1 //===--- SemaDecl.cpp - Semantic Analysis for Declarations ----------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 //  This file implements semantic analysis for declarations.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/Sema/SemaInternal.h"
15 #include "TypeLocBuilder.h"
16 #include "clang/AST/ASTConsumer.h"
17 #include "clang/AST/ASTContext.h"
18 #include "clang/AST/ASTLambda.h"
19 #include "clang/AST/CXXInheritance.h"
20 #include "clang/AST/CharUnits.h"
21 #include "clang/AST/CommentDiagnostic.h"
22 #include "clang/AST/DeclCXX.h"
23 #include "clang/AST/DeclObjC.h"
24 #include "clang/AST/DeclTemplate.h"
25 #include "clang/AST/EvaluatedExprVisitor.h"
26 #include "clang/AST/ExprCXX.h"
27 #include "clang/AST/StmtCXX.h"
28 #include "clang/Basic/Builtins.h"
29 #include "clang/Basic/PartialDiagnostic.h"
30 #include "clang/Basic/SourceManager.h"
31 #include "clang/Basic/TargetInfo.h"
32 #include "clang/Lex/HeaderSearch.h" // TODO: Sema shouldn't depend on Lex
33 #include "clang/Lex/Lexer.h" // TODO: Extract static functions to fix layering.
34 #include "clang/Lex/ModuleLoader.h" // TODO: Sema shouldn't depend on Lex
35 #include "clang/Lex/Preprocessor.h" // Included for isCodeCompletionEnabled()
36 #include "clang/Parse/ParseDiagnostic.h"
37 #include "clang/Sema/CXXFieldCollector.h"
38 #include "clang/Sema/DeclSpec.h"
39 #include "clang/Sema/DelayedDiagnostic.h"
40 #include "clang/Sema/Initialization.h"
41 #include "clang/Sema/Lookup.h"
42 #include "clang/Sema/ParsedTemplate.h"
43 #include "clang/Sema/Scope.h"
44 #include "clang/Sema/ScopeInfo.h"
45 #include "clang/Sema/Template.h"
46 #include "llvm/ADT/SmallString.h"
47 #include "llvm/ADT/Triple.h"
48 #include <algorithm>
49 #include <cstring>
50 #include <functional>
51 using namespace clang;
52 using namespace sema;
53 
54 Sema::DeclGroupPtrTy Sema::ConvertDeclToDeclGroup(Decl *Ptr, Decl *OwnedType) {
55   if (OwnedType) {
56     Decl *Group[2] = { OwnedType, Ptr };
57     return DeclGroupPtrTy::make(DeclGroupRef::Create(Context, Group, 2));
58   }
59 
60   return DeclGroupPtrTy::make(DeclGroupRef(Ptr));
61 }
62 
63 namespace {
64 
65 class TypeNameValidatorCCC : public CorrectionCandidateCallback {
66  public:
67   TypeNameValidatorCCC(bool AllowInvalid, bool WantClass=false,
68                        bool AllowTemplates=false)
69       : AllowInvalidDecl(AllowInvalid), WantClassName(WantClass),
70         AllowClassTemplates(AllowTemplates) {
71     WantExpressionKeywords = false;
72     WantCXXNamedCasts = false;
73     WantRemainingKeywords = false;
74   }
75 
76   bool ValidateCandidate(const TypoCorrection &candidate) override {
77     if (NamedDecl *ND = candidate.getCorrectionDecl()) {
78       bool IsType = isa<TypeDecl>(ND) || isa<ObjCInterfaceDecl>(ND);
79       bool AllowedTemplate = AllowClassTemplates && isa<ClassTemplateDecl>(ND);
80       return (IsType || AllowedTemplate) &&
81              (AllowInvalidDecl || !ND->isInvalidDecl());
82     }
83     return !WantClassName && candidate.isKeyword();
84   }
85 
86  private:
87   bool AllowInvalidDecl;
88   bool WantClassName;
89   bool AllowClassTemplates;
90 };
91 
92 }
93 
94 /// \brief Determine whether the token kind starts a simple-type-specifier.
95 bool Sema::isSimpleTypeSpecifier(tok::TokenKind Kind) const {
96   switch (Kind) {
97   // FIXME: Take into account the current language when deciding whether a
98   // token kind is a valid type specifier
99   case tok::kw_short:
100   case tok::kw_long:
101   case tok::kw___int64:
102   case tok::kw___int128:
103   case tok::kw_signed:
104   case tok::kw_unsigned:
105   case tok::kw_void:
106   case tok::kw_char:
107   case tok::kw_int:
108   case tok::kw_half:
109   case tok::kw_float:
110   case tok::kw_double:
111   case tok::kw_wchar_t:
112   case tok::kw_bool:
113   case tok::kw___underlying_type:
114     return true;
115 
116   case tok::annot_typename:
117   case tok::kw_char16_t:
118   case tok::kw_char32_t:
119   case tok::kw_typeof:
120   case tok::annot_decltype:
121   case tok::kw_decltype:
122     return getLangOpts().CPlusPlus;
123 
124   default:
125     break;
126   }
127 
128   return false;
129 }
130 
131 namespace {
132 enum class UnqualifiedTypeNameLookupResult {
133   NotFound,
134   FoundNonType,
135   FoundType
136 };
137 } // namespace
138 
139 /// \brief Tries to perform unqualified lookup of the type decls in bases for
140 /// dependent class.
141 /// \return \a NotFound if no any decls is found, \a FoundNotType if found not a
142 /// type decl, \a FoundType if only type decls are found.
143 static UnqualifiedTypeNameLookupResult
144 lookupUnqualifiedTypeNameInBase(Sema &S, const IdentifierInfo &II,
145                                 SourceLocation NameLoc,
146                                 const CXXRecordDecl *RD) {
147   if (!RD->hasDefinition())
148     return UnqualifiedTypeNameLookupResult::NotFound;
149   // Look for type decls in base classes.
150   UnqualifiedTypeNameLookupResult FoundTypeDecl =
151       UnqualifiedTypeNameLookupResult::NotFound;
152   for (const auto &Base : RD->bases()) {
153     const CXXRecordDecl *BaseRD = nullptr;
154     if (auto *BaseTT = Base.getType()->getAs<TagType>())
155       BaseRD = BaseTT->getAsCXXRecordDecl();
156     else if (auto *TST = Base.getType()->getAs<TemplateSpecializationType>()) {
157       // Look for type decls in dependent base classes that have known primary
158       // templates.
159       if (!TST || !TST->isDependentType())
160         continue;
161       auto *TD = TST->getTemplateName().getAsTemplateDecl();
162       if (!TD)
163         continue;
164       auto *BasePrimaryTemplate =
165           dyn_cast_or_null<CXXRecordDecl>(TD->getTemplatedDecl());
166       if (!BasePrimaryTemplate)
167         continue;
168       BaseRD = BasePrimaryTemplate;
169     }
170     if (BaseRD) {
171       for (NamedDecl *ND : BaseRD->lookup(&II)) {
172         if (!isa<TypeDecl>(ND))
173           return UnqualifiedTypeNameLookupResult::FoundNonType;
174         FoundTypeDecl = UnqualifiedTypeNameLookupResult::FoundType;
175       }
176       if (FoundTypeDecl == UnqualifiedTypeNameLookupResult::NotFound) {
177         switch (lookupUnqualifiedTypeNameInBase(S, II, NameLoc, BaseRD)) {
178         case UnqualifiedTypeNameLookupResult::FoundNonType:
179           return UnqualifiedTypeNameLookupResult::FoundNonType;
180         case UnqualifiedTypeNameLookupResult::FoundType:
181           FoundTypeDecl = UnqualifiedTypeNameLookupResult::FoundType;
182           break;
183         case UnqualifiedTypeNameLookupResult::NotFound:
184           break;
185         }
186       }
187     }
188   }
189 
190   return FoundTypeDecl;
191 }
192 
193 static ParsedType recoverFromTypeInKnownDependentBase(Sema &S,
194                                                       const IdentifierInfo &II,
195                                                       SourceLocation NameLoc) {
196   // Lookup in the parent class template context, if any.
197   const CXXRecordDecl *RD = nullptr;
198   UnqualifiedTypeNameLookupResult FoundTypeDecl =
199       UnqualifiedTypeNameLookupResult::NotFound;
200   for (DeclContext *DC = S.CurContext;
201        DC && FoundTypeDecl == UnqualifiedTypeNameLookupResult::NotFound;
202        DC = DC->getParent()) {
203     // Look for type decls in dependent base classes that have known primary
204     // templates.
205     RD = dyn_cast<CXXRecordDecl>(DC);
206     if (RD && RD->getDescribedClassTemplate())
207       FoundTypeDecl = lookupUnqualifiedTypeNameInBase(S, II, NameLoc, RD);
208   }
209   if (FoundTypeDecl != UnqualifiedTypeNameLookupResult::FoundType)
210     return ParsedType();
211 
212   // We found some types in dependent base classes.  Recover as if the user
213   // wrote 'typename MyClass::II' instead of 'II'.  We'll fully resolve the
214   // lookup during template instantiation.
215   S.Diag(NameLoc, diag::ext_found_via_dependent_bases_lookup) << &II;
216 
217   ASTContext &Context = S.Context;
218   auto *NNS = NestedNameSpecifier::Create(Context, nullptr, false,
219                                           cast<Type>(Context.getRecordType(RD)));
220   QualType T = Context.getDependentNameType(ETK_Typename, NNS, &II);
221 
222   CXXScopeSpec SS;
223   SS.MakeTrivial(Context, NNS, SourceRange(NameLoc));
224 
225   TypeLocBuilder Builder;
226   DependentNameTypeLoc DepTL = Builder.push<DependentNameTypeLoc>(T);
227   DepTL.setNameLoc(NameLoc);
228   DepTL.setElaboratedKeywordLoc(SourceLocation());
229   DepTL.setQualifierLoc(SS.getWithLocInContext(Context));
230   return S.CreateParsedType(T, Builder.getTypeSourceInfo(Context, T));
231 }
232 
233 /// \brief If the identifier refers to a type name within this scope,
234 /// return the declaration of that type.
235 ///
236 /// This routine performs ordinary name lookup of the identifier II
237 /// within the given scope, with optional C++ scope specifier SS, to
238 /// determine whether the name refers to a type. If so, returns an
239 /// opaque pointer (actually a QualType) corresponding to that
240 /// type. Otherwise, returns NULL.
241 ParsedType Sema::getTypeName(const IdentifierInfo &II, SourceLocation NameLoc,
242                              Scope *S, CXXScopeSpec *SS,
243                              bool isClassName, bool HasTrailingDot,
244                              ParsedType ObjectTypePtr,
245                              bool IsCtorOrDtorName,
246                              bool WantNontrivialTypeSourceInfo,
247                              IdentifierInfo **CorrectedII) {
248   // Determine where we will perform name lookup.
249   DeclContext *LookupCtx = nullptr;
250   if (ObjectTypePtr) {
251     QualType ObjectType = ObjectTypePtr.get();
252     if (ObjectType->isRecordType())
253       LookupCtx = computeDeclContext(ObjectType);
254   } else if (SS && SS->isNotEmpty()) {
255     LookupCtx = computeDeclContext(*SS, false);
256 
257     if (!LookupCtx) {
258       if (isDependentScopeSpecifier(*SS)) {
259         // C++ [temp.res]p3:
260         //   A qualified-id that refers to a type and in which the
261         //   nested-name-specifier depends on a template-parameter (14.6.2)
262         //   shall be prefixed by the keyword typename to indicate that the
263         //   qualified-id denotes a type, forming an
264         //   elaborated-type-specifier (7.1.5.3).
265         //
266         // We therefore do not perform any name lookup if the result would
267         // refer to a member of an unknown specialization.
268         if (!isClassName && !IsCtorOrDtorName)
269           return ParsedType();
270 
271         // We know from the grammar that this name refers to a type,
272         // so build a dependent node to describe the type.
273         if (WantNontrivialTypeSourceInfo)
274           return ActOnTypenameType(S, SourceLocation(), *SS, II, NameLoc).get();
275 
276         NestedNameSpecifierLoc QualifierLoc = SS->getWithLocInContext(Context);
277         QualType T = CheckTypenameType(ETK_None, SourceLocation(), QualifierLoc,
278                                        II, NameLoc);
279         return ParsedType::make(T);
280       }
281 
282       return ParsedType();
283     }
284 
285     if (!LookupCtx->isDependentContext() &&
286         RequireCompleteDeclContext(*SS, LookupCtx))
287       return ParsedType();
288   }
289 
290   // FIXME: LookupNestedNameSpecifierName isn't the right kind of
291   // lookup for class-names.
292   LookupNameKind Kind = isClassName ? LookupNestedNameSpecifierName :
293                                       LookupOrdinaryName;
294   LookupResult Result(*this, &II, NameLoc, Kind);
295   if (LookupCtx) {
296     // Perform "qualified" name lookup into the declaration context we
297     // computed, which is either the type of the base of a member access
298     // expression or the declaration context associated with a prior
299     // nested-name-specifier.
300     LookupQualifiedName(Result, LookupCtx);
301 
302     if (ObjectTypePtr && Result.empty()) {
303       // C++ [basic.lookup.classref]p3:
304       //   If the unqualified-id is ~type-name, the type-name is looked up
305       //   in the context of the entire postfix-expression. If the type T of
306       //   the object expression is of a class type C, the type-name is also
307       //   looked up in the scope of class C. At least one of the lookups shall
308       //   find a name that refers to (possibly cv-qualified) T.
309       LookupName(Result, S);
310     }
311   } else {
312     // Perform unqualified name lookup.
313     LookupName(Result, S);
314 
315     // For unqualified lookup in a class template in MSVC mode, look into
316     // dependent base classes where the primary class template is known.
317     if (Result.empty() && getLangOpts().MSVCCompat && (!SS || SS->isEmpty())) {
318       if (ParsedType TypeInBase =
319               recoverFromTypeInKnownDependentBase(*this, II, NameLoc))
320         return TypeInBase;
321     }
322   }
323 
324   NamedDecl *IIDecl = nullptr;
325   switch (Result.getResultKind()) {
326   case LookupResult::NotFound:
327   case LookupResult::NotFoundInCurrentInstantiation:
328     if (CorrectedII) {
329       TypoCorrection Correction = CorrectTypo(
330           Result.getLookupNameInfo(), Kind, S, SS,
331           llvm::make_unique<TypeNameValidatorCCC>(true, isClassName),
332           CTK_ErrorRecovery);
333       IdentifierInfo *NewII = Correction.getCorrectionAsIdentifierInfo();
334       TemplateTy Template;
335       bool MemberOfUnknownSpecialization;
336       UnqualifiedId TemplateName;
337       TemplateName.setIdentifier(NewII, NameLoc);
338       NestedNameSpecifier *NNS = Correction.getCorrectionSpecifier();
339       CXXScopeSpec NewSS, *NewSSPtr = SS;
340       if (SS && NNS) {
341         NewSS.MakeTrivial(Context, NNS, SourceRange(NameLoc));
342         NewSSPtr = &NewSS;
343       }
344       if (Correction && (NNS || NewII != &II) &&
345           // Ignore a correction to a template type as the to-be-corrected
346           // identifier is not a template (typo correction for template names
347           // is handled elsewhere).
348           !(getLangOpts().CPlusPlus && NewSSPtr &&
349             isTemplateName(S, *NewSSPtr, false, TemplateName, ParsedType(),
350                            false, Template, MemberOfUnknownSpecialization))) {
351         ParsedType Ty = getTypeName(*NewII, NameLoc, S, NewSSPtr,
352                                     isClassName, HasTrailingDot, ObjectTypePtr,
353                                     IsCtorOrDtorName,
354                                     WantNontrivialTypeSourceInfo);
355         if (Ty) {
356           diagnoseTypo(Correction,
357                        PDiag(diag::err_unknown_type_or_class_name_suggest)
358                          << Result.getLookupName() << isClassName);
359           if (SS && NNS)
360             SS->MakeTrivial(Context, NNS, SourceRange(NameLoc));
361           *CorrectedII = NewII;
362           return Ty;
363         }
364       }
365     }
366     // If typo correction failed or was not performed, fall through
367   case LookupResult::FoundOverloaded:
368   case LookupResult::FoundUnresolvedValue:
369     Result.suppressDiagnostics();
370     return ParsedType();
371 
372   case LookupResult::Ambiguous:
373     // Recover from type-hiding ambiguities by hiding the type.  We'll
374     // do the lookup again when looking for an object, and we can
375     // diagnose the error then.  If we don't do this, then the error
376     // about hiding the type will be immediately followed by an error
377     // that only makes sense if the identifier was treated like a type.
378     if (Result.getAmbiguityKind() == LookupResult::AmbiguousTagHiding) {
379       Result.suppressDiagnostics();
380       return ParsedType();
381     }
382 
383     // Look to see if we have a type anywhere in the list of results.
384     for (LookupResult::iterator Res = Result.begin(), ResEnd = Result.end();
385          Res != ResEnd; ++Res) {
386       if (isa<TypeDecl>(*Res) || isa<ObjCInterfaceDecl>(*Res)) {
387         if (!IIDecl ||
388             (*Res)->getLocation().getRawEncoding() <
389               IIDecl->getLocation().getRawEncoding())
390           IIDecl = *Res;
391       }
392     }
393 
394     if (!IIDecl) {
395       // None of the entities we found is a type, so there is no way
396       // to even assume that the result is a type. In this case, don't
397       // complain about the ambiguity. The parser will either try to
398       // perform this lookup again (e.g., as an object name), which
399       // will produce the ambiguity, or will complain that it expected
400       // a type name.
401       Result.suppressDiagnostics();
402       return ParsedType();
403     }
404 
405     // We found a type within the ambiguous lookup; diagnose the
406     // ambiguity and then return that type. This might be the right
407     // answer, or it might not be, but it suppresses any attempt to
408     // perform the name lookup again.
409     break;
410 
411   case LookupResult::Found:
412     IIDecl = Result.getFoundDecl();
413     break;
414   }
415 
416   assert(IIDecl && "Didn't find decl");
417 
418   QualType T;
419   if (TypeDecl *TD = dyn_cast<TypeDecl>(IIDecl)) {
420     DiagnoseUseOfDecl(IIDecl, NameLoc);
421 
422     T = Context.getTypeDeclType(TD);
423     MarkAnyDeclReferenced(TD->getLocation(), TD, /*OdrUse=*/false);
424 
425     // NOTE: avoid constructing an ElaboratedType(Loc) if this is a
426     // constructor or destructor name (in such a case, the scope specifier
427     // will be attached to the enclosing Expr or Decl node).
428     if (SS && SS->isNotEmpty() && !IsCtorOrDtorName) {
429       if (WantNontrivialTypeSourceInfo) {
430         // Construct a type with type-source information.
431         TypeLocBuilder Builder;
432         Builder.pushTypeSpec(T).setNameLoc(NameLoc);
433 
434         T = getElaboratedType(ETK_None, *SS, T);
435         ElaboratedTypeLoc ElabTL = Builder.push<ElaboratedTypeLoc>(T);
436         ElabTL.setElaboratedKeywordLoc(SourceLocation());
437         ElabTL.setQualifierLoc(SS->getWithLocInContext(Context));
438         return CreateParsedType(T, Builder.getTypeSourceInfo(Context, T));
439       } else {
440         T = getElaboratedType(ETK_None, *SS, T);
441       }
442     }
443   } else if (ObjCInterfaceDecl *IDecl = dyn_cast<ObjCInterfaceDecl>(IIDecl)) {
444     (void)DiagnoseUseOfDecl(IDecl, NameLoc);
445     if (!HasTrailingDot)
446       T = Context.getObjCInterfaceType(IDecl);
447   }
448 
449   if (T.isNull()) {
450     // If it's not plausibly a type, suppress diagnostics.
451     Result.suppressDiagnostics();
452     return ParsedType();
453   }
454   return ParsedType::make(T);
455 }
456 
457 // Builds a fake NNS for the given decl context.
458 static NestedNameSpecifier *
459 synthesizeCurrentNestedNameSpecifier(ASTContext &Context, DeclContext *DC) {
460   for (;; DC = DC->getLookupParent()) {
461     DC = DC->getPrimaryContext();
462     auto *ND = dyn_cast<NamespaceDecl>(DC);
463     if (ND && !ND->isInline() && !ND->isAnonymousNamespace())
464       return NestedNameSpecifier::Create(Context, nullptr, ND);
465     else if (auto *RD = dyn_cast<CXXRecordDecl>(DC))
466       return NestedNameSpecifier::Create(Context, nullptr, RD->isTemplateDecl(),
467                                          RD->getTypeForDecl());
468     else if (isa<TranslationUnitDecl>(DC))
469       return NestedNameSpecifier::GlobalSpecifier(Context);
470   }
471   llvm_unreachable("something isn't in TU scope?");
472 }
473 
474 ParsedType Sema::ActOnDelayedDefaultTemplateArg(const IdentifierInfo &II,
475                                                 SourceLocation NameLoc) {
476   // Accepting an undeclared identifier as a default argument for a template
477   // type parameter is a Microsoft extension.
478   Diag(NameLoc, diag::ext_ms_delayed_template_argument) << &II;
479 
480   // Build a fake DependentNameType that will perform lookup into CurContext at
481   // instantiation time.  The name specifier isn't dependent, so template
482   // instantiation won't transform it.  It will retry the lookup, however.
483   NestedNameSpecifier *NNS =
484       synthesizeCurrentNestedNameSpecifier(Context, CurContext);
485   QualType T = Context.getDependentNameType(ETK_None, NNS, &II);
486 
487   // Build type location information.  We synthesized the qualifier, so we have
488   // to build a fake NestedNameSpecifierLoc.
489   NestedNameSpecifierLocBuilder NNSLocBuilder;
490   NNSLocBuilder.MakeTrivial(Context, NNS, SourceRange(NameLoc));
491   NestedNameSpecifierLoc QualifierLoc = NNSLocBuilder.getWithLocInContext(Context);
492 
493   TypeLocBuilder Builder;
494   DependentNameTypeLoc DepTL = Builder.push<DependentNameTypeLoc>(T);
495   DepTL.setNameLoc(NameLoc);
496   DepTL.setElaboratedKeywordLoc(SourceLocation());
497   DepTL.setQualifierLoc(QualifierLoc);
498   return CreateParsedType(T, Builder.getTypeSourceInfo(Context, T));
499 }
500 
501 /// isTagName() - This method is called *for error recovery purposes only*
502 /// to determine if the specified name is a valid tag name ("struct foo").  If
503 /// so, this returns the TST for the tag corresponding to it (TST_enum,
504 /// TST_union, TST_struct, TST_interface, TST_class).  This is used to diagnose
505 /// cases in C where the user forgot to specify the tag.
506 DeclSpec::TST Sema::isTagName(IdentifierInfo &II, Scope *S) {
507   // Do a tag name lookup in this scope.
508   LookupResult R(*this, &II, SourceLocation(), LookupTagName);
509   LookupName(R, S, false);
510   R.suppressDiagnostics();
511   if (R.getResultKind() == LookupResult::Found)
512     if (const TagDecl *TD = R.getAsSingle<TagDecl>()) {
513       switch (TD->getTagKind()) {
514       case TTK_Struct: return DeclSpec::TST_struct;
515       case TTK_Interface: return DeclSpec::TST_interface;
516       case TTK_Union:  return DeclSpec::TST_union;
517       case TTK_Class:  return DeclSpec::TST_class;
518       case TTK_Enum:   return DeclSpec::TST_enum;
519       }
520     }
521 
522   return DeclSpec::TST_unspecified;
523 }
524 
525 /// isMicrosoftMissingTypename - In Microsoft mode, within class scope,
526 /// if a CXXScopeSpec's type is equal to the type of one of the base classes
527 /// then downgrade the missing typename error to a warning.
528 /// This is needed for MSVC compatibility; Example:
529 /// @code
530 /// template<class T> class A {
531 /// public:
532 ///   typedef int TYPE;
533 /// };
534 /// template<class T> class B : public A<T> {
535 /// public:
536 ///   A<T>::TYPE a; // no typename required because A<T> is a base class.
537 /// };
538 /// @endcode
539 bool Sema::isMicrosoftMissingTypename(const CXXScopeSpec *SS, Scope *S) {
540   if (CurContext->isRecord()) {
541     if (SS->getScopeRep()->getKind() == NestedNameSpecifier::Super)
542       return true;
543 
544     const Type *Ty = SS->getScopeRep()->getAsType();
545 
546     CXXRecordDecl *RD = cast<CXXRecordDecl>(CurContext);
547     for (const auto &Base : RD->bases())
548       if (Context.hasSameUnqualifiedType(QualType(Ty, 1), Base.getType()))
549         return true;
550     return S->isFunctionPrototypeScope();
551   }
552   return CurContext->isFunctionOrMethod() || S->isFunctionPrototypeScope();
553 }
554 
555 void Sema::DiagnoseUnknownTypeName(IdentifierInfo *&II,
556                                    SourceLocation IILoc,
557                                    Scope *S,
558                                    CXXScopeSpec *SS,
559                                    ParsedType &SuggestedType,
560                                    bool AllowClassTemplates) {
561   // We don't have anything to suggest (yet).
562   SuggestedType = ParsedType();
563 
564   // There may have been a typo in the name of the type. Look up typo
565   // results, in case we have something that we can suggest.
566   if (TypoCorrection Corrected =
567           CorrectTypo(DeclarationNameInfo(II, IILoc), LookupOrdinaryName, S, SS,
568                       llvm::make_unique<TypeNameValidatorCCC>(
569                           false, false, AllowClassTemplates),
570                       CTK_ErrorRecovery)) {
571     if (Corrected.isKeyword()) {
572       // We corrected to a keyword.
573       diagnoseTypo(Corrected, PDiag(diag::err_unknown_typename_suggest) << II);
574       II = Corrected.getCorrectionAsIdentifierInfo();
575     } else {
576       // We found a similarly-named type or interface; suggest that.
577       if (!SS || !SS->isSet()) {
578         diagnoseTypo(Corrected,
579                      PDiag(diag::err_unknown_typename_suggest) << II);
580       } else if (DeclContext *DC = computeDeclContext(*SS, false)) {
581         std::string CorrectedStr(Corrected.getAsString(getLangOpts()));
582         bool DroppedSpecifier = Corrected.WillReplaceSpecifier() &&
583                                 II->getName().equals(CorrectedStr);
584         diagnoseTypo(Corrected,
585                      PDiag(diag::err_unknown_nested_typename_suggest)
586                        << II << DC << DroppedSpecifier << SS->getRange());
587       } else {
588         llvm_unreachable("could not have corrected a typo here");
589       }
590 
591       CXXScopeSpec tmpSS;
592       if (Corrected.getCorrectionSpecifier())
593         tmpSS.MakeTrivial(Context, Corrected.getCorrectionSpecifier(),
594                           SourceRange(IILoc));
595       SuggestedType = getTypeName(*Corrected.getCorrectionAsIdentifierInfo(),
596                                   IILoc, S, tmpSS.isSet() ? &tmpSS : SS, false,
597                                   false, ParsedType(),
598                                   /*IsCtorOrDtorName=*/false,
599                                   /*NonTrivialTypeSourceInfo=*/true);
600     }
601     return;
602   }
603 
604   if (getLangOpts().CPlusPlus) {
605     // See if II is a class template that the user forgot to pass arguments to.
606     UnqualifiedId Name;
607     Name.setIdentifier(II, IILoc);
608     CXXScopeSpec EmptySS;
609     TemplateTy TemplateResult;
610     bool MemberOfUnknownSpecialization;
611     if (isTemplateName(S, SS ? *SS : EmptySS, /*hasTemplateKeyword=*/false,
612                        Name, ParsedType(), true, TemplateResult,
613                        MemberOfUnknownSpecialization) == TNK_Type_template) {
614       TemplateName TplName = TemplateResult.get();
615       Diag(IILoc, diag::err_template_missing_args) << TplName;
616       if (TemplateDecl *TplDecl = TplName.getAsTemplateDecl()) {
617         Diag(TplDecl->getLocation(), diag::note_template_decl_here)
618           << TplDecl->getTemplateParameters()->getSourceRange();
619       }
620       return;
621     }
622   }
623 
624   // FIXME: Should we move the logic that tries to recover from a missing tag
625   // (struct, union, enum) from Parser::ParseImplicitInt here, instead?
626 
627   if (!SS || (!SS->isSet() && !SS->isInvalid()))
628     Diag(IILoc, diag::err_unknown_typename) << II;
629   else if (DeclContext *DC = computeDeclContext(*SS, false))
630     Diag(IILoc, diag::err_typename_nested_not_found)
631       << II << DC << SS->getRange();
632   else if (isDependentScopeSpecifier(*SS)) {
633     unsigned DiagID = diag::err_typename_missing;
634     if (getLangOpts().MSVCCompat && isMicrosoftMissingTypename(SS, S))
635       DiagID = diag::ext_typename_missing;
636 
637     Diag(SS->getRange().getBegin(), DiagID)
638       << SS->getScopeRep() << II->getName()
639       << SourceRange(SS->getRange().getBegin(), IILoc)
640       << FixItHint::CreateInsertion(SS->getRange().getBegin(), "typename ");
641     SuggestedType = ActOnTypenameType(S, SourceLocation(),
642                                       *SS, *II, IILoc).get();
643   } else {
644     assert(SS && SS->isInvalid() &&
645            "Invalid scope specifier has already been diagnosed");
646   }
647 }
648 
649 /// \brief Determine whether the given result set contains either a type name
650 /// or
651 static bool isResultTypeOrTemplate(LookupResult &R, const Token &NextToken) {
652   bool CheckTemplate = R.getSema().getLangOpts().CPlusPlus &&
653                        NextToken.is(tok::less);
654 
655   for (LookupResult::iterator I = R.begin(), IEnd = R.end(); I != IEnd; ++I) {
656     if (isa<TypeDecl>(*I) || isa<ObjCInterfaceDecl>(*I))
657       return true;
658 
659     if (CheckTemplate && isa<TemplateDecl>(*I))
660       return true;
661   }
662 
663   return false;
664 }
665 
666 static bool isTagTypeWithMissingTag(Sema &SemaRef, LookupResult &Result,
667                                     Scope *S, CXXScopeSpec &SS,
668                                     IdentifierInfo *&Name,
669                                     SourceLocation NameLoc) {
670   LookupResult R(SemaRef, Name, NameLoc, Sema::LookupTagName);
671   SemaRef.LookupParsedName(R, S, &SS);
672   if (TagDecl *Tag = R.getAsSingle<TagDecl>()) {
673     StringRef FixItTagName;
674     switch (Tag->getTagKind()) {
675       case TTK_Class:
676         FixItTagName = "class ";
677         break;
678 
679       case TTK_Enum:
680         FixItTagName = "enum ";
681         break;
682 
683       case TTK_Struct:
684         FixItTagName = "struct ";
685         break;
686 
687       case TTK_Interface:
688         FixItTagName = "__interface ";
689         break;
690 
691       case TTK_Union:
692         FixItTagName = "union ";
693         break;
694     }
695 
696     StringRef TagName = FixItTagName.drop_back();
697     SemaRef.Diag(NameLoc, diag::err_use_of_tag_name_without_tag)
698       << Name << TagName << SemaRef.getLangOpts().CPlusPlus
699       << FixItHint::CreateInsertion(NameLoc, FixItTagName);
700 
701     for (LookupResult::iterator I = Result.begin(), IEnd = Result.end();
702          I != IEnd; ++I)
703       SemaRef.Diag((*I)->getLocation(), diag::note_decl_hiding_tag_type)
704         << Name << TagName;
705 
706     // Replace lookup results with just the tag decl.
707     Result.clear(Sema::LookupTagName);
708     SemaRef.LookupParsedName(Result, S, &SS);
709     return true;
710   }
711 
712   return false;
713 }
714 
715 /// Build a ParsedType for a simple-type-specifier with a nested-name-specifier.
716 static ParsedType buildNestedType(Sema &S, CXXScopeSpec &SS,
717                                   QualType T, SourceLocation NameLoc) {
718   ASTContext &Context = S.Context;
719 
720   TypeLocBuilder Builder;
721   Builder.pushTypeSpec(T).setNameLoc(NameLoc);
722 
723   T = S.getElaboratedType(ETK_None, SS, T);
724   ElaboratedTypeLoc ElabTL = Builder.push<ElaboratedTypeLoc>(T);
725   ElabTL.setElaboratedKeywordLoc(SourceLocation());
726   ElabTL.setQualifierLoc(SS.getWithLocInContext(Context));
727   return S.CreateParsedType(T, Builder.getTypeSourceInfo(Context, T));
728 }
729 
730 Sema::NameClassification
731 Sema::ClassifyName(Scope *S, CXXScopeSpec &SS, IdentifierInfo *&Name,
732                    SourceLocation NameLoc, const Token &NextToken,
733                    bool IsAddressOfOperand,
734                    std::unique_ptr<CorrectionCandidateCallback> CCC) {
735   DeclarationNameInfo NameInfo(Name, NameLoc);
736   ObjCMethodDecl *CurMethod = getCurMethodDecl();
737 
738   if (NextToken.is(tok::coloncolon)) {
739     BuildCXXNestedNameSpecifier(S, *Name, NameLoc, NextToken.getLocation(),
740                                 QualType(), false, SS, nullptr, false);
741   }
742 
743   LookupResult Result(*this, Name, NameLoc, LookupOrdinaryName);
744   LookupParsedName(Result, S, &SS, !CurMethod);
745 
746   // For unqualified lookup in a class template in MSVC mode, look into
747   // dependent base classes where the primary class template is known.
748   if (Result.empty() && SS.isEmpty() && getLangOpts().MSVCCompat) {
749     if (ParsedType TypeInBase =
750             recoverFromTypeInKnownDependentBase(*this, *Name, NameLoc))
751       return TypeInBase;
752   }
753 
754   // Perform lookup for Objective-C instance variables (including automatically
755   // synthesized instance variables), if we're in an Objective-C method.
756   // FIXME: This lookup really, really needs to be folded in to the normal
757   // unqualified lookup mechanism.
758   if (!SS.isSet() && CurMethod && !isResultTypeOrTemplate(Result, NextToken)) {
759     ExprResult E = LookupInObjCMethod(Result, S, Name, true);
760     if (E.get() || E.isInvalid())
761       return E;
762   }
763 
764   bool SecondTry = false;
765   bool IsFilteredTemplateName = false;
766 
767 Corrected:
768   switch (Result.getResultKind()) {
769   case LookupResult::NotFound:
770     // If an unqualified-id is followed by a '(', then we have a function
771     // call.
772     if (!SS.isSet() && NextToken.is(tok::l_paren)) {
773       // In C++, this is an ADL-only call.
774       // FIXME: Reference?
775       if (getLangOpts().CPlusPlus)
776         return BuildDeclarationNameExpr(SS, Result, /*ADL=*/true);
777 
778       // C90 6.3.2.2:
779       //   If the expression that precedes the parenthesized argument list in a
780       //   function call consists solely of an identifier, and if no
781       //   declaration is visible for this identifier, the identifier is
782       //   implicitly declared exactly as if, in the innermost block containing
783       //   the function call, the declaration
784       //
785       //     extern int identifier ();
786       //
787       //   appeared.
788       //
789       // We also allow this in C99 as an extension.
790       if (NamedDecl *D = ImplicitlyDefineFunction(NameLoc, *Name, S)) {
791         Result.addDecl(D);
792         Result.resolveKind();
793         return BuildDeclarationNameExpr(SS, Result, /*ADL=*/false);
794       }
795     }
796 
797     // In C, we first see whether there is a tag type by the same name, in
798     // which case it's likely that the user just forget to write "enum",
799     // "struct", or "union".
800     if (!getLangOpts().CPlusPlus && !SecondTry &&
801         isTagTypeWithMissingTag(*this, Result, S, SS, Name, NameLoc)) {
802       break;
803     }
804 
805     // Perform typo correction to determine if there is another name that is
806     // close to this name.
807     if (!SecondTry && CCC) {
808       SecondTry = true;
809       if (TypoCorrection Corrected = CorrectTypo(Result.getLookupNameInfo(),
810                                                  Result.getLookupKind(), S,
811                                                  &SS, std::move(CCC),
812                                                  CTK_ErrorRecovery)) {
813         unsigned UnqualifiedDiag = diag::err_undeclared_var_use_suggest;
814         unsigned QualifiedDiag = diag::err_no_member_suggest;
815 
816         NamedDecl *FirstDecl = Corrected.getCorrectionDecl();
817         NamedDecl *UnderlyingFirstDecl
818           = FirstDecl? FirstDecl->getUnderlyingDecl() : nullptr;
819         if (getLangOpts().CPlusPlus && NextToken.is(tok::less) &&
820             UnderlyingFirstDecl && isa<TemplateDecl>(UnderlyingFirstDecl)) {
821           UnqualifiedDiag = diag::err_no_template_suggest;
822           QualifiedDiag = diag::err_no_member_template_suggest;
823         } else if (UnderlyingFirstDecl &&
824                    (isa<TypeDecl>(UnderlyingFirstDecl) ||
825                     isa<ObjCInterfaceDecl>(UnderlyingFirstDecl) ||
826                     isa<ObjCCompatibleAliasDecl>(UnderlyingFirstDecl))) {
827           UnqualifiedDiag = diag::err_unknown_typename_suggest;
828           QualifiedDiag = diag::err_unknown_nested_typename_suggest;
829         }
830 
831         if (SS.isEmpty()) {
832           diagnoseTypo(Corrected, PDiag(UnqualifiedDiag) << Name);
833         } else {// FIXME: is this even reachable? Test it.
834           std::string CorrectedStr(Corrected.getAsString(getLangOpts()));
835           bool DroppedSpecifier = Corrected.WillReplaceSpecifier() &&
836                                   Name->getName().equals(CorrectedStr);
837           diagnoseTypo(Corrected, PDiag(QualifiedDiag)
838                                     << Name << computeDeclContext(SS, false)
839                                     << DroppedSpecifier << SS.getRange());
840         }
841 
842         // Update the name, so that the caller has the new name.
843         Name = Corrected.getCorrectionAsIdentifierInfo();
844 
845         // Typo correction corrected to a keyword.
846         if (Corrected.isKeyword())
847           return Name;
848 
849         // Also update the LookupResult...
850         // FIXME: This should probably go away at some point
851         Result.clear();
852         Result.setLookupName(Corrected.getCorrection());
853         if (FirstDecl)
854           Result.addDecl(FirstDecl);
855 
856         // If we found an Objective-C instance variable, let
857         // LookupInObjCMethod build the appropriate expression to
858         // reference the ivar.
859         // FIXME: This is a gross hack.
860         if (ObjCIvarDecl *Ivar = Result.getAsSingle<ObjCIvarDecl>()) {
861           Result.clear();
862           ExprResult E(LookupInObjCMethod(Result, S, Ivar->getIdentifier()));
863           return E;
864         }
865 
866         goto Corrected;
867       }
868     }
869 
870     // We failed to correct; just fall through and let the parser deal with it.
871     Result.suppressDiagnostics();
872     return NameClassification::Unknown();
873 
874   case LookupResult::NotFoundInCurrentInstantiation: {
875     // We performed name lookup into the current instantiation, and there were
876     // dependent bases, so we treat this result the same way as any other
877     // dependent nested-name-specifier.
878 
879     // C++ [temp.res]p2:
880     //   A name used in a template declaration or definition and that is
881     //   dependent on a template-parameter is assumed not to name a type
882     //   unless the applicable name lookup finds a type name or the name is
883     //   qualified by the keyword typename.
884     //
885     // FIXME: If the next token is '<', we might want to ask the parser to
886     // perform some heroics to see if we actually have a
887     // template-argument-list, which would indicate a missing 'template'
888     // keyword here.
889     return ActOnDependentIdExpression(SS, /*TemplateKWLoc=*/SourceLocation(),
890                                       NameInfo, IsAddressOfOperand,
891                                       /*TemplateArgs=*/nullptr);
892   }
893 
894   case LookupResult::Found:
895   case LookupResult::FoundOverloaded:
896   case LookupResult::FoundUnresolvedValue:
897     break;
898 
899   case LookupResult::Ambiguous:
900     if (getLangOpts().CPlusPlus && NextToken.is(tok::less) &&
901         hasAnyAcceptableTemplateNames(Result)) {
902       // C++ [temp.local]p3:
903       //   A lookup that finds an injected-class-name (10.2) can result in an
904       //   ambiguity in certain cases (for example, if it is found in more than
905       //   one base class). If all of the injected-class-names that are found
906       //   refer to specializations of the same class template, and if the name
907       //   is followed by a template-argument-list, the reference refers to the
908       //   class template itself and not a specialization thereof, and is not
909       //   ambiguous.
910       //
911       // This filtering can make an ambiguous result into an unambiguous one,
912       // so try again after filtering out template names.
913       FilterAcceptableTemplateNames(Result);
914       if (!Result.isAmbiguous()) {
915         IsFilteredTemplateName = true;
916         break;
917       }
918     }
919 
920     // Diagnose the ambiguity and return an error.
921     return NameClassification::Error();
922   }
923 
924   if (getLangOpts().CPlusPlus && NextToken.is(tok::less) &&
925       (IsFilteredTemplateName || hasAnyAcceptableTemplateNames(Result))) {
926     // C++ [temp.names]p3:
927     //   After name lookup (3.4) finds that a name is a template-name or that
928     //   an operator-function-id or a literal- operator-id refers to a set of
929     //   overloaded functions any member of which is a function template if
930     //   this is followed by a <, the < is always taken as the delimiter of a
931     //   template-argument-list and never as the less-than operator.
932     if (!IsFilteredTemplateName)
933       FilterAcceptableTemplateNames(Result);
934 
935     if (!Result.empty()) {
936       bool IsFunctionTemplate;
937       bool IsVarTemplate;
938       TemplateName Template;
939       if (Result.end() - Result.begin() > 1) {
940         IsFunctionTemplate = true;
941         Template = Context.getOverloadedTemplateName(Result.begin(),
942                                                      Result.end());
943       } else {
944         TemplateDecl *TD
945           = cast<TemplateDecl>((*Result.begin())->getUnderlyingDecl());
946         IsFunctionTemplate = isa<FunctionTemplateDecl>(TD);
947         IsVarTemplate = isa<VarTemplateDecl>(TD);
948 
949         if (SS.isSet() && !SS.isInvalid())
950           Template = Context.getQualifiedTemplateName(SS.getScopeRep(),
951                                                     /*TemplateKeyword=*/false,
952                                                       TD);
953         else
954           Template = TemplateName(TD);
955       }
956 
957       if (IsFunctionTemplate) {
958         // Function templates always go through overload resolution, at which
959         // point we'll perform the various checks (e.g., accessibility) we need
960         // to based on which function we selected.
961         Result.suppressDiagnostics();
962 
963         return NameClassification::FunctionTemplate(Template);
964       }
965 
966       return IsVarTemplate ? NameClassification::VarTemplate(Template)
967                            : NameClassification::TypeTemplate(Template);
968     }
969   }
970 
971   NamedDecl *FirstDecl = (*Result.begin())->getUnderlyingDecl();
972   if (TypeDecl *Type = dyn_cast<TypeDecl>(FirstDecl)) {
973     DiagnoseUseOfDecl(Type, NameLoc);
974     MarkAnyDeclReferenced(Type->getLocation(), Type, /*OdrUse=*/false);
975     QualType T = Context.getTypeDeclType(Type);
976     if (SS.isNotEmpty())
977       return buildNestedType(*this, SS, T, NameLoc);
978     return ParsedType::make(T);
979   }
980 
981   ObjCInterfaceDecl *Class = dyn_cast<ObjCInterfaceDecl>(FirstDecl);
982   if (!Class) {
983     // FIXME: It's unfortunate that we don't have a Type node for handling this.
984     if (ObjCCompatibleAliasDecl *Alias =
985             dyn_cast<ObjCCompatibleAliasDecl>(FirstDecl))
986       Class = Alias->getClassInterface();
987   }
988 
989   if (Class) {
990     DiagnoseUseOfDecl(Class, NameLoc);
991 
992     if (NextToken.is(tok::period)) {
993       // Interface. <something> is parsed as a property reference expression.
994       // Just return "unknown" as a fall-through for now.
995       Result.suppressDiagnostics();
996       return NameClassification::Unknown();
997     }
998 
999     QualType T = Context.getObjCInterfaceType(Class);
1000     return ParsedType::make(T);
1001   }
1002 
1003   // We can have a type template here if we're classifying a template argument.
1004   if (isa<TemplateDecl>(FirstDecl) && !isa<FunctionTemplateDecl>(FirstDecl))
1005     return NameClassification::TypeTemplate(
1006         TemplateName(cast<TemplateDecl>(FirstDecl)));
1007 
1008   // Check for a tag type hidden by a non-type decl in a few cases where it
1009   // seems likely a type is wanted instead of the non-type that was found.
1010   bool NextIsOp = NextToken.is(tok::amp) || NextToken.is(tok::star);
1011   if ((NextToken.is(tok::identifier) ||
1012        (NextIsOp &&
1013         FirstDecl->getUnderlyingDecl()->isFunctionOrFunctionTemplate())) &&
1014       isTagTypeWithMissingTag(*this, Result, S, SS, Name, NameLoc)) {
1015     TypeDecl *Type = Result.getAsSingle<TypeDecl>();
1016     DiagnoseUseOfDecl(Type, NameLoc);
1017     QualType T = Context.getTypeDeclType(Type);
1018     if (SS.isNotEmpty())
1019       return buildNestedType(*this, SS, T, NameLoc);
1020     return ParsedType::make(T);
1021   }
1022 
1023   if (FirstDecl->isCXXClassMember())
1024     return BuildPossibleImplicitMemberExpr(SS, SourceLocation(), Result,
1025                                            nullptr);
1026 
1027   bool ADL = UseArgumentDependentLookup(SS, Result, NextToken.is(tok::l_paren));
1028   return BuildDeclarationNameExpr(SS, Result, ADL);
1029 }
1030 
1031 // Determines the context to return to after temporarily entering a
1032 // context.  This depends in an unnecessarily complicated way on the
1033 // exact ordering of callbacks from the parser.
1034 DeclContext *Sema::getContainingDC(DeclContext *DC) {
1035 
1036   // Functions defined inline within classes aren't parsed until we've
1037   // finished parsing the top-level class, so the top-level class is
1038   // the context we'll need to return to.
1039   // A Lambda call operator whose parent is a class must not be treated
1040   // as an inline member function.  A Lambda can be used legally
1041   // either as an in-class member initializer or a default argument.  These
1042   // are parsed once the class has been marked complete and so the containing
1043   // context would be the nested class (when the lambda is defined in one);
1044   // If the class is not complete, then the lambda is being used in an
1045   // ill-formed fashion (such as to specify the width of a bit-field, or
1046   // in an array-bound) - in which case we still want to return the
1047   // lexically containing DC (which could be a nested class).
1048   if (isa<FunctionDecl>(DC) && !isLambdaCallOperator(DC)) {
1049     DC = DC->getLexicalParent();
1050 
1051     // A function not defined within a class will always return to its
1052     // lexical context.
1053     if (!isa<CXXRecordDecl>(DC))
1054       return DC;
1055 
1056     // A C++ inline method/friend is parsed *after* the topmost class
1057     // it was declared in is fully parsed ("complete");  the topmost
1058     // class is the context we need to return to.
1059     while (CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(DC->getLexicalParent()))
1060       DC = RD;
1061 
1062     // Return the declaration context of the topmost class the inline method is
1063     // declared in.
1064     return DC;
1065   }
1066 
1067   return DC->getLexicalParent();
1068 }
1069 
1070 void Sema::PushDeclContext(Scope *S, DeclContext *DC) {
1071   assert(getContainingDC(DC) == CurContext &&
1072       "The next DeclContext should be lexically contained in the current one.");
1073   CurContext = DC;
1074   S->setEntity(DC);
1075 }
1076 
1077 void Sema::PopDeclContext() {
1078   assert(CurContext && "DeclContext imbalance!");
1079 
1080   CurContext = getContainingDC(CurContext);
1081   assert(CurContext && "Popped translation unit!");
1082 }
1083 
1084 /// EnterDeclaratorContext - Used when we must lookup names in the context
1085 /// of a declarator's nested name specifier.
1086 ///
1087 void Sema::EnterDeclaratorContext(Scope *S, DeclContext *DC) {
1088   // C++0x [basic.lookup.unqual]p13:
1089   //   A name used in the definition of a static data member of class
1090   //   X (after the qualified-id of the static member) is looked up as
1091   //   if the name was used in a member function of X.
1092   // C++0x [basic.lookup.unqual]p14:
1093   //   If a variable member of a namespace is defined outside of the
1094   //   scope of its namespace then any name used in the definition of
1095   //   the variable member (after the declarator-id) is looked up as
1096   //   if the definition of the variable member occurred in its
1097   //   namespace.
1098   // Both of these imply that we should push a scope whose context
1099   // is the semantic context of the declaration.  We can't use
1100   // PushDeclContext here because that context is not necessarily
1101   // lexically contained in the current context.  Fortunately,
1102   // the containing scope should have the appropriate information.
1103 
1104   assert(!S->getEntity() && "scope already has entity");
1105 
1106 #ifndef NDEBUG
1107   Scope *Ancestor = S->getParent();
1108   while (!Ancestor->getEntity()) Ancestor = Ancestor->getParent();
1109   assert(Ancestor->getEntity() == CurContext && "ancestor context mismatch");
1110 #endif
1111 
1112   CurContext = DC;
1113   S->setEntity(DC);
1114 }
1115 
1116 void Sema::ExitDeclaratorContext(Scope *S) {
1117   assert(S->getEntity() == CurContext && "Context imbalance!");
1118 
1119   // Switch back to the lexical context.  The safety of this is
1120   // enforced by an assert in EnterDeclaratorContext.
1121   Scope *Ancestor = S->getParent();
1122   while (!Ancestor->getEntity()) Ancestor = Ancestor->getParent();
1123   CurContext = Ancestor->getEntity();
1124 
1125   // We don't need to do anything with the scope, which is going to
1126   // disappear.
1127 }
1128 
1129 
1130 void Sema::ActOnReenterFunctionContext(Scope* S, Decl *D) {
1131   // We assume that the caller has already called
1132   // ActOnReenterTemplateScope so getTemplatedDecl() works.
1133   FunctionDecl *FD = D->getAsFunction();
1134   if (!FD)
1135     return;
1136 
1137   // Same implementation as PushDeclContext, but enters the context
1138   // from the lexical parent, rather than the top-level class.
1139   assert(CurContext == FD->getLexicalParent() &&
1140     "The next DeclContext should be lexically contained in the current one.");
1141   CurContext = FD;
1142   S->setEntity(CurContext);
1143 
1144   for (unsigned P = 0, NumParams = FD->getNumParams(); P < NumParams; ++P) {
1145     ParmVarDecl *Param = FD->getParamDecl(P);
1146     // If the parameter has an identifier, then add it to the scope
1147     if (Param->getIdentifier()) {
1148       S->AddDecl(Param);
1149       IdResolver.AddDecl(Param);
1150     }
1151   }
1152 }
1153 
1154 
1155 void Sema::ActOnExitFunctionContext() {
1156   // Same implementation as PopDeclContext, but returns to the lexical parent,
1157   // rather than the top-level class.
1158   assert(CurContext && "DeclContext imbalance!");
1159   CurContext = CurContext->getLexicalParent();
1160   assert(CurContext && "Popped translation unit!");
1161 }
1162 
1163 
1164 /// \brief Determine whether we allow overloading of the function
1165 /// PrevDecl with another declaration.
1166 ///
1167 /// This routine determines whether overloading is possible, not
1168 /// whether some new function is actually an overload. It will return
1169 /// true in C++ (where we can always provide overloads) or, as an
1170 /// extension, in C when the previous function is already an
1171 /// overloaded function declaration or has the "overloadable"
1172 /// attribute.
1173 static bool AllowOverloadingOfFunction(LookupResult &Previous,
1174                                        ASTContext &Context) {
1175   if (Context.getLangOpts().CPlusPlus)
1176     return true;
1177 
1178   if (Previous.getResultKind() == LookupResult::FoundOverloaded)
1179     return true;
1180 
1181   return (Previous.getResultKind() == LookupResult::Found
1182           && Previous.getFoundDecl()->hasAttr<OverloadableAttr>());
1183 }
1184 
1185 /// Add this decl to the scope shadowed decl chains.
1186 void Sema::PushOnScopeChains(NamedDecl *D, Scope *S, bool AddToContext) {
1187   // Move up the scope chain until we find the nearest enclosing
1188   // non-transparent context. The declaration will be introduced into this
1189   // scope.
1190   while (S->getEntity() && S->getEntity()->isTransparentContext())
1191     S = S->getParent();
1192 
1193   // Add scoped declarations into their context, so that they can be
1194   // found later. Declarations without a context won't be inserted
1195   // into any context.
1196   if (AddToContext)
1197     CurContext->addDecl(D);
1198 
1199   // Out-of-line definitions shouldn't be pushed into scope in C++, unless they
1200   // are function-local declarations.
1201   if (getLangOpts().CPlusPlus && D->isOutOfLine() &&
1202       !D->getDeclContext()->getRedeclContext()->Equals(
1203         D->getLexicalDeclContext()->getRedeclContext()) &&
1204       !D->getLexicalDeclContext()->isFunctionOrMethod())
1205     return;
1206 
1207   // Template instantiations should also not be pushed into scope.
1208   if (isa<FunctionDecl>(D) &&
1209       cast<FunctionDecl>(D)->isFunctionTemplateSpecialization())
1210     return;
1211 
1212   // If this replaces anything in the current scope,
1213   IdentifierResolver::iterator I = IdResolver.begin(D->getDeclName()),
1214                                IEnd = IdResolver.end();
1215   for (; I != IEnd; ++I) {
1216     if (S->isDeclScope(*I) && D->declarationReplaces(*I)) {
1217       S->RemoveDecl(*I);
1218       IdResolver.RemoveDecl(*I);
1219 
1220       // Should only need to replace one decl.
1221       break;
1222     }
1223   }
1224 
1225   S->AddDecl(D);
1226 
1227   if (isa<LabelDecl>(D) && !cast<LabelDecl>(D)->isGnuLocal()) {
1228     // Implicitly-generated labels may end up getting generated in an order that
1229     // isn't strictly lexical, which breaks name lookup. Be careful to insert
1230     // the label at the appropriate place in the identifier chain.
1231     for (I = IdResolver.begin(D->getDeclName()); I != IEnd; ++I) {
1232       DeclContext *IDC = (*I)->getLexicalDeclContext()->getRedeclContext();
1233       if (IDC == CurContext) {
1234         if (!S->isDeclScope(*I))
1235           continue;
1236       } else if (IDC->Encloses(CurContext))
1237         break;
1238     }
1239 
1240     IdResolver.InsertDeclAfter(I, D);
1241   } else {
1242     IdResolver.AddDecl(D);
1243   }
1244 }
1245 
1246 void Sema::pushExternalDeclIntoScope(NamedDecl *D, DeclarationName Name) {
1247   if (IdResolver.tryAddTopLevelDecl(D, Name) && TUScope)
1248     TUScope->AddDecl(D);
1249 }
1250 
1251 bool Sema::isDeclInScope(NamedDecl *D, DeclContext *Ctx, Scope *S,
1252                          bool AllowInlineNamespace) {
1253   return IdResolver.isDeclInScope(D, Ctx, S, AllowInlineNamespace);
1254 }
1255 
1256 Scope *Sema::getScopeForDeclContext(Scope *S, DeclContext *DC) {
1257   DeclContext *TargetDC = DC->getPrimaryContext();
1258   do {
1259     if (DeclContext *ScopeDC = S->getEntity())
1260       if (ScopeDC->getPrimaryContext() == TargetDC)
1261         return S;
1262   } while ((S = S->getParent()));
1263 
1264   return nullptr;
1265 }
1266 
1267 static bool isOutOfScopePreviousDeclaration(NamedDecl *,
1268                                             DeclContext*,
1269                                             ASTContext&);
1270 
1271 /// Filters out lookup results that don't fall within the given scope
1272 /// as determined by isDeclInScope.
1273 void Sema::FilterLookupForScope(LookupResult &R, DeclContext *Ctx, Scope *S,
1274                                 bool ConsiderLinkage,
1275                                 bool AllowInlineNamespace) {
1276   LookupResult::Filter F = R.makeFilter();
1277   while (F.hasNext()) {
1278     NamedDecl *D = F.next();
1279 
1280     if (isDeclInScope(D, Ctx, S, AllowInlineNamespace))
1281       continue;
1282 
1283     if (ConsiderLinkage && isOutOfScopePreviousDeclaration(D, Ctx, Context))
1284       continue;
1285 
1286     F.erase();
1287   }
1288 
1289   F.done();
1290 }
1291 
1292 static bool isUsingDecl(NamedDecl *D) {
1293   return isa<UsingShadowDecl>(D) ||
1294          isa<UnresolvedUsingTypenameDecl>(D) ||
1295          isa<UnresolvedUsingValueDecl>(D);
1296 }
1297 
1298 /// Removes using shadow declarations from the lookup results.
1299 static void RemoveUsingDecls(LookupResult &R) {
1300   LookupResult::Filter F = R.makeFilter();
1301   while (F.hasNext())
1302     if (isUsingDecl(F.next()))
1303       F.erase();
1304 
1305   F.done();
1306 }
1307 
1308 /// \brief Check for this common pattern:
1309 /// @code
1310 /// class S {
1311 ///   S(const S&); // DO NOT IMPLEMENT
1312 ///   void operator=(const S&); // DO NOT IMPLEMENT
1313 /// };
1314 /// @endcode
1315 static bool IsDisallowedCopyOrAssign(const CXXMethodDecl *D) {
1316   // FIXME: Should check for private access too but access is set after we get
1317   // the decl here.
1318   if (D->doesThisDeclarationHaveABody())
1319     return false;
1320 
1321   if (const CXXConstructorDecl *CD = dyn_cast<CXXConstructorDecl>(D))
1322     return CD->isCopyConstructor();
1323   if (const CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(D))
1324     return Method->isCopyAssignmentOperator();
1325   return false;
1326 }
1327 
1328 // We need this to handle
1329 //
1330 // typedef struct {
1331 //   void *foo() { return 0; }
1332 // } A;
1333 //
1334 // When we see foo we don't know if after the typedef we will get 'A' or '*A'
1335 // for example. If 'A', foo will have external linkage. If we have '*A',
1336 // foo will have no linkage. Since we can't know until we get to the end
1337 // of the typedef, this function finds out if D might have non-external linkage.
1338 // Callers should verify at the end of the TU if it D has external linkage or
1339 // not.
1340 bool Sema::mightHaveNonExternalLinkage(const DeclaratorDecl *D) {
1341   const DeclContext *DC = D->getDeclContext();
1342   while (!DC->isTranslationUnit()) {
1343     if (const RecordDecl *RD = dyn_cast<RecordDecl>(DC)){
1344       if (!RD->hasNameForLinkage())
1345         return true;
1346     }
1347     DC = DC->getParent();
1348   }
1349 
1350   return !D->isExternallyVisible();
1351 }
1352 
1353 // FIXME: This needs to be refactored; some other isInMainFile users want
1354 // these semantics.
1355 static bool isMainFileLoc(const Sema &S, SourceLocation Loc) {
1356   if (S.TUKind != TU_Complete)
1357     return false;
1358   return S.SourceMgr.isInMainFile(Loc);
1359 }
1360 
1361 bool Sema::ShouldWarnIfUnusedFileScopedDecl(const DeclaratorDecl *D) const {
1362   assert(D);
1363 
1364   if (D->isInvalidDecl() || D->isUsed() || D->hasAttr<UnusedAttr>())
1365     return false;
1366 
1367   // Ignore all entities declared within templates, and out-of-line definitions
1368   // of members of class templates.
1369   if (D->getDeclContext()->isDependentContext() ||
1370       D->getLexicalDeclContext()->isDependentContext())
1371     return false;
1372 
1373   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
1374     if (FD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation)
1375       return false;
1376 
1377     if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) {
1378       if (MD->isVirtual() || IsDisallowedCopyOrAssign(MD))
1379         return false;
1380     } else {
1381       // 'static inline' functions are defined in headers; don't warn.
1382       if (FD->isInlined() && !isMainFileLoc(*this, FD->getLocation()))
1383         return false;
1384     }
1385 
1386     if (FD->doesThisDeclarationHaveABody() &&
1387         Context.DeclMustBeEmitted(FD))
1388       return false;
1389   } else if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
1390     // Constants and utility variables are defined in headers with internal
1391     // linkage; don't warn.  (Unlike functions, there isn't a convenient marker
1392     // like "inline".)
1393     if (!isMainFileLoc(*this, VD->getLocation()))
1394       return false;
1395 
1396     if (Context.DeclMustBeEmitted(VD))
1397       return false;
1398 
1399     if (VD->isStaticDataMember() &&
1400         VD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation)
1401       return false;
1402   } else {
1403     return false;
1404   }
1405 
1406   // Only warn for unused decls internal to the translation unit.
1407   // FIXME: This seems like a bogus check; it suppresses -Wunused-function
1408   // for inline functions defined in the main source file, for instance.
1409   return mightHaveNonExternalLinkage(D);
1410 }
1411 
1412 void Sema::MarkUnusedFileScopedDecl(const DeclaratorDecl *D) {
1413   if (!D)
1414     return;
1415 
1416   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
1417     const FunctionDecl *First = FD->getFirstDecl();
1418     if (FD != First && ShouldWarnIfUnusedFileScopedDecl(First))
1419       return; // First should already be in the vector.
1420   }
1421 
1422   if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
1423     const VarDecl *First = VD->getFirstDecl();
1424     if (VD != First && ShouldWarnIfUnusedFileScopedDecl(First))
1425       return; // First should already be in the vector.
1426   }
1427 
1428   if (ShouldWarnIfUnusedFileScopedDecl(D))
1429     UnusedFileScopedDecls.push_back(D);
1430 }
1431 
1432 static bool ShouldDiagnoseUnusedDecl(const NamedDecl *D) {
1433   if (D->isInvalidDecl())
1434     return false;
1435 
1436   if (D->isReferenced() || D->isUsed() || D->hasAttr<UnusedAttr>() ||
1437       D->hasAttr<ObjCPreciseLifetimeAttr>())
1438     return false;
1439 
1440   if (isa<LabelDecl>(D))
1441     return true;
1442 
1443   // Except for labels, we only care about unused decls that are local to
1444   // functions.
1445   bool WithinFunction = D->getDeclContext()->isFunctionOrMethod();
1446   if (const auto *R = dyn_cast<CXXRecordDecl>(D->getDeclContext()))
1447     // For dependent types, the diagnostic is deferred.
1448     WithinFunction =
1449         WithinFunction || (R->isLocalClass() && !R->isDependentType());
1450   if (!WithinFunction)
1451     return false;
1452 
1453   if (isa<TypedefNameDecl>(D))
1454     return true;
1455 
1456   // White-list anything that isn't a local variable.
1457   if (!isa<VarDecl>(D) || isa<ParmVarDecl>(D) || isa<ImplicitParamDecl>(D))
1458     return false;
1459 
1460   // Types of valid local variables should be complete, so this should succeed.
1461   if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
1462 
1463     // White-list anything with an __attribute__((unused)) type.
1464     QualType Ty = VD->getType();
1465 
1466     // Only look at the outermost level of typedef.
1467     if (const TypedefType *TT = Ty->getAs<TypedefType>()) {
1468       if (TT->getDecl()->hasAttr<UnusedAttr>())
1469         return false;
1470     }
1471 
1472     // If we failed to complete the type for some reason, or if the type is
1473     // dependent, don't diagnose the variable.
1474     if (Ty->isIncompleteType() || Ty->isDependentType())
1475       return false;
1476 
1477     if (const TagType *TT = Ty->getAs<TagType>()) {
1478       const TagDecl *Tag = TT->getDecl();
1479       if (Tag->hasAttr<UnusedAttr>())
1480         return false;
1481 
1482       if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Tag)) {
1483         if (!RD->hasTrivialDestructor() && !RD->hasAttr<WarnUnusedAttr>())
1484           return false;
1485 
1486         if (const Expr *Init = VD->getInit()) {
1487           if (const ExprWithCleanups *Cleanups =
1488                   dyn_cast<ExprWithCleanups>(Init))
1489             Init = Cleanups->getSubExpr();
1490           const CXXConstructExpr *Construct =
1491             dyn_cast<CXXConstructExpr>(Init);
1492           if (Construct && !Construct->isElidable()) {
1493             CXXConstructorDecl *CD = Construct->getConstructor();
1494             if (!CD->isTrivial() && !RD->hasAttr<WarnUnusedAttr>())
1495               return false;
1496           }
1497         }
1498       }
1499     }
1500 
1501     // TODO: __attribute__((unused)) templates?
1502   }
1503 
1504   return true;
1505 }
1506 
1507 static void GenerateFixForUnusedDecl(const NamedDecl *D, ASTContext &Ctx,
1508                                      FixItHint &Hint) {
1509   if (isa<LabelDecl>(D)) {
1510     SourceLocation AfterColon = Lexer::findLocationAfterToken(D->getLocEnd(),
1511                 tok::colon, Ctx.getSourceManager(), Ctx.getLangOpts(), true);
1512     if (AfterColon.isInvalid())
1513       return;
1514     Hint = FixItHint::CreateRemoval(CharSourceRange::
1515                                     getCharRange(D->getLocStart(), AfterColon));
1516   }
1517   return;
1518 }
1519 
1520 void Sema::DiagnoseUnusedNestedTypedefs(const RecordDecl *D) {
1521   if (D->getTypeForDecl()->isDependentType())
1522     return;
1523 
1524   for (auto *TmpD : D->decls()) {
1525     if (const auto *T = dyn_cast<TypedefNameDecl>(TmpD))
1526       DiagnoseUnusedDecl(T);
1527     else if(const auto *R = dyn_cast<RecordDecl>(TmpD))
1528       DiagnoseUnusedNestedTypedefs(R);
1529   }
1530 }
1531 
1532 /// DiagnoseUnusedDecl - Emit warnings about declarations that are not used
1533 /// unless they are marked attr(unused).
1534 void Sema::DiagnoseUnusedDecl(const NamedDecl *D) {
1535   if (!ShouldDiagnoseUnusedDecl(D))
1536     return;
1537 
1538   if (auto *TD = dyn_cast<TypedefNameDecl>(D)) {
1539     // typedefs can be referenced later on, so the diagnostics are emitted
1540     // at end-of-translation-unit.
1541     UnusedLocalTypedefNameCandidates.insert(TD);
1542     return;
1543   }
1544 
1545   FixItHint Hint;
1546   GenerateFixForUnusedDecl(D, Context, Hint);
1547 
1548   unsigned DiagID;
1549   if (isa<VarDecl>(D) && cast<VarDecl>(D)->isExceptionVariable())
1550     DiagID = diag::warn_unused_exception_param;
1551   else if (isa<LabelDecl>(D))
1552     DiagID = diag::warn_unused_label;
1553   else
1554     DiagID = diag::warn_unused_variable;
1555 
1556   Diag(D->getLocation(), DiagID) << D->getDeclName() << Hint;
1557 }
1558 
1559 static void CheckPoppedLabel(LabelDecl *L, Sema &S) {
1560   // Verify that we have no forward references left.  If so, there was a goto
1561   // or address of a label taken, but no definition of it.  Label fwd
1562   // definitions are indicated with a null substmt which is also not a resolved
1563   // MS inline assembly label name.
1564   bool Diagnose = false;
1565   if (L->isMSAsmLabel())
1566     Diagnose = !L->isResolvedMSAsmLabel();
1567   else
1568     Diagnose = L->getStmt() == nullptr;
1569   if (Diagnose)
1570     S.Diag(L->getLocation(), diag::err_undeclared_label_use) <<L->getDeclName();
1571 }
1572 
1573 void Sema::ActOnPopScope(SourceLocation Loc, Scope *S) {
1574   S->mergeNRVOIntoParent();
1575 
1576   if (S->decl_empty()) return;
1577   assert((S->getFlags() & (Scope::DeclScope | Scope::TemplateParamScope)) &&
1578          "Scope shouldn't contain decls!");
1579 
1580   for (auto *TmpD : S->decls()) {
1581     assert(TmpD && "This decl didn't get pushed??");
1582 
1583     assert(isa<NamedDecl>(TmpD) && "Decl isn't NamedDecl?");
1584     NamedDecl *D = cast<NamedDecl>(TmpD);
1585 
1586     if (!D->getDeclName()) continue;
1587 
1588     // Diagnose unused variables in this scope.
1589     if (!S->hasUnrecoverableErrorOccurred()) {
1590       DiagnoseUnusedDecl(D);
1591       if (const auto *RD = dyn_cast<RecordDecl>(D))
1592         DiagnoseUnusedNestedTypedefs(RD);
1593     }
1594 
1595     // If this was a forward reference to a label, verify it was defined.
1596     if (LabelDecl *LD = dyn_cast<LabelDecl>(D))
1597       CheckPoppedLabel(LD, *this);
1598 
1599     // Remove this name from our lexical scope.
1600     IdResolver.RemoveDecl(D);
1601   }
1602 }
1603 
1604 /// \brief Look for an Objective-C class in the translation unit.
1605 ///
1606 /// \param Id The name of the Objective-C class we're looking for. If
1607 /// typo-correction fixes this name, the Id will be updated
1608 /// to the fixed name.
1609 ///
1610 /// \param IdLoc The location of the name in the translation unit.
1611 ///
1612 /// \param DoTypoCorrection If true, this routine will attempt typo correction
1613 /// if there is no class with the given name.
1614 ///
1615 /// \returns The declaration of the named Objective-C class, or NULL if the
1616 /// class could not be found.
1617 ObjCInterfaceDecl *Sema::getObjCInterfaceDecl(IdentifierInfo *&Id,
1618                                               SourceLocation IdLoc,
1619                                               bool DoTypoCorrection) {
1620   // The third "scope" argument is 0 since we aren't enabling lazy built-in
1621   // creation from this context.
1622   NamedDecl *IDecl = LookupSingleName(TUScope, Id, IdLoc, LookupOrdinaryName);
1623 
1624   if (!IDecl && DoTypoCorrection) {
1625     // Perform typo correction at the given location, but only if we
1626     // find an Objective-C class name.
1627     if (TypoCorrection C = CorrectTypo(
1628             DeclarationNameInfo(Id, IdLoc), LookupOrdinaryName, TUScope, nullptr,
1629             llvm::make_unique<DeclFilterCCC<ObjCInterfaceDecl>>(),
1630             CTK_ErrorRecovery)) {
1631       diagnoseTypo(C, PDiag(diag::err_undef_interface_suggest) << Id);
1632       IDecl = C.getCorrectionDeclAs<ObjCInterfaceDecl>();
1633       Id = IDecl->getIdentifier();
1634     }
1635   }
1636   ObjCInterfaceDecl *Def = dyn_cast_or_null<ObjCInterfaceDecl>(IDecl);
1637   // This routine must always return a class definition, if any.
1638   if (Def && Def->getDefinition())
1639       Def = Def->getDefinition();
1640   return Def;
1641 }
1642 
1643 /// getNonFieldDeclScope - Retrieves the innermost scope, starting
1644 /// from S, where a non-field would be declared. This routine copes
1645 /// with the difference between C and C++ scoping rules in structs and
1646 /// unions. For example, the following code is well-formed in C but
1647 /// ill-formed in C++:
1648 /// @code
1649 /// struct S6 {
1650 ///   enum { BAR } e;
1651 /// };
1652 ///
1653 /// void test_S6() {
1654 ///   struct S6 a;
1655 ///   a.e = BAR;
1656 /// }
1657 /// @endcode
1658 /// For the declaration of BAR, this routine will return a different
1659 /// scope. The scope S will be the scope of the unnamed enumeration
1660 /// within S6. In C++, this routine will return the scope associated
1661 /// with S6, because the enumeration's scope is a transparent
1662 /// context but structures can contain non-field names. In C, this
1663 /// routine will return the translation unit scope, since the
1664 /// enumeration's scope is a transparent context and structures cannot
1665 /// contain non-field names.
1666 Scope *Sema::getNonFieldDeclScope(Scope *S) {
1667   while (((S->getFlags() & Scope::DeclScope) == 0) ||
1668          (S->getEntity() && S->getEntity()->isTransparentContext()) ||
1669          (S->isClassScope() && !getLangOpts().CPlusPlus))
1670     S = S->getParent();
1671   return S;
1672 }
1673 
1674 /// \brief Looks up the declaration of "struct objc_super" and
1675 /// saves it for later use in building builtin declaration of
1676 /// objc_msgSendSuper and objc_msgSendSuper_stret. If no such
1677 /// pre-existing declaration exists no action takes place.
1678 static void LookupPredefedObjCSuperType(Sema &ThisSema, Scope *S,
1679                                         IdentifierInfo *II) {
1680   if (!II->isStr("objc_msgSendSuper"))
1681     return;
1682   ASTContext &Context = ThisSema.Context;
1683 
1684   LookupResult Result(ThisSema, &Context.Idents.get("objc_super"),
1685                       SourceLocation(), Sema::LookupTagName);
1686   ThisSema.LookupName(Result, S);
1687   if (Result.getResultKind() == LookupResult::Found)
1688     if (const TagDecl *TD = Result.getAsSingle<TagDecl>())
1689       Context.setObjCSuperType(Context.getTagDeclType(TD));
1690 }
1691 
1692 static StringRef getHeaderName(ASTContext::GetBuiltinTypeError Error) {
1693   switch (Error) {
1694   case ASTContext::GE_None:
1695     return "";
1696   case ASTContext::GE_Missing_stdio:
1697     return "stdio.h";
1698   case ASTContext::GE_Missing_setjmp:
1699     return "setjmp.h";
1700   case ASTContext::GE_Missing_ucontext:
1701     return "ucontext.h";
1702   }
1703   llvm_unreachable("unhandled error kind");
1704 }
1705 
1706 /// LazilyCreateBuiltin - The specified Builtin-ID was first used at
1707 /// file scope.  lazily create a decl for it. ForRedeclaration is true
1708 /// if we're creating this built-in in anticipation of redeclaring the
1709 /// built-in.
1710 NamedDecl *Sema::LazilyCreateBuiltin(IdentifierInfo *II, unsigned ID,
1711                                      Scope *S, bool ForRedeclaration,
1712                                      SourceLocation Loc) {
1713   LookupPredefedObjCSuperType(*this, S, II);
1714 
1715   ASTContext::GetBuiltinTypeError Error;
1716   QualType R = Context.GetBuiltinType(ID, Error);
1717   if (Error) {
1718     if (ForRedeclaration)
1719       Diag(Loc, diag::warn_implicit_decl_requires_sysheader)
1720           << getHeaderName(Error)
1721           << Context.BuiltinInfo.GetName(ID);
1722     return nullptr;
1723   }
1724 
1725   if (!ForRedeclaration && Context.BuiltinInfo.isPredefinedLibFunction(ID)) {
1726     Diag(Loc, diag::ext_implicit_lib_function_decl)
1727       << Context.BuiltinInfo.GetName(ID)
1728       << R;
1729     if (Context.BuiltinInfo.getHeaderName(ID) &&
1730         !Diags.isIgnored(diag::ext_implicit_lib_function_decl, Loc))
1731       Diag(Loc, diag::note_include_header_or_declare)
1732           << Context.BuiltinInfo.getHeaderName(ID)
1733           << Context.BuiltinInfo.GetName(ID);
1734   }
1735 
1736   DeclContext *Parent = Context.getTranslationUnitDecl();
1737   if (getLangOpts().CPlusPlus) {
1738     LinkageSpecDecl *CLinkageDecl =
1739         LinkageSpecDecl::Create(Context, Parent, Loc, Loc,
1740                                 LinkageSpecDecl::lang_c, false);
1741     CLinkageDecl->setImplicit();
1742     Parent->addDecl(CLinkageDecl);
1743     Parent = CLinkageDecl;
1744   }
1745 
1746   FunctionDecl *New = FunctionDecl::Create(Context,
1747                                            Parent,
1748                                            Loc, Loc, II, R, /*TInfo=*/nullptr,
1749                                            SC_Extern,
1750                                            false,
1751                                            R->isFunctionProtoType());
1752   New->setImplicit();
1753 
1754   // Create Decl objects for each parameter, adding them to the
1755   // FunctionDecl.
1756   if (const FunctionProtoType *FT = dyn_cast<FunctionProtoType>(R)) {
1757     SmallVector<ParmVarDecl*, 16> Params;
1758     for (unsigned i = 0, e = FT->getNumParams(); i != e; ++i) {
1759       ParmVarDecl *parm =
1760           ParmVarDecl::Create(Context, New, SourceLocation(), SourceLocation(),
1761                               nullptr, FT->getParamType(i), /*TInfo=*/nullptr,
1762                               SC_None, nullptr);
1763       parm->setScopeInfo(0, i);
1764       Params.push_back(parm);
1765     }
1766     New->setParams(Params);
1767   }
1768 
1769   AddKnownFunctionAttributes(New);
1770   RegisterLocallyScopedExternCDecl(New, S);
1771 
1772   // TUScope is the translation-unit scope to insert this function into.
1773   // FIXME: This is hideous. We need to teach PushOnScopeChains to
1774   // relate Scopes to DeclContexts, and probably eliminate CurContext
1775   // entirely, but we're not there yet.
1776   DeclContext *SavedContext = CurContext;
1777   CurContext = Parent;
1778   PushOnScopeChains(New, TUScope);
1779   CurContext = SavedContext;
1780   return New;
1781 }
1782 
1783 /// \brief Filter out any previous declarations that the given declaration
1784 /// should not consider because they are not permitted to conflict, e.g.,
1785 /// because they come from hidden sub-modules and do not refer to the same
1786 /// entity.
1787 static void filterNonConflictingPreviousDecls(Sema &S,
1788                                               NamedDecl *decl,
1789                                               LookupResult &previous){
1790   // This is only interesting when modules are enabled.
1791   if (!S.getLangOpts().Modules)
1792     return;
1793 
1794   // Empty sets are uninteresting.
1795   if (previous.empty())
1796     return;
1797 
1798   LookupResult::Filter filter = previous.makeFilter();
1799   while (filter.hasNext()) {
1800     NamedDecl *old = filter.next();
1801 
1802     // Non-hidden declarations are never ignored.
1803     if (S.isVisible(old))
1804       continue;
1805 
1806     if (!old->isExternallyVisible())
1807       filter.erase();
1808   }
1809 
1810   filter.done();
1811 }
1812 
1813 /// Typedef declarations don't have linkage, but they still denote the same
1814 /// entity if their types are the same.
1815 /// FIXME: This is notionally doing the same thing as ASTReaderDecl's
1816 /// isSameEntity.
1817 static void filterNonConflictingPreviousTypedefDecls(Sema &S,
1818                                                      TypedefNameDecl *Decl,
1819                                                      LookupResult &Previous) {
1820   // This is only interesting when modules are enabled.
1821   if (!S.getLangOpts().Modules)
1822     return;
1823 
1824   // Empty sets are uninteresting.
1825   if (Previous.empty())
1826     return;
1827 
1828   LookupResult::Filter Filter = Previous.makeFilter();
1829   while (Filter.hasNext()) {
1830     NamedDecl *Old = Filter.next();
1831 
1832     // Non-hidden declarations are never ignored.
1833     if (S.isVisible(Old))
1834       continue;
1835 
1836     // Declarations of the same entity are not ignored, even if they have
1837     // different linkages.
1838     if (auto *OldTD = dyn_cast<TypedefNameDecl>(Old)) {
1839       if (S.Context.hasSameType(OldTD->getUnderlyingType(),
1840                                 Decl->getUnderlyingType()))
1841         continue;
1842 
1843       // If both declarations give a tag declaration a typedef name for linkage
1844       // purposes, then they declare the same entity.
1845       if (OldTD->getAnonDeclWithTypedefName(/*AnyRedecl*/true) &&
1846           Decl->getAnonDeclWithTypedefName())
1847         continue;
1848     }
1849 
1850     if (!Old->isExternallyVisible())
1851       Filter.erase();
1852   }
1853 
1854   Filter.done();
1855 }
1856 
1857 bool Sema::isIncompatibleTypedef(TypeDecl *Old, TypedefNameDecl *New) {
1858   QualType OldType;
1859   if (TypedefNameDecl *OldTypedef = dyn_cast<TypedefNameDecl>(Old))
1860     OldType = OldTypedef->getUnderlyingType();
1861   else
1862     OldType = Context.getTypeDeclType(Old);
1863   QualType NewType = New->getUnderlyingType();
1864 
1865   if (NewType->isVariablyModifiedType()) {
1866     // Must not redefine a typedef with a variably-modified type.
1867     int Kind = isa<TypeAliasDecl>(Old) ? 1 : 0;
1868     Diag(New->getLocation(), diag::err_redefinition_variably_modified_typedef)
1869       << Kind << NewType;
1870     if (Old->getLocation().isValid())
1871       Diag(Old->getLocation(), diag::note_previous_definition);
1872     New->setInvalidDecl();
1873     return true;
1874   }
1875 
1876   if (OldType != NewType &&
1877       !OldType->isDependentType() &&
1878       !NewType->isDependentType() &&
1879       !Context.hasSameType(OldType, NewType)) {
1880     int Kind = isa<TypeAliasDecl>(Old) ? 1 : 0;
1881     Diag(New->getLocation(), diag::err_redefinition_different_typedef)
1882       << Kind << NewType << OldType;
1883     if (Old->getLocation().isValid())
1884       Diag(Old->getLocation(), diag::note_previous_definition);
1885     New->setInvalidDecl();
1886     return true;
1887   }
1888   return false;
1889 }
1890 
1891 /// MergeTypedefNameDecl - We just parsed a typedef 'New' which has the
1892 /// same name and scope as a previous declaration 'Old'.  Figure out
1893 /// how to resolve this situation, merging decls or emitting
1894 /// diagnostics as appropriate. If there was an error, set New to be invalid.
1895 ///
1896 void Sema::MergeTypedefNameDecl(TypedefNameDecl *New, LookupResult &OldDecls) {
1897   // If the new decl is known invalid already, don't bother doing any
1898   // merging checks.
1899   if (New->isInvalidDecl()) return;
1900 
1901   // Allow multiple definitions for ObjC built-in typedefs.
1902   // FIXME: Verify the underlying types are equivalent!
1903   if (getLangOpts().ObjC1) {
1904     const IdentifierInfo *TypeID = New->getIdentifier();
1905     switch (TypeID->getLength()) {
1906     default: break;
1907     case 2:
1908       {
1909         if (!TypeID->isStr("id"))
1910           break;
1911         QualType T = New->getUnderlyingType();
1912         if (!T->isPointerType())
1913           break;
1914         if (!T->isVoidPointerType()) {
1915           QualType PT = T->getAs<PointerType>()->getPointeeType();
1916           if (!PT->isStructureType())
1917             break;
1918         }
1919         Context.setObjCIdRedefinitionType(T);
1920         // Install the built-in type for 'id', ignoring the current definition.
1921         New->setTypeForDecl(Context.getObjCIdType().getTypePtr());
1922         return;
1923       }
1924     case 5:
1925       if (!TypeID->isStr("Class"))
1926         break;
1927       Context.setObjCClassRedefinitionType(New->getUnderlyingType());
1928       // Install the built-in type for 'Class', ignoring the current definition.
1929       New->setTypeForDecl(Context.getObjCClassType().getTypePtr());
1930       return;
1931     case 3:
1932       if (!TypeID->isStr("SEL"))
1933         break;
1934       Context.setObjCSelRedefinitionType(New->getUnderlyingType());
1935       // Install the built-in type for 'SEL', ignoring the current definition.
1936       New->setTypeForDecl(Context.getObjCSelType().getTypePtr());
1937       return;
1938     }
1939     // Fall through - the typedef name was not a builtin type.
1940   }
1941 
1942   // Verify the old decl was also a type.
1943   TypeDecl *Old = OldDecls.getAsSingle<TypeDecl>();
1944   if (!Old) {
1945     Diag(New->getLocation(), diag::err_redefinition_different_kind)
1946       << New->getDeclName();
1947 
1948     NamedDecl *OldD = OldDecls.getRepresentativeDecl();
1949     if (OldD->getLocation().isValid())
1950       Diag(OldD->getLocation(), diag::note_previous_definition);
1951 
1952     return New->setInvalidDecl();
1953   }
1954 
1955   // If the old declaration is invalid, just give up here.
1956   if (Old->isInvalidDecl())
1957     return New->setInvalidDecl();
1958 
1959   if (auto *OldTD = dyn_cast<TypedefNameDecl>(Old)) {
1960     auto *OldTag = OldTD->getAnonDeclWithTypedefName(/*AnyRedecl*/true);
1961     auto *NewTag = New->getAnonDeclWithTypedefName();
1962     NamedDecl *Hidden = nullptr;
1963     if (getLangOpts().CPlusPlus && OldTag && NewTag &&
1964         OldTag->getCanonicalDecl() != NewTag->getCanonicalDecl() &&
1965         !hasVisibleDefinition(OldTag, &Hidden)) {
1966       // There is a definition of this tag, but it is not visible. Use it
1967       // instead of our tag.
1968       New->setTypeForDecl(OldTD->getTypeForDecl());
1969       if (OldTD->isModed())
1970         New->setModedTypeSourceInfo(OldTD->getTypeSourceInfo(),
1971                                     OldTD->getUnderlyingType());
1972       else
1973         New->setTypeSourceInfo(OldTD->getTypeSourceInfo());
1974 
1975       // Make the old tag definition visible.
1976       makeMergedDefinitionVisible(Hidden, NewTag->getLocation());
1977     }
1978   }
1979 
1980   // If the typedef types are not identical, reject them in all languages and
1981   // with any extensions enabled.
1982   if (isIncompatibleTypedef(Old, New))
1983     return;
1984 
1985   // The types match.  Link up the redeclaration chain and merge attributes if
1986   // the old declaration was a typedef.
1987   if (TypedefNameDecl *Typedef = dyn_cast<TypedefNameDecl>(Old)) {
1988     New->setPreviousDecl(Typedef);
1989     mergeDeclAttributes(New, Old);
1990   }
1991 
1992   if (getLangOpts().MicrosoftExt)
1993     return;
1994 
1995   if (getLangOpts().CPlusPlus) {
1996     // C++ [dcl.typedef]p2:
1997     //   In a given non-class scope, a typedef specifier can be used to
1998     //   redefine the name of any type declared in that scope to refer
1999     //   to the type to which it already refers.
2000     if (!isa<CXXRecordDecl>(CurContext))
2001       return;
2002 
2003     // C++0x [dcl.typedef]p4:
2004     //   In a given class scope, a typedef specifier can be used to redefine
2005     //   any class-name declared in that scope that is not also a typedef-name
2006     //   to refer to the type to which it already refers.
2007     //
2008     // This wording came in via DR424, which was a correction to the
2009     // wording in DR56, which accidentally banned code like:
2010     //
2011     //   struct S {
2012     //     typedef struct A { } A;
2013     //   };
2014     //
2015     // in the C++03 standard. We implement the C++0x semantics, which
2016     // allow the above but disallow
2017     //
2018     //   struct S {
2019     //     typedef int I;
2020     //     typedef int I;
2021     //   };
2022     //
2023     // since that was the intent of DR56.
2024     if (!isa<TypedefNameDecl>(Old))
2025       return;
2026 
2027     Diag(New->getLocation(), diag::err_redefinition)
2028       << New->getDeclName();
2029     Diag(Old->getLocation(), diag::note_previous_definition);
2030     return New->setInvalidDecl();
2031   }
2032 
2033   // Modules always permit redefinition of typedefs, as does C11.
2034   if (getLangOpts().Modules || getLangOpts().C11)
2035     return;
2036 
2037   // If we have a redefinition of a typedef in C, emit a warning.  This warning
2038   // is normally mapped to an error, but can be controlled with
2039   // -Wtypedef-redefinition.  If either the original or the redefinition is
2040   // in a system header, don't emit this for compatibility with GCC.
2041   if (getDiagnostics().getSuppressSystemWarnings() &&
2042       (Context.getSourceManager().isInSystemHeader(Old->getLocation()) ||
2043        Context.getSourceManager().isInSystemHeader(New->getLocation())))
2044     return;
2045 
2046   Diag(New->getLocation(), diag::ext_redefinition_of_typedef)
2047     << New->getDeclName();
2048   Diag(Old->getLocation(), diag::note_previous_definition);
2049 }
2050 
2051 /// DeclhasAttr - returns true if decl Declaration already has the target
2052 /// attribute.
2053 static bool DeclHasAttr(const Decl *D, const Attr *A) {
2054   const OwnershipAttr *OA = dyn_cast<OwnershipAttr>(A);
2055   const AnnotateAttr *Ann = dyn_cast<AnnotateAttr>(A);
2056   for (const auto *i : D->attrs())
2057     if (i->getKind() == A->getKind()) {
2058       if (Ann) {
2059         if (Ann->getAnnotation() == cast<AnnotateAttr>(i)->getAnnotation())
2060           return true;
2061         continue;
2062       }
2063       // FIXME: Don't hardcode this check
2064       if (OA && isa<OwnershipAttr>(i))
2065         return OA->getOwnKind() == cast<OwnershipAttr>(i)->getOwnKind();
2066       return true;
2067     }
2068 
2069   return false;
2070 }
2071 
2072 static bool isAttributeTargetADefinition(Decl *D) {
2073   if (VarDecl *VD = dyn_cast<VarDecl>(D))
2074     return VD->isThisDeclarationADefinition();
2075   if (TagDecl *TD = dyn_cast<TagDecl>(D))
2076     return TD->isCompleteDefinition() || TD->isBeingDefined();
2077   return true;
2078 }
2079 
2080 /// Merge alignment attributes from \p Old to \p New, taking into account the
2081 /// special semantics of C11's _Alignas specifier and C++11's alignas attribute.
2082 ///
2083 /// \return \c true if any attributes were added to \p New.
2084 static bool mergeAlignedAttrs(Sema &S, NamedDecl *New, Decl *Old) {
2085   // Look for alignas attributes on Old, and pick out whichever attribute
2086   // specifies the strictest alignment requirement.
2087   AlignedAttr *OldAlignasAttr = nullptr;
2088   AlignedAttr *OldStrictestAlignAttr = nullptr;
2089   unsigned OldAlign = 0;
2090   for (auto *I : Old->specific_attrs<AlignedAttr>()) {
2091     // FIXME: We have no way of representing inherited dependent alignments
2092     // in a case like:
2093     //   template<int A, int B> struct alignas(A) X;
2094     //   template<int A, int B> struct alignas(B) X {};
2095     // For now, we just ignore any alignas attributes which are not on the
2096     // definition in such a case.
2097     if (I->isAlignmentDependent())
2098       return false;
2099 
2100     if (I->isAlignas())
2101       OldAlignasAttr = I;
2102 
2103     unsigned Align = I->getAlignment(S.Context);
2104     if (Align > OldAlign) {
2105       OldAlign = Align;
2106       OldStrictestAlignAttr = I;
2107     }
2108   }
2109 
2110   // Look for alignas attributes on New.
2111   AlignedAttr *NewAlignasAttr = nullptr;
2112   unsigned NewAlign = 0;
2113   for (auto *I : New->specific_attrs<AlignedAttr>()) {
2114     if (I->isAlignmentDependent())
2115       return false;
2116 
2117     if (I->isAlignas())
2118       NewAlignasAttr = I;
2119 
2120     unsigned Align = I->getAlignment(S.Context);
2121     if (Align > NewAlign)
2122       NewAlign = Align;
2123   }
2124 
2125   if (OldAlignasAttr && NewAlignasAttr && OldAlign != NewAlign) {
2126     // Both declarations have 'alignas' attributes. We require them to match.
2127     // C++11 [dcl.align]p6 and C11 6.7.5/7 both come close to saying this, but
2128     // fall short. (If two declarations both have alignas, they must both match
2129     // every definition, and so must match each other if there is a definition.)
2130 
2131     // If either declaration only contains 'alignas(0)' specifiers, then it
2132     // specifies the natural alignment for the type.
2133     if (OldAlign == 0 || NewAlign == 0) {
2134       QualType Ty;
2135       if (ValueDecl *VD = dyn_cast<ValueDecl>(New))
2136         Ty = VD->getType();
2137       else
2138         Ty = S.Context.getTagDeclType(cast<TagDecl>(New));
2139 
2140       if (OldAlign == 0)
2141         OldAlign = S.Context.getTypeAlign(Ty);
2142       if (NewAlign == 0)
2143         NewAlign = S.Context.getTypeAlign(Ty);
2144     }
2145 
2146     if (OldAlign != NewAlign) {
2147       S.Diag(NewAlignasAttr->getLocation(), diag::err_alignas_mismatch)
2148         << (unsigned)S.Context.toCharUnitsFromBits(OldAlign).getQuantity()
2149         << (unsigned)S.Context.toCharUnitsFromBits(NewAlign).getQuantity();
2150       S.Diag(OldAlignasAttr->getLocation(), diag::note_previous_declaration);
2151     }
2152   }
2153 
2154   if (OldAlignasAttr && !NewAlignasAttr && isAttributeTargetADefinition(New)) {
2155     // C++11 [dcl.align]p6:
2156     //   if any declaration of an entity has an alignment-specifier,
2157     //   every defining declaration of that entity shall specify an
2158     //   equivalent alignment.
2159     // C11 6.7.5/7:
2160     //   If the definition of an object does not have an alignment
2161     //   specifier, any other declaration of that object shall also
2162     //   have no alignment specifier.
2163     S.Diag(New->getLocation(), diag::err_alignas_missing_on_definition)
2164       << OldAlignasAttr;
2165     S.Diag(OldAlignasAttr->getLocation(), diag::note_alignas_on_declaration)
2166       << OldAlignasAttr;
2167   }
2168 
2169   bool AnyAdded = false;
2170 
2171   // Ensure we have an attribute representing the strictest alignment.
2172   if (OldAlign > NewAlign) {
2173     AlignedAttr *Clone = OldStrictestAlignAttr->clone(S.Context);
2174     Clone->setInherited(true);
2175     New->addAttr(Clone);
2176     AnyAdded = true;
2177   }
2178 
2179   // Ensure we have an alignas attribute if the old declaration had one.
2180   if (OldAlignasAttr && !NewAlignasAttr &&
2181       !(AnyAdded && OldStrictestAlignAttr->isAlignas())) {
2182     AlignedAttr *Clone = OldAlignasAttr->clone(S.Context);
2183     Clone->setInherited(true);
2184     New->addAttr(Clone);
2185     AnyAdded = true;
2186   }
2187 
2188   return AnyAdded;
2189 }
2190 
2191 static bool mergeDeclAttribute(Sema &S, NamedDecl *D,
2192                                const InheritableAttr *Attr, bool Override) {
2193   InheritableAttr *NewAttr = nullptr;
2194   unsigned AttrSpellingListIndex = Attr->getSpellingListIndex();
2195   if (const auto *AA = dyn_cast<AvailabilityAttr>(Attr))
2196     NewAttr = S.mergeAvailabilityAttr(D, AA->getRange(), AA->getPlatform(),
2197                                       AA->getIntroduced(), AA->getDeprecated(),
2198                                       AA->getObsoleted(), AA->getUnavailable(),
2199                                       AA->getMessage(), Override,
2200                                       AttrSpellingListIndex);
2201   else if (const auto *VA = dyn_cast<VisibilityAttr>(Attr))
2202     NewAttr = S.mergeVisibilityAttr(D, VA->getRange(), VA->getVisibility(),
2203                                     AttrSpellingListIndex);
2204   else if (const auto *VA = dyn_cast<TypeVisibilityAttr>(Attr))
2205     NewAttr = S.mergeTypeVisibilityAttr(D, VA->getRange(), VA->getVisibility(),
2206                                         AttrSpellingListIndex);
2207   else if (const auto *ImportA = dyn_cast<DLLImportAttr>(Attr))
2208     NewAttr = S.mergeDLLImportAttr(D, ImportA->getRange(),
2209                                    AttrSpellingListIndex);
2210   else if (const auto *ExportA = dyn_cast<DLLExportAttr>(Attr))
2211     NewAttr = S.mergeDLLExportAttr(D, ExportA->getRange(),
2212                                    AttrSpellingListIndex);
2213   else if (const auto *FA = dyn_cast<FormatAttr>(Attr))
2214     NewAttr = S.mergeFormatAttr(D, FA->getRange(), FA->getType(),
2215                                 FA->getFormatIdx(), FA->getFirstArg(),
2216                                 AttrSpellingListIndex);
2217   else if (const auto *SA = dyn_cast<SectionAttr>(Attr))
2218     NewAttr = S.mergeSectionAttr(D, SA->getRange(), SA->getName(),
2219                                  AttrSpellingListIndex);
2220   else if (const auto *IA = dyn_cast<MSInheritanceAttr>(Attr))
2221     NewAttr = S.mergeMSInheritanceAttr(D, IA->getRange(), IA->getBestCase(),
2222                                        AttrSpellingListIndex,
2223                                        IA->getSemanticSpelling());
2224   else if (const auto *AA = dyn_cast<AlwaysInlineAttr>(Attr))
2225     NewAttr = S.mergeAlwaysInlineAttr(D, AA->getRange(),
2226                                       &S.Context.Idents.get(AA->getSpelling()),
2227                                       AttrSpellingListIndex);
2228   else if (const auto *MA = dyn_cast<MinSizeAttr>(Attr))
2229     NewAttr = S.mergeMinSizeAttr(D, MA->getRange(), AttrSpellingListIndex);
2230   else if (const auto *OA = dyn_cast<OptimizeNoneAttr>(Attr))
2231     NewAttr = S.mergeOptimizeNoneAttr(D, OA->getRange(), AttrSpellingListIndex);
2232   else if (isa<AlignedAttr>(Attr))
2233     // AlignedAttrs are handled separately, because we need to handle all
2234     // such attributes on a declaration at the same time.
2235     NewAttr = nullptr;
2236   else if (isa<DeprecatedAttr>(Attr) && Override)
2237     NewAttr = nullptr;
2238   else if (Attr->duplicatesAllowed() || !DeclHasAttr(D, Attr))
2239     NewAttr = cast<InheritableAttr>(Attr->clone(S.Context));
2240 
2241   if (NewAttr) {
2242     NewAttr->setInherited(true);
2243     D->addAttr(NewAttr);
2244     return true;
2245   }
2246 
2247   return false;
2248 }
2249 
2250 static const Decl *getDefinition(const Decl *D) {
2251   if (const TagDecl *TD = dyn_cast<TagDecl>(D))
2252     return TD->getDefinition();
2253   if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
2254     const VarDecl *Def = VD->getDefinition();
2255     if (Def)
2256       return Def;
2257     return VD->getActingDefinition();
2258   }
2259   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
2260     const FunctionDecl* Def;
2261     if (FD->isDefined(Def))
2262       return Def;
2263   }
2264   return nullptr;
2265 }
2266 
2267 static bool hasAttribute(const Decl *D, attr::Kind Kind) {
2268   for (const auto *Attribute : D->attrs())
2269     if (Attribute->getKind() == Kind)
2270       return true;
2271   return false;
2272 }
2273 
2274 /// checkNewAttributesAfterDef - If we already have a definition, check that
2275 /// there are no new attributes in this declaration.
2276 static void checkNewAttributesAfterDef(Sema &S, Decl *New, const Decl *Old) {
2277   if (!New->hasAttrs())
2278     return;
2279 
2280   const Decl *Def = getDefinition(Old);
2281   if (!Def || Def == New)
2282     return;
2283 
2284   AttrVec &NewAttributes = New->getAttrs();
2285   for (unsigned I = 0, E = NewAttributes.size(); I != E;) {
2286     const Attr *NewAttribute = NewAttributes[I];
2287 
2288     if (isa<AliasAttr>(NewAttribute)) {
2289       if (FunctionDecl *FD = dyn_cast<FunctionDecl>(New))
2290         S.CheckForFunctionRedefinition(FD, cast<FunctionDecl>(Def));
2291       else {
2292         VarDecl *VD = cast<VarDecl>(New);
2293         unsigned Diag = cast<VarDecl>(Def)->isThisDeclarationADefinition() ==
2294                                 VarDecl::TentativeDefinition
2295                             ? diag::err_alias_after_tentative
2296                             : diag::err_redefinition;
2297         S.Diag(VD->getLocation(), Diag) << VD->getDeclName();
2298         S.Diag(Def->getLocation(), diag::note_previous_definition);
2299         VD->setInvalidDecl();
2300       }
2301       ++I;
2302       continue;
2303     }
2304 
2305     if (const VarDecl *VD = dyn_cast<VarDecl>(Def)) {
2306       // Tentative definitions are only interesting for the alias check above.
2307       if (VD->isThisDeclarationADefinition() != VarDecl::Definition) {
2308         ++I;
2309         continue;
2310       }
2311     }
2312 
2313     if (hasAttribute(Def, NewAttribute->getKind())) {
2314       ++I;
2315       continue; // regular attr merging will take care of validating this.
2316     }
2317 
2318     if (isa<C11NoReturnAttr>(NewAttribute)) {
2319       // C's _Noreturn is allowed to be added to a function after it is defined.
2320       ++I;
2321       continue;
2322     } else if (const AlignedAttr *AA = dyn_cast<AlignedAttr>(NewAttribute)) {
2323       if (AA->isAlignas()) {
2324         // C++11 [dcl.align]p6:
2325         //   if any declaration of an entity has an alignment-specifier,
2326         //   every defining declaration of that entity shall specify an
2327         //   equivalent alignment.
2328         // C11 6.7.5/7:
2329         //   If the definition of an object does not have an alignment
2330         //   specifier, any other declaration of that object shall also
2331         //   have no alignment specifier.
2332         S.Diag(Def->getLocation(), diag::err_alignas_missing_on_definition)
2333           << AA;
2334         S.Diag(NewAttribute->getLocation(), diag::note_alignas_on_declaration)
2335           << AA;
2336         NewAttributes.erase(NewAttributes.begin() + I);
2337         --E;
2338         continue;
2339       }
2340     }
2341 
2342     S.Diag(NewAttribute->getLocation(),
2343            diag::warn_attribute_precede_definition);
2344     S.Diag(Def->getLocation(), diag::note_previous_definition);
2345     NewAttributes.erase(NewAttributes.begin() + I);
2346     --E;
2347   }
2348 }
2349 
2350 /// mergeDeclAttributes - Copy attributes from the Old decl to the New one.
2351 void Sema::mergeDeclAttributes(NamedDecl *New, Decl *Old,
2352                                AvailabilityMergeKind AMK) {
2353   if (UsedAttr *OldAttr = Old->getMostRecentDecl()->getAttr<UsedAttr>()) {
2354     UsedAttr *NewAttr = OldAttr->clone(Context);
2355     NewAttr->setInherited(true);
2356     New->addAttr(NewAttr);
2357   }
2358 
2359   if (!Old->hasAttrs() && !New->hasAttrs())
2360     return;
2361 
2362   // attributes declared post-definition are currently ignored
2363   checkNewAttributesAfterDef(*this, New, Old);
2364 
2365   if (!Old->hasAttrs())
2366     return;
2367 
2368   bool foundAny = New->hasAttrs();
2369 
2370   // Ensure that any moving of objects within the allocated map is done before
2371   // we process them.
2372   if (!foundAny) New->setAttrs(AttrVec());
2373 
2374   for (auto *I : Old->specific_attrs<InheritableAttr>()) {
2375     bool Override = false;
2376     // Ignore deprecated/unavailable/availability attributes if requested.
2377     if (isa<DeprecatedAttr>(I) ||
2378         isa<UnavailableAttr>(I) ||
2379         isa<AvailabilityAttr>(I)) {
2380       switch (AMK) {
2381       case AMK_None:
2382         continue;
2383 
2384       case AMK_Redeclaration:
2385         break;
2386 
2387       case AMK_Override:
2388         Override = true;
2389         break;
2390       }
2391     }
2392 
2393     // Already handled.
2394     if (isa<UsedAttr>(I))
2395       continue;
2396 
2397     if (mergeDeclAttribute(*this, New, I, Override))
2398       foundAny = true;
2399   }
2400 
2401   if (mergeAlignedAttrs(*this, New, Old))
2402     foundAny = true;
2403 
2404   if (!foundAny) New->dropAttrs();
2405 }
2406 
2407 /// mergeParamDeclAttributes - Copy attributes from the old parameter
2408 /// to the new one.
2409 static void mergeParamDeclAttributes(ParmVarDecl *newDecl,
2410                                      const ParmVarDecl *oldDecl,
2411                                      Sema &S) {
2412   // C++11 [dcl.attr.depend]p2:
2413   //   The first declaration of a function shall specify the
2414   //   carries_dependency attribute for its declarator-id if any declaration
2415   //   of the function specifies the carries_dependency attribute.
2416   const CarriesDependencyAttr *CDA = newDecl->getAttr<CarriesDependencyAttr>();
2417   if (CDA && !oldDecl->hasAttr<CarriesDependencyAttr>()) {
2418     S.Diag(CDA->getLocation(),
2419            diag::err_carries_dependency_missing_on_first_decl) << 1/*Param*/;
2420     // Find the first declaration of the parameter.
2421     // FIXME: Should we build redeclaration chains for function parameters?
2422     const FunctionDecl *FirstFD =
2423       cast<FunctionDecl>(oldDecl->getDeclContext())->getFirstDecl();
2424     const ParmVarDecl *FirstVD =
2425       FirstFD->getParamDecl(oldDecl->getFunctionScopeIndex());
2426     S.Diag(FirstVD->getLocation(),
2427            diag::note_carries_dependency_missing_first_decl) << 1/*Param*/;
2428   }
2429 
2430   if (!oldDecl->hasAttrs())
2431     return;
2432 
2433   bool foundAny = newDecl->hasAttrs();
2434 
2435   // Ensure that any moving of objects within the allocated map is
2436   // done before we process them.
2437   if (!foundAny) newDecl->setAttrs(AttrVec());
2438 
2439   for (const auto *I : oldDecl->specific_attrs<InheritableParamAttr>()) {
2440     if (!DeclHasAttr(newDecl, I)) {
2441       InheritableAttr *newAttr =
2442         cast<InheritableParamAttr>(I->clone(S.Context));
2443       newAttr->setInherited(true);
2444       newDecl->addAttr(newAttr);
2445       foundAny = true;
2446     }
2447   }
2448 
2449   if (!foundAny) newDecl->dropAttrs();
2450 }
2451 
2452 namespace {
2453 
2454 /// Used in MergeFunctionDecl to keep track of function parameters in
2455 /// C.
2456 struct GNUCompatibleParamWarning {
2457   ParmVarDecl *OldParm;
2458   ParmVarDecl *NewParm;
2459   QualType PromotedType;
2460 };
2461 
2462 }
2463 
2464 /// getSpecialMember - get the special member enum for a method.
2465 Sema::CXXSpecialMember Sema::getSpecialMember(const CXXMethodDecl *MD) {
2466   if (const CXXConstructorDecl *Ctor = dyn_cast<CXXConstructorDecl>(MD)) {
2467     if (Ctor->isDefaultConstructor())
2468       return Sema::CXXDefaultConstructor;
2469 
2470     if (Ctor->isCopyConstructor())
2471       return Sema::CXXCopyConstructor;
2472 
2473     if (Ctor->isMoveConstructor())
2474       return Sema::CXXMoveConstructor;
2475   } else if (isa<CXXDestructorDecl>(MD)) {
2476     return Sema::CXXDestructor;
2477   } else if (MD->isCopyAssignmentOperator()) {
2478     return Sema::CXXCopyAssignment;
2479   } else if (MD->isMoveAssignmentOperator()) {
2480     return Sema::CXXMoveAssignment;
2481   }
2482 
2483   return Sema::CXXInvalid;
2484 }
2485 
2486 // Determine whether the previous declaration was a definition, implicit
2487 // declaration, or a declaration.
2488 template <typename T>
2489 static std::pair<diag::kind, SourceLocation>
2490 getNoteDiagForInvalidRedeclaration(const T *Old, const T *New) {
2491   diag::kind PrevDiag;
2492   SourceLocation OldLocation = Old->getLocation();
2493   if (Old->isThisDeclarationADefinition())
2494     PrevDiag = diag::note_previous_definition;
2495   else if (Old->isImplicit()) {
2496     PrevDiag = diag::note_previous_implicit_declaration;
2497     if (OldLocation.isInvalid())
2498       OldLocation = New->getLocation();
2499   } else
2500     PrevDiag = diag::note_previous_declaration;
2501   return std::make_pair(PrevDiag, OldLocation);
2502 }
2503 
2504 /// canRedefineFunction - checks if a function can be redefined. Currently,
2505 /// only extern inline functions can be redefined, and even then only in
2506 /// GNU89 mode.
2507 static bool canRedefineFunction(const FunctionDecl *FD,
2508                                 const LangOptions& LangOpts) {
2509   return ((FD->hasAttr<GNUInlineAttr>() || LangOpts.GNUInline) &&
2510           !LangOpts.CPlusPlus &&
2511           FD->isInlineSpecified() &&
2512           FD->getStorageClass() == SC_Extern);
2513 }
2514 
2515 const AttributedType *Sema::getCallingConvAttributedType(QualType T) const {
2516   const AttributedType *AT = T->getAs<AttributedType>();
2517   while (AT && !AT->isCallingConv())
2518     AT = AT->getModifiedType()->getAs<AttributedType>();
2519   return AT;
2520 }
2521 
2522 template <typename T>
2523 static bool haveIncompatibleLanguageLinkages(const T *Old, const T *New) {
2524   const DeclContext *DC = Old->getDeclContext();
2525   if (DC->isRecord())
2526     return false;
2527 
2528   LanguageLinkage OldLinkage = Old->getLanguageLinkage();
2529   if (OldLinkage == CXXLanguageLinkage && New->isInExternCContext())
2530     return true;
2531   if (OldLinkage == CLanguageLinkage && New->isInExternCXXContext())
2532     return true;
2533   return false;
2534 }
2535 
2536 /// MergeFunctionDecl - We just parsed a function 'New' from
2537 /// declarator D which has the same name and scope as a previous
2538 /// declaration 'Old'.  Figure out how to resolve this situation,
2539 /// merging decls or emitting diagnostics as appropriate.
2540 ///
2541 /// In C++, New and Old must be declarations that are not
2542 /// overloaded. Use IsOverload to determine whether New and Old are
2543 /// overloaded, and to select the Old declaration that New should be
2544 /// merged with.
2545 ///
2546 /// Returns true if there was an error, false otherwise.
2547 bool Sema::MergeFunctionDecl(FunctionDecl *New, NamedDecl *&OldD,
2548                              Scope *S, bool MergeTypeWithOld) {
2549   // Verify the old decl was also a function.
2550   FunctionDecl *Old = OldD->getAsFunction();
2551   if (!Old) {
2552     if (UsingShadowDecl *Shadow = dyn_cast<UsingShadowDecl>(OldD)) {
2553       if (New->getFriendObjectKind()) {
2554         Diag(New->getLocation(), diag::err_using_decl_friend);
2555         Diag(Shadow->getTargetDecl()->getLocation(),
2556              diag::note_using_decl_target);
2557         Diag(Shadow->getUsingDecl()->getLocation(),
2558              diag::note_using_decl) << 0;
2559         return true;
2560       }
2561 
2562       // C++11 [namespace.udecl]p14:
2563       //   If a function declaration in namespace scope or block scope has the
2564       //   same name and the same parameter-type-list as a function introduced
2565       //   by a using-declaration, and the declarations do not declare the same
2566       //   function, the program is ill-formed.
2567 
2568       // Check whether the two declarations might declare the same function.
2569       Old = dyn_cast<FunctionDecl>(Shadow->getTargetDecl());
2570       if (Old &&
2571           !Old->getDeclContext()->getRedeclContext()->Equals(
2572               New->getDeclContext()->getRedeclContext()) &&
2573           !(Old->isExternC() && New->isExternC()))
2574         Old = nullptr;
2575 
2576       if (!Old) {
2577         Diag(New->getLocation(), diag::err_using_decl_conflict_reverse);
2578         Diag(Shadow->getTargetDecl()->getLocation(),
2579              diag::note_using_decl_target);
2580         Diag(Shadow->getUsingDecl()->getLocation(), diag::note_using_decl) << 0;
2581         return true;
2582       }
2583       OldD = Old;
2584     } else {
2585       Diag(New->getLocation(), diag::err_redefinition_different_kind)
2586         << New->getDeclName();
2587       Diag(OldD->getLocation(), diag::note_previous_definition);
2588       return true;
2589     }
2590   }
2591 
2592   // If the old declaration is invalid, just give up here.
2593   if (Old->isInvalidDecl())
2594     return true;
2595 
2596   diag::kind PrevDiag;
2597   SourceLocation OldLocation;
2598   std::tie(PrevDiag, OldLocation) =
2599       getNoteDiagForInvalidRedeclaration(Old, New);
2600 
2601   // Don't complain about this if we're in GNU89 mode and the old function
2602   // is an extern inline function.
2603   // Don't complain about specializations. They are not supposed to have
2604   // storage classes.
2605   if (!isa<CXXMethodDecl>(New) && !isa<CXXMethodDecl>(Old) &&
2606       New->getStorageClass() == SC_Static &&
2607       Old->hasExternalFormalLinkage() &&
2608       !New->getTemplateSpecializationInfo() &&
2609       !canRedefineFunction(Old, getLangOpts())) {
2610     if (getLangOpts().MicrosoftExt) {
2611       Diag(New->getLocation(), diag::ext_static_non_static) << New;
2612       Diag(OldLocation, PrevDiag);
2613     } else {
2614       Diag(New->getLocation(), diag::err_static_non_static) << New;
2615       Diag(OldLocation, PrevDiag);
2616       return true;
2617     }
2618   }
2619 
2620 
2621   // If a function is first declared with a calling convention, but is later
2622   // declared or defined without one, all following decls assume the calling
2623   // convention of the first.
2624   //
2625   // It's OK if a function is first declared without a calling convention,
2626   // but is later declared or defined with the default calling convention.
2627   //
2628   // To test if either decl has an explicit calling convention, we look for
2629   // AttributedType sugar nodes on the type as written.  If they are missing or
2630   // were canonicalized away, we assume the calling convention was implicit.
2631   //
2632   // Note also that we DO NOT return at this point, because we still have
2633   // other tests to run.
2634   QualType OldQType = Context.getCanonicalType(Old->getType());
2635   QualType NewQType = Context.getCanonicalType(New->getType());
2636   const FunctionType *OldType = cast<FunctionType>(OldQType);
2637   const FunctionType *NewType = cast<FunctionType>(NewQType);
2638   FunctionType::ExtInfo OldTypeInfo = OldType->getExtInfo();
2639   FunctionType::ExtInfo NewTypeInfo = NewType->getExtInfo();
2640   bool RequiresAdjustment = false;
2641 
2642   if (OldTypeInfo.getCC() != NewTypeInfo.getCC()) {
2643     FunctionDecl *First = Old->getFirstDecl();
2644     const FunctionType *FT =
2645         First->getType().getCanonicalType()->castAs<FunctionType>();
2646     FunctionType::ExtInfo FI = FT->getExtInfo();
2647     bool NewCCExplicit = getCallingConvAttributedType(New->getType());
2648     if (!NewCCExplicit) {
2649       // Inherit the CC from the previous declaration if it was specified
2650       // there but not here.
2651       NewTypeInfo = NewTypeInfo.withCallingConv(OldTypeInfo.getCC());
2652       RequiresAdjustment = true;
2653     } else {
2654       // Calling conventions aren't compatible, so complain.
2655       bool FirstCCExplicit = getCallingConvAttributedType(First->getType());
2656       Diag(New->getLocation(), diag::err_cconv_change)
2657         << FunctionType::getNameForCallConv(NewTypeInfo.getCC())
2658         << !FirstCCExplicit
2659         << (!FirstCCExplicit ? "" :
2660             FunctionType::getNameForCallConv(FI.getCC()));
2661 
2662       // Put the note on the first decl, since it is the one that matters.
2663       Diag(First->getLocation(), diag::note_previous_declaration);
2664       return true;
2665     }
2666   }
2667 
2668   // FIXME: diagnose the other way around?
2669   if (OldTypeInfo.getNoReturn() && !NewTypeInfo.getNoReturn()) {
2670     NewTypeInfo = NewTypeInfo.withNoReturn(true);
2671     RequiresAdjustment = true;
2672   }
2673 
2674   // Merge regparm attribute.
2675   if (OldTypeInfo.getHasRegParm() != NewTypeInfo.getHasRegParm() ||
2676       OldTypeInfo.getRegParm() != NewTypeInfo.getRegParm()) {
2677     if (NewTypeInfo.getHasRegParm()) {
2678       Diag(New->getLocation(), diag::err_regparm_mismatch)
2679         << NewType->getRegParmType()
2680         << OldType->getRegParmType();
2681       Diag(OldLocation, diag::note_previous_declaration);
2682       return true;
2683     }
2684 
2685     NewTypeInfo = NewTypeInfo.withRegParm(OldTypeInfo.getRegParm());
2686     RequiresAdjustment = true;
2687   }
2688 
2689   // Merge ns_returns_retained attribute.
2690   if (OldTypeInfo.getProducesResult() != NewTypeInfo.getProducesResult()) {
2691     if (NewTypeInfo.getProducesResult()) {
2692       Diag(New->getLocation(), diag::err_returns_retained_mismatch);
2693       Diag(OldLocation, diag::note_previous_declaration);
2694       return true;
2695     }
2696 
2697     NewTypeInfo = NewTypeInfo.withProducesResult(true);
2698     RequiresAdjustment = true;
2699   }
2700 
2701   if (RequiresAdjustment) {
2702     const FunctionType *AdjustedType = New->getType()->getAs<FunctionType>();
2703     AdjustedType = Context.adjustFunctionType(AdjustedType, NewTypeInfo);
2704     New->setType(QualType(AdjustedType, 0));
2705     NewQType = Context.getCanonicalType(New->getType());
2706     NewType = cast<FunctionType>(NewQType);
2707   }
2708 
2709   // If this redeclaration makes the function inline, we may need to add it to
2710   // UndefinedButUsed.
2711   if (!Old->isInlined() && New->isInlined() &&
2712       !New->hasAttr<GNUInlineAttr>() &&
2713       !getLangOpts().GNUInline &&
2714       Old->isUsed(false) &&
2715       !Old->isDefined() && !New->isThisDeclarationADefinition())
2716     UndefinedButUsed.insert(std::make_pair(Old->getCanonicalDecl(),
2717                                            SourceLocation()));
2718 
2719   // If this redeclaration makes it newly gnu_inline, we don't want to warn
2720   // about it.
2721   if (New->hasAttr<GNUInlineAttr>() &&
2722       Old->isInlined() && !Old->hasAttr<GNUInlineAttr>()) {
2723     UndefinedButUsed.erase(Old->getCanonicalDecl());
2724   }
2725 
2726   if (getLangOpts().CPlusPlus) {
2727     // (C++98 13.1p2):
2728     //   Certain function declarations cannot be overloaded:
2729     //     -- Function declarations that differ only in the return type
2730     //        cannot be overloaded.
2731 
2732     // Go back to the type source info to compare the declared return types,
2733     // per C++1y [dcl.type.auto]p13:
2734     //   Redeclarations or specializations of a function or function template
2735     //   with a declared return type that uses a placeholder type shall also
2736     //   use that placeholder, not a deduced type.
2737     QualType OldDeclaredReturnType =
2738         (Old->getTypeSourceInfo()
2739              ? Old->getTypeSourceInfo()->getType()->castAs<FunctionType>()
2740              : OldType)->getReturnType();
2741     QualType NewDeclaredReturnType =
2742         (New->getTypeSourceInfo()
2743              ? New->getTypeSourceInfo()->getType()->castAs<FunctionType>()
2744              : NewType)->getReturnType();
2745     QualType ResQT;
2746     if (!Context.hasSameType(OldDeclaredReturnType, NewDeclaredReturnType) &&
2747         !((NewQType->isDependentType() || OldQType->isDependentType()) &&
2748           New->isLocalExternDecl())) {
2749       if (NewDeclaredReturnType->isObjCObjectPointerType() &&
2750           OldDeclaredReturnType->isObjCObjectPointerType())
2751         ResQT = Context.mergeObjCGCQualifiers(NewQType, OldQType);
2752       if (ResQT.isNull()) {
2753         if (New->isCXXClassMember() && New->isOutOfLine())
2754           Diag(New->getLocation(), diag::err_member_def_does_not_match_ret_type)
2755               << New << New->getReturnTypeSourceRange();
2756         else
2757           Diag(New->getLocation(), diag::err_ovl_diff_return_type)
2758               << New->getReturnTypeSourceRange();
2759         Diag(OldLocation, PrevDiag) << Old << Old->getType()
2760                                     << Old->getReturnTypeSourceRange();
2761         return true;
2762       }
2763       else
2764         NewQType = ResQT;
2765     }
2766 
2767     QualType OldReturnType = OldType->getReturnType();
2768     QualType NewReturnType = cast<FunctionType>(NewQType)->getReturnType();
2769     if (OldReturnType != NewReturnType) {
2770       // If this function has a deduced return type and has already been
2771       // defined, copy the deduced value from the old declaration.
2772       AutoType *OldAT = Old->getReturnType()->getContainedAutoType();
2773       if (OldAT && OldAT->isDeduced()) {
2774         New->setType(
2775             SubstAutoType(New->getType(),
2776                           OldAT->isDependentType() ? Context.DependentTy
2777                                                    : OldAT->getDeducedType()));
2778         NewQType = Context.getCanonicalType(
2779             SubstAutoType(NewQType,
2780                           OldAT->isDependentType() ? Context.DependentTy
2781                                                    : OldAT->getDeducedType()));
2782       }
2783     }
2784 
2785     const CXXMethodDecl *OldMethod = dyn_cast<CXXMethodDecl>(Old);
2786     CXXMethodDecl *NewMethod = dyn_cast<CXXMethodDecl>(New);
2787     if (OldMethod && NewMethod) {
2788       // Preserve triviality.
2789       NewMethod->setTrivial(OldMethod->isTrivial());
2790 
2791       // MSVC allows explicit template specialization at class scope:
2792       // 2 CXXMethodDecls referring to the same function will be injected.
2793       // We don't want a redeclaration error.
2794       bool IsClassScopeExplicitSpecialization =
2795                               OldMethod->isFunctionTemplateSpecialization() &&
2796                               NewMethod->isFunctionTemplateSpecialization();
2797       bool isFriend = NewMethod->getFriendObjectKind();
2798 
2799       if (!isFriend && NewMethod->getLexicalDeclContext()->isRecord() &&
2800           !IsClassScopeExplicitSpecialization) {
2801         //    -- Member function declarations with the same name and the
2802         //       same parameter types cannot be overloaded if any of them
2803         //       is a static member function declaration.
2804         if (OldMethod->isStatic() != NewMethod->isStatic()) {
2805           Diag(New->getLocation(), diag::err_ovl_static_nonstatic_member);
2806           Diag(OldLocation, PrevDiag) << Old << Old->getType();
2807           return true;
2808         }
2809 
2810         // C++ [class.mem]p1:
2811         //   [...] A member shall not be declared twice in the
2812         //   member-specification, except that a nested class or member
2813         //   class template can be declared and then later defined.
2814         if (ActiveTemplateInstantiations.empty()) {
2815           unsigned NewDiag;
2816           if (isa<CXXConstructorDecl>(OldMethod))
2817             NewDiag = diag::err_constructor_redeclared;
2818           else if (isa<CXXDestructorDecl>(NewMethod))
2819             NewDiag = diag::err_destructor_redeclared;
2820           else if (isa<CXXConversionDecl>(NewMethod))
2821             NewDiag = diag::err_conv_function_redeclared;
2822           else
2823             NewDiag = diag::err_member_redeclared;
2824 
2825           Diag(New->getLocation(), NewDiag);
2826         } else {
2827           Diag(New->getLocation(), diag::err_member_redeclared_in_instantiation)
2828             << New << New->getType();
2829         }
2830         Diag(OldLocation, PrevDiag) << Old << Old->getType();
2831         return true;
2832 
2833       // Complain if this is an explicit declaration of a special
2834       // member that was initially declared implicitly.
2835       //
2836       // As an exception, it's okay to befriend such methods in order
2837       // to permit the implicit constructor/destructor/operator calls.
2838       } else if (OldMethod->isImplicit()) {
2839         if (isFriend) {
2840           NewMethod->setImplicit();
2841         } else {
2842           Diag(NewMethod->getLocation(),
2843                diag::err_definition_of_implicitly_declared_member)
2844             << New << getSpecialMember(OldMethod);
2845           return true;
2846         }
2847       } else if (OldMethod->isExplicitlyDefaulted() && !isFriend) {
2848         Diag(NewMethod->getLocation(),
2849              diag::err_definition_of_explicitly_defaulted_member)
2850           << getSpecialMember(OldMethod);
2851         return true;
2852       }
2853     }
2854 
2855     // C++11 [dcl.attr.noreturn]p1:
2856     //   The first declaration of a function shall specify the noreturn
2857     //   attribute if any declaration of that function specifies the noreturn
2858     //   attribute.
2859     const CXX11NoReturnAttr *NRA = New->getAttr<CXX11NoReturnAttr>();
2860     if (NRA && !Old->hasAttr<CXX11NoReturnAttr>()) {
2861       Diag(NRA->getLocation(), diag::err_noreturn_missing_on_first_decl);
2862       Diag(Old->getFirstDecl()->getLocation(),
2863            diag::note_noreturn_missing_first_decl);
2864     }
2865 
2866     // C++11 [dcl.attr.depend]p2:
2867     //   The first declaration of a function shall specify the
2868     //   carries_dependency attribute for its declarator-id if any declaration
2869     //   of the function specifies the carries_dependency attribute.
2870     const CarriesDependencyAttr *CDA = New->getAttr<CarriesDependencyAttr>();
2871     if (CDA && !Old->hasAttr<CarriesDependencyAttr>()) {
2872       Diag(CDA->getLocation(),
2873            diag::err_carries_dependency_missing_on_first_decl) << 0/*Function*/;
2874       Diag(Old->getFirstDecl()->getLocation(),
2875            diag::note_carries_dependency_missing_first_decl) << 0/*Function*/;
2876     }
2877 
2878     // (C++98 8.3.5p3):
2879     //   All declarations for a function shall agree exactly in both the
2880     //   return type and the parameter-type-list.
2881     // We also want to respect all the extended bits except noreturn.
2882 
2883     // noreturn should now match unless the old type info didn't have it.
2884     QualType OldQTypeForComparison = OldQType;
2885     if (!OldTypeInfo.getNoReturn() && NewTypeInfo.getNoReturn()) {
2886       assert(OldQType == QualType(OldType, 0));
2887       const FunctionType *OldTypeForComparison
2888         = Context.adjustFunctionType(OldType, OldTypeInfo.withNoReturn(true));
2889       OldQTypeForComparison = QualType(OldTypeForComparison, 0);
2890       assert(OldQTypeForComparison.isCanonical());
2891     }
2892 
2893     if (haveIncompatibleLanguageLinkages(Old, New)) {
2894       // As a special case, retain the language linkage from previous
2895       // declarations of a friend function as an extension.
2896       //
2897       // This liberal interpretation of C++ [class.friend]p3 matches GCC/MSVC
2898       // and is useful because there's otherwise no way to specify language
2899       // linkage within class scope.
2900       //
2901       // Check cautiously as the friend object kind isn't yet complete.
2902       if (New->getFriendObjectKind() != Decl::FOK_None) {
2903         Diag(New->getLocation(), diag::ext_retained_language_linkage) << New;
2904         Diag(OldLocation, PrevDiag);
2905       } else {
2906         Diag(New->getLocation(), diag::err_different_language_linkage) << New;
2907         Diag(OldLocation, PrevDiag);
2908         return true;
2909       }
2910     }
2911 
2912     if (OldQTypeForComparison == NewQType)
2913       return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld);
2914 
2915     if ((NewQType->isDependentType() || OldQType->isDependentType()) &&
2916         New->isLocalExternDecl()) {
2917       // It's OK if we couldn't merge types for a local function declaraton
2918       // if either the old or new type is dependent. We'll merge the types
2919       // when we instantiate the function.
2920       return false;
2921     }
2922 
2923     // Fall through for conflicting redeclarations and redefinitions.
2924   }
2925 
2926   // C: Function types need to be compatible, not identical. This handles
2927   // duplicate function decls like "void f(int); void f(enum X);" properly.
2928   if (!getLangOpts().CPlusPlus &&
2929       Context.typesAreCompatible(OldQType, NewQType)) {
2930     const FunctionType *OldFuncType = OldQType->getAs<FunctionType>();
2931     const FunctionType *NewFuncType = NewQType->getAs<FunctionType>();
2932     const FunctionProtoType *OldProto = nullptr;
2933     if (MergeTypeWithOld && isa<FunctionNoProtoType>(NewFuncType) &&
2934         (OldProto = dyn_cast<FunctionProtoType>(OldFuncType))) {
2935       // The old declaration provided a function prototype, but the
2936       // new declaration does not. Merge in the prototype.
2937       assert(!OldProto->hasExceptionSpec() && "Exception spec in C");
2938       SmallVector<QualType, 16> ParamTypes(OldProto->param_types());
2939       NewQType =
2940           Context.getFunctionType(NewFuncType->getReturnType(), ParamTypes,
2941                                   OldProto->getExtProtoInfo());
2942       New->setType(NewQType);
2943       New->setHasInheritedPrototype();
2944 
2945       // Synthesize parameters with the same types.
2946       SmallVector<ParmVarDecl*, 16> Params;
2947       for (const auto &ParamType : OldProto->param_types()) {
2948         ParmVarDecl *Param = ParmVarDecl::Create(Context, New, SourceLocation(),
2949                                                  SourceLocation(), nullptr,
2950                                                  ParamType, /*TInfo=*/nullptr,
2951                                                  SC_None, nullptr);
2952         Param->setScopeInfo(0, Params.size());
2953         Param->setImplicit();
2954         Params.push_back(Param);
2955       }
2956 
2957       New->setParams(Params);
2958     }
2959 
2960     return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld);
2961   }
2962 
2963   // GNU C permits a K&R definition to follow a prototype declaration
2964   // if the declared types of the parameters in the K&R definition
2965   // match the types in the prototype declaration, even when the
2966   // promoted types of the parameters from the K&R definition differ
2967   // from the types in the prototype. GCC then keeps the types from
2968   // the prototype.
2969   //
2970   // If a variadic prototype is followed by a non-variadic K&R definition,
2971   // the K&R definition becomes variadic.  This is sort of an edge case, but
2972   // it's legal per the standard depending on how you read C99 6.7.5.3p15 and
2973   // C99 6.9.1p8.
2974   if (!getLangOpts().CPlusPlus &&
2975       Old->hasPrototype() && !New->hasPrototype() &&
2976       New->getType()->getAs<FunctionProtoType>() &&
2977       Old->getNumParams() == New->getNumParams()) {
2978     SmallVector<QualType, 16> ArgTypes;
2979     SmallVector<GNUCompatibleParamWarning, 16> Warnings;
2980     const FunctionProtoType *OldProto
2981       = Old->getType()->getAs<FunctionProtoType>();
2982     const FunctionProtoType *NewProto
2983       = New->getType()->getAs<FunctionProtoType>();
2984 
2985     // Determine whether this is the GNU C extension.
2986     QualType MergedReturn = Context.mergeTypes(OldProto->getReturnType(),
2987                                                NewProto->getReturnType());
2988     bool LooseCompatible = !MergedReturn.isNull();
2989     for (unsigned Idx = 0, End = Old->getNumParams();
2990          LooseCompatible && Idx != End; ++Idx) {
2991       ParmVarDecl *OldParm = Old->getParamDecl(Idx);
2992       ParmVarDecl *NewParm = New->getParamDecl(Idx);
2993       if (Context.typesAreCompatible(OldParm->getType(),
2994                                      NewProto->getParamType(Idx))) {
2995         ArgTypes.push_back(NewParm->getType());
2996       } else if (Context.typesAreCompatible(OldParm->getType(),
2997                                             NewParm->getType(),
2998                                             /*CompareUnqualified=*/true)) {
2999         GNUCompatibleParamWarning Warn = { OldParm, NewParm,
3000                                            NewProto->getParamType(Idx) };
3001         Warnings.push_back(Warn);
3002         ArgTypes.push_back(NewParm->getType());
3003       } else
3004         LooseCompatible = false;
3005     }
3006 
3007     if (LooseCompatible) {
3008       for (unsigned Warn = 0; Warn < Warnings.size(); ++Warn) {
3009         Diag(Warnings[Warn].NewParm->getLocation(),
3010              diag::ext_param_promoted_not_compatible_with_prototype)
3011           << Warnings[Warn].PromotedType
3012           << Warnings[Warn].OldParm->getType();
3013         if (Warnings[Warn].OldParm->getLocation().isValid())
3014           Diag(Warnings[Warn].OldParm->getLocation(),
3015                diag::note_previous_declaration);
3016       }
3017 
3018       if (MergeTypeWithOld)
3019         New->setType(Context.getFunctionType(MergedReturn, ArgTypes,
3020                                              OldProto->getExtProtoInfo()));
3021       return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld);
3022     }
3023 
3024     // Fall through to diagnose conflicting types.
3025   }
3026 
3027   // A function that has already been declared has been redeclared or
3028   // defined with a different type; show an appropriate diagnostic.
3029 
3030   // If the previous declaration was an implicitly-generated builtin
3031   // declaration, then at the very least we should use a specialized note.
3032   unsigned BuiltinID;
3033   if (Old->isImplicit() && (BuiltinID = Old->getBuiltinID())) {
3034     // If it's actually a library-defined builtin function like 'malloc'
3035     // or 'printf', just warn about the incompatible redeclaration.
3036     if (Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) {
3037       Diag(New->getLocation(), diag::warn_redecl_library_builtin) << New;
3038       Diag(OldLocation, diag::note_previous_builtin_declaration)
3039         << Old << Old->getType();
3040 
3041       // If this is a global redeclaration, just forget hereafter
3042       // about the "builtin-ness" of the function.
3043       //
3044       // Doing this for local extern declarations is problematic.  If
3045       // the builtin declaration remains visible, a second invalid
3046       // local declaration will produce a hard error; if it doesn't
3047       // remain visible, a single bogus local redeclaration (which is
3048       // actually only a warning) could break all the downstream code.
3049       if (!New->getLexicalDeclContext()->isFunctionOrMethod())
3050         New->getIdentifier()->setBuiltinID(Builtin::NotBuiltin);
3051 
3052       return false;
3053     }
3054 
3055     PrevDiag = diag::note_previous_builtin_declaration;
3056   }
3057 
3058   Diag(New->getLocation(), diag::err_conflicting_types) << New->getDeclName();
3059   Diag(OldLocation, PrevDiag) << Old << Old->getType();
3060   return true;
3061 }
3062 
3063 /// \brief Completes the merge of two function declarations that are
3064 /// known to be compatible.
3065 ///
3066 /// This routine handles the merging of attributes and other
3067 /// properties of function declarations from the old declaration to
3068 /// the new declaration, once we know that New is in fact a
3069 /// redeclaration of Old.
3070 ///
3071 /// \returns false
3072 bool Sema::MergeCompatibleFunctionDecls(FunctionDecl *New, FunctionDecl *Old,
3073                                         Scope *S, bool MergeTypeWithOld) {
3074   // Merge the attributes
3075   mergeDeclAttributes(New, Old);
3076 
3077   // Merge "pure" flag.
3078   if (Old->isPure())
3079     New->setPure();
3080 
3081   // Merge "used" flag.
3082   if (Old->getMostRecentDecl()->isUsed(false))
3083     New->setIsUsed();
3084 
3085   // Merge attributes from the parameters.  These can mismatch with K&R
3086   // declarations.
3087   if (New->getNumParams() == Old->getNumParams())
3088     for (unsigned i = 0, e = New->getNumParams(); i != e; ++i)
3089       mergeParamDeclAttributes(New->getParamDecl(i), Old->getParamDecl(i),
3090                                *this);
3091 
3092   if (getLangOpts().CPlusPlus)
3093     return MergeCXXFunctionDecl(New, Old, S);
3094 
3095   // Merge the function types so the we get the composite types for the return
3096   // and argument types. Per C11 6.2.7/4, only update the type if the old decl
3097   // was visible.
3098   QualType Merged = Context.mergeTypes(Old->getType(), New->getType());
3099   if (!Merged.isNull() && MergeTypeWithOld)
3100     New->setType(Merged);
3101 
3102   return false;
3103 }
3104 
3105 
3106 void Sema::mergeObjCMethodDecls(ObjCMethodDecl *newMethod,
3107                                 ObjCMethodDecl *oldMethod) {
3108 
3109   // Merge the attributes, including deprecated/unavailable
3110   AvailabilityMergeKind MergeKind =
3111     isa<ObjCImplDecl>(newMethod->getDeclContext()) ? AMK_Redeclaration
3112                                                    : AMK_Override;
3113   mergeDeclAttributes(newMethod, oldMethod, MergeKind);
3114 
3115   // Merge attributes from the parameters.
3116   ObjCMethodDecl::param_const_iterator oi = oldMethod->param_begin(),
3117                                        oe = oldMethod->param_end();
3118   for (ObjCMethodDecl::param_iterator
3119          ni = newMethod->param_begin(), ne = newMethod->param_end();
3120        ni != ne && oi != oe; ++ni, ++oi)
3121     mergeParamDeclAttributes(*ni, *oi, *this);
3122 
3123   CheckObjCMethodOverride(newMethod, oldMethod);
3124 }
3125 
3126 /// MergeVarDeclTypes - We parsed a variable 'New' which has the same name and
3127 /// scope as a previous declaration 'Old'.  Figure out how to merge their types,
3128 /// emitting diagnostics as appropriate.
3129 ///
3130 /// Declarations using the auto type specifier (C++ [decl.spec.auto]) call back
3131 /// to here in AddInitializerToDecl. We can't check them before the initializer
3132 /// is attached.
3133 void Sema::MergeVarDeclTypes(VarDecl *New, VarDecl *Old,
3134                              bool MergeTypeWithOld) {
3135   if (New->isInvalidDecl() || Old->isInvalidDecl())
3136     return;
3137 
3138   QualType MergedT;
3139   if (getLangOpts().CPlusPlus) {
3140     if (New->getType()->isUndeducedType()) {
3141       // We don't know what the new type is until the initializer is attached.
3142       return;
3143     } else if (Context.hasSameType(New->getType(), Old->getType())) {
3144       // These could still be something that needs exception specs checked.
3145       return MergeVarDeclExceptionSpecs(New, Old);
3146     }
3147     // C++ [basic.link]p10:
3148     //   [...] the types specified by all declarations referring to a given
3149     //   object or function shall be identical, except that declarations for an
3150     //   array object can specify array types that differ by the presence or
3151     //   absence of a major array bound (8.3.4).
3152     else if (Old->getType()->isIncompleteArrayType() &&
3153              New->getType()->isArrayType()) {
3154       const ArrayType *OldArray = Context.getAsArrayType(Old->getType());
3155       const ArrayType *NewArray = Context.getAsArrayType(New->getType());
3156       if (Context.hasSameType(OldArray->getElementType(),
3157                               NewArray->getElementType()))
3158         MergedT = New->getType();
3159     } else if (Old->getType()->isArrayType() &&
3160                New->getType()->isIncompleteArrayType()) {
3161       const ArrayType *OldArray = Context.getAsArrayType(Old->getType());
3162       const ArrayType *NewArray = Context.getAsArrayType(New->getType());
3163       if (Context.hasSameType(OldArray->getElementType(),
3164                               NewArray->getElementType()))
3165         MergedT = Old->getType();
3166     } else if (New->getType()->isObjCObjectPointerType() &&
3167                Old->getType()->isObjCObjectPointerType()) {
3168       MergedT = Context.mergeObjCGCQualifiers(New->getType(),
3169                                               Old->getType());
3170     }
3171   } else {
3172     // C 6.2.7p2:
3173     //   All declarations that refer to the same object or function shall have
3174     //   compatible type.
3175     MergedT = Context.mergeTypes(New->getType(), Old->getType());
3176   }
3177   if (MergedT.isNull()) {
3178     // It's OK if we couldn't merge types if either type is dependent, for a
3179     // block-scope variable. In other cases (static data members of class
3180     // templates, variable templates, ...), we require the types to be
3181     // equivalent.
3182     // FIXME: The C++ standard doesn't say anything about this.
3183     if ((New->getType()->isDependentType() ||
3184          Old->getType()->isDependentType()) && New->isLocalVarDecl()) {
3185       // If the old type was dependent, we can't merge with it, so the new type
3186       // becomes dependent for now. We'll reproduce the original type when we
3187       // instantiate the TypeSourceInfo for the variable.
3188       if (!New->getType()->isDependentType() && MergeTypeWithOld)
3189         New->setType(Context.DependentTy);
3190       return;
3191     }
3192 
3193     // FIXME: Even if this merging succeeds, some other non-visible declaration
3194     // of this variable might have an incompatible type. For instance:
3195     //
3196     //   extern int arr[];
3197     //   void f() { extern int arr[2]; }
3198     //   void g() { extern int arr[3]; }
3199     //
3200     // Neither C nor C++ requires a diagnostic for this, but we should still try
3201     // to diagnose it.
3202     Diag(New->getLocation(), diag::err_redefinition_different_type)
3203       << New->getDeclName() << New->getType() << Old->getType();
3204     Diag(Old->getLocation(), diag::note_previous_definition);
3205     return New->setInvalidDecl();
3206   }
3207 
3208   // Don't actually update the type on the new declaration if the old
3209   // declaration was an extern declaration in a different scope.
3210   if (MergeTypeWithOld)
3211     New->setType(MergedT);
3212 }
3213 
3214 static bool mergeTypeWithPrevious(Sema &S, VarDecl *NewVD, VarDecl *OldVD,
3215                                   LookupResult &Previous) {
3216   // C11 6.2.7p4:
3217   //   For an identifier with internal or external linkage declared
3218   //   in a scope in which a prior declaration of that identifier is
3219   //   visible, if the prior declaration specifies internal or
3220   //   external linkage, the type of the identifier at the later
3221   //   declaration becomes the composite type.
3222   //
3223   // If the variable isn't visible, we do not merge with its type.
3224   if (Previous.isShadowed())
3225     return false;
3226 
3227   if (S.getLangOpts().CPlusPlus) {
3228     // C++11 [dcl.array]p3:
3229     //   If there is a preceding declaration of the entity in the same
3230     //   scope in which the bound was specified, an omitted array bound
3231     //   is taken to be the same as in that earlier declaration.
3232     return NewVD->isPreviousDeclInSameBlockScope() ||
3233            (!OldVD->getLexicalDeclContext()->isFunctionOrMethod() &&
3234             !NewVD->getLexicalDeclContext()->isFunctionOrMethod());
3235   } else {
3236     // If the old declaration was function-local, don't merge with its
3237     // type unless we're in the same function.
3238     return !OldVD->getLexicalDeclContext()->isFunctionOrMethod() ||
3239            OldVD->getLexicalDeclContext() == NewVD->getLexicalDeclContext();
3240   }
3241 }
3242 
3243 /// MergeVarDecl - We just parsed a variable 'New' which has the same name
3244 /// and scope as a previous declaration 'Old'.  Figure out how to resolve this
3245 /// situation, merging decls or emitting diagnostics as appropriate.
3246 ///
3247 /// Tentative definition rules (C99 6.9.2p2) are checked by
3248 /// FinalizeDeclaratorGroup. Unfortunately, we can't analyze tentative
3249 /// definitions here, since the initializer hasn't been attached.
3250 ///
3251 void Sema::MergeVarDecl(VarDecl *New, LookupResult &Previous) {
3252   // If the new decl is already invalid, don't do any other checking.
3253   if (New->isInvalidDecl())
3254     return;
3255 
3256   VarTemplateDecl *NewTemplate = New->getDescribedVarTemplate();
3257 
3258   // Verify the old decl was also a variable or variable template.
3259   VarDecl *Old = nullptr;
3260   VarTemplateDecl *OldTemplate = nullptr;
3261   if (Previous.isSingleResult()) {
3262     if (NewTemplate) {
3263       OldTemplate = dyn_cast<VarTemplateDecl>(Previous.getFoundDecl());
3264       Old = OldTemplate ? OldTemplate->getTemplatedDecl() : nullptr;
3265     } else
3266       Old = dyn_cast<VarDecl>(Previous.getFoundDecl());
3267   }
3268   if (!Old) {
3269     Diag(New->getLocation(), diag::err_redefinition_different_kind)
3270       << New->getDeclName();
3271     Diag(Previous.getRepresentativeDecl()->getLocation(),
3272          diag::note_previous_definition);
3273     return New->setInvalidDecl();
3274   }
3275 
3276   if (!shouldLinkPossiblyHiddenDecl(Old, New))
3277     return;
3278 
3279   // Ensure the template parameters are compatible.
3280   if (NewTemplate &&
3281       !TemplateParameterListsAreEqual(NewTemplate->getTemplateParameters(),
3282                                       OldTemplate->getTemplateParameters(),
3283                                       /*Complain=*/true, TPL_TemplateMatch))
3284     return;
3285 
3286   // C++ [class.mem]p1:
3287   //   A member shall not be declared twice in the member-specification [...]
3288   //
3289   // Here, we need only consider static data members.
3290   if (Old->isStaticDataMember() && !New->isOutOfLine()) {
3291     Diag(New->getLocation(), diag::err_duplicate_member)
3292       << New->getIdentifier();
3293     Diag(Old->getLocation(), diag::note_previous_declaration);
3294     New->setInvalidDecl();
3295   }
3296 
3297   mergeDeclAttributes(New, Old);
3298   // Warn if an already-declared variable is made a weak_import in a subsequent
3299   // declaration
3300   if (New->hasAttr<WeakImportAttr>() &&
3301       Old->getStorageClass() == SC_None &&
3302       !Old->hasAttr<WeakImportAttr>()) {
3303     Diag(New->getLocation(), diag::warn_weak_import) << New->getDeclName();
3304     Diag(Old->getLocation(), diag::note_previous_definition);
3305     // Remove weak_import attribute on new declaration.
3306     New->dropAttr<WeakImportAttr>();
3307   }
3308 
3309   // Merge the types.
3310   VarDecl *MostRecent = Old->getMostRecentDecl();
3311   if (MostRecent != Old) {
3312     MergeVarDeclTypes(New, MostRecent,
3313                       mergeTypeWithPrevious(*this, New, MostRecent, Previous));
3314     if (New->isInvalidDecl())
3315       return;
3316   }
3317 
3318   MergeVarDeclTypes(New, Old, mergeTypeWithPrevious(*this, New, Old, Previous));
3319   if (New->isInvalidDecl())
3320     return;
3321 
3322   diag::kind PrevDiag;
3323   SourceLocation OldLocation;
3324   std::tie(PrevDiag, OldLocation) =
3325       getNoteDiagForInvalidRedeclaration(Old, New);
3326 
3327   // [dcl.stc]p8: Check if we have a non-static decl followed by a static.
3328   if (New->getStorageClass() == SC_Static &&
3329       !New->isStaticDataMember() &&
3330       Old->hasExternalFormalLinkage()) {
3331     if (getLangOpts().MicrosoftExt) {
3332       Diag(New->getLocation(), diag::ext_static_non_static)
3333           << New->getDeclName();
3334       Diag(OldLocation, PrevDiag);
3335     } else {
3336       Diag(New->getLocation(), diag::err_static_non_static)
3337           << New->getDeclName();
3338       Diag(OldLocation, PrevDiag);
3339       return New->setInvalidDecl();
3340     }
3341   }
3342   // C99 6.2.2p4:
3343   //   For an identifier declared with the storage-class specifier
3344   //   extern in a scope in which a prior declaration of that
3345   //   identifier is visible,23) if the prior declaration specifies
3346   //   internal or external linkage, the linkage of the identifier at
3347   //   the later declaration is the same as the linkage specified at
3348   //   the prior declaration. If no prior declaration is visible, or
3349   //   if the prior declaration specifies no linkage, then the
3350   //   identifier has external linkage.
3351   if (New->hasExternalStorage() && Old->hasLinkage())
3352     /* Okay */;
3353   else if (New->getCanonicalDecl()->getStorageClass() != SC_Static &&
3354            !New->isStaticDataMember() &&
3355            Old->getCanonicalDecl()->getStorageClass() == SC_Static) {
3356     Diag(New->getLocation(), diag::err_non_static_static) << New->getDeclName();
3357     Diag(OldLocation, PrevDiag);
3358     return New->setInvalidDecl();
3359   }
3360 
3361   // Check if extern is followed by non-extern and vice-versa.
3362   if (New->hasExternalStorage() &&
3363       !Old->hasLinkage() && Old->isLocalVarDeclOrParm()) {
3364     Diag(New->getLocation(), diag::err_extern_non_extern) << New->getDeclName();
3365     Diag(OldLocation, PrevDiag);
3366     return New->setInvalidDecl();
3367   }
3368   if (Old->hasLinkage() && New->isLocalVarDeclOrParm() &&
3369       !New->hasExternalStorage()) {
3370     Diag(New->getLocation(), diag::err_non_extern_extern) << New->getDeclName();
3371     Diag(OldLocation, PrevDiag);
3372     return New->setInvalidDecl();
3373   }
3374 
3375   // Variables with external linkage are analyzed in FinalizeDeclaratorGroup.
3376 
3377   // FIXME: The test for external storage here seems wrong? We still
3378   // need to check for mismatches.
3379   if (!New->hasExternalStorage() && !New->isFileVarDecl() &&
3380       // Don't complain about out-of-line definitions of static members.
3381       !(Old->getLexicalDeclContext()->isRecord() &&
3382         !New->getLexicalDeclContext()->isRecord())) {
3383     Diag(New->getLocation(), diag::err_redefinition) << New->getDeclName();
3384     Diag(OldLocation, PrevDiag);
3385     return New->setInvalidDecl();
3386   }
3387 
3388   if (New->getTLSKind() != Old->getTLSKind()) {
3389     if (!Old->getTLSKind()) {
3390       Diag(New->getLocation(), diag::err_thread_non_thread) << New->getDeclName();
3391       Diag(OldLocation, PrevDiag);
3392     } else if (!New->getTLSKind()) {
3393       Diag(New->getLocation(), diag::err_non_thread_thread) << New->getDeclName();
3394       Diag(OldLocation, PrevDiag);
3395     } else {
3396       // Do not allow redeclaration to change the variable between requiring
3397       // static and dynamic initialization.
3398       // FIXME: GCC allows this, but uses the TLS keyword on the first
3399       // declaration to determine the kind. Do we need to be compatible here?
3400       Diag(New->getLocation(), diag::err_thread_thread_different_kind)
3401         << New->getDeclName() << (New->getTLSKind() == VarDecl::TLS_Dynamic);
3402       Diag(OldLocation, PrevDiag);
3403     }
3404   }
3405 
3406   // C++ doesn't have tentative definitions, so go right ahead and check here.
3407   VarDecl *Def;
3408   if (getLangOpts().CPlusPlus &&
3409       New->isThisDeclarationADefinition() == VarDecl::Definition &&
3410       (Def = Old->getDefinition())) {
3411     NamedDecl *Hidden = nullptr;
3412     if (!hasVisibleDefinition(Def, &Hidden) &&
3413         (New->getDescribedVarTemplate() ||
3414          New->getNumTemplateParameterLists() ||
3415          New->getDeclContext()->isDependentContext())) {
3416       // The previous definition is hidden, and multiple definitions are
3417       // permitted (in separate TUs). Form another definition of it.
3418     } else {
3419       Diag(New->getLocation(), diag::err_redefinition) << New;
3420       Diag(Def->getLocation(), diag::note_previous_definition);
3421       New->setInvalidDecl();
3422       return;
3423     }
3424   }
3425 
3426   if (haveIncompatibleLanguageLinkages(Old, New)) {
3427     Diag(New->getLocation(), diag::err_different_language_linkage) << New;
3428     Diag(OldLocation, PrevDiag);
3429     New->setInvalidDecl();
3430     return;
3431   }
3432 
3433   // Merge "used" flag.
3434   if (Old->getMostRecentDecl()->isUsed(false))
3435     New->setIsUsed();
3436 
3437   // Keep a chain of previous declarations.
3438   New->setPreviousDecl(Old);
3439   if (NewTemplate)
3440     NewTemplate->setPreviousDecl(OldTemplate);
3441 
3442   // Inherit access appropriately.
3443   New->setAccess(Old->getAccess());
3444   if (NewTemplate)
3445     NewTemplate->setAccess(New->getAccess());
3446 }
3447 
3448 /// ParsedFreeStandingDeclSpec - This method is invoked when a declspec with
3449 /// no declarator (e.g. "struct foo;") is parsed.
3450 Decl *Sema::ParsedFreeStandingDeclSpec(Scope *S, AccessSpecifier AS,
3451                                        DeclSpec &DS) {
3452   return ParsedFreeStandingDeclSpec(S, AS, DS, MultiTemplateParamsArg());
3453 }
3454 
3455 // The MS ABI changed between VS2013 and VS2015 with regard to numbers used to
3456 // disambiguate entities defined in different scopes.
3457 // While the VS2015 ABI fixes potential miscompiles, it is also breaks
3458 // compatibility.
3459 // We will pick our mangling number depending on which version of MSVC is being
3460 // targeted.
3461 static unsigned getMSManglingNumber(const LangOptions &LO, Scope *S) {
3462   return LO.isCompatibleWithMSVC(LangOptions::MSVC2015)
3463              ? S->getMSCurManglingNumber()
3464              : S->getMSLastManglingNumber();
3465 }
3466 
3467 void Sema::handleTagNumbering(const TagDecl *Tag, Scope *TagScope) {
3468   if (!Context.getLangOpts().CPlusPlus)
3469     return;
3470 
3471   if (isa<CXXRecordDecl>(Tag->getParent())) {
3472     // If this tag is the direct child of a class, number it if
3473     // it is anonymous.
3474     if (!Tag->getName().empty() || Tag->getTypedefNameForAnonDecl())
3475       return;
3476     MangleNumberingContext &MCtx =
3477         Context.getManglingNumberContext(Tag->getParent());
3478     Context.setManglingNumber(
3479         Tag, MCtx.getManglingNumber(
3480                  Tag, getMSManglingNumber(getLangOpts(), TagScope)));
3481     return;
3482   }
3483 
3484   // If this tag isn't a direct child of a class, number it if it is local.
3485   Decl *ManglingContextDecl;
3486   if (MangleNumberingContext *MCtx = getCurrentMangleNumberContext(
3487           Tag->getDeclContext(), ManglingContextDecl)) {
3488     Context.setManglingNumber(
3489         Tag, MCtx->getManglingNumber(
3490                  Tag, getMSManglingNumber(getLangOpts(), TagScope)));
3491   }
3492 }
3493 
3494 void Sema::setTagNameForLinkagePurposes(TagDecl *TagFromDeclSpec,
3495                                         TypedefNameDecl *NewTD) {
3496   // Do nothing if the tag is not anonymous or already has an
3497   // associated typedef (from an earlier typedef in this decl group).
3498   if (TagFromDeclSpec->getIdentifier())
3499     return;
3500   if (TagFromDeclSpec->getTypedefNameForAnonDecl())
3501     return;
3502 
3503   // A well-formed anonymous tag must always be a TUK_Definition.
3504   assert(TagFromDeclSpec->isThisDeclarationADefinition());
3505 
3506   // The type must match the tag exactly;  no qualifiers allowed.
3507   if (!Context.hasSameType(NewTD->getUnderlyingType(),
3508                            Context.getTagDeclType(TagFromDeclSpec)))
3509     return;
3510 
3511   // If we've already computed linkage for the anonymous tag, then
3512   // adding a typedef name for the anonymous decl can change that
3513   // linkage, which might be a serious problem.  Diagnose this as
3514   // unsupported and ignore the typedef name.  TODO: we should
3515   // pursue this as a language defect and establish a formal rule
3516   // for how to handle it.
3517   if (TagFromDeclSpec->hasLinkageBeenComputed()) {
3518     Diag(NewTD->getLocation(), diag::err_typedef_changes_linkage);
3519 
3520     SourceLocation tagLoc = TagFromDeclSpec->getInnerLocStart();
3521     tagLoc = getLocForEndOfToken(tagLoc);
3522 
3523     llvm::SmallString<40> textToInsert;
3524     textToInsert += ' ';
3525     textToInsert += NewTD->getIdentifier()->getName();
3526     Diag(tagLoc, diag::note_typedef_changes_linkage)
3527         << FixItHint::CreateInsertion(tagLoc, textToInsert);
3528     return;
3529   }
3530 
3531   // Otherwise, set this is the anon-decl typedef for the tag.
3532   TagFromDeclSpec->setTypedefNameForAnonDecl(NewTD);
3533 }
3534 
3535 /// ParsedFreeStandingDeclSpec - This method is invoked when a declspec with
3536 /// no declarator (e.g. "struct foo;") is parsed. It also accepts template
3537 /// parameters to cope with template friend declarations.
3538 Decl *Sema::ParsedFreeStandingDeclSpec(Scope *S, AccessSpecifier AS,
3539                                        DeclSpec &DS,
3540                                        MultiTemplateParamsArg TemplateParams,
3541                                        bool IsExplicitInstantiation) {
3542   Decl *TagD = nullptr;
3543   TagDecl *Tag = nullptr;
3544   if (DS.getTypeSpecType() == DeclSpec::TST_class ||
3545       DS.getTypeSpecType() == DeclSpec::TST_struct ||
3546       DS.getTypeSpecType() == DeclSpec::TST_interface ||
3547       DS.getTypeSpecType() == DeclSpec::TST_union ||
3548       DS.getTypeSpecType() == DeclSpec::TST_enum) {
3549     TagD = DS.getRepAsDecl();
3550 
3551     if (!TagD) // We probably had an error
3552       return nullptr;
3553 
3554     // Note that the above type specs guarantee that the
3555     // type rep is a Decl, whereas in many of the others
3556     // it's a Type.
3557     if (isa<TagDecl>(TagD))
3558       Tag = cast<TagDecl>(TagD);
3559     else if (ClassTemplateDecl *CTD = dyn_cast<ClassTemplateDecl>(TagD))
3560       Tag = CTD->getTemplatedDecl();
3561   }
3562 
3563   if (Tag) {
3564     handleTagNumbering(Tag, S);
3565     Tag->setFreeStanding();
3566     if (Tag->isInvalidDecl())
3567       return Tag;
3568   }
3569 
3570   if (unsigned TypeQuals = DS.getTypeQualifiers()) {
3571     // Enforce C99 6.7.3p2: "Types other than pointer types derived from object
3572     // or incomplete types shall not be restrict-qualified."
3573     if (TypeQuals & DeclSpec::TQ_restrict)
3574       Diag(DS.getRestrictSpecLoc(),
3575            diag::err_typecheck_invalid_restrict_not_pointer_noarg)
3576            << DS.getSourceRange();
3577   }
3578 
3579   if (DS.isConstexprSpecified()) {
3580     // C++0x [dcl.constexpr]p1: constexpr can only be applied to declarations
3581     // and definitions of functions and variables.
3582     if (Tag)
3583       Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_tag)
3584         << (DS.getTypeSpecType() == DeclSpec::TST_class ? 0 :
3585             DS.getTypeSpecType() == DeclSpec::TST_struct ? 1 :
3586             DS.getTypeSpecType() == DeclSpec::TST_interface ? 2 :
3587             DS.getTypeSpecType() == DeclSpec::TST_union ? 3 : 4);
3588     else
3589       Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_no_declarators);
3590     // Don't emit warnings after this error.
3591     return TagD;
3592   }
3593 
3594   DiagnoseFunctionSpecifiers(DS);
3595 
3596   if (DS.isFriendSpecified()) {
3597     // If we're dealing with a decl but not a TagDecl, assume that
3598     // whatever routines created it handled the friendship aspect.
3599     if (TagD && !Tag)
3600       return nullptr;
3601     return ActOnFriendTypeDecl(S, DS, TemplateParams);
3602   }
3603 
3604   const CXXScopeSpec &SS = DS.getTypeSpecScope();
3605   bool IsExplicitSpecialization =
3606     !TemplateParams.empty() && TemplateParams.back()->size() == 0;
3607   if (Tag && SS.isNotEmpty() && !Tag->isCompleteDefinition() &&
3608       !IsExplicitInstantiation && !IsExplicitSpecialization) {
3609     // Per C++ [dcl.type.elab]p1, a class declaration cannot have a
3610     // nested-name-specifier unless it is an explicit instantiation
3611     // or an explicit specialization.
3612     // Per C++ [dcl.enum]p1, an opaque-enum-declaration can't either.
3613     Diag(SS.getBeginLoc(), diag::err_standalone_class_nested_name_specifier)
3614       << (DS.getTypeSpecType() == DeclSpec::TST_class ? 0 :
3615           DS.getTypeSpecType() == DeclSpec::TST_struct ? 1 :
3616           DS.getTypeSpecType() == DeclSpec::TST_interface ? 2 :
3617           DS.getTypeSpecType() == DeclSpec::TST_union ? 3 : 4)
3618       << SS.getRange();
3619     return nullptr;
3620   }
3621 
3622   // Track whether this decl-specifier declares anything.
3623   bool DeclaresAnything = true;
3624 
3625   // Handle anonymous struct definitions.
3626   if (RecordDecl *Record = dyn_cast_or_null<RecordDecl>(Tag)) {
3627     if (!Record->getDeclName() && Record->isCompleteDefinition() &&
3628         DS.getStorageClassSpec() != DeclSpec::SCS_typedef) {
3629       if (getLangOpts().CPlusPlus ||
3630           Record->getDeclContext()->isRecord())
3631         return BuildAnonymousStructOrUnion(S, DS, AS, Record,
3632                                            Context.getPrintingPolicy());
3633 
3634       DeclaresAnything = false;
3635     }
3636   }
3637 
3638   // C11 6.7.2.1p2:
3639   //   A struct-declaration that does not declare an anonymous structure or
3640   //   anonymous union shall contain a struct-declarator-list.
3641   //
3642   // This rule also existed in C89 and C99; the grammar for struct-declaration
3643   // did not permit a struct-declaration without a struct-declarator-list.
3644   if (!getLangOpts().CPlusPlus && CurContext->isRecord() &&
3645       DS.getStorageClassSpec() == DeclSpec::SCS_unspecified) {
3646     // Check for Microsoft C extension: anonymous struct/union member.
3647     // Handle 2 kinds of anonymous struct/union:
3648     //   struct STRUCT;
3649     //   union UNION;
3650     // and
3651     //   STRUCT_TYPE;  <- where STRUCT_TYPE is a typedef struct.
3652     //   UNION_TYPE;   <- where UNION_TYPE is a typedef union.
3653     if ((Tag && Tag->getDeclName()) ||
3654         DS.getTypeSpecType() == DeclSpec::TST_typename) {
3655       RecordDecl *Record = nullptr;
3656       if (Tag)
3657         Record = dyn_cast<RecordDecl>(Tag);
3658       else if (const RecordType *RT =
3659                    DS.getRepAsType().get()->getAsStructureType())
3660         Record = RT->getDecl();
3661       else if (const RecordType *UT = DS.getRepAsType().get()->getAsUnionType())
3662         Record = UT->getDecl();
3663 
3664       if (Record && getLangOpts().MicrosoftExt) {
3665         Diag(DS.getLocStart(), diag::ext_ms_anonymous_record)
3666           << Record->isUnion() << DS.getSourceRange();
3667         return BuildMicrosoftCAnonymousStruct(S, DS, Record);
3668       }
3669 
3670       DeclaresAnything = false;
3671     }
3672   }
3673 
3674   // Skip all the checks below if we have a type error.
3675   if (DS.getTypeSpecType() == DeclSpec::TST_error ||
3676       (TagD && TagD->isInvalidDecl()))
3677     return TagD;
3678 
3679   if (getLangOpts().CPlusPlus &&
3680       DS.getStorageClassSpec() != DeclSpec::SCS_typedef)
3681     if (EnumDecl *Enum = dyn_cast_or_null<EnumDecl>(Tag))
3682       if (Enum->enumerator_begin() == Enum->enumerator_end() &&
3683           !Enum->getIdentifier() && !Enum->isInvalidDecl())
3684         DeclaresAnything = false;
3685 
3686   if (!DS.isMissingDeclaratorOk()) {
3687     // Customize diagnostic for a typedef missing a name.
3688     if (DS.getStorageClassSpec() == DeclSpec::SCS_typedef)
3689       Diag(DS.getLocStart(), diag::ext_typedef_without_a_name)
3690         << DS.getSourceRange();
3691     else
3692       DeclaresAnything = false;
3693   }
3694 
3695   if (DS.isModulePrivateSpecified() &&
3696       Tag && Tag->getDeclContext()->isFunctionOrMethod())
3697     Diag(DS.getModulePrivateSpecLoc(), diag::err_module_private_local_class)
3698       << Tag->getTagKind()
3699       << FixItHint::CreateRemoval(DS.getModulePrivateSpecLoc());
3700 
3701   ActOnDocumentableDecl(TagD);
3702 
3703   // C 6.7/2:
3704   //   A declaration [...] shall declare at least a declarator [...], a tag,
3705   //   or the members of an enumeration.
3706   // C++ [dcl.dcl]p3:
3707   //   [If there are no declarators], and except for the declaration of an
3708   //   unnamed bit-field, the decl-specifier-seq shall introduce one or more
3709   //   names into the program, or shall redeclare a name introduced by a
3710   //   previous declaration.
3711   if (!DeclaresAnything) {
3712     // In C, we allow this as a (popular) extension / bug. Don't bother
3713     // producing further diagnostics for redundant qualifiers after this.
3714     Diag(DS.getLocStart(), diag::ext_no_declarators) << DS.getSourceRange();
3715     return TagD;
3716   }
3717 
3718   // C++ [dcl.stc]p1:
3719   //   If a storage-class-specifier appears in a decl-specifier-seq, [...] the
3720   //   init-declarator-list of the declaration shall not be empty.
3721   // C++ [dcl.fct.spec]p1:
3722   //   If a cv-qualifier appears in a decl-specifier-seq, the
3723   //   init-declarator-list of the declaration shall not be empty.
3724   //
3725   // Spurious qualifiers here appear to be valid in C.
3726   unsigned DiagID = diag::warn_standalone_specifier;
3727   if (getLangOpts().CPlusPlus)
3728     DiagID = diag::ext_standalone_specifier;
3729 
3730   // Note that a linkage-specification sets a storage class, but
3731   // 'extern "C" struct foo;' is actually valid and not theoretically
3732   // useless.
3733   if (DeclSpec::SCS SCS = DS.getStorageClassSpec()) {
3734     if (SCS == DeclSpec::SCS_mutable)
3735       // Since mutable is not a viable storage class specifier in C, there is
3736       // no reason to treat it as an extension. Instead, diagnose as an error.
3737       Diag(DS.getStorageClassSpecLoc(), diag::err_mutable_nonmember);
3738     else if (!DS.isExternInLinkageSpec() && SCS != DeclSpec::SCS_typedef)
3739       Diag(DS.getStorageClassSpecLoc(), DiagID)
3740         << DeclSpec::getSpecifierName(SCS);
3741   }
3742 
3743   if (DeclSpec::TSCS TSCS = DS.getThreadStorageClassSpec())
3744     Diag(DS.getThreadStorageClassSpecLoc(), DiagID)
3745       << DeclSpec::getSpecifierName(TSCS);
3746   if (DS.getTypeQualifiers()) {
3747     if (DS.getTypeQualifiers() & DeclSpec::TQ_const)
3748       Diag(DS.getConstSpecLoc(), DiagID) << "const";
3749     if (DS.getTypeQualifiers() & DeclSpec::TQ_volatile)
3750       Diag(DS.getConstSpecLoc(), DiagID) << "volatile";
3751     // Restrict is covered above.
3752     if (DS.getTypeQualifiers() & DeclSpec::TQ_atomic)
3753       Diag(DS.getAtomicSpecLoc(), DiagID) << "_Atomic";
3754   }
3755 
3756   // Warn about ignored type attributes, for example:
3757   // __attribute__((aligned)) struct A;
3758   // Attributes should be placed after tag to apply to type declaration.
3759   if (!DS.getAttributes().empty()) {
3760     DeclSpec::TST TypeSpecType = DS.getTypeSpecType();
3761     if (TypeSpecType == DeclSpec::TST_class ||
3762         TypeSpecType == DeclSpec::TST_struct ||
3763         TypeSpecType == DeclSpec::TST_interface ||
3764         TypeSpecType == DeclSpec::TST_union ||
3765         TypeSpecType == DeclSpec::TST_enum) {
3766       AttributeList* attrs = DS.getAttributes().getList();
3767       while (attrs) {
3768         Diag(attrs->getLoc(), diag::warn_declspec_attribute_ignored)
3769         << attrs->getName()
3770         << (TypeSpecType == DeclSpec::TST_class ? 0 :
3771             TypeSpecType == DeclSpec::TST_struct ? 1 :
3772             TypeSpecType == DeclSpec::TST_union ? 2 :
3773             TypeSpecType == DeclSpec::TST_interface ? 3 : 4);
3774         attrs = attrs->getNext();
3775       }
3776     }
3777   }
3778 
3779   return TagD;
3780 }
3781 
3782 /// We are trying to inject an anonymous member into the given scope;
3783 /// check if there's an existing declaration that can't be overloaded.
3784 ///
3785 /// \return true if this is a forbidden redeclaration
3786 static bool CheckAnonMemberRedeclaration(Sema &SemaRef,
3787                                          Scope *S,
3788                                          DeclContext *Owner,
3789                                          DeclarationName Name,
3790                                          SourceLocation NameLoc,
3791                                          unsigned diagnostic) {
3792   LookupResult R(SemaRef, Name, NameLoc, Sema::LookupMemberName,
3793                  Sema::ForRedeclaration);
3794   if (!SemaRef.LookupName(R, S)) return false;
3795 
3796   if (R.getAsSingle<TagDecl>())
3797     return false;
3798 
3799   // Pick a representative declaration.
3800   NamedDecl *PrevDecl = R.getRepresentativeDecl()->getUnderlyingDecl();
3801   assert(PrevDecl && "Expected a non-null Decl");
3802 
3803   if (!SemaRef.isDeclInScope(PrevDecl, Owner, S))
3804     return false;
3805 
3806   SemaRef.Diag(NameLoc, diagnostic) << Name;
3807   SemaRef.Diag(PrevDecl->getLocation(), diag::note_previous_declaration);
3808 
3809   return true;
3810 }
3811 
3812 /// InjectAnonymousStructOrUnionMembers - Inject the members of the
3813 /// anonymous struct or union AnonRecord into the owning context Owner
3814 /// and scope S. This routine will be invoked just after we realize
3815 /// that an unnamed union or struct is actually an anonymous union or
3816 /// struct, e.g.,
3817 ///
3818 /// @code
3819 /// union {
3820 ///   int i;
3821 ///   float f;
3822 /// }; // InjectAnonymousStructOrUnionMembers called here to inject i and
3823 ///    // f into the surrounding scope.x
3824 /// @endcode
3825 ///
3826 /// This routine is recursive, injecting the names of nested anonymous
3827 /// structs/unions into the owning context and scope as well.
3828 static bool InjectAnonymousStructOrUnionMembers(Sema &SemaRef, Scope *S,
3829                                          DeclContext *Owner,
3830                                          RecordDecl *AnonRecord,
3831                                          AccessSpecifier AS,
3832                                          SmallVectorImpl<NamedDecl *> &Chaining,
3833                                          bool MSAnonStruct) {
3834   unsigned diagKind
3835     = AnonRecord->isUnion() ? diag::err_anonymous_union_member_redecl
3836                             : diag::err_anonymous_struct_member_redecl;
3837 
3838   bool Invalid = false;
3839 
3840   // Look every FieldDecl and IndirectFieldDecl with a name.
3841   for (auto *D : AnonRecord->decls()) {
3842     if ((isa<FieldDecl>(D) || isa<IndirectFieldDecl>(D)) &&
3843         cast<NamedDecl>(D)->getDeclName()) {
3844       ValueDecl *VD = cast<ValueDecl>(D);
3845       if (CheckAnonMemberRedeclaration(SemaRef, S, Owner, VD->getDeclName(),
3846                                        VD->getLocation(), diagKind)) {
3847         // C++ [class.union]p2:
3848         //   The names of the members of an anonymous union shall be
3849         //   distinct from the names of any other entity in the
3850         //   scope in which the anonymous union is declared.
3851         Invalid = true;
3852       } else {
3853         // C++ [class.union]p2:
3854         //   For the purpose of name lookup, after the anonymous union
3855         //   definition, the members of the anonymous union are
3856         //   considered to have been defined in the scope in which the
3857         //   anonymous union is declared.
3858         unsigned OldChainingSize = Chaining.size();
3859         if (IndirectFieldDecl *IF = dyn_cast<IndirectFieldDecl>(VD))
3860           Chaining.append(IF->chain_begin(), IF->chain_end());
3861         else
3862           Chaining.push_back(VD);
3863 
3864         assert(Chaining.size() >= 2);
3865         NamedDecl **NamedChain =
3866           new (SemaRef.Context)NamedDecl*[Chaining.size()];
3867         for (unsigned i = 0; i < Chaining.size(); i++)
3868           NamedChain[i] = Chaining[i];
3869 
3870         IndirectFieldDecl *IndirectField = IndirectFieldDecl::Create(
3871             SemaRef.Context, Owner, VD->getLocation(), VD->getIdentifier(),
3872             VD->getType(), NamedChain, Chaining.size());
3873 
3874         for (const auto *Attr : VD->attrs())
3875           IndirectField->addAttr(Attr->clone(SemaRef.Context));
3876 
3877         IndirectField->setAccess(AS);
3878         IndirectField->setImplicit();
3879         SemaRef.PushOnScopeChains(IndirectField, S);
3880 
3881         // That includes picking up the appropriate access specifier.
3882         if (AS != AS_none) IndirectField->setAccess(AS);
3883 
3884         Chaining.resize(OldChainingSize);
3885       }
3886     }
3887   }
3888 
3889   return Invalid;
3890 }
3891 
3892 /// StorageClassSpecToVarDeclStorageClass - Maps a DeclSpec::SCS to
3893 /// a VarDecl::StorageClass. Any error reporting is up to the caller:
3894 /// illegal input values are mapped to SC_None.
3895 static StorageClass
3896 StorageClassSpecToVarDeclStorageClass(const DeclSpec &DS) {
3897   DeclSpec::SCS StorageClassSpec = DS.getStorageClassSpec();
3898   assert(StorageClassSpec != DeclSpec::SCS_typedef &&
3899          "Parser allowed 'typedef' as storage class VarDecl.");
3900   switch (StorageClassSpec) {
3901   case DeclSpec::SCS_unspecified:    return SC_None;
3902   case DeclSpec::SCS_extern:
3903     if (DS.isExternInLinkageSpec())
3904       return SC_None;
3905     return SC_Extern;
3906   case DeclSpec::SCS_static:         return SC_Static;
3907   case DeclSpec::SCS_auto:           return SC_Auto;
3908   case DeclSpec::SCS_register:       return SC_Register;
3909   case DeclSpec::SCS_private_extern: return SC_PrivateExtern;
3910     // Illegal SCSs map to None: error reporting is up to the caller.
3911   case DeclSpec::SCS_mutable:        // Fall through.
3912   case DeclSpec::SCS_typedef:        return SC_None;
3913   }
3914   llvm_unreachable("unknown storage class specifier");
3915 }
3916 
3917 static SourceLocation findDefaultInitializer(const CXXRecordDecl *Record) {
3918   assert(Record->hasInClassInitializer());
3919 
3920   for (const auto *I : Record->decls()) {
3921     const auto *FD = dyn_cast<FieldDecl>(I);
3922     if (const auto *IFD = dyn_cast<IndirectFieldDecl>(I))
3923       FD = IFD->getAnonField();
3924     if (FD && FD->hasInClassInitializer())
3925       return FD->getLocation();
3926   }
3927 
3928   llvm_unreachable("couldn't find in-class initializer");
3929 }
3930 
3931 static void checkDuplicateDefaultInit(Sema &S, CXXRecordDecl *Parent,
3932                                       SourceLocation DefaultInitLoc) {
3933   if (!Parent->isUnion() || !Parent->hasInClassInitializer())
3934     return;
3935 
3936   S.Diag(DefaultInitLoc, diag::err_multiple_mem_union_initialization);
3937   S.Diag(findDefaultInitializer(Parent), diag::note_previous_initializer) << 0;
3938 }
3939 
3940 static void checkDuplicateDefaultInit(Sema &S, CXXRecordDecl *Parent,
3941                                       CXXRecordDecl *AnonUnion) {
3942   if (!Parent->isUnion() || !Parent->hasInClassInitializer())
3943     return;
3944 
3945   checkDuplicateDefaultInit(S, Parent, findDefaultInitializer(AnonUnion));
3946 }
3947 
3948 /// BuildAnonymousStructOrUnion - Handle the declaration of an
3949 /// anonymous structure or union. Anonymous unions are a C++ feature
3950 /// (C++ [class.union]) and a C11 feature; anonymous structures
3951 /// are a C11 feature and GNU C++ extension.
3952 Decl *Sema::BuildAnonymousStructOrUnion(Scope *S, DeclSpec &DS,
3953                                         AccessSpecifier AS,
3954                                         RecordDecl *Record,
3955                                         const PrintingPolicy &Policy) {
3956   DeclContext *Owner = Record->getDeclContext();
3957 
3958   // Diagnose whether this anonymous struct/union is an extension.
3959   if (Record->isUnion() && !getLangOpts().CPlusPlus && !getLangOpts().C11)
3960     Diag(Record->getLocation(), diag::ext_anonymous_union);
3961   else if (!Record->isUnion() && getLangOpts().CPlusPlus)
3962     Diag(Record->getLocation(), diag::ext_gnu_anonymous_struct);
3963   else if (!Record->isUnion() && !getLangOpts().C11)
3964     Diag(Record->getLocation(), diag::ext_c11_anonymous_struct);
3965 
3966   // C and C++ require different kinds of checks for anonymous
3967   // structs/unions.
3968   bool Invalid = false;
3969   if (getLangOpts().CPlusPlus) {
3970     const char *PrevSpec = nullptr;
3971     unsigned DiagID;
3972     if (Record->isUnion()) {
3973       // C++ [class.union]p6:
3974       //   Anonymous unions declared in a named namespace or in the
3975       //   global namespace shall be declared static.
3976       if (DS.getStorageClassSpec() != DeclSpec::SCS_static &&
3977           (isa<TranslationUnitDecl>(Owner) ||
3978            (isa<NamespaceDecl>(Owner) &&
3979             cast<NamespaceDecl>(Owner)->getDeclName()))) {
3980         Diag(Record->getLocation(), diag::err_anonymous_union_not_static)
3981           << FixItHint::CreateInsertion(Record->getLocation(), "static ");
3982 
3983         // Recover by adding 'static'.
3984         DS.SetStorageClassSpec(*this, DeclSpec::SCS_static, SourceLocation(),
3985                                PrevSpec, DiagID, Policy);
3986       }
3987       // C++ [class.union]p6:
3988       //   A storage class is not allowed in a declaration of an
3989       //   anonymous union in a class scope.
3990       else if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified &&
3991                isa<RecordDecl>(Owner)) {
3992         Diag(DS.getStorageClassSpecLoc(),
3993              diag::err_anonymous_union_with_storage_spec)
3994           << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc());
3995 
3996         // Recover by removing the storage specifier.
3997         DS.SetStorageClassSpec(*this, DeclSpec::SCS_unspecified,
3998                                SourceLocation(),
3999                                PrevSpec, DiagID, Context.getPrintingPolicy());
4000       }
4001     }
4002 
4003     // Ignore const/volatile/restrict qualifiers.
4004     if (DS.getTypeQualifiers()) {
4005       if (DS.getTypeQualifiers() & DeclSpec::TQ_const)
4006         Diag(DS.getConstSpecLoc(), diag::ext_anonymous_struct_union_qualified)
4007           << Record->isUnion() << "const"
4008           << FixItHint::CreateRemoval(DS.getConstSpecLoc());
4009       if (DS.getTypeQualifiers() & DeclSpec::TQ_volatile)
4010         Diag(DS.getVolatileSpecLoc(),
4011              diag::ext_anonymous_struct_union_qualified)
4012           << Record->isUnion() << "volatile"
4013           << FixItHint::CreateRemoval(DS.getVolatileSpecLoc());
4014       if (DS.getTypeQualifiers() & DeclSpec::TQ_restrict)
4015         Diag(DS.getRestrictSpecLoc(),
4016              diag::ext_anonymous_struct_union_qualified)
4017           << Record->isUnion() << "restrict"
4018           << FixItHint::CreateRemoval(DS.getRestrictSpecLoc());
4019       if (DS.getTypeQualifiers() & DeclSpec::TQ_atomic)
4020         Diag(DS.getAtomicSpecLoc(),
4021              diag::ext_anonymous_struct_union_qualified)
4022           << Record->isUnion() << "_Atomic"
4023           << FixItHint::CreateRemoval(DS.getAtomicSpecLoc());
4024 
4025       DS.ClearTypeQualifiers();
4026     }
4027 
4028     // C++ [class.union]p2:
4029     //   The member-specification of an anonymous union shall only
4030     //   define non-static data members. [Note: nested types and
4031     //   functions cannot be declared within an anonymous union. ]
4032     for (auto *Mem : Record->decls()) {
4033       if (auto *FD = dyn_cast<FieldDecl>(Mem)) {
4034         // C++ [class.union]p3:
4035         //   An anonymous union shall not have private or protected
4036         //   members (clause 11).
4037         assert(FD->getAccess() != AS_none);
4038         if (FD->getAccess() != AS_public) {
4039           Diag(FD->getLocation(), diag::err_anonymous_record_nonpublic_member)
4040             << (int)Record->isUnion() << (int)(FD->getAccess() == AS_protected);
4041           Invalid = true;
4042         }
4043 
4044         // C++ [class.union]p1
4045         //   An object of a class with a non-trivial constructor, a non-trivial
4046         //   copy constructor, a non-trivial destructor, or a non-trivial copy
4047         //   assignment operator cannot be a member of a union, nor can an
4048         //   array of such objects.
4049         if (CheckNontrivialField(FD))
4050           Invalid = true;
4051       } else if (Mem->isImplicit()) {
4052         // Any implicit members are fine.
4053       } else if (isa<TagDecl>(Mem) && Mem->getDeclContext() != Record) {
4054         // This is a type that showed up in an
4055         // elaborated-type-specifier inside the anonymous struct or
4056         // union, but which actually declares a type outside of the
4057         // anonymous struct or union. It's okay.
4058       } else if (auto *MemRecord = dyn_cast<RecordDecl>(Mem)) {
4059         if (!MemRecord->isAnonymousStructOrUnion() &&
4060             MemRecord->getDeclName()) {
4061           // Visual C++ allows type definition in anonymous struct or union.
4062           if (getLangOpts().MicrosoftExt)
4063             Diag(MemRecord->getLocation(), diag::ext_anonymous_record_with_type)
4064               << (int)Record->isUnion();
4065           else {
4066             // This is a nested type declaration.
4067             Diag(MemRecord->getLocation(), diag::err_anonymous_record_with_type)
4068               << (int)Record->isUnion();
4069             Invalid = true;
4070           }
4071         } else {
4072           // This is an anonymous type definition within another anonymous type.
4073           // This is a popular extension, provided by Plan9, MSVC and GCC, but
4074           // not part of standard C++.
4075           Diag(MemRecord->getLocation(),
4076                diag::ext_anonymous_record_with_anonymous_type)
4077             << (int)Record->isUnion();
4078         }
4079       } else if (isa<AccessSpecDecl>(Mem)) {
4080         // Any access specifier is fine.
4081       } else if (isa<StaticAssertDecl>(Mem)) {
4082         // In C++1z, static_assert declarations are also fine.
4083       } else {
4084         // We have something that isn't a non-static data
4085         // member. Complain about it.
4086         unsigned DK = diag::err_anonymous_record_bad_member;
4087         if (isa<TypeDecl>(Mem))
4088           DK = diag::err_anonymous_record_with_type;
4089         else if (isa<FunctionDecl>(Mem))
4090           DK = diag::err_anonymous_record_with_function;
4091         else if (isa<VarDecl>(Mem))
4092           DK = diag::err_anonymous_record_with_static;
4093 
4094         // Visual C++ allows type definition in anonymous struct or union.
4095         if (getLangOpts().MicrosoftExt &&
4096             DK == diag::err_anonymous_record_with_type)
4097           Diag(Mem->getLocation(), diag::ext_anonymous_record_with_type)
4098             << (int)Record->isUnion();
4099         else {
4100           Diag(Mem->getLocation(), DK)
4101               << (int)Record->isUnion();
4102           Invalid = true;
4103         }
4104       }
4105     }
4106 
4107     // C++11 [class.union]p8 (DR1460):
4108     //   At most one variant member of a union may have a
4109     //   brace-or-equal-initializer.
4110     if (cast<CXXRecordDecl>(Record)->hasInClassInitializer() &&
4111         Owner->isRecord())
4112       checkDuplicateDefaultInit(*this, cast<CXXRecordDecl>(Owner),
4113                                 cast<CXXRecordDecl>(Record));
4114   }
4115 
4116   if (!Record->isUnion() && !Owner->isRecord()) {
4117     Diag(Record->getLocation(), diag::err_anonymous_struct_not_member)
4118       << (int)getLangOpts().CPlusPlus;
4119     Invalid = true;
4120   }
4121 
4122   // Mock up a declarator.
4123   Declarator Dc(DS, Declarator::MemberContext);
4124   TypeSourceInfo *TInfo = GetTypeForDeclarator(Dc, S);
4125   assert(TInfo && "couldn't build declarator info for anonymous struct/union");
4126 
4127   // Create a declaration for this anonymous struct/union.
4128   NamedDecl *Anon = nullptr;
4129   if (RecordDecl *OwningClass = dyn_cast<RecordDecl>(Owner)) {
4130     Anon = FieldDecl::Create(Context, OwningClass,
4131                              DS.getLocStart(),
4132                              Record->getLocation(),
4133                              /*IdentifierInfo=*/nullptr,
4134                              Context.getTypeDeclType(Record),
4135                              TInfo,
4136                              /*BitWidth=*/nullptr, /*Mutable=*/false,
4137                              /*InitStyle=*/ICIS_NoInit);
4138     Anon->setAccess(AS);
4139     if (getLangOpts().CPlusPlus)
4140       FieldCollector->Add(cast<FieldDecl>(Anon));
4141   } else {
4142     DeclSpec::SCS SCSpec = DS.getStorageClassSpec();
4143     StorageClass SC = StorageClassSpecToVarDeclStorageClass(DS);
4144     if (SCSpec == DeclSpec::SCS_mutable) {
4145       // mutable can only appear on non-static class members, so it's always
4146       // an error here
4147       Diag(Record->getLocation(), diag::err_mutable_nonmember);
4148       Invalid = true;
4149       SC = SC_None;
4150     }
4151 
4152     Anon = VarDecl::Create(Context, Owner,
4153                            DS.getLocStart(),
4154                            Record->getLocation(), /*IdentifierInfo=*/nullptr,
4155                            Context.getTypeDeclType(Record),
4156                            TInfo, SC);
4157 
4158     // Default-initialize the implicit variable. This initialization will be
4159     // trivial in almost all cases, except if a union member has an in-class
4160     // initializer:
4161     //   union { int n = 0; };
4162     ActOnUninitializedDecl(Anon, /*TypeMayContainAuto=*/false);
4163   }
4164   Anon->setImplicit();
4165 
4166   // Mark this as an anonymous struct/union type.
4167   Record->setAnonymousStructOrUnion(true);
4168 
4169   // Add the anonymous struct/union object to the current
4170   // context. We'll be referencing this object when we refer to one of
4171   // its members.
4172   Owner->addDecl(Anon);
4173 
4174   // Inject the members of the anonymous struct/union into the owning
4175   // context and into the identifier resolver chain for name lookup
4176   // purposes.
4177   SmallVector<NamedDecl*, 2> Chain;
4178   Chain.push_back(Anon);
4179 
4180   if (InjectAnonymousStructOrUnionMembers(*this, S, Owner, Record, AS,
4181                                           Chain, false))
4182     Invalid = true;
4183 
4184   if (VarDecl *NewVD = dyn_cast<VarDecl>(Anon)) {
4185     if (getLangOpts().CPlusPlus && NewVD->isStaticLocal()) {
4186       Decl *ManglingContextDecl;
4187       if (MangleNumberingContext *MCtx = getCurrentMangleNumberContext(
4188               NewVD->getDeclContext(), ManglingContextDecl)) {
4189         Context.setManglingNumber(
4190             NewVD, MCtx->getManglingNumber(
4191                        NewVD, getMSManglingNumber(getLangOpts(), S)));
4192         Context.setStaticLocalNumber(NewVD, MCtx->getStaticLocalNumber(NewVD));
4193       }
4194     }
4195   }
4196 
4197   if (Invalid)
4198     Anon->setInvalidDecl();
4199 
4200   return Anon;
4201 }
4202 
4203 /// BuildMicrosoftCAnonymousStruct - Handle the declaration of an
4204 /// Microsoft C anonymous structure.
4205 /// Ref: http://msdn.microsoft.com/en-us/library/z2cx9y4f.aspx
4206 /// Example:
4207 ///
4208 /// struct A { int a; };
4209 /// struct B { struct A; int b; };
4210 ///
4211 /// void foo() {
4212 ///   B var;
4213 ///   var.a = 3;
4214 /// }
4215 ///
4216 Decl *Sema::BuildMicrosoftCAnonymousStruct(Scope *S, DeclSpec &DS,
4217                                            RecordDecl *Record) {
4218   assert(Record && "expected a record!");
4219 
4220   // Mock up a declarator.
4221   Declarator Dc(DS, Declarator::TypeNameContext);
4222   TypeSourceInfo *TInfo = GetTypeForDeclarator(Dc, S);
4223   assert(TInfo && "couldn't build declarator info for anonymous struct");
4224 
4225   auto *ParentDecl = cast<RecordDecl>(CurContext);
4226   QualType RecTy = Context.getTypeDeclType(Record);
4227 
4228   // Create a declaration for this anonymous struct.
4229   NamedDecl *Anon = FieldDecl::Create(Context,
4230                              ParentDecl,
4231                              DS.getLocStart(),
4232                              DS.getLocStart(),
4233                              /*IdentifierInfo=*/nullptr,
4234                              RecTy,
4235                              TInfo,
4236                              /*BitWidth=*/nullptr, /*Mutable=*/false,
4237                              /*InitStyle=*/ICIS_NoInit);
4238   Anon->setImplicit();
4239 
4240   // Add the anonymous struct object to the current context.
4241   CurContext->addDecl(Anon);
4242 
4243   // Inject the members of the anonymous struct into the current
4244   // context and into the identifier resolver chain for name lookup
4245   // purposes.
4246   SmallVector<NamedDecl*, 2> Chain;
4247   Chain.push_back(Anon);
4248 
4249   RecordDecl *RecordDef = Record->getDefinition();
4250   if (RequireCompleteType(Anon->getLocation(), RecTy,
4251                           diag::err_field_incomplete) ||
4252       InjectAnonymousStructOrUnionMembers(*this, S, CurContext, RecordDef,
4253                                           AS_none, Chain, true)) {
4254     Anon->setInvalidDecl();
4255     ParentDecl->setInvalidDecl();
4256   }
4257 
4258   return Anon;
4259 }
4260 
4261 /// GetNameForDeclarator - Determine the full declaration name for the
4262 /// given Declarator.
4263 DeclarationNameInfo Sema::GetNameForDeclarator(Declarator &D) {
4264   return GetNameFromUnqualifiedId(D.getName());
4265 }
4266 
4267 /// \brief Retrieves the declaration name from a parsed unqualified-id.
4268 DeclarationNameInfo
4269 Sema::GetNameFromUnqualifiedId(const UnqualifiedId &Name) {
4270   DeclarationNameInfo NameInfo;
4271   NameInfo.setLoc(Name.StartLocation);
4272 
4273   switch (Name.getKind()) {
4274 
4275   case UnqualifiedId::IK_ImplicitSelfParam:
4276   case UnqualifiedId::IK_Identifier:
4277     NameInfo.setName(Name.Identifier);
4278     NameInfo.setLoc(Name.StartLocation);
4279     return NameInfo;
4280 
4281   case UnqualifiedId::IK_OperatorFunctionId:
4282     NameInfo.setName(Context.DeclarationNames.getCXXOperatorName(
4283                                            Name.OperatorFunctionId.Operator));
4284     NameInfo.setLoc(Name.StartLocation);
4285     NameInfo.getInfo().CXXOperatorName.BeginOpNameLoc
4286       = Name.OperatorFunctionId.SymbolLocations[0];
4287     NameInfo.getInfo().CXXOperatorName.EndOpNameLoc
4288       = Name.EndLocation.getRawEncoding();
4289     return NameInfo;
4290 
4291   case UnqualifiedId::IK_LiteralOperatorId:
4292     NameInfo.setName(Context.DeclarationNames.getCXXLiteralOperatorName(
4293                                                            Name.Identifier));
4294     NameInfo.setLoc(Name.StartLocation);
4295     NameInfo.setCXXLiteralOperatorNameLoc(Name.EndLocation);
4296     return NameInfo;
4297 
4298   case UnqualifiedId::IK_ConversionFunctionId: {
4299     TypeSourceInfo *TInfo;
4300     QualType Ty = GetTypeFromParser(Name.ConversionFunctionId, &TInfo);
4301     if (Ty.isNull())
4302       return DeclarationNameInfo();
4303     NameInfo.setName(Context.DeclarationNames.getCXXConversionFunctionName(
4304                                                Context.getCanonicalType(Ty)));
4305     NameInfo.setLoc(Name.StartLocation);
4306     NameInfo.setNamedTypeInfo(TInfo);
4307     return NameInfo;
4308   }
4309 
4310   case UnqualifiedId::IK_ConstructorName: {
4311     TypeSourceInfo *TInfo;
4312     QualType Ty = GetTypeFromParser(Name.ConstructorName, &TInfo);
4313     if (Ty.isNull())
4314       return DeclarationNameInfo();
4315     NameInfo.setName(Context.DeclarationNames.getCXXConstructorName(
4316                                               Context.getCanonicalType(Ty)));
4317     NameInfo.setLoc(Name.StartLocation);
4318     NameInfo.setNamedTypeInfo(TInfo);
4319     return NameInfo;
4320   }
4321 
4322   case UnqualifiedId::IK_ConstructorTemplateId: {
4323     // In well-formed code, we can only have a constructor
4324     // template-id that refers to the current context, so go there
4325     // to find the actual type being constructed.
4326     CXXRecordDecl *CurClass = dyn_cast<CXXRecordDecl>(CurContext);
4327     if (!CurClass || CurClass->getIdentifier() != Name.TemplateId->Name)
4328       return DeclarationNameInfo();
4329 
4330     // Determine the type of the class being constructed.
4331     QualType CurClassType = Context.getTypeDeclType(CurClass);
4332 
4333     // FIXME: Check two things: that the template-id names the same type as
4334     // CurClassType, and that the template-id does not occur when the name
4335     // was qualified.
4336 
4337     NameInfo.setName(Context.DeclarationNames.getCXXConstructorName(
4338                                     Context.getCanonicalType(CurClassType)));
4339     NameInfo.setLoc(Name.StartLocation);
4340     // FIXME: should we retrieve TypeSourceInfo?
4341     NameInfo.setNamedTypeInfo(nullptr);
4342     return NameInfo;
4343   }
4344 
4345   case UnqualifiedId::IK_DestructorName: {
4346     TypeSourceInfo *TInfo;
4347     QualType Ty = GetTypeFromParser(Name.DestructorName, &TInfo);
4348     if (Ty.isNull())
4349       return DeclarationNameInfo();
4350     NameInfo.setName(Context.DeclarationNames.getCXXDestructorName(
4351                                               Context.getCanonicalType(Ty)));
4352     NameInfo.setLoc(Name.StartLocation);
4353     NameInfo.setNamedTypeInfo(TInfo);
4354     return NameInfo;
4355   }
4356 
4357   case UnqualifiedId::IK_TemplateId: {
4358     TemplateName TName = Name.TemplateId->Template.get();
4359     SourceLocation TNameLoc = Name.TemplateId->TemplateNameLoc;
4360     return Context.getNameForTemplate(TName, TNameLoc);
4361   }
4362 
4363   } // switch (Name.getKind())
4364 
4365   llvm_unreachable("Unknown name kind");
4366 }
4367 
4368 static QualType getCoreType(QualType Ty) {
4369   do {
4370     if (Ty->isPointerType() || Ty->isReferenceType())
4371       Ty = Ty->getPointeeType();
4372     else if (Ty->isArrayType())
4373       Ty = Ty->castAsArrayTypeUnsafe()->getElementType();
4374     else
4375       return Ty.withoutLocalFastQualifiers();
4376   } while (true);
4377 }
4378 
4379 /// hasSimilarParameters - Determine whether the C++ functions Declaration
4380 /// and Definition have "nearly" matching parameters. This heuristic is
4381 /// used to improve diagnostics in the case where an out-of-line function
4382 /// definition doesn't match any declaration within the class or namespace.
4383 /// Also sets Params to the list of indices to the parameters that differ
4384 /// between the declaration and the definition. If hasSimilarParameters
4385 /// returns true and Params is empty, then all of the parameters match.
4386 static bool hasSimilarParameters(ASTContext &Context,
4387                                      FunctionDecl *Declaration,
4388                                      FunctionDecl *Definition,
4389                                      SmallVectorImpl<unsigned> &Params) {
4390   Params.clear();
4391   if (Declaration->param_size() != Definition->param_size())
4392     return false;
4393   for (unsigned Idx = 0; Idx < Declaration->param_size(); ++Idx) {
4394     QualType DeclParamTy = Declaration->getParamDecl(Idx)->getType();
4395     QualType DefParamTy = Definition->getParamDecl(Idx)->getType();
4396 
4397     // The parameter types are identical
4398     if (Context.hasSameType(DefParamTy, DeclParamTy))
4399       continue;
4400 
4401     QualType DeclParamBaseTy = getCoreType(DeclParamTy);
4402     QualType DefParamBaseTy = getCoreType(DefParamTy);
4403     const IdentifierInfo *DeclTyName = DeclParamBaseTy.getBaseTypeIdentifier();
4404     const IdentifierInfo *DefTyName = DefParamBaseTy.getBaseTypeIdentifier();
4405 
4406     if (Context.hasSameUnqualifiedType(DeclParamBaseTy, DefParamBaseTy) ||
4407         (DeclTyName && DeclTyName == DefTyName))
4408       Params.push_back(Idx);
4409     else  // The two parameters aren't even close
4410       return false;
4411   }
4412 
4413   return true;
4414 }
4415 
4416 /// NeedsRebuildingInCurrentInstantiation - Checks whether the given
4417 /// declarator needs to be rebuilt in the current instantiation.
4418 /// Any bits of declarator which appear before the name are valid for
4419 /// consideration here.  That's specifically the type in the decl spec
4420 /// and the base type in any member-pointer chunks.
4421 static bool RebuildDeclaratorInCurrentInstantiation(Sema &S, Declarator &D,
4422                                                     DeclarationName Name) {
4423   // The types we specifically need to rebuild are:
4424   //   - typenames, typeofs, and decltypes
4425   //   - types which will become injected class names
4426   // Of course, we also need to rebuild any type referencing such a
4427   // type.  It's safest to just say "dependent", but we call out a
4428   // few cases here.
4429 
4430   DeclSpec &DS = D.getMutableDeclSpec();
4431   switch (DS.getTypeSpecType()) {
4432   case DeclSpec::TST_typename:
4433   case DeclSpec::TST_typeofType:
4434   case DeclSpec::TST_underlyingType:
4435   case DeclSpec::TST_atomic: {
4436     // Grab the type from the parser.
4437     TypeSourceInfo *TSI = nullptr;
4438     QualType T = S.GetTypeFromParser(DS.getRepAsType(), &TSI);
4439     if (T.isNull() || !T->isDependentType()) break;
4440 
4441     // Make sure there's a type source info.  This isn't really much
4442     // of a waste; most dependent types should have type source info
4443     // attached already.
4444     if (!TSI)
4445       TSI = S.Context.getTrivialTypeSourceInfo(T, DS.getTypeSpecTypeLoc());
4446 
4447     // Rebuild the type in the current instantiation.
4448     TSI = S.RebuildTypeInCurrentInstantiation(TSI, D.getIdentifierLoc(), Name);
4449     if (!TSI) return true;
4450 
4451     // Store the new type back in the decl spec.
4452     ParsedType LocType = S.CreateParsedType(TSI->getType(), TSI);
4453     DS.UpdateTypeRep(LocType);
4454     break;
4455   }
4456 
4457   case DeclSpec::TST_decltype:
4458   case DeclSpec::TST_typeofExpr: {
4459     Expr *E = DS.getRepAsExpr();
4460     ExprResult Result = S.RebuildExprInCurrentInstantiation(E);
4461     if (Result.isInvalid()) return true;
4462     DS.UpdateExprRep(Result.get());
4463     break;
4464   }
4465 
4466   default:
4467     // Nothing to do for these decl specs.
4468     break;
4469   }
4470 
4471   // It doesn't matter what order we do this in.
4472   for (unsigned I = 0, E = D.getNumTypeObjects(); I != E; ++I) {
4473     DeclaratorChunk &Chunk = D.getTypeObject(I);
4474 
4475     // The only type information in the declarator which can come
4476     // before the declaration name is the base type of a member
4477     // pointer.
4478     if (Chunk.Kind != DeclaratorChunk::MemberPointer)
4479       continue;
4480 
4481     // Rebuild the scope specifier in-place.
4482     CXXScopeSpec &SS = Chunk.Mem.Scope();
4483     if (S.RebuildNestedNameSpecifierInCurrentInstantiation(SS))
4484       return true;
4485   }
4486 
4487   return false;
4488 }
4489 
4490 Decl *Sema::ActOnDeclarator(Scope *S, Declarator &D) {
4491   D.setFunctionDefinitionKind(FDK_Declaration);
4492   Decl *Dcl = HandleDeclarator(S, D, MultiTemplateParamsArg());
4493 
4494   if (OriginalLexicalContext && OriginalLexicalContext->isObjCContainer() &&
4495       Dcl && Dcl->getDeclContext()->isFileContext())
4496     Dcl->setTopLevelDeclInObjCContainer();
4497 
4498   return Dcl;
4499 }
4500 
4501 /// DiagnoseClassNameShadow - Implement C++ [class.mem]p13:
4502 ///   If T is the name of a class, then each of the following shall have a
4503 ///   name different from T:
4504 ///     - every static data member of class T;
4505 ///     - every member function of class T
4506 ///     - every member of class T that is itself a type;
4507 /// \returns true if the declaration name violates these rules.
4508 bool Sema::DiagnoseClassNameShadow(DeclContext *DC,
4509                                    DeclarationNameInfo NameInfo) {
4510   DeclarationName Name = NameInfo.getName();
4511 
4512   if (CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(DC))
4513     if (Record->getIdentifier() && Record->getDeclName() == Name) {
4514       Diag(NameInfo.getLoc(), diag::err_member_name_of_class) << Name;
4515       return true;
4516     }
4517 
4518   return false;
4519 }
4520 
4521 /// \brief Diagnose a declaration whose declarator-id has the given
4522 /// nested-name-specifier.
4523 ///
4524 /// \param SS The nested-name-specifier of the declarator-id.
4525 ///
4526 /// \param DC The declaration context to which the nested-name-specifier
4527 /// resolves.
4528 ///
4529 /// \param Name The name of the entity being declared.
4530 ///
4531 /// \param Loc The location of the name of the entity being declared.
4532 ///
4533 /// \returns true if we cannot safely recover from this error, false otherwise.
4534 bool Sema::diagnoseQualifiedDeclaration(CXXScopeSpec &SS, DeclContext *DC,
4535                                         DeclarationName Name,
4536                                         SourceLocation Loc) {
4537   DeclContext *Cur = CurContext;
4538   while (isa<LinkageSpecDecl>(Cur) || isa<CapturedDecl>(Cur))
4539     Cur = Cur->getParent();
4540 
4541   // If the user provided a superfluous scope specifier that refers back to the
4542   // class in which the entity is already declared, diagnose and ignore it.
4543   //
4544   // class X {
4545   //   void X::f();
4546   // };
4547   //
4548   // Note, it was once ill-formed to give redundant qualification in all
4549   // contexts, but that rule was removed by DR482.
4550   if (Cur->Equals(DC)) {
4551     if (Cur->isRecord()) {
4552       Diag(Loc, LangOpts.MicrosoftExt ? diag::warn_member_extra_qualification
4553                                       : diag::err_member_extra_qualification)
4554         << Name << FixItHint::CreateRemoval(SS.getRange());
4555       SS.clear();
4556     } else {
4557       Diag(Loc, diag::warn_namespace_member_extra_qualification) << Name;
4558     }
4559     return false;
4560   }
4561 
4562   // Check whether the qualifying scope encloses the scope of the original
4563   // declaration.
4564   if (!Cur->Encloses(DC)) {
4565     if (Cur->isRecord())
4566       Diag(Loc, diag::err_member_qualification)
4567         << Name << SS.getRange();
4568     else if (isa<TranslationUnitDecl>(DC))
4569       Diag(Loc, diag::err_invalid_declarator_global_scope)
4570         << Name << SS.getRange();
4571     else if (isa<FunctionDecl>(Cur))
4572       Diag(Loc, diag::err_invalid_declarator_in_function)
4573         << Name << SS.getRange();
4574     else if (isa<BlockDecl>(Cur))
4575       Diag(Loc, diag::err_invalid_declarator_in_block)
4576         << Name << SS.getRange();
4577     else
4578       Diag(Loc, diag::err_invalid_declarator_scope)
4579       << Name << cast<NamedDecl>(Cur) << cast<NamedDecl>(DC) << SS.getRange();
4580 
4581     return true;
4582   }
4583 
4584   if (Cur->isRecord()) {
4585     // Cannot qualify members within a class.
4586     Diag(Loc, diag::err_member_qualification)
4587       << Name << SS.getRange();
4588     SS.clear();
4589 
4590     // C++ constructors and destructors with incorrect scopes can break
4591     // our AST invariants by having the wrong underlying types. If
4592     // that's the case, then drop this declaration entirely.
4593     if ((Name.getNameKind() == DeclarationName::CXXConstructorName ||
4594          Name.getNameKind() == DeclarationName::CXXDestructorName) &&
4595         !Context.hasSameType(Name.getCXXNameType(),
4596                              Context.getTypeDeclType(cast<CXXRecordDecl>(Cur))))
4597       return true;
4598 
4599     return false;
4600   }
4601 
4602   // C++11 [dcl.meaning]p1:
4603   //   [...] "The nested-name-specifier of the qualified declarator-id shall
4604   //   not begin with a decltype-specifer"
4605   NestedNameSpecifierLoc SpecLoc(SS.getScopeRep(), SS.location_data());
4606   while (SpecLoc.getPrefix())
4607     SpecLoc = SpecLoc.getPrefix();
4608   if (dyn_cast_or_null<DecltypeType>(
4609         SpecLoc.getNestedNameSpecifier()->getAsType()))
4610     Diag(Loc, diag::err_decltype_in_declarator)
4611       << SpecLoc.getTypeLoc().getSourceRange();
4612 
4613   return false;
4614 }
4615 
4616 NamedDecl *Sema::HandleDeclarator(Scope *S, Declarator &D,
4617                                   MultiTemplateParamsArg TemplateParamLists) {
4618   // TODO: consider using NameInfo for diagnostic.
4619   DeclarationNameInfo NameInfo = GetNameForDeclarator(D);
4620   DeclarationName Name = NameInfo.getName();
4621 
4622   // All of these full declarators require an identifier.  If it doesn't have
4623   // one, the ParsedFreeStandingDeclSpec action should be used.
4624   if (!Name) {
4625     if (!D.isInvalidType())  // Reject this if we think it is valid.
4626       Diag(D.getDeclSpec().getLocStart(),
4627            diag::err_declarator_need_ident)
4628         << D.getDeclSpec().getSourceRange() << D.getSourceRange();
4629     return nullptr;
4630   } else if (DiagnoseUnexpandedParameterPack(NameInfo, UPPC_DeclarationType))
4631     return nullptr;
4632 
4633   // The scope passed in may not be a decl scope.  Zip up the scope tree until
4634   // we find one that is.
4635   while ((S->getFlags() & Scope::DeclScope) == 0 ||
4636          (S->getFlags() & Scope::TemplateParamScope) != 0)
4637     S = S->getParent();
4638 
4639   DeclContext *DC = CurContext;
4640   if (D.getCXXScopeSpec().isInvalid())
4641     D.setInvalidType();
4642   else if (D.getCXXScopeSpec().isSet()) {
4643     if (DiagnoseUnexpandedParameterPack(D.getCXXScopeSpec(),
4644                                         UPPC_DeclarationQualifier))
4645       return nullptr;
4646 
4647     bool EnteringContext = !D.getDeclSpec().isFriendSpecified();
4648     DC = computeDeclContext(D.getCXXScopeSpec(), EnteringContext);
4649     if (!DC || isa<EnumDecl>(DC)) {
4650       // If we could not compute the declaration context, it's because the
4651       // declaration context is dependent but does not refer to a class,
4652       // class template, or class template partial specialization. Complain
4653       // and return early, to avoid the coming semantic disaster.
4654       Diag(D.getIdentifierLoc(),
4655            diag::err_template_qualified_declarator_no_match)
4656         << D.getCXXScopeSpec().getScopeRep()
4657         << D.getCXXScopeSpec().getRange();
4658       return nullptr;
4659     }
4660     bool IsDependentContext = DC->isDependentContext();
4661 
4662     if (!IsDependentContext &&
4663         RequireCompleteDeclContext(D.getCXXScopeSpec(), DC))
4664       return nullptr;
4665 
4666     if (isa<CXXRecordDecl>(DC) && !cast<CXXRecordDecl>(DC)->hasDefinition()) {
4667       Diag(D.getIdentifierLoc(),
4668            diag::err_member_def_undefined_record)
4669         << Name << DC << D.getCXXScopeSpec().getRange();
4670       D.setInvalidType();
4671     } else if (!D.getDeclSpec().isFriendSpecified()) {
4672       if (diagnoseQualifiedDeclaration(D.getCXXScopeSpec(), DC,
4673                                       Name, D.getIdentifierLoc())) {
4674         if (DC->isRecord())
4675           return nullptr;
4676 
4677         D.setInvalidType();
4678       }
4679     }
4680 
4681     // Check whether we need to rebuild the type of the given
4682     // declaration in the current instantiation.
4683     if (EnteringContext && IsDependentContext &&
4684         TemplateParamLists.size() != 0) {
4685       ContextRAII SavedContext(*this, DC);
4686       if (RebuildDeclaratorInCurrentInstantiation(*this, D, Name))
4687         D.setInvalidType();
4688     }
4689   }
4690 
4691   if (DiagnoseClassNameShadow(DC, NameInfo))
4692     // If this is a typedef, we'll end up spewing multiple diagnostics.
4693     // Just return early; it's safer.
4694     if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef)
4695       return nullptr;
4696 
4697   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
4698   QualType R = TInfo->getType();
4699 
4700   if (DiagnoseUnexpandedParameterPack(D.getIdentifierLoc(), TInfo,
4701                                       UPPC_DeclarationType))
4702     D.setInvalidType();
4703 
4704   LookupResult Previous(*this, NameInfo, LookupOrdinaryName,
4705                         ForRedeclaration);
4706 
4707   // See if this is a redefinition of a variable in the same scope.
4708   if (!D.getCXXScopeSpec().isSet()) {
4709     bool IsLinkageLookup = false;
4710     bool CreateBuiltins = false;
4711 
4712     // If the declaration we're planning to build will be a function
4713     // or object with linkage, then look for another declaration with
4714     // linkage (C99 6.2.2p4-5 and C++ [basic.link]p6).
4715     //
4716     // If the declaration we're planning to build will be declared with
4717     // external linkage in the translation unit, create any builtin with
4718     // the same name.
4719     if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef)
4720       /* Do nothing*/;
4721     else if (CurContext->isFunctionOrMethod() &&
4722              (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_extern ||
4723               R->isFunctionType())) {
4724       IsLinkageLookup = true;
4725       CreateBuiltins =
4726           CurContext->getEnclosingNamespaceContext()->isTranslationUnit();
4727     } else if (CurContext->getRedeclContext()->isTranslationUnit() &&
4728                D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static)
4729       CreateBuiltins = true;
4730 
4731     if (IsLinkageLookup)
4732       Previous.clear(LookupRedeclarationWithLinkage);
4733 
4734     LookupName(Previous, S, CreateBuiltins);
4735   } else { // Something like "int foo::x;"
4736     LookupQualifiedName(Previous, DC);
4737 
4738     // C++ [dcl.meaning]p1:
4739     //   When the declarator-id is qualified, the declaration shall refer to a
4740     //  previously declared member of the class or namespace to which the
4741     //  qualifier refers (or, in the case of a namespace, of an element of the
4742     //  inline namespace set of that namespace (7.3.1)) or to a specialization
4743     //  thereof; [...]
4744     //
4745     // Note that we already checked the context above, and that we do not have
4746     // enough information to make sure that Previous contains the declaration
4747     // we want to match. For example, given:
4748     //
4749     //   class X {
4750     //     void f();
4751     //     void f(float);
4752     //   };
4753     //
4754     //   void X::f(int) { } // ill-formed
4755     //
4756     // In this case, Previous will point to the overload set
4757     // containing the two f's declared in X, but neither of them
4758     // matches.
4759 
4760     // C++ [dcl.meaning]p1:
4761     //   [...] the member shall not merely have been introduced by a
4762     //   using-declaration in the scope of the class or namespace nominated by
4763     //   the nested-name-specifier of the declarator-id.
4764     RemoveUsingDecls(Previous);
4765   }
4766 
4767   if (Previous.isSingleResult() &&
4768       Previous.getFoundDecl()->isTemplateParameter()) {
4769     // Maybe we will complain about the shadowed template parameter.
4770     if (!D.isInvalidType())
4771       DiagnoseTemplateParameterShadow(D.getIdentifierLoc(),
4772                                       Previous.getFoundDecl());
4773 
4774     // Just pretend that we didn't see the previous declaration.
4775     Previous.clear();
4776   }
4777 
4778   // In C++, the previous declaration we find might be a tag type
4779   // (class or enum). In this case, the new declaration will hide the
4780   // tag type. Note that this does does not apply if we're declaring a
4781   // typedef (C++ [dcl.typedef]p4).
4782   if (Previous.isSingleTagDecl() &&
4783       D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef)
4784     Previous.clear();
4785 
4786   // Check that there are no default arguments other than in the parameters
4787   // of a function declaration (C++ only).
4788   if (getLangOpts().CPlusPlus)
4789     CheckExtraCXXDefaultArguments(D);
4790 
4791   NamedDecl *New;
4792 
4793   bool AddToScope = true;
4794   if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef) {
4795     if (TemplateParamLists.size()) {
4796       Diag(D.getIdentifierLoc(), diag::err_template_typedef);
4797       return nullptr;
4798     }
4799 
4800     New = ActOnTypedefDeclarator(S, D, DC, TInfo, Previous);
4801   } else if (R->isFunctionType()) {
4802     New = ActOnFunctionDeclarator(S, D, DC, TInfo, Previous,
4803                                   TemplateParamLists,
4804                                   AddToScope);
4805   } else {
4806     New = ActOnVariableDeclarator(S, D, DC, TInfo, Previous, TemplateParamLists,
4807                                   AddToScope);
4808   }
4809 
4810   if (!New)
4811     return nullptr;
4812 
4813   // If this has an identifier and is not an invalid redeclaration or
4814   // function template specialization, add it to the scope stack.
4815   if (New->getDeclName() && AddToScope &&
4816        !(D.isRedeclaration() && New->isInvalidDecl())) {
4817     // Only make a locally-scoped extern declaration visible if it is the first
4818     // declaration of this entity. Qualified lookup for such an entity should
4819     // only find this declaration if there is no visible declaration of it.
4820     bool AddToContext = !D.isRedeclaration() || !New->isLocalExternDecl();
4821     PushOnScopeChains(New, S, AddToContext);
4822     if (!AddToContext)
4823       CurContext->addHiddenDecl(New);
4824   }
4825 
4826   return New;
4827 }
4828 
4829 /// Helper method to turn variable array types into constant array
4830 /// types in certain situations which would otherwise be errors (for
4831 /// GCC compatibility).
4832 static QualType TryToFixInvalidVariablyModifiedType(QualType T,
4833                                                     ASTContext &Context,
4834                                                     bool &SizeIsNegative,
4835                                                     llvm::APSInt &Oversized) {
4836   // This method tries to turn a variable array into a constant
4837   // array even when the size isn't an ICE.  This is necessary
4838   // for compatibility with code that depends on gcc's buggy
4839   // constant expression folding, like struct {char x[(int)(char*)2];}
4840   SizeIsNegative = false;
4841   Oversized = 0;
4842 
4843   if (T->isDependentType())
4844     return QualType();
4845 
4846   QualifierCollector Qs;
4847   const Type *Ty = Qs.strip(T);
4848 
4849   if (const PointerType* PTy = dyn_cast<PointerType>(Ty)) {
4850     QualType Pointee = PTy->getPointeeType();
4851     QualType FixedType =
4852         TryToFixInvalidVariablyModifiedType(Pointee, Context, SizeIsNegative,
4853                                             Oversized);
4854     if (FixedType.isNull()) return FixedType;
4855     FixedType = Context.getPointerType(FixedType);
4856     return Qs.apply(Context, FixedType);
4857   }
4858   if (const ParenType* PTy = dyn_cast<ParenType>(Ty)) {
4859     QualType Inner = PTy->getInnerType();
4860     QualType FixedType =
4861         TryToFixInvalidVariablyModifiedType(Inner, Context, SizeIsNegative,
4862                                             Oversized);
4863     if (FixedType.isNull()) return FixedType;
4864     FixedType = Context.getParenType(FixedType);
4865     return Qs.apply(Context, FixedType);
4866   }
4867 
4868   const VariableArrayType* VLATy = dyn_cast<VariableArrayType>(T);
4869   if (!VLATy)
4870     return QualType();
4871   // FIXME: We should probably handle this case
4872   if (VLATy->getElementType()->isVariablyModifiedType())
4873     return QualType();
4874 
4875   llvm::APSInt Res;
4876   if (!VLATy->getSizeExpr() ||
4877       !VLATy->getSizeExpr()->EvaluateAsInt(Res, Context))
4878     return QualType();
4879 
4880   // Check whether the array size is negative.
4881   if (Res.isSigned() && Res.isNegative()) {
4882     SizeIsNegative = true;
4883     return QualType();
4884   }
4885 
4886   // Check whether the array is too large to be addressed.
4887   unsigned ActiveSizeBits
4888     = ConstantArrayType::getNumAddressingBits(Context, VLATy->getElementType(),
4889                                               Res);
4890   if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) {
4891     Oversized = Res;
4892     return QualType();
4893   }
4894 
4895   return Context.getConstantArrayType(VLATy->getElementType(),
4896                                       Res, ArrayType::Normal, 0);
4897 }
4898 
4899 static void
4900 FixInvalidVariablyModifiedTypeLoc(TypeLoc SrcTL, TypeLoc DstTL) {
4901   SrcTL = SrcTL.getUnqualifiedLoc();
4902   DstTL = DstTL.getUnqualifiedLoc();
4903   if (PointerTypeLoc SrcPTL = SrcTL.getAs<PointerTypeLoc>()) {
4904     PointerTypeLoc DstPTL = DstTL.castAs<PointerTypeLoc>();
4905     FixInvalidVariablyModifiedTypeLoc(SrcPTL.getPointeeLoc(),
4906                                       DstPTL.getPointeeLoc());
4907     DstPTL.setStarLoc(SrcPTL.getStarLoc());
4908     return;
4909   }
4910   if (ParenTypeLoc SrcPTL = SrcTL.getAs<ParenTypeLoc>()) {
4911     ParenTypeLoc DstPTL = DstTL.castAs<ParenTypeLoc>();
4912     FixInvalidVariablyModifiedTypeLoc(SrcPTL.getInnerLoc(),
4913                                       DstPTL.getInnerLoc());
4914     DstPTL.setLParenLoc(SrcPTL.getLParenLoc());
4915     DstPTL.setRParenLoc(SrcPTL.getRParenLoc());
4916     return;
4917   }
4918   ArrayTypeLoc SrcATL = SrcTL.castAs<ArrayTypeLoc>();
4919   ArrayTypeLoc DstATL = DstTL.castAs<ArrayTypeLoc>();
4920   TypeLoc SrcElemTL = SrcATL.getElementLoc();
4921   TypeLoc DstElemTL = DstATL.getElementLoc();
4922   DstElemTL.initializeFullCopy(SrcElemTL);
4923   DstATL.setLBracketLoc(SrcATL.getLBracketLoc());
4924   DstATL.setSizeExpr(SrcATL.getSizeExpr());
4925   DstATL.setRBracketLoc(SrcATL.getRBracketLoc());
4926 }
4927 
4928 /// Helper method to turn variable array types into constant array
4929 /// types in certain situations which would otherwise be errors (for
4930 /// GCC compatibility).
4931 static TypeSourceInfo*
4932 TryToFixInvalidVariablyModifiedTypeSourceInfo(TypeSourceInfo *TInfo,
4933                                               ASTContext &Context,
4934                                               bool &SizeIsNegative,
4935                                               llvm::APSInt &Oversized) {
4936   QualType FixedTy
4937     = TryToFixInvalidVariablyModifiedType(TInfo->getType(), Context,
4938                                           SizeIsNegative, Oversized);
4939   if (FixedTy.isNull())
4940     return nullptr;
4941   TypeSourceInfo *FixedTInfo = Context.getTrivialTypeSourceInfo(FixedTy);
4942   FixInvalidVariablyModifiedTypeLoc(TInfo->getTypeLoc(),
4943                                     FixedTInfo->getTypeLoc());
4944   return FixedTInfo;
4945 }
4946 
4947 /// \brief Register the given locally-scoped extern "C" declaration so
4948 /// that it can be found later for redeclarations. We include any extern "C"
4949 /// declaration that is not visible in the translation unit here, not just
4950 /// function-scope declarations.
4951 void
4952 Sema::RegisterLocallyScopedExternCDecl(NamedDecl *ND, Scope *S) {
4953   if (!getLangOpts().CPlusPlus &&
4954       ND->getLexicalDeclContext()->getRedeclContext()->isTranslationUnit())
4955     // Don't need to track declarations in the TU in C.
4956     return;
4957 
4958   // Note that we have a locally-scoped external with this name.
4959   Context.getExternCContextDecl()->makeDeclVisibleInContext(ND);
4960 }
4961 
4962 NamedDecl *Sema::findLocallyScopedExternCDecl(DeclarationName Name) {
4963   // FIXME: We can have multiple results via __attribute__((overloadable)).
4964   auto Result = Context.getExternCContextDecl()->lookup(Name);
4965   return Result.empty() ? nullptr : *Result.begin();
4966 }
4967 
4968 /// \brief Diagnose function specifiers on a declaration of an identifier that
4969 /// does not identify a function.
4970 void Sema::DiagnoseFunctionSpecifiers(const DeclSpec &DS) {
4971   // FIXME: We should probably indicate the identifier in question to avoid
4972   // confusion for constructs like "inline int a(), b;"
4973   if (DS.isInlineSpecified())
4974     Diag(DS.getInlineSpecLoc(),
4975          diag::err_inline_non_function);
4976 
4977   if (DS.isVirtualSpecified())
4978     Diag(DS.getVirtualSpecLoc(),
4979          diag::err_virtual_non_function);
4980 
4981   if (DS.isExplicitSpecified())
4982     Diag(DS.getExplicitSpecLoc(),
4983          diag::err_explicit_non_function);
4984 
4985   if (DS.isNoreturnSpecified())
4986     Diag(DS.getNoreturnSpecLoc(),
4987          diag::err_noreturn_non_function);
4988 }
4989 
4990 NamedDecl*
4991 Sema::ActOnTypedefDeclarator(Scope* S, Declarator& D, DeclContext* DC,
4992                              TypeSourceInfo *TInfo, LookupResult &Previous) {
4993   // Typedef declarators cannot be qualified (C++ [dcl.meaning]p1).
4994   if (D.getCXXScopeSpec().isSet()) {
4995     Diag(D.getIdentifierLoc(), diag::err_qualified_typedef_declarator)
4996       << D.getCXXScopeSpec().getRange();
4997     D.setInvalidType();
4998     // Pretend we didn't see the scope specifier.
4999     DC = CurContext;
5000     Previous.clear();
5001   }
5002 
5003   DiagnoseFunctionSpecifiers(D.getDeclSpec());
5004 
5005   if (D.getDeclSpec().isConstexprSpecified())
5006     Diag(D.getDeclSpec().getConstexprSpecLoc(), diag::err_invalid_constexpr)
5007       << 1;
5008 
5009   if (D.getName().Kind != UnqualifiedId::IK_Identifier) {
5010     Diag(D.getName().StartLocation, diag::err_typedef_not_identifier)
5011       << D.getName().getSourceRange();
5012     return nullptr;
5013   }
5014 
5015   TypedefDecl *NewTD = ParseTypedefDecl(S, D, TInfo->getType(), TInfo);
5016   if (!NewTD) return nullptr;
5017 
5018   // Handle attributes prior to checking for duplicates in MergeVarDecl
5019   ProcessDeclAttributes(S, NewTD, D);
5020 
5021   CheckTypedefForVariablyModifiedType(S, NewTD);
5022 
5023   bool Redeclaration = D.isRedeclaration();
5024   NamedDecl *ND = ActOnTypedefNameDecl(S, DC, NewTD, Previous, Redeclaration);
5025   D.setRedeclaration(Redeclaration);
5026   return ND;
5027 }
5028 
5029 void
5030 Sema::CheckTypedefForVariablyModifiedType(Scope *S, TypedefNameDecl *NewTD) {
5031   // C99 6.7.7p2: If a typedef name specifies a variably modified type
5032   // then it shall have block scope.
5033   // Note that variably modified types must be fixed before merging the decl so
5034   // that redeclarations will match.
5035   TypeSourceInfo *TInfo = NewTD->getTypeSourceInfo();
5036   QualType T = TInfo->getType();
5037   if (T->isVariablyModifiedType()) {
5038     getCurFunction()->setHasBranchProtectedScope();
5039 
5040     if (S->getFnParent() == nullptr) {
5041       bool SizeIsNegative;
5042       llvm::APSInt Oversized;
5043       TypeSourceInfo *FixedTInfo =
5044         TryToFixInvalidVariablyModifiedTypeSourceInfo(TInfo, Context,
5045                                                       SizeIsNegative,
5046                                                       Oversized);
5047       if (FixedTInfo) {
5048         Diag(NewTD->getLocation(), diag::warn_illegal_constant_array_size);
5049         NewTD->setTypeSourceInfo(FixedTInfo);
5050       } else {
5051         if (SizeIsNegative)
5052           Diag(NewTD->getLocation(), diag::err_typecheck_negative_array_size);
5053         else if (T->isVariableArrayType())
5054           Diag(NewTD->getLocation(), diag::err_vla_decl_in_file_scope);
5055         else if (Oversized.getBoolValue())
5056           Diag(NewTD->getLocation(), diag::err_array_too_large)
5057             << Oversized.toString(10);
5058         else
5059           Diag(NewTD->getLocation(), diag::err_vm_decl_in_file_scope);
5060         NewTD->setInvalidDecl();
5061       }
5062     }
5063   }
5064 }
5065 
5066 
5067 /// ActOnTypedefNameDecl - Perform semantic checking for a declaration which
5068 /// declares a typedef-name, either using the 'typedef' type specifier or via
5069 /// a C++0x [dcl.typedef]p2 alias-declaration: 'using T = A;'.
5070 NamedDecl*
5071 Sema::ActOnTypedefNameDecl(Scope *S, DeclContext *DC, TypedefNameDecl *NewTD,
5072                            LookupResult &Previous, bool &Redeclaration) {
5073   // Merge the decl with the existing one if appropriate. If the decl is
5074   // in an outer scope, it isn't the same thing.
5075   FilterLookupForScope(Previous, DC, S, /*ConsiderLinkage*/false,
5076                        /*AllowInlineNamespace*/false);
5077   filterNonConflictingPreviousTypedefDecls(*this, NewTD, Previous);
5078   if (!Previous.empty()) {
5079     Redeclaration = true;
5080     MergeTypedefNameDecl(NewTD, Previous);
5081   }
5082 
5083   // If this is the C FILE type, notify the AST context.
5084   if (IdentifierInfo *II = NewTD->getIdentifier())
5085     if (!NewTD->isInvalidDecl() &&
5086         NewTD->getDeclContext()->getRedeclContext()->isTranslationUnit()) {
5087       if (II->isStr("FILE"))
5088         Context.setFILEDecl(NewTD);
5089       else if (II->isStr("jmp_buf"))
5090         Context.setjmp_bufDecl(NewTD);
5091       else if (II->isStr("sigjmp_buf"))
5092         Context.setsigjmp_bufDecl(NewTD);
5093       else if (II->isStr("ucontext_t"))
5094         Context.setucontext_tDecl(NewTD);
5095     }
5096 
5097   return NewTD;
5098 }
5099 
5100 /// \brief Determines whether the given declaration is an out-of-scope
5101 /// previous declaration.
5102 ///
5103 /// This routine should be invoked when name lookup has found a
5104 /// previous declaration (PrevDecl) that is not in the scope where a
5105 /// new declaration by the same name is being introduced. If the new
5106 /// declaration occurs in a local scope, previous declarations with
5107 /// linkage may still be considered previous declarations (C99
5108 /// 6.2.2p4-5, C++ [basic.link]p6).
5109 ///
5110 /// \param PrevDecl the previous declaration found by name
5111 /// lookup
5112 ///
5113 /// \param DC the context in which the new declaration is being
5114 /// declared.
5115 ///
5116 /// \returns true if PrevDecl is an out-of-scope previous declaration
5117 /// for a new delcaration with the same name.
5118 static bool
5119 isOutOfScopePreviousDeclaration(NamedDecl *PrevDecl, DeclContext *DC,
5120                                 ASTContext &Context) {
5121   if (!PrevDecl)
5122     return false;
5123 
5124   if (!PrevDecl->hasLinkage())
5125     return false;
5126 
5127   if (Context.getLangOpts().CPlusPlus) {
5128     // C++ [basic.link]p6:
5129     //   If there is a visible declaration of an entity with linkage
5130     //   having the same name and type, ignoring entities declared
5131     //   outside the innermost enclosing namespace scope, the block
5132     //   scope declaration declares that same entity and receives the
5133     //   linkage of the previous declaration.
5134     DeclContext *OuterContext = DC->getRedeclContext();
5135     if (!OuterContext->isFunctionOrMethod())
5136       // This rule only applies to block-scope declarations.
5137       return false;
5138 
5139     DeclContext *PrevOuterContext = PrevDecl->getDeclContext();
5140     if (PrevOuterContext->isRecord())
5141       // We found a member function: ignore it.
5142       return false;
5143 
5144     // Find the innermost enclosing namespace for the new and
5145     // previous declarations.
5146     OuterContext = OuterContext->getEnclosingNamespaceContext();
5147     PrevOuterContext = PrevOuterContext->getEnclosingNamespaceContext();
5148 
5149     // The previous declaration is in a different namespace, so it
5150     // isn't the same function.
5151     if (!OuterContext->Equals(PrevOuterContext))
5152       return false;
5153   }
5154 
5155   return true;
5156 }
5157 
5158 static void SetNestedNameSpecifier(DeclaratorDecl *DD, Declarator &D) {
5159   CXXScopeSpec &SS = D.getCXXScopeSpec();
5160   if (!SS.isSet()) return;
5161   DD->setQualifierInfo(SS.getWithLocInContext(DD->getASTContext()));
5162 }
5163 
5164 bool Sema::inferObjCARCLifetime(ValueDecl *decl) {
5165   QualType type = decl->getType();
5166   Qualifiers::ObjCLifetime lifetime = type.getObjCLifetime();
5167   if (lifetime == Qualifiers::OCL_Autoreleasing) {
5168     // Various kinds of declaration aren't allowed to be __autoreleasing.
5169     unsigned kind = -1U;
5170     if (VarDecl *var = dyn_cast<VarDecl>(decl)) {
5171       if (var->hasAttr<BlocksAttr>())
5172         kind = 0; // __block
5173       else if (!var->hasLocalStorage())
5174         kind = 1; // global
5175     } else if (isa<ObjCIvarDecl>(decl)) {
5176       kind = 3; // ivar
5177     } else if (isa<FieldDecl>(decl)) {
5178       kind = 2; // field
5179     }
5180 
5181     if (kind != -1U) {
5182       Diag(decl->getLocation(), diag::err_arc_autoreleasing_var)
5183         << kind;
5184     }
5185   } else if (lifetime == Qualifiers::OCL_None) {
5186     // Try to infer lifetime.
5187     if (!type->isObjCLifetimeType())
5188       return false;
5189 
5190     lifetime = type->getObjCARCImplicitLifetime();
5191     type = Context.getLifetimeQualifiedType(type, lifetime);
5192     decl->setType(type);
5193   }
5194 
5195   if (VarDecl *var = dyn_cast<VarDecl>(decl)) {
5196     // Thread-local variables cannot have lifetime.
5197     if (lifetime && lifetime != Qualifiers::OCL_ExplicitNone &&
5198         var->getTLSKind()) {
5199       Diag(var->getLocation(), diag::err_arc_thread_ownership)
5200         << var->getType();
5201       return true;
5202     }
5203   }
5204 
5205   return false;
5206 }
5207 
5208 static void checkAttributesAfterMerging(Sema &S, NamedDecl &ND) {
5209   // Ensure that an auto decl is deduced otherwise the checks below might cache
5210   // the wrong linkage.
5211   assert(S.ParsingInitForAutoVars.count(&ND) == 0);
5212 
5213   // 'weak' only applies to declarations with external linkage.
5214   if (WeakAttr *Attr = ND.getAttr<WeakAttr>()) {
5215     if (!ND.isExternallyVisible()) {
5216       S.Diag(Attr->getLocation(), diag::err_attribute_weak_static);
5217       ND.dropAttr<WeakAttr>();
5218     }
5219   }
5220   if (WeakRefAttr *Attr = ND.getAttr<WeakRefAttr>()) {
5221     if (ND.isExternallyVisible()) {
5222       S.Diag(Attr->getLocation(), diag::err_attribute_weakref_not_static);
5223       ND.dropAttr<WeakRefAttr>();
5224       ND.dropAttr<AliasAttr>();
5225     }
5226   }
5227 
5228   if (auto *VD = dyn_cast<VarDecl>(&ND)) {
5229     if (VD->hasInit()) {
5230       if (const auto *Attr = VD->getAttr<AliasAttr>()) {
5231         assert(VD->isThisDeclarationADefinition() &&
5232                !VD->isExternallyVisible() && "Broken AliasAttr handled late!");
5233         S.Diag(Attr->getLocation(), diag::err_alias_is_definition) << VD;
5234         VD->dropAttr<AliasAttr>();
5235       }
5236     }
5237   }
5238 
5239   // 'selectany' only applies to externally visible variable declarations.
5240   // It does not apply to functions.
5241   if (SelectAnyAttr *Attr = ND.getAttr<SelectAnyAttr>()) {
5242     if (isa<FunctionDecl>(ND) || !ND.isExternallyVisible()) {
5243       S.Diag(Attr->getLocation(),
5244              diag::err_attribute_selectany_non_extern_data);
5245       ND.dropAttr<SelectAnyAttr>();
5246     }
5247   }
5248 
5249   // dll attributes require external linkage.
5250   if (const InheritableAttr *Attr = getDLLAttr(&ND)) {
5251     if (!ND.isExternallyVisible()) {
5252       S.Diag(ND.getLocation(), diag::err_attribute_dll_not_extern)
5253         << &ND << Attr;
5254       ND.setInvalidDecl();
5255     }
5256   }
5257 }
5258 
5259 static void checkDLLAttributeRedeclaration(Sema &S, NamedDecl *OldDecl,
5260                                            NamedDecl *NewDecl,
5261                                            bool IsSpecialization) {
5262   if (TemplateDecl *OldTD = dyn_cast<TemplateDecl>(OldDecl))
5263     OldDecl = OldTD->getTemplatedDecl();
5264   if (TemplateDecl *NewTD = dyn_cast<TemplateDecl>(NewDecl))
5265     NewDecl = NewTD->getTemplatedDecl();
5266 
5267   if (!OldDecl || !NewDecl)
5268     return;
5269 
5270   const DLLImportAttr *OldImportAttr = OldDecl->getAttr<DLLImportAttr>();
5271   const DLLExportAttr *OldExportAttr = OldDecl->getAttr<DLLExportAttr>();
5272   const DLLImportAttr *NewImportAttr = NewDecl->getAttr<DLLImportAttr>();
5273   const DLLExportAttr *NewExportAttr = NewDecl->getAttr<DLLExportAttr>();
5274 
5275   // dllimport and dllexport are inheritable attributes so we have to exclude
5276   // inherited attribute instances.
5277   bool HasNewAttr = (NewImportAttr && !NewImportAttr->isInherited()) ||
5278                     (NewExportAttr && !NewExportAttr->isInherited());
5279 
5280   // A redeclaration is not allowed to add a dllimport or dllexport attribute,
5281   // the only exception being explicit specializations.
5282   // Implicitly generated declarations are also excluded for now because there
5283   // is no other way to switch these to use dllimport or dllexport.
5284   bool AddsAttr = !(OldImportAttr || OldExportAttr) && HasNewAttr;
5285 
5286   if (AddsAttr && !IsSpecialization && !OldDecl->isImplicit()) {
5287     // If the declaration hasn't been used yet, allow with a warning for
5288     // free functions and global variables.
5289     bool JustWarn = false;
5290     if (!OldDecl->isUsed() && !OldDecl->isCXXClassMember()) {
5291       auto *VD = dyn_cast<VarDecl>(OldDecl);
5292       if (VD && !VD->getDescribedVarTemplate())
5293         JustWarn = true;
5294       auto *FD = dyn_cast<FunctionDecl>(OldDecl);
5295       if (FD && FD->getTemplatedKind() == FunctionDecl::TK_NonTemplate)
5296         JustWarn = true;
5297     }
5298 
5299     unsigned DiagID = JustWarn ? diag::warn_attribute_dll_redeclaration
5300                                : diag::err_attribute_dll_redeclaration;
5301     S.Diag(NewDecl->getLocation(), DiagID)
5302         << NewDecl
5303         << (NewImportAttr ? (const Attr *)NewImportAttr : NewExportAttr);
5304     S.Diag(OldDecl->getLocation(), diag::note_previous_declaration);
5305     if (!JustWarn) {
5306       NewDecl->setInvalidDecl();
5307       return;
5308     }
5309   }
5310 
5311   // A redeclaration is not allowed to drop a dllimport attribute, the only
5312   // exceptions being inline function definitions, local extern declarations,
5313   // and qualified friend declarations.
5314   // NB: MSVC converts such a declaration to dllexport.
5315   bool IsInline = false, IsStaticDataMember = false, IsQualifiedFriend = false;
5316   if (const auto *VD = dyn_cast<VarDecl>(NewDecl))
5317     // Ignore static data because out-of-line definitions are diagnosed
5318     // separately.
5319     IsStaticDataMember = VD->isStaticDataMember();
5320   else if (const auto *FD = dyn_cast<FunctionDecl>(NewDecl)) {
5321     IsInline = FD->isInlined();
5322     IsQualifiedFriend = FD->getQualifier() &&
5323                         FD->getFriendObjectKind() == Decl::FOK_Declared;
5324   }
5325 
5326   if (OldImportAttr && !HasNewAttr && !IsInline && !IsStaticDataMember &&
5327       !NewDecl->isLocalExternDecl() && !IsQualifiedFriend) {
5328     S.Diag(NewDecl->getLocation(),
5329            diag::warn_redeclaration_without_attribute_prev_attribute_ignored)
5330       << NewDecl << OldImportAttr;
5331     S.Diag(OldDecl->getLocation(), diag::note_previous_declaration);
5332     S.Diag(OldImportAttr->getLocation(), diag::note_previous_attribute);
5333     OldDecl->dropAttr<DLLImportAttr>();
5334     NewDecl->dropAttr<DLLImportAttr>();
5335   } else if (IsInline && OldImportAttr &&
5336              !S.Context.getTargetInfo().getCXXABI().isMicrosoft()) {
5337     // In MinGW, seeing a function declared inline drops the dllimport attribute.
5338     OldDecl->dropAttr<DLLImportAttr>();
5339     NewDecl->dropAttr<DLLImportAttr>();
5340     S.Diag(NewDecl->getLocation(),
5341            diag::warn_dllimport_dropped_from_inline_function)
5342         << NewDecl << OldImportAttr;
5343   }
5344 }
5345 
5346 /// Given that we are within the definition of the given function,
5347 /// will that definition behave like C99's 'inline', where the
5348 /// definition is discarded except for optimization purposes?
5349 static bool isFunctionDefinitionDiscarded(Sema &S, FunctionDecl *FD) {
5350   // Try to avoid calling GetGVALinkageForFunction.
5351 
5352   // All cases of this require the 'inline' keyword.
5353   if (!FD->isInlined()) return false;
5354 
5355   // This is only possible in C++ with the gnu_inline attribute.
5356   if (S.getLangOpts().CPlusPlus && !FD->hasAttr<GNUInlineAttr>())
5357     return false;
5358 
5359   // Okay, go ahead and call the relatively-more-expensive function.
5360 
5361 #ifndef NDEBUG
5362   // AST quite reasonably asserts that it's working on a function
5363   // definition.  We don't really have a way to tell it that we're
5364   // currently defining the function, so just lie to it in +Asserts
5365   // builds.  This is an awful hack.
5366   FD->setLazyBody(1);
5367 #endif
5368 
5369   bool isC99Inline =
5370       S.Context.GetGVALinkageForFunction(FD) == GVA_AvailableExternally;
5371 
5372 #ifndef NDEBUG
5373   FD->setLazyBody(0);
5374 #endif
5375 
5376   return isC99Inline;
5377 }
5378 
5379 /// Determine whether a variable is extern "C" prior to attaching
5380 /// an initializer. We can't just call isExternC() here, because that
5381 /// will also compute and cache whether the declaration is externally
5382 /// visible, which might change when we attach the initializer.
5383 ///
5384 /// This can only be used if the declaration is known to not be a
5385 /// redeclaration of an internal linkage declaration.
5386 ///
5387 /// For instance:
5388 ///
5389 ///   auto x = []{};
5390 ///
5391 /// Attaching the initializer here makes this declaration not externally
5392 /// visible, because its type has internal linkage.
5393 ///
5394 /// FIXME: This is a hack.
5395 template<typename T>
5396 static bool isIncompleteDeclExternC(Sema &S, const T *D) {
5397   if (S.getLangOpts().CPlusPlus) {
5398     // In C++, the overloadable attribute negates the effects of extern "C".
5399     if (!D->isInExternCContext() || D->template hasAttr<OverloadableAttr>())
5400       return false;
5401   }
5402   return D->isExternC();
5403 }
5404 
5405 static bool shouldConsiderLinkage(const VarDecl *VD) {
5406   const DeclContext *DC = VD->getDeclContext()->getRedeclContext();
5407   if (DC->isFunctionOrMethod())
5408     return VD->hasExternalStorage();
5409   if (DC->isFileContext())
5410     return true;
5411   if (DC->isRecord())
5412     return false;
5413   llvm_unreachable("Unexpected context");
5414 }
5415 
5416 static bool shouldConsiderLinkage(const FunctionDecl *FD) {
5417   const DeclContext *DC = FD->getDeclContext()->getRedeclContext();
5418   if (DC->isFileContext() || DC->isFunctionOrMethod())
5419     return true;
5420   if (DC->isRecord())
5421     return false;
5422   llvm_unreachable("Unexpected context");
5423 }
5424 
5425 static bool hasParsedAttr(Scope *S, const AttributeList *AttrList,
5426                           AttributeList::Kind Kind) {
5427   for (const AttributeList *L = AttrList; L; L = L->getNext())
5428     if (L->getKind() == Kind)
5429       return true;
5430   return false;
5431 }
5432 
5433 static bool hasParsedAttr(Scope *S, const Declarator &PD,
5434                           AttributeList::Kind Kind) {
5435   // Check decl attributes on the DeclSpec.
5436   if (hasParsedAttr(S, PD.getDeclSpec().getAttributes().getList(), Kind))
5437     return true;
5438 
5439   // Walk the declarator structure, checking decl attributes that were in a type
5440   // position to the decl itself.
5441   for (unsigned I = 0, E = PD.getNumTypeObjects(); I != E; ++I) {
5442     if (hasParsedAttr(S, PD.getTypeObject(I).getAttrs(), Kind))
5443       return true;
5444   }
5445 
5446   // Finally, check attributes on the decl itself.
5447   return hasParsedAttr(S, PD.getAttributes(), Kind);
5448 }
5449 
5450 /// Adjust the \c DeclContext for a function or variable that might be a
5451 /// function-local external declaration.
5452 bool Sema::adjustContextForLocalExternDecl(DeclContext *&DC) {
5453   if (!DC->isFunctionOrMethod())
5454     return false;
5455 
5456   // If this is a local extern function or variable declared within a function
5457   // template, don't add it into the enclosing namespace scope until it is
5458   // instantiated; it might have a dependent type right now.
5459   if (DC->isDependentContext())
5460     return true;
5461 
5462   // C++11 [basic.link]p7:
5463   //   When a block scope declaration of an entity with linkage is not found to
5464   //   refer to some other declaration, then that entity is a member of the
5465   //   innermost enclosing namespace.
5466   //
5467   // Per C++11 [namespace.def]p6, the innermost enclosing namespace is a
5468   // semantically-enclosing namespace, not a lexically-enclosing one.
5469   while (!DC->isFileContext() && !isa<LinkageSpecDecl>(DC))
5470     DC = DC->getParent();
5471   return true;
5472 }
5473 
5474 NamedDecl *
5475 Sema::ActOnVariableDeclarator(Scope *S, Declarator &D, DeclContext *DC,
5476                               TypeSourceInfo *TInfo, LookupResult &Previous,
5477                               MultiTemplateParamsArg TemplateParamLists,
5478                               bool &AddToScope) {
5479   QualType R = TInfo->getType();
5480   DeclarationName Name = GetNameForDeclarator(D).getName();
5481 
5482   DeclSpec::SCS SCSpec = D.getDeclSpec().getStorageClassSpec();
5483   StorageClass SC = StorageClassSpecToVarDeclStorageClass(D.getDeclSpec());
5484 
5485   // dllimport globals without explicit storage class are treated as extern. We
5486   // have to change the storage class this early to get the right DeclContext.
5487   if (SC == SC_None && !DC->isRecord() &&
5488       hasParsedAttr(S, D, AttributeList::AT_DLLImport) &&
5489       !hasParsedAttr(S, D, AttributeList::AT_DLLExport))
5490     SC = SC_Extern;
5491 
5492   DeclContext *OriginalDC = DC;
5493   bool IsLocalExternDecl = SC == SC_Extern &&
5494                            adjustContextForLocalExternDecl(DC);
5495 
5496   if (getLangOpts().OpenCL) {
5497     // OpenCL v1.0 s6.8.a.3: Pointers to functions are not allowed.
5498     QualType NR = R;
5499     while (NR->isPointerType()) {
5500       if (NR->isFunctionPointerType()) {
5501         Diag(D.getIdentifierLoc(), diag::err_opencl_function_pointer_variable);
5502         D.setInvalidType();
5503         break;
5504       }
5505       NR = NR->getPointeeType();
5506     }
5507 
5508     if (!getOpenCLOptions().cl_khr_fp16) {
5509       // OpenCL v1.2 s6.1.1.1: reject declaring variables of the half and
5510       // half array type (unless the cl_khr_fp16 extension is enabled).
5511       if (Context.getBaseElementType(R)->isHalfType()) {
5512         Diag(D.getIdentifierLoc(), diag::err_opencl_half_declaration) << R;
5513         D.setInvalidType();
5514       }
5515     }
5516   }
5517 
5518   if (SCSpec == DeclSpec::SCS_mutable) {
5519     // mutable can only appear on non-static class members, so it's always
5520     // an error here
5521     Diag(D.getIdentifierLoc(), diag::err_mutable_nonmember);
5522     D.setInvalidType();
5523     SC = SC_None;
5524   }
5525 
5526   if (getLangOpts().CPlusPlus11 && SCSpec == DeclSpec::SCS_register &&
5527       !D.getAsmLabel() && !getSourceManager().isInSystemMacro(
5528                               D.getDeclSpec().getStorageClassSpecLoc())) {
5529     // In C++11, the 'register' storage class specifier is deprecated.
5530     // Suppress the warning in system macros, it's used in macros in some
5531     // popular C system headers, such as in glibc's htonl() macro.
5532     Diag(D.getDeclSpec().getStorageClassSpecLoc(),
5533          diag::warn_deprecated_register)
5534       << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc());
5535   }
5536 
5537   IdentifierInfo *II = Name.getAsIdentifierInfo();
5538   if (!II) {
5539     Diag(D.getIdentifierLoc(), diag::err_bad_variable_name)
5540       << Name;
5541     return nullptr;
5542   }
5543 
5544   DiagnoseFunctionSpecifiers(D.getDeclSpec());
5545 
5546   if (!DC->isRecord() && S->getFnParent() == nullptr) {
5547     // C99 6.9p2: The storage-class specifiers auto and register shall not
5548     // appear in the declaration specifiers in an external declaration.
5549     // Global Register+Asm is a GNU extension we support.
5550     if (SC == SC_Auto || (SC == SC_Register && !D.getAsmLabel())) {
5551       Diag(D.getIdentifierLoc(), diag::err_typecheck_sclass_fscope);
5552       D.setInvalidType();
5553     }
5554   }
5555 
5556   if (getLangOpts().OpenCL) {
5557     // Set up the special work-group-local storage class for variables in the
5558     // OpenCL __local address space.
5559     if (R.getAddressSpace() == LangAS::opencl_local) {
5560       SC = SC_OpenCLWorkGroupLocal;
5561     }
5562 
5563     // OpenCL v1.2 s6.9.b p4:
5564     // The sampler type cannot be used with the __local and __global address
5565     // space qualifiers.
5566     if (R->isSamplerT() && (R.getAddressSpace() == LangAS::opencl_local ||
5567       R.getAddressSpace() == LangAS::opencl_global)) {
5568       Diag(D.getIdentifierLoc(), diag::err_wrong_sampler_addressspace);
5569     }
5570 
5571     // OpenCL 1.2 spec, p6.9 r:
5572     // The event type cannot be used to declare a program scope variable.
5573     // The event type cannot be used with the __local, __constant and __global
5574     // address space qualifiers.
5575     if (R->isEventT()) {
5576       if (S->getParent() == nullptr) {
5577         Diag(D.getLocStart(), diag::err_event_t_global_var);
5578         D.setInvalidType();
5579       }
5580 
5581       if (R.getAddressSpace()) {
5582         Diag(D.getLocStart(), diag::err_event_t_addr_space_qual);
5583         D.setInvalidType();
5584       }
5585     }
5586   }
5587 
5588   bool IsExplicitSpecialization = false;
5589   bool IsVariableTemplateSpecialization = false;
5590   bool IsPartialSpecialization = false;
5591   bool IsVariableTemplate = false;
5592   VarDecl *NewVD = nullptr;
5593   VarTemplateDecl *NewTemplate = nullptr;
5594   TemplateParameterList *TemplateParams = nullptr;
5595   if (!getLangOpts().CPlusPlus) {
5596     NewVD = VarDecl::Create(Context, DC, D.getLocStart(),
5597                             D.getIdentifierLoc(), II,
5598                             R, TInfo, SC);
5599 
5600     if (D.isInvalidType())
5601       NewVD->setInvalidDecl();
5602   } else {
5603     bool Invalid = false;
5604 
5605     if (DC->isRecord() && !CurContext->isRecord()) {
5606       // This is an out-of-line definition of a static data member.
5607       switch (SC) {
5608       case SC_None:
5609         break;
5610       case SC_Static:
5611         Diag(D.getDeclSpec().getStorageClassSpecLoc(),
5612              diag::err_static_out_of_line)
5613           << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc());
5614         break;
5615       case SC_Auto:
5616       case SC_Register:
5617       case SC_Extern:
5618         // [dcl.stc] p2: The auto or register specifiers shall be applied only
5619         // to names of variables declared in a block or to function parameters.
5620         // [dcl.stc] p6: The extern specifier cannot be used in the declaration
5621         // of class members
5622 
5623         Diag(D.getDeclSpec().getStorageClassSpecLoc(),
5624              diag::err_storage_class_for_static_member)
5625           << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc());
5626         break;
5627       case SC_PrivateExtern:
5628         llvm_unreachable("C storage class in c++!");
5629       case SC_OpenCLWorkGroupLocal:
5630         llvm_unreachable("OpenCL storage class in c++!");
5631       }
5632     }
5633 
5634     if (SC == SC_Static && CurContext->isRecord()) {
5635       if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(DC)) {
5636         if (RD->isLocalClass())
5637           Diag(D.getIdentifierLoc(),
5638                diag::err_static_data_member_not_allowed_in_local_class)
5639             << Name << RD->getDeclName();
5640 
5641         // C++98 [class.union]p1: If a union contains a static data member,
5642         // the program is ill-formed. C++11 drops this restriction.
5643         if (RD->isUnion())
5644           Diag(D.getIdentifierLoc(),
5645                getLangOpts().CPlusPlus11
5646                  ? diag::warn_cxx98_compat_static_data_member_in_union
5647                  : diag::ext_static_data_member_in_union) << Name;
5648         // We conservatively disallow static data members in anonymous structs.
5649         else if (!RD->getDeclName())
5650           Diag(D.getIdentifierLoc(),
5651                diag::err_static_data_member_not_allowed_in_anon_struct)
5652             << Name << RD->isUnion();
5653       }
5654     }
5655 
5656     // Match up the template parameter lists with the scope specifier, then
5657     // determine whether we have a template or a template specialization.
5658     TemplateParams = MatchTemplateParametersToScopeSpecifier(
5659         D.getDeclSpec().getLocStart(), D.getIdentifierLoc(),
5660         D.getCXXScopeSpec(),
5661         D.getName().getKind() == UnqualifiedId::IK_TemplateId
5662             ? D.getName().TemplateId
5663             : nullptr,
5664         TemplateParamLists,
5665         /*never a friend*/ false, IsExplicitSpecialization, Invalid);
5666 
5667     if (TemplateParams) {
5668       if (!TemplateParams->size() &&
5669           D.getName().getKind() != UnqualifiedId::IK_TemplateId) {
5670         // There is an extraneous 'template<>' for this variable. Complain
5671         // about it, but allow the declaration of the variable.
5672         Diag(TemplateParams->getTemplateLoc(),
5673              diag::err_template_variable_noparams)
5674           << II
5675           << SourceRange(TemplateParams->getTemplateLoc(),
5676                          TemplateParams->getRAngleLoc());
5677         TemplateParams = nullptr;
5678       } else {
5679         if (D.getName().getKind() == UnqualifiedId::IK_TemplateId) {
5680           // This is an explicit specialization or a partial specialization.
5681           // FIXME: Check that we can declare a specialization here.
5682           IsVariableTemplateSpecialization = true;
5683           IsPartialSpecialization = TemplateParams->size() > 0;
5684         } else { // if (TemplateParams->size() > 0)
5685           // This is a template declaration.
5686           IsVariableTemplate = true;
5687 
5688           // Check that we can declare a template here.
5689           if (CheckTemplateDeclScope(S, TemplateParams))
5690             return nullptr;
5691 
5692           // Only C++1y supports variable templates (N3651).
5693           Diag(D.getIdentifierLoc(),
5694                getLangOpts().CPlusPlus14
5695                    ? diag::warn_cxx11_compat_variable_template
5696                    : diag::ext_variable_template);
5697         }
5698       }
5699     } else {
5700       assert(
5701           (Invalid || D.getName().getKind() != UnqualifiedId::IK_TemplateId) &&
5702           "should have a 'template<>' for this decl");
5703     }
5704 
5705     if (IsVariableTemplateSpecialization) {
5706       SourceLocation TemplateKWLoc =
5707           TemplateParamLists.size() > 0
5708               ? TemplateParamLists[0]->getTemplateLoc()
5709               : SourceLocation();
5710       DeclResult Res = ActOnVarTemplateSpecialization(
5711           S, D, TInfo, TemplateKWLoc, TemplateParams, SC,
5712           IsPartialSpecialization);
5713       if (Res.isInvalid())
5714         return nullptr;
5715       NewVD = cast<VarDecl>(Res.get());
5716       AddToScope = false;
5717     } else
5718       NewVD = VarDecl::Create(Context, DC, D.getLocStart(),
5719                               D.getIdentifierLoc(), II, R, TInfo, SC);
5720 
5721     // If this is supposed to be a variable template, create it as such.
5722     if (IsVariableTemplate) {
5723       NewTemplate =
5724           VarTemplateDecl::Create(Context, DC, D.getIdentifierLoc(), Name,
5725                                   TemplateParams, NewVD);
5726       NewVD->setDescribedVarTemplate(NewTemplate);
5727     }
5728 
5729     // If this decl has an auto type in need of deduction, make a note of the
5730     // Decl so we can diagnose uses of it in its own initializer.
5731     if (D.getDeclSpec().containsPlaceholderType() && R->getContainedAutoType())
5732       ParsingInitForAutoVars.insert(NewVD);
5733 
5734     if (D.isInvalidType() || Invalid) {
5735       NewVD->setInvalidDecl();
5736       if (NewTemplate)
5737         NewTemplate->setInvalidDecl();
5738     }
5739 
5740     SetNestedNameSpecifier(NewVD, D);
5741 
5742     // If we have any template parameter lists that don't directly belong to
5743     // the variable (matching the scope specifier), store them.
5744     unsigned VDTemplateParamLists = TemplateParams ? 1 : 0;
5745     if (TemplateParamLists.size() > VDTemplateParamLists)
5746       NewVD->setTemplateParameterListsInfo(
5747           Context, TemplateParamLists.size() - VDTemplateParamLists,
5748           TemplateParamLists.data());
5749 
5750     if (D.getDeclSpec().isConstexprSpecified())
5751       NewVD->setConstexpr(true);
5752   }
5753 
5754   // Set the lexical context. If the declarator has a C++ scope specifier, the
5755   // lexical context will be different from the semantic context.
5756   NewVD->setLexicalDeclContext(CurContext);
5757   if (NewTemplate)
5758     NewTemplate->setLexicalDeclContext(CurContext);
5759 
5760   if (IsLocalExternDecl)
5761     NewVD->setLocalExternDecl();
5762 
5763   bool EmitTLSUnsupportedError = false;
5764   if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec()) {
5765     // C++11 [dcl.stc]p4:
5766     //   When thread_local is applied to a variable of block scope the
5767     //   storage-class-specifier static is implied if it does not appear
5768     //   explicitly.
5769     // Core issue: 'static' is not implied if the variable is declared
5770     //   'extern'.
5771     if (NewVD->hasLocalStorage() &&
5772         (SCSpec != DeclSpec::SCS_unspecified ||
5773          TSCS != DeclSpec::TSCS_thread_local ||
5774          !DC->isFunctionOrMethod()))
5775       Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(),
5776            diag::err_thread_non_global)
5777         << DeclSpec::getSpecifierName(TSCS);
5778     else if (!Context.getTargetInfo().isTLSSupported()) {
5779       if (getLangOpts().CUDA) {
5780         // Postpone error emission until we've collected attributes required to
5781         // figure out whether it's a host or device variable and whether the
5782         // error should be ignored.
5783         EmitTLSUnsupportedError = true;
5784         // We still need to mark the variable as TLS so it shows up in AST with
5785         // proper storage class for other tools to use even if we're not going
5786         // to emit any code for it.
5787         NewVD->setTSCSpec(TSCS);
5788       } else
5789         Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(),
5790              diag::err_thread_unsupported);
5791     } else
5792       NewVD->setTSCSpec(TSCS);
5793   }
5794 
5795   // C99 6.7.4p3
5796   //   An inline definition of a function with external linkage shall
5797   //   not contain a definition of a modifiable object with static or
5798   //   thread storage duration...
5799   // We only apply this when the function is required to be defined
5800   // elsewhere, i.e. when the function is not 'extern inline'.  Note
5801   // that a local variable with thread storage duration still has to
5802   // be marked 'static'.  Also note that it's possible to get these
5803   // semantics in C++ using __attribute__((gnu_inline)).
5804   if (SC == SC_Static && S->getFnParent() != nullptr &&
5805       !NewVD->getType().isConstQualified()) {
5806     FunctionDecl *CurFD = getCurFunctionDecl();
5807     if (CurFD && isFunctionDefinitionDiscarded(*this, CurFD)) {
5808       Diag(D.getDeclSpec().getStorageClassSpecLoc(),
5809            diag::warn_static_local_in_extern_inline);
5810       MaybeSuggestAddingStaticToDecl(CurFD);
5811     }
5812   }
5813 
5814   if (D.getDeclSpec().isModulePrivateSpecified()) {
5815     if (IsVariableTemplateSpecialization)
5816       Diag(NewVD->getLocation(), diag::err_module_private_specialization)
5817           << (IsPartialSpecialization ? 1 : 0)
5818           << FixItHint::CreateRemoval(
5819                  D.getDeclSpec().getModulePrivateSpecLoc());
5820     else if (IsExplicitSpecialization)
5821       Diag(NewVD->getLocation(), diag::err_module_private_specialization)
5822         << 2
5823         << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc());
5824     else if (NewVD->hasLocalStorage())
5825       Diag(NewVD->getLocation(), diag::err_module_private_local)
5826         << 0 << NewVD->getDeclName()
5827         << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc())
5828         << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc());
5829     else {
5830       NewVD->setModulePrivate();
5831       if (NewTemplate)
5832         NewTemplate->setModulePrivate();
5833     }
5834   }
5835 
5836   // Handle attributes prior to checking for duplicates in MergeVarDecl
5837   ProcessDeclAttributes(S, NewVD, D);
5838 
5839   if (getLangOpts().CUDA) {
5840     if (EmitTLSUnsupportedError && DeclAttrsMatchCUDAMode(getLangOpts(), NewVD))
5841       Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(),
5842            diag::err_thread_unsupported);
5843     // CUDA B.2.5: "__shared__ and __constant__ variables have implied static
5844     // storage [duration]."
5845     if (SC == SC_None && S->getFnParent() != nullptr &&
5846         (NewVD->hasAttr<CUDASharedAttr>() ||
5847          NewVD->hasAttr<CUDAConstantAttr>())) {
5848       NewVD->setStorageClass(SC_Static);
5849     }
5850   }
5851 
5852   // Ensure that dllimport globals without explicit storage class are treated as
5853   // extern. The storage class is set above using parsed attributes. Now we can
5854   // check the VarDecl itself.
5855   assert(!NewVD->hasAttr<DLLImportAttr>() ||
5856          NewVD->getAttr<DLLImportAttr>()->isInherited() ||
5857          NewVD->isStaticDataMember() || NewVD->getStorageClass() != SC_None);
5858 
5859   // In auto-retain/release, infer strong retension for variables of
5860   // retainable type.
5861   if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewVD))
5862     NewVD->setInvalidDecl();
5863 
5864   // Handle GNU asm-label extension (encoded as an attribute).
5865   if (Expr *E = (Expr*)D.getAsmLabel()) {
5866     // The parser guarantees this is a string.
5867     StringLiteral *SE = cast<StringLiteral>(E);
5868     StringRef Label = SE->getString();
5869     if (S->getFnParent() != nullptr) {
5870       switch (SC) {
5871       case SC_None:
5872       case SC_Auto:
5873         Diag(E->getExprLoc(), diag::warn_asm_label_on_auto_decl) << Label;
5874         break;
5875       case SC_Register:
5876         // Local Named register
5877         if (!Context.getTargetInfo().isValidGCCRegisterName(Label))
5878           Diag(E->getExprLoc(), diag::err_asm_unknown_register_name) << Label;
5879         break;
5880       case SC_Static:
5881       case SC_Extern:
5882       case SC_PrivateExtern:
5883       case SC_OpenCLWorkGroupLocal:
5884         break;
5885       }
5886     } else if (SC == SC_Register) {
5887       // Global Named register
5888       if (!Context.getTargetInfo().isValidGCCRegisterName(Label))
5889         Diag(E->getExprLoc(), diag::err_asm_unknown_register_name) << Label;
5890       if (!R->isIntegralType(Context) && !R->isPointerType()) {
5891         Diag(D.getLocStart(), diag::err_asm_bad_register_type);
5892         NewVD->setInvalidDecl(true);
5893       }
5894     }
5895 
5896     NewVD->addAttr(::new (Context) AsmLabelAttr(SE->getStrTokenLoc(0),
5897                                                 Context, Label, 0));
5898   } else if (!ExtnameUndeclaredIdentifiers.empty()) {
5899     llvm::DenseMap<IdentifierInfo*,AsmLabelAttr*>::iterator I =
5900       ExtnameUndeclaredIdentifiers.find(NewVD->getIdentifier());
5901     if (I != ExtnameUndeclaredIdentifiers.end()) {
5902       NewVD->addAttr(I->second);
5903       ExtnameUndeclaredIdentifiers.erase(I);
5904     }
5905   }
5906 
5907   // Diagnose shadowed variables before filtering for scope.
5908   if (D.getCXXScopeSpec().isEmpty())
5909     CheckShadow(S, NewVD, Previous);
5910 
5911   // Don't consider existing declarations that are in a different
5912   // scope and are out-of-semantic-context declarations (if the new
5913   // declaration has linkage).
5914   FilterLookupForScope(Previous, OriginalDC, S, shouldConsiderLinkage(NewVD),
5915                        D.getCXXScopeSpec().isNotEmpty() ||
5916                        IsExplicitSpecialization ||
5917                        IsVariableTemplateSpecialization);
5918 
5919   // Check whether the previous declaration is in the same block scope. This
5920   // affects whether we merge types with it, per C++11 [dcl.array]p3.
5921   if (getLangOpts().CPlusPlus &&
5922       NewVD->isLocalVarDecl() && NewVD->hasExternalStorage())
5923     NewVD->setPreviousDeclInSameBlockScope(
5924         Previous.isSingleResult() && !Previous.isShadowed() &&
5925         isDeclInScope(Previous.getFoundDecl(), OriginalDC, S, false));
5926 
5927   if (!getLangOpts().CPlusPlus) {
5928     D.setRedeclaration(CheckVariableDeclaration(NewVD, Previous));
5929   } else {
5930     // If this is an explicit specialization of a static data member, check it.
5931     if (IsExplicitSpecialization && !NewVD->isInvalidDecl() &&
5932         CheckMemberSpecialization(NewVD, Previous))
5933       NewVD->setInvalidDecl();
5934 
5935     // Merge the decl with the existing one if appropriate.
5936     if (!Previous.empty()) {
5937       if (Previous.isSingleResult() &&
5938           isa<FieldDecl>(Previous.getFoundDecl()) &&
5939           D.getCXXScopeSpec().isSet()) {
5940         // The user tried to define a non-static data member
5941         // out-of-line (C++ [dcl.meaning]p1).
5942         Diag(NewVD->getLocation(), diag::err_nonstatic_member_out_of_line)
5943           << D.getCXXScopeSpec().getRange();
5944         Previous.clear();
5945         NewVD->setInvalidDecl();
5946       }
5947     } else if (D.getCXXScopeSpec().isSet()) {
5948       // No previous declaration in the qualifying scope.
5949       Diag(D.getIdentifierLoc(), diag::err_no_member)
5950         << Name << computeDeclContext(D.getCXXScopeSpec(), true)
5951         << D.getCXXScopeSpec().getRange();
5952       NewVD->setInvalidDecl();
5953     }
5954 
5955     if (!IsVariableTemplateSpecialization)
5956       D.setRedeclaration(CheckVariableDeclaration(NewVD, Previous));
5957 
5958     if (NewTemplate) {
5959       VarTemplateDecl *PrevVarTemplate =
5960           NewVD->getPreviousDecl()
5961               ? NewVD->getPreviousDecl()->getDescribedVarTemplate()
5962               : nullptr;
5963 
5964       // Check the template parameter list of this declaration, possibly
5965       // merging in the template parameter list from the previous variable
5966       // template declaration.
5967       if (CheckTemplateParameterList(
5968               TemplateParams,
5969               PrevVarTemplate ? PrevVarTemplate->getTemplateParameters()
5970                               : nullptr,
5971               (D.getCXXScopeSpec().isSet() && DC && DC->isRecord() &&
5972                DC->isDependentContext())
5973                   ? TPC_ClassTemplateMember
5974                   : TPC_VarTemplate))
5975         NewVD->setInvalidDecl();
5976 
5977       // If we are providing an explicit specialization of a static variable
5978       // template, make a note of that.
5979       if (PrevVarTemplate &&
5980           PrevVarTemplate->getInstantiatedFromMemberTemplate())
5981         PrevVarTemplate->setMemberSpecialization();
5982     }
5983   }
5984 
5985   ProcessPragmaWeak(S, NewVD);
5986 
5987   // If this is the first declaration of an extern C variable, update
5988   // the map of such variables.
5989   if (NewVD->isFirstDecl() && !NewVD->isInvalidDecl() &&
5990       isIncompleteDeclExternC(*this, NewVD))
5991     RegisterLocallyScopedExternCDecl(NewVD, S);
5992 
5993   if (getLangOpts().CPlusPlus && NewVD->isStaticLocal()) {
5994     Decl *ManglingContextDecl;
5995     if (MangleNumberingContext *MCtx = getCurrentMangleNumberContext(
5996             NewVD->getDeclContext(), ManglingContextDecl)) {
5997       Context.setManglingNumber(
5998           NewVD, MCtx->getManglingNumber(
5999                      NewVD, getMSManglingNumber(getLangOpts(), S)));
6000       Context.setStaticLocalNumber(NewVD, MCtx->getStaticLocalNumber(NewVD));
6001     }
6002   }
6003 
6004   if (D.isRedeclaration() && !Previous.empty()) {
6005     checkDLLAttributeRedeclaration(
6006         *this, dyn_cast<NamedDecl>(Previous.getRepresentativeDecl()), NewVD,
6007         IsExplicitSpecialization);
6008   }
6009 
6010   if (NewTemplate) {
6011     if (NewVD->isInvalidDecl())
6012       NewTemplate->setInvalidDecl();
6013     ActOnDocumentableDecl(NewTemplate);
6014     return NewTemplate;
6015   }
6016 
6017   return NewVD;
6018 }
6019 
6020 /// \brief Diagnose variable or built-in function shadowing.  Implements
6021 /// -Wshadow.
6022 ///
6023 /// This method is called whenever a VarDecl is added to a "useful"
6024 /// scope.
6025 ///
6026 /// \param S the scope in which the shadowing name is being declared
6027 /// \param R the lookup of the name
6028 ///
6029 void Sema::CheckShadow(Scope *S, VarDecl *D, const LookupResult& R) {
6030   // Return if warning is ignored.
6031   if (Diags.isIgnored(diag::warn_decl_shadow, R.getNameLoc()))
6032     return;
6033 
6034   // Don't diagnose declarations at file scope.
6035   if (D->hasGlobalStorage())
6036     return;
6037 
6038   DeclContext *NewDC = D->getDeclContext();
6039 
6040   // Only diagnose if we're shadowing an unambiguous field or variable.
6041   if (R.getResultKind() != LookupResult::Found)
6042     return;
6043 
6044   NamedDecl* ShadowedDecl = R.getFoundDecl();
6045   if (!isa<VarDecl>(ShadowedDecl) && !isa<FieldDecl>(ShadowedDecl))
6046     return;
6047 
6048   // Fields are not shadowed by variables in C++ static methods.
6049   if (isa<FieldDecl>(ShadowedDecl))
6050     if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewDC))
6051       if (MD->isStatic())
6052         return;
6053 
6054   if (VarDecl *shadowedVar = dyn_cast<VarDecl>(ShadowedDecl))
6055     if (shadowedVar->isExternC()) {
6056       // For shadowing external vars, make sure that we point to the global
6057       // declaration, not a locally scoped extern declaration.
6058       for (auto I : shadowedVar->redecls())
6059         if (I->isFileVarDecl()) {
6060           ShadowedDecl = I;
6061           break;
6062         }
6063     }
6064 
6065   DeclContext *OldDC = ShadowedDecl->getDeclContext();
6066 
6067   // Only warn about certain kinds of shadowing for class members.
6068   if (NewDC && NewDC->isRecord()) {
6069     // In particular, don't warn about shadowing non-class members.
6070     if (!OldDC->isRecord())
6071       return;
6072 
6073     // TODO: should we warn about static data members shadowing
6074     // static data members from base classes?
6075 
6076     // TODO: don't diagnose for inaccessible shadowed members.
6077     // This is hard to do perfectly because we might friend the
6078     // shadowing context, but that's just a false negative.
6079   }
6080 
6081   // Determine what kind of declaration we're shadowing.
6082   unsigned Kind;
6083   if (isa<RecordDecl>(OldDC)) {
6084     if (isa<FieldDecl>(ShadowedDecl))
6085       Kind = 3; // field
6086     else
6087       Kind = 2; // static data member
6088   } else if (OldDC->isFileContext())
6089     Kind = 1; // global
6090   else
6091     Kind = 0; // local
6092 
6093   DeclarationName Name = R.getLookupName();
6094 
6095   // Emit warning and note.
6096   if (getSourceManager().isInSystemMacro(R.getNameLoc()))
6097     return;
6098   Diag(R.getNameLoc(), diag::warn_decl_shadow) << Name << Kind << OldDC;
6099   Diag(ShadowedDecl->getLocation(), diag::note_previous_declaration);
6100 }
6101 
6102 /// \brief Check -Wshadow without the advantage of a previous lookup.
6103 void Sema::CheckShadow(Scope *S, VarDecl *D) {
6104   if (Diags.isIgnored(diag::warn_decl_shadow, D->getLocation()))
6105     return;
6106 
6107   LookupResult R(*this, D->getDeclName(), D->getLocation(),
6108                  Sema::LookupOrdinaryName, Sema::ForRedeclaration);
6109   LookupName(R, S);
6110   CheckShadow(S, D, R);
6111 }
6112 
6113 /// Check for conflict between this global or extern "C" declaration and
6114 /// previous global or extern "C" declarations. This is only used in C++.
6115 template<typename T>
6116 static bool checkGlobalOrExternCConflict(
6117     Sema &S, const T *ND, bool IsGlobal, LookupResult &Previous) {
6118   assert(S.getLangOpts().CPlusPlus && "only C++ has extern \"C\"");
6119   NamedDecl *Prev = S.findLocallyScopedExternCDecl(ND->getDeclName());
6120 
6121   if (!Prev && IsGlobal && !isIncompleteDeclExternC(S, ND)) {
6122     // The common case: this global doesn't conflict with any extern "C"
6123     // declaration.
6124     return false;
6125   }
6126 
6127   if (Prev) {
6128     if (!IsGlobal || isIncompleteDeclExternC(S, ND)) {
6129       // Both the old and new declarations have C language linkage. This is a
6130       // redeclaration.
6131       Previous.clear();
6132       Previous.addDecl(Prev);
6133       return true;
6134     }
6135 
6136     // This is a global, non-extern "C" declaration, and there is a previous
6137     // non-global extern "C" declaration. Diagnose if this is a variable
6138     // declaration.
6139     if (!isa<VarDecl>(ND))
6140       return false;
6141   } else {
6142     // The declaration is extern "C". Check for any declaration in the
6143     // translation unit which might conflict.
6144     if (IsGlobal) {
6145       // We have already performed the lookup into the translation unit.
6146       IsGlobal = false;
6147       for (LookupResult::iterator I = Previous.begin(), E = Previous.end();
6148            I != E; ++I) {
6149         if (isa<VarDecl>(*I)) {
6150           Prev = *I;
6151           break;
6152         }
6153       }
6154     } else {
6155       DeclContext::lookup_result R =
6156           S.Context.getTranslationUnitDecl()->lookup(ND->getDeclName());
6157       for (DeclContext::lookup_result::iterator I = R.begin(), E = R.end();
6158            I != E; ++I) {
6159         if (isa<VarDecl>(*I)) {
6160           Prev = *I;
6161           break;
6162         }
6163         // FIXME: If we have any other entity with this name in global scope,
6164         // the declaration is ill-formed, but that is a defect: it breaks the
6165         // 'stat' hack, for instance. Only variables can have mangled name
6166         // clashes with extern "C" declarations, so only they deserve a
6167         // diagnostic.
6168       }
6169     }
6170 
6171     if (!Prev)
6172       return false;
6173   }
6174 
6175   // Use the first declaration's location to ensure we point at something which
6176   // is lexically inside an extern "C" linkage-spec.
6177   assert(Prev && "should have found a previous declaration to diagnose");
6178   if (FunctionDecl *FD = dyn_cast<FunctionDecl>(Prev))
6179     Prev = FD->getFirstDecl();
6180   else
6181     Prev = cast<VarDecl>(Prev)->getFirstDecl();
6182 
6183   S.Diag(ND->getLocation(), diag::err_extern_c_global_conflict)
6184     << IsGlobal << ND;
6185   S.Diag(Prev->getLocation(), diag::note_extern_c_global_conflict)
6186     << IsGlobal;
6187   return false;
6188 }
6189 
6190 /// Apply special rules for handling extern "C" declarations. Returns \c true
6191 /// if we have found that this is a redeclaration of some prior entity.
6192 ///
6193 /// Per C++ [dcl.link]p6:
6194 ///   Two declarations [for a function or variable] with C language linkage
6195 ///   with the same name that appear in different scopes refer to the same
6196 ///   [entity]. An entity with C language linkage shall not be declared with
6197 ///   the same name as an entity in global scope.
6198 template<typename T>
6199 static bool checkForConflictWithNonVisibleExternC(Sema &S, const T *ND,
6200                                                   LookupResult &Previous) {
6201   if (!S.getLangOpts().CPlusPlus) {
6202     // In C, when declaring a global variable, look for a corresponding 'extern'
6203     // variable declared in function scope. We don't need this in C++, because
6204     // we find local extern decls in the surrounding file-scope DeclContext.
6205     if (ND->getDeclContext()->getRedeclContext()->isTranslationUnit()) {
6206       if (NamedDecl *Prev = S.findLocallyScopedExternCDecl(ND->getDeclName())) {
6207         Previous.clear();
6208         Previous.addDecl(Prev);
6209         return true;
6210       }
6211     }
6212     return false;
6213   }
6214 
6215   // A declaration in the translation unit can conflict with an extern "C"
6216   // declaration.
6217   if (ND->getDeclContext()->getRedeclContext()->isTranslationUnit())
6218     return checkGlobalOrExternCConflict(S, ND, /*IsGlobal*/true, Previous);
6219 
6220   // An extern "C" declaration can conflict with a declaration in the
6221   // translation unit or can be a redeclaration of an extern "C" declaration
6222   // in another scope.
6223   if (isIncompleteDeclExternC(S,ND))
6224     return checkGlobalOrExternCConflict(S, ND, /*IsGlobal*/false, Previous);
6225 
6226   // Neither global nor extern "C": nothing to do.
6227   return false;
6228 }
6229 
6230 void Sema::CheckVariableDeclarationType(VarDecl *NewVD) {
6231   // If the decl is already known invalid, don't check it.
6232   if (NewVD->isInvalidDecl())
6233     return;
6234 
6235   TypeSourceInfo *TInfo = NewVD->getTypeSourceInfo();
6236   QualType T = TInfo->getType();
6237 
6238   // Defer checking an 'auto' type until its initializer is attached.
6239   if (T->isUndeducedType())
6240     return;
6241 
6242   if (NewVD->hasAttrs())
6243     CheckAlignasUnderalignment(NewVD);
6244 
6245   if (T->isObjCObjectType()) {
6246     Diag(NewVD->getLocation(), diag::err_statically_allocated_object)
6247       << FixItHint::CreateInsertion(NewVD->getLocation(), "*");
6248     T = Context.getObjCObjectPointerType(T);
6249     NewVD->setType(T);
6250   }
6251 
6252   // Emit an error if an address space was applied to decl with local storage.
6253   // This includes arrays of objects with address space qualifiers, but not
6254   // automatic variables that point to other address spaces.
6255   // ISO/IEC TR 18037 S5.1.2
6256   if (NewVD->hasLocalStorage() && T.getAddressSpace() != 0) {
6257     Diag(NewVD->getLocation(), diag::err_as_qualified_auto_decl);
6258     NewVD->setInvalidDecl();
6259     return;
6260   }
6261 
6262   // OpenCL v1.2 s6.5 - All program scope variables must be declared in the
6263   // __constant address space.
6264   if (getLangOpts().OpenCL && NewVD->isFileVarDecl()
6265       && T.getAddressSpace() != LangAS::opencl_constant
6266       && !T->isSamplerT()){
6267     Diag(NewVD->getLocation(), diag::err_opencl_global_invalid_addr_space);
6268     NewVD->setInvalidDecl();
6269     return;
6270   }
6271 
6272   // OpenCL v1.2 s6.8 -- The static qualifier is valid only in program
6273   // scope.
6274   if ((getLangOpts().OpenCLVersion >= 120)
6275       && NewVD->isStaticLocal()) {
6276     Diag(NewVD->getLocation(), diag::err_static_function_scope);
6277     NewVD->setInvalidDecl();
6278     return;
6279   }
6280 
6281   if (NewVD->hasLocalStorage() && T.isObjCGCWeak()
6282       && !NewVD->hasAttr<BlocksAttr>()) {
6283     if (getLangOpts().getGC() != LangOptions::NonGC)
6284       Diag(NewVD->getLocation(), diag::warn_gc_attribute_weak_on_local);
6285     else {
6286       assert(!getLangOpts().ObjCAutoRefCount);
6287       Diag(NewVD->getLocation(), diag::warn_attribute_weak_on_local);
6288     }
6289   }
6290 
6291   bool isVM = T->isVariablyModifiedType();
6292   if (isVM || NewVD->hasAttr<CleanupAttr>() ||
6293       NewVD->hasAttr<BlocksAttr>())
6294     getCurFunction()->setHasBranchProtectedScope();
6295 
6296   if ((isVM && NewVD->hasLinkage()) ||
6297       (T->isVariableArrayType() && NewVD->hasGlobalStorage())) {
6298     bool SizeIsNegative;
6299     llvm::APSInt Oversized;
6300     TypeSourceInfo *FixedTInfo =
6301       TryToFixInvalidVariablyModifiedTypeSourceInfo(TInfo, Context,
6302                                                     SizeIsNegative, Oversized);
6303     if (!FixedTInfo && T->isVariableArrayType()) {
6304       const VariableArrayType *VAT = Context.getAsVariableArrayType(T);
6305       // FIXME: This won't give the correct result for
6306       // int a[10][n];
6307       SourceRange SizeRange = VAT->getSizeExpr()->getSourceRange();
6308 
6309       if (NewVD->isFileVarDecl())
6310         Diag(NewVD->getLocation(), diag::err_vla_decl_in_file_scope)
6311         << SizeRange;
6312       else if (NewVD->isStaticLocal())
6313         Diag(NewVD->getLocation(), diag::err_vla_decl_has_static_storage)
6314         << SizeRange;
6315       else
6316         Diag(NewVD->getLocation(), diag::err_vla_decl_has_extern_linkage)
6317         << SizeRange;
6318       NewVD->setInvalidDecl();
6319       return;
6320     }
6321 
6322     if (!FixedTInfo) {
6323       if (NewVD->isFileVarDecl())
6324         Diag(NewVD->getLocation(), diag::err_vm_decl_in_file_scope);
6325       else
6326         Diag(NewVD->getLocation(), diag::err_vm_decl_has_extern_linkage);
6327       NewVD->setInvalidDecl();
6328       return;
6329     }
6330 
6331     Diag(NewVD->getLocation(), diag::warn_illegal_constant_array_size);
6332     NewVD->setType(FixedTInfo->getType());
6333     NewVD->setTypeSourceInfo(FixedTInfo);
6334   }
6335 
6336   if (T->isVoidType()) {
6337     // C++98 [dcl.stc]p5: The extern specifier can be applied only to the names
6338     //                    of objects and functions.
6339     if (NewVD->isThisDeclarationADefinition() || getLangOpts().CPlusPlus) {
6340       Diag(NewVD->getLocation(), diag::err_typecheck_decl_incomplete_type)
6341         << T;
6342       NewVD->setInvalidDecl();
6343       return;
6344     }
6345   }
6346 
6347   if (!NewVD->hasLocalStorage() && NewVD->hasAttr<BlocksAttr>()) {
6348     Diag(NewVD->getLocation(), diag::err_block_on_nonlocal);
6349     NewVD->setInvalidDecl();
6350     return;
6351   }
6352 
6353   if (isVM && NewVD->hasAttr<BlocksAttr>()) {
6354     Diag(NewVD->getLocation(), diag::err_block_on_vm);
6355     NewVD->setInvalidDecl();
6356     return;
6357   }
6358 
6359   if (NewVD->isConstexpr() && !T->isDependentType() &&
6360       RequireLiteralType(NewVD->getLocation(), T,
6361                          diag::err_constexpr_var_non_literal)) {
6362     NewVD->setInvalidDecl();
6363     return;
6364   }
6365 }
6366 
6367 /// \brief Perform semantic checking on a newly-created variable
6368 /// declaration.
6369 ///
6370 /// This routine performs all of the type-checking required for a
6371 /// variable declaration once it has been built. It is used both to
6372 /// check variables after they have been parsed and their declarators
6373 /// have been translated into a declaration, and to check variables
6374 /// that have been instantiated from a template.
6375 ///
6376 /// Sets NewVD->isInvalidDecl() if an error was encountered.
6377 ///
6378 /// Returns true if the variable declaration is a redeclaration.
6379 bool Sema::CheckVariableDeclaration(VarDecl *NewVD, LookupResult &Previous) {
6380   CheckVariableDeclarationType(NewVD);
6381 
6382   // If the decl is already known invalid, don't check it.
6383   if (NewVD->isInvalidDecl())
6384     return false;
6385 
6386   // If we did not find anything by this name, look for a non-visible
6387   // extern "C" declaration with the same name.
6388   if (Previous.empty() &&
6389       checkForConflictWithNonVisibleExternC(*this, NewVD, Previous))
6390     Previous.setShadowed();
6391 
6392   // Filter out any non-conflicting previous declarations.
6393   filterNonConflictingPreviousDecls(*this, NewVD, Previous);
6394 
6395   if (!Previous.empty()) {
6396     MergeVarDecl(NewVD, Previous);
6397     return true;
6398   }
6399   return false;
6400 }
6401 
6402 /// \brief Data used with FindOverriddenMethod
6403 struct FindOverriddenMethodData {
6404   Sema *S;
6405   CXXMethodDecl *Method;
6406 };
6407 
6408 /// \brief Member lookup function that determines whether a given C++
6409 /// method overrides a method in a base class, to be used with
6410 /// CXXRecordDecl::lookupInBases().
6411 static bool FindOverriddenMethod(const CXXBaseSpecifier *Specifier,
6412                                  CXXBasePath &Path,
6413                                  void *UserData) {
6414   RecordDecl *BaseRecord = Specifier->getType()->getAs<RecordType>()->getDecl();
6415 
6416   FindOverriddenMethodData *Data
6417     = reinterpret_cast<FindOverriddenMethodData*>(UserData);
6418 
6419   DeclarationName Name = Data->Method->getDeclName();
6420 
6421   // FIXME: Do we care about other names here too?
6422   if (Name.getNameKind() == DeclarationName::CXXDestructorName) {
6423     // We really want to find the base class destructor here.
6424     QualType T = Data->S->Context.getTypeDeclType(BaseRecord);
6425     CanQualType CT = Data->S->Context.getCanonicalType(T);
6426 
6427     Name = Data->S->Context.DeclarationNames.getCXXDestructorName(CT);
6428   }
6429 
6430   for (Path.Decls = BaseRecord->lookup(Name);
6431        !Path.Decls.empty();
6432        Path.Decls = Path.Decls.slice(1)) {
6433     NamedDecl *D = Path.Decls.front();
6434     if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(D)) {
6435       if (MD->isVirtual() && !Data->S->IsOverload(Data->Method, MD, false))
6436         return true;
6437     }
6438   }
6439 
6440   return false;
6441 }
6442 
6443 namespace {
6444   enum OverrideErrorKind { OEK_All, OEK_NonDeleted, OEK_Deleted };
6445 }
6446 /// \brief Report an error regarding overriding, along with any relevant
6447 /// overriden methods.
6448 ///
6449 /// \param DiagID the primary error to report.
6450 /// \param MD the overriding method.
6451 /// \param OEK which overrides to include as notes.
6452 static void ReportOverrides(Sema& S, unsigned DiagID, const CXXMethodDecl *MD,
6453                             OverrideErrorKind OEK = OEK_All) {
6454   S.Diag(MD->getLocation(), DiagID) << MD->getDeclName();
6455   for (CXXMethodDecl::method_iterator I = MD->begin_overridden_methods(),
6456                                       E = MD->end_overridden_methods();
6457        I != E; ++I) {
6458     // This check (& the OEK parameter) could be replaced by a predicate, but
6459     // without lambdas that would be overkill. This is still nicer than writing
6460     // out the diag loop 3 times.
6461     if ((OEK == OEK_All) ||
6462         (OEK == OEK_NonDeleted && !(*I)->isDeleted()) ||
6463         (OEK == OEK_Deleted && (*I)->isDeleted()))
6464       S.Diag((*I)->getLocation(), diag::note_overridden_virtual_function);
6465   }
6466 }
6467 
6468 /// AddOverriddenMethods - See if a method overrides any in the base classes,
6469 /// and if so, check that it's a valid override and remember it.
6470 bool Sema::AddOverriddenMethods(CXXRecordDecl *DC, CXXMethodDecl *MD) {
6471   // Look for methods in base classes that this method might override.
6472   CXXBasePaths Paths;
6473   FindOverriddenMethodData Data;
6474   Data.Method = MD;
6475   Data.S = this;
6476   bool hasDeletedOverridenMethods = false;
6477   bool hasNonDeletedOverridenMethods = false;
6478   bool AddedAny = false;
6479   if (DC->lookupInBases(&FindOverriddenMethod, &Data, Paths)) {
6480     for (auto *I : Paths.found_decls()) {
6481       if (CXXMethodDecl *OldMD = dyn_cast<CXXMethodDecl>(I)) {
6482         MD->addOverriddenMethod(OldMD->getCanonicalDecl());
6483         if (!CheckOverridingFunctionReturnType(MD, OldMD) &&
6484             !CheckOverridingFunctionAttributes(MD, OldMD) &&
6485             !CheckOverridingFunctionExceptionSpec(MD, OldMD) &&
6486             !CheckIfOverriddenFunctionIsMarkedFinal(MD, OldMD)) {
6487           hasDeletedOverridenMethods |= OldMD->isDeleted();
6488           hasNonDeletedOverridenMethods |= !OldMD->isDeleted();
6489           AddedAny = true;
6490         }
6491       }
6492     }
6493   }
6494 
6495   if (hasDeletedOverridenMethods && !MD->isDeleted()) {
6496     ReportOverrides(*this, diag::err_non_deleted_override, MD, OEK_Deleted);
6497   }
6498   if (hasNonDeletedOverridenMethods && MD->isDeleted()) {
6499     ReportOverrides(*this, diag::err_deleted_override, MD, OEK_NonDeleted);
6500   }
6501 
6502   return AddedAny;
6503 }
6504 
6505 namespace {
6506   // Struct for holding all of the extra arguments needed by
6507   // DiagnoseInvalidRedeclaration to call Sema::ActOnFunctionDeclarator.
6508   struct ActOnFDArgs {
6509     Scope *S;
6510     Declarator &D;
6511     MultiTemplateParamsArg TemplateParamLists;
6512     bool AddToScope;
6513   };
6514 }
6515 
6516 namespace {
6517 
6518 // Callback to only accept typo corrections that have a non-zero edit distance.
6519 // Also only accept corrections that have the same parent decl.
6520 class DifferentNameValidatorCCC : public CorrectionCandidateCallback {
6521  public:
6522   DifferentNameValidatorCCC(ASTContext &Context, FunctionDecl *TypoFD,
6523                             CXXRecordDecl *Parent)
6524       : Context(Context), OriginalFD(TypoFD),
6525         ExpectedParent(Parent ? Parent->getCanonicalDecl() : nullptr) {}
6526 
6527   bool ValidateCandidate(const TypoCorrection &candidate) override {
6528     if (candidate.getEditDistance() == 0)
6529       return false;
6530 
6531     SmallVector<unsigned, 1> MismatchedParams;
6532     for (TypoCorrection::const_decl_iterator CDecl = candidate.begin(),
6533                                           CDeclEnd = candidate.end();
6534          CDecl != CDeclEnd; ++CDecl) {
6535       FunctionDecl *FD = dyn_cast<FunctionDecl>(*CDecl);
6536 
6537       if (FD && !FD->hasBody() &&
6538           hasSimilarParameters(Context, FD, OriginalFD, MismatchedParams)) {
6539         if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) {
6540           CXXRecordDecl *Parent = MD->getParent();
6541           if (Parent && Parent->getCanonicalDecl() == ExpectedParent)
6542             return true;
6543         } else if (!ExpectedParent) {
6544           return true;
6545         }
6546       }
6547     }
6548 
6549     return false;
6550   }
6551 
6552  private:
6553   ASTContext &Context;
6554   FunctionDecl *OriginalFD;
6555   CXXRecordDecl *ExpectedParent;
6556 };
6557 
6558 }
6559 
6560 /// \brief Generate diagnostics for an invalid function redeclaration.
6561 ///
6562 /// This routine handles generating the diagnostic messages for an invalid
6563 /// function redeclaration, including finding possible similar declarations
6564 /// or performing typo correction if there are no previous declarations with
6565 /// the same name.
6566 ///
6567 /// Returns a NamedDecl iff typo correction was performed and substituting in
6568 /// the new declaration name does not cause new errors.
6569 static NamedDecl *DiagnoseInvalidRedeclaration(
6570     Sema &SemaRef, LookupResult &Previous, FunctionDecl *NewFD,
6571     ActOnFDArgs &ExtraArgs, bool IsLocalFriend, Scope *S) {
6572   DeclarationName Name = NewFD->getDeclName();
6573   DeclContext *NewDC = NewFD->getDeclContext();
6574   SmallVector<unsigned, 1> MismatchedParams;
6575   SmallVector<std::pair<FunctionDecl *, unsigned>, 1> NearMatches;
6576   TypoCorrection Correction;
6577   bool IsDefinition = ExtraArgs.D.isFunctionDefinition();
6578   unsigned DiagMsg = IsLocalFriend ? diag::err_no_matching_local_friend
6579                                    : diag::err_member_decl_does_not_match;
6580   LookupResult Prev(SemaRef, Name, NewFD->getLocation(),
6581                     IsLocalFriend ? Sema::LookupLocalFriendName
6582                                   : Sema::LookupOrdinaryName,
6583                     Sema::ForRedeclaration);
6584 
6585   NewFD->setInvalidDecl();
6586   if (IsLocalFriend)
6587     SemaRef.LookupName(Prev, S);
6588   else
6589     SemaRef.LookupQualifiedName(Prev, NewDC);
6590   assert(!Prev.isAmbiguous() &&
6591          "Cannot have an ambiguity in previous-declaration lookup");
6592   CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewFD);
6593   if (!Prev.empty()) {
6594     for (LookupResult::iterator Func = Prev.begin(), FuncEnd = Prev.end();
6595          Func != FuncEnd; ++Func) {
6596       FunctionDecl *FD = dyn_cast<FunctionDecl>(*Func);
6597       if (FD &&
6598           hasSimilarParameters(SemaRef.Context, FD, NewFD, MismatchedParams)) {
6599         // Add 1 to the index so that 0 can mean the mismatch didn't
6600         // involve a parameter
6601         unsigned ParamNum =
6602             MismatchedParams.empty() ? 0 : MismatchedParams.front() + 1;
6603         NearMatches.push_back(std::make_pair(FD, ParamNum));
6604       }
6605     }
6606   // If the qualified name lookup yielded nothing, try typo correction
6607   } else if ((Correction = SemaRef.CorrectTypo(
6608                   Prev.getLookupNameInfo(), Prev.getLookupKind(), S,
6609                   &ExtraArgs.D.getCXXScopeSpec(),
6610                   llvm::make_unique<DifferentNameValidatorCCC>(
6611                       SemaRef.Context, NewFD, MD ? MD->getParent() : nullptr),
6612                   Sema::CTK_ErrorRecovery, IsLocalFriend ? nullptr : NewDC))) {
6613     // Set up everything for the call to ActOnFunctionDeclarator
6614     ExtraArgs.D.SetIdentifier(Correction.getCorrectionAsIdentifierInfo(),
6615                               ExtraArgs.D.getIdentifierLoc());
6616     Previous.clear();
6617     Previous.setLookupName(Correction.getCorrection());
6618     for (TypoCorrection::decl_iterator CDecl = Correction.begin(),
6619                                     CDeclEnd = Correction.end();
6620          CDecl != CDeclEnd; ++CDecl) {
6621       FunctionDecl *FD = dyn_cast<FunctionDecl>(*CDecl);
6622       if (FD && !FD->hasBody() &&
6623           hasSimilarParameters(SemaRef.Context, FD, NewFD, MismatchedParams)) {
6624         Previous.addDecl(FD);
6625       }
6626     }
6627     bool wasRedeclaration = ExtraArgs.D.isRedeclaration();
6628 
6629     NamedDecl *Result;
6630     // Retry building the function declaration with the new previous
6631     // declarations, and with errors suppressed.
6632     {
6633       // Trap errors.
6634       Sema::SFINAETrap Trap(SemaRef);
6635 
6636       // TODO: Refactor ActOnFunctionDeclarator so that we can call only the
6637       // pieces need to verify the typo-corrected C++ declaration and hopefully
6638       // eliminate the need for the parameter pack ExtraArgs.
6639       Result = SemaRef.ActOnFunctionDeclarator(
6640           ExtraArgs.S, ExtraArgs.D,
6641           Correction.getCorrectionDecl()->getDeclContext(),
6642           NewFD->getTypeSourceInfo(), Previous, ExtraArgs.TemplateParamLists,
6643           ExtraArgs.AddToScope);
6644 
6645       if (Trap.hasErrorOccurred())
6646         Result = nullptr;
6647     }
6648 
6649     if (Result) {
6650       // Determine which correction we picked.
6651       Decl *Canonical = Result->getCanonicalDecl();
6652       for (LookupResult::iterator I = Previous.begin(), E = Previous.end();
6653            I != E; ++I)
6654         if ((*I)->getCanonicalDecl() == Canonical)
6655           Correction.setCorrectionDecl(*I);
6656 
6657       SemaRef.diagnoseTypo(
6658           Correction,
6659           SemaRef.PDiag(IsLocalFriend
6660                           ? diag::err_no_matching_local_friend_suggest
6661                           : diag::err_member_decl_does_not_match_suggest)
6662             << Name << NewDC << IsDefinition);
6663       return Result;
6664     }
6665 
6666     // Pretend the typo correction never occurred
6667     ExtraArgs.D.SetIdentifier(Name.getAsIdentifierInfo(),
6668                               ExtraArgs.D.getIdentifierLoc());
6669     ExtraArgs.D.setRedeclaration(wasRedeclaration);
6670     Previous.clear();
6671     Previous.setLookupName(Name);
6672   }
6673 
6674   SemaRef.Diag(NewFD->getLocation(), DiagMsg)
6675       << Name << NewDC << IsDefinition << NewFD->getLocation();
6676 
6677   bool NewFDisConst = false;
6678   if (CXXMethodDecl *NewMD = dyn_cast<CXXMethodDecl>(NewFD))
6679     NewFDisConst = NewMD->isConst();
6680 
6681   for (SmallVectorImpl<std::pair<FunctionDecl *, unsigned> >::iterator
6682        NearMatch = NearMatches.begin(), NearMatchEnd = NearMatches.end();
6683        NearMatch != NearMatchEnd; ++NearMatch) {
6684     FunctionDecl *FD = NearMatch->first;
6685     CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD);
6686     bool FDisConst = MD && MD->isConst();
6687     bool IsMember = MD || !IsLocalFriend;
6688 
6689     // FIXME: These notes are poorly worded for the local friend case.
6690     if (unsigned Idx = NearMatch->second) {
6691       ParmVarDecl *FDParam = FD->getParamDecl(Idx-1);
6692       SourceLocation Loc = FDParam->getTypeSpecStartLoc();
6693       if (Loc.isInvalid()) Loc = FD->getLocation();
6694       SemaRef.Diag(Loc, IsMember ? diag::note_member_def_close_param_match
6695                                  : diag::note_local_decl_close_param_match)
6696         << Idx << FDParam->getType()
6697         << NewFD->getParamDecl(Idx - 1)->getType();
6698     } else if (FDisConst != NewFDisConst) {
6699       SemaRef.Diag(FD->getLocation(), diag::note_member_def_close_const_match)
6700           << NewFDisConst << FD->getSourceRange().getEnd();
6701     } else
6702       SemaRef.Diag(FD->getLocation(),
6703                    IsMember ? diag::note_member_def_close_match
6704                             : diag::note_local_decl_close_match);
6705   }
6706   return nullptr;
6707 }
6708 
6709 static StorageClass getFunctionStorageClass(Sema &SemaRef, Declarator &D) {
6710   switch (D.getDeclSpec().getStorageClassSpec()) {
6711   default: llvm_unreachable("Unknown storage class!");
6712   case DeclSpec::SCS_auto:
6713   case DeclSpec::SCS_register:
6714   case DeclSpec::SCS_mutable:
6715     SemaRef.Diag(D.getDeclSpec().getStorageClassSpecLoc(),
6716                  diag::err_typecheck_sclass_func);
6717     D.setInvalidType();
6718     break;
6719   case DeclSpec::SCS_unspecified: break;
6720   case DeclSpec::SCS_extern:
6721     if (D.getDeclSpec().isExternInLinkageSpec())
6722       return SC_None;
6723     return SC_Extern;
6724   case DeclSpec::SCS_static: {
6725     if (SemaRef.CurContext->getRedeclContext()->isFunctionOrMethod()) {
6726       // C99 6.7.1p5:
6727       //   The declaration of an identifier for a function that has
6728       //   block scope shall have no explicit storage-class specifier
6729       //   other than extern
6730       // See also (C++ [dcl.stc]p4).
6731       SemaRef.Diag(D.getDeclSpec().getStorageClassSpecLoc(),
6732                    diag::err_static_block_func);
6733       break;
6734     } else
6735       return SC_Static;
6736   }
6737   case DeclSpec::SCS_private_extern: return SC_PrivateExtern;
6738   }
6739 
6740   // No explicit storage class has already been returned
6741   return SC_None;
6742 }
6743 
6744 static FunctionDecl* CreateNewFunctionDecl(Sema &SemaRef, Declarator &D,
6745                                            DeclContext *DC, QualType &R,
6746                                            TypeSourceInfo *TInfo,
6747                                            StorageClass SC,
6748                                            bool &IsVirtualOkay) {
6749   DeclarationNameInfo NameInfo = SemaRef.GetNameForDeclarator(D);
6750   DeclarationName Name = NameInfo.getName();
6751 
6752   FunctionDecl *NewFD = nullptr;
6753   bool isInline = D.getDeclSpec().isInlineSpecified();
6754 
6755   if (!SemaRef.getLangOpts().CPlusPlus) {
6756     // Determine whether the function was written with a
6757     // prototype. This true when:
6758     //   - there is a prototype in the declarator, or
6759     //   - the type R of the function is some kind of typedef or other reference
6760     //     to a type name (which eventually refers to a function type).
6761     bool HasPrototype =
6762       (D.isFunctionDeclarator() && D.getFunctionTypeInfo().hasPrototype) ||
6763       (!isa<FunctionType>(R.getTypePtr()) && R->isFunctionProtoType());
6764 
6765     NewFD = FunctionDecl::Create(SemaRef.Context, DC,
6766                                  D.getLocStart(), NameInfo, R,
6767                                  TInfo, SC, isInline,
6768                                  HasPrototype, false);
6769     if (D.isInvalidType())
6770       NewFD->setInvalidDecl();
6771 
6772     return NewFD;
6773   }
6774 
6775   bool isExplicit = D.getDeclSpec().isExplicitSpecified();
6776   bool isConstexpr = D.getDeclSpec().isConstexprSpecified();
6777 
6778   // Check that the return type is not an abstract class type.
6779   // For record types, this is done by the AbstractClassUsageDiagnoser once
6780   // the class has been completely parsed.
6781   if (!DC->isRecord() &&
6782       SemaRef.RequireNonAbstractType(
6783           D.getIdentifierLoc(), R->getAs<FunctionType>()->getReturnType(),
6784           diag::err_abstract_type_in_decl, SemaRef.AbstractReturnType))
6785     D.setInvalidType();
6786 
6787   if (Name.getNameKind() == DeclarationName::CXXConstructorName) {
6788     // This is a C++ constructor declaration.
6789     assert(DC->isRecord() &&
6790            "Constructors can only be declared in a member context");
6791 
6792     R = SemaRef.CheckConstructorDeclarator(D, R, SC);
6793     return CXXConstructorDecl::Create(SemaRef.Context, cast<CXXRecordDecl>(DC),
6794                                       D.getLocStart(), NameInfo,
6795                                       R, TInfo, isExplicit, isInline,
6796                                       /*isImplicitlyDeclared=*/false,
6797                                       isConstexpr);
6798 
6799   } else if (Name.getNameKind() == DeclarationName::CXXDestructorName) {
6800     // This is a C++ destructor declaration.
6801     if (DC->isRecord()) {
6802       R = SemaRef.CheckDestructorDeclarator(D, R, SC);
6803       CXXRecordDecl *Record = cast<CXXRecordDecl>(DC);
6804       CXXDestructorDecl *NewDD = CXXDestructorDecl::Create(
6805                                         SemaRef.Context, Record,
6806                                         D.getLocStart(),
6807                                         NameInfo, R, TInfo, isInline,
6808                                         /*isImplicitlyDeclared=*/false);
6809 
6810       // If the class is complete, then we now create the implicit exception
6811       // specification. If the class is incomplete or dependent, we can't do
6812       // it yet.
6813       if (SemaRef.getLangOpts().CPlusPlus11 && !Record->isDependentType() &&
6814           Record->getDefinition() && !Record->isBeingDefined() &&
6815           R->getAs<FunctionProtoType>()->getExceptionSpecType() == EST_None) {
6816         SemaRef.AdjustDestructorExceptionSpec(Record, NewDD);
6817       }
6818 
6819       IsVirtualOkay = true;
6820       return NewDD;
6821 
6822     } else {
6823       SemaRef.Diag(D.getIdentifierLoc(), diag::err_destructor_not_member);
6824       D.setInvalidType();
6825 
6826       // Create a FunctionDecl to satisfy the function definition parsing
6827       // code path.
6828       return FunctionDecl::Create(SemaRef.Context, DC,
6829                                   D.getLocStart(),
6830                                   D.getIdentifierLoc(), Name, R, TInfo,
6831                                   SC, isInline,
6832                                   /*hasPrototype=*/true, isConstexpr);
6833     }
6834 
6835   } else if (Name.getNameKind() == DeclarationName::CXXConversionFunctionName) {
6836     if (!DC->isRecord()) {
6837       SemaRef.Diag(D.getIdentifierLoc(),
6838            diag::err_conv_function_not_member);
6839       return nullptr;
6840     }
6841 
6842     SemaRef.CheckConversionDeclarator(D, R, SC);
6843     IsVirtualOkay = true;
6844     return CXXConversionDecl::Create(SemaRef.Context, cast<CXXRecordDecl>(DC),
6845                                      D.getLocStart(), NameInfo,
6846                                      R, TInfo, isInline, isExplicit,
6847                                      isConstexpr, SourceLocation());
6848 
6849   } else if (DC->isRecord()) {
6850     // If the name of the function is the same as the name of the record,
6851     // then this must be an invalid constructor that has a return type.
6852     // (The parser checks for a return type and makes the declarator a
6853     // constructor if it has no return type).
6854     if (Name.getAsIdentifierInfo() &&
6855         Name.getAsIdentifierInfo() == cast<CXXRecordDecl>(DC)->getIdentifier()){
6856       SemaRef.Diag(D.getIdentifierLoc(), diag::err_constructor_return_type)
6857         << SourceRange(D.getDeclSpec().getTypeSpecTypeLoc())
6858         << SourceRange(D.getIdentifierLoc());
6859       return nullptr;
6860     }
6861 
6862     // This is a C++ method declaration.
6863     CXXMethodDecl *Ret = CXXMethodDecl::Create(SemaRef.Context,
6864                                                cast<CXXRecordDecl>(DC),
6865                                                D.getLocStart(), NameInfo, R,
6866                                                TInfo, SC, isInline,
6867                                                isConstexpr, SourceLocation());
6868     IsVirtualOkay = !Ret->isStatic();
6869     return Ret;
6870   } else {
6871     bool isFriend =
6872         SemaRef.getLangOpts().CPlusPlus && D.getDeclSpec().isFriendSpecified();
6873     if (!isFriend && SemaRef.CurContext->isRecord())
6874       return nullptr;
6875 
6876     // Determine whether the function was written with a
6877     // prototype. This true when:
6878     //   - we're in C++ (where every function has a prototype),
6879     return FunctionDecl::Create(SemaRef.Context, DC,
6880                                 D.getLocStart(),
6881                                 NameInfo, R, TInfo, SC, isInline,
6882                                 true/*HasPrototype*/, isConstexpr);
6883   }
6884 }
6885 
6886 enum OpenCLParamType {
6887   ValidKernelParam,
6888   PtrPtrKernelParam,
6889   PtrKernelParam,
6890   PrivatePtrKernelParam,
6891   InvalidKernelParam,
6892   RecordKernelParam
6893 };
6894 
6895 static OpenCLParamType getOpenCLKernelParameterType(QualType PT) {
6896   if (PT->isPointerType()) {
6897     QualType PointeeType = PT->getPointeeType();
6898     if (PointeeType->isPointerType())
6899       return PtrPtrKernelParam;
6900     return PointeeType.getAddressSpace() == 0 ? PrivatePtrKernelParam
6901                                               : PtrKernelParam;
6902   }
6903 
6904   // TODO: Forbid the other integer types (size_t, ptrdiff_t...) when they can
6905   // be used as builtin types.
6906 
6907   if (PT->isImageType())
6908     return PtrKernelParam;
6909 
6910   if (PT->isBooleanType())
6911     return InvalidKernelParam;
6912 
6913   if (PT->isEventT())
6914     return InvalidKernelParam;
6915 
6916   if (PT->isHalfType())
6917     return InvalidKernelParam;
6918 
6919   if (PT->isRecordType())
6920     return RecordKernelParam;
6921 
6922   return ValidKernelParam;
6923 }
6924 
6925 static void checkIsValidOpenCLKernelParameter(
6926   Sema &S,
6927   Declarator &D,
6928   ParmVarDecl *Param,
6929   llvm::SmallPtrSetImpl<const Type *> &ValidTypes) {
6930   QualType PT = Param->getType();
6931 
6932   // Cache the valid types we encounter to avoid rechecking structs that are
6933   // used again
6934   if (ValidTypes.count(PT.getTypePtr()))
6935     return;
6936 
6937   switch (getOpenCLKernelParameterType(PT)) {
6938   case PtrPtrKernelParam:
6939     // OpenCL v1.2 s6.9.a:
6940     // A kernel function argument cannot be declared as a
6941     // pointer to a pointer type.
6942     S.Diag(Param->getLocation(), diag::err_opencl_ptrptr_kernel_param);
6943     D.setInvalidType();
6944     return;
6945 
6946   case PrivatePtrKernelParam:
6947     // OpenCL v1.2 s6.9.a:
6948     // A kernel function argument cannot be declared as a
6949     // pointer to the private address space.
6950     S.Diag(Param->getLocation(), diag::err_opencl_private_ptr_kernel_param);
6951     D.setInvalidType();
6952     return;
6953 
6954     // OpenCL v1.2 s6.9.k:
6955     // Arguments to kernel functions in a program cannot be declared with the
6956     // built-in scalar types bool, half, size_t, ptrdiff_t, intptr_t, and
6957     // uintptr_t or a struct and/or union that contain fields declared to be
6958     // one of these built-in scalar types.
6959 
6960   case InvalidKernelParam:
6961     // OpenCL v1.2 s6.8 n:
6962     // A kernel function argument cannot be declared
6963     // of event_t type.
6964     S.Diag(Param->getLocation(), diag::err_bad_kernel_param_type) << PT;
6965     D.setInvalidType();
6966     return;
6967 
6968   case PtrKernelParam:
6969   case ValidKernelParam:
6970     ValidTypes.insert(PT.getTypePtr());
6971     return;
6972 
6973   case RecordKernelParam:
6974     break;
6975   }
6976 
6977   // Track nested structs we will inspect
6978   SmallVector<const Decl *, 4> VisitStack;
6979 
6980   // Track where we are in the nested structs. Items will migrate from
6981   // VisitStack to HistoryStack as we do the DFS for bad field.
6982   SmallVector<const FieldDecl *, 4> HistoryStack;
6983   HistoryStack.push_back(nullptr);
6984 
6985   const RecordDecl *PD = PT->castAs<RecordType>()->getDecl();
6986   VisitStack.push_back(PD);
6987 
6988   assert(VisitStack.back() && "First decl null?");
6989 
6990   do {
6991     const Decl *Next = VisitStack.pop_back_val();
6992     if (!Next) {
6993       assert(!HistoryStack.empty());
6994       // Found a marker, we have gone up a level
6995       if (const FieldDecl *Hist = HistoryStack.pop_back_val())
6996         ValidTypes.insert(Hist->getType().getTypePtr());
6997 
6998       continue;
6999     }
7000 
7001     // Adds everything except the original parameter declaration (which is not a
7002     // field itself) to the history stack.
7003     const RecordDecl *RD;
7004     if (const FieldDecl *Field = dyn_cast<FieldDecl>(Next)) {
7005       HistoryStack.push_back(Field);
7006       RD = Field->getType()->castAs<RecordType>()->getDecl();
7007     } else {
7008       RD = cast<RecordDecl>(Next);
7009     }
7010 
7011     // Add a null marker so we know when we've gone back up a level
7012     VisitStack.push_back(nullptr);
7013 
7014     for (const auto *FD : RD->fields()) {
7015       QualType QT = FD->getType();
7016 
7017       if (ValidTypes.count(QT.getTypePtr()))
7018         continue;
7019 
7020       OpenCLParamType ParamType = getOpenCLKernelParameterType(QT);
7021       if (ParamType == ValidKernelParam)
7022         continue;
7023 
7024       if (ParamType == RecordKernelParam) {
7025         VisitStack.push_back(FD);
7026         continue;
7027       }
7028 
7029       // OpenCL v1.2 s6.9.p:
7030       // Arguments to kernel functions that are declared to be a struct or union
7031       // do not allow OpenCL objects to be passed as elements of the struct or
7032       // union.
7033       if (ParamType == PtrKernelParam || ParamType == PtrPtrKernelParam ||
7034           ParamType == PrivatePtrKernelParam) {
7035         S.Diag(Param->getLocation(),
7036                diag::err_record_with_pointers_kernel_param)
7037           << PT->isUnionType()
7038           << PT;
7039       } else {
7040         S.Diag(Param->getLocation(), diag::err_bad_kernel_param_type) << PT;
7041       }
7042 
7043       S.Diag(PD->getLocation(), diag::note_within_field_of_type)
7044         << PD->getDeclName();
7045 
7046       // We have an error, now let's go back up through history and show where
7047       // the offending field came from
7048       for (ArrayRef<const FieldDecl *>::const_iterator
7049                I = HistoryStack.begin() + 1,
7050                E = HistoryStack.end();
7051            I != E; ++I) {
7052         const FieldDecl *OuterField = *I;
7053         S.Diag(OuterField->getLocation(), diag::note_within_field_of_type)
7054           << OuterField->getType();
7055       }
7056 
7057       S.Diag(FD->getLocation(), diag::note_illegal_field_declared_here)
7058         << QT->isPointerType()
7059         << QT;
7060       D.setInvalidType();
7061       return;
7062     }
7063   } while (!VisitStack.empty());
7064 }
7065 
7066 NamedDecl*
7067 Sema::ActOnFunctionDeclarator(Scope *S, Declarator &D, DeclContext *DC,
7068                               TypeSourceInfo *TInfo, LookupResult &Previous,
7069                               MultiTemplateParamsArg TemplateParamLists,
7070                               bool &AddToScope) {
7071   QualType R = TInfo->getType();
7072 
7073   assert(R.getTypePtr()->isFunctionType());
7074 
7075   // TODO: consider using NameInfo for diagnostic.
7076   DeclarationNameInfo NameInfo = GetNameForDeclarator(D);
7077   DeclarationName Name = NameInfo.getName();
7078   StorageClass SC = getFunctionStorageClass(*this, D);
7079 
7080   if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec())
7081     Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(),
7082          diag::err_invalid_thread)
7083       << DeclSpec::getSpecifierName(TSCS);
7084 
7085   if (D.isFirstDeclarationOfMember())
7086     adjustMemberFunctionCC(R, D.isStaticMember());
7087 
7088   bool isFriend = false;
7089   FunctionTemplateDecl *FunctionTemplate = nullptr;
7090   bool isExplicitSpecialization = false;
7091   bool isFunctionTemplateSpecialization = false;
7092 
7093   bool isDependentClassScopeExplicitSpecialization = false;
7094   bool HasExplicitTemplateArgs = false;
7095   TemplateArgumentListInfo TemplateArgs;
7096 
7097   bool isVirtualOkay = false;
7098 
7099   DeclContext *OriginalDC = DC;
7100   bool IsLocalExternDecl = adjustContextForLocalExternDecl(DC);
7101 
7102   FunctionDecl *NewFD = CreateNewFunctionDecl(*this, D, DC, R, TInfo, SC,
7103                                               isVirtualOkay);
7104   if (!NewFD) return nullptr;
7105 
7106   if (OriginalLexicalContext && OriginalLexicalContext->isObjCContainer())
7107     NewFD->setTopLevelDeclInObjCContainer();
7108 
7109   // Set the lexical context. If this is a function-scope declaration, or has a
7110   // C++ scope specifier, or is the object of a friend declaration, the lexical
7111   // context will be different from the semantic context.
7112   NewFD->setLexicalDeclContext(CurContext);
7113 
7114   if (IsLocalExternDecl)
7115     NewFD->setLocalExternDecl();
7116 
7117   if (getLangOpts().CPlusPlus) {
7118     bool isInline = D.getDeclSpec().isInlineSpecified();
7119     bool isVirtual = D.getDeclSpec().isVirtualSpecified();
7120     bool isExplicit = D.getDeclSpec().isExplicitSpecified();
7121     bool isConstexpr = D.getDeclSpec().isConstexprSpecified();
7122     isFriend = D.getDeclSpec().isFriendSpecified();
7123     if (isFriend && !isInline && D.isFunctionDefinition()) {
7124       // C++ [class.friend]p5
7125       //   A function can be defined in a friend declaration of a
7126       //   class . . . . Such a function is implicitly inline.
7127       NewFD->setImplicitlyInline();
7128     }
7129 
7130     // If this is a method defined in an __interface, and is not a constructor
7131     // or an overloaded operator, then set the pure flag (isVirtual will already
7132     // return true).
7133     if (const CXXRecordDecl *Parent =
7134           dyn_cast<CXXRecordDecl>(NewFD->getDeclContext())) {
7135       if (Parent->isInterface() && cast<CXXMethodDecl>(NewFD)->isUserProvided())
7136         NewFD->setPure(true);
7137     }
7138 
7139     SetNestedNameSpecifier(NewFD, D);
7140     isExplicitSpecialization = false;
7141     isFunctionTemplateSpecialization = false;
7142     if (D.isInvalidType())
7143       NewFD->setInvalidDecl();
7144 
7145     // Match up the template parameter lists with the scope specifier, then
7146     // determine whether we have a template or a template specialization.
7147     bool Invalid = false;
7148     if (TemplateParameterList *TemplateParams =
7149             MatchTemplateParametersToScopeSpecifier(
7150                 D.getDeclSpec().getLocStart(), D.getIdentifierLoc(),
7151                 D.getCXXScopeSpec(),
7152                 D.getName().getKind() == UnqualifiedId::IK_TemplateId
7153                     ? D.getName().TemplateId
7154                     : nullptr,
7155                 TemplateParamLists, isFriend, isExplicitSpecialization,
7156                 Invalid)) {
7157       if (TemplateParams->size() > 0) {
7158         // This is a function template
7159 
7160         // Check that we can declare a template here.
7161         if (CheckTemplateDeclScope(S, TemplateParams))
7162           NewFD->setInvalidDecl();
7163 
7164         // A destructor cannot be a template.
7165         if (Name.getNameKind() == DeclarationName::CXXDestructorName) {
7166           Diag(NewFD->getLocation(), diag::err_destructor_template);
7167           NewFD->setInvalidDecl();
7168         }
7169 
7170         // If we're adding a template to a dependent context, we may need to
7171         // rebuilding some of the types used within the template parameter list,
7172         // now that we know what the current instantiation is.
7173         if (DC->isDependentContext()) {
7174           ContextRAII SavedContext(*this, DC);
7175           if (RebuildTemplateParamsInCurrentInstantiation(TemplateParams))
7176             Invalid = true;
7177         }
7178 
7179 
7180         FunctionTemplate = FunctionTemplateDecl::Create(Context, DC,
7181                                                         NewFD->getLocation(),
7182                                                         Name, TemplateParams,
7183                                                         NewFD);
7184         FunctionTemplate->setLexicalDeclContext(CurContext);
7185         NewFD->setDescribedFunctionTemplate(FunctionTemplate);
7186 
7187         // For source fidelity, store the other template param lists.
7188         if (TemplateParamLists.size() > 1) {
7189           NewFD->setTemplateParameterListsInfo(Context,
7190                                                TemplateParamLists.size() - 1,
7191                                                TemplateParamLists.data());
7192         }
7193       } else {
7194         // This is a function template specialization.
7195         isFunctionTemplateSpecialization = true;
7196         // For source fidelity, store all the template param lists.
7197         if (TemplateParamLists.size() > 0)
7198           NewFD->setTemplateParameterListsInfo(Context,
7199                                                TemplateParamLists.size(),
7200                                                TemplateParamLists.data());
7201 
7202         // C++0x [temp.expl.spec]p20 forbids "template<> friend void foo(int);".
7203         if (isFriend) {
7204           // We want to remove the "template<>", found here.
7205           SourceRange RemoveRange = TemplateParams->getSourceRange();
7206 
7207           // If we remove the template<> and the name is not a
7208           // template-id, we're actually silently creating a problem:
7209           // the friend declaration will refer to an untemplated decl,
7210           // and clearly the user wants a template specialization.  So
7211           // we need to insert '<>' after the name.
7212           SourceLocation InsertLoc;
7213           if (D.getName().getKind() != UnqualifiedId::IK_TemplateId) {
7214             InsertLoc = D.getName().getSourceRange().getEnd();
7215             InsertLoc = getLocForEndOfToken(InsertLoc);
7216           }
7217 
7218           Diag(D.getIdentifierLoc(), diag::err_template_spec_decl_friend)
7219             << Name << RemoveRange
7220             << FixItHint::CreateRemoval(RemoveRange)
7221             << FixItHint::CreateInsertion(InsertLoc, "<>");
7222         }
7223       }
7224     }
7225     else {
7226       // All template param lists were matched against the scope specifier:
7227       // this is NOT (an explicit specialization of) a template.
7228       if (TemplateParamLists.size() > 0)
7229         // For source fidelity, store all the template param lists.
7230         NewFD->setTemplateParameterListsInfo(Context,
7231                                              TemplateParamLists.size(),
7232                                              TemplateParamLists.data());
7233     }
7234 
7235     if (Invalid) {
7236       NewFD->setInvalidDecl();
7237       if (FunctionTemplate)
7238         FunctionTemplate->setInvalidDecl();
7239     }
7240 
7241     // C++ [dcl.fct.spec]p5:
7242     //   The virtual specifier shall only be used in declarations of
7243     //   nonstatic class member functions that appear within a
7244     //   member-specification of a class declaration; see 10.3.
7245     //
7246     if (isVirtual && !NewFD->isInvalidDecl()) {
7247       if (!isVirtualOkay) {
7248         Diag(D.getDeclSpec().getVirtualSpecLoc(),
7249              diag::err_virtual_non_function);
7250       } else if (!CurContext->isRecord()) {
7251         // 'virtual' was specified outside of the class.
7252         Diag(D.getDeclSpec().getVirtualSpecLoc(),
7253              diag::err_virtual_out_of_class)
7254           << FixItHint::CreateRemoval(D.getDeclSpec().getVirtualSpecLoc());
7255       } else if (NewFD->getDescribedFunctionTemplate()) {
7256         // C++ [temp.mem]p3:
7257         //  A member function template shall not be virtual.
7258         Diag(D.getDeclSpec().getVirtualSpecLoc(),
7259              diag::err_virtual_member_function_template)
7260           << FixItHint::CreateRemoval(D.getDeclSpec().getVirtualSpecLoc());
7261       } else {
7262         // Okay: Add virtual to the method.
7263         NewFD->setVirtualAsWritten(true);
7264       }
7265 
7266       if (getLangOpts().CPlusPlus14 &&
7267           NewFD->getReturnType()->isUndeducedType())
7268         Diag(D.getDeclSpec().getVirtualSpecLoc(), diag::err_auto_fn_virtual);
7269     }
7270 
7271     if (getLangOpts().CPlusPlus14 &&
7272         (NewFD->isDependentContext() ||
7273          (isFriend && CurContext->isDependentContext())) &&
7274         NewFD->getReturnType()->isUndeducedType()) {
7275       // If the function template is referenced directly (for instance, as a
7276       // member of the current instantiation), pretend it has a dependent type.
7277       // This is not really justified by the standard, but is the only sane
7278       // thing to do.
7279       // FIXME: For a friend function, we have not marked the function as being
7280       // a friend yet, so 'isDependentContext' on the FD doesn't work.
7281       const FunctionProtoType *FPT =
7282           NewFD->getType()->castAs<FunctionProtoType>();
7283       QualType Result =
7284           SubstAutoType(FPT->getReturnType(), Context.DependentTy);
7285       NewFD->setType(Context.getFunctionType(Result, FPT->getParamTypes(),
7286                                              FPT->getExtProtoInfo()));
7287     }
7288 
7289     // C++ [dcl.fct.spec]p3:
7290     //  The inline specifier shall not appear on a block scope function
7291     //  declaration.
7292     if (isInline && !NewFD->isInvalidDecl()) {
7293       if (CurContext->isFunctionOrMethod()) {
7294         // 'inline' is not allowed on block scope function declaration.
7295         Diag(D.getDeclSpec().getInlineSpecLoc(),
7296              diag::err_inline_declaration_block_scope) << Name
7297           << FixItHint::CreateRemoval(D.getDeclSpec().getInlineSpecLoc());
7298       }
7299     }
7300 
7301     // C++ [dcl.fct.spec]p6:
7302     //  The explicit specifier shall be used only in the declaration of a
7303     //  constructor or conversion function within its class definition;
7304     //  see 12.3.1 and 12.3.2.
7305     if (isExplicit && !NewFD->isInvalidDecl()) {
7306       if (!CurContext->isRecord()) {
7307         // 'explicit' was specified outside of the class.
7308         Diag(D.getDeclSpec().getExplicitSpecLoc(),
7309              diag::err_explicit_out_of_class)
7310           << FixItHint::CreateRemoval(D.getDeclSpec().getExplicitSpecLoc());
7311       } else if (!isa<CXXConstructorDecl>(NewFD) &&
7312                  !isa<CXXConversionDecl>(NewFD)) {
7313         // 'explicit' was specified on a function that wasn't a constructor
7314         // or conversion function.
7315         Diag(D.getDeclSpec().getExplicitSpecLoc(),
7316              diag::err_explicit_non_ctor_or_conv_function)
7317           << FixItHint::CreateRemoval(D.getDeclSpec().getExplicitSpecLoc());
7318       }
7319     }
7320 
7321     if (isConstexpr) {
7322       // C++11 [dcl.constexpr]p2: constexpr functions and constexpr constructors
7323       // are implicitly inline.
7324       NewFD->setImplicitlyInline();
7325 
7326       // C++11 [dcl.constexpr]p3: functions declared constexpr are required to
7327       // be either constructors or to return a literal type. Therefore,
7328       // destructors cannot be declared constexpr.
7329       if (isa<CXXDestructorDecl>(NewFD))
7330         Diag(D.getDeclSpec().getConstexprSpecLoc(), diag::err_constexpr_dtor);
7331     }
7332 
7333     // If __module_private__ was specified, mark the function accordingly.
7334     if (D.getDeclSpec().isModulePrivateSpecified()) {
7335       if (isFunctionTemplateSpecialization) {
7336         SourceLocation ModulePrivateLoc
7337           = D.getDeclSpec().getModulePrivateSpecLoc();
7338         Diag(ModulePrivateLoc, diag::err_module_private_specialization)
7339           << 0
7340           << FixItHint::CreateRemoval(ModulePrivateLoc);
7341       } else {
7342         NewFD->setModulePrivate();
7343         if (FunctionTemplate)
7344           FunctionTemplate->setModulePrivate();
7345       }
7346     }
7347 
7348     if (isFriend) {
7349       if (FunctionTemplate) {
7350         FunctionTemplate->setObjectOfFriendDecl();
7351         FunctionTemplate->setAccess(AS_public);
7352       }
7353       NewFD->setObjectOfFriendDecl();
7354       NewFD->setAccess(AS_public);
7355     }
7356 
7357     // If a function is defined as defaulted or deleted, mark it as such now.
7358     // FIXME: Does this ever happen? ActOnStartOfFunctionDef forces the function
7359     // definition kind to FDK_Definition.
7360     switch (D.getFunctionDefinitionKind()) {
7361       case FDK_Declaration:
7362       case FDK_Definition:
7363         break;
7364 
7365       case FDK_Defaulted:
7366         NewFD->setDefaulted();
7367         break;
7368 
7369       case FDK_Deleted:
7370         NewFD->setDeletedAsWritten();
7371         break;
7372     }
7373 
7374     if (isa<CXXMethodDecl>(NewFD) && DC == CurContext &&
7375         D.isFunctionDefinition()) {
7376       // C++ [class.mfct]p2:
7377       //   A member function may be defined (8.4) in its class definition, in
7378       //   which case it is an inline member function (7.1.2)
7379       NewFD->setImplicitlyInline();
7380     }
7381 
7382     if (SC == SC_Static && isa<CXXMethodDecl>(NewFD) &&
7383         !CurContext->isRecord()) {
7384       // C++ [class.static]p1:
7385       //   A data or function member of a class may be declared static
7386       //   in a class definition, in which case it is a static member of
7387       //   the class.
7388 
7389       // Complain about the 'static' specifier if it's on an out-of-line
7390       // member function definition.
7391       Diag(D.getDeclSpec().getStorageClassSpecLoc(),
7392            diag::err_static_out_of_line)
7393         << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc());
7394     }
7395 
7396     // C++11 [except.spec]p15:
7397     //   A deallocation function with no exception-specification is treated
7398     //   as if it were specified with noexcept(true).
7399     const FunctionProtoType *FPT = R->getAs<FunctionProtoType>();
7400     if ((Name.getCXXOverloadedOperator() == OO_Delete ||
7401          Name.getCXXOverloadedOperator() == OO_Array_Delete) &&
7402         getLangOpts().CPlusPlus11 && FPT && !FPT->hasExceptionSpec())
7403       NewFD->setType(Context.getFunctionType(
7404           FPT->getReturnType(), FPT->getParamTypes(),
7405           FPT->getExtProtoInfo().withExceptionSpec(EST_BasicNoexcept)));
7406   }
7407 
7408   // Filter out previous declarations that don't match the scope.
7409   FilterLookupForScope(Previous, OriginalDC, S, shouldConsiderLinkage(NewFD),
7410                        D.getCXXScopeSpec().isNotEmpty() ||
7411                        isExplicitSpecialization ||
7412                        isFunctionTemplateSpecialization);
7413 
7414   // Handle GNU asm-label extension (encoded as an attribute).
7415   if (Expr *E = (Expr*) D.getAsmLabel()) {
7416     // The parser guarantees this is a string.
7417     StringLiteral *SE = cast<StringLiteral>(E);
7418     NewFD->addAttr(::new (Context) AsmLabelAttr(SE->getStrTokenLoc(0), Context,
7419                                                 SE->getString(), 0));
7420   } else if (!ExtnameUndeclaredIdentifiers.empty()) {
7421     llvm::DenseMap<IdentifierInfo*,AsmLabelAttr*>::iterator I =
7422       ExtnameUndeclaredIdentifiers.find(NewFD->getIdentifier());
7423     if (I != ExtnameUndeclaredIdentifiers.end()) {
7424       NewFD->addAttr(I->second);
7425       ExtnameUndeclaredIdentifiers.erase(I);
7426     }
7427   }
7428 
7429   // Copy the parameter declarations from the declarator D to the function
7430   // declaration NewFD, if they are available.  First scavenge them into Params.
7431   SmallVector<ParmVarDecl*, 16> Params;
7432   if (D.isFunctionDeclarator()) {
7433     DeclaratorChunk::FunctionTypeInfo &FTI = D.getFunctionTypeInfo();
7434 
7435     // Check for C99 6.7.5.3p10 - foo(void) is a non-varargs
7436     // function that takes no arguments, not a function that takes a
7437     // single void argument.
7438     // We let through "const void" here because Sema::GetTypeForDeclarator
7439     // already checks for that case.
7440     if (FTIHasNonVoidParameters(FTI) && FTI.Params[0].Param) {
7441       for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) {
7442         ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param);
7443         assert(Param->getDeclContext() != NewFD && "Was set before ?");
7444         Param->setDeclContext(NewFD);
7445         Params.push_back(Param);
7446 
7447         if (Param->isInvalidDecl())
7448           NewFD->setInvalidDecl();
7449       }
7450     }
7451 
7452   } else if (const FunctionProtoType *FT = R->getAs<FunctionProtoType>()) {
7453     // When we're declaring a function with a typedef, typeof, etc as in the
7454     // following example, we'll need to synthesize (unnamed)
7455     // parameters for use in the declaration.
7456     //
7457     // @code
7458     // typedef void fn(int);
7459     // fn f;
7460     // @endcode
7461 
7462     // Synthesize a parameter for each argument type.
7463     for (const auto &AI : FT->param_types()) {
7464       ParmVarDecl *Param =
7465           BuildParmVarDeclForTypedef(NewFD, D.getIdentifierLoc(), AI);
7466       Param->setScopeInfo(0, Params.size());
7467       Params.push_back(Param);
7468     }
7469   } else {
7470     assert(R->isFunctionNoProtoType() && NewFD->getNumParams() == 0 &&
7471            "Should not need args for typedef of non-prototype fn");
7472   }
7473 
7474   // Finally, we know we have the right number of parameters, install them.
7475   NewFD->setParams(Params);
7476 
7477   // Find all anonymous symbols defined during the declaration of this function
7478   // and add to NewFD. This lets us track decls such 'enum Y' in:
7479   //
7480   //   void f(enum Y {AA} x) {}
7481   //
7482   // which would otherwise incorrectly end up in the translation unit scope.
7483   NewFD->setDeclsInPrototypeScope(DeclsInPrototypeScope);
7484   DeclsInPrototypeScope.clear();
7485 
7486   if (D.getDeclSpec().isNoreturnSpecified())
7487     NewFD->addAttr(
7488         ::new(Context) C11NoReturnAttr(D.getDeclSpec().getNoreturnSpecLoc(),
7489                                        Context, 0));
7490 
7491   // Functions returning a variably modified type violate C99 6.7.5.2p2
7492   // because all functions have linkage.
7493   if (!NewFD->isInvalidDecl() &&
7494       NewFD->getReturnType()->isVariablyModifiedType()) {
7495     Diag(NewFD->getLocation(), diag::err_vm_func_decl);
7496     NewFD->setInvalidDecl();
7497   }
7498 
7499   // Apply an implicit SectionAttr if #pragma code_seg is active.
7500   if (CodeSegStack.CurrentValue && D.isFunctionDefinition() &&
7501       !NewFD->hasAttr<SectionAttr>()) {
7502     NewFD->addAttr(
7503         SectionAttr::CreateImplicit(Context, SectionAttr::Declspec_allocate,
7504                                     CodeSegStack.CurrentValue->getString(),
7505                                     CodeSegStack.CurrentPragmaLocation));
7506     if (UnifySection(CodeSegStack.CurrentValue->getString(),
7507                      ASTContext::PSF_Implicit | ASTContext::PSF_Execute |
7508                          ASTContext::PSF_Read,
7509                      NewFD))
7510       NewFD->dropAttr<SectionAttr>();
7511   }
7512 
7513   // Handle attributes.
7514   ProcessDeclAttributes(S, NewFD, D);
7515 
7516   if (getLangOpts().OpenCL) {
7517     // OpenCL v1.1 s6.5: Using an address space qualifier in a function return
7518     // type declaration will generate a compilation error.
7519     unsigned AddressSpace = NewFD->getReturnType().getAddressSpace();
7520     if (AddressSpace == LangAS::opencl_local ||
7521         AddressSpace == LangAS::opencl_global ||
7522         AddressSpace == LangAS::opencl_constant) {
7523       Diag(NewFD->getLocation(),
7524            diag::err_opencl_return_value_with_address_space);
7525       NewFD->setInvalidDecl();
7526     }
7527   }
7528 
7529   if (!getLangOpts().CPlusPlus) {
7530     // Perform semantic checking on the function declaration.
7531     bool isExplicitSpecialization=false;
7532     if (!NewFD->isInvalidDecl() && NewFD->isMain())
7533       CheckMain(NewFD, D.getDeclSpec());
7534 
7535     if (!NewFD->isInvalidDecl() && NewFD->isMSVCRTEntryPoint())
7536       CheckMSVCRTEntryPoint(NewFD);
7537 
7538     if (!NewFD->isInvalidDecl())
7539       D.setRedeclaration(CheckFunctionDeclaration(S, NewFD, Previous,
7540                                                   isExplicitSpecialization));
7541     else if (!Previous.empty())
7542       // Recover gracefully from an invalid redeclaration.
7543       D.setRedeclaration(true);
7544     assert((NewFD->isInvalidDecl() || !D.isRedeclaration() ||
7545             Previous.getResultKind() != LookupResult::FoundOverloaded) &&
7546            "previous declaration set still overloaded");
7547 
7548     // Diagnose no-prototype function declarations with calling conventions that
7549     // don't support variadic calls. Only do this in C and do it after merging
7550     // possibly prototyped redeclarations.
7551     const FunctionType *FT = NewFD->getType()->castAs<FunctionType>();
7552     if (isa<FunctionNoProtoType>(FT) && !D.isFunctionDefinition()) {
7553       CallingConv CC = FT->getExtInfo().getCC();
7554       if (!supportsVariadicCall(CC)) {
7555         // Windows system headers sometimes accidentally use stdcall without
7556         // (void) parameters, so we relax this to a warning.
7557         int DiagID =
7558             CC == CC_X86StdCall ? diag::warn_cconv_knr : diag::err_cconv_knr;
7559         Diag(NewFD->getLocation(), DiagID)
7560             << FunctionType::getNameForCallConv(CC);
7561       }
7562     }
7563   } else {
7564     // C++11 [replacement.functions]p3:
7565     //  The program's definitions shall not be specified as inline.
7566     //
7567     // N.B. We diagnose declarations instead of definitions per LWG issue 2340.
7568     //
7569     // Suppress the diagnostic if the function is __attribute__((used)), since
7570     // that forces an external definition to be emitted.
7571     if (D.getDeclSpec().isInlineSpecified() &&
7572         NewFD->isReplaceableGlobalAllocationFunction() &&
7573         !NewFD->hasAttr<UsedAttr>())
7574       Diag(D.getDeclSpec().getInlineSpecLoc(),
7575            diag::ext_operator_new_delete_declared_inline)
7576         << NewFD->getDeclName();
7577 
7578     // If the declarator is a template-id, translate the parser's template
7579     // argument list into our AST format.
7580     if (D.getName().getKind() == UnqualifiedId::IK_TemplateId) {
7581       TemplateIdAnnotation *TemplateId = D.getName().TemplateId;
7582       TemplateArgs.setLAngleLoc(TemplateId->LAngleLoc);
7583       TemplateArgs.setRAngleLoc(TemplateId->RAngleLoc);
7584       ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(),
7585                                          TemplateId->NumArgs);
7586       translateTemplateArguments(TemplateArgsPtr,
7587                                  TemplateArgs);
7588 
7589       HasExplicitTemplateArgs = true;
7590 
7591       if (NewFD->isInvalidDecl()) {
7592         HasExplicitTemplateArgs = false;
7593       } else if (FunctionTemplate) {
7594         // Function template with explicit template arguments.
7595         Diag(D.getIdentifierLoc(), diag::err_function_template_partial_spec)
7596           << SourceRange(TemplateId->LAngleLoc, TemplateId->RAngleLoc);
7597 
7598         HasExplicitTemplateArgs = false;
7599       } else {
7600         assert((isFunctionTemplateSpecialization ||
7601                 D.getDeclSpec().isFriendSpecified()) &&
7602                "should have a 'template<>' for this decl");
7603         // "friend void foo<>(int);" is an implicit specialization decl.
7604         isFunctionTemplateSpecialization = true;
7605       }
7606     } else if (isFriend && isFunctionTemplateSpecialization) {
7607       // This combination is only possible in a recovery case;  the user
7608       // wrote something like:
7609       //   template <> friend void foo(int);
7610       // which we're recovering from as if the user had written:
7611       //   friend void foo<>(int);
7612       // Go ahead and fake up a template id.
7613       HasExplicitTemplateArgs = true;
7614       TemplateArgs.setLAngleLoc(D.getIdentifierLoc());
7615       TemplateArgs.setRAngleLoc(D.getIdentifierLoc());
7616     }
7617 
7618     // If it's a friend (and only if it's a friend), it's possible
7619     // that either the specialized function type or the specialized
7620     // template is dependent, and therefore matching will fail.  In
7621     // this case, don't check the specialization yet.
7622     bool InstantiationDependent = false;
7623     if (isFunctionTemplateSpecialization && isFriend &&
7624         (NewFD->getType()->isDependentType() || DC->isDependentContext() ||
7625          TemplateSpecializationType::anyDependentTemplateArguments(
7626             TemplateArgs.getArgumentArray(), TemplateArgs.size(),
7627             InstantiationDependent))) {
7628       assert(HasExplicitTemplateArgs &&
7629              "friend function specialization without template args");
7630       if (CheckDependentFunctionTemplateSpecialization(NewFD, TemplateArgs,
7631                                                        Previous))
7632         NewFD->setInvalidDecl();
7633     } else if (isFunctionTemplateSpecialization) {
7634       if (CurContext->isDependentContext() && CurContext->isRecord()
7635           && !isFriend) {
7636         isDependentClassScopeExplicitSpecialization = true;
7637         Diag(NewFD->getLocation(), getLangOpts().MicrosoftExt ?
7638           diag::ext_function_specialization_in_class :
7639           diag::err_function_specialization_in_class)
7640           << NewFD->getDeclName();
7641       } else if (CheckFunctionTemplateSpecialization(NewFD,
7642                                   (HasExplicitTemplateArgs ? &TemplateArgs
7643                                                            : nullptr),
7644                                                      Previous))
7645         NewFD->setInvalidDecl();
7646 
7647       // C++ [dcl.stc]p1:
7648       //   A storage-class-specifier shall not be specified in an explicit
7649       //   specialization (14.7.3)
7650       FunctionTemplateSpecializationInfo *Info =
7651           NewFD->getTemplateSpecializationInfo();
7652       if (Info && SC != SC_None) {
7653         if (SC != Info->getTemplate()->getTemplatedDecl()->getStorageClass())
7654           Diag(NewFD->getLocation(),
7655                diag::err_explicit_specialization_inconsistent_storage_class)
7656             << SC
7657             << FixItHint::CreateRemoval(
7658                                       D.getDeclSpec().getStorageClassSpecLoc());
7659 
7660         else
7661           Diag(NewFD->getLocation(),
7662                diag::ext_explicit_specialization_storage_class)
7663             << FixItHint::CreateRemoval(
7664                                       D.getDeclSpec().getStorageClassSpecLoc());
7665       }
7666 
7667     } else if (isExplicitSpecialization && isa<CXXMethodDecl>(NewFD)) {
7668       if (CheckMemberSpecialization(NewFD, Previous))
7669           NewFD->setInvalidDecl();
7670     }
7671 
7672     // Perform semantic checking on the function declaration.
7673     if (!isDependentClassScopeExplicitSpecialization) {
7674       if (!NewFD->isInvalidDecl() && NewFD->isMain())
7675         CheckMain(NewFD, D.getDeclSpec());
7676 
7677       if (!NewFD->isInvalidDecl() && NewFD->isMSVCRTEntryPoint())
7678         CheckMSVCRTEntryPoint(NewFD);
7679 
7680       if (!NewFD->isInvalidDecl())
7681         D.setRedeclaration(CheckFunctionDeclaration(S, NewFD, Previous,
7682                                                     isExplicitSpecialization));
7683       else if (!Previous.empty())
7684         // Recover gracefully from an invalid redeclaration.
7685         D.setRedeclaration(true);
7686     }
7687 
7688     assert((NewFD->isInvalidDecl() || !D.isRedeclaration() ||
7689             Previous.getResultKind() != LookupResult::FoundOverloaded) &&
7690            "previous declaration set still overloaded");
7691 
7692     NamedDecl *PrincipalDecl = (FunctionTemplate
7693                                 ? cast<NamedDecl>(FunctionTemplate)
7694                                 : NewFD);
7695 
7696     if (isFriend && D.isRedeclaration()) {
7697       AccessSpecifier Access = AS_public;
7698       if (!NewFD->isInvalidDecl())
7699         Access = NewFD->getPreviousDecl()->getAccess();
7700 
7701       NewFD->setAccess(Access);
7702       if (FunctionTemplate) FunctionTemplate->setAccess(Access);
7703     }
7704 
7705     if (NewFD->isOverloadedOperator() && !DC->isRecord() &&
7706         PrincipalDecl->isInIdentifierNamespace(Decl::IDNS_Ordinary))
7707       PrincipalDecl->setNonMemberOperator();
7708 
7709     // If we have a function template, check the template parameter
7710     // list. This will check and merge default template arguments.
7711     if (FunctionTemplate) {
7712       FunctionTemplateDecl *PrevTemplate =
7713                                      FunctionTemplate->getPreviousDecl();
7714       CheckTemplateParameterList(FunctionTemplate->getTemplateParameters(),
7715                        PrevTemplate ? PrevTemplate->getTemplateParameters()
7716                                     : nullptr,
7717                             D.getDeclSpec().isFriendSpecified()
7718                               ? (D.isFunctionDefinition()
7719                                    ? TPC_FriendFunctionTemplateDefinition
7720                                    : TPC_FriendFunctionTemplate)
7721                               : (D.getCXXScopeSpec().isSet() &&
7722                                  DC && DC->isRecord() &&
7723                                  DC->isDependentContext())
7724                                   ? TPC_ClassTemplateMember
7725                                   : TPC_FunctionTemplate);
7726     }
7727 
7728     if (NewFD->isInvalidDecl()) {
7729       // Ignore all the rest of this.
7730     } else if (!D.isRedeclaration()) {
7731       struct ActOnFDArgs ExtraArgs = { S, D, TemplateParamLists,
7732                                        AddToScope };
7733       // Fake up an access specifier if it's supposed to be a class member.
7734       if (isa<CXXRecordDecl>(NewFD->getDeclContext()))
7735         NewFD->setAccess(AS_public);
7736 
7737       // Qualified decls generally require a previous declaration.
7738       if (D.getCXXScopeSpec().isSet()) {
7739         // ...with the major exception of templated-scope or
7740         // dependent-scope friend declarations.
7741 
7742         // TODO: we currently also suppress this check in dependent
7743         // contexts because (1) the parameter depth will be off when
7744         // matching friend templates and (2) we might actually be
7745         // selecting a friend based on a dependent factor.  But there
7746         // are situations where these conditions don't apply and we
7747         // can actually do this check immediately.
7748         if (isFriend &&
7749             (TemplateParamLists.size() ||
7750              D.getCXXScopeSpec().getScopeRep()->isDependent() ||
7751              CurContext->isDependentContext())) {
7752           // ignore these
7753         } else {
7754           // The user tried to provide an out-of-line definition for a
7755           // function that is a member of a class or namespace, but there
7756           // was no such member function declared (C++ [class.mfct]p2,
7757           // C++ [namespace.memdef]p2). For example:
7758           //
7759           // class X {
7760           //   void f() const;
7761           // };
7762           //
7763           // void X::f() { } // ill-formed
7764           //
7765           // Complain about this problem, and attempt to suggest close
7766           // matches (e.g., those that differ only in cv-qualifiers and
7767           // whether the parameter types are references).
7768 
7769           if (NamedDecl *Result = DiagnoseInvalidRedeclaration(
7770                   *this, Previous, NewFD, ExtraArgs, false, nullptr)) {
7771             AddToScope = ExtraArgs.AddToScope;
7772             return Result;
7773           }
7774         }
7775 
7776         // Unqualified local friend declarations are required to resolve
7777         // to something.
7778       } else if (isFriend && cast<CXXRecordDecl>(CurContext)->isLocalClass()) {
7779         if (NamedDecl *Result = DiagnoseInvalidRedeclaration(
7780                 *this, Previous, NewFD, ExtraArgs, true, S)) {
7781           AddToScope = ExtraArgs.AddToScope;
7782           return Result;
7783         }
7784       }
7785 
7786     } else if (!D.isFunctionDefinition() &&
7787                isa<CXXMethodDecl>(NewFD) && NewFD->isOutOfLine() &&
7788                !isFriend && !isFunctionTemplateSpecialization &&
7789                !isExplicitSpecialization) {
7790       // An out-of-line member function declaration must also be a
7791       // definition (C++ [class.mfct]p2).
7792       // Note that this is not the case for explicit specializations of
7793       // function templates or member functions of class templates, per
7794       // C++ [temp.expl.spec]p2. We also allow these declarations as an
7795       // extension for compatibility with old SWIG code which likes to
7796       // generate them.
7797       Diag(NewFD->getLocation(), diag::ext_out_of_line_declaration)
7798         << D.getCXXScopeSpec().getRange();
7799     }
7800   }
7801 
7802   ProcessPragmaWeak(S, NewFD);
7803   checkAttributesAfterMerging(*this, *NewFD);
7804 
7805   AddKnownFunctionAttributes(NewFD);
7806 
7807   if (NewFD->hasAttr<OverloadableAttr>() &&
7808       !NewFD->getType()->getAs<FunctionProtoType>()) {
7809     Diag(NewFD->getLocation(),
7810          diag::err_attribute_overloadable_no_prototype)
7811       << NewFD;
7812 
7813     // Turn this into a variadic function with no parameters.
7814     const FunctionType *FT = NewFD->getType()->getAs<FunctionType>();
7815     FunctionProtoType::ExtProtoInfo EPI(
7816         Context.getDefaultCallingConvention(true, false));
7817     EPI.Variadic = true;
7818     EPI.ExtInfo = FT->getExtInfo();
7819 
7820     QualType R = Context.getFunctionType(FT->getReturnType(), None, EPI);
7821     NewFD->setType(R);
7822   }
7823 
7824   // If there's a #pragma GCC visibility in scope, and this isn't a class
7825   // member, set the visibility of this function.
7826   if (!DC->isRecord() && NewFD->isExternallyVisible())
7827     AddPushedVisibilityAttribute(NewFD);
7828 
7829   // If there's a #pragma clang arc_cf_code_audited in scope, consider
7830   // marking the function.
7831   AddCFAuditedAttribute(NewFD);
7832 
7833   // If this is a function definition, check if we have to apply optnone due to
7834   // a pragma.
7835   if(D.isFunctionDefinition())
7836     AddRangeBasedOptnone(NewFD);
7837 
7838   // If this is the first declaration of an extern C variable, update
7839   // the map of such variables.
7840   if (NewFD->isFirstDecl() && !NewFD->isInvalidDecl() &&
7841       isIncompleteDeclExternC(*this, NewFD))
7842     RegisterLocallyScopedExternCDecl(NewFD, S);
7843 
7844   // Set this FunctionDecl's range up to the right paren.
7845   NewFD->setRangeEnd(D.getSourceRange().getEnd());
7846 
7847   if (D.isRedeclaration() && !Previous.empty()) {
7848     checkDLLAttributeRedeclaration(
7849         *this, dyn_cast<NamedDecl>(Previous.getRepresentativeDecl()), NewFD,
7850         isExplicitSpecialization || isFunctionTemplateSpecialization);
7851   }
7852 
7853   if (getLangOpts().CPlusPlus) {
7854     if (FunctionTemplate) {
7855       if (NewFD->isInvalidDecl())
7856         FunctionTemplate->setInvalidDecl();
7857       return FunctionTemplate;
7858     }
7859   }
7860 
7861   if (NewFD->hasAttr<OpenCLKernelAttr>()) {
7862     // OpenCL v1.2 s6.8 static is invalid for kernel functions.
7863     if ((getLangOpts().OpenCLVersion >= 120)
7864         && (SC == SC_Static)) {
7865       Diag(D.getIdentifierLoc(), diag::err_static_kernel);
7866       D.setInvalidType();
7867     }
7868 
7869     // OpenCL v1.2, s6.9 -- Kernels can only have return type void.
7870     if (!NewFD->getReturnType()->isVoidType()) {
7871       SourceRange RTRange = NewFD->getReturnTypeSourceRange();
7872       Diag(D.getIdentifierLoc(), diag::err_expected_kernel_void_return_type)
7873           << (RTRange.isValid() ? FixItHint::CreateReplacement(RTRange, "void")
7874                                 : FixItHint());
7875       D.setInvalidType();
7876     }
7877 
7878     llvm::SmallPtrSet<const Type *, 16> ValidTypes;
7879     for (auto Param : NewFD->params())
7880       checkIsValidOpenCLKernelParameter(*this, D, Param, ValidTypes);
7881   }
7882 
7883   MarkUnusedFileScopedDecl(NewFD);
7884 
7885   if (getLangOpts().CUDA)
7886     if (IdentifierInfo *II = NewFD->getIdentifier())
7887       if (!NewFD->isInvalidDecl() &&
7888           NewFD->getDeclContext()->getRedeclContext()->isTranslationUnit()) {
7889         if (II->isStr("cudaConfigureCall")) {
7890           if (!R->getAs<FunctionType>()->getReturnType()->isScalarType())
7891             Diag(NewFD->getLocation(), diag::err_config_scalar_return);
7892 
7893           Context.setcudaConfigureCallDecl(NewFD);
7894         }
7895       }
7896 
7897   // Here we have an function template explicit specialization at class scope.
7898   // The actually specialization will be postponed to template instatiation
7899   // time via the ClassScopeFunctionSpecializationDecl node.
7900   if (isDependentClassScopeExplicitSpecialization) {
7901     ClassScopeFunctionSpecializationDecl *NewSpec =
7902                          ClassScopeFunctionSpecializationDecl::Create(
7903                                 Context, CurContext, SourceLocation(),
7904                                 cast<CXXMethodDecl>(NewFD),
7905                                 HasExplicitTemplateArgs, TemplateArgs);
7906     CurContext->addDecl(NewSpec);
7907     AddToScope = false;
7908   }
7909 
7910   return NewFD;
7911 }
7912 
7913 /// \brief Perform semantic checking of a new function declaration.
7914 ///
7915 /// Performs semantic analysis of the new function declaration
7916 /// NewFD. This routine performs all semantic checking that does not
7917 /// require the actual declarator involved in the declaration, and is
7918 /// used both for the declaration of functions as they are parsed
7919 /// (called via ActOnDeclarator) and for the declaration of functions
7920 /// that have been instantiated via C++ template instantiation (called
7921 /// via InstantiateDecl).
7922 ///
7923 /// \param IsExplicitSpecialization whether this new function declaration is
7924 /// an explicit specialization of the previous declaration.
7925 ///
7926 /// This sets NewFD->isInvalidDecl() to true if there was an error.
7927 ///
7928 /// \returns true if the function declaration is a redeclaration.
7929 bool Sema::CheckFunctionDeclaration(Scope *S, FunctionDecl *NewFD,
7930                                     LookupResult &Previous,
7931                                     bool IsExplicitSpecialization) {
7932   assert(!NewFD->getReturnType()->isVariablyModifiedType() &&
7933          "Variably modified return types are not handled here");
7934 
7935   // Determine whether the type of this function should be merged with
7936   // a previous visible declaration. This never happens for functions in C++,
7937   // and always happens in C if the previous declaration was visible.
7938   bool MergeTypeWithPrevious = !getLangOpts().CPlusPlus &&
7939                                !Previous.isShadowed();
7940 
7941   // Filter out any non-conflicting previous declarations.
7942   filterNonConflictingPreviousDecls(*this, NewFD, Previous);
7943 
7944   bool Redeclaration = false;
7945   NamedDecl *OldDecl = nullptr;
7946 
7947   // Merge or overload the declaration with an existing declaration of
7948   // the same name, if appropriate.
7949   if (!Previous.empty()) {
7950     // Determine whether NewFD is an overload of PrevDecl or
7951     // a declaration that requires merging. If it's an overload,
7952     // there's no more work to do here; we'll just add the new
7953     // function to the scope.
7954     if (!AllowOverloadingOfFunction(Previous, Context)) {
7955       NamedDecl *Candidate = Previous.getFoundDecl();
7956       if (shouldLinkPossiblyHiddenDecl(Candidate, NewFD)) {
7957         Redeclaration = true;
7958         OldDecl = Candidate;
7959       }
7960     } else {
7961       switch (CheckOverload(S, NewFD, Previous, OldDecl,
7962                             /*NewIsUsingDecl*/ false)) {
7963       case Ovl_Match:
7964         Redeclaration = true;
7965         break;
7966 
7967       case Ovl_NonFunction:
7968         Redeclaration = true;
7969         break;
7970 
7971       case Ovl_Overload:
7972         Redeclaration = false;
7973         break;
7974       }
7975 
7976       if (!getLangOpts().CPlusPlus && !NewFD->hasAttr<OverloadableAttr>()) {
7977         // If a function name is overloadable in C, then every function
7978         // with that name must be marked "overloadable".
7979         Diag(NewFD->getLocation(), diag::err_attribute_overloadable_missing)
7980           << Redeclaration << NewFD;
7981         NamedDecl *OverloadedDecl = nullptr;
7982         if (Redeclaration)
7983           OverloadedDecl = OldDecl;
7984         else if (!Previous.empty())
7985           OverloadedDecl = Previous.getRepresentativeDecl();
7986         if (OverloadedDecl)
7987           Diag(OverloadedDecl->getLocation(),
7988                diag::note_attribute_overloadable_prev_overload);
7989         NewFD->addAttr(OverloadableAttr::CreateImplicit(Context));
7990       }
7991     }
7992   }
7993 
7994   // Check for a previous extern "C" declaration with this name.
7995   if (!Redeclaration &&
7996       checkForConflictWithNonVisibleExternC(*this, NewFD, Previous)) {
7997     filterNonConflictingPreviousDecls(*this, NewFD, Previous);
7998     if (!Previous.empty()) {
7999       // This is an extern "C" declaration with the same name as a previous
8000       // declaration, and thus redeclares that entity...
8001       Redeclaration = true;
8002       OldDecl = Previous.getFoundDecl();
8003       MergeTypeWithPrevious = false;
8004 
8005       // ... except in the presence of __attribute__((overloadable)).
8006       if (OldDecl->hasAttr<OverloadableAttr>()) {
8007         if (!getLangOpts().CPlusPlus && !NewFD->hasAttr<OverloadableAttr>()) {
8008           Diag(NewFD->getLocation(), diag::err_attribute_overloadable_missing)
8009             << Redeclaration << NewFD;
8010           Diag(Previous.getFoundDecl()->getLocation(),
8011                diag::note_attribute_overloadable_prev_overload);
8012           NewFD->addAttr(OverloadableAttr::CreateImplicit(Context));
8013         }
8014         if (IsOverload(NewFD, cast<FunctionDecl>(OldDecl), false)) {
8015           Redeclaration = false;
8016           OldDecl = nullptr;
8017         }
8018       }
8019     }
8020   }
8021 
8022   // C++11 [dcl.constexpr]p8:
8023   //   A constexpr specifier for a non-static member function that is not
8024   //   a constructor declares that member function to be const.
8025   //
8026   // This needs to be delayed until we know whether this is an out-of-line
8027   // definition of a static member function.
8028   //
8029   // This rule is not present in C++1y, so we produce a backwards
8030   // compatibility warning whenever it happens in C++11.
8031   CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewFD);
8032   if (!getLangOpts().CPlusPlus14 && MD && MD->isConstexpr() &&
8033       !MD->isStatic() && !isa<CXXConstructorDecl>(MD) &&
8034       (MD->getTypeQualifiers() & Qualifiers::Const) == 0) {
8035     CXXMethodDecl *OldMD = nullptr;
8036     if (OldDecl)
8037       OldMD = dyn_cast_or_null<CXXMethodDecl>(OldDecl->getAsFunction());
8038     if (!OldMD || !OldMD->isStatic()) {
8039       const FunctionProtoType *FPT =
8040         MD->getType()->castAs<FunctionProtoType>();
8041       FunctionProtoType::ExtProtoInfo EPI = FPT->getExtProtoInfo();
8042       EPI.TypeQuals |= Qualifiers::Const;
8043       MD->setType(Context.getFunctionType(FPT->getReturnType(),
8044                                           FPT->getParamTypes(), EPI));
8045 
8046       // Warn that we did this, if we're not performing template instantiation.
8047       // In that case, we'll have warned already when the template was defined.
8048       if (ActiveTemplateInstantiations.empty()) {
8049         SourceLocation AddConstLoc;
8050         if (FunctionTypeLoc FTL = MD->getTypeSourceInfo()->getTypeLoc()
8051                 .IgnoreParens().getAs<FunctionTypeLoc>())
8052           AddConstLoc = getLocForEndOfToken(FTL.getRParenLoc());
8053 
8054         Diag(MD->getLocation(), diag::warn_cxx14_compat_constexpr_not_const)
8055           << FixItHint::CreateInsertion(AddConstLoc, " const");
8056       }
8057     }
8058   }
8059 
8060   if (Redeclaration) {
8061     // NewFD and OldDecl represent declarations that need to be
8062     // merged.
8063     if (MergeFunctionDecl(NewFD, OldDecl, S, MergeTypeWithPrevious)) {
8064       NewFD->setInvalidDecl();
8065       return Redeclaration;
8066     }
8067 
8068     Previous.clear();
8069     Previous.addDecl(OldDecl);
8070 
8071     if (FunctionTemplateDecl *OldTemplateDecl
8072                                   = dyn_cast<FunctionTemplateDecl>(OldDecl)) {
8073       NewFD->setPreviousDeclaration(OldTemplateDecl->getTemplatedDecl());
8074       FunctionTemplateDecl *NewTemplateDecl
8075         = NewFD->getDescribedFunctionTemplate();
8076       assert(NewTemplateDecl && "Template/non-template mismatch");
8077       if (CXXMethodDecl *Method
8078             = dyn_cast<CXXMethodDecl>(NewTemplateDecl->getTemplatedDecl())) {
8079         Method->setAccess(OldTemplateDecl->getAccess());
8080         NewTemplateDecl->setAccess(OldTemplateDecl->getAccess());
8081       }
8082 
8083       // If this is an explicit specialization of a member that is a function
8084       // template, mark it as a member specialization.
8085       if (IsExplicitSpecialization &&
8086           NewTemplateDecl->getInstantiatedFromMemberTemplate()) {
8087         NewTemplateDecl->setMemberSpecialization();
8088         assert(OldTemplateDecl->isMemberSpecialization());
8089       }
8090 
8091     } else {
8092       // This needs to happen first so that 'inline' propagates.
8093       NewFD->setPreviousDeclaration(cast<FunctionDecl>(OldDecl));
8094 
8095       if (isa<CXXMethodDecl>(NewFD))
8096         NewFD->setAccess(OldDecl->getAccess());
8097     }
8098   }
8099 
8100   // Semantic checking for this function declaration (in isolation).
8101 
8102   if (getLangOpts().CPlusPlus) {
8103     // C++-specific checks.
8104     if (CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(NewFD)) {
8105       CheckConstructor(Constructor);
8106     } else if (CXXDestructorDecl *Destructor =
8107                 dyn_cast<CXXDestructorDecl>(NewFD)) {
8108       CXXRecordDecl *Record = Destructor->getParent();
8109       QualType ClassType = Context.getTypeDeclType(Record);
8110 
8111       // FIXME: Shouldn't we be able to perform this check even when the class
8112       // type is dependent? Both gcc and edg can handle that.
8113       if (!ClassType->isDependentType()) {
8114         DeclarationName Name
8115           = Context.DeclarationNames.getCXXDestructorName(
8116                                         Context.getCanonicalType(ClassType));
8117         if (NewFD->getDeclName() != Name) {
8118           Diag(NewFD->getLocation(), diag::err_destructor_name);
8119           NewFD->setInvalidDecl();
8120           return Redeclaration;
8121         }
8122       }
8123     } else if (CXXConversionDecl *Conversion
8124                = dyn_cast<CXXConversionDecl>(NewFD)) {
8125       ActOnConversionDeclarator(Conversion);
8126     }
8127 
8128     // Find any virtual functions that this function overrides.
8129     if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(NewFD)) {
8130       if (!Method->isFunctionTemplateSpecialization() &&
8131           !Method->getDescribedFunctionTemplate() &&
8132           Method->isCanonicalDecl()) {
8133         if (AddOverriddenMethods(Method->getParent(), Method)) {
8134           // If the function was marked as "static", we have a problem.
8135           if (NewFD->getStorageClass() == SC_Static) {
8136             ReportOverrides(*this, diag::err_static_overrides_virtual, Method);
8137           }
8138         }
8139       }
8140 
8141       if (Method->isStatic())
8142         checkThisInStaticMemberFunctionType(Method);
8143     }
8144 
8145     // Extra checking for C++ overloaded operators (C++ [over.oper]).
8146     if (NewFD->isOverloadedOperator() &&
8147         CheckOverloadedOperatorDeclaration(NewFD)) {
8148       NewFD->setInvalidDecl();
8149       return Redeclaration;
8150     }
8151 
8152     // Extra checking for C++0x literal operators (C++0x [over.literal]).
8153     if (NewFD->getLiteralIdentifier() &&
8154         CheckLiteralOperatorDeclaration(NewFD)) {
8155       NewFD->setInvalidDecl();
8156       return Redeclaration;
8157     }
8158 
8159     // In C++, check default arguments now that we have merged decls. Unless
8160     // the lexical context is the class, because in this case this is done
8161     // during delayed parsing anyway.
8162     if (!CurContext->isRecord())
8163       CheckCXXDefaultArguments(NewFD);
8164 
8165     // If this function declares a builtin function, check the type of this
8166     // declaration against the expected type for the builtin.
8167     if (unsigned BuiltinID = NewFD->getBuiltinID()) {
8168       ASTContext::GetBuiltinTypeError Error;
8169       LookupPredefedObjCSuperType(*this, S, NewFD->getIdentifier());
8170       QualType T = Context.GetBuiltinType(BuiltinID, Error);
8171       if (!T.isNull() && !Context.hasSameType(T, NewFD->getType())) {
8172         // The type of this function differs from the type of the builtin,
8173         // so forget about the builtin entirely.
8174         Context.BuiltinInfo.ForgetBuiltin(BuiltinID, Context.Idents);
8175       }
8176     }
8177 
8178     // If this function is declared as being extern "C", then check to see if
8179     // the function returns a UDT (class, struct, or union type) that is not C
8180     // compatible, and if it does, warn the user.
8181     // But, issue any diagnostic on the first declaration only.
8182     if (Previous.empty() && NewFD->isExternC()) {
8183       QualType R = NewFD->getReturnType();
8184       if (R->isIncompleteType() && !R->isVoidType())
8185         Diag(NewFD->getLocation(), diag::warn_return_value_udt_incomplete)
8186             << NewFD << R;
8187       else if (!R.isPODType(Context) && !R->isVoidType() &&
8188                !R->isObjCObjectPointerType())
8189         Diag(NewFD->getLocation(), diag::warn_return_value_udt) << NewFD << R;
8190     }
8191   }
8192   return Redeclaration;
8193 }
8194 
8195 void Sema::CheckMain(FunctionDecl* FD, const DeclSpec& DS) {
8196   // C++11 [basic.start.main]p3:
8197   //   A program that [...] declares main to be inline, static or
8198   //   constexpr is ill-formed.
8199   // C11 6.7.4p4:  In a hosted environment, no function specifier(s) shall
8200   //   appear in a declaration of main.
8201   // static main is not an error under C99, but we should warn about it.
8202   // We accept _Noreturn main as an extension.
8203   if (FD->getStorageClass() == SC_Static)
8204     Diag(DS.getStorageClassSpecLoc(), getLangOpts().CPlusPlus
8205          ? diag::err_static_main : diag::warn_static_main)
8206       << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc());
8207   if (FD->isInlineSpecified())
8208     Diag(DS.getInlineSpecLoc(), diag::err_inline_main)
8209       << FixItHint::CreateRemoval(DS.getInlineSpecLoc());
8210   if (DS.isNoreturnSpecified()) {
8211     SourceLocation NoreturnLoc = DS.getNoreturnSpecLoc();
8212     SourceRange NoreturnRange(NoreturnLoc, getLocForEndOfToken(NoreturnLoc));
8213     Diag(NoreturnLoc, diag::ext_noreturn_main);
8214     Diag(NoreturnLoc, diag::note_main_remove_noreturn)
8215       << FixItHint::CreateRemoval(NoreturnRange);
8216   }
8217   if (FD->isConstexpr()) {
8218     Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_main)
8219       << FixItHint::CreateRemoval(DS.getConstexprSpecLoc());
8220     FD->setConstexpr(false);
8221   }
8222 
8223   if (getLangOpts().OpenCL) {
8224     Diag(FD->getLocation(), diag::err_opencl_no_main)
8225         << FD->hasAttr<OpenCLKernelAttr>();
8226     FD->setInvalidDecl();
8227     return;
8228   }
8229 
8230   QualType T = FD->getType();
8231   assert(T->isFunctionType() && "function decl is not of function type");
8232   const FunctionType* FT = T->castAs<FunctionType>();
8233 
8234   if (getLangOpts().GNUMode && !getLangOpts().CPlusPlus) {
8235     // In C with GNU extensions we allow main() to have non-integer return
8236     // type, but we should warn about the extension, and we disable the
8237     // implicit-return-zero rule.
8238 
8239     // GCC in C mode accepts qualified 'int'.
8240     if (Context.hasSameUnqualifiedType(FT->getReturnType(), Context.IntTy))
8241       FD->setHasImplicitReturnZero(true);
8242     else {
8243       Diag(FD->getTypeSpecStartLoc(), diag::ext_main_returns_nonint);
8244       SourceRange RTRange = FD->getReturnTypeSourceRange();
8245       if (RTRange.isValid())
8246         Diag(RTRange.getBegin(), diag::note_main_change_return_type)
8247             << FixItHint::CreateReplacement(RTRange, "int");
8248     }
8249   } else {
8250     // In C and C++, main magically returns 0 if you fall off the end;
8251     // set the flag which tells us that.
8252     // This is C++ [basic.start.main]p5 and C99 5.1.2.2.3.
8253 
8254     // All the standards say that main() should return 'int'.
8255     if (Context.hasSameType(FT->getReturnType(), Context.IntTy))
8256       FD->setHasImplicitReturnZero(true);
8257     else {
8258       // Otherwise, this is just a flat-out error.
8259       SourceRange RTRange = FD->getReturnTypeSourceRange();
8260       Diag(FD->getTypeSpecStartLoc(), diag::err_main_returns_nonint)
8261           << (RTRange.isValid() ? FixItHint::CreateReplacement(RTRange, "int")
8262                                 : FixItHint());
8263       FD->setInvalidDecl(true);
8264     }
8265   }
8266 
8267   // Treat protoless main() as nullary.
8268   if (isa<FunctionNoProtoType>(FT)) return;
8269 
8270   const FunctionProtoType* FTP = cast<const FunctionProtoType>(FT);
8271   unsigned nparams = FTP->getNumParams();
8272   assert(FD->getNumParams() == nparams);
8273 
8274   bool HasExtraParameters = (nparams > 3);
8275 
8276   if (FTP->isVariadic()) {
8277     Diag(FD->getLocation(), diag::ext_variadic_main);
8278     // FIXME: if we had information about the location of the ellipsis, we
8279     // could add a FixIt hint to remove it as a parameter.
8280   }
8281 
8282   // Darwin passes an undocumented fourth argument of type char**.  If
8283   // other platforms start sprouting these, the logic below will start
8284   // getting shifty.
8285   if (nparams == 4 && Context.getTargetInfo().getTriple().isOSDarwin())
8286     HasExtraParameters = false;
8287 
8288   if (HasExtraParameters) {
8289     Diag(FD->getLocation(), diag::err_main_surplus_args) << nparams;
8290     FD->setInvalidDecl(true);
8291     nparams = 3;
8292   }
8293 
8294   // FIXME: a lot of the following diagnostics would be improved
8295   // if we had some location information about types.
8296 
8297   QualType CharPP =
8298     Context.getPointerType(Context.getPointerType(Context.CharTy));
8299   QualType Expected[] = { Context.IntTy, CharPP, CharPP, CharPP };
8300 
8301   for (unsigned i = 0; i < nparams; ++i) {
8302     QualType AT = FTP->getParamType(i);
8303 
8304     bool mismatch = true;
8305 
8306     if (Context.hasSameUnqualifiedType(AT, Expected[i]))
8307       mismatch = false;
8308     else if (Expected[i] == CharPP) {
8309       // As an extension, the following forms are okay:
8310       //   char const **
8311       //   char const * const *
8312       //   char * const *
8313 
8314       QualifierCollector qs;
8315       const PointerType* PT;
8316       if ((PT = qs.strip(AT)->getAs<PointerType>()) &&
8317           (PT = qs.strip(PT->getPointeeType())->getAs<PointerType>()) &&
8318           Context.hasSameType(QualType(qs.strip(PT->getPointeeType()), 0),
8319                               Context.CharTy)) {
8320         qs.removeConst();
8321         mismatch = !qs.empty();
8322       }
8323     }
8324 
8325     if (mismatch) {
8326       Diag(FD->getLocation(), diag::err_main_arg_wrong) << i << Expected[i];
8327       // TODO: suggest replacing given type with expected type
8328       FD->setInvalidDecl(true);
8329     }
8330   }
8331 
8332   if (nparams == 1 && !FD->isInvalidDecl()) {
8333     Diag(FD->getLocation(), diag::warn_main_one_arg);
8334   }
8335 
8336   if (!FD->isInvalidDecl() && FD->getDescribedFunctionTemplate()) {
8337     Diag(FD->getLocation(), diag::err_mainlike_template_decl) << FD;
8338     FD->setInvalidDecl();
8339   }
8340 }
8341 
8342 void Sema::CheckMSVCRTEntryPoint(FunctionDecl *FD) {
8343   QualType T = FD->getType();
8344   assert(T->isFunctionType() && "function decl is not of function type");
8345   const FunctionType *FT = T->castAs<FunctionType>();
8346 
8347   // Set an implicit return of 'zero' if the function can return some integral,
8348   // enumeration, pointer or nullptr type.
8349   if (FT->getReturnType()->isIntegralOrEnumerationType() ||
8350       FT->getReturnType()->isAnyPointerType() ||
8351       FT->getReturnType()->isNullPtrType())
8352     // DllMain is exempt because a return value of zero means it failed.
8353     if (FD->getName() != "DllMain")
8354       FD->setHasImplicitReturnZero(true);
8355 
8356   if (!FD->isInvalidDecl() && FD->getDescribedFunctionTemplate()) {
8357     Diag(FD->getLocation(), diag::err_mainlike_template_decl) << FD;
8358     FD->setInvalidDecl();
8359   }
8360 }
8361 
8362 bool Sema::CheckForConstantInitializer(Expr *Init, QualType DclT) {
8363   // FIXME: Need strict checking.  In C89, we need to check for
8364   // any assignment, increment, decrement, function-calls, or
8365   // commas outside of a sizeof.  In C99, it's the same list,
8366   // except that the aforementioned are allowed in unevaluated
8367   // expressions.  Everything else falls under the
8368   // "may accept other forms of constant expressions" exception.
8369   // (We never end up here for C++, so the constant expression
8370   // rules there don't matter.)
8371   const Expr *Culprit;
8372   if (Init->isConstantInitializer(Context, false, &Culprit))
8373     return false;
8374   Diag(Culprit->getExprLoc(), diag::err_init_element_not_constant)
8375     << Culprit->getSourceRange();
8376   return true;
8377 }
8378 
8379 namespace {
8380   // Visits an initialization expression to see if OrigDecl is evaluated in
8381   // its own initialization and throws a warning if it does.
8382   class SelfReferenceChecker
8383       : public EvaluatedExprVisitor<SelfReferenceChecker> {
8384     Sema &S;
8385     Decl *OrigDecl;
8386     bool isRecordType;
8387     bool isPODType;
8388     bool isReferenceType;
8389 
8390     bool isInitList;
8391     llvm::SmallVector<unsigned, 4> InitFieldIndex;
8392   public:
8393     typedef EvaluatedExprVisitor<SelfReferenceChecker> Inherited;
8394 
8395     SelfReferenceChecker(Sema &S, Decl *OrigDecl) : Inherited(S.Context),
8396                                                     S(S), OrigDecl(OrigDecl) {
8397       isPODType = false;
8398       isRecordType = false;
8399       isReferenceType = false;
8400       isInitList = false;
8401       if (ValueDecl *VD = dyn_cast<ValueDecl>(OrigDecl)) {
8402         isPODType = VD->getType().isPODType(S.Context);
8403         isRecordType = VD->getType()->isRecordType();
8404         isReferenceType = VD->getType()->isReferenceType();
8405       }
8406     }
8407 
8408     // For most expressions, just call the visitor.  For initializer lists,
8409     // track the index of the field being initialized since fields are
8410     // initialized in order allowing use of previously initialized fields.
8411     void CheckExpr(Expr *E) {
8412       InitListExpr *InitList = dyn_cast<InitListExpr>(E);
8413       if (!InitList) {
8414         Visit(E);
8415         return;
8416       }
8417 
8418       // Track and increment the index here.
8419       isInitList = true;
8420       InitFieldIndex.push_back(0);
8421       for (auto Child : InitList->children()) {
8422         CheckExpr(cast<Expr>(Child));
8423         ++InitFieldIndex.back();
8424       }
8425       InitFieldIndex.pop_back();
8426     }
8427 
8428     // Returns true if MemberExpr is checked and no futher checking is needed.
8429     // Returns false if additional checking is required.
8430     bool CheckInitListMemberExpr(MemberExpr *E, bool CheckReference) {
8431       llvm::SmallVector<FieldDecl*, 4> Fields;
8432       Expr *Base = E;
8433       bool ReferenceField = false;
8434 
8435       // Get the field memebers used.
8436       while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) {
8437         FieldDecl *FD = dyn_cast<FieldDecl>(ME->getMemberDecl());
8438         if (!FD)
8439           return false;
8440         Fields.push_back(FD);
8441         if (FD->getType()->isReferenceType())
8442           ReferenceField = true;
8443         Base = ME->getBase()->IgnoreParenImpCasts();
8444       }
8445 
8446       // Keep checking only if the base Decl is the same.
8447       DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base);
8448       if (!DRE || DRE->getDecl() != OrigDecl)
8449         return false;
8450 
8451       // A reference field can be bound to an unininitialized field.
8452       if (CheckReference && !ReferenceField)
8453         return true;
8454 
8455       // Convert FieldDecls to their index number.
8456       llvm::SmallVector<unsigned, 4> UsedFieldIndex;
8457       for (auto I = Fields.rbegin(), E = Fields.rend(); I != E; ++I) {
8458         UsedFieldIndex.push_back((*I)->getFieldIndex());
8459       }
8460 
8461       // See if a warning is needed by checking the first difference in index
8462       // numbers.  If field being used has index less than the field being
8463       // initialized, then the use is safe.
8464       for (auto UsedIter = UsedFieldIndex.begin(),
8465                 UsedEnd = UsedFieldIndex.end(),
8466                 OrigIter = InitFieldIndex.begin(),
8467                 OrigEnd = InitFieldIndex.end();
8468            UsedIter != UsedEnd && OrigIter != OrigEnd; ++UsedIter, ++OrigIter) {
8469         if (*UsedIter < *OrigIter)
8470           return true;
8471         if (*UsedIter > *OrigIter)
8472           break;
8473       }
8474 
8475       // TODO: Add a different warning which will print the field names.
8476       HandleDeclRefExpr(DRE);
8477       return true;
8478     }
8479 
8480     // For most expressions, the cast is directly above the DeclRefExpr.
8481     // For conditional operators, the cast can be outside the conditional
8482     // operator if both expressions are DeclRefExpr's.
8483     void HandleValue(Expr *E) {
8484       E = E->IgnoreParens();
8485       if (DeclRefExpr* DRE = dyn_cast<DeclRefExpr>(E)) {
8486         HandleDeclRefExpr(DRE);
8487         return;
8488       }
8489 
8490       if (ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) {
8491         Visit(CO->getCond());
8492         HandleValue(CO->getTrueExpr());
8493         HandleValue(CO->getFalseExpr());
8494         return;
8495       }
8496 
8497       if (BinaryConditionalOperator *BCO =
8498               dyn_cast<BinaryConditionalOperator>(E)) {
8499         Visit(BCO->getCond());
8500         HandleValue(BCO->getFalseExpr());
8501         return;
8502       }
8503 
8504       if (OpaqueValueExpr *OVE = dyn_cast<OpaqueValueExpr>(E)) {
8505         HandleValue(OVE->getSourceExpr());
8506         return;
8507       }
8508 
8509       if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) {
8510         if (BO->getOpcode() == BO_Comma) {
8511           Visit(BO->getLHS());
8512           HandleValue(BO->getRHS());
8513           return;
8514         }
8515       }
8516 
8517       if (isa<MemberExpr>(E)) {
8518         if (isInitList) {
8519           if (CheckInitListMemberExpr(cast<MemberExpr>(E),
8520                                       false /*CheckReference*/))
8521             return;
8522         }
8523 
8524         Expr *Base = E->IgnoreParenImpCasts();
8525         while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) {
8526           // Check for static member variables and don't warn on them.
8527           if (!isa<FieldDecl>(ME->getMemberDecl()))
8528             return;
8529           Base = ME->getBase()->IgnoreParenImpCasts();
8530         }
8531         if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base))
8532           HandleDeclRefExpr(DRE);
8533         return;
8534       }
8535 
8536       Visit(E);
8537     }
8538 
8539     // Reference types not handled in HandleValue are handled here since all
8540     // uses of references are bad, not just r-value uses.
8541     void VisitDeclRefExpr(DeclRefExpr *E) {
8542       if (isReferenceType)
8543         HandleDeclRefExpr(E);
8544     }
8545 
8546     void VisitImplicitCastExpr(ImplicitCastExpr *E) {
8547       if (E->getCastKind() == CK_LValueToRValue) {
8548         HandleValue(E->getSubExpr());
8549         return;
8550       }
8551 
8552       Inherited::VisitImplicitCastExpr(E);
8553     }
8554 
8555     void VisitMemberExpr(MemberExpr *E) {
8556       if (isInitList) {
8557         if (CheckInitListMemberExpr(E, true /*CheckReference*/))
8558           return;
8559       }
8560 
8561       // Don't warn on arrays since they can be treated as pointers.
8562       if (E->getType()->canDecayToPointerType()) return;
8563 
8564       // Warn when a non-static method call is followed by non-static member
8565       // field accesses, which is followed by a DeclRefExpr.
8566       CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(E->getMemberDecl());
8567       bool Warn = (MD && !MD->isStatic());
8568       Expr *Base = E->getBase()->IgnoreParenImpCasts();
8569       while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) {
8570         if (!isa<FieldDecl>(ME->getMemberDecl()))
8571           Warn = false;
8572         Base = ME->getBase()->IgnoreParenImpCasts();
8573       }
8574 
8575       if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base)) {
8576         if (Warn)
8577           HandleDeclRefExpr(DRE);
8578         return;
8579       }
8580 
8581       // The base of a MemberExpr is not a MemberExpr or a DeclRefExpr.
8582       // Visit that expression.
8583       Visit(Base);
8584     }
8585 
8586     void VisitCXXOperatorCallExpr(CXXOperatorCallExpr *E) {
8587       Expr *Callee = E->getCallee();
8588 
8589       if (isa<UnresolvedLookupExpr>(Callee))
8590         return Inherited::VisitCXXOperatorCallExpr(E);
8591 
8592       Visit(Callee);
8593       for (auto Arg: E->arguments())
8594         HandleValue(Arg->IgnoreParenImpCasts());
8595     }
8596 
8597     void VisitUnaryOperator(UnaryOperator *E) {
8598       // For POD record types, addresses of its own members are well-defined.
8599       if (E->getOpcode() == UO_AddrOf && isRecordType &&
8600           isa<MemberExpr>(E->getSubExpr()->IgnoreParens())) {
8601         if (!isPODType)
8602           HandleValue(E->getSubExpr());
8603         return;
8604       }
8605 
8606       if (E->isIncrementDecrementOp()) {
8607         HandleValue(E->getSubExpr());
8608         return;
8609       }
8610 
8611       Inherited::VisitUnaryOperator(E);
8612     }
8613 
8614     void VisitObjCMessageExpr(ObjCMessageExpr *E) { return; }
8615 
8616     void VisitCXXConstructExpr(CXXConstructExpr *E) {
8617       if (E->getConstructor()->isCopyConstructor()) {
8618         Expr *ArgExpr = E->getArg(0);
8619         if (InitListExpr *ILE = dyn_cast<InitListExpr>(ArgExpr))
8620           if (ILE->getNumInits() == 1)
8621             ArgExpr = ILE->getInit(0);
8622         if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(ArgExpr))
8623           if (ICE->getCastKind() == CK_NoOp)
8624             ArgExpr = ICE->getSubExpr();
8625         HandleValue(ArgExpr);
8626         return;
8627       }
8628       Inherited::VisitCXXConstructExpr(E);
8629     }
8630 
8631     void VisitCallExpr(CallExpr *E) {
8632       // Treat std::move as a use.
8633       if (E->getNumArgs() == 1) {
8634         if (FunctionDecl *FD = E->getDirectCallee()) {
8635           if (FD->isInStdNamespace() && FD->getIdentifier() &&
8636               FD->getIdentifier()->isStr("move")) {
8637             HandleValue(E->getArg(0));
8638             return;
8639           }
8640         }
8641       }
8642 
8643       Inherited::VisitCallExpr(E);
8644     }
8645 
8646     void VisitBinaryOperator(BinaryOperator *E) {
8647       if (E->isCompoundAssignmentOp()) {
8648         HandleValue(E->getLHS());
8649         Visit(E->getRHS());
8650         return;
8651       }
8652 
8653       Inherited::VisitBinaryOperator(E);
8654     }
8655 
8656     // A custom visitor for BinaryConditionalOperator is needed because the
8657     // regular visitor would check the condition and true expression separately
8658     // but both point to the same place giving duplicate diagnostics.
8659     void VisitBinaryConditionalOperator(BinaryConditionalOperator *E) {
8660       Visit(E->getCond());
8661       Visit(E->getFalseExpr());
8662     }
8663 
8664     void HandleDeclRefExpr(DeclRefExpr *DRE) {
8665       Decl* ReferenceDecl = DRE->getDecl();
8666       if (OrigDecl != ReferenceDecl) return;
8667       unsigned diag;
8668       if (isReferenceType) {
8669         diag = diag::warn_uninit_self_reference_in_reference_init;
8670       } else if (cast<VarDecl>(OrigDecl)->isStaticLocal()) {
8671         diag = diag::warn_static_self_reference_in_init;
8672       } else if (isa<TranslationUnitDecl>(OrigDecl->getDeclContext()) ||
8673                  isa<NamespaceDecl>(OrigDecl->getDeclContext()) ||
8674                  DRE->getDecl()->getType()->isRecordType()) {
8675         diag = diag::warn_uninit_self_reference_in_init;
8676       } else {
8677         // Local variables will be handled by the CFG analysis.
8678         return;
8679       }
8680 
8681       S.DiagRuntimeBehavior(DRE->getLocStart(), DRE,
8682                             S.PDiag(diag)
8683                               << DRE->getNameInfo().getName()
8684                               << OrigDecl->getLocation()
8685                               << DRE->getSourceRange());
8686     }
8687   };
8688 
8689   /// CheckSelfReference - Warns if OrigDecl is used in expression E.
8690   static void CheckSelfReference(Sema &S, Decl* OrigDecl, Expr *E,
8691                                  bool DirectInit) {
8692     // Parameters arguments are occassionially constructed with itself,
8693     // for instance, in recursive functions.  Skip them.
8694     if (isa<ParmVarDecl>(OrigDecl))
8695       return;
8696 
8697     E = E->IgnoreParens();
8698 
8699     // Skip checking T a = a where T is not a record or reference type.
8700     // Doing so is a way to silence uninitialized warnings.
8701     if (!DirectInit && !cast<VarDecl>(OrigDecl)->getType()->isRecordType())
8702       if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E))
8703         if (ICE->getCastKind() == CK_LValueToRValue)
8704           if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(ICE->getSubExpr()))
8705             if (DRE->getDecl() == OrigDecl)
8706               return;
8707 
8708     SelfReferenceChecker(S, OrigDecl).CheckExpr(E);
8709   }
8710 }
8711 
8712 /// AddInitializerToDecl - Adds the initializer Init to the
8713 /// declaration dcl. If DirectInit is true, this is C++ direct
8714 /// initialization rather than copy initialization.
8715 void Sema::AddInitializerToDecl(Decl *RealDecl, Expr *Init,
8716                                 bool DirectInit, bool TypeMayContainAuto) {
8717   // If there is no declaration, there was an error parsing it.  Just ignore
8718   // the initializer.
8719   if (!RealDecl || RealDecl->isInvalidDecl()) {
8720     CorrectDelayedTyposInExpr(Init, dyn_cast_or_null<VarDecl>(RealDecl));
8721     return;
8722   }
8723 
8724   if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(RealDecl)) {
8725     // With declarators parsed the way they are, the parser cannot
8726     // distinguish between a normal initializer and a pure-specifier.
8727     // Thus this grotesque test.
8728     IntegerLiteral *IL;
8729     if ((IL = dyn_cast<IntegerLiteral>(Init)) && IL->getValue() == 0 &&
8730         Context.getCanonicalType(IL->getType()) == Context.IntTy)
8731       CheckPureMethod(Method, Init->getSourceRange());
8732     else {
8733       Diag(Method->getLocation(), diag::err_member_function_initialization)
8734         << Method->getDeclName() << Init->getSourceRange();
8735       Method->setInvalidDecl();
8736     }
8737     return;
8738   }
8739 
8740   VarDecl *VDecl = dyn_cast<VarDecl>(RealDecl);
8741   if (!VDecl) {
8742     assert(!isa<FieldDecl>(RealDecl) && "field init shouldn't get here");
8743     Diag(RealDecl->getLocation(), diag::err_illegal_initializer);
8744     RealDecl->setInvalidDecl();
8745     return;
8746   }
8747   ParenListExpr *CXXDirectInit = dyn_cast<ParenListExpr>(Init);
8748 
8749   // C++11 [decl.spec.auto]p6. Deduce the type which 'auto' stands in for.
8750   if (TypeMayContainAuto && VDecl->getType()->isUndeducedType()) {
8751     // Attempt typo correction early so that the type of the init expression can
8752     // be deduced based on the chosen correction:if the original init contains a
8753     // TypoExpr.
8754     ExprResult Res = CorrectDelayedTyposInExpr(Init, VDecl);
8755     if (!Res.isUsable()) {
8756       RealDecl->setInvalidDecl();
8757       return;
8758     }
8759 
8760     if (Res.get() != Init) {
8761       Init = Res.get();
8762       if (CXXDirectInit)
8763         CXXDirectInit = dyn_cast<ParenListExpr>(Init);
8764     }
8765 
8766     Expr *DeduceInit = Init;
8767     // Initializer could be a C++ direct-initializer. Deduction only works if it
8768     // contains exactly one expression.
8769     if (CXXDirectInit) {
8770       if (CXXDirectInit->getNumExprs() == 0) {
8771         // It isn't possible to write this directly, but it is possible to
8772         // end up in this situation with "auto x(some_pack...);"
8773         Diag(CXXDirectInit->getLocStart(),
8774              VDecl->isInitCapture() ? diag::err_init_capture_no_expression
8775                                     : diag::err_auto_var_init_no_expression)
8776           << VDecl->getDeclName() << VDecl->getType()
8777           << VDecl->getSourceRange();
8778         RealDecl->setInvalidDecl();
8779         return;
8780       } else if (CXXDirectInit->getNumExprs() > 1) {
8781         Diag(CXXDirectInit->getExpr(1)->getLocStart(),
8782              VDecl->isInitCapture()
8783                  ? diag::err_init_capture_multiple_expressions
8784                  : diag::err_auto_var_init_multiple_expressions)
8785           << VDecl->getDeclName() << VDecl->getType()
8786           << VDecl->getSourceRange();
8787         RealDecl->setInvalidDecl();
8788         return;
8789       } else {
8790         DeduceInit = CXXDirectInit->getExpr(0);
8791         if (isa<InitListExpr>(DeduceInit))
8792           Diag(CXXDirectInit->getLocStart(),
8793                diag::err_auto_var_init_paren_braces)
8794             << VDecl->getDeclName() << VDecl->getType()
8795             << VDecl->getSourceRange();
8796       }
8797     }
8798 
8799     // Expressions default to 'id' when we're in a debugger.
8800     bool DefaultedToAuto = false;
8801     if (getLangOpts().DebuggerCastResultToId &&
8802         Init->getType() == Context.UnknownAnyTy) {
8803       ExprResult Result = forceUnknownAnyToType(Init, Context.getObjCIdType());
8804       if (Result.isInvalid()) {
8805         VDecl->setInvalidDecl();
8806         return;
8807       }
8808       Init = Result.get();
8809       DefaultedToAuto = true;
8810     }
8811 
8812     QualType DeducedType;
8813     if (DeduceAutoType(VDecl->getTypeSourceInfo(), DeduceInit, DeducedType) ==
8814             DAR_Failed)
8815       DiagnoseAutoDeductionFailure(VDecl, DeduceInit);
8816     if (DeducedType.isNull()) {
8817       RealDecl->setInvalidDecl();
8818       return;
8819     }
8820     VDecl->setType(DeducedType);
8821     assert(VDecl->isLinkageValid());
8822 
8823     // In ARC, infer lifetime.
8824     if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(VDecl))
8825       VDecl->setInvalidDecl();
8826 
8827     // Warn if we deduced 'id'. 'auto' usually implies type-safety, but using
8828     // 'id' instead of a specific object type prevents most of our usual checks.
8829     // We only want to warn outside of template instantiations, though:
8830     // inside a template, the 'id' could have come from a parameter.
8831     if (ActiveTemplateInstantiations.empty() && !DefaultedToAuto &&
8832         DeducedType->isObjCIdType()) {
8833       SourceLocation Loc =
8834           VDecl->getTypeSourceInfo()->getTypeLoc().getBeginLoc();
8835       Diag(Loc, diag::warn_auto_var_is_id)
8836         << VDecl->getDeclName() << DeduceInit->getSourceRange();
8837     }
8838 
8839     // If this is a redeclaration, check that the type we just deduced matches
8840     // the previously declared type.
8841     if (VarDecl *Old = VDecl->getPreviousDecl()) {
8842       // We never need to merge the type, because we cannot form an incomplete
8843       // array of auto, nor deduce such a type.
8844       MergeVarDeclTypes(VDecl, Old, /*MergeTypeWithPrevious*/false);
8845     }
8846 
8847     // Check the deduced type is valid for a variable declaration.
8848     CheckVariableDeclarationType(VDecl);
8849     if (VDecl->isInvalidDecl())
8850       return;
8851 
8852     // If all looks well, warn if this is a case that will change meaning when
8853     // we implement N3922.
8854     if (DirectInit && !CXXDirectInit && isa<InitListExpr>(Init)) {
8855       Diag(Init->getLocStart(),
8856            diag::warn_auto_var_direct_list_init)
8857         << FixItHint::CreateInsertion(Init->getLocStart(), "=");
8858     }
8859   }
8860 
8861   // dllimport cannot be used on variable definitions.
8862   if (VDecl->hasAttr<DLLImportAttr>() && !VDecl->isStaticDataMember()) {
8863     Diag(VDecl->getLocation(), diag::err_attribute_dllimport_data_definition);
8864     VDecl->setInvalidDecl();
8865     return;
8866   }
8867 
8868   if (VDecl->isLocalVarDecl() && VDecl->hasExternalStorage()) {
8869     // C99 6.7.8p5. C++ has no such restriction, but that is a defect.
8870     Diag(VDecl->getLocation(), diag::err_block_extern_cant_init);
8871     VDecl->setInvalidDecl();
8872     return;
8873   }
8874 
8875   if (!VDecl->getType()->isDependentType()) {
8876     // A definition must end up with a complete type, which means it must be
8877     // complete with the restriction that an array type might be completed by
8878     // the initializer; note that later code assumes this restriction.
8879     QualType BaseDeclType = VDecl->getType();
8880     if (const ArrayType *Array = Context.getAsIncompleteArrayType(BaseDeclType))
8881       BaseDeclType = Array->getElementType();
8882     if (RequireCompleteType(VDecl->getLocation(), BaseDeclType,
8883                             diag::err_typecheck_decl_incomplete_type)) {
8884       RealDecl->setInvalidDecl();
8885       return;
8886     }
8887 
8888     // The variable can not have an abstract class type.
8889     if (RequireNonAbstractType(VDecl->getLocation(), VDecl->getType(),
8890                                diag::err_abstract_type_in_decl,
8891                                AbstractVariableType))
8892       VDecl->setInvalidDecl();
8893   }
8894 
8895   VarDecl *Def;
8896   if ((Def = VDecl->getDefinition()) && Def != VDecl) {
8897     NamedDecl *Hidden = nullptr;
8898     if (!hasVisibleDefinition(Def, &Hidden) &&
8899         (VDecl->getDescribedVarTemplate() ||
8900          VDecl->getNumTemplateParameterLists() ||
8901          VDecl->getDeclContext()->isDependentContext())) {
8902       // The previous definition is hidden, and multiple definitions are
8903       // permitted (in separate TUs). Form another definition of it.
8904     } else {
8905       Diag(VDecl->getLocation(), diag::err_redefinition)
8906         << VDecl->getDeclName();
8907       Diag(Def->getLocation(), diag::note_previous_definition);
8908       VDecl->setInvalidDecl();
8909       return;
8910     }
8911   }
8912 
8913   if (getLangOpts().CPlusPlus) {
8914     // C++ [class.static.data]p4
8915     //   If a static data member is of const integral or const
8916     //   enumeration type, its declaration in the class definition can
8917     //   specify a constant-initializer which shall be an integral
8918     //   constant expression (5.19). In that case, the member can appear
8919     //   in integral constant expressions. The member shall still be
8920     //   defined in a namespace scope if it is used in the program and the
8921     //   namespace scope definition shall not contain an initializer.
8922     //
8923     // We already performed a redefinition check above, but for static
8924     // data members we also need to check whether there was an in-class
8925     // declaration with an initializer.
8926     if (VDecl->isStaticDataMember() && VDecl->getCanonicalDecl()->hasInit()) {
8927       Diag(Init->getExprLoc(), diag::err_static_data_member_reinitialization)
8928           << VDecl->getDeclName();
8929       Diag(VDecl->getCanonicalDecl()->getInit()->getExprLoc(),
8930            diag::note_previous_initializer)
8931           << 0;
8932       return;
8933     }
8934 
8935     if (VDecl->hasLocalStorage())
8936       getCurFunction()->setHasBranchProtectedScope();
8937 
8938     if (DiagnoseUnexpandedParameterPack(Init, UPPC_Initializer)) {
8939       VDecl->setInvalidDecl();
8940       return;
8941     }
8942   }
8943 
8944   // OpenCL 1.1 6.5.2: "Variables allocated in the __local address space inside
8945   // a kernel function cannot be initialized."
8946   if (VDecl->getStorageClass() == SC_OpenCLWorkGroupLocal) {
8947     Diag(VDecl->getLocation(), diag::err_local_cant_init);
8948     VDecl->setInvalidDecl();
8949     return;
8950   }
8951 
8952   // Get the decls type and save a reference for later, since
8953   // CheckInitializerTypes may change it.
8954   QualType DclT = VDecl->getType(), SavT = DclT;
8955 
8956   // Expressions default to 'id' when we're in a debugger
8957   // and we are assigning it to a variable of Objective-C pointer type.
8958   if (getLangOpts().DebuggerCastResultToId && DclT->isObjCObjectPointerType() &&
8959       Init->getType() == Context.UnknownAnyTy) {
8960     ExprResult Result = forceUnknownAnyToType(Init, Context.getObjCIdType());
8961     if (Result.isInvalid()) {
8962       VDecl->setInvalidDecl();
8963       return;
8964     }
8965     Init = Result.get();
8966   }
8967 
8968   // Perform the initialization.
8969   if (!VDecl->isInvalidDecl()) {
8970     InitializedEntity Entity = InitializedEntity::InitializeVariable(VDecl);
8971     InitializationKind Kind
8972       = DirectInit ?
8973           CXXDirectInit ? InitializationKind::CreateDirect(VDecl->getLocation(),
8974                                                            Init->getLocStart(),
8975                                                            Init->getLocEnd())
8976                         : InitializationKind::CreateDirectList(
8977                                                           VDecl->getLocation())
8978                    : InitializationKind::CreateCopy(VDecl->getLocation(),
8979                                                     Init->getLocStart());
8980 
8981     MultiExprArg Args = Init;
8982     if (CXXDirectInit)
8983       Args = MultiExprArg(CXXDirectInit->getExprs(),
8984                           CXXDirectInit->getNumExprs());
8985 
8986     // Try to correct any TypoExprs in the initialization arguments.
8987     for (size_t Idx = 0; Idx < Args.size(); ++Idx) {
8988       ExprResult Res = CorrectDelayedTyposInExpr(
8989           Args[Idx], VDecl, [this, Entity, Kind](Expr *E) {
8990             InitializationSequence Init(*this, Entity, Kind, MultiExprArg(E));
8991             return Init.Failed() ? ExprError() : E;
8992           });
8993       if (Res.isInvalid()) {
8994         VDecl->setInvalidDecl();
8995       } else if (Res.get() != Args[Idx]) {
8996         Args[Idx] = Res.get();
8997       }
8998     }
8999     if (VDecl->isInvalidDecl())
9000       return;
9001 
9002     InitializationSequence InitSeq(*this, Entity, Kind, Args);
9003     ExprResult Result = InitSeq.Perform(*this, Entity, Kind, Args, &DclT);
9004     if (Result.isInvalid()) {
9005       VDecl->setInvalidDecl();
9006       return;
9007     }
9008 
9009     Init = Result.getAs<Expr>();
9010   }
9011 
9012   // Check for self-references within variable initializers.
9013   // Variables declared within a function/method body (except for references)
9014   // are handled by a dataflow analysis.
9015   if (!VDecl->hasLocalStorage() || VDecl->getType()->isRecordType() ||
9016       VDecl->getType()->isReferenceType()) {
9017     CheckSelfReference(*this, RealDecl, Init, DirectInit);
9018   }
9019 
9020   // If the type changed, it means we had an incomplete type that was
9021   // completed by the initializer. For example:
9022   //   int ary[] = { 1, 3, 5 };
9023   // "ary" transitions from an IncompleteArrayType to a ConstantArrayType.
9024   if (!VDecl->isInvalidDecl() && (DclT != SavT))
9025     VDecl->setType(DclT);
9026 
9027   if (!VDecl->isInvalidDecl()) {
9028     checkUnsafeAssigns(VDecl->getLocation(), VDecl->getType(), Init);
9029 
9030     if (VDecl->hasAttr<BlocksAttr>())
9031       checkRetainCycles(VDecl, Init);
9032 
9033     // It is safe to assign a weak reference into a strong variable.
9034     // Although this code can still have problems:
9035     //   id x = self.weakProp;
9036     //   id y = self.weakProp;
9037     // we do not warn to warn spuriously when 'x' and 'y' are on separate
9038     // paths through the function. This should be revisited if
9039     // -Wrepeated-use-of-weak is made flow-sensitive.
9040     if (VDecl->getType().getObjCLifetime() == Qualifiers::OCL_Strong &&
9041         !Diags.isIgnored(diag::warn_arc_repeated_use_of_weak,
9042                          Init->getLocStart()))
9043         getCurFunction()->markSafeWeakUse(Init);
9044   }
9045 
9046   // The initialization is usually a full-expression.
9047   //
9048   // FIXME: If this is a braced initialization of an aggregate, it is not
9049   // an expression, and each individual field initializer is a separate
9050   // full-expression. For instance, in:
9051   //
9052   //   struct Temp { ~Temp(); };
9053   //   struct S { S(Temp); };
9054   //   struct T { S a, b; } t = { Temp(), Temp() }
9055   //
9056   // we should destroy the first Temp before constructing the second.
9057   ExprResult Result = ActOnFinishFullExpr(Init, VDecl->getLocation(),
9058                                           false,
9059                                           VDecl->isConstexpr());
9060   if (Result.isInvalid()) {
9061     VDecl->setInvalidDecl();
9062     return;
9063   }
9064   Init = Result.get();
9065 
9066   // Attach the initializer to the decl.
9067   VDecl->setInit(Init);
9068 
9069   if (VDecl->isLocalVarDecl()) {
9070     // C99 6.7.8p4: All the expressions in an initializer for an object that has
9071     // static storage duration shall be constant expressions or string literals.
9072     // C++ does not have this restriction.
9073     if (!getLangOpts().CPlusPlus && !VDecl->isInvalidDecl()) {
9074       const Expr *Culprit;
9075       if (VDecl->getStorageClass() == SC_Static)
9076         CheckForConstantInitializer(Init, DclT);
9077       // C89 is stricter than C99 for non-static aggregate types.
9078       // C89 6.5.7p3: All the expressions [...] in an initializer list
9079       // for an object that has aggregate or union type shall be
9080       // constant expressions.
9081       else if (!getLangOpts().C99 && VDecl->getType()->isAggregateType() &&
9082                isa<InitListExpr>(Init) &&
9083                !Init->isConstantInitializer(Context, false, &Culprit))
9084         Diag(Culprit->getExprLoc(),
9085              diag::ext_aggregate_init_not_constant)
9086           << Culprit->getSourceRange();
9087     }
9088   } else if (VDecl->isStaticDataMember() &&
9089              VDecl->getLexicalDeclContext()->isRecord()) {
9090     // This is an in-class initialization for a static data member, e.g.,
9091     //
9092     // struct S {
9093     //   static const int value = 17;
9094     // };
9095 
9096     // C++ [class.mem]p4:
9097     //   A member-declarator can contain a constant-initializer only
9098     //   if it declares a static member (9.4) of const integral or
9099     //   const enumeration type, see 9.4.2.
9100     //
9101     // C++11 [class.static.data]p3:
9102     //   If a non-volatile const static data member is of integral or
9103     //   enumeration type, its declaration in the class definition can
9104     //   specify a brace-or-equal-initializer in which every initalizer-clause
9105     //   that is an assignment-expression is a constant expression. A static
9106     //   data member of literal type can be declared in the class definition
9107     //   with the constexpr specifier; if so, its declaration shall specify a
9108     //   brace-or-equal-initializer in which every initializer-clause that is
9109     //   an assignment-expression is a constant expression.
9110 
9111     // Do nothing on dependent types.
9112     if (DclT->isDependentType()) {
9113 
9114     // Allow any 'static constexpr' members, whether or not they are of literal
9115     // type. We separately check that every constexpr variable is of literal
9116     // type.
9117     } else if (VDecl->isConstexpr()) {
9118 
9119     // Require constness.
9120     } else if (!DclT.isConstQualified()) {
9121       Diag(VDecl->getLocation(), diag::err_in_class_initializer_non_const)
9122         << Init->getSourceRange();
9123       VDecl->setInvalidDecl();
9124 
9125     // We allow integer constant expressions in all cases.
9126     } else if (DclT->isIntegralOrEnumerationType()) {
9127       // Check whether the expression is a constant expression.
9128       SourceLocation Loc;
9129       if (getLangOpts().CPlusPlus11 && DclT.isVolatileQualified())
9130         // In C++11, a non-constexpr const static data member with an
9131         // in-class initializer cannot be volatile.
9132         Diag(VDecl->getLocation(), diag::err_in_class_initializer_volatile);
9133       else if (Init->isValueDependent())
9134         ; // Nothing to check.
9135       else if (Init->isIntegerConstantExpr(Context, &Loc))
9136         ; // Ok, it's an ICE!
9137       else if (Init->isEvaluatable(Context)) {
9138         // If we can constant fold the initializer through heroics, accept it,
9139         // but report this as a use of an extension for -pedantic.
9140         Diag(Loc, diag::ext_in_class_initializer_non_constant)
9141           << Init->getSourceRange();
9142       } else {
9143         // Otherwise, this is some crazy unknown case.  Report the issue at the
9144         // location provided by the isIntegerConstantExpr failed check.
9145         Diag(Loc, diag::err_in_class_initializer_non_constant)
9146           << Init->getSourceRange();
9147         VDecl->setInvalidDecl();
9148       }
9149 
9150     // We allow foldable floating-point constants as an extension.
9151     } else if (DclT->isFloatingType()) { // also permits complex, which is ok
9152       // In C++98, this is a GNU extension. In C++11, it is not, but we support
9153       // it anyway and provide a fixit to add the 'constexpr'.
9154       if (getLangOpts().CPlusPlus11) {
9155         Diag(VDecl->getLocation(),
9156              diag::ext_in_class_initializer_float_type_cxx11)
9157             << DclT << Init->getSourceRange();
9158         Diag(VDecl->getLocStart(),
9159              diag::note_in_class_initializer_float_type_cxx11)
9160             << FixItHint::CreateInsertion(VDecl->getLocStart(), "constexpr ");
9161       } else {
9162         Diag(VDecl->getLocation(), diag::ext_in_class_initializer_float_type)
9163           << DclT << Init->getSourceRange();
9164 
9165         if (!Init->isValueDependent() && !Init->isEvaluatable(Context)) {
9166           Diag(Init->getExprLoc(), diag::err_in_class_initializer_non_constant)
9167             << Init->getSourceRange();
9168           VDecl->setInvalidDecl();
9169         }
9170       }
9171 
9172     // Suggest adding 'constexpr' in C++11 for literal types.
9173     } else if (getLangOpts().CPlusPlus11 && DclT->isLiteralType(Context)) {
9174       Diag(VDecl->getLocation(), diag::err_in_class_initializer_literal_type)
9175         << DclT << Init->getSourceRange()
9176         << FixItHint::CreateInsertion(VDecl->getLocStart(), "constexpr ");
9177       VDecl->setConstexpr(true);
9178 
9179     } else {
9180       Diag(VDecl->getLocation(), diag::err_in_class_initializer_bad_type)
9181         << DclT << Init->getSourceRange();
9182       VDecl->setInvalidDecl();
9183     }
9184   } else if (VDecl->isFileVarDecl()) {
9185     if (VDecl->getStorageClass() == SC_Extern &&
9186         (!getLangOpts().CPlusPlus ||
9187          !(Context.getBaseElementType(VDecl->getType()).isConstQualified() ||
9188            VDecl->isExternC())) &&
9189         !isTemplateInstantiation(VDecl->getTemplateSpecializationKind()))
9190       Diag(VDecl->getLocation(), diag::warn_extern_init);
9191 
9192     // C99 6.7.8p4. All file scoped initializers need to be constant.
9193     if (!getLangOpts().CPlusPlus && !VDecl->isInvalidDecl())
9194       CheckForConstantInitializer(Init, DclT);
9195   }
9196 
9197   // We will represent direct-initialization similarly to copy-initialization:
9198   //    int x(1);  -as-> int x = 1;
9199   //    ClassType x(a,b,c); -as-> ClassType x = ClassType(a,b,c);
9200   //
9201   // Clients that want to distinguish between the two forms, can check for
9202   // direct initializer using VarDecl::getInitStyle().
9203   // A major benefit is that clients that don't particularly care about which
9204   // exactly form was it (like the CodeGen) can handle both cases without
9205   // special case code.
9206 
9207   // C++ 8.5p11:
9208   // The form of initialization (using parentheses or '=') is generally
9209   // insignificant, but does matter when the entity being initialized has a
9210   // class type.
9211   if (CXXDirectInit) {
9212     assert(DirectInit && "Call-style initializer must be direct init.");
9213     VDecl->setInitStyle(VarDecl::CallInit);
9214   } else if (DirectInit) {
9215     // This must be list-initialization. No other way is direct-initialization.
9216     VDecl->setInitStyle(VarDecl::ListInit);
9217   }
9218 
9219   CheckCompleteVariableDeclaration(VDecl);
9220 }
9221 
9222 /// ActOnInitializerError - Given that there was an error parsing an
9223 /// initializer for the given declaration, try to return to some form
9224 /// of sanity.
9225 void Sema::ActOnInitializerError(Decl *D) {
9226   // Our main concern here is re-establishing invariants like "a
9227   // variable's type is either dependent or complete".
9228   if (!D || D->isInvalidDecl()) return;
9229 
9230   VarDecl *VD = dyn_cast<VarDecl>(D);
9231   if (!VD) return;
9232 
9233   // Auto types are meaningless if we can't make sense of the initializer.
9234   if (ParsingInitForAutoVars.count(D)) {
9235     D->setInvalidDecl();
9236     return;
9237   }
9238 
9239   QualType Ty = VD->getType();
9240   if (Ty->isDependentType()) return;
9241 
9242   // Require a complete type.
9243   if (RequireCompleteType(VD->getLocation(),
9244                           Context.getBaseElementType(Ty),
9245                           diag::err_typecheck_decl_incomplete_type)) {
9246     VD->setInvalidDecl();
9247     return;
9248   }
9249 
9250   // Require a non-abstract type.
9251   if (RequireNonAbstractType(VD->getLocation(), Ty,
9252                              diag::err_abstract_type_in_decl,
9253                              AbstractVariableType)) {
9254     VD->setInvalidDecl();
9255     return;
9256   }
9257 
9258   // Don't bother complaining about constructors or destructors,
9259   // though.
9260 }
9261 
9262 void Sema::ActOnUninitializedDecl(Decl *RealDecl,
9263                                   bool TypeMayContainAuto) {
9264   // If there is no declaration, there was an error parsing it. Just ignore it.
9265   if (!RealDecl)
9266     return;
9267 
9268   if (VarDecl *Var = dyn_cast<VarDecl>(RealDecl)) {
9269     QualType Type = Var->getType();
9270 
9271     // C++11 [dcl.spec.auto]p3
9272     if (TypeMayContainAuto && Type->getContainedAutoType()) {
9273       Diag(Var->getLocation(), diag::err_auto_var_requires_init)
9274         << Var->getDeclName() << Type;
9275       Var->setInvalidDecl();
9276       return;
9277     }
9278 
9279     // C++11 [class.static.data]p3: A static data member can be declared with
9280     // the constexpr specifier; if so, its declaration shall specify
9281     // a brace-or-equal-initializer.
9282     // C++11 [dcl.constexpr]p1: The constexpr specifier shall be applied only to
9283     // the definition of a variable [...] or the declaration of a static data
9284     // member.
9285     if (Var->isConstexpr() && !Var->isThisDeclarationADefinition()) {
9286       if (Var->isStaticDataMember())
9287         Diag(Var->getLocation(),
9288              diag::err_constexpr_static_mem_var_requires_init)
9289           << Var->getDeclName();
9290       else
9291         Diag(Var->getLocation(), diag::err_invalid_constexpr_var_decl);
9292       Var->setInvalidDecl();
9293       return;
9294     }
9295 
9296     // OpenCL v1.1 s6.5.3: variables declared in the constant address space must
9297     // be initialized.
9298     if (!Var->isInvalidDecl() &&
9299         Var->getType().getAddressSpace() == LangAS::opencl_constant &&
9300         Var->getStorageClass() != SC_Extern && !Var->getInit()) {
9301       Diag(Var->getLocation(), diag::err_opencl_constant_no_init);
9302       Var->setInvalidDecl();
9303       return;
9304     }
9305 
9306     switch (Var->isThisDeclarationADefinition()) {
9307     case VarDecl::Definition:
9308       if (!Var->isStaticDataMember() || !Var->getAnyInitializer())
9309         break;
9310 
9311       // We have an out-of-line definition of a static data member
9312       // that has an in-class initializer, so we type-check this like
9313       // a declaration.
9314       //
9315       // Fall through
9316 
9317     case VarDecl::DeclarationOnly:
9318       // It's only a declaration.
9319 
9320       // Block scope. C99 6.7p7: If an identifier for an object is
9321       // declared with no linkage (C99 6.2.2p6), the type for the
9322       // object shall be complete.
9323       if (!Type->isDependentType() && Var->isLocalVarDecl() &&
9324           !Var->hasLinkage() && !Var->isInvalidDecl() &&
9325           RequireCompleteType(Var->getLocation(), Type,
9326                               diag::err_typecheck_decl_incomplete_type))
9327         Var->setInvalidDecl();
9328 
9329       // Make sure that the type is not abstract.
9330       if (!Type->isDependentType() && !Var->isInvalidDecl() &&
9331           RequireNonAbstractType(Var->getLocation(), Type,
9332                                  diag::err_abstract_type_in_decl,
9333                                  AbstractVariableType))
9334         Var->setInvalidDecl();
9335       if (!Type->isDependentType() && !Var->isInvalidDecl() &&
9336           Var->getStorageClass() == SC_PrivateExtern) {
9337         Diag(Var->getLocation(), diag::warn_private_extern);
9338         Diag(Var->getLocation(), diag::note_private_extern);
9339       }
9340 
9341       return;
9342 
9343     case VarDecl::TentativeDefinition:
9344       // File scope. C99 6.9.2p2: A declaration of an identifier for an
9345       // object that has file scope without an initializer, and without a
9346       // storage-class specifier or with the storage-class specifier "static",
9347       // constitutes a tentative definition. Note: A tentative definition with
9348       // external linkage is valid (C99 6.2.2p5).
9349       if (!Var->isInvalidDecl()) {
9350         if (const IncompleteArrayType *ArrayT
9351                                     = Context.getAsIncompleteArrayType(Type)) {
9352           if (RequireCompleteType(Var->getLocation(),
9353                                   ArrayT->getElementType(),
9354                                   diag::err_illegal_decl_array_incomplete_type))
9355             Var->setInvalidDecl();
9356         } else if (Var->getStorageClass() == SC_Static) {
9357           // C99 6.9.2p3: If the declaration of an identifier for an object is
9358           // a tentative definition and has internal linkage (C99 6.2.2p3), the
9359           // declared type shall not be an incomplete type.
9360           // NOTE: code such as the following
9361           //     static struct s;
9362           //     struct s { int a; };
9363           // is accepted by gcc. Hence here we issue a warning instead of
9364           // an error and we do not invalidate the static declaration.
9365           // NOTE: to avoid multiple warnings, only check the first declaration.
9366           if (Var->isFirstDecl())
9367             RequireCompleteType(Var->getLocation(), Type,
9368                                 diag::ext_typecheck_decl_incomplete_type);
9369         }
9370       }
9371 
9372       // Record the tentative definition; we're done.
9373       if (!Var->isInvalidDecl())
9374         TentativeDefinitions.push_back(Var);
9375       return;
9376     }
9377 
9378     // Provide a specific diagnostic for uninitialized variable
9379     // definitions with incomplete array type.
9380     if (Type->isIncompleteArrayType()) {
9381       Diag(Var->getLocation(),
9382            diag::err_typecheck_incomplete_array_needs_initializer);
9383       Var->setInvalidDecl();
9384       return;
9385     }
9386 
9387     // Provide a specific diagnostic for uninitialized variable
9388     // definitions with reference type.
9389     if (Type->isReferenceType()) {
9390       Diag(Var->getLocation(), diag::err_reference_var_requires_init)
9391         << Var->getDeclName()
9392         << SourceRange(Var->getLocation(), Var->getLocation());
9393       Var->setInvalidDecl();
9394       return;
9395     }
9396 
9397     // Do not attempt to type-check the default initializer for a
9398     // variable with dependent type.
9399     if (Type->isDependentType())
9400       return;
9401 
9402     if (Var->isInvalidDecl())
9403       return;
9404 
9405     if (!Var->hasAttr<AliasAttr>()) {
9406       if (RequireCompleteType(Var->getLocation(),
9407                               Context.getBaseElementType(Type),
9408                               diag::err_typecheck_decl_incomplete_type)) {
9409         Var->setInvalidDecl();
9410         return;
9411       }
9412     } else {
9413       return;
9414     }
9415 
9416     // The variable can not have an abstract class type.
9417     if (RequireNonAbstractType(Var->getLocation(), Type,
9418                                diag::err_abstract_type_in_decl,
9419                                AbstractVariableType)) {
9420       Var->setInvalidDecl();
9421       return;
9422     }
9423 
9424     // Check for jumps past the implicit initializer.  C++0x
9425     // clarifies that this applies to a "variable with automatic
9426     // storage duration", not a "local variable".
9427     // C++11 [stmt.dcl]p3
9428     //   A program that jumps from a point where a variable with automatic
9429     //   storage duration is not in scope to a point where it is in scope is
9430     //   ill-formed unless the variable has scalar type, class type with a
9431     //   trivial default constructor and a trivial destructor, a cv-qualified
9432     //   version of one of these types, or an array of one of the preceding
9433     //   types and is declared without an initializer.
9434     if (getLangOpts().CPlusPlus && Var->hasLocalStorage()) {
9435       if (const RecordType *Record
9436             = Context.getBaseElementType(Type)->getAs<RecordType>()) {
9437         CXXRecordDecl *CXXRecord = cast<CXXRecordDecl>(Record->getDecl());
9438         // Mark the function for further checking even if the looser rules of
9439         // C++11 do not require such checks, so that we can diagnose
9440         // incompatibilities with C++98.
9441         if (!CXXRecord->isPOD())
9442           getCurFunction()->setHasBranchProtectedScope();
9443       }
9444     }
9445 
9446     // C++03 [dcl.init]p9:
9447     //   If no initializer is specified for an object, and the
9448     //   object is of (possibly cv-qualified) non-POD class type (or
9449     //   array thereof), the object shall be default-initialized; if
9450     //   the object is of const-qualified type, the underlying class
9451     //   type shall have a user-declared default
9452     //   constructor. Otherwise, if no initializer is specified for
9453     //   a non- static object, the object and its subobjects, if
9454     //   any, have an indeterminate initial value); if the object
9455     //   or any of its subobjects are of const-qualified type, the
9456     //   program is ill-formed.
9457     // C++0x [dcl.init]p11:
9458     //   If no initializer is specified for an object, the object is
9459     //   default-initialized; [...].
9460     InitializedEntity Entity = InitializedEntity::InitializeVariable(Var);
9461     InitializationKind Kind
9462       = InitializationKind::CreateDefault(Var->getLocation());
9463 
9464     InitializationSequence InitSeq(*this, Entity, Kind, None);
9465     ExprResult Init = InitSeq.Perform(*this, Entity, Kind, None);
9466     if (Init.isInvalid())
9467       Var->setInvalidDecl();
9468     else if (Init.get()) {
9469       Var->setInit(MaybeCreateExprWithCleanups(Init.get()));
9470       // This is important for template substitution.
9471       Var->setInitStyle(VarDecl::CallInit);
9472     }
9473 
9474     CheckCompleteVariableDeclaration(Var);
9475   }
9476 }
9477 
9478 void Sema::ActOnCXXForRangeDecl(Decl *D) {
9479   VarDecl *VD = dyn_cast<VarDecl>(D);
9480   if (!VD) {
9481     Diag(D->getLocation(), diag::err_for_range_decl_must_be_var);
9482     D->setInvalidDecl();
9483     return;
9484   }
9485 
9486   VD->setCXXForRangeDecl(true);
9487 
9488   // for-range-declaration cannot be given a storage class specifier.
9489   int Error = -1;
9490   switch (VD->getStorageClass()) {
9491   case SC_None:
9492     break;
9493   case SC_Extern:
9494     Error = 0;
9495     break;
9496   case SC_Static:
9497     Error = 1;
9498     break;
9499   case SC_PrivateExtern:
9500     Error = 2;
9501     break;
9502   case SC_Auto:
9503     Error = 3;
9504     break;
9505   case SC_Register:
9506     Error = 4;
9507     break;
9508   case SC_OpenCLWorkGroupLocal:
9509     llvm_unreachable("Unexpected storage class");
9510   }
9511   if (Error != -1) {
9512     Diag(VD->getOuterLocStart(), diag::err_for_range_storage_class)
9513       << VD->getDeclName() << Error;
9514     D->setInvalidDecl();
9515   }
9516 }
9517 
9518 StmtResult
9519 Sema::ActOnCXXForRangeIdentifier(Scope *S, SourceLocation IdentLoc,
9520                                  IdentifierInfo *Ident,
9521                                  ParsedAttributes &Attrs,
9522                                  SourceLocation AttrEnd) {
9523   // C++1y [stmt.iter]p1:
9524   //   A range-based for statement of the form
9525   //      for ( for-range-identifier : for-range-initializer ) statement
9526   //   is equivalent to
9527   //      for ( auto&& for-range-identifier : for-range-initializer ) statement
9528   DeclSpec DS(Attrs.getPool().getFactory());
9529 
9530   const char *PrevSpec;
9531   unsigned DiagID;
9532   DS.SetTypeSpecType(DeclSpec::TST_auto, IdentLoc, PrevSpec, DiagID,
9533                      getPrintingPolicy());
9534 
9535   Declarator D(DS, Declarator::ForContext);
9536   D.SetIdentifier(Ident, IdentLoc);
9537   D.takeAttributes(Attrs, AttrEnd);
9538 
9539   ParsedAttributes EmptyAttrs(Attrs.getPool().getFactory());
9540   D.AddTypeInfo(DeclaratorChunk::getReference(0, IdentLoc, /*lvalue*/false),
9541                 EmptyAttrs, IdentLoc);
9542   Decl *Var = ActOnDeclarator(S, D);
9543   cast<VarDecl>(Var)->setCXXForRangeDecl(true);
9544   FinalizeDeclaration(Var);
9545   return ActOnDeclStmt(FinalizeDeclaratorGroup(S, DS, Var), IdentLoc,
9546                        AttrEnd.isValid() ? AttrEnd : IdentLoc);
9547 }
9548 
9549 void Sema::CheckCompleteVariableDeclaration(VarDecl *var) {
9550   if (var->isInvalidDecl()) return;
9551 
9552   // In ARC, don't allow jumps past the implicit initialization of a
9553   // local retaining variable.
9554   if (getLangOpts().ObjCAutoRefCount &&
9555       var->hasLocalStorage()) {
9556     switch (var->getType().getObjCLifetime()) {
9557     case Qualifiers::OCL_None:
9558     case Qualifiers::OCL_ExplicitNone:
9559     case Qualifiers::OCL_Autoreleasing:
9560       break;
9561 
9562     case Qualifiers::OCL_Weak:
9563     case Qualifiers::OCL_Strong:
9564       getCurFunction()->setHasBranchProtectedScope();
9565       break;
9566     }
9567   }
9568 
9569   // Warn about externally-visible variables being defined without a
9570   // prior declaration.  We only want to do this for global
9571   // declarations, but we also specifically need to avoid doing it for
9572   // class members because the linkage of an anonymous class can
9573   // change if it's later given a typedef name.
9574   if (var->isThisDeclarationADefinition() &&
9575       var->getDeclContext()->getRedeclContext()->isFileContext() &&
9576       var->isExternallyVisible() && var->hasLinkage() &&
9577       !getDiagnostics().isIgnored(diag::warn_missing_variable_declarations,
9578                                   var->getLocation())) {
9579     // Find a previous declaration that's not a definition.
9580     VarDecl *prev = var->getPreviousDecl();
9581     while (prev && prev->isThisDeclarationADefinition())
9582       prev = prev->getPreviousDecl();
9583 
9584     if (!prev)
9585       Diag(var->getLocation(), diag::warn_missing_variable_declarations) << var;
9586   }
9587 
9588   if (var->getTLSKind() == VarDecl::TLS_Static) {
9589     const Expr *Culprit;
9590     if (var->getType().isDestructedType()) {
9591       // GNU C++98 edits for __thread, [basic.start.term]p3:
9592       //   The type of an object with thread storage duration shall not
9593       //   have a non-trivial destructor.
9594       Diag(var->getLocation(), diag::err_thread_nontrivial_dtor);
9595       if (getLangOpts().CPlusPlus11)
9596         Diag(var->getLocation(), diag::note_use_thread_local);
9597     } else if (getLangOpts().CPlusPlus && var->hasInit() &&
9598                !var->getInit()->isConstantInitializer(
9599                    Context, var->getType()->isReferenceType(), &Culprit)) {
9600       // GNU C++98 edits for __thread, [basic.start.init]p4:
9601       //   An object of thread storage duration shall not require dynamic
9602       //   initialization.
9603       // FIXME: Need strict checking here.
9604       Diag(Culprit->getExprLoc(), diag::err_thread_dynamic_init)
9605         << Culprit->getSourceRange();
9606       if (getLangOpts().CPlusPlus11)
9607         Diag(var->getLocation(), diag::note_use_thread_local);
9608     }
9609 
9610   }
9611 
9612   // Apply section attributes and pragmas to global variables.
9613   bool GlobalStorage = var->hasGlobalStorage();
9614   if (GlobalStorage && var->isThisDeclarationADefinition() &&
9615       ActiveTemplateInstantiations.empty()) {
9616     PragmaStack<StringLiteral *> *Stack = nullptr;
9617     int SectionFlags = ASTContext::PSF_Implicit | ASTContext::PSF_Read;
9618     if (var->getType().isConstQualified())
9619       Stack = &ConstSegStack;
9620     else if (!var->getInit()) {
9621       Stack = &BSSSegStack;
9622       SectionFlags |= ASTContext::PSF_Write;
9623     } else {
9624       Stack = &DataSegStack;
9625       SectionFlags |= ASTContext::PSF_Write;
9626     }
9627     if (Stack->CurrentValue && !var->hasAttr<SectionAttr>()) {
9628       var->addAttr(SectionAttr::CreateImplicit(
9629           Context, SectionAttr::Declspec_allocate,
9630           Stack->CurrentValue->getString(), Stack->CurrentPragmaLocation));
9631     }
9632     if (const SectionAttr *SA = var->getAttr<SectionAttr>())
9633       if (UnifySection(SA->getName(), SectionFlags, var))
9634         var->dropAttr<SectionAttr>();
9635 
9636     // Apply the init_seg attribute if this has an initializer.  If the
9637     // initializer turns out to not be dynamic, we'll end up ignoring this
9638     // attribute.
9639     if (CurInitSeg && var->getInit())
9640       var->addAttr(InitSegAttr::CreateImplicit(Context, CurInitSeg->getString(),
9641                                                CurInitSegLoc));
9642   }
9643 
9644   // All the following checks are C++ only.
9645   if (!getLangOpts().CPlusPlus) return;
9646 
9647   QualType type = var->getType();
9648   if (type->isDependentType()) return;
9649 
9650   // __block variables might require us to capture a copy-initializer.
9651   if (var->hasAttr<BlocksAttr>()) {
9652     // It's currently invalid to ever have a __block variable with an
9653     // array type; should we diagnose that here?
9654 
9655     // Regardless, we don't want to ignore array nesting when
9656     // constructing this copy.
9657     if (type->isStructureOrClassType()) {
9658       EnterExpressionEvaluationContext scope(*this, PotentiallyEvaluated);
9659       SourceLocation poi = var->getLocation();
9660       Expr *varRef =new (Context) DeclRefExpr(var, false, type, VK_LValue, poi);
9661       ExprResult result
9662         = PerformMoveOrCopyInitialization(
9663             InitializedEntity::InitializeBlock(poi, type, false),
9664             var, var->getType(), varRef, /*AllowNRVO=*/true);
9665       if (!result.isInvalid()) {
9666         result = MaybeCreateExprWithCleanups(result);
9667         Expr *init = result.getAs<Expr>();
9668         Context.setBlockVarCopyInits(var, init);
9669       }
9670     }
9671   }
9672 
9673   Expr *Init = var->getInit();
9674   bool IsGlobal = GlobalStorage && !var->isStaticLocal();
9675   QualType baseType = Context.getBaseElementType(type);
9676 
9677   if (!var->getDeclContext()->isDependentContext() &&
9678       Init && !Init->isValueDependent()) {
9679     if (IsGlobal && !var->isConstexpr() &&
9680         !getDiagnostics().isIgnored(diag::warn_global_constructor,
9681                                     var->getLocation())) {
9682       // Warn about globals which don't have a constant initializer.  Don't
9683       // warn about globals with a non-trivial destructor because we already
9684       // warned about them.
9685       CXXRecordDecl *RD = baseType->getAsCXXRecordDecl();
9686       if (!(RD && !RD->hasTrivialDestructor()) &&
9687           !Init->isConstantInitializer(Context, baseType->isReferenceType()))
9688         Diag(var->getLocation(), diag::warn_global_constructor)
9689           << Init->getSourceRange();
9690     }
9691 
9692     if (var->isConstexpr()) {
9693       SmallVector<PartialDiagnosticAt, 8> Notes;
9694       if (!var->evaluateValue(Notes) || !var->isInitICE()) {
9695         SourceLocation DiagLoc = var->getLocation();
9696         // If the note doesn't add any useful information other than a source
9697         // location, fold it into the primary diagnostic.
9698         if (Notes.size() == 1 && Notes[0].second.getDiagID() ==
9699               diag::note_invalid_subexpr_in_const_expr) {
9700           DiagLoc = Notes[0].first;
9701           Notes.clear();
9702         }
9703         Diag(DiagLoc, diag::err_constexpr_var_requires_const_init)
9704           << var << Init->getSourceRange();
9705         for (unsigned I = 0, N = Notes.size(); I != N; ++I)
9706           Diag(Notes[I].first, Notes[I].second);
9707       }
9708     } else if (var->isUsableInConstantExpressions(Context)) {
9709       // Check whether the initializer of a const variable of integral or
9710       // enumeration type is an ICE now, since we can't tell whether it was
9711       // initialized by a constant expression if we check later.
9712       var->checkInitIsICE();
9713     }
9714   }
9715 
9716   // Require the destructor.
9717   if (const RecordType *recordType = baseType->getAs<RecordType>())
9718     FinalizeVarWithDestructor(var, recordType);
9719 }
9720 
9721 /// FinalizeDeclaration - called by ParseDeclarationAfterDeclarator to perform
9722 /// any semantic actions necessary after any initializer has been attached.
9723 void
9724 Sema::FinalizeDeclaration(Decl *ThisDecl) {
9725   // Note that we are no longer parsing the initializer for this declaration.
9726   ParsingInitForAutoVars.erase(ThisDecl);
9727 
9728   VarDecl *VD = dyn_cast_or_null<VarDecl>(ThisDecl);
9729   if (!VD)
9730     return;
9731 
9732   checkAttributesAfterMerging(*this, *VD);
9733 
9734   // Static locals inherit dll attributes from their function.
9735   if (VD->isStaticLocal()) {
9736     if (FunctionDecl *FD =
9737             dyn_cast_or_null<FunctionDecl>(VD->getParentFunctionOrMethod())) {
9738       if (Attr *A = getDLLAttr(FD)) {
9739         auto *NewAttr = cast<InheritableAttr>(A->clone(getASTContext()));
9740         NewAttr->setInherited(true);
9741         VD->addAttr(NewAttr);
9742       }
9743     }
9744   }
9745 
9746   // Grab the dllimport or dllexport attribute off of the VarDecl.
9747   const InheritableAttr *DLLAttr = getDLLAttr(VD);
9748 
9749   // Imported static data members cannot be defined out-of-line.
9750   if (const auto *IA = dyn_cast_or_null<DLLImportAttr>(DLLAttr)) {
9751     if (VD->isStaticDataMember() && VD->isOutOfLine() &&
9752         VD->isThisDeclarationADefinition()) {
9753       // We allow definitions of dllimport class template static data members
9754       // with a warning.
9755       CXXRecordDecl *Context =
9756         cast<CXXRecordDecl>(VD->getFirstDecl()->getDeclContext());
9757       bool IsClassTemplateMember =
9758           isa<ClassTemplatePartialSpecializationDecl>(Context) ||
9759           Context->getDescribedClassTemplate();
9760 
9761       Diag(VD->getLocation(),
9762            IsClassTemplateMember
9763                ? diag::warn_attribute_dllimport_static_field_definition
9764                : diag::err_attribute_dllimport_static_field_definition);
9765       Diag(IA->getLocation(), diag::note_attribute);
9766       if (!IsClassTemplateMember)
9767         VD->setInvalidDecl();
9768     }
9769   }
9770 
9771   // dllimport/dllexport variables cannot be thread local, their TLS index
9772   // isn't exported with the variable.
9773   if (DLLAttr && VD->getTLSKind()) {
9774     Diag(VD->getLocation(), diag::err_attribute_dll_thread_local) << VD
9775                                                                   << DLLAttr;
9776     VD->setInvalidDecl();
9777   }
9778 
9779   if (UsedAttr *Attr = VD->getAttr<UsedAttr>()) {
9780     if (!Attr->isInherited() && !VD->isThisDeclarationADefinition()) {
9781       Diag(Attr->getLocation(), diag::warn_attribute_ignored) << Attr;
9782       VD->dropAttr<UsedAttr>();
9783     }
9784   }
9785 
9786   const DeclContext *DC = VD->getDeclContext();
9787   // If there's a #pragma GCC visibility in scope, and this isn't a class
9788   // member, set the visibility of this variable.
9789   if (DC->getRedeclContext()->isFileContext() && VD->isExternallyVisible())
9790     AddPushedVisibilityAttribute(VD);
9791 
9792   // FIXME: Warn on unused templates.
9793   if (VD->isFileVarDecl() && !VD->getDescribedVarTemplate() &&
9794       !isa<VarTemplatePartialSpecializationDecl>(VD))
9795     MarkUnusedFileScopedDecl(VD);
9796 
9797   // Now we have parsed the initializer and can update the table of magic
9798   // tag values.
9799   if (!VD->hasAttr<TypeTagForDatatypeAttr>() ||
9800       !VD->getType()->isIntegralOrEnumerationType())
9801     return;
9802 
9803   for (const auto *I : ThisDecl->specific_attrs<TypeTagForDatatypeAttr>()) {
9804     const Expr *MagicValueExpr = VD->getInit();
9805     if (!MagicValueExpr) {
9806       continue;
9807     }
9808     llvm::APSInt MagicValueInt;
9809     if (!MagicValueExpr->isIntegerConstantExpr(MagicValueInt, Context)) {
9810       Diag(I->getRange().getBegin(),
9811            diag::err_type_tag_for_datatype_not_ice)
9812         << LangOpts.CPlusPlus << MagicValueExpr->getSourceRange();
9813       continue;
9814     }
9815     if (MagicValueInt.getActiveBits() > 64) {
9816       Diag(I->getRange().getBegin(),
9817            diag::err_type_tag_for_datatype_too_large)
9818         << LangOpts.CPlusPlus << MagicValueExpr->getSourceRange();
9819       continue;
9820     }
9821     uint64_t MagicValue = MagicValueInt.getZExtValue();
9822     RegisterTypeTagForDatatype(I->getArgumentKind(),
9823                                MagicValue,
9824                                I->getMatchingCType(),
9825                                I->getLayoutCompatible(),
9826                                I->getMustBeNull());
9827   }
9828 }
9829 
9830 Sema::DeclGroupPtrTy Sema::FinalizeDeclaratorGroup(Scope *S, const DeclSpec &DS,
9831                                                    ArrayRef<Decl *> Group) {
9832   SmallVector<Decl*, 8> Decls;
9833 
9834   if (DS.isTypeSpecOwned())
9835     Decls.push_back(DS.getRepAsDecl());
9836 
9837   DeclaratorDecl *FirstDeclaratorInGroup = nullptr;
9838   for (unsigned i = 0, e = Group.size(); i != e; ++i)
9839     if (Decl *D = Group[i]) {
9840       if (DeclaratorDecl *DD = dyn_cast<DeclaratorDecl>(D))
9841         if (!FirstDeclaratorInGroup)
9842           FirstDeclaratorInGroup = DD;
9843       Decls.push_back(D);
9844     }
9845 
9846   if (DeclSpec::isDeclRep(DS.getTypeSpecType())) {
9847     if (TagDecl *Tag = dyn_cast_or_null<TagDecl>(DS.getRepAsDecl())) {
9848       handleTagNumbering(Tag, S);
9849       if (!Tag->hasNameForLinkage() && !Tag->hasDeclaratorForAnonDecl())
9850         Tag->setDeclaratorForAnonDecl(FirstDeclaratorInGroup);
9851     }
9852   }
9853 
9854   return BuildDeclaratorGroup(Decls, DS.containsPlaceholderType());
9855 }
9856 
9857 /// BuildDeclaratorGroup - convert a list of declarations into a declaration
9858 /// group, performing any necessary semantic checking.
9859 Sema::DeclGroupPtrTy
9860 Sema::BuildDeclaratorGroup(MutableArrayRef<Decl *> Group,
9861                            bool TypeMayContainAuto) {
9862   // C++0x [dcl.spec.auto]p7:
9863   //   If the type deduced for the template parameter U is not the same in each
9864   //   deduction, the program is ill-formed.
9865   // FIXME: When initializer-list support is added, a distinction is needed
9866   // between the deduced type U and the deduced type which 'auto' stands for.
9867   //   auto a = 0, b = { 1, 2, 3 };
9868   // is legal because the deduced type U is 'int' in both cases.
9869   if (TypeMayContainAuto && Group.size() > 1) {
9870     QualType Deduced;
9871     CanQualType DeducedCanon;
9872     VarDecl *DeducedDecl = nullptr;
9873     for (unsigned i = 0, e = Group.size(); i != e; ++i) {
9874       if (VarDecl *D = dyn_cast<VarDecl>(Group[i])) {
9875         AutoType *AT = D->getType()->getContainedAutoType();
9876         // Don't reissue diagnostics when instantiating a template.
9877         if (AT && D->isInvalidDecl())
9878           break;
9879         QualType U = AT ? AT->getDeducedType() : QualType();
9880         if (!U.isNull()) {
9881           CanQualType UCanon = Context.getCanonicalType(U);
9882           if (Deduced.isNull()) {
9883             Deduced = U;
9884             DeducedCanon = UCanon;
9885             DeducedDecl = D;
9886           } else if (DeducedCanon != UCanon) {
9887             Diag(D->getTypeSourceInfo()->getTypeLoc().getBeginLoc(),
9888                  diag::err_auto_different_deductions)
9889               << (AT->isDecltypeAuto() ? 1 : 0)
9890               << Deduced << DeducedDecl->getDeclName()
9891               << U << D->getDeclName()
9892               << DeducedDecl->getInit()->getSourceRange()
9893               << D->getInit()->getSourceRange();
9894             D->setInvalidDecl();
9895             break;
9896           }
9897         }
9898       }
9899     }
9900   }
9901 
9902   ActOnDocumentableDecls(Group);
9903 
9904   return DeclGroupPtrTy::make(
9905       DeclGroupRef::Create(Context, Group.data(), Group.size()));
9906 }
9907 
9908 void Sema::ActOnDocumentableDecl(Decl *D) {
9909   ActOnDocumentableDecls(D);
9910 }
9911 
9912 void Sema::ActOnDocumentableDecls(ArrayRef<Decl *> Group) {
9913   // Don't parse the comment if Doxygen diagnostics are ignored.
9914   if (Group.empty() || !Group[0])
9915     return;
9916 
9917   if (Diags.isIgnored(diag::warn_doc_param_not_found,
9918                       Group[0]->getLocation()) &&
9919       Diags.isIgnored(diag::warn_unknown_comment_command_name,
9920                       Group[0]->getLocation()))
9921     return;
9922 
9923   if (Group.size() >= 2) {
9924     // This is a decl group.  Normally it will contain only declarations
9925     // produced from declarator list.  But in case we have any definitions or
9926     // additional declaration references:
9927     //   'typedef struct S {} S;'
9928     //   'typedef struct S *S;'
9929     //   'struct S *pS;'
9930     // FinalizeDeclaratorGroup adds these as separate declarations.
9931     Decl *MaybeTagDecl = Group[0];
9932     if (MaybeTagDecl && isa<TagDecl>(MaybeTagDecl)) {
9933       Group = Group.slice(1);
9934     }
9935   }
9936 
9937   // See if there are any new comments that are not attached to a decl.
9938   ArrayRef<RawComment *> Comments = Context.getRawCommentList().getComments();
9939   if (!Comments.empty() &&
9940       !Comments.back()->isAttached()) {
9941     // There is at least one comment that not attached to a decl.
9942     // Maybe it should be attached to one of these decls?
9943     //
9944     // Note that this way we pick up not only comments that precede the
9945     // declaration, but also comments that *follow* the declaration -- thanks to
9946     // the lookahead in the lexer: we've consumed the semicolon and looked
9947     // ahead through comments.
9948     for (unsigned i = 0, e = Group.size(); i != e; ++i)
9949       Context.getCommentForDecl(Group[i], &PP);
9950   }
9951 }
9952 
9953 /// ActOnParamDeclarator - Called from Parser::ParseFunctionDeclarator()
9954 /// to introduce parameters into function prototype scope.
9955 Decl *Sema::ActOnParamDeclarator(Scope *S, Declarator &D) {
9956   const DeclSpec &DS = D.getDeclSpec();
9957 
9958   // Verify C99 6.7.5.3p2: The only SCS allowed is 'register'.
9959 
9960   // C++03 [dcl.stc]p2 also permits 'auto'.
9961   StorageClass SC = SC_None;
9962   if (DS.getStorageClassSpec() == DeclSpec::SCS_register) {
9963     SC = SC_Register;
9964   } else if (getLangOpts().CPlusPlus &&
9965              DS.getStorageClassSpec() == DeclSpec::SCS_auto) {
9966     SC = SC_Auto;
9967   } else if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified) {
9968     Diag(DS.getStorageClassSpecLoc(),
9969          diag::err_invalid_storage_class_in_func_decl);
9970     D.getMutableDeclSpec().ClearStorageClassSpecs();
9971   }
9972 
9973   if (DeclSpec::TSCS TSCS = DS.getThreadStorageClassSpec())
9974     Diag(DS.getThreadStorageClassSpecLoc(), diag::err_invalid_thread)
9975       << DeclSpec::getSpecifierName(TSCS);
9976   if (DS.isConstexprSpecified())
9977     Diag(DS.getConstexprSpecLoc(), diag::err_invalid_constexpr)
9978       << 0;
9979 
9980   DiagnoseFunctionSpecifiers(DS);
9981 
9982   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
9983   QualType parmDeclType = TInfo->getType();
9984 
9985   if (getLangOpts().CPlusPlus) {
9986     // Check that there are no default arguments inside the type of this
9987     // parameter.
9988     CheckExtraCXXDefaultArguments(D);
9989 
9990     // Parameter declarators cannot be qualified (C++ [dcl.meaning]p1).
9991     if (D.getCXXScopeSpec().isSet()) {
9992       Diag(D.getIdentifierLoc(), diag::err_qualified_param_declarator)
9993         << D.getCXXScopeSpec().getRange();
9994       D.getCXXScopeSpec().clear();
9995     }
9996   }
9997 
9998   // Ensure we have a valid name
9999   IdentifierInfo *II = nullptr;
10000   if (D.hasName()) {
10001     II = D.getIdentifier();
10002     if (!II) {
10003       Diag(D.getIdentifierLoc(), diag::err_bad_parameter_name)
10004         << GetNameForDeclarator(D).getName();
10005       D.setInvalidType(true);
10006     }
10007   }
10008 
10009   // Check for redeclaration of parameters, e.g. int foo(int x, int x);
10010   if (II) {
10011     LookupResult R(*this, II, D.getIdentifierLoc(), LookupOrdinaryName,
10012                    ForRedeclaration);
10013     LookupName(R, S);
10014     if (R.isSingleResult()) {
10015       NamedDecl *PrevDecl = R.getFoundDecl();
10016       if (PrevDecl->isTemplateParameter()) {
10017         // Maybe we will complain about the shadowed template parameter.
10018         DiagnoseTemplateParameterShadow(D.getIdentifierLoc(), PrevDecl);
10019         // Just pretend that we didn't see the previous declaration.
10020         PrevDecl = nullptr;
10021       } else if (S->isDeclScope(PrevDecl)) {
10022         Diag(D.getIdentifierLoc(), diag::err_param_redefinition) << II;
10023         Diag(PrevDecl->getLocation(), diag::note_previous_declaration);
10024 
10025         // Recover by removing the name
10026         II = nullptr;
10027         D.SetIdentifier(nullptr, D.getIdentifierLoc());
10028         D.setInvalidType(true);
10029       }
10030     }
10031   }
10032 
10033   // Temporarily put parameter variables in the translation unit, not
10034   // the enclosing context.  This prevents them from accidentally
10035   // looking like class members in C++.
10036   ParmVarDecl *New = CheckParameter(Context.getTranslationUnitDecl(),
10037                                     D.getLocStart(),
10038                                     D.getIdentifierLoc(), II,
10039                                     parmDeclType, TInfo,
10040                                     SC);
10041 
10042   if (D.isInvalidType())
10043     New->setInvalidDecl();
10044 
10045   assert(S->isFunctionPrototypeScope());
10046   assert(S->getFunctionPrototypeDepth() >= 1);
10047   New->setScopeInfo(S->getFunctionPrototypeDepth() - 1,
10048                     S->getNextFunctionPrototypeIndex());
10049 
10050   // Add the parameter declaration into this scope.
10051   S->AddDecl(New);
10052   if (II)
10053     IdResolver.AddDecl(New);
10054 
10055   ProcessDeclAttributes(S, New, D);
10056 
10057   if (D.getDeclSpec().isModulePrivateSpecified())
10058     Diag(New->getLocation(), diag::err_module_private_local)
10059       << 1 << New->getDeclName()
10060       << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc())
10061       << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc());
10062 
10063   if (New->hasAttr<BlocksAttr>()) {
10064     Diag(New->getLocation(), diag::err_block_on_nonlocal);
10065   }
10066   return New;
10067 }
10068 
10069 /// \brief Synthesizes a variable for a parameter arising from a
10070 /// typedef.
10071 ParmVarDecl *Sema::BuildParmVarDeclForTypedef(DeclContext *DC,
10072                                               SourceLocation Loc,
10073                                               QualType T) {
10074   /* FIXME: setting StartLoc == Loc.
10075      Would it be worth to modify callers so as to provide proper source
10076      location for the unnamed parameters, embedding the parameter's type? */
10077   ParmVarDecl *Param = ParmVarDecl::Create(Context, DC, Loc, Loc, nullptr,
10078                                 T, Context.getTrivialTypeSourceInfo(T, Loc),
10079                                            SC_None, nullptr);
10080   Param->setImplicit();
10081   return Param;
10082 }
10083 
10084 void Sema::DiagnoseUnusedParameters(ParmVarDecl * const *Param,
10085                                     ParmVarDecl * const *ParamEnd) {
10086   // Don't diagnose unused-parameter errors in template instantiations; we
10087   // will already have done so in the template itself.
10088   if (!ActiveTemplateInstantiations.empty())
10089     return;
10090 
10091   for (; Param != ParamEnd; ++Param) {
10092     if (!(*Param)->isReferenced() && (*Param)->getDeclName() &&
10093         !(*Param)->hasAttr<UnusedAttr>()) {
10094       Diag((*Param)->getLocation(), diag::warn_unused_parameter)
10095         << (*Param)->getDeclName();
10096     }
10097   }
10098 }
10099 
10100 void Sema::DiagnoseSizeOfParametersAndReturnValue(ParmVarDecl * const *Param,
10101                                                   ParmVarDecl * const *ParamEnd,
10102                                                   QualType ReturnTy,
10103                                                   NamedDecl *D) {
10104   if (LangOpts.NumLargeByValueCopy == 0) // No check.
10105     return;
10106 
10107   // Warn if the return value is pass-by-value and larger than the specified
10108   // threshold.
10109   if (!ReturnTy->isDependentType() && ReturnTy.isPODType(Context)) {
10110     unsigned Size = Context.getTypeSizeInChars(ReturnTy).getQuantity();
10111     if (Size > LangOpts.NumLargeByValueCopy)
10112       Diag(D->getLocation(), diag::warn_return_value_size)
10113           << D->getDeclName() << Size;
10114   }
10115 
10116   // Warn if any parameter is pass-by-value and larger than the specified
10117   // threshold.
10118   for (; Param != ParamEnd; ++Param) {
10119     QualType T = (*Param)->getType();
10120     if (T->isDependentType() || !T.isPODType(Context))
10121       continue;
10122     unsigned Size = Context.getTypeSizeInChars(T).getQuantity();
10123     if (Size > LangOpts.NumLargeByValueCopy)
10124       Diag((*Param)->getLocation(), diag::warn_parameter_size)
10125           << (*Param)->getDeclName() << Size;
10126   }
10127 }
10128 
10129 ParmVarDecl *Sema::CheckParameter(DeclContext *DC, SourceLocation StartLoc,
10130                                   SourceLocation NameLoc, IdentifierInfo *Name,
10131                                   QualType T, TypeSourceInfo *TSInfo,
10132                                   StorageClass SC) {
10133   // In ARC, infer a lifetime qualifier for appropriate parameter types.
10134   if (getLangOpts().ObjCAutoRefCount &&
10135       T.getObjCLifetime() == Qualifiers::OCL_None &&
10136       T->isObjCLifetimeType()) {
10137 
10138     Qualifiers::ObjCLifetime lifetime;
10139 
10140     // Special cases for arrays:
10141     //   - if it's const, use __unsafe_unretained
10142     //   - otherwise, it's an error
10143     if (T->isArrayType()) {
10144       if (!T.isConstQualified()) {
10145         DelayedDiagnostics.add(
10146             sema::DelayedDiagnostic::makeForbiddenType(
10147             NameLoc, diag::err_arc_array_param_no_ownership, T, false));
10148       }
10149       lifetime = Qualifiers::OCL_ExplicitNone;
10150     } else {
10151       lifetime = T->getObjCARCImplicitLifetime();
10152     }
10153     T = Context.getLifetimeQualifiedType(T, lifetime);
10154   }
10155 
10156   ParmVarDecl *New = ParmVarDecl::Create(Context, DC, StartLoc, NameLoc, Name,
10157                                          Context.getAdjustedParameterType(T),
10158                                          TSInfo, SC, nullptr);
10159 
10160   // Parameters can not be abstract class types.
10161   // For record types, this is done by the AbstractClassUsageDiagnoser once
10162   // the class has been completely parsed.
10163   if (!CurContext->isRecord() &&
10164       RequireNonAbstractType(NameLoc, T, diag::err_abstract_type_in_decl,
10165                              AbstractParamType))
10166     New->setInvalidDecl();
10167 
10168   // Parameter declarators cannot be interface types. All ObjC objects are
10169   // passed by reference.
10170   if (T->isObjCObjectType()) {
10171     SourceLocation TypeEndLoc = TSInfo->getTypeLoc().getLocEnd();
10172     Diag(NameLoc,
10173          diag::err_object_cannot_be_passed_returned_by_value) << 1 << T
10174       << FixItHint::CreateInsertion(TypeEndLoc, "*");
10175     T = Context.getObjCObjectPointerType(T);
10176     New->setType(T);
10177   }
10178 
10179   // ISO/IEC TR 18037 S6.7.3: "The type of an object with automatic storage
10180   // duration shall not be qualified by an address-space qualifier."
10181   // Since all parameters have automatic store duration, they can not have
10182   // an address space.
10183   if (T.getAddressSpace() != 0) {
10184     // OpenCL allows function arguments declared to be an array of a type
10185     // to be qualified with an address space.
10186     if (!(getLangOpts().OpenCL && T->isArrayType())) {
10187       Diag(NameLoc, diag::err_arg_with_address_space);
10188       New->setInvalidDecl();
10189     }
10190   }
10191 
10192   return New;
10193 }
10194 
10195 void Sema::ActOnFinishKNRParamDeclarations(Scope *S, Declarator &D,
10196                                            SourceLocation LocAfterDecls) {
10197   DeclaratorChunk::FunctionTypeInfo &FTI = D.getFunctionTypeInfo();
10198 
10199   // Verify 6.9.1p6: 'every identifier in the identifier list shall be declared'
10200   // for a K&R function.
10201   if (!FTI.hasPrototype) {
10202     for (int i = FTI.NumParams; i != 0; /* decrement in loop */) {
10203       --i;
10204       if (FTI.Params[i].Param == nullptr) {
10205         SmallString<256> Code;
10206         llvm::raw_svector_ostream(Code)
10207             << "  int " << FTI.Params[i].Ident->getName() << ";\n";
10208         Diag(FTI.Params[i].IdentLoc, diag::ext_param_not_declared)
10209             << FTI.Params[i].Ident
10210             << FixItHint::CreateInsertion(LocAfterDecls, Code);
10211 
10212         // Implicitly declare the argument as type 'int' for lack of a better
10213         // type.
10214         AttributeFactory attrs;
10215         DeclSpec DS(attrs);
10216         const char* PrevSpec; // unused
10217         unsigned DiagID; // unused
10218         DS.SetTypeSpecType(DeclSpec::TST_int, FTI.Params[i].IdentLoc, PrevSpec,
10219                            DiagID, Context.getPrintingPolicy());
10220         // Use the identifier location for the type source range.
10221         DS.SetRangeStart(FTI.Params[i].IdentLoc);
10222         DS.SetRangeEnd(FTI.Params[i].IdentLoc);
10223         Declarator ParamD(DS, Declarator::KNRTypeListContext);
10224         ParamD.SetIdentifier(FTI.Params[i].Ident, FTI.Params[i].IdentLoc);
10225         FTI.Params[i].Param = ActOnParamDeclarator(S, ParamD);
10226       }
10227     }
10228   }
10229 }
10230 
10231 Decl *Sema::ActOnStartOfFunctionDef(Scope *FnBodyScope, Declarator &D) {
10232   assert(getCurFunctionDecl() == nullptr && "Function parsing confused");
10233   assert(D.isFunctionDeclarator() && "Not a function declarator!");
10234   Scope *ParentScope = FnBodyScope->getParent();
10235 
10236   D.setFunctionDefinitionKind(FDK_Definition);
10237   Decl *DP = HandleDeclarator(ParentScope, D, MultiTemplateParamsArg());
10238   return ActOnStartOfFunctionDef(FnBodyScope, DP);
10239 }
10240 
10241 void Sema::ActOnFinishInlineMethodDef(CXXMethodDecl *D) {
10242   Consumer.HandleInlineMethodDefinition(D);
10243 }
10244 
10245 static bool ShouldWarnAboutMissingPrototype(const FunctionDecl *FD,
10246                              const FunctionDecl*& PossibleZeroParamPrototype) {
10247   // Don't warn about invalid declarations.
10248   if (FD->isInvalidDecl())
10249     return false;
10250 
10251   // Or declarations that aren't global.
10252   if (!FD->isGlobal())
10253     return false;
10254 
10255   // Don't warn about C++ member functions.
10256   if (isa<CXXMethodDecl>(FD))
10257     return false;
10258 
10259   // Don't warn about 'main'.
10260   if (FD->isMain())
10261     return false;
10262 
10263   // Don't warn about inline functions.
10264   if (FD->isInlined())
10265     return false;
10266 
10267   // Don't warn about function templates.
10268   if (FD->getDescribedFunctionTemplate())
10269     return false;
10270 
10271   // Don't warn about function template specializations.
10272   if (FD->isFunctionTemplateSpecialization())
10273     return false;
10274 
10275   // Don't warn for OpenCL kernels.
10276   if (FD->hasAttr<OpenCLKernelAttr>())
10277     return false;
10278 
10279   // Don't warn on explicitly deleted functions.
10280   if (FD->isDeleted())
10281     return false;
10282 
10283   bool MissingPrototype = true;
10284   for (const FunctionDecl *Prev = FD->getPreviousDecl();
10285        Prev; Prev = Prev->getPreviousDecl()) {
10286     // Ignore any declarations that occur in function or method
10287     // scope, because they aren't visible from the header.
10288     if (Prev->getLexicalDeclContext()->isFunctionOrMethod())
10289       continue;
10290 
10291     MissingPrototype = !Prev->getType()->isFunctionProtoType();
10292     if (FD->getNumParams() == 0)
10293       PossibleZeroParamPrototype = Prev;
10294     break;
10295   }
10296 
10297   return MissingPrototype;
10298 }
10299 
10300 void
10301 Sema::CheckForFunctionRedefinition(FunctionDecl *FD,
10302                                    const FunctionDecl *EffectiveDefinition) {
10303   // Don't complain if we're in GNU89 mode and the previous definition
10304   // was an extern inline function.
10305   const FunctionDecl *Definition = EffectiveDefinition;
10306   if (!Definition)
10307     if (!FD->isDefined(Definition))
10308       return;
10309 
10310   if (canRedefineFunction(Definition, getLangOpts()))
10311     return;
10312 
10313   // If we don't have a visible definition of the function, and it's inline or
10314   // a template, it's OK to form another definition of it.
10315   //
10316   // FIXME: Should we skip the body of the function and use the old definition
10317   // in this case? That may be necessary for functions that return local types
10318   // through a deduced return type, or instantiate templates with local types.
10319   if (!hasVisibleDefinition(Definition) &&
10320       (Definition->isInlineSpecified() ||
10321        Definition->getDescribedFunctionTemplate() ||
10322        Definition->getNumTemplateParameterLists()))
10323     return;
10324 
10325   if (getLangOpts().GNUMode && Definition->isInlineSpecified() &&
10326       Definition->getStorageClass() == SC_Extern)
10327     Diag(FD->getLocation(), diag::err_redefinition_extern_inline)
10328         << FD->getDeclName() << getLangOpts().CPlusPlus;
10329   else
10330     Diag(FD->getLocation(), diag::err_redefinition) << FD->getDeclName();
10331 
10332   Diag(Definition->getLocation(), diag::note_previous_definition);
10333   FD->setInvalidDecl();
10334 }
10335 
10336 
10337 static void RebuildLambdaScopeInfo(CXXMethodDecl *CallOperator,
10338                                    Sema &S) {
10339   CXXRecordDecl *const LambdaClass = CallOperator->getParent();
10340 
10341   LambdaScopeInfo *LSI = S.PushLambdaScope();
10342   LSI->CallOperator = CallOperator;
10343   LSI->Lambda = LambdaClass;
10344   LSI->ReturnType = CallOperator->getReturnType();
10345   const LambdaCaptureDefault LCD = LambdaClass->getLambdaCaptureDefault();
10346 
10347   if (LCD == LCD_None)
10348     LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_None;
10349   else if (LCD == LCD_ByCopy)
10350     LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_LambdaByval;
10351   else if (LCD == LCD_ByRef)
10352     LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_LambdaByref;
10353   DeclarationNameInfo DNI = CallOperator->getNameInfo();
10354 
10355   LSI->IntroducerRange = DNI.getCXXOperatorNameRange();
10356   LSI->Mutable = !CallOperator->isConst();
10357 
10358   // Add the captures to the LSI so they can be noted as already
10359   // captured within tryCaptureVar.
10360   auto I = LambdaClass->field_begin();
10361   for (const auto &C : LambdaClass->captures()) {
10362     if (C.capturesVariable()) {
10363       VarDecl *VD = C.getCapturedVar();
10364       if (VD->isInitCapture())
10365         S.CurrentInstantiationScope->InstantiatedLocal(VD, VD);
10366       QualType CaptureType = VD->getType();
10367       const bool ByRef = C.getCaptureKind() == LCK_ByRef;
10368       LSI->addCapture(VD, /*IsBlock*/false, ByRef,
10369           /*RefersToEnclosingVariableOrCapture*/true, C.getLocation(),
10370           /*EllipsisLoc*/C.isPackExpansion()
10371                          ? C.getEllipsisLoc() : SourceLocation(),
10372           CaptureType, /*Expr*/ nullptr);
10373 
10374     } else if (C.capturesThis()) {
10375       LSI->addThisCapture(/*Nested*/ false, C.getLocation(),
10376                               S.getCurrentThisType(), /*Expr*/ nullptr);
10377     } else {
10378       LSI->addVLATypeCapture(C.getLocation(), I->getType());
10379     }
10380     ++I;
10381   }
10382 }
10383 
10384 Decl *Sema::ActOnStartOfFunctionDef(Scope *FnBodyScope, Decl *D) {
10385   // Clear the last template instantiation error context.
10386   LastTemplateInstantiationErrorContext = ActiveTemplateInstantiation();
10387 
10388   if (!D)
10389     return D;
10390   FunctionDecl *FD = nullptr;
10391 
10392   if (FunctionTemplateDecl *FunTmpl = dyn_cast<FunctionTemplateDecl>(D))
10393     FD = FunTmpl->getTemplatedDecl();
10394   else
10395     FD = cast<FunctionDecl>(D);
10396   // If we are instantiating a generic lambda call operator, push
10397   // a LambdaScopeInfo onto the function stack.  But use the information
10398   // that's already been calculated (ActOnLambdaExpr) to prime the current
10399   // LambdaScopeInfo.
10400   // When the template operator is being specialized, the LambdaScopeInfo,
10401   // has to be properly restored so that tryCaptureVariable doesn't try
10402   // and capture any new variables. In addition when calculating potential
10403   // captures during transformation of nested lambdas, it is necessary to
10404   // have the LSI properly restored.
10405   if (isGenericLambdaCallOperatorSpecialization(FD)) {
10406     assert(ActiveTemplateInstantiations.size() &&
10407       "There should be an active template instantiation on the stack "
10408       "when instantiating a generic lambda!");
10409     RebuildLambdaScopeInfo(cast<CXXMethodDecl>(D), *this);
10410   }
10411   else
10412     // Enter a new function scope
10413     PushFunctionScope();
10414 
10415   // See if this is a redefinition.
10416   if (!FD->isLateTemplateParsed())
10417     CheckForFunctionRedefinition(FD);
10418 
10419   // Builtin functions cannot be defined.
10420   if (unsigned BuiltinID = FD->getBuiltinID()) {
10421     if (!Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID) &&
10422         !Context.BuiltinInfo.isPredefinedRuntimeFunction(BuiltinID)) {
10423       Diag(FD->getLocation(), diag::err_builtin_definition) << FD;
10424       FD->setInvalidDecl();
10425     }
10426   }
10427 
10428   // The return type of a function definition must be complete
10429   // (C99 6.9.1p3, C++ [dcl.fct]p6).
10430   QualType ResultType = FD->getReturnType();
10431   if (!ResultType->isDependentType() && !ResultType->isVoidType() &&
10432       !FD->isInvalidDecl() &&
10433       RequireCompleteType(FD->getLocation(), ResultType,
10434                           diag::err_func_def_incomplete_result))
10435     FD->setInvalidDecl();
10436 
10437   if (FnBodyScope)
10438     PushDeclContext(FnBodyScope, FD);
10439 
10440   // Check the validity of our function parameters
10441   CheckParmsForFunctionDef(FD->param_begin(), FD->param_end(),
10442                            /*CheckParameterNames=*/true);
10443 
10444   // Introduce our parameters into the function scope
10445   for (auto Param : FD->params()) {
10446     Param->setOwningFunction(FD);
10447 
10448     // If this has an identifier, add it to the scope stack.
10449     if (Param->getIdentifier() && FnBodyScope) {
10450       CheckShadow(FnBodyScope, Param);
10451 
10452       PushOnScopeChains(Param, FnBodyScope);
10453     }
10454   }
10455 
10456   // If we had any tags defined in the function prototype,
10457   // introduce them into the function scope.
10458   if (FnBodyScope) {
10459     for (ArrayRef<NamedDecl *>::iterator
10460              I = FD->getDeclsInPrototypeScope().begin(),
10461              E = FD->getDeclsInPrototypeScope().end();
10462          I != E; ++I) {
10463       NamedDecl *D = *I;
10464 
10465       // Some of these decls (like enums) may have been pinned to the
10466       // translation unit for lack of a real context earlier. If so, remove
10467       // from the translation unit and reattach to the current context.
10468       if (D->getLexicalDeclContext() == Context.getTranslationUnitDecl()) {
10469         // Is the decl actually in the context?
10470         for (const auto *DI : Context.getTranslationUnitDecl()->decls()) {
10471           if (DI == D) {
10472             Context.getTranslationUnitDecl()->removeDecl(D);
10473             break;
10474           }
10475         }
10476         // Either way, reassign the lexical decl context to our FunctionDecl.
10477         D->setLexicalDeclContext(CurContext);
10478       }
10479 
10480       // If the decl has a non-null name, make accessible in the current scope.
10481       if (!D->getName().empty())
10482         PushOnScopeChains(D, FnBodyScope, /*AddToContext=*/false);
10483 
10484       // Similarly, dive into enums and fish their constants out, making them
10485       // accessible in this scope.
10486       if (auto *ED = dyn_cast<EnumDecl>(D)) {
10487         for (auto *EI : ED->enumerators())
10488           PushOnScopeChains(EI, FnBodyScope, /*AddToContext=*/false);
10489       }
10490     }
10491   }
10492 
10493   // Ensure that the function's exception specification is instantiated.
10494   if (const FunctionProtoType *FPT = FD->getType()->getAs<FunctionProtoType>())
10495     ResolveExceptionSpec(D->getLocation(), FPT);
10496 
10497   // dllimport cannot be applied to non-inline function definitions.
10498   if (FD->hasAttr<DLLImportAttr>() && !FD->isInlined() &&
10499       !FD->isTemplateInstantiation()) {
10500     assert(!FD->hasAttr<DLLExportAttr>());
10501     Diag(FD->getLocation(), diag::err_attribute_dllimport_function_definition);
10502     FD->setInvalidDecl();
10503     return D;
10504   }
10505   // We want to attach documentation to original Decl (which might be
10506   // a function template).
10507   ActOnDocumentableDecl(D);
10508   if (getCurLexicalContext()->isObjCContainer() &&
10509       getCurLexicalContext()->getDeclKind() != Decl::ObjCCategoryImpl &&
10510       getCurLexicalContext()->getDeclKind() != Decl::ObjCImplementation)
10511     Diag(FD->getLocation(), diag::warn_function_def_in_objc_container);
10512 
10513   return D;
10514 }
10515 
10516 /// \brief Given the set of return statements within a function body,
10517 /// compute the variables that are subject to the named return value
10518 /// optimization.
10519 ///
10520 /// Each of the variables that is subject to the named return value
10521 /// optimization will be marked as NRVO variables in the AST, and any
10522 /// return statement that has a marked NRVO variable as its NRVO candidate can
10523 /// use the named return value optimization.
10524 ///
10525 /// This function applies a very simplistic algorithm for NRVO: if every return
10526 /// statement in the scope of a variable has the same NRVO candidate, that
10527 /// candidate is an NRVO variable.
10528 void Sema::computeNRVO(Stmt *Body, FunctionScopeInfo *Scope) {
10529   ReturnStmt **Returns = Scope->Returns.data();
10530 
10531   for (unsigned I = 0, E = Scope->Returns.size(); I != E; ++I) {
10532     if (const VarDecl *NRVOCandidate = Returns[I]->getNRVOCandidate()) {
10533       if (!NRVOCandidate->isNRVOVariable())
10534         Returns[I]->setNRVOCandidate(nullptr);
10535     }
10536   }
10537 }
10538 
10539 bool Sema::canDelayFunctionBody(const Declarator &D) {
10540   // We can't delay parsing the body of a constexpr function template (yet).
10541   if (D.getDeclSpec().isConstexprSpecified())
10542     return false;
10543 
10544   // We can't delay parsing the body of a function template with a deduced
10545   // return type (yet).
10546   if (D.getDeclSpec().containsPlaceholderType()) {
10547     // If the placeholder introduces a non-deduced trailing return type,
10548     // we can still delay parsing it.
10549     if (D.getNumTypeObjects()) {
10550       const auto &Outer = D.getTypeObject(D.getNumTypeObjects() - 1);
10551       if (Outer.Kind == DeclaratorChunk::Function &&
10552           Outer.Fun.hasTrailingReturnType()) {
10553         QualType Ty = GetTypeFromParser(Outer.Fun.getTrailingReturnType());
10554         return Ty.isNull() || !Ty->isUndeducedType();
10555       }
10556     }
10557     return false;
10558   }
10559 
10560   return true;
10561 }
10562 
10563 bool Sema::canSkipFunctionBody(Decl *D) {
10564   // We cannot skip the body of a function (or function template) which is
10565   // constexpr, since we may need to evaluate its body in order to parse the
10566   // rest of the file.
10567   // We cannot skip the body of a function with an undeduced return type,
10568   // because any callers of that function need to know the type.
10569   if (const FunctionDecl *FD = D->getAsFunction())
10570     if (FD->isConstexpr() || FD->getReturnType()->isUndeducedType())
10571       return false;
10572   return Consumer.shouldSkipFunctionBody(D);
10573 }
10574 
10575 Decl *Sema::ActOnSkippedFunctionBody(Decl *Decl) {
10576   if (FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(Decl))
10577     FD->setHasSkippedBody();
10578   else if (ObjCMethodDecl *MD = dyn_cast_or_null<ObjCMethodDecl>(Decl))
10579     MD->setHasSkippedBody();
10580   return ActOnFinishFunctionBody(Decl, nullptr);
10581 }
10582 
10583 Decl *Sema::ActOnFinishFunctionBody(Decl *D, Stmt *BodyArg) {
10584   return ActOnFinishFunctionBody(D, BodyArg, false);
10585 }
10586 
10587 Decl *Sema::ActOnFinishFunctionBody(Decl *dcl, Stmt *Body,
10588                                     bool IsInstantiation) {
10589   FunctionDecl *FD = dcl ? dcl->getAsFunction() : nullptr;
10590 
10591   sema::AnalysisBasedWarnings::Policy WP = AnalysisWarnings.getDefaultPolicy();
10592   sema::AnalysisBasedWarnings::Policy *ActivePolicy = nullptr;
10593 
10594   if (FD) {
10595     FD->setBody(Body);
10596 
10597     if (getLangOpts().CPlusPlus14 && !FD->isInvalidDecl() && Body &&
10598         !FD->isDependentContext() && FD->getReturnType()->isUndeducedType()) {
10599       // If the function has a deduced result type but contains no 'return'
10600       // statements, the result type as written must be exactly 'auto', and
10601       // the deduced result type is 'void'.
10602       if (!FD->getReturnType()->getAs<AutoType>()) {
10603         Diag(dcl->getLocation(), diag::err_auto_fn_no_return_but_not_auto)
10604             << FD->getReturnType();
10605         FD->setInvalidDecl();
10606       } else {
10607         // Substitute 'void' for the 'auto' in the type.
10608         TypeLoc ResultType = getReturnTypeLoc(FD);
10609         Context.adjustDeducedFunctionResultType(
10610             FD, SubstAutoType(ResultType.getType(), Context.VoidTy));
10611       }
10612     } else if (getLangOpts().CPlusPlus11 && isLambdaCallOperator(FD)) {
10613       auto *LSI = getCurLambda();
10614       if (LSI->HasImplicitReturnType) {
10615         deduceClosureReturnType(*LSI);
10616 
10617         // C++11 [expr.prim.lambda]p4:
10618         //   [...] if there are no return statements in the compound-statement
10619         //   [the deduced type is] the type void
10620         QualType RetType =
10621             LSI->ReturnType.isNull() ? Context.VoidTy : LSI->ReturnType;
10622 
10623         // Update the return type to the deduced type.
10624         const FunctionProtoType *Proto =
10625             FD->getType()->getAs<FunctionProtoType>();
10626         FD->setType(Context.getFunctionType(RetType, Proto->getParamTypes(),
10627                                             Proto->getExtProtoInfo()));
10628       }
10629     }
10630 
10631     // The only way to be included in UndefinedButUsed is if there is an
10632     // ODR use before the definition. Avoid the expensive map lookup if this
10633     // is the first declaration.
10634     if (!FD->isFirstDecl() && FD->getPreviousDecl()->isUsed()) {
10635       if (!FD->isExternallyVisible())
10636         UndefinedButUsed.erase(FD);
10637       else if (FD->isInlined() &&
10638                !LangOpts.GNUInline &&
10639                (!FD->getPreviousDecl()->hasAttr<GNUInlineAttr>()))
10640         UndefinedButUsed.erase(FD);
10641     }
10642 
10643     // If the function implicitly returns zero (like 'main') or is naked,
10644     // don't complain about missing return statements.
10645     if (FD->hasImplicitReturnZero() || FD->hasAttr<NakedAttr>())
10646       WP.disableCheckFallThrough();
10647 
10648     // MSVC permits the use of pure specifier (=0) on function definition,
10649     // defined at class scope, warn about this non-standard construct.
10650     if (getLangOpts().MicrosoftExt && FD->isPure() && FD->isCanonicalDecl())
10651       Diag(FD->getLocation(), diag::ext_pure_function_definition);
10652 
10653     if (!FD->isInvalidDecl()) {
10654       // Don't diagnose unused parameters of defaulted or deleted functions.
10655       if (!FD->isDeleted() && !FD->isDefaulted())
10656         DiagnoseUnusedParameters(FD->param_begin(), FD->param_end());
10657       DiagnoseSizeOfParametersAndReturnValue(FD->param_begin(), FD->param_end(),
10658                                              FD->getReturnType(), FD);
10659 
10660       // If this is a structor, we need a vtable.
10661       if (CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(FD))
10662         MarkVTableUsed(FD->getLocation(), Constructor->getParent());
10663       else if (CXXDestructorDecl *Destructor = dyn_cast<CXXDestructorDecl>(FD))
10664         MarkVTableUsed(FD->getLocation(), Destructor->getParent());
10665 
10666       // Try to apply the named return value optimization. We have to check
10667       // if we can do this here because lambdas keep return statements around
10668       // to deduce an implicit return type.
10669       if (getLangOpts().CPlusPlus && FD->getReturnType()->isRecordType() &&
10670           !FD->isDependentContext())
10671         computeNRVO(Body, getCurFunction());
10672     }
10673 
10674     // GNU warning -Wmissing-prototypes:
10675     //   Warn if a global function is defined without a previous
10676     //   prototype declaration. This warning is issued even if the
10677     //   definition itself provides a prototype. The aim is to detect
10678     //   global functions that fail to be declared in header files.
10679     const FunctionDecl *PossibleZeroParamPrototype = nullptr;
10680     if (ShouldWarnAboutMissingPrototype(FD, PossibleZeroParamPrototype)) {
10681       Diag(FD->getLocation(), diag::warn_missing_prototype) << FD;
10682 
10683       if (PossibleZeroParamPrototype) {
10684         // We found a declaration that is not a prototype,
10685         // but that could be a zero-parameter prototype
10686         if (TypeSourceInfo *TI =
10687                 PossibleZeroParamPrototype->getTypeSourceInfo()) {
10688           TypeLoc TL = TI->getTypeLoc();
10689           if (FunctionNoProtoTypeLoc FTL = TL.getAs<FunctionNoProtoTypeLoc>())
10690             Diag(PossibleZeroParamPrototype->getLocation(),
10691                  diag::note_declaration_not_a_prototype)
10692                 << PossibleZeroParamPrototype
10693                 << FixItHint::CreateInsertion(FTL.getRParenLoc(), "void");
10694         }
10695       }
10696     }
10697 
10698     if (auto *MD = dyn_cast<CXXMethodDecl>(FD)) {
10699       const CXXMethodDecl *KeyFunction;
10700       if (MD->isOutOfLine() && (MD = MD->getCanonicalDecl()) &&
10701           MD->isVirtual() &&
10702           (KeyFunction = Context.getCurrentKeyFunction(MD->getParent())) &&
10703           MD == KeyFunction->getCanonicalDecl()) {
10704         // Update the key-function state if necessary for this ABI.
10705         if (FD->isInlined() &&
10706             !Context.getTargetInfo().getCXXABI().canKeyFunctionBeInline()) {
10707           Context.setNonKeyFunction(MD);
10708 
10709           // If the newly-chosen key function is already defined, then we
10710           // need to mark the vtable as used retroactively.
10711           KeyFunction = Context.getCurrentKeyFunction(MD->getParent());
10712           const FunctionDecl *Definition;
10713           if (KeyFunction && KeyFunction->isDefined(Definition))
10714             MarkVTableUsed(Definition->getLocation(), MD->getParent(), true);
10715         } else {
10716           // We just defined they key function; mark the vtable as used.
10717           MarkVTableUsed(FD->getLocation(), MD->getParent(), true);
10718         }
10719       }
10720     }
10721 
10722     assert((FD == getCurFunctionDecl() || getCurLambda()->CallOperator == FD) &&
10723            "Function parsing confused");
10724   } else if (ObjCMethodDecl *MD = dyn_cast_or_null<ObjCMethodDecl>(dcl)) {
10725     assert(MD == getCurMethodDecl() && "Method parsing confused");
10726     MD->setBody(Body);
10727     if (!MD->isInvalidDecl()) {
10728       DiagnoseUnusedParameters(MD->param_begin(), MD->param_end());
10729       DiagnoseSizeOfParametersAndReturnValue(MD->param_begin(), MD->param_end(),
10730                                              MD->getReturnType(), MD);
10731 
10732       if (Body)
10733         computeNRVO(Body, getCurFunction());
10734     }
10735     if (getCurFunction()->ObjCShouldCallSuper) {
10736       Diag(MD->getLocEnd(), diag::warn_objc_missing_super_call)
10737         << MD->getSelector().getAsString();
10738       getCurFunction()->ObjCShouldCallSuper = false;
10739     }
10740     if (getCurFunction()->ObjCWarnForNoDesignatedInitChain) {
10741       const ObjCMethodDecl *InitMethod = nullptr;
10742       bool isDesignated =
10743           MD->isDesignatedInitializerForTheInterface(&InitMethod);
10744       assert(isDesignated && InitMethod);
10745       (void)isDesignated;
10746 
10747       auto superIsNSObject = [&](const ObjCMethodDecl *MD) {
10748         auto IFace = MD->getClassInterface();
10749         if (!IFace)
10750           return false;
10751         auto SuperD = IFace->getSuperClass();
10752         if (!SuperD)
10753           return false;
10754         return SuperD->getIdentifier() ==
10755             NSAPIObj->getNSClassId(NSAPI::ClassId_NSObject);
10756       };
10757       // Don't issue this warning for unavailable inits or direct subclasses
10758       // of NSObject.
10759       if (!MD->isUnavailable() && !superIsNSObject(MD)) {
10760         Diag(MD->getLocation(),
10761              diag::warn_objc_designated_init_missing_super_call);
10762         Diag(InitMethod->getLocation(),
10763              diag::note_objc_designated_init_marked_here);
10764       }
10765       getCurFunction()->ObjCWarnForNoDesignatedInitChain = false;
10766     }
10767     if (getCurFunction()->ObjCWarnForNoInitDelegation) {
10768       // Don't issue this warning for unavaialable inits.
10769       if (!MD->isUnavailable())
10770         Diag(MD->getLocation(),
10771              diag::warn_objc_secondary_init_missing_init_call);
10772       getCurFunction()->ObjCWarnForNoInitDelegation = false;
10773     }
10774   } else {
10775     return nullptr;
10776   }
10777 
10778   assert(!getCurFunction()->ObjCShouldCallSuper &&
10779          "This should only be set for ObjC methods, which should have been "
10780          "handled in the block above.");
10781 
10782   // Verify and clean out per-function state.
10783   if (Body && (!FD || !FD->isDefaulted())) {
10784     // C++ constructors that have function-try-blocks can't have return
10785     // statements in the handlers of that block. (C++ [except.handle]p14)
10786     // Verify this.
10787     if (FD && isa<CXXConstructorDecl>(FD) && isa<CXXTryStmt>(Body))
10788       DiagnoseReturnInConstructorExceptionHandler(cast<CXXTryStmt>(Body));
10789 
10790     // Verify that gotos and switch cases don't jump into scopes illegally.
10791     if (getCurFunction()->NeedsScopeChecking() &&
10792         !PP.isCodeCompletionEnabled())
10793       DiagnoseInvalidJumps(Body);
10794 
10795     if (CXXDestructorDecl *Destructor = dyn_cast<CXXDestructorDecl>(dcl)) {
10796       if (!Destructor->getParent()->isDependentType())
10797         CheckDestructor(Destructor);
10798 
10799       MarkBaseAndMemberDestructorsReferenced(Destructor->getLocation(),
10800                                              Destructor->getParent());
10801     }
10802 
10803     // If any errors have occurred, clear out any temporaries that may have
10804     // been leftover. This ensures that these temporaries won't be picked up for
10805     // deletion in some later function.
10806     if (getDiagnostics().hasErrorOccurred() ||
10807         getDiagnostics().getSuppressAllDiagnostics()) {
10808       DiscardCleanupsInEvaluationContext();
10809     }
10810     if (!getDiagnostics().hasUncompilableErrorOccurred() &&
10811         !isa<FunctionTemplateDecl>(dcl)) {
10812       // Since the body is valid, issue any analysis-based warnings that are
10813       // enabled.
10814       ActivePolicy = &WP;
10815     }
10816 
10817     if (!IsInstantiation && FD && FD->isConstexpr() && !FD->isInvalidDecl() &&
10818         (!CheckConstexprFunctionDecl(FD) ||
10819          !CheckConstexprFunctionBody(FD, Body)))
10820       FD->setInvalidDecl();
10821 
10822     if (FD && FD->hasAttr<NakedAttr>()) {
10823       for (const Stmt *S : Body->children()) {
10824         if (!isa<AsmStmt>(S) && !isa<NullStmt>(S)) {
10825           Diag(S->getLocStart(), diag::err_non_asm_stmt_in_naked_function);
10826           Diag(FD->getAttr<NakedAttr>()->getLocation(), diag::note_attribute);
10827           FD->setInvalidDecl();
10828           break;
10829         }
10830       }
10831     }
10832 
10833     assert(ExprCleanupObjects.size() ==
10834                ExprEvalContexts.back().NumCleanupObjects &&
10835            "Leftover temporaries in function");
10836     assert(!ExprNeedsCleanups && "Unaccounted cleanups in function");
10837     assert(MaybeODRUseExprs.empty() &&
10838            "Leftover expressions for odr-use checking");
10839   }
10840 
10841   if (!IsInstantiation)
10842     PopDeclContext();
10843 
10844   PopFunctionScopeInfo(ActivePolicy, dcl);
10845   // If any errors have occurred, clear out any temporaries that may have
10846   // been leftover. This ensures that these temporaries won't be picked up for
10847   // deletion in some later function.
10848   if (getDiagnostics().hasErrorOccurred()) {
10849     DiscardCleanupsInEvaluationContext();
10850   }
10851 
10852   return dcl;
10853 }
10854 
10855 
10856 /// When we finish delayed parsing of an attribute, we must attach it to the
10857 /// relevant Decl.
10858 void Sema::ActOnFinishDelayedAttribute(Scope *S, Decl *D,
10859                                        ParsedAttributes &Attrs) {
10860   // Always attach attributes to the underlying decl.
10861   if (TemplateDecl *TD = dyn_cast<TemplateDecl>(D))
10862     D = TD->getTemplatedDecl();
10863   ProcessDeclAttributeList(S, D, Attrs.getList());
10864 
10865   if (CXXMethodDecl *Method = dyn_cast_or_null<CXXMethodDecl>(D))
10866     if (Method->isStatic())
10867       checkThisInStaticMemberFunctionAttributes(Method);
10868 }
10869 
10870 
10871 /// ImplicitlyDefineFunction - An undeclared identifier was used in a function
10872 /// call, forming a call to an implicitly defined function (per C99 6.5.1p2).
10873 NamedDecl *Sema::ImplicitlyDefineFunction(SourceLocation Loc,
10874                                           IdentifierInfo &II, Scope *S) {
10875   // Before we produce a declaration for an implicitly defined
10876   // function, see whether there was a locally-scoped declaration of
10877   // this name as a function or variable. If so, use that
10878   // (non-visible) declaration, and complain about it.
10879   if (NamedDecl *ExternCPrev = findLocallyScopedExternCDecl(&II)) {
10880     Diag(Loc, diag::warn_use_out_of_scope_declaration) << ExternCPrev;
10881     Diag(ExternCPrev->getLocation(), diag::note_previous_declaration);
10882     return ExternCPrev;
10883   }
10884 
10885   // Extension in C99.  Legal in C90, but warn about it.
10886   unsigned diag_id;
10887   if (II.getName().startswith("__builtin_"))
10888     diag_id = diag::warn_builtin_unknown;
10889   else if (getLangOpts().C99)
10890     diag_id = diag::ext_implicit_function_decl;
10891   else
10892     diag_id = diag::warn_implicit_function_decl;
10893   Diag(Loc, diag_id) << &II;
10894 
10895   // Because typo correction is expensive, only do it if the implicit
10896   // function declaration is going to be treated as an error.
10897   if (Diags.getDiagnosticLevel(diag_id, Loc) >= DiagnosticsEngine::Error) {
10898     TypoCorrection Corrected;
10899     if (S &&
10900         (Corrected = CorrectTypo(
10901              DeclarationNameInfo(&II, Loc), LookupOrdinaryName, S, nullptr,
10902              llvm::make_unique<DeclFilterCCC<FunctionDecl>>(), CTK_NonError)))
10903       diagnoseTypo(Corrected, PDiag(diag::note_function_suggestion),
10904                    /*ErrorRecovery*/false);
10905   }
10906 
10907   // Set a Declarator for the implicit definition: int foo();
10908   const char *Dummy;
10909   AttributeFactory attrFactory;
10910   DeclSpec DS(attrFactory);
10911   unsigned DiagID;
10912   bool Error = DS.SetTypeSpecType(DeclSpec::TST_int, Loc, Dummy, DiagID,
10913                                   Context.getPrintingPolicy());
10914   (void)Error; // Silence warning.
10915   assert(!Error && "Error setting up implicit decl!");
10916   SourceLocation NoLoc;
10917   Declarator D(DS, Declarator::BlockContext);
10918   D.AddTypeInfo(DeclaratorChunk::getFunction(/*HasProto=*/false,
10919                                              /*IsAmbiguous=*/false,
10920                                              /*LParenLoc=*/NoLoc,
10921                                              /*Params=*/nullptr,
10922                                              /*NumParams=*/0,
10923                                              /*EllipsisLoc=*/NoLoc,
10924                                              /*RParenLoc=*/NoLoc,
10925                                              /*TypeQuals=*/0,
10926                                              /*RefQualifierIsLvalueRef=*/true,
10927                                              /*RefQualifierLoc=*/NoLoc,
10928                                              /*ConstQualifierLoc=*/NoLoc,
10929                                              /*VolatileQualifierLoc=*/NoLoc,
10930                                              /*RestrictQualifierLoc=*/NoLoc,
10931                                              /*MutableLoc=*/NoLoc,
10932                                              EST_None,
10933                                              /*ESpecLoc=*/NoLoc,
10934                                              /*Exceptions=*/nullptr,
10935                                              /*ExceptionRanges=*/nullptr,
10936                                              /*NumExceptions=*/0,
10937                                              /*NoexceptExpr=*/nullptr,
10938                                              /*ExceptionSpecTokens=*/nullptr,
10939                                              Loc, Loc, D),
10940                 DS.getAttributes(),
10941                 SourceLocation());
10942   D.SetIdentifier(&II, Loc);
10943 
10944   // Insert this function into translation-unit scope.
10945 
10946   DeclContext *PrevDC = CurContext;
10947   CurContext = Context.getTranslationUnitDecl();
10948 
10949   FunctionDecl *FD = cast<FunctionDecl>(ActOnDeclarator(TUScope, D));
10950   FD->setImplicit();
10951 
10952   CurContext = PrevDC;
10953 
10954   AddKnownFunctionAttributes(FD);
10955 
10956   return FD;
10957 }
10958 
10959 /// \brief Adds any function attributes that we know a priori based on
10960 /// the declaration of this function.
10961 ///
10962 /// These attributes can apply both to implicitly-declared builtins
10963 /// (like __builtin___printf_chk) or to library-declared functions
10964 /// like NSLog or printf.
10965 ///
10966 /// We need to check for duplicate attributes both here and where user-written
10967 /// attributes are applied to declarations.
10968 void Sema::AddKnownFunctionAttributes(FunctionDecl *FD) {
10969   if (FD->isInvalidDecl())
10970     return;
10971 
10972   // If this is a built-in function, map its builtin attributes to
10973   // actual attributes.
10974   if (unsigned BuiltinID = FD->getBuiltinID()) {
10975     // Handle printf-formatting attributes.
10976     unsigned FormatIdx;
10977     bool HasVAListArg;
10978     if (Context.BuiltinInfo.isPrintfLike(BuiltinID, FormatIdx, HasVAListArg)) {
10979       if (!FD->hasAttr<FormatAttr>()) {
10980         const char *fmt = "printf";
10981         unsigned int NumParams = FD->getNumParams();
10982         if (FormatIdx < NumParams && // NumParams may be 0 (e.g. vfprintf)
10983             FD->getParamDecl(FormatIdx)->getType()->isObjCObjectPointerType())
10984           fmt = "NSString";
10985         FD->addAttr(FormatAttr::CreateImplicit(Context,
10986                                                &Context.Idents.get(fmt),
10987                                                FormatIdx+1,
10988                                                HasVAListArg ? 0 : FormatIdx+2,
10989                                                FD->getLocation()));
10990       }
10991     }
10992     if (Context.BuiltinInfo.isScanfLike(BuiltinID, FormatIdx,
10993                                              HasVAListArg)) {
10994      if (!FD->hasAttr<FormatAttr>())
10995        FD->addAttr(FormatAttr::CreateImplicit(Context,
10996                                               &Context.Idents.get("scanf"),
10997                                               FormatIdx+1,
10998                                               HasVAListArg ? 0 : FormatIdx+2,
10999                                               FD->getLocation()));
11000     }
11001 
11002     // Mark const if we don't care about errno and that is the only
11003     // thing preventing the function from being const. This allows
11004     // IRgen to use LLVM intrinsics for such functions.
11005     if (!getLangOpts().MathErrno &&
11006         Context.BuiltinInfo.isConstWithoutErrno(BuiltinID)) {
11007       if (!FD->hasAttr<ConstAttr>())
11008         FD->addAttr(ConstAttr::CreateImplicit(Context, FD->getLocation()));
11009     }
11010 
11011     if (Context.BuiltinInfo.isReturnsTwice(BuiltinID) &&
11012         !FD->hasAttr<ReturnsTwiceAttr>())
11013       FD->addAttr(ReturnsTwiceAttr::CreateImplicit(Context,
11014                                          FD->getLocation()));
11015     if (Context.BuiltinInfo.isNoThrow(BuiltinID) && !FD->hasAttr<NoThrowAttr>())
11016       FD->addAttr(NoThrowAttr::CreateImplicit(Context, FD->getLocation()));
11017     if (Context.BuiltinInfo.isConst(BuiltinID) && !FD->hasAttr<ConstAttr>())
11018       FD->addAttr(ConstAttr::CreateImplicit(Context, FD->getLocation()));
11019   }
11020 
11021   IdentifierInfo *Name = FD->getIdentifier();
11022   if (!Name)
11023     return;
11024   if ((!getLangOpts().CPlusPlus &&
11025        FD->getDeclContext()->isTranslationUnit()) ||
11026       (isa<LinkageSpecDecl>(FD->getDeclContext()) &&
11027        cast<LinkageSpecDecl>(FD->getDeclContext())->getLanguage() ==
11028        LinkageSpecDecl::lang_c)) {
11029     // Okay: this could be a libc/libm/Objective-C function we know
11030     // about.
11031   } else
11032     return;
11033 
11034   if (Name->isStr("asprintf") || Name->isStr("vasprintf")) {
11035     // FIXME: asprintf and vasprintf aren't C99 functions. Should they be
11036     // target-specific builtins, perhaps?
11037     if (!FD->hasAttr<FormatAttr>())
11038       FD->addAttr(FormatAttr::CreateImplicit(Context,
11039                                              &Context.Idents.get("printf"), 2,
11040                                              Name->isStr("vasprintf") ? 0 : 3,
11041                                              FD->getLocation()));
11042   }
11043 
11044   if (Name->isStr("__CFStringMakeConstantString")) {
11045     // We already have a __builtin___CFStringMakeConstantString,
11046     // but builds that use -fno-constant-cfstrings don't go through that.
11047     if (!FD->hasAttr<FormatArgAttr>())
11048       FD->addAttr(FormatArgAttr::CreateImplicit(Context, 1,
11049                                                 FD->getLocation()));
11050   }
11051 }
11052 
11053 TypedefDecl *Sema::ParseTypedefDecl(Scope *S, Declarator &D, QualType T,
11054                                     TypeSourceInfo *TInfo) {
11055   assert(D.getIdentifier() && "Wrong callback for declspec without declarator");
11056   assert(!T.isNull() && "GetTypeForDeclarator() returned null type");
11057 
11058   if (!TInfo) {
11059     assert(D.isInvalidType() && "no declarator info for valid type");
11060     TInfo = Context.getTrivialTypeSourceInfo(T);
11061   }
11062 
11063   // Scope manipulation handled by caller.
11064   TypedefDecl *NewTD = TypedefDecl::Create(Context, CurContext,
11065                                            D.getLocStart(),
11066                                            D.getIdentifierLoc(),
11067                                            D.getIdentifier(),
11068                                            TInfo);
11069 
11070   // Bail out immediately if we have an invalid declaration.
11071   if (D.isInvalidType()) {
11072     NewTD->setInvalidDecl();
11073     return NewTD;
11074   }
11075 
11076   if (D.getDeclSpec().isModulePrivateSpecified()) {
11077     if (CurContext->isFunctionOrMethod())
11078       Diag(NewTD->getLocation(), diag::err_module_private_local)
11079         << 2 << NewTD->getDeclName()
11080         << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc())
11081         << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc());
11082     else
11083       NewTD->setModulePrivate();
11084   }
11085 
11086   // C++ [dcl.typedef]p8:
11087   //   If the typedef declaration defines an unnamed class (or
11088   //   enum), the first typedef-name declared by the declaration
11089   //   to be that class type (or enum type) is used to denote the
11090   //   class type (or enum type) for linkage purposes only.
11091   // We need to check whether the type was declared in the declaration.
11092   switch (D.getDeclSpec().getTypeSpecType()) {
11093   case TST_enum:
11094   case TST_struct:
11095   case TST_interface:
11096   case TST_union:
11097   case TST_class: {
11098     TagDecl *tagFromDeclSpec = cast<TagDecl>(D.getDeclSpec().getRepAsDecl());
11099     setTagNameForLinkagePurposes(tagFromDeclSpec, NewTD);
11100     break;
11101   }
11102 
11103   default:
11104     break;
11105   }
11106 
11107   return NewTD;
11108 }
11109 
11110 
11111 /// \brief Check that this is a valid underlying type for an enum declaration.
11112 bool Sema::CheckEnumUnderlyingType(TypeSourceInfo *TI) {
11113   SourceLocation UnderlyingLoc = TI->getTypeLoc().getBeginLoc();
11114   QualType T = TI->getType();
11115 
11116   if (T->isDependentType())
11117     return false;
11118 
11119   if (const BuiltinType *BT = T->getAs<BuiltinType>())
11120     if (BT->isInteger())
11121       return false;
11122 
11123   Diag(UnderlyingLoc, diag::err_enum_invalid_underlying) << T;
11124   return true;
11125 }
11126 
11127 /// Check whether this is a valid redeclaration of a previous enumeration.
11128 /// \return true if the redeclaration was invalid.
11129 bool Sema::CheckEnumRedeclaration(SourceLocation EnumLoc, bool IsScoped,
11130                                   QualType EnumUnderlyingTy,
11131                                   const EnumDecl *Prev) {
11132   bool IsFixed = !EnumUnderlyingTy.isNull();
11133 
11134   if (IsScoped != Prev->isScoped()) {
11135     Diag(EnumLoc, diag::err_enum_redeclare_scoped_mismatch)
11136       << Prev->isScoped();
11137     Diag(Prev->getLocation(), diag::note_previous_declaration);
11138     return true;
11139   }
11140 
11141   if (IsFixed && Prev->isFixed()) {
11142     if (!EnumUnderlyingTy->isDependentType() &&
11143         !Prev->getIntegerType()->isDependentType() &&
11144         !Context.hasSameUnqualifiedType(EnumUnderlyingTy,
11145                                         Prev->getIntegerType())) {
11146       // TODO: Highlight the underlying type of the redeclaration.
11147       Diag(EnumLoc, diag::err_enum_redeclare_type_mismatch)
11148         << EnumUnderlyingTy << Prev->getIntegerType();
11149       Diag(Prev->getLocation(), diag::note_previous_declaration)
11150           << Prev->getIntegerTypeRange();
11151       return true;
11152     }
11153   } else if (IsFixed != Prev->isFixed()) {
11154     Diag(EnumLoc, diag::err_enum_redeclare_fixed_mismatch)
11155       << Prev->isFixed();
11156     Diag(Prev->getLocation(), diag::note_previous_declaration);
11157     return true;
11158   }
11159 
11160   return false;
11161 }
11162 
11163 /// \brief Get diagnostic %select index for tag kind for
11164 /// redeclaration diagnostic message.
11165 /// WARNING: Indexes apply to particular diagnostics only!
11166 ///
11167 /// \returns diagnostic %select index.
11168 static unsigned getRedeclDiagFromTagKind(TagTypeKind Tag) {
11169   switch (Tag) {
11170   case TTK_Struct: return 0;
11171   case TTK_Interface: return 1;
11172   case TTK_Class:  return 2;
11173   default: llvm_unreachable("Invalid tag kind for redecl diagnostic!");
11174   }
11175 }
11176 
11177 /// \brief Determine if tag kind is a class-key compatible with
11178 /// class for redeclaration (class, struct, or __interface).
11179 ///
11180 /// \returns true iff the tag kind is compatible.
11181 static bool isClassCompatTagKind(TagTypeKind Tag)
11182 {
11183   return Tag == TTK_Struct || Tag == TTK_Class || Tag == TTK_Interface;
11184 }
11185 
11186 /// \brief Determine whether a tag with a given kind is acceptable
11187 /// as a redeclaration of the given tag declaration.
11188 ///
11189 /// \returns true if the new tag kind is acceptable, false otherwise.
11190 bool Sema::isAcceptableTagRedeclaration(const TagDecl *Previous,
11191                                         TagTypeKind NewTag, bool isDefinition,
11192                                         SourceLocation NewTagLoc,
11193                                         const IdentifierInfo &Name) {
11194   // C++ [dcl.type.elab]p3:
11195   //   The class-key or enum keyword present in the
11196   //   elaborated-type-specifier shall agree in kind with the
11197   //   declaration to which the name in the elaborated-type-specifier
11198   //   refers. This rule also applies to the form of
11199   //   elaborated-type-specifier that declares a class-name or
11200   //   friend class since it can be construed as referring to the
11201   //   definition of the class. Thus, in any
11202   //   elaborated-type-specifier, the enum keyword shall be used to
11203   //   refer to an enumeration (7.2), the union class-key shall be
11204   //   used to refer to a union (clause 9), and either the class or
11205   //   struct class-key shall be used to refer to a class (clause 9)
11206   //   declared using the class or struct class-key.
11207   TagTypeKind OldTag = Previous->getTagKind();
11208   if (!isDefinition || !isClassCompatTagKind(NewTag))
11209     if (OldTag == NewTag)
11210       return true;
11211 
11212   if (isClassCompatTagKind(OldTag) && isClassCompatTagKind(NewTag)) {
11213     // Warn about the struct/class tag mismatch.
11214     bool isTemplate = false;
11215     if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(Previous))
11216       isTemplate = Record->getDescribedClassTemplate();
11217 
11218     if (!ActiveTemplateInstantiations.empty()) {
11219       // In a template instantiation, do not offer fix-its for tag mismatches
11220       // since they usually mess up the template instead of fixing the problem.
11221       Diag(NewTagLoc, diag::warn_struct_class_tag_mismatch)
11222         << getRedeclDiagFromTagKind(NewTag) << isTemplate << &Name
11223         << getRedeclDiagFromTagKind(OldTag);
11224       return true;
11225     }
11226 
11227     if (isDefinition) {
11228       // On definitions, check previous tags and issue a fix-it for each
11229       // one that doesn't match the current tag.
11230       if (Previous->getDefinition()) {
11231         // Don't suggest fix-its for redefinitions.
11232         return true;
11233       }
11234 
11235       bool previousMismatch = false;
11236       for (auto I : Previous->redecls()) {
11237         if (I->getTagKind() != NewTag) {
11238           if (!previousMismatch) {
11239             previousMismatch = true;
11240             Diag(NewTagLoc, diag::warn_struct_class_previous_tag_mismatch)
11241               << getRedeclDiagFromTagKind(NewTag) << isTemplate << &Name
11242               << getRedeclDiagFromTagKind(I->getTagKind());
11243           }
11244           Diag(I->getInnerLocStart(), diag::note_struct_class_suggestion)
11245             << getRedeclDiagFromTagKind(NewTag)
11246             << FixItHint::CreateReplacement(I->getInnerLocStart(),
11247                  TypeWithKeyword::getTagTypeKindName(NewTag));
11248         }
11249       }
11250       return true;
11251     }
11252 
11253     // Check for a previous definition.  If current tag and definition
11254     // are same type, do nothing.  If no definition, but disagree with
11255     // with previous tag type, give a warning, but no fix-it.
11256     const TagDecl *Redecl = Previous->getDefinition() ?
11257                             Previous->getDefinition() : Previous;
11258     if (Redecl->getTagKind() == NewTag) {
11259       return true;
11260     }
11261 
11262     Diag(NewTagLoc, diag::warn_struct_class_tag_mismatch)
11263       << getRedeclDiagFromTagKind(NewTag) << isTemplate << &Name
11264       << getRedeclDiagFromTagKind(OldTag);
11265     Diag(Redecl->getLocation(), diag::note_previous_use);
11266 
11267     // If there is a previous definition, suggest a fix-it.
11268     if (Previous->getDefinition()) {
11269         Diag(NewTagLoc, diag::note_struct_class_suggestion)
11270           << getRedeclDiagFromTagKind(Redecl->getTagKind())
11271           << FixItHint::CreateReplacement(SourceRange(NewTagLoc),
11272                TypeWithKeyword::getTagTypeKindName(Redecl->getTagKind()));
11273     }
11274 
11275     return true;
11276   }
11277   return false;
11278 }
11279 
11280 /// Add a minimal nested name specifier fixit hint to allow lookup of a tag name
11281 /// from an outer enclosing namespace or file scope inside a friend declaration.
11282 /// This should provide the commented out code in the following snippet:
11283 ///   namespace N {
11284 ///     struct X;
11285 ///     namespace M {
11286 ///       struct Y { friend struct /*N::*/ X; };
11287 ///     }
11288 ///   }
11289 static FixItHint createFriendTagNNSFixIt(Sema &SemaRef, NamedDecl *ND, Scope *S,
11290                                          SourceLocation NameLoc) {
11291   // While the decl is in a namespace, do repeated lookup of that name and see
11292   // if we get the same namespace back.  If we do not, continue until
11293   // translation unit scope, at which point we have a fully qualified NNS.
11294   SmallVector<IdentifierInfo *, 4> Namespaces;
11295   DeclContext *DC = ND->getDeclContext()->getRedeclContext();
11296   for (; !DC->isTranslationUnit(); DC = DC->getParent()) {
11297     // This tag should be declared in a namespace, which can only be enclosed by
11298     // other namespaces.  Bail if there's an anonymous namespace in the chain.
11299     NamespaceDecl *Namespace = dyn_cast<NamespaceDecl>(DC);
11300     if (!Namespace || Namespace->isAnonymousNamespace())
11301       return FixItHint();
11302     IdentifierInfo *II = Namespace->getIdentifier();
11303     Namespaces.push_back(II);
11304     NamedDecl *Lookup = SemaRef.LookupSingleName(
11305         S, II, NameLoc, Sema::LookupNestedNameSpecifierName);
11306     if (Lookup == Namespace)
11307       break;
11308   }
11309 
11310   // Once we have all the namespaces, reverse them to go outermost first, and
11311   // build an NNS.
11312   SmallString<64> Insertion;
11313   llvm::raw_svector_ostream OS(Insertion);
11314   if (DC->isTranslationUnit())
11315     OS << "::";
11316   std::reverse(Namespaces.begin(), Namespaces.end());
11317   for (auto *II : Namespaces)
11318     OS << II->getName() << "::";
11319   OS.flush();
11320   return FixItHint::CreateInsertion(NameLoc, Insertion);
11321 }
11322 
11323 /// \brief This is invoked when we see 'struct foo' or 'struct {'.  In the
11324 /// former case, Name will be non-null.  In the later case, Name will be null.
11325 /// TagSpec indicates what kind of tag this is. TUK indicates whether this is a
11326 /// reference/declaration/definition of a tag.
11327 ///
11328 /// \param IsTypeSpecifier \c true if this is a type-specifier (or
11329 /// trailing-type-specifier) other than one in an alias-declaration.
11330 ///
11331 /// \param SkipBody If non-null, will be set to indicate if the caller should
11332 /// skip the definition of this tag and treat it as if it were a declaration.
11333 Decl *Sema::ActOnTag(Scope *S, unsigned TagSpec, TagUseKind TUK,
11334                      SourceLocation KWLoc, CXXScopeSpec &SS,
11335                      IdentifierInfo *Name, SourceLocation NameLoc,
11336                      AttributeList *Attr, AccessSpecifier AS,
11337                      SourceLocation ModulePrivateLoc,
11338                      MultiTemplateParamsArg TemplateParameterLists,
11339                      bool &OwnedDecl, bool &IsDependent,
11340                      SourceLocation ScopedEnumKWLoc,
11341                      bool ScopedEnumUsesClassTag,
11342                      TypeResult UnderlyingType,
11343                      bool IsTypeSpecifier, SkipBodyInfo *SkipBody) {
11344   // If this is not a definition, it must have a name.
11345   IdentifierInfo *OrigName = Name;
11346   assert((Name != nullptr || TUK == TUK_Definition) &&
11347          "Nameless record must be a definition!");
11348   assert(TemplateParameterLists.size() == 0 || TUK != TUK_Reference);
11349 
11350   OwnedDecl = false;
11351   TagTypeKind Kind = TypeWithKeyword::getTagTypeKindForTypeSpec(TagSpec);
11352   bool ScopedEnum = ScopedEnumKWLoc.isValid();
11353 
11354   // FIXME: Check explicit specializations more carefully.
11355   bool isExplicitSpecialization = false;
11356   bool Invalid = false;
11357 
11358   // We only need to do this matching if we have template parameters
11359   // or a scope specifier, which also conveniently avoids this work
11360   // for non-C++ cases.
11361   if (TemplateParameterLists.size() > 0 ||
11362       (SS.isNotEmpty() && TUK != TUK_Reference)) {
11363     if (TemplateParameterList *TemplateParams =
11364             MatchTemplateParametersToScopeSpecifier(
11365                 KWLoc, NameLoc, SS, nullptr, TemplateParameterLists,
11366                 TUK == TUK_Friend, isExplicitSpecialization, Invalid)) {
11367       if (Kind == TTK_Enum) {
11368         Diag(KWLoc, diag::err_enum_template);
11369         return nullptr;
11370       }
11371 
11372       if (TemplateParams->size() > 0) {
11373         // This is a declaration or definition of a class template (which may
11374         // be a member of another template).
11375 
11376         if (Invalid)
11377           return nullptr;
11378 
11379         OwnedDecl = false;
11380         DeclResult Result = CheckClassTemplate(S, TagSpec, TUK, KWLoc,
11381                                                SS, Name, NameLoc, Attr,
11382                                                TemplateParams, AS,
11383                                                ModulePrivateLoc,
11384                                                /*FriendLoc*/SourceLocation(),
11385                                                TemplateParameterLists.size()-1,
11386                                                TemplateParameterLists.data(),
11387                                                SkipBody);
11388         return Result.get();
11389       } else {
11390         // The "template<>" header is extraneous.
11391         Diag(TemplateParams->getTemplateLoc(), diag::err_template_tag_noparams)
11392           << TypeWithKeyword::getTagTypeKindName(Kind) << Name;
11393         isExplicitSpecialization = true;
11394       }
11395     }
11396   }
11397 
11398   // Figure out the underlying type if this a enum declaration. We need to do
11399   // this early, because it's needed to detect if this is an incompatible
11400   // redeclaration.
11401   llvm::PointerUnion<const Type*, TypeSourceInfo*> EnumUnderlying;
11402 
11403   if (Kind == TTK_Enum) {
11404     if (UnderlyingType.isInvalid() || (!UnderlyingType.get() && ScopedEnum))
11405       // No underlying type explicitly specified, or we failed to parse the
11406       // type, default to int.
11407       EnumUnderlying = Context.IntTy.getTypePtr();
11408     else if (UnderlyingType.get()) {
11409       // C++0x 7.2p2: The type-specifier-seq of an enum-base shall name an
11410       // integral type; any cv-qualification is ignored.
11411       TypeSourceInfo *TI = nullptr;
11412       GetTypeFromParser(UnderlyingType.get(), &TI);
11413       EnumUnderlying = TI;
11414 
11415       if (CheckEnumUnderlyingType(TI))
11416         // Recover by falling back to int.
11417         EnumUnderlying = Context.IntTy.getTypePtr();
11418 
11419       if (DiagnoseUnexpandedParameterPack(TI->getTypeLoc().getBeginLoc(), TI,
11420                                           UPPC_FixedUnderlyingType))
11421         EnumUnderlying = Context.IntTy.getTypePtr();
11422 
11423     } else if (getLangOpts().MSVCCompat)
11424       // Microsoft enums are always of int type.
11425       EnumUnderlying = Context.IntTy.getTypePtr();
11426   }
11427 
11428   DeclContext *SearchDC = CurContext;
11429   DeclContext *DC = CurContext;
11430   bool isStdBadAlloc = false;
11431 
11432   RedeclarationKind Redecl = ForRedeclaration;
11433   if (TUK == TUK_Friend || TUK == TUK_Reference)
11434     Redecl = NotForRedeclaration;
11435 
11436   LookupResult Previous(*this, Name, NameLoc, LookupTagName, Redecl);
11437   if (Name && SS.isNotEmpty()) {
11438     // We have a nested-name tag ('struct foo::bar').
11439 
11440     // Check for invalid 'foo::'.
11441     if (SS.isInvalid()) {
11442       Name = nullptr;
11443       goto CreateNewDecl;
11444     }
11445 
11446     // If this is a friend or a reference to a class in a dependent
11447     // context, don't try to make a decl for it.
11448     if (TUK == TUK_Friend || TUK == TUK_Reference) {
11449       DC = computeDeclContext(SS, false);
11450       if (!DC) {
11451         IsDependent = true;
11452         return nullptr;
11453       }
11454     } else {
11455       DC = computeDeclContext(SS, true);
11456       if (!DC) {
11457         Diag(SS.getRange().getBegin(), diag::err_dependent_nested_name_spec)
11458           << SS.getRange();
11459         return nullptr;
11460       }
11461     }
11462 
11463     if (RequireCompleteDeclContext(SS, DC))
11464       return nullptr;
11465 
11466     SearchDC = DC;
11467     // Look-up name inside 'foo::'.
11468     LookupQualifiedName(Previous, DC);
11469 
11470     if (Previous.isAmbiguous())
11471       return nullptr;
11472 
11473     if (Previous.empty()) {
11474       // Name lookup did not find anything. However, if the
11475       // nested-name-specifier refers to the current instantiation,
11476       // and that current instantiation has any dependent base
11477       // classes, we might find something at instantiation time: treat
11478       // this as a dependent elaborated-type-specifier.
11479       // But this only makes any sense for reference-like lookups.
11480       if (Previous.wasNotFoundInCurrentInstantiation() &&
11481           (TUK == TUK_Reference || TUK == TUK_Friend)) {
11482         IsDependent = true;
11483         return nullptr;
11484       }
11485 
11486       // A tag 'foo::bar' must already exist.
11487       Diag(NameLoc, diag::err_not_tag_in_scope)
11488         << Kind << Name << DC << SS.getRange();
11489       Name = nullptr;
11490       Invalid = true;
11491       goto CreateNewDecl;
11492     }
11493   } else if (Name) {
11494     // If this is a named struct, check to see if there was a previous forward
11495     // declaration or definition.
11496     // FIXME: We're looking into outer scopes here, even when we
11497     // shouldn't be. Doing so can result in ambiguities that we
11498     // shouldn't be diagnosing.
11499     LookupName(Previous, S);
11500 
11501     // When declaring or defining a tag, ignore ambiguities introduced
11502     // by types using'ed into this scope.
11503     if (Previous.isAmbiguous() &&
11504         (TUK == TUK_Definition || TUK == TUK_Declaration)) {
11505       LookupResult::Filter F = Previous.makeFilter();
11506       while (F.hasNext()) {
11507         NamedDecl *ND = F.next();
11508         if (ND->getDeclContext()->getRedeclContext() != SearchDC)
11509           F.erase();
11510       }
11511       F.done();
11512     }
11513 
11514     // C++11 [namespace.memdef]p3:
11515     //   If the name in a friend declaration is neither qualified nor
11516     //   a template-id and the declaration is a function or an
11517     //   elaborated-type-specifier, the lookup to determine whether
11518     //   the entity has been previously declared shall not consider
11519     //   any scopes outside the innermost enclosing namespace.
11520     //
11521     // MSVC doesn't implement the above rule for types, so a friend tag
11522     // declaration may be a redeclaration of a type declared in an enclosing
11523     // scope.  They do implement this rule for friend functions.
11524     //
11525     // Does it matter that this should be by scope instead of by
11526     // semantic context?
11527     if (!Previous.empty() && TUK == TUK_Friend) {
11528       DeclContext *EnclosingNS = SearchDC->getEnclosingNamespaceContext();
11529       LookupResult::Filter F = Previous.makeFilter();
11530       bool FriendSawTagOutsideEnclosingNamespace = false;
11531       while (F.hasNext()) {
11532         NamedDecl *ND = F.next();
11533         DeclContext *DC = ND->getDeclContext()->getRedeclContext();
11534         if (DC->isFileContext() &&
11535             !EnclosingNS->Encloses(ND->getDeclContext())) {
11536           if (getLangOpts().MSVCCompat)
11537             FriendSawTagOutsideEnclosingNamespace = true;
11538           else
11539             F.erase();
11540         }
11541       }
11542       F.done();
11543 
11544       // Diagnose this MSVC extension in the easy case where lookup would have
11545       // unambiguously found something outside the enclosing namespace.
11546       if (Previous.isSingleResult() && FriendSawTagOutsideEnclosingNamespace) {
11547         NamedDecl *ND = Previous.getFoundDecl();
11548         Diag(NameLoc, diag::ext_friend_tag_redecl_outside_namespace)
11549             << createFriendTagNNSFixIt(*this, ND, S, NameLoc);
11550       }
11551     }
11552 
11553     // Note:  there used to be some attempt at recovery here.
11554     if (Previous.isAmbiguous())
11555       return nullptr;
11556 
11557     if (!getLangOpts().CPlusPlus && TUK != TUK_Reference) {
11558       // FIXME: This makes sure that we ignore the contexts associated
11559       // with C structs, unions, and enums when looking for a matching
11560       // tag declaration or definition. See the similar lookup tweak
11561       // in Sema::LookupName; is there a better way to deal with this?
11562       while (isa<RecordDecl>(SearchDC) || isa<EnumDecl>(SearchDC))
11563         SearchDC = SearchDC->getParent();
11564     }
11565   }
11566 
11567   if (Previous.isSingleResult() &&
11568       Previous.getFoundDecl()->isTemplateParameter()) {
11569     // Maybe we will complain about the shadowed template parameter.
11570     DiagnoseTemplateParameterShadow(NameLoc, Previous.getFoundDecl());
11571     // Just pretend that we didn't see the previous declaration.
11572     Previous.clear();
11573   }
11574 
11575   if (getLangOpts().CPlusPlus && Name && DC && StdNamespace &&
11576       DC->Equals(getStdNamespace()) && Name->isStr("bad_alloc")) {
11577     // This is a declaration of or a reference to "std::bad_alloc".
11578     isStdBadAlloc = true;
11579 
11580     if (Previous.empty() && StdBadAlloc) {
11581       // std::bad_alloc has been implicitly declared (but made invisible to
11582       // name lookup). Fill in this implicit declaration as the previous
11583       // declaration, so that the declarations get chained appropriately.
11584       Previous.addDecl(getStdBadAlloc());
11585     }
11586   }
11587 
11588   // If we didn't find a previous declaration, and this is a reference
11589   // (or friend reference), move to the correct scope.  In C++, we
11590   // also need to do a redeclaration lookup there, just in case
11591   // there's a shadow friend decl.
11592   if (Name && Previous.empty() &&
11593       (TUK == TUK_Reference || TUK == TUK_Friend)) {
11594     if (Invalid) goto CreateNewDecl;
11595     assert(SS.isEmpty());
11596 
11597     if (TUK == TUK_Reference) {
11598       // C++ [basic.scope.pdecl]p5:
11599       //   -- for an elaborated-type-specifier of the form
11600       //
11601       //          class-key identifier
11602       //
11603       //      if the elaborated-type-specifier is used in the
11604       //      decl-specifier-seq or parameter-declaration-clause of a
11605       //      function defined in namespace scope, the identifier is
11606       //      declared as a class-name in the namespace that contains
11607       //      the declaration; otherwise, except as a friend
11608       //      declaration, the identifier is declared in the smallest
11609       //      non-class, non-function-prototype scope that contains the
11610       //      declaration.
11611       //
11612       // C99 6.7.2.3p8 has a similar (but not identical!) provision for
11613       // C structs and unions.
11614       //
11615       // It is an error in C++ to declare (rather than define) an enum
11616       // type, including via an elaborated type specifier.  We'll
11617       // diagnose that later; for now, declare the enum in the same
11618       // scope as we would have picked for any other tag type.
11619       //
11620       // GNU C also supports this behavior as part of its incomplete
11621       // enum types extension, while GNU C++ does not.
11622       //
11623       // Find the context where we'll be declaring the tag.
11624       // FIXME: We would like to maintain the current DeclContext as the
11625       // lexical context,
11626       while (!SearchDC->isFileContext() && !SearchDC->isFunctionOrMethod())
11627         SearchDC = SearchDC->getParent();
11628 
11629       // Find the scope where we'll be declaring the tag.
11630       while (S->isClassScope() ||
11631              (getLangOpts().CPlusPlus &&
11632               S->isFunctionPrototypeScope()) ||
11633              ((S->getFlags() & Scope::DeclScope) == 0) ||
11634              (S->getEntity() && S->getEntity()->isTransparentContext()))
11635         S = S->getParent();
11636     } else {
11637       assert(TUK == TUK_Friend);
11638       // C++ [namespace.memdef]p3:
11639       //   If a friend declaration in a non-local class first declares a
11640       //   class or function, the friend class or function is a member of
11641       //   the innermost enclosing namespace.
11642       SearchDC = SearchDC->getEnclosingNamespaceContext();
11643     }
11644 
11645     // In C++, we need to do a redeclaration lookup to properly
11646     // diagnose some problems.
11647     if (getLangOpts().CPlusPlus) {
11648       Previous.setRedeclarationKind(ForRedeclaration);
11649       LookupQualifiedName(Previous, SearchDC);
11650     }
11651   }
11652 
11653   // If we have a known previous declaration to use, then use it.
11654   if (Previous.empty() && SkipBody && SkipBody->Previous)
11655     Previous.addDecl(SkipBody->Previous);
11656 
11657   if (!Previous.empty()) {
11658     NamedDecl *PrevDecl = Previous.getFoundDecl();
11659     NamedDecl *DirectPrevDecl =
11660         getLangOpts().MSVCCompat ? *Previous.begin() : PrevDecl;
11661 
11662     // It's okay to have a tag decl in the same scope as a typedef
11663     // which hides a tag decl in the same scope.  Finding this
11664     // insanity with a redeclaration lookup can only actually happen
11665     // in C++.
11666     //
11667     // This is also okay for elaborated-type-specifiers, which is
11668     // technically forbidden by the current standard but which is
11669     // okay according to the likely resolution of an open issue;
11670     // see http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#407
11671     if (getLangOpts().CPlusPlus) {
11672       if (TypedefNameDecl *TD = dyn_cast<TypedefNameDecl>(PrevDecl)) {
11673         if (const TagType *TT = TD->getUnderlyingType()->getAs<TagType>()) {
11674           TagDecl *Tag = TT->getDecl();
11675           if (Tag->getDeclName() == Name &&
11676               Tag->getDeclContext()->getRedeclContext()
11677                           ->Equals(TD->getDeclContext()->getRedeclContext())) {
11678             PrevDecl = Tag;
11679             Previous.clear();
11680             Previous.addDecl(Tag);
11681             Previous.resolveKind();
11682           }
11683         }
11684       }
11685     }
11686 
11687     if (TagDecl *PrevTagDecl = dyn_cast<TagDecl>(PrevDecl)) {
11688       // If this is a use of a previous tag, or if the tag is already declared
11689       // in the same scope (so that the definition/declaration completes or
11690       // rementions the tag), reuse the decl.
11691       if (TUK == TUK_Reference || TUK == TUK_Friend ||
11692           isDeclInScope(DirectPrevDecl, SearchDC, S,
11693                         SS.isNotEmpty() || isExplicitSpecialization)) {
11694         // Make sure that this wasn't declared as an enum and now used as a
11695         // struct or something similar.
11696         if (!isAcceptableTagRedeclaration(PrevTagDecl, Kind,
11697                                           TUK == TUK_Definition, KWLoc,
11698                                           *Name)) {
11699           bool SafeToContinue
11700             = (PrevTagDecl->getTagKind() != TTK_Enum &&
11701                Kind != TTK_Enum);
11702           if (SafeToContinue)
11703             Diag(KWLoc, diag::err_use_with_wrong_tag)
11704               << Name
11705               << FixItHint::CreateReplacement(SourceRange(KWLoc),
11706                                               PrevTagDecl->getKindName());
11707           else
11708             Diag(KWLoc, diag::err_use_with_wrong_tag) << Name;
11709           Diag(PrevTagDecl->getLocation(), diag::note_previous_use);
11710 
11711           if (SafeToContinue)
11712             Kind = PrevTagDecl->getTagKind();
11713           else {
11714             // Recover by making this an anonymous redefinition.
11715             Name = nullptr;
11716             Previous.clear();
11717             Invalid = true;
11718           }
11719         }
11720 
11721         if (Kind == TTK_Enum && PrevTagDecl->getTagKind() == TTK_Enum) {
11722           const EnumDecl *PrevEnum = cast<EnumDecl>(PrevTagDecl);
11723 
11724           // If this is an elaborated-type-specifier for a scoped enumeration,
11725           // the 'class' keyword is not necessary and not permitted.
11726           if (TUK == TUK_Reference || TUK == TUK_Friend) {
11727             if (ScopedEnum)
11728               Diag(ScopedEnumKWLoc, diag::err_enum_class_reference)
11729                 << PrevEnum->isScoped()
11730                 << FixItHint::CreateRemoval(ScopedEnumKWLoc);
11731             return PrevTagDecl;
11732           }
11733 
11734           QualType EnumUnderlyingTy;
11735           if (TypeSourceInfo *TI = EnumUnderlying.dyn_cast<TypeSourceInfo*>())
11736             EnumUnderlyingTy = TI->getType().getUnqualifiedType();
11737           else if (const Type *T = EnumUnderlying.dyn_cast<const Type*>())
11738             EnumUnderlyingTy = QualType(T, 0);
11739 
11740           // All conflicts with previous declarations are recovered by
11741           // returning the previous declaration, unless this is a definition,
11742           // in which case we want the caller to bail out.
11743           if (CheckEnumRedeclaration(NameLoc.isValid() ? NameLoc : KWLoc,
11744                                      ScopedEnum, EnumUnderlyingTy, PrevEnum))
11745             return TUK == TUK_Declaration ? PrevTagDecl : nullptr;
11746         }
11747 
11748         // C++11 [class.mem]p1:
11749         //   A member shall not be declared twice in the member-specification,
11750         //   except that a nested class or member class template can be declared
11751         //   and then later defined.
11752         if (TUK == TUK_Declaration && PrevDecl->isCXXClassMember() &&
11753             S->isDeclScope(PrevDecl)) {
11754           Diag(NameLoc, diag::ext_member_redeclared);
11755           Diag(PrevTagDecl->getLocation(), diag::note_previous_declaration);
11756         }
11757 
11758         if (!Invalid) {
11759           // If this is a use, just return the declaration we found, unless
11760           // we have attributes.
11761 
11762           // FIXME: In the future, return a variant or some other clue
11763           // for the consumer of this Decl to know it doesn't own it.
11764           // For our current ASTs this shouldn't be a problem, but will
11765           // need to be changed with DeclGroups.
11766           if (!Attr &&
11767               ((TUK == TUK_Reference &&
11768                 (!PrevTagDecl->getFriendObjectKind() || getLangOpts().MicrosoftExt))
11769                || TUK == TUK_Friend))
11770             return PrevTagDecl;
11771 
11772           // Diagnose attempts to redefine a tag.
11773           if (TUK == TUK_Definition) {
11774             if (NamedDecl *Def = PrevTagDecl->getDefinition()) {
11775               // If we're defining a specialization and the previous definition
11776               // is from an implicit instantiation, don't emit an error
11777               // here; we'll catch this in the general case below.
11778               bool IsExplicitSpecializationAfterInstantiation = false;
11779               if (isExplicitSpecialization) {
11780                 if (CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Def))
11781                   IsExplicitSpecializationAfterInstantiation =
11782                     RD->getTemplateSpecializationKind() !=
11783                     TSK_ExplicitSpecialization;
11784                 else if (EnumDecl *ED = dyn_cast<EnumDecl>(Def))
11785                   IsExplicitSpecializationAfterInstantiation =
11786                     ED->getTemplateSpecializationKind() !=
11787                     TSK_ExplicitSpecialization;
11788               }
11789 
11790               NamedDecl *Hidden = nullptr;
11791               if (SkipBody && getLangOpts().CPlusPlus &&
11792                   !hasVisibleDefinition(Def, &Hidden)) {
11793                 // There is a definition of this tag, but it is not visible. We
11794                 // explicitly make use of C++'s one definition rule here, and
11795                 // assume that this definition is identical to the hidden one
11796                 // we already have. Make the existing definition visible and
11797                 // use it in place of this one.
11798                 SkipBody->ShouldSkip = true;
11799                 makeMergedDefinitionVisible(Hidden, KWLoc);
11800                 return Def;
11801               } else if (!IsExplicitSpecializationAfterInstantiation) {
11802                 // A redeclaration in function prototype scope in C isn't
11803                 // visible elsewhere, so merely issue a warning.
11804                 if (!getLangOpts().CPlusPlus && S->containedInPrototypeScope())
11805                   Diag(NameLoc, diag::warn_redefinition_in_param_list) << Name;
11806                 else
11807                   Diag(NameLoc, diag::err_redefinition) << Name;
11808                 Diag(Def->getLocation(), diag::note_previous_definition);
11809                 // If this is a redefinition, recover by making this
11810                 // struct be anonymous, which will make any later
11811                 // references get the previous definition.
11812                 Name = nullptr;
11813                 Previous.clear();
11814                 Invalid = true;
11815               }
11816             } else {
11817               // If the type is currently being defined, complain
11818               // about a nested redefinition.
11819               auto *TD = Context.getTagDeclType(PrevTagDecl)->getAsTagDecl();
11820               if (TD->isBeingDefined()) {
11821                 Diag(NameLoc, diag::err_nested_redefinition) << Name;
11822                 Diag(PrevTagDecl->getLocation(),
11823                      diag::note_previous_definition);
11824                 Name = nullptr;
11825                 Previous.clear();
11826                 Invalid = true;
11827               }
11828             }
11829 
11830             // Okay, this is definition of a previously declared or referenced
11831             // tag. We're going to create a new Decl for it.
11832           }
11833 
11834           // Okay, we're going to make a redeclaration.  If this is some kind
11835           // of reference, make sure we build the redeclaration in the same DC
11836           // as the original, and ignore the current access specifier.
11837           if (TUK == TUK_Friend || TUK == TUK_Reference) {
11838             SearchDC = PrevTagDecl->getDeclContext();
11839             AS = AS_none;
11840           }
11841         }
11842         // If we get here we have (another) forward declaration or we
11843         // have a definition.  Just create a new decl.
11844 
11845       } else {
11846         // If we get here, this is a definition of a new tag type in a nested
11847         // scope, e.g. "struct foo; void bar() { struct foo; }", just create a
11848         // new decl/type.  We set PrevDecl to NULL so that the entities
11849         // have distinct types.
11850         Previous.clear();
11851       }
11852       // If we get here, we're going to create a new Decl. If PrevDecl
11853       // is non-NULL, it's a definition of the tag declared by
11854       // PrevDecl. If it's NULL, we have a new definition.
11855 
11856 
11857     // Otherwise, PrevDecl is not a tag, but was found with tag
11858     // lookup.  This is only actually possible in C++, where a few
11859     // things like templates still live in the tag namespace.
11860     } else {
11861       // Use a better diagnostic if an elaborated-type-specifier
11862       // found the wrong kind of type on the first
11863       // (non-redeclaration) lookup.
11864       if ((TUK == TUK_Reference || TUK == TUK_Friend) &&
11865           !Previous.isForRedeclaration()) {
11866         unsigned Kind = 0;
11867         if (isa<TypedefDecl>(PrevDecl)) Kind = 1;
11868         else if (isa<TypeAliasDecl>(PrevDecl)) Kind = 2;
11869         else if (isa<ClassTemplateDecl>(PrevDecl)) Kind = 3;
11870         Diag(NameLoc, diag::err_tag_reference_non_tag) << Kind;
11871         Diag(PrevDecl->getLocation(), diag::note_declared_at);
11872         Invalid = true;
11873 
11874       // Otherwise, only diagnose if the declaration is in scope.
11875       } else if (!isDeclInScope(PrevDecl, SearchDC, S,
11876                                 SS.isNotEmpty() || isExplicitSpecialization)) {
11877         // do nothing
11878 
11879       // Diagnose implicit declarations introduced by elaborated types.
11880       } else if (TUK == TUK_Reference || TUK == TUK_Friend) {
11881         unsigned Kind = 0;
11882         if (isa<TypedefDecl>(PrevDecl)) Kind = 1;
11883         else if (isa<TypeAliasDecl>(PrevDecl)) Kind = 2;
11884         else if (isa<ClassTemplateDecl>(PrevDecl)) Kind = 3;
11885         Diag(NameLoc, diag::err_tag_reference_conflict) << Kind;
11886         Diag(PrevDecl->getLocation(), diag::note_previous_decl) << PrevDecl;
11887         Invalid = true;
11888 
11889       // Otherwise it's a declaration.  Call out a particularly common
11890       // case here.
11891       } else if (TypedefNameDecl *TND = dyn_cast<TypedefNameDecl>(PrevDecl)) {
11892         unsigned Kind = 0;
11893         if (isa<TypeAliasDecl>(PrevDecl)) Kind = 1;
11894         Diag(NameLoc, diag::err_tag_definition_of_typedef)
11895           << Name << Kind << TND->getUnderlyingType();
11896         Diag(PrevDecl->getLocation(), diag::note_previous_decl) << PrevDecl;
11897         Invalid = true;
11898 
11899       // Otherwise, diagnose.
11900       } else {
11901         // The tag name clashes with something else in the target scope,
11902         // issue an error and recover by making this tag be anonymous.
11903         Diag(NameLoc, diag::err_redefinition_different_kind) << Name;
11904         Diag(PrevDecl->getLocation(), diag::note_previous_definition);
11905         Name = nullptr;
11906         Invalid = true;
11907       }
11908 
11909       // The existing declaration isn't relevant to us; we're in a
11910       // new scope, so clear out the previous declaration.
11911       Previous.clear();
11912     }
11913   }
11914 
11915 CreateNewDecl:
11916 
11917   TagDecl *PrevDecl = nullptr;
11918   if (Previous.isSingleResult())
11919     PrevDecl = cast<TagDecl>(Previous.getFoundDecl());
11920 
11921   // If there is an identifier, use the location of the identifier as the
11922   // location of the decl, otherwise use the location of the struct/union
11923   // keyword.
11924   SourceLocation Loc = NameLoc.isValid() ? NameLoc : KWLoc;
11925 
11926   // Otherwise, create a new declaration. If there is a previous
11927   // declaration of the same entity, the two will be linked via
11928   // PrevDecl.
11929   TagDecl *New;
11930 
11931   bool IsForwardReference = false;
11932   if (Kind == TTK_Enum) {
11933     // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.:
11934     // enum X { A, B, C } D;    D should chain to X.
11935     New = EnumDecl::Create(Context, SearchDC, KWLoc, Loc, Name,
11936                            cast_or_null<EnumDecl>(PrevDecl), ScopedEnum,
11937                            ScopedEnumUsesClassTag, !EnumUnderlying.isNull());
11938     // If this is an undefined enum, warn.
11939     if (TUK != TUK_Definition && !Invalid) {
11940       TagDecl *Def;
11941       if ((getLangOpts().CPlusPlus11 || getLangOpts().ObjC2) &&
11942           cast<EnumDecl>(New)->isFixed()) {
11943         // C++0x: 7.2p2: opaque-enum-declaration.
11944         // Conflicts are diagnosed above. Do nothing.
11945       }
11946       else if (PrevDecl && (Def = cast<EnumDecl>(PrevDecl)->getDefinition())) {
11947         Diag(Loc, diag::ext_forward_ref_enum_def)
11948           << New;
11949         Diag(Def->getLocation(), diag::note_previous_definition);
11950       } else {
11951         unsigned DiagID = diag::ext_forward_ref_enum;
11952         if (getLangOpts().MSVCCompat)
11953           DiagID = diag::ext_ms_forward_ref_enum;
11954         else if (getLangOpts().CPlusPlus)
11955           DiagID = diag::err_forward_ref_enum;
11956         Diag(Loc, DiagID);
11957 
11958         // If this is a forward-declared reference to an enumeration, make a
11959         // note of it; we won't actually be introducing the declaration into
11960         // the declaration context.
11961         if (TUK == TUK_Reference)
11962           IsForwardReference = true;
11963       }
11964     }
11965 
11966     if (EnumUnderlying) {
11967       EnumDecl *ED = cast<EnumDecl>(New);
11968       if (TypeSourceInfo *TI = EnumUnderlying.dyn_cast<TypeSourceInfo*>())
11969         ED->setIntegerTypeSourceInfo(TI);
11970       else
11971         ED->setIntegerType(QualType(EnumUnderlying.get<const Type*>(), 0));
11972       ED->setPromotionType(ED->getIntegerType());
11973     }
11974 
11975   } else {
11976     // struct/union/class
11977 
11978     // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.:
11979     // struct X { int A; } D;    D should chain to X.
11980     if (getLangOpts().CPlusPlus) {
11981       // FIXME: Look for a way to use RecordDecl for simple structs.
11982       New = CXXRecordDecl::Create(Context, Kind, SearchDC, KWLoc, Loc, Name,
11983                                   cast_or_null<CXXRecordDecl>(PrevDecl));
11984 
11985       if (isStdBadAlloc && (!StdBadAlloc || getStdBadAlloc()->isImplicit()))
11986         StdBadAlloc = cast<CXXRecordDecl>(New);
11987     } else
11988       New = RecordDecl::Create(Context, Kind, SearchDC, KWLoc, Loc, Name,
11989                                cast_or_null<RecordDecl>(PrevDecl));
11990   }
11991 
11992   // C++11 [dcl.type]p3:
11993   //   A type-specifier-seq shall not define a class or enumeration [...].
11994   if (getLangOpts().CPlusPlus && IsTypeSpecifier && TUK == TUK_Definition) {
11995     Diag(New->getLocation(), diag::err_type_defined_in_type_specifier)
11996       << Context.getTagDeclType(New);
11997     Invalid = true;
11998   }
11999 
12000   // Maybe add qualifier info.
12001   if (SS.isNotEmpty()) {
12002     if (SS.isSet()) {
12003       // If this is either a declaration or a definition, check the
12004       // nested-name-specifier against the current context. We don't do this
12005       // for explicit specializations, because they have similar checking
12006       // (with more specific diagnostics) in the call to
12007       // CheckMemberSpecialization, below.
12008       if (!isExplicitSpecialization &&
12009           (TUK == TUK_Definition || TUK == TUK_Declaration) &&
12010           diagnoseQualifiedDeclaration(SS, DC, OrigName, Loc))
12011         Invalid = true;
12012 
12013       New->setQualifierInfo(SS.getWithLocInContext(Context));
12014       if (TemplateParameterLists.size() > 0) {
12015         New->setTemplateParameterListsInfo(Context,
12016                                            TemplateParameterLists.size(),
12017                                            TemplateParameterLists.data());
12018       }
12019     }
12020     else
12021       Invalid = true;
12022   }
12023 
12024   if (RecordDecl *RD = dyn_cast<RecordDecl>(New)) {
12025     // Add alignment attributes if necessary; these attributes are checked when
12026     // the ASTContext lays out the structure.
12027     //
12028     // It is important for implementing the correct semantics that this
12029     // happen here (in act on tag decl). The #pragma pack stack is
12030     // maintained as a result of parser callbacks which can occur at
12031     // many points during the parsing of a struct declaration (because
12032     // the #pragma tokens are effectively skipped over during the
12033     // parsing of the struct).
12034     if (TUK == TUK_Definition) {
12035       AddAlignmentAttributesForRecord(RD);
12036       AddMsStructLayoutForRecord(RD);
12037     }
12038   }
12039 
12040   if (ModulePrivateLoc.isValid()) {
12041     if (isExplicitSpecialization)
12042       Diag(New->getLocation(), diag::err_module_private_specialization)
12043         << 2
12044         << FixItHint::CreateRemoval(ModulePrivateLoc);
12045     // __module_private__ does not apply to local classes. However, we only
12046     // diagnose this as an error when the declaration specifiers are
12047     // freestanding. Here, we just ignore the __module_private__.
12048     else if (!SearchDC->isFunctionOrMethod())
12049       New->setModulePrivate();
12050   }
12051 
12052   // If this is a specialization of a member class (of a class template),
12053   // check the specialization.
12054   if (isExplicitSpecialization && CheckMemberSpecialization(New, Previous))
12055     Invalid = true;
12056 
12057   // If we're declaring or defining a tag in function prototype scope in C,
12058   // note that this type can only be used within the function and add it to
12059   // the list of decls to inject into the function definition scope.
12060   if ((Name || Kind == TTK_Enum) &&
12061       getNonFieldDeclScope(S)->isFunctionPrototypeScope()) {
12062     if (getLangOpts().CPlusPlus) {
12063       // C++ [dcl.fct]p6:
12064       //   Types shall not be defined in return or parameter types.
12065       if (TUK == TUK_Definition && !IsTypeSpecifier) {
12066         Diag(Loc, diag::err_type_defined_in_param_type)
12067             << Name;
12068         Invalid = true;
12069       }
12070     } else {
12071       Diag(Loc, diag::warn_decl_in_param_list) << Context.getTagDeclType(New);
12072     }
12073     DeclsInPrototypeScope.push_back(New);
12074   }
12075 
12076   if (Invalid)
12077     New->setInvalidDecl();
12078 
12079   if (Attr)
12080     ProcessDeclAttributeList(S, New, Attr);
12081 
12082   // Set the lexical context. If the tag has a C++ scope specifier, the
12083   // lexical context will be different from the semantic context.
12084   New->setLexicalDeclContext(CurContext);
12085 
12086   // Mark this as a friend decl if applicable.
12087   // In Microsoft mode, a friend declaration also acts as a forward
12088   // declaration so we always pass true to setObjectOfFriendDecl to make
12089   // the tag name visible.
12090   if (TUK == TUK_Friend)
12091     New->setObjectOfFriendDecl(getLangOpts().MSVCCompat);
12092 
12093   // Set the access specifier.
12094   if (!Invalid && SearchDC->isRecord())
12095     SetMemberAccessSpecifier(New, PrevDecl, AS);
12096 
12097   if (TUK == TUK_Definition)
12098     New->startDefinition();
12099 
12100   // If this has an identifier, add it to the scope stack.
12101   if (TUK == TUK_Friend) {
12102     // We might be replacing an existing declaration in the lookup tables;
12103     // if so, borrow its access specifier.
12104     if (PrevDecl)
12105       New->setAccess(PrevDecl->getAccess());
12106 
12107     DeclContext *DC = New->getDeclContext()->getRedeclContext();
12108     DC->makeDeclVisibleInContext(New);
12109     if (Name) // can be null along some error paths
12110       if (Scope *EnclosingScope = getScopeForDeclContext(S, DC))
12111         PushOnScopeChains(New, EnclosingScope, /* AddToContext = */ false);
12112   } else if (Name) {
12113     S = getNonFieldDeclScope(S);
12114     PushOnScopeChains(New, S, !IsForwardReference);
12115     if (IsForwardReference)
12116       SearchDC->makeDeclVisibleInContext(New);
12117 
12118   } else {
12119     CurContext->addDecl(New);
12120   }
12121 
12122   // If this is the C FILE type, notify the AST context.
12123   if (IdentifierInfo *II = New->getIdentifier())
12124     if (!New->isInvalidDecl() &&
12125         New->getDeclContext()->getRedeclContext()->isTranslationUnit() &&
12126         II->isStr("FILE"))
12127       Context.setFILEDecl(New);
12128 
12129   if (PrevDecl)
12130     mergeDeclAttributes(New, PrevDecl);
12131 
12132   // If there's a #pragma GCC visibility in scope, set the visibility of this
12133   // record.
12134   AddPushedVisibilityAttribute(New);
12135 
12136   OwnedDecl = true;
12137   // In C++, don't return an invalid declaration. We can't recover well from
12138   // the cases where we make the type anonymous.
12139   return (Invalid && getLangOpts().CPlusPlus) ? nullptr : New;
12140 }
12141 
12142 void Sema::ActOnTagStartDefinition(Scope *S, Decl *TagD) {
12143   AdjustDeclIfTemplate(TagD);
12144   TagDecl *Tag = cast<TagDecl>(TagD);
12145 
12146   // Enter the tag context.
12147   PushDeclContext(S, Tag);
12148 
12149   ActOnDocumentableDecl(TagD);
12150 
12151   // If there's a #pragma GCC visibility in scope, set the visibility of this
12152   // record.
12153   AddPushedVisibilityAttribute(Tag);
12154 }
12155 
12156 Decl *Sema::ActOnObjCContainerStartDefinition(Decl *IDecl) {
12157   assert(isa<ObjCContainerDecl>(IDecl) &&
12158          "ActOnObjCContainerStartDefinition - Not ObjCContainerDecl");
12159   DeclContext *OCD = cast<DeclContext>(IDecl);
12160   assert(getContainingDC(OCD) == CurContext &&
12161       "The next DeclContext should be lexically contained in the current one.");
12162   CurContext = OCD;
12163   return IDecl;
12164 }
12165 
12166 void Sema::ActOnStartCXXMemberDeclarations(Scope *S, Decl *TagD,
12167                                            SourceLocation FinalLoc,
12168                                            bool IsFinalSpelledSealed,
12169                                            SourceLocation LBraceLoc) {
12170   AdjustDeclIfTemplate(TagD);
12171   CXXRecordDecl *Record = cast<CXXRecordDecl>(TagD);
12172 
12173   FieldCollector->StartClass();
12174 
12175   if (!Record->getIdentifier())
12176     return;
12177 
12178   if (FinalLoc.isValid())
12179     Record->addAttr(new (Context)
12180                     FinalAttr(FinalLoc, Context, IsFinalSpelledSealed));
12181 
12182   // C++ [class]p2:
12183   //   [...] The class-name is also inserted into the scope of the
12184   //   class itself; this is known as the injected-class-name. For
12185   //   purposes of access checking, the injected-class-name is treated
12186   //   as if it were a public member name.
12187   CXXRecordDecl *InjectedClassName
12188     = CXXRecordDecl::Create(Context, Record->getTagKind(), CurContext,
12189                             Record->getLocStart(), Record->getLocation(),
12190                             Record->getIdentifier(),
12191                             /*PrevDecl=*/nullptr,
12192                             /*DelayTypeCreation=*/true);
12193   Context.getTypeDeclType(InjectedClassName, Record);
12194   InjectedClassName->setImplicit();
12195   InjectedClassName->setAccess(AS_public);
12196   if (ClassTemplateDecl *Template = Record->getDescribedClassTemplate())
12197       InjectedClassName->setDescribedClassTemplate(Template);
12198   PushOnScopeChains(InjectedClassName, S);
12199   assert(InjectedClassName->isInjectedClassName() &&
12200          "Broken injected-class-name");
12201 }
12202 
12203 void Sema::ActOnTagFinishDefinition(Scope *S, Decl *TagD,
12204                                     SourceLocation RBraceLoc) {
12205   AdjustDeclIfTemplate(TagD);
12206   TagDecl *Tag = cast<TagDecl>(TagD);
12207   Tag->setRBraceLoc(RBraceLoc);
12208 
12209   // Make sure we "complete" the definition even it is invalid.
12210   if (Tag->isBeingDefined()) {
12211     assert(Tag->isInvalidDecl() && "We should already have completed it");
12212     if (RecordDecl *RD = dyn_cast<RecordDecl>(Tag))
12213       RD->completeDefinition();
12214   }
12215 
12216   if (isa<CXXRecordDecl>(Tag))
12217     FieldCollector->FinishClass();
12218 
12219   // Exit this scope of this tag's definition.
12220   PopDeclContext();
12221 
12222   if (getCurLexicalContext()->isObjCContainer() &&
12223       Tag->getDeclContext()->isFileContext())
12224     Tag->setTopLevelDeclInObjCContainer();
12225 
12226   // Notify the consumer that we've defined a tag.
12227   if (!Tag->isInvalidDecl())
12228     Consumer.HandleTagDeclDefinition(Tag);
12229 }
12230 
12231 void Sema::ActOnObjCContainerFinishDefinition() {
12232   // Exit this scope of this interface definition.
12233   PopDeclContext();
12234 }
12235 
12236 void Sema::ActOnObjCTemporaryExitContainerContext(DeclContext *DC) {
12237   assert(DC == CurContext && "Mismatch of container contexts");
12238   OriginalLexicalContext = DC;
12239   ActOnObjCContainerFinishDefinition();
12240 }
12241 
12242 void Sema::ActOnObjCReenterContainerContext(DeclContext *DC) {
12243   ActOnObjCContainerStartDefinition(cast<Decl>(DC));
12244   OriginalLexicalContext = nullptr;
12245 }
12246 
12247 void Sema::ActOnTagDefinitionError(Scope *S, Decl *TagD) {
12248   AdjustDeclIfTemplate(TagD);
12249   TagDecl *Tag = cast<TagDecl>(TagD);
12250   Tag->setInvalidDecl();
12251 
12252   // Make sure we "complete" the definition even it is invalid.
12253   if (Tag->isBeingDefined()) {
12254     if (RecordDecl *RD = dyn_cast<RecordDecl>(Tag))
12255       RD->completeDefinition();
12256   }
12257 
12258   // We're undoing ActOnTagStartDefinition here, not
12259   // ActOnStartCXXMemberDeclarations, so we don't have to mess with
12260   // the FieldCollector.
12261 
12262   PopDeclContext();
12263 }
12264 
12265 // Note that FieldName may be null for anonymous bitfields.
12266 ExprResult Sema::VerifyBitField(SourceLocation FieldLoc,
12267                                 IdentifierInfo *FieldName,
12268                                 QualType FieldTy, bool IsMsStruct,
12269                                 Expr *BitWidth, bool *ZeroWidth) {
12270   // Default to true; that shouldn't confuse checks for emptiness
12271   if (ZeroWidth)
12272     *ZeroWidth = true;
12273 
12274   // C99 6.7.2.1p4 - verify the field type.
12275   // C++ 9.6p3: A bit-field shall have integral or enumeration type.
12276   if (!FieldTy->isDependentType() && !FieldTy->isIntegralOrEnumerationType()) {
12277     // Handle incomplete types with specific error.
12278     if (RequireCompleteType(FieldLoc, FieldTy, diag::err_field_incomplete))
12279       return ExprError();
12280     if (FieldName)
12281       return Diag(FieldLoc, diag::err_not_integral_type_bitfield)
12282         << FieldName << FieldTy << BitWidth->getSourceRange();
12283     return Diag(FieldLoc, diag::err_not_integral_type_anon_bitfield)
12284       << FieldTy << BitWidth->getSourceRange();
12285   } else if (DiagnoseUnexpandedParameterPack(const_cast<Expr *>(BitWidth),
12286                                              UPPC_BitFieldWidth))
12287     return ExprError();
12288 
12289   // If the bit-width is type- or value-dependent, don't try to check
12290   // it now.
12291   if (BitWidth->isValueDependent() || BitWidth->isTypeDependent())
12292     return BitWidth;
12293 
12294   llvm::APSInt Value;
12295   ExprResult ICE = VerifyIntegerConstantExpression(BitWidth, &Value);
12296   if (ICE.isInvalid())
12297     return ICE;
12298   BitWidth = ICE.get();
12299 
12300   if (Value != 0 && ZeroWidth)
12301     *ZeroWidth = false;
12302 
12303   // Zero-width bitfield is ok for anonymous field.
12304   if (Value == 0 && FieldName)
12305     return Diag(FieldLoc, diag::err_bitfield_has_zero_width) << FieldName;
12306 
12307   if (Value.isSigned() && Value.isNegative()) {
12308     if (FieldName)
12309       return Diag(FieldLoc, diag::err_bitfield_has_negative_width)
12310                << FieldName << Value.toString(10);
12311     return Diag(FieldLoc, diag::err_anon_bitfield_has_negative_width)
12312       << Value.toString(10);
12313   }
12314 
12315   if (!FieldTy->isDependentType()) {
12316     uint64_t TypeSize = Context.getTypeSize(FieldTy);
12317     if (Value.getZExtValue() > TypeSize) {
12318       if (!getLangOpts().CPlusPlus || IsMsStruct ||
12319           Context.getTargetInfo().getCXXABI().isMicrosoft()) {
12320         if (FieldName)
12321           return Diag(FieldLoc, diag::err_bitfield_width_exceeds_type_size)
12322             << FieldName << (unsigned)Value.getZExtValue()
12323             << (unsigned)TypeSize;
12324 
12325         return Diag(FieldLoc, diag::err_anon_bitfield_width_exceeds_type_size)
12326           << (unsigned)Value.getZExtValue() << (unsigned)TypeSize;
12327       }
12328 
12329       if (FieldName)
12330         Diag(FieldLoc, diag::warn_bitfield_width_exceeds_type_size)
12331           << FieldName << (unsigned)Value.getZExtValue()
12332           << (unsigned)TypeSize;
12333       else
12334         Diag(FieldLoc, diag::warn_anon_bitfield_width_exceeds_type_size)
12335           << (unsigned)Value.getZExtValue() << (unsigned)TypeSize;
12336     }
12337   }
12338 
12339   return BitWidth;
12340 }
12341 
12342 /// ActOnField - Each field of a C struct/union is passed into this in order
12343 /// to create a FieldDecl object for it.
12344 Decl *Sema::ActOnField(Scope *S, Decl *TagD, SourceLocation DeclStart,
12345                        Declarator &D, Expr *BitfieldWidth) {
12346   FieldDecl *Res = HandleField(S, cast_or_null<RecordDecl>(TagD),
12347                                DeclStart, D, static_cast<Expr*>(BitfieldWidth),
12348                                /*InitStyle=*/ICIS_NoInit, AS_public);
12349   return Res;
12350 }
12351 
12352 /// HandleField - Analyze a field of a C struct or a C++ data member.
12353 ///
12354 FieldDecl *Sema::HandleField(Scope *S, RecordDecl *Record,
12355                              SourceLocation DeclStart,
12356                              Declarator &D, Expr *BitWidth,
12357                              InClassInitStyle InitStyle,
12358                              AccessSpecifier AS) {
12359   IdentifierInfo *II = D.getIdentifier();
12360   SourceLocation Loc = DeclStart;
12361   if (II) Loc = D.getIdentifierLoc();
12362 
12363   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
12364   QualType T = TInfo->getType();
12365   if (getLangOpts().CPlusPlus) {
12366     CheckExtraCXXDefaultArguments(D);
12367 
12368     if (DiagnoseUnexpandedParameterPack(D.getIdentifierLoc(), TInfo,
12369                                         UPPC_DataMemberType)) {
12370       D.setInvalidType();
12371       T = Context.IntTy;
12372       TInfo = Context.getTrivialTypeSourceInfo(T, Loc);
12373     }
12374   }
12375 
12376   // TR 18037 does not allow fields to be declared with address spaces.
12377   if (T.getQualifiers().hasAddressSpace()) {
12378     Diag(Loc, diag::err_field_with_address_space);
12379     D.setInvalidType();
12380   }
12381 
12382   // OpenCL 1.2 spec, s6.9 r:
12383   // The event type cannot be used to declare a structure or union field.
12384   if (LangOpts.OpenCL && T->isEventT()) {
12385     Diag(Loc, diag::err_event_t_struct_field);
12386     D.setInvalidType();
12387   }
12388 
12389   DiagnoseFunctionSpecifiers(D.getDeclSpec());
12390 
12391   if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec())
12392     Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(),
12393          diag::err_invalid_thread)
12394       << DeclSpec::getSpecifierName(TSCS);
12395 
12396   // Check to see if this name was declared as a member previously
12397   NamedDecl *PrevDecl = nullptr;
12398   LookupResult Previous(*this, II, Loc, LookupMemberName, ForRedeclaration);
12399   LookupName(Previous, S);
12400   switch (Previous.getResultKind()) {
12401     case LookupResult::Found:
12402     case LookupResult::FoundUnresolvedValue:
12403       PrevDecl = Previous.getAsSingle<NamedDecl>();
12404       break;
12405 
12406     case LookupResult::FoundOverloaded:
12407       PrevDecl = Previous.getRepresentativeDecl();
12408       break;
12409 
12410     case LookupResult::NotFound:
12411     case LookupResult::NotFoundInCurrentInstantiation:
12412     case LookupResult::Ambiguous:
12413       break;
12414   }
12415   Previous.suppressDiagnostics();
12416 
12417   if (PrevDecl && PrevDecl->isTemplateParameter()) {
12418     // Maybe we will complain about the shadowed template parameter.
12419     DiagnoseTemplateParameterShadow(D.getIdentifierLoc(), PrevDecl);
12420     // Just pretend that we didn't see the previous declaration.
12421     PrevDecl = nullptr;
12422   }
12423 
12424   if (PrevDecl && !isDeclInScope(PrevDecl, Record, S))
12425     PrevDecl = nullptr;
12426 
12427   bool Mutable
12428     = (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_mutable);
12429   SourceLocation TSSL = D.getLocStart();
12430   FieldDecl *NewFD
12431     = CheckFieldDecl(II, T, TInfo, Record, Loc, Mutable, BitWidth, InitStyle,
12432                      TSSL, AS, PrevDecl, &D);
12433 
12434   if (NewFD->isInvalidDecl())
12435     Record->setInvalidDecl();
12436 
12437   if (D.getDeclSpec().isModulePrivateSpecified())
12438     NewFD->setModulePrivate();
12439 
12440   if (NewFD->isInvalidDecl() && PrevDecl) {
12441     // Don't introduce NewFD into scope; there's already something
12442     // with the same name in the same scope.
12443   } else if (II) {
12444     PushOnScopeChains(NewFD, S);
12445   } else
12446     Record->addDecl(NewFD);
12447 
12448   return NewFD;
12449 }
12450 
12451 /// \brief Build a new FieldDecl and check its well-formedness.
12452 ///
12453 /// This routine builds a new FieldDecl given the fields name, type,
12454 /// record, etc. \p PrevDecl should refer to any previous declaration
12455 /// with the same name and in the same scope as the field to be
12456 /// created.
12457 ///
12458 /// \returns a new FieldDecl.
12459 ///
12460 /// \todo The Declarator argument is a hack. It will be removed once
12461 FieldDecl *Sema::CheckFieldDecl(DeclarationName Name, QualType T,
12462                                 TypeSourceInfo *TInfo,
12463                                 RecordDecl *Record, SourceLocation Loc,
12464                                 bool Mutable, Expr *BitWidth,
12465                                 InClassInitStyle InitStyle,
12466                                 SourceLocation TSSL,
12467                                 AccessSpecifier AS, NamedDecl *PrevDecl,
12468                                 Declarator *D) {
12469   IdentifierInfo *II = Name.getAsIdentifierInfo();
12470   bool InvalidDecl = false;
12471   if (D) InvalidDecl = D->isInvalidType();
12472 
12473   // If we receive a broken type, recover by assuming 'int' and
12474   // marking this declaration as invalid.
12475   if (T.isNull()) {
12476     InvalidDecl = true;
12477     T = Context.IntTy;
12478   }
12479 
12480   QualType EltTy = Context.getBaseElementType(T);
12481   if (!EltTy->isDependentType()) {
12482     if (RequireCompleteType(Loc, EltTy, diag::err_field_incomplete)) {
12483       // Fields of incomplete type force their record to be invalid.
12484       Record->setInvalidDecl();
12485       InvalidDecl = true;
12486     } else {
12487       NamedDecl *Def;
12488       EltTy->isIncompleteType(&Def);
12489       if (Def && Def->isInvalidDecl()) {
12490         Record->setInvalidDecl();
12491         InvalidDecl = true;
12492       }
12493     }
12494   }
12495 
12496   // OpenCL v1.2 s6.9.c: bitfields are not supported.
12497   if (BitWidth && getLangOpts().OpenCL) {
12498     Diag(Loc, diag::err_opencl_bitfields);
12499     InvalidDecl = true;
12500   }
12501 
12502   // C99 6.7.2.1p8: A member of a structure or union may have any type other
12503   // than a variably modified type.
12504   if (!InvalidDecl && T->isVariablyModifiedType()) {
12505     bool SizeIsNegative;
12506     llvm::APSInt Oversized;
12507 
12508     TypeSourceInfo *FixedTInfo =
12509       TryToFixInvalidVariablyModifiedTypeSourceInfo(TInfo, Context,
12510                                                     SizeIsNegative,
12511                                                     Oversized);
12512     if (FixedTInfo) {
12513       Diag(Loc, diag::warn_illegal_constant_array_size);
12514       TInfo = FixedTInfo;
12515       T = FixedTInfo->getType();
12516     } else {
12517       if (SizeIsNegative)
12518         Diag(Loc, diag::err_typecheck_negative_array_size);
12519       else if (Oversized.getBoolValue())
12520         Diag(Loc, diag::err_array_too_large)
12521           << Oversized.toString(10);
12522       else
12523         Diag(Loc, diag::err_typecheck_field_variable_size);
12524       InvalidDecl = true;
12525     }
12526   }
12527 
12528   // Fields can not have abstract class types
12529   if (!InvalidDecl && RequireNonAbstractType(Loc, T,
12530                                              diag::err_abstract_type_in_decl,
12531                                              AbstractFieldType))
12532     InvalidDecl = true;
12533 
12534   bool ZeroWidth = false;
12535   if (InvalidDecl)
12536     BitWidth = nullptr;
12537   // If this is declared as a bit-field, check the bit-field.
12538   if (BitWidth) {
12539     BitWidth = VerifyBitField(Loc, II, T, Record->isMsStruct(Context), BitWidth,
12540                               &ZeroWidth).get();
12541     if (!BitWidth) {
12542       InvalidDecl = true;
12543       BitWidth = nullptr;
12544       ZeroWidth = false;
12545     }
12546   }
12547 
12548   // Check that 'mutable' is consistent with the type of the declaration.
12549   if (!InvalidDecl && Mutable) {
12550     unsigned DiagID = 0;
12551     if (T->isReferenceType())
12552       DiagID = getLangOpts().MSVCCompat ? diag::ext_mutable_reference
12553                                         : diag::err_mutable_reference;
12554     else if (T.isConstQualified())
12555       DiagID = diag::err_mutable_const;
12556 
12557     if (DiagID) {
12558       SourceLocation ErrLoc = Loc;
12559       if (D && D->getDeclSpec().getStorageClassSpecLoc().isValid())
12560         ErrLoc = D->getDeclSpec().getStorageClassSpecLoc();
12561       Diag(ErrLoc, DiagID);
12562       if (DiagID != diag::ext_mutable_reference) {
12563         Mutable = false;
12564         InvalidDecl = true;
12565       }
12566     }
12567   }
12568 
12569   // C++11 [class.union]p8 (DR1460):
12570   //   At most one variant member of a union may have a
12571   //   brace-or-equal-initializer.
12572   if (InitStyle != ICIS_NoInit)
12573     checkDuplicateDefaultInit(*this, cast<CXXRecordDecl>(Record), Loc);
12574 
12575   FieldDecl *NewFD = FieldDecl::Create(Context, Record, TSSL, Loc, II, T, TInfo,
12576                                        BitWidth, Mutable, InitStyle);
12577   if (InvalidDecl)
12578     NewFD->setInvalidDecl();
12579 
12580   if (PrevDecl && !isa<TagDecl>(PrevDecl)) {
12581     Diag(Loc, diag::err_duplicate_member) << II;
12582     Diag(PrevDecl->getLocation(), diag::note_previous_declaration);
12583     NewFD->setInvalidDecl();
12584   }
12585 
12586   if (!InvalidDecl && getLangOpts().CPlusPlus) {
12587     if (Record->isUnion()) {
12588       if (const RecordType *RT = EltTy->getAs<RecordType>()) {
12589         CXXRecordDecl* RDecl = cast<CXXRecordDecl>(RT->getDecl());
12590         if (RDecl->getDefinition()) {
12591           // C++ [class.union]p1: An object of a class with a non-trivial
12592           // constructor, a non-trivial copy constructor, a non-trivial
12593           // destructor, or a non-trivial copy assignment operator
12594           // cannot be a member of a union, nor can an array of such
12595           // objects.
12596           if (CheckNontrivialField(NewFD))
12597             NewFD->setInvalidDecl();
12598         }
12599       }
12600 
12601       // C++ [class.union]p1: If a union contains a member of reference type,
12602       // the program is ill-formed, except when compiling with MSVC extensions
12603       // enabled.
12604       if (EltTy->isReferenceType()) {
12605         Diag(NewFD->getLocation(), getLangOpts().MicrosoftExt ?
12606                                     diag::ext_union_member_of_reference_type :
12607                                     diag::err_union_member_of_reference_type)
12608           << NewFD->getDeclName() << EltTy;
12609         if (!getLangOpts().MicrosoftExt)
12610           NewFD->setInvalidDecl();
12611       }
12612     }
12613   }
12614 
12615   // FIXME: We need to pass in the attributes given an AST
12616   // representation, not a parser representation.
12617   if (D) {
12618     // FIXME: The current scope is almost... but not entirely... correct here.
12619     ProcessDeclAttributes(getCurScope(), NewFD, *D);
12620 
12621     if (NewFD->hasAttrs())
12622       CheckAlignasUnderalignment(NewFD);
12623   }
12624 
12625   // In auto-retain/release, infer strong retension for fields of
12626   // retainable type.
12627   if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewFD))
12628     NewFD->setInvalidDecl();
12629 
12630   if (T.isObjCGCWeak())
12631     Diag(Loc, diag::warn_attribute_weak_on_field);
12632 
12633   NewFD->setAccess(AS);
12634   return NewFD;
12635 }
12636 
12637 bool Sema::CheckNontrivialField(FieldDecl *FD) {
12638   assert(FD);
12639   assert(getLangOpts().CPlusPlus && "valid check only for C++");
12640 
12641   if (FD->isInvalidDecl() || FD->getType()->isDependentType())
12642     return false;
12643 
12644   QualType EltTy = Context.getBaseElementType(FD->getType());
12645   if (const RecordType *RT = EltTy->getAs<RecordType>()) {
12646     CXXRecordDecl *RDecl = cast<CXXRecordDecl>(RT->getDecl());
12647     if (RDecl->getDefinition()) {
12648       // We check for copy constructors before constructors
12649       // because otherwise we'll never get complaints about
12650       // copy constructors.
12651 
12652       CXXSpecialMember member = CXXInvalid;
12653       // We're required to check for any non-trivial constructors. Since the
12654       // implicit default constructor is suppressed if there are any
12655       // user-declared constructors, we just need to check that there is a
12656       // trivial default constructor and a trivial copy constructor. (We don't
12657       // worry about move constructors here, since this is a C++98 check.)
12658       if (RDecl->hasNonTrivialCopyConstructor())
12659         member = CXXCopyConstructor;
12660       else if (!RDecl->hasTrivialDefaultConstructor())
12661         member = CXXDefaultConstructor;
12662       else if (RDecl->hasNonTrivialCopyAssignment())
12663         member = CXXCopyAssignment;
12664       else if (RDecl->hasNonTrivialDestructor())
12665         member = CXXDestructor;
12666 
12667       if (member != CXXInvalid) {
12668         if (!getLangOpts().CPlusPlus11 &&
12669             getLangOpts().ObjCAutoRefCount && RDecl->hasObjectMember()) {
12670           // Objective-C++ ARC: it is an error to have a non-trivial field of
12671           // a union. However, system headers in Objective-C programs
12672           // occasionally have Objective-C lifetime objects within unions,
12673           // and rather than cause the program to fail, we make those
12674           // members unavailable.
12675           SourceLocation Loc = FD->getLocation();
12676           if (getSourceManager().isInSystemHeader(Loc)) {
12677             if (!FD->hasAttr<UnavailableAttr>())
12678               FD->addAttr(UnavailableAttr::CreateImplicit(Context,
12679                                   "this system field has retaining ownership",
12680                                   Loc));
12681             return false;
12682           }
12683         }
12684 
12685         Diag(FD->getLocation(), getLangOpts().CPlusPlus11 ?
12686                diag::warn_cxx98_compat_nontrivial_union_or_anon_struct_member :
12687                diag::err_illegal_union_or_anon_struct_member)
12688           << (int)FD->getParent()->isUnion() << FD->getDeclName() << member;
12689         DiagnoseNontrivial(RDecl, member);
12690         return !getLangOpts().CPlusPlus11;
12691       }
12692     }
12693   }
12694 
12695   return false;
12696 }
12697 
12698 /// TranslateIvarVisibility - Translate visibility from a token ID to an
12699 ///  AST enum value.
12700 static ObjCIvarDecl::AccessControl
12701 TranslateIvarVisibility(tok::ObjCKeywordKind ivarVisibility) {
12702   switch (ivarVisibility) {
12703   default: llvm_unreachable("Unknown visitibility kind");
12704   case tok::objc_private: return ObjCIvarDecl::Private;
12705   case tok::objc_public: return ObjCIvarDecl::Public;
12706   case tok::objc_protected: return ObjCIvarDecl::Protected;
12707   case tok::objc_package: return ObjCIvarDecl::Package;
12708   }
12709 }
12710 
12711 /// ActOnIvar - Each ivar field of an objective-c class is passed into this
12712 /// in order to create an IvarDecl object for it.
12713 Decl *Sema::ActOnIvar(Scope *S,
12714                                 SourceLocation DeclStart,
12715                                 Declarator &D, Expr *BitfieldWidth,
12716                                 tok::ObjCKeywordKind Visibility) {
12717 
12718   IdentifierInfo *II = D.getIdentifier();
12719   Expr *BitWidth = (Expr*)BitfieldWidth;
12720   SourceLocation Loc = DeclStart;
12721   if (II) Loc = D.getIdentifierLoc();
12722 
12723   // FIXME: Unnamed fields can be handled in various different ways, for
12724   // example, unnamed unions inject all members into the struct namespace!
12725 
12726   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
12727   QualType T = TInfo->getType();
12728 
12729   if (BitWidth) {
12730     // 6.7.2.1p3, 6.7.2.1p4
12731     BitWidth = VerifyBitField(Loc, II, T, /*IsMsStruct*/false, BitWidth).get();
12732     if (!BitWidth)
12733       D.setInvalidType();
12734   } else {
12735     // Not a bitfield.
12736 
12737     // validate II.
12738 
12739   }
12740   if (T->isReferenceType()) {
12741     Diag(Loc, diag::err_ivar_reference_type);
12742     D.setInvalidType();
12743   }
12744   // C99 6.7.2.1p8: A member of a structure or union may have any type other
12745   // than a variably modified type.
12746   else if (T->isVariablyModifiedType()) {
12747     Diag(Loc, diag::err_typecheck_ivar_variable_size);
12748     D.setInvalidType();
12749   }
12750 
12751   // Get the visibility (access control) for this ivar.
12752   ObjCIvarDecl::AccessControl ac =
12753     Visibility != tok::objc_not_keyword ? TranslateIvarVisibility(Visibility)
12754                                         : ObjCIvarDecl::None;
12755   // Must set ivar's DeclContext to its enclosing interface.
12756   ObjCContainerDecl *EnclosingDecl = cast<ObjCContainerDecl>(CurContext);
12757   if (!EnclosingDecl || EnclosingDecl->isInvalidDecl())
12758     return nullptr;
12759   ObjCContainerDecl *EnclosingContext;
12760   if (ObjCImplementationDecl *IMPDecl =
12761       dyn_cast<ObjCImplementationDecl>(EnclosingDecl)) {
12762     if (LangOpts.ObjCRuntime.isFragile()) {
12763     // Case of ivar declared in an implementation. Context is that of its class.
12764       EnclosingContext = IMPDecl->getClassInterface();
12765       assert(EnclosingContext && "Implementation has no class interface!");
12766     }
12767     else
12768       EnclosingContext = EnclosingDecl;
12769   } else {
12770     if (ObjCCategoryDecl *CDecl =
12771         dyn_cast<ObjCCategoryDecl>(EnclosingDecl)) {
12772       if (LangOpts.ObjCRuntime.isFragile() || !CDecl->IsClassExtension()) {
12773         Diag(Loc, diag::err_misplaced_ivar) << CDecl->IsClassExtension();
12774         return nullptr;
12775       }
12776     }
12777     EnclosingContext = EnclosingDecl;
12778   }
12779 
12780   // Construct the decl.
12781   ObjCIvarDecl *NewID = ObjCIvarDecl::Create(Context, EnclosingContext,
12782                                              DeclStart, Loc, II, T,
12783                                              TInfo, ac, (Expr *)BitfieldWidth);
12784 
12785   if (II) {
12786     NamedDecl *PrevDecl = LookupSingleName(S, II, Loc, LookupMemberName,
12787                                            ForRedeclaration);
12788     if (PrevDecl && isDeclInScope(PrevDecl, EnclosingContext, S)
12789         && !isa<TagDecl>(PrevDecl)) {
12790       Diag(Loc, diag::err_duplicate_member) << II;
12791       Diag(PrevDecl->getLocation(), diag::note_previous_declaration);
12792       NewID->setInvalidDecl();
12793     }
12794   }
12795 
12796   // Process attributes attached to the ivar.
12797   ProcessDeclAttributes(S, NewID, D);
12798 
12799   if (D.isInvalidType())
12800     NewID->setInvalidDecl();
12801 
12802   // In ARC, infer 'retaining' for ivars of retainable type.
12803   if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewID))
12804     NewID->setInvalidDecl();
12805 
12806   if (D.getDeclSpec().isModulePrivateSpecified())
12807     NewID->setModulePrivate();
12808 
12809   if (II) {
12810     // FIXME: When interfaces are DeclContexts, we'll need to add
12811     // these to the interface.
12812     S->AddDecl(NewID);
12813     IdResolver.AddDecl(NewID);
12814   }
12815 
12816   if (LangOpts.ObjCRuntime.isNonFragile() &&
12817       !NewID->isInvalidDecl() && isa<ObjCInterfaceDecl>(EnclosingDecl))
12818     Diag(Loc, diag::warn_ivars_in_interface);
12819 
12820   return NewID;
12821 }
12822 
12823 /// ActOnLastBitfield - This routine handles synthesized bitfields rules for
12824 /// class and class extensions. For every class \@interface and class
12825 /// extension \@interface, if the last ivar is a bitfield of any type,
12826 /// then add an implicit `char :0` ivar to the end of that interface.
12827 void Sema::ActOnLastBitfield(SourceLocation DeclLoc,
12828                              SmallVectorImpl<Decl *> &AllIvarDecls) {
12829   if (LangOpts.ObjCRuntime.isFragile() || AllIvarDecls.empty())
12830     return;
12831 
12832   Decl *ivarDecl = AllIvarDecls[AllIvarDecls.size()-1];
12833   ObjCIvarDecl *Ivar = cast<ObjCIvarDecl>(ivarDecl);
12834 
12835   if (!Ivar->isBitField() || Ivar->getBitWidthValue(Context) == 0)
12836     return;
12837   ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(CurContext);
12838   if (!ID) {
12839     if (ObjCCategoryDecl *CD = dyn_cast<ObjCCategoryDecl>(CurContext)) {
12840       if (!CD->IsClassExtension())
12841         return;
12842     }
12843     // No need to add this to end of @implementation.
12844     else
12845       return;
12846   }
12847   // All conditions are met. Add a new bitfield to the tail end of ivars.
12848   llvm::APInt Zero(Context.getTypeSize(Context.IntTy), 0);
12849   Expr * BW = IntegerLiteral::Create(Context, Zero, Context.IntTy, DeclLoc);
12850 
12851   Ivar = ObjCIvarDecl::Create(Context, cast<ObjCContainerDecl>(CurContext),
12852                               DeclLoc, DeclLoc, nullptr,
12853                               Context.CharTy,
12854                               Context.getTrivialTypeSourceInfo(Context.CharTy,
12855                                                                DeclLoc),
12856                               ObjCIvarDecl::Private, BW,
12857                               true);
12858   AllIvarDecls.push_back(Ivar);
12859 }
12860 
12861 void Sema::ActOnFields(Scope *S, SourceLocation RecLoc, Decl *EnclosingDecl,
12862                        ArrayRef<Decl *> Fields, SourceLocation LBrac,
12863                        SourceLocation RBrac, AttributeList *Attr) {
12864   assert(EnclosingDecl && "missing record or interface decl");
12865 
12866   // If this is an Objective-C @implementation or category and we have
12867   // new fields here we should reset the layout of the interface since
12868   // it will now change.
12869   if (!Fields.empty() && isa<ObjCContainerDecl>(EnclosingDecl)) {
12870     ObjCContainerDecl *DC = cast<ObjCContainerDecl>(EnclosingDecl);
12871     switch (DC->getKind()) {
12872     default: break;
12873     case Decl::ObjCCategory:
12874       Context.ResetObjCLayout(cast<ObjCCategoryDecl>(DC)->getClassInterface());
12875       break;
12876     case Decl::ObjCImplementation:
12877       Context.
12878         ResetObjCLayout(cast<ObjCImplementationDecl>(DC)->getClassInterface());
12879       break;
12880     }
12881   }
12882 
12883   RecordDecl *Record = dyn_cast<RecordDecl>(EnclosingDecl);
12884 
12885   // Start counting up the number of named members; make sure to include
12886   // members of anonymous structs and unions in the total.
12887   unsigned NumNamedMembers = 0;
12888   if (Record) {
12889     for (const auto *I : Record->decls()) {
12890       if (const auto *IFD = dyn_cast<IndirectFieldDecl>(I))
12891         if (IFD->getDeclName())
12892           ++NumNamedMembers;
12893     }
12894   }
12895 
12896   // Verify that all the fields are okay.
12897   SmallVector<FieldDecl*, 32> RecFields;
12898 
12899   bool ARCErrReported = false;
12900   for (ArrayRef<Decl *>::iterator i = Fields.begin(), end = Fields.end();
12901        i != end; ++i) {
12902     FieldDecl *FD = cast<FieldDecl>(*i);
12903 
12904     // Get the type for the field.
12905     const Type *FDTy = FD->getType().getTypePtr();
12906 
12907     if (!FD->isAnonymousStructOrUnion()) {
12908       // Remember all fields written by the user.
12909       RecFields.push_back(FD);
12910     }
12911 
12912     // If the field is already invalid for some reason, don't emit more
12913     // diagnostics about it.
12914     if (FD->isInvalidDecl()) {
12915       EnclosingDecl->setInvalidDecl();
12916       continue;
12917     }
12918 
12919     // C99 6.7.2.1p2:
12920     //   A structure or union shall not contain a member with
12921     //   incomplete or function type (hence, a structure shall not
12922     //   contain an instance of itself, but may contain a pointer to
12923     //   an instance of itself), except that the last member of a
12924     //   structure with more than one named member may have incomplete
12925     //   array type; such a structure (and any union containing,
12926     //   possibly recursively, a member that is such a structure)
12927     //   shall not be a member of a structure or an element of an
12928     //   array.
12929     if (FDTy->isFunctionType()) {
12930       // Field declared as a function.
12931       Diag(FD->getLocation(), diag::err_field_declared_as_function)
12932         << FD->getDeclName();
12933       FD->setInvalidDecl();
12934       EnclosingDecl->setInvalidDecl();
12935       continue;
12936     } else if (FDTy->isIncompleteArrayType() && Record &&
12937                ((i + 1 == Fields.end() && !Record->isUnion()) ||
12938                 ((getLangOpts().MicrosoftExt ||
12939                   getLangOpts().CPlusPlus) &&
12940                  (i + 1 == Fields.end() || Record->isUnion())))) {
12941       // Flexible array member.
12942       // Microsoft and g++ is more permissive regarding flexible array.
12943       // It will accept flexible array in union and also
12944       // as the sole element of a struct/class.
12945       unsigned DiagID = 0;
12946       if (Record->isUnion())
12947         DiagID = getLangOpts().MicrosoftExt
12948                      ? diag::ext_flexible_array_union_ms
12949                      : getLangOpts().CPlusPlus
12950                            ? diag::ext_flexible_array_union_gnu
12951                            : diag::err_flexible_array_union;
12952       else if (Fields.size() == 1)
12953         DiagID = getLangOpts().MicrosoftExt
12954                      ? diag::ext_flexible_array_empty_aggregate_ms
12955                      : getLangOpts().CPlusPlus
12956                            ? diag::ext_flexible_array_empty_aggregate_gnu
12957                            : NumNamedMembers < 1
12958                                  ? diag::err_flexible_array_empty_aggregate
12959                                  : 0;
12960 
12961       if (DiagID)
12962         Diag(FD->getLocation(), DiagID) << FD->getDeclName()
12963                                         << Record->getTagKind();
12964       // While the layout of types that contain virtual bases is not specified
12965       // by the C++ standard, both the Itanium and Microsoft C++ ABIs place
12966       // virtual bases after the derived members.  This would make a flexible
12967       // array member declared at the end of an object not adjacent to the end
12968       // of the type.
12969       if (CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Record))
12970         if (RD->getNumVBases() != 0)
12971           Diag(FD->getLocation(), diag::err_flexible_array_virtual_base)
12972             << FD->getDeclName() << Record->getTagKind();
12973       if (!getLangOpts().C99)
12974         Diag(FD->getLocation(), diag::ext_c99_flexible_array_member)
12975           << FD->getDeclName() << Record->getTagKind();
12976 
12977       // If the element type has a non-trivial destructor, we would not
12978       // implicitly destroy the elements, so disallow it for now.
12979       //
12980       // FIXME: GCC allows this. We should probably either implicitly delete
12981       // the destructor of the containing class, or just allow this.
12982       QualType BaseElem = Context.getBaseElementType(FD->getType());
12983       if (!BaseElem->isDependentType() && BaseElem.isDestructedType()) {
12984         Diag(FD->getLocation(), diag::err_flexible_array_has_nontrivial_dtor)
12985           << FD->getDeclName() << FD->getType();
12986         FD->setInvalidDecl();
12987         EnclosingDecl->setInvalidDecl();
12988         continue;
12989       }
12990       // Okay, we have a legal flexible array member at the end of the struct.
12991       Record->setHasFlexibleArrayMember(true);
12992     } else if (!FDTy->isDependentType() &&
12993                RequireCompleteType(FD->getLocation(), FD->getType(),
12994                                    diag::err_field_incomplete)) {
12995       // Incomplete type
12996       FD->setInvalidDecl();
12997       EnclosingDecl->setInvalidDecl();
12998       continue;
12999     } else if (const RecordType *FDTTy = FDTy->getAs<RecordType>()) {
13000       if (Record && FDTTy->getDecl()->hasFlexibleArrayMember()) {
13001         // A type which contains a flexible array member is considered to be a
13002         // flexible array member.
13003         Record->setHasFlexibleArrayMember(true);
13004         if (!Record->isUnion()) {
13005           // If this is a struct/class and this is not the last element, reject
13006           // it.  Note that GCC supports variable sized arrays in the middle of
13007           // structures.
13008           if (i + 1 != Fields.end())
13009             Diag(FD->getLocation(), diag::ext_variable_sized_type_in_struct)
13010               << FD->getDeclName() << FD->getType();
13011           else {
13012             // We support flexible arrays at the end of structs in
13013             // other structs as an extension.
13014             Diag(FD->getLocation(), diag::ext_flexible_array_in_struct)
13015               << FD->getDeclName();
13016           }
13017         }
13018       }
13019       if (isa<ObjCContainerDecl>(EnclosingDecl) &&
13020           RequireNonAbstractType(FD->getLocation(), FD->getType(),
13021                                  diag::err_abstract_type_in_decl,
13022                                  AbstractIvarType)) {
13023         // Ivars can not have abstract class types
13024         FD->setInvalidDecl();
13025       }
13026       if (Record && FDTTy->getDecl()->hasObjectMember())
13027         Record->setHasObjectMember(true);
13028       if (Record && FDTTy->getDecl()->hasVolatileMember())
13029         Record->setHasVolatileMember(true);
13030     } else if (FDTy->isObjCObjectType()) {
13031       /// A field cannot be an Objective-c object
13032       Diag(FD->getLocation(), diag::err_statically_allocated_object)
13033         << FixItHint::CreateInsertion(FD->getLocation(), "*");
13034       QualType T = Context.getObjCObjectPointerType(FD->getType());
13035       FD->setType(T);
13036     } else if (getLangOpts().ObjCAutoRefCount && Record && !ARCErrReported &&
13037                (!getLangOpts().CPlusPlus || Record->isUnion())) {
13038       // It's an error in ARC if a field has lifetime.
13039       // We don't want to report this in a system header, though,
13040       // so we just make the field unavailable.
13041       // FIXME: that's really not sufficient; we need to make the type
13042       // itself invalid to, say, initialize or copy.
13043       QualType T = FD->getType();
13044       Qualifiers::ObjCLifetime lifetime = T.getObjCLifetime();
13045       if (lifetime && lifetime != Qualifiers::OCL_ExplicitNone) {
13046         SourceLocation loc = FD->getLocation();
13047         if (getSourceManager().isInSystemHeader(loc)) {
13048           if (!FD->hasAttr<UnavailableAttr>()) {
13049             FD->addAttr(UnavailableAttr::CreateImplicit(Context,
13050                               "this system field has retaining ownership",
13051                               loc));
13052           }
13053         } else {
13054           Diag(FD->getLocation(), diag::err_arc_objc_object_in_tag)
13055             << T->isBlockPointerType() << Record->getTagKind();
13056         }
13057         ARCErrReported = true;
13058       }
13059     } else if (getLangOpts().ObjC1 &&
13060                getLangOpts().getGC() != LangOptions::NonGC &&
13061                Record && !Record->hasObjectMember()) {
13062       if (FD->getType()->isObjCObjectPointerType() ||
13063           FD->getType().isObjCGCStrong())
13064         Record->setHasObjectMember(true);
13065       else if (Context.getAsArrayType(FD->getType())) {
13066         QualType BaseType = Context.getBaseElementType(FD->getType());
13067         if (BaseType->isRecordType() &&
13068             BaseType->getAs<RecordType>()->getDecl()->hasObjectMember())
13069           Record->setHasObjectMember(true);
13070         else if (BaseType->isObjCObjectPointerType() ||
13071                  BaseType.isObjCGCStrong())
13072                Record->setHasObjectMember(true);
13073       }
13074     }
13075     if (Record && FD->getType().isVolatileQualified())
13076       Record->setHasVolatileMember(true);
13077     // Keep track of the number of named members.
13078     if (FD->getIdentifier())
13079       ++NumNamedMembers;
13080   }
13081 
13082   // Okay, we successfully defined 'Record'.
13083   if (Record) {
13084     bool Completed = false;
13085     if (CXXRecordDecl *CXXRecord = dyn_cast<CXXRecordDecl>(Record)) {
13086       if (!CXXRecord->isInvalidDecl()) {
13087         // Set access bits correctly on the directly-declared conversions.
13088         for (CXXRecordDecl::conversion_iterator
13089                I = CXXRecord->conversion_begin(),
13090                E = CXXRecord->conversion_end(); I != E; ++I)
13091           I.setAccess((*I)->getAccess());
13092 
13093         if (!CXXRecord->isDependentType()) {
13094           if (CXXRecord->hasUserDeclaredDestructor()) {
13095             // Adjust user-defined destructor exception spec.
13096             if (getLangOpts().CPlusPlus11)
13097               AdjustDestructorExceptionSpec(CXXRecord,
13098                                             CXXRecord->getDestructor());
13099           }
13100 
13101           // Add any implicitly-declared members to this class.
13102           AddImplicitlyDeclaredMembersToClass(CXXRecord);
13103 
13104           // If we have virtual base classes, we may end up finding multiple
13105           // final overriders for a given virtual function. Check for this
13106           // problem now.
13107           if (CXXRecord->getNumVBases()) {
13108             CXXFinalOverriderMap FinalOverriders;
13109             CXXRecord->getFinalOverriders(FinalOverriders);
13110 
13111             for (CXXFinalOverriderMap::iterator M = FinalOverriders.begin(),
13112                                              MEnd = FinalOverriders.end();
13113                  M != MEnd; ++M) {
13114               for (OverridingMethods::iterator SO = M->second.begin(),
13115                                             SOEnd = M->second.end();
13116                    SO != SOEnd; ++SO) {
13117                 assert(SO->second.size() > 0 &&
13118                        "Virtual function without overridding functions?");
13119                 if (SO->second.size() == 1)
13120                   continue;
13121 
13122                 // C++ [class.virtual]p2:
13123                 //   In a derived class, if a virtual member function of a base
13124                 //   class subobject has more than one final overrider the
13125                 //   program is ill-formed.
13126                 Diag(Record->getLocation(), diag::err_multiple_final_overriders)
13127                   << (const NamedDecl *)M->first << Record;
13128                 Diag(M->first->getLocation(),
13129                      diag::note_overridden_virtual_function);
13130                 for (OverridingMethods::overriding_iterator
13131                           OM = SO->second.begin(),
13132                        OMEnd = SO->second.end();
13133                      OM != OMEnd; ++OM)
13134                   Diag(OM->Method->getLocation(), diag::note_final_overrider)
13135                     << (const NamedDecl *)M->first << OM->Method->getParent();
13136 
13137                 Record->setInvalidDecl();
13138               }
13139             }
13140             CXXRecord->completeDefinition(&FinalOverriders);
13141             Completed = true;
13142           }
13143         }
13144       }
13145     }
13146 
13147     if (!Completed)
13148       Record->completeDefinition();
13149 
13150     if (Record->hasAttrs()) {
13151       CheckAlignasUnderalignment(Record);
13152 
13153       if (const MSInheritanceAttr *IA = Record->getAttr<MSInheritanceAttr>())
13154         checkMSInheritanceAttrOnDefinition(cast<CXXRecordDecl>(Record),
13155                                            IA->getRange(), IA->getBestCase(),
13156                                            IA->getSemanticSpelling());
13157     }
13158 
13159     // Check if the structure/union declaration is a type that can have zero
13160     // size in C. For C this is a language extension, for C++ it may cause
13161     // compatibility problems.
13162     bool CheckForZeroSize;
13163     if (!getLangOpts().CPlusPlus) {
13164       CheckForZeroSize = true;
13165     } else {
13166       // For C++ filter out types that cannot be referenced in C code.
13167       CXXRecordDecl *CXXRecord = cast<CXXRecordDecl>(Record);
13168       CheckForZeroSize =
13169           CXXRecord->getLexicalDeclContext()->isExternCContext() &&
13170           !CXXRecord->isDependentType() &&
13171           CXXRecord->isCLike();
13172     }
13173     if (CheckForZeroSize) {
13174       bool ZeroSize = true;
13175       bool IsEmpty = true;
13176       unsigned NonBitFields = 0;
13177       for (RecordDecl::field_iterator I = Record->field_begin(),
13178                                       E = Record->field_end();
13179            (NonBitFields == 0 || ZeroSize) && I != E; ++I) {
13180         IsEmpty = false;
13181         if (I->isUnnamedBitfield()) {
13182           if (I->getBitWidthValue(Context) > 0)
13183             ZeroSize = false;
13184         } else {
13185           ++NonBitFields;
13186           QualType FieldType = I->getType();
13187           if (FieldType->isIncompleteType() ||
13188               !Context.getTypeSizeInChars(FieldType).isZero())
13189             ZeroSize = false;
13190         }
13191       }
13192 
13193       // Empty structs are an extension in C (C99 6.7.2.1p7). They are
13194       // allowed in C++, but warn if its declaration is inside
13195       // extern "C" block.
13196       if (ZeroSize) {
13197         Diag(RecLoc, getLangOpts().CPlusPlus ?
13198                          diag::warn_zero_size_struct_union_in_extern_c :
13199                          diag::warn_zero_size_struct_union_compat)
13200           << IsEmpty << Record->isUnion() << (NonBitFields > 1);
13201       }
13202 
13203       // Structs without named members are extension in C (C99 6.7.2.1p7),
13204       // but are accepted by GCC.
13205       if (NonBitFields == 0 && !getLangOpts().CPlusPlus) {
13206         Diag(RecLoc, IsEmpty ? diag::ext_empty_struct_union :
13207                                diag::ext_no_named_members_in_struct_union)
13208           << Record->isUnion();
13209       }
13210     }
13211   } else {
13212     ObjCIvarDecl **ClsFields =
13213       reinterpret_cast<ObjCIvarDecl**>(RecFields.data());
13214     if (ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(EnclosingDecl)) {
13215       ID->setEndOfDefinitionLoc(RBrac);
13216       // Add ivar's to class's DeclContext.
13217       for (unsigned i = 0, e = RecFields.size(); i != e; ++i) {
13218         ClsFields[i]->setLexicalDeclContext(ID);
13219         ID->addDecl(ClsFields[i]);
13220       }
13221       // Must enforce the rule that ivars in the base classes may not be
13222       // duplicates.
13223       if (ID->getSuperClass())
13224         DiagnoseDuplicateIvars(ID, ID->getSuperClass());
13225     } else if (ObjCImplementationDecl *IMPDecl =
13226                   dyn_cast<ObjCImplementationDecl>(EnclosingDecl)) {
13227       assert(IMPDecl && "ActOnFields - missing ObjCImplementationDecl");
13228       for (unsigned I = 0, N = RecFields.size(); I != N; ++I)
13229         // Ivar declared in @implementation never belongs to the implementation.
13230         // Only it is in implementation's lexical context.
13231         ClsFields[I]->setLexicalDeclContext(IMPDecl);
13232       CheckImplementationIvars(IMPDecl, ClsFields, RecFields.size(), RBrac);
13233       IMPDecl->setIvarLBraceLoc(LBrac);
13234       IMPDecl->setIvarRBraceLoc(RBrac);
13235     } else if (ObjCCategoryDecl *CDecl =
13236                 dyn_cast<ObjCCategoryDecl>(EnclosingDecl)) {
13237       // case of ivars in class extension; all other cases have been
13238       // reported as errors elsewhere.
13239       // FIXME. Class extension does not have a LocEnd field.
13240       // CDecl->setLocEnd(RBrac);
13241       // Add ivar's to class extension's DeclContext.
13242       // Diagnose redeclaration of private ivars.
13243       ObjCInterfaceDecl *IDecl = CDecl->getClassInterface();
13244       for (unsigned i = 0, e = RecFields.size(); i != e; ++i) {
13245         if (IDecl) {
13246           if (const ObjCIvarDecl *ClsIvar =
13247               IDecl->getIvarDecl(ClsFields[i]->getIdentifier())) {
13248             Diag(ClsFields[i]->getLocation(),
13249                  diag::err_duplicate_ivar_declaration);
13250             Diag(ClsIvar->getLocation(), diag::note_previous_definition);
13251             continue;
13252           }
13253           for (const auto *Ext : IDecl->known_extensions()) {
13254             if (const ObjCIvarDecl *ClsExtIvar
13255                   = Ext->getIvarDecl(ClsFields[i]->getIdentifier())) {
13256               Diag(ClsFields[i]->getLocation(),
13257                    diag::err_duplicate_ivar_declaration);
13258               Diag(ClsExtIvar->getLocation(), diag::note_previous_definition);
13259               continue;
13260             }
13261           }
13262         }
13263         ClsFields[i]->setLexicalDeclContext(CDecl);
13264         CDecl->addDecl(ClsFields[i]);
13265       }
13266       CDecl->setIvarLBraceLoc(LBrac);
13267       CDecl->setIvarRBraceLoc(RBrac);
13268     }
13269   }
13270 
13271   if (Attr)
13272     ProcessDeclAttributeList(S, Record, Attr);
13273 }
13274 
13275 /// \brief Determine whether the given integral value is representable within
13276 /// the given type T.
13277 static bool isRepresentableIntegerValue(ASTContext &Context,
13278                                         llvm::APSInt &Value,
13279                                         QualType T) {
13280   assert(T->isIntegralType(Context) && "Integral type required!");
13281   unsigned BitWidth = Context.getIntWidth(T);
13282 
13283   if (Value.isUnsigned() || Value.isNonNegative()) {
13284     if (T->isSignedIntegerOrEnumerationType())
13285       --BitWidth;
13286     return Value.getActiveBits() <= BitWidth;
13287   }
13288   return Value.getMinSignedBits() <= BitWidth;
13289 }
13290 
13291 // \brief Given an integral type, return the next larger integral type
13292 // (or a NULL type of no such type exists).
13293 static QualType getNextLargerIntegralType(ASTContext &Context, QualType T) {
13294   // FIXME: Int128/UInt128 support, which also needs to be introduced into
13295   // enum checking below.
13296   assert(T->isIntegralType(Context) && "Integral type required!");
13297   const unsigned NumTypes = 4;
13298   QualType SignedIntegralTypes[NumTypes] = {
13299     Context.ShortTy, Context.IntTy, Context.LongTy, Context.LongLongTy
13300   };
13301   QualType UnsignedIntegralTypes[NumTypes] = {
13302     Context.UnsignedShortTy, Context.UnsignedIntTy, Context.UnsignedLongTy,
13303     Context.UnsignedLongLongTy
13304   };
13305 
13306   unsigned BitWidth = Context.getTypeSize(T);
13307   QualType *Types = T->isSignedIntegerOrEnumerationType()? SignedIntegralTypes
13308                                                         : UnsignedIntegralTypes;
13309   for (unsigned I = 0; I != NumTypes; ++I)
13310     if (Context.getTypeSize(Types[I]) > BitWidth)
13311       return Types[I];
13312 
13313   return QualType();
13314 }
13315 
13316 EnumConstantDecl *Sema::CheckEnumConstant(EnumDecl *Enum,
13317                                           EnumConstantDecl *LastEnumConst,
13318                                           SourceLocation IdLoc,
13319                                           IdentifierInfo *Id,
13320                                           Expr *Val) {
13321   unsigned IntWidth = Context.getTargetInfo().getIntWidth();
13322   llvm::APSInt EnumVal(IntWidth);
13323   QualType EltTy;
13324 
13325   if (Val && DiagnoseUnexpandedParameterPack(Val, UPPC_EnumeratorValue))
13326     Val = nullptr;
13327 
13328   if (Val)
13329     Val = DefaultLvalueConversion(Val).get();
13330 
13331   if (Val) {
13332     if (Enum->isDependentType() || Val->isTypeDependent())
13333       EltTy = Context.DependentTy;
13334     else {
13335       SourceLocation ExpLoc;
13336       if (getLangOpts().CPlusPlus11 && Enum->isFixed() &&
13337           !getLangOpts().MSVCCompat) {
13338         // C++11 [dcl.enum]p5: If the underlying type is fixed, [...] the
13339         // constant-expression in the enumerator-definition shall be a converted
13340         // constant expression of the underlying type.
13341         EltTy = Enum->getIntegerType();
13342         ExprResult Converted =
13343           CheckConvertedConstantExpression(Val, EltTy, EnumVal,
13344                                            CCEK_Enumerator);
13345         if (Converted.isInvalid())
13346           Val = nullptr;
13347         else
13348           Val = Converted.get();
13349       } else if (!Val->isValueDependent() &&
13350                  !(Val = VerifyIntegerConstantExpression(Val,
13351                                                          &EnumVal).get())) {
13352         // C99 6.7.2.2p2: Make sure we have an integer constant expression.
13353       } else {
13354         if (Enum->isFixed()) {
13355           EltTy = Enum->getIntegerType();
13356 
13357           // In Obj-C and Microsoft mode, require the enumeration value to be
13358           // representable in the underlying type of the enumeration. In C++11,
13359           // we perform a non-narrowing conversion as part of converted constant
13360           // expression checking.
13361           if (!isRepresentableIntegerValue(Context, EnumVal, EltTy)) {
13362             if (getLangOpts().MSVCCompat) {
13363               Diag(IdLoc, diag::ext_enumerator_too_large) << EltTy;
13364               Val = ImpCastExprToType(Val, EltTy, CK_IntegralCast).get();
13365             } else
13366               Diag(IdLoc, diag::err_enumerator_too_large) << EltTy;
13367           } else
13368             Val = ImpCastExprToType(Val, EltTy, CK_IntegralCast).get();
13369         } else if (getLangOpts().CPlusPlus) {
13370           // C++11 [dcl.enum]p5:
13371           //   If the underlying type is not fixed, the type of each enumerator
13372           //   is the type of its initializing value:
13373           //     - If an initializer is specified for an enumerator, the
13374           //       initializing value has the same type as the expression.
13375           EltTy = Val->getType();
13376         } else {
13377           // C99 6.7.2.2p2:
13378           //   The expression that defines the value of an enumeration constant
13379           //   shall be an integer constant expression that has a value
13380           //   representable as an int.
13381 
13382           // Complain if the value is not representable in an int.
13383           if (!isRepresentableIntegerValue(Context, EnumVal, Context.IntTy))
13384             Diag(IdLoc, diag::ext_enum_value_not_int)
13385               << EnumVal.toString(10) << Val->getSourceRange()
13386               << (EnumVal.isUnsigned() || EnumVal.isNonNegative());
13387           else if (!Context.hasSameType(Val->getType(), Context.IntTy)) {
13388             // Force the type of the expression to 'int'.
13389             Val = ImpCastExprToType(Val, Context.IntTy, CK_IntegralCast).get();
13390           }
13391           EltTy = Val->getType();
13392         }
13393       }
13394     }
13395   }
13396 
13397   if (!Val) {
13398     if (Enum->isDependentType())
13399       EltTy = Context.DependentTy;
13400     else if (!LastEnumConst) {
13401       // C++0x [dcl.enum]p5:
13402       //   If the underlying type is not fixed, the type of each enumerator
13403       //   is the type of its initializing value:
13404       //     - If no initializer is specified for the first enumerator, the
13405       //       initializing value has an unspecified integral type.
13406       //
13407       // GCC uses 'int' for its unspecified integral type, as does
13408       // C99 6.7.2.2p3.
13409       if (Enum->isFixed()) {
13410         EltTy = Enum->getIntegerType();
13411       }
13412       else {
13413         EltTy = Context.IntTy;
13414       }
13415     } else {
13416       // Assign the last value + 1.
13417       EnumVal = LastEnumConst->getInitVal();
13418       ++EnumVal;
13419       EltTy = LastEnumConst->getType();
13420 
13421       // Check for overflow on increment.
13422       if (EnumVal < LastEnumConst->getInitVal()) {
13423         // C++0x [dcl.enum]p5:
13424         //   If the underlying type is not fixed, the type of each enumerator
13425         //   is the type of its initializing value:
13426         //
13427         //     - Otherwise the type of the initializing value is the same as
13428         //       the type of the initializing value of the preceding enumerator
13429         //       unless the incremented value is not representable in that type,
13430         //       in which case the type is an unspecified integral type
13431         //       sufficient to contain the incremented value. If no such type
13432         //       exists, the program is ill-formed.
13433         QualType T = getNextLargerIntegralType(Context, EltTy);
13434         if (T.isNull() || Enum->isFixed()) {
13435           // There is no integral type larger enough to represent this
13436           // value. Complain, then allow the value to wrap around.
13437           EnumVal = LastEnumConst->getInitVal();
13438           EnumVal = EnumVal.zext(EnumVal.getBitWidth() * 2);
13439           ++EnumVal;
13440           if (Enum->isFixed())
13441             // When the underlying type is fixed, this is ill-formed.
13442             Diag(IdLoc, diag::err_enumerator_wrapped)
13443               << EnumVal.toString(10)
13444               << EltTy;
13445           else
13446             Diag(IdLoc, diag::ext_enumerator_increment_too_large)
13447               << EnumVal.toString(10);
13448         } else {
13449           EltTy = T;
13450         }
13451 
13452         // Retrieve the last enumerator's value, extent that type to the
13453         // type that is supposed to be large enough to represent the incremented
13454         // value, then increment.
13455         EnumVal = LastEnumConst->getInitVal();
13456         EnumVal.setIsSigned(EltTy->isSignedIntegerOrEnumerationType());
13457         EnumVal = EnumVal.zextOrTrunc(Context.getIntWidth(EltTy));
13458         ++EnumVal;
13459 
13460         // If we're not in C++, diagnose the overflow of enumerator values,
13461         // which in C99 means that the enumerator value is not representable in
13462         // an int (C99 6.7.2.2p2). However, we support GCC's extension that
13463         // permits enumerator values that are representable in some larger
13464         // integral type.
13465         if (!getLangOpts().CPlusPlus && !T.isNull())
13466           Diag(IdLoc, diag::warn_enum_value_overflow);
13467       } else if (!getLangOpts().CPlusPlus &&
13468                  !isRepresentableIntegerValue(Context, EnumVal, EltTy)) {
13469         // Enforce C99 6.7.2.2p2 even when we compute the next value.
13470         Diag(IdLoc, diag::ext_enum_value_not_int)
13471           << EnumVal.toString(10) << 1;
13472       }
13473     }
13474   }
13475 
13476   if (!EltTy->isDependentType()) {
13477     // Make the enumerator value match the signedness and size of the
13478     // enumerator's type.
13479     EnumVal = EnumVal.extOrTrunc(Context.getIntWidth(EltTy));
13480     EnumVal.setIsSigned(EltTy->isSignedIntegerOrEnumerationType());
13481   }
13482 
13483   return EnumConstantDecl::Create(Context, Enum, IdLoc, Id, EltTy,
13484                                   Val, EnumVal);
13485 }
13486 
13487 Sema::SkipBodyInfo Sema::shouldSkipAnonEnumBody(Scope *S, IdentifierInfo *II,
13488                                                 SourceLocation IILoc) {
13489   if (!getLangOpts().Modules || !getLangOpts().CPlusPlus)
13490     return SkipBodyInfo();
13491 
13492   // We have an anonymous enum definition. Look up the first enumerator to
13493   // determine if we should merge the definition with an existing one and
13494   // skip the body.
13495   NamedDecl *PrevDecl = LookupSingleName(S, II, IILoc, LookupOrdinaryName,
13496                                          ForRedeclaration);
13497   auto *PrevECD = dyn_cast_or_null<EnumConstantDecl>(PrevDecl);
13498   NamedDecl *Hidden;
13499   if (PrevECD &&
13500       !hasVisibleDefinition(cast<NamedDecl>(PrevECD->getDeclContext()),
13501                             &Hidden)) {
13502     SkipBodyInfo Skip;
13503     Skip.ShouldSkip = true;
13504     Skip.Previous = Hidden;
13505     return Skip;
13506   }
13507 
13508   return SkipBodyInfo();
13509 }
13510 
13511 Decl *Sema::ActOnEnumConstant(Scope *S, Decl *theEnumDecl, Decl *lastEnumConst,
13512                               SourceLocation IdLoc, IdentifierInfo *Id,
13513                               AttributeList *Attr,
13514                               SourceLocation EqualLoc, Expr *Val) {
13515   EnumDecl *TheEnumDecl = cast<EnumDecl>(theEnumDecl);
13516   EnumConstantDecl *LastEnumConst =
13517     cast_or_null<EnumConstantDecl>(lastEnumConst);
13518 
13519   // The scope passed in may not be a decl scope.  Zip up the scope tree until
13520   // we find one that is.
13521   S = getNonFieldDeclScope(S);
13522 
13523   // Verify that there isn't already something declared with this name in this
13524   // scope.
13525   NamedDecl *PrevDecl = LookupSingleName(S, Id, IdLoc, LookupOrdinaryName,
13526                                          ForRedeclaration);
13527   if (PrevDecl && PrevDecl->isTemplateParameter()) {
13528     // Maybe we will complain about the shadowed template parameter.
13529     DiagnoseTemplateParameterShadow(IdLoc, PrevDecl);
13530     // Just pretend that we didn't see the previous declaration.
13531     PrevDecl = nullptr;
13532   }
13533 
13534   if (PrevDecl) {
13535     // When in C++, we may get a TagDecl with the same name; in this case the
13536     // enum constant will 'hide' the tag.
13537     assert((getLangOpts().CPlusPlus || !isa<TagDecl>(PrevDecl)) &&
13538            "Received TagDecl when not in C++!");
13539     if (!isa<TagDecl>(PrevDecl) && isDeclInScope(PrevDecl, CurContext, S)) {
13540       if (isa<EnumConstantDecl>(PrevDecl))
13541         Diag(IdLoc, diag::err_redefinition_of_enumerator) << Id;
13542       else
13543         Diag(IdLoc, diag::err_redefinition) << Id;
13544       Diag(PrevDecl->getLocation(), diag::note_previous_definition);
13545       return nullptr;
13546     }
13547   }
13548 
13549   // C++ [class.mem]p15:
13550   // If T is the name of a class, then each of the following shall have a name
13551   // different from T:
13552   // - every enumerator of every member of class T that is an unscoped
13553   // enumerated type
13554   if (CXXRecordDecl *Record
13555                       = dyn_cast<CXXRecordDecl>(
13556                              TheEnumDecl->getDeclContext()->getRedeclContext()))
13557     if (!TheEnumDecl->isScoped() &&
13558         Record->getIdentifier() && Record->getIdentifier() == Id)
13559       Diag(IdLoc, diag::err_member_name_of_class) << Id;
13560 
13561   EnumConstantDecl *New =
13562     CheckEnumConstant(TheEnumDecl, LastEnumConst, IdLoc, Id, Val);
13563 
13564   if (New) {
13565     // Process attributes.
13566     if (Attr) ProcessDeclAttributeList(S, New, Attr);
13567 
13568     // Register this decl in the current scope stack.
13569     New->setAccess(TheEnumDecl->getAccess());
13570     PushOnScopeChains(New, S);
13571   }
13572 
13573   ActOnDocumentableDecl(New);
13574 
13575   return New;
13576 }
13577 
13578 // Returns true when the enum initial expression does not trigger the
13579 // duplicate enum warning.  A few common cases are exempted as follows:
13580 // Element2 = Element1
13581 // Element2 = Element1 + 1
13582 // Element2 = Element1 - 1
13583 // Where Element2 and Element1 are from the same enum.
13584 static bool ValidDuplicateEnum(EnumConstantDecl *ECD, EnumDecl *Enum) {
13585   Expr *InitExpr = ECD->getInitExpr();
13586   if (!InitExpr)
13587     return true;
13588   InitExpr = InitExpr->IgnoreImpCasts();
13589 
13590   if (BinaryOperator *BO = dyn_cast<BinaryOperator>(InitExpr)) {
13591     if (!BO->isAdditiveOp())
13592       return true;
13593     IntegerLiteral *IL = dyn_cast<IntegerLiteral>(BO->getRHS());
13594     if (!IL)
13595       return true;
13596     if (IL->getValue() != 1)
13597       return true;
13598 
13599     InitExpr = BO->getLHS();
13600   }
13601 
13602   // This checks if the elements are from the same enum.
13603   DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(InitExpr);
13604   if (!DRE)
13605     return true;
13606 
13607   EnumConstantDecl *EnumConstant = dyn_cast<EnumConstantDecl>(DRE->getDecl());
13608   if (!EnumConstant)
13609     return true;
13610 
13611   if (cast<EnumDecl>(TagDecl::castFromDeclContext(ECD->getDeclContext())) !=
13612       Enum)
13613     return true;
13614 
13615   return false;
13616 }
13617 
13618 struct DupKey {
13619   int64_t val;
13620   bool isTombstoneOrEmptyKey;
13621   DupKey(int64_t val, bool isTombstoneOrEmptyKey)
13622     : val(val), isTombstoneOrEmptyKey(isTombstoneOrEmptyKey) {}
13623 };
13624 
13625 static DupKey GetDupKey(const llvm::APSInt& Val) {
13626   return DupKey(Val.isSigned() ? Val.getSExtValue() : Val.getZExtValue(),
13627                 false);
13628 }
13629 
13630 struct DenseMapInfoDupKey {
13631   static DupKey getEmptyKey() { return DupKey(0, true); }
13632   static DupKey getTombstoneKey() { return DupKey(1, true); }
13633   static unsigned getHashValue(const DupKey Key) {
13634     return (unsigned)(Key.val * 37);
13635   }
13636   static bool isEqual(const DupKey& LHS, const DupKey& RHS) {
13637     return LHS.isTombstoneOrEmptyKey == RHS.isTombstoneOrEmptyKey &&
13638            LHS.val == RHS.val;
13639   }
13640 };
13641 
13642 // Emits a warning when an element is implicitly set a value that
13643 // a previous element has already been set to.
13644 static void CheckForDuplicateEnumValues(Sema &S, ArrayRef<Decl *> Elements,
13645                                         EnumDecl *Enum,
13646                                         QualType EnumType) {
13647   if (S.Diags.isIgnored(diag::warn_duplicate_enum_values, Enum->getLocation()))
13648     return;
13649   // Avoid anonymous enums
13650   if (!Enum->getIdentifier())
13651     return;
13652 
13653   // Only check for small enums.
13654   if (Enum->getNumPositiveBits() > 63 || Enum->getNumNegativeBits() > 64)
13655     return;
13656 
13657   typedef SmallVector<EnumConstantDecl *, 3> ECDVector;
13658   typedef SmallVector<ECDVector *, 3> DuplicatesVector;
13659 
13660   typedef llvm::PointerUnion<EnumConstantDecl*, ECDVector*> DeclOrVector;
13661   typedef llvm::DenseMap<DupKey, DeclOrVector, DenseMapInfoDupKey>
13662           ValueToVectorMap;
13663 
13664   DuplicatesVector DupVector;
13665   ValueToVectorMap EnumMap;
13666 
13667   // Populate the EnumMap with all values represented by enum constants without
13668   // an initialier.
13669   for (unsigned i = 0, e = Elements.size(); i != e; ++i) {
13670     EnumConstantDecl *ECD = cast_or_null<EnumConstantDecl>(Elements[i]);
13671 
13672     // Null EnumConstantDecl means a previous diagnostic has been emitted for
13673     // this constant.  Skip this enum since it may be ill-formed.
13674     if (!ECD) {
13675       return;
13676     }
13677 
13678     if (ECD->getInitExpr())
13679       continue;
13680 
13681     DupKey Key = GetDupKey(ECD->getInitVal());
13682     DeclOrVector &Entry = EnumMap[Key];
13683 
13684     // First time encountering this value.
13685     if (Entry.isNull())
13686       Entry = ECD;
13687   }
13688 
13689   // Create vectors for any values that has duplicates.
13690   for (unsigned i = 0, e = Elements.size(); i != e; ++i) {
13691     EnumConstantDecl *ECD = cast<EnumConstantDecl>(Elements[i]);
13692     if (!ValidDuplicateEnum(ECD, Enum))
13693       continue;
13694 
13695     DupKey Key = GetDupKey(ECD->getInitVal());
13696 
13697     DeclOrVector& Entry = EnumMap[Key];
13698     if (Entry.isNull())
13699       continue;
13700 
13701     if (EnumConstantDecl *D = Entry.dyn_cast<EnumConstantDecl*>()) {
13702       // Ensure constants are different.
13703       if (D == ECD)
13704         continue;
13705 
13706       // Create new vector and push values onto it.
13707       ECDVector *Vec = new ECDVector();
13708       Vec->push_back(D);
13709       Vec->push_back(ECD);
13710 
13711       // Update entry to point to the duplicates vector.
13712       Entry = Vec;
13713 
13714       // Store the vector somewhere we can consult later for quick emission of
13715       // diagnostics.
13716       DupVector.push_back(Vec);
13717       continue;
13718     }
13719 
13720     ECDVector *Vec = Entry.get<ECDVector*>();
13721     // Make sure constants are not added more than once.
13722     if (*Vec->begin() == ECD)
13723       continue;
13724 
13725     Vec->push_back(ECD);
13726   }
13727 
13728   // Emit diagnostics.
13729   for (DuplicatesVector::iterator DupVectorIter = DupVector.begin(),
13730                                   DupVectorEnd = DupVector.end();
13731        DupVectorIter != DupVectorEnd; ++DupVectorIter) {
13732     ECDVector *Vec = *DupVectorIter;
13733     assert(Vec->size() > 1 && "ECDVector should have at least 2 elements.");
13734 
13735     // Emit warning for one enum constant.
13736     ECDVector::iterator I = Vec->begin();
13737     S.Diag((*I)->getLocation(), diag::warn_duplicate_enum_values)
13738       << (*I)->getName() << (*I)->getInitVal().toString(10)
13739       << (*I)->getSourceRange();
13740     ++I;
13741 
13742     // Emit one note for each of the remaining enum constants with
13743     // the same value.
13744     for (ECDVector::iterator E = Vec->end(); I != E; ++I)
13745       S.Diag((*I)->getLocation(), diag::note_duplicate_element)
13746         << (*I)->getName() << (*I)->getInitVal().toString(10)
13747         << (*I)->getSourceRange();
13748     delete Vec;
13749   }
13750 }
13751 
13752 bool
13753 Sema::IsValueInFlagEnum(const EnumDecl *ED, const llvm::APInt &Val,
13754                         bool AllowMask) const {
13755   FlagEnumAttr *FEAttr = ED->getAttr<FlagEnumAttr>();
13756   assert(FEAttr && "looking for value in non-flag enum");
13757 
13758   llvm::APInt FlagMask = ~FEAttr->getFlagBits();
13759   unsigned Width = FlagMask.getBitWidth();
13760 
13761   // We will try a zero-extended value for the regular check first.
13762   llvm::APInt ExtVal = Val.zextOrSelf(Width);
13763 
13764   // A value is in a flag enum if either its bits are a subset of the enum's
13765   // flag bits (the first condition) or we are allowing masks and the same is
13766   // true of its complement (the second condition). When masks are allowed, we
13767   // allow the common idiom of ~(enum1 | enum2) to be a valid enum value.
13768   //
13769   // While it's true that any value could be used as a mask, the assumption is
13770   // that a mask will have all of the insignificant bits set. Anything else is
13771   // likely a logic error.
13772   if (!(FlagMask & ExtVal))
13773     return true;
13774 
13775   if (AllowMask) {
13776     // Try a one-extended value instead. This can happen if the enum is wider
13777     // than the constant used, in C with extensions to allow for wider enums.
13778     // The mask will still have the correct behaviour, so we give the user the
13779     // benefit of the doubt.
13780     //
13781     // FIXME: This heuristic can cause weird results if the enum was extended
13782     // to a larger type and is signed, because then bit-masks of smaller types
13783     // that get extended will fall out of range (e.g. ~0x1u). We currently don't
13784     // detect that case and will get a false positive for it. In most cases,
13785     // though, it can be fixed by making it a signed type (e.g. ~0x1), so it may
13786     // be fine just to accept this as a warning.
13787     ExtVal |= llvm::APInt::getHighBitsSet(Width, Width - Val.getBitWidth());
13788     if (!(FlagMask & ~ExtVal))
13789       return true;
13790   }
13791 
13792   return false;
13793 }
13794 
13795 void Sema::ActOnEnumBody(SourceLocation EnumLoc, SourceLocation LBraceLoc,
13796                          SourceLocation RBraceLoc, Decl *EnumDeclX,
13797                          ArrayRef<Decl *> Elements,
13798                          Scope *S, AttributeList *Attr) {
13799   EnumDecl *Enum = cast<EnumDecl>(EnumDeclX);
13800   QualType EnumType = Context.getTypeDeclType(Enum);
13801 
13802   if (Attr)
13803     ProcessDeclAttributeList(S, Enum, Attr);
13804 
13805   if (Enum->isDependentType()) {
13806     for (unsigned i = 0, e = Elements.size(); i != e; ++i) {
13807       EnumConstantDecl *ECD =
13808         cast_or_null<EnumConstantDecl>(Elements[i]);
13809       if (!ECD) continue;
13810 
13811       ECD->setType(EnumType);
13812     }
13813 
13814     Enum->completeDefinition(Context.DependentTy, Context.DependentTy, 0, 0);
13815     return;
13816   }
13817 
13818   // TODO: If the result value doesn't fit in an int, it must be a long or long
13819   // long value.  ISO C does not support this, but GCC does as an extension,
13820   // emit a warning.
13821   unsigned IntWidth = Context.getTargetInfo().getIntWidth();
13822   unsigned CharWidth = Context.getTargetInfo().getCharWidth();
13823   unsigned ShortWidth = Context.getTargetInfo().getShortWidth();
13824 
13825   // Verify that all the values are okay, compute the size of the values, and
13826   // reverse the list.
13827   unsigned NumNegativeBits = 0;
13828   unsigned NumPositiveBits = 0;
13829 
13830   // Keep track of whether all elements have type int.
13831   bool AllElementsInt = true;
13832 
13833   for (unsigned i = 0, e = Elements.size(); i != e; ++i) {
13834     EnumConstantDecl *ECD =
13835       cast_or_null<EnumConstantDecl>(Elements[i]);
13836     if (!ECD) continue;  // Already issued a diagnostic.
13837 
13838     const llvm::APSInt &InitVal = ECD->getInitVal();
13839 
13840     // Keep track of the size of positive and negative values.
13841     if (InitVal.isUnsigned() || InitVal.isNonNegative())
13842       NumPositiveBits = std::max(NumPositiveBits,
13843                                  (unsigned)InitVal.getActiveBits());
13844     else
13845       NumNegativeBits = std::max(NumNegativeBits,
13846                                  (unsigned)InitVal.getMinSignedBits());
13847 
13848     // Keep track of whether every enum element has type int (very commmon).
13849     if (AllElementsInt)
13850       AllElementsInt = ECD->getType() == Context.IntTy;
13851   }
13852 
13853   // Figure out the type that should be used for this enum.
13854   QualType BestType;
13855   unsigned BestWidth;
13856 
13857   // C++0x N3000 [conv.prom]p3:
13858   //   An rvalue of an unscoped enumeration type whose underlying
13859   //   type is not fixed can be converted to an rvalue of the first
13860   //   of the following types that can represent all the values of
13861   //   the enumeration: int, unsigned int, long int, unsigned long
13862   //   int, long long int, or unsigned long long int.
13863   // C99 6.4.4.3p2:
13864   //   An identifier declared as an enumeration constant has type int.
13865   // The C99 rule is modified by a gcc extension
13866   QualType BestPromotionType;
13867 
13868   bool Packed = Enum->hasAttr<PackedAttr>();
13869   // -fshort-enums is the equivalent to specifying the packed attribute on all
13870   // enum definitions.
13871   if (LangOpts.ShortEnums)
13872     Packed = true;
13873 
13874   if (Enum->isFixed()) {
13875     BestType = Enum->getIntegerType();
13876     if (BestType->isPromotableIntegerType())
13877       BestPromotionType = Context.getPromotedIntegerType(BestType);
13878     else
13879       BestPromotionType = BestType;
13880 
13881     BestWidth = Context.getIntWidth(BestType);
13882   }
13883   else if (NumNegativeBits) {
13884     // If there is a negative value, figure out the smallest integer type (of
13885     // int/long/longlong) that fits.
13886     // If it's packed, check also if it fits a char or a short.
13887     if (Packed && NumNegativeBits <= CharWidth && NumPositiveBits < CharWidth) {
13888       BestType = Context.SignedCharTy;
13889       BestWidth = CharWidth;
13890     } else if (Packed && NumNegativeBits <= ShortWidth &&
13891                NumPositiveBits < ShortWidth) {
13892       BestType = Context.ShortTy;
13893       BestWidth = ShortWidth;
13894     } else if (NumNegativeBits <= IntWidth && NumPositiveBits < IntWidth) {
13895       BestType = Context.IntTy;
13896       BestWidth = IntWidth;
13897     } else {
13898       BestWidth = Context.getTargetInfo().getLongWidth();
13899 
13900       if (NumNegativeBits <= BestWidth && NumPositiveBits < BestWidth) {
13901         BestType = Context.LongTy;
13902       } else {
13903         BestWidth = Context.getTargetInfo().getLongLongWidth();
13904 
13905         if (NumNegativeBits > BestWidth || NumPositiveBits >= BestWidth)
13906           Diag(Enum->getLocation(), diag::ext_enum_too_large);
13907         BestType = Context.LongLongTy;
13908       }
13909     }
13910     BestPromotionType = (BestWidth <= IntWidth ? Context.IntTy : BestType);
13911   } else {
13912     // If there is no negative value, figure out the smallest type that fits
13913     // all of the enumerator values.
13914     // If it's packed, check also if it fits a char or a short.
13915     if (Packed && NumPositiveBits <= CharWidth) {
13916       BestType = Context.UnsignedCharTy;
13917       BestPromotionType = Context.IntTy;
13918       BestWidth = CharWidth;
13919     } else if (Packed && NumPositiveBits <= ShortWidth) {
13920       BestType = Context.UnsignedShortTy;
13921       BestPromotionType = Context.IntTy;
13922       BestWidth = ShortWidth;
13923     } else if (NumPositiveBits <= IntWidth) {
13924       BestType = Context.UnsignedIntTy;
13925       BestWidth = IntWidth;
13926       BestPromotionType
13927         = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus)
13928                            ? Context.UnsignedIntTy : Context.IntTy;
13929     } else if (NumPositiveBits <=
13930                (BestWidth = Context.getTargetInfo().getLongWidth())) {
13931       BestType = Context.UnsignedLongTy;
13932       BestPromotionType
13933         = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus)
13934                            ? Context.UnsignedLongTy : Context.LongTy;
13935     } else {
13936       BestWidth = Context.getTargetInfo().getLongLongWidth();
13937       assert(NumPositiveBits <= BestWidth &&
13938              "How could an initializer get larger than ULL?");
13939       BestType = Context.UnsignedLongLongTy;
13940       BestPromotionType
13941         = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus)
13942                            ? Context.UnsignedLongLongTy : Context.LongLongTy;
13943     }
13944   }
13945 
13946   FlagEnumAttr *FEAttr = Enum->getAttr<FlagEnumAttr>();
13947   if (FEAttr)
13948     FEAttr->getFlagBits() = llvm::APInt(BestWidth, 0);
13949 
13950   // Loop over all of the enumerator constants, changing their types to match
13951   // the type of the enum if needed. If we have a flag type, we also prepare the
13952   // FlagBits cache.
13953   for (auto *D : Elements) {
13954     auto *ECD = cast_or_null<EnumConstantDecl>(D);
13955     if (!ECD) continue;  // Already issued a diagnostic.
13956 
13957     // Standard C says the enumerators have int type, but we allow, as an
13958     // extension, the enumerators to be larger than int size.  If each
13959     // enumerator value fits in an int, type it as an int, otherwise type it the
13960     // same as the enumerator decl itself.  This means that in "enum { X = 1U }"
13961     // that X has type 'int', not 'unsigned'.
13962 
13963     // Determine whether the value fits into an int.
13964     llvm::APSInt InitVal = ECD->getInitVal();
13965 
13966     // If it fits into an integer type, force it.  Otherwise force it to match
13967     // the enum decl type.
13968     QualType NewTy;
13969     unsigned NewWidth;
13970     bool NewSign;
13971     if (!getLangOpts().CPlusPlus &&
13972         !Enum->isFixed() &&
13973         isRepresentableIntegerValue(Context, InitVal, Context.IntTy)) {
13974       NewTy = Context.IntTy;
13975       NewWidth = IntWidth;
13976       NewSign = true;
13977     } else if (ECD->getType() == BestType) {
13978       // Already the right type!
13979       if (getLangOpts().CPlusPlus)
13980         // C++ [dcl.enum]p4: Following the closing brace of an
13981         // enum-specifier, each enumerator has the type of its
13982         // enumeration.
13983         ECD->setType(EnumType);
13984       goto flagbits;
13985     } else {
13986       NewTy = BestType;
13987       NewWidth = BestWidth;
13988       NewSign = BestType->isSignedIntegerOrEnumerationType();
13989     }
13990 
13991     // Adjust the APSInt value.
13992     InitVal = InitVal.extOrTrunc(NewWidth);
13993     InitVal.setIsSigned(NewSign);
13994     ECD->setInitVal(InitVal);
13995 
13996     // Adjust the Expr initializer and type.
13997     if (ECD->getInitExpr() &&
13998         !Context.hasSameType(NewTy, ECD->getInitExpr()->getType()))
13999       ECD->setInitExpr(ImplicitCastExpr::Create(Context, NewTy,
14000                                                 CK_IntegralCast,
14001                                                 ECD->getInitExpr(),
14002                                                 /*base paths*/ nullptr,
14003                                                 VK_RValue));
14004     if (getLangOpts().CPlusPlus)
14005       // C++ [dcl.enum]p4: Following the closing brace of an
14006       // enum-specifier, each enumerator has the type of its
14007       // enumeration.
14008       ECD->setType(EnumType);
14009     else
14010       ECD->setType(NewTy);
14011 
14012 flagbits:
14013     // Check to see if we have a constant with exactly one bit set. Note that x
14014     // & (x - 1) will be nonzero if and only if x has more than one bit set.
14015     if (FEAttr) {
14016       llvm::APInt ExtVal = InitVal.zextOrSelf(BestWidth);
14017       if (ExtVal != 0 && !(ExtVal & (ExtVal - 1))) {
14018         FEAttr->getFlagBits() |= ExtVal;
14019       }
14020     }
14021   }
14022 
14023   if (FEAttr) {
14024     for (Decl *D : Elements) {
14025       EnumConstantDecl *ECD = cast_or_null<EnumConstantDecl>(D);
14026       if (!ECD) continue;  // Already issued a diagnostic.
14027 
14028       llvm::APSInt InitVal = ECD->getInitVal();
14029       if (InitVal != 0 && !IsValueInFlagEnum(Enum, InitVal, true))
14030         Diag(ECD->getLocation(), diag::warn_flag_enum_constant_out_of_range)
14031           << ECD << Enum;
14032     }
14033   }
14034 
14035 
14036 
14037   Enum->completeDefinition(BestType, BestPromotionType,
14038                            NumPositiveBits, NumNegativeBits);
14039 
14040   CheckForDuplicateEnumValues(*this, Elements, Enum, EnumType);
14041 
14042   // Now that the enum type is defined, ensure it's not been underaligned.
14043   if (Enum->hasAttrs())
14044     CheckAlignasUnderalignment(Enum);
14045 }
14046 
14047 Decl *Sema::ActOnFileScopeAsmDecl(Expr *expr,
14048                                   SourceLocation StartLoc,
14049                                   SourceLocation EndLoc) {
14050   StringLiteral *AsmString = cast<StringLiteral>(expr);
14051 
14052   FileScopeAsmDecl *New = FileScopeAsmDecl::Create(Context, CurContext,
14053                                                    AsmString, StartLoc,
14054                                                    EndLoc);
14055   CurContext->addDecl(New);
14056   return New;
14057 }
14058 
14059 static void checkModuleImportContext(Sema &S, Module *M,
14060                                      SourceLocation ImportLoc,
14061                                      DeclContext *DC) {
14062   if (auto *LSD = dyn_cast<LinkageSpecDecl>(DC)) {
14063     switch (LSD->getLanguage()) {
14064     case LinkageSpecDecl::lang_c:
14065       if (!M->IsExternC) {
14066         S.Diag(ImportLoc, diag::err_module_import_in_extern_c)
14067           << M->getFullModuleName();
14068         S.Diag(LSD->getLocStart(), diag::note_module_import_in_extern_c);
14069         return;
14070       }
14071       break;
14072     case LinkageSpecDecl::lang_cxx:
14073       break;
14074     }
14075     DC = LSD->getParent();
14076   }
14077 
14078   while (isa<LinkageSpecDecl>(DC))
14079     DC = DC->getParent();
14080   if (!isa<TranslationUnitDecl>(DC)) {
14081     S.Diag(ImportLoc, diag::err_module_import_not_at_top_level)
14082       << M->getFullModuleName() << DC;
14083     S.Diag(cast<Decl>(DC)->getLocStart(),
14084            diag::note_module_import_not_at_top_level)
14085       << DC;
14086   }
14087 }
14088 
14089 DeclResult Sema::ActOnModuleImport(SourceLocation AtLoc,
14090                                    SourceLocation ImportLoc,
14091                                    ModuleIdPath Path) {
14092   Module *Mod =
14093       getModuleLoader().loadModule(ImportLoc, Path, Module::AllVisible,
14094                                    /*IsIncludeDirective=*/false);
14095   if (!Mod)
14096     return true;
14097 
14098   VisibleModules.setVisible(Mod, ImportLoc);
14099 
14100   checkModuleImportContext(*this, Mod, ImportLoc, CurContext);
14101 
14102   // FIXME: we should support importing a submodule within a different submodule
14103   // of the same top-level module. Until we do, make it an error rather than
14104   // silently ignoring the import.
14105   if (Mod->getTopLevelModuleName() == getLangOpts().CurrentModule)
14106     Diag(ImportLoc, diag::err_module_self_import)
14107         << Mod->getFullModuleName() << getLangOpts().CurrentModule;
14108   else if (Mod->getTopLevelModuleName() == getLangOpts().ImplementationOfModule)
14109     Diag(ImportLoc, diag::err_module_import_in_implementation)
14110         << Mod->getFullModuleName() << getLangOpts().ImplementationOfModule;
14111 
14112   SmallVector<SourceLocation, 2> IdentifierLocs;
14113   Module *ModCheck = Mod;
14114   for (unsigned I = 0, N = Path.size(); I != N; ++I) {
14115     // If we've run out of module parents, just drop the remaining identifiers.
14116     // We need the length to be consistent.
14117     if (!ModCheck)
14118       break;
14119     ModCheck = ModCheck->Parent;
14120 
14121     IdentifierLocs.push_back(Path[I].second);
14122   }
14123 
14124   ImportDecl *Import = ImportDecl::Create(Context,
14125                                           Context.getTranslationUnitDecl(),
14126                                           AtLoc.isValid()? AtLoc : ImportLoc,
14127                                           Mod, IdentifierLocs);
14128   Context.getTranslationUnitDecl()->addDecl(Import);
14129   return Import;
14130 }
14131 
14132 void Sema::ActOnModuleInclude(SourceLocation DirectiveLoc, Module *Mod) {
14133   checkModuleImportContext(*this, Mod, DirectiveLoc, CurContext);
14134 
14135   // Determine whether we're in the #include buffer for a module. The #includes
14136   // in that buffer do not qualify as module imports; they're just an
14137   // implementation detail of us building the module.
14138   //
14139   // FIXME: Should we even get ActOnModuleInclude calls for those?
14140   bool IsInModuleIncludes =
14141       TUKind == TU_Module &&
14142       getSourceManager().isWrittenInMainFile(DirectiveLoc);
14143 
14144   // If this module import was due to an inclusion directive, create an
14145   // implicit import declaration to capture it in the AST.
14146   if (!IsInModuleIncludes) {
14147     TranslationUnitDecl *TU = getASTContext().getTranslationUnitDecl();
14148     ImportDecl *ImportD = ImportDecl::CreateImplicit(getASTContext(), TU,
14149                                                      DirectiveLoc, Mod,
14150                                                      DirectiveLoc);
14151     TU->addDecl(ImportD);
14152     Consumer.HandleImplicitImportDecl(ImportD);
14153   }
14154 
14155   getModuleLoader().makeModuleVisible(Mod, Module::AllVisible, DirectiveLoc);
14156   VisibleModules.setVisible(Mod, DirectiveLoc);
14157 }
14158 
14159 void Sema::ActOnModuleBegin(SourceLocation DirectiveLoc, Module *Mod) {
14160   checkModuleImportContext(*this, Mod, DirectiveLoc, CurContext);
14161 
14162   if (getLangOpts().ModulesLocalVisibility)
14163     VisibleModulesStack.push_back(std::move(VisibleModules));
14164   VisibleModules.setVisible(Mod, DirectiveLoc);
14165 }
14166 
14167 void Sema::ActOnModuleEnd(SourceLocation DirectiveLoc, Module *Mod) {
14168   checkModuleImportContext(*this, Mod, DirectiveLoc, CurContext);
14169 
14170   if (getLangOpts().ModulesLocalVisibility) {
14171     VisibleModules = std::move(VisibleModulesStack.back());
14172     VisibleModulesStack.pop_back();
14173     VisibleModules.setVisible(Mod, DirectiveLoc);
14174   }
14175 }
14176 
14177 void Sema::createImplicitModuleImportForErrorRecovery(SourceLocation Loc,
14178                                                       Module *Mod) {
14179   // Bail if we're not allowed to implicitly import a module here.
14180   if (isSFINAEContext() || !getLangOpts().ModulesErrorRecovery)
14181     return;
14182 
14183   // Create the implicit import declaration.
14184   TranslationUnitDecl *TU = getASTContext().getTranslationUnitDecl();
14185   ImportDecl *ImportD = ImportDecl::CreateImplicit(getASTContext(), TU,
14186                                                    Loc, Mod, Loc);
14187   TU->addDecl(ImportD);
14188   Consumer.HandleImplicitImportDecl(ImportD);
14189 
14190   // Make the module visible.
14191   getModuleLoader().makeModuleVisible(Mod, Module::AllVisible, Loc);
14192   VisibleModules.setVisible(Mod, Loc);
14193 }
14194 
14195 void Sema::ActOnPragmaRedefineExtname(IdentifierInfo* Name,
14196                                       IdentifierInfo* AliasName,
14197                                       SourceLocation PragmaLoc,
14198                                       SourceLocation NameLoc,
14199                                       SourceLocation AliasNameLoc) {
14200   Decl *PrevDecl = LookupSingleName(TUScope, Name, NameLoc,
14201                                     LookupOrdinaryName);
14202   AsmLabelAttr *Attr = ::new (Context) AsmLabelAttr(AliasNameLoc, Context,
14203                                                     AliasName->getName(), 0);
14204 
14205   if (PrevDecl)
14206     PrevDecl->addAttr(Attr);
14207   else
14208     (void)ExtnameUndeclaredIdentifiers.insert(
14209       std::pair<IdentifierInfo*,AsmLabelAttr*>(Name, Attr));
14210 }
14211 
14212 void Sema::ActOnPragmaWeakID(IdentifierInfo* Name,
14213                              SourceLocation PragmaLoc,
14214                              SourceLocation NameLoc) {
14215   Decl *PrevDecl = LookupSingleName(TUScope, Name, NameLoc, LookupOrdinaryName);
14216 
14217   if (PrevDecl) {
14218     PrevDecl->addAttr(WeakAttr::CreateImplicit(Context, PragmaLoc));
14219   } else {
14220     (void)WeakUndeclaredIdentifiers.insert(
14221       std::pair<IdentifierInfo*,WeakInfo>
14222         (Name, WeakInfo((IdentifierInfo*)nullptr, NameLoc)));
14223   }
14224 }
14225 
14226 void Sema::ActOnPragmaWeakAlias(IdentifierInfo* Name,
14227                                 IdentifierInfo* AliasName,
14228                                 SourceLocation PragmaLoc,
14229                                 SourceLocation NameLoc,
14230                                 SourceLocation AliasNameLoc) {
14231   Decl *PrevDecl = LookupSingleName(TUScope, AliasName, AliasNameLoc,
14232                                     LookupOrdinaryName);
14233   WeakInfo W = WeakInfo(Name, NameLoc);
14234 
14235   if (PrevDecl) {
14236     if (!PrevDecl->hasAttr<AliasAttr>())
14237       if (NamedDecl *ND = dyn_cast<NamedDecl>(PrevDecl))
14238         DeclApplyPragmaWeak(TUScope, ND, W);
14239   } else {
14240     (void)WeakUndeclaredIdentifiers.insert(
14241       std::pair<IdentifierInfo*,WeakInfo>(AliasName, W));
14242   }
14243 }
14244 
14245 Decl *Sema::getObjCDeclContext() const {
14246   return (dyn_cast_or_null<ObjCContainerDecl>(CurContext));
14247 }
14248 
14249 AvailabilityResult Sema::getCurContextAvailability() const {
14250   const Decl *D = cast_or_null<Decl>(getCurObjCLexicalContext());
14251   if (!D)
14252     return AR_Available;
14253 
14254   // If we are within an Objective-C method, we should consult
14255   // both the availability of the method as well as the
14256   // enclosing class.  If the class is (say) deprecated,
14257   // the entire method is considered deprecated from the
14258   // purpose of checking if the current context is deprecated.
14259   if (const ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(D)) {
14260     AvailabilityResult R = MD->getAvailability();
14261     if (R != AR_Available)
14262       return R;
14263     D = MD->getClassInterface();
14264   }
14265   // If we are within an Objective-c @implementation, it
14266   // gets the same availability context as the @interface.
14267   else if (const ObjCImplementationDecl *ID =
14268             dyn_cast<ObjCImplementationDecl>(D)) {
14269     D = ID->getClassInterface();
14270   }
14271   // Recover from user error.
14272   return D ? D->getAvailability() : AR_Available;
14273 }
14274