xref: /llvm-project-15.0.7/clang/lib/AST/Decl.cpp (revision be1a9b38)
1 //===- Decl.cpp - Declaration AST Node Implementation ---------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements the Decl subclasses.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "clang/AST/Decl.h"
14 #include "Linkage.h"
15 #include "clang/AST/ASTContext.h"
16 #include "clang/AST/ASTDiagnostic.h"
17 #include "clang/AST/ASTLambda.h"
18 #include "clang/AST/ASTMutationListener.h"
19 #include "clang/AST/Attr.h"
20 #include "clang/AST/CanonicalType.h"
21 #include "clang/AST/DeclBase.h"
22 #include "clang/AST/DeclCXX.h"
23 #include "clang/AST/DeclObjC.h"
24 #include "clang/AST/DeclOpenMP.h"
25 #include "clang/AST/DeclTemplate.h"
26 #include "clang/AST/DeclarationName.h"
27 #include "clang/AST/Expr.h"
28 #include "clang/AST/ExprCXX.h"
29 #include "clang/AST/ExternalASTSource.h"
30 #include "clang/AST/ODRHash.h"
31 #include "clang/AST/PrettyDeclStackTrace.h"
32 #include "clang/AST/PrettyPrinter.h"
33 #include "clang/AST/Redeclarable.h"
34 #include "clang/AST/Stmt.h"
35 #include "clang/AST/TemplateBase.h"
36 #include "clang/AST/Type.h"
37 #include "clang/AST/TypeLoc.h"
38 #include "clang/Basic/Builtins.h"
39 #include "clang/Basic/IdentifierTable.h"
40 #include "clang/Basic/LLVM.h"
41 #include "clang/Basic/LangOptions.h"
42 #include "clang/Basic/Linkage.h"
43 #include "clang/Basic/Module.h"
44 #include "clang/Basic/PartialDiagnostic.h"
45 #include "clang/Basic/SanitizerBlacklist.h"
46 #include "clang/Basic/Sanitizers.h"
47 #include "clang/Basic/SourceLocation.h"
48 #include "clang/Basic/SourceManager.h"
49 #include "clang/Basic/Specifiers.h"
50 #include "clang/Basic/TargetCXXABI.h"
51 #include "clang/Basic/TargetInfo.h"
52 #include "clang/Basic/Visibility.h"
53 #include "llvm/ADT/APSInt.h"
54 #include "llvm/ADT/ArrayRef.h"
55 #include "llvm/ADT/None.h"
56 #include "llvm/ADT/Optional.h"
57 #include "llvm/ADT/STLExtras.h"
58 #include "llvm/ADT/SmallVector.h"
59 #include "llvm/ADT/StringRef.h"
60 #include "llvm/ADT/StringSwitch.h"
61 #include "llvm/ADT/Triple.h"
62 #include "llvm/Support/Casting.h"
63 #include "llvm/Support/ErrorHandling.h"
64 #include "llvm/Support/raw_ostream.h"
65 #include <algorithm>
66 #include <cassert>
67 #include <cstddef>
68 #include <cstring>
69 #include <memory>
70 #include <string>
71 #include <tuple>
72 #include <type_traits>
73 
74 using namespace clang;
75 
76 Decl *clang::getPrimaryMergedDecl(Decl *D) {
77   return D->getASTContext().getPrimaryMergedDecl(D);
78 }
79 
80 void PrettyDeclStackTraceEntry::print(raw_ostream &OS) const {
81   SourceLocation Loc = this->Loc;
82   if (!Loc.isValid() && TheDecl) Loc = TheDecl->getLocation();
83   if (Loc.isValid()) {
84     Loc.print(OS, Context.getSourceManager());
85     OS << ": ";
86   }
87   OS << Message;
88 
89   if (auto *ND = dyn_cast_or_null<NamedDecl>(TheDecl)) {
90     OS << " '";
91     ND->getNameForDiagnostic(OS, Context.getPrintingPolicy(), true);
92     OS << "'";
93   }
94 
95   OS << '\n';
96 }
97 
98 // Defined here so that it can be inlined into its direct callers.
99 bool Decl::isOutOfLine() const {
100   return !getLexicalDeclContext()->Equals(getDeclContext());
101 }
102 
103 TranslationUnitDecl::TranslationUnitDecl(ASTContext &ctx)
104     : Decl(TranslationUnit, nullptr, SourceLocation()),
105       DeclContext(TranslationUnit), Ctx(ctx) {}
106 
107 //===----------------------------------------------------------------------===//
108 // NamedDecl Implementation
109 //===----------------------------------------------------------------------===//
110 
111 // Visibility rules aren't rigorously externally specified, but here
112 // are the basic principles behind what we implement:
113 //
114 // 1. An explicit visibility attribute is generally a direct expression
115 // of the user's intent and should be honored.  Only the innermost
116 // visibility attribute applies.  If no visibility attribute applies,
117 // global visibility settings are considered.
118 //
119 // 2. There is one caveat to the above: on or in a template pattern,
120 // an explicit visibility attribute is just a default rule, and
121 // visibility can be decreased by the visibility of template
122 // arguments.  But this, too, has an exception: an attribute on an
123 // explicit specialization or instantiation causes all the visibility
124 // restrictions of the template arguments to be ignored.
125 //
126 // 3. A variable that does not otherwise have explicit visibility can
127 // be restricted by the visibility of its type.
128 //
129 // 4. A visibility restriction is explicit if it comes from an
130 // attribute (or something like it), not a global visibility setting.
131 // When emitting a reference to an external symbol, visibility
132 // restrictions are ignored unless they are explicit.
133 //
134 // 5. When computing the visibility of a non-type, including a
135 // non-type member of a class, only non-type visibility restrictions
136 // are considered: the 'visibility' attribute, global value-visibility
137 // settings, and a few special cases like __private_extern.
138 //
139 // 6. When computing the visibility of a type, including a type member
140 // of a class, only type visibility restrictions are considered:
141 // the 'type_visibility' attribute and global type-visibility settings.
142 // However, a 'visibility' attribute counts as a 'type_visibility'
143 // attribute on any declaration that only has the former.
144 //
145 // The visibility of a "secondary" entity, like a template argument,
146 // is computed using the kind of that entity, not the kind of the
147 // primary entity for which we are computing visibility.  For example,
148 // the visibility of a specialization of either of these templates:
149 //   template <class T, bool (&compare)(T, X)> bool has_match(list<T>, X);
150 //   template <class T, bool (&compare)(T, X)> class matcher;
151 // is restricted according to the type visibility of the argument 'T',
152 // the type visibility of 'bool(&)(T,X)', and the value visibility of
153 // the argument function 'compare'.  That 'has_match' is a value
154 // and 'matcher' is a type only matters when looking for attributes
155 // and settings from the immediate context.
156 
157 /// Does this computation kind permit us to consider additional
158 /// visibility settings from attributes and the like?
159 static bool hasExplicitVisibilityAlready(LVComputationKind computation) {
160   return computation.IgnoreExplicitVisibility;
161 }
162 
163 /// Given an LVComputationKind, return one of the same type/value sort
164 /// that records that it already has explicit visibility.
165 static LVComputationKind
166 withExplicitVisibilityAlready(LVComputationKind Kind) {
167   Kind.IgnoreExplicitVisibility = true;
168   return Kind;
169 }
170 
171 static Optional<Visibility> getExplicitVisibility(const NamedDecl *D,
172                                                   LVComputationKind kind) {
173   assert(!kind.IgnoreExplicitVisibility &&
174          "asking for explicit visibility when we shouldn't be");
175   return D->getExplicitVisibility(kind.getExplicitVisibilityKind());
176 }
177 
178 /// Is the given declaration a "type" or a "value" for the purposes of
179 /// visibility computation?
180 static bool usesTypeVisibility(const NamedDecl *D) {
181   return isa<TypeDecl>(D) ||
182          isa<ClassTemplateDecl>(D) ||
183          isa<ObjCInterfaceDecl>(D);
184 }
185 
186 /// Does the given declaration have member specialization information,
187 /// and if so, is it an explicit specialization?
188 template <class T> static typename
189 std::enable_if<!std::is_base_of<RedeclarableTemplateDecl, T>::value, bool>::type
190 isExplicitMemberSpecialization(const T *D) {
191   if (const MemberSpecializationInfo *member =
192         D->getMemberSpecializationInfo()) {
193     return member->isExplicitSpecialization();
194   }
195   return false;
196 }
197 
198 /// For templates, this question is easier: a member template can't be
199 /// explicitly instantiated, so there's a single bit indicating whether
200 /// or not this is an explicit member specialization.
201 static bool isExplicitMemberSpecialization(const RedeclarableTemplateDecl *D) {
202   return D->isMemberSpecialization();
203 }
204 
205 /// Given a visibility attribute, return the explicit visibility
206 /// associated with it.
207 template <class T>
208 static Visibility getVisibilityFromAttr(const T *attr) {
209   switch (attr->getVisibility()) {
210   case T::Default:
211     return DefaultVisibility;
212   case T::Hidden:
213     return HiddenVisibility;
214   case T::Protected:
215     return ProtectedVisibility;
216   }
217   llvm_unreachable("bad visibility kind");
218 }
219 
220 /// Return the explicit visibility of the given declaration.
221 static Optional<Visibility> getVisibilityOf(const NamedDecl *D,
222                                     NamedDecl::ExplicitVisibilityKind kind) {
223   // If we're ultimately computing the visibility of a type, look for
224   // a 'type_visibility' attribute before looking for 'visibility'.
225   if (kind == NamedDecl::VisibilityForType) {
226     if (const auto *A = D->getAttr<TypeVisibilityAttr>()) {
227       return getVisibilityFromAttr(A);
228     }
229   }
230 
231   // If this declaration has an explicit visibility attribute, use it.
232   if (const auto *A = D->getAttr<VisibilityAttr>()) {
233     return getVisibilityFromAttr(A);
234   }
235 
236   return None;
237 }
238 
239 LinkageInfo LinkageComputer::getLVForType(const Type &T,
240                                           LVComputationKind computation) {
241   if (computation.IgnoreAllVisibility)
242     return LinkageInfo(T.getLinkage(), DefaultVisibility, true);
243   return getTypeLinkageAndVisibility(&T);
244 }
245 
246 /// Get the most restrictive linkage for the types in the given
247 /// template parameter list.  For visibility purposes, template
248 /// parameters are part of the signature of a template.
249 LinkageInfo LinkageComputer::getLVForTemplateParameterList(
250     const TemplateParameterList *Params, LVComputationKind computation) {
251   LinkageInfo LV;
252   for (const NamedDecl *P : *Params) {
253     // Template type parameters are the most common and never
254     // contribute to visibility, pack or not.
255     if (isa<TemplateTypeParmDecl>(P))
256       continue;
257 
258     // Non-type template parameters can be restricted by the value type, e.g.
259     //   template <enum X> class A { ... };
260     // We have to be careful here, though, because we can be dealing with
261     // dependent types.
262     if (const auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(P)) {
263       // Handle the non-pack case first.
264       if (!NTTP->isExpandedParameterPack()) {
265         if (!NTTP->getType()->isDependentType()) {
266           LV.merge(getLVForType(*NTTP->getType(), computation));
267         }
268         continue;
269       }
270 
271       // Look at all the types in an expanded pack.
272       for (unsigned i = 0, n = NTTP->getNumExpansionTypes(); i != n; ++i) {
273         QualType type = NTTP->getExpansionType(i);
274         if (!type->isDependentType())
275           LV.merge(getTypeLinkageAndVisibility(type));
276       }
277       continue;
278     }
279 
280     // Template template parameters can be restricted by their
281     // template parameters, recursively.
282     const auto *TTP = cast<TemplateTemplateParmDecl>(P);
283 
284     // Handle the non-pack case first.
285     if (!TTP->isExpandedParameterPack()) {
286       LV.merge(getLVForTemplateParameterList(TTP->getTemplateParameters(),
287                                              computation));
288       continue;
289     }
290 
291     // Look at all expansions in an expanded pack.
292     for (unsigned i = 0, n = TTP->getNumExpansionTemplateParameters();
293            i != n; ++i) {
294       LV.merge(getLVForTemplateParameterList(
295           TTP->getExpansionTemplateParameters(i), computation));
296     }
297   }
298 
299   return LV;
300 }
301 
302 static const Decl *getOutermostFuncOrBlockContext(const Decl *D) {
303   const Decl *Ret = nullptr;
304   const DeclContext *DC = D->getDeclContext();
305   while (DC->getDeclKind() != Decl::TranslationUnit) {
306     if (isa<FunctionDecl>(DC) || isa<BlockDecl>(DC))
307       Ret = cast<Decl>(DC);
308     DC = DC->getParent();
309   }
310   return Ret;
311 }
312 
313 /// Get the most restrictive linkage for the types and
314 /// declarations in the given template argument list.
315 ///
316 /// Note that we don't take an LVComputationKind because we always
317 /// want to honor the visibility of template arguments in the same way.
318 LinkageInfo
319 LinkageComputer::getLVForTemplateArgumentList(ArrayRef<TemplateArgument> Args,
320                                               LVComputationKind computation) {
321   LinkageInfo LV;
322 
323   for (const TemplateArgument &Arg : Args) {
324     switch (Arg.getKind()) {
325     case TemplateArgument::Null:
326     case TemplateArgument::Integral:
327     case TemplateArgument::Expression:
328       continue;
329 
330     case TemplateArgument::Type:
331       LV.merge(getLVForType(*Arg.getAsType(), computation));
332       continue;
333 
334     case TemplateArgument::Declaration: {
335       const NamedDecl *ND = Arg.getAsDecl();
336       assert(!usesTypeVisibility(ND));
337       LV.merge(getLVForDecl(ND, computation));
338       continue;
339     }
340 
341     case TemplateArgument::NullPtr:
342       LV.merge(getTypeLinkageAndVisibility(Arg.getNullPtrType()));
343       continue;
344 
345     case TemplateArgument::Template:
346     case TemplateArgument::TemplateExpansion:
347       if (TemplateDecl *Template =
348               Arg.getAsTemplateOrTemplatePattern().getAsTemplateDecl())
349         LV.merge(getLVForDecl(Template, computation));
350       continue;
351 
352     case TemplateArgument::Pack:
353       LV.merge(getLVForTemplateArgumentList(Arg.getPackAsArray(), computation));
354       continue;
355     }
356     llvm_unreachable("bad template argument kind");
357   }
358 
359   return LV;
360 }
361 
362 LinkageInfo
363 LinkageComputer::getLVForTemplateArgumentList(const TemplateArgumentList &TArgs,
364                                               LVComputationKind computation) {
365   return getLVForTemplateArgumentList(TArgs.asArray(), computation);
366 }
367 
368 static bool shouldConsiderTemplateVisibility(const FunctionDecl *fn,
369                         const FunctionTemplateSpecializationInfo *specInfo) {
370   // Include visibility from the template parameters and arguments
371   // only if this is not an explicit instantiation or specialization
372   // with direct explicit visibility.  (Implicit instantiations won't
373   // have a direct attribute.)
374   if (!specInfo->isExplicitInstantiationOrSpecialization())
375     return true;
376 
377   return !fn->hasAttr<VisibilityAttr>();
378 }
379 
380 /// Merge in template-related linkage and visibility for the given
381 /// function template specialization.
382 ///
383 /// We don't need a computation kind here because we can assume
384 /// LVForValue.
385 ///
386 /// \param[out] LV the computation to use for the parent
387 void LinkageComputer::mergeTemplateLV(
388     LinkageInfo &LV, const FunctionDecl *fn,
389     const FunctionTemplateSpecializationInfo *specInfo,
390     LVComputationKind computation) {
391   bool considerVisibility =
392     shouldConsiderTemplateVisibility(fn, specInfo);
393 
394   // Merge information from the template parameters.
395   FunctionTemplateDecl *temp = specInfo->getTemplate();
396   LinkageInfo tempLV =
397     getLVForTemplateParameterList(temp->getTemplateParameters(), computation);
398   LV.mergeMaybeWithVisibility(tempLV, considerVisibility);
399 
400   // Merge information from the template arguments.
401   const TemplateArgumentList &templateArgs = *specInfo->TemplateArguments;
402   LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation);
403   LV.mergeMaybeWithVisibility(argsLV, considerVisibility);
404 }
405 
406 /// Does the given declaration have a direct visibility attribute
407 /// that would match the given rules?
408 static bool hasDirectVisibilityAttribute(const NamedDecl *D,
409                                          LVComputationKind computation) {
410   if (computation.IgnoreAllVisibility)
411     return false;
412 
413   return (computation.isTypeVisibility() && D->hasAttr<TypeVisibilityAttr>()) ||
414          D->hasAttr<VisibilityAttr>();
415 }
416 
417 /// Should we consider visibility associated with the template
418 /// arguments and parameters of the given class template specialization?
419 static bool shouldConsiderTemplateVisibility(
420                                  const ClassTemplateSpecializationDecl *spec,
421                                  LVComputationKind computation) {
422   // Include visibility from the template parameters and arguments
423   // only if this is not an explicit instantiation or specialization
424   // with direct explicit visibility (and note that implicit
425   // instantiations won't have a direct attribute).
426   //
427   // Furthermore, we want to ignore template parameters and arguments
428   // for an explicit specialization when computing the visibility of a
429   // member thereof with explicit visibility.
430   //
431   // This is a bit complex; let's unpack it.
432   //
433   // An explicit class specialization is an independent, top-level
434   // declaration.  As such, if it or any of its members has an
435   // explicit visibility attribute, that must directly express the
436   // user's intent, and we should honor it.  The same logic applies to
437   // an explicit instantiation of a member of such a thing.
438 
439   // Fast path: if this is not an explicit instantiation or
440   // specialization, we always want to consider template-related
441   // visibility restrictions.
442   if (!spec->isExplicitInstantiationOrSpecialization())
443     return true;
444 
445   // This is the 'member thereof' check.
446   if (spec->isExplicitSpecialization() &&
447       hasExplicitVisibilityAlready(computation))
448     return false;
449 
450   return !hasDirectVisibilityAttribute(spec, computation);
451 }
452 
453 /// Merge in template-related linkage and visibility for the given
454 /// class template specialization.
455 void LinkageComputer::mergeTemplateLV(
456     LinkageInfo &LV, const ClassTemplateSpecializationDecl *spec,
457     LVComputationKind computation) {
458   bool considerVisibility = shouldConsiderTemplateVisibility(spec, computation);
459 
460   // Merge information from the template parameters, but ignore
461   // visibility if we're only considering template arguments.
462 
463   ClassTemplateDecl *temp = spec->getSpecializedTemplate();
464   LinkageInfo tempLV =
465     getLVForTemplateParameterList(temp->getTemplateParameters(), computation);
466   LV.mergeMaybeWithVisibility(tempLV,
467            considerVisibility && !hasExplicitVisibilityAlready(computation));
468 
469   // Merge information from the template arguments.  We ignore
470   // template-argument visibility if we've got an explicit
471   // instantiation with a visibility attribute.
472   const TemplateArgumentList &templateArgs = spec->getTemplateArgs();
473   LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation);
474   if (considerVisibility)
475     LV.mergeVisibility(argsLV);
476   LV.mergeExternalVisibility(argsLV);
477 }
478 
479 /// Should we consider visibility associated with the template
480 /// arguments and parameters of the given variable template
481 /// specialization? As usual, follow class template specialization
482 /// logic up to initialization.
483 static bool shouldConsiderTemplateVisibility(
484                                  const VarTemplateSpecializationDecl *spec,
485                                  LVComputationKind computation) {
486   // Include visibility from the template parameters and arguments
487   // only if this is not an explicit instantiation or specialization
488   // with direct explicit visibility (and note that implicit
489   // instantiations won't have a direct attribute).
490   if (!spec->isExplicitInstantiationOrSpecialization())
491     return true;
492 
493   // An explicit variable specialization is an independent, top-level
494   // declaration.  As such, if it has an explicit visibility attribute,
495   // that must directly express the user's intent, and we should honor
496   // it.
497   if (spec->isExplicitSpecialization() &&
498       hasExplicitVisibilityAlready(computation))
499     return false;
500 
501   return !hasDirectVisibilityAttribute(spec, computation);
502 }
503 
504 /// Merge in template-related linkage and visibility for the given
505 /// variable template specialization. As usual, follow class template
506 /// specialization logic up to initialization.
507 void LinkageComputer::mergeTemplateLV(LinkageInfo &LV,
508                                       const VarTemplateSpecializationDecl *spec,
509                                       LVComputationKind computation) {
510   bool considerVisibility = shouldConsiderTemplateVisibility(spec, computation);
511 
512   // Merge information from the template parameters, but ignore
513   // visibility if we're only considering template arguments.
514 
515   VarTemplateDecl *temp = spec->getSpecializedTemplate();
516   LinkageInfo tempLV =
517     getLVForTemplateParameterList(temp->getTemplateParameters(), computation);
518   LV.mergeMaybeWithVisibility(tempLV,
519            considerVisibility && !hasExplicitVisibilityAlready(computation));
520 
521   // Merge information from the template arguments.  We ignore
522   // template-argument visibility if we've got an explicit
523   // instantiation with a visibility attribute.
524   const TemplateArgumentList &templateArgs = spec->getTemplateArgs();
525   LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation);
526   if (considerVisibility)
527     LV.mergeVisibility(argsLV);
528   LV.mergeExternalVisibility(argsLV);
529 }
530 
531 static bool useInlineVisibilityHidden(const NamedDecl *D) {
532   // FIXME: we should warn if -fvisibility-inlines-hidden is used with c.
533   const LangOptions &Opts = D->getASTContext().getLangOpts();
534   if (!Opts.CPlusPlus || !Opts.InlineVisibilityHidden)
535     return false;
536 
537   const auto *FD = dyn_cast<FunctionDecl>(D);
538   if (!FD)
539     return false;
540 
541   TemplateSpecializationKind TSK = TSK_Undeclared;
542   if (FunctionTemplateSpecializationInfo *spec
543       = FD->getTemplateSpecializationInfo()) {
544     TSK = spec->getTemplateSpecializationKind();
545   } else if (MemberSpecializationInfo *MSI =
546              FD->getMemberSpecializationInfo()) {
547     TSK = MSI->getTemplateSpecializationKind();
548   }
549 
550   const FunctionDecl *Def = nullptr;
551   // InlineVisibilityHidden only applies to definitions, and
552   // isInlined() only gives meaningful answers on definitions
553   // anyway.
554   return TSK != TSK_ExplicitInstantiationDeclaration &&
555     TSK != TSK_ExplicitInstantiationDefinition &&
556     FD->hasBody(Def) && Def->isInlined() && !Def->hasAttr<GNUInlineAttr>();
557 }
558 
559 template <typename T> static bool isFirstInExternCContext(T *D) {
560   const T *First = D->getFirstDecl();
561   return First->isInExternCContext();
562 }
563 
564 static bool isSingleLineLanguageLinkage(const Decl &D) {
565   if (const auto *SD = dyn_cast<LinkageSpecDecl>(D.getDeclContext()))
566     if (!SD->hasBraces())
567       return true;
568   return false;
569 }
570 
571 /// Determine whether D is declared in the purview of a named module.
572 static bool isInModulePurview(const NamedDecl *D) {
573   if (auto *M = D->getOwningModule())
574     return M->isModulePurview();
575   return false;
576 }
577 
578 static bool isExportedFromModuleInterfaceUnit(const NamedDecl *D) {
579   // FIXME: Handle isModulePrivate.
580   switch (D->getModuleOwnershipKind()) {
581   case Decl::ModuleOwnershipKind::Unowned:
582   case Decl::ModuleOwnershipKind::ModulePrivate:
583     return false;
584   case Decl::ModuleOwnershipKind::Visible:
585   case Decl::ModuleOwnershipKind::VisibleWhenImported:
586     return isInModulePurview(D);
587   }
588   llvm_unreachable("unexpected module ownership kind");
589 }
590 
591 static LinkageInfo getInternalLinkageFor(const NamedDecl *D) {
592   // Internal linkage declarations within a module interface unit are modeled
593   // as "module-internal linkage", which means that they have internal linkage
594   // formally but can be indirectly accessed from outside the module via inline
595   // functions and templates defined within the module.
596   if (isInModulePurview(D))
597     return LinkageInfo(ModuleInternalLinkage, DefaultVisibility, false);
598 
599   return LinkageInfo::internal();
600 }
601 
602 static LinkageInfo getExternalLinkageFor(const NamedDecl *D) {
603   // C++ Modules TS [basic.link]/6.8:
604   //   - A name declared at namespace scope that does not have internal linkage
605   //     by the previous rules and that is introduced by a non-exported
606   //     declaration has module linkage.
607   if (isInModulePurview(D) && !isExportedFromModuleInterfaceUnit(
608                                   cast<NamedDecl>(D->getCanonicalDecl())))
609     return LinkageInfo(ModuleLinkage, DefaultVisibility, false);
610 
611   return LinkageInfo::external();
612 }
613 
614 static StorageClass getStorageClass(const Decl *D) {
615   if (auto *TD = dyn_cast<TemplateDecl>(D))
616     D = TD->getTemplatedDecl();
617   if (D) {
618     if (auto *VD = dyn_cast<VarDecl>(D))
619       return VD->getStorageClass();
620     if (auto *FD = dyn_cast<FunctionDecl>(D))
621       return FD->getStorageClass();
622   }
623   return SC_None;
624 }
625 
626 LinkageInfo
627 LinkageComputer::getLVForNamespaceScopeDecl(const NamedDecl *D,
628                                             LVComputationKind computation,
629                                             bool IgnoreVarTypeLinkage) {
630   assert(D->getDeclContext()->getRedeclContext()->isFileContext() &&
631          "Not a name having namespace scope");
632   ASTContext &Context = D->getASTContext();
633 
634   // C++ [basic.link]p3:
635   //   A name having namespace scope (3.3.6) has internal linkage if it
636   //   is the name of
637 
638   if (getStorageClass(D->getCanonicalDecl()) == SC_Static) {
639     // - a variable, variable template, function, or function template
640     //   that is explicitly declared static; or
641     // (This bullet corresponds to C99 6.2.2p3.)
642     return getInternalLinkageFor(D);
643   }
644 
645   if (const auto *Var = dyn_cast<VarDecl>(D)) {
646     // - a non-template variable of non-volatile const-qualified type, unless
647     //   - it is explicitly declared extern, or
648     //   - it is inline or exported, or
649     //   - it was previously declared and the prior declaration did not have
650     //     internal linkage
651     // (There is no equivalent in C99.)
652     if (Context.getLangOpts().CPlusPlus &&
653         Var->getType().isConstQualified() &&
654         !Var->getType().isVolatileQualified() &&
655         !Var->isInline() &&
656         !isExportedFromModuleInterfaceUnit(Var) &&
657         !isa<VarTemplateSpecializationDecl>(Var) &&
658         !Var->getDescribedVarTemplate()) {
659       const VarDecl *PrevVar = Var->getPreviousDecl();
660       if (PrevVar)
661         return getLVForDecl(PrevVar, computation);
662 
663       if (Var->getStorageClass() != SC_Extern &&
664           Var->getStorageClass() != SC_PrivateExtern &&
665           !isSingleLineLanguageLinkage(*Var))
666         return getInternalLinkageFor(Var);
667     }
668 
669     for (const VarDecl *PrevVar = Var->getPreviousDecl(); PrevVar;
670          PrevVar = PrevVar->getPreviousDecl()) {
671       if (PrevVar->getStorageClass() == SC_PrivateExtern &&
672           Var->getStorageClass() == SC_None)
673         return getDeclLinkageAndVisibility(PrevVar);
674       // Explicitly declared static.
675       if (PrevVar->getStorageClass() == SC_Static)
676         return getInternalLinkageFor(Var);
677     }
678   } else if (const auto *IFD = dyn_cast<IndirectFieldDecl>(D)) {
679     //   - a data member of an anonymous union.
680     const VarDecl *VD = IFD->getVarDecl();
681     assert(VD && "Expected a VarDecl in this IndirectFieldDecl!");
682     return getLVForNamespaceScopeDecl(VD, computation, IgnoreVarTypeLinkage);
683   }
684   assert(!isa<FieldDecl>(D) && "Didn't expect a FieldDecl!");
685 
686   // FIXME: This gives internal linkage to names that should have no linkage
687   // (those not covered by [basic.link]p6).
688   if (D->isInAnonymousNamespace()) {
689     const auto *Var = dyn_cast<VarDecl>(D);
690     const auto *Func = dyn_cast<FunctionDecl>(D);
691     // FIXME: The check for extern "C" here is not justified by the standard
692     // wording, but we retain it from the pre-DR1113 model to avoid breaking
693     // code.
694     //
695     // C++11 [basic.link]p4:
696     //   An unnamed namespace or a namespace declared directly or indirectly
697     //   within an unnamed namespace has internal linkage.
698     if ((!Var || !isFirstInExternCContext(Var)) &&
699         (!Func || !isFirstInExternCContext(Func)))
700       return getInternalLinkageFor(D);
701   }
702 
703   // Set up the defaults.
704 
705   // C99 6.2.2p5:
706   //   If the declaration of an identifier for an object has file
707   //   scope and no storage-class specifier, its linkage is
708   //   external.
709   LinkageInfo LV = getExternalLinkageFor(D);
710 
711   if (!hasExplicitVisibilityAlready(computation)) {
712     if (Optional<Visibility> Vis = getExplicitVisibility(D, computation)) {
713       LV.mergeVisibility(*Vis, true);
714     } else {
715       // If we're declared in a namespace with a visibility attribute,
716       // use that namespace's visibility, and it still counts as explicit.
717       for (const DeclContext *DC = D->getDeclContext();
718            !isa<TranslationUnitDecl>(DC);
719            DC = DC->getParent()) {
720         const auto *ND = dyn_cast<NamespaceDecl>(DC);
721         if (!ND) continue;
722         if (Optional<Visibility> Vis = getExplicitVisibility(ND, computation)) {
723           LV.mergeVisibility(*Vis, true);
724           break;
725         }
726       }
727     }
728 
729     // Add in global settings if the above didn't give us direct visibility.
730     if (!LV.isVisibilityExplicit()) {
731       // Use global type/value visibility as appropriate.
732       Visibility globalVisibility =
733           computation.isValueVisibility()
734               ? Context.getLangOpts().getValueVisibilityMode()
735               : Context.getLangOpts().getTypeVisibilityMode();
736       LV.mergeVisibility(globalVisibility, /*explicit*/ false);
737 
738       // If we're paying attention to global visibility, apply
739       // -finline-visibility-hidden if this is an inline method.
740       if (useInlineVisibilityHidden(D))
741         LV.mergeVisibility(HiddenVisibility, /*visibilityExplicit=*/false);
742     }
743   }
744 
745   // C++ [basic.link]p4:
746 
747   //   A name having namespace scope that has not been given internal linkage
748   //   above and that is the name of
749   //   [...bullets...]
750   //   has its linkage determined as follows:
751   //     - if the enclosing namespace has internal linkage, the name has
752   //       internal linkage; [handled above]
753   //     - otherwise, if the declaration of the name is attached to a named
754   //       module and is not exported, the name has module linkage;
755   //     - otherwise, the name has external linkage.
756   // LV is currently set up to handle the last two bullets.
757   //
758   //   The bullets are:
759 
760   //     - a variable; or
761   if (const auto *Var = dyn_cast<VarDecl>(D)) {
762     // GCC applies the following optimization to variables and static
763     // data members, but not to functions:
764     //
765     // Modify the variable's LV by the LV of its type unless this is
766     // C or extern "C".  This follows from [basic.link]p9:
767     //   A type without linkage shall not be used as the type of a
768     //   variable or function with external linkage unless
769     //    - the entity has C language linkage, or
770     //    - the entity is declared within an unnamed namespace, or
771     //    - the entity is not used or is defined in the same
772     //      translation unit.
773     // and [basic.link]p10:
774     //   ...the types specified by all declarations referring to a
775     //   given variable or function shall be identical...
776     // C does not have an equivalent rule.
777     //
778     // Ignore this if we've got an explicit attribute;  the user
779     // probably knows what they're doing.
780     //
781     // Note that we don't want to make the variable non-external
782     // because of this, but unique-external linkage suits us.
783     if (Context.getLangOpts().CPlusPlus && !isFirstInExternCContext(Var) &&
784         !IgnoreVarTypeLinkage) {
785       LinkageInfo TypeLV = getLVForType(*Var->getType(), computation);
786       if (!isExternallyVisible(TypeLV.getLinkage()))
787         return LinkageInfo::uniqueExternal();
788       if (!LV.isVisibilityExplicit())
789         LV.mergeVisibility(TypeLV);
790     }
791 
792     if (Var->getStorageClass() == SC_PrivateExtern)
793       LV.mergeVisibility(HiddenVisibility, true);
794 
795     // Note that Sema::MergeVarDecl already takes care of implementing
796     // C99 6.2.2p4 and propagating the visibility attribute, so we don't have
797     // to do it here.
798 
799     // As per function and class template specializations (below),
800     // consider LV for the template and template arguments.  We're at file
801     // scope, so we do not need to worry about nested specializations.
802     if (const auto *spec = dyn_cast<VarTemplateSpecializationDecl>(Var)) {
803       mergeTemplateLV(LV, spec, computation);
804     }
805 
806   //     - a function; or
807   } else if (const auto *Function = dyn_cast<FunctionDecl>(D)) {
808     // In theory, we can modify the function's LV by the LV of its
809     // type unless it has C linkage (see comment above about variables
810     // for justification).  In practice, GCC doesn't do this, so it's
811     // just too painful to make work.
812 
813     if (Function->getStorageClass() == SC_PrivateExtern)
814       LV.mergeVisibility(HiddenVisibility, true);
815 
816     // Note that Sema::MergeCompatibleFunctionDecls already takes care of
817     // merging storage classes and visibility attributes, so we don't have to
818     // look at previous decls in here.
819 
820     // In C++, then if the type of the function uses a type with
821     // unique-external linkage, it's not legally usable from outside
822     // this translation unit.  However, we should use the C linkage
823     // rules instead for extern "C" declarations.
824     if (Context.getLangOpts().CPlusPlus && !isFirstInExternCContext(Function)) {
825       // Only look at the type-as-written. Otherwise, deducing the return type
826       // of a function could change its linkage.
827       QualType TypeAsWritten = Function->getType();
828       if (TypeSourceInfo *TSI = Function->getTypeSourceInfo())
829         TypeAsWritten = TSI->getType();
830       if (!isExternallyVisible(TypeAsWritten->getLinkage()))
831         return LinkageInfo::uniqueExternal();
832     }
833 
834     // Consider LV from the template and the template arguments.
835     // We're at file scope, so we do not need to worry about nested
836     // specializations.
837     if (FunctionTemplateSpecializationInfo *specInfo
838                                = Function->getTemplateSpecializationInfo()) {
839       mergeTemplateLV(LV, Function, specInfo, computation);
840     }
841 
842   //     - a named class (Clause 9), or an unnamed class defined in a
843   //       typedef declaration in which the class has the typedef name
844   //       for linkage purposes (7.1.3); or
845   //     - a named enumeration (7.2), or an unnamed enumeration
846   //       defined in a typedef declaration in which the enumeration
847   //       has the typedef name for linkage purposes (7.1.3); or
848   } else if (const auto *Tag = dyn_cast<TagDecl>(D)) {
849     // Unnamed tags have no linkage.
850     if (!Tag->hasNameForLinkage())
851       return LinkageInfo::none();
852 
853     // If this is a class template specialization, consider the
854     // linkage of the template and template arguments.  We're at file
855     // scope, so we do not need to worry about nested specializations.
856     if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(Tag)) {
857       mergeTemplateLV(LV, spec, computation);
858     }
859 
860   // FIXME: This is not part of the C++ standard any more.
861   //     - an enumerator belonging to an enumeration with external linkage; or
862   } else if (isa<EnumConstantDecl>(D)) {
863     LinkageInfo EnumLV = getLVForDecl(cast<NamedDecl>(D->getDeclContext()),
864                                       computation);
865     if (!isExternalFormalLinkage(EnumLV.getLinkage()))
866       return LinkageInfo::none();
867     LV.merge(EnumLV);
868 
869   //     - a template
870   } else if (const auto *temp = dyn_cast<TemplateDecl>(D)) {
871     bool considerVisibility = !hasExplicitVisibilityAlready(computation);
872     LinkageInfo tempLV =
873       getLVForTemplateParameterList(temp->getTemplateParameters(), computation);
874     LV.mergeMaybeWithVisibility(tempLV, considerVisibility);
875 
876   //     An unnamed namespace or a namespace declared directly or indirectly
877   //     within an unnamed namespace has internal linkage. All other namespaces
878   //     have external linkage.
879   //
880   // We handled names in anonymous namespaces above.
881   } else if (isa<NamespaceDecl>(D)) {
882     return LV;
883 
884   // By extension, we assign external linkage to Objective-C
885   // interfaces.
886   } else if (isa<ObjCInterfaceDecl>(D)) {
887     // fallout
888 
889   } else if (auto *TD = dyn_cast<TypedefNameDecl>(D)) {
890     // A typedef declaration has linkage if it gives a type a name for
891     // linkage purposes.
892     if (!TD->getAnonDeclWithTypedefName(/*AnyRedecl*/true))
893       return LinkageInfo::none();
894 
895   // Everything not covered here has no linkage.
896   } else {
897     return LinkageInfo::none();
898   }
899 
900   // If we ended up with non-externally-visible linkage, visibility should
901   // always be default.
902   if (!isExternallyVisible(LV.getLinkage()))
903     return LinkageInfo(LV.getLinkage(), DefaultVisibility, false);
904 
905   // Mark the symbols as hidden when compiling for the device.
906   if (Context.getLangOpts().OpenMP && Context.getLangOpts().OpenMPIsDevice)
907     LV.mergeVisibility(HiddenVisibility, /*newExplicit=*/false);
908 
909   return LV;
910 }
911 
912 LinkageInfo
913 LinkageComputer::getLVForClassMember(const NamedDecl *D,
914                                      LVComputationKind computation,
915                                      bool IgnoreVarTypeLinkage) {
916   // Only certain class members have linkage.  Note that fields don't
917   // really have linkage, but it's convenient to say they do for the
918   // purposes of calculating linkage of pointer-to-data-member
919   // template arguments.
920   //
921   // Templates also don't officially have linkage, but since we ignore
922   // the C++ standard and look at template arguments when determining
923   // linkage and visibility of a template specialization, we might hit
924   // a template template argument that way. If we do, we need to
925   // consider its linkage.
926   if (!(isa<CXXMethodDecl>(D) ||
927         isa<VarDecl>(D) ||
928         isa<FieldDecl>(D) ||
929         isa<IndirectFieldDecl>(D) ||
930         isa<TagDecl>(D) ||
931         isa<TemplateDecl>(D)))
932     return LinkageInfo::none();
933 
934   LinkageInfo LV;
935 
936   // If we have an explicit visibility attribute, merge that in.
937   if (!hasExplicitVisibilityAlready(computation)) {
938     if (Optional<Visibility> Vis = getExplicitVisibility(D, computation))
939       LV.mergeVisibility(*Vis, true);
940     // If we're paying attention to global visibility, apply
941     // -finline-visibility-hidden if this is an inline method.
942     //
943     // Note that we do this before merging information about
944     // the class visibility.
945     if (!LV.isVisibilityExplicit() && useInlineVisibilityHidden(D))
946       LV.mergeVisibility(HiddenVisibility, /*visibilityExplicit=*/false);
947   }
948 
949   // If this class member has an explicit visibility attribute, the only
950   // thing that can change its visibility is the template arguments, so
951   // only look for them when processing the class.
952   LVComputationKind classComputation = computation;
953   if (LV.isVisibilityExplicit())
954     classComputation = withExplicitVisibilityAlready(computation);
955 
956   LinkageInfo classLV =
957     getLVForDecl(cast<RecordDecl>(D->getDeclContext()), classComputation);
958   // The member has the same linkage as the class. If that's not externally
959   // visible, we don't need to compute anything about the linkage.
960   // FIXME: If we're only computing linkage, can we bail out here?
961   if (!isExternallyVisible(classLV.getLinkage()))
962     return classLV;
963 
964 
965   // Otherwise, don't merge in classLV yet, because in certain cases
966   // we need to completely ignore the visibility from it.
967 
968   // Specifically, if this decl exists and has an explicit attribute.
969   const NamedDecl *explicitSpecSuppressor = nullptr;
970 
971   if (const auto *MD = dyn_cast<CXXMethodDecl>(D)) {
972     // Only look at the type-as-written. Otherwise, deducing the return type
973     // of a function could change its linkage.
974     QualType TypeAsWritten = MD->getType();
975     if (TypeSourceInfo *TSI = MD->getTypeSourceInfo())
976       TypeAsWritten = TSI->getType();
977     if (!isExternallyVisible(TypeAsWritten->getLinkage()))
978       return LinkageInfo::uniqueExternal();
979 
980     // If this is a method template specialization, use the linkage for
981     // the template parameters and arguments.
982     if (FunctionTemplateSpecializationInfo *spec
983            = MD->getTemplateSpecializationInfo()) {
984       mergeTemplateLV(LV, MD, spec, computation);
985       if (spec->isExplicitSpecialization()) {
986         explicitSpecSuppressor = MD;
987       } else if (isExplicitMemberSpecialization(spec->getTemplate())) {
988         explicitSpecSuppressor = spec->getTemplate()->getTemplatedDecl();
989       }
990     } else if (isExplicitMemberSpecialization(MD)) {
991       explicitSpecSuppressor = MD;
992     }
993 
994   } else if (const auto *RD = dyn_cast<CXXRecordDecl>(D)) {
995     if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(RD)) {
996       mergeTemplateLV(LV, spec, computation);
997       if (spec->isExplicitSpecialization()) {
998         explicitSpecSuppressor = spec;
999       } else {
1000         const ClassTemplateDecl *temp = spec->getSpecializedTemplate();
1001         if (isExplicitMemberSpecialization(temp)) {
1002           explicitSpecSuppressor = temp->getTemplatedDecl();
1003         }
1004       }
1005     } else if (isExplicitMemberSpecialization(RD)) {
1006       explicitSpecSuppressor = RD;
1007     }
1008 
1009   // Static data members.
1010   } else if (const auto *VD = dyn_cast<VarDecl>(D)) {
1011     if (const auto *spec = dyn_cast<VarTemplateSpecializationDecl>(VD))
1012       mergeTemplateLV(LV, spec, computation);
1013 
1014     // Modify the variable's linkage by its type, but ignore the
1015     // type's visibility unless it's a definition.
1016     if (!IgnoreVarTypeLinkage) {
1017       LinkageInfo typeLV = getLVForType(*VD->getType(), computation);
1018       // FIXME: If the type's linkage is not externally visible, we can
1019       // give this static data member UniqueExternalLinkage.
1020       if (!LV.isVisibilityExplicit() && !classLV.isVisibilityExplicit())
1021         LV.mergeVisibility(typeLV);
1022       LV.mergeExternalVisibility(typeLV);
1023     }
1024 
1025     if (isExplicitMemberSpecialization(VD)) {
1026       explicitSpecSuppressor = VD;
1027     }
1028 
1029   // Template members.
1030   } else if (const auto *temp = dyn_cast<TemplateDecl>(D)) {
1031     bool considerVisibility =
1032       (!LV.isVisibilityExplicit() &&
1033        !classLV.isVisibilityExplicit() &&
1034        !hasExplicitVisibilityAlready(computation));
1035     LinkageInfo tempLV =
1036       getLVForTemplateParameterList(temp->getTemplateParameters(), computation);
1037     LV.mergeMaybeWithVisibility(tempLV, considerVisibility);
1038 
1039     if (const auto *redeclTemp = dyn_cast<RedeclarableTemplateDecl>(temp)) {
1040       if (isExplicitMemberSpecialization(redeclTemp)) {
1041         explicitSpecSuppressor = temp->getTemplatedDecl();
1042       }
1043     }
1044   }
1045 
1046   // We should never be looking for an attribute directly on a template.
1047   assert(!explicitSpecSuppressor || !isa<TemplateDecl>(explicitSpecSuppressor));
1048 
1049   // If this member is an explicit member specialization, and it has
1050   // an explicit attribute, ignore visibility from the parent.
1051   bool considerClassVisibility = true;
1052   if (explicitSpecSuppressor &&
1053       // optimization: hasDVA() is true only with explicit visibility.
1054       LV.isVisibilityExplicit() &&
1055       classLV.getVisibility() != DefaultVisibility &&
1056       hasDirectVisibilityAttribute(explicitSpecSuppressor, computation)) {
1057     considerClassVisibility = false;
1058   }
1059 
1060   // Finally, merge in information from the class.
1061   LV.mergeMaybeWithVisibility(classLV, considerClassVisibility);
1062   return LV;
1063 }
1064 
1065 void NamedDecl::anchor() {}
1066 
1067 bool NamedDecl::isLinkageValid() const {
1068   if (!hasCachedLinkage())
1069     return true;
1070 
1071   Linkage L = LinkageComputer{}
1072                   .computeLVForDecl(this, LVComputationKind::forLinkageOnly())
1073                   .getLinkage();
1074   return L == getCachedLinkage();
1075 }
1076 
1077 ObjCStringFormatFamily NamedDecl::getObjCFStringFormattingFamily() const {
1078   StringRef name = getName();
1079   if (name.empty()) return SFF_None;
1080 
1081   if (name.front() == 'C')
1082     if (name == "CFStringCreateWithFormat" ||
1083         name == "CFStringCreateWithFormatAndArguments" ||
1084         name == "CFStringAppendFormat" ||
1085         name == "CFStringAppendFormatAndArguments")
1086       return SFF_CFString;
1087   return SFF_None;
1088 }
1089 
1090 Linkage NamedDecl::getLinkageInternal() const {
1091   // We don't care about visibility here, so ask for the cheapest
1092   // possible visibility analysis.
1093   return LinkageComputer{}
1094       .getLVForDecl(this, LVComputationKind::forLinkageOnly())
1095       .getLinkage();
1096 }
1097 
1098 LinkageInfo NamedDecl::getLinkageAndVisibility() const {
1099   return LinkageComputer{}.getDeclLinkageAndVisibility(this);
1100 }
1101 
1102 static Optional<Visibility>
1103 getExplicitVisibilityAux(const NamedDecl *ND,
1104                          NamedDecl::ExplicitVisibilityKind kind,
1105                          bool IsMostRecent) {
1106   assert(!IsMostRecent || ND == ND->getMostRecentDecl());
1107 
1108   // Check the declaration itself first.
1109   if (Optional<Visibility> V = getVisibilityOf(ND, kind))
1110     return V;
1111 
1112   // If this is a member class of a specialization of a class template
1113   // and the corresponding decl has explicit visibility, use that.
1114   if (const auto *RD = dyn_cast<CXXRecordDecl>(ND)) {
1115     CXXRecordDecl *InstantiatedFrom = RD->getInstantiatedFromMemberClass();
1116     if (InstantiatedFrom)
1117       return getVisibilityOf(InstantiatedFrom, kind);
1118   }
1119 
1120   // If there wasn't explicit visibility there, and this is a
1121   // specialization of a class template, check for visibility
1122   // on the pattern.
1123   if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(ND)) {
1124     // Walk all the template decl till this point to see if there are
1125     // explicit visibility attributes.
1126     const auto *TD = spec->getSpecializedTemplate()->getTemplatedDecl();
1127     while (TD != nullptr) {
1128       auto Vis = getVisibilityOf(TD, kind);
1129       if (Vis != None)
1130         return Vis;
1131       TD = TD->getPreviousDecl();
1132     }
1133     return None;
1134   }
1135 
1136   // Use the most recent declaration.
1137   if (!IsMostRecent && !isa<NamespaceDecl>(ND)) {
1138     const NamedDecl *MostRecent = ND->getMostRecentDecl();
1139     if (MostRecent != ND)
1140       return getExplicitVisibilityAux(MostRecent, kind, true);
1141   }
1142 
1143   if (const auto *Var = dyn_cast<VarDecl>(ND)) {
1144     if (Var->isStaticDataMember()) {
1145       VarDecl *InstantiatedFrom = Var->getInstantiatedFromStaticDataMember();
1146       if (InstantiatedFrom)
1147         return getVisibilityOf(InstantiatedFrom, kind);
1148     }
1149 
1150     if (const auto *VTSD = dyn_cast<VarTemplateSpecializationDecl>(Var))
1151       return getVisibilityOf(VTSD->getSpecializedTemplate()->getTemplatedDecl(),
1152                              kind);
1153 
1154     return None;
1155   }
1156   // Also handle function template specializations.
1157   if (const auto *fn = dyn_cast<FunctionDecl>(ND)) {
1158     // If the function is a specialization of a template with an
1159     // explicit visibility attribute, use that.
1160     if (FunctionTemplateSpecializationInfo *templateInfo
1161           = fn->getTemplateSpecializationInfo())
1162       return getVisibilityOf(templateInfo->getTemplate()->getTemplatedDecl(),
1163                              kind);
1164 
1165     // If the function is a member of a specialization of a class template
1166     // and the corresponding decl has explicit visibility, use that.
1167     FunctionDecl *InstantiatedFrom = fn->getInstantiatedFromMemberFunction();
1168     if (InstantiatedFrom)
1169       return getVisibilityOf(InstantiatedFrom, kind);
1170 
1171     return None;
1172   }
1173 
1174   // The visibility of a template is stored in the templated decl.
1175   if (const auto *TD = dyn_cast<TemplateDecl>(ND))
1176     return getVisibilityOf(TD->getTemplatedDecl(), kind);
1177 
1178   return None;
1179 }
1180 
1181 Optional<Visibility>
1182 NamedDecl::getExplicitVisibility(ExplicitVisibilityKind kind) const {
1183   return getExplicitVisibilityAux(this, kind, false);
1184 }
1185 
1186 LinkageInfo LinkageComputer::getLVForClosure(const DeclContext *DC,
1187                                              Decl *ContextDecl,
1188                                              LVComputationKind computation) {
1189   // This lambda has its linkage/visibility determined by its owner.
1190   const NamedDecl *Owner;
1191   if (!ContextDecl)
1192     Owner = dyn_cast<NamedDecl>(DC);
1193   else if (isa<ParmVarDecl>(ContextDecl))
1194     Owner =
1195         dyn_cast<NamedDecl>(ContextDecl->getDeclContext()->getRedeclContext());
1196   else
1197     Owner = cast<NamedDecl>(ContextDecl);
1198 
1199   if (!Owner)
1200     return LinkageInfo::none();
1201 
1202   // If the owner has a deduced type, we need to skip querying the linkage and
1203   // visibility of that type, because it might involve this closure type.  The
1204   // only effect of this is that we might give a lambda VisibleNoLinkage rather
1205   // than NoLinkage when we don't strictly need to, which is benign.
1206   auto *VD = dyn_cast<VarDecl>(Owner);
1207   LinkageInfo OwnerLV =
1208       VD && VD->getType()->getContainedDeducedType()
1209           ? computeLVForDecl(Owner, computation, /*IgnoreVarTypeLinkage*/true)
1210           : getLVForDecl(Owner, computation);
1211 
1212   // A lambda never formally has linkage. But if the owner is externally
1213   // visible, then the lambda is too. We apply the same rules to blocks.
1214   if (!isExternallyVisible(OwnerLV.getLinkage()))
1215     return LinkageInfo::none();
1216   return LinkageInfo(VisibleNoLinkage, OwnerLV.getVisibility(),
1217                      OwnerLV.isVisibilityExplicit());
1218 }
1219 
1220 LinkageInfo LinkageComputer::getLVForLocalDecl(const NamedDecl *D,
1221                                                LVComputationKind computation) {
1222   if (const auto *Function = dyn_cast<FunctionDecl>(D)) {
1223     if (Function->isInAnonymousNamespace() &&
1224         !isFirstInExternCContext(Function))
1225       return getInternalLinkageFor(Function);
1226 
1227     // This is a "void f();" which got merged with a file static.
1228     if (Function->getCanonicalDecl()->getStorageClass() == SC_Static)
1229       return getInternalLinkageFor(Function);
1230 
1231     LinkageInfo LV;
1232     if (!hasExplicitVisibilityAlready(computation)) {
1233       if (Optional<Visibility> Vis =
1234               getExplicitVisibility(Function, computation))
1235         LV.mergeVisibility(*Vis, true);
1236     }
1237 
1238     // Note that Sema::MergeCompatibleFunctionDecls already takes care of
1239     // merging storage classes and visibility attributes, so we don't have to
1240     // look at previous decls in here.
1241 
1242     return LV;
1243   }
1244 
1245   if (const auto *Var = dyn_cast<VarDecl>(D)) {
1246     if (Var->hasExternalStorage()) {
1247       if (Var->isInAnonymousNamespace() && !isFirstInExternCContext(Var))
1248         return getInternalLinkageFor(Var);
1249 
1250       LinkageInfo LV;
1251       if (Var->getStorageClass() == SC_PrivateExtern)
1252         LV.mergeVisibility(HiddenVisibility, true);
1253       else if (!hasExplicitVisibilityAlready(computation)) {
1254         if (Optional<Visibility> Vis = getExplicitVisibility(Var, computation))
1255           LV.mergeVisibility(*Vis, true);
1256       }
1257 
1258       if (const VarDecl *Prev = Var->getPreviousDecl()) {
1259         LinkageInfo PrevLV = getLVForDecl(Prev, computation);
1260         if (PrevLV.getLinkage())
1261           LV.setLinkage(PrevLV.getLinkage());
1262         LV.mergeVisibility(PrevLV);
1263       }
1264 
1265       return LV;
1266     }
1267 
1268     if (!Var->isStaticLocal())
1269       return LinkageInfo::none();
1270   }
1271 
1272   ASTContext &Context = D->getASTContext();
1273   if (!Context.getLangOpts().CPlusPlus)
1274     return LinkageInfo::none();
1275 
1276   const Decl *OuterD = getOutermostFuncOrBlockContext(D);
1277   if (!OuterD || OuterD->isInvalidDecl())
1278     return LinkageInfo::none();
1279 
1280   LinkageInfo LV;
1281   if (const auto *BD = dyn_cast<BlockDecl>(OuterD)) {
1282     if (!BD->getBlockManglingNumber())
1283       return LinkageInfo::none();
1284 
1285     LV = getLVForClosure(BD->getDeclContext()->getRedeclContext(),
1286                          BD->getBlockManglingContextDecl(), computation);
1287   } else {
1288     const auto *FD = cast<FunctionDecl>(OuterD);
1289     if (!FD->isInlined() &&
1290         !isTemplateInstantiation(FD->getTemplateSpecializationKind()))
1291       return LinkageInfo::none();
1292 
1293     // If a function is hidden by -fvisibility-inlines-hidden option and
1294     // is not explicitly attributed as a hidden function,
1295     // we should not make static local variables in the function hidden.
1296     LV = getLVForDecl(FD, computation);
1297     if (isa<VarDecl>(D) && useInlineVisibilityHidden(FD) &&
1298         !LV.isVisibilityExplicit()) {
1299       assert(cast<VarDecl>(D)->isStaticLocal());
1300       // If this was an implicitly hidden inline method, check again for
1301       // explicit visibility on the parent class, and use that for static locals
1302       // if present.
1303       if (const auto *MD = dyn_cast<CXXMethodDecl>(FD))
1304         LV = getLVForDecl(MD->getParent(), computation);
1305       if (!LV.isVisibilityExplicit()) {
1306         Visibility globalVisibility =
1307             computation.isValueVisibility()
1308                 ? Context.getLangOpts().getValueVisibilityMode()
1309                 : Context.getLangOpts().getTypeVisibilityMode();
1310         return LinkageInfo(VisibleNoLinkage, globalVisibility,
1311                            /*visibilityExplicit=*/false);
1312       }
1313     }
1314   }
1315   if (!isExternallyVisible(LV.getLinkage()))
1316     return LinkageInfo::none();
1317   return LinkageInfo(VisibleNoLinkage, LV.getVisibility(),
1318                      LV.isVisibilityExplicit());
1319 }
1320 
1321 static inline const CXXRecordDecl*
1322 getOutermostEnclosingLambda(const CXXRecordDecl *Record) {
1323   const CXXRecordDecl *Ret = Record;
1324   while (Record && Record->isLambda()) {
1325     Ret = Record;
1326     if (!Record->getParent()) break;
1327     // Get the Containing Class of this Lambda Class
1328     Record = dyn_cast_or_null<CXXRecordDecl>(
1329       Record->getParent()->getParent());
1330   }
1331   return Ret;
1332 }
1333 
1334 LinkageInfo LinkageComputer::computeLVForDecl(const NamedDecl *D,
1335                                               LVComputationKind computation,
1336                                               bool IgnoreVarTypeLinkage) {
1337   // Internal_linkage attribute overrides other considerations.
1338   if (D->hasAttr<InternalLinkageAttr>())
1339     return getInternalLinkageFor(D);
1340 
1341   // Objective-C: treat all Objective-C declarations as having external
1342   // linkage.
1343   switch (D->getKind()) {
1344     default:
1345       break;
1346 
1347     // Per C++ [basic.link]p2, only the names of objects, references,
1348     // functions, types, templates, namespaces, and values ever have linkage.
1349     //
1350     // Note that the name of a typedef, namespace alias, using declaration,
1351     // and so on are not the name of the corresponding type, namespace, or
1352     // declaration, so they do *not* have linkage.
1353     case Decl::ImplicitParam:
1354     case Decl::Label:
1355     case Decl::NamespaceAlias:
1356     case Decl::ParmVar:
1357     case Decl::Using:
1358     case Decl::UsingShadow:
1359     case Decl::UsingDirective:
1360       return LinkageInfo::none();
1361 
1362     case Decl::EnumConstant:
1363       // C++ [basic.link]p4: an enumerator has the linkage of its enumeration.
1364       if (D->getASTContext().getLangOpts().CPlusPlus)
1365         return getLVForDecl(cast<EnumDecl>(D->getDeclContext()), computation);
1366       return LinkageInfo::visible_none();
1367 
1368     case Decl::Typedef:
1369     case Decl::TypeAlias:
1370       // A typedef declaration has linkage if it gives a type a name for
1371       // linkage purposes.
1372       if (!cast<TypedefNameDecl>(D)
1373                ->getAnonDeclWithTypedefName(/*AnyRedecl*/true))
1374         return LinkageInfo::none();
1375       break;
1376 
1377     case Decl::TemplateTemplateParm: // count these as external
1378     case Decl::NonTypeTemplateParm:
1379     case Decl::ObjCAtDefsField:
1380     case Decl::ObjCCategory:
1381     case Decl::ObjCCategoryImpl:
1382     case Decl::ObjCCompatibleAlias:
1383     case Decl::ObjCImplementation:
1384     case Decl::ObjCMethod:
1385     case Decl::ObjCProperty:
1386     case Decl::ObjCPropertyImpl:
1387     case Decl::ObjCProtocol:
1388       return getExternalLinkageFor(D);
1389 
1390     case Decl::CXXRecord: {
1391       const auto *Record = cast<CXXRecordDecl>(D);
1392       if (Record->isLambda()) {
1393         if (Record->hasKnownLambdaInternalLinkage() ||
1394             !Record->getLambdaManglingNumber()) {
1395           // This lambda has no mangling number, so it's internal.
1396           return getInternalLinkageFor(D);
1397         }
1398 
1399         // This lambda has its linkage/visibility determined:
1400         //  - either by the outermost lambda if that lambda has no mangling
1401         //    number.
1402         //  - or by the parent of the outer most lambda
1403         // This prevents infinite recursion in settings such as nested lambdas
1404         // used in NSDMI's, for e.g.
1405         //  struct L {
1406         //    int t{};
1407         //    int t2 = ([](int a) { return [](int b) { return b; };})(t)(t);
1408         //  };
1409         const CXXRecordDecl *OuterMostLambda =
1410             getOutermostEnclosingLambda(Record);
1411         if (OuterMostLambda->hasKnownLambdaInternalLinkage() ||
1412             !OuterMostLambda->getLambdaManglingNumber())
1413           return getInternalLinkageFor(D);
1414 
1415         return getLVForClosure(
1416                   OuterMostLambda->getDeclContext()->getRedeclContext(),
1417                   OuterMostLambda->getLambdaContextDecl(), computation);
1418       }
1419 
1420       break;
1421     }
1422   }
1423 
1424   // Handle linkage for namespace-scope names.
1425   if (D->getDeclContext()->getRedeclContext()->isFileContext())
1426     return getLVForNamespaceScopeDecl(D, computation, IgnoreVarTypeLinkage);
1427 
1428   // C++ [basic.link]p5:
1429   //   In addition, a member function, static data member, a named
1430   //   class or enumeration of class scope, or an unnamed class or
1431   //   enumeration defined in a class-scope typedef declaration such
1432   //   that the class or enumeration has the typedef name for linkage
1433   //   purposes (7.1.3), has external linkage if the name of the class
1434   //   has external linkage.
1435   if (D->getDeclContext()->isRecord())
1436     return getLVForClassMember(D, computation, IgnoreVarTypeLinkage);
1437 
1438   // C++ [basic.link]p6:
1439   //   The name of a function declared in block scope and the name of
1440   //   an object declared by a block scope extern declaration have
1441   //   linkage. If there is a visible declaration of an entity with
1442   //   linkage having the same name and type, ignoring entities
1443   //   declared outside the innermost enclosing namespace scope, the
1444   //   block scope declaration declares that same entity and receives
1445   //   the linkage of the previous declaration. If there is more than
1446   //   one such matching entity, the program is ill-formed. Otherwise,
1447   //   if no matching entity is found, the block scope entity receives
1448   //   external linkage.
1449   if (D->getDeclContext()->isFunctionOrMethod())
1450     return getLVForLocalDecl(D, computation);
1451 
1452   // C++ [basic.link]p6:
1453   //   Names not covered by these rules have no linkage.
1454   return LinkageInfo::none();
1455 }
1456 
1457 /// getLVForDecl - Get the linkage and visibility for the given declaration.
1458 LinkageInfo LinkageComputer::getLVForDecl(const NamedDecl *D,
1459                                           LVComputationKind computation) {
1460   // Internal_linkage attribute overrides other considerations.
1461   if (D->hasAttr<InternalLinkageAttr>())
1462     return getInternalLinkageFor(D);
1463 
1464   if (computation.IgnoreAllVisibility && D->hasCachedLinkage())
1465     return LinkageInfo(D->getCachedLinkage(), DefaultVisibility, false);
1466 
1467   if (llvm::Optional<LinkageInfo> LI = lookup(D, computation))
1468     return *LI;
1469 
1470   LinkageInfo LV = computeLVForDecl(D, computation);
1471   if (D->hasCachedLinkage())
1472     assert(D->getCachedLinkage() == LV.getLinkage());
1473 
1474   D->setCachedLinkage(LV.getLinkage());
1475   cache(D, computation, LV);
1476 
1477 #ifndef NDEBUG
1478   // In C (because of gnu inline) and in c++ with microsoft extensions an
1479   // static can follow an extern, so we can have two decls with different
1480   // linkages.
1481   const LangOptions &Opts = D->getASTContext().getLangOpts();
1482   if (!Opts.CPlusPlus || Opts.MicrosoftExt)
1483     return LV;
1484 
1485   // We have just computed the linkage for this decl. By induction we know
1486   // that all other computed linkages match, check that the one we just
1487   // computed also does.
1488   NamedDecl *Old = nullptr;
1489   for (auto I : D->redecls()) {
1490     auto *T = cast<NamedDecl>(I);
1491     if (T == D)
1492       continue;
1493     if (!T->isInvalidDecl() && T->hasCachedLinkage()) {
1494       Old = T;
1495       break;
1496     }
1497   }
1498   assert(!Old || Old->getCachedLinkage() == D->getCachedLinkage());
1499 #endif
1500 
1501   return LV;
1502 }
1503 
1504 LinkageInfo LinkageComputer::getDeclLinkageAndVisibility(const NamedDecl *D) {
1505   return getLVForDecl(D,
1506                       LVComputationKind(usesTypeVisibility(D)
1507                                             ? NamedDecl::VisibilityForType
1508                                             : NamedDecl::VisibilityForValue));
1509 }
1510 
1511 Module *Decl::getOwningModuleForLinkage(bool IgnoreLinkage) const {
1512   Module *M = getOwningModule();
1513   if (!M)
1514     return nullptr;
1515 
1516   switch (M->Kind) {
1517   case Module::ModuleMapModule:
1518     // Module map modules have no special linkage semantics.
1519     return nullptr;
1520 
1521   case Module::ModuleInterfaceUnit:
1522     return M;
1523 
1524   case Module::GlobalModuleFragment: {
1525     // External linkage declarations in the global module have no owning module
1526     // for linkage purposes. But internal linkage declarations in the global
1527     // module fragment of a particular module are owned by that module for
1528     // linkage purposes.
1529     if (IgnoreLinkage)
1530       return nullptr;
1531     bool InternalLinkage;
1532     if (auto *ND = dyn_cast<NamedDecl>(this))
1533       InternalLinkage = !ND->hasExternalFormalLinkage();
1534     else {
1535       auto *NSD = dyn_cast<NamespaceDecl>(this);
1536       InternalLinkage = (NSD && NSD->isAnonymousNamespace()) ||
1537                         isInAnonymousNamespace();
1538     }
1539     return InternalLinkage ? M->Parent : nullptr;
1540   }
1541 
1542   case Module::PrivateModuleFragment:
1543     // The private module fragment is part of its containing module for linkage
1544     // purposes.
1545     return M->Parent;
1546   }
1547 
1548   llvm_unreachable("unknown module kind");
1549 }
1550 
1551 void NamedDecl::printName(raw_ostream &os) const {
1552   os << Name;
1553 }
1554 
1555 std::string NamedDecl::getQualifiedNameAsString() const {
1556   std::string QualName;
1557   llvm::raw_string_ostream OS(QualName);
1558   printQualifiedName(OS, getASTContext().getPrintingPolicy());
1559   return OS.str();
1560 }
1561 
1562 void NamedDecl::printQualifiedName(raw_ostream &OS) const {
1563   printQualifiedName(OS, getASTContext().getPrintingPolicy());
1564 }
1565 
1566 void NamedDecl::printQualifiedName(raw_ostream &OS,
1567                                    const PrintingPolicy &P) const {
1568   if (getDeclContext()->isFunctionOrMethod()) {
1569     // We do not print '(anonymous)' for function parameters without name.
1570     printName(OS);
1571     return;
1572   }
1573   printNestedNameSpecifier(OS, P);
1574   if (getDeclName() || isa<DecompositionDecl>(this))
1575     OS << *this;
1576   else
1577     OS << "(anonymous)";
1578 }
1579 
1580 void NamedDecl::printNestedNameSpecifier(raw_ostream &OS) const {
1581   printNestedNameSpecifier(OS, getASTContext().getPrintingPolicy());
1582 }
1583 
1584 void NamedDecl::printNestedNameSpecifier(raw_ostream &OS,
1585                                          const PrintingPolicy &P) const {
1586   const DeclContext *Ctx = getDeclContext();
1587 
1588   // For ObjC methods and properties, look through categories and use the
1589   // interface as context.
1590   if (auto *MD = dyn_cast<ObjCMethodDecl>(this))
1591     if (auto *ID = MD->getClassInterface())
1592       Ctx = ID;
1593   if (auto *PD = dyn_cast<ObjCPropertyDecl>(this)) {
1594     if (auto *MD = PD->getGetterMethodDecl())
1595       if (auto *ID = MD->getClassInterface())
1596         Ctx = ID;
1597   }
1598 
1599   if (Ctx->isFunctionOrMethod())
1600     return;
1601 
1602   using ContextsTy = SmallVector<const DeclContext *, 8>;
1603   ContextsTy Contexts;
1604 
1605   // Collect named contexts.
1606   while (Ctx) {
1607     if (isa<NamedDecl>(Ctx))
1608       Contexts.push_back(Ctx);
1609     Ctx = Ctx->getParent();
1610   }
1611 
1612   for (const DeclContext *DC : llvm::reverse(Contexts)) {
1613     if (const auto *Spec = dyn_cast<ClassTemplateSpecializationDecl>(DC)) {
1614       OS << Spec->getName();
1615       const TemplateArgumentList &TemplateArgs = Spec->getTemplateArgs();
1616       printTemplateArgumentList(OS, TemplateArgs.asArray(), P);
1617     } else if (const auto *ND = dyn_cast<NamespaceDecl>(DC)) {
1618       if (P.SuppressUnwrittenScope &&
1619           (ND->isAnonymousNamespace() || ND->isInline()))
1620         continue;
1621       if (ND->isAnonymousNamespace()) {
1622         OS << (P.MSVCFormatting ? "`anonymous namespace\'"
1623                                 : "(anonymous namespace)");
1624       }
1625       else
1626         OS << *ND;
1627     } else if (const auto *RD = dyn_cast<RecordDecl>(DC)) {
1628       if (!RD->getIdentifier())
1629         OS << "(anonymous " << RD->getKindName() << ')';
1630       else
1631         OS << *RD;
1632     } else if (const auto *FD = dyn_cast<FunctionDecl>(DC)) {
1633       const FunctionProtoType *FT = nullptr;
1634       if (FD->hasWrittenPrototype())
1635         FT = dyn_cast<FunctionProtoType>(FD->getType()->castAs<FunctionType>());
1636 
1637       OS << *FD << '(';
1638       if (FT) {
1639         unsigned NumParams = FD->getNumParams();
1640         for (unsigned i = 0; i < NumParams; ++i) {
1641           if (i)
1642             OS << ", ";
1643           OS << FD->getParamDecl(i)->getType().stream(P);
1644         }
1645 
1646         if (FT->isVariadic()) {
1647           if (NumParams > 0)
1648             OS << ", ";
1649           OS << "...";
1650         }
1651       }
1652       OS << ')';
1653     } else if (const auto *ED = dyn_cast<EnumDecl>(DC)) {
1654       // C++ [dcl.enum]p10: Each enum-name and each unscoped
1655       // enumerator is declared in the scope that immediately contains
1656       // the enum-specifier. Each scoped enumerator is declared in the
1657       // scope of the enumeration.
1658       // For the case of unscoped enumerator, do not include in the qualified
1659       // name any information about its enum enclosing scope, as its visibility
1660       // is global.
1661       if (ED->isScoped())
1662         OS << *ED;
1663       else
1664         continue;
1665     } else {
1666       OS << *cast<NamedDecl>(DC);
1667     }
1668     OS << "::";
1669   }
1670 }
1671 
1672 void NamedDecl::getNameForDiagnostic(raw_ostream &OS,
1673                                      const PrintingPolicy &Policy,
1674                                      bool Qualified) const {
1675   if (Qualified)
1676     printQualifiedName(OS, Policy);
1677   else
1678     printName(OS);
1679 }
1680 
1681 template<typename T> static bool isRedeclarableImpl(Redeclarable<T> *) {
1682   return true;
1683 }
1684 static bool isRedeclarableImpl(...) { return false; }
1685 static bool isRedeclarable(Decl::Kind K) {
1686   switch (K) {
1687 #define DECL(Type, Base) \
1688   case Decl::Type: \
1689     return isRedeclarableImpl((Type##Decl *)nullptr);
1690 #define ABSTRACT_DECL(DECL)
1691 #include "clang/AST/DeclNodes.inc"
1692   }
1693   llvm_unreachable("unknown decl kind");
1694 }
1695 
1696 bool NamedDecl::declarationReplaces(NamedDecl *OldD, bool IsKnownNewer) const {
1697   assert(getDeclName() == OldD->getDeclName() && "Declaration name mismatch");
1698 
1699   // Never replace one imported declaration with another; we need both results
1700   // when re-exporting.
1701   if (OldD->isFromASTFile() && isFromASTFile())
1702     return false;
1703 
1704   // A kind mismatch implies that the declaration is not replaced.
1705   if (OldD->getKind() != getKind())
1706     return false;
1707 
1708   // For method declarations, we never replace. (Why?)
1709   if (isa<ObjCMethodDecl>(this))
1710     return false;
1711 
1712   // For parameters, pick the newer one. This is either an error or (in
1713   // Objective-C) permitted as an extension.
1714   if (isa<ParmVarDecl>(this))
1715     return true;
1716 
1717   // Inline namespaces can give us two declarations with the same
1718   // name and kind in the same scope but different contexts; we should
1719   // keep both declarations in this case.
1720   if (!this->getDeclContext()->getRedeclContext()->Equals(
1721           OldD->getDeclContext()->getRedeclContext()))
1722     return false;
1723 
1724   // Using declarations can be replaced if they import the same name from the
1725   // same context.
1726   if (auto *UD = dyn_cast<UsingDecl>(this)) {
1727     ASTContext &Context = getASTContext();
1728     return Context.getCanonicalNestedNameSpecifier(UD->getQualifier()) ==
1729            Context.getCanonicalNestedNameSpecifier(
1730                cast<UsingDecl>(OldD)->getQualifier());
1731   }
1732   if (auto *UUVD = dyn_cast<UnresolvedUsingValueDecl>(this)) {
1733     ASTContext &Context = getASTContext();
1734     return Context.getCanonicalNestedNameSpecifier(UUVD->getQualifier()) ==
1735            Context.getCanonicalNestedNameSpecifier(
1736                         cast<UnresolvedUsingValueDecl>(OldD)->getQualifier());
1737   }
1738 
1739   if (isRedeclarable(getKind())) {
1740     if (getCanonicalDecl() != OldD->getCanonicalDecl())
1741       return false;
1742 
1743     if (IsKnownNewer)
1744       return true;
1745 
1746     // Check whether this is actually newer than OldD. We want to keep the
1747     // newer declaration. This loop will usually only iterate once, because
1748     // OldD is usually the previous declaration.
1749     for (auto D : redecls()) {
1750       if (D == OldD)
1751         break;
1752 
1753       // If we reach the canonical declaration, then OldD is not actually older
1754       // than this one.
1755       //
1756       // FIXME: In this case, we should not add this decl to the lookup table.
1757       if (D->isCanonicalDecl())
1758         return false;
1759     }
1760 
1761     // It's a newer declaration of the same kind of declaration in the same
1762     // scope: we want this decl instead of the existing one.
1763     return true;
1764   }
1765 
1766   // In all other cases, we need to keep both declarations in case they have
1767   // different visibility. Any attempt to use the name will result in an
1768   // ambiguity if more than one is visible.
1769   return false;
1770 }
1771 
1772 bool NamedDecl::hasLinkage() const {
1773   return getFormalLinkage() != NoLinkage;
1774 }
1775 
1776 NamedDecl *NamedDecl::getUnderlyingDeclImpl() {
1777   NamedDecl *ND = this;
1778   while (auto *UD = dyn_cast<UsingShadowDecl>(ND))
1779     ND = UD->getTargetDecl();
1780 
1781   if (auto *AD = dyn_cast<ObjCCompatibleAliasDecl>(ND))
1782     return AD->getClassInterface();
1783 
1784   if (auto *AD = dyn_cast<NamespaceAliasDecl>(ND))
1785     return AD->getNamespace();
1786 
1787   return ND;
1788 }
1789 
1790 bool NamedDecl::isCXXInstanceMember() const {
1791   if (!isCXXClassMember())
1792     return false;
1793 
1794   const NamedDecl *D = this;
1795   if (isa<UsingShadowDecl>(D))
1796     D = cast<UsingShadowDecl>(D)->getTargetDecl();
1797 
1798   if (isa<FieldDecl>(D) || isa<IndirectFieldDecl>(D) || isa<MSPropertyDecl>(D))
1799     return true;
1800   if (const auto *MD = dyn_cast_or_null<CXXMethodDecl>(D->getAsFunction()))
1801     return MD->isInstance();
1802   return false;
1803 }
1804 
1805 //===----------------------------------------------------------------------===//
1806 // DeclaratorDecl Implementation
1807 //===----------------------------------------------------------------------===//
1808 
1809 template <typename DeclT>
1810 static SourceLocation getTemplateOrInnerLocStart(const DeclT *decl) {
1811   if (decl->getNumTemplateParameterLists() > 0)
1812     return decl->getTemplateParameterList(0)->getTemplateLoc();
1813   else
1814     return decl->getInnerLocStart();
1815 }
1816 
1817 SourceLocation DeclaratorDecl::getTypeSpecStartLoc() const {
1818   TypeSourceInfo *TSI = getTypeSourceInfo();
1819   if (TSI) return TSI->getTypeLoc().getBeginLoc();
1820   return SourceLocation();
1821 }
1822 
1823 void DeclaratorDecl::setQualifierInfo(NestedNameSpecifierLoc QualifierLoc) {
1824   if (QualifierLoc) {
1825     // Make sure the extended decl info is allocated.
1826     if (!hasExtInfo()) {
1827       // Save (non-extended) type source info pointer.
1828       auto *savedTInfo = DeclInfo.get<TypeSourceInfo*>();
1829       // Allocate external info struct.
1830       DeclInfo = new (getASTContext()) ExtInfo;
1831       // Restore savedTInfo into (extended) decl info.
1832       getExtInfo()->TInfo = savedTInfo;
1833     }
1834     // Set qualifier info.
1835     getExtInfo()->QualifierLoc = QualifierLoc;
1836   } else {
1837     // Here Qualifier == 0, i.e., we are removing the qualifier (if any).
1838     if (hasExtInfo()) {
1839       if (getExtInfo()->NumTemplParamLists == 0) {
1840         // Save type source info pointer.
1841         TypeSourceInfo *savedTInfo = getExtInfo()->TInfo;
1842         // Deallocate the extended decl info.
1843         getASTContext().Deallocate(getExtInfo());
1844         // Restore savedTInfo into (non-extended) decl info.
1845         DeclInfo = savedTInfo;
1846       }
1847       else
1848         getExtInfo()->QualifierLoc = QualifierLoc;
1849     }
1850   }
1851 }
1852 
1853 void DeclaratorDecl::setTemplateParameterListsInfo(
1854     ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) {
1855   assert(!TPLists.empty());
1856   // Make sure the extended decl info is allocated.
1857   if (!hasExtInfo()) {
1858     // Save (non-extended) type source info pointer.
1859     auto *savedTInfo = DeclInfo.get<TypeSourceInfo*>();
1860     // Allocate external info struct.
1861     DeclInfo = new (getASTContext()) ExtInfo;
1862     // Restore savedTInfo into (extended) decl info.
1863     getExtInfo()->TInfo = savedTInfo;
1864   }
1865   // Set the template parameter lists info.
1866   getExtInfo()->setTemplateParameterListsInfo(Context, TPLists);
1867 }
1868 
1869 SourceLocation DeclaratorDecl::getOuterLocStart() const {
1870   return getTemplateOrInnerLocStart(this);
1871 }
1872 
1873 // Helper function: returns true if QT is or contains a type
1874 // having a postfix component.
1875 static bool typeIsPostfix(QualType QT) {
1876   while (true) {
1877     const Type* T = QT.getTypePtr();
1878     switch (T->getTypeClass()) {
1879     default:
1880       return false;
1881     case Type::Pointer:
1882       QT = cast<PointerType>(T)->getPointeeType();
1883       break;
1884     case Type::BlockPointer:
1885       QT = cast<BlockPointerType>(T)->getPointeeType();
1886       break;
1887     case Type::MemberPointer:
1888       QT = cast<MemberPointerType>(T)->getPointeeType();
1889       break;
1890     case Type::LValueReference:
1891     case Type::RValueReference:
1892       QT = cast<ReferenceType>(T)->getPointeeType();
1893       break;
1894     case Type::PackExpansion:
1895       QT = cast<PackExpansionType>(T)->getPattern();
1896       break;
1897     case Type::Paren:
1898     case Type::ConstantArray:
1899     case Type::DependentSizedArray:
1900     case Type::IncompleteArray:
1901     case Type::VariableArray:
1902     case Type::FunctionProto:
1903     case Type::FunctionNoProto:
1904       return true;
1905     }
1906   }
1907 }
1908 
1909 SourceRange DeclaratorDecl::getSourceRange() const {
1910   SourceLocation RangeEnd = getLocation();
1911   if (TypeSourceInfo *TInfo = getTypeSourceInfo()) {
1912     // If the declaration has no name or the type extends past the name take the
1913     // end location of the type.
1914     if (!getDeclName() || typeIsPostfix(TInfo->getType()))
1915       RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd();
1916   }
1917   return SourceRange(getOuterLocStart(), RangeEnd);
1918 }
1919 
1920 void QualifierInfo::setTemplateParameterListsInfo(
1921     ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) {
1922   // Free previous template parameters (if any).
1923   if (NumTemplParamLists > 0) {
1924     Context.Deallocate(TemplParamLists);
1925     TemplParamLists = nullptr;
1926     NumTemplParamLists = 0;
1927   }
1928   // Set info on matched template parameter lists (if any).
1929   if (!TPLists.empty()) {
1930     TemplParamLists = new (Context) TemplateParameterList *[TPLists.size()];
1931     NumTemplParamLists = TPLists.size();
1932     std::copy(TPLists.begin(), TPLists.end(), TemplParamLists);
1933   }
1934 }
1935 
1936 //===----------------------------------------------------------------------===//
1937 // VarDecl Implementation
1938 //===----------------------------------------------------------------------===//
1939 
1940 const char *VarDecl::getStorageClassSpecifierString(StorageClass SC) {
1941   switch (SC) {
1942   case SC_None:                 break;
1943   case SC_Auto:                 return "auto";
1944   case SC_Extern:               return "extern";
1945   case SC_PrivateExtern:        return "__private_extern__";
1946   case SC_Register:             return "register";
1947   case SC_Static:               return "static";
1948   }
1949 
1950   llvm_unreachable("Invalid storage class");
1951 }
1952 
1953 VarDecl::VarDecl(Kind DK, ASTContext &C, DeclContext *DC,
1954                  SourceLocation StartLoc, SourceLocation IdLoc,
1955                  IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo,
1956                  StorageClass SC)
1957     : DeclaratorDecl(DK, DC, IdLoc, Id, T, TInfo, StartLoc),
1958       redeclarable_base(C) {
1959   static_assert(sizeof(VarDeclBitfields) <= sizeof(unsigned),
1960                 "VarDeclBitfields too large!");
1961   static_assert(sizeof(ParmVarDeclBitfields) <= sizeof(unsigned),
1962                 "ParmVarDeclBitfields too large!");
1963   static_assert(sizeof(NonParmVarDeclBitfields) <= sizeof(unsigned),
1964                 "NonParmVarDeclBitfields too large!");
1965   AllBits = 0;
1966   VarDeclBits.SClass = SC;
1967   // Everything else is implicitly initialized to false.
1968 }
1969 
1970 VarDecl *VarDecl::Create(ASTContext &C, DeclContext *DC,
1971                          SourceLocation StartL, SourceLocation IdL,
1972                          IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo,
1973                          StorageClass S) {
1974   return new (C, DC) VarDecl(Var, C, DC, StartL, IdL, Id, T, TInfo, S);
1975 }
1976 
1977 VarDecl *VarDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
1978   return new (C, ID)
1979       VarDecl(Var, C, nullptr, SourceLocation(), SourceLocation(), nullptr,
1980               QualType(), nullptr, SC_None);
1981 }
1982 
1983 void VarDecl::setStorageClass(StorageClass SC) {
1984   assert(isLegalForVariable(SC));
1985   VarDeclBits.SClass = SC;
1986 }
1987 
1988 VarDecl::TLSKind VarDecl::getTLSKind() const {
1989   switch (VarDeclBits.TSCSpec) {
1990   case TSCS_unspecified:
1991     if (!hasAttr<ThreadAttr>() &&
1992         !(getASTContext().getLangOpts().OpenMPUseTLS &&
1993           getASTContext().getTargetInfo().isTLSSupported() &&
1994           hasAttr<OMPThreadPrivateDeclAttr>()))
1995       return TLS_None;
1996     return ((getASTContext().getLangOpts().isCompatibleWithMSVC(
1997                 LangOptions::MSVC2015)) ||
1998             hasAttr<OMPThreadPrivateDeclAttr>())
1999                ? TLS_Dynamic
2000                : TLS_Static;
2001   case TSCS___thread: // Fall through.
2002   case TSCS__Thread_local:
2003     return TLS_Static;
2004   case TSCS_thread_local:
2005     return TLS_Dynamic;
2006   }
2007   llvm_unreachable("Unknown thread storage class specifier!");
2008 }
2009 
2010 SourceRange VarDecl::getSourceRange() const {
2011   if (const Expr *Init = getInit()) {
2012     SourceLocation InitEnd = Init->getEndLoc();
2013     // If Init is implicit, ignore its source range and fallback on
2014     // DeclaratorDecl::getSourceRange() to handle postfix elements.
2015     if (InitEnd.isValid() && InitEnd != getLocation())
2016       return SourceRange(getOuterLocStart(), InitEnd);
2017   }
2018   return DeclaratorDecl::getSourceRange();
2019 }
2020 
2021 template<typename T>
2022 static LanguageLinkage getDeclLanguageLinkage(const T &D) {
2023   // C++ [dcl.link]p1: All function types, function names with external linkage,
2024   // and variable names with external linkage have a language linkage.
2025   if (!D.hasExternalFormalLinkage())
2026     return NoLanguageLinkage;
2027 
2028   // Language linkage is a C++ concept, but saying that everything else in C has
2029   // C language linkage fits the implementation nicely.
2030   ASTContext &Context = D.getASTContext();
2031   if (!Context.getLangOpts().CPlusPlus)
2032     return CLanguageLinkage;
2033 
2034   // C++ [dcl.link]p4: A C language linkage is ignored in determining the
2035   // language linkage of the names of class members and the function type of
2036   // class member functions.
2037   const DeclContext *DC = D.getDeclContext();
2038   if (DC->isRecord())
2039     return CXXLanguageLinkage;
2040 
2041   // If the first decl is in an extern "C" context, any other redeclaration
2042   // will have C language linkage. If the first one is not in an extern "C"
2043   // context, we would have reported an error for any other decl being in one.
2044   if (isFirstInExternCContext(&D))
2045     return CLanguageLinkage;
2046   return CXXLanguageLinkage;
2047 }
2048 
2049 template<typename T>
2050 static bool isDeclExternC(const T &D) {
2051   // Since the context is ignored for class members, they can only have C++
2052   // language linkage or no language linkage.
2053   const DeclContext *DC = D.getDeclContext();
2054   if (DC->isRecord()) {
2055     assert(D.getASTContext().getLangOpts().CPlusPlus);
2056     return false;
2057   }
2058 
2059   return D.getLanguageLinkage() == CLanguageLinkage;
2060 }
2061 
2062 LanguageLinkage VarDecl::getLanguageLinkage() const {
2063   return getDeclLanguageLinkage(*this);
2064 }
2065 
2066 bool VarDecl::isExternC() const {
2067   return isDeclExternC(*this);
2068 }
2069 
2070 bool VarDecl::isInExternCContext() const {
2071   return getLexicalDeclContext()->isExternCContext();
2072 }
2073 
2074 bool VarDecl::isInExternCXXContext() const {
2075   return getLexicalDeclContext()->isExternCXXContext();
2076 }
2077 
2078 VarDecl *VarDecl::getCanonicalDecl() { return getFirstDecl(); }
2079 
2080 VarDecl::DefinitionKind
2081 VarDecl::isThisDeclarationADefinition(ASTContext &C) const {
2082   if (isThisDeclarationADemotedDefinition())
2083     return DeclarationOnly;
2084 
2085   // C++ [basic.def]p2:
2086   //   A declaration is a definition unless [...] it contains the 'extern'
2087   //   specifier or a linkage-specification and neither an initializer [...],
2088   //   it declares a non-inline static data member in a class declaration [...],
2089   //   it declares a static data member outside a class definition and the variable
2090   //   was defined within the class with the constexpr specifier [...],
2091   // C++1y [temp.expl.spec]p15:
2092   //   An explicit specialization of a static data member or an explicit
2093   //   specialization of a static data member template is a definition if the
2094   //   declaration includes an initializer; otherwise, it is a declaration.
2095   //
2096   // FIXME: How do you declare (but not define) a partial specialization of
2097   // a static data member template outside the containing class?
2098   if (isStaticDataMember()) {
2099     if (isOutOfLine() &&
2100         !(getCanonicalDecl()->isInline() &&
2101           getCanonicalDecl()->isConstexpr()) &&
2102         (hasInit() ||
2103          // If the first declaration is out-of-line, this may be an
2104          // instantiation of an out-of-line partial specialization of a variable
2105          // template for which we have not yet instantiated the initializer.
2106          (getFirstDecl()->isOutOfLine()
2107               ? getTemplateSpecializationKind() == TSK_Undeclared
2108               : getTemplateSpecializationKind() !=
2109                     TSK_ExplicitSpecialization) ||
2110          isa<VarTemplatePartialSpecializationDecl>(this)))
2111       return Definition;
2112     else if (!isOutOfLine() && isInline())
2113       return Definition;
2114     else
2115       return DeclarationOnly;
2116   }
2117   // C99 6.7p5:
2118   //   A definition of an identifier is a declaration for that identifier that
2119   //   [...] causes storage to be reserved for that object.
2120   // Note: that applies for all non-file-scope objects.
2121   // C99 6.9.2p1:
2122   //   If the declaration of an identifier for an object has file scope and an
2123   //   initializer, the declaration is an external definition for the identifier
2124   if (hasInit())
2125     return Definition;
2126 
2127   if (hasDefiningAttr())
2128     return Definition;
2129 
2130   if (const auto *SAA = getAttr<SelectAnyAttr>())
2131     if (!SAA->isInherited())
2132       return Definition;
2133 
2134   // A variable template specialization (other than a static data member
2135   // template or an explicit specialization) is a declaration until we
2136   // instantiate its initializer.
2137   if (auto *VTSD = dyn_cast<VarTemplateSpecializationDecl>(this)) {
2138     if (VTSD->getTemplateSpecializationKind() != TSK_ExplicitSpecialization &&
2139         !isa<VarTemplatePartialSpecializationDecl>(VTSD) &&
2140         !VTSD->IsCompleteDefinition)
2141       return DeclarationOnly;
2142   }
2143 
2144   if (hasExternalStorage())
2145     return DeclarationOnly;
2146 
2147   // [dcl.link] p7:
2148   //   A declaration directly contained in a linkage-specification is treated
2149   //   as if it contains the extern specifier for the purpose of determining
2150   //   the linkage of the declared name and whether it is a definition.
2151   if (isSingleLineLanguageLinkage(*this))
2152     return DeclarationOnly;
2153 
2154   // C99 6.9.2p2:
2155   //   A declaration of an object that has file scope without an initializer,
2156   //   and without a storage class specifier or the scs 'static', constitutes
2157   //   a tentative definition.
2158   // No such thing in C++.
2159   if (!C.getLangOpts().CPlusPlus && isFileVarDecl())
2160     return TentativeDefinition;
2161 
2162   // What's left is (in C, block-scope) declarations without initializers or
2163   // external storage. These are definitions.
2164   return Definition;
2165 }
2166 
2167 VarDecl *VarDecl::getActingDefinition() {
2168   DefinitionKind Kind = isThisDeclarationADefinition();
2169   if (Kind != TentativeDefinition)
2170     return nullptr;
2171 
2172   VarDecl *LastTentative = nullptr;
2173   VarDecl *First = getFirstDecl();
2174   for (auto I : First->redecls()) {
2175     Kind = I->isThisDeclarationADefinition();
2176     if (Kind == Definition)
2177       return nullptr;
2178     else if (Kind == TentativeDefinition)
2179       LastTentative = I;
2180   }
2181   return LastTentative;
2182 }
2183 
2184 VarDecl *VarDecl::getDefinition(ASTContext &C) {
2185   VarDecl *First = getFirstDecl();
2186   for (auto I : First->redecls()) {
2187     if (I->isThisDeclarationADefinition(C) == Definition)
2188       return I;
2189   }
2190   return nullptr;
2191 }
2192 
2193 VarDecl::DefinitionKind VarDecl::hasDefinition(ASTContext &C) const {
2194   DefinitionKind Kind = DeclarationOnly;
2195 
2196   const VarDecl *First = getFirstDecl();
2197   for (auto I : First->redecls()) {
2198     Kind = std::max(Kind, I->isThisDeclarationADefinition(C));
2199     if (Kind == Definition)
2200       break;
2201   }
2202 
2203   return Kind;
2204 }
2205 
2206 const Expr *VarDecl::getAnyInitializer(const VarDecl *&D) const {
2207   for (auto I : redecls()) {
2208     if (auto Expr = I->getInit()) {
2209       D = I;
2210       return Expr;
2211     }
2212   }
2213   return nullptr;
2214 }
2215 
2216 bool VarDecl::hasInit() const {
2217   if (auto *P = dyn_cast<ParmVarDecl>(this))
2218     if (P->hasUnparsedDefaultArg() || P->hasUninstantiatedDefaultArg())
2219       return false;
2220 
2221   return !Init.isNull();
2222 }
2223 
2224 Expr *VarDecl::getInit() {
2225   if (!hasInit())
2226     return nullptr;
2227 
2228   if (auto *S = Init.dyn_cast<Stmt *>())
2229     return cast<Expr>(S);
2230 
2231   return cast_or_null<Expr>(Init.get<EvaluatedStmt *>()->Value);
2232 }
2233 
2234 Stmt **VarDecl::getInitAddress() {
2235   if (auto *ES = Init.dyn_cast<EvaluatedStmt *>())
2236     return &ES->Value;
2237 
2238   return Init.getAddrOfPtr1();
2239 }
2240 
2241 VarDecl *VarDecl::getInitializingDeclaration() {
2242   VarDecl *Def = nullptr;
2243   for (auto I : redecls()) {
2244     if (I->hasInit())
2245       return I;
2246 
2247     if (I->isThisDeclarationADefinition()) {
2248       if (isStaticDataMember())
2249         return I;
2250       else
2251         Def = I;
2252     }
2253   }
2254   return Def;
2255 }
2256 
2257 bool VarDecl::isOutOfLine() const {
2258   if (Decl::isOutOfLine())
2259     return true;
2260 
2261   if (!isStaticDataMember())
2262     return false;
2263 
2264   // If this static data member was instantiated from a static data member of
2265   // a class template, check whether that static data member was defined
2266   // out-of-line.
2267   if (VarDecl *VD = getInstantiatedFromStaticDataMember())
2268     return VD->isOutOfLine();
2269 
2270   return false;
2271 }
2272 
2273 void VarDecl::setInit(Expr *I) {
2274   if (auto *Eval = Init.dyn_cast<EvaluatedStmt *>()) {
2275     Eval->~EvaluatedStmt();
2276     getASTContext().Deallocate(Eval);
2277   }
2278 
2279   Init = I;
2280 }
2281 
2282 bool VarDecl::mightBeUsableInConstantExpressions(ASTContext &C) const {
2283   const LangOptions &Lang = C.getLangOpts();
2284 
2285   if (!Lang.CPlusPlus)
2286     return false;
2287 
2288   // Function parameters are never usable in constant expressions.
2289   if (isa<ParmVarDecl>(this))
2290     return false;
2291 
2292   // In C++11, any variable of reference type can be used in a constant
2293   // expression if it is initialized by a constant expression.
2294   if (Lang.CPlusPlus11 && getType()->isReferenceType())
2295     return true;
2296 
2297   // Only const objects can be used in constant expressions in C++. C++98 does
2298   // not require the variable to be non-volatile, but we consider this to be a
2299   // defect.
2300   if (!getType().isConstQualified() || getType().isVolatileQualified())
2301     return false;
2302 
2303   // In C++, const, non-volatile variables of integral or enumeration types
2304   // can be used in constant expressions.
2305   if (getType()->isIntegralOrEnumerationType())
2306     return true;
2307 
2308   // Additionally, in C++11, non-volatile constexpr variables can be used in
2309   // constant expressions.
2310   return Lang.CPlusPlus11 && isConstexpr();
2311 }
2312 
2313 bool VarDecl::isUsableInConstantExpressions(ASTContext &Context) const {
2314   // C++2a [expr.const]p3:
2315   //   A variable is usable in constant expressions after its initializing
2316   //   declaration is encountered...
2317   const VarDecl *DefVD = nullptr;
2318   const Expr *Init = getAnyInitializer(DefVD);
2319   if (!Init || Init->isValueDependent() || getType()->isDependentType())
2320     return false;
2321   //   ... if it is a constexpr variable, or it is of reference type or of
2322   //   const-qualified integral or enumeration type, ...
2323   if (!DefVD->mightBeUsableInConstantExpressions(Context))
2324     return false;
2325   //   ... and its initializer is a constant initializer.
2326   return DefVD->checkInitIsICE();
2327 }
2328 
2329 /// Convert the initializer for this declaration to the elaborated EvaluatedStmt
2330 /// form, which contains extra information on the evaluated value of the
2331 /// initializer.
2332 EvaluatedStmt *VarDecl::ensureEvaluatedStmt() const {
2333   auto *Eval = Init.dyn_cast<EvaluatedStmt *>();
2334   if (!Eval) {
2335     // Note: EvaluatedStmt contains an APValue, which usually holds
2336     // resources not allocated from the ASTContext.  We need to do some
2337     // work to avoid leaking those, but we do so in VarDecl::evaluateValue
2338     // where we can detect whether there's anything to clean up or not.
2339     Eval = new (getASTContext()) EvaluatedStmt;
2340     Eval->Value = Init.get<Stmt *>();
2341     Init = Eval;
2342   }
2343   return Eval;
2344 }
2345 
2346 APValue *VarDecl::evaluateValue() const {
2347   SmallVector<PartialDiagnosticAt, 8> Notes;
2348   return evaluateValue(Notes);
2349 }
2350 
2351 APValue *VarDecl::evaluateValue(
2352     SmallVectorImpl<PartialDiagnosticAt> &Notes) const {
2353   EvaluatedStmt *Eval = ensureEvaluatedStmt();
2354 
2355   // We only produce notes indicating why an initializer is non-constant the
2356   // first time it is evaluated. FIXME: The notes won't always be emitted the
2357   // first time we try evaluation, so might not be produced at all.
2358   if (Eval->WasEvaluated)
2359     return Eval->Evaluated.isAbsent() ? nullptr : &Eval->Evaluated;
2360 
2361   const auto *Init = cast<Expr>(Eval->Value);
2362   assert(!Init->isValueDependent());
2363 
2364   if (Eval->IsEvaluating) {
2365     // FIXME: Produce a diagnostic for self-initialization.
2366     Eval->CheckedICE = true;
2367     Eval->IsICE = false;
2368     return nullptr;
2369   }
2370 
2371   Eval->IsEvaluating = true;
2372 
2373   bool Result = Init->EvaluateAsInitializer(Eval->Evaluated, getASTContext(),
2374                                             this, Notes);
2375 
2376   // Ensure the computed APValue is cleaned up later if evaluation succeeded,
2377   // or that it's empty (so that there's nothing to clean up) if evaluation
2378   // failed.
2379   if (!Result)
2380     Eval->Evaluated = APValue();
2381   else if (Eval->Evaluated.needsCleanup())
2382     getASTContext().addDestruction(&Eval->Evaluated);
2383 
2384   Eval->IsEvaluating = false;
2385   Eval->WasEvaluated = true;
2386 
2387   // In C++11, we have determined whether the initializer was a constant
2388   // expression as a side-effect.
2389   if (getASTContext().getLangOpts().CPlusPlus11 && !Eval->CheckedICE) {
2390     Eval->CheckedICE = true;
2391     Eval->IsICE = Result && Notes.empty();
2392   }
2393 
2394   return Result ? &Eval->Evaluated : nullptr;
2395 }
2396 
2397 APValue *VarDecl::getEvaluatedValue() const {
2398   if (EvaluatedStmt *Eval = Init.dyn_cast<EvaluatedStmt *>())
2399     if (Eval->WasEvaluated)
2400       return &Eval->Evaluated;
2401 
2402   return nullptr;
2403 }
2404 
2405 bool VarDecl::isInitKnownICE() const {
2406   if (EvaluatedStmt *Eval = Init.dyn_cast<EvaluatedStmt *>())
2407     return Eval->CheckedICE;
2408 
2409   return false;
2410 }
2411 
2412 bool VarDecl::isInitICE() const {
2413   assert(isInitKnownICE() &&
2414          "Check whether we already know that the initializer is an ICE");
2415   return Init.get<EvaluatedStmt *>()->IsICE;
2416 }
2417 
2418 bool VarDecl::checkInitIsICE() const {
2419   // Initializers of weak variables are never ICEs.
2420   if (isWeak())
2421     return false;
2422 
2423   EvaluatedStmt *Eval = ensureEvaluatedStmt();
2424   if (Eval->CheckedICE)
2425     // We have already checked whether this subexpression is an
2426     // integral constant expression.
2427     return Eval->IsICE;
2428 
2429   const auto *Init = cast<Expr>(Eval->Value);
2430   assert(!Init->isValueDependent());
2431 
2432   // In C++11, evaluate the initializer to check whether it's a constant
2433   // expression.
2434   if (getASTContext().getLangOpts().CPlusPlus11) {
2435     SmallVector<PartialDiagnosticAt, 8> Notes;
2436     evaluateValue(Notes);
2437     return Eval->IsICE;
2438   }
2439 
2440   // It's an ICE whether or not the definition we found is
2441   // out-of-line.  See DR 721 and the discussion in Clang PR
2442   // 6206 for details.
2443 
2444   if (Eval->CheckingICE)
2445     return false;
2446   Eval->CheckingICE = true;
2447 
2448   Eval->IsICE = Init->isIntegerConstantExpr(getASTContext());
2449   Eval->CheckingICE = false;
2450   Eval->CheckedICE = true;
2451   return Eval->IsICE;
2452 }
2453 
2454 bool VarDecl::isParameterPack() const {
2455   return isa<PackExpansionType>(getType());
2456 }
2457 
2458 template<typename DeclT>
2459 static DeclT *getDefinitionOrSelf(DeclT *D) {
2460   assert(D);
2461   if (auto *Def = D->getDefinition())
2462     return Def;
2463   return D;
2464 }
2465 
2466 bool VarDecl::isEscapingByref() const {
2467   return hasAttr<BlocksAttr>() && NonParmVarDeclBits.EscapingByref;
2468 }
2469 
2470 bool VarDecl::isNonEscapingByref() const {
2471   return hasAttr<BlocksAttr>() && !NonParmVarDeclBits.EscapingByref;
2472 }
2473 
2474 VarDecl *VarDecl::getTemplateInstantiationPattern() const {
2475   const VarDecl *VD = this;
2476 
2477   // If this is an instantiated member, walk back to the template from which
2478   // it was instantiated.
2479   if (MemberSpecializationInfo *MSInfo = VD->getMemberSpecializationInfo()) {
2480     if (isTemplateInstantiation(MSInfo->getTemplateSpecializationKind())) {
2481       VD = VD->getInstantiatedFromStaticDataMember();
2482       while (auto *NewVD = VD->getInstantiatedFromStaticDataMember())
2483         VD = NewVD;
2484     }
2485   }
2486 
2487   // If it's an instantiated variable template specialization, find the
2488   // template or partial specialization from which it was instantiated.
2489   if (auto *VDTemplSpec = dyn_cast<VarTemplateSpecializationDecl>(VD)) {
2490     if (isTemplateInstantiation(VDTemplSpec->getTemplateSpecializationKind())) {
2491       auto From = VDTemplSpec->getInstantiatedFrom();
2492       if (auto *VTD = From.dyn_cast<VarTemplateDecl *>()) {
2493         while (!VTD->isMemberSpecialization()) {
2494           auto *NewVTD = VTD->getInstantiatedFromMemberTemplate();
2495           if (!NewVTD)
2496             break;
2497           VTD = NewVTD;
2498         }
2499         return getDefinitionOrSelf(VTD->getTemplatedDecl());
2500       }
2501       if (auto *VTPSD =
2502               From.dyn_cast<VarTemplatePartialSpecializationDecl *>()) {
2503         while (!VTPSD->isMemberSpecialization()) {
2504           auto *NewVTPSD = VTPSD->getInstantiatedFromMember();
2505           if (!NewVTPSD)
2506             break;
2507           VTPSD = NewVTPSD;
2508         }
2509         return getDefinitionOrSelf<VarDecl>(VTPSD);
2510       }
2511     }
2512   }
2513 
2514   // If this is the pattern of a variable template, find where it was
2515   // instantiated from. FIXME: Is this necessary?
2516   if (VarTemplateDecl *VarTemplate = VD->getDescribedVarTemplate()) {
2517     while (!VarTemplate->isMemberSpecialization()) {
2518       auto *NewVT = VarTemplate->getInstantiatedFromMemberTemplate();
2519       if (!NewVT)
2520         break;
2521       VarTemplate = NewVT;
2522     }
2523 
2524     return getDefinitionOrSelf(VarTemplate->getTemplatedDecl());
2525   }
2526 
2527   if (VD == this)
2528     return nullptr;
2529   return getDefinitionOrSelf(const_cast<VarDecl*>(VD));
2530 }
2531 
2532 VarDecl *VarDecl::getInstantiatedFromStaticDataMember() const {
2533   if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo())
2534     return cast<VarDecl>(MSI->getInstantiatedFrom());
2535 
2536   return nullptr;
2537 }
2538 
2539 TemplateSpecializationKind VarDecl::getTemplateSpecializationKind() const {
2540   if (const auto *Spec = dyn_cast<VarTemplateSpecializationDecl>(this))
2541     return Spec->getSpecializationKind();
2542 
2543   if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo())
2544     return MSI->getTemplateSpecializationKind();
2545 
2546   return TSK_Undeclared;
2547 }
2548 
2549 TemplateSpecializationKind
2550 VarDecl::getTemplateSpecializationKindForInstantiation() const {
2551   if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo())
2552     return MSI->getTemplateSpecializationKind();
2553 
2554   if (const auto *Spec = dyn_cast<VarTemplateSpecializationDecl>(this))
2555     return Spec->getSpecializationKind();
2556 
2557   return TSK_Undeclared;
2558 }
2559 
2560 SourceLocation VarDecl::getPointOfInstantiation() const {
2561   if (const auto *Spec = dyn_cast<VarTemplateSpecializationDecl>(this))
2562     return Spec->getPointOfInstantiation();
2563 
2564   if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo())
2565     return MSI->getPointOfInstantiation();
2566 
2567   return SourceLocation();
2568 }
2569 
2570 VarTemplateDecl *VarDecl::getDescribedVarTemplate() const {
2571   return getASTContext().getTemplateOrSpecializationInfo(this)
2572       .dyn_cast<VarTemplateDecl *>();
2573 }
2574 
2575 void VarDecl::setDescribedVarTemplate(VarTemplateDecl *Template) {
2576   getASTContext().setTemplateOrSpecializationInfo(this, Template);
2577 }
2578 
2579 bool VarDecl::isKnownToBeDefined() const {
2580   const auto &LangOpts = getASTContext().getLangOpts();
2581   // In CUDA mode without relocatable device code, variables of form 'extern
2582   // __shared__ Foo foo[]' are pointers to the base of the GPU core's shared
2583   // memory pool.  These are never undefined variables, even if they appear
2584   // inside of an anon namespace or static function.
2585   //
2586   // With CUDA relocatable device code enabled, these variables don't get
2587   // special handling; they're treated like regular extern variables.
2588   if (LangOpts.CUDA && !LangOpts.GPURelocatableDeviceCode &&
2589       hasExternalStorage() && hasAttr<CUDASharedAttr>() &&
2590       isa<IncompleteArrayType>(getType()))
2591     return true;
2592 
2593   return hasDefinition();
2594 }
2595 
2596 bool VarDecl::isNoDestroy(const ASTContext &Ctx) const {
2597   return hasGlobalStorage() && (hasAttr<NoDestroyAttr>() ||
2598                                 (!Ctx.getLangOpts().RegisterStaticDestructors &&
2599                                  !hasAttr<AlwaysDestroyAttr>()));
2600 }
2601 
2602 QualType::DestructionKind
2603 VarDecl::needsDestruction(const ASTContext &Ctx) const {
2604   if (EvaluatedStmt *Eval = Init.dyn_cast<EvaluatedStmt *>())
2605     if (Eval->HasConstantDestruction)
2606       return QualType::DK_none;
2607 
2608   if (isNoDestroy(Ctx))
2609     return QualType::DK_none;
2610 
2611   return getType().isDestructedType();
2612 }
2613 
2614 MemberSpecializationInfo *VarDecl::getMemberSpecializationInfo() const {
2615   if (isStaticDataMember())
2616     // FIXME: Remove ?
2617     // return getASTContext().getInstantiatedFromStaticDataMember(this);
2618     return getASTContext().getTemplateOrSpecializationInfo(this)
2619         .dyn_cast<MemberSpecializationInfo *>();
2620   return nullptr;
2621 }
2622 
2623 void VarDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK,
2624                                          SourceLocation PointOfInstantiation) {
2625   assert((isa<VarTemplateSpecializationDecl>(this) ||
2626           getMemberSpecializationInfo()) &&
2627          "not a variable or static data member template specialization");
2628 
2629   if (VarTemplateSpecializationDecl *Spec =
2630           dyn_cast<VarTemplateSpecializationDecl>(this)) {
2631     Spec->setSpecializationKind(TSK);
2632     if (TSK != TSK_ExplicitSpecialization &&
2633         PointOfInstantiation.isValid() &&
2634         Spec->getPointOfInstantiation().isInvalid()) {
2635       Spec->setPointOfInstantiation(PointOfInstantiation);
2636       if (ASTMutationListener *L = getASTContext().getASTMutationListener())
2637         L->InstantiationRequested(this);
2638     }
2639   } else if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) {
2640     MSI->setTemplateSpecializationKind(TSK);
2641     if (TSK != TSK_ExplicitSpecialization && PointOfInstantiation.isValid() &&
2642         MSI->getPointOfInstantiation().isInvalid()) {
2643       MSI->setPointOfInstantiation(PointOfInstantiation);
2644       if (ASTMutationListener *L = getASTContext().getASTMutationListener())
2645         L->InstantiationRequested(this);
2646     }
2647   }
2648 }
2649 
2650 void
2651 VarDecl::setInstantiationOfStaticDataMember(VarDecl *VD,
2652                                             TemplateSpecializationKind TSK) {
2653   assert(getASTContext().getTemplateOrSpecializationInfo(this).isNull() &&
2654          "Previous template or instantiation?");
2655   getASTContext().setInstantiatedFromStaticDataMember(this, VD, TSK);
2656 }
2657 
2658 //===----------------------------------------------------------------------===//
2659 // ParmVarDecl Implementation
2660 //===----------------------------------------------------------------------===//
2661 
2662 ParmVarDecl *ParmVarDecl::Create(ASTContext &C, DeclContext *DC,
2663                                  SourceLocation StartLoc,
2664                                  SourceLocation IdLoc, IdentifierInfo *Id,
2665                                  QualType T, TypeSourceInfo *TInfo,
2666                                  StorageClass S, Expr *DefArg) {
2667   return new (C, DC) ParmVarDecl(ParmVar, C, DC, StartLoc, IdLoc, Id, T, TInfo,
2668                                  S, DefArg);
2669 }
2670 
2671 QualType ParmVarDecl::getOriginalType() const {
2672   TypeSourceInfo *TSI = getTypeSourceInfo();
2673   QualType T = TSI ? TSI->getType() : getType();
2674   if (const auto *DT = dyn_cast<DecayedType>(T))
2675     return DT->getOriginalType();
2676   return T;
2677 }
2678 
2679 ParmVarDecl *ParmVarDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
2680   return new (C, ID)
2681       ParmVarDecl(ParmVar, C, nullptr, SourceLocation(), SourceLocation(),
2682                   nullptr, QualType(), nullptr, SC_None, nullptr);
2683 }
2684 
2685 SourceRange ParmVarDecl::getSourceRange() const {
2686   if (!hasInheritedDefaultArg()) {
2687     SourceRange ArgRange = getDefaultArgRange();
2688     if (ArgRange.isValid())
2689       return SourceRange(getOuterLocStart(), ArgRange.getEnd());
2690   }
2691 
2692   // DeclaratorDecl considers the range of postfix types as overlapping with the
2693   // declaration name, but this is not the case with parameters in ObjC methods.
2694   if (isa<ObjCMethodDecl>(getDeclContext()))
2695     return SourceRange(DeclaratorDecl::getBeginLoc(), getLocation());
2696 
2697   return DeclaratorDecl::getSourceRange();
2698 }
2699 
2700 Expr *ParmVarDecl::getDefaultArg() {
2701   assert(!hasUnparsedDefaultArg() && "Default argument is not yet parsed!");
2702   assert(!hasUninstantiatedDefaultArg() &&
2703          "Default argument is not yet instantiated!");
2704 
2705   Expr *Arg = getInit();
2706   if (auto *E = dyn_cast_or_null<FullExpr>(Arg))
2707     return E->getSubExpr();
2708 
2709   return Arg;
2710 }
2711 
2712 void ParmVarDecl::setDefaultArg(Expr *defarg) {
2713   ParmVarDeclBits.DefaultArgKind = DAK_Normal;
2714   Init = defarg;
2715 }
2716 
2717 SourceRange ParmVarDecl::getDefaultArgRange() const {
2718   switch (ParmVarDeclBits.DefaultArgKind) {
2719   case DAK_None:
2720   case DAK_Unparsed:
2721     // Nothing we can do here.
2722     return SourceRange();
2723 
2724   case DAK_Uninstantiated:
2725     return getUninstantiatedDefaultArg()->getSourceRange();
2726 
2727   case DAK_Normal:
2728     if (const Expr *E = getInit())
2729       return E->getSourceRange();
2730 
2731     // Missing an actual expression, may be invalid.
2732     return SourceRange();
2733   }
2734   llvm_unreachable("Invalid default argument kind.");
2735 }
2736 
2737 void ParmVarDecl::setUninstantiatedDefaultArg(Expr *arg) {
2738   ParmVarDeclBits.DefaultArgKind = DAK_Uninstantiated;
2739   Init = arg;
2740 }
2741 
2742 Expr *ParmVarDecl::getUninstantiatedDefaultArg() {
2743   assert(hasUninstantiatedDefaultArg() &&
2744          "Wrong kind of initialization expression!");
2745   return cast_or_null<Expr>(Init.get<Stmt *>());
2746 }
2747 
2748 bool ParmVarDecl::hasDefaultArg() const {
2749   // FIXME: We should just return false for DAK_None here once callers are
2750   // prepared for the case that we encountered an invalid default argument and
2751   // were unable to even build an invalid expression.
2752   return hasUnparsedDefaultArg() || hasUninstantiatedDefaultArg() ||
2753          !Init.isNull();
2754 }
2755 
2756 void ParmVarDecl::setParameterIndexLarge(unsigned parameterIndex) {
2757   getASTContext().setParameterIndex(this, parameterIndex);
2758   ParmVarDeclBits.ParameterIndex = ParameterIndexSentinel;
2759 }
2760 
2761 unsigned ParmVarDecl::getParameterIndexLarge() const {
2762   return getASTContext().getParameterIndex(this);
2763 }
2764 
2765 //===----------------------------------------------------------------------===//
2766 // FunctionDecl Implementation
2767 //===----------------------------------------------------------------------===//
2768 
2769 FunctionDecl::FunctionDecl(Kind DK, ASTContext &C, DeclContext *DC,
2770                            SourceLocation StartLoc,
2771                            const DeclarationNameInfo &NameInfo, QualType T,
2772                            TypeSourceInfo *TInfo, StorageClass S,
2773                            bool isInlineSpecified,
2774                            ConstexprSpecKind ConstexprKind)
2775     : DeclaratorDecl(DK, DC, NameInfo.getLoc(), NameInfo.getName(), T, TInfo,
2776                      StartLoc),
2777       DeclContext(DK), redeclarable_base(C), Body(), ODRHash(0),
2778       EndRangeLoc(NameInfo.getEndLoc()), DNLoc(NameInfo.getInfo()) {
2779   assert(T.isNull() || T->isFunctionType());
2780   FunctionDeclBits.SClass = S;
2781   FunctionDeclBits.IsInline = isInlineSpecified;
2782   FunctionDeclBits.IsInlineSpecified = isInlineSpecified;
2783   FunctionDeclBits.IsVirtualAsWritten = false;
2784   FunctionDeclBits.IsPure = false;
2785   FunctionDeclBits.HasInheritedPrototype = false;
2786   FunctionDeclBits.HasWrittenPrototype = true;
2787   FunctionDeclBits.IsDeleted = false;
2788   FunctionDeclBits.IsTrivial = false;
2789   FunctionDeclBits.IsTrivialForCall = false;
2790   FunctionDeclBits.IsDefaulted = false;
2791   FunctionDeclBits.IsExplicitlyDefaulted = false;
2792   FunctionDeclBits.HasDefaultedFunctionInfo = false;
2793   FunctionDeclBits.HasImplicitReturnZero = false;
2794   FunctionDeclBits.IsLateTemplateParsed = false;
2795   FunctionDeclBits.ConstexprKind = ConstexprKind;
2796   FunctionDeclBits.InstantiationIsPending = false;
2797   FunctionDeclBits.UsesSEHTry = false;
2798   FunctionDeclBits.UsesFPIntrin = false;
2799   FunctionDeclBits.HasSkippedBody = false;
2800   FunctionDeclBits.WillHaveBody = false;
2801   FunctionDeclBits.IsMultiVersion = false;
2802   FunctionDeclBits.IsCopyDeductionCandidate = false;
2803   FunctionDeclBits.HasODRHash = false;
2804 }
2805 
2806 void FunctionDecl::getNameForDiagnostic(
2807     raw_ostream &OS, const PrintingPolicy &Policy, bool Qualified) const {
2808   NamedDecl::getNameForDiagnostic(OS, Policy, Qualified);
2809   const TemplateArgumentList *TemplateArgs = getTemplateSpecializationArgs();
2810   if (TemplateArgs)
2811     printTemplateArgumentList(OS, TemplateArgs->asArray(), Policy);
2812 }
2813 
2814 bool FunctionDecl::isVariadic() const {
2815   if (const auto *FT = getType()->getAs<FunctionProtoType>())
2816     return FT->isVariadic();
2817   return false;
2818 }
2819 
2820 FunctionDecl::DefaultedFunctionInfo *
2821 FunctionDecl::DefaultedFunctionInfo::Create(ASTContext &Context,
2822                                             ArrayRef<DeclAccessPair> Lookups) {
2823   DefaultedFunctionInfo *Info = new (Context.Allocate(
2824       totalSizeToAlloc<DeclAccessPair>(Lookups.size()),
2825       std::max(alignof(DefaultedFunctionInfo), alignof(DeclAccessPair))))
2826       DefaultedFunctionInfo;
2827   Info->NumLookups = Lookups.size();
2828   std::uninitialized_copy(Lookups.begin(), Lookups.end(),
2829                           Info->getTrailingObjects<DeclAccessPair>());
2830   return Info;
2831 }
2832 
2833 void FunctionDecl::setDefaultedFunctionInfo(DefaultedFunctionInfo *Info) {
2834   assert(!FunctionDeclBits.HasDefaultedFunctionInfo && "already have this");
2835   assert(!Body && "can't replace function body with defaulted function info");
2836 
2837   FunctionDeclBits.HasDefaultedFunctionInfo = true;
2838   DefaultedInfo = Info;
2839 }
2840 
2841 FunctionDecl::DefaultedFunctionInfo *
2842 FunctionDecl::getDefaultedFunctionInfo() const {
2843   return FunctionDeclBits.HasDefaultedFunctionInfo ? DefaultedInfo : nullptr;
2844 }
2845 
2846 bool FunctionDecl::hasBody(const FunctionDecl *&Definition) const {
2847   for (auto I : redecls()) {
2848     if (I->doesThisDeclarationHaveABody()) {
2849       Definition = I;
2850       return true;
2851     }
2852   }
2853 
2854   return false;
2855 }
2856 
2857 bool FunctionDecl::hasTrivialBody() const {
2858   Stmt *S = getBody();
2859   if (!S) {
2860     // Since we don't have a body for this function, we don't know if it's
2861     // trivial or not.
2862     return false;
2863   }
2864 
2865   if (isa<CompoundStmt>(S) && cast<CompoundStmt>(S)->body_empty())
2866     return true;
2867   return false;
2868 }
2869 
2870 bool FunctionDecl::isDefined(const FunctionDecl *&Definition) const {
2871   for (auto I : redecls()) {
2872     if (I->isThisDeclarationADefinition()) {
2873       Definition = I;
2874       return true;
2875     }
2876   }
2877 
2878   return false;
2879 }
2880 
2881 Stmt *FunctionDecl::getBody(const FunctionDecl *&Definition) const {
2882   if (!hasBody(Definition))
2883     return nullptr;
2884 
2885   assert(!Definition->FunctionDeclBits.HasDefaultedFunctionInfo &&
2886          "definition should not have a body");
2887   if (Definition->Body)
2888     return Definition->Body.get(getASTContext().getExternalSource());
2889 
2890   return nullptr;
2891 }
2892 
2893 void FunctionDecl::setBody(Stmt *B) {
2894   FunctionDeclBits.HasDefaultedFunctionInfo = false;
2895   Body = LazyDeclStmtPtr(B);
2896   if (B)
2897     EndRangeLoc = B->getEndLoc();
2898 }
2899 
2900 void FunctionDecl::setPure(bool P) {
2901   FunctionDeclBits.IsPure = P;
2902   if (P)
2903     if (auto *Parent = dyn_cast<CXXRecordDecl>(getDeclContext()))
2904       Parent->markedVirtualFunctionPure();
2905 }
2906 
2907 template<std::size_t Len>
2908 static bool isNamed(const NamedDecl *ND, const char (&Str)[Len]) {
2909   IdentifierInfo *II = ND->getIdentifier();
2910   return II && II->isStr(Str);
2911 }
2912 
2913 bool FunctionDecl::isMain() const {
2914   const TranslationUnitDecl *tunit =
2915     dyn_cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext());
2916   return tunit &&
2917          !tunit->getASTContext().getLangOpts().Freestanding &&
2918          isNamed(this, "main");
2919 }
2920 
2921 bool FunctionDecl::isMSVCRTEntryPoint() const {
2922   const TranslationUnitDecl *TUnit =
2923       dyn_cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext());
2924   if (!TUnit)
2925     return false;
2926 
2927   // Even though we aren't really targeting MSVCRT if we are freestanding,
2928   // semantic analysis for these functions remains the same.
2929 
2930   // MSVCRT entry points only exist on MSVCRT targets.
2931   if (!TUnit->getASTContext().getTargetInfo().getTriple().isOSMSVCRT())
2932     return false;
2933 
2934   // Nameless functions like constructors cannot be entry points.
2935   if (!getIdentifier())
2936     return false;
2937 
2938   return llvm::StringSwitch<bool>(getName())
2939       .Cases("main",     // an ANSI console app
2940              "wmain",    // a Unicode console App
2941              "WinMain",  // an ANSI GUI app
2942              "wWinMain", // a Unicode GUI app
2943              "DllMain",  // a DLL
2944              true)
2945       .Default(false);
2946 }
2947 
2948 bool FunctionDecl::isReservedGlobalPlacementOperator() const {
2949   assert(getDeclName().getNameKind() == DeclarationName::CXXOperatorName);
2950   assert(getDeclName().getCXXOverloadedOperator() == OO_New ||
2951          getDeclName().getCXXOverloadedOperator() == OO_Delete ||
2952          getDeclName().getCXXOverloadedOperator() == OO_Array_New ||
2953          getDeclName().getCXXOverloadedOperator() == OO_Array_Delete);
2954 
2955   if (!getDeclContext()->getRedeclContext()->isTranslationUnit())
2956     return false;
2957 
2958   const auto *proto = getType()->castAs<FunctionProtoType>();
2959   if (proto->getNumParams() != 2 || proto->isVariadic())
2960     return false;
2961 
2962   ASTContext &Context =
2963     cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext())
2964       ->getASTContext();
2965 
2966   // The result type and first argument type are constant across all
2967   // these operators.  The second argument must be exactly void*.
2968   return (proto->getParamType(1).getCanonicalType() == Context.VoidPtrTy);
2969 }
2970 
2971 bool FunctionDecl::isReplaceableGlobalAllocationFunction(bool *IsAligned) const {
2972   if (getDeclName().getNameKind() != DeclarationName::CXXOperatorName)
2973     return false;
2974   if (getDeclName().getCXXOverloadedOperator() != OO_New &&
2975       getDeclName().getCXXOverloadedOperator() != OO_Delete &&
2976       getDeclName().getCXXOverloadedOperator() != OO_Array_New &&
2977       getDeclName().getCXXOverloadedOperator() != OO_Array_Delete)
2978     return false;
2979 
2980   if (isa<CXXRecordDecl>(getDeclContext()))
2981     return false;
2982 
2983   // This can only fail for an invalid 'operator new' declaration.
2984   if (!getDeclContext()->getRedeclContext()->isTranslationUnit())
2985     return false;
2986 
2987   const auto *FPT = getType()->castAs<FunctionProtoType>();
2988   if (FPT->getNumParams() == 0 || FPT->getNumParams() > 3 || FPT->isVariadic())
2989     return false;
2990 
2991   // If this is a single-parameter function, it must be a replaceable global
2992   // allocation or deallocation function.
2993   if (FPT->getNumParams() == 1)
2994     return true;
2995 
2996   unsigned Params = 1;
2997   QualType Ty = FPT->getParamType(Params);
2998   ASTContext &Ctx = getASTContext();
2999 
3000   auto Consume = [&] {
3001     ++Params;
3002     Ty = Params < FPT->getNumParams() ? FPT->getParamType(Params) : QualType();
3003   };
3004 
3005   // In C++14, the next parameter can be a 'std::size_t' for sized delete.
3006   bool IsSizedDelete = false;
3007   if (Ctx.getLangOpts().SizedDeallocation &&
3008       (getDeclName().getCXXOverloadedOperator() == OO_Delete ||
3009        getDeclName().getCXXOverloadedOperator() == OO_Array_Delete) &&
3010       Ctx.hasSameType(Ty, Ctx.getSizeType())) {
3011     IsSizedDelete = true;
3012     Consume();
3013   }
3014 
3015   // In C++17, the next parameter can be a 'std::align_val_t' for aligned
3016   // new/delete.
3017   if (Ctx.getLangOpts().AlignedAllocation && !Ty.isNull() && Ty->isAlignValT()) {
3018     if (IsAligned)
3019       *IsAligned = true;
3020     Consume();
3021   }
3022 
3023   // Finally, if this is not a sized delete, the final parameter can
3024   // be a 'const std::nothrow_t&'.
3025   if (!IsSizedDelete && !Ty.isNull() && Ty->isReferenceType()) {
3026     Ty = Ty->getPointeeType();
3027     if (Ty.getCVRQualifiers() != Qualifiers::Const)
3028       return false;
3029     if (Ty->isNothrowT())
3030       Consume();
3031   }
3032 
3033   return Params == FPT->getNumParams();
3034 }
3035 
3036 bool FunctionDecl::isDestroyingOperatorDelete() const {
3037   // C++ P0722:
3038   //   Within a class C, a single object deallocation function with signature
3039   //     (T, std::destroying_delete_t, <more params>)
3040   //   is a destroying operator delete.
3041   if (!isa<CXXMethodDecl>(this) || getOverloadedOperator() != OO_Delete ||
3042       getNumParams() < 2)
3043     return false;
3044 
3045   auto *RD = getParamDecl(1)->getType()->getAsCXXRecordDecl();
3046   return RD && RD->isInStdNamespace() && RD->getIdentifier() &&
3047          RD->getIdentifier()->isStr("destroying_delete_t");
3048 }
3049 
3050 LanguageLinkage FunctionDecl::getLanguageLinkage() const {
3051   return getDeclLanguageLinkage(*this);
3052 }
3053 
3054 bool FunctionDecl::isExternC() const {
3055   return isDeclExternC(*this);
3056 }
3057 
3058 bool FunctionDecl::isInExternCContext() const {
3059   if (hasAttr<OpenCLKernelAttr>())
3060     return true;
3061   return getLexicalDeclContext()->isExternCContext();
3062 }
3063 
3064 bool FunctionDecl::isInExternCXXContext() const {
3065   return getLexicalDeclContext()->isExternCXXContext();
3066 }
3067 
3068 bool FunctionDecl::isGlobal() const {
3069   if (const auto *Method = dyn_cast<CXXMethodDecl>(this))
3070     return Method->isStatic();
3071 
3072   if (getCanonicalDecl()->getStorageClass() == SC_Static)
3073     return false;
3074 
3075   for (const DeclContext *DC = getDeclContext();
3076        DC->isNamespace();
3077        DC = DC->getParent()) {
3078     if (const auto *Namespace = cast<NamespaceDecl>(DC)) {
3079       if (!Namespace->getDeclName())
3080         return false;
3081       break;
3082     }
3083   }
3084 
3085   return true;
3086 }
3087 
3088 bool FunctionDecl::isNoReturn() const {
3089   if (hasAttr<NoReturnAttr>() || hasAttr<CXX11NoReturnAttr>() ||
3090       hasAttr<C11NoReturnAttr>())
3091     return true;
3092 
3093   if (auto *FnTy = getType()->getAs<FunctionType>())
3094     return FnTy->getNoReturnAttr();
3095 
3096   return false;
3097 }
3098 
3099 
3100 MultiVersionKind FunctionDecl::getMultiVersionKind() const {
3101   if (hasAttr<TargetAttr>())
3102     return MultiVersionKind::Target;
3103   if (hasAttr<CPUDispatchAttr>())
3104     return MultiVersionKind::CPUDispatch;
3105   if (hasAttr<CPUSpecificAttr>())
3106     return MultiVersionKind::CPUSpecific;
3107   return MultiVersionKind::None;
3108 }
3109 
3110 bool FunctionDecl::isCPUDispatchMultiVersion() const {
3111   return isMultiVersion() && hasAttr<CPUDispatchAttr>();
3112 }
3113 
3114 bool FunctionDecl::isCPUSpecificMultiVersion() const {
3115   return isMultiVersion() && hasAttr<CPUSpecificAttr>();
3116 }
3117 
3118 bool FunctionDecl::isTargetMultiVersion() const {
3119   return isMultiVersion() && hasAttr<TargetAttr>();
3120 }
3121 
3122 void
3123 FunctionDecl::setPreviousDeclaration(FunctionDecl *PrevDecl) {
3124   redeclarable_base::setPreviousDecl(PrevDecl);
3125 
3126   if (FunctionTemplateDecl *FunTmpl = getDescribedFunctionTemplate()) {
3127     FunctionTemplateDecl *PrevFunTmpl
3128       = PrevDecl? PrevDecl->getDescribedFunctionTemplate() : nullptr;
3129     assert((!PrevDecl || PrevFunTmpl) && "Function/function template mismatch");
3130     FunTmpl->setPreviousDecl(PrevFunTmpl);
3131   }
3132 
3133   if (PrevDecl && PrevDecl->isInlined())
3134     setImplicitlyInline(true);
3135 }
3136 
3137 FunctionDecl *FunctionDecl::getCanonicalDecl() { return getFirstDecl(); }
3138 
3139 /// Returns a value indicating whether this function corresponds to a builtin
3140 /// function.
3141 ///
3142 /// The function corresponds to a built-in function if it is declared at
3143 /// translation scope or within an extern "C" block and its name matches with
3144 /// the name of a builtin. The returned value will be 0 for functions that do
3145 /// not correspond to a builtin, a value of type \c Builtin::ID if in the
3146 /// target-independent range \c [1,Builtin::First), or a target-specific builtin
3147 /// value.
3148 ///
3149 /// \param ConsiderWrapperFunctions If true, we should consider wrapper
3150 /// functions as their wrapped builtins. This shouldn't be done in general, but
3151 /// it's useful in Sema to diagnose calls to wrappers based on their semantics.
3152 unsigned FunctionDecl::getBuiltinID(bool ConsiderWrapperFunctions) const {
3153   unsigned BuiltinID;
3154 
3155   if (const auto *AMAA = getAttr<ArmMveAliasAttr>()) {
3156     BuiltinID = AMAA->getBuiltinName()->getBuiltinID();
3157   } else {
3158     if (!getIdentifier())
3159       return 0;
3160 
3161     BuiltinID = getIdentifier()->getBuiltinID();
3162   }
3163 
3164   if (!BuiltinID)
3165     return 0;
3166 
3167   ASTContext &Context = getASTContext();
3168   if (Context.getLangOpts().CPlusPlus) {
3169     const auto *LinkageDecl =
3170         dyn_cast<LinkageSpecDecl>(getFirstDecl()->getDeclContext());
3171     // In C++, the first declaration of a builtin is always inside an implicit
3172     // extern "C".
3173     // FIXME: A recognised library function may not be directly in an extern "C"
3174     // declaration, for instance "extern "C" { namespace std { decl } }".
3175     if (!LinkageDecl) {
3176       if (BuiltinID == Builtin::BI__GetExceptionInfo &&
3177           Context.getTargetInfo().getCXXABI().isMicrosoft())
3178         return Builtin::BI__GetExceptionInfo;
3179       return 0;
3180     }
3181     if (LinkageDecl->getLanguage() != LinkageSpecDecl::lang_c)
3182       return 0;
3183   }
3184 
3185   // If the function is marked "overloadable", it has a different mangled name
3186   // and is not the C library function.
3187   if (!ConsiderWrapperFunctions && hasAttr<OverloadableAttr>() &&
3188       !hasAttr<ArmMveAliasAttr>())
3189     return 0;
3190 
3191   if (!Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID))
3192     return BuiltinID;
3193 
3194   // This function has the name of a known C library
3195   // function. Determine whether it actually refers to the C library
3196   // function or whether it just has the same name.
3197 
3198   // If this is a static function, it's not a builtin.
3199   if (!ConsiderWrapperFunctions && getStorageClass() == SC_Static)
3200     return 0;
3201 
3202   // OpenCL v1.2 s6.9.f - The library functions defined in
3203   // the C99 standard headers are not available.
3204   if (Context.getLangOpts().OpenCL &&
3205       Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID))
3206     return 0;
3207 
3208   // CUDA does not have device-side standard library. printf and malloc are the
3209   // only special cases that are supported by device-side runtime.
3210   if (Context.getLangOpts().CUDA && hasAttr<CUDADeviceAttr>() &&
3211       !hasAttr<CUDAHostAttr>() &&
3212       !(BuiltinID == Builtin::BIprintf || BuiltinID == Builtin::BImalloc))
3213     return 0;
3214 
3215   return BuiltinID;
3216 }
3217 
3218 /// getNumParams - Return the number of parameters this function must have
3219 /// based on its FunctionType.  This is the length of the ParamInfo array
3220 /// after it has been created.
3221 unsigned FunctionDecl::getNumParams() const {
3222   const auto *FPT = getType()->getAs<FunctionProtoType>();
3223   return FPT ? FPT->getNumParams() : 0;
3224 }
3225 
3226 void FunctionDecl::setParams(ASTContext &C,
3227                              ArrayRef<ParmVarDecl *> NewParamInfo) {
3228   assert(!ParamInfo && "Already has param info!");
3229   assert(NewParamInfo.size() == getNumParams() && "Parameter count mismatch!");
3230 
3231   // Zero params -> null pointer.
3232   if (!NewParamInfo.empty()) {
3233     ParamInfo = new (C) ParmVarDecl*[NewParamInfo.size()];
3234     std::copy(NewParamInfo.begin(), NewParamInfo.end(), ParamInfo);
3235   }
3236 }
3237 
3238 /// getMinRequiredArguments - Returns the minimum number of arguments
3239 /// needed to call this function. This may be fewer than the number of
3240 /// function parameters, if some of the parameters have default
3241 /// arguments (in C++) or are parameter packs (C++11).
3242 unsigned FunctionDecl::getMinRequiredArguments() const {
3243   if (!getASTContext().getLangOpts().CPlusPlus)
3244     return getNumParams();
3245 
3246   unsigned NumRequiredArgs = 0;
3247   for (auto *Param : parameters())
3248     if (!Param->isParameterPack() && !Param->hasDefaultArg())
3249       ++NumRequiredArgs;
3250   return NumRequiredArgs;
3251 }
3252 
3253 /// The combination of the extern and inline keywords under MSVC forces
3254 /// the function to be required.
3255 ///
3256 /// Note: This function assumes that we will only get called when isInlined()
3257 /// would return true for this FunctionDecl.
3258 bool FunctionDecl::isMSExternInline() const {
3259   assert(isInlined() && "expected to get called on an inlined function!");
3260 
3261   const ASTContext &Context = getASTContext();
3262   if (!Context.getTargetInfo().getCXXABI().isMicrosoft() &&
3263       !hasAttr<DLLExportAttr>())
3264     return false;
3265 
3266   for (const FunctionDecl *FD = getMostRecentDecl(); FD;
3267        FD = FD->getPreviousDecl())
3268     if (!FD->isImplicit() && FD->getStorageClass() == SC_Extern)
3269       return true;
3270 
3271   return false;
3272 }
3273 
3274 static bool redeclForcesDefMSVC(const FunctionDecl *Redecl) {
3275   if (Redecl->getStorageClass() != SC_Extern)
3276     return false;
3277 
3278   for (const FunctionDecl *FD = Redecl->getPreviousDecl(); FD;
3279        FD = FD->getPreviousDecl())
3280     if (!FD->isImplicit() && FD->getStorageClass() == SC_Extern)
3281       return false;
3282 
3283   return true;
3284 }
3285 
3286 static bool RedeclForcesDefC99(const FunctionDecl *Redecl) {
3287   // Only consider file-scope declarations in this test.
3288   if (!Redecl->getLexicalDeclContext()->isTranslationUnit())
3289     return false;
3290 
3291   // Only consider explicit declarations; the presence of a builtin for a
3292   // libcall shouldn't affect whether a definition is externally visible.
3293   if (Redecl->isImplicit())
3294     return false;
3295 
3296   if (!Redecl->isInlineSpecified() || Redecl->getStorageClass() == SC_Extern)
3297     return true; // Not an inline definition
3298 
3299   return false;
3300 }
3301 
3302 /// For a function declaration in C or C++, determine whether this
3303 /// declaration causes the definition to be externally visible.
3304 ///
3305 /// For instance, this determines if adding the current declaration to the set
3306 /// of redeclarations of the given functions causes
3307 /// isInlineDefinitionExternallyVisible to change from false to true.
3308 bool FunctionDecl::doesDeclarationForceExternallyVisibleDefinition() const {
3309   assert(!doesThisDeclarationHaveABody() &&
3310          "Must have a declaration without a body.");
3311 
3312   ASTContext &Context = getASTContext();
3313 
3314   if (Context.getLangOpts().MSVCCompat) {
3315     const FunctionDecl *Definition;
3316     if (hasBody(Definition) && Definition->isInlined() &&
3317         redeclForcesDefMSVC(this))
3318       return true;
3319   }
3320 
3321   if (Context.getLangOpts().CPlusPlus)
3322     return false;
3323 
3324   if (Context.getLangOpts().GNUInline || hasAttr<GNUInlineAttr>()) {
3325     // With GNU inlining, a declaration with 'inline' but not 'extern', forces
3326     // an externally visible definition.
3327     //
3328     // FIXME: What happens if gnu_inline gets added on after the first
3329     // declaration?
3330     if (!isInlineSpecified() || getStorageClass() == SC_Extern)
3331       return false;
3332 
3333     const FunctionDecl *Prev = this;
3334     bool FoundBody = false;
3335     while ((Prev = Prev->getPreviousDecl())) {
3336       FoundBody |= Prev->doesThisDeclarationHaveABody();
3337 
3338       if (Prev->doesThisDeclarationHaveABody()) {
3339         // If it's not the case that both 'inline' and 'extern' are
3340         // specified on the definition, then it is always externally visible.
3341         if (!Prev->isInlineSpecified() ||
3342             Prev->getStorageClass() != SC_Extern)
3343           return false;
3344       } else if (Prev->isInlineSpecified() &&
3345                  Prev->getStorageClass() != SC_Extern) {
3346         return false;
3347       }
3348     }
3349     return FoundBody;
3350   }
3351 
3352   // C99 6.7.4p6:
3353   //   [...] If all of the file scope declarations for a function in a
3354   //   translation unit include the inline function specifier without extern,
3355   //   then the definition in that translation unit is an inline definition.
3356   if (isInlineSpecified() && getStorageClass() != SC_Extern)
3357     return false;
3358   const FunctionDecl *Prev = this;
3359   bool FoundBody = false;
3360   while ((Prev = Prev->getPreviousDecl())) {
3361     FoundBody |= Prev->doesThisDeclarationHaveABody();
3362     if (RedeclForcesDefC99(Prev))
3363       return false;
3364   }
3365   return FoundBody;
3366 }
3367 
3368 FunctionTypeLoc FunctionDecl::getFunctionTypeLoc() const {
3369   const TypeSourceInfo *TSI = getTypeSourceInfo();
3370   return TSI ? TSI->getTypeLoc().IgnoreParens().getAs<FunctionTypeLoc>()
3371              : FunctionTypeLoc();
3372 }
3373 
3374 SourceRange FunctionDecl::getReturnTypeSourceRange() const {
3375   FunctionTypeLoc FTL = getFunctionTypeLoc();
3376   if (!FTL)
3377     return SourceRange();
3378 
3379   // Skip self-referential return types.
3380   const SourceManager &SM = getASTContext().getSourceManager();
3381   SourceRange RTRange = FTL.getReturnLoc().getSourceRange();
3382   SourceLocation Boundary = getNameInfo().getBeginLoc();
3383   if (RTRange.isInvalid() || Boundary.isInvalid() ||
3384       !SM.isBeforeInTranslationUnit(RTRange.getEnd(), Boundary))
3385     return SourceRange();
3386 
3387   return RTRange;
3388 }
3389 
3390 SourceRange FunctionDecl::getParametersSourceRange() const {
3391   unsigned NP = getNumParams();
3392   SourceLocation EllipsisLoc = getEllipsisLoc();
3393 
3394   if (NP == 0 && EllipsisLoc.isInvalid())
3395     return SourceRange();
3396 
3397   SourceLocation Begin =
3398       NP > 0 ? ParamInfo[0]->getSourceRange().getBegin() : EllipsisLoc;
3399   SourceLocation End = EllipsisLoc.isValid()
3400                            ? EllipsisLoc
3401                            : ParamInfo[NP - 1]->getSourceRange().getEnd();
3402 
3403   return SourceRange(Begin, End);
3404 }
3405 
3406 SourceRange FunctionDecl::getExceptionSpecSourceRange() const {
3407   FunctionTypeLoc FTL = getFunctionTypeLoc();
3408   return FTL ? FTL.getExceptionSpecRange() : SourceRange();
3409 }
3410 
3411 /// For an inline function definition in C, or for a gnu_inline function
3412 /// in C++, determine whether the definition will be externally visible.
3413 ///
3414 /// Inline function definitions are always available for inlining optimizations.
3415 /// However, depending on the language dialect, declaration specifiers, and
3416 /// attributes, the definition of an inline function may or may not be
3417 /// "externally" visible to other translation units in the program.
3418 ///
3419 /// In C99, inline definitions are not externally visible by default. However,
3420 /// if even one of the global-scope declarations is marked "extern inline", the
3421 /// inline definition becomes externally visible (C99 6.7.4p6).
3422 ///
3423 /// In GNU89 mode, or if the gnu_inline attribute is attached to the function
3424 /// definition, we use the GNU semantics for inline, which are nearly the
3425 /// opposite of C99 semantics. In particular, "inline" by itself will create
3426 /// an externally visible symbol, but "extern inline" will not create an
3427 /// externally visible symbol.
3428 bool FunctionDecl::isInlineDefinitionExternallyVisible() const {
3429   assert((doesThisDeclarationHaveABody() || willHaveBody() ||
3430           hasAttr<AliasAttr>()) &&
3431          "Must be a function definition");
3432   assert(isInlined() && "Function must be inline");
3433   ASTContext &Context = getASTContext();
3434 
3435   if (Context.getLangOpts().GNUInline || hasAttr<GNUInlineAttr>()) {
3436     // Note: If you change the logic here, please change
3437     // doesDeclarationForceExternallyVisibleDefinition as well.
3438     //
3439     // If it's not the case that both 'inline' and 'extern' are
3440     // specified on the definition, then this inline definition is
3441     // externally visible.
3442     if (Context.getLangOpts().CPlusPlus)
3443       return false;
3444     if (!(isInlineSpecified() && getStorageClass() == SC_Extern))
3445       return true;
3446 
3447     // If any declaration is 'inline' but not 'extern', then this definition
3448     // is externally visible.
3449     for (auto Redecl : redecls()) {
3450       if (Redecl->isInlineSpecified() &&
3451           Redecl->getStorageClass() != SC_Extern)
3452         return true;
3453     }
3454 
3455     return false;
3456   }
3457 
3458   // The rest of this function is C-only.
3459   assert(!Context.getLangOpts().CPlusPlus &&
3460          "should not use C inline rules in C++");
3461 
3462   // C99 6.7.4p6:
3463   //   [...] If all of the file scope declarations for a function in a
3464   //   translation unit include the inline function specifier without extern,
3465   //   then the definition in that translation unit is an inline definition.
3466   for (auto Redecl : redecls()) {
3467     if (RedeclForcesDefC99(Redecl))
3468       return true;
3469   }
3470 
3471   // C99 6.7.4p6:
3472   //   An inline definition does not provide an external definition for the
3473   //   function, and does not forbid an external definition in another
3474   //   translation unit.
3475   return false;
3476 }
3477 
3478 /// getOverloadedOperator - Which C++ overloaded operator this
3479 /// function represents, if any.
3480 OverloadedOperatorKind FunctionDecl::getOverloadedOperator() const {
3481   if (getDeclName().getNameKind() == DeclarationName::CXXOperatorName)
3482     return getDeclName().getCXXOverloadedOperator();
3483   else
3484     return OO_None;
3485 }
3486 
3487 /// getLiteralIdentifier - The literal suffix identifier this function
3488 /// represents, if any.
3489 const IdentifierInfo *FunctionDecl::getLiteralIdentifier() const {
3490   if (getDeclName().getNameKind() == DeclarationName::CXXLiteralOperatorName)
3491     return getDeclName().getCXXLiteralIdentifier();
3492   else
3493     return nullptr;
3494 }
3495 
3496 FunctionDecl::TemplatedKind FunctionDecl::getTemplatedKind() const {
3497   if (TemplateOrSpecialization.isNull())
3498     return TK_NonTemplate;
3499   if (TemplateOrSpecialization.is<FunctionTemplateDecl *>())
3500     return TK_FunctionTemplate;
3501   if (TemplateOrSpecialization.is<MemberSpecializationInfo *>())
3502     return TK_MemberSpecialization;
3503   if (TemplateOrSpecialization.is<FunctionTemplateSpecializationInfo *>())
3504     return TK_FunctionTemplateSpecialization;
3505   if (TemplateOrSpecialization.is
3506                                <DependentFunctionTemplateSpecializationInfo*>())
3507     return TK_DependentFunctionTemplateSpecialization;
3508 
3509   llvm_unreachable("Did we miss a TemplateOrSpecialization type?");
3510 }
3511 
3512 FunctionDecl *FunctionDecl::getInstantiatedFromMemberFunction() const {
3513   if (MemberSpecializationInfo *Info = getMemberSpecializationInfo())
3514     return cast<FunctionDecl>(Info->getInstantiatedFrom());
3515 
3516   return nullptr;
3517 }
3518 
3519 MemberSpecializationInfo *FunctionDecl::getMemberSpecializationInfo() const {
3520   if (auto *MSI =
3521           TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo *>())
3522     return MSI;
3523   if (auto *FTSI = TemplateOrSpecialization
3524                        .dyn_cast<FunctionTemplateSpecializationInfo *>())
3525     return FTSI->getMemberSpecializationInfo();
3526   return nullptr;
3527 }
3528 
3529 void
3530 FunctionDecl::setInstantiationOfMemberFunction(ASTContext &C,
3531                                                FunctionDecl *FD,
3532                                                TemplateSpecializationKind TSK) {
3533   assert(TemplateOrSpecialization.isNull() &&
3534          "Member function is already a specialization");
3535   MemberSpecializationInfo *Info
3536     = new (C) MemberSpecializationInfo(FD, TSK);
3537   TemplateOrSpecialization = Info;
3538 }
3539 
3540 FunctionTemplateDecl *FunctionDecl::getDescribedFunctionTemplate() const {
3541   return TemplateOrSpecialization.dyn_cast<FunctionTemplateDecl *>();
3542 }
3543 
3544 void FunctionDecl::setDescribedFunctionTemplate(FunctionTemplateDecl *Template) {
3545   assert(TemplateOrSpecialization.isNull() &&
3546          "Member function is already a specialization");
3547   TemplateOrSpecialization = Template;
3548 }
3549 
3550 bool FunctionDecl::isImplicitlyInstantiable() const {
3551   // If the function is invalid, it can't be implicitly instantiated.
3552   if (isInvalidDecl())
3553     return false;
3554 
3555   switch (getTemplateSpecializationKindForInstantiation()) {
3556   case TSK_Undeclared:
3557   case TSK_ExplicitInstantiationDefinition:
3558   case TSK_ExplicitSpecialization:
3559     return false;
3560 
3561   case TSK_ImplicitInstantiation:
3562     return true;
3563 
3564   case TSK_ExplicitInstantiationDeclaration:
3565     // Handled below.
3566     break;
3567   }
3568 
3569   // Find the actual template from which we will instantiate.
3570   const FunctionDecl *PatternDecl = getTemplateInstantiationPattern();
3571   bool HasPattern = false;
3572   if (PatternDecl)
3573     HasPattern = PatternDecl->hasBody(PatternDecl);
3574 
3575   // C++0x [temp.explicit]p9:
3576   //   Except for inline functions, other explicit instantiation declarations
3577   //   have the effect of suppressing the implicit instantiation of the entity
3578   //   to which they refer.
3579   if (!HasPattern || !PatternDecl)
3580     return true;
3581 
3582   return PatternDecl->isInlined();
3583 }
3584 
3585 bool FunctionDecl::isTemplateInstantiation() const {
3586   // FIXME: Remove this, it's not clear what it means. (Which template
3587   // specialization kind?)
3588   return clang::isTemplateInstantiation(getTemplateSpecializationKind());
3589 }
3590 
3591 FunctionDecl *FunctionDecl::getTemplateInstantiationPattern() const {
3592   // If this is a generic lambda call operator specialization, its
3593   // instantiation pattern is always its primary template's pattern
3594   // even if its primary template was instantiated from another
3595   // member template (which happens with nested generic lambdas).
3596   // Since a lambda's call operator's body is transformed eagerly,
3597   // we don't have to go hunting for a prototype definition template
3598   // (i.e. instantiated-from-member-template) to use as an instantiation
3599   // pattern.
3600 
3601   if (isGenericLambdaCallOperatorSpecialization(
3602           dyn_cast<CXXMethodDecl>(this))) {
3603     assert(getPrimaryTemplate() && "not a generic lambda call operator?");
3604     return getDefinitionOrSelf(getPrimaryTemplate()->getTemplatedDecl());
3605   }
3606 
3607   if (MemberSpecializationInfo *Info = getMemberSpecializationInfo()) {
3608     if (!clang::isTemplateInstantiation(Info->getTemplateSpecializationKind()))
3609       return nullptr;
3610     return getDefinitionOrSelf(cast<FunctionDecl>(Info->getInstantiatedFrom()));
3611   }
3612 
3613   if (!clang::isTemplateInstantiation(getTemplateSpecializationKind()))
3614     return nullptr;
3615 
3616   if (FunctionTemplateDecl *Primary = getPrimaryTemplate()) {
3617     // If we hit a point where the user provided a specialization of this
3618     // template, we're done looking.
3619     while (!Primary->isMemberSpecialization()) {
3620       auto *NewPrimary = Primary->getInstantiatedFromMemberTemplate();
3621       if (!NewPrimary)
3622         break;
3623       Primary = NewPrimary;
3624     }
3625 
3626     return getDefinitionOrSelf(Primary->getTemplatedDecl());
3627   }
3628 
3629   return nullptr;
3630 }
3631 
3632 FunctionTemplateDecl *FunctionDecl::getPrimaryTemplate() const {
3633   if (FunctionTemplateSpecializationInfo *Info
3634         = TemplateOrSpecialization
3635             .dyn_cast<FunctionTemplateSpecializationInfo*>()) {
3636     return Info->getTemplate();
3637   }
3638   return nullptr;
3639 }
3640 
3641 FunctionTemplateSpecializationInfo *
3642 FunctionDecl::getTemplateSpecializationInfo() const {
3643   return TemplateOrSpecialization
3644       .dyn_cast<FunctionTemplateSpecializationInfo *>();
3645 }
3646 
3647 const TemplateArgumentList *
3648 FunctionDecl::getTemplateSpecializationArgs() const {
3649   if (FunctionTemplateSpecializationInfo *Info
3650         = TemplateOrSpecialization
3651             .dyn_cast<FunctionTemplateSpecializationInfo*>()) {
3652     return Info->TemplateArguments;
3653   }
3654   return nullptr;
3655 }
3656 
3657 const ASTTemplateArgumentListInfo *
3658 FunctionDecl::getTemplateSpecializationArgsAsWritten() const {
3659   if (FunctionTemplateSpecializationInfo *Info
3660         = TemplateOrSpecialization
3661             .dyn_cast<FunctionTemplateSpecializationInfo*>()) {
3662     return Info->TemplateArgumentsAsWritten;
3663   }
3664   return nullptr;
3665 }
3666 
3667 void
3668 FunctionDecl::setFunctionTemplateSpecialization(ASTContext &C,
3669                                                 FunctionTemplateDecl *Template,
3670                                      const TemplateArgumentList *TemplateArgs,
3671                                                 void *InsertPos,
3672                                                 TemplateSpecializationKind TSK,
3673                         const TemplateArgumentListInfo *TemplateArgsAsWritten,
3674                                           SourceLocation PointOfInstantiation) {
3675   assert((TemplateOrSpecialization.isNull() ||
3676           TemplateOrSpecialization.is<MemberSpecializationInfo *>()) &&
3677          "Member function is already a specialization");
3678   assert(TSK != TSK_Undeclared &&
3679          "Must specify the type of function template specialization");
3680   assert((TemplateOrSpecialization.isNull() ||
3681           TSK == TSK_ExplicitSpecialization) &&
3682          "Member specialization must be an explicit specialization");
3683   FunctionTemplateSpecializationInfo *Info =
3684       FunctionTemplateSpecializationInfo::Create(
3685           C, this, Template, TSK, TemplateArgs, TemplateArgsAsWritten,
3686           PointOfInstantiation,
3687           TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo *>());
3688   TemplateOrSpecialization = Info;
3689   Template->addSpecialization(Info, InsertPos);
3690 }
3691 
3692 void
3693 FunctionDecl::setDependentTemplateSpecialization(ASTContext &Context,
3694                                     const UnresolvedSetImpl &Templates,
3695                              const TemplateArgumentListInfo &TemplateArgs) {
3696   assert(TemplateOrSpecialization.isNull());
3697   DependentFunctionTemplateSpecializationInfo *Info =
3698       DependentFunctionTemplateSpecializationInfo::Create(Context, Templates,
3699                                                           TemplateArgs);
3700   TemplateOrSpecialization = Info;
3701 }
3702 
3703 DependentFunctionTemplateSpecializationInfo *
3704 FunctionDecl::getDependentSpecializationInfo() const {
3705   return TemplateOrSpecialization
3706       .dyn_cast<DependentFunctionTemplateSpecializationInfo *>();
3707 }
3708 
3709 DependentFunctionTemplateSpecializationInfo *
3710 DependentFunctionTemplateSpecializationInfo::Create(
3711     ASTContext &Context, const UnresolvedSetImpl &Ts,
3712     const TemplateArgumentListInfo &TArgs) {
3713   void *Buffer = Context.Allocate(
3714       totalSizeToAlloc<TemplateArgumentLoc, FunctionTemplateDecl *>(
3715           TArgs.size(), Ts.size()));
3716   return new (Buffer) DependentFunctionTemplateSpecializationInfo(Ts, TArgs);
3717 }
3718 
3719 DependentFunctionTemplateSpecializationInfo::
3720 DependentFunctionTemplateSpecializationInfo(const UnresolvedSetImpl &Ts,
3721                                       const TemplateArgumentListInfo &TArgs)
3722   : AngleLocs(TArgs.getLAngleLoc(), TArgs.getRAngleLoc()) {
3723   NumTemplates = Ts.size();
3724   NumArgs = TArgs.size();
3725 
3726   FunctionTemplateDecl **TsArray = getTrailingObjects<FunctionTemplateDecl *>();
3727   for (unsigned I = 0, E = Ts.size(); I != E; ++I)
3728     TsArray[I] = cast<FunctionTemplateDecl>(Ts[I]->getUnderlyingDecl());
3729 
3730   TemplateArgumentLoc *ArgsArray = getTrailingObjects<TemplateArgumentLoc>();
3731   for (unsigned I = 0, E = TArgs.size(); I != E; ++I)
3732     new (&ArgsArray[I]) TemplateArgumentLoc(TArgs[I]);
3733 }
3734 
3735 TemplateSpecializationKind FunctionDecl::getTemplateSpecializationKind() const {
3736   // For a function template specialization, query the specialization
3737   // information object.
3738   if (FunctionTemplateSpecializationInfo *FTSInfo =
3739           TemplateOrSpecialization
3740               .dyn_cast<FunctionTemplateSpecializationInfo *>())
3741     return FTSInfo->getTemplateSpecializationKind();
3742 
3743   if (MemberSpecializationInfo *MSInfo =
3744           TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo *>())
3745     return MSInfo->getTemplateSpecializationKind();
3746 
3747   return TSK_Undeclared;
3748 }
3749 
3750 TemplateSpecializationKind
3751 FunctionDecl::getTemplateSpecializationKindForInstantiation() const {
3752   // This is the same as getTemplateSpecializationKind(), except that for a
3753   // function that is both a function template specialization and a member
3754   // specialization, we prefer the member specialization information. Eg:
3755   //
3756   // template<typename T> struct A {
3757   //   template<typename U> void f() {}
3758   //   template<> void f<int>() {}
3759   // };
3760   //
3761   // For A<int>::f<int>():
3762   // * getTemplateSpecializationKind() will return TSK_ExplicitSpecialization
3763   // * getTemplateSpecializationKindForInstantiation() will return
3764   //       TSK_ImplicitInstantiation
3765   //
3766   // This reflects the facts that A<int>::f<int> is an explicit specialization
3767   // of A<int>::f, and that A<int>::f<int> should be implicitly instantiated
3768   // from A::f<int> if a definition is needed.
3769   if (FunctionTemplateSpecializationInfo *FTSInfo =
3770           TemplateOrSpecialization
3771               .dyn_cast<FunctionTemplateSpecializationInfo *>()) {
3772     if (auto *MSInfo = FTSInfo->getMemberSpecializationInfo())
3773       return MSInfo->getTemplateSpecializationKind();
3774     return FTSInfo->getTemplateSpecializationKind();
3775   }
3776 
3777   if (MemberSpecializationInfo *MSInfo =
3778           TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo *>())
3779     return MSInfo->getTemplateSpecializationKind();
3780 
3781   return TSK_Undeclared;
3782 }
3783 
3784 void
3785 FunctionDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK,
3786                                           SourceLocation PointOfInstantiation) {
3787   if (FunctionTemplateSpecializationInfo *FTSInfo
3788         = TemplateOrSpecialization.dyn_cast<
3789                                     FunctionTemplateSpecializationInfo*>()) {
3790     FTSInfo->setTemplateSpecializationKind(TSK);
3791     if (TSK != TSK_ExplicitSpecialization &&
3792         PointOfInstantiation.isValid() &&
3793         FTSInfo->getPointOfInstantiation().isInvalid()) {
3794       FTSInfo->setPointOfInstantiation(PointOfInstantiation);
3795       if (ASTMutationListener *L = getASTContext().getASTMutationListener())
3796         L->InstantiationRequested(this);
3797     }
3798   } else if (MemberSpecializationInfo *MSInfo
3799              = TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo*>()) {
3800     MSInfo->setTemplateSpecializationKind(TSK);
3801     if (TSK != TSK_ExplicitSpecialization &&
3802         PointOfInstantiation.isValid() &&
3803         MSInfo->getPointOfInstantiation().isInvalid()) {
3804       MSInfo->setPointOfInstantiation(PointOfInstantiation);
3805       if (ASTMutationListener *L = getASTContext().getASTMutationListener())
3806         L->InstantiationRequested(this);
3807     }
3808   } else
3809     llvm_unreachable("Function cannot have a template specialization kind");
3810 }
3811 
3812 SourceLocation FunctionDecl::getPointOfInstantiation() const {
3813   if (FunctionTemplateSpecializationInfo *FTSInfo
3814         = TemplateOrSpecialization.dyn_cast<
3815                                         FunctionTemplateSpecializationInfo*>())
3816     return FTSInfo->getPointOfInstantiation();
3817   else if (MemberSpecializationInfo *MSInfo
3818              = TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo*>())
3819     return MSInfo->getPointOfInstantiation();
3820 
3821   return SourceLocation();
3822 }
3823 
3824 bool FunctionDecl::isOutOfLine() const {
3825   if (Decl::isOutOfLine())
3826     return true;
3827 
3828   // If this function was instantiated from a member function of a
3829   // class template, check whether that member function was defined out-of-line.
3830   if (FunctionDecl *FD = getInstantiatedFromMemberFunction()) {
3831     const FunctionDecl *Definition;
3832     if (FD->hasBody(Definition))
3833       return Definition->isOutOfLine();
3834   }
3835 
3836   // If this function was instantiated from a function template,
3837   // check whether that function template was defined out-of-line.
3838   if (FunctionTemplateDecl *FunTmpl = getPrimaryTemplate()) {
3839     const FunctionDecl *Definition;
3840     if (FunTmpl->getTemplatedDecl()->hasBody(Definition))
3841       return Definition->isOutOfLine();
3842   }
3843 
3844   return false;
3845 }
3846 
3847 SourceRange FunctionDecl::getSourceRange() const {
3848   return SourceRange(getOuterLocStart(), EndRangeLoc);
3849 }
3850 
3851 unsigned FunctionDecl::getMemoryFunctionKind() const {
3852   IdentifierInfo *FnInfo = getIdentifier();
3853 
3854   if (!FnInfo)
3855     return 0;
3856 
3857   // Builtin handling.
3858   switch (getBuiltinID()) {
3859   case Builtin::BI__builtin_memset:
3860   case Builtin::BI__builtin___memset_chk:
3861   case Builtin::BImemset:
3862     return Builtin::BImemset;
3863 
3864   case Builtin::BI__builtin_memcpy:
3865   case Builtin::BI__builtin___memcpy_chk:
3866   case Builtin::BImemcpy:
3867     return Builtin::BImemcpy;
3868 
3869   case Builtin::BI__builtin_memmove:
3870   case Builtin::BI__builtin___memmove_chk:
3871   case Builtin::BImemmove:
3872     return Builtin::BImemmove;
3873 
3874   case Builtin::BIstrlcpy:
3875   case Builtin::BI__builtin___strlcpy_chk:
3876     return Builtin::BIstrlcpy;
3877 
3878   case Builtin::BIstrlcat:
3879   case Builtin::BI__builtin___strlcat_chk:
3880     return Builtin::BIstrlcat;
3881 
3882   case Builtin::BI__builtin_memcmp:
3883   case Builtin::BImemcmp:
3884     return Builtin::BImemcmp;
3885 
3886   case Builtin::BI__builtin_bcmp:
3887   case Builtin::BIbcmp:
3888     return Builtin::BIbcmp;
3889 
3890   case Builtin::BI__builtin_strncpy:
3891   case Builtin::BI__builtin___strncpy_chk:
3892   case Builtin::BIstrncpy:
3893     return Builtin::BIstrncpy;
3894 
3895   case Builtin::BI__builtin_strncmp:
3896   case Builtin::BIstrncmp:
3897     return Builtin::BIstrncmp;
3898 
3899   case Builtin::BI__builtin_strncasecmp:
3900   case Builtin::BIstrncasecmp:
3901     return Builtin::BIstrncasecmp;
3902 
3903   case Builtin::BI__builtin_strncat:
3904   case Builtin::BI__builtin___strncat_chk:
3905   case Builtin::BIstrncat:
3906     return Builtin::BIstrncat;
3907 
3908   case Builtin::BI__builtin_strndup:
3909   case Builtin::BIstrndup:
3910     return Builtin::BIstrndup;
3911 
3912   case Builtin::BI__builtin_strlen:
3913   case Builtin::BIstrlen:
3914     return Builtin::BIstrlen;
3915 
3916   case Builtin::BI__builtin_bzero:
3917   case Builtin::BIbzero:
3918     return Builtin::BIbzero;
3919 
3920   default:
3921     if (isExternC()) {
3922       if (FnInfo->isStr("memset"))
3923         return Builtin::BImemset;
3924       else if (FnInfo->isStr("memcpy"))
3925         return Builtin::BImemcpy;
3926       else if (FnInfo->isStr("memmove"))
3927         return Builtin::BImemmove;
3928       else if (FnInfo->isStr("memcmp"))
3929         return Builtin::BImemcmp;
3930       else if (FnInfo->isStr("bcmp"))
3931         return Builtin::BIbcmp;
3932       else if (FnInfo->isStr("strncpy"))
3933         return Builtin::BIstrncpy;
3934       else if (FnInfo->isStr("strncmp"))
3935         return Builtin::BIstrncmp;
3936       else if (FnInfo->isStr("strncasecmp"))
3937         return Builtin::BIstrncasecmp;
3938       else if (FnInfo->isStr("strncat"))
3939         return Builtin::BIstrncat;
3940       else if (FnInfo->isStr("strndup"))
3941         return Builtin::BIstrndup;
3942       else if (FnInfo->isStr("strlen"))
3943         return Builtin::BIstrlen;
3944       else if (FnInfo->isStr("bzero"))
3945         return Builtin::BIbzero;
3946     }
3947     break;
3948   }
3949   return 0;
3950 }
3951 
3952 unsigned FunctionDecl::getODRHash() const {
3953   assert(hasODRHash());
3954   return ODRHash;
3955 }
3956 
3957 unsigned FunctionDecl::getODRHash() {
3958   if (hasODRHash())
3959     return ODRHash;
3960 
3961   if (auto *FT = getInstantiatedFromMemberFunction()) {
3962     setHasODRHash(true);
3963     ODRHash = FT->getODRHash();
3964     return ODRHash;
3965   }
3966 
3967   class ODRHash Hash;
3968   Hash.AddFunctionDecl(this);
3969   setHasODRHash(true);
3970   ODRHash = Hash.CalculateHash();
3971   return ODRHash;
3972 }
3973 
3974 //===----------------------------------------------------------------------===//
3975 // FieldDecl Implementation
3976 //===----------------------------------------------------------------------===//
3977 
3978 FieldDecl *FieldDecl::Create(const ASTContext &C, DeclContext *DC,
3979                              SourceLocation StartLoc, SourceLocation IdLoc,
3980                              IdentifierInfo *Id, QualType T,
3981                              TypeSourceInfo *TInfo, Expr *BW, bool Mutable,
3982                              InClassInitStyle InitStyle) {
3983   return new (C, DC) FieldDecl(Decl::Field, DC, StartLoc, IdLoc, Id, T, TInfo,
3984                                BW, Mutable, InitStyle);
3985 }
3986 
3987 FieldDecl *FieldDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
3988   return new (C, ID) FieldDecl(Field, nullptr, SourceLocation(),
3989                                SourceLocation(), nullptr, QualType(), nullptr,
3990                                nullptr, false, ICIS_NoInit);
3991 }
3992 
3993 bool FieldDecl::isAnonymousStructOrUnion() const {
3994   if (!isImplicit() || getDeclName())
3995     return false;
3996 
3997   if (const auto *Record = getType()->getAs<RecordType>())
3998     return Record->getDecl()->isAnonymousStructOrUnion();
3999 
4000   return false;
4001 }
4002 
4003 unsigned FieldDecl::getBitWidthValue(const ASTContext &Ctx) const {
4004   assert(isBitField() && "not a bitfield");
4005   return getBitWidth()->EvaluateKnownConstInt(Ctx).getZExtValue();
4006 }
4007 
4008 bool FieldDecl::isZeroLengthBitField(const ASTContext &Ctx) const {
4009   return isUnnamedBitfield() && !getBitWidth()->isValueDependent() &&
4010          getBitWidthValue(Ctx) == 0;
4011 }
4012 
4013 bool FieldDecl::isZeroSize(const ASTContext &Ctx) const {
4014   if (isZeroLengthBitField(Ctx))
4015     return true;
4016 
4017   // C++2a [intro.object]p7:
4018   //   An object has nonzero size if it
4019   //     -- is not a potentially-overlapping subobject, or
4020   if (!hasAttr<NoUniqueAddressAttr>())
4021     return false;
4022 
4023   //     -- is not of class type, or
4024   const auto *RT = getType()->getAs<RecordType>();
4025   if (!RT)
4026     return false;
4027   const RecordDecl *RD = RT->getDecl()->getDefinition();
4028   if (!RD) {
4029     assert(isInvalidDecl() && "valid field has incomplete type");
4030     return false;
4031   }
4032 
4033   //     -- [has] virtual member functions or virtual base classes, or
4034   //     -- has subobjects of nonzero size or bit-fields of nonzero length
4035   const auto *CXXRD = cast<CXXRecordDecl>(RD);
4036   if (!CXXRD->isEmpty())
4037     return false;
4038 
4039   // Otherwise, [...] the circumstances under which the object has zero size
4040   // are implementation-defined.
4041   // FIXME: This might be Itanium ABI specific; we don't yet know what the MS
4042   // ABI will do.
4043   return true;
4044 }
4045 
4046 unsigned FieldDecl::getFieldIndex() const {
4047   const FieldDecl *Canonical = getCanonicalDecl();
4048   if (Canonical != this)
4049     return Canonical->getFieldIndex();
4050 
4051   if (CachedFieldIndex) return CachedFieldIndex - 1;
4052 
4053   unsigned Index = 0;
4054   const RecordDecl *RD = getParent()->getDefinition();
4055   assert(RD && "requested index for field of struct with no definition");
4056 
4057   for (auto *Field : RD->fields()) {
4058     Field->getCanonicalDecl()->CachedFieldIndex = Index + 1;
4059     ++Index;
4060   }
4061 
4062   assert(CachedFieldIndex && "failed to find field in parent");
4063   return CachedFieldIndex - 1;
4064 }
4065 
4066 SourceRange FieldDecl::getSourceRange() const {
4067   const Expr *FinalExpr = getInClassInitializer();
4068   if (!FinalExpr)
4069     FinalExpr = getBitWidth();
4070   if (FinalExpr)
4071     return SourceRange(getInnerLocStart(), FinalExpr->getEndLoc());
4072   return DeclaratorDecl::getSourceRange();
4073 }
4074 
4075 void FieldDecl::setCapturedVLAType(const VariableArrayType *VLAType) {
4076   assert((getParent()->isLambda() || getParent()->isCapturedRecord()) &&
4077          "capturing type in non-lambda or captured record.");
4078   assert(InitStorage.getInt() == ISK_NoInit &&
4079          InitStorage.getPointer() == nullptr &&
4080          "bit width, initializer or captured type already set");
4081   InitStorage.setPointerAndInt(const_cast<VariableArrayType *>(VLAType),
4082                                ISK_CapturedVLAType);
4083 }
4084 
4085 //===----------------------------------------------------------------------===//
4086 // TagDecl Implementation
4087 //===----------------------------------------------------------------------===//
4088 
4089 TagDecl::TagDecl(Kind DK, TagKind TK, const ASTContext &C, DeclContext *DC,
4090                  SourceLocation L, IdentifierInfo *Id, TagDecl *PrevDecl,
4091                  SourceLocation StartL)
4092     : TypeDecl(DK, DC, L, Id, StartL), DeclContext(DK), redeclarable_base(C),
4093       TypedefNameDeclOrQualifier((TypedefNameDecl *)nullptr) {
4094   assert((DK != Enum || TK == TTK_Enum) &&
4095          "EnumDecl not matched with TTK_Enum");
4096   setPreviousDecl(PrevDecl);
4097   setTagKind(TK);
4098   setCompleteDefinition(false);
4099   setBeingDefined(false);
4100   setEmbeddedInDeclarator(false);
4101   setFreeStanding(false);
4102   setCompleteDefinitionRequired(false);
4103 }
4104 
4105 SourceLocation TagDecl::getOuterLocStart() const {
4106   return getTemplateOrInnerLocStart(this);
4107 }
4108 
4109 SourceRange TagDecl::getSourceRange() const {
4110   SourceLocation RBraceLoc = BraceRange.getEnd();
4111   SourceLocation E = RBraceLoc.isValid() ? RBraceLoc : getLocation();
4112   return SourceRange(getOuterLocStart(), E);
4113 }
4114 
4115 TagDecl *TagDecl::getCanonicalDecl() { return getFirstDecl(); }
4116 
4117 void TagDecl::setTypedefNameForAnonDecl(TypedefNameDecl *TDD) {
4118   TypedefNameDeclOrQualifier = TDD;
4119   if (const Type *T = getTypeForDecl()) {
4120     (void)T;
4121     assert(T->isLinkageValid());
4122   }
4123   assert(isLinkageValid());
4124 }
4125 
4126 void TagDecl::startDefinition() {
4127   setBeingDefined(true);
4128 
4129   if (auto *D = dyn_cast<CXXRecordDecl>(this)) {
4130     struct CXXRecordDecl::DefinitionData *Data =
4131       new (getASTContext()) struct CXXRecordDecl::DefinitionData(D);
4132     for (auto I : redecls())
4133       cast<CXXRecordDecl>(I)->DefinitionData = Data;
4134   }
4135 }
4136 
4137 void TagDecl::completeDefinition() {
4138   assert((!isa<CXXRecordDecl>(this) ||
4139           cast<CXXRecordDecl>(this)->hasDefinition()) &&
4140          "definition completed but not started");
4141 
4142   setCompleteDefinition(true);
4143   setBeingDefined(false);
4144 
4145   if (ASTMutationListener *L = getASTMutationListener())
4146     L->CompletedTagDefinition(this);
4147 }
4148 
4149 TagDecl *TagDecl::getDefinition() const {
4150   if (isCompleteDefinition())
4151     return const_cast<TagDecl *>(this);
4152 
4153   // If it's possible for us to have an out-of-date definition, check now.
4154   if (mayHaveOutOfDateDef()) {
4155     if (IdentifierInfo *II = getIdentifier()) {
4156       if (II->isOutOfDate()) {
4157         updateOutOfDate(*II);
4158       }
4159     }
4160   }
4161 
4162   if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(this))
4163     return CXXRD->getDefinition();
4164 
4165   for (auto R : redecls())
4166     if (R->isCompleteDefinition())
4167       return R;
4168 
4169   return nullptr;
4170 }
4171 
4172 void TagDecl::setQualifierInfo(NestedNameSpecifierLoc QualifierLoc) {
4173   if (QualifierLoc) {
4174     // Make sure the extended qualifier info is allocated.
4175     if (!hasExtInfo())
4176       TypedefNameDeclOrQualifier = new (getASTContext()) ExtInfo;
4177     // Set qualifier info.
4178     getExtInfo()->QualifierLoc = QualifierLoc;
4179   } else {
4180     // Here Qualifier == 0, i.e., we are removing the qualifier (if any).
4181     if (hasExtInfo()) {
4182       if (getExtInfo()->NumTemplParamLists == 0) {
4183         getASTContext().Deallocate(getExtInfo());
4184         TypedefNameDeclOrQualifier = (TypedefNameDecl *)nullptr;
4185       }
4186       else
4187         getExtInfo()->QualifierLoc = QualifierLoc;
4188     }
4189   }
4190 }
4191 
4192 void TagDecl::setTemplateParameterListsInfo(
4193     ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) {
4194   assert(!TPLists.empty());
4195   // Make sure the extended decl info is allocated.
4196   if (!hasExtInfo())
4197     // Allocate external info struct.
4198     TypedefNameDeclOrQualifier = new (getASTContext()) ExtInfo;
4199   // Set the template parameter lists info.
4200   getExtInfo()->setTemplateParameterListsInfo(Context, TPLists);
4201 }
4202 
4203 //===----------------------------------------------------------------------===//
4204 // EnumDecl Implementation
4205 //===----------------------------------------------------------------------===//
4206 
4207 EnumDecl::EnumDecl(ASTContext &C, DeclContext *DC, SourceLocation StartLoc,
4208                    SourceLocation IdLoc, IdentifierInfo *Id, EnumDecl *PrevDecl,
4209                    bool Scoped, bool ScopedUsingClassTag, bool Fixed)
4210     : TagDecl(Enum, TTK_Enum, C, DC, IdLoc, Id, PrevDecl, StartLoc) {
4211   assert(Scoped || !ScopedUsingClassTag);
4212   IntegerType = nullptr;
4213   setNumPositiveBits(0);
4214   setNumNegativeBits(0);
4215   setScoped(Scoped);
4216   setScopedUsingClassTag(ScopedUsingClassTag);
4217   setFixed(Fixed);
4218   setHasODRHash(false);
4219   ODRHash = 0;
4220 }
4221 
4222 void EnumDecl::anchor() {}
4223 
4224 EnumDecl *EnumDecl::Create(ASTContext &C, DeclContext *DC,
4225                            SourceLocation StartLoc, SourceLocation IdLoc,
4226                            IdentifierInfo *Id,
4227                            EnumDecl *PrevDecl, bool IsScoped,
4228                            bool IsScopedUsingClassTag, bool IsFixed) {
4229   auto *Enum = new (C, DC) EnumDecl(C, DC, StartLoc, IdLoc, Id, PrevDecl,
4230                                     IsScoped, IsScopedUsingClassTag, IsFixed);
4231   Enum->setMayHaveOutOfDateDef(C.getLangOpts().Modules);
4232   C.getTypeDeclType(Enum, PrevDecl);
4233   return Enum;
4234 }
4235 
4236 EnumDecl *EnumDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4237   EnumDecl *Enum =
4238       new (C, ID) EnumDecl(C, nullptr, SourceLocation(), SourceLocation(),
4239                            nullptr, nullptr, false, false, false);
4240   Enum->setMayHaveOutOfDateDef(C.getLangOpts().Modules);
4241   return Enum;
4242 }
4243 
4244 SourceRange EnumDecl::getIntegerTypeRange() const {
4245   if (const TypeSourceInfo *TI = getIntegerTypeSourceInfo())
4246     return TI->getTypeLoc().getSourceRange();
4247   return SourceRange();
4248 }
4249 
4250 void EnumDecl::completeDefinition(QualType NewType,
4251                                   QualType NewPromotionType,
4252                                   unsigned NumPositiveBits,
4253                                   unsigned NumNegativeBits) {
4254   assert(!isCompleteDefinition() && "Cannot redefine enums!");
4255   if (!IntegerType)
4256     IntegerType = NewType.getTypePtr();
4257   PromotionType = NewPromotionType;
4258   setNumPositiveBits(NumPositiveBits);
4259   setNumNegativeBits(NumNegativeBits);
4260   TagDecl::completeDefinition();
4261 }
4262 
4263 bool EnumDecl::isClosed() const {
4264   if (const auto *A = getAttr<EnumExtensibilityAttr>())
4265     return A->getExtensibility() == EnumExtensibilityAttr::Closed;
4266   return true;
4267 }
4268 
4269 bool EnumDecl::isClosedFlag() const {
4270   return isClosed() && hasAttr<FlagEnumAttr>();
4271 }
4272 
4273 bool EnumDecl::isClosedNonFlag() const {
4274   return isClosed() && !hasAttr<FlagEnumAttr>();
4275 }
4276 
4277 TemplateSpecializationKind EnumDecl::getTemplateSpecializationKind() const {
4278   if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo())
4279     return MSI->getTemplateSpecializationKind();
4280 
4281   return TSK_Undeclared;
4282 }
4283 
4284 void EnumDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK,
4285                                          SourceLocation PointOfInstantiation) {
4286   MemberSpecializationInfo *MSI = getMemberSpecializationInfo();
4287   assert(MSI && "Not an instantiated member enumeration?");
4288   MSI->setTemplateSpecializationKind(TSK);
4289   if (TSK != TSK_ExplicitSpecialization &&
4290       PointOfInstantiation.isValid() &&
4291       MSI->getPointOfInstantiation().isInvalid())
4292     MSI->setPointOfInstantiation(PointOfInstantiation);
4293 }
4294 
4295 EnumDecl *EnumDecl::getTemplateInstantiationPattern() const {
4296   if (MemberSpecializationInfo *MSInfo = getMemberSpecializationInfo()) {
4297     if (isTemplateInstantiation(MSInfo->getTemplateSpecializationKind())) {
4298       EnumDecl *ED = getInstantiatedFromMemberEnum();
4299       while (auto *NewED = ED->getInstantiatedFromMemberEnum())
4300         ED = NewED;
4301       return getDefinitionOrSelf(ED);
4302     }
4303   }
4304 
4305   assert(!isTemplateInstantiation(getTemplateSpecializationKind()) &&
4306          "couldn't find pattern for enum instantiation");
4307   return nullptr;
4308 }
4309 
4310 EnumDecl *EnumDecl::getInstantiatedFromMemberEnum() const {
4311   if (SpecializationInfo)
4312     return cast<EnumDecl>(SpecializationInfo->getInstantiatedFrom());
4313 
4314   return nullptr;
4315 }
4316 
4317 void EnumDecl::setInstantiationOfMemberEnum(ASTContext &C, EnumDecl *ED,
4318                                             TemplateSpecializationKind TSK) {
4319   assert(!SpecializationInfo && "Member enum is already a specialization");
4320   SpecializationInfo = new (C) MemberSpecializationInfo(ED, TSK);
4321 }
4322 
4323 unsigned EnumDecl::getODRHash() {
4324   if (hasODRHash())
4325     return ODRHash;
4326 
4327   class ODRHash Hash;
4328   Hash.AddEnumDecl(this);
4329   setHasODRHash(true);
4330   ODRHash = Hash.CalculateHash();
4331   return ODRHash;
4332 }
4333 
4334 //===----------------------------------------------------------------------===//
4335 // RecordDecl Implementation
4336 //===----------------------------------------------------------------------===//
4337 
4338 RecordDecl::RecordDecl(Kind DK, TagKind TK, const ASTContext &C,
4339                        DeclContext *DC, SourceLocation StartLoc,
4340                        SourceLocation IdLoc, IdentifierInfo *Id,
4341                        RecordDecl *PrevDecl)
4342     : TagDecl(DK, TK, C, DC, IdLoc, Id, PrevDecl, StartLoc) {
4343   assert(classof(static_cast<Decl *>(this)) && "Invalid Kind!");
4344   setHasFlexibleArrayMember(false);
4345   setAnonymousStructOrUnion(false);
4346   setHasObjectMember(false);
4347   setHasVolatileMember(false);
4348   setHasLoadedFieldsFromExternalStorage(false);
4349   setNonTrivialToPrimitiveDefaultInitialize(false);
4350   setNonTrivialToPrimitiveCopy(false);
4351   setNonTrivialToPrimitiveDestroy(false);
4352   setHasNonTrivialToPrimitiveDefaultInitializeCUnion(false);
4353   setHasNonTrivialToPrimitiveDestructCUnion(false);
4354   setHasNonTrivialToPrimitiveCopyCUnion(false);
4355   setParamDestroyedInCallee(false);
4356   setArgPassingRestrictions(APK_CanPassInRegs);
4357 }
4358 
4359 RecordDecl *RecordDecl::Create(const ASTContext &C, TagKind TK, DeclContext *DC,
4360                                SourceLocation StartLoc, SourceLocation IdLoc,
4361                                IdentifierInfo *Id, RecordDecl* PrevDecl) {
4362   RecordDecl *R = new (C, DC) RecordDecl(Record, TK, C, DC,
4363                                          StartLoc, IdLoc, Id, PrevDecl);
4364   R->setMayHaveOutOfDateDef(C.getLangOpts().Modules);
4365 
4366   C.getTypeDeclType(R, PrevDecl);
4367   return R;
4368 }
4369 
4370 RecordDecl *RecordDecl::CreateDeserialized(const ASTContext &C, unsigned ID) {
4371   RecordDecl *R =
4372       new (C, ID) RecordDecl(Record, TTK_Struct, C, nullptr, SourceLocation(),
4373                              SourceLocation(), nullptr, nullptr);
4374   R->setMayHaveOutOfDateDef(C.getLangOpts().Modules);
4375   return R;
4376 }
4377 
4378 bool RecordDecl::isInjectedClassName() const {
4379   return isImplicit() && getDeclName() && getDeclContext()->isRecord() &&
4380     cast<RecordDecl>(getDeclContext())->getDeclName() == getDeclName();
4381 }
4382 
4383 bool RecordDecl::isLambda() const {
4384   if (auto RD = dyn_cast<CXXRecordDecl>(this))
4385     return RD->isLambda();
4386   return false;
4387 }
4388 
4389 bool RecordDecl::isCapturedRecord() const {
4390   return hasAttr<CapturedRecordAttr>();
4391 }
4392 
4393 void RecordDecl::setCapturedRecord() {
4394   addAttr(CapturedRecordAttr::CreateImplicit(getASTContext()));
4395 }
4396 
4397 RecordDecl::field_iterator RecordDecl::field_begin() const {
4398   if (hasExternalLexicalStorage() && !hasLoadedFieldsFromExternalStorage())
4399     LoadFieldsFromExternalStorage();
4400 
4401   return field_iterator(decl_iterator(FirstDecl));
4402 }
4403 
4404 /// completeDefinition - Notes that the definition of this type is now
4405 /// complete.
4406 void RecordDecl::completeDefinition() {
4407   assert(!isCompleteDefinition() && "Cannot redefine record!");
4408   TagDecl::completeDefinition();
4409 }
4410 
4411 /// isMsStruct - Get whether or not this record uses ms_struct layout.
4412 /// This which can be turned on with an attribute, pragma, or the
4413 /// -mms-bitfields command-line option.
4414 bool RecordDecl::isMsStruct(const ASTContext &C) const {
4415   return hasAttr<MSStructAttr>() || C.getLangOpts().MSBitfields == 1;
4416 }
4417 
4418 void RecordDecl::LoadFieldsFromExternalStorage() const {
4419   ExternalASTSource *Source = getASTContext().getExternalSource();
4420   assert(hasExternalLexicalStorage() && Source && "No external storage?");
4421 
4422   // Notify that we have a RecordDecl doing some initialization.
4423   ExternalASTSource::Deserializing TheFields(Source);
4424 
4425   SmallVector<Decl*, 64> Decls;
4426   setHasLoadedFieldsFromExternalStorage(true);
4427   Source->FindExternalLexicalDecls(this, [](Decl::Kind K) {
4428     return FieldDecl::classofKind(K) || IndirectFieldDecl::classofKind(K);
4429   }, Decls);
4430 
4431 #ifndef NDEBUG
4432   // Check that all decls we got were FieldDecls.
4433   for (unsigned i=0, e=Decls.size(); i != e; ++i)
4434     assert(isa<FieldDecl>(Decls[i]) || isa<IndirectFieldDecl>(Decls[i]));
4435 #endif
4436 
4437   if (Decls.empty())
4438     return;
4439 
4440   std::tie(FirstDecl, LastDecl) = BuildDeclChain(Decls,
4441                                                  /*FieldsAlreadyLoaded=*/false);
4442 }
4443 
4444 bool RecordDecl::mayInsertExtraPadding(bool EmitRemark) const {
4445   ASTContext &Context = getASTContext();
4446   const SanitizerMask EnabledAsanMask = Context.getLangOpts().Sanitize.Mask &
4447       (SanitizerKind::Address | SanitizerKind::KernelAddress);
4448   if (!EnabledAsanMask || !Context.getLangOpts().SanitizeAddressFieldPadding)
4449     return false;
4450   const auto &Blacklist = Context.getSanitizerBlacklist();
4451   const auto *CXXRD = dyn_cast<CXXRecordDecl>(this);
4452   // We may be able to relax some of these requirements.
4453   int ReasonToReject = -1;
4454   if (!CXXRD || CXXRD->isExternCContext())
4455     ReasonToReject = 0;  // is not C++.
4456   else if (CXXRD->hasAttr<PackedAttr>())
4457     ReasonToReject = 1;  // is packed.
4458   else if (CXXRD->isUnion())
4459     ReasonToReject = 2;  // is a union.
4460   else if (CXXRD->isTriviallyCopyable())
4461     ReasonToReject = 3;  // is trivially copyable.
4462   else if (CXXRD->hasTrivialDestructor())
4463     ReasonToReject = 4;  // has trivial destructor.
4464   else if (CXXRD->isStandardLayout())
4465     ReasonToReject = 5;  // is standard layout.
4466   else if (Blacklist.isBlacklistedLocation(EnabledAsanMask, getLocation(),
4467                                            "field-padding"))
4468     ReasonToReject = 6;  // is in a blacklisted file.
4469   else if (Blacklist.isBlacklistedType(EnabledAsanMask,
4470                                        getQualifiedNameAsString(),
4471                                        "field-padding"))
4472     ReasonToReject = 7;  // is blacklisted.
4473 
4474   if (EmitRemark) {
4475     if (ReasonToReject >= 0)
4476       Context.getDiagnostics().Report(
4477           getLocation(),
4478           diag::remark_sanitize_address_insert_extra_padding_rejected)
4479           << getQualifiedNameAsString() << ReasonToReject;
4480     else
4481       Context.getDiagnostics().Report(
4482           getLocation(),
4483           diag::remark_sanitize_address_insert_extra_padding_accepted)
4484           << getQualifiedNameAsString();
4485   }
4486   return ReasonToReject < 0;
4487 }
4488 
4489 const FieldDecl *RecordDecl::findFirstNamedDataMember() const {
4490   for (const auto *I : fields()) {
4491     if (I->getIdentifier())
4492       return I;
4493 
4494     if (const auto *RT = I->getType()->getAs<RecordType>())
4495       if (const FieldDecl *NamedDataMember =
4496               RT->getDecl()->findFirstNamedDataMember())
4497         return NamedDataMember;
4498   }
4499 
4500   // We didn't find a named data member.
4501   return nullptr;
4502 }
4503 
4504 //===----------------------------------------------------------------------===//
4505 // BlockDecl Implementation
4506 //===----------------------------------------------------------------------===//
4507 
4508 BlockDecl::BlockDecl(DeclContext *DC, SourceLocation CaretLoc)
4509     : Decl(Block, DC, CaretLoc), DeclContext(Block) {
4510   setIsVariadic(false);
4511   setCapturesCXXThis(false);
4512   setBlockMissingReturnType(true);
4513   setIsConversionFromLambda(false);
4514   setDoesNotEscape(false);
4515   setCanAvoidCopyToHeap(false);
4516 }
4517 
4518 void BlockDecl::setParams(ArrayRef<ParmVarDecl *> NewParamInfo) {
4519   assert(!ParamInfo && "Already has param info!");
4520 
4521   // Zero params -> null pointer.
4522   if (!NewParamInfo.empty()) {
4523     NumParams = NewParamInfo.size();
4524     ParamInfo = new (getASTContext()) ParmVarDecl*[NewParamInfo.size()];
4525     std::copy(NewParamInfo.begin(), NewParamInfo.end(), ParamInfo);
4526   }
4527 }
4528 
4529 void BlockDecl::setCaptures(ASTContext &Context, ArrayRef<Capture> Captures,
4530                             bool CapturesCXXThis) {
4531   this->setCapturesCXXThis(CapturesCXXThis);
4532   this->NumCaptures = Captures.size();
4533 
4534   if (Captures.empty()) {
4535     this->Captures = nullptr;
4536     return;
4537   }
4538 
4539   this->Captures = Captures.copy(Context).data();
4540 }
4541 
4542 bool BlockDecl::capturesVariable(const VarDecl *variable) const {
4543   for (const auto &I : captures())
4544     // Only auto vars can be captured, so no redeclaration worries.
4545     if (I.getVariable() == variable)
4546       return true;
4547 
4548   return false;
4549 }
4550 
4551 SourceRange BlockDecl::getSourceRange() const {
4552   return SourceRange(getLocation(), Body ? Body->getEndLoc() : getLocation());
4553 }
4554 
4555 //===----------------------------------------------------------------------===//
4556 // Other Decl Allocation/Deallocation Method Implementations
4557 //===----------------------------------------------------------------------===//
4558 
4559 void TranslationUnitDecl::anchor() {}
4560 
4561 TranslationUnitDecl *TranslationUnitDecl::Create(ASTContext &C) {
4562   return new (C, (DeclContext *)nullptr) TranslationUnitDecl(C);
4563 }
4564 
4565 void PragmaCommentDecl::anchor() {}
4566 
4567 PragmaCommentDecl *PragmaCommentDecl::Create(const ASTContext &C,
4568                                              TranslationUnitDecl *DC,
4569                                              SourceLocation CommentLoc,
4570                                              PragmaMSCommentKind CommentKind,
4571                                              StringRef Arg) {
4572   PragmaCommentDecl *PCD =
4573       new (C, DC, additionalSizeToAlloc<char>(Arg.size() + 1))
4574           PragmaCommentDecl(DC, CommentLoc, CommentKind);
4575   memcpy(PCD->getTrailingObjects<char>(), Arg.data(), Arg.size());
4576   PCD->getTrailingObjects<char>()[Arg.size()] = '\0';
4577   return PCD;
4578 }
4579 
4580 PragmaCommentDecl *PragmaCommentDecl::CreateDeserialized(ASTContext &C,
4581                                                          unsigned ID,
4582                                                          unsigned ArgSize) {
4583   return new (C, ID, additionalSizeToAlloc<char>(ArgSize + 1))
4584       PragmaCommentDecl(nullptr, SourceLocation(), PCK_Unknown);
4585 }
4586 
4587 void PragmaDetectMismatchDecl::anchor() {}
4588 
4589 PragmaDetectMismatchDecl *
4590 PragmaDetectMismatchDecl::Create(const ASTContext &C, TranslationUnitDecl *DC,
4591                                  SourceLocation Loc, StringRef Name,
4592                                  StringRef Value) {
4593   size_t ValueStart = Name.size() + 1;
4594   PragmaDetectMismatchDecl *PDMD =
4595       new (C, DC, additionalSizeToAlloc<char>(ValueStart + Value.size() + 1))
4596           PragmaDetectMismatchDecl(DC, Loc, ValueStart);
4597   memcpy(PDMD->getTrailingObjects<char>(), Name.data(), Name.size());
4598   PDMD->getTrailingObjects<char>()[Name.size()] = '\0';
4599   memcpy(PDMD->getTrailingObjects<char>() + ValueStart, Value.data(),
4600          Value.size());
4601   PDMD->getTrailingObjects<char>()[ValueStart + Value.size()] = '\0';
4602   return PDMD;
4603 }
4604 
4605 PragmaDetectMismatchDecl *
4606 PragmaDetectMismatchDecl::CreateDeserialized(ASTContext &C, unsigned ID,
4607                                              unsigned NameValueSize) {
4608   return new (C, ID, additionalSizeToAlloc<char>(NameValueSize + 1))
4609       PragmaDetectMismatchDecl(nullptr, SourceLocation(), 0);
4610 }
4611 
4612 void ExternCContextDecl::anchor() {}
4613 
4614 ExternCContextDecl *ExternCContextDecl::Create(const ASTContext &C,
4615                                                TranslationUnitDecl *DC) {
4616   return new (C, DC) ExternCContextDecl(DC);
4617 }
4618 
4619 void LabelDecl::anchor() {}
4620 
4621 LabelDecl *LabelDecl::Create(ASTContext &C, DeclContext *DC,
4622                              SourceLocation IdentL, IdentifierInfo *II) {
4623   return new (C, DC) LabelDecl(DC, IdentL, II, nullptr, IdentL);
4624 }
4625 
4626 LabelDecl *LabelDecl::Create(ASTContext &C, DeclContext *DC,
4627                              SourceLocation IdentL, IdentifierInfo *II,
4628                              SourceLocation GnuLabelL) {
4629   assert(GnuLabelL != IdentL && "Use this only for GNU local labels");
4630   return new (C, DC) LabelDecl(DC, IdentL, II, nullptr, GnuLabelL);
4631 }
4632 
4633 LabelDecl *LabelDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4634   return new (C, ID) LabelDecl(nullptr, SourceLocation(), nullptr, nullptr,
4635                                SourceLocation());
4636 }
4637 
4638 void LabelDecl::setMSAsmLabel(StringRef Name) {
4639 char *Buffer = new (getASTContext(), 1) char[Name.size() + 1];
4640   memcpy(Buffer, Name.data(), Name.size());
4641   Buffer[Name.size()] = '\0';
4642   MSAsmName = Buffer;
4643 }
4644 
4645 void ValueDecl::anchor() {}
4646 
4647 bool ValueDecl::isWeak() const {
4648   for (const auto *I : attrs())
4649     if (isa<WeakAttr>(I) || isa<WeakRefAttr>(I))
4650       return true;
4651 
4652   return isWeakImported();
4653 }
4654 
4655 void ImplicitParamDecl::anchor() {}
4656 
4657 ImplicitParamDecl *ImplicitParamDecl::Create(ASTContext &C, DeclContext *DC,
4658                                              SourceLocation IdLoc,
4659                                              IdentifierInfo *Id, QualType Type,
4660                                              ImplicitParamKind ParamKind) {
4661   return new (C, DC) ImplicitParamDecl(C, DC, IdLoc, Id, Type, ParamKind);
4662 }
4663 
4664 ImplicitParamDecl *ImplicitParamDecl::Create(ASTContext &C, QualType Type,
4665                                              ImplicitParamKind ParamKind) {
4666   return new (C, nullptr) ImplicitParamDecl(C, Type, ParamKind);
4667 }
4668 
4669 ImplicitParamDecl *ImplicitParamDecl::CreateDeserialized(ASTContext &C,
4670                                                          unsigned ID) {
4671   return new (C, ID) ImplicitParamDecl(C, QualType(), ImplicitParamKind::Other);
4672 }
4673 
4674 FunctionDecl *FunctionDecl::Create(ASTContext &C, DeclContext *DC,
4675                                    SourceLocation StartLoc,
4676                                    const DeclarationNameInfo &NameInfo,
4677                                    QualType T, TypeSourceInfo *TInfo,
4678                                    StorageClass SC, bool isInlineSpecified,
4679                                    bool hasWrittenPrototype,
4680                                    ConstexprSpecKind ConstexprKind) {
4681   FunctionDecl *New =
4682       new (C, DC) FunctionDecl(Function, C, DC, StartLoc, NameInfo, T, TInfo,
4683                                SC, isInlineSpecified, ConstexprKind);
4684   New->setHasWrittenPrototype(hasWrittenPrototype);
4685   return New;
4686 }
4687 
4688 FunctionDecl *FunctionDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4689   return new (C, ID) FunctionDecl(Function, C, nullptr, SourceLocation(),
4690                                   DeclarationNameInfo(), QualType(), nullptr,
4691                                   SC_None, false, CSK_unspecified);
4692 }
4693 
4694 BlockDecl *BlockDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L) {
4695   return new (C, DC) BlockDecl(DC, L);
4696 }
4697 
4698 BlockDecl *BlockDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4699   return new (C, ID) BlockDecl(nullptr, SourceLocation());
4700 }
4701 
4702 CapturedDecl::CapturedDecl(DeclContext *DC, unsigned NumParams)
4703     : Decl(Captured, DC, SourceLocation()), DeclContext(Captured),
4704       NumParams(NumParams), ContextParam(0), BodyAndNothrow(nullptr, false) {}
4705 
4706 CapturedDecl *CapturedDecl::Create(ASTContext &C, DeclContext *DC,
4707                                    unsigned NumParams) {
4708   return new (C, DC, additionalSizeToAlloc<ImplicitParamDecl *>(NumParams))
4709       CapturedDecl(DC, NumParams);
4710 }
4711 
4712 CapturedDecl *CapturedDecl::CreateDeserialized(ASTContext &C, unsigned ID,
4713                                                unsigned NumParams) {
4714   return new (C, ID, additionalSizeToAlloc<ImplicitParamDecl *>(NumParams))
4715       CapturedDecl(nullptr, NumParams);
4716 }
4717 
4718 Stmt *CapturedDecl::getBody() const { return BodyAndNothrow.getPointer(); }
4719 void CapturedDecl::setBody(Stmt *B) { BodyAndNothrow.setPointer(B); }
4720 
4721 bool CapturedDecl::isNothrow() const { return BodyAndNothrow.getInt(); }
4722 void CapturedDecl::setNothrow(bool Nothrow) { BodyAndNothrow.setInt(Nothrow); }
4723 
4724 EnumConstantDecl *EnumConstantDecl::Create(ASTContext &C, EnumDecl *CD,
4725                                            SourceLocation L,
4726                                            IdentifierInfo *Id, QualType T,
4727                                            Expr *E, const llvm::APSInt &V) {
4728   return new (C, CD) EnumConstantDecl(CD, L, Id, T, E, V);
4729 }
4730 
4731 EnumConstantDecl *
4732 EnumConstantDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4733   return new (C, ID) EnumConstantDecl(nullptr, SourceLocation(), nullptr,
4734                                       QualType(), nullptr, llvm::APSInt());
4735 }
4736 
4737 void IndirectFieldDecl::anchor() {}
4738 
4739 IndirectFieldDecl::IndirectFieldDecl(ASTContext &C, DeclContext *DC,
4740                                      SourceLocation L, DeclarationName N,
4741                                      QualType T,
4742                                      MutableArrayRef<NamedDecl *> CH)
4743     : ValueDecl(IndirectField, DC, L, N, T), Chaining(CH.data()),
4744       ChainingSize(CH.size()) {
4745   // In C++, indirect field declarations conflict with tag declarations in the
4746   // same scope, so add them to IDNS_Tag so that tag redeclaration finds them.
4747   if (C.getLangOpts().CPlusPlus)
4748     IdentifierNamespace |= IDNS_Tag;
4749 }
4750 
4751 IndirectFieldDecl *
4752 IndirectFieldDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L,
4753                           IdentifierInfo *Id, QualType T,
4754                           llvm::MutableArrayRef<NamedDecl *> CH) {
4755   return new (C, DC) IndirectFieldDecl(C, DC, L, Id, T, CH);
4756 }
4757 
4758 IndirectFieldDecl *IndirectFieldDecl::CreateDeserialized(ASTContext &C,
4759                                                          unsigned ID) {
4760   return new (C, ID) IndirectFieldDecl(C, nullptr, SourceLocation(),
4761                                        DeclarationName(), QualType(), None);
4762 }
4763 
4764 SourceRange EnumConstantDecl::getSourceRange() const {
4765   SourceLocation End = getLocation();
4766   if (Init)
4767     End = Init->getEndLoc();
4768   return SourceRange(getLocation(), End);
4769 }
4770 
4771 void TypeDecl::anchor() {}
4772 
4773 TypedefDecl *TypedefDecl::Create(ASTContext &C, DeclContext *DC,
4774                                  SourceLocation StartLoc, SourceLocation IdLoc,
4775                                  IdentifierInfo *Id, TypeSourceInfo *TInfo) {
4776   return new (C, DC) TypedefDecl(C, DC, StartLoc, IdLoc, Id, TInfo);
4777 }
4778 
4779 void TypedefNameDecl::anchor() {}
4780 
4781 TagDecl *TypedefNameDecl::getAnonDeclWithTypedefName(bool AnyRedecl) const {
4782   if (auto *TT = getTypeSourceInfo()->getType()->getAs<TagType>()) {
4783     auto *OwningTypedef = TT->getDecl()->getTypedefNameForAnonDecl();
4784     auto *ThisTypedef = this;
4785     if (AnyRedecl && OwningTypedef) {
4786       OwningTypedef = OwningTypedef->getCanonicalDecl();
4787       ThisTypedef = ThisTypedef->getCanonicalDecl();
4788     }
4789     if (OwningTypedef == ThisTypedef)
4790       return TT->getDecl();
4791   }
4792 
4793   return nullptr;
4794 }
4795 
4796 bool TypedefNameDecl::isTransparentTagSlow() const {
4797   auto determineIsTransparent = [&]() {
4798     if (auto *TT = getUnderlyingType()->getAs<TagType>()) {
4799       if (auto *TD = TT->getDecl()) {
4800         if (TD->getName() != getName())
4801           return false;
4802         SourceLocation TTLoc = getLocation();
4803         SourceLocation TDLoc = TD->getLocation();
4804         if (!TTLoc.isMacroID() || !TDLoc.isMacroID())
4805           return false;
4806         SourceManager &SM = getASTContext().getSourceManager();
4807         return SM.getSpellingLoc(TTLoc) == SM.getSpellingLoc(TDLoc);
4808       }
4809     }
4810     return false;
4811   };
4812 
4813   bool isTransparent = determineIsTransparent();
4814   MaybeModedTInfo.setInt((isTransparent << 1) | 1);
4815   return isTransparent;
4816 }
4817 
4818 TypedefDecl *TypedefDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4819   return new (C, ID) TypedefDecl(C, nullptr, SourceLocation(), SourceLocation(),
4820                                  nullptr, nullptr);
4821 }
4822 
4823 TypeAliasDecl *TypeAliasDecl::Create(ASTContext &C, DeclContext *DC,
4824                                      SourceLocation StartLoc,
4825                                      SourceLocation IdLoc, IdentifierInfo *Id,
4826                                      TypeSourceInfo *TInfo) {
4827   return new (C, DC) TypeAliasDecl(C, DC, StartLoc, IdLoc, Id, TInfo);
4828 }
4829 
4830 TypeAliasDecl *TypeAliasDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4831   return new (C, ID) TypeAliasDecl(C, nullptr, SourceLocation(),
4832                                    SourceLocation(), nullptr, nullptr);
4833 }
4834 
4835 SourceRange TypedefDecl::getSourceRange() const {
4836   SourceLocation RangeEnd = getLocation();
4837   if (TypeSourceInfo *TInfo = getTypeSourceInfo()) {
4838     if (typeIsPostfix(TInfo->getType()))
4839       RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd();
4840   }
4841   return SourceRange(getBeginLoc(), RangeEnd);
4842 }
4843 
4844 SourceRange TypeAliasDecl::getSourceRange() const {
4845   SourceLocation RangeEnd = getBeginLoc();
4846   if (TypeSourceInfo *TInfo = getTypeSourceInfo())
4847     RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd();
4848   return SourceRange(getBeginLoc(), RangeEnd);
4849 }
4850 
4851 void FileScopeAsmDecl::anchor() {}
4852 
4853 FileScopeAsmDecl *FileScopeAsmDecl::Create(ASTContext &C, DeclContext *DC,
4854                                            StringLiteral *Str,
4855                                            SourceLocation AsmLoc,
4856                                            SourceLocation RParenLoc) {
4857   return new (C, DC) FileScopeAsmDecl(DC, Str, AsmLoc, RParenLoc);
4858 }
4859 
4860 FileScopeAsmDecl *FileScopeAsmDecl::CreateDeserialized(ASTContext &C,
4861                                                        unsigned ID) {
4862   return new (C, ID) FileScopeAsmDecl(nullptr, nullptr, SourceLocation(),
4863                                       SourceLocation());
4864 }
4865 
4866 void EmptyDecl::anchor() {}
4867 
4868 EmptyDecl *EmptyDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L) {
4869   return new (C, DC) EmptyDecl(DC, L);
4870 }
4871 
4872 EmptyDecl *EmptyDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4873   return new (C, ID) EmptyDecl(nullptr, SourceLocation());
4874 }
4875 
4876 //===----------------------------------------------------------------------===//
4877 // ImportDecl Implementation
4878 //===----------------------------------------------------------------------===//
4879 
4880 /// Retrieve the number of module identifiers needed to name the given
4881 /// module.
4882 static unsigned getNumModuleIdentifiers(Module *Mod) {
4883   unsigned Result = 1;
4884   while (Mod->Parent) {
4885     Mod = Mod->Parent;
4886     ++Result;
4887   }
4888   return Result;
4889 }
4890 
4891 ImportDecl::ImportDecl(DeclContext *DC, SourceLocation StartLoc,
4892                        Module *Imported,
4893                        ArrayRef<SourceLocation> IdentifierLocs)
4894   : Decl(Import, DC, StartLoc), ImportedAndComplete(Imported, true) {
4895   assert(getNumModuleIdentifiers(Imported) == IdentifierLocs.size());
4896   auto *StoredLocs = getTrailingObjects<SourceLocation>();
4897   std::uninitialized_copy(IdentifierLocs.begin(), IdentifierLocs.end(),
4898                           StoredLocs);
4899 }
4900 
4901 ImportDecl::ImportDecl(DeclContext *DC, SourceLocation StartLoc,
4902                        Module *Imported, SourceLocation EndLoc)
4903   : Decl(Import, DC, StartLoc), ImportedAndComplete(Imported, false) {
4904   *getTrailingObjects<SourceLocation>() = EndLoc;
4905 }
4906 
4907 ImportDecl *ImportDecl::Create(ASTContext &C, DeclContext *DC,
4908                                SourceLocation StartLoc, Module *Imported,
4909                                ArrayRef<SourceLocation> IdentifierLocs) {
4910   return new (C, DC,
4911               additionalSizeToAlloc<SourceLocation>(IdentifierLocs.size()))
4912       ImportDecl(DC, StartLoc, Imported, IdentifierLocs);
4913 }
4914 
4915 ImportDecl *ImportDecl::CreateImplicit(ASTContext &C, DeclContext *DC,
4916                                        SourceLocation StartLoc,
4917                                        Module *Imported,
4918                                        SourceLocation EndLoc) {
4919   ImportDecl *Import = new (C, DC, additionalSizeToAlloc<SourceLocation>(1))
4920       ImportDecl(DC, StartLoc, Imported, EndLoc);
4921   Import->setImplicit();
4922   return Import;
4923 }
4924 
4925 ImportDecl *ImportDecl::CreateDeserialized(ASTContext &C, unsigned ID,
4926                                            unsigned NumLocations) {
4927   return new (C, ID, additionalSizeToAlloc<SourceLocation>(NumLocations))
4928       ImportDecl(EmptyShell());
4929 }
4930 
4931 ArrayRef<SourceLocation> ImportDecl::getIdentifierLocs() const {
4932   if (!ImportedAndComplete.getInt())
4933     return None;
4934 
4935   const auto *StoredLocs = getTrailingObjects<SourceLocation>();
4936   return llvm::makeArrayRef(StoredLocs,
4937                             getNumModuleIdentifiers(getImportedModule()));
4938 }
4939 
4940 SourceRange ImportDecl::getSourceRange() const {
4941   if (!ImportedAndComplete.getInt())
4942     return SourceRange(getLocation(), *getTrailingObjects<SourceLocation>());
4943 
4944   return SourceRange(getLocation(), getIdentifierLocs().back());
4945 }
4946 
4947 //===----------------------------------------------------------------------===//
4948 // ExportDecl Implementation
4949 //===----------------------------------------------------------------------===//
4950 
4951 void ExportDecl::anchor() {}
4952 
4953 ExportDecl *ExportDecl::Create(ASTContext &C, DeclContext *DC,
4954                                SourceLocation ExportLoc) {
4955   return new (C, DC) ExportDecl(DC, ExportLoc);
4956 }
4957 
4958 ExportDecl *ExportDecl::CreateDeserialized(ASTContext &C, unsigned ID) {
4959   return new (C, ID) ExportDecl(nullptr, SourceLocation());
4960 }
4961