1 //===--- ItaniumMangle.cpp - Itanium C++ Name Mangling ----------*- C++ -*-===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // Implements C++ name mangling according to the Itanium C++ ABI,
11 // which is used in GCC 3.2 and newer (and many compilers that are
12 // ABI-compatible with GCC):
13 //
14 //   http://mentorembedded.github.io/cxx-abi/abi.html#mangling
15 //
16 //===----------------------------------------------------------------------===//
17 #include "clang/AST/Mangle.h"
18 #include "clang/AST/ASTContext.h"
19 #include "clang/AST/Attr.h"
20 #include "clang/AST/Decl.h"
21 #include "clang/AST/DeclCXX.h"
22 #include "clang/AST/DeclObjC.h"
23 #include "clang/AST/DeclOpenMP.h"
24 #include "clang/AST/DeclTemplate.h"
25 #include "clang/AST/Expr.h"
26 #include "clang/AST/ExprCXX.h"
27 #include "clang/AST/ExprObjC.h"
28 #include "clang/AST/TypeLoc.h"
29 #include "clang/Basic/ABI.h"
30 #include "clang/Basic/SourceManager.h"
31 #include "clang/Basic/TargetInfo.h"
32 #include "llvm/ADT/StringExtras.h"
33 #include "llvm/Support/ErrorHandling.h"
34 #include "llvm/Support/raw_ostream.h"
35 
36 #define MANGLE_CHECKER 0
37 
38 #if MANGLE_CHECKER
39 #include <cxxabi.h>
40 #endif
41 
42 using namespace clang;
43 
44 namespace {
45 
46 /// Retrieve the declaration context that should be used when mangling the given
47 /// declaration.
48 static const DeclContext *getEffectiveDeclContext(const Decl *D) {
49   // The ABI assumes that lambda closure types that occur within
50   // default arguments live in the context of the function. However, due to
51   // the way in which Clang parses and creates function declarations, this is
52   // not the case: the lambda closure type ends up living in the context
53   // where the function itself resides, because the function declaration itself
54   // had not yet been created. Fix the context here.
55   if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) {
56     if (RD->isLambda())
57       if (ParmVarDecl *ContextParam
58             = dyn_cast_or_null<ParmVarDecl>(RD->getLambdaContextDecl()))
59         return ContextParam->getDeclContext();
60   }
61 
62   // Perform the same check for block literals.
63   if (const BlockDecl *BD = dyn_cast<BlockDecl>(D)) {
64     if (ParmVarDecl *ContextParam
65           = dyn_cast_or_null<ParmVarDecl>(BD->getBlockManglingContextDecl()))
66       return ContextParam->getDeclContext();
67   }
68 
69   const DeclContext *DC = D->getDeclContext();
70   if (isa<CapturedDecl>(DC) || isa<OMPDeclareReductionDecl>(DC)) {
71     return getEffectiveDeclContext(cast<Decl>(DC));
72   }
73 
74   if (const auto *VD = dyn_cast<VarDecl>(D))
75     if (VD->isExternC())
76       return VD->getASTContext().getTranslationUnitDecl();
77 
78   if (const auto *FD = dyn_cast<FunctionDecl>(D))
79     if (FD->isExternC())
80       return FD->getASTContext().getTranslationUnitDecl();
81 
82   return DC->getRedeclContext();
83 }
84 
85 static const DeclContext *getEffectiveParentContext(const DeclContext *DC) {
86   return getEffectiveDeclContext(cast<Decl>(DC));
87 }
88 
89 static bool isLocalContainerContext(const DeclContext *DC) {
90   return isa<FunctionDecl>(DC) || isa<ObjCMethodDecl>(DC) || isa<BlockDecl>(DC);
91 }
92 
93 static const RecordDecl *GetLocalClassDecl(const Decl *D) {
94   const DeclContext *DC = getEffectiveDeclContext(D);
95   while (!DC->isNamespace() && !DC->isTranslationUnit()) {
96     if (isLocalContainerContext(DC))
97       return dyn_cast<RecordDecl>(D);
98     D = cast<Decl>(DC);
99     DC = getEffectiveDeclContext(D);
100   }
101   return nullptr;
102 }
103 
104 static const FunctionDecl *getStructor(const FunctionDecl *fn) {
105   if (const FunctionTemplateDecl *ftd = fn->getPrimaryTemplate())
106     return ftd->getTemplatedDecl();
107 
108   return fn;
109 }
110 
111 static const NamedDecl *getStructor(const NamedDecl *decl) {
112   const FunctionDecl *fn = dyn_cast_or_null<FunctionDecl>(decl);
113   return (fn ? getStructor(fn) : decl);
114 }
115 
116 static bool isLambda(const NamedDecl *ND) {
117   const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(ND);
118   if (!Record)
119     return false;
120 
121   return Record->isLambda();
122 }
123 
124 static const unsigned UnknownArity = ~0U;
125 
126 class ItaniumMangleContextImpl : public ItaniumMangleContext {
127   typedef std::pair<const DeclContext*, IdentifierInfo*> DiscriminatorKeyTy;
128   llvm::DenseMap<DiscriminatorKeyTy, unsigned> Discriminator;
129   llvm::DenseMap<const NamedDecl*, unsigned> Uniquifier;
130 
131 public:
132   explicit ItaniumMangleContextImpl(ASTContext &Context,
133                                     DiagnosticsEngine &Diags)
134       : ItaniumMangleContext(Context, Diags) {}
135 
136   /// @name Mangler Entry Points
137   /// @{
138 
139   bool shouldMangleCXXName(const NamedDecl *D) override;
140   bool shouldMangleStringLiteral(const StringLiteral *) override {
141     return false;
142   }
143   void mangleCXXName(const NamedDecl *D, raw_ostream &) override;
144   void mangleThunk(const CXXMethodDecl *MD, const ThunkInfo &Thunk,
145                    raw_ostream &) override;
146   void mangleCXXDtorThunk(const CXXDestructorDecl *DD, CXXDtorType Type,
147                           const ThisAdjustment &ThisAdjustment,
148                           raw_ostream &) override;
149   void mangleReferenceTemporary(const VarDecl *D, unsigned ManglingNumber,
150                                 raw_ostream &) override;
151   void mangleCXXVTable(const CXXRecordDecl *RD, raw_ostream &) override;
152   void mangleCXXVTT(const CXXRecordDecl *RD, raw_ostream &) override;
153   void mangleCXXCtorVTable(const CXXRecordDecl *RD, int64_t Offset,
154                            const CXXRecordDecl *Type, raw_ostream &) override;
155   void mangleCXXRTTI(QualType T, raw_ostream &) override;
156   void mangleCXXRTTIName(QualType T, raw_ostream &) override;
157   void mangleTypeName(QualType T, raw_ostream &) override;
158   void mangleCXXCtor(const CXXConstructorDecl *D, CXXCtorType Type,
159                      raw_ostream &) override;
160   void mangleCXXDtor(const CXXDestructorDecl *D, CXXDtorType Type,
161                      raw_ostream &) override;
162 
163   void mangleCXXCtorComdat(const CXXConstructorDecl *D, raw_ostream &) override;
164   void mangleCXXDtorComdat(const CXXDestructorDecl *D, raw_ostream &) override;
165   void mangleStaticGuardVariable(const VarDecl *D, raw_ostream &) override;
166   void mangleDynamicInitializer(const VarDecl *D, raw_ostream &Out) override;
167   void mangleDynamicAtExitDestructor(const VarDecl *D,
168                                      raw_ostream &Out) override;
169   void mangleSEHFilterExpression(const NamedDecl *EnclosingDecl,
170                                  raw_ostream &Out) override;
171   void mangleSEHFinallyBlock(const NamedDecl *EnclosingDecl,
172                              raw_ostream &Out) override;
173   void mangleItaniumThreadLocalInit(const VarDecl *D, raw_ostream &) override;
174   void mangleItaniumThreadLocalWrapper(const VarDecl *D,
175                                        raw_ostream &) override;
176 
177   void mangleStringLiteral(const StringLiteral *, raw_ostream &) override;
178 
179   bool getNextDiscriminator(const NamedDecl *ND, unsigned &disc) {
180     // Lambda closure types are already numbered.
181     if (isLambda(ND))
182       return false;
183 
184     // Anonymous tags are already numbered.
185     if (const TagDecl *Tag = dyn_cast<TagDecl>(ND)) {
186       if (Tag->getName().empty() && !Tag->getTypedefNameForAnonDecl())
187         return false;
188     }
189 
190     // Use the canonical number for externally visible decls.
191     if (ND->isExternallyVisible()) {
192       unsigned discriminator = getASTContext().getManglingNumber(ND);
193       if (discriminator == 1)
194         return false;
195       disc = discriminator - 2;
196       return true;
197     }
198 
199     // Make up a reasonable number for internal decls.
200     unsigned &discriminator = Uniquifier[ND];
201     if (!discriminator) {
202       const DeclContext *DC = getEffectiveDeclContext(ND);
203       discriminator = ++Discriminator[std::make_pair(DC, ND->getIdentifier())];
204     }
205     if (discriminator == 1)
206       return false;
207     disc = discriminator-2;
208     return true;
209   }
210   /// @}
211 };
212 
213 /// Manage the mangling of a single name.
214 class CXXNameMangler {
215   ItaniumMangleContextImpl &Context;
216   raw_ostream &Out;
217 
218   /// The "structor" is the top-level declaration being mangled, if
219   /// that's not a template specialization; otherwise it's the pattern
220   /// for that specialization.
221   const NamedDecl *Structor;
222   unsigned StructorType;
223 
224   /// The next substitution sequence number.
225   unsigned SeqID;
226 
227   class FunctionTypeDepthState {
228     unsigned Bits;
229 
230     enum { InResultTypeMask = 1 };
231 
232   public:
233     FunctionTypeDepthState() : Bits(0) {}
234 
235     /// The number of function types we're inside.
236     unsigned getDepth() const {
237       return Bits >> 1;
238     }
239 
240     /// True if we're in the return type of the innermost function type.
241     bool isInResultType() const {
242       return Bits & InResultTypeMask;
243     }
244 
245     FunctionTypeDepthState push() {
246       FunctionTypeDepthState tmp = *this;
247       Bits = (Bits & ~InResultTypeMask) + 2;
248       return tmp;
249     }
250 
251     void enterResultType() {
252       Bits |= InResultTypeMask;
253     }
254 
255     void leaveResultType() {
256       Bits &= ~InResultTypeMask;
257     }
258 
259     void pop(FunctionTypeDepthState saved) {
260       assert(getDepth() == saved.getDepth() + 1);
261       Bits = saved.Bits;
262     }
263 
264   } FunctionTypeDepth;
265 
266   llvm::DenseMap<uintptr_t, unsigned> Substitutions;
267 
268   ASTContext &getASTContext() const { return Context.getASTContext(); }
269 
270 public:
271   CXXNameMangler(ItaniumMangleContextImpl &C, raw_ostream &Out_,
272                  const NamedDecl *D = nullptr)
273     : Context(C), Out(Out_), Structor(getStructor(D)), StructorType(0),
274       SeqID(0) {
275     // These can't be mangled without a ctor type or dtor type.
276     assert(!D || (!isa<CXXDestructorDecl>(D) &&
277                   !isa<CXXConstructorDecl>(D)));
278   }
279   CXXNameMangler(ItaniumMangleContextImpl &C, raw_ostream &Out_,
280                  const CXXConstructorDecl *D, CXXCtorType Type)
281     : Context(C), Out(Out_), Structor(getStructor(D)), StructorType(Type),
282       SeqID(0) { }
283   CXXNameMangler(ItaniumMangleContextImpl &C, raw_ostream &Out_,
284                  const CXXDestructorDecl *D, CXXDtorType Type)
285     : Context(C), Out(Out_), Structor(getStructor(D)), StructorType(Type),
286       SeqID(0) { }
287 
288 #if MANGLE_CHECKER
289   ~CXXNameMangler() {
290     if (Out.str()[0] == '\01')
291       return;
292 
293     int status = 0;
294     char *result = abi::__cxa_demangle(Out.str().str().c_str(), 0, 0, &status);
295     assert(status == 0 && "Could not demangle mangled name!");
296     free(result);
297   }
298 #endif
299   raw_ostream &getStream() { return Out; }
300 
301   void mangle(const NamedDecl *D);
302   void mangleCallOffset(int64_t NonVirtual, int64_t Virtual);
303   void mangleNumber(const llvm::APSInt &I);
304   void mangleNumber(int64_t Number);
305   void mangleFloat(const llvm::APFloat &F);
306   void mangleFunctionEncoding(const FunctionDecl *FD);
307   void mangleSeqID(unsigned SeqID);
308   void mangleName(const NamedDecl *ND);
309   void mangleType(QualType T);
310   void mangleNameOrStandardSubstitution(const NamedDecl *ND);
311 
312 private:
313 
314   bool mangleSubstitution(const NamedDecl *ND);
315   bool mangleSubstitution(QualType T);
316   bool mangleSubstitution(TemplateName Template);
317   bool mangleSubstitution(uintptr_t Ptr);
318 
319   void mangleExistingSubstitution(QualType type);
320   void mangleExistingSubstitution(TemplateName name);
321 
322   bool mangleStandardSubstitution(const NamedDecl *ND);
323 
324   void addSubstitution(const NamedDecl *ND) {
325     ND = cast<NamedDecl>(ND->getCanonicalDecl());
326 
327     addSubstitution(reinterpret_cast<uintptr_t>(ND));
328   }
329   void addSubstitution(QualType T);
330   void addSubstitution(TemplateName Template);
331   void addSubstitution(uintptr_t Ptr);
332 
333   void mangleUnresolvedPrefix(NestedNameSpecifier *qualifier,
334                               bool recursive = false);
335   void mangleUnresolvedName(NestedNameSpecifier *qualifier,
336                             DeclarationName name,
337                             unsigned KnownArity = UnknownArity);
338 
339   void mangleName(const TemplateDecl *TD,
340                   const TemplateArgument *TemplateArgs,
341                   unsigned NumTemplateArgs);
342   void mangleUnqualifiedName(const NamedDecl *ND) {
343     mangleUnqualifiedName(ND, ND->getDeclName(), UnknownArity);
344   }
345   void mangleUnqualifiedName(const NamedDecl *ND, DeclarationName Name,
346                              unsigned KnownArity);
347   void mangleUnscopedName(const NamedDecl *ND);
348   void mangleUnscopedTemplateName(const TemplateDecl *ND);
349   void mangleUnscopedTemplateName(TemplateName);
350   void mangleSourceName(const IdentifierInfo *II);
351   void mangleLocalName(const Decl *D);
352   void mangleBlockForPrefix(const BlockDecl *Block);
353   void mangleUnqualifiedBlock(const BlockDecl *Block);
354   void mangleLambda(const CXXRecordDecl *Lambda);
355   void mangleNestedName(const NamedDecl *ND, const DeclContext *DC,
356                         bool NoFunction=false);
357   void mangleNestedName(const TemplateDecl *TD,
358                         const TemplateArgument *TemplateArgs,
359                         unsigned NumTemplateArgs);
360   void manglePrefix(NestedNameSpecifier *qualifier);
361   void manglePrefix(const DeclContext *DC, bool NoFunction=false);
362   void manglePrefix(QualType type);
363   void mangleTemplatePrefix(const TemplateDecl *ND, bool NoFunction=false);
364   void mangleTemplatePrefix(TemplateName Template);
365   bool mangleUnresolvedTypeOrSimpleId(QualType DestroyedType,
366                                       StringRef Prefix = "");
367   void mangleOperatorName(DeclarationName Name, unsigned Arity);
368   void mangleOperatorName(OverloadedOperatorKind OO, unsigned Arity);
369   void mangleVendorQualifier(StringRef qualifier);
370   void mangleQualifiers(Qualifiers Quals);
371   void mangleRefQualifier(RefQualifierKind RefQualifier);
372 
373   void mangleObjCMethodName(const ObjCMethodDecl *MD);
374 
375   // Declare manglers for every type class.
376 #define ABSTRACT_TYPE(CLASS, PARENT)
377 #define NON_CANONICAL_TYPE(CLASS, PARENT)
378 #define TYPE(CLASS, PARENT) void mangleType(const CLASS##Type *T);
379 #include "clang/AST/TypeNodes.def"
380 
381   void mangleType(const TagType*);
382   void mangleType(TemplateName);
383   static StringRef getCallingConvQualifierName(CallingConv CC);
384   void mangleExtParameterInfo(FunctionProtoType::ExtParameterInfo info);
385   void mangleExtFunctionInfo(const FunctionType *T);
386   void mangleBareFunctionType(const FunctionProtoType *T, bool MangleReturnType,
387                               const FunctionDecl *FD = nullptr);
388   void mangleNeonVectorType(const VectorType *T);
389   void mangleAArch64NeonVectorType(const VectorType *T);
390 
391   void mangleIntegerLiteral(QualType T, const llvm::APSInt &Value);
392   void mangleMemberExprBase(const Expr *base, bool isArrow);
393   void mangleMemberExpr(const Expr *base, bool isArrow,
394                         NestedNameSpecifier *qualifier,
395                         NamedDecl *firstQualifierLookup,
396                         DeclarationName name,
397                         unsigned knownArity);
398   void mangleCastExpression(const Expr *E, StringRef CastEncoding);
399   void mangleInitListElements(const InitListExpr *InitList);
400   void mangleExpression(const Expr *E, unsigned Arity = UnknownArity);
401   void mangleCXXCtorType(CXXCtorType T);
402   void mangleCXXDtorType(CXXDtorType T);
403 
404   void mangleTemplateArgs(const TemplateArgumentLoc *TemplateArgs,
405                           unsigned NumTemplateArgs);
406   void mangleTemplateArgs(const TemplateArgument *TemplateArgs,
407                           unsigned NumTemplateArgs);
408   void mangleTemplateArgs(const TemplateArgumentList &AL);
409   void mangleTemplateArg(TemplateArgument A);
410 
411   void mangleTemplateParameter(unsigned Index);
412 
413   void mangleFunctionParam(const ParmVarDecl *parm);
414 };
415 
416 }
417 
418 bool ItaniumMangleContextImpl::shouldMangleCXXName(const NamedDecl *D) {
419   const FunctionDecl *FD = dyn_cast<FunctionDecl>(D);
420   if (FD) {
421     LanguageLinkage L = FD->getLanguageLinkage();
422     // Overloadable functions need mangling.
423     if (FD->hasAttr<OverloadableAttr>())
424       return true;
425 
426     // "main" is not mangled.
427     if (FD->isMain())
428       return false;
429 
430     // C++ functions and those whose names are not a simple identifier need
431     // mangling.
432     if (!FD->getDeclName().isIdentifier() || L == CXXLanguageLinkage)
433       return true;
434 
435     // C functions are not mangled.
436     if (L == CLanguageLinkage)
437       return false;
438   }
439 
440   // Otherwise, no mangling is done outside C++ mode.
441   if (!getASTContext().getLangOpts().CPlusPlus)
442     return false;
443 
444   const VarDecl *VD = dyn_cast<VarDecl>(D);
445   if (VD) {
446     // C variables are not mangled.
447     if (VD->isExternC())
448       return false;
449 
450     // Variables at global scope with non-internal linkage are not mangled
451     const DeclContext *DC = getEffectiveDeclContext(D);
452     // Check for extern variable declared locally.
453     if (DC->isFunctionOrMethod() && D->hasLinkage())
454       while (!DC->isNamespace() && !DC->isTranslationUnit())
455         DC = getEffectiveParentContext(DC);
456     if (DC->isTranslationUnit() && D->getFormalLinkage() != InternalLinkage &&
457         !isa<VarTemplateSpecializationDecl>(D))
458       return false;
459   }
460 
461   return true;
462 }
463 
464 void CXXNameMangler::mangle(const NamedDecl *D) {
465   // <mangled-name> ::= _Z <encoding>
466   //            ::= <data name>
467   //            ::= <special-name>
468   Out << "_Z";
469   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D))
470     mangleFunctionEncoding(FD);
471   else if (const VarDecl *VD = dyn_cast<VarDecl>(D))
472     mangleName(VD);
473   else if (const IndirectFieldDecl *IFD = dyn_cast<IndirectFieldDecl>(D))
474     mangleName(IFD->getAnonField());
475   else
476     mangleName(cast<FieldDecl>(D));
477 }
478 
479 void CXXNameMangler::mangleFunctionEncoding(const FunctionDecl *FD) {
480   // <encoding> ::= <function name> <bare-function-type>
481   mangleName(FD);
482 
483   // Don't mangle in the type if this isn't a decl we should typically mangle.
484   if (!Context.shouldMangleDeclName(FD))
485     return;
486 
487   if (FD->hasAttr<EnableIfAttr>()) {
488     FunctionTypeDepthState Saved = FunctionTypeDepth.push();
489     Out << "Ua9enable_ifI";
490     // FIXME: specific_attr_iterator iterates in reverse order. Fix that and use
491     // it here.
492     for (AttrVec::const_reverse_iterator I = FD->getAttrs().rbegin(),
493                                          E = FD->getAttrs().rend();
494          I != E; ++I) {
495       EnableIfAttr *EIA = dyn_cast<EnableIfAttr>(*I);
496       if (!EIA)
497         continue;
498       Out << 'X';
499       mangleExpression(EIA->getCond());
500       Out << 'E';
501     }
502     Out << 'E';
503     FunctionTypeDepth.pop(Saved);
504   }
505 
506   // Whether the mangling of a function type includes the return type depends on
507   // the context and the nature of the function. The rules for deciding whether
508   // the return type is included are:
509   //
510   //   1. Template functions (names or types) have return types encoded, with
511   //   the exceptions listed below.
512   //   2. Function types not appearing as part of a function name mangling,
513   //   e.g. parameters, pointer types, etc., have return type encoded, with the
514   //   exceptions listed below.
515   //   3. Non-template function names do not have return types encoded.
516   //
517   // The exceptions mentioned in (1) and (2) above, for which the return type is
518   // never included, are
519   //   1. Constructors.
520   //   2. Destructors.
521   //   3. Conversion operator functions, e.g. operator int.
522   bool MangleReturnType = false;
523   if (FunctionTemplateDecl *PrimaryTemplate = FD->getPrimaryTemplate()) {
524     if (!(isa<CXXConstructorDecl>(FD) || isa<CXXDestructorDecl>(FD) ||
525           isa<CXXConversionDecl>(FD)))
526       MangleReturnType = true;
527 
528     // Mangle the type of the primary template.
529     FD = PrimaryTemplate->getTemplatedDecl();
530   }
531 
532   mangleBareFunctionType(FD->getType()->castAs<FunctionProtoType>(),
533                          MangleReturnType, FD);
534 }
535 
536 static const DeclContext *IgnoreLinkageSpecDecls(const DeclContext *DC) {
537   while (isa<LinkageSpecDecl>(DC)) {
538     DC = getEffectiveParentContext(DC);
539   }
540 
541   return DC;
542 }
543 
544 /// Return whether a given namespace is the 'std' namespace.
545 static bool isStd(const NamespaceDecl *NS) {
546   if (!IgnoreLinkageSpecDecls(getEffectiveParentContext(NS))
547                                 ->isTranslationUnit())
548     return false;
549 
550   const IdentifierInfo *II = NS->getOriginalNamespace()->getIdentifier();
551   return II && II->isStr("std");
552 }
553 
554 // isStdNamespace - Return whether a given decl context is a toplevel 'std'
555 // namespace.
556 static bool isStdNamespace(const DeclContext *DC) {
557   if (!DC->isNamespace())
558     return false;
559 
560   return isStd(cast<NamespaceDecl>(DC));
561 }
562 
563 static const TemplateDecl *
564 isTemplate(const NamedDecl *ND, const TemplateArgumentList *&TemplateArgs) {
565   // Check if we have a function template.
566   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(ND)){
567     if (const TemplateDecl *TD = FD->getPrimaryTemplate()) {
568       TemplateArgs = FD->getTemplateSpecializationArgs();
569       return TD;
570     }
571   }
572 
573   // Check if we have a class template.
574   if (const ClassTemplateSpecializationDecl *Spec =
575         dyn_cast<ClassTemplateSpecializationDecl>(ND)) {
576     TemplateArgs = &Spec->getTemplateArgs();
577     return Spec->getSpecializedTemplate();
578   }
579 
580   // Check if we have a variable template.
581   if (const VarTemplateSpecializationDecl *Spec =
582           dyn_cast<VarTemplateSpecializationDecl>(ND)) {
583     TemplateArgs = &Spec->getTemplateArgs();
584     return Spec->getSpecializedTemplate();
585   }
586 
587   return nullptr;
588 }
589 
590 void CXXNameMangler::mangleName(const NamedDecl *ND) {
591   //  <name> ::= <nested-name>
592   //         ::= <unscoped-name>
593   //         ::= <unscoped-template-name> <template-args>
594   //         ::= <local-name>
595   //
596   const DeclContext *DC = getEffectiveDeclContext(ND);
597 
598   // If this is an extern variable declared locally, the relevant DeclContext
599   // is that of the containing namespace, or the translation unit.
600   // FIXME: This is a hack; extern variables declared locally should have
601   // a proper semantic declaration context!
602   if (isLocalContainerContext(DC) && ND->hasLinkage() && !isLambda(ND))
603     while (!DC->isNamespace() && !DC->isTranslationUnit())
604       DC = getEffectiveParentContext(DC);
605   else if (GetLocalClassDecl(ND)) {
606     mangleLocalName(ND);
607     return;
608   }
609 
610   DC = IgnoreLinkageSpecDecls(DC);
611 
612   if (DC->isTranslationUnit() || isStdNamespace(DC)) {
613     // Check if we have a template.
614     const TemplateArgumentList *TemplateArgs = nullptr;
615     if (const TemplateDecl *TD = isTemplate(ND, TemplateArgs)) {
616       mangleUnscopedTemplateName(TD);
617       mangleTemplateArgs(*TemplateArgs);
618       return;
619     }
620 
621     mangleUnscopedName(ND);
622     return;
623   }
624 
625   if (isLocalContainerContext(DC)) {
626     mangleLocalName(ND);
627     return;
628   }
629 
630   mangleNestedName(ND, DC);
631 }
632 void CXXNameMangler::mangleName(const TemplateDecl *TD,
633                                 const TemplateArgument *TemplateArgs,
634                                 unsigned NumTemplateArgs) {
635   const DeclContext *DC = IgnoreLinkageSpecDecls(getEffectiveDeclContext(TD));
636 
637   if (DC->isTranslationUnit() || isStdNamespace(DC)) {
638     mangleUnscopedTemplateName(TD);
639     mangleTemplateArgs(TemplateArgs, NumTemplateArgs);
640   } else {
641     mangleNestedName(TD, TemplateArgs, NumTemplateArgs);
642   }
643 }
644 
645 void CXXNameMangler::mangleUnscopedName(const NamedDecl *ND) {
646   //  <unscoped-name> ::= <unqualified-name>
647   //                  ::= St <unqualified-name>   # ::std::
648 
649   if (isStdNamespace(IgnoreLinkageSpecDecls(getEffectiveDeclContext(ND))))
650     Out << "St";
651 
652   mangleUnqualifiedName(ND);
653 }
654 
655 void CXXNameMangler::mangleUnscopedTemplateName(const TemplateDecl *ND) {
656   //     <unscoped-template-name> ::= <unscoped-name>
657   //                              ::= <substitution>
658   if (mangleSubstitution(ND))
659     return;
660 
661   // <template-template-param> ::= <template-param>
662   if (const auto *TTP = dyn_cast<TemplateTemplateParmDecl>(ND))
663     mangleTemplateParameter(TTP->getIndex());
664   else
665     mangleUnscopedName(ND->getTemplatedDecl());
666 
667   addSubstitution(ND);
668 }
669 
670 void CXXNameMangler::mangleUnscopedTemplateName(TemplateName Template) {
671   //     <unscoped-template-name> ::= <unscoped-name>
672   //                              ::= <substitution>
673   if (TemplateDecl *TD = Template.getAsTemplateDecl())
674     return mangleUnscopedTemplateName(TD);
675 
676   if (mangleSubstitution(Template))
677     return;
678 
679   DependentTemplateName *Dependent = Template.getAsDependentTemplateName();
680   assert(Dependent && "Not a dependent template name?");
681   if (const IdentifierInfo *Id = Dependent->getIdentifier())
682     mangleSourceName(Id);
683   else
684     mangleOperatorName(Dependent->getOperator(), UnknownArity);
685 
686   addSubstitution(Template);
687 }
688 
689 void CXXNameMangler::mangleFloat(const llvm::APFloat &f) {
690   // ABI:
691   //   Floating-point literals are encoded using a fixed-length
692   //   lowercase hexadecimal string corresponding to the internal
693   //   representation (IEEE on Itanium), high-order bytes first,
694   //   without leading zeroes. For example: "Lf bf800000 E" is -1.0f
695   //   on Itanium.
696   // The 'without leading zeroes' thing seems to be an editorial
697   // mistake; see the discussion on cxx-abi-dev beginning on
698   // 2012-01-16.
699 
700   // Our requirements here are just barely weird enough to justify
701   // using a custom algorithm instead of post-processing APInt::toString().
702 
703   llvm::APInt valueBits = f.bitcastToAPInt();
704   unsigned numCharacters = (valueBits.getBitWidth() + 3) / 4;
705   assert(numCharacters != 0);
706 
707   // Allocate a buffer of the right number of characters.
708   SmallVector<char, 20> buffer(numCharacters);
709 
710   // Fill the buffer left-to-right.
711   for (unsigned stringIndex = 0; stringIndex != numCharacters; ++stringIndex) {
712     // The bit-index of the next hex digit.
713     unsigned digitBitIndex = 4 * (numCharacters - stringIndex - 1);
714 
715     // Project out 4 bits starting at 'digitIndex'.
716     llvm::integerPart hexDigit
717       = valueBits.getRawData()[digitBitIndex / llvm::integerPartWidth];
718     hexDigit >>= (digitBitIndex % llvm::integerPartWidth);
719     hexDigit &= 0xF;
720 
721     // Map that over to a lowercase hex digit.
722     static const char charForHex[16] = {
723       '0', '1', '2', '3', '4', '5', '6', '7',
724       '8', '9', 'a', 'b', 'c', 'd', 'e', 'f'
725     };
726     buffer[stringIndex] = charForHex[hexDigit];
727   }
728 
729   Out.write(buffer.data(), numCharacters);
730 }
731 
732 void CXXNameMangler::mangleNumber(const llvm::APSInt &Value) {
733   if (Value.isSigned() && Value.isNegative()) {
734     Out << 'n';
735     Value.abs().print(Out, /*signed*/ false);
736   } else {
737     Value.print(Out, /*signed*/ false);
738   }
739 }
740 
741 void CXXNameMangler::mangleNumber(int64_t Number) {
742   //  <number> ::= [n] <non-negative decimal integer>
743   if (Number < 0) {
744     Out << 'n';
745     Number = -Number;
746   }
747 
748   Out << Number;
749 }
750 
751 void CXXNameMangler::mangleCallOffset(int64_t NonVirtual, int64_t Virtual) {
752   //  <call-offset>  ::= h <nv-offset> _
753   //                 ::= v <v-offset> _
754   //  <nv-offset>    ::= <offset number>        # non-virtual base override
755   //  <v-offset>     ::= <offset number> _ <virtual offset number>
756   //                      # virtual base override, with vcall offset
757   if (!Virtual) {
758     Out << 'h';
759     mangleNumber(NonVirtual);
760     Out << '_';
761     return;
762   }
763 
764   Out << 'v';
765   mangleNumber(NonVirtual);
766   Out << '_';
767   mangleNumber(Virtual);
768   Out << '_';
769 }
770 
771 void CXXNameMangler::manglePrefix(QualType type) {
772   if (const auto *TST = type->getAs<TemplateSpecializationType>()) {
773     if (!mangleSubstitution(QualType(TST, 0))) {
774       mangleTemplatePrefix(TST->getTemplateName());
775 
776       // FIXME: GCC does not appear to mangle the template arguments when
777       // the template in question is a dependent template name. Should we
778       // emulate that badness?
779       mangleTemplateArgs(TST->getArgs(), TST->getNumArgs());
780       addSubstitution(QualType(TST, 0));
781     }
782   } else if (const auto *DTST =
783                  type->getAs<DependentTemplateSpecializationType>()) {
784     if (!mangleSubstitution(QualType(DTST, 0))) {
785       TemplateName Template = getASTContext().getDependentTemplateName(
786           DTST->getQualifier(), DTST->getIdentifier());
787       mangleTemplatePrefix(Template);
788 
789       // FIXME: GCC does not appear to mangle the template arguments when
790       // the template in question is a dependent template name. Should we
791       // emulate that badness?
792       mangleTemplateArgs(DTST->getArgs(), DTST->getNumArgs());
793       addSubstitution(QualType(DTST, 0));
794     }
795   } else {
796     // We use the QualType mangle type variant here because it handles
797     // substitutions.
798     mangleType(type);
799   }
800 }
801 
802 /// Mangle everything prior to the base-unresolved-name in an unresolved-name.
803 ///
804 /// \param recursive - true if this is being called recursively,
805 ///   i.e. if there is more prefix "to the right".
806 void CXXNameMangler::mangleUnresolvedPrefix(NestedNameSpecifier *qualifier,
807                                             bool recursive) {
808 
809   // x, ::x
810   // <unresolved-name> ::= [gs] <base-unresolved-name>
811 
812   // T::x / decltype(p)::x
813   // <unresolved-name> ::= sr <unresolved-type> <base-unresolved-name>
814 
815   // T::N::x /decltype(p)::N::x
816   // <unresolved-name> ::= srN <unresolved-type> <unresolved-qualifier-level>+ E
817   //                       <base-unresolved-name>
818 
819   // A::x, N::y, A<T>::z; "gs" means leading "::"
820   // <unresolved-name> ::= [gs] sr <unresolved-qualifier-level>+ E
821   //                       <base-unresolved-name>
822 
823   switch (qualifier->getKind()) {
824   case NestedNameSpecifier::Global:
825     Out << "gs";
826 
827     // We want an 'sr' unless this is the entire NNS.
828     if (recursive)
829       Out << "sr";
830 
831     // We never want an 'E' here.
832     return;
833 
834   case NestedNameSpecifier::Super:
835     llvm_unreachable("Can't mangle __super specifier");
836 
837   case NestedNameSpecifier::Namespace:
838     if (qualifier->getPrefix())
839       mangleUnresolvedPrefix(qualifier->getPrefix(),
840                              /*recursive*/ true);
841     else
842       Out << "sr";
843     mangleSourceName(qualifier->getAsNamespace()->getIdentifier());
844     break;
845   case NestedNameSpecifier::NamespaceAlias:
846     if (qualifier->getPrefix())
847       mangleUnresolvedPrefix(qualifier->getPrefix(),
848                              /*recursive*/ true);
849     else
850       Out << "sr";
851     mangleSourceName(qualifier->getAsNamespaceAlias()->getIdentifier());
852     break;
853 
854   case NestedNameSpecifier::TypeSpec:
855   case NestedNameSpecifier::TypeSpecWithTemplate: {
856     const Type *type = qualifier->getAsType();
857 
858     // We only want to use an unresolved-type encoding if this is one of:
859     //   - a decltype
860     //   - a template type parameter
861     //   - a template template parameter with arguments
862     // In all of these cases, we should have no prefix.
863     if (qualifier->getPrefix()) {
864       mangleUnresolvedPrefix(qualifier->getPrefix(),
865                              /*recursive*/ true);
866     } else {
867       // Otherwise, all the cases want this.
868       Out << "sr";
869     }
870 
871     if (mangleUnresolvedTypeOrSimpleId(QualType(type, 0), recursive ? "N" : ""))
872       return;
873 
874     break;
875   }
876 
877   case NestedNameSpecifier::Identifier:
878     // Member expressions can have these without prefixes.
879     if (qualifier->getPrefix())
880       mangleUnresolvedPrefix(qualifier->getPrefix(),
881                              /*recursive*/ true);
882     else
883       Out << "sr";
884 
885     mangleSourceName(qualifier->getAsIdentifier());
886     break;
887   }
888 
889   // If this was the innermost part of the NNS, and we fell out to
890   // here, append an 'E'.
891   if (!recursive)
892     Out << 'E';
893 }
894 
895 /// Mangle an unresolved-name, which is generally used for names which
896 /// weren't resolved to specific entities.
897 void CXXNameMangler::mangleUnresolvedName(NestedNameSpecifier *qualifier,
898                                           DeclarationName name,
899                                           unsigned knownArity) {
900   if (qualifier) mangleUnresolvedPrefix(qualifier);
901   switch (name.getNameKind()) {
902     // <base-unresolved-name> ::= <simple-id>
903     case DeclarationName::Identifier:
904       mangleSourceName(name.getAsIdentifierInfo());
905       break;
906     // <base-unresolved-name> ::= dn <destructor-name>
907     case DeclarationName::CXXDestructorName:
908       Out << "dn";
909       mangleUnresolvedTypeOrSimpleId(name.getCXXNameType());
910       break;
911     // <base-unresolved-name> ::= on <operator-name>
912     case DeclarationName::CXXConversionFunctionName:
913     case DeclarationName::CXXLiteralOperatorName:
914     case DeclarationName::CXXOperatorName:
915       Out << "on";
916       mangleOperatorName(name, knownArity);
917       break;
918     case DeclarationName::CXXConstructorName:
919       llvm_unreachable("Can't mangle a constructor name!");
920     case DeclarationName::CXXUsingDirective:
921       llvm_unreachable("Can't mangle a using directive name!");
922     case DeclarationName::ObjCMultiArgSelector:
923     case DeclarationName::ObjCOneArgSelector:
924     case DeclarationName::ObjCZeroArgSelector:
925       llvm_unreachable("Can't mangle Objective-C selector names here!");
926   }
927 }
928 
929 void CXXNameMangler::mangleUnqualifiedName(const NamedDecl *ND,
930                                            DeclarationName Name,
931                                            unsigned KnownArity) {
932   unsigned Arity = KnownArity;
933   //  <unqualified-name> ::= <operator-name>
934   //                     ::= <ctor-dtor-name>
935   //                     ::= <source-name>
936   switch (Name.getNameKind()) {
937   case DeclarationName::Identifier: {
938     if (const IdentifierInfo *II = Name.getAsIdentifierInfo()) {
939       // We must avoid conflicts between internally- and externally-
940       // linked variable and function declaration names in the same TU:
941       //   void test() { extern void foo(); }
942       //   static void foo();
943       // This naming convention is the same as that followed by GCC,
944       // though it shouldn't actually matter.
945       if (ND && ND->getFormalLinkage() == InternalLinkage &&
946           getEffectiveDeclContext(ND)->isFileContext())
947         Out << 'L';
948 
949       mangleSourceName(II);
950       break;
951     }
952 
953     // Otherwise, an anonymous entity.  We must have a declaration.
954     assert(ND && "mangling empty name without declaration");
955 
956     if (const NamespaceDecl *NS = dyn_cast<NamespaceDecl>(ND)) {
957       if (NS->isAnonymousNamespace()) {
958         // This is how gcc mangles these names.
959         Out << "12_GLOBAL__N_1";
960         break;
961       }
962     }
963 
964     if (const VarDecl *VD = dyn_cast<VarDecl>(ND)) {
965       // We must have an anonymous union or struct declaration.
966       const RecordDecl *RD =
967         cast<RecordDecl>(VD->getType()->getAs<RecordType>()->getDecl());
968 
969       // Itanium C++ ABI 5.1.2:
970       //
971       //   For the purposes of mangling, the name of an anonymous union is
972       //   considered to be the name of the first named data member found by a
973       //   pre-order, depth-first, declaration-order walk of the data members of
974       //   the anonymous union. If there is no such data member (i.e., if all of
975       //   the data members in the union are unnamed), then there is no way for
976       //   a program to refer to the anonymous union, and there is therefore no
977       //   need to mangle its name.
978       assert(RD->isAnonymousStructOrUnion()
979              && "Expected anonymous struct or union!");
980       const FieldDecl *FD = RD->findFirstNamedDataMember();
981 
982       // It's actually possible for various reasons for us to get here
983       // with an empty anonymous struct / union.  Fortunately, it
984       // doesn't really matter what name we generate.
985       if (!FD) break;
986       assert(FD->getIdentifier() && "Data member name isn't an identifier!");
987 
988       mangleSourceName(FD->getIdentifier());
989       break;
990     }
991 
992     // Class extensions have no name as a category, and it's possible
993     // for them to be the semantic parent of certain declarations
994     // (primarily, tag decls defined within declarations).  Such
995     // declarations will always have internal linkage, so the name
996     // doesn't really matter, but we shouldn't crash on them.  For
997     // safety, just handle all ObjC containers here.
998     if (isa<ObjCContainerDecl>(ND))
999       break;
1000 
1001     // We must have an anonymous struct.
1002     const TagDecl *TD = cast<TagDecl>(ND);
1003     if (const TypedefNameDecl *D = TD->getTypedefNameForAnonDecl()) {
1004       assert(TD->getDeclContext() == D->getDeclContext() &&
1005              "Typedef should not be in another decl context!");
1006       assert(D->getDeclName().getAsIdentifierInfo() &&
1007              "Typedef was not named!");
1008       mangleSourceName(D->getDeclName().getAsIdentifierInfo());
1009       break;
1010     }
1011 
1012     // <unnamed-type-name> ::= <closure-type-name>
1013     //
1014     // <closure-type-name> ::= Ul <lambda-sig> E [ <nonnegative number> ] _
1015     // <lambda-sig> ::= <parameter-type>+   # Parameter types or 'v' for 'void'.
1016     if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(TD)) {
1017       if (Record->isLambda() && Record->getLambdaManglingNumber()) {
1018         mangleLambda(Record);
1019         break;
1020       }
1021     }
1022 
1023     if (TD->isExternallyVisible()) {
1024       unsigned UnnamedMangle = getASTContext().getManglingNumber(TD);
1025       Out << "Ut";
1026       if (UnnamedMangle > 1)
1027         Out << UnnamedMangle - 2;
1028       Out << '_';
1029       break;
1030     }
1031 
1032     // Get a unique id for the anonymous struct.
1033     unsigned AnonStructId = Context.getAnonymousStructId(TD);
1034 
1035     // Mangle it as a source name in the form
1036     // [n] $_<id>
1037     // where n is the length of the string.
1038     SmallString<8> Str;
1039     Str += "$_";
1040     Str += llvm::utostr(AnonStructId);
1041 
1042     Out << Str.size();
1043     Out << Str;
1044     break;
1045   }
1046 
1047   case DeclarationName::ObjCZeroArgSelector:
1048   case DeclarationName::ObjCOneArgSelector:
1049   case DeclarationName::ObjCMultiArgSelector:
1050     llvm_unreachable("Can't mangle Objective-C selector names here!");
1051 
1052   case DeclarationName::CXXConstructorName:
1053     if (ND == Structor)
1054       // If the named decl is the C++ constructor we're mangling, use the type
1055       // we were given.
1056       mangleCXXCtorType(static_cast<CXXCtorType>(StructorType));
1057     else
1058       // Otherwise, use the complete constructor name. This is relevant if a
1059       // class with a constructor is declared within a constructor.
1060       mangleCXXCtorType(Ctor_Complete);
1061     break;
1062 
1063   case DeclarationName::CXXDestructorName:
1064     if (ND == Structor)
1065       // If the named decl is the C++ destructor we're mangling, use the type we
1066       // were given.
1067       mangleCXXDtorType(static_cast<CXXDtorType>(StructorType));
1068     else
1069       // Otherwise, use the complete destructor name. This is relevant if a
1070       // class with a destructor is declared within a destructor.
1071       mangleCXXDtorType(Dtor_Complete);
1072     break;
1073 
1074   case DeclarationName::CXXOperatorName:
1075     if (ND && Arity == UnknownArity) {
1076       Arity = cast<FunctionDecl>(ND)->getNumParams();
1077 
1078       // If we have a member function, we need to include the 'this' pointer.
1079       if (const auto *MD = dyn_cast<CXXMethodDecl>(ND))
1080         if (!MD->isStatic())
1081           Arity++;
1082     }
1083   // FALLTHROUGH
1084   case DeclarationName::CXXConversionFunctionName:
1085   case DeclarationName::CXXLiteralOperatorName:
1086     mangleOperatorName(Name, Arity);
1087     break;
1088 
1089   case DeclarationName::CXXUsingDirective:
1090     llvm_unreachable("Can't mangle a using directive name!");
1091   }
1092 }
1093 
1094 void CXXNameMangler::mangleSourceName(const IdentifierInfo *II) {
1095   // <source-name> ::= <positive length number> <identifier>
1096   // <number> ::= [n] <non-negative decimal integer>
1097   // <identifier> ::= <unqualified source code identifier>
1098   Out << II->getLength() << II->getName();
1099 }
1100 
1101 void CXXNameMangler::mangleNestedName(const NamedDecl *ND,
1102                                       const DeclContext *DC,
1103                                       bool NoFunction) {
1104   // <nested-name>
1105   //   ::= N [<CV-qualifiers>] [<ref-qualifier>] <prefix> <unqualified-name> E
1106   //   ::= N [<CV-qualifiers>] [<ref-qualifier>] <template-prefix>
1107   //       <template-args> E
1108 
1109   Out << 'N';
1110   if (const CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(ND)) {
1111     Qualifiers MethodQuals =
1112         Qualifiers::fromCVRMask(Method->getTypeQualifiers());
1113     // We do not consider restrict a distinguishing attribute for overloading
1114     // purposes so we must not mangle it.
1115     MethodQuals.removeRestrict();
1116     mangleQualifiers(MethodQuals);
1117     mangleRefQualifier(Method->getRefQualifier());
1118   }
1119 
1120   // Check if we have a template.
1121   const TemplateArgumentList *TemplateArgs = nullptr;
1122   if (const TemplateDecl *TD = isTemplate(ND, TemplateArgs)) {
1123     mangleTemplatePrefix(TD, NoFunction);
1124     mangleTemplateArgs(*TemplateArgs);
1125   }
1126   else {
1127     manglePrefix(DC, NoFunction);
1128     mangleUnqualifiedName(ND);
1129   }
1130 
1131   Out << 'E';
1132 }
1133 void CXXNameMangler::mangleNestedName(const TemplateDecl *TD,
1134                                       const TemplateArgument *TemplateArgs,
1135                                       unsigned NumTemplateArgs) {
1136   // <nested-name> ::= N [<CV-qualifiers>] <template-prefix> <template-args> E
1137 
1138   Out << 'N';
1139 
1140   mangleTemplatePrefix(TD);
1141   mangleTemplateArgs(TemplateArgs, NumTemplateArgs);
1142 
1143   Out << 'E';
1144 }
1145 
1146 void CXXNameMangler::mangleLocalName(const Decl *D) {
1147   // <local-name> := Z <function encoding> E <entity name> [<discriminator>]
1148   //              := Z <function encoding> E s [<discriminator>]
1149   // <local-name> := Z <function encoding> E d [ <parameter number> ]
1150   //                 _ <entity name>
1151   // <discriminator> := _ <non-negative number>
1152   assert(isa<NamedDecl>(D) || isa<BlockDecl>(D));
1153   const RecordDecl *RD = GetLocalClassDecl(D);
1154   const DeclContext *DC = getEffectiveDeclContext(RD ? RD : D);
1155 
1156   Out << 'Z';
1157 
1158   if (const ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(DC))
1159     mangleObjCMethodName(MD);
1160   else if (const BlockDecl *BD = dyn_cast<BlockDecl>(DC))
1161     mangleBlockForPrefix(BD);
1162   else
1163     mangleFunctionEncoding(cast<FunctionDecl>(DC));
1164 
1165   Out << 'E';
1166 
1167   if (RD) {
1168     // The parameter number is omitted for the last parameter, 0 for the
1169     // second-to-last parameter, 1 for the third-to-last parameter, etc. The
1170     // <entity name> will of course contain a <closure-type-name>: Its
1171     // numbering will be local to the particular argument in which it appears
1172     // -- other default arguments do not affect its encoding.
1173     const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD);
1174     if (CXXRD->isLambda()) {
1175       if (const ParmVarDecl *Parm
1176               = dyn_cast_or_null<ParmVarDecl>(CXXRD->getLambdaContextDecl())) {
1177         if (const FunctionDecl *Func
1178               = dyn_cast<FunctionDecl>(Parm->getDeclContext())) {
1179           Out << 'd';
1180           unsigned Num = Func->getNumParams() - Parm->getFunctionScopeIndex();
1181           if (Num > 1)
1182             mangleNumber(Num - 2);
1183           Out << '_';
1184         }
1185       }
1186     }
1187 
1188     // Mangle the name relative to the closest enclosing function.
1189     // equality ok because RD derived from ND above
1190     if (D == RD)  {
1191       mangleUnqualifiedName(RD);
1192     } else if (const BlockDecl *BD = dyn_cast<BlockDecl>(D)) {
1193       manglePrefix(getEffectiveDeclContext(BD), true /*NoFunction*/);
1194       mangleUnqualifiedBlock(BD);
1195     } else {
1196       const NamedDecl *ND = cast<NamedDecl>(D);
1197       mangleNestedName(ND, getEffectiveDeclContext(ND), true /*NoFunction*/);
1198     }
1199   } else if (const BlockDecl *BD = dyn_cast<BlockDecl>(D)) {
1200     // Mangle a block in a default parameter; see above explanation for
1201     // lambdas.
1202     if (const ParmVarDecl *Parm
1203             = dyn_cast_or_null<ParmVarDecl>(BD->getBlockManglingContextDecl())) {
1204       if (const FunctionDecl *Func
1205             = dyn_cast<FunctionDecl>(Parm->getDeclContext())) {
1206         Out << 'd';
1207         unsigned Num = Func->getNumParams() - Parm->getFunctionScopeIndex();
1208         if (Num > 1)
1209           mangleNumber(Num - 2);
1210         Out << '_';
1211       }
1212     }
1213 
1214     mangleUnqualifiedBlock(BD);
1215   } else {
1216     mangleUnqualifiedName(cast<NamedDecl>(D));
1217   }
1218 
1219   if (const NamedDecl *ND = dyn_cast<NamedDecl>(RD ? RD : D)) {
1220     unsigned disc;
1221     if (Context.getNextDiscriminator(ND, disc)) {
1222       if (disc < 10)
1223         Out << '_' << disc;
1224       else
1225         Out << "__" << disc << '_';
1226     }
1227   }
1228 }
1229 
1230 void CXXNameMangler::mangleBlockForPrefix(const BlockDecl *Block) {
1231   if (GetLocalClassDecl(Block)) {
1232     mangleLocalName(Block);
1233     return;
1234   }
1235   const DeclContext *DC = getEffectiveDeclContext(Block);
1236   if (isLocalContainerContext(DC)) {
1237     mangleLocalName(Block);
1238     return;
1239   }
1240   manglePrefix(getEffectiveDeclContext(Block));
1241   mangleUnqualifiedBlock(Block);
1242 }
1243 
1244 void CXXNameMangler::mangleUnqualifiedBlock(const BlockDecl *Block) {
1245   if (Decl *Context = Block->getBlockManglingContextDecl()) {
1246     if ((isa<VarDecl>(Context) || isa<FieldDecl>(Context)) &&
1247         Context->getDeclContext()->isRecord()) {
1248       if (const IdentifierInfo *Name
1249             = cast<NamedDecl>(Context)->getIdentifier()) {
1250         mangleSourceName(Name);
1251         Out << 'M';
1252       }
1253     }
1254   }
1255 
1256   // If we have a block mangling number, use it.
1257   unsigned Number = Block->getBlockManglingNumber();
1258   // Otherwise, just make up a number. It doesn't matter what it is because
1259   // the symbol in question isn't externally visible.
1260   if (!Number)
1261     Number = Context.getBlockId(Block, false);
1262   Out << "Ub";
1263   if (Number > 0)
1264     Out << Number - 1;
1265   Out << '_';
1266 }
1267 
1268 void CXXNameMangler::mangleLambda(const CXXRecordDecl *Lambda) {
1269   // If the context of a closure type is an initializer for a class member
1270   // (static or nonstatic), it is encoded in a qualified name with a final
1271   // <prefix> of the form:
1272   //
1273   //   <data-member-prefix> := <member source-name> M
1274   //
1275   // Technically, the data-member-prefix is part of the <prefix>. However,
1276   // since a closure type will always be mangled with a prefix, it's easier
1277   // to emit that last part of the prefix here.
1278   if (Decl *Context = Lambda->getLambdaContextDecl()) {
1279     if ((isa<VarDecl>(Context) || isa<FieldDecl>(Context)) &&
1280         Context->getDeclContext()->isRecord()) {
1281       if (const IdentifierInfo *Name
1282             = cast<NamedDecl>(Context)->getIdentifier()) {
1283         mangleSourceName(Name);
1284         Out << 'M';
1285       }
1286     }
1287   }
1288 
1289   Out << "Ul";
1290   const FunctionProtoType *Proto = Lambda->getLambdaTypeInfo()->getType()->
1291                                    getAs<FunctionProtoType>();
1292   mangleBareFunctionType(Proto, /*MangleReturnType=*/false,
1293                          Lambda->getLambdaStaticInvoker());
1294   Out << "E";
1295 
1296   // The number is omitted for the first closure type with a given
1297   // <lambda-sig> in a given context; it is n-2 for the nth closure type
1298   // (in lexical order) with that same <lambda-sig> and context.
1299   //
1300   // The AST keeps track of the number for us.
1301   unsigned Number = Lambda->getLambdaManglingNumber();
1302   assert(Number > 0 && "Lambda should be mangled as an unnamed class");
1303   if (Number > 1)
1304     mangleNumber(Number - 2);
1305   Out << '_';
1306 }
1307 
1308 void CXXNameMangler::manglePrefix(NestedNameSpecifier *qualifier) {
1309   switch (qualifier->getKind()) {
1310   case NestedNameSpecifier::Global:
1311     // nothing
1312     return;
1313 
1314   case NestedNameSpecifier::Super:
1315     llvm_unreachable("Can't mangle __super specifier");
1316 
1317   case NestedNameSpecifier::Namespace:
1318     mangleName(qualifier->getAsNamespace());
1319     return;
1320 
1321   case NestedNameSpecifier::NamespaceAlias:
1322     mangleName(qualifier->getAsNamespaceAlias()->getNamespace());
1323     return;
1324 
1325   case NestedNameSpecifier::TypeSpec:
1326   case NestedNameSpecifier::TypeSpecWithTemplate:
1327     manglePrefix(QualType(qualifier->getAsType(), 0));
1328     return;
1329 
1330   case NestedNameSpecifier::Identifier:
1331     // Member expressions can have these without prefixes, but that
1332     // should end up in mangleUnresolvedPrefix instead.
1333     assert(qualifier->getPrefix());
1334     manglePrefix(qualifier->getPrefix());
1335 
1336     mangleSourceName(qualifier->getAsIdentifier());
1337     return;
1338   }
1339 
1340   llvm_unreachable("unexpected nested name specifier");
1341 }
1342 
1343 void CXXNameMangler::manglePrefix(const DeclContext *DC, bool NoFunction) {
1344   //  <prefix> ::= <prefix> <unqualified-name>
1345   //           ::= <template-prefix> <template-args>
1346   //           ::= <template-param>
1347   //           ::= # empty
1348   //           ::= <substitution>
1349 
1350   DC = IgnoreLinkageSpecDecls(DC);
1351 
1352   if (DC->isTranslationUnit())
1353     return;
1354 
1355   if (NoFunction && isLocalContainerContext(DC))
1356     return;
1357 
1358   assert(!isLocalContainerContext(DC));
1359 
1360   const NamedDecl *ND = cast<NamedDecl>(DC);
1361   if (mangleSubstitution(ND))
1362     return;
1363 
1364   // Check if we have a template.
1365   const TemplateArgumentList *TemplateArgs = nullptr;
1366   if (const TemplateDecl *TD = isTemplate(ND, TemplateArgs)) {
1367     mangleTemplatePrefix(TD);
1368     mangleTemplateArgs(*TemplateArgs);
1369   } else {
1370     manglePrefix(getEffectiveDeclContext(ND), NoFunction);
1371     mangleUnqualifiedName(ND);
1372   }
1373 
1374   addSubstitution(ND);
1375 }
1376 
1377 void CXXNameMangler::mangleTemplatePrefix(TemplateName Template) {
1378   // <template-prefix> ::= <prefix> <template unqualified-name>
1379   //                   ::= <template-param>
1380   //                   ::= <substitution>
1381   if (TemplateDecl *TD = Template.getAsTemplateDecl())
1382     return mangleTemplatePrefix(TD);
1383 
1384   if (QualifiedTemplateName *Qualified = Template.getAsQualifiedTemplateName())
1385     manglePrefix(Qualified->getQualifier());
1386 
1387   if (OverloadedTemplateStorage *Overloaded
1388                                       = Template.getAsOverloadedTemplate()) {
1389     mangleUnqualifiedName(nullptr, (*Overloaded->begin())->getDeclName(),
1390                           UnknownArity);
1391     return;
1392   }
1393 
1394   DependentTemplateName *Dependent = Template.getAsDependentTemplateName();
1395   assert(Dependent && "Unknown template name kind?");
1396   if (NestedNameSpecifier *Qualifier = Dependent->getQualifier())
1397     manglePrefix(Qualifier);
1398   mangleUnscopedTemplateName(Template);
1399 }
1400 
1401 void CXXNameMangler::mangleTemplatePrefix(const TemplateDecl *ND,
1402                                           bool NoFunction) {
1403   // <template-prefix> ::= <prefix> <template unqualified-name>
1404   //                   ::= <template-param>
1405   //                   ::= <substitution>
1406   // <template-template-param> ::= <template-param>
1407   //                               <substitution>
1408 
1409   if (mangleSubstitution(ND))
1410     return;
1411 
1412   // <template-template-param> ::= <template-param>
1413   if (const auto *TTP = dyn_cast<TemplateTemplateParmDecl>(ND)) {
1414     mangleTemplateParameter(TTP->getIndex());
1415   } else {
1416     manglePrefix(getEffectiveDeclContext(ND), NoFunction);
1417     mangleUnqualifiedName(ND->getTemplatedDecl());
1418   }
1419 
1420   addSubstitution(ND);
1421 }
1422 
1423 /// Mangles a template name under the production <type>.  Required for
1424 /// template template arguments.
1425 ///   <type> ::= <class-enum-type>
1426 ///          ::= <template-param>
1427 ///          ::= <substitution>
1428 void CXXNameMangler::mangleType(TemplateName TN) {
1429   if (mangleSubstitution(TN))
1430     return;
1431 
1432   TemplateDecl *TD = nullptr;
1433 
1434   switch (TN.getKind()) {
1435   case TemplateName::QualifiedTemplate:
1436     TD = TN.getAsQualifiedTemplateName()->getTemplateDecl();
1437     goto HaveDecl;
1438 
1439   case TemplateName::Template:
1440     TD = TN.getAsTemplateDecl();
1441     goto HaveDecl;
1442 
1443   HaveDecl:
1444     if (isa<TemplateTemplateParmDecl>(TD))
1445       mangleTemplateParameter(cast<TemplateTemplateParmDecl>(TD)->getIndex());
1446     else
1447       mangleName(TD);
1448     break;
1449 
1450   case TemplateName::OverloadedTemplate:
1451     llvm_unreachable("can't mangle an overloaded template name as a <type>");
1452 
1453   case TemplateName::DependentTemplate: {
1454     const DependentTemplateName *Dependent = TN.getAsDependentTemplateName();
1455     assert(Dependent->isIdentifier());
1456 
1457     // <class-enum-type> ::= <name>
1458     // <name> ::= <nested-name>
1459     mangleUnresolvedPrefix(Dependent->getQualifier());
1460     mangleSourceName(Dependent->getIdentifier());
1461     break;
1462   }
1463 
1464   case TemplateName::SubstTemplateTemplateParm: {
1465     // Substituted template parameters are mangled as the substituted
1466     // template.  This will check for the substitution twice, which is
1467     // fine, but we have to return early so that we don't try to *add*
1468     // the substitution twice.
1469     SubstTemplateTemplateParmStorage *subst
1470       = TN.getAsSubstTemplateTemplateParm();
1471     mangleType(subst->getReplacement());
1472     return;
1473   }
1474 
1475   case TemplateName::SubstTemplateTemplateParmPack: {
1476     // FIXME: not clear how to mangle this!
1477     // template <template <class> class T...> class A {
1478     //   template <template <class> class U...> void foo(B<T,U> x...);
1479     // };
1480     Out << "_SUBSTPACK_";
1481     break;
1482   }
1483   }
1484 
1485   addSubstitution(TN);
1486 }
1487 
1488 bool CXXNameMangler::mangleUnresolvedTypeOrSimpleId(QualType Ty,
1489                                                     StringRef Prefix) {
1490   // Only certain other types are valid as prefixes;  enumerate them.
1491   switch (Ty->getTypeClass()) {
1492   case Type::Builtin:
1493   case Type::Complex:
1494   case Type::Adjusted:
1495   case Type::Decayed:
1496   case Type::Pointer:
1497   case Type::BlockPointer:
1498   case Type::LValueReference:
1499   case Type::RValueReference:
1500   case Type::MemberPointer:
1501   case Type::ConstantArray:
1502   case Type::IncompleteArray:
1503   case Type::VariableArray:
1504   case Type::DependentSizedArray:
1505   case Type::DependentSizedExtVector:
1506   case Type::Vector:
1507   case Type::ExtVector:
1508   case Type::FunctionProto:
1509   case Type::FunctionNoProto:
1510   case Type::Paren:
1511   case Type::Attributed:
1512   case Type::Auto:
1513   case Type::PackExpansion:
1514   case Type::ObjCObject:
1515   case Type::ObjCInterface:
1516   case Type::ObjCObjectPointer:
1517   case Type::Atomic:
1518   case Type::Pipe:
1519     llvm_unreachable("type is illegal as a nested name specifier");
1520 
1521   case Type::SubstTemplateTypeParmPack:
1522     // FIXME: not clear how to mangle this!
1523     // template <class T...> class A {
1524     //   template <class U...> void foo(decltype(T::foo(U())) x...);
1525     // };
1526     Out << "_SUBSTPACK_";
1527     break;
1528 
1529   // <unresolved-type> ::= <template-param>
1530   //                   ::= <decltype>
1531   //                   ::= <template-template-param> <template-args>
1532   // (this last is not official yet)
1533   case Type::TypeOfExpr:
1534   case Type::TypeOf:
1535   case Type::Decltype:
1536   case Type::TemplateTypeParm:
1537   case Type::UnaryTransform:
1538   case Type::SubstTemplateTypeParm:
1539   unresolvedType:
1540     // Some callers want a prefix before the mangled type.
1541     Out << Prefix;
1542 
1543     // This seems to do everything we want.  It's not really
1544     // sanctioned for a substituted template parameter, though.
1545     mangleType(Ty);
1546 
1547     // We never want to print 'E' directly after an unresolved-type,
1548     // so we return directly.
1549     return true;
1550 
1551   case Type::Typedef:
1552     mangleSourceName(cast<TypedefType>(Ty)->getDecl()->getIdentifier());
1553     break;
1554 
1555   case Type::UnresolvedUsing:
1556     mangleSourceName(
1557         cast<UnresolvedUsingType>(Ty)->getDecl()->getIdentifier());
1558     break;
1559 
1560   case Type::Enum:
1561   case Type::Record:
1562     mangleSourceName(cast<TagType>(Ty)->getDecl()->getIdentifier());
1563     break;
1564 
1565   case Type::TemplateSpecialization: {
1566     const TemplateSpecializationType *TST =
1567         cast<TemplateSpecializationType>(Ty);
1568     TemplateName TN = TST->getTemplateName();
1569     switch (TN.getKind()) {
1570     case TemplateName::Template:
1571     case TemplateName::QualifiedTemplate: {
1572       TemplateDecl *TD = TN.getAsTemplateDecl();
1573 
1574       // If the base is a template template parameter, this is an
1575       // unresolved type.
1576       assert(TD && "no template for template specialization type");
1577       if (isa<TemplateTemplateParmDecl>(TD))
1578         goto unresolvedType;
1579 
1580       mangleSourceName(TD->getIdentifier());
1581       break;
1582     }
1583 
1584     case TemplateName::OverloadedTemplate:
1585     case TemplateName::DependentTemplate:
1586       llvm_unreachable("invalid base for a template specialization type");
1587 
1588     case TemplateName::SubstTemplateTemplateParm: {
1589       SubstTemplateTemplateParmStorage *subst =
1590           TN.getAsSubstTemplateTemplateParm();
1591       mangleExistingSubstitution(subst->getReplacement());
1592       break;
1593     }
1594 
1595     case TemplateName::SubstTemplateTemplateParmPack: {
1596       // FIXME: not clear how to mangle this!
1597       // template <template <class U> class T...> class A {
1598       //   template <class U...> void foo(decltype(T<U>::foo) x...);
1599       // };
1600       Out << "_SUBSTPACK_";
1601       break;
1602     }
1603     }
1604 
1605     mangleTemplateArgs(TST->getArgs(), TST->getNumArgs());
1606     break;
1607   }
1608 
1609   case Type::InjectedClassName:
1610     mangleSourceName(
1611         cast<InjectedClassNameType>(Ty)->getDecl()->getIdentifier());
1612     break;
1613 
1614   case Type::DependentName:
1615     mangleSourceName(cast<DependentNameType>(Ty)->getIdentifier());
1616     break;
1617 
1618   case Type::DependentTemplateSpecialization: {
1619     const DependentTemplateSpecializationType *DTST =
1620         cast<DependentTemplateSpecializationType>(Ty);
1621     mangleSourceName(DTST->getIdentifier());
1622     mangleTemplateArgs(DTST->getArgs(), DTST->getNumArgs());
1623     break;
1624   }
1625 
1626   case Type::Elaborated:
1627     return mangleUnresolvedTypeOrSimpleId(
1628         cast<ElaboratedType>(Ty)->getNamedType(), Prefix);
1629   }
1630 
1631   return false;
1632 }
1633 
1634 void CXXNameMangler::mangleOperatorName(DeclarationName Name, unsigned Arity) {
1635   switch (Name.getNameKind()) {
1636   case DeclarationName::CXXConstructorName:
1637   case DeclarationName::CXXDestructorName:
1638   case DeclarationName::CXXUsingDirective:
1639   case DeclarationName::Identifier:
1640   case DeclarationName::ObjCMultiArgSelector:
1641   case DeclarationName::ObjCOneArgSelector:
1642   case DeclarationName::ObjCZeroArgSelector:
1643     llvm_unreachable("Not an operator name");
1644 
1645   case DeclarationName::CXXConversionFunctionName:
1646     // <operator-name> ::= cv <type>    # (cast)
1647     Out << "cv";
1648     mangleType(Name.getCXXNameType());
1649     break;
1650 
1651   case DeclarationName::CXXLiteralOperatorName:
1652     Out << "li";
1653     mangleSourceName(Name.getCXXLiteralIdentifier());
1654     return;
1655 
1656   case DeclarationName::CXXOperatorName:
1657     mangleOperatorName(Name.getCXXOverloadedOperator(), Arity);
1658     break;
1659   }
1660 }
1661 
1662 
1663 
1664 void
1665 CXXNameMangler::mangleOperatorName(OverloadedOperatorKind OO, unsigned Arity) {
1666   switch (OO) {
1667   // <operator-name> ::= nw     # new
1668   case OO_New: Out << "nw"; break;
1669   //              ::= na        # new[]
1670   case OO_Array_New: Out << "na"; break;
1671   //              ::= dl        # delete
1672   case OO_Delete: Out << "dl"; break;
1673   //              ::= da        # delete[]
1674   case OO_Array_Delete: Out << "da"; break;
1675   //              ::= ps        # + (unary)
1676   //              ::= pl        # + (binary or unknown)
1677   case OO_Plus:
1678     Out << (Arity == 1? "ps" : "pl"); break;
1679   //              ::= ng        # - (unary)
1680   //              ::= mi        # - (binary or unknown)
1681   case OO_Minus:
1682     Out << (Arity == 1? "ng" : "mi"); break;
1683   //              ::= ad        # & (unary)
1684   //              ::= an        # & (binary or unknown)
1685   case OO_Amp:
1686     Out << (Arity == 1? "ad" : "an"); break;
1687   //              ::= de        # * (unary)
1688   //              ::= ml        # * (binary or unknown)
1689   case OO_Star:
1690     // Use binary when unknown.
1691     Out << (Arity == 1? "de" : "ml"); break;
1692   //              ::= co        # ~
1693   case OO_Tilde: Out << "co"; break;
1694   //              ::= dv        # /
1695   case OO_Slash: Out << "dv"; break;
1696   //              ::= rm        # %
1697   case OO_Percent: Out << "rm"; break;
1698   //              ::= or        # |
1699   case OO_Pipe: Out << "or"; break;
1700   //              ::= eo        # ^
1701   case OO_Caret: Out << "eo"; break;
1702   //              ::= aS        # =
1703   case OO_Equal: Out << "aS"; break;
1704   //              ::= pL        # +=
1705   case OO_PlusEqual: Out << "pL"; break;
1706   //              ::= mI        # -=
1707   case OO_MinusEqual: Out << "mI"; break;
1708   //              ::= mL        # *=
1709   case OO_StarEqual: Out << "mL"; break;
1710   //              ::= dV        # /=
1711   case OO_SlashEqual: Out << "dV"; break;
1712   //              ::= rM        # %=
1713   case OO_PercentEqual: Out << "rM"; break;
1714   //              ::= aN        # &=
1715   case OO_AmpEqual: Out << "aN"; break;
1716   //              ::= oR        # |=
1717   case OO_PipeEqual: Out << "oR"; break;
1718   //              ::= eO        # ^=
1719   case OO_CaretEqual: Out << "eO"; break;
1720   //              ::= ls        # <<
1721   case OO_LessLess: Out << "ls"; break;
1722   //              ::= rs        # >>
1723   case OO_GreaterGreater: Out << "rs"; break;
1724   //              ::= lS        # <<=
1725   case OO_LessLessEqual: Out << "lS"; break;
1726   //              ::= rS        # >>=
1727   case OO_GreaterGreaterEqual: Out << "rS"; break;
1728   //              ::= eq        # ==
1729   case OO_EqualEqual: Out << "eq"; break;
1730   //              ::= ne        # !=
1731   case OO_ExclaimEqual: Out << "ne"; break;
1732   //              ::= lt        # <
1733   case OO_Less: Out << "lt"; break;
1734   //              ::= gt        # >
1735   case OO_Greater: Out << "gt"; break;
1736   //              ::= le        # <=
1737   case OO_LessEqual: Out << "le"; break;
1738   //              ::= ge        # >=
1739   case OO_GreaterEqual: Out << "ge"; break;
1740   //              ::= nt        # !
1741   case OO_Exclaim: Out << "nt"; break;
1742   //              ::= aa        # &&
1743   case OO_AmpAmp: Out << "aa"; break;
1744   //              ::= oo        # ||
1745   case OO_PipePipe: Out << "oo"; break;
1746   //              ::= pp        # ++
1747   case OO_PlusPlus: Out << "pp"; break;
1748   //              ::= mm        # --
1749   case OO_MinusMinus: Out << "mm"; break;
1750   //              ::= cm        # ,
1751   case OO_Comma: Out << "cm"; break;
1752   //              ::= pm        # ->*
1753   case OO_ArrowStar: Out << "pm"; break;
1754   //              ::= pt        # ->
1755   case OO_Arrow: Out << "pt"; break;
1756   //              ::= cl        # ()
1757   case OO_Call: Out << "cl"; break;
1758   //              ::= ix        # []
1759   case OO_Subscript: Out << "ix"; break;
1760 
1761   //              ::= qu        # ?
1762   // The conditional operator can't be overloaded, but we still handle it when
1763   // mangling expressions.
1764   case OO_Conditional: Out << "qu"; break;
1765   // Proposal on cxx-abi-dev, 2015-10-21.
1766   //              ::= aw        # co_await
1767   case OO_Coawait: Out << "aw"; break;
1768 
1769   case OO_None:
1770   case NUM_OVERLOADED_OPERATORS:
1771     llvm_unreachable("Not an overloaded operator");
1772   }
1773 }
1774 
1775 void CXXNameMangler::mangleQualifiers(Qualifiers Quals) {
1776   // Vendor qualifiers come first.
1777 
1778   // Address space qualifiers start with an ordinary letter.
1779   if (Quals.hasAddressSpace()) {
1780     // Address space extension:
1781     //
1782     //   <type> ::= U <target-addrspace>
1783     //   <type> ::= U <OpenCL-addrspace>
1784     //   <type> ::= U <CUDA-addrspace>
1785 
1786     SmallString<64> ASString;
1787     unsigned AS = Quals.getAddressSpace();
1788 
1789     if (Context.getASTContext().addressSpaceMapManglingFor(AS)) {
1790       //  <target-addrspace> ::= "AS" <address-space-number>
1791       unsigned TargetAS = Context.getASTContext().getTargetAddressSpace(AS);
1792       ASString = "AS" + llvm::utostr(TargetAS);
1793     } else {
1794       switch (AS) {
1795       default: llvm_unreachable("Not a language specific address space");
1796       //  <OpenCL-addrspace> ::= "CL" [ "global" | "local" | "constant" ]
1797       case LangAS::opencl_global:   ASString = "CLglobal";   break;
1798       case LangAS::opencl_local:    ASString = "CLlocal";    break;
1799       case LangAS::opencl_constant: ASString = "CLconstant"; break;
1800       //  <CUDA-addrspace> ::= "CU" [ "device" | "constant" | "shared" ]
1801       case LangAS::cuda_device:     ASString = "CUdevice";   break;
1802       case LangAS::cuda_constant:   ASString = "CUconstant"; break;
1803       case LangAS::cuda_shared:     ASString = "CUshared";   break;
1804       }
1805     }
1806     mangleVendorQualifier(ASString);
1807   }
1808 
1809   // The ARC ownership qualifiers start with underscores.
1810   switch (Quals.getObjCLifetime()) {
1811   // Objective-C ARC Extension:
1812   //
1813   //   <type> ::= U "__strong"
1814   //   <type> ::= U "__weak"
1815   //   <type> ::= U "__autoreleasing"
1816   case Qualifiers::OCL_None:
1817     break;
1818 
1819   case Qualifiers::OCL_Weak:
1820     mangleVendorQualifier("__weak");
1821     break;
1822 
1823   case Qualifiers::OCL_Strong:
1824     mangleVendorQualifier("__strong");
1825     break;
1826 
1827   case Qualifiers::OCL_Autoreleasing:
1828     mangleVendorQualifier("__autoreleasing");
1829     break;
1830 
1831   case Qualifiers::OCL_ExplicitNone:
1832     // The __unsafe_unretained qualifier is *not* mangled, so that
1833     // __unsafe_unretained types in ARC produce the same manglings as the
1834     // equivalent (but, naturally, unqualified) types in non-ARC, providing
1835     // better ABI compatibility.
1836     //
1837     // It's safe to do this because unqualified 'id' won't show up
1838     // in any type signatures that need to be mangled.
1839     break;
1840   }
1841 
1842   // <CV-qualifiers> ::= [r] [V] [K]    # restrict (C99), volatile, const
1843   if (Quals.hasRestrict())
1844     Out << 'r';
1845   if (Quals.hasVolatile())
1846     Out << 'V';
1847   if (Quals.hasConst())
1848     Out << 'K';
1849 }
1850 
1851 void CXXNameMangler::mangleVendorQualifier(StringRef name) {
1852   Out << 'U' << name.size() << name;
1853 }
1854 
1855 void CXXNameMangler::mangleRefQualifier(RefQualifierKind RefQualifier) {
1856   // <ref-qualifier> ::= R                # lvalue reference
1857   //                 ::= O                # rvalue-reference
1858   switch (RefQualifier) {
1859   case RQ_None:
1860     break;
1861 
1862   case RQ_LValue:
1863     Out << 'R';
1864     break;
1865 
1866   case RQ_RValue:
1867     Out << 'O';
1868     break;
1869   }
1870 }
1871 
1872 void CXXNameMangler::mangleObjCMethodName(const ObjCMethodDecl *MD) {
1873   Context.mangleObjCMethodName(MD, Out);
1874 }
1875 
1876 static bool isTypeSubstitutable(Qualifiers Quals, const Type *Ty) {
1877   if (Quals)
1878     return true;
1879   if (Ty->isSpecificBuiltinType(BuiltinType::ObjCSel))
1880     return true;
1881   if (Ty->isOpenCLSpecificType())
1882     return true;
1883   if (Ty->isBuiltinType())
1884     return false;
1885 
1886   return true;
1887 }
1888 
1889 void CXXNameMangler::mangleType(QualType T) {
1890   // If our type is instantiation-dependent but not dependent, we mangle
1891   // it as it was written in the source, removing any top-level sugar.
1892   // Otherwise, use the canonical type.
1893   //
1894   // FIXME: This is an approximation of the instantiation-dependent name
1895   // mangling rules, since we should really be using the type as written and
1896   // augmented via semantic analysis (i.e., with implicit conversions and
1897   // default template arguments) for any instantiation-dependent type.
1898   // Unfortunately, that requires several changes to our AST:
1899   //   - Instantiation-dependent TemplateSpecializationTypes will need to be
1900   //     uniqued, so that we can handle substitutions properly
1901   //   - Default template arguments will need to be represented in the
1902   //     TemplateSpecializationType, since they need to be mangled even though
1903   //     they aren't written.
1904   //   - Conversions on non-type template arguments need to be expressed, since
1905   //     they can affect the mangling of sizeof/alignof.
1906   if (!T->isInstantiationDependentType() || T->isDependentType())
1907     T = T.getCanonicalType();
1908   else {
1909     // Desugar any types that are purely sugar.
1910     do {
1911       // Don't desugar through template specialization types that aren't
1912       // type aliases. We need to mangle the template arguments as written.
1913       if (const TemplateSpecializationType *TST
1914                                       = dyn_cast<TemplateSpecializationType>(T))
1915         if (!TST->isTypeAlias())
1916           break;
1917 
1918       QualType Desugared
1919         = T.getSingleStepDesugaredType(Context.getASTContext());
1920       if (Desugared == T)
1921         break;
1922 
1923       T = Desugared;
1924     } while (true);
1925   }
1926   SplitQualType split = T.split();
1927   Qualifiers quals = split.Quals;
1928   const Type *ty = split.Ty;
1929 
1930   bool isSubstitutable = isTypeSubstitutable(quals, ty);
1931   if (isSubstitutable && mangleSubstitution(T))
1932     return;
1933 
1934   // If we're mangling a qualified array type, push the qualifiers to
1935   // the element type.
1936   if (quals && isa<ArrayType>(T)) {
1937     ty = Context.getASTContext().getAsArrayType(T);
1938     quals = Qualifiers();
1939 
1940     // Note that we don't update T: we want to add the
1941     // substitution at the original type.
1942   }
1943 
1944   if (quals) {
1945     mangleQualifiers(quals);
1946     // Recurse:  even if the qualified type isn't yet substitutable,
1947     // the unqualified type might be.
1948     mangleType(QualType(ty, 0));
1949   } else {
1950     switch (ty->getTypeClass()) {
1951 #define ABSTRACT_TYPE(CLASS, PARENT)
1952 #define NON_CANONICAL_TYPE(CLASS, PARENT) \
1953     case Type::CLASS: \
1954       llvm_unreachable("can't mangle non-canonical type " #CLASS "Type"); \
1955       return;
1956 #define TYPE(CLASS, PARENT) \
1957     case Type::CLASS: \
1958       mangleType(static_cast<const CLASS##Type*>(ty)); \
1959       break;
1960 #include "clang/AST/TypeNodes.def"
1961     }
1962   }
1963 
1964   // Add the substitution.
1965   if (isSubstitutable)
1966     addSubstitution(T);
1967 }
1968 
1969 void CXXNameMangler::mangleNameOrStandardSubstitution(const NamedDecl *ND) {
1970   if (!mangleStandardSubstitution(ND))
1971     mangleName(ND);
1972 }
1973 
1974 void CXXNameMangler::mangleType(const BuiltinType *T) {
1975   //  <type>         ::= <builtin-type>
1976   //  <builtin-type> ::= v  # void
1977   //                 ::= w  # wchar_t
1978   //                 ::= b  # bool
1979   //                 ::= c  # char
1980   //                 ::= a  # signed char
1981   //                 ::= h  # unsigned char
1982   //                 ::= s  # short
1983   //                 ::= t  # unsigned short
1984   //                 ::= i  # int
1985   //                 ::= j  # unsigned int
1986   //                 ::= l  # long
1987   //                 ::= m  # unsigned long
1988   //                 ::= x  # long long, __int64
1989   //                 ::= y  # unsigned long long, __int64
1990   //                 ::= n  # __int128
1991   //                 ::= o  # unsigned __int128
1992   //                 ::= f  # float
1993   //                 ::= d  # double
1994   //                 ::= e  # long double, __float80
1995   // UNSUPPORTED:    ::= g  # __float128
1996   // UNSUPPORTED:    ::= Dd # IEEE 754r decimal floating point (64 bits)
1997   // UNSUPPORTED:    ::= De # IEEE 754r decimal floating point (128 bits)
1998   // UNSUPPORTED:    ::= Df # IEEE 754r decimal floating point (32 bits)
1999   //                 ::= Dh # IEEE 754r half-precision floating point (16 bits)
2000   //                 ::= Di # char32_t
2001   //                 ::= Ds # char16_t
2002   //                 ::= Dn # std::nullptr_t (i.e., decltype(nullptr))
2003   //                 ::= u <source-name>    # vendor extended type
2004   std::string type_name;
2005   switch (T->getKind()) {
2006   case BuiltinType::Void:
2007     Out << 'v';
2008     break;
2009   case BuiltinType::Bool:
2010     Out << 'b';
2011     break;
2012   case BuiltinType::Char_U:
2013   case BuiltinType::Char_S:
2014     Out << 'c';
2015     break;
2016   case BuiltinType::UChar:
2017     Out << 'h';
2018     break;
2019   case BuiltinType::UShort:
2020     Out << 't';
2021     break;
2022   case BuiltinType::UInt:
2023     Out << 'j';
2024     break;
2025   case BuiltinType::ULong:
2026     Out << 'm';
2027     break;
2028   case BuiltinType::ULongLong:
2029     Out << 'y';
2030     break;
2031   case BuiltinType::UInt128:
2032     Out << 'o';
2033     break;
2034   case BuiltinType::SChar:
2035     Out << 'a';
2036     break;
2037   case BuiltinType::WChar_S:
2038   case BuiltinType::WChar_U:
2039     Out << 'w';
2040     break;
2041   case BuiltinType::Char16:
2042     Out << "Ds";
2043     break;
2044   case BuiltinType::Char32:
2045     Out << "Di";
2046     break;
2047   case BuiltinType::Short:
2048     Out << 's';
2049     break;
2050   case BuiltinType::Int:
2051     Out << 'i';
2052     break;
2053   case BuiltinType::Long:
2054     Out << 'l';
2055     break;
2056   case BuiltinType::LongLong:
2057     Out << 'x';
2058     break;
2059   case BuiltinType::Int128:
2060     Out << 'n';
2061     break;
2062   case BuiltinType::Half:
2063     Out << "Dh";
2064     break;
2065   case BuiltinType::Float:
2066     Out << 'f';
2067     break;
2068   case BuiltinType::Double:
2069     Out << 'd';
2070     break;
2071   case BuiltinType::LongDouble:
2072     Out << (getASTContext().getTargetInfo().useFloat128ManglingForLongDouble()
2073                 ? 'g'
2074                 : 'e');
2075     break;
2076   case BuiltinType::NullPtr:
2077     Out << "Dn";
2078     break;
2079 
2080 #define BUILTIN_TYPE(Id, SingletonId)
2081 #define PLACEHOLDER_TYPE(Id, SingletonId) \
2082   case BuiltinType::Id:
2083 #include "clang/AST/BuiltinTypes.def"
2084   case BuiltinType::Dependent:
2085     llvm_unreachable("mangling a placeholder type");
2086   case BuiltinType::ObjCId:
2087     Out << "11objc_object";
2088     break;
2089   case BuiltinType::ObjCClass:
2090     Out << "10objc_class";
2091     break;
2092   case BuiltinType::ObjCSel:
2093     Out << "13objc_selector";
2094     break;
2095 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
2096   case BuiltinType::Id: \
2097     type_name = "ocl_" #ImgType "_" #Suffix; \
2098     Out << type_name.size() << type_name; \
2099     break;
2100 #include "clang/Basic/OpenCLImageTypes.def"
2101   case BuiltinType::OCLSampler:
2102     Out << "11ocl_sampler";
2103     break;
2104   case BuiltinType::OCLEvent:
2105     Out << "9ocl_event";
2106     break;
2107   case BuiltinType::OCLClkEvent:
2108     Out << "12ocl_clkevent";
2109     break;
2110   case BuiltinType::OCLQueue:
2111     Out << "9ocl_queue";
2112     break;
2113   case BuiltinType::OCLNDRange:
2114     Out << "11ocl_ndrange";
2115     break;
2116   case BuiltinType::OCLReserveID:
2117     Out << "13ocl_reserveid";
2118     break;
2119   }
2120 }
2121 
2122 StringRef CXXNameMangler::getCallingConvQualifierName(CallingConv CC) {
2123   switch (CC) {
2124   case CC_C:
2125     return "";
2126 
2127   case CC_X86StdCall:
2128   case CC_X86FastCall:
2129   case CC_X86ThisCall:
2130   case CC_X86VectorCall:
2131   case CC_X86Pascal:
2132   case CC_X86_64Win64:
2133   case CC_X86_64SysV:
2134   case CC_AAPCS:
2135   case CC_AAPCS_VFP:
2136   case CC_IntelOclBicc:
2137   case CC_SpirFunction:
2138   case CC_SpirKernel:
2139   case CC_PreserveMost:
2140   case CC_PreserveAll:
2141     // FIXME: we should be mangling all of the above.
2142     return "";
2143 
2144   case CC_Swift:
2145     return "swiftcall";
2146   }
2147   llvm_unreachable("bad calling convention");
2148 }
2149 
2150 void CXXNameMangler::mangleExtFunctionInfo(const FunctionType *T) {
2151   // Fast path.
2152   if (T->getExtInfo() == FunctionType::ExtInfo())
2153     return;
2154 
2155   // Vendor-specific qualifiers are emitted in reverse alphabetical order.
2156   // This will get more complicated in the future if we mangle other
2157   // things here; but for now, since we mangle ns_returns_retained as
2158   // a qualifier on the result type, we can get away with this:
2159   StringRef CCQualifier = getCallingConvQualifierName(T->getExtInfo().getCC());
2160   if (!CCQualifier.empty())
2161     mangleVendorQualifier(CCQualifier);
2162 
2163   // FIXME: regparm
2164   // FIXME: noreturn
2165 }
2166 
2167 void
2168 CXXNameMangler::mangleExtParameterInfo(FunctionProtoType::ExtParameterInfo PI) {
2169   // Vendor-specific qualifiers are emitted in reverse alphabetical order.
2170 
2171   // Note that these are *not* substitution candidates.  Demanglers might
2172   // have trouble with this if the parameter type is fully substituted.
2173 
2174   switch (PI.getABI()) {
2175   case ParameterABI::Ordinary:
2176     break;
2177 
2178   // All of these start with "swift", so they come before "ns_consumed".
2179   case ParameterABI::SwiftContext:
2180   case ParameterABI::SwiftErrorResult:
2181   case ParameterABI::SwiftIndirectResult:
2182     mangleVendorQualifier(getParameterABISpelling(PI.getABI()));
2183     break;
2184   }
2185 
2186   if (PI.isConsumed())
2187     mangleVendorQualifier("ns_consumed");
2188 }
2189 
2190 // <type>          ::= <function-type>
2191 // <function-type> ::= [<CV-qualifiers>] F [Y]
2192 //                      <bare-function-type> [<ref-qualifier>] E
2193 void CXXNameMangler::mangleType(const FunctionProtoType *T) {
2194   mangleExtFunctionInfo(T);
2195 
2196   // Mangle CV-qualifiers, if present.  These are 'this' qualifiers,
2197   // e.g. "const" in "int (A::*)() const".
2198   mangleQualifiers(Qualifiers::fromCVRMask(T->getTypeQuals()));
2199 
2200   Out << 'F';
2201 
2202   // FIXME: We don't have enough information in the AST to produce the 'Y'
2203   // encoding for extern "C" function types.
2204   mangleBareFunctionType(T, /*MangleReturnType=*/true);
2205 
2206   // Mangle the ref-qualifier, if present.
2207   mangleRefQualifier(T->getRefQualifier());
2208 
2209   Out << 'E';
2210 }
2211 
2212 void CXXNameMangler::mangleType(const FunctionNoProtoType *T) {
2213   // Function types without prototypes can arise when mangling a function type
2214   // within an overloadable function in C. We mangle these as the absence of any
2215   // parameter types (not even an empty parameter list).
2216   Out << 'F';
2217 
2218   FunctionTypeDepthState saved = FunctionTypeDepth.push();
2219 
2220   FunctionTypeDepth.enterResultType();
2221   mangleType(T->getReturnType());
2222   FunctionTypeDepth.leaveResultType();
2223 
2224   FunctionTypeDepth.pop(saved);
2225   Out << 'E';
2226 }
2227 
2228 void CXXNameMangler::mangleBareFunctionType(const FunctionProtoType *Proto,
2229                                             bool MangleReturnType,
2230                                             const FunctionDecl *FD) {
2231   // Record that we're in a function type.  See mangleFunctionParam
2232   // for details on what we're trying to achieve here.
2233   FunctionTypeDepthState saved = FunctionTypeDepth.push();
2234 
2235   // <bare-function-type> ::= <signature type>+
2236   if (MangleReturnType) {
2237     FunctionTypeDepth.enterResultType();
2238 
2239     // Mangle ns_returns_retained as an order-sensitive qualifier here.
2240     if (Proto->getExtInfo().getProducesResult())
2241       mangleVendorQualifier("ns_returns_retained");
2242 
2243     // Mangle the return type without any direct ARC ownership qualifiers.
2244     QualType ReturnTy = Proto->getReturnType();
2245     if (ReturnTy.getObjCLifetime()) {
2246       auto SplitReturnTy = ReturnTy.split();
2247       SplitReturnTy.Quals.removeObjCLifetime();
2248       ReturnTy = getASTContext().getQualifiedType(SplitReturnTy);
2249     }
2250     mangleType(ReturnTy);
2251 
2252     FunctionTypeDepth.leaveResultType();
2253   }
2254 
2255   if (Proto->getNumParams() == 0 && !Proto->isVariadic()) {
2256     //   <builtin-type> ::= v   # void
2257     Out << 'v';
2258 
2259     FunctionTypeDepth.pop(saved);
2260     return;
2261   }
2262 
2263   assert(!FD || FD->getNumParams() == Proto->getNumParams());
2264   for (unsigned I = 0, E = Proto->getNumParams(); I != E; ++I) {
2265     // Mangle extended parameter info as order-sensitive qualifiers here.
2266     if (Proto->hasExtParameterInfos()) {
2267       mangleExtParameterInfo(Proto->getExtParameterInfo(I));
2268     }
2269 
2270     // Mangle the type.
2271     QualType ParamTy = Proto->getParamType(I);
2272     mangleType(Context.getASTContext().getSignatureParameterType(ParamTy));
2273 
2274     if (FD) {
2275       if (auto *Attr = FD->getParamDecl(I)->getAttr<PassObjectSizeAttr>()) {
2276         // Attr can only take 1 character, so we can hardcode the length below.
2277         assert(Attr->getType() <= 9 && Attr->getType() >= 0);
2278         Out << "U17pass_object_size" << Attr->getType();
2279       }
2280     }
2281   }
2282 
2283   FunctionTypeDepth.pop(saved);
2284 
2285   // <builtin-type>      ::= z  # ellipsis
2286   if (Proto->isVariadic())
2287     Out << 'z';
2288 }
2289 
2290 // <type>            ::= <class-enum-type>
2291 // <class-enum-type> ::= <name>
2292 void CXXNameMangler::mangleType(const UnresolvedUsingType *T) {
2293   mangleName(T->getDecl());
2294 }
2295 
2296 // <type>            ::= <class-enum-type>
2297 // <class-enum-type> ::= <name>
2298 void CXXNameMangler::mangleType(const EnumType *T) {
2299   mangleType(static_cast<const TagType*>(T));
2300 }
2301 void CXXNameMangler::mangleType(const RecordType *T) {
2302   mangleType(static_cast<const TagType*>(T));
2303 }
2304 void CXXNameMangler::mangleType(const TagType *T) {
2305   mangleName(T->getDecl());
2306 }
2307 
2308 // <type>       ::= <array-type>
2309 // <array-type> ::= A <positive dimension number> _ <element type>
2310 //              ::= A [<dimension expression>] _ <element type>
2311 void CXXNameMangler::mangleType(const ConstantArrayType *T) {
2312   Out << 'A' << T->getSize() << '_';
2313   mangleType(T->getElementType());
2314 }
2315 void CXXNameMangler::mangleType(const VariableArrayType *T) {
2316   Out << 'A';
2317   // decayed vla types (size 0) will just be skipped.
2318   if (T->getSizeExpr())
2319     mangleExpression(T->getSizeExpr());
2320   Out << '_';
2321   mangleType(T->getElementType());
2322 }
2323 void CXXNameMangler::mangleType(const DependentSizedArrayType *T) {
2324   Out << 'A';
2325   mangleExpression(T->getSizeExpr());
2326   Out << '_';
2327   mangleType(T->getElementType());
2328 }
2329 void CXXNameMangler::mangleType(const IncompleteArrayType *T) {
2330   Out << "A_";
2331   mangleType(T->getElementType());
2332 }
2333 
2334 // <type>                   ::= <pointer-to-member-type>
2335 // <pointer-to-member-type> ::= M <class type> <member type>
2336 void CXXNameMangler::mangleType(const MemberPointerType *T) {
2337   Out << 'M';
2338   mangleType(QualType(T->getClass(), 0));
2339   QualType PointeeType = T->getPointeeType();
2340   if (const FunctionProtoType *FPT = dyn_cast<FunctionProtoType>(PointeeType)) {
2341     mangleType(FPT);
2342 
2343     // Itanium C++ ABI 5.1.8:
2344     //
2345     //   The type of a non-static member function is considered to be different,
2346     //   for the purposes of substitution, from the type of a namespace-scope or
2347     //   static member function whose type appears similar. The types of two
2348     //   non-static member functions are considered to be different, for the
2349     //   purposes of substitution, if the functions are members of different
2350     //   classes. In other words, for the purposes of substitution, the class of
2351     //   which the function is a member is considered part of the type of
2352     //   function.
2353 
2354     // Given that we already substitute member function pointers as a
2355     // whole, the net effect of this rule is just to unconditionally
2356     // suppress substitution on the function type in a member pointer.
2357     // We increment the SeqID here to emulate adding an entry to the
2358     // substitution table.
2359     ++SeqID;
2360   } else
2361     mangleType(PointeeType);
2362 }
2363 
2364 // <type>           ::= <template-param>
2365 void CXXNameMangler::mangleType(const TemplateTypeParmType *T) {
2366   mangleTemplateParameter(T->getIndex());
2367 }
2368 
2369 // <type>           ::= <template-param>
2370 void CXXNameMangler::mangleType(const SubstTemplateTypeParmPackType *T) {
2371   // FIXME: not clear how to mangle this!
2372   // template <class T...> class A {
2373   //   template <class U...> void foo(T(*)(U) x...);
2374   // };
2375   Out << "_SUBSTPACK_";
2376 }
2377 
2378 // <type> ::= P <type>   # pointer-to
2379 void CXXNameMangler::mangleType(const PointerType *T) {
2380   Out << 'P';
2381   mangleType(T->getPointeeType());
2382 }
2383 void CXXNameMangler::mangleType(const ObjCObjectPointerType *T) {
2384   Out << 'P';
2385   mangleType(T->getPointeeType());
2386 }
2387 
2388 // <type> ::= R <type>   # reference-to
2389 void CXXNameMangler::mangleType(const LValueReferenceType *T) {
2390   Out << 'R';
2391   mangleType(T->getPointeeType());
2392 }
2393 
2394 // <type> ::= O <type>   # rvalue reference-to (C++0x)
2395 void CXXNameMangler::mangleType(const RValueReferenceType *T) {
2396   Out << 'O';
2397   mangleType(T->getPointeeType());
2398 }
2399 
2400 // <type> ::= C <type>   # complex pair (C 2000)
2401 void CXXNameMangler::mangleType(const ComplexType *T) {
2402   Out << 'C';
2403   mangleType(T->getElementType());
2404 }
2405 
2406 // ARM's ABI for Neon vector types specifies that they should be mangled as
2407 // if they are structs (to match ARM's initial implementation).  The
2408 // vector type must be one of the special types predefined by ARM.
2409 void CXXNameMangler::mangleNeonVectorType(const VectorType *T) {
2410   QualType EltType = T->getElementType();
2411   assert(EltType->isBuiltinType() && "Neon vector element not a BuiltinType");
2412   const char *EltName = nullptr;
2413   if (T->getVectorKind() == VectorType::NeonPolyVector) {
2414     switch (cast<BuiltinType>(EltType)->getKind()) {
2415     case BuiltinType::SChar:
2416     case BuiltinType::UChar:
2417       EltName = "poly8_t";
2418       break;
2419     case BuiltinType::Short:
2420     case BuiltinType::UShort:
2421       EltName = "poly16_t";
2422       break;
2423     case BuiltinType::ULongLong:
2424       EltName = "poly64_t";
2425       break;
2426     default: llvm_unreachable("unexpected Neon polynomial vector element type");
2427     }
2428   } else {
2429     switch (cast<BuiltinType>(EltType)->getKind()) {
2430     case BuiltinType::SChar:     EltName = "int8_t"; break;
2431     case BuiltinType::UChar:     EltName = "uint8_t"; break;
2432     case BuiltinType::Short:     EltName = "int16_t"; break;
2433     case BuiltinType::UShort:    EltName = "uint16_t"; break;
2434     case BuiltinType::Int:       EltName = "int32_t"; break;
2435     case BuiltinType::UInt:      EltName = "uint32_t"; break;
2436     case BuiltinType::LongLong:  EltName = "int64_t"; break;
2437     case BuiltinType::ULongLong: EltName = "uint64_t"; break;
2438     case BuiltinType::Double:    EltName = "float64_t"; break;
2439     case BuiltinType::Float:     EltName = "float32_t"; break;
2440     case BuiltinType::Half:      EltName = "float16_t";break;
2441     default:
2442       llvm_unreachable("unexpected Neon vector element type");
2443     }
2444   }
2445   const char *BaseName = nullptr;
2446   unsigned BitSize = (T->getNumElements() *
2447                       getASTContext().getTypeSize(EltType));
2448   if (BitSize == 64)
2449     BaseName = "__simd64_";
2450   else {
2451     assert(BitSize == 128 && "Neon vector type not 64 or 128 bits");
2452     BaseName = "__simd128_";
2453   }
2454   Out << strlen(BaseName) + strlen(EltName);
2455   Out << BaseName << EltName;
2456 }
2457 
2458 static StringRef mangleAArch64VectorBase(const BuiltinType *EltType) {
2459   switch (EltType->getKind()) {
2460   case BuiltinType::SChar:
2461     return "Int8";
2462   case BuiltinType::Short:
2463     return "Int16";
2464   case BuiltinType::Int:
2465     return "Int32";
2466   case BuiltinType::Long:
2467   case BuiltinType::LongLong:
2468     return "Int64";
2469   case BuiltinType::UChar:
2470     return "Uint8";
2471   case BuiltinType::UShort:
2472     return "Uint16";
2473   case BuiltinType::UInt:
2474     return "Uint32";
2475   case BuiltinType::ULong:
2476   case BuiltinType::ULongLong:
2477     return "Uint64";
2478   case BuiltinType::Half:
2479     return "Float16";
2480   case BuiltinType::Float:
2481     return "Float32";
2482   case BuiltinType::Double:
2483     return "Float64";
2484   default:
2485     llvm_unreachable("Unexpected vector element base type");
2486   }
2487 }
2488 
2489 // AArch64's ABI for Neon vector types specifies that they should be mangled as
2490 // the equivalent internal name. The vector type must be one of the special
2491 // types predefined by ARM.
2492 void CXXNameMangler::mangleAArch64NeonVectorType(const VectorType *T) {
2493   QualType EltType = T->getElementType();
2494   assert(EltType->isBuiltinType() && "Neon vector element not a BuiltinType");
2495   unsigned BitSize =
2496       (T->getNumElements() * getASTContext().getTypeSize(EltType));
2497   (void)BitSize; // Silence warning.
2498 
2499   assert((BitSize == 64 || BitSize == 128) &&
2500          "Neon vector type not 64 or 128 bits");
2501 
2502   StringRef EltName;
2503   if (T->getVectorKind() == VectorType::NeonPolyVector) {
2504     switch (cast<BuiltinType>(EltType)->getKind()) {
2505     case BuiltinType::UChar:
2506       EltName = "Poly8";
2507       break;
2508     case BuiltinType::UShort:
2509       EltName = "Poly16";
2510       break;
2511     case BuiltinType::ULong:
2512     case BuiltinType::ULongLong:
2513       EltName = "Poly64";
2514       break;
2515     default:
2516       llvm_unreachable("unexpected Neon polynomial vector element type");
2517     }
2518   } else
2519     EltName = mangleAArch64VectorBase(cast<BuiltinType>(EltType));
2520 
2521   std::string TypeName =
2522       ("__" + EltName + "x" + Twine(T->getNumElements()) + "_t").str();
2523   Out << TypeName.length() << TypeName;
2524 }
2525 
2526 // GNU extension: vector types
2527 // <type>                  ::= <vector-type>
2528 // <vector-type>           ::= Dv <positive dimension number> _
2529 //                                    <extended element type>
2530 //                         ::= Dv [<dimension expression>] _ <element type>
2531 // <extended element type> ::= <element type>
2532 //                         ::= p # AltiVec vector pixel
2533 //                         ::= b # Altivec vector bool
2534 void CXXNameMangler::mangleType(const VectorType *T) {
2535   if ((T->getVectorKind() == VectorType::NeonVector ||
2536        T->getVectorKind() == VectorType::NeonPolyVector)) {
2537     llvm::Triple Target = getASTContext().getTargetInfo().getTriple();
2538     llvm::Triple::ArchType Arch =
2539         getASTContext().getTargetInfo().getTriple().getArch();
2540     if ((Arch == llvm::Triple::aarch64 ||
2541          Arch == llvm::Triple::aarch64_be) && !Target.isOSDarwin())
2542       mangleAArch64NeonVectorType(T);
2543     else
2544       mangleNeonVectorType(T);
2545     return;
2546   }
2547   Out << "Dv" << T->getNumElements() << '_';
2548   if (T->getVectorKind() == VectorType::AltiVecPixel)
2549     Out << 'p';
2550   else if (T->getVectorKind() == VectorType::AltiVecBool)
2551     Out << 'b';
2552   else
2553     mangleType(T->getElementType());
2554 }
2555 void CXXNameMangler::mangleType(const ExtVectorType *T) {
2556   mangleType(static_cast<const VectorType*>(T));
2557 }
2558 void CXXNameMangler::mangleType(const DependentSizedExtVectorType *T) {
2559   Out << "Dv";
2560   mangleExpression(T->getSizeExpr());
2561   Out << '_';
2562   mangleType(T->getElementType());
2563 }
2564 
2565 void CXXNameMangler::mangleType(const PackExpansionType *T) {
2566   // <type>  ::= Dp <type>          # pack expansion (C++0x)
2567   Out << "Dp";
2568   mangleType(T->getPattern());
2569 }
2570 
2571 void CXXNameMangler::mangleType(const ObjCInterfaceType *T) {
2572   mangleSourceName(T->getDecl()->getIdentifier());
2573 }
2574 
2575 void CXXNameMangler::mangleType(const ObjCObjectType *T) {
2576   // Treat __kindof as a vendor extended type qualifier.
2577   if (T->isKindOfType())
2578     Out << "U8__kindof";
2579 
2580   if (!T->qual_empty()) {
2581     // Mangle protocol qualifiers.
2582     SmallString<64> QualStr;
2583     llvm::raw_svector_ostream QualOS(QualStr);
2584     QualOS << "objcproto";
2585     for (const auto *I : T->quals()) {
2586       StringRef name = I->getName();
2587       QualOS << name.size() << name;
2588     }
2589     Out << 'U' << QualStr.size() << QualStr;
2590   }
2591 
2592   mangleType(T->getBaseType());
2593 
2594   if (T->isSpecialized()) {
2595     // Mangle type arguments as I <type>+ E
2596     Out << 'I';
2597     for (auto typeArg : T->getTypeArgs())
2598       mangleType(typeArg);
2599     Out << 'E';
2600   }
2601 }
2602 
2603 void CXXNameMangler::mangleType(const BlockPointerType *T) {
2604   Out << "U13block_pointer";
2605   mangleType(T->getPointeeType());
2606 }
2607 
2608 void CXXNameMangler::mangleType(const InjectedClassNameType *T) {
2609   // Mangle injected class name types as if the user had written the
2610   // specialization out fully.  It may not actually be possible to see
2611   // this mangling, though.
2612   mangleType(T->getInjectedSpecializationType());
2613 }
2614 
2615 void CXXNameMangler::mangleType(const TemplateSpecializationType *T) {
2616   if (TemplateDecl *TD = T->getTemplateName().getAsTemplateDecl()) {
2617     mangleName(TD, T->getArgs(), T->getNumArgs());
2618   } else {
2619     if (mangleSubstitution(QualType(T, 0)))
2620       return;
2621 
2622     mangleTemplatePrefix(T->getTemplateName());
2623 
2624     // FIXME: GCC does not appear to mangle the template arguments when
2625     // the template in question is a dependent template name. Should we
2626     // emulate that badness?
2627     mangleTemplateArgs(T->getArgs(), T->getNumArgs());
2628     addSubstitution(QualType(T, 0));
2629   }
2630 }
2631 
2632 void CXXNameMangler::mangleType(const DependentNameType *T) {
2633   // Proposal by cxx-abi-dev, 2014-03-26
2634   // <class-enum-type> ::= <name>    # non-dependent or dependent type name or
2635   //                                 # dependent elaborated type specifier using
2636   //                                 # 'typename'
2637   //                   ::= Ts <name> # dependent elaborated type specifier using
2638   //                                 # 'struct' or 'class'
2639   //                   ::= Tu <name> # dependent elaborated type specifier using
2640   //                                 # 'union'
2641   //                   ::= Te <name> # dependent elaborated type specifier using
2642   //                                 # 'enum'
2643   switch (T->getKeyword()) {
2644     case ETK_Typename:
2645       break;
2646     case ETK_Struct:
2647     case ETK_Class:
2648     case ETK_Interface:
2649       Out << "Ts";
2650       break;
2651     case ETK_Union:
2652       Out << "Tu";
2653       break;
2654     case ETK_Enum:
2655       Out << "Te";
2656       break;
2657     default:
2658       llvm_unreachable("unexpected keyword for dependent type name");
2659   }
2660   // Typename types are always nested
2661   Out << 'N';
2662   manglePrefix(T->getQualifier());
2663   mangleSourceName(T->getIdentifier());
2664   Out << 'E';
2665 }
2666 
2667 void CXXNameMangler::mangleType(const DependentTemplateSpecializationType *T) {
2668   // Dependently-scoped template types are nested if they have a prefix.
2669   Out << 'N';
2670 
2671   // TODO: avoid making this TemplateName.
2672   TemplateName Prefix =
2673     getASTContext().getDependentTemplateName(T->getQualifier(),
2674                                              T->getIdentifier());
2675   mangleTemplatePrefix(Prefix);
2676 
2677   // FIXME: GCC does not appear to mangle the template arguments when
2678   // the template in question is a dependent template name. Should we
2679   // emulate that badness?
2680   mangleTemplateArgs(T->getArgs(), T->getNumArgs());
2681   Out << 'E';
2682 }
2683 
2684 void CXXNameMangler::mangleType(const TypeOfType *T) {
2685   // FIXME: this is pretty unsatisfactory, but there isn't an obvious
2686   // "extension with parameters" mangling.
2687   Out << "u6typeof";
2688 }
2689 
2690 void CXXNameMangler::mangleType(const TypeOfExprType *T) {
2691   // FIXME: this is pretty unsatisfactory, but there isn't an obvious
2692   // "extension with parameters" mangling.
2693   Out << "u6typeof";
2694 }
2695 
2696 void CXXNameMangler::mangleType(const DecltypeType *T) {
2697   Expr *E = T->getUnderlyingExpr();
2698 
2699   // type ::= Dt <expression> E  # decltype of an id-expression
2700   //                             #   or class member access
2701   //      ::= DT <expression> E  # decltype of an expression
2702 
2703   // This purports to be an exhaustive list of id-expressions and
2704   // class member accesses.  Note that we do not ignore parentheses;
2705   // parentheses change the semantics of decltype for these
2706   // expressions (and cause the mangler to use the other form).
2707   if (isa<DeclRefExpr>(E) ||
2708       isa<MemberExpr>(E) ||
2709       isa<UnresolvedLookupExpr>(E) ||
2710       isa<DependentScopeDeclRefExpr>(E) ||
2711       isa<CXXDependentScopeMemberExpr>(E) ||
2712       isa<UnresolvedMemberExpr>(E))
2713     Out << "Dt";
2714   else
2715     Out << "DT";
2716   mangleExpression(E);
2717   Out << 'E';
2718 }
2719 
2720 void CXXNameMangler::mangleType(const UnaryTransformType *T) {
2721   // If this is dependent, we need to record that. If not, we simply
2722   // mangle it as the underlying type since they are equivalent.
2723   if (T->isDependentType()) {
2724     Out << 'U';
2725 
2726     switch (T->getUTTKind()) {
2727       case UnaryTransformType::EnumUnderlyingType:
2728         Out << "3eut";
2729         break;
2730     }
2731   }
2732 
2733   mangleType(T->getUnderlyingType());
2734 }
2735 
2736 void CXXNameMangler::mangleType(const AutoType *T) {
2737   QualType D = T->getDeducedType();
2738   // <builtin-type> ::= Da  # dependent auto
2739   if (D.isNull()) {
2740     assert(T->getKeyword() != AutoTypeKeyword::GNUAutoType &&
2741            "shouldn't need to mangle __auto_type!");
2742     Out << (T->isDecltypeAuto() ? "Dc" : "Da");
2743   } else
2744     mangleType(D);
2745 }
2746 
2747 void CXXNameMangler::mangleType(const AtomicType *T) {
2748   // <type> ::= U <source-name> <type>  # vendor extended type qualifier
2749   // (Until there's a standardized mangling...)
2750   Out << "U7_Atomic";
2751   mangleType(T->getValueType());
2752 }
2753 
2754 void CXXNameMangler::mangleType(const PipeType *T) {
2755   // Pipe type mangling rules are described in SPIR 2.0 specification
2756   // A.1 Data types and A.3 Summary of changes
2757   // <type> ::= 8ocl_pipe
2758   Out << "8ocl_pipe";
2759 }
2760 
2761 void CXXNameMangler::mangleIntegerLiteral(QualType T,
2762                                           const llvm::APSInt &Value) {
2763   //  <expr-primary> ::= L <type> <value number> E # integer literal
2764   Out << 'L';
2765 
2766   mangleType(T);
2767   if (T->isBooleanType()) {
2768     // Boolean values are encoded as 0/1.
2769     Out << (Value.getBoolValue() ? '1' : '0');
2770   } else {
2771     mangleNumber(Value);
2772   }
2773   Out << 'E';
2774 
2775 }
2776 
2777 void CXXNameMangler::mangleMemberExprBase(const Expr *Base, bool IsArrow) {
2778   // Ignore member expressions involving anonymous unions.
2779   while (const auto *RT = Base->getType()->getAs<RecordType>()) {
2780     if (!RT->getDecl()->isAnonymousStructOrUnion())
2781       break;
2782     const auto *ME = dyn_cast<MemberExpr>(Base);
2783     if (!ME)
2784       break;
2785     Base = ME->getBase();
2786     IsArrow = ME->isArrow();
2787   }
2788 
2789   if (Base->isImplicitCXXThis()) {
2790     // Note: GCC mangles member expressions to the implicit 'this' as
2791     // *this., whereas we represent them as this->. The Itanium C++ ABI
2792     // does not specify anything here, so we follow GCC.
2793     Out << "dtdefpT";
2794   } else {
2795     Out << (IsArrow ? "pt" : "dt");
2796     mangleExpression(Base);
2797   }
2798 }
2799 
2800 /// Mangles a member expression.
2801 void CXXNameMangler::mangleMemberExpr(const Expr *base,
2802                                       bool isArrow,
2803                                       NestedNameSpecifier *qualifier,
2804                                       NamedDecl *firstQualifierLookup,
2805                                       DeclarationName member,
2806                                       unsigned arity) {
2807   // <expression> ::= dt <expression> <unresolved-name>
2808   //              ::= pt <expression> <unresolved-name>
2809   if (base)
2810     mangleMemberExprBase(base, isArrow);
2811   mangleUnresolvedName(qualifier, member, arity);
2812 }
2813 
2814 /// Look at the callee of the given call expression and determine if
2815 /// it's a parenthesized id-expression which would have triggered ADL
2816 /// otherwise.
2817 static bool isParenthesizedADLCallee(const CallExpr *call) {
2818   const Expr *callee = call->getCallee();
2819   const Expr *fn = callee->IgnoreParens();
2820 
2821   // Must be parenthesized.  IgnoreParens() skips __extension__ nodes,
2822   // too, but for those to appear in the callee, it would have to be
2823   // parenthesized.
2824   if (callee == fn) return false;
2825 
2826   // Must be an unresolved lookup.
2827   const UnresolvedLookupExpr *lookup = dyn_cast<UnresolvedLookupExpr>(fn);
2828   if (!lookup) return false;
2829 
2830   assert(!lookup->requiresADL());
2831 
2832   // Must be an unqualified lookup.
2833   if (lookup->getQualifier()) return false;
2834 
2835   // Must not have found a class member.  Note that if one is a class
2836   // member, they're all class members.
2837   if (lookup->getNumDecls() > 0 &&
2838       (*lookup->decls_begin())->isCXXClassMember())
2839     return false;
2840 
2841   // Otherwise, ADL would have been triggered.
2842   return true;
2843 }
2844 
2845 void CXXNameMangler::mangleCastExpression(const Expr *E, StringRef CastEncoding) {
2846   const ExplicitCastExpr *ECE = cast<ExplicitCastExpr>(E);
2847   Out << CastEncoding;
2848   mangleType(ECE->getType());
2849   mangleExpression(ECE->getSubExpr());
2850 }
2851 
2852 void CXXNameMangler::mangleInitListElements(const InitListExpr *InitList) {
2853   if (auto *Syntactic = InitList->getSyntacticForm())
2854     InitList = Syntactic;
2855   for (unsigned i = 0, e = InitList->getNumInits(); i != e; ++i)
2856     mangleExpression(InitList->getInit(i));
2857 }
2858 
2859 void CXXNameMangler::mangleExpression(const Expr *E, unsigned Arity) {
2860   // <expression> ::= <unary operator-name> <expression>
2861   //              ::= <binary operator-name> <expression> <expression>
2862   //              ::= <trinary operator-name> <expression> <expression> <expression>
2863   //              ::= cv <type> expression           # conversion with one argument
2864   //              ::= cv <type> _ <expression>* E # conversion with a different number of arguments
2865   //              ::= dc <type> <expression>         # dynamic_cast<type> (expression)
2866   //              ::= sc <type> <expression>         # static_cast<type> (expression)
2867   //              ::= cc <type> <expression>         # const_cast<type> (expression)
2868   //              ::= rc <type> <expression>         # reinterpret_cast<type> (expression)
2869   //              ::= st <type>                      # sizeof (a type)
2870   //              ::= at <type>                      # alignof (a type)
2871   //              ::= <template-param>
2872   //              ::= <function-param>
2873   //              ::= sr <type> <unqualified-name>                   # dependent name
2874   //              ::= sr <type> <unqualified-name> <template-args>   # dependent template-id
2875   //              ::= ds <expression> <expression>                   # expr.*expr
2876   //              ::= sZ <template-param>                            # size of a parameter pack
2877   //              ::= sZ <function-param>    # size of a function parameter pack
2878   //              ::= <expr-primary>
2879   // <expr-primary> ::= L <type> <value number> E    # integer literal
2880   //                ::= L <type <value float> E      # floating literal
2881   //                ::= L <mangled-name> E           # external name
2882   //                ::= fpT                          # 'this' expression
2883   QualType ImplicitlyConvertedToType;
2884 
2885 recurse:
2886   switch (E->getStmtClass()) {
2887   case Expr::NoStmtClass:
2888 #define ABSTRACT_STMT(Type)
2889 #define EXPR(Type, Base)
2890 #define STMT(Type, Base) \
2891   case Expr::Type##Class:
2892 #include "clang/AST/StmtNodes.inc"
2893     // fallthrough
2894 
2895   // These all can only appear in local or variable-initialization
2896   // contexts and so should never appear in a mangling.
2897   case Expr::AddrLabelExprClass:
2898   case Expr::DesignatedInitUpdateExprClass:
2899   case Expr::ImplicitValueInitExprClass:
2900   case Expr::NoInitExprClass:
2901   case Expr::ParenListExprClass:
2902   case Expr::LambdaExprClass:
2903   case Expr::MSPropertyRefExprClass:
2904   case Expr::MSPropertySubscriptExprClass:
2905   case Expr::TypoExprClass:  // This should no longer exist in the AST by now.
2906   case Expr::OMPArraySectionExprClass:
2907     llvm_unreachable("unexpected statement kind");
2908 
2909   // FIXME: invent manglings for all these.
2910   case Expr::BlockExprClass:
2911   case Expr::ChooseExprClass:
2912   case Expr::CompoundLiteralExprClass:
2913   case Expr::DesignatedInitExprClass:
2914   case Expr::ExtVectorElementExprClass:
2915   case Expr::GenericSelectionExprClass:
2916   case Expr::ObjCEncodeExprClass:
2917   case Expr::ObjCIsaExprClass:
2918   case Expr::ObjCIvarRefExprClass:
2919   case Expr::ObjCMessageExprClass:
2920   case Expr::ObjCPropertyRefExprClass:
2921   case Expr::ObjCProtocolExprClass:
2922   case Expr::ObjCSelectorExprClass:
2923   case Expr::ObjCStringLiteralClass:
2924   case Expr::ObjCBoxedExprClass:
2925   case Expr::ObjCArrayLiteralClass:
2926   case Expr::ObjCDictionaryLiteralClass:
2927   case Expr::ObjCSubscriptRefExprClass:
2928   case Expr::ObjCIndirectCopyRestoreExprClass:
2929   case Expr::OffsetOfExprClass:
2930   case Expr::PredefinedExprClass:
2931   case Expr::ShuffleVectorExprClass:
2932   case Expr::ConvertVectorExprClass:
2933   case Expr::StmtExprClass:
2934   case Expr::TypeTraitExprClass:
2935   case Expr::ArrayTypeTraitExprClass:
2936   case Expr::ExpressionTraitExprClass:
2937   case Expr::VAArgExprClass:
2938   case Expr::CUDAKernelCallExprClass:
2939   case Expr::AsTypeExprClass:
2940   case Expr::PseudoObjectExprClass:
2941   case Expr::AtomicExprClass:
2942   {
2943     // As bad as this diagnostic is, it's better than crashing.
2944     DiagnosticsEngine &Diags = Context.getDiags();
2945     unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
2946                                      "cannot yet mangle expression type %0");
2947     Diags.Report(E->getExprLoc(), DiagID)
2948       << E->getStmtClassName() << E->getSourceRange();
2949     break;
2950   }
2951 
2952   case Expr::CXXUuidofExprClass: {
2953     const CXXUuidofExpr *UE = cast<CXXUuidofExpr>(E);
2954     if (UE->isTypeOperand()) {
2955       QualType UuidT = UE->getTypeOperand(Context.getASTContext());
2956       Out << "u8__uuidoft";
2957       mangleType(UuidT);
2958     } else {
2959       Expr *UuidExp = UE->getExprOperand();
2960       Out << "u8__uuidofz";
2961       mangleExpression(UuidExp, Arity);
2962     }
2963     break;
2964   }
2965 
2966   // Even gcc-4.5 doesn't mangle this.
2967   case Expr::BinaryConditionalOperatorClass: {
2968     DiagnosticsEngine &Diags = Context.getDiags();
2969     unsigned DiagID =
2970       Diags.getCustomDiagID(DiagnosticsEngine::Error,
2971                 "?: operator with omitted middle operand cannot be mangled");
2972     Diags.Report(E->getExprLoc(), DiagID)
2973       << E->getStmtClassName() << E->getSourceRange();
2974     break;
2975   }
2976 
2977   // These are used for internal purposes and cannot be meaningfully mangled.
2978   case Expr::OpaqueValueExprClass:
2979     llvm_unreachable("cannot mangle opaque value; mangling wrong thing?");
2980 
2981   case Expr::InitListExprClass: {
2982     Out << "il";
2983     mangleInitListElements(cast<InitListExpr>(E));
2984     Out << "E";
2985     break;
2986   }
2987 
2988   case Expr::CXXDefaultArgExprClass:
2989     mangleExpression(cast<CXXDefaultArgExpr>(E)->getExpr(), Arity);
2990     break;
2991 
2992   case Expr::CXXDefaultInitExprClass:
2993     mangleExpression(cast<CXXDefaultInitExpr>(E)->getExpr(), Arity);
2994     break;
2995 
2996   case Expr::CXXStdInitializerListExprClass:
2997     mangleExpression(cast<CXXStdInitializerListExpr>(E)->getSubExpr(), Arity);
2998     break;
2999 
3000   case Expr::SubstNonTypeTemplateParmExprClass:
3001     mangleExpression(cast<SubstNonTypeTemplateParmExpr>(E)->getReplacement(),
3002                      Arity);
3003     break;
3004 
3005   case Expr::UserDefinedLiteralClass:
3006     // We follow g++'s approach of mangling a UDL as a call to the literal
3007     // operator.
3008   case Expr::CXXMemberCallExprClass: // fallthrough
3009   case Expr::CallExprClass: {
3010     const CallExpr *CE = cast<CallExpr>(E);
3011 
3012     // <expression> ::= cp <simple-id> <expression>* E
3013     // We use this mangling only when the call would use ADL except
3014     // for being parenthesized.  Per discussion with David
3015     // Vandervoorde, 2011.04.25.
3016     if (isParenthesizedADLCallee(CE)) {
3017       Out << "cp";
3018       // The callee here is a parenthesized UnresolvedLookupExpr with
3019       // no qualifier and should always get mangled as a <simple-id>
3020       // anyway.
3021 
3022     // <expression> ::= cl <expression>* E
3023     } else {
3024       Out << "cl";
3025     }
3026 
3027     unsigned CallArity = CE->getNumArgs();
3028     for (const Expr *Arg : CE->arguments())
3029       if (isa<PackExpansionExpr>(Arg))
3030         CallArity = UnknownArity;
3031 
3032     mangleExpression(CE->getCallee(), CallArity);
3033     for (const Expr *Arg : CE->arguments())
3034       mangleExpression(Arg);
3035     Out << 'E';
3036     break;
3037   }
3038 
3039   case Expr::CXXNewExprClass: {
3040     const CXXNewExpr *New = cast<CXXNewExpr>(E);
3041     if (New->isGlobalNew()) Out << "gs";
3042     Out << (New->isArray() ? "na" : "nw");
3043     for (CXXNewExpr::const_arg_iterator I = New->placement_arg_begin(),
3044            E = New->placement_arg_end(); I != E; ++I)
3045       mangleExpression(*I);
3046     Out << '_';
3047     mangleType(New->getAllocatedType());
3048     if (New->hasInitializer()) {
3049       if (New->getInitializationStyle() == CXXNewExpr::ListInit)
3050         Out << "il";
3051       else
3052         Out << "pi";
3053       const Expr *Init = New->getInitializer();
3054       if (const CXXConstructExpr *CCE = dyn_cast<CXXConstructExpr>(Init)) {
3055         // Directly inline the initializers.
3056         for (CXXConstructExpr::const_arg_iterator I = CCE->arg_begin(),
3057                                                   E = CCE->arg_end();
3058              I != E; ++I)
3059           mangleExpression(*I);
3060       } else if (const ParenListExpr *PLE = dyn_cast<ParenListExpr>(Init)) {
3061         for (unsigned i = 0, e = PLE->getNumExprs(); i != e; ++i)
3062           mangleExpression(PLE->getExpr(i));
3063       } else if (New->getInitializationStyle() == CXXNewExpr::ListInit &&
3064                  isa<InitListExpr>(Init)) {
3065         // Only take InitListExprs apart for list-initialization.
3066         mangleInitListElements(cast<InitListExpr>(Init));
3067       } else
3068         mangleExpression(Init);
3069     }
3070     Out << 'E';
3071     break;
3072   }
3073 
3074   case Expr::CXXPseudoDestructorExprClass: {
3075     const auto *PDE = cast<CXXPseudoDestructorExpr>(E);
3076     if (const Expr *Base = PDE->getBase())
3077       mangleMemberExprBase(Base, PDE->isArrow());
3078     NestedNameSpecifier *Qualifier = PDE->getQualifier();
3079     QualType ScopeType;
3080     if (TypeSourceInfo *ScopeInfo = PDE->getScopeTypeInfo()) {
3081       if (Qualifier) {
3082         mangleUnresolvedPrefix(Qualifier,
3083                                /*Recursive=*/true);
3084         mangleUnresolvedTypeOrSimpleId(ScopeInfo->getType());
3085         Out << 'E';
3086       } else {
3087         Out << "sr";
3088         if (!mangleUnresolvedTypeOrSimpleId(ScopeInfo->getType()))
3089           Out << 'E';
3090       }
3091     } else if (Qualifier) {
3092       mangleUnresolvedPrefix(Qualifier);
3093     }
3094     // <base-unresolved-name> ::= dn <destructor-name>
3095     Out << "dn";
3096     QualType DestroyedType = PDE->getDestroyedType();
3097     mangleUnresolvedTypeOrSimpleId(DestroyedType);
3098     break;
3099   }
3100 
3101   case Expr::MemberExprClass: {
3102     const MemberExpr *ME = cast<MemberExpr>(E);
3103     mangleMemberExpr(ME->getBase(), ME->isArrow(),
3104                      ME->getQualifier(), nullptr,
3105                      ME->getMemberDecl()->getDeclName(), Arity);
3106     break;
3107   }
3108 
3109   case Expr::UnresolvedMemberExprClass: {
3110     const UnresolvedMemberExpr *ME = cast<UnresolvedMemberExpr>(E);
3111     mangleMemberExpr(ME->isImplicitAccess() ? nullptr : ME->getBase(),
3112                      ME->isArrow(), ME->getQualifier(), nullptr,
3113                      ME->getMemberName(), Arity);
3114     if (ME->hasExplicitTemplateArgs())
3115       mangleTemplateArgs(ME->getTemplateArgs(), ME->getNumTemplateArgs());
3116     break;
3117   }
3118 
3119   case Expr::CXXDependentScopeMemberExprClass: {
3120     const CXXDependentScopeMemberExpr *ME
3121       = cast<CXXDependentScopeMemberExpr>(E);
3122     mangleMemberExpr(ME->isImplicitAccess() ? nullptr : ME->getBase(),
3123                      ME->isArrow(), ME->getQualifier(),
3124                      ME->getFirstQualifierFoundInScope(),
3125                      ME->getMember(), Arity);
3126     if (ME->hasExplicitTemplateArgs())
3127       mangleTemplateArgs(ME->getTemplateArgs(), ME->getNumTemplateArgs());
3128     break;
3129   }
3130 
3131   case Expr::UnresolvedLookupExprClass: {
3132     const UnresolvedLookupExpr *ULE = cast<UnresolvedLookupExpr>(E);
3133     mangleUnresolvedName(ULE->getQualifier(), ULE->getName(), Arity);
3134 
3135     // All the <unresolved-name> productions end in a
3136     // base-unresolved-name, where <template-args> are just tacked
3137     // onto the end.
3138     if (ULE->hasExplicitTemplateArgs())
3139       mangleTemplateArgs(ULE->getTemplateArgs(), ULE->getNumTemplateArgs());
3140     break;
3141   }
3142 
3143   case Expr::CXXUnresolvedConstructExprClass: {
3144     const CXXUnresolvedConstructExpr *CE = cast<CXXUnresolvedConstructExpr>(E);
3145     unsigned N = CE->arg_size();
3146 
3147     Out << "cv";
3148     mangleType(CE->getType());
3149     if (N != 1) Out << '_';
3150     for (unsigned I = 0; I != N; ++I) mangleExpression(CE->getArg(I));
3151     if (N != 1) Out << 'E';
3152     break;
3153   }
3154 
3155   case Expr::CXXConstructExprClass: {
3156     const auto *CE = cast<CXXConstructExpr>(E);
3157     if (!CE->isListInitialization() || CE->isStdInitListInitialization()) {
3158       assert(
3159           CE->getNumArgs() >= 1 &&
3160           (CE->getNumArgs() == 1 || isa<CXXDefaultArgExpr>(CE->getArg(1))) &&
3161           "implicit CXXConstructExpr must have one argument");
3162       return mangleExpression(cast<CXXConstructExpr>(E)->getArg(0));
3163     }
3164     Out << "il";
3165     for (auto *E : CE->arguments())
3166       mangleExpression(E);
3167     Out << "E";
3168     break;
3169   }
3170 
3171   case Expr::CXXTemporaryObjectExprClass: {
3172     const auto *CE = cast<CXXTemporaryObjectExpr>(E);
3173     unsigned N = CE->getNumArgs();
3174     bool List = CE->isListInitialization();
3175 
3176     if (List)
3177       Out << "tl";
3178     else
3179       Out << "cv";
3180     mangleType(CE->getType());
3181     if (!List && N != 1)
3182       Out << '_';
3183     if (CE->isStdInitListInitialization()) {
3184       // We implicitly created a std::initializer_list<T> for the first argument
3185       // of a constructor of type U in an expression of the form U{a, b, c}.
3186       // Strip all the semantic gunk off the initializer list.
3187       auto *SILE =
3188           cast<CXXStdInitializerListExpr>(CE->getArg(0)->IgnoreImplicit());
3189       auto *ILE = cast<InitListExpr>(SILE->getSubExpr()->IgnoreImplicit());
3190       mangleInitListElements(ILE);
3191     } else {
3192       for (auto *E : CE->arguments())
3193         mangleExpression(E);
3194     }
3195     if (List || N != 1)
3196       Out << 'E';
3197     break;
3198   }
3199 
3200   case Expr::CXXScalarValueInitExprClass:
3201     Out << "cv";
3202     mangleType(E->getType());
3203     Out << "_E";
3204     break;
3205 
3206   case Expr::CXXNoexceptExprClass:
3207     Out << "nx";
3208     mangleExpression(cast<CXXNoexceptExpr>(E)->getOperand());
3209     break;
3210 
3211   case Expr::UnaryExprOrTypeTraitExprClass: {
3212     const UnaryExprOrTypeTraitExpr *SAE = cast<UnaryExprOrTypeTraitExpr>(E);
3213 
3214     if (!SAE->isInstantiationDependent()) {
3215       // Itanium C++ ABI:
3216       //   If the operand of a sizeof or alignof operator is not
3217       //   instantiation-dependent it is encoded as an integer literal
3218       //   reflecting the result of the operator.
3219       //
3220       //   If the result of the operator is implicitly converted to a known
3221       //   integer type, that type is used for the literal; otherwise, the type
3222       //   of std::size_t or std::ptrdiff_t is used.
3223       QualType T = (ImplicitlyConvertedToType.isNull() ||
3224                     !ImplicitlyConvertedToType->isIntegerType())? SAE->getType()
3225                                                     : ImplicitlyConvertedToType;
3226       llvm::APSInt V = SAE->EvaluateKnownConstInt(Context.getASTContext());
3227       mangleIntegerLiteral(T, V);
3228       break;
3229     }
3230 
3231     switch(SAE->getKind()) {
3232     case UETT_SizeOf:
3233       Out << 's';
3234       break;
3235     case UETT_AlignOf:
3236       Out << 'a';
3237       break;
3238     case UETT_VecStep: {
3239       DiagnosticsEngine &Diags = Context.getDiags();
3240       unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3241                                      "cannot yet mangle vec_step expression");
3242       Diags.Report(DiagID);
3243       return;
3244     }
3245     case UETT_OpenMPRequiredSimdAlign:
3246       DiagnosticsEngine &Diags = Context.getDiags();
3247       unsigned DiagID = Diags.getCustomDiagID(
3248           DiagnosticsEngine::Error,
3249           "cannot yet mangle __builtin_omp_required_simd_align expression");
3250       Diags.Report(DiagID);
3251       return;
3252     }
3253     if (SAE->isArgumentType()) {
3254       Out << 't';
3255       mangleType(SAE->getArgumentType());
3256     } else {
3257       Out << 'z';
3258       mangleExpression(SAE->getArgumentExpr());
3259     }
3260     break;
3261   }
3262 
3263   case Expr::CXXThrowExprClass: {
3264     const CXXThrowExpr *TE = cast<CXXThrowExpr>(E);
3265     //  <expression> ::= tw <expression>  # throw expression
3266     //               ::= tr               # rethrow
3267     if (TE->getSubExpr()) {
3268       Out << "tw";
3269       mangleExpression(TE->getSubExpr());
3270     } else {
3271       Out << "tr";
3272     }
3273     break;
3274   }
3275 
3276   case Expr::CXXTypeidExprClass: {
3277     const CXXTypeidExpr *TIE = cast<CXXTypeidExpr>(E);
3278     //  <expression> ::= ti <type>        # typeid (type)
3279     //               ::= te <expression>  # typeid (expression)
3280     if (TIE->isTypeOperand()) {
3281       Out << "ti";
3282       mangleType(TIE->getTypeOperand(Context.getASTContext()));
3283     } else {
3284       Out << "te";
3285       mangleExpression(TIE->getExprOperand());
3286     }
3287     break;
3288   }
3289 
3290   case Expr::CXXDeleteExprClass: {
3291     const CXXDeleteExpr *DE = cast<CXXDeleteExpr>(E);
3292     //  <expression> ::= [gs] dl <expression>  # [::] delete expr
3293     //               ::= [gs] da <expression>  # [::] delete [] expr
3294     if (DE->isGlobalDelete()) Out << "gs";
3295     Out << (DE->isArrayForm() ? "da" : "dl");
3296     mangleExpression(DE->getArgument());
3297     break;
3298   }
3299 
3300   case Expr::UnaryOperatorClass: {
3301     const UnaryOperator *UO = cast<UnaryOperator>(E);
3302     mangleOperatorName(UnaryOperator::getOverloadedOperator(UO->getOpcode()),
3303                        /*Arity=*/1);
3304     mangleExpression(UO->getSubExpr());
3305     break;
3306   }
3307 
3308   case Expr::ArraySubscriptExprClass: {
3309     const ArraySubscriptExpr *AE = cast<ArraySubscriptExpr>(E);
3310 
3311     // Array subscript is treated as a syntactically weird form of
3312     // binary operator.
3313     Out << "ix";
3314     mangleExpression(AE->getLHS());
3315     mangleExpression(AE->getRHS());
3316     break;
3317   }
3318 
3319   case Expr::CompoundAssignOperatorClass: // fallthrough
3320   case Expr::BinaryOperatorClass: {
3321     const BinaryOperator *BO = cast<BinaryOperator>(E);
3322     if (BO->getOpcode() == BO_PtrMemD)
3323       Out << "ds";
3324     else
3325       mangleOperatorName(BinaryOperator::getOverloadedOperator(BO->getOpcode()),
3326                          /*Arity=*/2);
3327     mangleExpression(BO->getLHS());
3328     mangleExpression(BO->getRHS());
3329     break;
3330   }
3331 
3332   case Expr::ConditionalOperatorClass: {
3333     const ConditionalOperator *CO = cast<ConditionalOperator>(E);
3334     mangleOperatorName(OO_Conditional, /*Arity=*/3);
3335     mangleExpression(CO->getCond());
3336     mangleExpression(CO->getLHS(), Arity);
3337     mangleExpression(CO->getRHS(), Arity);
3338     break;
3339   }
3340 
3341   case Expr::ImplicitCastExprClass: {
3342     ImplicitlyConvertedToType = E->getType();
3343     E = cast<ImplicitCastExpr>(E)->getSubExpr();
3344     goto recurse;
3345   }
3346 
3347   case Expr::ObjCBridgedCastExprClass: {
3348     // Mangle ownership casts as a vendor extended operator __bridge,
3349     // __bridge_transfer, or __bridge_retain.
3350     StringRef Kind = cast<ObjCBridgedCastExpr>(E)->getBridgeKindName();
3351     Out << "v1U" << Kind.size() << Kind;
3352   }
3353   // Fall through to mangle the cast itself.
3354 
3355   case Expr::CStyleCastExprClass:
3356     mangleCastExpression(E, "cv");
3357     break;
3358 
3359   case Expr::CXXFunctionalCastExprClass: {
3360     auto *Sub = cast<ExplicitCastExpr>(E)->getSubExpr()->IgnoreImplicit();
3361     // FIXME: Add isImplicit to CXXConstructExpr.
3362     if (auto *CCE = dyn_cast<CXXConstructExpr>(Sub))
3363       if (CCE->getParenOrBraceRange().isInvalid())
3364         Sub = CCE->getArg(0)->IgnoreImplicit();
3365     if (auto *StdInitList = dyn_cast<CXXStdInitializerListExpr>(Sub))
3366       Sub = StdInitList->getSubExpr()->IgnoreImplicit();
3367     if (auto *IL = dyn_cast<InitListExpr>(Sub)) {
3368       Out << "tl";
3369       mangleType(E->getType());
3370       mangleInitListElements(IL);
3371       Out << "E";
3372     } else {
3373       mangleCastExpression(E, "cv");
3374     }
3375     break;
3376   }
3377 
3378   case Expr::CXXStaticCastExprClass:
3379     mangleCastExpression(E, "sc");
3380     break;
3381   case Expr::CXXDynamicCastExprClass:
3382     mangleCastExpression(E, "dc");
3383     break;
3384   case Expr::CXXReinterpretCastExprClass:
3385     mangleCastExpression(E, "rc");
3386     break;
3387   case Expr::CXXConstCastExprClass:
3388     mangleCastExpression(E, "cc");
3389     break;
3390 
3391   case Expr::CXXOperatorCallExprClass: {
3392     const CXXOperatorCallExpr *CE = cast<CXXOperatorCallExpr>(E);
3393     unsigned NumArgs = CE->getNumArgs();
3394     mangleOperatorName(CE->getOperator(), /*Arity=*/NumArgs);
3395     // Mangle the arguments.
3396     for (unsigned i = 0; i != NumArgs; ++i)
3397       mangleExpression(CE->getArg(i));
3398     break;
3399   }
3400 
3401   case Expr::ParenExprClass:
3402     mangleExpression(cast<ParenExpr>(E)->getSubExpr(), Arity);
3403     break;
3404 
3405   case Expr::DeclRefExprClass: {
3406     const NamedDecl *D = cast<DeclRefExpr>(E)->getDecl();
3407 
3408     switch (D->getKind()) {
3409     default:
3410       //  <expr-primary> ::= L <mangled-name> E # external name
3411       Out << 'L';
3412       mangle(D);
3413       Out << 'E';
3414       break;
3415 
3416     case Decl::ParmVar:
3417       mangleFunctionParam(cast<ParmVarDecl>(D));
3418       break;
3419 
3420     case Decl::EnumConstant: {
3421       const EnumConstantDecl *ED = cast<EnumConstantDecl>(D);
3422       mangleIntegerLiteral(ED->getType(), ED->getInitVal());
3423       break;
3424     }
3425 
3426     case Decl::NonTypeTemplateParm: {
3427       const NonTypeTemplateParmDecl *PD = cast<NonTypeTemplateParmDecl>(D);
3428       mangleTemplateParameter(PD->getIndex());
3429       break;
3430     }
3431 
3432     }
3433 
3434     break;
3435   }
3436 
3437   case Expr::SubstNonTypeTemplateParmPackExprClass:
3438     // FIXME: not clear how to mangle this!
3439     // template <unsigned N...> class A {
3440     //   template <class U...> void foo(U (&x)[N]...);
3441     // };
3442     Out << "_SUBSTPACK_";
3443     break;
3444 
3445   case Expr::FunctionParmPackExprClass: {
3446     // FIXME: not clear how to mangle this!
3447     const FunctionParmPackExpr *FPPE = cast<FunctionParmPackExpr>(E);
3448     Out << "v110_SUBSTPACK";
3449     mangleFunctionParam(FPPE->getParameterPack());
3450     break;
3451   }
3452 
3453   case Expr::DependentScopeDeclRefExprClass: {
3454     const DependentScopeDeclRefExpr *DRE = cast<DependentScopeDeclRefExpr>(E);
3455     mangleUnresolvedName(DRE->getQualifier(), DRE->getDeclName(), Arity);
3456 
3457     // All the <unresolved-name> productions end in a
3458     // base-unresolved-name, where <template-args> are just tacked
3459     // onto the end.
3460     if (DRE->hasExplicitTemplateArgs())
3461       mangleTemplateArgs(DRE->getTemplateArgs(), DRE->getNumTemplateArgs());
3462     break;
3463   }
3464 
3465   case Expr::CXXBindTemporaryExprClass:
3466     mangleExpression(cast<CXXBindTemporaryExpr>(E)->getSubExpr());
3467     break;
3468 
3469   case Expr::ExprWithCleanupsClass:
3470     mangleExpression(cast<ExprWithCleanups>(E)->getSubExpr(), Arity);
3471     break;
3472 
3473   case Expr::FloatingLiteralClass: {
3474     const FloatingLiteral *FL = cast<FloatingLiteral>(E);
3475     Out << 'L';
3476     mangleType(FL->getType());
3477     mangleFloat(FL->getValue());
3478     Out << 'E';
3479     break;
3480   }
3481 
3482   case Expr::CharacterLiteralClass:
3483     Out << 'L';
3484     mangleType(E->getType());
3485     Out << cast<CharacterLiteral>(E)->getValue();
3486     Out << 'E';
3487     break;
3488 
3489   // FIXME. __objc_yes/__objc_no are mangled same as true/false
3490   case Expr::ObjCBoolLiteralExprClass:
3491     Out << "Lb";
3492     Out << (cast<ObjCBoolLiteralExpr>(E)->getValue() ? '1' : '0');
3493     Out << 'E';
3494     break;
3495 
3496   case Expr::CXXBoolLiteralExprClass:
3497     Out << "Lb";
3498     Out << (cast<CXXBoolLiteralExpr>(E)->getValue() ? '1' : '0');
3499     Out << 'E';
3500     break;
3501 
3502   case Expr::IntegerLiteralClass: {
3503     llvm::APSInt Value(cast<IntegerLiteral>(E)->getValue());
3504     if (E->getType()->isSignedIntegerType())
3505       Value.setIsSigned(true);
3506     mangleIntegerLiteral(E->getType(), Value);
3507     break;
3508   }
3509 
3510   case Expr::ImaginaryLiteralClass: {
3511     const ImaginaryLiteral *IE = cast<ImaginaryLiteral>(E);
3512     // Mangle as if a complex literal.
3513     // Proposal from David Vandevoorde, 2010.06.30.
3514     Out << 'L';
3515     mangleType(E->getType());
3516     if (const FloatingLiteral *Imag =
3517           dyn_cast<FloatingLiteral>(IE->getSubExpr())) {
3518       // Mangle a floating-point zero of the appropriate type.
3519       mangleFloat(llvm::APFloat(Imag->getValue().getSemantics()));
3520       Out << '_';
3521       mangleFloat(Imag->getValue());
3522     } else {
3523       Out << "0_";
3524       llvm::APSInt Value(cast<IntegerLiteral>(IE->getSubExpr())->getValue());
3525       if (IE->getSubExpr()->getType()->isSignedIntegerType())
3526         Value.setIsSigned(true);
3527       mangleNumber(Value);
3528     }
3529     Out << 'E';
3530     break;
3531   }
3532 
3533   case Expr::StringLiteralClass: {
3534     // Revised proposal from David Vandervoorde, 2010.07.15.
3535     Out << 'L';
3536     assert(isa<ConstantArrayType>(E->getType()));
3537     mangleType(E->getType());
3538     Out << 'E';
3539     break;
3540   }
3541 
3542   case Expr::GNUNullExprClass:
3543     // FIXME: should this really be mangled the same as nullptr?
3544     // fallthrough
3545 
3546   case Expr::CXXNullPtrLiteralExprClass: {
3547     Out << "LDnE";
3548     break;
3549   }
3550 
3551   case Expr::PackExpansionExprClass:
3552     Out << "sp";
3553     mangleExpression(cast<PackExpansionExpr>(E)->getPattern());
3554     break;
3555 
3556   case Expr::SizeOfPackExprClass: {
3557     auto *SPE = cast<SizeOfPackExpr>(E);
3558     if (SPE->isPartiallySubstituted()) {
3559       Out << "sP";
3560       for (const auto &A : SPE->getPartialArguments())
3561         mangleTemplateArg(A);
3562       Out << "E";
3563       break;
3564     }
3565 
3566     Out << "sZ";
3567     const NamedDecl *Pack = SPE->getPack();
3568     if (const TemplateTypeParmDecl *TTP = dyn_cast<TemplateTypeParmDecl>(Pack))
3569       mangleTemplateParameter(TTP->getIndex());
3570     else if (const NonTypeTemplateParmDecl *NTTP
3571                 = dyn_cast<NonTypeTemplateParmDecl>(Pack))
3572       mangleTemplateParameter(NTTP->getIndex());
3573     else if (const TemplateTemplateParmDecl *TempTP
3574                                     = dyn_cast<TemplateTemplateParmDecl>(Pack))
3575       mangleTemplateParameter(TempTP->getIndex());
3576     else
3577       mangleFunctionParam(cast<ParmVarDecl>(Pack));
3578     break;
3579   }
3580 
3581   case Expr::MaterializeTemporaryExprClass: {
3582     mangleExpression(cast<MaterializeTemporaryExpr>(E)->GetTemporaryExpr());
3583     break;
3584   }
3585 
3586   case Expr::CXXFoldExprClass: {
3587     auto *FE = cast<CXXFoldExpr>(E);
3588     if (FE->isLeftFold())
3589       Out << (FE->getInit() ? "fL" : "fl");
3590     else
3591       Out << (FE->getInit() ? "fR" : "fr");
3592 
3593     if (FE->getOperator() == BO_PtrMemD)
3594       Out << "ds";
3595     else
3596       mangleOperatorName(
3597           BinaryOperator::getOverloadedOperator(FE->getOperator()),
3598           /*Arity=*/2);
3599 
3600     if (FE->getLHS())
3601       mangleExpression(FE->getLHS());
3602     if (FE->getRHS())
3603       mangleExpression(FE->getRHS());
3604     break;
3605   }
3606 
3607   case Expr::CXXThisExprClass:
3608     Out << "fpT";
3609     break;
3610 
3611   case Expr::CoawaitExprClass:
3612     // FIXME: Propose a non-vendor mangling.
3613     Out << "v18co_await";
3614     mangleExpression(cast<CoawaitExpr>(E)->getOperand());
3615     break;
3616 
3617   case Expr::CoyieldExprClass:
3618     // FIXME: Propose a non-vendor mangling.
3619     Out << "v18co_yield";
3620     mangleExpression(cast<CoawaitExpr>(E)->getOperand());
3621     break;
3622   }
3623 }
3624 
3625 /// Mangle an expression which refers to a parameter variable.
3626 ///
3627 /// <expression>     ::= <function-param>
3628 /// <function-param> ::= fp <top-level CV-qualifiers> _      # L == 0, I == 0
3629 /// <function-param> ::= fp <top-level CV-qualifiers>
3630 ///                      <parameter-2 non-negative number> _ # L == 0, I > 0
3631 /// <function-param> ::= fL <L-1 non-negative number>
3632 ///                      p <top-level CV-qualifiers> _       # L > 0, I == 0
3633 /// <function-param> ::= fL <L-1 non-negative number>
3634 ///                      p <top-level CV-qualifiers>
3635 ///                      <I-1 non-negative number> _         # L > 0, I > 0
3636 ///
3637 /// L is the nesting depth of the parameter, defined as 1 if the
3638 /// parameter comes from the innermost function prototype scope
3639 /// enclosing the current context, 2 if from the next enclosing
3640 /// function prototype scope, and so on, with one special case: if
3641 /// we've processed the full parameter clause for the innermost
3642 /// function type, then L is one less.  This definition conveniently
3643 /// makes it irrelevant whether a function's result type was written
3644 /// trailing or leading, but is otherwise overly complicated; the
3645 /// numbering was first designed without considering references to
3646 /// parameter in locations other than return types, and then the
3647 /// mangling had to be generalized without changing the existing
3648 /// manglings.
3649 ///
3650 /// I is the zero-based index of the parameter within its parameter
3651 /// declaration clause.  Note that the original ABI document describes
3652 /// this using 1-based ordinals.
3653 void CXXNameMangler::mangleFunctionParam(const ParmVarDecl *parm) {
3654   unsigned parmDepth = parm->getFunctionScopeDepth();
3655   unsigned parmIndex = parm->getFunctionScopeIndex();
3656 
3657   // Compute 'L'.
3658   // parmDepth does not include the declaring function prototype.
3659   // FunctionTypeDepth does account for that.
3660   assert(parmDepth < FunctionTypeDepth.getDepth());
3661   unsigned nestingDepth = FunctionTypeDepth.getDepth() - parmDepth;
3662   if (FunctionTypeDepth.isInResultType())
3663     nestingDepth--;
3664 
3665   if (nestingDepth == 0) {
3666     Out << "fp";
3667   } else {
3668     Out << "fL" << (nestingDepth - 1) << 'p';
3669   }
3670 
3671   // Top-level qualifiers.  We don't have to worry about arrays here,
3672   // because parameters declared as arrays should already have been
3673   // transformed to have pointer type. FIXME: apparently these don't
3674   // get mangled if used as an rvalue of a known non-class type?
3675   assert(!parm->getType()->isArrayType()
3676          && "parameter's type is still an array type?");
3677   mangleQualifiers(parm->getType().getQualifiers());
3678 
3679   // Parameter index.
3680   if (parmIndex != 0) {
3681     Out << (parmIndex - 1);
3682   }
3683   Out << '_';
3684 }
3685 
3686 void CXXNameMangler::mangleCXXCtorType(CXXCtorType T) {
3687   // <ctor-dtor-name> ::= C1  # complete object constructor
3688   //                  ::= C2  # base object constructor
3689   //
3690   // In addition, C5 is a comdat name with C1 and C2 in it.
3691   switch (T) {
3692   case Ctor_Complete:
3693     Out << "C1";
3694     break;
3695   case Ctor_Base:
3696     Out << "C2";
3697     break;
3698   case Ctor_Comdat:
3699     Out << "C5";
3700     break;
3701   case Ctor_DefaultClosure:
3702   case Ctor_CopyingClosure:
3703     llvm_unreachable("closure constructors don't exist for the Itanium ABI!");
3704   }
3705 }
3706 
3707 void CXXNameMangler::mangleCXXDtorType(CXXDtorType T) {
3708   // <ctor-dtor-name> ::= D0  # deleting destructor
3709   //                  ::= D1  # complete object destructor
3710   //                  ::= D2  # base object destructor
3711   //
3712   // In addition, D5 is a comdat name with D1, D2 and, if virtual, D0 in it.
3713   switch (T) {
3714   case Dtor_Deleting:
3715     Out << "D0";
3716     break;
3717   case Dtor_Complete:
3718     Out << "D1";
3719     break;
3720   case Dtor_Base:
3721     Out << "D2";
3722     break;
3723   case Dtor_Comdat:
3724     Out << "D5";
3725     break;
3726   }
3727 }
3728 
3729 void CXXNameMangler::mangleTemplateArgs(const TemplateArgumentLoc *TemplateArgs,
3730                                         unsigned NumTemplateArgs) {
3731   // <template-args> ::= I <template-arg>+ E
3732   Out << 'I';
3733   for (unsigned i = 0; i != NumTemplateArgs; ++i)
3734     mangleTemplateArg(TemplateArgs[i].getArgument());
3735   Out << 'E';
3736 }
3737 
3738 void CXXNameMangler::mangleTemplateArgs(const TemplateArgumentList &AL) {
3739   // <template-args> ::= I <template-arg>+ E
3740   Out << 'I';
3741   for (unsigned i = 0, e = AL.size(); i != e; ++i)
3742     mangleTemplateArg(AL[i]);
3743   Out << 'E';
3744 }
3745 
3746 void CXXNameMangler::mangleTemplateArgs(const TemplateArgument *TemplateArgs,
3747                                         unsigned NumTemplateArgs) {
3748   // <template-args> ::= I <template-arg>+ E
3749   Out << 'I';
3750   for (unsigned i = 0; i != NumTemplateArgs; ++i)
3751     mangleTemplateArg(TemplateArgs[i]);
3752   Out << 'E';
3753 }
3754 
3755 void CXXNameMangler::mangleTemplateArg(TemplateArgument A) {
3756   // <template-arg> ::= <type>              # type or template
3757   //                ::= X <expression> E    # expression
3758   //                ::= <expr-primary>      # simple expressions
3759   //                ::= J <template-arg>* E # argument pack
3760   if (!A.isInstantiationDependent() || A.isDependent())
3761     A = Context.getASTContext().getCanonicalTemplateArgument(A);
3762 
3763   switch (A.getKind()) {
3764   case TemplateArgument::Null:
3765     llvm_unreachable("Cannot mangle NULL template argument");
3766 
3767   case TemplateArgument::Type:
3768     mangleType(A.getAsType());
3769     break;
3770   case TemplateArgument::Template:
3771     // This is mangled as <type>.
3772     mangleType(A.getAsTemplate());
3773     break;
3774   case TemplateArgument::TemplateExpansion:
3775     // <type>  ::= Dp <type>          # pack expansion (C++0x)
3776     Out << "Dp";
3777     mangleType(A.getAsTemplateOrTemplatePattern());
3778     break;
3779   case TemplateArgument::Expression: {
3780     // It's possible to end up with a DeclRefExpr here in certain
3781     // dependent cases, in which case we should mangle as a
3782     // declaration.
3783     const Expr *E = A.getAsExpr()->IgnoreParens();
3784     if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) {
3785       const ValueDecl *D = DRE->getDecl();
3786       if (isa<VarDecl>(D) || isa<FunctionDecl>(D)) {
3787         Out << 'L';
3788         mangle(D);
3789         Out << 'E';
3790         break;
3791       }
3792     }
3793 
3794     Out << 'X';
3795     mangleExpression(E);
3796     Out << 'E';
3797     break;
3798   }
3799   case TemplateArgument::Integral:
3800     mangleIntegerLiteral(A.getIntegralType(), A.getAsIntegral());
3801     break;
3802   case TemplateArgument::Declaration: {
3803     //  <expr-primary> ::= L <mangled-name> E # external name
3804     // Clang produces AST's where pointer-to-member-function expressions
3805     // and pointer-to-function expressions are represented as a declaration not
3806     // an expression. We compensate for it here to produce the correct mangling.
3807     ValueDecl *D = A.getAsDecl();
3808     bool compensateMangling = !A.getParamTypeForDecl()->isReferenceType();
3809     if (compensateMangling) {
3810       Out << 'X';
3811       mangleOperatorName(OO_Amp, 1);
3812     }
3813 
3814     Out << 'L';
3815     // References to external entities use the mangled name; if the name would
3816     // not normally be manged then mangle it as unqualified.
3817     mangle(D);
3818     Out << 'E';
3819 
3820     if (compensateMangling)
3821       Out << 'E';
3822 
3823     break;
3824   }
3825   case TemplateArgument::NullPtr: {
3826     //  <expr-primary> ::= L <type> 0 E
3827     Out << 'L';
3828     mangleType(A.getNullPtrType());
3829     Out << "0E";
3830     break;
3831   }
3832   case TemplateArgument::Pack: {
3833     //  <template-arg> ::= J <template-arg>* E
3834     Out << 'J';
3835     for (const auto &P : A.pack_elements())
3836       mangleTemplateArg(P);
3837     Out << 'E';
3838   }
3839   }
3840 }
3841 
3842 void CXXNameMangler::mangleTemplateParameter(unsigned Index) {
3843   // <template-param> ::= T_    # first template parameter
3844   //                  ::= T <parameter-2 non-negative number> _
3845   if (Index == 0)
3846     Out << "T_";
3847   else
3848     Out << 'T' << (Index - 1) << '_';
3849 }
3850 
3851 void CXXNameMangler::mangleSeqID(unsigned SeqID) {
3852   if (SeqID == 1)
3853     Out << '0';
3854   else if (SeqID > 1) {
3855     SeqID--;
3856 
3857     // <seq-id> is encoded in base-36, using digits and upper case letters.
3858     char Buffer[7]; // log(2**32) / log(36) ~= 7
3859     MutableArrayRef<char> BufferRef(Buffer);
3860     MutableArrayRef<char>::reverse_iterator I = BufferRef.rbegin();
3861 
3862     for (; SeqID != 0; SeqID /= 36) {
3863       unsigned C = SeqID % 36;
3864       *I++ = (C < 10 ? '0' + C : 'A' + C - 10);
3865     }
3866 
3867     Out.write(I.base(), I - BufferRef.rbegin());
3868   }
3869   Out << '_';
3870 }
3871 
3872 void CXXNameMangler::mangleExistingSubstitution(QualType type) {
3873   bool result = mangleSubstitution(type);
3874   assert(result && "no existing substitution for type");
3875   (void) result;
3876 }
3877 
3878 void CXXNameMangler::mangleExistingSubstitution(TemplateName tname) {
3879   bool result = mangleSubstitution(tname);
3880   assert(result && "no existing substitution for template name");
3881   (void) result;
3882 }
3883 
3884 // <substitution> ::= S <seq-id> _
3885 //                ::= S_
3886 bool CXXNameMangler::mangleSubstitution(const NamedDecl *ND) {
3887   // Try one of the standard substitutions first.
3888   if (mangleStandardSubstitution(ND))
3889     return true;
3890 
3891   ND = cast<NamedDecl>(ND->getCanonicalDecl());
3892   return mangleSubstitution(reinterpret_cast<uintptr_t>(ND));
3893 }
3894 
3895 /// Determine whether the given type has any qualifiers that are relevant for
3896 /// substitutions.
3897 static bool hasMangledSubstitutionQualifiers(QualType T) {
3898   Qualifiers Qs = T.getQualifiers();
3899   return Qs.getCVRQualifiers() || Qs.hasAddressSpace();
3900 }
3901 
3902 bool CXXNameMangler::mangleSubstitution(QualType T) {
3903   if (!hasMangledSubstitutionQualifiers(T)) {
3904     if (const RecordType *RT = T->getAs<RecordType>())
3905       return mangleSubstitution(RT->getDecl());
3906   }
3907 
3908   uintptr_t TypePtr = reinterpret_cast<uintptr_t>(T.getAsOpaquePtr());
3909 
3910   return mangleSubstitution(TypePtr);
3911 }
3912 
3913 bool CXXNameMangler::mangleSubstitution(TemplateName Template) {
3914   if (TemplateDecl *TD = Template.getAsTemplateDecl())
3915     return mangleSubstitution(TD);
3916 
3917   Template = Context.getASTContext().getCanonicalTemplateName(Template);
3918   return mangleSubstitution(
3919                       reinterpret_cast<uintptr_t>(Template.getAsVoidPointer()));
3920 }
3921 
3922 bool CXXNameMangler::mangleSubstitution(uintptr_t Ptr) {
3923   llvm::DenseMap<uintptr_t, unsigned>::iterator I = Substitutions.find(Ptr);
3924   if (I == Substitutions.end())
3925     return false;
3926 
3927   unsigned SeqID = I->second;
3928   Out << 'S';
3929   mangleSeqID(SeqID);
3930 
3931   return true;
3932 }
3933 
3934 static bool isCharType(QualType T) {
3935   if (T.isNull())
3936     return false;
3937 
3938   return T->isSpecificBuiltinType(BuiltinType::Char_S) ||
3939     T->isSpecificBuiltinType(BuiltinType::Char_U);
3940 }
3941 
3942 /// Returns whether a given type is a template specialization of a given name
3943 /// with a single argument of type char.
3944 static bool isCharSpecialization(QualType T, const char *Name) {
3945   if (T.isNull())
3946     return false;
3947 
3948   const RecordType *RT = T->getAs<RecordType>();
3949   if (!RT)
3950     return false;
3951 
3952   const ClassTemplateSpecializationDecl *SD =
3953     dyn_cast<ClassTemplateSpecializationDecl>(RT->getDecl());
3954   if (!SD)
3955     return false;
3956 
3957   if (!isStdNamespace(getEffectiveDeclContext(SD)))
3958     return false;
3959 
3960   const TemplateArgumentList &TemplateArgs = SD->getTemplateArgs();
3961   if (TemplateArgs.size() != 1)
3962     return false;
3963 
3964   if (!isCharType(TemplateArgs[0].getAsType()))
3965     return false;
3966 
3967   return SD->getIdentifier()->getName() == Name;
3968 }
3969 
3970 template <std::size_t StrLen>
3971 static bool isStreamCharSpecialization(const ClassTemplateSpecializationDecl*SD,
3972                                        const char (&Str)[StrLen]) {
3973   if (!SD->getIdentifier()->isStr(Str))
3974     return false;
3975 
3976   const TemplateArgumentList &TemplateArgs = SD->getTemplateArgs();
3977   if (TemplateArgs.size() != 2)
3978     return false;
3979 
3980   if (!isCharType(TemplateArgs[0].getAsType()))
3981     return false;
3982 
3983   if (!isCharSpecialization(TemplateArgs[1].getAsType(), "char_traits"))
3984     return false;
3985 
3986   return true;
3987 }
3988 
3989 bool CXXNameMangler::mangleStandardSubstitution(const NamedDecl *ND) {
3990   // <substitution> ::= St # ::std::
3991   if (const NamespaceDecl *NS = dyn_cast<NamespaceDecl>(ND)) {
3992     if (isStd(NS)) {
3993       Out << "St";
3994       return true;
3995     }
3996   }
3997 
3998   if (const ClassTemplateDecl *TD = dyn_cast<ClassTemplateDecl>(ND)) {
3999     if (!isStdNamespace(getEffectiveDeclContext(TD)))
4000       return false;
4001 
4002     // <substitution> ::= Sa # ::std::allocator
4003     if (TD->getIdentifier()->isStr("allocator")) {
4004       Out << "Sa";
4005       return true;
4006     }
4007 
4008     // <<substitution> ::= Sb # ::std::basic_string
4009     if (TD->getIdentifier()->isStr("basic_string")) {
4010       Out << "Sb";
4011       return true;
4012     }
4013   }
4014 
4015   if (const ClassTemplateSpecializationDecl *SD =
4016         dyn_cast<ClassTemplateSpecializationDecl>(ND)) {
4017     if (!isStdNamespace(getEffectiveDeclContext(SD)))
4018       return false;
4019 
4020     //    <substitution> ::= Ss # ::std::basic_string<char,
4021     //                            ::std::char_traits<char>,
4022     //                            ::std::allocator<char> >
4023     if (SD->getIdentifier()->isStr("basic_string")) {
4024       const TemplateArgumentList &TemplateArgs = SD->getTemplateArgs();
4025 
4026       if (TemplateArgs.size() != 3)
4027         return false;
4028 
4029       if (!isCharType(TemplateArgs[0].getAsType()))
4030         return false;
4031 
4032       if (!isCharSpecialization(TemplateArgs[1].getAsType(), "char_traits"))
4033         return false;
4034 
4035       if (!isCharSpecialization(TemplateArgs[2].getAsType(), "allocator"))
4036         return false;
4037 
4038       Out << "Ss";
4039       return true;
4040     }
4041 
4042     //    <substitution> ::= Si # ::std::basic_istream<char,
4043     //                            ::std::char_traits<char> >
4044     if (isStreamCharSpecialization(SD, "basic_istream")) {
4045       Out << "Si";
4046       return true;
4047     }
4048 
4049     //    <substitution> ::= So # ::std::basic_ostream<char,
4050     //                            ::std::char_traits<char> >
4051     if (isStreamCharSpecialization(SD, "basic_ostream")) {
4052       Out << "So";
4053       return true;
4054     }
4055 
4056     //    <substitution> ::= Sd # ::std::basic_iostream<char,
4057     //                            ::std::char_traits<char> >
4058     if (isStreamCharSpecialization(SD, "basic_iostream")) {
4059       Out << "Sd";
4060       return true;
4061     }
4062   }
4063   return false;
4064 }
4065 
4066 void CXXNameMangler::addSubstitution(QualType T) {
4067   if (!hasMangledSubstitutionQualifiers(T)) {
4068     if (const RecordType *RT = T->getAs<RecordType>()) {
4069       addSubstitution(RT->getDecl());
4070       return;
4071     }
4072   }
4073 
4074   uintptr_t TypePtr = reinterpret_cast<uintptr_t>(T.getAsOpaquePtr());
4075   addSubstitution(TypePtr);
4076 }
4077 
4078 void CXXNameMangler::addSubstitution(TemplateName Template) {
4079   if (TemplateDecl *TD = Template.getAsTemplateDecl())
4080     return addSubstitution(TD);
4081 
4082   Template = Context.getASTContext().getCanonicalTemplateName(Template);
4083   addSubstitution(reinterpret_cast<uintptr_t>(Template.getAsVoidPointer()));
4084 }
4085 
4086 void CXXNameMangler::addSubstitution(uintptr_t Ptr) {
4087   assert(!Substitutions.count(Ptr) && "Substitution already exists!");
4088   Substitutions[Ptr] = SeqID++;
4089 }
4090 
4091 //
4092 
4093 /// Mangles the name of the declaration D and emits that name to the given
4094 /// output stream.
4095 ///
4096 /// If the declaration D requires a mangled name, this routine will emit that
4097 /// mangled name to \p os and return true. Otherwise, \p os will be unchanged
4098 /// and this routine will return false. In this case, the caller should just
4099 /// emit the identifier of the declaration (\c D->getIdentifier()) as its
4100 /// name.
4101 void ItaniumMangleContextImpl::mangleCXXName(const NamedDecl *D,
4102                                              raw_ostream &Out) {
4103   assert((isa<FunctionDecl>(D) || isa<VarDecl>(D)) &&
4104           "Invalid mangleName() call, argument is not a variable or function!");
4105   assert(!isa<CXXConstructorDecl>(D) && !isa<CXXDestructorDecl>(D) &&
4106          "Invalid mangleName() call on 'structor decl!");
4107 
4108   PrettyStackTraceDecl CrashInfo(D, SourceLocation(),
4109                                  getASTContext().getSourceManager(),
4110                                  "Mangling declaration");
4111 
4112   CXXNameMangler Mangler(*this, Out, D);
4113   Mangler.mangle(D);
4114 }
4115 
4116 void ItaniumMangleContextImpl::mangleCXXCtor(const CXXConstructorDecl *D,
4117                                              CXXCtorType Type,
4118                                              raw_ostream &Out) {
4119   CXXNameMangler Mangler(*this, Out, D, Type);
4120   Mangler.mangle(D);
4121 }
4122 
4123 void ItaniumMangleContextImpl::mangleCXXDtor(const CXXDestructorDecl *D,
4124                                              CXXDtorType Type,
4125                                              raw_ostream &Out) {
4126   CXXNameMangler Mangler(*this, Out, D, Type);
4127   Mangler.mangle(D);
4128 }
4129 
4130 void ItaniumMangleContextImpl::mangleCXXCtorComdat(const CXXConstructorDecl *D,
4131                                                    raw_ostream &Out) {
4132   CXXNameMangler Mangler(*this, Out, D, Ctor_Comdat);
4133   Mangler.mangle(D);
4134 }
4135 
4136 void ItaniumMangleContextImpl::mangleCXXDtorComdat(const CXXDestructorDecl *D,
4137                                                    raw_ostream &Out) {
4138   CXXNameMangler Mangler(*this, Out, D, Dtor_Comdat);
4139   Mangler.mangle(D);
4140 }
4141 
4142 void ItaniumMangleContextImpl::mangleThunk(const CXXMethodDecl *MD,
4143                                            const ThunkInfo &Thunk,
4144                                            raw_ostream &Out) {
4145   //  <special-name> ::= T <call-offset> <base encoding>
4146   //                      # base is the nominal target function of thunk
4147   //  <special-name> ::= Tc <call-offset> <call-offset> <base encoding>
4148   //                      # base is the nominal target function of thunk
4149   //                      # first call-offset is 'this' adjustment
4150   //                      # second call-offset is result adjustment
4151 
4152   assert(!isa<CXXDestructorDecl>(MD) &&
4153          "Use mangleCXXDtor for destructor decls!");
4154   CXXNameMangler Mangler(*this, Out);
4155   Mangler.getStream() << "_ZT";
4156   if (!Thunk.Return.isEmpty())
4157     Mangler.getStream() << 'c';
4158 
4159   // Mangle the 'this' pointer adjustment.
4160   Mangler.mangleCallOffset(Thunk.This.NonVirtual,
4161                            Thunk.This.Virtual.Itanium.VCallOffsetOffset);
4162 
4163   // Mangle the return pointer adjustment if there is one.
4164   if (!Thunk.Return.isEmpty())
4165     Mangler.mangleCallOffset(Thunk.Return.NonVirtual,
4166                              Thunk.Return.Virtual.Itanium.VBaseOffsetOffset);
4167 
4168   Mangler.mangleFunctionEncoding(MD);
4169 }
4170 
4171 void ItaniumMangleContextImpl::mangleCXXDtorThunk(
4172     const CXXDestructorDecl *DD, CXXDtorType Type,
4173     const ThisAdjustment &ThisAdjustment, raw_ostream &Out) {
4174   //  <special-name> ::= T <call-offset> <base encoding>
4175   //                      # base is the nominal target function of thunk
4176   CXXNameMangler Mangler(*this, Out, DD, Type);
4177   Mangler.getStream() << "_ZT";
4178 
4179   // Mangle the 'this' pointer adjustment.
4180   Mangler.mangleCallOffset(ThisAdjustment.NonVirtual,
4181                            ThisAdjustment.Virtual.Itanium.VCallOffsetOffset);
4182 
4183   Mangler.mangleFunctionEncoding(DD);
4184 }
4185 
4186 /// Returns the mangled name for a guard variable for the passed in VarDecl.
4187 void ItaniumMangleContextImpl::mangleStaticGuardVariable(const VarDecl *D,
4188                                                          raw_ostream &Out) {
4189   //  <special-name> ::= GV <object name>       # Guard variable for one-time
4190   //                                            # initialization
4191   CXXNameMangler Mangler(*this, Out);
4192   Mangler.getStream() << "_ZGV";
4193   Mangler.mangleName(D);
4194 }
4195 
4196 void ItaniumMangleContextImpl::mangleDynamicInitializer(const VarDecl *MD,
4197                                                         raw_ostream &Out) {
4198   // These symbols are internal in the Itanium ABI, so the names don't matter.
4199   // Clang has traditionally used this symbol and allowed LLVM to adjust it to
4200   // avoid duplicate symbols.
4201   Out << "__cxx_global_var_init";
4202 }
4203 
4204 void ItaniumMangleContextImpl::mangleDynamicAtExitDestructor(const VarDecl *D,
4205                                                              raw_ostream &Out) {
4206   // Prefix the mangling of D with __dtor_.
4207   CXXNameMangler Mangler(*this, Out);
4208   Mangler.getStream() << "__dtor_";
4209   if (shouldMangleDeclName(D))
4210     Mangler.mangle(D);
4211   else
4212     Mangler.getStream() << D->getName();
4213 }
4214 
4215 void ItaniumMangleContextImpl::mangleSEHFilterExpression(
4216     const NamedDecl *EnclosingDecl, raw_ostream &Out) {
4217   CXXNameMangler Mangler(*this, Out);
4218   Mangler.getStream() << "__filt_";
4219   if (shouldMangleDeclName(EnclosingDecl))
4220     Mangler.mangle(EnclosingDecl);
4221   else
4222     Mangler.getStream() << EnclosingDecl->getName();
4223 }
4224 
4225 void ItaniumMangleContextImpl::mangleSEHFinallyBlock(
4226     const NamedDecl *EnclosingDecl, raw_ostream &Out) {
4227   CXXNameMangler Mangler(*this, Out);
4228   Mangler.getStream() << "__fin_";
4229   if (shouldMangleDeclName(EnclosingDecl))
4230     Mangler.mangle(EnclosingDecl);
4231   else
4232     Mangler.getStream() << EnclosingDecl->getName();
4233 }
4234 
4235 void ItaniumMangleContextImpl::mangleItaniumThreadLocalInit(const VarDecl *D,
4236                                                             raw_ostream &Out) {
4237   //  <special-name> ::= TH <object name>
4238   CXXNameMangler Mangler(*this, Out);
4239   Mangler.getStream() << "_ZTH";
4240   Mangler.mangleName(D);
4241 }
4242 
4243 void
4244 ItaniumMangleContextImpl::mangleItaniumThreadLocalWrapper(const VarDecl *D,
4245                                                           raw_ostream &Out) {
4246   //  <special-name> ::= TW <object name>
4247   CXXNameMangler Mangler(*this, Out);
4248   Mangler.getStream() << "_ZTW";
4249   Mangler.mangleName(D);
4250 }
4251 
4252 void ItaniumMangleContextImpl::mangleReferenceTemporary(const VarDecl *D,
4253                                                         unsigned ManglingNumber,
4254                                                         raw_ostream &Out) {
4255   // We match the GCC mangling here.
4256   //  <special-name> ::= GR <object name>
4257   CXXNameMangler Mangler(*this, Out);
4258   Mangler.getStream() << "_ZGR";
4259   Mangler.mangleName(D);
4260   assert(ManglingNumber > 0 && "Reference temporary mangling number is zero!");
4261   Mangler.mangleSeqID(ManglingNumber - 1);
4262 }
4263 
4264 void ItaniumMangleContextImpl::mangleCXXVTable(const CXXRecordDecl *RD,
4265                                                raw_ostream &Out) {
4266   // <special-name> ::= TV <type>  # virtual table
4267   CXXNameMangler Mangler(*this, Out);
4268   Mangler.getStream() << "_ZTV";
4269   Mangler.mangleNameOrStandardSubstitution(RD);
4270 }
4271 
4272 void ItaniumMangleContextImpl::mangleCXXVTT(const CXXRecordDecl *RD,
4273                                             raw_ostream &Out) {
4274   // <special-name> ::= TT <type>  # VTT structure
4275   CXXNameMangler Mangler(*this, Out);
4276   Mangler.getStream() << "_ZTT";
4277   Mangler.mangleNameOrStandardSubstitution(RD);
4278 }
4279 
4280 void ItaniumMangleContextImpl::mangleCXXCtorVTable(const CXXRecordDecl *RD,
4281                                                    int64_t Offset,
4282                                                    const CXXRecordDecl *Type,
4283                                                    raw_ostream &Out) {
4284   // <special-name> ::= TC <type> <offset number> _ <base type>
4285   CXXNameMangler Mangler(*this, Out);
4286   Mangler.getStream() << "_ZTC";
4287   Mangler.mangleNameOrStandardSubstitution(RD);
4288   Mangler.getStream() << Offset;
4289   Mangler.getStream() << '_';
4290   Mangler.mangleNameOrStandardSubstitution(Type);
4291 }
4292 
4293 void ItaniumMangleContextImpl::mangleCXXRTTI(QualType Ty, raw_ostream &Out) {
4294   // <special-name> ::= TI <type>  # typeinfo structure
4295   assert(!Ty.hasQualifiers() && "RTTI info cannot have top-level qualifiers");
4296   CXXNameMangler Mangler(*this, Out);
4297   Mangler.getStream() << "_ZTI";
4298   Mangler.mangleType(Ty);
4299 }
4300 
4301 void ItaniumMangleContextImpl::mangleCXXRTTIName(QualType Ty,
4302                                                  raw_ostream &Out) {
4303   // <special-name> ::= TS <type>  # typeinfo name (null terminated byte string)
4304   CXXNameMangler Mangler(*this, Out);
4305   Mangler.getStream() << "_ZTS";
4306   Mangler.mangleType(Ty);
4307 }
4308 
4309 void ItaniumMangleContextImpl::mangleTypeName(QualType Ty, raw_ostream &Out) {
4310   mangleCXXRTTIName(Ty, Out);
4311 }
4312 
4313 void ItaniumMangleContextImpl::mangleStringLiteral(const StringLiteral *, raw_ostream &) {
4314   llvm_unreachable("Can't mangle string literals");
4315 }
4316 
4317 ItaniumMangleContext *
4318 ItaniumMangleContext::create(ASTContext &Context, DiagnosticsEngine &Diags) {
4319   return new ItaniumMangleContextImpl(Context, Diags);
4320 }
4321