // fully built.
665   declarator.getAttributes().remove(&attr);
666   state.addIgnoredTypeAttr(attr);
667 }
668 
669 /// Given that there are attributes written on the declarator
670 /// itself, try to distribute any type attributes to the appropriate
671 /// declarator chunk.
672 ///
673 /// These are attributes like the following:
674 ///   int f ATTR;
675 ///   int (f ATTR)();
676 /// but not necessarily this:
677 ///   int f() ATTR;
678 static void distributeTypeAttrsFromDeclarator(TypeProcessingState &state,
679                                               QualType &declSpecType) {
680   // Collect all the type attributes from the declarator itself.
681   assert(!state.getDeclarator().getAttributes().empty() &&
682          "declarator has no attrs!");
683   // The called functions in this loop actually remove things from the current
684   // list, so iterating over the existing list isn't possible.  Instead, make a
685   // non-owning copy and iterate over that.
686   ParsedAttributesView AttrsCopy{state.getDeclarator().getAttributes()};
687   for (ParsedAttr &attr : AttrsCopy) {
688     // Do not distribute C++11 attributes. They have strict rules for what
689     // they appertain to.
690     if (attr.isCXX11Attribute())
691       continue;
692 
693     switch (attr.getKind()) {
694     OBJC_POINTER_TYPE_ATTRS_CASELIST:
695       distributeObjCPointerTypeAttrFromDeclarator(state, attr, declSpecType);
696       break;
697 
698     FUNCTION_TYPE_ATTRS_CASELIST:
699       distributeFunctionTypeAttrFromDeclarator(state, attr, declSpecType);
700       break;
701 
702     MS_TYPE_ATTRS_CASELIST:
703       // Microsoft type attributes cannot go after the declarator-id.
704       continue;
705 
706     NULLABILITY_TYPE_ATTRS_CASELIST:
707       // Nullability specifiers cannot go after the declarator-id.
708 
709     // Objective-C __kindof does not get distributed.
710     case ParsedAttr::AT_ObjCKindOf:
711       continue;
712 
713     default:
714       break;
715     }
716   }
717 }
718 
719 /// Add a synthetic '()' to a block-literal declarator if it is
720 /// required, given the return type.
721 static void maybeSynthesizeBlockSignature(TypeProcessingState &state,
722                                           QualType declSpecType) {
723   Declarator &declarator = state.getDeclarator();
724 
725   // First, check whether the declarator would produce a function,
726   // i.e. whether the innermost semantic chunk is a function.
727   if (declarator.isFunctionDeclarator()) {
728     // If so, make that declarator a prototyped declarator.
729     declarator.getFunctionTypeInfo().hasPrototype = true;
730     return;
731   }
732 
733   // If there are any type objects, the type as written won't name a
734   // function, regardless of the decl spec type.  This is because a
735   // block signature declarator is always an abstract-declarator, and
736   // abstract-declarators can't just be parentheses chunks.  Therefore
737   // we need to build a function chunk unless there are no type
738   // objects and the decl spec type is a function.
739   if (!declarator.getNumTypeObjects() && declSpecType->isFunctionType())
740     return;
741 
742   // Note that there *are* cases with invalid declarators where
743   // declarators consist solely of parentheses.  In general, these
744   // occur only in failed efforts to make function declarators, so
745   // faking up the function chunk is still the right thing to do.
746 
747   // Otherwise, we need to fake up a function declarator.
748   SourceLocation loc = declarator.getBeginLoc();
749 
750   // ...and *prepend* it to the declarator.
751   SourceLocation NoLoc;
752   declarator.AddInnermostTypeInfo(DeclaratorChunk::getFunction(
753       /*HasProto=*/true,
754       /*IsAmbiguous=*/false,
755       /*LParenLoc=*/NoLoc,
756       /*ArgInfo=*/nullptr,
757       /*NumParams=*/0,
758       /*EllipsisLoc=*/NoLoc,
759       /*RParenLoc=*/NoLoc,
760       /*RefQualifierIsLvalueRef=*/true,
761       /*RefQualifierLoc=*/NoLoc,
762       /*MutableLoc=*/NoLoc, EST_None,
763       /*ESpecRange=*/SourceRange(),
764       /*Exceptions=*/nullptr,
765       /*ExceptionRanges=*/nullptr,
766       /*NumExceptions=*/0,
767       /*NoexceptExpr=*/nullptr,
768       /*ExceptionSpecTokens=*/nullptr,
769       /*DeclsInPrototype=*/None, loc, loc, declarator));
770 
771   // For consistency, make sure the state still has us as processing
772   // the decl spec.
773   assert(state.getCurrentChunkIndex() == declarator.getNumTypeObjects() - 1);
774   state.setCurrentChunkIndex(declarator.getNumTypeObjects());
775 }
776 
777 static void diagnoseAndRemoveTypeQualifiers(Sema &S, const DeclSpec &DS,
778                                             unsigned &TypeQuals,
779                                             QualType TypeSoFar,
780                                             unsigned RemoveTQs,
781                                             unsigned DiagID) {
782   // If this occurs outside a template instantiation, warn the user about
783   // it; they probably didn't mean to specify a redundant qualifier.
784   typedef std::pair<DeclSpec::TQ, SourceLocation> QualLoc;
785   for (QualLoc Qual : {QualLoc(DeclSpec::TQ_const, DS.getConstSpecLoc()),
786                        QualLoc(DeclSpec::TQ_restrict, DS.getRestrictSpecLoc()),
787                        QualLoc(DeclSpec::TQ_volatile, DS.getVolatileSpecLoc()),
788                        QualLoc(DeclSpec::TQ_atomic, DS.getAtomicSpecLoc())}) {
789     if (!(RemoveTQs & Qual.first))
790       continue;
791 
792     if (!S.inTemplateInstantiation()) {
793       if (TypeQuals & Qual.first)
794         S.Diag(Qual.second, DiagID)
795           << DeclSpec::getSpecifierName(Qual.first) << TypeSoFar
796           << FixItHint::CreateRemoval(Qual.second);
797     }
798 
799     TypeQuals &= ~Qual.first;
800   }
801 }
802 
803 /// Return true if this is omitted block return type. Also check type
804 /// attributes and type qualifiers when returning true.
805 static bool checkOmittedBlockReturnType(Sema &S, Declarator &declarator,
806                                         QualType Result) {
807   if (!isOmittedBlockReturnType(declarator))
808     return false;
809 
810   // Warn if we see type attributes for omitted return type on a block literal.
811   SmallVector<ParsedAttr *, 2> ToBeRemoved;
812   for (ParsedAttr &AL : declarator.getMutableDeclSpec().getAttributes()) {
813     if (AL.isInvalid() || !AL.isTypeAttr())
814       continue;
815     S.Diag(AL.getLoc(),
816            diag::warn_block_literal_attributes_on_omitted_return_type)
817         << AL;
818     ToBeRemoved.push_back(&AL);
819   }
820   // Remove bad attributes from the list.
821   for (ParsedAttr *AL : ToBeRemoved)
822     declarator.getMutableDeclSpec().getAttributes().remove(AL);
823 
824   // Warn if we see type qualifiers for omitted return type on a block literal.
825   const DeclSpec &DS = declarator.getDeclSpec();
826   unsigned TypeQuals = DS.getTypeQualifiers();
827   diagnoseAndRemoveTypeQualifiers(S, DS, TypeQuals, Result, (unsigned)-1,
828       diag::warn_block_literal_qualifiers_on_omitted_return_type);
829   declarator.getMutableDeclSpec().ClearTypeQualifiers();
830 
831   return true;
832 }
833 
834 /// Apply Objective-C type arguments to the given type.
835 static QualType applyObjCTypeArgs(Sema &S, SourceLocation loc, QualType type,
836                                   ArrayRef<TypeSourceInfo *> typeArgs,
837                                   SourceRange typeArgsRange,
838                                   bool failOnError = false) {
839   // We can only apply type arguments to an Objective-C class type.
840   const auto *objcObjectType = type->getAs<ObjCObjectType>();
841   if (!objcObjectType || !objcObjectType->getInterface()) {
842     S.Diag(loc, diag::err_objc_type_args_non_class)
843       << type
844       << typeArgsRange;
845 
846     if (failOnError)
847       return QualType();
848     return type;
849   }
850 
851   // The class type must be parameterized.
852   ObjCInterfaceDecl *objcClass = objcObjectType->getInterface();
853   ObjCTypeParamList *typeParams = objcClass->getTypeParamList();
854   if (!typeParams) {
855     S.Diag(loc, diag::err_objc_type_args_non_parameterized_class)
856       << objcClass->getDeclName()
857       << FixItHint::CreateRemoval(typeArgsRange);
858 
859     if (failOnError)
860       return QualType();
861 
862     return type;
863   }
864 
865   // The type must not already be specialized.
866   if (objcObjectType->isSpecialized()) {
867     S.Diag(loc, diag::err_objc_type_args_specialized_class)
868       << type
869       << FixItHint::CreateRemoval(typeArgsRange);
870 
871     if (failOnError)
872       return QualType();
873 
874     return type;
875   }
876 
877   // Check the type arguments.
878   SmallVector<QualType, 4> finalTypeArgs;
879   unsigned numTypeParams = typeParams->size();
880   bool anyPackExpansions = false;
881   for (unsigned i = 0, n = typeArgs.size(); i != n; ++i) {
882     TypeSourceInfo *typeArgInfo = typeArgs[i];
883     QualType typeArg = typeArgInfo->getType();
884 
885     // Type arguments cannot have explicit qualifiers or nullability.
886     // We ignore indirect sources of these, e.g. behind typedefs or
887     // template arguments.
888     if (TypeLoc qual = typeArgInfo->getTypeLoc().findExplicitQualifierLoc()) {
889       bool diagnosed = false;
890       SourceRange rangeToRemove;
891       if (auto attr = qual.getAs<AttributedTypeLoc>()) {
892         rangeToRemove = attr.getLocalSourceRange();
893         if (attr.getTypePtr()->getImmediateNullability()) {
894           typeArg = attr.getTypePtr()->getModifiedType();
895           S.Diag(attr.getBeginLoc(),
896                  diag::err_objc_type_arg_explicit_nullability)
897               << typeArg << FixItHint::CreateRemoval(rangeToRemove);
898           diagnosed = true;
899         }
900       }
901 
902       if (!diagnosed) {
903         S.Diag(qual.getBeginLoc(), diag::err_objc_type_arg_qualified)
904             << typeArg << typeArg.getQualifiers().getAsString()
905             << FixItHint::CreateRemoval(rangeToRemove);
906       }
907     }
908 
909     // Remove qualifiers even if they're non-local.
910     typeArg = typeArg.getUnqualifiedType();
911 
912     finalTypeArgs.push_back(typeArg);
913 
914     if (typeArg->getAs<PackExpansionType>())
915       anyPackExpansions = true;
916 
917     // Find the corresponding type parameter, if there is one.
918     ObjCTypeParamDecl *typeParam = nullptr;
919     if (!anyPackExpansions) {
920       if (i < numTypeParams) {
921         typeParam = typeParams->begin()[i];
922       } else {
923         // Too many arguments.
924         S.Diag(loc, diag::err_objc_type_args_wrong_arity)
925           << false
926           << objcClass->getDeclName()
927           << (unsigned)typeArgs.size()
928           << numTypeParams;
929         S.Diag(objcClass->getLocation(), diag::note_previous_decl)
930           << objcClass;
931 
932         if (failOnError)
933           return QualType();
934 
935         return type;
936       }
937     }
938 
939     // Objective-C object pointer types must be substitutable for the bounds.
940     if (const auto *typeArgObjC = typeArg->getAs<ObjCObjectPointerType>()) {
941       // If we don't have a type parameter to match against, assume
942       // everything is fine. There was a prior pack expansion that
943       // means we won't be able to match anything.
944       if (!typeParam) {
945         assert(anyPackExpansions && "Too many arguments?");
946         continue;
947       }
948 
949       // Retrieve the bound.
950       QualType bound = typeParam->getUnderlyingType();
951       const auto *boundObjC = bound->getAs<ObjCObjectPointerType>();
952 
953       // Determine whether the type argument is substitutable for the bound.
954       if (typeArgObjC->isObjCIdType()) {
955         // When the type argument is 'id', the only acceptable type
956         // parameter bound is 'id'.
957         if (boundObjC->isObjCIdType())
958           continue;
959       } else if (S.Context.canAssignObjCInterfaces(boundObjC, typeArgObjC)) {
960         // Otherwise, we follow the assignability rules.
961         continue;
962       }
963 
964       // Diagnose the mismatch.
965       S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
966              diag::err_objc_type_arg_does_not_match_bound)
967           << typeArg << bound << typeParam->getDeclName();
968       S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here)
969         << typeParam->getDeclName();
970 
971       if (failOnError)
972         return QualType();
973 
974       return type;
975     }
976 
977     // Block pointer types are permitted for unqualified 'id' bounds.
978     if (typeArg->isBlockPointerType()) {
979       // If we don't have a type parameter to match against, assume
980       // everything is fine. There was a prior pack expansion that
981       // means we won't be able to match anything.
982       if (!typeParam) {
983         assert(anyPackExpansions && "Too many arguments?");
984         continue;
985       }
986 
987       // Retrieve the bound.
988       QualType bound = typeParam->getUnderlyingType();
989       if (bound->isBlockCompatibleObjCPointerType(S.Context))
990         continue;
991 
992       // Diagnose the mismatch.
993       S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
994              diag::err_objc_type_arg_does_not_match_bound)
995           << typeArg << bound << typeParam->getDeclName();
996       S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here)
997         << typeParam->getDeclName();
998 
999       if (failOnError)
1000         return QualType();
1001 
1002       return type;
1003     }
1004 
1005     // Dependent types will be checked at instantiation time.
1006     if (typeArg->isDependentType()) {
1007       continue;
1008     }
1009 
1010     // Diagnose non-id-compatible type arguments.
1011     S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
1012            diag::err_objc_type_arg_not_id_compatible)
1013         << typeArg << typeArgInfo->getTypeLoc().getSourceRange();
1014 
1015     if (failOnError)
1016       return QualType();
1017 
1018     return type;
1019   }
1020 
1021   // Make sure we didn't have the wrong number of arguments.
1022   if (!anyPackExpansions && finalTypeArgs.size() != numTypeParams) {
1023     S.Diag(loc, diag::err_objc_type_args_wrong_arity)
1024       << (typeArgs.size() < typeParams->size())
1025       << objcClass->getDeclName()
1026       << (unsigned)finalTypeArgs.size()
1027       << (unsigned)numTypeParams;
1028     S.Diag(objcClass->getLocation(), diag::note_previous_decl)
1029       << objcClass;
1030 
1031     if (failOnError)
1032       return QualType();
1033 
1034     return type;
1035   }
1036 
1037   // Success. Form the specialized type.
1038   return S.Context.getObjCObjectType(type, finalTypeArgs, { }, false);
1039 }
1040 
1041 QualType Sema::BuildObjCTypeParamType(const ObjCTypeParamDecl *Decl,
1042                                       SourceLocation ProtocolLAngleLoc,
1043                                       ArrayRef<ObjCProtocolDecl *> Protocols,
1044                                       ArrayRef<SourceLocation> ProtocolLocs,
1045                                       SourceLocation ProtocolRAngleLoc,
1046                                       bool FailOnError) {
1047   QualType Result = QualType(Decl->getTypeForDecl(), 0);
1048   if (!Protocols.empty()) {
1049     bool HasError;
1050     Result = Context.applyObjCProtocolQualifiers(Result, Protocols,
1051                                                  HasError);
1052     if (HasError) {
1053       Diag(SourceLocation(), diag::err_invalid_protocol_qualifiers)
1054         << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc);
1055       if (FailOnError) Result = QualType();
1056     }
1057     if (FailOnError && Result.isNull())
1058       return QualType();
1059   }
1060 
1061   return Result;
1062 }
1063 
1064 QualType Sema::BuildObjCObjectType(QualType BaseType,
1065                                    SourceLocation Loc,
1066                                    SourceLocation TypeArgsLAngleLoc,
1067                                    ArrayRef<TypeSourceInfo *> TypeArgs,
1068                                    SourceLocation TypeArgsRAngleLoc,
1069                                    SourceLocation ProtocolLAngleLoc,
1070                                    ArrayRef<ObjCProtocolDecl *> Protocols,
1071                                    ArrayRef<SourceLocation> ProtocolLocs,
1072                                    SourceLocation ProtocolRAngleLoc,
1073                                    bool FailOnError) {
1074   QualType Result = BaseType;
1075   if (!TypeArgs.empty()) {
1076     Result = applyObjCTypeArgs(*this, Loc, Result, TypeArgs,
1077                                SourceRange(TypeArgsLAngleLoc,
1078                                            TypeArgsRAngleLoc),
1079                                FailOnError);
1080     if (FailOnError && Result.isNull())
1081       return QualType();
1082   }
1083 
1084   if (!Protocols.empty()) {
1085     bool HasError;
1086     Result = Context.applyObjCProtocolQualifiers(Result, Protocols,
1087                                                  HasError);
1088     if (HasError) {
1089       Diag(Loc, diag::err_invalid_protocol_qualifiers)
1090         << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc);
1091       if (FailOnError) Result = QualType();
1092     }
1093     if (FailOnError && Result.isNull())
1094       return QualType();
1095   }
1096 
1097   return Result;
1098 }
1099 
1100 TypeResult Sema::actOnObjCProtocolQualifierType(
1101              SourceLocation lAngleLoc,
1102              ArrayRef<Decl *> protocols,
1103              ArrayRef<SourceLocation> protocolLocs,
1104              SourceLocation rAngleLoc) {
1105   // Form id<protocol-list>.
1106   QualType Result = Context.getObjCObjectType(
1107                       Context.ObjCBuiltinIdTy, { },
1108                       llvm::makeArrayRef(
1109                         (ObjCProtocolDecl * const *)protocols.data(),
1110                         protocols.size()),
1111                       false);
1112   Result = Context.getObjCObjectPointerType(Result);
1113 
1114   TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result);
1115   TypeLoc ResultTL = ResultTInfo->getTypeLoc();
1116 
1117   auto ObjCObjectPointerTL = ResultTL.castAs<ObjCObjectPointerTypeLoc>();
1118   ObjCObjectPointerTL.setStarLoc(SourceLocation()); // implicit
1119 
1120   auto ObjCObjectTL = ObjCObjectPointerTL.getPointeeLoc()
1121                         .castAs<ObjCObjectTypeLoc>();
1122   ObjCObjectTL.setHasBaseTypeAsWritten(false);
1123   ObjCObjectTL.getBaseLoc().initialize(Context, SourceLocation());
1124 
1125   // No type arguments.
1126   ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation());
1127   ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation());
1128 
1129   // Fill in protocol qualifiers.
1130   ObjCObjectTL.setProtocolLAngleLoc(lAngleLoc);
1131   ObjCObjectTL.setProtocolRAngleLoc(rAngleLoc);
1132   for (unsigned i = 0, n = protocols.size(); i != n; ++i)
1133     ObjCObjectTL.setProtocolLoc(i, protocolLocs[i]);
1134 
1135   // We're done. Return the completed type to the parser.
1136   return CreateParsedType(Result, ResultTInfo);
1137 }
1138 
1139 TypeResult Sema::actOnObjCTypeArgsAndProtocolQualifiers(
1140              Scope *S,
1141              SourceLocation Loc,
1142              ParsedType BaseType,
1143              SourceLocation TypeArgsLAngleLoc,
1144              ArrayRef<ParsedType> TypeArgs,
1145              SourceLocation TypeArgsRAngleLoc,
1146              SourceLocation ProtocolLAngleLoc,
1147              ArrayRef<Decl *> Protocols,
1148              ArrayRef<SourceLocation> ProtocolLocs,
1149              SourceLocation ProtocolRAngleLoc) {
1150   TypeSourceInfo *BaseTypeInfo = nullptr;
1151   QualType T = GetTypeFromParser(BaseType, &BaseTypeInfo);
1152   if (T.isNull())
1153     return true;
1154 
1155   // Handle missing type-source info.
1156   if (!BaseTypeInfo)
1157     BaseTypeInfo = Context.getTrivialTypeSourceInfo(T, Loc);
1158 
1159   // Extract type arguments.
1160   SmallVector<TypeSourceInfo *, 4> ActualTypeArgInfos;
1161   for (unsigned i = 0, n = TypeArgs.size(); i != n; ++i) {
1162     TypeSourceInfo *TypeArgInfo = nullptr;
1163     QualType TypeArg = GetTypeFromParser(TypeArgs[i], &TypeArgInfo);
1164     if (TypeArg.isNull()) {
1165       ActualTypeArgInfos.clear();
1166       break;
1167     }
1168 
1169     assert(TypeArgInfo && "No type source info?");
1170     ActualTypeArgInfos.push_back(TypeArgInfo);
1171   }
1172 
1173   // Build the object type.
1174   QualType Result = BuildObjCObjectType(
1175       T, BaseTypeInfo->getTypeLoc().getSourceRange().getBegin(),
1176       TypeArgsLAngleLoc, ActualTypeArgInfos, TypeArgsRAngleLoc,
1177       ProtocolLAngleLoc,
1178       llvm::makeArrayRef((ObjCProtocolDecl * const *)Protocols.data(),
1179                          Protocols.size()),
1180       ProtocolLocs, ProtocolRAngleLoc,
1181       /*FailOnError=*/false);
1182 
1183   if (Result == T)
1184     return BaseType;
1185 
1186   // Create source information for this type.
1187   TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result);
1188   TypeLoc ResultTL = ResultTInfo->getTypeLoc();
1189 
1190   // For id<Proto1, Proto2> or Class<Proto1, Proto2>, we'll have an
1191   // object pointer type. Fill in source information for it.
1192   if (auto ObjCObjectPointerTL = ResultTL.getAs<ObjCObjectPointerTypeLoc>()) {
1193     // The '*' is implicit.
1194     ObjCObjectPointerTL.setStarLoc(SourceLocation());
1195     ResultTL = ObjCObjectPointerTL.getPointeeLoc();
1196   }
1197 
1198   if (auto OTPTL = ResultTL.getAs<ObjCTypeParamTypeLoc>()) {
1199     // Protocol qualifier information.
1200     if (OTPTL.getNumProtocols() > 0) {
1201       assert(OTPTL.getNumProtocols() == Protocols.size());
1202       OTPTL.setProtocolLAngleLoc(ProtocolLAngleLoc);
1203       OTPTL.setProtocolRAngleLoc(ProtocolRAngleLoc);
1204       for (unsigned i = 0, n = Protocols.size(); i != n; ++i)
1205         OTPTL.setProtocolLoc(i, ProtocolLocs[i]);
1206     }
1207 
1208     // We're done. Return the completed type to the parser.
1209     return CreateParsedType(Result, ResultTInfo);
1210   }
1211 
1212   auto ObjCObjectTL = ResultTL.castAs<ObjCObjectTypeLoc>();
1213 
1214   // Type argument information.
1215   if (ObjCObjectTL.getNumTypeArgs() > 0) {
1216     assert(ObjCObjectTL.getNumTypeArgs() == ActualTypeArgInfos.size());
1217     ObjCObjectTL.setTypeArgsLAngleLoc(TypeArgsLAngleLoc);
1218     ObjCObjectTL.setTypeArgsRAngleLoc(TypeArgsRAngleLoc);
1219     for (unsigned i = 0, n = ActualTypeArgInfos.size(); i != n; ++i)
1220       ObjCObjectTL.setTypeArgTInfo(i, ActualTypeArgInfos[i]);
1221   } else {
1222     ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation());
1223     ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation());
1224   }
1225 
1226   // Protocol qualifier information.
1227   if (ObjCObjectTL.getNumProtocols() > 0) {
1228     assert(ObjCObjectTL.getNumProtocols() == Protocols.size());
1229     ObjCObjectTL.setProtocolLAngleLoc(ProtocolLAngleLoc);
1230     ObjCObjectTL.setProtocolRAngleLoc(ProtocolRAngleLoc);
1231     for (unsigned i = 0, n = Protocols.size(); i != n; ++i)
1232       ObjCObjectTL.setProtocolLoc(i, ProtocolLocs[i]);
1233   } else {
1234     ObjCObjectTL.setProtocolLAngleLoc(SourceLocation());
1235     ObjCObjectTL.setProtocolRAngleLoc(SourceLocation());
1236   }
1237 
1238   // Base type.
1239   ObjCObjectTL.setHasBaseTypeAsWritten(true);
1240   if (ObjCObjectTL.getType() == T)
1241     ObjCObjectTL.getBaseLoc().initializeFullCopy(BaseTypeInfo->getTypeLoc());
1242   else
1243     ObjCObjectTL.getBaseLoc().initialize(Context, Loc);
1244 
1245   // We're done. Return the completed type to the parser.
1246   return CreateParsedType(Result, ResultTInfo);
1247 }
1248 
1249 static OpenCLAccessAttr::Spelling
1250 getImageAccess(const ParsedAttributesView &Attrs) {
1251   for (const ParsedAttr &AL : Attrs)
1252     if (AL.getKind() == ParsedAttr::AT_OpenCLAccess)
1253       return static_cast<OpenCLAccessAttr::Spelling>(AL.getSemanticSpelling());
1254   return OpenCLAccessAttr::Keyword_read_only;
1255 }
1256 
1257 static QualType ConvertConstrainedAutoDeclSpecToType(Sema &S, DeclSpec &DS,
1258                                                      AutoTypeKeyword AutoKW) {
1259   assert(DS.isConstrainedAuto());
1260   TemplateIdAnnotation *TemplateId = DS.getRepAsTemplateId();
1261   TemplateArgumentListInfo TemplateArgsInfo;
1262   TemplateArgsInfo.setLAngleLoc(TemplateId->LAngleLoc);
1263   TemplateArgsInfo.setRAngleLoc(TemplateId->RAngleLoc);
1264   ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(),
1265                                      TemplateId->NumArgs);
1266   S.translateTemplateArguments(TemplateArgsPtr, TemplateArgsInfo);
1267   llvm::SmallVector<TemplateArgument, 8> TemplateArgs;
1268   for (auto &ArgLoc : TemplateArgsInfo.arguments())
1269     TemplateArgs.push_back(ArgLoc.getArgument());
1270   return S.Context.getAutoType(QualType(), AutoTypeKeyword::Auto, false,
1271                                /*IsPack=*/false,
1272                                cast<ConceptDecl>(TemplateId->Template.get()
1273                                                  .getAsTemplateDecl()),
1274                                TemplateArgs);
1275 }
1276 
1277 /// Convert the specified declspec to the appropriate type
1278 /// object.
1279 /// \param state Specifies the declarator containing the declaration specifier
1280 /// to be converted, along with other associated processing state.
1281 /// \returns The type described by the declaration specifiers.  This function
1282 /// never returns null.
1283 static QualType ConvertDeclSpecToType(TypeProcessingState &state) {
1284   // FIXME: Should move the logic from DeclSpec::Finish to here for validity
1285   // checking.
1286 
1287   Sema &S = state.getSema();
1288   Declarator &declarator = state.getDeclarator();
1289   DeclSpec &DS = declarator.getMutableDeclSpec();
1290   SourceLocation DeclLoc = declarator.getIdentifierLoc();
1291   if (DeclLoc.isInvalid())
1292     DeclLoc = DS.getBeginLoc();
1293 
1294   ASTContext &Context = S.Context;
1295 
1296   QualType Result;
1297   switch (DS.getTypeSpecType()) {
1298   case DeclSpec::TST_void:
1299     Result = Context.VoidTy;
1300     break;
1301   case DeclSpec::TST_char:
1302     if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified)
1303       Result = Context.CharTy;
1304     else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed)
1305       Result = Context.SignedCharTy;
1306     else {
1307       assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned &&
1308              "Unknown TSS value");
1309       Result = Context.UnsignedCharTy;
1310     }
1311     break;
1312   case DeclSpec::TST_wchar:
1313     if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified)
1314       Result = Context.WCharTy;
1315     else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed) {
1316       S.Diag(DS.getTypeSpecSignLoc(), diag::ext_wchar_t_sign_spec)
1317         << DS.getSpecifierName(DS.getTypeSpecType(),
1318                                Context.getPrintingPolicy());
1319       Result = Context.getSignedWCharType();
1320     } else {
1321       assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned &&
1322         "Unknown TSS value");
1323       S.Diag(DS.getTypeSpecSignLoc(), diag::ext_wchar_t_sign_spec)
1324         << DS.getSpecifierName(DS.getTypeSpecType(),
1325                                Context.getPrintingPolicy());
1326       Result = Context.getUnsignedWCharType();
1327     }
1328     break;
1329   case DeclSpec::TST_char8:
1330       assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
1331         "Unknown TSS value");
1332       Result = Context.Char8Ty;
1333     break;
1334   case DeclSpec::TST_char16:
1335       assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
1336         "Unknown TSS value");
1337       Result = Context.Char16Ty;
1338     break;
1339   case DeclSpec::TST_char32:
1340       assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
1341         "Unknown TSS value");
1342       Result = Context.Char32Ty;
1343     break;
1344   case DeclSpec::TST_unspecified:
1345     // If this is a missing declspec in a block literal return context, then it
1346     // is inferred from the return statements inside the block.
1347     // The declspec is always missing in a lambda expr context; it is either
1348     // specified with a trailing return type or inferred.
1349     if (S.getLangOpts().CPlusPlus14 &&
1350         declarator.getContext() == DeclaratorContext::LambdaExprContext) {
1351       // In C++1y, a lambda's implicit return type is 'auto'.
1352       Result = Context.getAutoDeductType();
1353       break;
1354     } else if (declarator.getContext() ==
1355                    DeclaratorContext::LambdaExprContext ||
1356                checkOmittedBlockReturnType(S, declarator,
1357                                            Context.DependentTy)) {
1358       Result = Context.DependentTy;
1359       break;
1360     }
1361 
1362     // Unspecified typespec defaults to int in C90.  However, the C90 grammar
1363     // [C90 6.5] only allows a decl-spec if there was *some* type-specifier,
1364     // type-qualifier, or storage-class-specifier.  If not, emit an extwarn.
1365     // Note that the one exception to this is function definitions, which are
1366     // allowed to be completely missing a declspec.  This is handled in the
1367     // parser already though by it pretending to have seen an 'int' in this
1368     // case.
1369     if (S.getLangOpts().ImplicitInt) {
1370       // In C89 mode, we only warn if there is a completely missing declspec
1371       // when one is not allowed.
1372       if (DS.isEmpty()) {
1373         S.Diag(DeclLoc, diag::ext_missing_declspec)
1374             << DS.getSourceRange()
1375             << FixItHint::CreateInsertion(DS.getBeginLoc(), "int");
1376       }
1377     } else if (!DS.hasTypeSpecifier()) {
1378       // C99 and C++ require a type specifier.  For example, C99 6.7.2p2 says:
1379       // "At least one type specifier shall be given in the declaration
1380       // specifiers in each declaration, and in the specifier-qualifier list in
1381       // each struct declaration and type name."
1382       if (S.getLangOpts().CPlusPlus && !DS.isTypeSpecPipe()) {
1383         S.Diag(DeclLoc, diag::err_missing_type_specifier)
1384           << DS.getSourceRange();
1385 
1386         // When this occurs in C++ code, often something is very broken with the
1387         // value being declared, poison it as invalid so we don't get chains of
1388         // errors.
1389         declarator.setInvalidType(true);
1390       } else if ((S.getLangOpts().OpenCLVersion >= 200 ||
1391                   S.getLangOpts().OpenCLCPlusPlus) &&
1392                  DS.isTypeSpecPipe()) {
1393         S.Diag(DeclLoc, diag::err_missing_actual_pipe_type)
1394           << DS.getSourceRange();
1395         declarator.setInvalidType(true);
1396       } else {
1397         S.Diag(DeclLoc, diag::ext_missing_type_specifier)
1398           << DS.getSourceRange();
1399       }
1400     }
1401 
1402     LLVM_FALLTHROUGH;
1403   case DeclSpec::TST_int: {
1404     if (DS.getTypeSpecSign() != DeclSpec::TSS_unsigned) {
1405       switch (DS.getTypeSpecWidth()) {
1406       case DeclSpec::TSW_unspecified: Result = Context.IntTy; break;
1407       case DeclSpec::TSW_short:       Result = Context.ShortTy; break;
1408       case DeclSpec::TSW_long:        Result = Context.LongTy; break;
1409       case DeclSpec::TSW_longlong:
1410         Result = Context.LongLongTy;
1411 
1412         // 'long long' is a C99 or C++11 feature.
1413         if (!S.getLangOpts().C99) {
1414           if (S.getLangOpts().CPlusPlus)
1415             S.Diag(DS.getTypeSpecWidthLoc(),
1416                    S.getLangOpts().CPlusPlus11 ?
1417                    diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong);
1418           else
1419             S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong);
1420         }
1421         break;
1422       }
1423     } else {
1424       switch (DS.getTypeSpecWidth()) {
1425       case DeclSpec::TSW_unspecified: Result = Context.UnsignedIntTy; break;
1426       case DeclSpec::TSW_short:       Result = Context.UnsignedShortTy; break;
1427       case DeclSpec::TSW_long:        Result = Context.UnsignedLongTy; break;
1428       case DeclSpec::TSW_longlong:
1429         Result = Context.UnsignedLongLongTy;
1430 
1431         // 'long long' is a C99 or C++11 feature.
1432         if (!S.getLangOpts().C99) {
1433           if (S.getLangOpts().CPlusPlus)
1434             S.Diag(DS.getTypeSpecWidthLoc(),
1435                    S.getLangOpts().CPlusPlus11 ?
1436                    diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong);
1437           else
1438             S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong);
1439         }
1440         break;
1441       }
1442     }
1443     break;
1444   }
1445   case DeclSpec::TST_extint: {
1446     if (!S.Context.getTargetInfo().hasExtIntType())
1447       S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
1448         << "_ExtInt";
1449     Result = S.BuildExtIntType(DS.getTypeSpecSign() == TSS_unsigned,
1450                                DS.getRepAsExpr(), DS.getBeginLoc());
1451     if (Result.isNull()) {
1452       Result = Context.IntTy;
1453       declarator.setInvalidType(true);
1454     }
1455     break;
1456   }
1457   case DeclSpec::TST_accum: {
1458     switch (DS.getTypeSpecWidth()) {
1459       case DeclSpec::TSW_short:
1460         Result = Context.ShortAccumTy;
1461         break;
1462       case DeclSpec::TSW_unspecified:
1463         Result = Context.AccumTy;
1464         break;
1465       case DeclSpec::TSW_long:
1466         Result = Context.LongAccumTy;
1467         break;
1468       case DeclSpec::TSW_longlong:
1469         llvm_unreachable("Unable to specify long long as _Accum width");
1470     }
1471 
1472     if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
1473       Result = Context.getCorrespondingUnsignedType(Result);
1474 
1475     if (DS.isTypeSpecSat())
1476       Result = Context.getCorrespondingSaturatedType(Result);
1477 
1478     break;
1479   }
1480   case DeclSpec::TST_fract: {
1481     switch (DS.getTypeSpecWidth()) {
1482       case DeclSpec::TSW_short:
1483         Result = Context.ShortFractTy;
1484         break;
1485       case DeclSpec::TSW_unspecified:
1486         Result = Context.FractTy;
1487         break;
1488       case DeclSpec::TSW_long:
1489         Result = Context.LongFractTy;
1490         break;
1491       case DeclSpec::TSW_longlong:
1492         llvm_unreachable("Unable to specify long long as _Fract width");
1493     }
1494 
1495     if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
1496       Result = Context.getCorrespondingUnsignedType(Result);
1497 
1498     if (DS.isTypeSpecSat())
1499       Result = Context.getCorrespondingSaturatedType(Result);
1500 
1501     break;
1502   }
1503   case DeclSpec::TST_int128:
1504     if (!S.Context.getTargetInfo().hasInt128Type() &&
1505         !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
1506       S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
1507         << "__int128";
1508     if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
1509       Result = Context.UnsignedInt128Ty;
1510     else
1511       Result = Context.Int128Ty;
1512     break;
1513   case DeclSpec::TST_float16:
1514     // CUDA host and device may have different _Float16 support, therefore
1515     // do not diagnose _Float16 usage to avoid false alarm.
1516     // ToDo: more precise diagnostics for CUDA.
1517     if (!S.Context.getTargetInfo().hasFloat16Type() && !S.getLangOpts().CUDA &&
1518         !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
1519       S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
1520         << "_Float16";
1521     Result = Context.Float16Ty;
1522     break;
1523   case DeclSpec::TST_half:    Result = Context.HalfTy; break;
1524   case DeclSpec::TST_BFloat16:
1525     if (!S.Context.getTargetInfo().hasBFloat16Type())
1526       S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
1527         << "__bf16";
1528     Result = Context.BFloat16Ty;
1529     break;
1530   case DeclSpec::TST_float:   Result = Context.FloatTy; break;
1531   case DeclSpec::TST_double:
1532     if (DS.getTypeSpecWidth() == DeclSpec::TSW_long)
1533       Result = Context.LongDoubleTy;
1534     else
1535       Result = Context.DoubleTy;
1536     break;
1537   case DeclSpec::TST_float128:
1538     if (!S.Context.getTargetInfo().hasFloat128Type() &&
1539         !S.getLangOpts().SYCLIsDevice &&
1540         !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
1541       S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
1542         << "__float128";
1543     Result = Context.Float128Ty;
1544     break;
1545   case DeclSpec::TST_bool: Result = Context.BoolTy; break; // _Bool or bool
1546     break;
1547   case DeclSpec::TST_decimal32:    // _Decimal32
1548   case DeclSpec::TST_decimal64:    // _Decimal64
1549   case DeclSpec::TST_decimal128:   // _Decimal128
1550     S.Diag(DS.getTypeSpecTypeLoc(), diag::err_decimal_unsupported);
1551     Result = Context.IntTy;
1552     declarator.setInvalidType(true);
1553     break;
1554   case DeclSpec::TST_class:
1555   case DeclSpec::TST_enum:
1556   case DeclSpec::TST_union:
1557   case DeclSpec::TST_struct:
1558   case DeclSpec::TST_interface: {
1559     TagDecl *D = dyn_cast_or_null<TagDecl>(DS.getRepAsDecl());
1560     if (!D) {
1561       // This can happen in C++ with ambiguous lookups.
1562       Result = Context.IntTy;
1563       declarator.setInvalidType(true);
1564       break;
1565     }
1566 
1567     // If the type is deprecated or unavailable, diagnose it.
1568     S.DiagnoseUseOfDecl(D, DS.getTypeSpecTypeNameLoc());
1569 
1570     assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 &&
1571            DS.getTypeSpecSign() == 0 && "No qualifiers on tag names!");
1572 
1573     // TypeQuals handled by caller.
1574     Result = Context.getTypeDeclType(D);
1575 
1576     // In both C and C++, make an ElaboratedType.
1577     ElaboratedTypeKeyword Keyword
1578       = ElaboratedType::getKeywordForTypeSpec(DS.getTypeSpecType());
1579     Result = S.getElaboratedType(Keyword, DS.getTypeSpecScope(), Result,
1580                                  DS.isTypeSpecOwned() ? D : nullptr);
1581     break;
1582   }
1583   case DeclSpec::TST_typename: {
1584     assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 &&
1585            DS.getTypeSpecSign() == 0 &&
1586            "Can't handle qualifiers on typedef names yet!");
1587     Result = S.GetTypeFromParser(DS.getRepAsType());
1588     if (Result.isNull()) {
1589       declarator.setInvalidType(true);
1590     }
1591 
1592     // TypeQuals handled by caller.
1593     break;
1594   }
1595   case DeclSpec::TST_typeofType:
1596     // FIXME: Preserve type source info.
1597     Result = S.GetTypeFromParser(DS.getRepAsType());
1598     assert(!Result.isNull() && "Didn't get a type for typeof?");
1599     if (!Result->isDependentType())
1600       if (const TagType *TT = Result->getAs<TagType>())
1601         S.DiagnoseUseOfDecl(TT->getDecl(), DS.getTypeSpecTypeLoc());
1602     // TypeQuals handled by caller.
1603     Result = Context.getTypeOfType(Result);
1604     break;
1605   case DeclSpec::TST_typeofExpr: {
1606     Expr *E = DS.getRepAsExpr();
1607     assert(E && "Didn't get an expression for typeof?");
1608     // TypeQuals handled by caller.
1609     Result = S.BuildTypeofExprType(E, DS.getTypeSpecTypeLoc());
1610     if (Result.isNull()) {
1611       Result = Context.IntTy;
1612       declarator.setInvalidType(true);
1613     }
1614     break;
1615   }
1616   case DeclSpec::TST_decltype: {
1617     Expr *E = DS.getRepAsExpr();
1618     assert(E && "Didn't get an expression for decltype?");
1619     // TypeQuals handled by caller.
1620     Result = S.BuildDecltypeType(E, DS.getTypeSpecTypeLoc());
1621     if (Result.isNull()) {
1622       Result = Context.IntTy;
1623       declarator.setInvalidType(true);
1624     }
1625     break;
1626   }
1627   case DeclSpec::TST_underlyingType:
1628     Result = S.GetTypeFromParser(DS.getRepAsType());
1629     assert(!Result.isNull() && "Didn't get a type for __underlying_type?");
1630     Result = S.BuildUnaryTransformType(Result,
1631                                        UnaryTransformType::EnumUnderlyingType,
1632                                        DS.getTypeSpecTypeLoc());
1633     if (Result.isNull()) {
1634       Result = Context.IntTy;
1635       declarator.setInvalidType(true);
1636     }
1637     break;
1638 
1639   case DeclSpec::TST_auto:
1640     if (DS.isConstrainedAuto()) {
1641       Result = ConvertConstrainedAutoDeclSpecToType(S, DS,
1642                                                     AutoTypeKeyword::Auto);
1643       break;
1644     }
1645     Result = Context.getAutoType(QualType(), AutoTypeKeyword::Auto, false);
1646     break;
1647 
1648   case DeclSpec::TST_auto_type:
1649     Result = Context.getAutoType(QualType(), AutoTypeKeyword::GNUAutoType, false);
1650     break;
1651 
1652   case DeclSpec::TST_decltype_auto:
1653     if (DS.isConstrainedAuto()) {
1654       Result =
1655           ConvertConstrainedAutoDeclSpecToType(S, DS,
1656                                                AutoTypeKeyword::DecltypeAuto);
1657       break;
1658     }
1659     Result = Context.getAutoType(QualType(), AutoTypeKeyword::DecltypeAuto,
1660                                  /*IsDependent*/ false);
1661     break;
1662 
1663   case DeclSpec::TST_unknown_anytype:
1664     Result = Context.UnknownAnyTy;
1665     break;
1666 
1667   case DeclSpec::TST_atomic:
1668     Result = S.GetTypeFromParser(DS.getRepAsType());
1669     assert(!Result.isNull() && "Didn't get a type for _Atomic?");
1670     Result = S.BuildAtomicType(Result, DS.getTypeSpecTypeLoc());
1671     if (Result.isNull()) {
1672       Result = Context.IntTy;
1673       declarator.setInvalidType(true);
1674     }
1675     break;
1676 
1677 #define GENERIC_IMAGE_TYPE(ImgType, Id)                                        \
1678   case DeclSpec::TST_##ImgType##_t:                                            \
1679     switch (getImageAccess(DS.getAttributes())) {                              \
1680     case OpenCLAccessAttr::Keyword_write_only:                                 \
1681       Result = Context.Id##WOTy;                                               \
1682       break;                                                                   \
1683     case OpenCLAccessAttr::Keyword_read_write:                                 \
1684       Result = Context.Id##RWTy;                                               \
1685       break;                                                                   \
1686     case OpenCLAccessAttr::Keyword_read_only:                                  \
1687       Result = Context.Id##ROTy;                                               \
1688       break;                                                                   \
1689     case OpenCLAccessAttr::SpellingNotCalculated:                              \
1690       llvm_unreachable("Spelling not yet calculated");                         \
1691     }                                                                          \
1692     break;
1693 #include "clang/Basic/OpenCLImageTypes.def"
1694 
1695   case DeclSpec::TST_error:
1696     Result = Context.IntTy;
1697     declarator.setInvalidType(true);
1698     break;
1699   }
1700 
1701   // FIXME: we want resulting declarations to be marked invalid, but claiming
1702   // the type is invalid is too strong - e.g. it causes ActOnTypeName to return
1703   // a null type.
1704   if (Result->containsErrors())
1705     declarator.setInvalidType();
1706 
1707   if (S.getLangOpts().OpenCL &&
1708       S.checkOpenCLDisabledTypeDeclSpec(DS, Result))
1709     declarator.setInvalidType(true);
1710 
1711   bool IsFixedPointType = DS.getTypeSpecType() == DeclSpec::TST_accum ||
1712                           DS.getTypeSpecType() == DeclSpec::TST_fract;
1713 
1714   // Only fixed point types can be saturated
1715   if (DS.isTypeSpecSat() && !IsFixedPointType)
1716     S.Diag(DS.getTypeSpecSatLoc(), diag::err_invalid_saturation_spec)
1717         << DS.getSpecifierName(DS.getTypeSpecType(),
1718                                Context.getPrintingPolicy());
1719 
1720   // Handle complex types.
1721   if (DS.getTypeSpecComplex() == DeclSpec::TSC_complex) {
1722     if (S.getLangOpts().Freestanding)
1723       S.Diag(DS.getTypeSpecComplexLoc(), diag::ext_freestanding_complex);
1724     Result = Context.getComplexType(Result);
1725   } else if (DS.isTypeAltiVecVector()) {
1726     unsigned typeSize = static_cast<unsigned>(Context.getTypeSize(Result));
1727     assert(typeSize > 0 && "type size for vector must be greater than 0 bits");
1728     VectorType::VectorKind VecKind = VectorType::AltiVecVector;
1729     if (DS.isTypeAltiVecPixel())
1730       VecKind = VectorType::AltiVecPixel;
1731     else if (DS.isTypeAltiVecBool())
1732       VecKind = VectorType::AltiVecBool;
1733     Result = Context.getVectorType(Result, 128/typeSize, VecKind);
1734   }
1735 
1736   // FIXME: Imaginary.
1737   if (DS.getTypeSpecComplex() == DeclSpec::TSC_imaginary)
1738     S.Diag(DS.getTypeSpecComplexLoc(), diag::err_imaginary_not_supported);
1739 
1740   // Before we process any type attributes, synthesize a block literal
1741   // function declarator if necessary.
1742   if (declarator.getContext() == DeclaratorContext::BlockLiteralContext)
1743     maybeSynthesizeBlockSignature(state, Result);
1744 
1745   // Apply any type attributes from the decl spec.  This may cause the
1746   // list of type attributes to be temporarily saved while the type
1747   // attributes are pushed around.
1748   // pipe attributes will be handled later ( at GetFullTypeForDeclarator )
1749   if (!DS.isTypeSpecPipe())
1750     processTypeAttrs(state, Result, TAL_DeclSpec, DS.getAttributes());
1751 
1752   // Apply const/volatile/restrict qualifiers to T.
1753   if (unsigned TypeQuals = DS.getTypeQualifiers()) {
1754     // Warn about CV qualifiers on function types.
1755     // C99 6.7.3p8:
1756     //   If the specification of a function type includes any type qualifiers,
1757     //   the behavior is undefined.
1758     // C++11 [dcl.fct]p7:
1759     //   The effect of a cv-qualifier-seq in a function declarator is not the
1760     //   same as adding cv-qualification on top of the function type. In the
1761     //   latter case, the cv-qualifiers are ignored.
1762     if (TypeQuals && Result->isFunctionType()) {
1763       diagnoseAndRemoveTypeQualifiers(
1764           S, DS, TypeQuals, Result, DeclSpec::TQ_const | DeclSpec::TQ_volatile,
1765           S.getLangOpts().CPlusPlus
1766               ? diag::warn_typecheck_function_qualifiers_ignored
1767               : diag::warn_typecheck_function_qualifiers_unspecified);
1768       // No diagnostic for 'restrict' or '_Atomic' applied to a
1769       // function type; we'll diagnose those later, in BuildQualifiedType.
1770     }
1771 
1772     // C++11 [dcl.ref]p1:
1773     //   Cv-qualified references are ill-formed except when the
1774     //   cv-qualifiers are introduced through the use of a typedef-name
1775     //   or decltype-specifier, in which case the cv-qualifiers are ignored.
1776     //
1777     // There don't appear to be any other contexts in which a cv-qualified
1778     // reference type could be formed, so the 'ill-formed' clause here appears
1779     // to never happen.
1780     if (TypeQuals && Result->isReferenceType()) {
1781       diagnoseAndRemoveTypeQualifiers(
1782           S, DS, TypeQuals, Result,
1783           DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic,
1784           diag::warn_typecheck_reference_qualifiers);
1785     }
1786 
1787     // C90 6.5.3 constraints: "The same type qualifier shall not appear more
1788     // than once in the same specifier-list or qualifier-list, either directly
1789     // or via one or more typedefs."
1790     if (!S.getLangOpts().C99 && !S.getLangOpts().CPlusPlus
1791         && TypeQuals & Result.getCVRQualifiers()) {
1792       if (TypeQuals & DeclSpec::TQ_const && Result.isConstQualified()) {
1793         S.Diag(DS.getConstSpecLoc(), diag::ext_duplicate_declspec)
1794           << "const";
1795       }
1796 
1797       if (TypeQuals & DeclSpec::TQ_volatile && Result.isVolatileQualified()) {
1798         S.Diag(DS.getVolatileSpecLoc(), diag::ext_duplicate_declspec)
1799           << "volatile";
1800       }
1801 
1802       // C90 doesn't have restrict nor _Atomic, so it doesn't force us to
1803       // produce a warning in this case.
1804     }
1805 
1806     QualType Qualified = S.BuildQualifiedType(Result, DeclLoc, TypeQuals, &DS);
1807 
1808     // If adding qualifiers fails, just use the unqualified type.
1809     if (Qualified.isNull())
1810       declarator.setInvalidType(true);
1811     else
1812       Result = Qualified;
1813   }
1814 
1815   assert(!Result.isNull() && "This function should not return a null type");
1816   return Result;
1817 }
1818 
1819 static std::string getPrintableNameForEntity(DeclarationName Entity) {
1820   if (Entity)
1821     return Entity.getAsString();
1822 
1823   return "type name";
1824 }
1825 
1826 QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc,
1827                                   Qualifiers Qs, const DeclSpec *DS) {
1828   if (T.isNull())
1829     return QualType();
1830 
1831   // Ignore any attempt to form a cv-qualified reference.
1832   if (T->isReferenceType()) {
1833     Qs.removeConst();
1834     Qs.removeVolatile();
1835   }
1836 
1837   // Enforce C99 6.7.3p2: "Types other than pointer types derived from
1838   // object or incomplete types shall not be restrict-qualified."
1839   if (Qs.hasRestrict()) {
1840     unsigned DiagID = 0;
1841     QualType ProblemTy;
1842 
1843     if (T->isAnyPointerType() || T->isReferenceType() ||
1844         T->isMemberPointerType()) {
1845       QualType EltTy;
1846       if (T->isObjCObjectPointerType())
1847         EltTy = T;
1848       else if (const MemberPointerType *PTy = T->getAs<MemberPointerType>())
1849         EltTy = PTy->getPointeeType();
1850       else
1851         EltTy = T->getPointeeType();
1852 
1853       // If we have a pointer or reference, the pointee must have an object
1854       // incomplete type.
1855       if (!EltTy->isIncompleteOrObjectType()) {
1856         DiagID = diag::err_typecheck_invalid_restrict_invalid_pointee;
1857         ProblemTy = EltTy;
1858       }
1859     } else if (!T->isDependentType()) {
1860       DiagID = diag::err_typecheck_invalid_restrict_not_pointer;
1861       ProblemTy = T;
1862     }
1863 
1864     if (DiagID) {
1865       Diag(DS ? DS->getRestrictSpecLoc() : Loc, DiagID) << ProblemTy;
1866       Qs.removeRestrict();
1867     }
1868   }
1869 
1870   return Context.getQualifiedType(T, Qs);
1871 }
1872 
1873 QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc,
1874                                   unsigned CVRAU, const DeclSpec *DS) {
1875   if (T.isNull())
1876     return QualType();
1877 
1878   // Ignore any attempt to form a cv-qualified reference.
1879   if (T->isReferenceType())
1880     CVRAU &=
1881         ~(DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic);
1882 
1883   // Convert from DeclSpec::TQ to Qualifiers::TQ by just dropping TQ_atomic and
1884   // TQ_unaligned;
1885   unsigned CVR = CVRAU & ~(DeclSpec::TQ_atomic | DeclSpec::TQ_unaligned);
1886 
1887   // C11 6.7.3/5:
1888   //   If the same qualifier appears more than once in the same
1889   //   specifier-qualifier-list, either directly or via one or more typedefs,
1890   //   the behavior is the same as if it appeared only once.
1891   //
1892   // It's not specified what happens when the _Atomic qualifier is applied to
1893   // a type specified with the _Atomic specifier, but we assume that this
1894   // should be treated as if the _Atomic qualifier appeared multiple times.
1895   if (CVRAU & DeclSpec::TQ_atomic && !T->isAtomicType()) {
1896     // C11 6.7.3/5:
1897     //   If other qualifiers appear along with the _Atomic qualifier in a
1898     //   specifier-qualifier-list, the resulting type is the so-qualified
1899     //   atomic type.
1900     //
1901     // Don't need to worry about array types here, since _Atomic can't be
1902     // applied to such types.
1903     SplitQualType Split = T.getSplitUnqualifiedType();
1904     T = BuildAtomicType(QualType(Split.Ty, 0),
1905                         DS ? DS->getAtomicSpecLoc() : Loc);
1906     if (T.isNull())
1907       return T;
1908     Split.Quals.addCVRQualifiers(CVR);
1909     return BuildQualifiedType(T, Loc, Split.Quals);
1910   }
1911 
1912   Qualifiers Q = Qualifiers::fromCVRMask(CVR);
1913   Q.setUnaligned(CVRAU & DeclSpec::TQ_unaligned);
1914   return BuildQualifiedType(T, Loc, Q, DS);
1915 }
1916 
1917 /// Build a paren type including \p T.
1918 QualType Sema::BuildParenType(QualType T) {
1919   return Context.getParenType(T);
1920 }
1921 
1922 /// Given that we're building a pointer or reference to the given
1923 static QualType inferARCLifetimeForPointee(Sema &S, QualType type,
1924                                            SourceLocation loc,
1925                                            bool isReference) {
1926   // Bail out if retention is unrequired or already specified.
1927   if (!type->isObjCLifetimeType() ||
1928       type.getObjCLifetime() != Qualifiers::OCL_None)
1929     return type;
1930 
1931   Qualifiers::ObjCLifetime implicitLifetime = Qualifiers::OCL_None;
1932 
1933   // If the object type is const-qualified, we can safely use
1934   // __unsafe_unretained.  This is safe (because there are no read
1935   // barriers), and it'll be safe to coerce anything but __weak* to
1936   // the resulting type.
1937   if (type.isConstQualified()) {
1938     implicitLifetime = Qualifiers::OCL_ExplicitNone;
1939 
1940   // Otherwise, check whether the static type does not require
1941   // retaining.  This currently only triggers for Class (possibly
1942   // protocol-qualifed, and arrays thereof).
1943   } else if (type->isObjCARCImplicitlyUnretainedType()) {
1944     implicitLifetime = Qualifiers::OCL_ExplicitNone;
1945 
1946   // If we are in an unevaluated context, like sizeof, skip adding a
1947   // qualification.
1948   } else if (S.isUnevaluatedContext()) {
1949     return type;
1950 
1951   // If that failed, give an error and recover using __strong.  __strong
1952   // is the option most likely to prevent spurious second-order diagnostics,
1953   // like when binding a reference to a field.
1954   } else {
1955     // These types can show up in private ivars in system headers, so
1956     // we need this to not be an error in those cases.  Instead we
1957     // want to delay.
1958     if (S.DelayedDiagnostics.shouldDelayDiagnostics()) {
1959       S.DelayedDiagnostics.add(
1960           sema::DelayedDiagnostic::makeForbiddenType(loc,
1961               diag::err_arc_indirect_no_ownership, type, isReference));
1962     } else {
1963       S.Diag(loc, diag::err_arc_indirect_no_ownership) << type << isReference;
1964     }
1965     implicitLifetime = Qualifiers::OCL_Strong;
1966   }
1967   assert(implicitLifetime && "didn't infer any lifetime!");
1968 
1969   Qualifiers qs;
1970   qs.addObjCLifetime(implicitLifetime);
1971   return S.Context.getQualifiedType(type, qs);
1972 }
1973 
1974 static std::string getFunctionQualifiersAsString(const FunctionProtoType *FnTy){
1975   std::string Quals = FnTy->getMethodQuals().getAsString();
1976 
1977   switch (FnTy->getRefQualifier()) {
1978   case RQ_None:
1979     break;
1980 
1981   case RQ_LValue:
1982     if (!Quals.empty())
1983       Quals += ' ';
1984     Quals += '&';
1985     break;
1986 
1987   case RQ_RValue:
1988     if (!Quals.empty())
1989       Quals += ' ';
1990     Quals += "&&";
1991     break;
1992   }
1993 
1994   return Quals;
1995 }
1996 
1997 namespace {
1998 /// Kinds of declarator that cannot contain a qualified function type.
1999 ///
2000 /// C++98 [dcl.fct]p4 / C++11 [dcl.fct]p6:
2001 ///     a function type with a cv-qualifier or a ref-qualifier can only appear
2002 ///     at the topmost level of a type.
2003 ///
2004 /// Parens and member pointers are permitted. We don't diagnose array and
2005 /// function declarators, because they don't allow function types at all.
2006 ///
2007 /// The values of this enum are used in diagnostics.
2008 enum QualifiedFunctionKind { QFK_BlockPointer, QFK_Pointer, QFK_Reference };
2009 } // end anonymous namespace
2010 
2011 /// Check whether the type T is a qualified function type, and if it is,
2012 /// diagnose that it cannot be contained within the given kind of declarator.
2013 static bool checkQualifiedFunction(Sema &S, QualType T, SourceLocation Loc,
2014                                    QualifiedFunctionKind QFK) {
2015   // Does T refer to a function type with a cv-qualifier or a ref-qualifier?
2016   const FunctionProtoType *FPT = T->getAs<FunctionProtoType>();
2017   if (!FPT ||
2018       (FPT->getMethodQuals().empty() && FPT->getRefQualifier() == RQ_None))
2019     return false;
2020 
2021   S.Diag(Loc, diag::err_compound_qualified_function_type)
2022     << QFK << isa<FunctionType>(T.IgnoreParens()) << T
2023     << getFunctionQualifiersAsString(FPT);
2024   return true;
2025 }
2026 
2027 bool Sema::CheckQualifiedFunctionForTypeId(QualType T, SourceLocation Loc) {
2028   const FunctionProtoType *FPT = T->getAs<FunctionProtoType>();
2029   if (!FPT ||
2030       (FPT->getMethodQuals().empty() && FPT->getRefQualifier() == RQ_None))
2031     return false;
2032 
2033   Diag(Loc, diag::err_qualified_function_typeid)
2034       << T << getFunctionQualifiersAsString(FPT);
2035   return true;
2036 }
2037 
2038 // Helper to deduce addr space of a pointee type in OpenCL mode.
2039 static QualType deduceOpenCLPointeeAddrSpace(Sema &S, QualType PointeeType) {
2040   if (!PointeeType->isUndeducedAutoType() && !PointeeType->isDependentType() &&
2041       !PointeeType->isSamplerT() &&
2042       !PointeeType.hasAddressSpace())
2043     PointeeType = S.getASTContext().getAddrSpaceQualType(
2044         PointeeType,
2045         S.getLangOpts().OpenCLCPlusPlus || S.getLangOpts().OpenCLVersion == 200
2046             ? LangAS::opencl_generic
2047             : LangAS::opencl_private);
2048   return PointeeType;
2049 }
2050 
2051 /// Build a pointer type.
2052 ///
2053 /// \param T The type to which we'll be building a pointer.
2054 ///
2055 /// \param Loc The location of the entity whose type involves this
2056 /// pointer type or, if there is no such entity, the location of the
2057 /// type that will have pointer type.
2058 ///
2059 /// \param Entity The name of the entity that involves the pointer
2060 /// type, if known.
2061 ///
2062 /// \returns A suitable pointer type, if there are no
2063 /// errors. Otherwise, returns a NULL type.
2064 QualType Sema::BuildPointerType(QualType T,
2065                                 SourceLocation Loc, DeclarationName Entity) {
2066   if (T->isReferenceType()) {
2067     // C++ 8.3.2p4: There shall be no ... pointers to references ...
2068     Diag(Loc, diag::err_illegal_decl_pointer_to_reference)
2069       << getPrintableNameForEntity(Entity) << T;
2070     return QualType();
2071   }
2072 
2073   if (T->isFunctionType() && getLangOpts().OpenCL) {
2074     Diag(Loc, diag::err_opencl_function_pointer);
2075     return QualType();
2076   }
2077 
2078   if (checkQualifiedFunction(*this, T, Loc, QFK_Pointer))
2079     return QualType();
2080 
2081   assert(!T->isObjCObjectType() && "Should build ObjCObjectPointerType");
2082 
2083   // In ARC, it is forbidden to build pointers to unqualified pointers.
2084   if (getLangOpts().ObjCAutoRefCount)
2085     T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ false);
2086 
2087   if (getLangOpts().OpenCL)
2088     T = deduceOpenCLPointeeAddrSpace(*this, T);
2089 
2090   // Build the pointer type.
2091   return Context.getPointerType(T);
2092 }
2093 
2094 /// Build a reference type.
2095 ///
2096 /// \param T The type to which we'll be building a reference.
2097 ///
2098 /// \param Loc The location of the entity whose type involves this
2099 /// reference type or, if there is no such entity, the location of the
2100 /// type that will have reference type.
2101 ///
2102 /// \param Entity The name of the entity that involves the reference
2103 /// type, if known.
2104 ///
2105 /// \returns A suitable reference type, if there are no
2106 /// errors. Otherwise, returns a NULL type.
2107 QualType Sema::BuildReferenceType(QualType T, bool SpelledAsLValue,
2108                                   SourceLocation Loc,
2109                                   DeclarationName Entity) {
2110   assert(Context.getCanonicalType(T) != Context.OverloadTy &&
2111          "Unresolved overloaded function type");
2112 
2113   // C++0x [dcl.ref]p6:
2114   //   If a typedef (7.1.3), a type template-parameter (14.3.1), or a
2115   //   decltype-specifier (7.1.6.2) denotes a type TR that is a reference to a
2116   //   type T, an attempt to create the type "lvalue reference to cv TR" creates
2117   //   the type "lvalue reference to T", while an attempt to create the type
2118   //   "rvalue reference to cv TR" creates the type TR.
2119   bool LValueRef = SpelledAsLValue || T->getAs<LValueReferenceType>();
2120 
2121   // C++ [dcl.ref]p4: There shall be no references to references.
2122   //
2123   // According to C++ DR 106, references to references are only
2124   // diagnosed when they are written directly (e.g., "int & &"),
2125   // but not when they happen via a typedef:
2126   //
2127   //   typedef int& intref;
2128   //   typedef intref& intref2;
2129   //
2130   // Parser::ParseDeclaratorInternal diagnoses the case where
2131   // references are written directly; here, we handle the
2132   // collapsing of references-to-references as described in C++0x.
2133   // DR 106 and 540 introduce reference-collapsing into C++98/03.
2134 
2135   // C++ [dcl.ref]p1:
2136   //   A declarator that specifies the type "reference to cv void"
2137   //   is ill-formed.
2138   if (T->isVoidType()) {
2139     Diag(Loc, diag::err_reference_to_void);
2140     return QualType();
2141   }
2142 
2143   if (checkQualifiedFunction(*this, T, Loc, QFK_Reference))
2144     return QualType();
2145 
2146   // In ARC, it is forbidden to build references to unqualified pointers.
2147   if (getLangOpts().ObjCAutoRefCount)
2148     T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ true);
2149 
2150   if (getLangOpts().OpenCL)
2151     T = deduceOpenCLPointeeAddrSpace(*this, T);
2152 
2153   // Handle restrict on references.
2154   if (LValueRef)
2155     return Context.getLValueReferenceType(T, SpelledAsLValue);
2156   return Context.getRValueReferenceType(T);
2157 }
2158 
2159 /// Build a Read-only Pipe type.
2160 ///
2161 /// \param T The type to which we'll be building a Pipe.
2162 ///
2163 /// \param Loc We do not use it for now.
2164 ///
2165 /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a
2166 /// NULL type.
2167 QualType Sema::BuildReadPipeType(QualType T, SourceLocation Loc) {
2168   return Context.getReadPipeType(T);
2169 }
2170 
2171 /// Build a Write-only Pipe type.
2172 ///
2173 /// \param T The type to which we'll be building a Pipe.
2174 ///
2175 /// \param Loc We do not use it for now.
2176 ///
2177 /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a
2178 /// NULL type.
2179 QualType Sema::BuildWritePipeType(QualType T, SourceLocation Loc) {
2180   return Context.getWritePipeType(T);
2181 }
2182 
2183 /// Build a extended int type.
2184 ///
2185 /// \param IsUnsigned Boolean representing the signedness of the type.
2186 ///
2187 /// \param BitWidth Size of this int type in bits, or an expression representing
2188 /// that.
2189 ///
2190 /// \param Loc Location of the keyword.
2191 QualType Sema::BuildExtIntType(bool IsUnsigned, Expr *BitWidth,
2192                                SourceLocation Loc) {
2193   if (BitWidth->isInstantiationDependent())
2194     return Context.getDependentExtIntType(IsUnsigned, BitWidth);
2195 
2196   llvm::APSInt Bits(32);
2197   ExprResult ICE = VerifyIntegerConstantExpression(BitWidth, &Bits);
2198 
2199   if (ICE.isInvalid())
2200     return QualType();
2201 
2202   int64_t NumBits = Bits.getSExtValue();
2203   if (!IsUnsigned && NumBits < 2) {
2204     Diag(Loc, diag::err_ext_int_bad_size) << 0;
2205     return QualType();
2206   }
2207 
2208   if (IsUnsigned && NumBits < 1) {
2209     Diag(Loc, diag::err_ext_int_bad_size) << 1;
2210     return QualType();
2211   }
2212 
2213   if (NumBits > llvm::IntegerType::MAX_INT_BITS) {
2214     Diag(Loc, diag::err_ext_int_max_size) << IsUnsigned
2215                                           << llvm::IntegerType::MAX_INT_BITS;
2216     return QualType();
2217   }
2218 
2219   return Context.getExtIntType(IsUnsigned, NumBits);
2220 }
2221 
2222 /// Check whether the specified array size makes the array type a VLA.  If so,
2223 /// return true, if not, return the size of the array in SizeVal.
2224 static bool isArraySizeVLA(Sema &S, Expr *ArraySize, llvm::APSInt &SizeVal) {
2225   // If the size is an ICE, it certainly isn't a VLA. If we're in a GNU mode
2226   // (like gnu99, but not c99) accept any evaluatable value as an extension.
2227   class VLADiagnoser : public Sema::VerifyICEDiagnoser {
2228   public:
2229     VLADiagnoser() : Sema::VerifyICEDiagnoser(true) {}
2230 
2231     void diagnoseNotICE(Sema &S, SourceLocation Loc, SourceRange SR) override {
2232     }
2233 
2234     void diagnoseFold(Sema &S, SourceLocation Loc, SourceRange SR) override {
2235       S.Diag(Loc, diag::ext_vla_folded_to_constant) << SR;
2236     }
2237   } Diagnoser;
2238 
2239   return S.VerifyIntegerConstantExpression(ArraySize, &SizeVal, Diagnoser,
2240                                            S.LangOpts.GNUMode ||
2241                                            S.LangOpts.OpenCL).isInvalid();
2242 }
2243 
2244 /// Build an array type.
2245 ///
2246 /// \param T The type of each element in the array.
2247 ///
2248 /// \param ASM C99 array size modifier (e.g., '*', 'static').
2249 ///
2250 /// \param ArraySize Expression describing the size of the array.
2251 ///
2252 /// \param Brackets The range from the opening '[' to the closing ']'.
2253 ///
2254 /// \param Entity The name of the entity that involves the array
2255 /// type, if known.
2256 ///
2257 /// \returns A suitable array type, if there are no errors. Otherwise,
2258 /// returns a NULL type.
2259 QualType Sema::BuildArrayType(QualType T, ArrayType::ArraySizeModifier ASM,
2260                               Expr *ArraySize, unsigned Quals,
2261                               SourceRange Brackets, DeclarationName Entity) {
2262 
2263   SourceLocation Loc = Brackets.getBegin();
2264   if (getLangOpts().CPlusPlus) {
2265     // C++ [dcl.array]p1:
2266     //   T is called the array element type; this type shall not be a reference
2267     //   type, the (possibly cv-qualified) type void, a function type or an
2268     //   abstract class type.
2269     //
2270     // C++ [dcl.array]p3:
2271     //   When several "array of" specifications are adjacent, [...] only the
2272     //   first of the constant expressions that specify the bounds of the arrays
2273     //   may be omitted.
2274     //
2275     // Note: function types are handled in the common path with C.
2276     if (T->isReferenceType()) {
2277       Diag(Loc, diag::err_illegal_decl_array_of_references)
2278       << getPrintableNameForEntity(Entity) << T;
2279       return QualType();
2280     }
2281 
2282     if (T->isVoidType() || T->isIncompleteArrayType()) {
2283       Diag(Loc, diag::err_array_incomplete_or_sizeless_type) << 0 << T;
2284       return QualType();
2285     }
2286 
2287     if (RequireNonAbstractType(Brackets.getBegin(), T,
2288                                diag::err_array_of_abstract_type))
2289       return QualType();
2290 
2291     // Mentioning a member pointer type for an array type causes us to lock in
2292     // an inheritance model, even if it's inside an unused typedef.
2293     if (Context.getTargetInfo().getCXXABI().isMicrosoft())
2294       if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>())
2295         if (!MPTy->getClass()->isDependentType())
2296           (void)isCompleteType(Loc, T);
2297 
2298   } else {
2299     // C99 6.7.5.2p1: If the element type is an incomplete or function type,
2300     // reject it (e.g. void ary[7], struct foo ary[7], void ary[7]())
2301     if (RequireCompleteSizedType(Loc, T,
2302                                  diag::err_array_incomplete_or_sizeless_type))
2303       return QualType();
2304   }
2305 
2306   if (T->isSizelessType()) {
2307     Diag(Loc, diag::err_array_incomplete_or_sizeless_type) << 1 << T;
2308     return QualType();
2309   }
2310 
2311   if (T->isFunctionType()) {
2312     Diag(Loc, diag::err_illegal_decl_array_of_functions)
2313       << getPrintableNameForEntity(Entity) << T;
2314     return QualType();
2315   }
2316 
2317   if (const RecordType *EltTy = T->getAs<RecordType>()) {
2318     // If the element type is a struct or union that contains a variadic
2319     // array, accept it as a GNU extension: C99 6.7.2.1p2.
2320     if (EltTy->getDecl()->hasFlexibleArrayMember())
2321       Diag(Loc, diag::ext_flexible_array_in_array) << T;
2322   } else if (T->isObjCObjectType()) {
2323     Diag(Loc, diag::err_objc_array_of_interfaces) << T;
2324     return QualType();
2325   }
2326 
2327   // Do placeholder conversions on the array size expression.
2328   if (ArraySize && ArraySize->hasPlaceholderType()) {
2329     ExprResult Result = CheckPlaceholderExpr(ArraySize);
2330     if (Result.isInvalid()) return QualType();
2331     ArraySize = Result.get();
2332   }
2333 
2334   // Do lvalue-to-rvalue conversions on the array size expression.
2335   if (ArraySize && !ArraySize->isRValue()) {
2336     ExprResult Result = DefaultLvalueConversion(ArraySize);
2337     if (Result.isInvalid())
2338       return QualType();
2339 
2340     ArraySize = Result.get();
2341   }
2342 
2343   // C99 6.7.5.2p1: The size expression shall have integer type.
2344   // C++11 allows contextual conversions to such types.
2345   if (!getLangOpts().CPlusPlus11 &&
2346       ArraySize && !ArraySize->isTypeDependent() &&
2347       !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) {
2348     Diag(ArraySize->getBeginLoc(), diag::err_array_size_non_int)
2349         << ArraySize->getType() << ArraySize->getSourceRange();
2350     return QualType();
2351   }
2352 
2353   llvm::APSInt ConstVal(Context.getTypeSize(Context.getSizeType()));
2354   if (!ArraySize) {
2355     if (ASM == ArrayType::Star)
2356       T = Context.getVariableArrayType(T, nullptr, ASM, Quals, Brackets);
2357     else
2358       T = Context.getIncompleteArrayType(T, ASM, Quals);
2359   } else if (ArraySize->isTypeDependent() || ArraySize->isValueDependent()) {
2360     T = Context.getDependentSizedArrayType(T, ArraySize, ASM, Quals, Brackets);
2361   } else if ((!T->isDependentType() && !T->isIncompleteType() &&
2362               !T->isConstantSizeType()) ||
2363              isArraySizeVLA(*this, ArraySize, ConstVal)) {
2364     // Even in C++11, don't allow contextual conversions in the array bound
2365     // of a VLA.
2366     if (getLangOpts().CPlusPlus11 &&
2367         !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) {
2368       Diag(ArraySize->getBeginLoc(), diag::err_array_size_non_int)
2369           << ArraySize->getType() << ArraySize->getSourceRange();
2370       return QualType();
2371     }
2372 
2373     // C99: an array with an element type that has a non-constant-size is a VLA.
2374     // C99: an array with a non-ICE size is a VLA.  We accept any expression
2375     // that we can fold to a non-zero positive value as an extension.
2376     T = Context.getVariableArrayType(T, ArraySize, ASM, Quals, Brackets);
2377   } else {
2378     // C99 6.7.5.2p1: If the expression is a constant expression, it shall
2379     // have a value greater than zero.
2380     if (ConstVal.isSigned() && ConstVal.isNegative()) {
2381       if (Entity)
2382         Diag(ArraySize->getBeginLoc(), diag::err_decl_negative_array_size)
2383             << getPrintableNameForEntity(Entity) << ArraySize->getSourceRange();
2384       else
2385         Diag(ArraySize->getBeginLoc(), diag::err_typecheck_negative_array_size)
2386             << ArraySize->getSourceRange();
2387       return QualType();
2388     }
2389     if (ConstVal == 0) {
2390       // GCC accepts zero sized static arrays. We allow them when
2391       // we're not in a SFINAE context.
2392       Diag(ArraySize->getBeginLoc(), isSFINAEContext()
2393                                          ? diag::err_typecheck_zero_array_size
2394                                          : diag::ext_typecheck_zero_array_size)
2395           << ArraySize->getSourceRange();
2396 
2397       if (ASM == ArrayType::Static) {
2398         Diag(ArraySize->getBeginLoc(),
2399              diag::warn_typecheck_zero_static_array_size)
2400             << ArraySize->getSourceRange();
2401         ASM = ArrayType::Normal;
2402       }
2403     } else if (!T->isDependentType() && !T->isVariablyModifiedType() &&
2404                !T->isIncompleteType() && !T->isUndeducedType()) {
2405       // Is the array too large?
2406       unsigned ActiveSizeBits
2407         = ConstantArrayType::getNumAddressingBits(Context, T, ConstVal);
2408       if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) {
2409         Diag(ArraySize->getBeginLoc(), diag::err_array_too_large)
2410             << ConstVal.toString(10) << ArraySize->getSourceRange();
2411         return QualType();
2412       }
2413     }
2414 
2415     T = Context.getConstantArrayType(T, ConstVal, ArraySize, ASM, Quals);
2416   }
2417 
2418   // OpenCL v1.2 s6.9.d: variable length arrays are not supported.
2419   if (getLangOpts().OpenCL && T->isVariableArrayType()) {
2420     Diag(Loc, diag::err_opencl_vla);
2421     return QualType();
2422   }
2423 
2424   if (T->isVariableArrayType() && !Context.getTargetInfo().isVLASupported()) {
2425     // CUDA device code and some other targets don't support VLAs.
2426     targetDiag(Loc, (getLangOpts().CUDA && getLangOpts().CUDAIsDevice)
2427                         ? diag::err_cuda_vla
2428                         : diag::err_vla_unsupported)
2429         << ((getLangOpts().CUDA && getLangOpts().CUDAIsDevice)
2430                 ? CurrentCUDATarget()
2431                 : CFT_InvalidTarget);
2432   }
2433 
2434   // If this is not C99, extwarn about VLA's and C99 array size modifiers.
2435   if (!getLangOpts().C99) {
2436     if (T->isVariableArrayType()) {
2437       // Prohibit the use of VLAs during template argument deduction.
2438       if (isSFINAEContext()) {
2439         Diag(Loc, diag::err_vla_in_sfinae);
2440         return QualType();
2441       }
2442       // Just extwarn about VLAs.
2443       else
2444         Diag(Loc, diag::ext_vla);
2445     } else if (ASM != ArrayType::Normal || Quals != 0)
2446       Diag(Loc,
2447            getLangOpts().CPlusPlus? diag::err_c99_array_usage_cxx
2448                                   : diag::ext_c99_array_usage) << ASM;
2449   }
2450 
2451   if (T->isVariableArrayType()) {
2452     // Warn about VLAs for -Wvla.
2453     Diag(Loc, diag::warn_vla_used);
2454   }
2455 
2456   // OpenCL v2.0 s6.12.5 - Arrays of blocks are not supported.
2457   // OpenCL v2.0 s6.16.13.1 - Arrays of pipe type are not supported.
2458   // OpenCL v2.0 s6.9.b - Arrays of image/sampler type are not supported.
2459   if (getLangOpts().OpenCL) {
2460     const QualType ArrType = Context.getBaseElementType(T);
2461     if (ArrType->isBlockPointerType() || ArrType->isPipeType() ||
2462         ArrType->isSamplerT() || ArrType->isImageType()) {
2463       Diag(Loc, diag::err_opencl_invalid_type_array) << ArrType;
2464       return QualType();
2465     }
2466   }
2467 
2468   return T;
2469 }
2470 
2471 QualType Sema::BuildVectorType(QualType CurType, Expr *SizeExpr,
2472                                SourceLocation AttrLoc) {
2473   // The base type must be integer (not Boolean or enumeration) or float, and
2474   // can't already be a vector.
2475   if (!CurType->isDependentType() &&
2476       (!CurType->isBuiltinType() || CurType->isBooleanType() ||
2477        (!CurType->isIntegerType() && !CurType->isRealFloatingType()))) {
2478     Diag(AttrLoc, diag::err_attribute_invalid_vector_type) << CurType;
2479     return QualType();
2480   }
2481 
2482   if (SizeExpr->isTypeDependent() || SizeExpr->isValueDependent())
2483     return Context.getDependentVectorType(CurType, SizeExpr, AttrLoc,
2484                                                VectorType::GenericVector);
2485 
2486   llvm::APSInt VecSize(32);
2487   if (!SizeExpr->isIntegerConstantExpr(VecSize, Context)) {
2488     Diag(AttrLoc, diag::err_attribute_argument_type)
2489         << "vector_size" << AANT_ArgumentIntegerConstant
2490         << SizeExpr->getSourceRange();
2491     return QualType();
2492   }
2493 
2494   if (CurType->isDependentType())
2495     return Context.getDependentVectorType(CurType, SizeExpr, AttrLoc,
2496                                                VectorType::GenericVector);
2497 
2498   // vecSize is specified in bytes - convert to bits.
2499   if (!VecSize.isIntN(61)) {
2500     // Bit size will overflow uint64.
2501     Diag(AttrLoc, diag::err_attribute_size_too_large)
2502         << SizeExpr->getSourceRange() << "vector";
2503     return QualType();
2504   }
2505   uint64_t VectorSizeBits = VecSize.getZExtValue() * 8;
2506   unsigned TypeSize = static_cast<unsigned>(Context.getTypeSize(CurType));
2507 
2508   if (VectorSizeBits == 0) {
2509     Diag(AttrLoc, diag::err_attribute_zero_size)
2510         << SizeExpr->getSourceRange() << "vector";
2511     return QualType();
2512   }
2513 
2514   if (VectorSizeBits % TypeSize) {
2515     Diag(AttrLoc, diag::err_attribute_invalid_size)
2516         << SizeExpr->getSourceRange();
2517     return QualType();
2518   }
2519 
2520   if (VectorSizeBits / TypeSize > std::numeric_limits<uint32_t>::max()) {
2521     Diag(AttrLoc, diag::err_attribute_size_too_large)
2522         << SizeExpr->getSourceRange() << "vector";
2523     return QualType();
2524   }
2525 
2526   return Context.getVectorType(CurType, VectorSizeBits / TypeSize,
2527                                VectorType::GenericVector);
2528 }
2529 
2530 /// Build an ext-vector type.
2531 ///
2532 /// Run the required checks for the extended vector type.
2533 QualType Sema::BuildExtVectorType(QualType T, Expr *ArraySize,
2534                                   SourceLocation AttrLoc) {
2535   // Unlike gcc's vector_size attribute, we do not allow vectors to be defined
2536   // in conjunction with complex types (pointers, arrays, functions, etc.).
2537   //
2538   // Additionally, OpenCL prohibits vectors of booleans (they're considered a
2539   // reserved data type under OpenCL v2.0 s6.1.4), we don't support selects
2540   // on bitvectors, and we have no well-defined ABI for bitvectors, so vectors
2541   // of bool aren't allowed.
2542   if ((!T->isDependentType() && !T->isIntegerType() &&
2543        !T->isRealFloatingType()) ||
2544       T->isBooleanType()) {
2545     Diag(AttrLoc, diag::err_attribute_invalid_vector_type) << T;
2546     return QualType();
2547   }
2548 
2549   if (!ArraySize->isTypeDependent() && !ArraySize->isValueDependent()) {
2550     llvm::APSInt vecSize(32);
2551     if (!ArraySize->isIntegerConstantExpr(vecSize, Context)) {
2552       Diag(AttrLoc, diag::err_attribute_argument_type)
2553         << "ext_vector_type" << AANT_ArgumentIntegerConstant
2554         << ArraySize->getSourceRange();
2555       return QualType();
2556     }
2557 
2558     if (!vecSize.isIntN(32)) {
2559       Diag(AttrLoc, diag::err_attribute_size_too_large)
2560           << ArraySize->getSourceRange() << "vector";
2561       return QualType();
2562     }
2563     // Unlike gcc's vector_size attribute, the size is specified as the
2564     // number of elements, not the number of bytes.
2565     unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue());
2566 
2567     if (vectorSize == 0) {
2568       Diag(AttrLoc, diag::err_attribute_zero_size)
2569           << ArraySize->getSourceRange() << "vector";
2570       return QualType();
2571     }
2572 
2573     return Context.getExtVectorType(T, vectorSize);
2574   }
2575 
2576   return Context.getDependentSizedExtVectorType(T, ArraySize, AttrLoc);
2577 }
2578 
2579 QualType Sema::BuildMatrixType(QualType ElementTy, Expr *NumRows, Expr *NumCols,
2580                                SourceLocation AttrLoc) {
2581   assert(Context.getLangOpts().MatrixTypes &&
2582          "Should never build a matrix type when it is disabled");
2583 
2584   // Check element type, if it is not dependent.
2585   if (!ElementTy->isDependentType() &&
2586       !MatrixType::isValidElementType(ElementTy)) {
2587     Diag(AttrLoc, diag::err_attribute_invalid_matrix_type) << ElementTy;
2588     return QualType();
2589   }
2590 
2591   if (NumRows->isTypeDependent() || NumCols->isTypeDependent() ||
2592       NumRows->isValueDependent() || NumCols->isValueDependent())
2593     return Context.getDependentSizedMatrixType(ElementTy, NumRows, NumCols,
2594                                                AttrLoc);
2595 
2596   // Both row and column values can only be 20 bit wide currently.
2597   llvm::APSInt ValueRows(32), ValueColumns(32);
2598 
2599   bool const RowsIsInteger = NumRows->isIntegerConstantExpr(ValueRows, Context);
2600   bool const ColumnsIsInteger =
2601       NumCols->isIntegerConstantExpr(ValueColumns, Context);
2602 
2603   auto const RowRange = NumRows->getSourceRange();
2604   auto const ColRange = NumCols->getSourceRange();
2605 
2606   // Both are row and column expressions are invalid.
2607   if (!RowsIsInteger && !ColumnsIsInteger) {
2608     Diag(AttrLoc, diag::err_attribute_argument_type)
2609         << "matrix_type" << AANT_ArgumentIntegerConstant << RowRange
2610         << ColRange;
2611     return QualType();
2612   }
2613 
2614   // Only the row expression is invalid.
2615   if (!RowsIsInteger) {
2616     Diag(AttrLoc, diag::err_attribute_argument_type)
2617         << "matrix_type" << AANT_ArgumentIntegerConstant << RowRange;
2618     return QualType();
2619   }
2620 
2621   // Only the column expression is invalid.
2622   if (!ColumnsIsInteger) {
2623     Diag(AttrLoc, diag::err_attribute_argument_type)
2624         << "matrix_type" << AANT_ArgumentIntegerConstant << ColRange;
2625     return QualType();
2626   }
2627 
2628   // Check the matrix dimensions.
2629   unsigned MatrixRows = static_cast<unsigned>(ValueRows.getZExtValue());
2630   unsigned MatrixColumns = static_cast<unsigned>(ValueColumns.getZExtValue());
2631   if (MatrixRows == 0 && MatrixColumns == 0) {
2632     Diag(AttrLoc, diag::err_attribute_zero_size)
2633         << "matrix" << RowRange << ColRange;
2634     return QualType();
2635   }
2636   if (MatrixRows == 0) {
2637     Diag(AttrLoc, diag::err_attribute_zero_size) << "matrix" << RowRange;
2638     return QualType();
2639   }
2640   if (MatrixColumns == 0) {
2641     Diag(AttrLoc, diag::err_attribute_zero_size) << "matrix" << ColRange;
2642     return QualType();
2643   }
2644   if (!ConstantMatrixType::isDimensionValid(MatrixRows)) {
2645     Diag(AttrLoc, diag::err_attribute_size_too_large)
2646         << RowRange << "matrix row";
2647     return QualType();
2648   }
2649   if (!ConstantMatrixType::isDimensionValid(MatrixColumns)) {
2650     Diag(AttrLoc, diag::err_attribute_size_too_large)
2651         << ColRange << "matrix column";
2652     return QualType();
2653   }
2654   return Context.getConstantMatrixType(ElementTy, MatrixRows, MatrixColumns);
2655 }
2656 
2657 bool Sema::CheckFunctionReturnType(QualType T, SourceLocation Loc) {
2658   if (T->isArrayType() || T->isFunctionType()) {
2659     Diag(Loc, diag::err_func_returning_array_function)
2660       << T->isFunctionType() << T;
2661     return true;
2662   }
2663 
2664   // Functions cannot return half FP.
2665   if (T->isHalfType() && !getLangOpts().HalfArgsAndReturns) {
2666     Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 1 <<
2667       FixItHint::CreateInsertion(Loc, "*");
2668     return true;
2669   }
2670 
2671   // Methods cannot return interface types. All ObjC objects are
2672   // passed by reference.
2673   if (T->isObjCObjectType()) {
2674     Diag(Loc, diag::err_object_cannot_be_passed_returned_by_value)
2675         << 0 << T << FixItHint::CreateInsertion(Loc, "*");
2676     return true;
2677   }
2678 
2679   if (T.hasNonTrivialToPrimitiveDestructCUnion() ||
2680       T.hasNonTrivialToPrimitiveCopyCUnion())
2681     checkNonTrivialCUnion(T, Loc, NTCUC_FunctionReturn,
2682                           NTCUK_Destruct|NTCUK_Copy);
2683 
2684   // C++2a [dcl.fct]p12:
2685   //   A volatile-qualified return type is deprecated
2686   if (T.isVolatileQualified() && getLangOpts().CPlusPlus20)
2687     Diag(Loc, diag::warn_deprecated_volatile_return) << T;
2688 
2689   return false;
2690 }
2691 
2692 /// Check the extended parameter information.  Most of the necessary
2693 /// checking should occur when applying the parameter attribute; the
2694 /// only other checks required are positional restrictions.
2695 static void checkExtParameterInfos(Sema &S, ArrayRef<QualType> paramTypes,
2696                     const FunctionProtoType::ExtProtoInfo &EPI,
2697                     llvm::function_ref<SourceLocation(unsigned)> getParamLoc) {
2698   assert(EPI.ExtParameterInfos && "shouldn't get here without param infos");
2699 
2700   bool hasCheckedSwiftCall = false;
2701   auto checkForSwiftCC = [&](unsigned paramIndex) {
2702     // Only do this once.
2703     if (hasCheckedSwiftCall) return;
2704     hasCheckedSwiftCall = true;
2705     if (EPI.ExtInfo.getCC() == CC_Swift) return;
2706     S.Diag(getParamLoc(paramIndex), diag::err_swift_param_attr_not_swiftcall)
2707       << getParameterABISpelling(EPI.ExtParameterInfos[paramIndex].getABI());
2708   };
2709 
2710   for (size_t paramIndex = 0, numParams = paramTypes.size();
2711           paramIndex != numParams; ++paramIndex) {
2712     switch (EPI.ExtParameterInfos[paramIndex].getABI()) {
2713     // Nothing interesting to check for orindary-ABI parameters.
2714     case ParameterABI::Ordinary:
2715       continue;
2716 
2717     // swift_indirect_result parameters must be a prefix of the function
2718     // arguments.
2719     case ParameterABI::SwiftIndirectResult:
2720       checkForSwiftCC(paramIndex);
2721       if (paramIndex != 0 &&
2722           EPI.ExtParameterInfos[paramIndex - 1].getABI()
2723             != ParameterABI::SwiftIndirectResult) {
2724         S.Diag(getParamLoc(paramIndex),
2725                diag::err_swift_indirect_result_not_first);
2726       }
2727       continue;
2728 
2729     case ParameterABI::SwiftContext:
2730       checkForSwiftCC(paramIndex);
2731       continue;
2732 
2733     // swift_error parameters must be preceded by a swift_context parameter.
2734     case ParameterABI::SwiftErrorResult:
2735       checkForSwiftCC(paramIndex);
2736       if (paramIndex == 0 ||
2737           EPI.ExtParameterInfos[paramIndex - 1].getABI() !=
2738               ParameterABI::SwiftContext) {
2739         S.Diag(getParamLoc(paramIndex),
2740                diag::err_swift_error_result_not_after_swift_context);
2741       }
2742       continue;
2743     }
2744     llvm_unreachable("bad ABI kind");
2745   }
2746 }
2747 
2748 QualType Sema::BuildFunctionType(QualType T,
2749                                  MutableArrayRef<QualType> ParamTypes,
2750                                  SourceLocation Loc, DeclarationName Entity,
2751                                  const FunctionProtoType::ExtProtoInfo &EPI) {
2752   bool Invalid = false;
2753 
2754   Invalid |= CheckFunctionReturnType(T, Loc);
2755 
2756   for (unsigned Idx = 0, Cnt = ParamTypes.size(); Idx < Cnt; ++Idx) {
2757     // FIXME: Loc is too inprecise here, should use proper locations for args.
2758     QualType ParamType = Context.getAdjustedParameterType(ParamTypes[Idx]);
2759     if (ParamType->isVoidType()) {
2760       Diag(Loc, diag::err_param_with_void_type);
2761       Invalid = true;
2762     } else if (ParamType->isHalfType() && !getLangOpts().HalfArgsAndReturns) {
2763       // Disallow half FP arguments.
2764       Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 0 <<
2765         FixItHint::CreateInsertion(Loc, "*");
2766       Invalid = true;
2767     }
2768 
2769     // C++2a [dcl.fct]p4:
2770     //   A parameter with volatile-qualified type is deprecated
2771     if (ParamType.isVolatileQualified() && getLangOpts().CPlusPlus20)
2772       Diag(Loc, diag::warn_deprecated_volatile_param) << ParamType;
2773 
2774     ParamTypes[Idx] = ParamType;
2775   }
2776 
2777   if (EPI.ExtParameterInfos) {
2778     checkExtParameterInfos(*this, ParamTypes, EPI,
2779                            [=](unsigned i) { return Loc; });
2780   }
2781 
2782   if (EPI.ExtInfo.getProducesResult()) {
2783     // This is just a warning, so we can't fail to build if we see it.
2784     checkNSReturnsRetainedReturnType(Loc, T);
2785   }
2786 
2787   if (Invalid)
2788     return QualType();
2789 
2790   return Context.getFunctionType(T, ParamTypes, EPI);
2791 }
2792 
2793 /// Build a member pointer type \c T Class::*.
2794 ///
2795 /// \param T the type to which the member pointer refers.
2796 /// \param Class the class type into which the member pointer points.
2797 /// \param Loc the location where this type begins
2798 /// \param Entity the name of the entity that will have this member pointer type
2799 ///
2800 /// \returns a member pointer type, if successful, or a NULL type if there was
2801 /// an error.
2802 QualType Sema::BuildMemberPointerType(QualType T, QualType Class,
2803                                       SourceLocation Loc,
2804                                       DeclarationName Entity) {
2805   // Verify that we're not building a pointer to pointer to function with
2806   // exception specification.
2807   if (CheckDistantExceptionSpec(T)) {
2808     Diag(Loc, diag::err_distant_exception_spec);
2809     return QualType();
2810   }
2811 
2812   // C++ 8.3.3p3: A pointer to member shall not point to ... a member
2813   //   with reference type, or "cv void."
2814   if (T->isReferenceType()) {
2815     Diag(Loc, diag::err_illegal_decl_mempointer_to_reference)
2816       << getPrintableNameForEntity(Entity) << T;
2817     return QualType();
2818   }
2819 
2820   if (T->isVoidType()) {
2821     Diag(Loc, diag::err_illegal_decl_mempointer_to_void)
2822       << getPrintableNameForEntity(Entity);
2823     return QualType();
2824   }
2825 
2826   if (!Class->isDependentType() && !Class->isRecordType()) {
2827     Diag(Loc, diag::err_mempointer_in_nonclass_type) << Class;
2828     return QualType();
2829   }
2830 
2831   // Adjust the default free function calling convention to the default method
2832   // calling convention.
2833   bool IsCtorOrDtor =
2834       (Entity.getNameKind() == DeclarationName::CXXConstructorName) ||
2835       (Entity.getNameKind() == DeclarationName::CXXDestructorName);
2836   if (T->isFunctionType())
2837     adjustMemberFunctionCC(T, /*IsStatic=*/false, IsCtorOrDtor, Loc);
2838 
2839   return Context.getMemberPointerType(T, Class.getTypePtr());
2840 }
2841 
2842 /// Build a block pointer type.
2843 ///
2844 /// \param T The type to which we'll be building a block pointer.
2845 ///
2846 /// \param Loc The source location, used for diagnostics.
2847 ///
2848 /// \param Entity The name of the entity that involves the block pointer
2849 /// type, if known.
2850 ///
2851 /// \returns A suitable block pointer type, if there are no
2852 /// errors. Otherwise, returns a NULL type.
2853 QualType Sema::BuildBlockPointerType(QualType T,
2854                                      SourceLocation Loc,
2855                                      DeclarationName Entity) {
2856   if (!T->isFunctionType()) {
2857     Diag(Loc, diag::err_nonfunction_block_type);
2858     return QualType();
2859   }
2860 
2861   if (checkQualifiedFunction(*this, T, Loc, QFK_BlockPointer))
2862     return QualType();
2863 
2864   if (getLangOpts().OpenCL)
2865     T = deduceOpenCLPointeeAddrSpace(*this, T);
2866 
2867   return Context.getBlockPointerType(T);
2868 }
2869 
2870 QualType Sema::GetTypeFromParser(ParsedType Ty, TypeSourceInfo **TInfo) {
2871   QualType QT = Ty.get();
2872   if (QT.isNull()) {
2873     if (TInfo) *TInfo = nullptr;
2874     return QualType();
2875   }
2876 
2877   TypeSourceInfo *DI = nullptr;
2878   if (const LocInfoType *LIT = dyn_cast<LocInfoType>(QT)) {
2879     QT = LIT->getType();
2880     DI = LIT->getTypeSourceInfo();
2881   }
2882 
2883   if (TInfo) *TInfo = DI;
2884   return QT;
2885 }
2886 
2887 static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state,
2888                                             Qualifiers::ObjCLifetime ownership,
2889                                             unsigned chunkIndex);
2890 
2891 /// Given that this is the declaration of a parameter under ARC,
2892 /// attempt to infer attributes and such for pointer-to-whatever
2893 /// types.
2894 static void inferARCWriteback(TypeProcessingState &state,
2895                               QualType &declSpecType) {
2896   Sema &S = state.getSema();
2897   Declarator &declarator = state.getDeclarator();
2898 
2899   // TODO: should we care about decl qualifiers?
2900 
2901   // Check whether the declarator has the expected form.  We walk
2902   // from the inside out in order to make the block logic work.
2903   unsigned outermostPointerIndex = 0;
2904   bool isBlockPointer = false;
2905   unsigned numPointers = 0;
2906   for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
2907     unsigned chunkIndex = i;
2908     DeclaratorChunk &chunk = declarator.getTypeObject(chunkIndex);
2909     switch (chunk.Kind) {
2910     case DeclaratorChunk::Paren:
2911       // Ignore parens.
2912       break;
2913 
2914     case DeclaratorChunk::Reference:
2915     case DeclaratorChunk::Pointer:
2916       // Count the number of pointers.  Treat references
2917       // interchangeably as pointers; if they're mis-ordered, normal
2918       // type building will discover that.
2919       outermostPointerIndex = chunkIndex;
2920       numPointers++;
2921       break;
2922 
2923     case DeclaratorChunk::BlockPointer:
2924       // If we have a pointer to block pointer, that's an acceptable
2925       // indirect reference; anything else is not an application of
2926       // the rules.
2927       if (numPointers != 1) return;
2928       numPointers++;
2929       outermostPointerIndex = chunkIndex;
2930       isBlockPointer = true;
2931 
2932       // We don't care about pointer structure in return values here.
2933       goto done;
2934 
2935     case DeclaratorChunk::Array: // suppress if written (id[])?
2936     case DeclaratorChunk::Function:
2937     case DeclaratorChunk::MemberPointer:
2938     case DeclaratorChunk::Pipe:
2939       return;
2940     }
2941   }
2942  done:
2943 
2944   // If we have *one* pointer, then we want to throw the qualifier on
2945   // the declaration-specifiers, which means that it needs to be a
2946   // retainable object type.
2947   if (numPointers == 1) {
2948     // If it's not a retainable object type, the rule doesn't apply.
2949     if (!declSpecType->isObjCRetainableType()) return;
2950 
2951     // If it already has lifetime, don't do anything.
2952     if (declSpecType.getObjCLifetime()) return;
2953 
2954     // Otherwise, modify the type in-place.
2955     Qualifiers qs;
2956 
2957     if (declSpecType->isObjCARCImplicitlyUnretainedType())
2958       qs.addObjCLifetime(Qualifiers::OCL_ExplicitNone);
2959     else
2960       qs.addObjCLifetime(Qualifiers::OCL_Autoreleasing);
2961     declSpecType = S.Context.getQualifiedType(declSpecType, qs);
2962 
2963   // If we have *two* pointers, then we want to throw the qualifier on
2964   // the outermost pointer.
2965   } else if (numPointers == 2) {
2966     // If we don't have a block pointer, we need to check whether the
2967     // declaration-specifiers gave us something that will turn into a
2968     // retainable object pointer after we slap the first pointer on it.
2969     if (!isBlockPointer && !declSpecType->isObjCObjectType())
2970       return;
2971 
2972     // Look for an explicit lifetime attribute there.
2973     DeclaratorChunk &chunk = declarator.getTypeObject(outermostPointerIndex);
2974     if (chunk.Kind != DeclaratorChunk::Pointer &&
2975         chunk.Kind != DeclaratorChunk::BlockPointer)
2976       return;
2977     for (const ParsedAttr &AL : chunk.getAttrs())
2978       if (AL.getKind() == ParsedAttr::AT_ObjCOwnership)
2979         return;
2980 
2981     transferARCOwnershipToDeclaratorChunk(state, Qualifiers::OCL_Autoreleasing,
2982                                           outermostPointerIndex);
2983 
2984   // Any other number of pointers/references does not trigger the rule.
2985   } else return;
2986 
2987   // TODO: mark whether we did this inference?
2988 }
2989 
2990 void Sema::diagnoseIgnoredQualifiers(unsigned DiagID, unsigned Quals,
2991                                      SourceLocation FallbackLoc,
2992                                      SourceLocation ConstQualLoc,
2993                                      SourceLocation VolatileQualLoc,
2994                                      SourceLocation RestrictQualLoc,
2995                                      SourceLocation AtomicQualLoc,
2996                                      SourceLocation UnalignedQualLoc) {
2997   if (!Quals)
2998     return;
2999 
3000   struct Qual {
3001     const char *Name;
3002     unsigned Mask;
3003     SourceLocation Loc;
3004   } const QualKinds[5] = {
3005     { "const", DeclSpec::TQ_const, ConstQualLoc },
3006     { "volatile", DeclSpec::TQ_volatile, VolatileQualLoc },
3007     { "restrict", DeclSpec::TQ_restrict, RestrictQualLoc },
3008     { "__unaligned", DeclSpec::TQ_unaligned, UnalignedQualLoc },
3009     { "_Atomic", DeclSpec::TQ_atomic, AtomicQualLoc }
3010   };
3011 
3012   SmallString<32> QualStr;
3013   unsigned NumQuals = 0;
3014   SourceLocation Loc;
3015   FixItHint FixIts[5];
3016 
3017   // Build a string naming the redundant qualifiers.
3018   for (auto &E : QualKinds) {
3019     if (Quals & E.Mask) {
3020       if (!QualStr.empty()) QualStr += ' ';
3021       QualStr += E.Name;
3022 
3023       // If we have a location for the qualifier, offer a fixit.
3024       SourceLocation QualLoc = E.Loc;
3025       if (QualLoc.isValid()) {
3026         FixIts[NumQuals] = FixItHint::CreateRemoval(QualLoc);
3027         if (Loc.isInvalid() ||
3028             getSourceManager().isBeforeInTranslationUnit(QualLoc, Loc))
3029           Loc = QualLoc;
3030       }
3031 
3032       ++NumQuals;
3033     }
3034   }
3035 
3036   Diag(Loc.isInvalid() ? FallbackLoc : Loc, DiagID)
3037     << QualStr << NumQuals << FixIts[0] << FixIts[1] << FixIts[2] << FixIts[3];
3038 }
3039 
3040 // Diagnose pointless type qualifiers on the return type of a function.
3041 static void diagnoseRedundantReturnTypeQualifiers(Sema &S, QualType RetTy,
3042                                                   Declarator &D,
3043                                                   unsigned FunctionChunkIndex) {
3044   if (D.getTypeObject(FunctionChunkIndex).Fun.hasTrailingReturnType()) {
3045     // FIXME: TypeSourceInfo doesn't preserve location information for
3046     // qualifiers.
3047     S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
3048                                 RetTy.getLocalCVRQualifiers(),
3049                                 D.getIdentifierLoc());
3050     return;
3051   }
3052 
3053   for (unsigned OuterChunkIndex = FunctionChunkIndex + 1,
3054                 End = D.getNumTypeObjects();
3055        OuterChunkIndex != End; ++OuterChunkIndex) {
3056     DeclaratorChunk &OuterChunk = D.getTypeObject(OuterChunkIndex);
3057     switch (OuterChunk.Kind) {
3058     case DeclaratorChunk::Paren:
3059       continue;
3060 
3061     case DeclaratorChunk::Pointer: {
3062       DeclaratorChunk::PointerTypeInfo &PTI = OuterChunk.Ptr;
3063       S.diagnoseIgnoredQualifiers(
3064           diag::warn_qual_return_type,
3065           PTI.TypeQuals,
3066           SourceLocation(),
3067           SourceLocation::getFromRawEncoding(PTI.ConstQualLoc),
3068           SourceLocation::getFromRawEncoding(PTI.VolatileQualLoc),
3069           SourceLocation::getFromRawEncoding(PTI.RestrictQualLoc),
3070           SourceLocation::getFromRawEncoding(PTI.AtomicQualLoc),
3071           SourceLocation::getFromRawEncoding(PTI.UnalignedQualLoc));
3072       return;
3073     }
3074 
3075     case DeclaratorChunk::Function:
3076     case DeclaratorChunk::BlockPointer:
3077     case DeclaratorChunk::Reference:
3078     case DeclaratorChunk::Array:
3079     case DeclaratorChunk::MemberPointer:
3080     case DeclaratorChunk::Pipe:
3081       // FIXME: We can't currently provide an accurate source location and a
3082       // fix-it hint for these.
3083       unsigned AtomicQual = RetTy->isAtomicType() ? DeclSpec::TQ_atomic : 0;
3084       S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
3085                                   RetTy.getCVRQualifiers() | AtomicQual,
3086                                   D.getIdentifierLoc());
3087       return;
3088     }
3089 
3090     llvm_unreachable("unknown declarator chunk kind");
3091   }
3092 
3093   // If the qualifiers come from a conversion function type, don't diagnose
3094   // them -- they're not necessarily redundant, since such a conversion
3095   // operator can be explicitly called as "x.operator const int()".
3096   if (D.getName().getKind() == UnqualifiedIdKind::IK_ConversionFunctionId)
3097     return;
3098 
3099   // Just parens all the way out to the decl specifiers. Diagnose any qualifiers
3100   // which are present there.
3101   S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
3102                               D.getDeclSpec().getTypeQualifiers(),
3103                               D.getIdentifierLoc(),
3104                               D.getDeclSpec().getConstSpecLoc(),
3105                               D.getDeclSpec().getVolatileSpecLoc(),
3106                               D.getDeclSpec().getRestrictSpecLoc(),
3107                               D.getDeclSpec().getAtomicSpecLoc(),
3108                               D.getDeclSpec().getUnalignedSpecLoc());
3109 }
3110 
3111 static void CopyTypeConstraintFromAutoType(Sema &SemaRef, const AutoType *Auto,
3112                                            AutoTypeLoc AutoLoc,
3113                                            TemplateTypeParmDecl *TP,
3114                                            SourceLocation EllipsisLoc) {
3115 
3116   TemplateArgumentListInfo TAL(AutoLoc.getLAngleLoc(), AutoLoc.getRAngleLoc());
3117   for (unsigned Idx = 0; Idx < AutoLoc.getNumArgs(); ++Idx)
3118     TAL.addArgument(AutoLoc.getArgLoc(Idx));
3119 
3120   SemaRef.AttachTypeConstraint(
3121       AutoLoc.getNestedNameSpecifierLoc(), AutoLoc.getConceptNameInfo(),
3122       AutoLoc.getNamedConcept(),
3123       AutoLoc.hasExplicitTemplateArgs() ? &TAL : nullptr, TP, EllipsisLoc);
3124 }
3125 
3126 static QualType InventTemplateParameter(
3127     TypeProcessingState &state, QualType T, TypeSourceInfo *TSI, AutoType *Auto,
3128     InventedTemplateParameterInfo &Info) {
3129   Sema &S = state.getSema();
3130   Declarator &D = state.getDeclarator();
3131 
3132   const unsigned TemplateParameterDepth = Info.AutoTemplateParameterDepth;
3133   const unsigned AutoParameterPosition = Info.TemplateParams.size();
3134   const bool IsParameterPack = D.hasEllipsis();
3135 
3136   // If auto is mentioned in a lambda parameter or abbreviated function
3137   // template context, convert it to a template parameter type.
3138 
3139   // Create the TemplateTypeParmDecl here to retrieve the corresponding
3140   // template parameter type. Template parameters are temporarily added
3141   // to the TU until the associated TemplateDecl is created.
3142   TemplateTypeParmDecl *InventedTemplateParam =
3143       TemplateTypeParmDecl::Create(
3144           S.Context, S.Context.getTranslationUnitDecl(),
3145           /*KeyLoc=*/D.getDeclSpec().getTypeSpecTypeLoc(),
3146           /*NameLoc=*/D.getIdentifierLoc(),
3147           TemplateParameterDepth, AutoParameterPosition,
3148           S.InventAbbreviatedTemplateParameterTypeName(
3149               D.getIdentifier(), AutoParameterPosition), false,
3150           IsParameterPack, /*HasTypeConstraint=*/Auto->isConstrained());
3151   InventedTemplateParam->setImplicit();
3152   Info.TemplateParams.push_back(InventedTemplateParam);
3153   // Attach type constraints
3154   if (Auto->isConstrained()) {
3155     if (TSI) {
3156       CopyTypeConstraintFromAutoType(
3157           S, Auto, TSI->getTypeLoc().getContainedAutoTypeLoc(),
3158           InventedTemplateParam, D.getEllipsisLoc());
3159     } else {
3160       TemplateIdAnnotation *TemplateId = D.getDeclSpec().getRepAsTemplateId();
3161       TemplateArgumentListInfo TemplateArgsInfo;
3162       if (TemplateId->LAngleLoc.isValid()) {
3163         ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(),
3164                                            TemplateId->NumArgs);
3165         S.translateTemplateArguments(TemplateArgsPtr, TemplateArgsInfo);
3166       }
3167       S.AttachTypeConstraint(
3168           D.getDeclSpec().getTypeSpecScope().getWithLocInContext(S.Context),
3169           DeclarationNameInfo(DeclarationName(TemplateId->Name),
3170                               TemplateId->TemplateNameLoc),
3171           cast<ConceptDecl>(TemplateId->Template.get().getAsTemplateDecl()),
3172           TemplateId->LAngleLoc.isValid() ? &TemplateArgsInfo : nullptr,
3173           InventedTemplateParam, D.getEllipsisLoc());
3174     }
3175   }
3176 
3177   // If TSI is nullptr, this is a constrained declspec auto and the type
3178   // constraint will be attached later in TypeSpecLocFiller
3179 
3180   // Replace the 'auto' in the function parameter with this invented
3181   // template type parameter.
3182   // FIXME: Retain some type sugar to indicate that this was written
3183   //  as 'auto'?
3184   return state.ReplaceAutoType(
3185       T, QualType(InventedTemplateParam->getTypeForDecl(), 0));
3186 }
3187 
3188 static TypeSourceInfo *
3189 GetTypeSourceInfoForDeclarator(TypeProcessingState &State,
3190                                QualType T, TypeSourceInfo *ReturnTypeInfo);
3191 
3192 static QualType GetDeclSpecTypeForDeclarator(TypeProcessingState &state,
3193                                              TypeSourceInfo *&ReturnTypeInfo) {
3194   Sema &SemaRef = state.getSema();
3195   Declarator &D = state.getDeclarator();
3196   QualType T;
3197   ReturnTypeInfo = nullptr;
3198 
3199   // The TagDecl owned by the DeclSpec.
3200   TagDecl *OwnedTagDecl = nullptr;
3201 
3202   switch (D.getName().getKind()) {
3203   case UnqualifiedIdKind::IK_ImplicitSelfParam:
3204   case UnqualifiedIdKind::IK_OperatorFunctionId:
3205   case UnqualifiedIdKind::IK_Identifier:
3206   case UnqualifiedIdKind::IK_LiteralOperatorId:
3207   case UnqualifiedIdKind::IK_TemplateId:
3208     T = ConvertDeclSpecToType(state);
3209 
3210     if (!D.isInvalidType() && D.getDeclSpec().isTypeSpecOwned()) {
3211       OwnedTagDecl = cast<TagDecl>(D.getDeclSpec().getRepAsDecl());
3212       // Owned declaration is embedded in declarator.
3213       OwnedTagDecl->setEmbeddedInDeclarator(true);
3214     }
3215     break;
3216 
3217   case UnqualifiedIdKind::IK_ConstructorName:
3218   case UnqualifiedIdKind::IK_ConstructorTemplateId:
3219   case UnqualifiedIdKind::IK_DestructorName:
3220     // Constructors and destructors don't have return types. Use
3221     // "void" instead.
3222     T = SemaRef.Context.VoidTy;
3223     processTypeAttrs(state, T, TAL_DeclSpec,
3224                      D.getMutableDeclSpec().getAttributes());
3225     break;
3226 
3227   case UnqualifiedIdKind::IK_DeductionGuideName:
3228     // Deduction guides have a trailing return type and no type in their
3229     // decl-specifier sequence. Use a placeholder return type for now.
3230     T = SemaRef.Context.DependentTy;
3231     break;
3232 
3233   case UnqualifiedIdKind::IK_ConversionFunctionId:
3234     // The result type of a conversion function is the type that it
3235     // converts to.
3236     T = SemaRef.GetTypeFromParser(D.getName().ConversionFunctionId,
3237                                   &ReturnTypeInfo);
3238     break;
3239   }
3240 
3241   if (!D.getAttributes().empty())
3242     distributeTypeAttrsFromDeclarator(state, T);
3243 
3244   // C++11 [dcl.spec.auto]p5: reject 'auto' if it is not in an allowed context.
3245   if (DeducedType *Deduced = T->getContainedDeducedType()) {
3246     AutoType *Auto = dyn_cast<AutoType>(Deduced);
3247     int Error = -1;
3248 
3249     // Is this a 'auto' or 'decltype(auto)' type (as opposed to __auto_type or
3250     // class template argument deduction)?
3251     bool IsCXXAutoType =
3252         (Auto && Auto->getKeyword() != AutoTypeKeyword::GNUAutoType);
3253     bool IsDeducedReturnType = false;
3254 
3255     switch (D.getContext()) {
3256     case DeclaratorContext::LambdaExprContext:
3257       // Declared return type of a lambda-declarator is implicit and is always
3258       // 'auto'.
3259       break;
3260     case DeclaratorContext::ObjCParameterContext:
3261     case DeclaratorContext::ObjCResultContext:
3262       Error = 0;
3263       break;
3264     case DeclaratorContext::RequiresExprContext:
3265       Error = 22;
3266       break;
3267     case DeclaratorContext::PrototypeContext:
3268     case DeclaratorContext::LambdaExprParameterContext: {
3269       InventedTemplateParameterInfo *Info = nullptr;
3270       if (D.getContext() == DeclaratorContext::PrototypeContext) {
3271         // With concepts we allow 'auto' in function parameters.
3272         if (!SemaRef.getLangOpts().CPlusPlus20 || !Auto ||
3273             Auto->getKeyword() != AutoTypeKeyword::Auto) {
3274           Error = 0;
3275           break;
3276         } else if (!SemaRef.getCurScope()->isFunctionDeclarationScope()) {
3277           Error = 21;
3278           break;
3279         } else if (D.hasTrailingReturnType()) {
3280           // This might be OK, but we'll need to convert the trailing return
3281           // type later.
3282           break;
3283         }
3284 
3285         Info = &SemaRef.InventedParameterInfos.back();
3286       } else {
3287         // In C++14, generic lambdas allow 'auto' in their parameters.
3288         if (!SemaRef.getLangOpts().CPlusPlus14 || !Auto ||
3289             Auto->getKeyword() != AutoTypeKeyword::Auto) {
3290           Error = 16;
3291           break;
3292         }
3293         Info = SemaRef.getCurLambda();
3294         assert(Info && "No LambdaScopeInfo on the stack!");
3295       }
3296       T = InventTemplateParameter(state, T, nullptr, Auto, *Info);
3297       break;
3298     }
3299     case DeclaratorContext::MemberContext: {
3300       if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_static ||
3301           D.isFunctionDeclarator())
3302         break;
3303       bool Cxx = SemaRef.getLangOpts().CPlusPlus;
3304       switch (cast<TagDecl>(SemaRef.CurContext)->getTagKind()) {
3305       case TTK_Enum: llvm_unreachable("unhandled tag kind");
3306       case TTK_Struct: Error = Cxx ? 1 : 2; /* Struct member */ break;
3307       case TTK_Union:  Error = Cxx ? 3 : 4; /* Union member */ break;
3308       case TTK_Class:  Error = 5; /* Class member */ break;
3309       case TTK_Interface: Error = 6; /* Interface member */ break;
3310       }
3311       if (D.getDeclSpec().isFriendSpecified())
3312         Error = 20; // Friend type
3313       break;
3314     }
3315     case DeclaratorContext::CXXCatchContext:
3316     case DeclaratorContext::ObjCCatchContext:
3317       Error = 7; // Exception declaration
3318       break;
3319     case DeclaratorContext::TemplateParamContext:
3320       if (isa<DeducedTemplateSpecializationType>(Deduced))
3321         Error = 19; // Template parameter
3322       else if (!SemaRef.getLangOpts().CPlusPlus17)
3323         Error = 8; // Template parameter (until C++17)
3324       break;
3325     case DeclaratorContext::BlockLiteralContext:
3326       Error = 9; // Block literal
3327       break;
3328     case DeclaratorContext::TemplateArgContext:
3329       // Within a template argument list, a deduced template specialization
3330       // type will be reinterpreted as a template template argument.
3331       if (isa<DeducedTemplateSpecializationType>(Deduced) &&
3332           !D.getNumTypeObjects() &&
3333           D.getDeclSpec().getParsedSpecifiers() == DeclSpec::PQ_TypeSpecifier)
3334         break;
3335       LLVM_FALLTHROUGH;
3336     case DeclaratorContext::TemplateTypeArgContext:
3337       Error = 10; // Template type argument
3338       break;
3339     case DeclaratorContext::AliasDeclContext:
3340     case DeclaratorContext::AliasTemplateContext:
3341       Error = 12; // Type alias
3342       break;
3343     case DeclaratorContext::TrailingReturnContext:
3344     case DeclaratorContext::TrailingReturnVarContext:
3345       if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType)
3346         Error = 13; // Function return type
3347       IsDeducedReturnType = true;
3348       break;
3349     case DeclaratorContext::ConversionIdContext:
3350       if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType)
3351         Error = 14; // conversion-type-id
3352       IsDeducedReturnType = true;
3353       break;
3354     case DeclaratorContext::FunctionalCastContext:
3355       if (isa<DeducedTemplateSpecializationType>(Deduced))
3356         break;
3357       LLVM_FALLTHROUGH;
3358     case DeclaratorContext::TypeNameContext:
3359       Error = 15; // Generic
3360       break;
3361     case DeclaratorContext::FileContext:
3362     case DeclaratorContext::BlockContext:
3363     case DeclaratorContext::ForContext:
3364     case DeclaratorContext::InitStmtContext:
3365     case DeclaratorContext::ConditionContext:
3366       // FIXME: P0091R3 (erroneously) does not permit class template argument
3367       // deduction in conditions, for-init-statements, and other declarations
3368       // that are not simple-declarations.
3369       break;
3370     case DeclaratorContext::CXXNewContext:
3371       // FIXME: P0091R3 does not permit class template argument deduction here,
3372       // but we follow GCC and allow it anyway.
3373       if (!IsCXXAutoType && !isa<DeducedTemplateSpecializationType>(Deduced))
3374         Error = 17; // 'new' type
3375       break;
3376     case DeclaratorContext::KNRTypeListContext:
3377       Error = 18; // K&R function parameter
3378       break;
3379     }
3380 
3381     if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef)
3382       Error = 11;
3383 
3384     // In Objective-C it is an error to use 'auto' on a function declarator
3385     // (and everywhere for '__auto_type').
3386     if (D.isFunctionDeclarator() &&
3387         (!SemaRef.getLangOpts().CPlusPlus11 || !IsCXXAutoType))
3388       Error = 13;
3389 
3390     bool HaveTrailing = false;
3391 
3392     // C++11 [dcl.spec.auto]p2: 'auto' is always fine if the declarator
3393     // contains a trailing return type. That is only legal at the outermost
3394     // level. Check all declarator chunks (outermost first) anyway, to give
3395     // better diagnostics.
3396     // We don't support '__auto_type' with trailing return types.
3397     // FIXME: Should we only do this for 'auto' and not 'decltype(auto)'?
3398     if (SemaRef.getLangOpts().CPlusPlus11 && IsCXXAutoType &&
3399         D.hasTrailingReturnType()) {
3400       HaveTrailing = true;
3401       Error = -1;
3402     }
3403 
3404     SourceRange AutoRange = D.getDeclSpec().getTypeSpecTypeLoc();
3405     if (D.getName().getKind() == UnqualifiedIdKind::IK_ConversionFunctionId)
3406       AutoRange = D.getName().getSourceRange();
3407 
3408     if (Error != -1) {
3409       unsigned Kind;
3410       if (Auto) {
3411         switch (Auto->getKeyword()) {
3412         case AutoTypeKeyword::Auto: Kind = 0; break;
3413         case AutoTypeKeyword::DecltypeAuto: Kind = 1; break;
3414         case AutoTypeKeyword::GNUAutoType: Kind = 2; break;
3415         }
3416       } else {
3417         assert(isa<DeducedTemplateSpecializationType>(Deduced) &&
3418                "unknown auto type");
3419         Kind = 3;
3420       }
3421 
3422       auto *DTST = dyn_cast<DeducedTemplateSpecializationType>(Deduced);
3423       TemplateName TN = DTST ? DTST->getTemplateName() : TemplateName();
3424 
3425       SemaRef.Diag(AutoRange.getBegin(), diag::err_auto_not_allowed)
3426         << Kind << Error << (int)SemaRef.getTemplateNameKindForDiagnostics(TN)
3427         << QualType(Deduced, 0) << AutoRange;
3428       if (auto *TD = TN.getAsTemplateDecl())
3429         SemaRef.Diag(TD->getLocation(), diag::note_template_decl_here);
3430 
3431       T = SemaRef.Context.IntTy;
3432       D.setInvalidType(true);
3433     } else if (Auto && !HaveTrailing &&
3434                D.getContext() != DeclaratorContext::LambdaExprContext) {
3435       // If there was a trailing return type, we already got
3436       // warn_cxx98_compat_trailing_return_type in the parser.
3437       SemaRef.Diag(AutoRange.getBegin(),
3438                    D.getContext() ==
3439                            DeclaratorContext::LambdaExprParameterContext
3440                        ? diag::warn_cxx11_compat_generic_lambda
3441                        : IsDeducedReturnType
3442                              ? diag::warn_cxx11_compat_deduced_return_type
3443                              : diag::warn_cxx98_compat_auto_type_specifier)
3444           << AutoRange;
3445     }
3446   }
3447 
3448   if (SemaRef.getLangOpts().CPlusPlus &&
3449       OwnedTagDecl && OwnedTagDecl->isCompleteDefinition()) {
3450     // Check the contexts where C++ forbids the declaration of a new class
3451     // or enumeration in a type-specifier-seq.
3452     unsigned DiagID = 0;
3453     switch (D.getContext()) {
3454     case DeclaratorContext::TrailingReturnContext:
3455     case DeclaratorContext::TrailingReturnVarContext:
3456       // Class and enumeration definitions are syntactically not allowed in
3457       // trailing return types.
3458       llvm_unreachable("parser should not have allowed this");
3459       break;
3460     case DeclaratorContext::FileContext:
3461     case DeclaratorContext::MemberContext:
3462     case DeclaratorContext::BlockContext:
3463     case DeclaratorContext::ForContext:
3464     case DeclaratorContext::InitStmtContext:
3465     case DeclaratorContext::BlockLiteralContext:
3466     case DeclaratorContext::LambdaExprContext:
3467       // C++11 [dcl.type]p3:
3468       //   A type-specifier-seq shall not define a class or enumeration unless
3469       //   it appears in the type-id of an alias-declaration (7.1.3) that is not
3470       //   the declaration of a template-declaration.
3471     case DeclaratorContext::AliasDeclContext:
3472       break;
3473     case DeclaratorContext::AliasTemplateContext:
3474       DiagID = diag::err_type_defined_in_alias_template;
3475       break;
3476     case DeclaratorContext::TypeNameContext:
3477     case DeclaratorContext::FunctionalCastContext:
3478     case DeclaratorContext::ConversionIdContext:
3479     case DeclaratorContext::TemplateParamContext:
3480     case DeclaratorContext::CXXNewContext:
3481     case DeclaratorContext::CXXCatchContext:
3482     case DeclaratorContext::ObjCCatchContext:
3483     case DeclaratorContext::TemplateArgContext:
3484     case DeclaratorContext::TemplateTypeArgContext:
3485       DiagID = diag::err_type_defined_in_type_specifier;
3486       break;
3487     case DeclaratorContext::PrototypeContext:
3488     case DeclaratorContext::LambdaExprParameterContext:
3489     case DeclaratorContext::ObjCParameterContext:
3490     case DeclaratorContext::ObjCResultContext:
3491     case DeclaratorContext::KNRTypeListContext:
3492     case DeclaratorContext::RequiresExprContext:
3493       // C++ [dcl.fct]p6:
3494       //   Types shall not be defined in return or parameter types.
3495       DiagID = diag::err_type_defined_in_param_type;
3496       break;
3497     case DeclaratorContext::ConditionContext:
3498       // C++ 6.4p2:
3499       // The type-specifier-seq shall not contain typedef and shall not declare
3500       // a new class or enumeration.
3501       DiagID = diag::err_type_defined_in_condition;
3502       break;
3503     }
3504 
3505     if (DiagID != 0) {
3506       SemaRef.Diag(OwnedTagDecl->getLocation(), DiagID)
3507           << SemaRef.Context.getTypeDeclType(OwnedTagDecl);
3508       D.setInvalidType(true);
3509     }
3510   }
3511 
3512   assert(!T.isNull() && "This function should not return a null type");
3513   return T;
3514 }
3515 
3516 /// Produce an appropriate diagnostic for an ambiguity between a function
3517 /// declarator and a C++ direct-initializer.
3518 static void warnAboutAmbiguousFunction(Sema &S, Declarator &D,
3519                                        DeclaratorChunk &DeclType, QualType RT) {
3520   const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
3521   assert(FTI.isAmbiguous && "no direct-initializer / function ambiguity");
3522 
3523   // If the return type is void there is no ambiguity.
3524   if (RT->isVoidType())
3525     return;
3526 
3527   // An initializer for a non-class type can have at most one argument.
3528   if (!RT->isRecordType() && FTI.NumParams > 1)
3529     return;
3530 
3531   // An initializer for a reference must have exactly one argument.
3532   if (RT->isReferenceType() && FTI.NumParams != 1)
3533     return;
3534 
3535   // Only warn if this declarator is declaring a function at block scope, and
3536   // doesn't have a storage class (such as 'extern') specified.
3537   if (!D.isFunctionDeclarator() ||
3538       D.getFunctionDefinitionKind() != FDK_Declaration ||
3539       !S.CurContext->isFunctionOrMethod() ||
3540       D.getDeclSpec().getStorageClassSpec()
3541         != DeclSpec::SCS_unspecified)
3542     return;
3543 
3544   // Inside a condition, a direct initializer is not permitted. We allow one to
3545   // be parsed in order to give better diagnostics in condition parsing.
3546   if (D.getContext() == DeclaratorContext::ConditionContext)
3547     return;
3548 
3549   SourceRange ParenRange(DeclType.Loc, DeclType.EndLoc);
3550 
3551   S.Diag(DeclType.Loc,
3552          FTI.NumParams ? diag::warn_parens_disambiguated_as_function_declaration
3553                        : diag::warn_empty_parens_are_function_decl)
3554       << ParenRange;
3555 
3556   // If the declaration looks like:
3557   //   T var1,
3558   //   f();
3559   // and name lookup finds a function named 'f', then the ',' was
3560   // probably intended to be a ';'.
3561   if (!D.isFirstDeclarator() && D.getIdentifier()) {
3562     FullSourceLoc Comma(D.getCommaLoc(), S.SourceMgr);
3563     FullSourceLoc Name(D.getIdentifierLoc(), S.SourceMgr);
3564     if (Comma.getFileID() != Name.getFileID() ||
3565         Comma.getSpellingLineNumber() != Name.getSpellingLineNumber()) {
3566       LookupResult Result(S, D.getIdentifier(), SourceLocation(),
3567                           Sema::LookupOrdinaryName);
3568       if (S.LookupName(Result, S.getCurScope()))
3569         S.Diag(D.getCommaLoc(), diag::note_empty_parens_function_call)
3570           << FixItHint::CreateReplacement(D.getCommaLoc(), ";")
3571           << D.getIdentifier();
3572       Result.suppressDiagnostics();
3573     }
3574   }
3575 
3576   if (FTI.NumParams > 0) {
3577     // For a declaration with parameters, eg. "T var(T());", suggest adding
3578     // parens around the first parameter to turn the declaration into a
3579     // variable declaration.
3580     SourceRange Range = FTI.Params[0].Param->getSourceRange();
3581     SourceLocation B = Range.getBegin();
3582     SourceLocation E = S.getLocForEndOfToken(Range.getEnd());
3583     // FIXME: Maybe we should suggest adding braces instead of parens
3584     // in C++11 for classes that don't have an initializer_list constructor.
3585     S.Diag(B, diag::note_additional_parens_for_variable_declaration)
3586       << FixItHint::CreateInsertion(B, "(")
3587       << FixItHint::CreateInsertion(E, ")");
3588   } else {
3589     // For a declaration without parameters, eg. "T var();", suggest replacing
3590     // the parens with an initializer to turn the declaration into a variable
3591     // declaration.
3592     const CXXRecordDecl *RD = RT->getAsCXXRecordDecl();
3593 
3594     // Empty parens mean value-initialization, and no parens mean
3595     // default initialization. These are equivalent if the default
3596     // constructor is user-provided or if zero-initialization is a
3597     // no-op.
3598     if (RD && RD->hasDefinition() &&
3599         (RD->isEmpty() || RD->hasUserProvidedDefaultConstructor()))
3600       S.Diag(DeclType.Loc, diag::note_empty_parens_default_ctor)
3601         << FixItHint::CreateRemoval(ParenRange);
3602     else {
3603       std::string Init =
3604           S.getFixItZeroInitializerForType(RT, ParenRange.getBegin());
3605       if (Init.empty() && S.LangOpts.CPlusPlus11)
3606         Init = "{}";
3607       if (!Init.empty())
3608         S.Diag(DeclType.Loc, diag::note_empty_parens_zero_initialize)
3609           << FixItHint::CreateReplacement(ParenRange, Init);
3610     }
3611   }
3612 }
3613 
3614 /// Produce an appropriate diagnostic for a declarator with top-level
3615 /// parentheses.
3616 static void warnAboutRedundantParens(Sema &S, Declarator &D, QualType T) {
3617   DeclaratorChunk &Paren = D.getTypeObject(D.getNumTypeObjects() - 1);
3618   assert(Paren.Kind == DeclaratorChunk::Paren &&
3619          "do not have redundant top-level parentheses");
3620 
3621   // This is a syntactic check; we're not interested in cases that arise
3622   // during template instantiation.
3623   if (S.inTemplateInstantiation())
3624     return;
3625 
3626   // Check whether this could be intended to be a construction of a temporary
3627   // object in C++ via a function-style cast.
3628   bool CouldBeTemporaryObject =
3629       S.getLangOpts().CPlusPlus && D.isExpressionContext() &&
3630       !D.isInvalidType() && D.getIdentifier() &&
3631       D.getDeclSpec().getParsedSpecifiers() == DeclSpec::PQ_TypeSpecifier &&
3632       (T->isRecordType() || T->isDependentType()) &&
3633       D.getDeclSpec().getTypeQualifiers() == 0 && D.isFirstDeclarator();
3634 
3635   bool StartsWithDeclaratorId = true;
3636   for (auto &C : D.type_objects()) {
3637     switch (C.Kind) {
3638     case DeclaratorChunk::Paren:
3639       if (&C == &Paren)
3640         continue;
3641       LLVM_FALLTHROUGH;
3642     case DeclaratorChunk::Pointer:
3643       StartsWithDeclaratorId = false;
3644       continue;
3645 
3646     case DeclaratorChunk::Array:
3647       if (!C.Arr.NumElts)
3648         CouldBeTemporaryObject = false;
3649       continue;
3650 
3651     case DeclaratorChunk::Reference:
3652       // FIXME: Suppress the warning here if there is no initializer; we're
3653       // going to give an error anyway.
3654       // We assume that something like 'T (&x) = y;' is highly likely to not
3655       // be intended to be a temporary object.
3656       CouldBeTemporaryObject = false;
3657       StartsWithDeclaratorId = false;
3658       continue;
3659 
3660     case DeclaratorChunk::Function:
3661       // In a new-type-id, function chunks require parentheses.
3662       if (D.getContext() == DeclaratorContext::CXXNewContext)
3663         return;
3664       // FIXME: "A(f())" deserves a vexing-parse warning, not just a
3665       // redundant-parens warning, but we don't know whether the function
3666       // chunk was syntactically valid as an expression here.
3667       CouldBeTemporaryObject = false;
3668       continue;
3669 
3670     case DeclaratorChunk::BlockPointer:
3671     case DeclaratorChunk::MemberPointer:
3672     case DeclaratorChunk::Pipe:
3673       // These cannot appear in expressions.
3674       CouldBeTemporaryObject = false;
3675       StartsWithDeclaratorId = false;
3676       continue;
3677     }
3678   }
3679 
3680   // FIXME: If there is an initializer, assume that this is not intended to be
3681   // a construction of a temporary object.
3682 
3683   // Check whether the name has already been declared; if not, this is not a
3684   // function-style cast.
3685   if (CouldBeTemporaryObject) {
3686     LookupResult Result(S, D.getIdentifier(), SourceLocation(),
3687                         Sema::LookupOrdinaryName);
3688     if (!S.LookupName(Result, S.getCurScope()))
3689       CouldBeTemporaryObject = false;
3690     Result.suppressDiagnostics();
3691   }
3692 
3693   SourceRange ParenRange(Paren.Loc, Paren.EndLoc);
3694 
3695   if (!CouldBeTemporaryObject) {
3696     // If we have A (::B), the parentheses affect the meaning of the program.
3697     // Suppress the warning in that case. Don't bother looking at the DeclSpec
3698     // here: even (e.g.) "int ::x" is visually ambiguous even though it's
3699     // formally unambiguous.
3700     if (StartsWithDeclaratorId && D.getCXXScopeSpec().isValid()) {
3701       for (NestedNameSpecifier *NNS = D.getCXXScopeSpec().getScopeRep(); NNS;
3702            NNS = NNS->getPrefix()) {
3703         if (NNS->getKind() == NestedNameSpecifier::Global)
3704           return;
3705       }
3706     }
3707 
3708     S.Diag(Paren.Loc, diag::warn_redundant_parens_around_declarator)
3709         << ParenRange << FixItHint::CreateRemoval(Paren.Loc)
3710         << FixItHint::CreateRemoval(Paren.EndLoc);
3711     return;
3712   }
3713 
3714   S.Diag(Paren.Loc, diag::warn_parens_disambiguated_as_variable_declaration)
3715       << ParenRange << D.getIdentifier();
3716   auto *RD = T->getAsCXXRecordDecl();
3717   if (!RD || !RD->hasDefinition() || RD->hasNonTrivialDestructor())
3718     S.Diag(Paren.Loc, diag::note_raii_guard_add_name)
3719         << FixItHint::CreateInsertion(Paren.Loc, " varname") << T
3720         << D.getIdentifier();
3721   // FIXME: A cast to void is probably a better suggestion in cases where it's
3722   // valid (when there is no initializer and we're not in a condition).
3723   S.Diag(D.getBeginLoc(), diag::note_function_style_cast_add_parentheses)
3724       << FixItHint::CreateInsertion(D.getBeginLoc(), "(")
3725       << FixItHint::CreateInsertion(S.getLocForEndOfToken(D.getEndLoc()), ")");
3726   S.Diag(Paren.Loc, diag::note_remove_parens_for_variable_declaration)
3727       << FixItHint::CreateRemoval(Paren.Loc)
3728       << FixItHint::CreateRemoval(Paren.EndLoc);
3729 }
3730 
3731 /// Helper for figuring out the default CC for a function declarator type.  If
3732 /// this is the outermost chunk, then we can determine the CC from the
3733 /// declarator context.  If not, then this could be either a member function
3734 /// type or normal function type.
3735 static CallingConv getCCForDeclaratorChunk(
3736     Sema &S, Declarator &D, const ParsedAttributesView &AttrList,
3737     const DeclaratorChunk::FunctionTypeInfo &FTI, unsigned ChunkIndex) {
3738   assert(D.getTypeObject(ChunkIndex).Kind == DeclaratorChunk::Function);
3739 
3740   // Check for an explicit CC attribute.
3741   for (const ParsedAttr &AL : AttrList) {
3742     switch (AL.getKind()) {
3743     CALLING_CONV_ATTRS_CASELIST : {
3744       // Ignore attributes that don't validate or can't apply to the
3745       // function type.  We'll diagnose the failure to apply them in
3746       // handleFunctionTypeAttr.
3747       CallingConv CC;
3748       if (!S.CheckCallingConvAttr(AL, CC) &&
3749           (!FTI.isVariadic || supportsVariadicCall(CC))) {
3750         return CC;
3751       }
3752       break;
3753     }
3754 
3755     default:
3756       break;
3757     }
3758   }
3759 
3760   bool IsCXXInstanceMethod = false;
3761 
3762   if (S.getLangOpts().CPlusPlus) {
3763     // Look inwards through parentheses to see if this chunk will form a
3764     // member pointer type or if we're the declarator.  Any type attributes
3765     // between here and there will override the CC we choose here.
3766     unsigned I = ChunkIndex;
3767     bool FoundNonParen = false;
3768     while (I && !FoundNonParen) {
3769       --I;
3770       if (D.getTypeObject(I).Kind != DeclaratorChunk::Paren)
3771         FoundNonParen = true;
3772     }
3773 
3774     if (FoundNonParen) {
3775       // If we're not the declarator, we're a regular function type unless we're
3776       // in a member pointer.
3777       IsCXXInstanceMethod =
3778           D.getTypeObject(I).Kind == DeclaratorChunk::MemberPointer;
3779     } else if (D.getContext() == DeclaratorContext::LambdaExprContext) {
3780       // This can only be a call operator for a lambda, which is an instance
3781       // method.
3782       IsCXXInstanceMethod = true;
3783     } else {
3784       // We're the innermost decl chunk, so must be a function declarator.
3785       assert(D.isFunctionDeclarator());
3786 
3787       // If we're inside a record, we're declaring a method, but it could be
3788       // explicitly or implicitly static.
3789       IsCXXInstanceMethod =
3790           D.isFirstDeclarationOfMember() &&
3791           D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef &&
3792           !D.isStaticMember();
3793     }
3794   }
3795 
3796   CallingConv CC = S.Context.getDefaultCallingConvention(FTI.isVariadic,
3797                                                          IsCXXInstanceMethod);
3798 
3799   // Attribute AT_OpenCLKernel affects the calling convention for SPIR
3800   // and AMDGPU targets, hence it cannot be treated as a calling
3801   // convention attribute. This is the simplest place to infer
3802   // calling convention for OpenCL kernels.
3803   if (S.getLangOpts().OpenCL) {
3804     for (const ParsedAttr &AL : D.getDeclSpec().getAttributes()) {
3805       if (AL.getKind() == ParsedAttr::AT_OpenCLKernel) {
3806         CC = CC_OpenCLKernel;
3807         break;
3808       }
3809     }
3810   }
3811 
3812   return CC;
3813 }
3814 
3815 namespace {
3816   /// A simple notion of pointer kinds, which matches up with the various
3817   /// pointer declarators.
3818   enum class SimplePointerKind {
3819     Pointer,
3820     BlockPointer,
3821     MemberPointer,
3822     Array,
3823   };
3824 } // end anonymous namespace
3825 
3826 IdentifierInfo *Sema::getNullabilityKeyword(NullabilityKind nullability) {
3827   switch (nullability) {
3828   case NullabilityKind::NonNull:
3829     if (!Ident__Nonnull)
3830       Ident__Nonnull = PP.getIdentifierInfo("_Nonnull");
3831     return Ident__Nonnull;
3832 
3833   case NullabilityKind::Nullable:
3834     if (!Ident__Nullable)
3835       Ident__Nullable = PP.getIdentifierInfo("_Nullable");
3836     return Ident__Nullable;
3837 
3838   case NullabilityKind::Unspecified:
3839     if (!Ident__Null_unspecified)
3840       Ident__Null_unspecified = PP.getIdentifierInfo("_Null_unspecified");
3841     return Ident__Null_unspecified;
3842   }
3843   llvm_unreachable("Unknown nullability kind.");
3844 }
3845 
3846 /// Retrieve the identifier "NSError".
3847 IdentifierInfo *Sema::getNSErrorIdent() {
3848   if (!Ident_NSError)
3849     Ident_NSError = PP.getIdentifierInfo("NSError");
3850 
3851   return Ident_NSError;
3852 }
3853 
3854 /// Check whether there is a nullability attribute of any kind in the given
3855 /// attribute list.
3856 static bool hasNullabilityAttr(const ParsedAttributesView &attrs) {
3857   for (const ParsedAttr &AL : attrs) {
3858     if (AL.getKind() == ParsedAttr::AT_TypeNonNull ||
3859         AL.getKind() == ParsedAttr::AT_TypeNullable ||
3860         AL.getKind() == ParsedAttr::AT_TypeNullUnspecified)
3861       return true;
3862   }
3863 
3864   return false;
3865 }
3866 
3867 namespace {
3868   /// Describes the kind of a pointer a declarator describes.
3869   enum class PointerDeclaratorKind {
3870     // Not a pointer.
3871     NonPointer,
3872     // Single-level pointer.
3873     SingleLevelPointer,
3874     // Multi-level pointer (of any pointer kind).
3875     MultiLevelPointer,
3876     // CFFooRef*
3877     MaybePointerToCFRef,
3878     // CFErrorRef*
3879     CFErrorRefPointer,
3880     // NSError**
3881     NSErrorPointerPointer,
3882   };
3883 
3884   /// Describes a declarator chunk wrapping a pointer that marks inference as
3885   /// unexpected.
3886   // These values must be kept in sync with diagnostics.
3887   enum class PointerWrappingDeclaratorKind {
3888     /// Pointer is top-level.
3889     None = -1,
3890     /// Pointer is an array element.
3891     Array = 0,
3892     /// Pointer is the referent type of a C++ reference.
3893     Reference = 1
3894   };
3895 } // end anonymous namespace
3896 
3897 /// Classify the given declarator, whose type-specified is \c type, based on
3898 /// what kind of pointer it refers to.
3899 ///
3900 /// This is used to determine the default nullability.
3901 static PointerDeclaratorKind
3902 classifyPointerDeclarator(Sema &S, QualType type, Declarator &declarator,
3903                           PointerWrappingDeclaratorKind &wrappingKind) {
3904   unsigned numNormalPointers = 0;
3905 
3906   // For any dependent type, we consider it a non-pointer.
3907   if (type->isDependentType())
3908     return PointerDeclaratorKind::NonPointer;
3909 
3910   // Look through the declarator chunks to identify pointers.
3911   for (unsigned i = 0, n = declarator.getNumTypeObjects(); i != n; ++i) {
3912     DeclaratorChunk &chunk = declarator.getTypeObject(i);
3913     switch (chunk.Kind) {
3914     case DeclaratorChunk::Array:
3915       if (numNormalPointers == 0)
3916         wrappingKind = PointerWrappingDeclaratorKind::Array;
3917       break;
3918 
3919     case DeclaratorChunk::Function:
3920     case DeclaratorChunk::Pipe:
3921       break;
3922 
3923     case DeclaratorChunk::BlockPointer:
3924     case DeclaratorChunk::MemberPointer:
3925       return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
3926                                    : PointerDeclaratorKind::SingleLevelPointer;
3927 
3928     case DeclaratorChunk::Paren:
3929       break;
3930 
3931     case DeclaratorChunk::Reference:
3932       if (numNormalPointers == 0)
3933         wrappingKind = PointerWrappingDeclaratorKind::Reference;
3934       break;
3935 
3936     case DeclaratorChunk::Pointer:
3937       ++numNormalPointers;
3938       if (numNormalPointers > 2)
3939         return PointerDeclaratorKind::MultiLevelPointer;
3940       break;
3941     }
3942   }
3943 
3944   // Then, dig into the type specifier itself.
3945   unsigned numTypeSpecifierPointers = 0;
3946   do {
3947     // Decompose normal pointers.
3948     if (auto ptrType = type->getAs<PointerType>()) {
3949       ++numNormalPointers;
3950 
3951       if (numNormalPointers > 2)
3952         return PointerDeclaratorKind::MultiLevelPointer;
3953 
3954       type = ptrType->getPointeeType();
3955       ++numTypeSpecifierPointers;
3956       continue;
3957     }
3958 
3959     // Decompose block pointers.
3960     if (type->getAs<BlockPointerType>()) {
3961       return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
3962                                    : PointerDeclaratorKind::SingleLevelPointer;
3963     }
3964 
3965     // Decompose member pointers.
3966     if (type->getAs<MemberPointerType>()) {
3967       return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
3968                                    : PointerDeclaratorKind::SingleLevelPointer;
3969     }
3970 
3971     // Look at Objective-C object pointers.
3972     if (auto objcObjectPtr = type->getAs<ObjCObjectPointerType>()) {
3973       ++numNormalPointers;
3974       ++numTypeSpecifierPointers;
3975 
3976       // If this is NSError**, report that.
3977       if (auto objcClassDecl = objcObjectPtr->getInterfaceDecl()) {
3978         if (objcClassDecl->getIdentifier() == S.getNSErrorIdent() &&
3979             numNormalPointers == 2 && numTypeSpecifierPointers < 2) {
3980           return PointerDeclaratorKind::NSErrorPointerPointer;
3981         }
3982       }
3983 
3984       break;
3985     }
3986 
3987     // Look at Objective-C class types.
3988     if (auto objcClass = type->getAs<ObjCInterfaceType>()) {
3989       if (objcClass->getInterface()->getIdentifier() == S.getNSErrorIdent()) {
3990         if (numNormalPointers == 2 && numTypeSpecifierPointers < 2)
3991           return PointerDeclaratorKind::NSErrorPointerPointer;
3992       }
3993 
3994       break;
3995     }
3996 
3997     // If at this point we haven't seen a pointer, we won't see one.
3998     if (numNormalPointers == 0)
3999       return PointerDeclaratorKind::NonPointer;
4000 
4001     if (auto recordType = type->getAs<RecordType>()) {
4002       RecordDecl *recordDecl = recordType->getDecl();
4003 
4004       bool isCFError = false;
4005       if (S.CFError) {
4006         // If we already know about CFError, test it directly.
4007         isCFError = (S.CFError == recordDecl);
4008       } else {
4009         // Check whether this is CFError, which we identify based on its bridge
4010         // to NSError. CFErrorRef used to be declared with "objc_bridge" but is
4011         // now declared with "objc_bridge_mutable", so look for either one of
4012         // the two attributes.
4013         if (recordDecl->getTagKind() == TTK_Struct && numNormalPointers > 0) {
4014           IdentifierInfo *bridgedType = nullptr;
4015           if (auto bridgeAttr = recordDecl->getAttr<ObjCBridgeAttr>())
4016             bridgedType = bridgeAttr->getBridgedType();
4017           else if (auto bridgeAttr =
4018                        recordDecl->getAttr<ObjCBridgeMutableAttr>())
4019             bridgedType = bridgeAttr->getBridgedType();
4020 
4021           if (bridgedType == S.getNSErrorIdent()) {
4022             S.CFError = recordDecl;
4023             isCFError = true;
4024           }
4025         }
4026       }
4027 
4028       // If this is CFErrorRef*, report it as such.
4029       if (isCFError && numNormalPointers == 2 && numTypeSpecifierPointers < 2) {
4030         return PointerDeclaratorKind::CFErrorRefPointer;
4031       }
4032       break;
4033     }
4034 
4035     break;
4036   } while (true);
4037 
4038   switch (numNormalPointers) {
4039   case 0:
4040     return PointerDeclaratorKind::NonPointer;
4041 
4042   case 1:
4043     return PointerDeclaratorKind::SingleLevelPointer;
4044 
4045   case 2:
4046     return PointerDeclaratorKind::MaybePointerToCFRef;
4047 
4048   default:
4049     return PointerDeclaratorKind::MultiLevelPointer;
4050   }
4051 }
4052 
4053 static FileID getNullabilityCompletenessCheckFileID(Sema &S,
4054                                                     SourceLocation loc) {
4055   // If we're anywhere in a function, method, or closure context, don't perform
4056   // completeness checks.
4057   for (DeclContext *ctx = S.CurContext; ctx; ctx = ctx->getParent()) {
4058     if (ctx->isFunctionOrMethod())
4059       return FileID();
4060 
4061     if (ctx->isFileContext())
4062       break;
4063   }
4064 
4065   // We only care about the expansion location.
4066   loc = S.SourceMgr.getExpansionLoc(loc);
4067   FileID file = S.SourceMgr.getFileID(loc);
4068   if (file.isInvalid())
4069     return FileID();
4070 
4071   // Retrieve file information.
4072   bool invalid = false;
4073   const SrcMgr::SLocEntry &sloc = S.SourceMgr.getSLocEntry(file, &invalid);
4074   if (invalid || !sloc.isFile())
4075     return FileID();
4076 
4077   // We don't want to perform completeness checks on the main file or in
4078   // system headers.
4079   const SrcMgr::FileInfo &fileInfo = sloc.getFile();
4080   if (fileInfo.getIncludeLoc().isInvalid())
4081     return FileID();
4082   if (fileInfo.getFileCharacteristic() != SrcMgr::C_User &&
4083       S.Diags.getSuppressSystemWarnings()) {
4084     return FileID();
4085   }
4086 
4087   return file;
4088 }
4089 
4090 /// Creates a fix-it to insert a C-style nullability keyword at \p pointerLoc,
4091 /// taking into account whitespace before and after.
4092 static void fixItNullability(Sema &S, DiagnosticBuilder &Diag,
4093                              SourceLocation PointerLoc,
4094                              NullabilityKind Nullability) {
4095   assert(PointerLoc.isValid());
4096   if (PointerLoc.isMacroID())
4097     return;
4098 
4099   SourceLocation FixItLoc = S.getLocForEndOfToken(PointerLoc);
4100   if (!FixItLoc.isValid() || FixItLoc == PointerLoc)
4101     return;
4102 
4103   const char *NextChar = S.SourceMgr.getCharacterData(FixItLoc);
4104   if (!NextChar)
4105     return;
4106 
4107   SmallString<32> InsertionTextBuf{" "};
4108   InsertionTextBuf += getNullabilitySpelling(Nullability);
4109   InsertionTextBuf += " ";
4110   StringRef InsertionText = InsertionTextBuf.str();
4111 
4112   if (isWhitespace(*NextChar)) {
4113     InsertionText = InsertionText.drop_back();
4114   } else if (NextChar[-1] == '[') {
4115     if (NextChar[0] == ']')
4116       InsertionText = InsertionText.drop_back().drop_front();
4117     else
4118       InsertionText = InsertionText.drop_front();
4119   } else if (!isIdentifierBody(NextChar[0], /*allow dollar*/true) &&
4120              !isIdentifierBody(NextChar[-1], /*allow dollar*/true)) {
4121     InsertionText = InsertionText.drop_back().drop_front();
4122   }
4123 
4124   Diag << FixItHint::CreateInsertion(FixItLoc, InsertionText);
4125 }
4126 
4127 static void emitNullabilityConsistencyWarning(Sema &S,
4128                                               SimplePointerKind PointerKind,
4129                                               SourceLocation PointerLoc,
4130                                               SourceLocation PointerEndLoc) {
4131   assert(PointerLoc.isValid());
4132 
4133   if (PointerKind == SimplePointerKind::Array) {
4134     S.Diag(PointerLoc, diag::warn_nullability_missing_array);
4135   } else {
4136     S.Diag(PointerLoc, diag::warn_nullability_missing)
4137       << static_cast<unsigned>(PointerKind);
4138   }
4139 
4140   auto FixItLoc = PointerEndLoc.isValid() ? PointerEndLoc : PointerLoc;
4141   if (FixItLoc.isMacroID())
4142     return;
4143 
4144   auto addFixIt = [&](NullabilityKind Nullability) {
4145     auto Diag = S.Diag(FixItLoc, diag::note_nullability_fix_it);
4146     Diag << static_cast<unsigned>(Nullability);
4147     Diag << static_cast<unsigned>(PointerKind);
4148     fixItNullability(S, Diag, FixItLoc, Nullability);
4149   };
4150   addFixIt(NullabilityKind::Nullable);
4151   addFixIt(NullabilityKind::NonNull);
4152 }
4153 
4154 /// Complains about missing nullability if the file containing \p pointerLoc
4155 /// has other uses of nullability (either the keywords or the \c assume_nonnull
4156 /// pragma).
4157 ///
4158 /// If the file has \e not seen other uses of nullability, this particular
4159 /// pointer is saved for possible later diagnosis. See recordNullabilitySeen().
4160 static void
4161 checkNullabilityConsistency(Sema &S, SimplePointerKind pointerKind,
4162                             SourceLocation pointerLoc,
4163                             SourceLocation pointerEndLoc = SourceLocation()) {
4164   // Determine which file we're performing consistency checking for.
4165   FileID file = getNullabilityCompletenessCheckFileID(S, pointerLoc);
4166   if (file.isInvalid())
4167     return;
4168 
4169   // If we haven't seen any type nullability in this file, we won't warn now
4170   // about anything.
4171   FileNullability &fileNullability = S.NullabilityMap[file];
4172   if (!fileNullability.SawTypeNullability) {
4173     // If this is the first pointer declarator in the file, and the appropriate
4174     // warning is on, record it in case we need to diagnose it retroactively.
4175     diag::kind diagKind;
4176     if (pointerKind == SimplePointerKind::Array)
4177       diagKind = diag::warn_nullability_missing_array;
4178     else
4179       diagKind = diag::warn_nullability_missing;
4180 
4181     if (fileNullability.PointerLoc.isInvalid() &&
4182         !S.Context.getDiagnostics().isIgnored(diagKind, pointerLoc)) {
4183       fileNullability.PointerLoc = pointerLoc;
4184       fileNullability.PointerEndLoc = pointerEndLoc;
4185       fileNullability.PointerKind = static_cast<unsigned>(pointerKind);
4186     }
4187 
4188     return;
4189   }
4190 
4191   // Complain about missing nullability.
4192   emitNullabilityConsistencyWarning(S, pointerKind, pointerLoc, pointerEndLoc);
4193 }
4194 
4195 /// Marks that a nullability feature has been used in the file containing
4196 /// \p loc.
4197 ///
4198 /// If this file already had pointer types in it that were missing nullability,
4199 /// the first such instance is retroactively diagnosed.
4200 ///
4201 /// \sa checkNullabilityConsistency
4202 static void recordNullabilitySeen(Sema &S, SourceLocation loc) {
4203   FileID file = getNullabilityCompletenessCheckFileID(S, loc);
4204   if (file.isInvalid())
4205     return;
4206 
4207   FileNullability &fileNullability = S.NullabilityMap[file];
4208   if (fileNullability.SawTypeNullability)
4209     return;
4210   fileNullability.SawTypeNullability = true;
4211 
4212   // If we haven't seen any type nullability before, now we have. Retroactively
4213   // diagnose the first unannotated pointer, if there was one.
4214   if (fileNullability.PointerLoc.isInvalid())
4215     return;
4216 
4217   auto kind = static_cast<SimplePointerKind>(fileNullability.PointerKind);
4218   emitNullabilityConsistencyWarning(S, kind, fileNullability.PointerLoc,
4219                                     fileNullability.PointerEndLoc);
4220 }
4221 
4222 /// Returns true if any of the declarator chunks before \p endIndex include a
4223 /// level of indirection: array, pointer, reference, or pointer-to-member.
4224 ///
4225 /// Because declarator chunks are stored in outer-to-inner order, testing
4226 /// every chunk before \p endIndex is testing all chunks that embed the current
4227 /// chunk as part of their type.
4228 ///
4229 /// It is legal to pass the result of Declarator::getNumTypeObjects() as the
4230 /// end index, in which case all chunks are tested.
4231 static bool hasOuterPointerLikeChunk(const Declarator &D, unsigned endIndex) {
4232   unsigned i = endIndex;
4233   while (i != 0) {
4234     // Walk outwards along the declarator chunks.
4235     --i;
4236     const DeclaratorChunk &DC = D.getTypeObject(i);
4237     switch (DC.Kind) {
4238     case DeclaratorChunk::Paren:
4239       break;
4240     case DeclaratorChunk::Array:
4241     case DeclaratorChunk::Pointer:
4242     case DeclaratorChunk::Reference:
4243     case DeclaratorChunk::MemberPointer:
4244       return true;
4245     case DeclaratorChunk::Function:
4246     case DeclaratorChunk::BlockPointer:
4247     case DeclaratorChunk::Pipe:
4248       // These are invalid anyway, so just ignore.
4249       break;
4250     }
4251   }
4252   return false;
4253 }
4254 
4255 static bool IsNoDerefableChunk(DeclaratorChunk Chunk) {
4256   return (Chunk.Kind == DeclaratorChunk::Pointer ||
4257           Chunk.Kind == DeclaratorChunk::Array);
4258 }
4259 
4260 template<typename AttrT>
4261 static AttrT *createSimpleAttr(ASTContext &Ctx, ParsedAttr &AL) {
4262   AL.setUsedAsTypeAttr();
4263   return ::new (Ctx) AttrT(Ctx, AL);
4264 }
4265 
4266 static Attr *createNullabilityAttr(ASTContext &Ctx, ParsedAttr &Attr,
4267                                    NullabilityKind NK) {
4268   switch (NK) {
4269   case NullabilityKind::NonNull:
4270     return createSimpleAttr<TypeNonNullAttr>(Ctx, Attr);
4271 
4272   case NullabilityKind::Nullable:
4273     return createSimpleAttr<TypeNullableAttr>(Ctx, Attr);
4274 
4275   case NullabilityKind::Unspecified:
4276     return createSimpleAttr<TypeNullUnspecifiedAttr>(Ctx, Attr);
4277   }
4278   llvm_unreachable("unknown NullabilityKind");
4279 }
4280 
4281 // Diagnose whether this is a case with the multiple addr spaces.
4282 // Returns true if this is an invalid case.
4283 // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "No type shall be qualified
4284 // by qualifiers for two or more different address spaces."
4285 static bool DiagnoseMultipleAddrSpaceAttributes(Sema &S, LangAS ASOld,
4286                                                 LangAS ASNew,
4287                                                 SourceLocation AttrLoc) {
4288   if (ASOld != LangAS::Default) {
4289     if (ASOld != ASNew) {
4290       S.Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers);
4291       return true;
4292     }
4293     // Emit a warning if they are identical; it's likely unintended.
4294     S.Diag(AttrLoc,
4295            diag::warn_attribute_address_multiple_identical_qualifiers);
4296   }
4297   return false;
4298 }
4299 
4300 static TypeSourceInfo *GetFullTypeForDeclarator(TypeProcessingState &state,
4301                                                 QualType declSpecType,
4302                                                 TypeSourceInfo *TInfo) {
4303   // The TypeSourceInfo that this function returns will not be a null type.
4304   // If there is an error, this function will fill in a dummy type as fallback.
4305   QualType T = declSpecType;
4306   Declarator &D = state.getDeclarator();
4307   Sema &S = state.getSema();
4308   ASTContext &Context = S.Context;
4309   const LangOptions &LangOpts = S.getLangOpts();
4310 
4311   // The name we're declaring, if any.
4312   DeclarationName Name;
4313   if (D.getIdentifier())
4314     Name = D.getIdentifier();
4315 
4316   // Does this declaration declare a typedef-name?
4317   bool IsTypedefName =
4318     D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef ||
4319     D.getContext() == DeclaratorContext::AliasDeclContext ||
4320     D.getContext() == DeclaratorContext::AliasTemplateContext;
4321 
4322   // Does T refer to a function type with a cv-qualifier or a ref-qualifier?
4323   bool IsQualifiedFunction = T->isFunctionProtoType() &&
4324       (!T->castAs<FunctionProtoType>()->getMethodQuals().empty() ||
4325        T->castAs<FunctionProtoType>()->getRefQualifier() != RQ_None);
4326 
4327   // If T is 'decltype(auto)', the only declarators we can have are parens
4328   // and at most one function declarator if this is a function declaration.
4329   // If T is a deduced class template specialization type, we can have no
4330   // declarator chunks at all.
4331   if (auto *DT = T->getAs<DeducedType>()) {
4332     const AutoType *AT = T->getAs<AutoType>();
4333     bool IsClassTemplateDeduction = isa<DeducedTemplateSpecializationType>(DT);
4334     if ((AT && AT->isDecltypeAuto()) || IsClassTemplateDeduction) {
4335       for (unsigned I = 0, E = D.getNumTypeObjects(); I != E; ++I) {
4336         unsigned Index = E - I - 1;
4337         DeclaratorChunk &DeclChunk = D.getTypeObject(Index);
4338         unsigned DiagId = IsClassTemplateDeduction
4339                               ? diag::err_deduced_class_template_compound_type
4340                               : diag::err_decltype_auto_compound_type;
4341         unsigned DiagKind = 0;
4342         switch (DeclChunk.Kind) {
4343         case DeclaratorChunk::Paren:
4344           // FIXME: Rejecting this is a little silly.
4345           if (IsClassTemplateDeduction) {
4346             DiagKind = 4;
4347             break;
4348           }
4349           continue;
4350         case DeclaratorChunk::Function: {
4351           if (IsClassTemplateDeduction) {
4352             DiagKind = 3;
4353             break;
4354           }
4355           unsigned FnIndex;
4356           if (D.isFunctionDeclarationContext() &&
4357               D.isFunctionDeclarator(FnIndex) && FnIndex == Index)
4358             continue;
4359           DiagId = diag::err_decltype_auto_function_declarator_not_declaration;
4360           break;
4361         }
4362         case DeclaratorChunk::Pointer:
4363         case DeclaratorChunk::BlockPointer:
4364         case DeclaratorChunk::MemberPointer:
4365           DiagKind = 0;
4366           break;
4367         case DeclaratorChunk::Reference:
4368           DiagKind = 1;
4369           break;
4370         case DeclaratorChunk::Array:
4371           DiagKind = 2;
4372           break;
4373         case DeclaratorChunk::Pipe:
4374           break;
4375         }
4376 
4377         S.Diag(DeclChunk.Loc, DiagId) << DiagKind;
4378         D.setInvalidType(true);
4379         break;
4380       }
4381     }
4382   }
4383 
4384   // Determine whether we should infer _Nonnull on pointer types.
4385   Optional<NullabilityKind> inferNullability;
4386   bool inferNullabilityCS = false;
4387   bool inferNullabilityInnerOnly = false;
4388   bool inferNullabilityInnerOnlyComplete = false;
4389 
4390   // Are we in an assume-nonnull region?
4391   bool inAssumeNonNullRegion = false;
4392   SourceLocation assumeNonNullLoc = S.PP.getPragmaAssumeNonNullLoc();
4393   if (assumeNonNullLoc.isValid()) {
4394     inAssumeNonNullRegion = true;
4395     recordNullabilitySeen(S, assumeNonNullLoc);
4396   }
4397 
4398   // Whether to complain about missing nullability specifiers or not.
4399   enum {
4400     /// Never complain.
4401     CAMN_No,
4402     /// Complain on the inner pointers (but not the outermost
4403     /// pointer).
4404     CAMN_InnerPointers,
4405     /// Complain about any pointers that don't have nullability
4406     /// specified or inferred.
4407     CAMN_Yes
4408   } complainAboutMissingNullability = CAMN_No;
4409   unsigned NumPointersRemaining = 0;
4410   auto complainAboutInferringWithinChunk = PointerWrappingDeclaratorKind::None;
4411 
4412   if (IsTypedefName) {
4413     // For typedefs, we do not infer any nullability (the default),
4414     // and we only complain about missing nullability specifiers on
4415     // inner pointers.
4416     complainAboutMissingNullability = CAMN_InnerPointers;
4417 
4418     if (T->canHaveNullability(/*ResultIfUnknown*/false) &&
4419         !T->getNullability(S.Context)) {
4420       // Note that we allow but don't require nullability on dependent types.
4421       ++NumPointersRemaining;
4422     }
4423 
4424     for (unsigned i = 0, n = D.getNumTypeObjects(); i != n; ++i) {
4425       DeclaratorChunk &chunk = D.getTypeObject(i);
4426       switch (chunk.Kind) {
4427       case DeclaratorChunk::Array:
4428       case DeclaratorChunk::Function:
4429       case DeclaratorChunk::Pipe:
4430         break;
4431 
4432       case DeclaratorChunk::BlockPointer:
4433       case DeclaratorChunk::MemberPointer:
4434         ++NumPointersRemaining;
4435         break;
4436 
4437       case DeclaratorChunk::Paren:
4438       case DeclaratorChunk::Reference:
4439         continue;
4440 
4441       case DeclaratorChunk::Pointer:
4442         ++NumPointersRemaining;
4443         continue;
4444       }
4445     }
4446   } else {
4447     bool isFunctionOrMethod = false;
4448     switch (auto context = state.getDeclarator().getContext()) {
4449     case DeclaratorContext::ObjCParameterContext:
4450     case DeclaratorContext::ObjCResultContext:
4451     case DeclaratorContext::PrototypeContext:
4452     case DeclaratorContext::TrailingReturnContext:
4453     case DeclaratorContext::TrailingReturnVarContext:
4454       isFunctionOrMethod = true;
4455       LLVM_FALLTHROUGH;
4456 
4457     case DeclaratorContext::MemberContext:
4458       if (state.getDeclarator().isObjCIvar() && !isFunctionOrMethod) {
4459         complainAboutMissingNullability = CAMN_No;
4460         break;
4461       }
4462 
4463       // Weak properties are inferred to be nullable.
4464       if (state.getDeclarator().isObjCWeakProperty() && inAssumeNonNullRegion) {
4465         inferNullability = NullabilityKind::Nullable;
4466         break;
4467       }
4468 
4469       LLVM_FALLTHROUGH;
4470 
4471     case DeclaratorContext::FileContext:
4472     case DeclaratorContext::KNRTypeListContext: {
4473       complainAboutMissingNullability = CAMN_Yes;
4474 
4475       // Nullability inference depends on the type and declarator.
4476       auto wrappingKind = PointerWrappingDeclaratorKind::None;
4477       switch (classifyPointerDeclarator(S, T, D, wrappingKind)) {
4478       case PointerDeclaratorKind::NonPointer:
4479       case PointerDeclaratorKind::MultiLevelPointer:
4480         // Cannot infer nullability.
4481         break;
4482 
4483       case PointerDeclaratorKind::SingleLevelPointer:
4484         // Infer _Nonnull if we are in an assumes-nonnull region.
4485         if (inAssumeNonNullRegion) {
4486           complainAboutInferringWithinChunk = wrappingKind;
4487           inferNullability = NullabilityKind::NonNull;
4488           inferNullabilityCS =
4489               (context == DeclaratorContext::ObjCParameterContext ||
4490                context == DeclaratorContext::ObjCResultContext);
4491         }
4492         break;
4493 
4494       case PointerDeclaratorKind::CFErrorRefPointer:
4495       case PointerDeclaratorKind::NSErrorPointerPointer:
4496         // Within a function or method signature, infer _Nullable at both
4497         // levels.
4498         if (isFunctionOrMethod && inAssumeNonNullRegion)
4499           inferNullability = NullabilityKind::Nullable;
4500         break;
4501 
4502       case PointerDeclaratorKind::MaybePointerToCFRef:
4503         if (isFunctionOrMethod) {
4504           // On pointer-to-pointer parameters marked cf_returns_retained or
4505           // cf_returns_not_retained, if the outer pointer is explicit then
4506           // infer the inner pointer as _Nullable.
4507           auto hasCFReturnsAttr =
4508               [](const ParsedAttributesView &AttrList) -> bool {
4509             return AttrList.hasAttribute(ParsedAttr::AT_CFReturnsRetained) ||
4510                    AttrList.hasAttribute(ParsedAttr::AT_CFReturnsNotRetained);
4511           };
4512           if (const auto *InnermostChunk = D.getInnermostNonParenChunk()) {
4513             if (hasCFReturnsAttr(D.getAttributes()) ||
4514                 hasCFReturnsAttr(InnermostChunk->getAttrs()) ||
4515                 hasCFReturnsAttr(D.getDeclSpec().getAttributes())) {
4516               inferNullability = NullabilityKind::Nullable;
4517               inferNullabilityInnerOnly = true;
4518             }
4519           }
4520         }
4521         break;
4522       }
4523       break;
4524     }
4525 
4526     case DeclaratorContext::ConversionIdContext:
4527       complainAboutMissingNullability = CAMN_Yes;
4528       break;
4529 
4530     case DeclaratorContext::AliasDeclContext:
4531     case DeclaratorContext::AliasTemplateContext:
4532     case DeclaratorContext::BlockContext:
4533     case DeclaratorContext::BlockLiteralContext:
4534     case DeclaratorContext::ConditionContext:
4535     case DeclaratorContext::CXXCatchContext:
4536     case DeclaratorContext::CXXNewContext:
4537     case DeclaratorContext::ForContext:
4538     case DeclaratorContext::InitStmtContext:
4539     case DeclaratorContext::LambdaExprContext:
4540     case DeclaratorContext::LambdaExprParameterContext:
4541     case DeclaratorContext::ObjCCatchContext:
4542     case DeclaratorContext::TemplateParamContext:
4543     case DeclaratorContext::TemplateArgContext:
4544     case DeclaratorContext::TemplateTypeArgContext:
4545     case DeclaratorContext::TypeNameContext:
4546     case DeclaratorContext::FunctionalCastContext:
4547     case DeclaratorContext::RequiresExprContext:
4548       // Don't infer in these contexts.
4549       break;
4550     }
4551   }
4552 
4553   // Local function that returns true if its argument looks like a va_list.
4554   auto isVaList = [&S](QualType T) -> bool {
4555     auto *typedefTy = T->getAs<TypedefType>();
4556     if (!typedefTy)
4557       return false;
4558     TypedefDecl *vaListTypedef = S.Context.getBuiltinVaListDecl();
4559     do {
4560       if (typedefTy->getDecl() == vaListTypedef)
4561         return true;
4562       if (auto *name = typedefTy->getDecl()->getIdentifier())
4563         if (name->isStr("va_list"))
4564           return true;
4565       typedefTy = typedefTy->desugar()->getAs<TypedefType>();
4566     } while (typedefTy);
4567     return false;
4568   };
4569 
4570   // Local function that checks the nullability for a given pointer declarator.
4571   // Returns true if _Nonnull was inferred.
4572   auto inferPointerNullability =
4573       [&](SimplePointerKind pointerKind, SourceLocation pointerLoc,
4574           SourceLocation pointerEndLoc,
4575           ParsedAttributesView &attrs, AttributePool &Pool) -> ParsedAttr * {
4576     // We've seen a pointer.
4577     if (NumPointersRemaining > 0)
4578       --NumPointersRemaining;
4579 
4580     // If a nullability attribute is present, there's nothing to do.
4581     if (hasNullabilityAttr(attrs))
4582       return nullptr;
4583 
4584     // If we're supposed to infer nullability, do so now.
4585     if (inferNullability && !inferNullabilityInnerOnlyComplete) {
4586       ParsedAttr::Syntax syntax = inferNullabilityCS
4587                                       ? ParsedAttr::AS_ContextSensitiveKeyword
4588                                       : ParsedAttr::AS_Keyword;
4589       ParsedAttr *nullabilityAttr = Pool.create(
4590           S.getNullabilityKeyword(*inferNullability), SourceRange(pointerLoc),
4591           nullptr, SourceLocation(), nullptr, 0, syntax);
4592 
4593       attrs.addAtEnd(nullabilityAttr);
4594 
4595       if (inferNullabilityCS) {
4596         state.getDeclarator().getMutableDeclSpec().getObjCQualifiers()
4597           ->setObjCDeclQualifier(ObjCDeclSpec::DQ_CSNullability);
4598       }
4599 
4600       if (pointerLoc.isValid() &&
4601           complainAboutInferringWithinChunk !=
4602             PointerWrappingDeclaratorKind::None) {
4603         auto Diag =
4604             S.Diag(pointerLoc, diag::warn_nullability_inferred_on_nested_type);
4605         Diag << static_cast<int>(complainAboutInferringWithinChunk);
4606         fixItNullability(S, Diag, pointerLoc, NullabilityKind::NonNull);
4607       }
4608 
4609       if (inferNullabilityInnerOnly)
4610         inferNullabilityInnerOnlyComplete = true;
4611       return nullabilityAttr;
4612     }
4613 
4614     // If we're supposed to complain about missing nullability, do so
4615     // now if it's truly missing.
4616     switch (complainAboutMissingNullability) {
4617     case CAMN_No:
4618       break;
4619 
4620     case CAMN_InnerPointers:
4621       if (NumPointersRemaining == 0)
4622         break;
4623       LLVM_FALLTHROUGH;
4624 
4625     case CAMN_Yes:
4626       checkNullabilityConsistency(S, pointerKind, pointerLoc, pointerEndLoc);
4627     }
4628     return nullptr;
4629   };
4630 
4631   // If the type itself could have nullability but does not, infer pointer
4632   // nullability and perform consistency checking.
4633   if (S.CodeSynthesisContexts.empty()) {
4634     if (T->canHaveNullability(/*ResultIfUnknown*/false) &&
4635         !T->getNullability(S.Context)) {
4636       if (isVaList(T)) {
4637         // Record that we've seen a pointer, but do nothing else.
4638         if (NumPointersRemaining > 0)
4639           --NumPointersRemaining;
4640       } else {
4641         SimplePointerKind pointerKind = SimplePointerKind::Pointer;
4642         if (T->isBlockPointerType())
4643           pointerKind = SimplePointerKind::BlockPointer;
4644         else if (T->isMemberPointerType())
4645           pointerKind = SimplePointerKind::MemberPointer;
4646 
4647         if (auto *attr = inferPointerNullability(
4648                 pointerKind, D.getDeclSpec().getTypeSpecTypeLoc(),
4649                 D.getDeclSpec().getEndLoc(),
4650                 D.getMutableDeclSpec().getAttributes(),
4651                 D.getMutableDeclSpec().getAttributePool())) {
4652           T = state.getAttributedType(
4653               createNullabilityAttr(Context, *attr, *inferNullability), T, T);
4654         }
4655       }
4656     }
4657 
4658     if (complainAboutMissingNullability == CAMN_Yes &&
4659         T->isArrayType() && !T->getNullability(S.Context) && !isVaList(T) &&
4660         D.isPrototypeContext() &&
4661         !hasOuterPointerLikeChunk(D, D.getNumTypeObjects())) {
4662       checkNullabilityConsistency(S, SimplePointerKind::Array,
4663                                   D.getDeclSpec().getTypeSpecTypeLoc());
4664     }
4665   }
4666 
4667   bool ExpectNoDerefChunk =
4668       state.getCurrentAttributes().hasAttribute(ParsedAttr::AT_NoDeref);
4669 
4670   // Walk the DeclTypeInfo, building the recursive type as we go.
4671   // DeclTypeInfos are ordered from the identifier out, which is
4672   // opposite of what we want :).
4673   for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
4674     unsigned chunkIndex = e - i - 1;
4675     state.setCurrentChunkIndex(chunkIndex);
4676     DeclaratorChunk &DeclType = D.getTypeObject(chunkIndex);
4677     IsQualifiedFunction &= DeclType.Kind == DeclaratorChunk::Paren;
4678     switch (DeclType.Kind) {
4679     case DeclaratorChunk::Paren:
4680       if (i == 0)
4681         warnAboutRedundantParens(S, D, T);
4682       T = S.BuildParenType(T);
4683       break;
4684     case DeclaratorChunk::BlockPointer:
4685       // If blocks are disabled, emit an error.
4686       if (!LangOpts.Blocks)
4687         S.Diag(DeclType.Loc, diag::err_blocks_disable) << LangOpts.OpenCL;
4688 
4689       // Handle pointer nullability.
4690       inferPointerNullability(SimplePointerKind::BlockPointer, DeclType.Loc,
4691                               DeclType.EndLoc, DeclType.getAttrs(),
4692                               state.getDeclarator().getAttributePool());
4693 
4694       T = S.BuildBlockPointerType(T, D.getIdentifierLoc(), Name);
4695       if (DeclType.Cls.TypeQuals || LangOpts.OpenCL) {
4696         // OpenCL v2.0, s6.12.5 - Block variable declarations are implicitly
4697         // qualified with const.
4698         if (LangOpts.OpenCL)
4699           DeclType.Cls.TypeQuals |= DeclSpec::TQ_const;
4700         T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Cls.TypeQuals);
4701       }
4702       break;
4703     case DeclaratorChunk::Pointer:
4704       // Verify that we're not building a pointer to pointer to function with
4705       // exception specification.
4706       if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
4707         S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
4708         D.setInvalidType(true);
4709         // Build the type anyway.
4710       }
4711 
4712       // Handle pointer nullability
4713       inferPointerNullability(SimplePointerKind::Pointer, DeclType.Loc,
4714                               DeclType.EndLoc, DeclType.getAttrs(),
4715                               state.getDeclarator().getAttributePool());
4716 
4717       if (LangOpts.ObjC && T->getAs<ObjCObjectType>()) {
4718         T = Context.getObjCObjectPointerType(T);
4719         if (DeclType.Ptr.TypeQuals)
4720           T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals);
4721         break;
4722       }
4723 
4724       // OpenCL v2.0 s6.9b - Pointer to image/sampler cannot be used.
4725       // OpenCL v2.0 s6.13.16.1 - Pointer to pipe cannot be used.
4726       // OpenCL v2.0 s6.12.5 - Pointers to Blocks are not allowed.
4727       if (LangOpts.OpenCL) {
4728         if (T->isImageType() || T->isSamplerT() || T->isPipeType() ||
4729             T->isBlockPointerType()) {
4730           S.Diag(D.getIdentifierLoc(), diag::err_opencl_pointer_to_type) << T;
4731           D.setInvalidType(true);
4732         }
4733       }
4734 
4735       T = S.BuildPointerType(T, DeclType.Loc, Name);
4736       if (DeclType.Ptr.TypeQuals)
4737         T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals);
4738       break;
4739     case DeclaratorChunk::Reference: {
4740       // Verify that we're not building a reference to pointer to function with
4741       // exception specification.
4742       if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
4743         S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
4744         D.setInvalidType(true);
4745         // Build the type anyway.
4746       }
4747       T = S.BuildReferenceType(T, DeclType.Ref.LValueRef, DeclType.Loc, Name);
4748 
4749       if (DeclType.Ref.HasRestrict)
4750         T = S.BuildQualifiedType(T, DeclType.Loc, Qualifiers::Restrict);
4751       break;
4752     }
4753     case DeclaratorChunk::Array: {
4754       // Verify that we're not building an array of pointers to function with
4755       // exception specification.
4756       if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
4757         S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
4758         D.setInvalidType(true);
4759         // Build the type anyway.
4760       }
4761       DeclaratorChunk::ArrayTypeInfo &ATI = DeclType.Arr;
4762       Expr *ArraySize = static_cast<Expr*>(ATI.NumElts);
4763       ArrayType::ArraySizeModifier ASM;
4764       if (ATI.isStar)
4765         ASM = ArrayType::Star;
4766       else if (ATI.hasStatic)
4767         ASM = ArrayType::Static;
4768       else
4769         ASM = ArrayType::Normal;
4770       if (ASM == ArrayType::Star && !D.isPrototypeContext()) {
4771         // FIXME: This check isn't quite right: it allows star in prototypes
4772         // for function definitions, and disallows some edge cases detailed
4773         // in http://gcc.gnu.org/ml/gcc-patches/2009-02/msg00133.html
4774         S.Diag(DeclType.Loc, diag::err_array_star_outside_prototype);
4775         ASM = ArrayType::Normal;
4776         D.setInvalidType(true);
4777       }
4778 
4779       // C99 6.7.5.2p1: The optional type qualifiers and the keyword static
4780       // shall appear only in a declaration of a function parameter with an
4781       // array type, ...
4782       if (ASM == ArrayType::Static || ATI.TypeQuals) {
4783         if (!(D.isPrototypeContext() ||
4784               D.getContext() == DeclaratorContext::KNRTypeListContext)) {
4785           S.Diag(DeclType.Loc, diag::err_array_static_outside_prototype) <<
4786               (ASM == ArrayType::Static ? "'static'" : "type qualifier");
4787           // Remove the 'static' and the type qualifiers.
4788           if (ASM == ArrayType::Static)
4789             ASM = ArrayType::Normal;
4790           ATI.TypeQuals = 0;
4791           D.setInvalidType(true);
4792         }
4793 
4794         // C99 6.7.5.2p1: ... and then only in the outermost array type
4795         // derivation.
4796         if (hasOuterPointerLikeChunk(D, chunkIndex)) {
4797           S.Diag(DeclType.Loc, diag::err_array_static_not_outermost) <<
4798             (ASM == ArrayType::Static ? "'static'" : "type qualifier");
4799           if (ASM == ArrayType::Static)
4800             ASM = ArrayType::Normal;
4801           ATI.TypeQuals = 0;
4802           D.setInvalidType(true);
4803         }
4804       }
4805       const AutoType *AT = T->getContainedAutoType();
4806       // Allow arrays of auto if we are a generic lambda parameter.
4807       // i.e. [](auto (&array)[5]) { return array[0]; }; OK
4808       if (AT &&
4809           D.getContext() != DeclaratorContext::LambdaExprParameterContext) {
4810         // We've already diagnosed this for decltype(auto).
4811         if (!AT->isDecltypeAuto())
4812           S.Diag(DeclType.Loc, diag::err_illegal_decl_array_of_auto)
4813             << getPrintableNameForEntity(Name) << T;
4814         T = QualType();
4815         break;
4816       }
4817 
4818       // Array parameters can be marked nullable as well, although it's not
4819       // necessary if they're marked 'static'.
4820       if (complainAboutMissingNullability == CAMN_Yes &&
4821           !hasNullabilityAttr(DeclType.getAttrs()) &&
4822           ASM != ArrayType::Static &&
4823           D.isPrototypeContext() &&
4824           !hasOuterPointerLikeChunk(D, chunkIndex)) {
4825         checkNullabilityConsistency(S, SimplePointerKind::Array, DeclType.Loc);
4826       }
4827 
4828       T = S.BuildArrayType(T, ASM, ArraySize, ATI.TypeQuals,
4829                            SourceRange(DeclType.Loc, DeclType.EndLoc), Name);
4830       break;
4831     }
4832     case DeclaratorChunk::Function: {
4833       // If the function declarator has a prototype (i.e. it is not () and
4834       // does not have a K&R-style identifier list), then the arguments are part
4835       // of the type, otherwise the argument list is ().
4836       DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
4837       IsQualifiedFunction =
4838           FTI.hasMethodTypeQualifiers() || FTI.hasRefQualifier();
4839 
4840       // Check for auto functions and trailing return type and adjust the
4841       // return type accordingly.
4842       if (!D.isInvalidType()) {
4843         // trailing-return-type is only required if we're declaring a function,
4844         // and not, for instance, a pointer to a function.
4845         if (D.getDeclSpec().hasAutoTypeSpec() &&
4846             !FTI.hasTrailingReturnType() && chunkIndex == 0) {
4847           if (!S.getLangOpts().CPlusPlus14) {
4848             S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
4849                    D.getDeclSpec().getTypeSpecType() == DeclSpec::TST_auto
4850                        ? diag::err_auto_missing_trailing_return
4851                        : diag::err_deduced_return_type);
4852             T = Context.IntTy;
4853             D.setInvalidType(true);
4854           } else {
4855             S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
4856                    diag::warn_cxx11_compat_deduced_return_type);
4857           }
4858         } else if (FTI.hasTrailingReturnType()) {
4859           // T must be exactly 'auto' at this point. See CWG issue 681.
4860           if (isa<ParenType>(T)) {
4861             S.Diag(D.getBeginLoc(), diag::err_trailing_return_in_parens)
4862                 << T << D.getSourceRange();
4863             D.setInvalidType(true);
4864           } else if (D.getName().getKind() ==
4865                      UnqualifiedIdKind::IK_DeductionGuideName) {
4866             if (T != Context.DependentTy) {
4867               S.Diag(D.getDeclSpec().getBeginLoc(),
4868                      diag::err_deduction_guide_with_complex_decl)
4869                   << D.getSourceRange();
4870               D.setInvalidType(true);
4871             }
4872           } else if (D.getContext() != DeclaratorContext::LambdaExprContext &&
4873                      (T.hasQualifiers() || !isa<AutoType>(T) ||
4874                       cast<AutoType>(T)->getKeyword() !=
4875                           AutoTypeKeyword::Auto ||
4876                       cast<AutoType>(T)->isConstrained())) {
4877             S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
4878                    diag::err_trailing_return_without_auto)
4879                 << T << D.getDeclSpec().getSourceRange();
4880             D.setInvalidType(true);
4881           }
4882           T = S.GetTypeFromParser(FTI.getTrailingReturnType(), &TInfo);
4883           if (T.isNull()) {
4884             // An error occurred parsing the trailing return type.
4885             T = Context.IntTy;
4886             D.setInvalidType(true);
4887           } else if (S.getLangOpts().CPlusPlus20)
4888             // Handle cases like: `auto f() -> auto` or `auto f() -> C auto`.
4889             if (AutoType *Auto = T->getContainedAutoType())
4890               if (S.getCurScope()->isFunctionDeclarationScope())
4891                 T = InventTemplateParameter(state, T, TInfo, Auto,
4892                                             S.InventedParameterInfos.back());
4893         } else {
4894           // This function type is not the type of the entity being declared,
4895           // so checking the 'auto' is not the responsibility of this chunk.
4896         }
4897       }
4898 
4899       // C99 6.7.5.3p1: The return type may not be a function or array type.
4900       // For conversion functions, we'll diagnose this particular error later.
4901       if (!D.isInvalidType() && (T->isArrayType() || T->isFunctionType()) &&
4902           (D.getName().getKind() !=
4903            UnqualifiedIdKind::IK_ConversionFunctionId)) {
4904         unsigned diagID = diag::err_func_returning_array_function;
4905         // Last processing chunk in block context means this function chunk
4906         // represents the block.
4907         if (chunkIndex == 0 &&
4908             D.getContext() == DeclaratorContext::BlockLiteralContext)
4909           diagID = diag::err_block_returning_array_function;
4910         S.Diag(DeclType.Loc, diagID) << T->isFunctionType() << T;
4911         T = Context.IntTy;
4912         D.setInvalidType(true);
4913       }
4914 
4915       // Do not allow returning half FP value.
4916       // FIXME: This really should be in BuildFunctionType.
4917       if (T->isHalfType()) {
4918         if (S.getLangOpts().OpenCL) {
4919           if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) {
4920             S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return)
4921                 << T << 0 /*pointer hint*/;
4922             D.setInvalidType(true);
4923           }
4924         } else if (!S.getLangOpts().HalfArgsAndReturns) {
4925           S.Diag(D.getIdentifierLoc(),
4926             diag::err_parameters_retval_cannot_have_fp16_type) << 1;
4927           D.setInvalidType(true);
4928         }
4929       }
4930 
4931       if (LangOpts.OpenCL) {
4932         // OpenCL v2.0 s6.12.5 - A block cannot be the return value of a
4933         // function.
4934         if (T->isBlockPointerType() || T->isImageType() || T->isSamplerT() ||
4935             T->isPipeType()) {
4936           S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return)
4937               << T << 1 /*hint off*/;
4938           D.setInvalidType(true);
4939         }
4940         // OpenCL doesn't support variadic functions and blocks
4941         // (s6.9.e and s6.12.5 OpenCL v2.0) except for printf.
4942         // We also allow here any toolchain reserved identifiers.
4943         if (FTI.isVariadic &&
4944             !(D.getIdentifier() &&
4945               ((D.getIdentifier()->getName() == "printf" &&
4946                 (LangOpts.OpenCLCPlusPlus || LangOpts.OpenCLVersion >= 120)) ||
4947                D.getIdentifier()->getName().startswith("__")))) {
4948           S.Diag(D.getIdentifierLoc(), diag::err_opencl_variadic_function);
4949           D.setInvalidType(true);
4950         }
4951       }
4952 
4953       // Methods cannot return interface types. All ObjC objects are
4954       // passed by reference.
4955       if (T->isObjCObjectType()) {
4956         SourceLocation DiagLoc, FixitLoc;
4957         if (TInfo) {
4958           DiagLoc = TInfo->getTypeLoc().getBeginLoc();
4959           FixitLoc = S.getLocForEndOfToken(TInfo->getTypeLoc().getEndLoc());
4960         } else {
4961           DiagLoc = D.getDeclSpec().getTypeSpecTypeLoc();
4962           FixitLoc = S.getLocForEndOfToken(D.getDeclSpec().getEndLoc());
4963         }
4964         S.Diag(DiagLoc, diag::err_object_cannot_be_passed_returned_by_value)
4965           << 0 << T
4966           << FixItHint::CreateInsertion(FixitLoc, "*");
4967 
4968         T = Context.getObjCObjectPointerType(T);
4969         if (TInfo) {
4970           TypeLocBuilder TLB;
4971           TLB.pushFullCopy(TInfo->getTypeLoc());
4972           ObjCObjectPointerTypeLoc TLoc = TLB.push<ObjCObjectPointerTypeLoc>(T);
4973           TLoc.setStarLoc(FixitLoc);
4974           TInfo = TLB.getTypeSourceInfo(Context, T);
4975         }
4976 
4977         D.setInvalidType(true);
4978       }
4979 
4980       // cv-qualifiers on return types are pointless except when the type is a
4981       // class type in C++.
4982       if ((T.getCVRQualifiers() || T->isAtomicType()) &&
4983           !(S.getLangOpts().CPlusPlus &&
4984             (T->isDependentType() || T->isRecordType()))) {
4985         if (T->isVoidType() && !S.getLangOpts().CPlusPlus &&
4986             D.getFunctionDefinitionKind() == FDK_Definition) {
4987           // [6.9.1/3] qualified void return is invalid on a C
4988           // function definition.  Apparently ok on declarations and
4989           // in C++ though (!)
4990           S.Diag(DeclType.Loc, diag::err_func_returning_qualified_void) << T;
4991         } else
4992           diagnoseRedundantReturnTypeQualifiers(S, T, D, chunkIndex);
4993 
4994         // C++2a [dcl.fct]p12:
4995         //   A volatile-qualified return type is deprecated
4996         if (T.isVolatileQualified() && S.getLangOpts().CPlusPlus20)
4997           S.Diag(DeclType.Loc, diag::warn_deprecated_volatile_return) << T;
4998       }
4999 
5000       // Objective-C ARC ownership qualifiers are ignored on the function
5001       // return type (by type canonicalization). Complain if this attribute
5002       // was written here.
5003       if (T.getQualifiers().hasObjCLifetime()) {
5004         SourceLocation AttrLoc;
5005         if (chunkIndex + 1 < D.getNumTypeObjects()) {
5006           DeclaratorChunk ReturnTypeChunk = D.getTypeObject(chunkIndex + 1);
5007           for (const ParsedAttr &AL : ReturnTypeChunk.getAttrs()) {
5008             if (AL.getKind() == ParsedAttr::AT_ObjCOwnership) {
5009               AttrLoc = AL.getLoc();
5010               break;
5011             }
5012           }
5013         }
5014         if (AttrLoc.isInvalid()) {
5015           for (const ParsedAttr &AL : D.getDeclSpec().getAttributes()) {
5016             if (AL.getKind() == ParsedAttr::AT_ObjCOwnership) {
5017               AttrLoc = AL.getLoc();
5018               break;
5019             }
5020           }
5021         }
5022 
5023         if (AttrLoc.isValid()) {
5024           // The ownership attributes are almost always written via
5025           // the predefined
5026           // __strong/__weak/__autoreleasing/__unsafe_unretained.
5027           if (AttrLoc.isMacroID())
5028             AttrLoc =
5029                 S.SourceMgr.getImmediateExpansionRange(AttrLoc).getBegin();
5030 
5031           S.Diag(AttrLoc, diag::warn_arc_lifetime_result_type)
5032             << T.getQualifiers().getObjCLifetime();
5033         }
5034       }
5035 
5036       if (LangOpts.CPlusPlus && D.getDeclSpec().hasTagDefinition()) {
5037         // C++ [dcl.fct]p6:
5038         //   Types shall not be defined in return or parameter types.
5039         TagDecl *Tag = cast<TagDecl>(D.getDeclSpec().getRepAsDecl());
5040         S.Diag(Tag->getLocation(), diag::err_type_defined_in_result_type)
5041           << Context.getTypeDeclType(Tag);
5042       }
5043 
5044       // Exception specs are not allowed in typedefs. Complain, but add it
5045       // anyway.
5046       if (IsTypedefName && FTI.getExceptionSpecType() && !LangOpts.CPlusPlus17)
5047         S.Diag(FTI.getExceptionSpecLocBeg(),
5048                diag::err_exception_spec_in_typedef)
5049             << (D.getContext() == DeclaratorContext::AliasDeclContext ||
5050                 D.getContext() == DeclaratorContext::AliasTemplateContext);
5051 
5052       // If we see "T var();" or "T var(T());" at block scope, it is probably
5053       // an attempt to initialize a variable, not a function declaration.
5054       if (FTI.isAmbiguous)
5055         warnAboutAmbiguousFunction(S, D, DeclType, T);
5056 
5057       FunctionType::ExtInfo EI(
5058           getCCForDeclaratorChunk(S, D, DeclType.getAttrs(), FTI, chunkIndex));
5059 
5060       if (!FTI.NumParams && !FTI.isVariadic && !LangOpts.CPlusPlus
5061                                             && !LangOpts.OpenCL) {
5062         // Simple void foo(), where the incoming T is the result type.
5063         T = Context.getFunctionNoProtoType(T, EI);
5064       } else {
5065         // We allow a zero-parameter variadic function in C if the
5066         // function is marked with the "overloadable" attribute. Scan
5067         // for this attribute now.
5068         if (!FTI.NumParams && FTI.isVariadic && !LangOpts.CPlusPlus)
5069           if (!D.getAttributes().hasAttribute(ParsedAttr::AT_Overloadable))
5070             S.Diag(FTI.getEllipsisLoc(), diag::err_ellipsis_first_param);
5071 
5072         if (FTI.NumParams && FTI.Params[0].Param == nullptr) {
5073           // C99 6.7.5.3p3: Reject int(x,y,z) when it's not a function
5074           // definition.
5075           S.Diag(FTI.Params[0].IdentLoc,
5076                  diag::err_ident_list_in_fn_declaration);
5077           D.setInvalidType(true);
5078           // Recover by creating a K&R-style function type.
5079           T = Context.getFunctionNoProtoType(T, EI);
5080           break;
5081         }
5082 
5083         FunctionProtoType::ExtProtoInfo EPI;
5084         EPI.ExtInfo = EI;
5085         EPI.Variadic = FTI.isVariadic;
5086         EPI.EllipsisLoc = FTI.getEllipsisLoc();
5087         EPI.HasTrailingReturn = FTI.hasTrailingReturnType();
5088         EPI.TypeQuals.addCVRUQualifiers(
5089             FTI.MethodQualifiers ? FTI.MethodQualifiers->getTypeQualifiers()
5090                                  : 0);
5091         EPI.RefQualifier = !FTI.hasRefQualifier()? RQ_None
5092                     : FTI.RefQualifierIsLValueRef? RQ_LValue
5093                     : RQ_RValue;
5094 
5095         // Otherwise, we have a function with a parameter list that is
5096         // potentially variadic.
5097         SmallVector<QualType, 16> ParamTys;
5098         ParamTys.reserve(FTI.NumParams);
5099 
5100         SmallVector<FunctionProtoType::ExtParameterInfo, 16>
5101           ExtParameterInfos(FTI.NumParams);
5102         bool HasAnyInterestingExtParameterInfos = false;
5103 
5104         for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) {
5105           ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param);
5106           QualType ParamTy = Param->getType();
5107           assert(!ParamTy.isNull() && "Couldn't parse type?");
5108 
5109           // Look for 'void'.  void is allowed only as a single parameter to a
5110           // function with no other parameters (C99 6.7.5.3p10).  We record
5111           // int(void) as a FunctionProtoType with an empty parameter list.
5112           if (ParamTy->isVoidType()) {
5113             // If this is something like 'float(int, void)', reject it.  'void'
5114             // is an incomplete type (C99 6.2.5p19) and function decls cannot
5115             // have parameters of incomplete type.
5116             if (FTI.NumParams != 1 || FTI.isVariadic) {
5117               S.Diag(DeclType.Loc, diag::err_void_only_param);
5118               ParamTy = Context.IntTy;
5119               Param->setType(ParamTy);
5120             } else if (FTI.Params[i].Ident) {
5121               // Reject, but continue to parse 'int(void abc)'.
5122               S.Diag(FTI.Params[i].IdentLoc, diag::err_param_with_void_type);
5123               ParamTy = Context.IntTy;
5124               Param->setType(ParamTy);
5125             } else {
5126               // Reject, but continue to parse 'float(const void)'.
5127               if (ParamTy.hasQualifiers())
5128                 S.Diag(DeclType.Loc, diag::err_void_param_qualified);
5129 
5130               // Do not add 'void' to the list.
5131               break;
5132             }
5133           } else if (ParamTy->isHalfType()) {
5134             // Disallow half FP parameters.
5135             // FIXME: This really should be in BuildFunctionType.
5136             if (S.getLangOpts().OpenCL) {
5137               if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) {
5138                 S.Diag(Param->getLocation(),
5139                   diag::err_opencl_half_param) << ParamTy;
5140                 D.setInvalidType();
5141                 Param->setInvalidDecl();
5142               }
5143             } else if (!S.getLangOpts().HalfArgsAndReturns) {
5144               S.Diag(Param->getLocation(),
5145                 diag::err_parameters_retval_cannot_have_fp16_type) << 0;
5146               D.setInvalidType();
5147             }
5148           } else if (!FTI.hasPrototype) {
5149             if (ParamTy->isPromotableIntegerType()) {
5150               ParamTy = Context.getPromotedIntegerType(ParamTy);
5151               Param->setKNRPromoted(true);
5152             } else if (const BuiltinType* BTy = ParamTy->getAs<BuiltinType>()) {
5153               if (BTy->getKind() == BuiltinType::Float) {
5154                 ParamTy = Context.DoubleTy;
5155                 Param->setKNRPromoted(true);
5156               }
5157             }
5158           }
5159 
5160           if (LangOpts.ObjCAutoRefCount && Param->hasAttr<NSConsumedAttr>()) {
5161             ExtParameterInfos[i] = ExtParameterInfos[i].withIsConsumed(true);
5162             HasAnyInterestingExtParameterInfos = true;
5163           }
5164 
5165           if (auto attr = Param->getAttr<ParameterABIAttr>()) {
5166             ExtParameterInfos[i] =
5167               ExtParameterInfos[i].withABI(attr->getABI());
5168             HasAnyInterestingExtParameterInfos = true;
5169           }
5170 
5171           if (Param->hasAttr<PassObjectSizeAttr>()) {
5172             ExtParameterInfos[i] = ExtParameterInfos[i].withHasPassObjectSize();
5173             HasAnyInterestingExtParameterInfos = true;
5174           }
5175 
5176           if (Param->hasAttr<NoEscapeAttr>()) {
5177             ExtParameterInfos[i] = ExtParameterInfos[i].withIsNoEscape(true);
5178             HasAnyInterestingExtParameterInfos = true;
5179           }
5180 
5181           ParamTys.push_back(ParamTy);
5182         }
5183 
5184         if (HasAnyInterestingExtParameterInfos) {
5185           EPI.ExtParameterInfos = ExtParameterInfos.data();
5186           checkExtParameterInfos(S, ParamTys, EPI,
5187               [&](unsigned i) { return FTI.Params[i].Param->getLocation(); });
5188         }
5189 
5190         SmallVector<QualType, 4> Exceptions;
5191         SmallVector<ParsedType, 2> DynamicExceptions;
5192         SmallVector<SourceRange, 2> DynamicExceptionRanges;
5193         Expr *NoexceptExpr = nullptr;
5194 
5195         if (FTI.getExceptionSpecType() == EST_Dynamic) {
5196           // FIXME: It's rather inefficient to have to split into two vectors
5197           // here.
5198           unsigned N = FTI.getNumExceptions();
5199           DynamicExceptions.reserve(N);
5200           DynamicExceptionRanges.reserve(N);
5201           for (unsigned I = 0; I != N; ++I) {
5202             DynamicExceptions.push_back(FTI.Exceptions[I].Ty);
5203             DynamicExceptionRanges.push_back(FTI.Exceptions[I].Range);
5204           }
5205         } else if (isComputedNoexcept(FTI.getExceptionSpecType())) {
5206           NoexceptExpr = FTI.NoexceptExpr;
5207         }
5208 
5209         S.checkExceptionSpecification(D.isFunctionDeclarationContext(),
5210                                       FTI.getExceptionSpecType(),
5211                                       DynamicExceptions,
5212                                       DynamicExceptionRanges,
5213                                       NoexceptExpr,
5214                                       Exceptions,
5215                                       EPI.ExceptionSpec);
5216 
5217         // FIXME: Set address space from attrs for C++ mode here.
5218         // OpenCLCPlusPlus: A class member function has an address space.
5219         auto IsClassMember = [&]() {
5220           return (!state.getDeclarator().getCXXScopeSpec().isEmpty() &&
5221                   state.getDeclarator()
5222                           .getCXXScopeSpec()
5223                           .getScopeRep()
5224                           ->getKind() == NestedNameSpecifier::TypeSpec) ||
5225                  state.getDeclarator().getContext() ==
5226                      DeclaratorContext::MemberContext ||
5227                  state.getDeclarator().getContext() ==
5228                      DeclaratorContext::LambdaExprContext;
5229         };
5230 
5231         if (state.getSema().getLangOpts().OpenCLCPlusPlus && IsClassMember()) {
5232           LangAS ASIdx = LangAS::Default;
5233           // Take address space attr if any and mark as invalid to avoid adding
5234           // them later while creating QualType.
5235           if (FTI.MethodQualifiers)
5236             for (ParsedAttr &attr : FTI.MethodQualifiers->getAttributes()) {
5237               LangAS ASIdxNew = attr.asOpenCLLangAS();
5238               if (DiagnoseMultipleAddrSpaceAttributes(S, ASIdx, ASIdxNew,
5239                                                       attr.getLoc()))
5240                 D.setInvalidType(true);
5241               else
5242                 ASIdx = ASIdxNew;
5243             }
5244           // If a class member function's address space is not set, set it to
5245           // __generic.
5246           LangAS AS =
5247               (ASIdx == LangAS::Default ? S.getDefaultCXXMethodAddrSpace()
5248                                         : ASIdx);
5249           EPI.TypeQuals.addAddressSpace(AS);
5250         }
5251         T = Context.getFunctionType(T, ParamTys, EPI);
5252       }
5253       break;
5254     }
5255     case DeclaratorChunk::MemberPointer: {
5256       // The scope spec must refer to a class, or be dependent.
5257       CXXScopeSpec &SS = DeclType.Mem.Scope();
5258       QualType ClsType;
5259 
5260       // Handle pointer nullability.
5261       inferPointerNullability(SimplePointerKind::MemberPointer, DeclType.Loc,
5262                               DeclType.EndLoc, DeclType.getAttrs(),
5263                               state.getDeclarator().getAttributePool());
5264 
5265       if (SS.isInvalid()) {
5266         // Avoid emitting extra errors if we already errored on the scope.
5267         D.setInvalidType(true);
5268       } else if (S.isDependentScopeSpecifier(SS) ||
5269                  dyn_cast_or_null<CXXRecordDecl>(S.computeDeclContext(SS))) {
5270         NestedNameSpecifier *NNS = SS.getScopeRep();
5271         NestedNameSpecifier *NNSPrefix = NNS->getPrefix();
5272         switch (NNS->getKind()) {
5273         case NestedNameSpecifier::Identifier:
5274           ClsType = Context.getDependentNameType(ETK_None, NNSPrefix,
5275                                                  NNS->getAsIdentifier());
5276           break;
5277 
5278         case NestedNameSpecifier::Namespace:
5279         case NestedNameSpecifier::NamespaceAlias:
5280         case NestedNameSpecifier::Global:
5281         case NestedNameSpecifier::Super:
5282           llvm_unreachable("Nested-name-specifier must name a type");
5283 
5284         case NestedNameSpecifier::TypeSpec:
5285         case NestedNameSpecifier::TypeSpecWithTemplate:
5286           ClsType = QualType(NNS->getAsType(), 0);
5287           // Note: if the NNS has a prefix and ClsType is a nondependent
5288           // TemplateSpecializationType, then the NNS prefix is NOT included
5289           // in ClsType; hence we wrap ClsType into an ElaboratedType.
5290           // NOTE: in particular, no wrap occurs if ClsType already is an
5291           // Elaborated, DependentName, or DependentTemplateSpecialization.
5292           if (NNSPrefix && isa<TemplateSpecializationType>(NNS->getAsType()))
5293             ClsType = Context.getElaboratedType(ETK_None, NNSPrefix, ClsType);
5294           break;
5295         }
5296       } else {
5297         S.Diag(DeclType.Mem.Scope().getBeginLoc(),
5298              diag::err_illegal_decl_mempointer_in_nonclass)
5299           << (D.getIdentifier() ? D.getIdentifier()->getName() : "type name")
5300           << DeclType.Mem.Scope().getRange();
5301         D.setInvalidType(true);
5302       }
5303 
5304       if (!ClsType.isNull())
5305         T = S.BuildMemberPointerType(T, ClsType, DeclType.Loc,
5306                                      D.getIdentifier());
5307       if (T.isNull()) {
5308         T = Context.IntTy;
5309         D.setInvalidType(true);
5310       } else if (DeclType.Mem.TypeQuals) {
5311         T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Mem.TypeQuals);
5312       }
5313       break;
5314     }
5315 
5316     case DeclaratorChunk::Pipe: {
5317       T = S.BuildReadPipeType(T, DeclType.Loc);
5318       processTypeAttrs(state, T, TAL_DeclSpec,
5319                        D.getMutableDeclSpec().getAttributes());
5320       break;
5321     }
5322     }
5323 
5324     if (T.isNull()) {
5325       D.setInvalidType(true);
5326       T = Context.IntTy;
5327     }
5328 
5329     // See if there are any attributes on this declarator chunk.
5330     processTypeAttrs(state, T, TAL_DeclChunk, DeclType.getAttrs());
5331 
5332     if (DeclType.Kind != DeclaratorChunk::Paren) {
5333       if (ExpectNoDerefChunk && !IsNoDerefableChunk(DeclType))
5334         S.Diag(DeclType.Loc, diag::warn_noderef_on_non_pointer_or_array);
5335 
5336       ExpectNoDerefChunk = state.didParseNoDeref();
5337     }
5338   }
5339 
5340   if (ExpectNoDerefChunk)
5341     S.Diag(state.getDeclarator().getBeginLoc(),
5342            diag::warn_noderef_on_non_pointer_or_array);
5343 
5344   // GNU warning -Wstrict-prototypes
5345   //   Warn if a function declaration is without a prototype.
5346   //   This warning is issued for all kinds of unprototyped function
5347   //   declarations (i.e. function type typedef, function pointer etc.)
5348   //   C99 6.7.5.3p14:
5349   //   The empty list in a function declarator that is not part of a definition
5350   //   of that function specifies that no information about the number or types
5351   //   of the parameters is supplied.
5352   if (!LangOpts.CPlusPlus && D.getFunctionDefinitionKind() == FDK_Declaration) {
5353     bool IsBlock = false;
5354     for (const DeclaratorChunk &DeclType : D.type_objects()) {
5355       switch (DeclType.Kind) {
5356       case DeclaratorChunk::BlockPointer:
5357         IsBlock = true;
5358         break;
5359       case DeclaratorChunk::Function: {
5360         const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
5361         // We supress the warning when there's no LParen location, as this
5362         // indicates the declaration was an implicit declaration, which gets
5363         // warned about separately via -Wimplicit-function-declaration.
5364         if (FTI.NumParams == 0 && !FTI.isVariadic && FTI.getLParenLoc().isValid())
5365           S.Diag(DeclType.Loc, diag::warn_strict_prototypes)
5366               << IsBlock
5367               << FixItHint::CreateInsertion(FTI.getRParenLoc(), "void");
5368         IsBlock = false;
5369         break;
5370       }
5371       default:
5372         break;
5373       }
5374     }
5375   }
5376 
5377   assert(!T.isNull() && "T must not be null after this point");
5378 
5379   if (LangOpts.CPlusPlus && T->isFunctionType()) {
5380     const FunctionProtoType *FnTy = T->getAs<FunctionProtoType>();
5381     assert(FnTy && "Why oh why is there not a FunctionProtoType here?");
5382 
5383     // C++ 8.3.5p4:
5384     //   A cv-qualifier-seq shall only be part of the function type
5385     //   for a nonstatic member function, the function type to which a pointer
5386     //   to member refers, or the top-level function type of a function typedef
5387     //   declaration.
5388     //
5389     // Core issue 547 also allows cv-qualifiers on function types that are
5390     // top-level template type arguments.
5391     enum { NonMember, Member, DeductionGuide } Kind = NonMember;
5392     if (D.getName().getKind() == UnqualifiedIdKind::IK_DeductionGuideName)
5393       Kind = DeductionGuide;
5394     else if (!D.getCXXScopeSpec().isSet()) {
5395       if ((D.getContext() == DeclaratorContext::MemberContext ||
5396            D.getContext() == DeclaratorContext::LambdaExprContext) &&
5397           !D.getDeclSpec().isFriendSpecified())
5398         Kind = Member;
5399     } else {
5400       DeclContext *DC = S.computeDeclContext(D.getCXXScopeSpec());
5401       if (!DC || DC->isRecord())
5402         Kind = Member;
5403     }
5404 
5405     // C++11 [dcl.fct]p6 (w/DR1417):
5406     // An attempt to specify a function type with a cv-qualifier-seq or a
5407     // ref-qualifier (including by typedef-name) is ill-formed unless it is:
5408     //  - the function type for a non-static member function,
5409     //  - the function type to which a pointer to member refers,
5410     //  - the top-level function type of a function typedef declaration or
5411     //    alias-declaration,
5412     //  - the type-id in the default argument of a type-parameter, or
5413     //  - the type-id of a template-argument for a type-parameter
5414     //
5415     // FIXME: Checking this here is insufficient. We accept-invalid on:
5416     //
5417     //   template<typename T> struct S { void f(T); };
5418     //   S<int() const> s;
5419     //
5420     // ... for instance.
5421     if (IsQualifiedFunction &&
5422         !(Kind == Member &&
5423           D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static) &&
5424         !IsTypedefName &&
5425         D.getContext() != DeclaratorContext::TemplateArgContext &&
5426         D.getContext() != DeclaratorContext::TemplateTypeArgContext) {
5427       SourceLocation Loc = D.getBeginLoc();
5428       SourceRange RemovalRange;
5429       unsigned I;
5430       if (D.isFunctionDeclarator(I)) {
5431         SmallVector<SourceLocation, 4> RemovalLocs;
5432         const DeclaratorChunk &Chunk = D.getTypeObject(I);
5433         assert(Chunk.Kind == DeclaratorChunk::Function);
5434 
5435         if (Chunk.Fun.hasRefQualifier())
5436           RemovalLocs.push_back(Chunk.Fun.getRefQualifierLoc());
5437 
5438         if (Chunk.Fun.hasMethodTypeQualifiers())
5439           Chunk.Fun.MethodQualifiers->forEachQualifier(
5440               [&](DeclSpec::TQ TypeQual, StringRef QualName,
5441                   SourceLocation SL) { RemovalLocs.push_back(SL); });
5442 
5443         if (!RemovalLocs.empty()) {
5444           llvm::sort(RemovalLocs,
5445                      BeforeThanCompare<SourceLocation>(S.getSourceManager()));
5446           RemovalRange = SourceRange(RemovalLocs.front(), RemovalLocs.back());
5447           Loc = RemovalLocs.front();
5448         }
5449       }
5450 
5451       S.Diag(Loc, diag::err_invalid_qualified_function_type)
5452         << Kind << D.isFunctionDeclarator() << T
5453         << getFunctionQualifiersAsString(FnTy)
5454         << FixItHint::CreateRemoval(RemovalRange);
5455 
5456       // Strip the cv-qualifiers and ref-qualifiers from the type.
5457       FunctionProtoType::ExtProtoInfo EPI = FnTy->getExtProtoInfo();
5458       EPI.TypeQuals.removeCVRQualifiers();
5459       EPI.RefQualifier = RQ_None;
5460 
5461       T = Context.getFunctionType(FnTy->getReturnType(), FnTy->getParamTypes(),
5462                                   EPI);
5463       // Rebuild any parens around the identifier in the function type.
5464       for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
5465         if (D.getTypeObject(i).Kind != DeclaratorChunk::Paren)
5466           break;
5467         T = S.BuildParenType(T);
5468       }
5469     }
5470   }
5471 
5472   // Apply any undistributed attributes from the declarator.
5473   processTypeAttrs(state, T, TAL_DeclName, D.getAttributes());
5474 
5475   // Diagnose any ignored type attributes.
5476   state.diagnoseIgnoredTypeAttrs(T);
5477 
5478   // C++0x [dcl.constexpr]p9:
5479   //  A constexpr specifier used in an object declaration declares the object
5480   //  as const.
5481   if (D.getDeclSpec().getConstexprSpecifier() == CSK_constexpr &&
5482       T->isObjectType())
5483     T.addConst();
5484 
5485   // C++2a [dcl.fct]p4:
5486   //   A parameter with volatile-qualified type is deprecated
5487   if (T.isVolatileQualified() && S.getLangOpts().CPlusPlus20 &&
5488       (D.getContext() == DeclaratorContext::PrototypeContext ||
5489        D.getContext() == DeclaratorContext::LambdaExprParameterContext))
5490     S.Diag(D.getIdentifierLoc(), diag::warn_deprecated_volatile_param) << T;
5491 
5492   // If there was an ellipsis in the declarator, the declaration declares a
5493   // parameter pack whose type may be a pack expansion type.
5494   if (D.hasEllipsis()) {
5495     // C++0x [dcl.fct]p13:
5496     //   A declarator-id or abstract-declarator containing an ellipsis shall
5497     //   only be used in a parameter-declaration. Such a parameter-declaration
5498     //   is a parameter pack (14.5.3). [...]
5499     switch (D.getContext()) {
5500     case DeclaratorContext::PrototypeContext:
5501     case DeclaratorContext::LambdaExprParameterContext:
5502     case DeclaratorContext::RequiresExprContext:
5503       // C++0x [dcl.fct]p13:
5504       //   [...] When it is part of a parameter-declaration-clause, the
5505       //   parameter pack is a function parameter pack (14.5.3). The type T
5506       //   of the declarator-id of the function parameter pack shall contain
5507       //   a template parameter pack; each template parameter pack in T is
5508       //   expanded by the function parameter pack.
5509       //
5510       // We represent function parameter packs as function parameters whose
5511       // type is a pack expansion.
5512       if (!T->containsUnexpandedParameterPack() &&
5513           (!LangOpts.CPlusPlus20 || !T->getContainedAutoType())) {
5514         S.Diag(D.getEllipsisLoc(),
5515              diag::err_function_parameter_pack_without_parameter_packs)
5516           << T <<  D.getSourceRange();
5517         D.setEllipsisLoc(SourceLocation());
5518       } else {
5519         T = Context.getPackExpansionType(T, None);
5520       }
5521       break;
5522     case DeclaratorContext::TemplateParamContext:
5523       // C++0x [temp.param]p15:
5524       //   If a template-parameter is a [...] is a parameter-declaration that
5525       //   declares a parameter pack (8.3.5), then the template-parameter is a
5526       //   template parameter pack (14.5.3).
5527       //
5528       // Note: core issue 778 clarifies that, if there are any unexpanded
5529       // parameter packs in the type of the non-type template parameter, then
5530       // it expands those parameter packs.
5531       if (T->containsUnexpandedParameterPack())
5532         T = Context.getPackExpansionType(T, None);
5533       else
5534         S.Diag(D.getEllipsisLoc(),
5535                LangOpts.CPlusPlus11
5536                  ? diag::warn_cxx98_compat_variadic_templates
5537                  : diag::ext_variadic_templates);
5538       break;
5539 
5540     case DeclaratorContext::FileContext:
5541     case DeclaratorContext::KNRTypeListContext:
5542     case DeclaratorContext::ObjCParameterContext:  // FIXME: special diagnostic
5543                                                    // here?
5544     case DeclaratorContext::ObjCResultContext:     // FIXME: special diagnostic
5545                                                    // here?
5546     case DeclaratorContext::TypeNameContext:
5547     case DeclaratorContext::FunctionalCastContext:
5548     case DeclaratorContext::CXXNewContext:
5549     case DeclaratorContext::AliasDeclContext:
5550     case DeclaratorContext::AliasTemplateContext:
5551     case DeclaratorContext::MemberContext:
5552     case DeclaratorContext::BlockContext:
5553     case DeclaratorContext::ForContext:
5554     case DeclaratorContext::InitStmtContext:
5555     case DeclaratorContext::ConditionContext:
5556     case DeclaratorContext::CXXCatchContext:
5557     case DeclaratorContext::ObjCCatchContext:
5558     case DeclaratorContext::BlockLiteralContext:
5559     case DeclaratorContext::LambdaExprContext:
5560     case DeclaratorContext::ConversionIdContext:
5561     case DeclaratorContext::TrailingReturnContext:
5562     case DeclaratorContext::TrailingReturnVarContext:
5563     case DeclaratorContext::TemplateArgContext:
5564     case DeclaratorContext::TemplateTypeArgContext:
5565       // FIXME: We may want to allow parameter packs in block-literal contexts
5566       // in the future.
5567       S.Diag(D.getEllipsisLoc(),
5568              diag::err_ellipsis_in_declarator_not_parameter);
5569       D.setEllipsisLoc(SourceLocation());
5570       break;
5571     }
5572   }
5573 
5574   assert(!T.isNull() && "T must not be null at the end of this function");
5575   if (D.isInvalidType())
5576     return Context.getTrivialTypeSourceInfo(T);
5577 
5578   return GetTypeSourceInfoForDeclarator(state, T, TInfo);
5579 }
5580 
5581 /// GetTypeForDeclarator - Convert the type for the specified
5582 /// declarator to Type instances.
5583 ///
5584 /// The result of this call will never be null, but the associated
5585 /// type may be a null type if there's an unrecoverable error.
5586 TypeSourceInfo *Sema::GetTypeForDeclarator(Declarator &D, Scope *S) {
5587   // Determine the type of the declarator. Not all forms of declarator
5588   // have a type.
5589 
5590   TypeProcessingState state(*this, D);
5591 
5592   TypeSourceInfo *ReturnTypeInfo = nullptr;
5593   QualType T = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo);
5594   if (D.isPrototypeContext() && getLangOpts().ObjCAutoRefCount)
5595     inferARCWriteback(state, T);
5596 
5597   return GetFullTypeForDeclarator(state, T, ReturnTypeInfo);
5598 }
5599 
5600 static void transferARCOwnershipToDeclSpec(Sema &S,
5601                                            QualType &declSpecTy,
5602                                            Qualifiers::ObjCLifetime ownership) {
5603   if (declSpecTy->isObjCRetainableType() &&
5604       declSpecTy.getObjCLifetime() == Qualifiers::OCL_None) {
5605     Qualifiers qs;
5606     qs.addObjCLifetime(ownership);
5607     declSpecTy = S.Context.getQualifiedType(declSpecTy, qs);
5608   }
5609 }
5610 
5611 static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state,
5612                                             Qualifiers::ObjCLifetime ownership,
5613                                             unsigned chunkIndex) {
5614   Sema &S = state.getSema();
5615   Declarator &D = state.getDeclarator();
5616 
5617   // Look for an explicit lifetime attribute.
5618   DeclaratorChunk &chunk = D.getTypeObject(chunkIndex);
5619   if (chunk.getAttrs().hasAttribute(ParsedAttr::AT_ObjCOwnership))
5620     return;
5621 
5622   const char *attrStr = nullptr;
5623   switch (ownership) {
5624   case Qualifiers::OCL_None: llvm_unreachable("no ownership!");
5625   case Qualifiers::OCL_ExplicitNone: attrStr = "none"; break;
5626   case Qualifiers::OCL_Strong: attrStr = "strong"; break;
5627   case Qualifiers::OCL_Weak: attrStr = "weak"; break;
5628   case Qualifiers::OCL_Autoreleasing: attrStr = "autoreleasing"; break;
5629   }
5630 
5631   IdentifierLoc *Arg = new (S.Context) IdentifierLoc;
5632   Arg->Ident = &S.Context.Idents.get(attrStr);
5633   Arg->Loc = SourceLocation();
5634 
5635   ArgsUnion Args(Arg);
5636 
5637   // If there wasn't one, add one (with an invalid source location
5638   // so that we don't make an AttributedType for it).
5639   ParsedAttr *attr = D.getAttributePool().create(
5640       &S.Context.Idents.get("objc_ownership"), SourceLocation(),
5641       /*scope*/ nullptr, SourceLocation(),
5642       /*args*/ &Args, 1, ParsedAttr::AS_GNU);
5643   chunk.getAttrs().addAtEnd(attr);
5644   // TODO: mark whether we did this inference?
5645 }
5646 
5647 /// Used for transferring ownership in casts resulting in l-values.
5648 static void transferARCOwnership(TypeProcessingState &state,
5649                                  QualType &declSpecTy,
5650                                  Qualifiers::ObjCLifetime ownership) {
5651   Sema &S = state.getSema();
5652   Declarator &D = state.getDeclarator();
5653 
5654   int inner = -1;
5655   bool hasIndirection = false;
5656   for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
5657     DeclaratorChunk &chunk = D.getTypeObject(i);
5658     switch (chunk.Kind) {
5659     case DeclaratorChunk::Paren:
5660       // Ignore parens.
5661       break;
5662 
5663     case DeclaratorChunk::Array:
5664     case DeclaratorChunk::Reference:
5665     case DeclaratorChunk::Pointer:
5666       if (inner != -1)
5667         hasIndirection = true;
5668       inner = i;
5669       break;
5670 
5671     case DeclaratorChunk::BlockPointer:
5672       if (inner != -1)
5673         transferARCOwnershipToDeclaratorChunk(state, ownership, i);
5674       return;
5675 
5676     case DeclaratorChunk::Function:
5677     case DeclaratorChunk::MemberPointer:
5678     case DeclaratorChunk::Pipe:
5679       return;
5680     }
5681   }
5682 
5683   if (inner == -1)
5684     return;
5685 
5686   DeclaratorChunk &chunk = D.getTypeObject(inner);
5687   if (chunk.Kind == DeclaratorChunk::Pointer) {
5688     if (declSpecTy->isObjCRetainableType())
5689       return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership);
5690     if (declSpecTy->isObjCObjectType() && hasIndirection)
5691       return transferARCOwnershipToDeclaratorChunk(state, ownership, inner);
5692   } else {
5693     assert(chunk.Kind == DeclaratorChunk::Array ||
5694            chunk.Kind == DeclaratorChunk::Reference);
5695     return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership);
5696   }
5697 }
5698 
5699 TypeSourceInfo *Sema::GetTypeForDeclaratorCast(Declarator &D, QualType FromTy) {
5700   TypeProcessingState state(*this, D);
5701 
5702   TypeSourceInfo *ReturnTypeInfo = nullptr;
5703   QualType declSpecTy = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo);
5704 
5705   if (getLangOpts().ObjC) {
5706     Qualifiers::ObjCLifetime ownership = Context.getInnerObjCOwnership(FromTy);
5707     if (ownership != Qualifiers::OCL_None)
5708       transferARCOwnership(state, declSpecTy, ownership);
5709   }
5710 
5711   return GetFullTypeForDeclarator(state, declSpecTy, ReturnTypeInfo);
5712 }
5713 
5714 static void fillAttributedTypeLoc(AttributedTypeLoc TL,
5715                                   TypeProcessingState &State) {
5716   TL.setAttr(State.takeAttrForAttributedType(TL.getTypePtr()));
5717 }
5718 
5719 namespace {
5720   class TypeSpecLocFiller : public TypeLocVisitor<TypeSpecLocFiller> {
5721     Sema &SemaRef;
5722     ASTContext &Context;
5723     TypeProcessingState &State;
5724     const DeclSpec &DS;
5725 
5726   public:
5727     TypeSpecLocFiller(Sema &S, ASTContext &Context, TypeProcessingState &State,
5728                       const DeclSpec &DS)
5729         : SemaRef(S), Context(Context), State(State), DS(DS) {}
5730 
5731     void VisitAttributedTypeLoc(AttributedTypeLoc TL) {
5732       Visit(TL.getModifiedLoc());
5733       fillAttributedTypeLoc(TL, State);
5734     }
5735     void VisitMacroQualifiedTypeLoc(MacroQualifiedTypeLoc TL) {
5736       Visit(TL.getInnerLoc());
5737       TL.setExpansionLoc(
5738           State.getExpansionLocForMacroQualifiedType(TL.getTypePtr()));
5739     }
5740     void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) {
5741       Visit(TL.getUnqualifiedLoc());
5742     }
5743     void VisitTypedefTypeLoc(TypedefTypeLoc TL) {
5744       TL.setNameLoc(DS.getTypeSpecTypeLoc());
5745     }
5746     void VisitObjCInterfaceTypeLoc(ObjCInterfaceTypeLoc TL) {
5747       TL.setNameLoc(DS.getTypeSpecTypeLoc());
5748       // FIXME. We should have DS.getTypeSpecTypeEndLoc(). But, it requires
5749       // addition field. What we have is good enough for dispay of location
5750       // of 'fixit' on interface name.
5751       TL.setNameEndLoc(DS.getEndLoc());
5752     }
5753     void VisitObjCObjectTypeLoc(ObjCObjectTypeLoc TL) {
5754       TypeSourceInfo *RepTInfo = nullptr;
5755       Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo);
5756       TL.copy(RepTInfo->getTypeLoc());
5757     }
5758     void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) {
5759       TypeSourceInfo *RepTInfo = nullptr;
5760       Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo);
5761       TL.copy(RepTInfo->getTypeLoc());
5762     }
5763     void VisitTemplateSpecializationTypeLoc(TemplateSpecializationTypeLoc TL) {
5764       TypeSourceInfo *TInfo = nullptr;
5765       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5766 
5767       // If we got no declarator info from previous Sema routines,
5768       // just fill with the typespec loc.
5769       if (!TInfo) {
5770         TL.initialize(Context, DS.getTypeSpecTypeNameLoc());
5771         return;
5772       }
5773 
5774       TypeLoc OldTL = TInfo->getTypeLoc();
5775       if (TInfo->getType()->getAs<ElaboratedType>()) {
5776         ElaboratedTypeLoc ElabTL = OldTL.castAs<ElaboratedTypeLoc>();
5777         TemplateSpecializationTypeLoc NamedTL = ElabTL.getNamedTypeLoc()
5778             .castAs<TemplateSpecializationTypeLoc>();
5779         TL.copy(NamedTL);
5780       } else {
5781         TL.copy(OldTL.castAs<TemplateSpecializationTypeLoc>());
5782         assert(TL.getRAngleLoc() == OldTL.castAs<TemplateSpecializationTypeLoc>().getRAngleLoc());
5783       }
5784 
5785     }
5786     void VisitTypeOfExprTypeLoc(TypeOfExprTypeLoc TL) {
5787       assert(DS.getTypeSpecType() == DeclSpec::TST_typeofExpr);
5788       TL.setTypeofLoc(DS.getTypeSpecTypeLoc());
5789       TL.setParensRange(DS.getTypeofParensRange());
5790     }
5791     void VisitTypeOfTypeLoc(TypeOfTypeLoc TL) {
5792       assert(DS.getTypeSpecType() == DeclSpec::TST_typeofType);
5793       TL.setTypeofLoc(DS.getTypeSpecTypeLoc());
5794       TL.setParensRange(DS.getTypeofParensRange());
5795       assert(DS.getRepAsType());
5796       TypeSourceInfo *TInfo = nullptr;
5797       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5798       TL.setUnderlyingTInfo(TInfo);
5799     }
5800     void VisitUnaryTransformTypeLoc(UnaryTransformTypeLoc TL) {
5801       // FIXME: This holds only because we only have one unary transform.
5802       assert(DS.getTypeSpecType() == DeclSpec::TST_underlyingType);
5803       TL.setKWLoc(DS.getTypeSpecTypeLoc());
5804       TL.setParensRange(DS.getTypeofParensRange());
5805       assert(DS.getRepAsType());
5806       TypeSourceInfo *TInfo = nullptr;
5807       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5808       TL.setUnderlyingTInfo(TInfo);
5809     }
5810     void VisitBuiltinTypeLoc(BuiltinTypeLoc TL) {
5811       // By default, use the source location of the type specifier.
5812       TL.setBuiltinLoc(DS.getTypeSpecTypeLoc());
5813       if (TL.needsExtraLocalData()) {
5814         // Set info for the written builtin specifiers.
5815         TL.getWrittenBuiltinSpecs() = DS.getWrittenBuiltinSpecs();
5816         // Try to have a meaningful source location.
5817         if (TL.getWrittenSignSpec() != TSS_unspecified)
5818           TL.expandBuiltinRange(DS.getTypeSpecSignLoc());
5819         if (TL.getWrittenWidthSpec() != TSW_unspecified)
5820           TL.expandBuiltinRange(DS.getTypeSpecWidthRange());
5821       }
5822     }
5823     void VisitElaboratedTypeLoc(ElaboratedTypeLoc TL) {
5824       ElaboratedTypeKeyword Keyword
5825         = TypeWithKeyword::getKeywordForTypeSpec(DS.getTypeSpecType());
5826       if (DS.getTypeSpecType() == TST_typename) {
5827         TypeSourceInfo *TInfo = nullptr;
5828         Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5829         if (TInfo) {
5830           TL.copy(TInfo->getTypeLoc().castAs<ElaboratedTypeLoc>());
5831           return;
5832         }
5833       }
5834       TL.setElaboratedKeywordLoc(Keyword != ETK_None
5835                                  ? DS.getTypeSpecTypeLoc()
5836                                  : SourceLocation());
5837       const CXXScopeSpec& SS = DS.getTypeSpecScope();
5838       TL.setQualifierLoc(SS.getWithLocInContext(Context));
5839       Visit(TL.getNextTypeLoc().getUnqualifiedLoc());
5840     }
5841     void VisitDependentNameTypeLoc(DependentNameTypeLoc TL) {
5842       assert(DS.getTypeSpecType() == TST_typename);
5843       TypeSourceInfo *TInfo = nullptr;
5844       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5845       assert(TInfo);
5846       TL.copy(TInfo->getTypeLoc().castAs<DependentNameTypeLoc>());
5847     }
5848     void VisitDependentTemplateSpecializationTypeLoc(
5849                                  DependentTemplateSpecializationTypeLoc TL) {
5850       assert(DS.getTypeSpecType() == TST_typename);
5851       TypeSourceInfo *TInfo = nullptr;
5852       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5853       assert(TInfo);
5854       TL.copy(
5855           TInfo->getTypeLoc().castAs<DependentTemplateSpecializationTypeLoc>());
5856     }
5857     void VisitAutoTypeLoc(AutoTypeLoc TL) {
5858       assert(DS.getTypeSpecType() == TST_auto ||
5859              DS.getTypeSpecType() == TST_decltype_auto ||
5860              DS.getTypeSpecType() == TST_auto_type ||
5861              DS.getTypeSpecType() == TST_unspecified);
5862       TL.setNameLoc(DS.getTypeSpecTypeLoc());
5863       if (!DS.isConstrainedAuto())
5864         return;
5865       TemplateIdAnnotation *TemplateId = DS.getRepAsTemplateId();
5866       if (DS.getTypeSpecScope().isNotEmpty())
5867         TL.setNestedNameSpecifierLoc(
5868             DS.getTypeSpecScope().getWithLocInContext(Context));
5869       else
5870         TL.setNestedNameSpecifierLoc(NestedNameSpecifierLoc());
5871       TL.setTemplateKWLoc(TemplateId->TemplateKWLoc);
5872       TL.setConceptNameLoc(TemplateId->TemplateNameLoc);
5873       TL.setFoundDecl(nullptr);
5874       TL.setLAngleLoc(TemplateId->LAngleLoc);
5875       TL.setRAngleLoc(TemplateId->RAngleLoc);
5876       if (TemplateId->NumArgs == 0)
5877         return;
5878       TemplateArgumentListInfo TemplateArgsInfo;
5879       ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(),
5880                                          TemplateId->NumArgs);
5881       SemaRef.translateTemplateArguments(TemplateArgsPtr, TemplateArgsInfo);
5882       for (unsigned I = 0; I < TemplateId->NumArgs; ++I)
5883         TL.setArgLocInfo(I, TemplateArgsInfo.arguments()[I].getLocInfo());
5884     }
5885     void VisitTagTypeLoc(TagTypeLoc TL) {
5886       TL.setNameLoc(DS.getTypeSpecTypeNameLoc());
5887     }
5888     void VisitAtomicTypeLoc(AtomicTypeLoc TL) {
5889       // An AtomicTypeLoc can come from either an _Atomic(...) type specifier
5890       // or an _Atomic qualifier.
5891       if (DS.getTypeSpecType() == DeclSpec::TST_atomic) {
5892         TL.setKWLoc(DS.getTypeSpecTypeLoc());
5893         TL.setParensRange(DS.getTypeofParensRange());
5894 
5895         TypeSourceInfo *TInfo = nullptr;
5896         Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5897         assert(TInfo);
5898         TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc());
5899       } else {
5900         TL.setKWLoc(DS.getAtomicSpecLoc());
5901         // No parens, to indicate this was spelled as an _Atomic qualifier.
5902         TL.setParensRange(SourceRange());
5903         Visit(TL.getValueLoc());
5904       }
5905     }
5906 
5907     void VisitPipeTypeLoc(PipeTypeLoc TL) {
5908       TL.setKWLoc(DS.getTypeSpecTypeLoc());
5909 
5910       TypeSourceInfo *TInfo = nullptr;
5911       Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
5912       TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc());
5913     }
5914 
5915     void VisitExtIntTypeLoc(ExtIntTypeLoc TL) {
5916       TL.setNameLoc(DS.getTypeSpecTypeLoc());
5917     }
5918 
5919     void VisitDependentExtIntTypeLoc(DependentExtIntTypeLoc TL) {
5920       TL.setNameLoc(DS.getTypeSpecTypeLoc());
5921     }
5922 
5923     void VisitTypeLoc(TypeLoc TL) {
5924       // FIXME: add other typespec types and change this to an assert.
5925       TL.initialize(Context, DS.getTypeSpecTypeLoc());
5926     }
5927   };
5928 
5929   class DeclaratorLocFiller : public TypeLocVisitor<DeclaratorLocFiller> {
5930     ASTContext &Context;
5931     TypeProcessingState &State;
5932     const DeclaratorChunk &Chunk;
5933 
5934   public:
5935     DeclaratorLocFiller(ASTContext &Context, TypeProcessingState &State,
5936                         const DeclaratorChunk &Chunk)
5937         : Context(Context), State(State), Chunk(Chunk) {}
5938 
5939     void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) {
5940       llvm_unreachable("qualified type locs not expected here!");
5941     }
5942     void VisitDecayedTypeLoc(DecayedTypeLoc TL) {
5943       llvm_unreachable("decayed type locs not expected here!");
5944     }
5945 
5946     void VisitAttributedTypeLoc(AttributedTypeLoc TL) {
5947       fillAttributedTypeLoc(TL, State);
5948     }
5949     void VisitAdjustedTypeLoc(AdjustedTypeLoc TL) {
5950       // nothing
5951     }
5952     void VisitBlockPointerTypeLoc(BlockPointerTypeLoc TL) {
5953       assert(Chunk.Kind == DeclaratorChunk::BlockPointer);
5954       TL.setCaretLoc(Chunk.Loc);
5955     }
5956     void VisitPointerTypeLoc(PointerTypeLoc TL) {
5957       assert(Chunk.Kind == DeclaratorChunk::Pointer);
5958       TL.setStarLoc(Chunk.Loc);
5959     }
5960     void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) {
5961       assert(Chunk.Kind == DeclaratorChunk::Pointer);
5962       TL.setStarLoc(Chunk.Loc);
5963     }
5964     void VisitMemberPointerTypeLoc(MemberPointerTypeLoc TL) {
5965       assert(Chunk.Kind == DeclaratorChunk::MemberPointer);
5966       const CXXScopeSpec& SS = Chunk.Mem.Scope();
5967       NestedNameSpecifierLoc NNSLoc = SS.getWithLocInContext(Context);
5968 
5969       const Type* ClsTy = TL.getClass();
5970       QualType ClsQT = QualType(ClsTy, 0);
5971       TypeSourceInfo *ClsTInfo = Context.CreateTypeSourceInfo(ClsQT, 0);
5972       // Now copy source location info into the type loc component.
5973       TypeLoc ClsTL = ClsTInfo->getTypeLoc();
5974       switch (NNSLoc.getNestedNameSpecifier()->getKind()) {
5975       case NestedNameSpecifier::Identifier:
5976         assert(isa<DependentNameType>(ClsTy) && "Unexpected TypeLoc");
5977         {
5978           DependentNameTypeLoc DNTLoc = ClsTL.castAs<DependentNameTypeLoc>();
5979           DNTLoc.setElaboratedKeywordLoc(SourceLocation());
5980           DNTLoc.setQualifierLoc(NNSLoc.getPrefix());
5981           DNTLoc.setNameLoc(NNSLoc.getLocalBeginLoc());
5982         }
5983         break;
5984 
5985       case NestedNameSpecifier::TypeSpec:
5986       case NestedNameSpecifier::TypeSpecWithTemplate:
5987         if (isa<ElaboratedType>(ClsTy)) {
5988           ElaboratedTypeLoc ETLoc = ClsTL.castAs<ElaboratedTypeLoc>();
5989           ETLoc.setElaboratedKeywordLoc(SourceLocation());
5990           ETLoc.setQualifierLoc(NNSLoc.getPrefix());
5991           TypeLoc NamedTL = ETLoc.getNamedTypeLoc();
5992           NamedTL.initializeFullCopy(NNSLoc.getTypeLoc());
5993         } else {
5994           ClsTL.initializeFullCopy(NNSLoc.getTypeLoc());
5995         }
5996         break;
5997 
5998       case NestedNameSpecifier::Namespace:
5999       case NestedNameSpecifier::NamespaceAlias:
6000       case NestedNameSpecifier::Global:
6001       case NestedNameSpecifier::Super:
6002         llvm_unreachable("Nested-name-specifier must name a type");
6003       }
6004 
6005       // Finally fill in MemberPointerLocInfo fields.
6006       TL.setStarLoc(SourceLocation::getFromRawEncoding(Chunk.Mem.StarLoc));
6007       TL.setClassTInfo(ClsTInfo);
6008     }
6009     void VisitLValueReferenceTypeLoc(LValueReferenceTypeLoc TL) {
6010       assert(Chunk.Kind == DeclaratorChunk::Reference);
6011       // 'Amp' is misleading: this might have been originally
6012       /// spelled with AmpAmp.
6013       TL.setAmpLoc(Chunk.Loc);
6014     }
6015     void VisitRValueReferenceTypeLoc(RValueReferenceTypeLoc TL) {
6016       assert(Chunk.Kind == DeclaratorChunk::Reference);
6017       assert(!Chunk.Ref.LValueRef);
6018       TL.setAmpAmpLoc(Chunk.Loc);
6019     }
6020     void VisitArrayTypeLoc(ArrayTypeLoc TL) {
6021       assert(Chunk.Kind == DeclaratorChunk::Array);
6022       TL.setLBracketLoc(Chunk.Loc);
6023       TL.setRBracketLoc(Chunk.EndLoc);
6024       TL.setSizeExpr(static_cast<Expr*>(Chunk.Arr.NumElts));
6025     }
6026     void VisitFunctionTypeLoc(FunctionTypeLoc TL) {
6027       assert(Chunk.Kind == DeclaratorChunk::Function);
6028       TL.setLocalRangeBegin(Chunk.Loc);
6029       TL.setLocalRangeEnd(Chunk.EndLoc);
6030 
6031       const DeclaratorChunk::FunctionTypeInfo &FTI = Chunk.Fun;
6032       TL.setLParenLoc(FTI.getLParenLoc());
6033       TL.setRParenLoc(FTI.getRParenLoc());
6034       for (unsigned i = 0, e = TL.getNumParams(), tpi = 0; i != e; ++i) {
6035         ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param);
6036         TL.setParam(tpi++, Param);
6037       }
6038       TL.setExceptionSpecRange(FTI.getExceptionSpecRange());
6039     }
6040     void VisitParenTypeLoc(ParenTypeLoc TL) {
6041       assert(Chunk.Kind == DeclaratorChunk::Paren);
6042       TL.setLParenLoc(Chunk.Loc);
6043       TL.setRParenLoc(Chunk.EndLoc);
6044     }
6045     void VisitPipeTypeLoc(PipeTypeLoc TL) {
6046       assert(Chunk.Kind == DeclaratorChunk::Pipe);
6047       TL.setKWLoc(Chunk.Loc);
6048     }
6049     void VisitExtIntTypeLoc(ExtIntTypeLoc TL) {
6050       TL.setNameLoc(Chunk.Loc);
6051     }
6052     void VisitMacroQualifiedTypeLoc(MacroQualifiedTypeLoc TL) {
6053       TL.setExpansionLoc(Chunk.Loc);
6054     }
6055 
6056     void VisitTypeLoc(TypeLoc TL) {
6057       llvm_unreachable("unsupported TypeLoc kind in declarator!");
6058     }
6059   };
6060 } // end anonymous namespace
6061 
6062 static void fillAtomicQualLoc(AtomicTypeLoc ATL, const DeclaratorChunk &Chunk) {
6063   SourceLocation Loc;
6064   switch (Chunk.Kind) {
6065   case DeclaratorChunk::Function:
6066   case DeclaratorChunk::Array:
6067   case DeclaratorChunk::Paren:
6068   case DeclaratorChunk::Pipe:
6069     llvm_unreachable("cannot be _Atomic qualified");
6070 
6071   case DeclaratorChunk::Pointer:
6072     Loc = SourceLocation::getFromRawEncoding(Chunk.Ptr.AtomicQualLoc);
6073     break;
6074 
6075   case DeclaratorChunk::BlockPointer:
6076   case DeclaratorChunk::Reference:
6077   case DeclaratorChunk::MemberPointer:
6078     // FIXME: Provide a source location for the _Atomic keyword.
6079     break;
6080   }
6081 
6082   ATL.setKWLoc(Loc);
6083   ATL.setParensRange(SourceRange());
6084 }
6085 
6086 static void
6087 fillDependentAddressSpaceTypeLoc(DependentAddressSpaceTypeLoc DASTL,
6088                                  const ParsedAttributesView &Attrs) {
6089   for (const ParsedAttr &AL : Attrs) {
6090     if (AL.getKind() == ParsedAttr::AT_AddressSpace) {
6091       DASTL.setAttrNameLoc(AL.getLoc());
6092       DASTL.setAttrExprOperand(AL.getArgAsExpr(0));
6093       DASTL.setAttrOperandParensRange(SourceRange());
6094       return;
6095     }
6096   }
6097 
6098   llvm_unreachable(
6099       "no address_space attribute found at the expected location!");
6100 }
6101 
6102 static void fillMatrixTypeLoc(MatrixTypeLoc MTL,
6103                               const ParsedAttributesView &Attrs) {
6104   for (const ParsedAttr &AL : Attrs) {
6105     if (AL.getKind() == ParsedAttr::AT_MatrixType) {
6106       MTL.setAttrNameLoc(AL.getLoc());
6107       MTL.setAttrRowOperand(AL.getArgAsExpr(0));
6108       MTL.setAttrColumnOperand(AL.getArgAsExpr(1));
6109       MTL.setAttrOperandParensRange(SourceRange());
6110       return;
6111     }
6112   }
6113 
6114   llvm_unreachable("no matrix_type attribute found at the expected location!");
6115 }
6116 
6117 /// Create and instantiate a TypeSourceInfo with type source information.
6118 ///
6119 /// \param T QualType referring to the type as written in source code.
6120 ///
6121 /// \param ReturnTypeInfo For declarators whose return type does not show
6122 /// up in the normal place in the declaration specifiers (such as a C++
6123 /// conversion function), this pointer will refer to a type source information
6124 /// for that return type.
6125 static TypeSourceInfo *
6126 GetTypeSourceInfoForDeclarator(TypeProcessingState &State,
6127                                QualType T, TypeSourceInfo *ReturnTypeInfo) {
6128   Sema &S = State.getSema();
6129   Declarator &D = State.getDeclarator();
6130 
6131   TypeSourceInfo *TInfo = S.Context.CreateTypeSourceInfo(T);
6132   UnqualTypeLoc CurrTL = TInfo->getTypeLoc().getUnqualifiedLoc();
6133 
6134   // Handle parameter packs whose type is a pack expansion.
6135   if (isa<PackExpansionType>(T)) {
6136     CurrTL.castAs<PackExpansionTypeLoc>().setEllipsisLoc(D.getEllipsisLoc());
6137     CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc();
6138   }
6139 
6140   for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
6141     // An AtomicTypeLoc might be produced by an atomic qualifier in this
6142     // declarator chunk.
6143     if (AtomicTypeLoc ATL = CurrTL.getAs<AtomicTypeLoc>()) {
6144       fillAtomicQualLoc(ATL, D.getTypeObject(i));
6145       CurrTL = ATL.getValueLoc().getUnqualifiedLoc();
6146     }
6147 
6148     while (MacroQualifiedTypeLoc TL = CurrTL.getAs<MacroQualifiedTypeLoc>()) {
6149       TL.setExpansionLoc(
6150           State.getExpansionLocForMacroQualifiedType(TL.getTypePtr()));
6151       CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
6152     }
6153 
6154     while (AttributedTypeLoc TL = CurrTL.getAs<AttributedTypeLoc>()) {
6155       fillAttributedTypeLoc(TL, State);
6156       CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
6157     }
6158 
6159     while (DependentAddressSpaceTypeLoc TL =
6160                CurrTL.getAs<DependentAddressSpaceTypeLoc>()) {
6161       fillDependentAddressSpaceTypeLoc(TL, D.getTypeObject(i).getAttrs());
6162       CurrTL = TL.getPointeeTypeLoc().getUnqualifiedLoc();
6163     }
6164 
6165     if (MatrixTypeLoc TL = CurrTL.getAs<MatrixTypeLoc>())
6166       fillMatrixTypeLoc(TL, D.getTypeObject(i).getAttrs());
6167 
6168     // FIXME: Ordering here?
6169     while (AdjustedTypeLoc TL = CurrTL.getAs<AdjustedTypeLoc>())
6170       CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
6171 
6172     DeclaratorLocFiller(S.Context, State, D.getTypeObject(i)).Visit(CurrTL);
6173     CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc();
6174   }
6175 
6176   // If we have different source information for the return type, use
6177   // that.  This really only applies to C++ conversion functions.
6178   if (ReturnTypeInfo) {
6179     TypeLoc TL = ReturnTypeInfo->getTypeLoc();
6180     assert(TL.getFullDataSize() == CurrTL.getFullDataSize());
6181     memcpy(CurrTL.getOpaqueData(), TL.getOpaqueData(), TL.getFullDataSize());
6182   } else {
6183     TypeSpecLocFiller(S, S.Context, State, D.getDeclSpec()).Visit(CurrTL);
6184   }
6185 
6186   return TInfo;
6187 }
6188 
6189 /// Create a LocInfoType to hold the given QualType and TypeSourceInfo.
6190 ParsedType Sema::CreateParsedType(QualType T, TypeSourceInfo *TInfo) {
6191   // FIXME: LocInfoTypes are "transient", only needed for passing to/from Parser
6192   // and Sema during declaration parsing. Try deallocating/caching them when
6193   // it's appropriate, instead of allocating them and keeping them around.
6194   LocInfoType *LocT = (LocInfoType*)BumpAlloc.Allocate(sizeof(LocInfoType),
6195                                                        TypeAlignment);
6196   new (LocT) LocInfoType(T, TInfo);
6197   assert(LocT->getTypeClass() != T->getTypeClass() &&
6198          "LocInfoType's TypeClass conflicts with an existing Type class");
6199   return ParsedType::make(QualType(LocT, 0));
6200 }
6201 
6202 void LocInfoType::getAsStringInternal(std::string &Str,
6203                                       const PrintingPolicy &Policy) const {
6204   llvm_unreachable("LocInfoType leaked into the type system; an opaque TypeTy*"
6205          " was used directly instead of getting the QualType through"
6206          " GetTypeFromParser");
6207 }
6208 
6209 TypeResult Sema::ActOnTypeName(Scope *S, Declarator &D) {
6210   // C99 6.7.6: Type names have no identifier.  This is already validated by
6211   // the parser.
6212   assert(D.getIdentifier() == nullptr &&
6213          "Type name should have no identifier!");
6214 
6215   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
6216   QualType T = TInfo->getType();
6217   if (D.isInvalidType())
6218     return true;
6219 
6220   // Make sure there are no unused decl attributes on the declarator.
6221   // We don't want to do this for ObjC parameters because we're going
6222   // to apply them to the actual parameter declaration.
6223   // Likewise, we don't want to do this for alias declarations, because
6224   // we are actually going to build a declaration from this eventually.
6225   if (D.getContext() != DeclaratorContext::ObjCParameterContext &&
6226       D.getContext() != DeclaratorContext::AliasDeclContext &&
6227       D.getContext() != DeclaratorContext::AliasTemplateContext)
6228     checkUnusedDeclAttributes(D);
6229 
6230   if (getLangOpts().CPlusPlus) {
6231     // Check that there are no default arguments (C++ only).
6232     CheckExtraCXXDefaultArguments(D);
6233   }
6234 
6235   return CreateParsedType(T, TInfo);
6236 }
6237 
6238 ParsedType Sema::ActOnObjCInstanceType(SourceLocation Loc) {
6239   QualType T = Context.getObjCInstanceType();
6240   TypeSourceInfo *TInfo = Context.getTrivialTypeSourceInfo(T, Loc);
6241   return CreateParsedType(T, TInfo);
6242 }
6243 
6244 //===----------------------------------------------------------------------===//
6245 // Type Attribute Processing
6246 //===----------------------------------------------------------------------===//
6247 
6248 /// Build an AddressSpace index from a constant expression and diagnose any
6249 /// errors related to invalid address_spaces. Returns true on successfully
6250 /// building an AddressSpace index.
6251 static bool BuildAddressSpaceIndex(Sema &S, LangAS &ASIdx,
6252                                    const Expr *AddrSpace,
6253                                    SourceLocation AttrLoc) {
6254   if (!AddrSpace->isValueDependent()) {
6255     llvm::APSInt addrSpace(32);
6256     if (!AddrSpace->isIntegerConstantExpr(addrSpace, S.Context)) {
6257       S.Diag(AttrLoc, diag::err_attribute_argument_type)
6258           << "'address_space'" << AANT_ArgumentIntegerConstant
6259           << AddrSpace->getSourceRange();
6260       return false;
6261     }
6262 
6263     // Bounds checking.
6264     if (addrSpace.isSigned()) {
6265       if (addrSpace.isNegative()) {
6266         S.Diag(AttrLoc, diag::err_attribute_address_space_negative)
6267             << AddrSpace->getSourceRange();
6268         return false;
6269       }
6270       addrSpace.setIsSigned(false);
6271     }
6272 
6273     llvm::APSInt max(addrSpace.getBitWidth());
6274     max =
6275         Qualifiers::MaxAddressSpace - (unsigned)LangAS::FirstTargetAddressSpace;
6276     if (addrSpace > max) {
6277       S.Diag(AttrLoc, diag::err_attribute_address_space_too_high)
6278           << (unsigned)max.getZExtValue() << AddrSpace->getSourceRange();
6279       return false;
6280     }
6281 
6282     ASIdx =
6283         getLangASFromTargetAS(static_cast<unsigned>(addrSpace.getZExtValue()));
6284     return true;
6285   }
6286 
6287   // Default value for DependentAddressSpaceTypes
6288   ASIdx = LangAS::Default;
6289   return true;
6290 }
6291 
6292 /// BuildAddressSpaceAttr - Builds a DependentAddressSpaceType if an expression
6293 /// is uninstantiated. If instantiated it will apply the appropriate address
6294 /// space to the type. This function allows dependent template variables to be
6295 /// used in conjunction with the address_space attribute
6296 QualType Sema::BuildAddressSpaceAttr(QualType &T, LangAS ASIdx, Expr *AddrSpace,
6297                                      SourceLocation AttrLoc) {
6298   if (!AddrSpace->isValueDependent()) {
6299     if (DiagnoseMultipleAddrSpaceAttributes(*this, T.getAddressSpace(), ASIdx,
6300                                             AttrLoc))
6301       return QualType();
6302 
6303     return Context.getAddrSpaceQualType(T, ASIdx);
6304   }
6305 
6306   // A check with similar intentions as checking if a type already has an
6307   // address space except for on a dependent types, basically if the
6308   // current type is already a DependentAddressSpaceType then its already
6309   // lined up to have another address space on it and we can't have
6310   // multiple address spaces on the one pointer indirection
6311   if (T->getAs<DependentAddressSpaceType>()) {
6312     Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers);
6313     return QualType();
6314   }
6315 
6316   return Context.getDependentAddressSpaceType(T, AddrSpace, AttrLoc);
6317 }
6318 
6319 QualType Sema::BuildAddressSpaceAttr(QualType &T, Expr *AddrSpace,
6320                                      SourceLocation AttrLoc) {
6321   LangAS ASIdx;
6322   if (!BuildAddressSpaceIndex(*this, ASIdx, AddrSpace, AttrLoc))
6323     return QualType();
6324   return BuildAddressSpaceAttr(T, ASIdx, AddrSpace, AttrLoc);
6325 }
6326 
6327 /// HandleAddressSpaceTypeAttribute - Process an address_space attribute on the
6328 /// specified type.  The attribute contains 1 argument, the id of the address
6329 /// space for the type.
6330 static void HandleAddressSpaceTypeAttribute(QualType &Type,
6331                                             const ParsedAttr &Attr,
6332                                             TypeProcessingState &State) {
6333   Sema &S = State.getSema();
6334 
6335   // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "A function type shall not be
6336   // qualified by an address-space qualifier."
6337   if (Type->isFunctionType()) {
6338     S.Diag(Attr.getLoc(), diag::err_attribute_address_function_type);
6339     Attr.setInvalid();
6340     return;
6341   }
6342 
6343   LangAS ASIdx;
6344   if (Attr.getKind() == ParsedAttr::AT_AddressSpace) {
6345 
6346     // Check the attribute arguments.
6347     if (Attr.getNumArgs() != 1) {
6348       S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
6349                                                                         << 1;
6350       Attr.setInvalid();
6351       return;
6352     }
6353 
6354     Expr *ASArgExpr;
6355     if (Attr.isArgIdent(0)) {
6356       // Special case where the argument is a template id.
6357       CXXScopeSpec SS;
6358       SourceLocation TemplateKWLoc;
6359       UnqualifiedId id;
6360       id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
6361 
6362       ExprResult AddrSpace = S.ActOnIdExpression(
6363           S.getCurScope(), SS, TemplateKWLoc, id, /*HasTrailingLParen=*/false,
6364           /*IsAddressOfOperand=*/false);
6365       if (AddrSpace.isInvalid())
6366         return;
6367 
6368       ASArgExpr = static_cast<Expr *>(AddrSpace.get());
6369     } else {
6370       ASArgExpr = static_cast<Expr *>(Attr.getArgAsExpr(0));
6371     }
6372 
6373     LangAS ASIdx;
6374     if (!BuildAddressSpaceIndex(S, ASIdx, ASArgExpr, Attr.getLoc())) {
6375       Attr.setInvalid();
6376       return;
6377     }
6378 
6379     ASTContext &Ctx = S.Context;
6380     auto *ASAttr =
6381         ::new (Ctx) AddressSpaceAttr(Ctx, Attr, static_cast<unsigned>(ASIdx));
6382 
6383     // If the expression is not value dependent (not templated), then we can
6384     // apply the address space qualifiers just to the equivalent type.
6385     // Otherwise, we make an AttributedType with the modified and equivalent
6386     // type the same, and wrap it in a DependentAddressSpaceType. When this
6387     // dependent type is resolved, the qualifier is added to the equivalent type
6388     // later.
6389     QualType T;
6390     if (!ASArgExpr->isValueDependent()) {
6391       QualType EquivType =
6392           S.BuildAddressSpaceAttr(Type, ASIdx, ASArgExpr, Attr.getLoc());
6393       if (EquivType.isNull()) {
6394         Attr.setInvalid();
6395         return;
6396       }
6397       T = State.getAttributedType(ASAttr, Type, EquivType);
6398     } else {
6399       T = State.getAttributedType(ASAttr, Type, Type);
6400       T = S.BuildAddressSpaceAttr(T, ASIdx, ASArgExpr, Attr.getLoc());
6401     }
6402 
6403     if (!T.isNull())
6404       Type = T;
6405     else
6406       Attr.setInvalid();
6407   } else {
6408     // The keyword-based type attributes imply which address space to use.
6409     ASIdx = Attr.asOpenCLLangAS();
6410     if (ASIdx == LangAS::Default)
6411       llvm_unreachable("Invalid address space");
6412 
6413     if (DiagnoseMultipleAddrSpaceAttributes(S, Type.getAddressSpace(), ASIdx,
6414                                             Attr.getLoc())) {
6415       Attr.setInvalid();
6416       return;
6417     }
6418 
6419     Type = S.Context.getAddrSpaceQualType(Type, ASIdx);
6420   }
6421 }
6422 
6423 /// handleObjCOwnershipTypeAttr - Process an objc_ownership
6424 /// attribute on the specified type.
6425 ///
6426 /// Returns 'true' if the attribute was handled.
6427 static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state,
6428                                         ParsedAttr &attr, QualType &type) {
6429   bool NonObjCPointer = false;
6430 
6431   if (!type->isDependentType() && !type->isUndeducedType()) {
6432     if (const PointerType *ptr = type->getAs<PointerType>()) {
6433       QualType pointee = ptr->getPointeeType();
6434       if (pointee->isObjCRetainableType() || pointee->isPointerType())
6435         return false;
6436       // It is important not to lose the source info that there was an attribute
6437       // applied to non-objc pointer. We will create an attributed type but
6438       // its type will be the same as the original type.
6439       NonObjCPointer = true;
6440     } else if (!type->isObjCRetainableType()) {
6441       return false;
6442     }
6443 
6444     // Don't accept an ownership attribute in the declspec if it would
6445     // just be the return type of a block pointer.
6446     if (state.isProcessingDeclSpec()) {
6447       Declarator &D = state.getDeclarator();
6448       if (maybeMovePastReturnType(D, D.getNumTypeObjects(),
6449                                   /*onlyBlockPointers=*/true))
6450         return false;
6451     }
6452   }
6453 
6454   Sema &S = state.getSema();
6455   SourceLocation AttrLoc = attr.getLoc();
6456   if (AttrLoc.isMacroID())
6457     AttrLoc =
6458         S.getSourceManager().getImmediateExpansionRange(AttrLoc).getBegin();
6459 
6460   if (!attr.isArgIdent(0)) {
6461     S.Diag(AttrLoc, diag::err_attribute_argument_type) << attr
6462                                                        << AANT_ArgumentString;
6463     attr.setInvalid();
6464     return true;
6465   }
6466 
6467   IdentifierInfo *II = attr.getArgAsIdent(0)->Ident;
6468   Qualifiers::ObjCLifetime lifetime;
6469   if (II->isStr("none"))
6470     lifetime = Qualifiers::OCL_ExplicitNone;
6471   else if (II->isStr("strong"))
6472     lifetime = Qualifiers::OCL_Strong;
6473   else if (II->isStr("weak"))
6474     lifetime = Qualifiers::OCL_Weak;
6475   else if (II->isStr("autoreleasing"))
6476     lifetime = Qualifiers::OCL_Autoreleasing;
6477   else {
6478     S.Diag(AttrLoc, diag::warn_attribute_type_not_supported) << attr << II;
6479     attr.setInvalid();
6480     return true;
6481   }
6482 
6483   // Just ignore lifetime attributes other than __weak and __unsafe_unretained
6484   // outside of ARC mode.
6485   if (!S.getLangOpts().ObjCAutoRefCount &&
6486       lifetime != Qualifiers::OCL_Weak &&
6487       lifetime != Qualifiers::OCL_ExplicitNone) {
6488     return true;
6489   }
6490 
6491   SplitQualType underlyingType = type.split();
6492 
6493   // Check for redundant/conflicting ownership qualifiers.
6494   if (Qualifiers::ObjCLifetime previousLifetime
6495         = type.getQualifiers().getObjCLifetime()) {
6496     // If it's written directly, that's an error.
6497     if (S.Context.hasDirectOwnershipQualifier(type)) {
6498       S.Diag(AttrLoc, diag::err_attr_objc_ownership_redundant)
6499         << type;
6500       return true;
6501     }
6502 
6503     // Otherwise, if the qualifiers actually conflict, pull sugar off
6504     // and remove the ObjCLifetime qualifiers.
6505     if (previousLifetime != lifetime) {
6506       // It's possible to have multiple local ObjCLifetime qualifiers. We
6507       // can't stop after we reach a type that is directly qualified.
6508       const Type *prevTy = nullptr;
6509       while (!prevTy || prevTy != underlyingType.Ty) {
6510         prevTy = underlyingType.Ty;
6511         underlyingType = underlyingType.getSingleStepDesugaredType();
6512       }
6513       underlyingType.Quals.removeObjCLifetime();
6514     }
6515   }
6516 
6517   underlyingType.Quals.addObjCLifetime(lifetime);
6518 
6519   if (NonObjCPointer) {
6520     StringRef name = attr.getAttrName()->getName();
6521     switch (lifetime) {
6522     case Qualifiers::OCL_None:
6523     case Qualifiers::OCL_ExplicitNone:
6524       break;
6525     case Qualifiers::OCL_Strong: name = "__strong"; break;
6526     case Qualifiers::OCL_Weak: name = "__weak"; break;
6527     case Qualifiers::OCL_Autoreleasing: name = "__autoreleasing"; break;
6528     }
6529     S.Diag(AttrLoc, diag::warn_type_attribute_wrong_type) << name
6530       << TDS_ObjCObjOrBlock << type;
6531   }
6532 
6533   // Don't actually add the __unsafe_unretained qualifier in non-ARC files,
6534   // because having both 'T' and '__unsafe_unretained T' exist in the type
6535   // system causes unfortunate widespread consistency problems.  (For example,
6536   // they're not considered compatible types, and we mangle them identicially
6537   // as template arguments.)  These problems are all individually fixable,
6538   // but it's easier to just not add the qualifier and instead sniff it out
6539   // in specific places using isObjCInertUnsafeUnretainedType().
6540   //
6541   // Doing this does means we miss some trivial consistency checks that
6542   // would've triggered in ARC, but that's better than trying to solve all
6543   // the coexistence problems with __unsafe_unretained.
6544   if (!S.getLangOpts().ObjCAutoRefCount &&
6545       lifetime == Qualifiers::OCL_ExplicitNone) {
6546     type = state.getAttributedType(
6547         createSimpleAttr<ObjCInertUnsafeUnretainedAttr>(S.Context, attr),
6548         type, type);
6549     return true;
6550   }
6551 
6552   QualType origType = type;
6553   if (!NonObjCPointer)
6554     type = S.Context.getQualifiedType(underlyingType);
6555 
6556   // If we have a valid source location for the attribute, use an
6557   // AttributedType instead.
6558   if (AttrLoc.isValid()) {
6559     type = state.getAttributedType(::new (S.Context)
6560                                        ObjCOwnershipAttr(S.Context, attr, II),
6561                                    origType, type);
6562   }
6563 
6564   auto diagnoseOrDelay = [](Sema &S, SourceLocation loc,
6565                             unsigned diagnostic, QualType type) {
6566     if (S.DelayedDiagnostics.shouldDelayDiagnostics()) {
6567       S.DelayedDiagnostics.add(
6568           sema::DelayedDiagnostic::makeForbiddenType(
6569               S.getSourceManager().getExpansionLoc(loc),
6570               diagnostic, type, /*ignored*/ 0));
6571     } else {
6572       S.Diag(loc, diagnostic);
6573     }
6574   };
6575 
6576   // Sometimes, __weak isn't allowed.
6577   if (lifetime == Qualifiers::OCL_Weak &&
6578       !S.getLangOpts().ObjCWeak && !NonObjCPointer) {
6579 
6580     // Use a specialized diagnostic if the runtime just doesn't support them.
6581     unsigned diagnostic =
6582       (S.getLangOpts().ObjCWeakRuntime ? diag::err_arc_weak_disabled
6583                                        : diag::err_arc_weak_no_runtime);
6584 
6585     // In any case, delay the diagnostic until we know what we're parsing.
6586     diagnoseOrDelay(S, AttrLoc, diagnostic, type);
6587 
6588     attr.setInvalid();
6589     return true;
6590   }
6591 
6592   // Forbid __weak for class objects marked as
6593   // objc_arc_weak_reference_unavailable
6594   if (lifetime == Qualifiers::OCL_Weak) {
6595     if (const ObjCObjectPointerType *ObjT =
6596           type->getAs<ObjCObjectPointerType>()) {
6597       if (ObjCInterfaceDecl *Class = ObjT->getInterfaceDecl()) {
6598         if (Class->isArcWeakrefUnavailable()) {
6599           S.Diag(AttrLoc, diag::err_arc_unsupported_weak_class);
6600           S.Diag(ObjT->getInterfaceDecl()->getLocation(),
6601                  diag::note_class_declared);
6602         }
6603       }
6604     }
6605   }
6606 
6607   return true;
6608 }
6609 
6610 /// handleObjCGCTypeAttr - Process the __attribute__((objc_gc)) type
6611 /// attribute on the specified type.  Returns true to indicate that
6612 /// the attribute was handled, false to indicate that the type does
6613 /// not permit the attribute.
6614 static bool handleObjCGCTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
6615                                  QualType &type) {
6616   Sema &S = state.getSema();
6617 
6618   // Delay if this isn't some kind of pointer.
6619   if (!type->isPointerType() &&
6620       !type->isObjCObjectPointerType() &&
6621       !type->isBlockPointerType())
6622     return false;
6623 
6624   if (type.getObjCGCAttr() != Qualifiers::GCNone) {
6625     S.Diag(attr.getLoc(), diag::err_attribute_multiple_objc_gc);
6626     attr.setInvalid();
6627     return true;
6628   }
6629 
6630   // Check the attribute arguments.
6631   if (!attr.isArgIdent(0)) {
6632     S.Diag(attr.getLoc(), diag::err_attribute_argument_type)
6633         << attr << AANT_ArgumentString;
6634     attr.setInvalid();
6635     return true;
6636   }
6637   Qualifiers::GC GCAttr;
6638   if (attr.getNumArgs() > 1) {
6639     S.Diag(attr.getLoc(), diag::err_attribute_wrong_number_arguments) << attr
6640                                                                       << 1;
6641     attr.setInvalid();
6642     return true;
6643   }
6644 
6645   IdentifierInfo *II = attr.getArgAsIdent(0)->Ident;
6646   if (II->isStr("weak"))
6647     GCAttr = Qualifiers::Weak;
6648   else if (II->isStr("strong"))
6649     GCAttr = Qualifiers::Strong;
6650   else {
6651     S.Diag(attr.getLoc(), diag::warn_attribute_type_not_supported)
6652         << attr << II;
6653     attr.setInvalid();
6654     return true;
6655   }
6656 
6657   QualType origType = type;
6658   type = S.Context.getObjCGCQualType(origType, GCAttr);
6659 
6660   // Make an attributed type to preserve the source information.
6661   if (attr.getLoc().isValid())
6662     type = state.getAttributedType(
6663         ::new (S.Context) ObjCGCAttr(S.Context, attr, II), origType, type);
6664 
6665   return true;
6666 }
6667 
6668 namespace {
6669   /// A helper class to unwrap a type down to a function for the
6670   /// purposes of applying attributes there.
6671   ///
6672   /// Use:
6673   ///   FunctionTypeUnwrapper unwrapped(SemaRef, T);
6674   ///   if (unwrapped.isFunctionType()) {
6675   ///     const FunctionType *fn = unwrapped.get();
6676   ///     // change fn somehow
6677   ///     T = unwrapped.wrap(fn);
6678   ///   }
6679   struct FunctionTypeUnwrapper {
6680     enum WrapKind {
6681       Desugar,
6682       Attributed,
6683       Parens,
6684       Array,
6685       Pointer,
6686       BlockPointer,
6687       Reference,
6688       MemberPointer,
6689       MacroQualified,
6690     };
6691 
6692     QualType Original;
6693     const FunctionType *Fn;
6694     SmallVector<unsigned char /*WrapKind*/, 8> Stack;
6695 
6696     FunctionTypeUnwrapper(Sema &S, QualType T) : Original(T) {
6697       while (true) {
6698         const Type *Ty = T.getTypePtr();
6699         if (isa<FunctionType>(Ty)) {
6700           Fn = cast<FunctionType>(Ty);
6701           return;
6702         } else if (isa<ParenType>(Ty)) {
6703           T = cast<ParenType>(Ty)->getInnerType();
6704           Stack.push_back(Parens);
6705         } else if (isa<ConstantArrayType>(Ty) || isa<VariableArrayType>(Ty) ||
6706                    isa<IncompleteArrayType>(Ty)) {
6707           T = cast<ArrayType>(Ty)->getElementType();
6708           Stack.push_back(Array);
6709         } else if (isa<PointerType>(Ty)) {
6710           T = cast<PointerType>(Ty)->getPointeeType();
6711           Stack.push_back(Pointer);
6712         } else if (isa<BlockPointerType>(Ty)) {
6713           T = cast<BlockPointerType>(Ty)->getPointeeType();
6714           Stack.push_back(BlockPointer);
6715         } else if (isa<MemberPointerType>(Ty)) {
6716           T = cast<MemberPointerType>(Ty)->getPointeeType();
6717           Stack.push_back(MemberPointer);
6718         } else if (isa<ReferenceType>(Ty)) {
6719           T = cast<ReferenceType>(Ty)->getPointeeType();
6720           Stack.push_back(Reference);
6721         } else if (isa<AttributedType>(Ty)) {
6722           T = cast<AttributedType>(Ty)->getEquivalentType();
6723           Stack.push_back(Attributed);
6724         } else if (isa<MacroQualifiedType>(Ty)) {
6725           T = cast<MacroQualifiedType>(Ty)->getUnderlyingType();
6726           Stack.push_back(MacroQualified);
6727         } else {
6728           const Type *DTy = Ty->getUnqualifiedDesugaredType();
6729           if (Ty == DTy) {
6730             Fn = nullptr;
6731             return;
6732           }
6733 
6734           T = QualType(DTy, 0);
6735           Stack.push_back(Desugar);
6736         }
6737       }
6738     }
6739 
6740     bool isFunctionType() const { return (Fn != nullptr); }
6741     const FunctionType *get() const { return Fn; }
6742 
6743     QualType wrap(Sema &S, const FunctionType *New) {
6744       // If T wasn't modified from the unwrapped type, do nothing.
6745       if (New == get()) return Original;
6746 
6747       Fn = New;
6748       return wrap(S.Context, Original, 0);
6749     }
6750 
6751   private:
6752     QualType wrap(ASTContext &C, QualType Old, unsigned I) {
6753       if (I == Stack.size())
6754         return C.getQualifiedType(Fn, Old.getQualifiers());
6755 
6756       // Build up the inner type, applying the qualifiers from the old
6757       // type to the new type.
6758       SplitQualType SplitOld = Old.split();
6759 
6760       // As a special case, tail-recurse if there are no qualifiers.
6761       if (SplitOld.Quals.empty())
6762         return wrap(C, SplitOld.Ty, I);
6763       return C.getQualifiedType(wrap(C, SplitOld.Ty, I), SplitOld.Quals);
6764     }
6765 
6766     QualType wrap(ASTContext &C, const Type *Old, unsigned I) {
6767       if (I == Stack.size()) return QualType(Fn, 0);
6768 
6769       switch (static_cast<WrapKind>(Stack[I++])) {
6770       case Desugar:
6771         // This is the point at which we potentially lose source
6772         // information.
6773         return wrap(C, Old->getUnqualifiedDesugaredType(), I);
6774 
6775       case Attributed:
6776         return wrap(C, cast<AttributedType>(Old)->getEquivalentType(), I);
6777 
6778       case Parens: {
6779         QualType New = wrap(C, cast<ParenType>(Old)->getInnerType(), I);
6780         return C.getParenType(New);
6781       }
6782 
6783       case MacroQualified:
6784         return wrap(C, cast<MacroQualifiedType>(Old)->getUnderlyingType(), I);
6785 
6786       case Array: {
6787         if (const auto *CAT = dyn_cast<ConstantArrayType>(Old)) {
6788           QualType New = wrap(C, CAT->getElementType(), I);
6789           return C.getConstantArrayType(New, CAT->getSize(), CAT->getSizeExpr(),
6790                                         CAT->getSizeModifier(),
6791                                         CAT->getIndexTypeCVRQualifiers());
6792         }
6793 
6794         if (const auto *VAT = dyn_cast<VariableArrayType>(Old)) {
6795           QualType New = wrap(C, VAT->getElementType(), I);
6796           return C.getVariableArrayType(
6797               New, VAT->getSizeExpr(), VAT->getSizeModifier(),
6798               VAT->getIndexTypeCVRQualifiers(), VAT->getBracketsRange());
6799         }
6800 
6801         const auto *IAT = cast<IncompleteArrayType>(Old);
6802         QualType New = wrap(C, IAT->getElementType(), I);
6803         return C.getIncompleteArrayType(New, IAT->getSizeModifier(),
6804                                         IAT->getIndexTypeCVRQualifiers());
6805       }
6806 
6807       case Pointer: {
6808         QualType New = wrap(C, cast<PointerType>(Old)->getPointeeType(), I);
6809         return C.getPointerType(New);
6810       }
6811 
6812       case BlockPointer: {
6813         QualType New = wrap(C, cast<BlockPointerType>(Old)->getPointeeType(),I);
6814         return C.getBlockPointerType(New);
6815       }
6816 
6817       case MemberPointer: {
6818         const MemberPointerType *OldMPT = cast<MemberPointerType>(Old);
6819         QualType New = wrap(C, OldMPT->getPointeeType(), I);
6820         return C.getMemberPointerType(New, OldMPT->getClass());
6821       }
6822 
6823       case Reference: {
6824         const ReferenceType *OldRef = cast<ReferenceType>(Old);
6825         QualType New = wrap(C, OldRef->getPointeeType(), I);
6826         if (isa<LValueReferenceType>(OldRef))
6827           return C.getLValueReferenceType(New, OldRef->isSpelledAsLValue());
6828         else
6829           return C.getRValueReferenceType(New);
6830       }
6831       }
6832 
6833       llvm_unreachable("unknown wrapping kind");
6834     }
6835   };
6836 } // end anonymous namespace
6837 
6838 static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &State,
6839                                              ParsedAttr &PAttr, QualType &Type) {
6840   Sema &S = State.getSema();
6841 
6842   Attr *A;
6843   switch (PAttr.getKind()) {
6844   default: llvm_unreachable("Unknown attribute kind");
6845   case ParsedAttr::AT_Ptr32:
6846     A = createSimpleAttr<Ptr32Attr>(S.Context, PAttr);
6847     break;
6848   case ParsedAttr::AT_Ptr64:
6849     A = createSimpleAttr<Ptr64Attr>(S.Context, PAttr);
6850     break;
6851   case ParsedAttr::AT_SPtr:
6852     A = createSimpleAttr<SPtrAttr>(S.Context, PAttr);
6853     break;
6854   case ParsedAttr::AT_UPtr:
6855     A = createSimpleAttr<UPtrAttr>(S.Context, PAttr);
6856     break;
6857   }
6858 
6859   llvm::SmallSet<attr::Kind, 2> Attrs;
6860   attr::Kind NewAttrKind = A->getKind();
6861   QualType Desugared = Type;
6862   const AttributedType *AT = dyn_cast<AttributedType>(Type);
6863   while (AT) {
6864     Attrs.insert(AT->getAttrKind());
6865     Desugared = AT->getModifiedType();
6866     AT = dyn_cast<AttributedType>(Desugared);
6867   }
6868 
6869   // You cannot specify duplicate type attributes, so if the attribute has
6870   // already been applied, flag it.
6871   if (Attrs.count(NewAttrKind)) {
6872     S.Diag(PAttr.getLoc(), diag::warn_duplicate_attribute_exact) << PAttr;
6873     return true;
6874   }
6875   Attrs.insert(NewAttrKind);
6876 
6877   // You cannot have both __sptr and __uptr on the same type, nor can you
6878   // have __ptr32 and __ptr64.
6879   if (Attrs.count(attr::Ptr32) && Attrs.count(attr::Ptr64)) {
6880     S.Diag(PAttr.getLoc(), diag::err_attributes_are_not_compatible)
6881         << "'__ptr32'"
6882         << "'__ptr64'";
6883     return true;
6884   } else if (Attrs.count(attr::SPtr) && Attrs.count(attr::UPtr)) {
6885     S.Diag(PAttr.getLoc(), diag::err_attributes_are_not_compatible)
6886         << "'__sptr'"
6887         << "'__uptr'";
6888     return true;
6889   }
6890 
6891   // Pointer type qualifiers can only operate on pointer types, but not
6892   // pointer-to-member types.
6893   //
6894   // FIXME: Should we really be disallowing this attribute if there is any
6895   // type sugar between it and the pointer (other than attributes)? Eg, this
6896   // disallows the attribute on a parenthesized pointer.
6897   // And if so, should we really allow *any* type attribute?
6898   if (!isa<PointerType>(Desugared)) {
6899     if (Type->isMemberPointerType())
6900       S.Diag(PAttr.getLoc(), diag::err_attribute_no_member_pointers) << PAttr;
6901     else
6902       S.Diag(PAttr.getLoc(), diag::err_attribute_pointers_only) << PAttr << 0;
6903     return true;
6904   }
6905 
6906   // Add address space to type based on its attributes.
6907   LangAS ASIdx = LangAS::Default;
6908   uint64_t PtrWidth = S.Context.getTargetInfo().getPointerWidth(0);
6909   if (PtrWidth == 32) {
6910     if (Attrs.count(attr::Ptr64))
6911       ASIdx = LangAS::ptr64;
6912     else if (Attrs.count(attr::UPtr))
6913       ASIdx = LangAS::ptr32_uptr;
6914   } else if (PtrWidth == 64 && Attrs.count(attr::Ptr32)) {
6915     if (Attrs.count(attr::UPtr))
6916       ASIdx = LangAS::ptr32_uptr;
6917     else
6918       ASIdx = LangAS::ptr32_sptr;
6919   }
6920 
6921   QualType Pointee = Type->getPointeeType();
6922   if (ASIdx != LangAS::Default)
6923     Pointee = S.Context.getAddrSpaceQualType(
6924         S.Context.removeAddrSpaceQualType(Pointee), ASIdx);
6925   Type = State.getAttributedType(A, Type, S.Context.getPointerType(Pointee));
6926   return false;
6927 }
6928 
6929 /// Map a nullability attribute kind to a nullability kind.
6930 static NullabilityKind mapNullabilityAttrKind(ParsedAttr::Kind kind) {
6931   switch (kind) {
6932   case ParsedAttr::AT_TypeNonNull:
6933     return NullabilityKind::NonNull;
6934 
6935   case ParsedAttr::AT_TypeNullable:
6936     return NullabilityKind::Nullable;
6937 
6938   case ParsedAttr::AT_TypeNullUnspecified:
6939     return NullabilityKind::Unspecified;
6940 
6941   default:
6942     llvm_unreachable("not a nullability attribute kind");
6943   }
6944 }
6945 
6946 /// Applies a nullability type specifier to the given type, if possible.
6947 ///
6948 /// \param state The type processing state.
6949 ///
6950 /// \param type The type to which the nullability specifier will be
6951 /// added. On success, this type will be updated appropriately.
6952 ///
6953 /// \param attr The attribute as written on the type.
6954 ///
6955 /// \param allowOnArrayType Whether to accept nullability specifiers on an
6956 /// array type (e.g., because it will decay to a pointer).
6957 ///
6958 /// \returns true if a problem has been diagnosed, false on success.
6959 static bool checkNullabilityTypeSpecifier(TypeProcessingState &state,
6960                                           QualType &type,
6961                                           ParsedAttr &attr,
6962                                           bool allowOnArrayType) {
6963   Sema &S = state.getSema();
6964 
6965   NullabilityKind nullability = mapNullabilityAttrKind(attr.getKind());
6966   SourceLocation nullabilityLoc = attr.getLoc();
6967   bool isContextSensitive = attr.isContextSensitiveKeywordAttribute();
6968 
6969   recordNullabilitySeen(S, nullabilityLoc);
6970 
6971   // Check for existing nullability attributes on the type.
6972   QualType desugared = type;
6973   while (auto attributed = dyn_cast<AttributedType>(desugared.getTypePtr())) {
6974     // Check whether there is already a null
6975     if (auto existingNullability = attributed->getImmediateNullability()) {
6976       // Duplicated nullability.
6977       if (nullability == *existingNullability) {
6978         S.Diag(nullabilityLoc, diag::warn_nullability_duplicate)
6979           << DiagNullabilityKind(nullability, isContextSensitive)
6980           << FixItHint::CreateRemoval(nullabilityLoc);
6981 
6982         break;
6983       }
6984 
6985       // Conflicting nullability.
6986       S.Diag(nullabilityLoc, diag::err_nullability_conflicting)
6987         << DiagNullabilityKind(nullability, isContextSensitive)
6988         << DiagNullabilityKind(*existingNullability, false);
6989       return true;
6990     }
6991 
6992     desugared = attributed->getModifiedType();
6993   }
6994 
6995   // If there is already a different nullability specifier, complain.
6996   // This (unlike the code above) looks through typedefs that might
6997   // have nullability specifiers on them, which means we cannot
6998   // provide a useful Fix-It.
6999   if (auto existingNullability = desugared->getNullability(S.Context)) {
7000     if (nullability != *existingNullability) {
7001       S.Diag(nullabilityLoc, diag::err_nullability_conflicting)
7002         << DiagNullabilityKind(nullability, isContextSensitive)
7003         << DiagNullabilityKind(*existingNullability, false);
7004 
7005       // Try to find the typedef with the existing nullability specifier.
7006       if (auto typedefType = desugared->getAs<TypedefType>()) {
7007         TypedefNameDecl *typedefDecl = typedefType->getDecl();
7008         QualType underlyingType = typedefDecl->getUnderlyingType();
7009         if (auto typedefNullability
7010               = AttributedType::stripOuterNullability(underlyingType)) {
7011           if (*typedefNullability == *existingNullability) {
7012             S.Diag(typedefDecl->getLocation(), diag::note_nullability_here)
7013               << DiagNullabilityKind(*existingNullability, false);
7014           }
7015         }
7016       }
7017 
7018       return true;
7019     }
7020   }
7021 
7022   // If this definitely isn't a pointer type, reject the specifier.
7023   if (!desugared->canHaveNullability() &&
7024       !(allowOnArrayType && desugared->isArrayType())) {
7025     S.Diag(nullabilityLoc, diag::err_nullability_nonpointer)
7026       << DiagNullabilityKind(nullability, isContextSensitive) << type;
7027     return true;
7028   }
7029 
7030   // For the context-sensitive keywords/Objective-C property
7031   // attributes, require that the type be a single-level pointer.
7032   if (isContextSensitive) {
7033     // Make sure that the pointee isn't itself a pointer type.
7034     const Type *pointeeType;
7035     if (desugared->isArrayType())
7036       pointeeType = desugared->getArrayElementTypeNoTypeQual();
7037     else
7038       pointeeType = desugared->getPointeeType().getTypePtr();
7039 
7040     if (pointeeType->isAnyPointerType() ||
7041         pointeeType->isObjCObjectPointerType() ||
7042         pointeeType->isMemberPointerType()) {
7043       S.Diag(nullabilityLoc, diag::err_nullability_cs_multilevel)
7044         << DiagNullabilityKind(nullability, true)
7045         << type;
7046       S.Diag(nullabilityLoc, diag::note_nullability_type_specifier)
7047         << DiagNullabilityKind(nullability, false)
7048         << type
7049         << FixItHint::CreateReplacement(nullabilityLoc,
7050                                         getNullabilitySpelling(nullability));
7051       return true;
7052     }
7053   }
7054 
7055   // Form the attributed type.
7056   type = state.getAttributedType(
7057       createNullabilityAttr(S.Context, attr, nullability), type, type);
7058   return false;
7059 }
7060 
7061 /// Check the application of the Objective-C '__kindof' qualifier to
7062 /// the given type.
7063 static bool checkObjCKindOfType(TypeProcessingState &state, QualType &type,
7064                                 ParsedAttr &attr) {
7065   Sema &S = state.getSema();
7066 
7067   if (isa<ObjCTypeParamType>(type)) {
7068     // Build the attributed type to record where __kindof occurred.
7069     type = state.getAttributedType(
7070         createSimpleAttr<ObjCKindOfAttr>(S.Context, attr), type, type);
7071     return false;
7072   }
7073 
7074   // Find out if it's an Objective-C object or object pointer type;
7075   const ObjCObjectPointerType *ptrType = type->getAs<ObjCObjectPointerType>();
7076   const ObjCObjectType *objType = ptrType ? ptrType->getObjectType()
7077                                           : type->getAs<ObjCObjectType>();
7078 
7079   // If not, we can't apply __kindof.
7080   if (!objType) {
7081     // FIXME: Handle dependent types that aren't yet object types.
7082     S.Diag(attr.getLoc(), diag::err_objc_kindof_nonobject)
7083       << type;
7084     return true;
7085   }
7086 
7087   // Rebuild the "equivalent" type, which pushes __kindof down into
7088   // the object type.
7089   // There is no need to apply kindof on an unqualified id type.
7090   QualType equivType = S.Context.getObjCObjectType(
7091       objType->getBaseType(), objType->getTypeArgsAsWritten(),
7092       objType->getProtocols(),
7093       /*isKindOf=*/objType->isObjCUnqualifiedId() ? false : true);
7094 
7095   // If we started with an object pointer type, rebuild it.
7096   if (ptrType) {
7097     equivType = S.Context.getObjCObjectPointerType(equivType);
7098     if (auto nullability = type->getNullability(S.Context)) {
7099       // We create a nullability attribute from the __kindof attribute.
7100       // Make sure that will make sense.
7101       assert(attr.getAttributeSpellingListIndex() == 0 &&
7102              "multiple spellings for __kindof?");
7103       Attr *A = createNullabilityAttr(S.Context, attr, *nullability);
7104       A->setImplicit(true);
7105       equivType = state.getAttributedType(A, equivType, equivType);
7106     }
7107   }
7108 
7109   // Build the attributed type to record where __kindof occurred.
7110   type = state.getAttributedType(
7111       createSimpleAttr<ObjCKindOfAttr>(S.Context, attr), type, equivType);
7112   return false;
7113 }
7114 
7115 /// Distribute a nullability type attribute that cannot be applied to
7116 /// the type specifier to a pointer, block pointer, or member pointer
7117 /// declarator, complaining if necessary.
7118 ///
7119 /// \returns true if the nullability annotation was distributed, false
7120 /// otherwise.
7121 static bool distributeNullabilityTypeAttr(TypeProcessingState &state,
7122                                           QualType type, ParsedAttr &attr) {
7123   Declarator &declarator = state.getDeclarator();
7124 
7125   /// Attempt to move the attribute to the specified chunk.
7126   auto moveToChunk = [&](DeclaratorChunk &chunk, bool inFunction) -> bool {
7127     // If there is already a nullability attribute there, don't add
7128     // one.
7129     if (hasNullabilityAttr(chunk.getAttrs()))
7130       return false;
7131 
7132     // Complain about the nullability qualifier being in the wrong
7133     // place.
7134     enum {
7135       PK_Pointer,
7136       PK_BlockPointer,
7137       PK_MemberPointer,
7138       PK_FunctionPointer,
7139       PK_MemberFunctionPointer,
7140     } pointerKind
7141       = chunk.Kind == DeclaratorChunk::Pointer ? (inFunction ? PK_FunctionPointer
7142                                                              : PK_Pointer)
7143         : chunk.Kind == DeclaratorChunk::BlockPointer ? PK_BlockPointer
7144         : inFunction? PK_MemberFunctionPointer : PK_MemberPointer;
7145 
7146     auto diag = state.getSema().Diag(attr.getLoc(),
7147                                      diag::warn_nullability_declspec)
7148       << DiagNullabilityKind(mapNullabilityAttrKind(attr.getKind()),
7149                              attr.isContextSensitiveKeywordAttribute())
7150       << type
7151       << static_cast<unsigned>(pointerKind);
7152 
7153     // FIXME: MemberPointer chunks don't carry the location of the *.
7154     if (chunk.Kind != DeclaratorChunk::MemberPointer) {
7155       diag << FixItHint::CreateRemoval(attr.getLoc())
7156            << FixItHint::CreateInsertion(
7157                   state.getSema().getPreprocessor().getLocForEndOfToken(
7158                       chunk.Loc),
7159                   " " + attr.getAttrName()->getName().str() + " ");
7160     }
7161 
7162     moveAttrFromListToList(attr, state.getCurrentAttributes(),
7163                            chunk.getAttrs());
7164     return true;
7165   };
7166 
7167   // Move it to the outermost pointer, member pointer, or block
7168   // pointer declarator.
7169   for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
7170     DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
7171     switch (chunk.Kind) {
7172     case DeclaratorChunk::Pointer:
7173     case DeclaratorChunk::BlockPointer:
7174     case DeclaratorChunk::MemberPointer:
7175       return moveToChunk(chunk, false);
7176 
7177     case DeclaratorChunk::Paren:
7178     case DeclaratorChunk::Array:
7179       continue;
7180 
7181     case DeclaratorChunk::Function:
7182       // Try to move past the return type to a function/block/member
7183       // function pointer.
7184       if (DeclaratorChunk *dest = maybeMovePastReturnType(
7185                                     declarator, i,
7186                                     /*onlyBlockPointers=*/false)) {
7187         return moveToChunk(*dest, true);
7188       }
7189 
7190       return false;
7191 
7192     // Don't walk through these.
7193     case DeclaratorChunk::Reference:
7194     case DeclaratorChunk::Pipe:
7195       return false;
7196     }
7197   }
7198 
7199   return false;
7200 }
7201 
7202 static Attr *getCCTypeAttr(ASTContext &Ctx, ParsedAttr &Attr) {
7203   assert(!Attr.isInvalid());
7204   switch (Attr.getKind()) {
7205   default:
7206     llvm_unreachable("not a calling convention attribute");
7207   case ParsedAttr::AT_CDecl:
7208     return createSimpleAttr<CDeclAttr>(Ctx, Attr);
7209   case ParsedAttr::AT_FastCall:
7210     return createSimpleAttr<FastCallAttr>(Ctx, Attr);
7211   case ParsedAttr::AT_StdCall:
7212     return createSimpleAttr<StdCallAttr>(Ctx, Attr);
7213   case ParsedAttr::AT_ThisCall:
7214     return createSimpleAttr<ThisCallAttr>(Ctx, Attr);
7215   case ParsedAttr::AT_RegCall:
7216     return createSimpleAttr<RegCallAttr>(Ctx, Attr);
7217   case ParsedAttr::AT_Pascal:
7218     return createSimpleAttr<PascalAttr>(Ctx, Attr);
7219   case ParsedAttr::AT_SwiftCall:
7220     return createSimpleAttr<SwiftCallAttr>(Ctx, Attr);
7221   case ParsedAttr::AT_VectorCall:
7222     return createSimpleAttr<VectorCallAttr>(Ctx, Attr);
7223   case ParsedAttr::AT_AArch64VectorPcs:
7224     return createSimpleAttr<AArch64VectorPcsAttr>(Ctx, Attr);
7225   case ParsedAttr::AT_Pcs: {
7226     // The attribute may have had a fixit applied where we treated an
7227     // identifier as a string literal.  The contents of the string are valid,
7228     // but the form may not be.
7229     StringRef Str;
7230     if (Attr.isArgExpr(0))
7231       Str = cast<StringLiteral>(Attr.getArgAsExpr(0))->getString();
7232     else
7233       Str = Attr.getArgAsIdent(0)->Ident->getName();
7234     PcsAttr::PCSType Type;
7235     if (!PcsAttr::ConvertStrToPCSType(Str, Type))
7236       llvm_unreachable("already validated the attribute");
7237     return ::new (Ctx) PcsAttr(Ctx, Attr, Type);
7238   }
7239   case ParsedAttr::AT_IntelOclBicc:
7240     return createSimpleAttr<IntelOclBiccAttr>(Ctx, Attr);
7241   case ParsedAttr::AT_MSABI:
7242     return createSimpleAttr<MSABIAttr>(Ctx, Attr);
7243   case ParsedAttr::AT_SysVABI:
7244     return createSimpleAttr<SysVABIAttr>(Ctx, Attr);
7245   case ParsedAttr::AT_PreserveMost:
7246     return createSimpleAttr<PreserveMostAttr>(Ctx, Attr);
7247   case ParsedAttr::AT_PreserveAll:
7248     return createSimpleAttr<PreserveAllAttr>(Ctx, Attr);
7249   }
7250   llvm_unreachable("unexpected attribute kind!");
7251 }
7252 
7253 /// Process an individual function attribute.  Returns true to
7254 /// indicate that the attribute was handled, false if it wasn't.
7255 static bool handleFunctionTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
7256                                    QualType &type) {
7257   Sema &S = state.getSema();
7258 
7259   FunctionTypeUnwrapper unwrapped(S, type);
7260 
7261   if (attr.getKind() == ParsedAttr::AT_NoReturn) {
7262     if (S.CheckAttrNoArgs(attr))
7263       return true;
7264 
7265     // Delay if this is not a function type.
7266     if (!unwrapped.isFunctionType())
7267       return false;
7268 
7269     // Otherwise we can process right away.
7270     FunctionType::ExtInfo EI = unwrapped.get()->getExtInfo().withNoReturn(true);
7271     type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7272     return true;
7273   }
7274 
7275   if (attr.getKind() == ParsedAttr::AT_CmseNSCall) {
7276     // Delay if this is not a function type.
7277     if (!unwrapped.isFunctionType())
7278       return false;
7279 
7280     // Ignore if we don't have CMSE enabled.
7281     if (!S.getLangOpts().Cmse) {
7282       S.Diag(attr.getLoc(), diag::warn_attribute_ignored) << attr;
7283       attr.setInvalid();
7284       return true;
7285     }
7286 
7287     // Otherwise we can process right away.
7288     FunctionType::ExtInfo EI =
7289         unwrapped.get()->getExtInfo().withCmseNSCall(true);
7290     type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7291     return true;
7292   }
7293 
7294   // ns_returns_retained is not always a type attribute, but if we got
7295   // here, we're treating it as one right now.
7296   if (attr.getKind() == ParsedAttr::AT_NSReturnsRetained) {
7297     if (attr.getNumArgs()) return true;
7298 
7299     // Delay if this is not a function type.
7300     if (!unwrapped.isFunctionType())
7301       return false;
7302 
7303     // Check whether the return type is reasonable.
7304     if (S.checkNSReturnsRetainedReturnType(attr.getLoc(),
7305                                            unwrapped.get()->getReturnType()))
7306       return true;
7307 
7308     // Only actually change the underlying type in ARC builds.
7309     QualType origType = type;
7310     if (state.getSema().getLangOpts().ObjCAutoRefCount) {
7311       FunctionType::ExtInfo EI
7312         = unwrapped.get()->getExtInfo().withProducesResult(true);
7313       type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7314     }
7315     type = state.getAttributedType(
7316         createSimpleAttr<NSReturnsRetainedAttr>(S.Context, attr),
7317         origType, type);
7318     return true;
7319   }
7320 
7321   if (attr.getKind() == ParsedAttr::AT_AnyX86NoCallerSavedRegisters) {
7322     if (S.CheckAttrTarget(attr) || S.CheckAttrNoArgs(attr))
7323       return true;
7324 
7325     // Delay if this is not a function type.
7326     if (!unwrapped.isFunctionType())
7327       return false;
7328 
7329     FunctionType::ExtInfo EI =
7330         unwrapped.get()->getExtInfo().withNoCallerSavedRegs(true);
7331     type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7332     return true;
7333   }
7334 
7335   if (attr.getKind() == ParsedAttr::AT_AnyX86NoCfCheck) {
7336     if (!S.getLangOpts().CFProtectionBranch) {
7337       S.Diag(attr.getLoc(), diag::warn_nocf_check_attribute_ignored);
7338       attr.setInvalid();
7339       return true;
7340     }
7341 
7342     if (S.CheckAttrTarget(attr) || S.CheckAttrNoArgs(attr))
7343       return true;
7344 
7345     // If this is not a function type, warning will be asserted by subject
7346     // check.
7347     if (!unwrapped.isFunctionType())
7348       return true;
7349 
7350     FunctionType::ExtInfo EI =
7351       unwrapped.get()->getExtInfo().withNoCfCheck(true);
7352     type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7353     return true;
7354   }
7355 
7356   if (attr.getKind() == ParsedAttr::AT_Regparm) {
7357     unsigned value;
7358     if (S.CheckRegparmAttr(attr, value))
7359       return true;
7360 
7361     // Delay if this is not a function type.
7362     if (!unwrapped.isFunctionType())
7363       return false;
7364 
7365     // Diagnose regparm with fastcall.
7366     const FunctionType *fn = unwrapped.get();
7367     CallingConv CC = fn->getCallConv();
7368     if (CC == CC_X86FastCall) {
7369       S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
7370         << FunctionType::getNameForCallConv(CC)
7371         << "regparm";
7372       attr.setInvalid();
7373       return true;
7374     }
7375 
7376     FunctionType::ExtInfo EI =
7377       unwrapped.get()->getExtInfo().withRegParm(value);
7378     type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7379     return true;
7380   }
7381 
7382   if (attr.getKind() == ParsedAttr::AT_NoThrow) {
7383     // Delay if this is not a function type.
7384     if (!unwrapped.isFunctionType())
7385       return false;
7386 
7387     if (S.CheckAttrNoArgs(attr)) {
7388       attr.setInvalid();
7389       return true;
7390     }
7391 
7392     // Otherwise we can process right away.
7393     auto *Proto = unwrapped.get()->castAs<FunctionProtoType>();
7394 
7395     // MSVC ignores nothrow if it is in conflict with an explicit exception
7396     // specification.
7397     if (Proto->hasExceptionSpec()) {
7398       switch (Proto->getExceptionSpecType()) {
7399       case EST_None:
7400         llvm_unreachable("This doesn't have an exception spec!");
7401 
7402       case EST_DynamicNone:
7403       case EST_BasicNoexcept:
7404       case EST_NoexceptTrue:
7405       case EST_NoThrow:
7406         // Exception spec doesn't conflict with nothrow, so don't warn.
7407         LLVM_FALLTHROUGH;
7408       case EST_Unparsed:
7409       case EST_Uninstantiated:
7410       case EST_DependentNoexcept:
7411       case EST_Unevaluated:
7412         // We don't have enough information to properly determine if there is a
7413         // conflict, so suppress the warning.
7414         break;
7415       case EST_Dynamic:
7416       case EST_MSAny:
7417       case EST_NoexceptFalse:
7418         S.Diag(attr.getLoc(), diag::warn_nothrow_attribute_ignored);
7419         break;
7420       }
7421       return true;
7422     }
7423 
7424     type = unwrapped.wrap(
7425         S, S.Context
7426                .getFunctionTypeWithExceptionSpec(
7427                    QualType{Proto, 0},
7428                    FunctionProtoType::ExceptionSpecInfo{EST_NoThrow})
7429                ->getAs<FunctionType>());
7430     return true;
7431   }
7432 
7433   // Delay if the type didn't work out to a function.
7434   if (!unwrapped.isFunctionType()) return false;
7435 
7436   // Otherwise, a calling convention.
7437   CallingConv CC;
7438   if (S.CheckCallingConvAttr(attr, CC))
7439     return true;
7440 
7441   const FunctionType *fn = unwrapped.get();
7442   CallingConv CCOld = fn->getCallConv();
7443   Attr *CCAttr = getCCTypeAttr(S.Context, attr);
7444 
7445   if (CCOld != CC) {
7446     // Error out on when there's already an attribute on the type
7447     // and the CCs don't match.
7448     if (S.getCallingConvAttributedType(type)) {
7449       S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
7450         << FunctionType::getNameForCallConv(CC)
7451         << FunctionType::getNameForCallConv(CCOld);
7452       attr.setInvalid();
7453       return true;
7454     }
7455   }
7456 
7457   // Diagnose use of variadic functions with calling conventions that
7458   // don't support them (e.g. because they're callee-cleanup).
7459   // We delay warning about this on unprototyped function declarations
7460   // until after redeclaration checking, just in case we pick up a
7461   // prototype that way.  And apparently we also "delay" warning about
7462   // unprototyped function types in general, despite not necessarily having
7463   // much ability to diagnose it later.
7464   if (!supportsVariadicCall(CC)) {
7465     const FunctionProtoType *FnP = dyn_cast<FunctionProtoType>(fn);
7466     if (FnP && FnP->isVariadic()) {
7467       // stdcall and fastcall are ignored with a warning for GCC and MS
7468       // compatibility.
7469       if (CC == CC_X86StdCall || CC == CC_X86FastCall)
7470         return S.Diag(attr.getLoc(), diag::warn_cconv_unsupported)
7471                << FunctionType::getNameForCallConv(CC)
7472                << (int)Sema::CallingConventionIgnoredReason::VariadicFunction;
7473 
7474       attr.setInvalid();
7475       return S.Diag(attr.getLoc(), diag::err_cconv_varargs)
7476              << FunctionType::getNameForCallConv(CC);
7477     }
7478   }
7479 
7480   // Also diagnose fastcall with regparm.
7481   if (CC == CC_X86FastCall && fn->getHasRegParm()) {
7482     S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
7483         << "regparm" << FunctionType::getNameForCallConv(CC_X86FastCall);
7484     attr.setInvalid();
7485     return true;
7486   }
7487 
7488   // Modify the CC from the wrapped function type, wrap it all back, and then
7489   // wrap the whole thing in an AttributedType as written.  The modified type
7490   // might have a different CC if we ignored the attribute.
7491   QualType Equivalent;
7492   if (CCOld == CC) {
7493     Equivalent = type;
7494   } else {
7495     auto EI = unwrapped.get()->getExtInfo().withCallingConv(CC);
7496     Equivalent =
7497       unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
7498   }
7499   type = state.getAttributedType(CCAttr, type, Equivalent);
7500   return true;
7501 }
7502 
7503 bool Sema::hasExplicitCallingConv(QualType T) {
7504   const AttributedType *AT;
7505 
7506   // Stop if we'd be stripping off a typedef sugar node to reach the
7507   // AttributedType.
7508   while ((AT = T->getAs<AttributedType>()) &&
7509          AT->getAs<TypedefType>() == T->getAs<TypedefType>()) {
7510     if (AT->isCallingConv())
7511       return true;
7512     T = AT->getModifiedType();
7513   }
7514   return false;
7515 }
7516 
7517 void Sema::adjustMemberFunctionCC(QualType &T, bool IsStatic, bool IsCtorOrDtor,
7518                                   SourceLocation Loc) {
7519   FunctionTypeUnwrapper Unwrapped(*this, T);
7520   const FunctionType *FT = Unwrapped.get();
7521   bool IsVariadic = (isa<FunctionProtoType>(FT) &&
7522                      cast<FunctionProtoType>(FT)->isVariadic());
7523   CallingConv CurCC = FT->getCallConv();
7524   CallingConv ToCC = Context.getDefaultCallingConvention(IsVariadic, !IsStatic);
7525 
7526   if (CurCC == ToCC)
7527     return;
7528 
7529   // MS compiler ignores explicit calling convention attributes on structors. We
7530   // should do the same.
7531   if (Context.getTargetInfo().getCXXABI().isMicrosoft() && IsCtorOrDtor) {
7532     // Issue a warning on ignored calling convention -- except of __stdcall.
7533     // Again, this is what MS compiler does.
7534     if (CurCC != CC_X86StdCall)
7535       Diag(Loc, diag::warn_cconv_unsupported)
7536           << FunctionType::getNameForCallConv(CurCC)
7537           << (int)Sema::CallingConventionIgnoredReason::ConstructorDestructor;
7538   // Default adjustment.
7539   } else {
7540     // Only adjust types with the default convention.  For example, on Windows
7541     // we should adjust a __cdecl type to __thiscall for instance methods, and a
7542     // __thiscall type to __cdecl for static methods.
7543     CallingConv DefaultCC =
7544         Context.getDefaultCallingConvention(IsVariadic, IsStatic);
7545 
7546     if (CurCC != DefaultCC || DefaultCC == ToCC)
7547       return;
7548 
7549     if (hasExplicitCallingConv(T))
7550       return;
7551   }
7552 
7553   FT = Context.adjustFunctionType(FT, FT->getExtInfo().withCallingConv(ToCC));
7554   QualType Wrapped = Unwrapped.wrap(*this, FT);
7555   T = Context.getAdjustedType(T, Wrapped);
7556 }
7557 
7558 /// HandleVectorSizeAttribute - this attribute is only applicable to integral
7559 /// and float scalars, although arrays, pointers, and function return values are
7560 /// allowed in conjunction with this construct. Aggregates with this attribute
7561 /// are invalid, even if they are of the same size as a corresponding scalar.
7562 /// The raw attribute should contain precisely 1 argument, the vector size for
7563 /// the variable, measured in bytes. If curType and rawAttr are well formed,
7564 /// this routine will return a new vector type.
7565 static void HandleVectorSizeAttr(QualType &CurType, const ParsedAttr &Attr,
7566                                  Sema &S) {
7567   // Check the attribute arguments.
7568   if (Attr.getNumArgs() != 1) {
7569     S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
7570                                                                       << 1;
7571     Attr.setInvalid();
7572     return;
7573   }
7574 
7575   Expr *SizeExpr;
7576   // Special case where the argument is a template id.
7577   if (Attr.isArgIdent(0)) {
7578     CXXScopeSpec SS;
7579     SourceLocation TemplateKWLoc;
7580     UnqualifiedId Id;
7581     Id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
7582 
7583     ExprResult Size = S.ActOnIdExpression(S.getCurScope(), SS, TemplateKWLoc,
7584                                           Id, /*HasTrailingLParen=*/false,
7585                                           /*IsAddressOfOperand=*/false);
7586 
7587     if (Size.isInvalid())
7588       return;
7589     SizeExpr = Size.get();
7590   } else {
7591     SizeExpr = Attr.getArgAsExpr(0);
7592   }
7593 
7594   QualType T = S.BuildVectorType(CurType, SizeExpr, Attr.getLoc());
7595   if (!T.isNull())
7596     CurType = T;
7597   else
7598     Attr.setInvalid();
7599 }
7600 
7601 /// Process the OpenCL-like ext_vector_type attribute when it occurs on
7602 /// a type.
7603 static void HandleExtVectorTypeAttr(QualType &CurType, const ParsedAttr &Attr,
7604                                     Sema &S) {
7605   // check the attribute arguments.
7606   if (Attr.getNumArgs() != 1) {
7607     S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
7608                                                                       << 1;
7609     return;
7610   }
7611 
7612   Expr *sizeExpr;
7613 
7614   // Special case where the argument is a template id.
7615   if (Attr.isArgIdent(0)) {
7616     CXXScopeSpec SS;
7617     SourceLocation TemplateKWLoc;
7618     UnqualifiedId id;
7619     id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
7620 
7621     ExprResult Size = S.ActOnIdExpression(S.getCurScope(), SS, TemplateKWLoc,
7622                                           id, /*HasTrailingLParen=*/false,
7623                                           /*IsAddressOfOperand=*/false);
7624     if (Size.isInvalid())
7625       return;
7626 
7627     sizeExpr = Size.get();
7628   } else {
7629     sizeExpr = Attr.getArgAsExpr(0);
7630   }
7631 
7632   // Create the vector type.
7633   QualType T = S.BuildExtVectorType(CurType, sizeExpr, Attr.getLoc());
7634   if (!T.isNull())
7635     CurType = T;
7636 }
7637 
7638 static bool isPermittedNeonBaseType(QualType &Ty,
7639                                     VectorType::VectorKind VecKind, Sema &S) {
7640   const BuiltinType *BTy = Ty->getAs<BuiltinType>();
7641   if (!BTy)
7642     return false;
7643 
7644   llvm::Triple Triple = S.Context.getTargetInfo().getTriple();
7645 
7646   // Signed poly is mathematically wrong, but has been baked into some ABIs by
7647   // now.
7648   bool IsPolyUnsigned = Triple.getArch() == llvm::Triple::aarch64 ||
7649                         Triple.getArch() == llvm::Triple::aarch64_32 ||
7650                         Triple.getArch() == llvm::Triple::aarch64_be;
7651   if (VecKind == VectorType::NeonPolyVector) {
7652     if (IsPolyUnsigned) {
7653       // AArch64 polynomial vectors are unsigned.
7654       return BTy->getKind() == BuiltinType::UChar ||
7655              BTy->getKind() == BuiltinType::UShort ||
7656              BTy->getKind() == BuiltinType::ULong ||
7657              BTy->getKind() == BuiltinType::ULongLong;
7658     } else {
7659       // AArch32 polynomial vectors are signed.
7660       return BTy->getKind() == BuiltinType::SChar ||
7661              BTy->getKind() == BuiltinType::Short ||
7662              BTy->getKind() == BuiltinType::LongLong;
7663     }
7664   }
7665 
7666   // Non-polynomial vector types: the usual suspects are allowed, as well as
7667   // float64_t on AArch64.
7668   if ((Triple.isArch64Bit() || Triple.getArch() == llvm::Triple::aarch64_32) &&
7669       BTy->getKind() == BuiltinType::Double)
7670     return true;
7671 
7672   return BTy->getKind() == BuiltinType::SChar ||
7673          BTy->getKind() == BuiltinType::UChar ||
7674          BTy->getKind() == BuiltinType::Short ||
7675          BTy->getKind() == BuiltinType::UShort ||
7676          BTy->getKind() == BuiltinType::Int ||
7677          BTy->getKind() == BuiltinType::UInt ||
7678          BTy->getKind() == BuiltinType::Long ||
7679          BTy->getKind() == BuiltinType::ULong ||
7680          BTy->getKind() == BuiltinType::LongLong ||
7681          BTy->getKind() == BuiltinType::ULongLong ||
7682          BTy->getKind() == BuiltinType::Float ||
7683          BTy->getKind() == BuiltinType::Half ||
7684          BTy->getKind() == BuiltinType::BFloat16;
7685 }
7686 
7687 /// HandleNeonVectorTypeAttr - The "neon_vector_type" and
7688 /// "neon_polyvector_type" attributes are used to create vector types that
7689 /// are mangled according to ARM's ABI.  Otherwise, these types are identical
7690 /// to those created with the "vector_size" attribute.  Unlike "vector_size"
7691 /// the argument to these Neon attributes is the number of vector elements,
7692 /// not the vector size in bytes.  The vector width and element type must
7693 /// match one of the standard Neon vector types.
7694 static void HandleNeonVectorTypeAttr(QualType &CurType, const ParsedAttr &Attr,
7695                                      Sema &S, VectorType::VectorKind VecKind) {
7696   // Target must have NEON (or MVE, whose vectors are similar enough
7697   // not to need a separate attribute)
7698   if (!S.Context.getTargetInfo().hasFeature("neon") &&
7699       !S.Context.getTargetInfo().hasFeature("mve")) {
7700     S.Diag(Attr.getLoc(), diag::err_attribute_unsupported) << Attr;
7701     Attr.setInvalid();
7702     return;
7703   }
7704   // Check the attribute arguments.
7705   if (Attr.getNumArgs() != 1) {
7706     S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
7707                                                                       << 1;
7708     Attr.setInvalid();
7709     return;
7710   }
7711   // The number of elements must be an ICE.
7712   Expr *numEltsExpr = static_cast<Expr *>(Attr.getArgAsExpr(0));
7713   llvm::APSInt numEltsInt(32);
7714   if (numEltsExpr->isTypeDependent() || numEltsExpr->isValueDependent() ||
7715       !numEltsExpr->isIntegerConstantExpr(numEltsInt, S.Context)) {
7716     S.Diag(Attr.getLoc(), diag::err_attribute_argument_type)
7717         << Attr << AANT_ArgumentIntegerConstant
7718         << numEltsExpr->getSourceRange();
7719     Attr.setInvalid();
7720     return;
7721   }
7722   // Only certain element types are supported for Neon vectors.
7723   if (!isPermittedNeonBaseType(CurType, VecKind, S)) {
7724     S.Diag(Attr.getLoc(), diag::err_attribute_invalid_vector_type) << CurType;
7725     Attr.setInvalid();
7726     return;
7727   }
7728 
7729   // The total size of the vector must be 64 or 128 bits.
7730   unsigned typeSize = static_cast<unsigned>(S.Context.getTypeSize(CurType));
7731   unsigned numElts = static_cast<unsigned>(numEltsInt.getZExtValue());
7732   unsigned vecSize = typeSize * numElts;
7733   if (vecSize != 64 && vecSize != 128) {
7734     S.Diag(Attr.getLoc(), diag::err_attribute_bad_neon_vector_size) << CurType;
7735     Attr.setInvalid();
7736     return;
7737   }
7738 
7739   CurType = S.Context.getVectorType(CurType, numElts, VecKind);
7740 }
7741 
7742 static void HandleArmMveStrictPolymorphismAttr(TypeProcessingState &State,
7743                                                QualType &CurType,
7744                                                ParsedAttr &Attr) {
7745   const VectorType *VT = dyn_cast<VectorType>(CurType);
7746   if (!VT || VT->getVectorKind() != VectorType::NeonVector) {
7747     State.getSema().Diag(Attr.getLoc(),
7748                          diag::err_attribute_arm_mve_polymorphism);
7749     Attr.setInvalid();
7750     return;
7751   }
7752 
7753   CurType =
7754       State.getAttributedType(createSimpleAttr<ArmMveStrictPolymorphismAttr>(
7755                                   State.getSema().Context, Attr),
7756                               CurType, CurType);
7757 }
7758 
7759 /// Handle OpenCL Access Qualifier Attribute.
7760 static void HandleOpenCLAccessAttr(QualType &CurType, const ParsedAttr &Attr,
7761                                    Sema &S) {
7762   // OpenCL v2.0 s6.6 - Access qualifier can be used only for image and pipe type.
7763   if (!(CurType->isImageType() || CurType->isPipeType())) {
7764     S.Diag(Attr.getLoc(), diag::err_opencl_invalid_access_qualifier);
7765     Attr.setInvalid();
7766     return;
7767   }
7768 
7769   if (const TypedefType* TypedefTy = CurType->getAs<TypedefType>()) {
7770     QualType BaseTy = TypedefTy->desugar();
7771 
7772     std::string PrevAccessQual;
7773     if (BaseTy->isPipeType()) {
7774       if (TypedefTy->getDecl()->hasAttr<OpenCLAccessAttr>()) {
7775         OpenCLAccessAttr *Attr =
7776             TypedefTy->getDecl()->getAttr<OpenCLAccessAttr>();
7777         PrevAccessQual = Attr->getSpelling();
7778       } else {
7779         PrevAccessQual = "read_only";
7780       }
7781     } else if (const BuiltinType* ImgType = BaseTy->getAs<BuiltinType>()) {
7782 
7783       switch (ImgType->getKind()) {
7784         #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
7785       case BuiltinType::Id:                                          \
7786         PrevAccessQual = #Access;                                    \
7787         break;
7788         #include "clang/Basic/OpenCLImageTypes.def"
7789       default:
7790         llvm_unreachable("Unable to find corresponding image type.");
7791       }
7792     } else {
7793       llvm_unreachable("unexpected type");
7794     }
7795     StringRef AttrName = Attr.getAttrName()->getName();
7796     if (PrevAccessQual == AttrName.ltrim("_")) {
7797       // Duplicated qualifiers
7798       S.Diag(Attr.getLoc(), diag::warn_duplicate_declspec)
7799          << AttrName << Attr.getRange();
7800     } else {
7801       // Contradicting qualifiers
7802       S.Diag(Attr.getLoc(), diag::err_opencl_multiple_access_qualifiers);
7803     }
7804 
7805     S.Diag(TypedefTy->getDecl()->getBeginLoc(),
7806            diag::note_opencl_typedef_access_qualifier) << PrevAccessQual;
7807   } else if (CurType->isPipeType()) {
7808     if (Attr.getSemanticSpelling() == OpenCLAccessAttr::Keyword_write_only) {
7809       QualType ElemType = CurType->getAs<PipeType>()->getElementType();
7810       CurType = S.Context.getWritePipeType(ElemType);
7811     }
7812   }
7813 }
7814 
7815 /// HandleMatrixTypeAttr - "matrix_type" attribute, like ext_vector_type
7816 static void HandleMatrixTypeAttr(QualType &CurType, const ParsedAttr &Attr,
7817                                  Sema &S) {
7818   if (!S.getLangOpts().MatrixTypes) {
7819     S.Diag(Attr.getLoc(), diag::err_builtin_matrix_disabled);
7820     return;
7821   }
7822 
7823   if (Attr.getNumArgs() != 2) {
7824     S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments)
7825         << Attr << 2;
7826     return;
7827   }
7828 
7829   Expr *RowsExpr = nullptr;
7830   Expr *ColsExpr = nullptr;
7831 
7832   // TODO: Refactor parameter extraction into separate function
7833   // Get the number of rows
7834   if (Attr.isArgIdent(0)) {
7835     CXXScopeSpec SS;
7836     SourceLocation TemplateKeywordLoc;
7837     UnqualifiedId id;
7838     id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
7839     ExprResult Rows = S.ActOnIdExpression(S.getCurScope(), SS,
7840                                           TemplateKeywordLoc, id, false, false);
7841 
7842     if (Rows.isInvalid())
7843       // TODO: maybe a good error message would be nice here
7844       return;
7845     RowsExpr = Rows.get();
7846   } else {
7847     assert(Attr.isArgExpr(0) &&
7848            "Argument to should either be an identity or expression");
7849     RowsExpr = Attr.getArgAsExpr(0);
7850   }
7851 
7852   // Get the number of columns
7853   if (Attr.isArgIdent(1)) {
7854     CXXScopeSpec SS;
7855     SourceLocation TemplateKeywordLoc;
7856     UnqualifiedId id;
7857     id.setIdentifier(Attr.getArgAsIdent(1)->Ident, Attr.getLoc());
7858     ExprResult Columns = S.ActOnIdExpression(
7859         S.getCurScope(), SS, TemplateKeywordLoc, id, false, false);
7860 
7861     if (Columns.isInvalid())
7862       // TODO: a good error message would be nice here
7863       return;
7864     RowsExpr = Columns.get();
7865   } else {
7866     assert(Attr.isArgExpr(1) &&
7867            "Argument to should either be an identity or expression");
7868     ColsExpr = Attr.getArgAsExpr(1);
7869   }
7870 
7871   // Create the matrix type.
7872   QualType T = S.BuildMatrixType(CurType, RowsExpr, ColsExpr, Attr.getLoc());
7873   if (!T.isNull())
7874     CurType = T;
7875 }
7876 
7877 static void HandleLifetimeBoundAttr(TypeProcessingState &State,
7878                                     QualType &CurType,
7879                                     ParsedAttr &Attr) {
7880   if (State.getDeclarator().isDeclarationOfFunction()) {
7881     CurType = State.getAttributedType(
7882         createSimpleAttr<LifetimeBoundAttr>(State.getSema().Context, Attr),
7883         CurType, CurType);
7884   } else {
7885     Attr.diagnoseAppertainsTo(State.getSema(), nullptr);
7886   }
7887 }
7888 
7889 static bool isAddressSpaceKind(const ParsedAttr &attr) {
7890   auto attrKind = attr.getKind();
7891 
7892   return attrKind == ParsedAttr::AT_AddressSpace ||
7893          attrKind == ParsedAttr::AT_OpenCLPrivateAddressSpace ||
7894          attrKind == ParsedAttr::AT_OpenCLGlobalAddressSpace ||
7895          attrKind == ParsedAttr::AT_OpenCLLocalAddressSpace ||
7896          attrKind == ParsedAttr::AT_OpenCLConstantAddressSpace ||
7897          attrKind == ParsedAttr::AT_OpenCLGenericAddressSpace;
7898 }
7899 
7900 static void processTypeAttrs(TypeProcessingState &state, QualType &type,
7901                              TypeAttrLocation TAL,
7902                              ParsedAttributesView &attrs) {
7903   // Scan through and apply attributes to this type where it makes sense.  Some
7904   // attributes (such as __address_space__, __vector_size__, etc) apply to the
7905   // type, but others can be present in the type specifiers even though they
7906   // apply to the decl.  Here we apply type attributes and ignore the rest.
7907 
7908   // This loop modifies the list pretty frequently, but we still need to make
7909   // sure we visit every element once. Copy the attributes list, and iterate
7910   // over that.
7911   ParsedAttributesView AttrsCopy{attrs};
7912 
7913   state.setParsedNoDeref(false);
7914 
7915   for (ParsedAttr &attr : AttrsCopy) {
7916 
7917     // Skip attributes that were marked to be invalid.
7918     if (attr.isInvalid())
7919       continue;
7920 
7921     if (attr.isCXX11Attribute()) {
7922       // [[gnu::...]] attributes are treated as declaration attributes, so may
7923       // not appertain to a DeclaratorChunk. If we handle them as type
7924       // attributes, accept them in that position and diagnose the GCC
7925       // incompatibility.
7926       if (attr.isGNUScope()) {
7927         bool IsTypeAttr = attr.isTypeAttr();
7928         if (TAL == TAL_DeclChunk) {
7929           state.getSema().Diag(attr.getLoc(),
7930                                IsTypeAttr
7931                                    ? diag::warn_gcc_ignores_type_attr
7932                                    : diag::warn_cxx11_gnu_attribute_on_type)
7933               << attr;
7934           if (!IsTypeAttr)
7935             continue;
7936         }
7937       } else if (TAL != TAL_DeclChunk && !isAddressSpaceKind(attr)) {
7938         // Otherwise, only consider type processing for a C++11 attribute if
7939         // it's actually been applied to a type.
7940         // We also allow C++11 address_space and
7941         // OpenCL language address space attributes to pass through.
7942         continue;
7943       }
7944     }
7945 
7946     // If this is an attribute we can handle, do so now,
7947     // otherwise, add it to the FnAttrs list for rechaining.
7948     switch (attr.getKind()) {
7949     default:
7950       // A C++11 attribute on a declarator chunk must appertain to a type.
7951       if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk) {
7952         state.getSema().Diag(attr.getLoc(), diag::err_attribute_not_type_attr)
7953             << attr;
7954         attr.setUsedAsTypeAttr();
7955       }
7956       break;
7957 
7958     case ParsedAttr::UnknownAttribute:
7959       if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk)
7960         state.getSema().Diag(attr.getLoc(),
7961                              diag::warn_unknown_attribute_ignored)
7962             << attr;
7963       break;
7964 
7965     case ParsedAttr::IgnoredAttribute:
7966       break;
7967 
7968     case ParsedAttr::AT_MayAlias:
7969       // FIXME: This attribute needs to actually be handled, but if we ignore
7970       // it it breaks large amounts of Linux software.
7971       attr.setUsedAsTypeAttr();
7972       break;
7973     case ParsedAttr::AT_OpenCLPrivateAddressSpace:
7974     case ParsedAttr::AT_OpenCLGlobalAddressSpace:
7975     case ParsedAttr::AT_OpenCLLocalAddressSpace:
7976     case ParsedAttr::AT_OpenCLConstantAddressSpace:
7977     case ParsedAttr::AT_OpenCLGenericAddressSpace:
7978     case ParsedAttr::AT_AddressSpace:
7979       HandleAddressSpaceTypeAttribute(type, attr, state);
7980       attr.setUsedAsTypeAttr();
7981       break;
7982     OBJC_POINTER_TYPE_ATTRS_CASELIST:
7983       if (!handleObjCPointerTypeAttr(state, attr, type))
7984         distributeObjCPointerTypeAttr(state, attr, type);
7985       attr.setUsedAsTypeAttr();
7986       break;
7987     case ParsedAttr::AT_VectorSize:
7988       HandleVectorSizeAttr(type, attr, state.getSema());
7989       attr.setUsedAsTypeAttr();
7990       break;
7991     case ParsedAttr::AT_ExtVectorType:
7992       HandleExtVectorTypeAttr(type, attr, state.getSema());
7993       attr.setUsedAsTypeAttr();
7994       break;
7995     case ParsedAttr::AT_NeonVectorType:
7996       HandleNeonVectorTypeAttr(type, attr, state.getSema(),
7997                                VectorType::NeonVector);
7998       attr.setUsedAsTypeAttr();
7999       break;
8000     case ParsedAttr::AT_NeonPolyVectorType:
8001       HandleNeonVectorTypeAttr(type, attr, state.getSema(),
8002                                VectorType::NeonPolyVector);
8003       attr.setUsedAsTypeAttr();
8004       break;
8005     case ParsedAttr::AT_ArmMveStrictPolymorphism: {
8006       HandleArmMveStrictPolymorphismAttr(state, type, attr);
8007       attr.setUsedAsTypeAttr();
8008       break;
8009     }
8010     case ParsedAttr::AT_OpenCLAccess:
8011       HandleOpenCLAccessAttr(type, attr, state.getSema());
8012       attr.setUsedAsTypeAttr();
8013       break;
8014     case ParsedAttr::AT_LifetimeBound:
8015       if (TAL == TAL_DeclChunk)
8016         HandleLifetimeBoundAttr(state, type, attr);
8017       break;
8018 
8019     case ParsedAttr::AT_NoDeref: {
8020       ASTContext &Ctx = state.getSema().Context;
8021       type = state.getAttributedType(createSimpleAttr<NoDerefAttr>(Ctx, attr),
8022                                      type, type);
8023       attr.setUsedAsTypeAttr();
8024       state.setParsedNoDeref(true);
8025       break;
8026     }
8027 
8028     case ParsedAttr::AT_MatrixType:
8029       HandleMatrixTypeAttr(type, attr, state.getSema());
8030       attr.setUsedAsTypeAttr();
8031       break;
8032 
8033     MS_TYPE_ATTRS_CASELIST:
8034       if (!handleMSPointerTypeQualifierAttr(state, attr, type))
8035         attr.setUsedAsTypeAttr();
8036       break;
8037 
8038 
8039     NULLABILITY_TYPE_ATTRS_CASELIST:
8040       // Either add nullability here or try to distribute it.  We
8041       // don't want to distribute the nullability specifier past any
8042       // dependent type, because that complicates the user model.
8043       if (type->canHaveNullability() || type->isDependentType() ||
8044           type->isArrayType() ||
8045           !distributeNullabilityTypeAttr(state, type, attr)) {
8046         unsigned endIndex;
8047         if (TAL == TAL_DeclChunk)
8048           endIndex = state.getCurrentChunkIndex();
8049         else
8050           endIndex = state.getDeclarator().getNumTypeObjects();
8051         bool allowOnArrayType =
8052             state.getDeclarator().isPrototypeContext() &&
8053             !hasOuterPointerLikeChunk(state.getDeclarator(), endIndex);
8054         if (checkNullabilityTypeSpecifier(
8055               state,
8056               type,
8057               attr,
8058               allowOnArrayType)) {
8059           attr.setInvalid();
8060         }
8061 
8062         attr.setUsedAsTypeAttr();
8063       }
8064       break;
8065 
8066     case ParsedAttr::AT_ObjCKindOf:
8067       // '__kindof' must be part of the decl-specifiers.
8068       switch (TAL) {
8069       case TAL_DeclSpec:
8070         break;
8071 
8072       case TAL_DeclChunk:
8073       case TAL_DeclName:
8074         state.getSema().Diag(attr.getLoc(),
8075                              diag::err_objc_kindof_wrong_position)
8076             << FixItHint::CreateRemoval(attr.getLoc())
8077             << FixItHint::CreateInsertion(
8078                    state.getDeclarator().getDeclSpec().getBeginLoc(),
8079                    "__kindof ");
8080         break;
8081       }
8082 
8083       // Apply it regardless.
8084       if (checkObjCKindOfType(state, type, attr))
8085         attr.setInvalid();
8086       break;
8087 
8088     case ParsedAttr::AT_NoThrow:
8089     // Exception Specifications aren't generally supported in C mode throughout
8090     // clang, so revert to attribute-based handling for C.
8091       if (!state.getSema().getLangOpts().CPlusPlus)
8092         break;
8093       LLVM_FALLTHROUGH;
8094     FUNCTION_TYPE_ATTRS_CASELIST:
8095       attr.setUsedAsTypeAttr();
8096 
8097       // Never process function type attributes as part of the
8098       // declaration-specifiers.
8099       if (TAL == TAL_DeclSpec)
8100         distributeFunctionTypeAttrFromDeclSpec(state, attr, type);
8101 
8102       // Otherwise, handle the possible delays.
8103       else if (!handleFunctionTypeAttr(state, attr, type))
8104         distributeFunctionTypeAttr(state, attr, type);
8105       break;
8106     case ParsedAttr::AT_AcquireHandle: {
8107       if (!type->isFunctionType())
8108         return;
8109       StringRef HandleType;
8110       if (!state.getSema().checkStringLiteralArgumentAttr(attr, 0, HandleType))
8111         return;
8112       type = state.getAttributedType(
8113           AcquireHandleAttr::Create(state.getSema().Context, HandleType, attr),
8114           type, type);
8115       attr.setUsedAsTypeAttr();
8116       break;
8117     }
8118     }
8119 
8120     // Handle attributes that are defined in a macro. We do not want this to be
8121     // applied to ObjC builtin attributes.
8122     if (isa<AttributedType>(type) && attr.hasMacroIdentifier() &&
8123         !type.getQualifiers().hasObjCLifetime() &&
8124         !type.getQualifiers().hasObjCGCAttr() &&
8125         attr.getKind() != ParsedAttr::AT_ObjCGC &&
8126         attr.getKind() != ParsedAttr::AT_ObjCOwnership) {
8127       const IdentifierInfo *MacroII = attr.getMacroIdentifier();
8128       type = state.getSema().Context.getMacroQualifiedType(type, MacroII);
8129       state.setExpansionLocForMacroQualifiedType(
8130           cast<MacroQualifiedType>(type.getTypePtr()),
8131           attr.getMacroExpansionLoc());
8132     }
8133   }
8134 
8135   if (!state.getSema().getLangOpts().OpenCL ||
8136       type.getAddressSpace() != LangAS::Default)
8137     return;
8138 }
8139 
8140 void Sema::completeExprArrayBound(Expr *E) {
8141   if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) {
8142     if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) {
8143       if (isTemplateInstantiation(Var->getTemplateSpecializationKind())) {
8144         auto *Def = Var->getDefinition();
8145         if (!Def) {
8146           SourceLocation PointOfInstantiation = E->getExprLoc();
8147           runWithSufficientStackSpace(PointOfInstantiation, [&] {
8148             InstantiateVariableDefinition(PointOfInstantiation, Var);
8149           });
8150           Def = Var->getDefinition();
8151 
8152           // If we don't already have a point of instantiation, and we managed
8153           // to instantiate a definition, this is the point of instantiation.
8154           // Otherwise, we don't request an end-of-TU instantiation, so this is
8155           // not a point of instantiation.
8156           // FIXME: Is this really the right behavior?
8157           if (Var->getPointOfInstantiation().isInvalid() && Def) {
8158             assert(Var->getTemplateSpecializationKind() ==
8159                        TSK_ImplicitInstantiation &&
8160                    "explicit instantiation with no point of instantiation");
8161             Var->setTemplateSpecializationKind(
8162                 Var->getTemplateSpecializationKind(), PointOfInstantiation);
8163           }
8164         }
8165 
8166         // Update the type to the definition's type both here and within the
8167         // expression.
8168         if (Def) {
8169           DRE->setDecl(Def);
8170           QualType T = Def->getType();
8171           DRE->setType(T);
8172           // FIXME: Update the type on all intervening expressions.
8173           E->setType(T);
8174         }
8175 
8176         // We still go on to try to complete the type independently, as it
8177         // may also require instantiations or diagnostics if it remains
8178         // incomplete.
8179       }
8180     }
8181   }
8182 }
8183 
8184 /// Ensure that the type of the given expression is complete.
8185 ///
8186 /// This routine checks whether the expression \p E has a complete type. If the
8187 /// expression refers to an instantiable construct, that instantiation is
8188 /// performed as needed to complete its type. Furthermore
8189 /// Sema::RequireCompleteType is called for the expression's type (or in the
8190 /// case of a reference type, the referred-to type).
8191 ///
8192 /// \param E The expression whose type is required to be complete.
8193 /// \param Kind Selects which completeness rules should be applied.
8194 /// \param Diagnoser The object that will emit a diagnostic if the type is
8195 /// incomplete.
8196 ///
8197 /// \returns \c true if the type of \p E is incomplete and diagnosed, \c false
8198 /// otherwise.
8199 bool Sema::RequireCompleteExprType(Expr *E, CompleteTypeKind Kind,
8200                                    TypeDiagnoser &Diagnoser) {
8201   QualType T = E->getType();
8202 
8203   // Incomplete array types may be completed by the initializer attached to
8204   // their definitions. For static data members of class templates and for
8205   // variable templates, we need to instantiate the definition to get this
8206   // initializer and complete the type.
8207   if (T->isIncompleteArrayType()) {
8208     completeExprArrayBound(E);
8209     T = E->getType();
8210   }
8211 
8212   // FIXME: Are there other cases which require instantiating something other
8213   // than the type to complete the type of an expression?
8214 
8215   return RequireCompleteType(E->getExprLoc(), T, Kind, Diagnoser);
8216 }
8217 
8218 bool Sema::RequireCompleteExprType(Expr *E, unsigned DiagID) {
8219   BoundTypeDiagnoser<> Diagnoser(DiagID);
8220   return RequireCompleteExprType(E, CompleteTypeKind::Default, Diagnoser);
8221 }
8222 
8223 /// Ensure that the type T is a complete type.
8224 ///
8225 /// This routine checks whether the type @p T is complete in any
8226 /// context where a complete type is required. If @p T is a complete
8227 /// type, returns false. If @p T is a class template specialization,
8228 /// this routine then attempts to perform class template
8229 /// instantiation. If instantiation fails, or if @p T is incomplete
8230 /// and cannot be completed, issues the diagnostic @p diag (giving it
8231 /// the type @p T) and returns true.
8232 ///
8233 /// @param Loc  The location in the source that the incomplete type
8234 /// diagnostic should refer to.
8235 ///
8236 /// @param T  The type that this routine is examining for completeness.
8237 ///
8238 /// @param Kind Selects which completeness rules should be applied.
8239 ///
8240 /// @returns @c true if @p T is incomplete and a diagnostic was emitted,
8241 /// @c false otherwise.
8242 bool Sema::RequireCompleteType(SourceLocation Loc, QualType T,
8243                                CompleteTypeKind Kind,
8244                                TypeDiagnoser &Diagnoser) {
8245   if (RequireCompleteTypeImpl(Loc, T, Kind, &Diagnoser))
8246     return true;
8247   if (const TagType *Tag = T->getAs<TagType>()) {
8248     if (!Tag->getDecl()->isCompleteDefinitionRequired()) {
8249       Tag->getDecl()->setCompleteDefinitionRequired();
8250       Consumer.HandleTagDeclRequiredDefinition(Tag->getDecl());
8251     }
8252   }
8253   return false;
8254 }
8255 
8256 bool Sema::hasStructuralCompatLayout(Decl *D, Decl *Suggested) {
8257   llvm::DenseSet<std::pair<Decl *, Decl *>> NonEquivalentDecls;
8258   if (!Suggested)
8259     return false;
8260 
8261   // FIXME: Add a specific mode for C11 6.2.7/1 in StructuralEquivalenceContext
8262   // and isolate from other C++ specific checks.
8263   StructuralEquivalenceContext Ctx(
8264       D->getASTContext(), Suggested->getASTContext(), NonEquivalentDecls,
8265       StructuralEquivalenceKind::Default,
8266       false /*StrictTypeSpelling*/, true /*Complain*/,
8267       true /*ErrorOnTagTypeMismatch*/);
8268   return Ctx.IsEquivalent(D, Suggested);
8269 }
8270 
8271 /// Determine whether there is any declaration of \p D that was ever a
8272 ///        definition (perhaps before module merging) and is currently visible.
8273 /// \param D The definition of the entity.
8274 /// \param Suggested Filled in with the declaration that should be made visible
8275 ///        in order to provide a definition of this entity.
8276 /// \param OnlyNeedComplete If \c true, we only need the type to be complete,
8277 ///        not defined. This only matters for enums with a fixed underlying
8278 ///        type, since in all other cases, a type is complete if and only if it
8279 ///        is defined.
8280 bool Sema::hasVisibleDefinition(NamedDecl *D, NamedDecl **Suggested,
8281                                 bool OnlyNeedComplete) {
8282   // Easy case: if we don't have modules, all declarations are visible.
8283   if (!getLangOpts().Modules && !getLangOpts().ModulesLocalVisibility)
8284     return true;
8285 
8286   // If this definition was instantiated from a template, map back to the
8287   // pattern from which it was instantiated.
8288   if (isa<TagDecl>(D) && cast<TagDecl>(D)->isBeingDefined()) {
8289     // We're in the middle of defining it; this definition should be treated
8290     // as visible.
8291     return true;
8292   } else if (auto *RD = dyn_cast<CXXRecordDecl>(D)) {
8293     if (auto *Pattern = RD->getTemplateInstantiationPattern())
8294       RD = Pattern;
8295     D = RD->getDefinition();
8296   } else if (auto *ED = dyn_cast<EnumDecl>(D)) {
8297     if (auto *Pattern = ED->getTemplateInstantiationPattern())
8298       ED = Pattern;
8299     if (OnlyNeedComplete && (ED->isFixed() || getLangOpts().MSVCCompat)) {
8300       // If the enum has a fixed underlying type, it may have been forward
8301       // declared. In -fms-compatibility, `enum Foo;` will also forward declare
8302       // the enum and assign it the underlying type of `int`. Since we're only
8303       // looking for a complete type (not a definition), any visible declaration
8304       // of it will do.
8305       *Suggested = nullptr;
8306       for (auto *Redecl : ED->redecls()) {
8307         if (isVisible(Redecl))
8308           return true;
8309         if (Redecl->isThisDeclarationADefinition() ||
8310             (Redecl->isCanonicalDecl() && !*Suggested))
8311           *Suggested = Redecl;
8312       }
8313       return false;
8314     }
8315     D = ED->getDefinition();
8316   } else if (auto *FD = dyn_cast<FunctionDecl>(D)) {
8317     if (auto *Pattern = FD->getTemplateInstantiationPattern())
8318       FD = Pattern;
8319     D = FD->getDefinition();
8320   } else if (auto *VD = dyn_cast<VarDecl>(D)) {
8321     if (auto *Pattern = VD->getTemplateInstantiationPattern())
8322       VD = Pattern;
8323     D = VD->getDefinition();
8324   }
8325   assert(D && "missing definition for pattern of instantiated definition");
8326 
8327   *Suggested = D;
8328 
8329   auto DefinitionIsVisible = [&] {
8330     // The (primary) definition might be in a visible module.
8331     if (isVisible(D))
8332       return true;
8333 
8334     // A visible module might have a merged definition instead.
8335     if (D->isModulePrivate() ? hasMergedDefinitionInCurrentModule(D)
8336                              : hasVisibleMergedDefinition(D)) {
8337       if (CodeSynthesisContexts.empty() &&
8338           !getLangOpts().ModulesLocalVisibility) {
8339         // Cache the fact that this definition is implicitly visible because
8340         // there is a visible merged definition.
8341         D->setVisibleDespiteOwningModule();
8342       }
8343       return true;
8344     }
8345 
8346     return false;
8347   };
8348 
8349   if (DefinitionIsVisible())
8350     return true;
8351 
8352   // The external source may have additional definitions of this entity that are
8353   // visible, so complete the redeclaration chain now and ask again.
8354   if (auto *Source = Context.getExternalSource()) {
8355     Source->CompleteRedeclChain(D);
8356     return DefinitionIsVisible();
8357   }
8358 
8359   return false;
8360 }
8361 
8362 /// Locks in the inheritance model for the given class and all of its bases.
8363 static void assignInheritanceModel(Sema &S, CXXRecordDecl *RD) {
8364   RD = RD->getMostRecentNonInjectedDecl();
8365   if (!RD->hasAttr<MSInheritanceAttr>()) {
8366     MSInheritanceModel IM;
8367     bool BestCase = false;
8368     switch (S.MSPointerToMemberRepresentationMethod) {
8369     case LangOptions::PPTMK_BestCase:
8370       BestCase = true;
8371       IM = RD->calculateInheritanceModel();
8372       break;
8373     case LangOptions::PPTMK_FullGeneralitySingleInheritance:
8374       IM = MSInheritanceModel::Single;
8375       break;
8376     case LangOptions::PPTMK_FullGeneralityMultipleInheritance:
8377       IM = MSInheritanceModel::Multiple;
8378       break;
8379     case LangOptions::PPTMK_FullGeneralityVirtualInheritance:
8380       IM = MSInheritanceModel::Unspecified;
8381       break;
8382     }
8383 
8384     SourceRange Loc = S.ImplicitMSInheritanceAttrLoc.isValid()
8385                           ? S.ImplicitMSInheritanceAttrLoc
8386                           : RD->getSourceRange();
8387     RD->addAttr(MSInheritanceAttr::CreateImplicit(
8388         S.getASTContext(), BestCase, Loc, AttributeCommonInfo::AS_Microsoft,
8389         MSInheritanceAttr::Spelling(IM)));
8390     S.Consumer.AssignInheritanceModel(RD);
8391   }
8392 }
8393 
8394 /// The implementation of RequireCompleteType
8395 bool Sema::RequireCompleteTypeImpl(SourceLocation Loc, QualType T,
8396                                    CompleteTypeKind Kind,
8397                                    TypeDiagnoser *Diagnoser) {
8398   // FIXME: Add this assertion to make sure we always get instantiation points.
8399   //  assert(!Loc.isInvalid() && "Invalid location in RequireCompleteType");
8400   // FIXME: Add this assertion to help us flush out problems with
8401   // checking for dependent types and type-dependent expressions.
8402   //
8403   //  assert(!T->isDependentType() &&
8404   //         "Can't ask whether a dependent type is complete");
8405 
8406   if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>()) {
8407     if (!MPTy->getClass()->isDependentType()) {
8408       if (getLangOpts().CompleteMemberPointers &&
8409           !MPTy->getClass()->getAsCXXRecordDecl()->isBeingDefined() &&
8410           RequireCompleteType(Loc, QualType(MPTy->getClass(), 0), Kind,
8411                               diag::err_memptr_incomplete))
8412         return true;
8413 
8414       // We lock in the inheritance model once somebody has asked us to ensure
8415       // that a pointer-to-member type is complete.
8416       if (Context.getTargetInfo().getCXXABI().isMicrosoft()) {
8417         (void)isCompleteType(Loc, QualType(MPTy->getClass(), 0));
8418         assignInheritanceModel(*this, MPTy->getMostRecentCXXRecordDecl());
8419       }
8420     }
8421   }
8422 
8423   NamedDecl *Def = nullptr;
8424   bool AcceptSizeless = (Kind == CompleteTypeKind::AcceptSizeless);
8425   bool Incomplete = (T->isIncompleteType(&Def) ||
8426                      (!AcceptSizeless && T->isSizelessBuiltinType()));
8427 
8428   // Check that any necessary explicit specializations are visible. For an
8429   // enum, we just need the declaration, so don't check this.
8430   if (Def && !isa<EnumDecl>(Def))
8431     checkSpecializationVisibility(Loc, Def);
8432 
8433   // If we have a complete type, we're done.
8434   if (!Incomplete) {
8435     // If we know about the definition but it is not visible, complain.
8436     NamedDecl *SuggestedDef = nullptr;
8437     if (Def &&
8438         !hasVisibleDefinition(Def, &SuggestedDef, /*OnlyNeedComplete*/true)) {
8439       // If the user is going to see an error here, recover by making the
8440       // definition visible.
8441       bool TreatAsComplete = Diagnoser && !isSFINAEContext();
8442       if (Diagnoser && SuggestedDef)
8443         diagnoseMissingImport(Loc, SuggestedDef, MissingImportKind::Definition,
8444                               /*Recover*/TreatAsComplete);
8445       return !TreatAsComplete;
8446     } else if (Def && !TemplateInstCallbacks.empty()) {
8447       CodeSynthesisContext TempInst;
8448       TempInst.Kind = CodeSynthesisContext::Memoization;
8449       TempInst.Template = Def;
8450       TempInst.Entity = Def;
8451       TempInst.PointOfInstantiation = Loc;
8452       atTemplateBegin(TemplateInstCallbacks, *this, TempInst);
8453       atTemplateEnd(TemplateInstCallbacks, *this, TempInst);
8454     }
8455 
8456     return false;
8457   }
8458 
8459   TagDecl *Tag = dyn_cast_or_null<TagDecl>(Def);
8460   ObjCInterfaceDecl *IFace = dyn_cast_or_null<ObjCInterfaceDecl>(Def);
8461 
8462   // Give the external source a chance to provide a definition of the type.
8463   // This is kept separate from completing the redeclaration chain so that
8464   // external sources such as LLDB can avoid synthesizing a type definition
8465   // unless it's actually needed.
8466   if (Tag || IFace) {
8467     // Avoid diagnosing invalid decls as incomplete.
8468     if (Def->isInvalidDecl())
8469       return true;
8470 
8471     // Give the external AST source a chance to complete the type.
8472     if (auto *Source = Context.getExternalSource()) {
8473       if (Tag && Tag->hasExternalLexicalStorage())
8474           Source->CompleteType(Tag);
8475       if (IFace && IFace->hasExternalLexicalStorage())
8476           Source->CompleteType(IFace);
8477       // If the external source completed the type, go through the motions
8478       // again to ensure we're allowed to use the completed type.
8479       if (!T->isIncompleteType())
8480         return RequireCompleteTypeImpl(Loc, T, Kind, Diagnoser);
8481     }
8482   }
8483 
8484   // If we have a class template specialization or a class member of a
8485   // class template specialization, or an array with known size of such,
8486   // try to instantiate it.
8487   if (auto *RD = dyn_cast_or_null<CXXRecordDecl>(Tag)) {
8488     bool Instantiated = false;
8489     bool Diagnosed = false;
8490     if (RD->isDependentContext()) {
8491       // Don't try to instantiate a dependent class (eg, a member template of
8492       // an instantiated class template specialization).
8493       // FIXME: Can this ever happen?
8494     } else if (auto *ClassTemplateSpec =
8495             dyn_cast<ClassTemplateSpecializationDecl>(RD)) {
8496       if (ClassTemplateSpec->getSpecializationKind() == TSK_Undeclared) {
8497         runWithSufficientStackSpace(Loc, [&] {
8498           Diagnosed = InstantiateClassTemplateSpecialization(
8499               Loc, ClassTemplateSpec, TSK_ImplicitInstantiation,
8500               /*Complain=*/Diagnoser);
8501         });
8502         Instantiated = true;
8503       }
8504     } else {
8505       CXXRecordDecl *Pattern = RD->getInstantiatedFromMemberClass();
8506       if (!RD->isBeingDefined() && Pattern) {
8507         MemberSpecializationInfo *MSI = RD->getMemberSpecializationInfo();
8508         assert(MSI && "Missing member specialization information?");
8509         // This record was instantiated from a class within a template.
8510         if (MSI->getTemplateSpecializationKind() !=
8511             TSK_ExplicitSpecialization) {
8512           runWithSufficientStackSpace(Loc, [&] {
8513             Diagnosed = InstantiateClass(Loc, RD, Pattern,
8514                                          getTemplateInstantiationArgs(RD),
8515                                          TSK_ImplicitInstantiation,
8516                                          /*Complain=*/Diagnoser);
8517           });
8518           Instantiated = true;
8519         }
8520       }
8521     }
8522 
8523     if (Instantiated) {
8524       // Instantiate* might have already complained that the template is not
8525       // defined, if we asked it to.
8526       if (Diagnoser && Diagnosed)
8527         return true;
8528       // If we instantiated a definition, check that it's usable, even if
8529       // instantiation produced an error, so that repeated calls to this
8530       // function give consistent answers.
8531       if (!T->isIncompleteType())
8532         return RequireCompleteTypeImpl(Loc, T, Kind, Diagnoser);
8533     }
8534   }
8535 
8536   // FIXME: If we didn't instantiate a definition because of an explicit
8537   // specialization declaration, check that it's visible.
8538 
8539   if (!Diagnoser)
8540     return true;
8541 
8542   Diagnoser->diagnose(*this, Loc, T);
8543 
8544   // If the type was a forward declaration of a class/struct/union
8545   // type, produce a note.
8546   if (Tag && !Tag->isInvalidDecl() && !Tag->getLocation().isInvalid())
8547     Diag(Tag->getLocation(),
8548          Tag->isBeingDefined() ? diag::note_type_being_defined
8549                                : diag::note_forward_declaration)
8550       << Context.getTagDeclType(Tag);
8551 
8552   // If the Objective-C class was a forward declaration, produce a note.
8553   if (IFace && !IFace->isInvalidDecl() && !IFace->getLocation().isInvalid())
8554     Diag(IFace->getLocation(), diag::note_forward_class);
8555 
8556   // If we have external information that we can use to suggest a fix,
8557   // produce a note.
8558   if (ExternalSource)
8559     ExternalSource->MaybeDiagnoseMissingCompleteType(Loc, T);
8560 
8561   return true;
8562 }
8563 
8564 bool Sema::RequireCompleteType(SourceLocation Loc, QualType T,
8565                                CompleteTypeKind Kind, unsigned DiagID) {
8566   BoundTypeDiagnoser<> Diagnoser(DiagID);
8567   return RequireCompleteType(Loc, T, Kind, Diagnoser);
8568 }
8569 
8570 /// Get diagnostic %select index for tag kind for
8571 /// literal type diagnostic message.
8572 /// WARNING: Indexes apply to particular diagnostics only!
8573 ///
8574 /// \returns diagnostic %select index.
8575 static unsigned getLiteralDiagFromTagKind(TagTypeKind Tag) {
8576   switch (Tag) {
8577   case TTK_Struct: return 0;
8578   case TTK_Interface: return 1;
8579   case TTK_Class:  return 2;
8580   default: llvm_unreachable("Invalid tag kind for literal type diagnostic!");
8581   }
8582 }
8583 
8584 /// Ensure that the type T is a literal type.
8585 ///
8586 /// This routine checks whether the type @p T is a literal type. If @p T is an
8587 /// incomplete type, an attempt is made to complete it. If @p T is a literal
8588 /// type, or @p AllowIncompleteType is true and @p T is an incomplete type,
8589 /// returns false. Otherwise, this routine issues the diagnostic @p PD (giving
8590 /// it the type @p T), along with notes explaining why the type is not a
8591 /// literal type, and returns true.
8592 ///
8593 /// @param Loc  The location in the source that the non-literal type
8594 /// diagnostic should refer to.
8595 ///
8596 /// @param T  The type that this routine is examining for literalness.
8597 ///
8598 /// @param Diagnoser Emits a diagnostic if T is not a literal type.
8599 ///
8600 /// @returns @c true if @p T is not a literal type and a diagnostic was emitted,
8601 /// @c false otherwise.
8602 bool Sema::RequireLiteralType(SourceLocation Loc, QualType T,
8603                               TypeDiagnoser &Diagnoser) {
8604   assert(!T->isDependentType() && "type should not be dependent");
8605 
8606   QualType ElemType = Context.getBaseElementType(T);
8607   if ((isCompleteType(Loc, ElemType) || ElemType->isVoidType()) &&
8608       T->isLiteralType(Context))
8609     return false;
8610 
8611   Diagnoser.diagnose(*this, Loc, T);
8612 
8613   if (T->isVariableArrayType())
8614     return true;
8615 
8616   const RecordType *RT = ElemType->getAs<RecordType>();
8617   if (!RT)
8618     return true;
8619 
8620   const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl());
8621 
8622   // A partially-defined class type can't be a literal type, because a literal
8623   // class type must have a trivial destructor (which can't be checked until
8624   // the class definition is complete).
8625   if (RequireCompleteType(Loc, ElemType, diag::note_non_literal_incomplete, T))
8626     return true;
8627 
8628   // [expr.prim.lambda]p3:
8629   //   This class type is [not] a literal type.
8630   if (RD->isLambda() && !getLangOpts().CPlusPlus17) {
8631     Diag(RD->getLocation(), diag::note_non_literal_lambda);
8632     return true;
8633   }
8634 
8635   // If the class has virtual base classes, then it's not an aggregate, and
8636   // cannot have any constexpr constructors or a trivial default constructor,
8637   // so is non-literal. This is better to diagnose than the resulting absence
8638   // of constexpr constructors.
8639   if (RD->getNumVBases()) {
8640     Diag(RD->getLocation(), diag::note_non_literal_virtual_base)
8641       << getLiteralDiagFromTagKind(RD->getTagKind()) << RD->getNumVBases();
8642     for (const auto &I : RD->vbases())
8643       Diag(I.getBeginLoc(), diag::note_constexpr_virtual_base_here)
8644           << I.getSourceRange();
8645   } else if (!RD->isAggregate() && !RD->hasConstexprNonCopyMoveConstructor() &&
8646              !RD->hasTrivialDefaultConstructor()) {
8647     Diag(RD->getLocation(), diag::note_non_literal_no_constexpr_ctors) << RD;
8648   } else if (RD->hasNonLiteralTypeFieldsOrBases()) {
8649     for (const auto &I : RD->bases()) {
8650       if (!I.getType()->isLiteralType(Context)) {
8651         Diag(I.getBeginLoc(), diag::note_non_literal_base_class)
8652             << RD << I.getType() << I.getSourceRange();
8653         return true;
8654       }
8655     }
8656     for (const auto *I : RD->fields()) {
8657       if (!I->getType()->isLiteralType(Context) ||
8658           I->getType().isVolatileQualified()) {
8659         Diag(I->getLocation(), diag::note_non_literal_field)
8660           << RD << I << I->getType()
8661           << I->getType().isVolatileQualified();
8662         return true;
8663       }
8664     }
8665   } else if (getLangOpts().CPlusPlus20 ? !RD->hasConstexprDestructor()
8666                                        : !RD->hasTrivialDestructor()) {
8667     // All fields and bases are of literal types, so have trivial or constexpr
8668     // destructors. If this class's destructor is non-trivial / non-constexpr,
8669     // it must be user-declared.
8670     CXXDestructorDecl *Dtor = RD->getDestructor();
8671     assert(Dtor && "class has literal fields and bases but no dtor?");
8672     if (!Dtor)
8673       return true;
8674 
8675     if (getLangOpts().CPlusPlus20) {
8676       Diag(Dtor->getLocation(), diag::note_non_literal_non_constexpr_dtor)
8677           << RD;
8678     } else {
8679       Diag(Dtor->getLocation(), Dtor->isUserProvided()
8680                                     ? diag::note_non_literal_user_provided_dtor
8681                                     : diag::note_non_literal_nontrivial_dtor)
8682           << RD;
8683       if (!Dtor->isUserProvided())
8684         SpecialMemberIsTrivial(Dtor, CXXDestructor, TAH_IgnoreTrivialABI,
8685                                /*Diagnose*/ true);
8686     }
8687   }
8688 
8689   return true;
8690 }
8691 
8692 bool Sema::RequireLiteralType(SourceLocation Loc, QualType T, unsigned DiagID) {
8693   BoundTypeDiagnoser<> Diagnoser(DiagID);
8694   return RequireLiteralType(Loc, T, Diagnoser);
8695 }
8696 
8697 /// Retrieve a version of the type 'T' that is elaborated by Keyword, qualified
8698 /// by the nested-name-specifier contained in SS, and that is (re)declared by
8699 /// OwnedTagDecl, which is nullptr if this is not a (re)declaration.
8700 QualType Sema::getElaboratedType(ElaboratedTypeKeyword Keyword,
8701                                  const CXXScopeSpec &SS, QualType T,
8702                                  TagDecl *OwnedTagDecl) {
8703   if (T.isNull())
8704     return T;
8705   NestedNameSpecifier *NNS;
8706   if (SS.isValid())
8707     NNS = SS.getScopeRep();
8708   else {
8709     if (Keyword == ETK_None)
8710       return T;
8711     NNS = nullptr;
8712   }
8713   return Context.getElaboratedType(Keyword, NNS, T, OwnedTagDecl);
8714 }
8715 
8716 QualType Sema::BuildTypeofExprType(Expr *E, SourceLocation Loc) {
8717   assert(!E->hasPlaceholderType() && "unexpected placeholder");
8718 
8719   if (!getLangOpts().CPlusPlus && E->refersToBitField())
8720     Diag(E->getExprLoc(), diag::err_sizeof_alignof_typeof_bitfield) << 2;
8721 
8722   if (!E->isTypeDependent()) {
8723     QualType T = E->getType();
8724     if (const TagType *TT = T->getAs<TagType>())
8725       DiagnoseUseOfDecl(TT->getDecl(), E->getExprLoc());
8726   }
8727   return Context.getTypeOfExprType(E);
8728 }
8729 
8730 /// getDecltypeForExpr - Given an expr, will return the decltype for
8731 /// that expression, according to the rules in C++11
8732 /// [dcl.type.simple]p4 and C++11 [expr.lambda.prim]p18.
8733 static QualType getDecltypeForExpr(Sema &S, Expr *E) {
8734   if (E->isTypeDependent())
8735     return S.Context.DependentTy;
8736 
8737   // C++11 [dcl.type.simple]p4:
8738   //   The type denoted by decltype(e) is defined as follows:
8739   //
8740   //     - if e is an unparenthesized id-expression or an unparenthesized class
8741   //       member access (5.2.5), decltype(e) is the type of the entity named
8742   //       by e. If there is no such entity, or if e names a set of overloaded
8743   //       functions, the program is ill-formed;
8744   //
8745   // We apply the same rules for Objective-C ivar and property references.
8746   if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) {
8747     const ValueDecl *VD = DRE->getDecl();
8748     return VD->getType();
8749   } else if (const MemberExpr *ME = dyn_cast<MemberExpr>(E)) {
8750     if (const ValueDecl *VD = ME->getMemberDecl())
8751       if (isa<FieldDecl>(VD) || isa<VarDecl>(VD))
8752         return VD->getType();
8753   } else if (const ObjCIvarRefExpr *IR = dyn_cast<ObjCIvarRefExpr>(E)) {
8754     return IR->getDecl()->getType();
8755   } else if (const ObjCPropertyRefExpr *PR = dyn_cast<ObjCPropertyRefExpr>(E)) {
8756     if (PR->isExplicitProperty())
8757       return PR->getExplicitProperty()->getType();
8758   } else if (auto *PE = dyn_cast<PredefinedExpr>(E)) {
8759     return PE->getType();
8760   }
8761 
8762   // C++11 [expr.lambda.prim]p18:
8763   //   Every occurrence of decltype((x)) where x is a possibly
8764   //   parenthesized id-expression that names an entity of automatic
8765   //   storage duration is treated as if x were transformed into an
8766   //   access to a corresponding data member of the closure type that
8767   //   would have been declared if x were an odr-use of the denoted
8768   //   entity.
8769   using namespace sema;
8770   if (S.getCurLambda()) {
8771     if (isa<ParenExpr>(E)) {
8772       if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) {
8773         if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) {
8774           QualType T = S.getCapturedDeclRefType(Var, DRE->getLocation());
8775           if (!T.isNull())
8776             return S.Context.getLValueReferenceType(T);
8777         }
8778       }
8779     }
8780   }
8781 
8782 
8783   // C++11 [dcl.type.simple]p4:
8784   //   [...]
8785   QualType T = E->getType();
8786   switch (E->getValueKind()) {
8787   //     - otherwise, if e is an xvalue, decltype(e) is T&&, where T is the
8788   //       type of e;
8789   case VK_XValue: T = S.Context.getRValueReferenceType(T); break;
8790   //     - otherwise, if e is an lvalue, decltype(e) is T&, where T is the
8791   //       type of e;
8792   case VK_LValue: T = S.Context.getLValueReferenceType(T); break;
8793   //  - otherwise, decltype(e) is the type of e.
8794   case VK_RValue: break;
8795   }
8796 
8797   return T;
8798 }
8799 
8800 QualType Sema::BuildDecltypeType(Expr *E, SourceLocation Loc,
8801                                  bool AsUnevaluated) {
8802   assert(!E->hasPlaceholderType() && "unexpected placeholder");
8803 
8804   if (AsUnevaluated && CodeSynthesisContexts.empty() &&
8805       E->HasSideEffects(Context, false)) {
8806     // The expression operand for decltype is in an unevaluated expression
8807     // context, so side effects could result in unintended consequences.
8808     Diag(E->getExprLoc(), diag::warn_side_effects_unevaluated_context);
8809   }
8810 
8811   return Context.getDecltypeType(E, getDecltypeForExpr(*this, E));
8812 }
8813 
8814 QualType Sema::BuildUnaryTransformType(QualType BaseType,
8815                                        UnaryTransformType::UTTKind UKind,
8816                                        SourceLocation Loc) {
8817   switch (UKind) {
8818   case UnaryTransformType::EnumUnderlyingType:
8819     if (!BaseType->isDependentType() && !BaseType->isEnumeralType()) {
8820       Diag(Loc, diag::err_only_enums_have_underlying_types);
8821       return QualType();
8822     } else {
8823       QualType Underlying = BaseType;
8824       if (!BaseType->isDependentType()) {
8825         // The enum could be incomplete if we're parsing its definition or
8826         // recovering from an error.
8827         NamedDecl *FwdDecl = nullptr;
8828         if (BaseType->isIncompleteType(&FwdDecl)) {
8829           Diag(Loc, diag::err_underlying_type_of_incomplete_enum) << BaseType;
8830           Diag(FwdDecl->getLocation(), diag::note_forward_declaration) << FwdDecl;
8831           return QualType();
8832         }
8833 
8834         EnumDecl *ED = BaseType->getAs<EnumType>()->getDecl();
8835         assert(ED && "EnumType has no EnumDecl");
8836 
8837         DiagnoseUseOfDecl(ED, Loc);
8838 
8839         Underlying = ED->getIntegerType();
8840         assert(!Underlying.isNull());
8841       }
8842       return Context.getUnaryTransformType(BaseType, Underlying,
8843                                         UnaryTransformType::EnumUnderlyingType);
8844     }
8845   }
8846   llvm_unreachable("unknown unary transform type");
8847 }
8848 
8849 QualType Sema::BuildAtomicType(QualType T, SourceLocation Loc) {
8850   if (!T->isDependentType()) {
8851     // FIXME: It isn't entirely clear whether incomplete atomic types
8852     // are allowed or not; for simplicity, ban them for the moment.
8853     if (RequireCompleteType(Loc, T, diag::err_atomic_specifier_bad_type, 0))
8854       return QualType();
8855 
8856     int DisallowedKind = -1;
8857     if (T->isArrayType())
8858       DisallowedKind = 1;
8859     else if (T->isFunctionType())
8860       DisallowedKind = 2;
8861     else if (T->isReferenceType())
8862       DisallowedKind = 3;
8863     else if (T->isAtomicType())
8864       DisallowedKind = 4;
8865     else if (T.hasQualifiers())
8866       DisallowedKind = 5;
8867     else if (T->isSizelessType())
8868       DisallowedKind = 6;
8869     else if (!T.isTriviallyCopyableType(Context))
8870       // Some other non-trivially-copyable type (probably a C++ class)
8871       DisallowedKind = 7;
8872     else if (auto *ExtTy = T->getAs<ExtIntType>()) {
8873       if (ExtTy->getNumBits() < 8)
8874         DisallowedKind = 8;
8875       else if (!llvm::isPowerOf2_32(ExtTy->getNumBits()))
8876         DisallowedKind = 9;
8877     }
8878 
8879     if (DisallowedKind != -1) {
8880       Diag(Loc, diag::err_atomic_specifier_bad_type) << DisallowedKind << T;
8881       return QualType();
8882     }
8883 
8884     // FIXME: Do we need any handling for ARC here?
8885   }
8886 
8887   // Build the pointer type.
8888   return Context.getAtomicType(T);
8889 }
8890