1 //===--- MicrosoftMangle.cpp - Microsoft Visual C++ Name Mangling ---------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This provides C++ name mangling targeting the Microsoft Visual C++ ABI.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "clang/AST/ASTContext.h"
14 #include "clang/AST/Attr.h"
15 #include "clang/AST/CXXInheritance.h"
16 #include "clang/AST/CharUnits.h"
17 #include "clang/AST/Decl.h"
18 #include "clang/AST/DeclCXX.h"
19 #include "clang/AST/DeclObjC.h"
20 #include "clang/AST/DeclOpenMP.h"
21 #include "clang/AST/DeclTemplate.h"
22 #include "clang/AST/Expr.h"
23 #include "clang/AST/ExprCXX.h"
24 #include "clang/AST/Mangle.h"
25 #include "clang/AST/VTableBuilder.h"
26 #include "clang/Basic/ABI.h"
27 #include "clang/Basic/DiagnosticOptions.h"
28 #include "clang/Basic/FileManager.h"
29 #include "clang/Basic/SourceManager.h"
30 #include "clang/Basic/TargetInfo.h"
31 #include "llvm/ADT/StringExtras.h"
32 #include "llvm/Support/CRC.h"
33 #include "llvm/Support/MD5.h"
34 #include "llvm/Support/MathExtras.h"
35 #include "llvm/Support/StringSaver.h"
36 #include "llvm/Support/xxhash.h"
37 
38 using namespace clang;
39 
40 namespace {
41 
42 struct msvc_hashing_ostream : public llvm::raw_svector_ostream {
43   raw_ostream &OS;
44   llvm::SmallString<64> Buffer;
45 
46   msvc_hashing_ostream(raw_ostream &OS)
47       : llvm::raw_svector_ostream(Buffer), OS(OS) {}
48   ~msvc_hashing_ostream() override {
49     StringRef MangledName = str();
50     bool StartsWithEscape = MangledName.startswith("\01");
51     if (StartsWithEscape)
52       MangledName = MangledName.drop_front(1);
53     if (MangledName.size() < 4096) {
54       OS << str();
55       return;
56     }
57 
58     llvm::MD5 Hasher;
59     llvm::MD5::MD5Result Hash;
60     Hasher.update(MangledName);
61     Hasher.final(Hash);
62 
63     SmallString<32> HexString;
64     llvm::MD5::stringifyResult(Hash, HexString);
65 
66     if (StartsWithEscape)
67       OS << '\01';
68     OS << "??@" << HexString << '@';
69   }
70 };
71 
72 static const DeclContext *
73 getLambdaDefaultArgumentDeclContext(const Decl *D) {
74   if (const auto *RD = dyn_cast<CXXRecordDecl>(D))
75     if (RD->isLambda())
76       if (const auto *Parm =
77               dyn_cast_or_null<ParmVarDecl>(RD->getLambdaContextDecl()))
78         return Parm->getDeclContext();
79   return nullptr;
80 }
81 
82 /// Retrieve the declaration context that should be used when mangling
83 /// the given declaration.
84 static const DeclContext *getEffectiveDeclContext(const Decl *D) {
85   // The ABI assumes that lambda closure types that occur within
86   // default arguments live in the context of the function. However, due to
87   // the way in which Clang parses and creates function declarations, this is
88   // not the case: the lambda closure type ends up living in the context
89   // where the function itself resides, because the function declaration itself
90   // had not yet been created. Fix the context here.
91   if (const auto *LDADC = getLambdaDefaultArgumentDeclContext(D))
92     return LDADC;
93 
94   // Perform the same check for block literals.
95   if (const BlockDecl *BD = dyn_cast<BlockDecl>(D)) {
96     if (ParmVarDecl *ContextParam =
97             dyn_cast_or_null<ParmVarDecl>(BD->getBlockManglingContextDecl()))
98       return ContextParam->getDeclContext();
99   }
100 
101   const DeclContext *DC = D->getDeclContext();
102   if (isa<CapturedDecl>(DC) || isa<OMPDeclareReductionDecl>(DC) ||
103       isa<OMPDeclareMapperDecl>(DC)) {
104     return getEffectiveDeclContext(cast<Decl>(DC));
105   }
106 
107   return DC->getRedeclContext();
108 }
109 
110 static const DeclContext *getEffectiveParentContext(const DeclContext *DC) {
111   return getEffectiveDeclContext(cast<Decl>(DC));
112 }
113 
114 static const FunctionDecl *getStructor(const NamedDecl *ND) {
115   if (const auto *FTD = dyn_cast<FunctionTemplateDecl>(ND))
116     return FTD->getTemplatedDecl()->getCanonicalDecl();
117 
118   const auto *FD = cast<FunctionDecl>(ND);
119   if (const auto *FTD = FD->getPrimaryTemplate())
120     return FTD->getTemplatedDecl()->getCanonicalDecl();
121 
122   return FD->getCanonicalDecl();
123 }
124 
125 /// MicrosoftMangleContextImpl - Overrides the default MangleContext for the
126 /// Microsoft Visual C++ ABI.
127 class MicrosoftMangleContextImpl : public MicrosoftMangleContext {
128   typedef std::pair<const DeclContext *, IdentifierInfo *> DiscriminatorKeyTy;
129   llvm::DenseMap<DiscriminatorKeyTy, unsigned> Discriminator;
130   llvm::DenseMap<const NamedDecl *, unsigned> Uniquifier;
131   llvm::DenseMap<const CXXRecordDecl *, unsigned> LambdaIds;
132   llvm::DenseMap<const NamedDecl *, unsigned> SEHFilterIds;
133   llvm::DenseMap<const NamedDecl *, unsigned> SEHFinallyIds;
134   SmallString<16> AnonymousNamespaceHash;
135 
136 public:
137   MicrosoftMangleContextImpl(ASTContext &Context, DiagnosticsEngine &Diags);
138   bool shouldMangleCXXName(const NamedDecl *D) override;
139   bool shouldMangleStringLiteral(const StringLiteral *SL) override;
140   void mangleCXXName(GlobalDecl GD, raw_ostream &Out) override;
141   void mangleVirtualMemPtrThunk(const CXXMethodDecl *MD,
142                                 const MethodVFTableLocation &ML,
143                                 raw_ostream &Out) 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 mangleCXXVFTable(const CXXRecordDecl *Derived,
150                         ArrayRef<const CXXRecordDecl *> BasePath,
151                         raw_ostream &Out) override;
152   void mangleCXXVBTable(const CXXRecordDecl *Derived,
153                         ArrayRef<const CXXRecordDecl *> BasePath,
154                         raw_ostream &Out) override;
155   void mangleCXXVirtualDisplacementMap(const CXXRecordDecl *SrcRD,
156                                        const CXXRecordDecl *DstRD,
157                                        raw_ostream &Out) override;
158   void mangleCXXThrowInfo(QualType T, bool IsConst, bool IsVolatile,
159                           bool IsUnaligned, uint32_t NumEntries,
160                           raw_ostream &Out) override;
161   void mangleCXXCatchableTypeArray(QualType T, uint32_t NumEntries,
162                                    raw_ostream &Out) override;
163   void mangleCXXCatchableType(QualType T, const CXXConstructorDecl *CD,
164                               CXXCtorType CT, uint32_t Size, uint32_t NVOffset,
165                               int32_t VBPtrOffset, uint32_t VBIndex,
166                               raw_ostream &Out) override;
167   void mangleCXXRTTI(QualType T, raw_ostream &Out) override;
168   void mangleCXXRTTIName(QualType T, raw_ostream &Out) override;
169   void mangleCXXRTTIBaseClassDescriptor(const CXXRecordDecl *Derived,
170                                         uint32_t NVOffset, int32_t VBPtrOffset,
171                                         uint32_t VBTableOffset, uint32_t Flags,
172                                         raw_ostream &Out) override;
173   void mangleCXXRTTIBaseClassArray(const CXXRecordDecl *Derived,
174                                    raw_ostream &Out) override;
175   void mangleCXXRTTIClassHierarchyDescriptor(const CXXRecordDecl *Derived,
176                                              raw_ostream &Out) override;
177   void
178   mangleCXXRTTICompleteObjectLocator(const CXXRecordDecl *Derived,
179                                      ArrayRef<const CXXRecordDecl *> BasePath,
180                                      raw_ostream &Out) override;
181   void mangleTypeName(QualType T, raw_ostream &) override;
182   void mangleReferenceTemporary(const VarDecl *, unsigned ManglingNumber,
183                                 raw_ostream &) override;
184   void mangleStaticGuardVariable(const VarDecl *D, raw_ostream &Out) override;
185   void mangleThreadSafeStaticGuardVariable(const VarDecl *D, unsigned GuardNum,
186                                            raw_ostream &Out) override;
187   void mangleDynamicInitializer(const VarDecl *D, raw_ostream &Out) override;
188   void mangleDynamicAtExitDestructor(const VarDecl *D,
189                                      raw_ostream &Out) override;
190   void mangleSEHFilterExpression(const NamedDecl *EnclosingDecl,
191                                  raw_ostream &Out) override;
192   void mangleSEHFinallyBlock(const NamedDecl *EnclosingDecl,
193                              raw_ostream &Out) override;
194   void mangleStringLiteral(const StringLiteral *SL, raw_ostream &Out) override;
195   bool getNextDiscriminator(const NamedDecl *ND, unsigned &disc) {
196     const DeclContext *DC = getEffectiveDeclContext(ND);
197     if (!DC->isFunctionOrMethod())
198       return false;
199 
200     // Lambda closure types are already numbered, give out a phony number so
201     // that they demangle nicely.
202     if (const auto *RD = dyn_cast<CXXRecordDecl>(ND)) {
203       if (RD->isLambda()) {
204         disc = 1;
205         return true;
206       }
207     }
208 
209     // Use the canonical number for externally visible decls.
210     if (ND->isExternallyVisible()) {
211       disc = getASTContext().getManglingNumber(ND);
212       return true;
213     }
214 
215     // Anonymous tags are already numbered.
216     if (const TagDecl *Tag = dyn_cast<TagDecl>(ND)) {
217       if (!Tag->hasNameForLinkage() &&
218           !getASTContext().getDeclaratorForUnnamedTagDecl(Tag) &&
219           !getASTContext().getTypedefNameForUnnamedTagDecl(Tag))
220         return false;
221     }
222 
223     // Make up a reasonable number for internal decls.
224     unsigned &discriminator = Uniquifier[ND];
225     if (!discriminator)
226       discriminator = ++Discriminator[std::make_pair(DC, ND->getIdentifier())];
227     disc = discriminator + 1;
228     return true;
229   }
230 
231   unsigned getLambdaId(const CXXRecordDecl *RD) {
232     assert(RD->isLambda() && "RD must be a lambda!");
233     assert(!RD->isExternallyVisible() && "RD must not be visible!");
234     assert(RD->getLambdaManglingNumber() == 0 &&
235            "RD must not have a mangling number!");
236     std::pair<llvm::DenseMap<const CXXRecordDecl *, unsigned>::iterator, bool>
237         Result = LambdaIds.insert(std::make_pair(RD, LambdaIds.size()));
238     return Result.first->second;
239   }
240 
241   /// Return a character sequence that is (somewhat) unique to the TU suitable
242   /// for mangling anonymous namespaces.
243   StringRef getAnonymousNamespaceHash() const {
244     return AnonymousNamespaceHash;
245   }
246 
247 private:
248   void mangleInitFiniStub(const VarDecl *D, char CharCode, raw_ostream &Out);
249 };
250 
251 /// MicrosoftCXXNameMangler - Manage the mangling of a single name for the
252 /// Microsoft Visual C++ ABI.
253 class MicrosoftCXXNameMangler {
254   MicrosoftMangleContextImpl &Context;
255   raw_ostream &Out;
256 
257   /// The "structor" is the top-level declaration being mangled, if
258   /// that's not a template specialization; otherwise it's the pattern
259   /// for that specialization.
260   const NamedDecl *Structor;
261   unsigned StructorType;
262 
263   typedef llvm::SmallVector<std::string, 10> BackRefVec;
264   BackRefVec NameBackReferences;
265 
266   typedef llvm::DenseMap<const void *, unsigned> ArgBackRefMap;
267   ArgBackRefMap FunArgBackReferences;
268   ArgBackRefMap TemplateArgBackReferences;
269 
270   typedef llvm::DenseMap<const void *, StringRef> TemplateArgStringMap;
271   TemplateArgStringMap TemplateArgStrings;
272   llvm::StringSaver TemplateArgStringStorage;
273   llvm::BumpPtrAllocator TemplateArgStringStorageAlloc;
274 
275   typedef std::set<std::pair<int, bool>> PassObjectSizeArgsSet;
276   PassObjectSizeArgsSet PassObjectSizeArgs;
277 
278   ASTContext &getASTContext() const { return Context.getASTContext(); }
279 
280   const bool PointersAre64Bit;
281 
282 public:
283   enum QualifierMangleMode { QMM_Drop, QMM_Mangle, QMM_Escape, QMM_Result };
284 
285   MicrosoftCXXNameMangler(MicrosoftMangleContextImpl &C, raw_ostream &Out_)
286       : Context(C), Out(Out_), Structor(nullptr), StructorType(-1),
287         TemplateArgStringStorage(TemplateArgStringStorageAlloc),
288         PointersAre64Bit(C.getASTContext().getTargetInfo().getPointerWidth(0) ==
289                          64) {}
290 
291   MicrosoftCXXNameMangler(MicrosoftMangleContextImpl &C, raw_ostream &Out_,
292                           const CXXConstructorDecl *D, CXXCtorType Type)
293       : Context(C), Out(Out_), Structor(getStructor(D)), StructorType(Type),
294         TemplateArgStringStorage(TemplateArgStringStorageAlloc),
295         PointersAre64Bit(C.getASTContext().getTargetInfo().getPointerWidth(0) ==
296                          64) {}
297 
298   MicrosoftCXXNameMangler(MicrosoftMangleContextImpl &C, raw_ostream &Out_,
299                           const CXXDestructorDecl *D, CXXDtorType Type)
300       : Context(C), Out(Out_), Structor(getStructor(D)), StructorType(Type),
301         TemplateArgStringStorage(TemplateArgStringStorageAlloc),
302         PointersAre64Bit(C.getASTContext().getTargetInfo().getPointerWidth(0) ==
303                          64) {}
304 
305   raw_ostream &getStream() const { return Out; }
306 
307   void mangle(const NamedDecl *D, StringRef Prefix = "?");
308   void mangleName(const NamedDecl *ND);
309   void mangleFunctionEncoding(const FunctionDecl *FD, bool ShouldMangle);
310   void mangleVariableEncoding(const VarDecl *VD);
311   void mangleMemberDataPointer(const CXXRecordDecl *RD, const ValueDecl *VD,
312                                StringRef Prefix = "$");
313   void mangleMemberFunctionPointer(const CXXRecordDecl *RD,
314                                    const CXXMethodDecl *MD,
315                                    StringRef Prefix = "$");
316   void mangleVirtualMemPtrThunk(const CXXMethodDecl *MD,
317                                 const MethodVFTableLocation &ML);
318   void mangleNumber(int64_t Number);
319   void mangleNumber(llvm::APSInt Number);
320   void mangleFloat(llvm::APFloat Number);
321   void mangleBits(llvm::APInt Number);
322   void mangleTagTypeKind(TagTypeKind TK);
323   void mangleArtificialTagType(TagTypeKind TK, StringRef UnqualifiedName,
324                               ArrayRef<StringRef> NestedNames = None);
325   void mangleAddressSpaceType(QualType T, Qualifiers Quals, SourceRange Range);
326   void mangleType(QualType T, SourceRange Range,
327                   QualifierMangleMode QMM = QMM_Mangle);
328   void mangleFunctionType(const FunctionType *T,
329                           const FunctionDecl *D = nullptr,
330                           bool ForceThisQuals = false,
331                           bool MangleExceptionSpec = true);
332   void mangleNestedName(const NamedDecl *ND);
333 
334 private:
335   bool isStructorDecl(const NamedDecl *ND) const {
336     return ND == Structor || getStructor(ND) == Structor;
337   }
338 
339   bool is64BitPointer(Qualifiers Quals) const {
340     LangAS AddrSpace = Quals.getAddressSpace();
341     return AddrSpace == LangAS::ptr64 ||
342            (PointersAre64Bit && !(AddrSpace == LangAS::ptr32_sptr ||
343                                   AddrSpace == LangAS::ptr32_uptr));
344   }
345 
346   void mangleUnqualifiedName(const NamedDecl *ND) {
347     mangleUnqualifiedName(ND, ND->getDeclName());
348   }
349   void mangleUnqualifiedName(const NamedDecl *ND, DeclarationName Name);
350   void mangleSourceName(StringRef Name);
351   void mangleOperatorName(OverloadedOperatorKind OO, SourceLocation Loc);
352   void mangleCXXDtorType(CXXDtorType T);
353   void mangleQualifiers(Qualifiers Quals, bool IsMember);
354   void mangleRefQualifier(RefQualifierKind RefQualifier);
355   void manglePointerCVQualifiers(Qualifiers Quals);
356   void manglePointerExtQualifiers(Qualifiers Quals, QualType PointeeType);
357 
358   void mangleUnscopedTemplateName(const TemplateDecl *ND);
359   void
360   mangleTemplateInstantiationName(const TemplateDecl *TD,
361                                   const TemplateArgumentList &TemplateArgs);
362   void mangleObjCMethodName(const ObjCMethodDecl *MD);
363 
364   void mangleFunctionArgumentType(QualType T, SourceRange Range);
365   void manglePassObjectSizeArg(const PassObjectSizeAttr *POSA);
366 
367   bool isArtificialTagType(QualType T) const;
368 
369   // Declare manglers for every type class.
370 #define ABSTRACT_TYPE(CLASS, PARENT)
371 #define NON_CANONICAL_TYPE(CLASS, PARENT)
372 #define TYPE(CLASS, PARENT) void mangleType(const CLASS##Type *T, \
373                                             Qualifiers Quals, \
374                                             SourceRange Range);
375 #include "clang/AST/TypeNodes.inc"
376 #undef ABSTRACT_TYPE
377 #undef NON_CANONICAL_TYPE
378 #undef TYPE
379 
380   void mangleType(const TagDecl *TD);
381   void mangleDecayedArrayType(const ArrayType *T);
382   void mangleArrayType(const ArrayType *T);
383   void mangleFunctionClass(const FunctionDecl *FD);
384   void mangleCallingConvention(CallingConv CC);
385   void mangleCallingConvention(const FunctionType *T);
386   void mangleIntegerLiteral(const llvm::APSInt &Number,
387                             const NonTypeTemplateParmDecl *PD = nullptr,
388                             QualType TemplateArgType = QualType());
389   void mangleExpression(const Expr *E, const NonTypeTemplateParmDecl *PD);
390   void mangleThrowSpecification(const FunctionProtoType *T);
391 
392   void mangleTemplateArgs(const TemplateDecl *TD,
393                           const TemplateArgumentList &TemplateArgs);
394   void mangleTemplateArg(const TemplateDecl *TD, const TemplateArgument &TA,
395                          const NamedDecl *Parm);
396   void mangleTemplateArgValue(QualType T, const APValue &V,
397                               bool WithScalarType = false);
398 
399   void mangleObjCProtocol(const ObjCProtocolDecl *PD);
400   void mangleObjCLifetime(const QualType T, Qualifiers Quals,
401                           SourceRange Range);
402   void mangleObjCKindOfType(const ObjCObjectType *T, Qualifiers Quals,
403                             SourceRange Range);
404 };
405 }
406 
407 MicrosoftMangleContextImpl::MicrosoftMangleContextImpl(ASTContext &Context,
408                                                        DiagnosticsEngine &Diags)
409     : MicrosoftMangleContext(Context, Diags) {
410   // To mangle anonymous namespaces, hash the path to the main source file. The
411   // path should be whatever (probably relative) path was passed on the command
412   // line. The goal is for the compiler to produce the same output regardless of
413   // working directory, so use the uncanonicalized relative path.
414   //
415   // It's important to make the mangled names unique because, when CodeView
416   // debug info is in use, the debugger uses mangled type names to distinguish
417   // between otherwise identically named types in anonymous namespaces.
418   //
419   // These symbols are always internal, so there is no need for the hash to
420   // match what MSVC produces. For the same reason, clang is free to change the
421   // hash at any time without breaking compatibility with old versions of clang.
422   // The generated names are intended to look similar to what MSVC generates,
423   // which are something like "?A0x01234567@".
424   SourceManager &SM = Context.getSourceManager();
425   if (const FileEntry *FE = SM.getFileEntryForID(SM.getMainFileID())) {
426     // Truncate the hash so we get 8 characters of hexadecimal.
427     uint32_t TruncatedHash = uint32_t(xxHash64(FE->getName()));
428     AnonymousNamespaceHash = llvm::utohexstr(TruncatedHash);
429   } else {
430     // If we don't have a path to the main file, we'll just use 0.
431     AnonymousNamespaceHash = "0";
432   }
433 }
434 
435 bool MicrosoftMangleContextImpl::shouldMangleCXXName(const NamedDecl *D) {
436   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
437     LanguageLinkage L = FD->getLanguageLinkage();
438     // Overloadable functions need mangling.
439     if (FD->hasAttr<OverloadableAttr>())
440       return true;
441 
442     // The ABI expects that we would never mangle "typical" user-defined entry
443     // points regardless of visibility or freestanding-ness.
444     //
445     // N.B. This is distinct from asking about "main".  "main" has a lot of
446     // special rules associated with it in the standard while these
447     // user-defined entry points are outside of the purview of the standard.
448     // For example, there can be only one definition for "main" in a standards
449     // compliant program; however nothing forbids the existence of wmain and
450     // WinMain in the same translation unit.
451     if (FD->isMSVCRTEntryPoint())
452       return false;
453 
454     // C++ functions and those whose names are not a simple identifier need
455     // mangling.
456     if (!FD->getDeclName().isIdentifier() || L == CXXLanguageLinkage)
457       return true;
458 
459     // C functions are not mangled.
460     if (L == CLanguageLinkage)
461       return false;
462   }
463 
464   // Otherwise, no mangling is done outside C++ mode.
465   if (!getASTContext().getLangOpts().CPlusPlus)
466     return false;
467 
468   const VarDecl *VD = dyn_cast<VarDecl>(D);
469   if (VD && !isa<DecompositionDecl>(D)) {
470     // C variables are not mangled.
471     if (VD->isExternC())
472       return false;
473 
474     // Variables at global scope with internal linkage are not mangled.
475     const DeclContext *DC = getEffectiveDeclContext(D);
476     // Check for extern variable declared locally.
477     if (DC->isFunctionOrMethod() && D->hasLinkage())
478       while (!DC->isNamespace() && !DC->isTranslationUnit())
479         DC = getEffectiveParentContext(DC);
480 
481     if (DC->isTranslationUnit() && D->getFormalLinkage() == InternalLinkage &&
482         !isa<VarTemplateSpecializationDecl>(D) &&
483         D->getIdentifier() != nullptr)
484       return false;
485   }
486 
487   return true;
488 }
489 
490 bool
491 MicrosoftMangleContextImpl::shouldMangleStringLiteral(const StringLiteral *SL) {
492   return true;
493 }
494 
495 void MicrosoftCXXNameMangler::mangle(const NamedDecl *D, StringRef Prefix) {
496   // MSVC doesn't mangle C++ names the same way it mangles extern "C" names.
497   // Therefore it's really important that we don't decorate the
498   // name with leading underscores or leading/trailing at signs. So, by
499   // default, we emit an asm marker at the start so we get the name right.
500   // Callers can override this with a custom prefix.
501 
502   // <mangled-name> ::= ? <name> <type-encoding>
503   Out << Prefix;
504   mangleName(D);
505   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D))
506     mangleFunctionEncoding(FD, Context.shouldMangleDeclName(FD));
507   else if (const VarDecl *VD = dyn_cast<VarDecl>(D))
508     mangleVariableEncoding(VD);
509   else if (isa<MSGuidDecl>(D))
510     // MSVC appears to mangle GUIDs as if they were variables of type
511     // 'const struct __s_GUID'.
512     Out << "3U__s_GUID@@B";
513   else if (isa<TemplateParamObjectDecl>(D)) {
514     // Template parameter objects don't get a <type-encoding>; their type is
515     // specified as part of their value.
516   } else
517     llvm_unreachable("Tried to mangle unexpected NamedDecl!");
518 }
519 
520 void MicrosoftCXXNameMangler::mangleFunctionEncoding(const FunctionDecl *FD,
521                                                      bool ShouldMangle) {
522   // <type-encoding> ::= <function-class> <function-type>
523 
524   // Since MSVC operates on the type as written and not the canonical type, it
525   // actually matters which decl we have here.  MSVC appears to choose the
526   // first, since it is most likely to be the declaration in a header file.
527   FD = FD->getFirstDecl();
528 
529   // We should never ever see a FunctionNoProtoType at this point.
530   // We don't even know how to mangle their types anyway :).
531   const FunctionProtoType *FT = FD->getType()->castAs<FunctionProtoType>();
532 
533   // extern "C" functions can hold entities that must be mangled.
534   // As it stands, these functions still need to get expressed in the full
535   // external name.  They have their class and type omitted, replaced with '9'.
536   if (ShouldMangle) {
537     // We would like to mangle all extern "C" functions using this additional
538     // component but this would break compatibility with MSVC's behavior.
539     // Instead, do this when we know that compatibility isn't important (in
540     // other words, when it is an overloaded extern "C" function).
541     if (FD->isExternC() && FD->hasAttr<OverloadableAttr>())
542       Out << "$$J0";
543 
544     mangleFunctionClass(FD);
545 
546     mangleFunctionType(FT, FD, false, false);
547   } else {
548     Out << '9';
549   }
550 }
551 
552 void MicrosoftCXXNameMangler::mangleVariableEncoding(const VarDecl *VD) {
553   // <type-encoding> ::= <storage-class> <variable-type>
554   // <storage-class> ::= 0  # private static member
555   //                 ::= 1  # protected static member
556   //                 ::= 2  # public static member
557   //                 ::= 3  # global
558   //                 ::= 4  # static local
559 
560   // The first character in the encoding (after the name) is the storage class.
561   if (VD->isStaticDataMember()) {
562     // If it's a static member, it also encodes the access level.
563     switch (VD->getAccess()) {
564       default:
565       case AS_private: Out << '0'; break;
566       case AS_protected: Out << '1'; break;
567       case AS_public: Out << '2'; break;
568     }
569   }
570   else if (!VD->isStaticLocal())
571     Out << '3';
572   else
573     Out << '4';
574   // Now mangle the type.
575   // <variable-type> ::= <type> <cvr-qualifiers>
576   //                 ::= <type> <pointee-cvr-qualifiers> # pointers, references
577   // Pointers and references are odd. The type of 'int * const foo;' gets
578   // mangled as 'QAHA' instead of 'PAHB', for example.
579   SourceRange SR = VD->getSourceRange();
580   QualType Ty = VD->getType();
581   if (Ty->isPointerType() || Ty->isReferenceType() ||
582       Ty->isMemberPointerType()) {
583     mangleType(Ty, SR, QMM_Drop);
584     manglePointerExtQualifiers(
585         Ty.getDesugaredType(getASTContext()).getLocalQualifiers(), QualType());
586     if (const MemberPointerType *MPT = Ty->getAs<MemberPointerType>()) {
587       mangleQualifiers(MPT->getPointeeType().getQualifiers(), true);
588       // Member pointers are suffixed with a back reference to the member
589       // pointer's class name.
590       mangleName(MPT->getClass()->getAsCXXRecordDecl());
591     } else
592       mangleQualifiers(Ty->getPointeeType().getQualifiers(), false);
593   } else if (const ArrayType *AT = getASTContext().getAsArrayType(Ty)) {
594     // Global arrays are funny, too.
595     mangleDecayedArrayType(AT);
596     if (AT->getElementType()->isArrayType())
597       Out << 'A';
598     else
599       mangleQualifiers(Ty.getQualifiers(), false);
600   } else {
601     mangleType(Ty, SR, QMM_Drop);
602     mangleQualifiers(Ty.getQualifiers(), false);
603   }
604 }
605 
606 void MicrosoftCXXNameMangler::mangleMemberDataPointer(const CXXRecordDecl *RD,
607                                                       const ValueDecl *VD,
608                                                       StringRef Prefix) {
609   // <member-data-pointer> ::= <integer-literal>
610   //                       ::= $F <number> <number>
611   //                       ::= $G <number> <number> <number>
612 
613   int64_t FieldOffset;
614   int64_t VBTableOffset;
615   MSInheritanceModel IM = RD->getMSInheritanceModel();
616   if (VD) {
617     FieldOffset = getASTContext().getFieldOffset(VD);
618     assert(FieldOffset % getASTContext().getCharWidth() == 0 &&
619            "cannot take address of bitfield");
620     FieldOffset /= getASTContext().getCharWidth();
621 
622     VBTableOffset = 0;
623 
624     if (IM == MSInheritanceModel::Virtual)
625       FieldOffset -= getASTContext().getOffsetOfBaseWithVBPtr(RD).getQuantity();
626   } else {
627     FieldOffset = RD->nullFieldOffsetIsZero() ? 0 : -1;
628 
629     VBTableOffset = -1;
630   }
631 
632   char Code = '\0';
633   switch (IM) {
634   case MSInheritanceModel::Single:      Code = '0'; break;
635   case MSInheritanceModel::Multiple:    Code = '0'; break;
636   case MSInheritanceModel::Virtual:     Code = 'F'; break;
637   case MSInheritanceModel::Unspecified: Code = 'G'; break;
638   }
639 
640   Out << Prefix << Code;
641 
642   mangleNumber(FieldOffset);
643 
644   // The C++ standard doesn't allow base-to-derived member pointer conversions
645   // in template parameter contexts, so the vbptr offset of data member pointers
646   // is always zero.
647   if (inheritanceModelHasVBPtrOffsetField(IM))
648     mangleNumber(0);
649   if (inheritanceModelHasVBTableOffsetField(IM))
650     mangleNumber(VBTableOffset);
651 }
652 
653 void
654 MicrosoftCXXNameMangler::mangleMemberFunctionPointer(const CXXRecordDecl *RD,
655                                                      const CXXMethodDecl *MD,
656                                                      StringRef Prefix) {
657   // <member-function-pointer> ::= $1? <name>
658   //                           ::= $H? <name> <number>
659   //                           ::= $I? <name> <number> <number>
660   //                           ::= $J? <name> <number> <number> <number>
661 
662   MSInheritanceModel IM = RD->getMSInheritanceModel();
663 
664   char Code = '\0';
665   switch (IM) {
666   case MSInheritanceModel::Single:      Code = '1'; break;
667   case MSInheritanceModel::Multiple:    Code = 'H'; break;
668   case MSInheritanceModel::Virtual:     Code = 'I'; break;
669   case MSInheritanceModel::Unspecified: Code = 'J'; break;
670   }
671 
672   // If non-virtual, mangle the name.  If virtual, mangle as a virtual memptr
673   // thunk.
674   uint64_t NVOffset = 0;
675   uint64_t VBTableOffset = 0;
676   uint64_t VBPtrOffset = 0;
677   if (MD) {
678     Out << Prefix << Code << '?';
679     if (MD->isVirtual()) {
680       MicrosoftVTableContext *VTContext =
681           cast<MicrosoftVTableContext>(getASTContext().getVTableContext());
682       MethodVFTableLocation ML =
683           VTContext->getMethodVFTableLocation(GlobalDecl(MD));
684       mangleVirtualMemPtrThunk(MD, ML);
685       NVOffset = ML.VFPtrOffset.getQuantity();
686       VBTableOffset = ML.VBTableIndex * 4;
687       if (ML.VBase) {
688         const ASTRecordLayout &Layout = getASTContext().getASTRecordLayout(RD);
689         VBPtrOffset = Layout.getVBPtrOffset().getQuantity();
690       }
691     } else {
692       mangleName(MD);
693       mangleFunctionEncoding(MD, /*ShouldMangle=*/true);
694     }
695 
696     if (VBTableOffset == 0 && IM == MSInheritanceModel::Virtual)
697       NVOffset -= getASTContext().getOffsetOfBaseWithVBPtr(RD).getQuantity();
698   } else {
699     // Null single inheritance member functions are encoded as a simple nullptr.
700     if (IM == MSInheritanceModel::Single) {
701       Out << Prefix << "0A@";
702       return;
703     }
704     if (IM == MSInheritanceModel::Unspecified)
705       VBTableOffset = -1;
706     Out << Prefix << Code;
707   }
708 
709   if (inheritanceModelHasNVOffsetField(/*IsMemberFunction=*/true, IM))
710     mangleNumber(static_cast<uint32_t>(NVOffset));
711   if (inheritanceModelHasVBPtrOffsetField(IM))
712     mangleNumber(VBPtrOffset);
713   if (inheritanceModelHasVBTableOffsetField(IM))
714     mangleNumber(VBTableOffset);
715 }
716 
717 void MicrosoftCXXNameMangler::mangleVirtualMemPtrThunk(
718     const CXXMethodDecl *MD, const MethodVFTableLocation &ML) {
719   // Get the vftable offset.
720   CharUnits PointerWidth = getASTContext().toCharUnitsFromBits(
721       getASTContext().getTargetInfo().getPointerWidth(0));
722   uint64_t OffsetInVFTable = ML.Index * PointerWidth.getQuantity();
723 
724   Out << "?_9";
725   mangleName(MD->getParent());
726   Out << "$B";
727   mangleNumber(OffsetInVFTable);
728   Out << 'A';
729   mangleCallingConvention(MD->getType()->castAs<FunctionProtoType>());
730 }
731 
732 void MicrosoftCXXNameMangler::mangleName(const NamedDecl *ND) {
733   // <name> ::= <unscoped-name> {[<named-scope>]+ | [<nested-name>]}? @
734 
735   // Always start with the unqualified name.
736   mangleUnqualifiedName(ND);
737 
738   mangleNestedName(ND);
739 
740   // Terminate the whole name with an '@'.
741   Out << '@';
742 }
743 
744 void MicrosoftCXXNameMangler::mangleNumber(int64_t Number) {
745   mangleNumber(llvm::APSInt(llvm::APInt(64, Number), /*IsUnsigned*/false));
746 }
747 
748 void MicrosoftCXXNameMangler::mangleNumber(llvm::APSInt Number) {
749   // MSVC never mangles any integer wider than 64 bits. In general it appears
750   // to convert every integer to signed 64 bit before mangling (including
751   // unsigned 64 bit values). Do the same, but preserve bits beyond the bottom
752   // 64.
753   llvm::APInt Value =
754       Number.isSigned() ? Number.sextOrSelf(64) : Number.zextOrSelf(64);
755 
756   // <non-negative integer> ::= A@              # when Number == 0
757   //                        ::= <decimal digit> # when 1 <= Number <= 10
758   //                        ::= <hex digit>+ @  # when Number >= 10
759   //
760   // <number>               ::= [?] <non-negative integer>
761 
762   if (Value.isNegative()) {
763     Value = -Value;
764     Out << '?';
765   }
766   mangleBits(Value);
767 }
768 
769 void MicrosoftCXXNameMangler::mangleFloat(llvm::APFloat Number) {
770   using llvm::APFloat;
771 
772   switch (APFloat::SemanticsToEnum(Number.getSemantics())) {
773   case APFloat::S_IEEEsingle: Out << 'A'; break;
774   case APFloat::S_IEEEdouble: Out << 'B'; break;
775 
776   // The following are all Clang extensions. We try to pick manglings that are
777   // unlikely to conflict with MSVC's scheme.
778   case APFloat::S_IEEEhalf: Out << 'V'; break;
779   case APFloat::S_BFloat: Out << 'W'; break;
780   case APFloat::S_x87DoubleExtended: Out << 'X'; break;
781   case APFloat::S_IEEEquad: Out << 'Y'; break;
782   case APFloat::S_PPCDoubleDouble: Out << 'Z'; break;
783   }
784 
785   mangleBits(Number.bitcastToAPInt());
786 }
787 
788 void MicrosoftCXXNameMangler::mangleBits(llvm::APInt Value) {
789   if (Value == 0)
790     Out << "A@";
791   else if (Value.uge(1) && Value.ule(10))
792     Out << (Value - 1);
793   else {
794     // Numbers that are not encoded as decimal digits are represented as nibbles
795     // in the range of ASCII characters 'A' to 'P'.
796     // The number 0x123450 would be encoded as 'BCDEFA'
797     llvm::SmallString<32> EncodedNumberBuffer;
798     for (; Value != 0; Value.lshrInPlace(4))
799       EncodedNumberBuffer.push_back('A' + (Value & 0xf).getZExtValue());
800     std::reverse(EncodedNumberBuffer.begin(), EncodedNumberBuffer.end());
801     Out.write(EncodedNumberBuffer.data(), EncodedNumberBuffer.size());
802     Out << '@';
803   }
804 }
805 
806 static const TemplateDecl *
807 isTemplate(const NamedDecl *ND, const TemplateArgumentList *&TemplateArgs) {
808   // Check if we have a function template.
809   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(ND)) {
810     if (const TemplateDecl *TD = FD->getPrimaryTemplate()) {
811       TemplateArgs = FD->getTemplateSpecializationArgs();
812       return TD;
813     }
814   }
815 
816   // Check if we have a class template.
817   if (const ClassTemplateSpecializationDecl *Spec =
818           dyn_cast<ClassTemplateSpecializationDecl>(ND)) {
819     TemplateArgs = &Spec->getTemplateArgs();
820     return Spec->getSpecializedTemplate();
821   }
822 
823   // Check if we have a variable template.
824   if (const VarTemplateSpecializationDecl *Spec =
825           dyn_cast<VarTemplateSpecializationDecl>(ND)) {
826     TemplateArgs = &Spec->getTemplateArgs();
827     return Spec->getSpecializedTemplate();
828   }
829 
830   return nullptr;
831 }
832 
833 void MicrosoftCXXNameMangler::mangleUnqualifiedName(const NamedDecl *ND,
834                                                     DeclarationName Name) {
835   //  <unqualified-name> ::= <operator-name>
836   //                     ::= <ctor-dtor-name>
837   //                     ::= <source-name>
838   //                     ::= <template-name>
839 
840   // Check if we have a template.
841   const TemplateArgumentList *TemplateArgs = nullptr;
842   if (const TemplateDecl *TD = isTemplate(ND, TemplateArgs)) {
843     // Function templates aren't considered for name back referencing.  This
844     // makes sense since function templates aren't likely to occur multiple
845     // times in a symbol.
846     if (isa<FunctionTemplateDecl>(TD)) {
847       mangleTemplateInstantiationName(TD, *TemplateArgs);
848       Out << '@';
849       return;
850     }
851 
852     // Here comes the tricky thing: if we need to mangle something like
853     //   void foo(A::X<Y>, B::X<Y>),
854     // the X<Y> part is aliased. However, if you need to mangle
855     //   void foo(A::X<A::Y>, A::X<B::Y>),
856     // the A::X<> part is not aliased.
857     // That is, from the mangler's perspective we have a structure like this:
858     //   namespace[s] -> type[ -> template-parameters]
859     // but from the Clang perspective we have
860     //   type [ -> template-parameters]
861     //      \-> namespace[s]
862     // What we do is we create a new mangler, mangle the same type (without
863     // a namespace suffix) to a string using the extra mangler and then use
864     // the mangled type name as a key to check the mangling of different types
865     // for aliasing.
866 
867     // It's important to key cache reads off ND, not TD -- the same TD can
868     // be used with different TemplateArgs, but ND uniquely identifies
869     // TD / TemplateArg pairs.
870     ArgBackRefMap::iterator Found = TemplateArgBackReferences.find(ND);
871     if (Found == TemplateArgBackReferences.end()) {
872 
873       TemplateArgStringMap::iterator Found = TemplateArgStrings.find(ND);
874       if (Found == TemplateArgStrings.end()) {
875         // Mangle full template name into temporary buffer.
876         llvm::SmallString<64> TemplateMangling;
877         llvm::raw_svector_ostream Stream(TemplateMangling);
878         MicrosoftCXXNameMangler Extra(Context, Stream);
879         Extra.mangleTemplateInstantiationName(TD, *TemplateArgs);
880 
881         // Use the string backref vector to possibly get a back reference.
882         mangleSourceName(TemplateMangling);
883 
884         // Memoize back reference for this type if one exist, else memoize
885         // the mangling itself.
886         BackRefVec::iterator StringFound =
887             llvm::find(NameBackReferences, TemplateMangling);
888         if (StringFound != NameBackReferences.end()) {
889           TemplateArgBackReferences[ND] =
890               StringFound - NameBackReferences.begin();
891         } else {
892           TemplateArgStrings[ND] =
893               TemplateArgStringStorage.save(TemplateMangling.str());
894         }
895       } else {
896         Out << Found->second << '@'; // Outputs a StringRef.
897       }
898     } else {
899       Out << Found->second; // Outputs a back reference (an int).
900     }
901     return;
902   }
903 
904   switch (Name.getNameKind()) {
905     case DeclarationName::Identifier: {
906       if (const IdentifierInfo *II = Name.getAsIdentifierInfo()) {
907         mangleSourceName(II->getName());
908         break;
909       }
910 
911       // Otherwise, an anonymous entity.  We must have a declaration.
912       assert(ND && "mangling empty name without declaration");
913 
914       if (const NamespaceDecl *NS = dyn_cast<NamespaceDecl>(ND)) {
915         if (NS->isAnonymousNamespace()) {
916           Out << "?A0x" << Context.getAnonymousNamespaceHash() << '@';
917           break;
918         }
919       }
920 
921       if (const DecompositionDecl *DD = dyn_cast<DecompositionDecl>(ND)) {
922         // Decomposition declarations are considered anonymous, and get
923         // numbered with a $S prefix.
924         llvm::SmallString<64> Name("$S");
925         // Get a unique id for the anonymous struct.
926         Name += llvm::utostr(Context.getAnonymousStructId(DD) + 1);
927         mangleSourceName(Name);
928         break;
929       }
930 
931       if (const VarDecl *VD = dyn_cast<VarDecl>(ND)) {
932         // We must have an anonymous union or struct declaration.
933         const CXXRecordDecl *RD = VD->getType()->getAsCXXRecordDecl();
934         assert(RD && "expected variable decl to have a record type");
935         // Anonymous types with no tag or typedef get the name of their
936         // declarator mangled in.  If they have no declarator, number them with
937         // a $S prefix.
938         llvm::SmallString<64> Name("$S");
939         // Get a unique id for the anonymous struct.
940         Name += llvm::utostr(Context.getAnonymousStructId(RD) + 1);
941         mangleSourceName(Name.str());
942         break;
943       }
944 
945       if (const MSGuidDecl *GD = dyn_cast<MSGuidDecl>(ND)) {
946         // Mangle a GUID object as if it were a variable with the corresponding
947         // mangled name.
948         SmallString<sizeof("_GUID_12345678_1234_1234_1234_1234567890ab")> GUID;
949         llvm::raw_svector_ostream GUIDOS(GUID);
950         Context.mangleMSGuidDecl(GD, GUIDOS);
951         mangleSourceName(GUID);
952         break;
953       }
954 
955       if (const auto *TPO = dyn_cast<TemplateParamObjectDecl>(ND)) {
956         Out << "?__N";
957         mangleTemplateArgValue(TPO->getType().getUnqualifiedType(),
958                                TPO->getValue());
959         break;
960       }
961 
962       // We must have an anonymous struct.
963       const TagDecl *TD = cast<TagDecl>(ND);
964       if (const TypedefNameDecl *D = TD->getTypedefNameForAnonDecl()) {
965         assert(TD->getDeclContext() == D->getDeclContext() &&
966                "Typedef should not be in another decl context!");
967         assert(D->getDeclName().getAsIdentifierInfo() &&
968                "Typedef was not named!");
969         mangleSourceName(D->getDeclName().getAsIdentifierInfo()->getName());
970         break;
971       }
972 
973       if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(TD)) {
974         if (Record->isLambda()) {
975           llvm::SmallString<10> Name("<lambda_");
976 
977           Decl *LambdaContextDecl = Record->getLambdaContextDecl();
978           unsigned LambdaManglingNumber = Record->getLambdaManglingNumber();
979           unsigned LambdaId;
980           const ParmVarDecl *Parm =
981               dyn_cast_or_null<ParmVarDecl>(LambdaContextDecl);
982           const FunctionDecl *Func =
983               Parm ? dyn_cast<FunctionDecl>(Parm->getDeclContext()) : nullptr;
984 
985           if (Func) {
986             unsigned DefaultArgNo =
987                 Func->getNumParams() - Parm->getFunctionScopeIndex();
988             Name += llvm::utostr(DefaultArgNo);
989             Name += "_";
990           }
991 
992           if (LambdaManglingNumber)
993             LambdaId = LambdaManglingNumber;
994           else
995             LambdaId = Context.getLambdaId(Record);
996 
997           Name += llvm::utostr(LambdaId);
998           Name += ">";
999 
1000           mangleSourceName(Name);
1001 
1002           // If the context is a variable or a class member and not a parameter,
1003           // it is encoded in a qualified name.
1004           if (LambdaManglingNumber && LambdaContextDecl) {
1005             if ((isa<VarDecl>(LambdaContextDecl) ||
1006                  isa<FieldDecl>(LambdaContextDecl)) &&
1007                 !isa<ParmVarDecl>(LambdaContextDecl)) {
1008               mangleUnqualifiedName(cast<NamedDecl>(LambdaContextDecl));
1009             }
1010           }
1011           break;
1012         }
1013       }
1014 
1015       llvm::SmallString<64> Name;
1016       if (DeclaratorDecl *DD =
1017               Context.getASTContext().getDeclaratorForUnnamedTagDecl(TD)) {
1018         // Anonymous types without a name for linkage purposes have their
1019         // declarator mangled in if they have one.
1020         Name += "<unnamed-type-";
1021         Name += DD->getName();
1022       } else if (TypedefNameDecl *TND =
1023                      Context.getASTContext().getTypedefNameForUnnamedTagDecl(
1024                          TD)) {
1025         // Anonymous types without a name for linkage purposes have their
1026         // associate typedef mangled in if they have one.
1027         Name += "<unnamed-type-";
1028         Name += TND->getName();
1029       } else if (isa<EnumDecl>(TD) &&
1030                  cast<EnumDecl>(TD)->enumerator_begin() !=
1031                      cast<EnumDecl>(TD)->enumerator_end()) {
1032         // Anonymous non-empty enums mangle in the first enumerator.
1033         auto *ED = cast<EnumDecl>(TD);
1034         Name += "<unnamed-enum-";
1035         Name += ED->enumerator_begin()->getName();
1036       } else {
1037         // Otherwise, number the types using a $S prefix.
1038         Name += "<unnamed-type-$S";
1039         Name += llvm::utostr(Context.getAnonymousStructId(TD) + 1);
1040       }
1041       Name += ">";
1042       mangleSourceName(Name.str());
1043       break;
1044     }
1045 
1046     case DeclarationName::ObjCZeroArgSelector:
1047     case DeclarationName::ObjCOneArgSelector:
1048     case DeclarationName::ObjCMultiArgSelector: {
1049       // This is reachable only when constructing an outlined SEH finally
1050       // block.  Nothing depends on this mangling and it's used only with
1051       // functinos with internal linkage.
1052       llvm::SmallString<64> Name;
1053       mangleSourceName(Name.str());
1054       break;
1055     }
1056 
1057     case DeclarationName::CXXConstructorName:
1058       if (isStructorDecl(ND)) {
1059         if (StructorType == Ctor_CopyingClosure) {
1060           Out << "?_O";
1061           return;
1062         }
1063         if (StructorType == Ctor_DefaultClosure) {
1064           Out << "?_F";
1065           return;
1066         }
1067       }
1068       Out << "?0";
1069       return;
1070 
1071     case DeclarationName::CXXDestructorName:
1072       if (isStructorDecl(ND))
1073         // If the named decl is the C++ destructor we're mangling,
1074         // use the type we were given.
1075         mangleCXXDtorType(static_cast<CXXDtorType>(StructorType));
1076       else
1077         // Otherwise, use the base destructor name. This is relevant if a
1078         // class with a destructor is declared within a destructor.
1079         mangleCXXDtorType(Dtor_Base);
1080       break;
1081 
1082     case DeclarationName::CXXConversionFunctionName:
1083       // <operator-name> ::= ?B # (cast)
1084       // The target type is encoded as the return type.
1085       Out << "?B";
1086       break;
1087 
1088     case DeclarationName::CXXOperatorName:
1089       mangleOperatorName(Name.getCXXOverloadedOperator(), ND->getLocation());
1090       break;
1091 
1092     case DeclarationName::CXXLiteralOperatorName: {
1093       Out << "?__K";
1094       mangleSourceName(Name.getCXXLiteralIdentifier()->getName());
1095       break;
1096     }
1097 
1098     case DeclarationName::CXXDeductionGuideName:
1099       llvm_unreachable("Can't mangle a deduction guide name!");
1100 
1101     case DeclarationName::CXXUsingDirective:
1102       llvm_unreachable("Can't mangle a using directive name!");
1103   }
1104 }
1105 
1106 // <postfix> ::= <unqualified-name> [<postfix>]
1107 //           ::= <substitution> [<postfix>]
1108 void MicrosoftCXXNameMangler::mangleNestedName(const NamedDecl *ND) {
1109   const DeclContext *DC = getEffectiveDeclContext(ND);
1110   while (!DC->isTranslationUnit()) {
1111     if (isa<TagDecl>(ND) || isa<VarDecl>(ND)) {
1112       unsigned Disc;
1113       if (Context.getNextDiscriminator(ND, Disc)) {
1114         Out << '?';
1115         mangleNumber(Disc);
1116         Out << '?';
1117       }
1118     }
1119 
1120     if (const BlockDecl *BD = dyn_cast<BlockDecl>(DC)) {
1121       auto Discriminate =
1122           [](StringRef Name, const unsigned Discriminator,
1123              const unsigned ParameterDiscriminator) -> std::string {
1124         std::string Buffer;
1125         llvm::raw_string_ostream Stream(Buffer);
1126         Stream << Name;
1127         if (Discriminator)
1128           Stream << '_' << Discriminator;
1129         if (ParameterDiscriminator)
1130           Stream << '_' << ParameterDiscriminator;
1131         return Stream.str();
1132       };
1133 
1134       unsigned Discriminator = BD->getBlockManglingNumber();
1135       if (!Discriminator)
1136         Discriminator = Context.getBlockId(BD, /*Local=*/false);
1137 
1138       // Mangle the parameter position as a discriminator to deal with unnamed
1139       // parameters.  Rather than mangling the unqualified parameter name,
1140       // always use the position to give a uniform mangling.
1141       unsigned ParameterDiscriminator = 0;
1142       if (const auto *MC = BD->getBlockManglingContextDecl())
1143         if (const auto *P = dyn_cast<ParmVarDecl>(MC))
1144           if (const auto *F = dyn_cast<FunctionDecl>(P->getDeclContext()))
1145             ParameterDiscriminator =
1146                 F->getNumParams() - P->getFunctionScopeIndex();
1147 
1148       DC = getEffectiveDeclContext(BD);
1149 
1150       Out << '?';
1151       mangleSourceName(Discriminate("_block_invoke", Discriminator,
1152                                     ParameterDiscriminator));
1153       // If we have a block mangling context, encode that now.  This allows us
1154       // to discriminate between named static data initializers in the same
1155       // scope.  This is handled differently from parameters, which use
1156       // positions to discriminate between multiple instances.
1157       if (const auto *MC = BD->getBlockManglingContextDecl())
1158         if (!isa<ParmVarDecl>(MC))
1159           if (const auto *ND = dyn_cast<NamedDecl>(MC))
1160             mangleUnqualifiedName(ND);
1161       // MS ABI and Itanium manglings are in inverted scopes.  In the case of a
1162       // RecordDecl, mangle the entire scope hierarchy at this point rather than
1163       // just the unqualified name to get the ordering correct.
1164       if (const auto *RD = dyn_cast<RecordDecl>(DC))
1165         mangleName(RD);
1166       else
1167         Out << '@';
1168       // void __cdecl
1169       Out << "YAX";
1170       // struct __block_literal *
1171       Out << 'P';
1172       // __ptr64
1173       if (PointersAre64Bit)
1174         Out << 'E';
1175       Out << 'A';
1176       mangleArtificialTagType(TTK_Struct,
1177                              Discriminate("__block_literal", Discriminator,
1178                                           ParameterDiscriminator));
1179       Out << "@Z";
1180 
1181       // If the effective context was a Record, we have fully mangled the
1182       // qualified name and do not need to continue.
1183       if (isa<RecordDecl>(DC))
1184         break;
1185       continue;
1186     } else if (const ObjCMethodDecl *Method = dyn_cast<ObjCMethodDecl>(DC)) {
1187       mangleObjCMethodName(Method);
1188     } else if (isa<NamedDecl>(DC)) {
1189       ND = cast<NamedDecl>(DC);
1190       if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(ND)) {
1191         mangle(FD, "?");
1192         break;
1193       } else {
1194         mangleUnqualifiedName(ND);
1195         // Lambdas in default arguments conceptually belong to the function the
1196         // parameter corresponds to.
1197         if (const auto *LDADC = getLambdaDefaultArgumentDeclContext(ND)) {
1198           DC = LDADC;
1199           continue;
1200         }
1201       }
1202     }
1203     DC = DC->getParent();
1204   }
1205 }
1206 
1207 void MicrosoftCXXNameMangler::mangleCXXDtorType(CXXDtorType T) {
1208   // Microsoft uses the names on the case labels for these dtor variants.  Clang
1209   // uses the Itanium terminology internally.  Everything in this ABI delegates
1210   // towards the base dtor.
1211   switch (T) {
1212   // <operator-name> ::= ?1  # destructor
1213   case Dtor_Base: Out << "?1"; return;
1214   // <operator-name> ::= ?_D # vbase destructor
1215   case Dtor_Complete: Out << "?_D"; return;
1216   // <operator-name> ::= ?_G # scalar deleting destructor
1217   case Dtor_Deleting: Out << "?_G"; return;
1218   // <operator-name> ::= ?_E # vector deleting destructor
1219   // FIXME: Add a vector deleting dtor type.  It goes in the vtable, so we need
1220   // it.
1221   case Dtor_Comdat:
1222     llvm_unreachable("not expecting a COMDAT");
1223   }
1224   llvm_unreachable("Unsupported dtor type?");
1225 }
1226 
1227 void MicrosoftCXXNameMangler::mangleOperatorName(OverloadedOperatorKind OO,
1228                                                  SourceLocation Loc) {
1229   switch (OO) {
1230   //                     ?0 # constructor
1231   //                     ?1 # destructor
1232   // <operator-name> ::= ?2 # new
1233   case OO_New: Out << "?2"; break;
1234   // <operator-name> ::= ?3 # delete
1235   case OO_Delete: Out << "?3"; break;
1236   // <operator-name> ::= ?4 # =
1237   case OO_Equal: Out << "?4"; break;
1238   // <operator-name> ::= ?5 # >>
1239   case OO_GreaterGreater: Out << "?5"; break;
1240   // <operator-name> ::= ?6 # <<
1241   case OO_LessLess: Out << "?6"; break;
1242   // <operator-name> ::= ?7 # !
1243   case OO_Exclaim: Out << "?7"; break;
1244   // <operator-name> ::= ?8 # ==
1245   case OO_EqualEqual: Out << "?8"; break;
1246   // <operator-name> ::= ?9 # !=
1247   case OO_ExclaimEqual: Out << "?9"; break;
1248   // <operator-name> ::= ?A # []
1249   case OO_Subscript: Out << "?A"; break;
1250   //                     ?B # conversion
1251   // <operator-name> ::= ?C # ->
1252   case OO_Arrow: Out << "?C"; break;
1253   // <operator-name> ::= ?D # *
1254   case OO_Star: Out << "?D"; break;
1255   // <operator-name> ::= ?E # ++
1256   case OO_PlusPlus: Out << "?E"; break;
1257   // <operator-name> ::= ?F # --
1258   case OO_MinusMinus: Out << "?F"; break;
1259   // <operator-name> ::= ?G # -
1260   case OO_Minus: Out << "?G"; break;
1261   // <operator-name> ::= ?H # +
1262   case OO_Plus: Out << "?H"; break;
1263   // <operator-name> ::= ?I # &
1264   case OO_Amp: Out << "?I"; break;
1265   // <operator-name> ::= ?J # ->*
1266   case OO_ArrowStar: Out << "?J"; break;
1267   // <operator-name> ::= ?K # /
1268   case OO_Slash: Out << "?K"; break;
1269   // <operator-name> ::= ?L # %
1270   case OO_Percent: Out << "?L"; break;
1271   // <operator-name> ::= ?M # <
1272   case OO_Less: Out << "?M"; break;
1273   // <operator-name> ::= ?N # <=
1274   case OO_LessEqual: Out << "?N"; break;
1275   // <operator-name> ::= ?O # >
1276   case OO_Greater: Out << "?O"; break;
1277   // <operator-name> ::= ?P # >=
1278   case OO_GreaterEqual: Out << "?P"; break;
1279   // <operator-name> ::= ?Q # ,
1280   case OO_Comma: Out << "?Q"; break;
1281   // <operator-name> ::= ?R # ()
1282   case OO_Call: Out << "?R"; break;
1283   // <operator-name> ::= ?S # ~
1284   case OO_Tilde: Out << "?S"; break;
1285   // <operator-name> ::= ?T # ^
1286   case OO_Caret: Out << "?T"; break;
1287   // <operator-name> ::= ?U # |
1288   case OO_Pipe: Out << "?U"; break;
1289   // <operator-name> ::= ?V # &&
1290   case OO_AmpAmp: Out << "?V"; break;
1291   // <operator-name> ::= ?W # ||
1292   case OO_PipePipe: Out << "?W"; break;
1293   // <operator-name> ::= ?X # *=
1294   case OO_StarEqual: Out << "?X"; break;
1295   // <operator-name> ::= ?Y # +=
1296   case OO_PlusEqual: Out << "?Y"; break;
1297   // <operator-name> ::= ?Z # -=
1298   case OO_MinusEqual: Out << "?Z"; break;
1299   // <operator-name> ::= ?_0 # /=
1300   case OO_SlashEqual: Out << "?_0"; break;
1301   // <operator-name> ::= ?_1 # %=
1302   case OO_PercentEqual: Out << "?_1"; break;
1303   // <operator-name> ::= ?_2 # >>=
1304   case OO_GreaterGreaterEqual: Out << "?_2"; break;
1305   // <operator-name> ::= ?_3 # <<=
1306   case OO_LessLessEqual: Out << "?_3"; break;
1307   // <operator-name> ::= ?_4 # &=
1308   case OO_AmpEqual: Out << "?_4"; break;
1309   // <operator-name> ::= ?_5 # |=
1310   case OO_PipeEqual: Out << "?_5"; break;
1311   // <operator-name> ::= ?_6 # ^=
1312   case OO_CaretEqual: Out << "?_6"; break;
1313   //                     ?_7 # vftable
1314   //                     ?_8 # vbtable
1315   //                     ?_9 # vcall
1316   //                     ?_A # typeof
1317   //                     ?_B # local static guard
1318   //                     ?_C # string
1319   //                     ?_D # vbase destructor
1320   //                     ?_E # vector deleting destructor
1321   //                     ?_F # default constructor closure
1322   //                     ?_G # scalar deleting destructor
1323   //                     ?_H # vector constructor iterator
1324   //                     ?_I # vector destructor iterator
1325   //                     ?_J # vector vbase constructor iterator
1326   //                     ?_K # virtual displacement map
1327   //                     ?_L # eh vector constructor iterator
1328   //                     ?_M # eh vector destructor iterator
1329   //                     ?_N # eh vector vbase constructor iterator
1330   //                     ?_O # copy constructor closure
1331   //                     ?_P<name> # udt returning <name>
1332   //                     ?_Q # <unknown>
1333   //                     ?_R0 # RTTI Type Descriptor
1334   //                     ?_R1 # RTTI Base Class Descriptor at (a,b,c,d)
1335   //                     ?_R2 # RTTI Base Class Array
1336   //                     ?_R3 # RTTI Class Hierarchy Descriptor
1337   //                     ?_R4 # RTTI Complete Object Locator
1338   //                     ?_S # local vftable
1339   //                     ?_T # local vftable constructor closure
1340   // <operator-name> ::= ?_U # new[]
1341   case OO_Array_New: Out << "?_U"; break;
1342   // <operator-name> ::= ?_V # delete[]
1343   case OO_Array_Delete: Out << "?_V"; break;
1344   // <operator-name> ::= ?__L # co_await
1345   case OO_Coawait: Out << "?__L"; break;
1346   // <operator-name> ::= ?__M # <=>
1347   case OO_Spaceship: Out << "?__M"; break;
1348 
1349   case OO_Conditional: {
1350     DiagnosticsEngine &Diags = Context.getDiags();
1351     unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
1352       "cannot mangle this conditional operator yet");
1353     Diags.Report(Loc, DiagID);
1354     break;
1355   }
1356 
1357   case OO_None:
1358   case NUM_OVERLOADED_OPERATORS:
1359     llvm_unreachable("Not an overloaded operator");
1360   }
1361 }
1362 
1363 void MicrosoftCXXNameMangler::mangleSourceName(StringRef Name) {
1364   // <source name> ::= <identifier> @
1365   BackRefVec::iterator Found = llvm::find(NameBackReferences, Name);
1366   if (Found == NameBackReferences.end()) {
1367     if (NameBackReferences.size() < 10)
1368       NameBackReferences.push_back(std::string(Name));
1369     Out << Name << '@';
1370   } else {
1371     Out << (Found - NameBackReferences.begin());
1372   }
1373 }
1374 
1375 void MicrosoftCXXNameMangler::mangleObjCMethodName(const ObjCMethodDecl *MD) {
1376   Context.mangleObjCMethodNameAsSourceName(MD, Out);
1377 }
1378 
1379 void MicrosoftCXXNameMangler::mangleTemplateInstantiationName(
1380     const TemplateDecl *TD, const TemplateArgumentList &TemplateArgs) {
1381   // <template-name> ::= <unscoped-template-name> <template-args>
1382   //                 ::= <substitution>
1383   // Always start with the unqualified name.
1384 
1385   // Templates have their own context for back references.
1386   ArgBackRefMap OuterFunArgsContext;
1387   ArgBackRefMap OuterTemplateArgsContext;
1388   BackRefVec OuterTemplateContext;
1389   PassObjectSizeArgsSet OuterPassObjectSizeArgs;
1390   NameBackReferences.swap(OuterTemplateContext);
1391   FunArgBackReferences.swap(OuterFunArgsContext);
1392   TemplateArgBackReferences.swap(OuterTemplateArgsContext);
1393   PassObjectSizeArgs.swap(OuterPassObjectSizeArgs);
1394 
1395   mangleUnscopedTemplateName(TD);
1396   mangleTemplateArgs(TD, TemplateArgs);
1397 
1398   // Restore the previous back reference contexts.
1399   NameBackReferences.swap(OuterTemplateContext);
1400   FunArgBackReferences.swap(OuterFunArgsContext);
1401   TemplateArgBackReferences.swap(OuterTemplateArgsContext);
1402   PassObjectSizeArgs.swap(OuterPassObjectSizeArgs);
1403 }
1404 
1405 void
1406 MicrosoftCXXNameMangler::mangleUnscopedTemplateName(const TemplateDecl *TD) {
1407   // <unscoped-template-name> ::= ?$ <unqualified-name>
1408   Out << "?$";
1409   mangleUnqualifiedName(TD);
1410 }
1411 
1412 void MicrosoftCXXNameMangler::mangleIntegerLiteral(
1413     const llvm::APSInt &Value, const NonTypeTemplateParmDecl *PD,
1414     QualType TemplateArgType) {
1415   // <integer-literal> ::= $0 <number>
1416   Out << "$";
1417 
1418   // Since MSVC 2019, add 'M[<type>]' after '$' for auto template parameter when
1419   // argument is integer.
1420   if (getASTContext().getLangOpts().isCompatibleWithMSVC(
1421           LangOptions::MSVC2019) &&
1422       PD && PD->getType()->getTypeClass() == Type::Auto &&
1423       !TemplateArgType.isNull()) {
1424     Out << "M";
1425     mangleType(TemplateArgType, SourceRange(), QMM_Drop);
1426   }
1427 
1428   Out << "0";
1429 
1430   mangleNumber(Value);
1431 }
1432 
1433 void MicrosoftCXXNameMangler::mangleExpression(
1434     const Expr *E, const NonTypeTemplateParmDecl *PD) {
1435   // See if this is a constant expression.
1436   if (Optional<llvm::APSInt> Value =
1437           E->getIntegerConstantExpr(Context.getASTContext())) {
1438     mangleIntegerLiteral(*Value, PD, E->getType());
1439     return;
1440   }
1441 
1442   // As bad as this diagnostic is, it's better than crashing.
1443   DiagnosticsEngine &Diags = Context.getDiags();
1444   unsigned DiagID = Diags.getCustomDiagID(
1445       DiagnosticsEngine::Error, "cannot yet mangle expression type %0");
1446   Diags.Report(E->getExprLoc(), DiagID) << E->getStmtClassName()
1447                                         << E->getSourceRange();
1448 }
1449 
1450 void MicrosoftCXXNameMangler::mangleTemplateArgs(
1451     const TemplateDecl *TD, const TemplateArgumentList &TemplateArgs) {
1452   // <template-args> ::= <template-arg>+
1453   const TemplateParameterList *TPL = TD->getTemplateParameters();
1454   assert(TPL->size() == TemplateArgs.size() &&
1455          "size mismatch between args and parms!");
1456 
1457   for (size_t i = 0; i < TemplateArgs.size(); ++i) {
1458     const TemplateArgument &TA = TemplateArgs[i];
1459 
1460     // Separate consecutive packs by $$Z.
1461     if (i > 0 && TA.getKind() == TemplateArgument::Pack &&
1462         TemplateArgs[i - 1].getKind() == TemplateArgument::Pack)
1463       Out << "$$Z";
1464 
1465     mangleTemplateArg(TD, TA, TPL->getParam(i));
1466   }
1467 }
1468 
1469 /// If value V (with type T) represents a decayed pointer to the first element
1470 /// of an array, return that array.
1471 static ValueDecl *getAsArrayToPointerDecayedDecl(QualType T, const APValue &V) {
1472   // Must be a pointer...
1473   if (!T->isPointerType() || !V.isLValue() || !V.hasLValuePath() ||
1474       !V.getLValueBase())
1475     return nullptr;
1476   // ... to element 0 of an array.
1477   QualType BaseT = V.getLValueBase().getType();
1478   if (!BaseT->isArrayType() || V.getLValuePath().size() != 1 ||
1479       V.getLValuePath()[0].getAsArrayIndex() != 0)
1480     return nullptr;
1481   return const_cast<ValueDecl*>(V.getLValueBase().dyn_cast<const ValueDecl*>());
1482 }
1483 
1484 void MicrosoftCXXNameMangler::mangleTemplateArg(const TemplateDecl *TD,
1485                                                 const TemplateArgument &TA,
1486                                                 const NamedDecl *Parm) {
1487   // <template-arg> ::= <type>
1488   //                ::= <integer-literal>
1489   //                ::= <member-data-pointer>
1490   //                ::= <member-function-pointer>
1491   //                ::= $ <constant-value>
1492   //                ::= <template-args>
1493   //
1494   // <constant-value> ::= 0 <number>                   # integer
1495   //                  ::= 1 <mangled-name>             # address of D
1496   //                  ::= 2 <type> <typed-constant-value>* @ # struct
1497   //                  ::= 3 <type> <constant-value>* @ # array
1498   //                  ::= 4 ???                        # string
1499   //                  ::= 5 <constant-value> @         # address of subobject
1500   //                  ::= 6 <constant-value> <unqualified-name> @ # a.b
1501   //                  ::= 7 <type> [<unqualified-name> <constant-value>] @
1502   //                      # union, with or without an active member
1503   //                  # pointer to member, symbolically
1504   //                  ::= 8 <class> <unqualified-name> @
1505   //                  ::= A <type> <non-negative integer>  # float
1506   //                  ::= B <type> <non-negative integer>  # double
1507   //                  ::= E <mangled-name>             # reference to D
1508   //                  # pointer to member, by component value
1509   //                  ::= F <number> <number>
1510   //                  ::= G <number> <number> <number>
1511   //                  ::= H <mangled-name> <number>
1512   //                  ::= I <mangled-name> <number> <number>
1513   //                  ::= J <mangled-name> <number> <number> <number>
1514   //
1515   // <typed-constant-value> ::= [<type>] <constant-value>
1516   //
1517   // The <type> appears to be included in a <typed-constant-value> only in the
1518   // '0', '1', '8', 'A', 'B', and 'E' cases.
1519 
1520   switch (TA.getKind()) {
1521   case TemplateArgument::Null:
1522     llvm_unreachable("Can't mangle null template arguments!");
1523   case TemplateArgument::TemplateExpansion:
1524     llvm_unreachable("Can't mangle template expansion arguments!");
1525   case TemplateArgument::Type: {
1526     QualType T = TA.getAsType();
1527     mangleType(T, SourceRange(), QMM_Escape);
1528     break;
1529   }
1530   case TemplateArgument::Declaration: {
1531     const NamedDecl *ND = TA.getAsDecl();
1532     if (isa<FieldDecl>(ND) || isa<IndirectFieldDecl>(ND)) {
1533       mangleMemberDataPointer(cast<CXXRecordDecl>(ND->getDeclContext())
1534                                   ->getMostRecentNonInjectedDecl(),
1535                               cast<ValueDecl>(ND));
1536     } else if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(ND)) {
1537       const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD);
1538       if (MD && MD->isInstance()) {
1539         mangleMemberFunctionPointer(
1540             MD->getParent()->getMostRecentNonInjectedDecl(), MD);
1541       } else {
1542         Out << "$1?";
1543         mangleName(FD);
1544         mangleFunctionEncoding(FD, /*ShouldMangle=*/true);
1545       }
1546     } else if (TA.getParamTypeForDecl()->isRecordType()) {
1547       Out << "$";
1548       auto *TPO = cast<TemplateParamObjectDecl>(ND);
1549       mangleTemplateArgValue(TPO->getType().getUnqualifiedType(),
1550                              TPO->getValue());
1551     } else {
1552       mangle(ND, TA.getParamTypeForDecl()->isReferenceType() ? "$E?" : "$1?");
1553     }
1554     break;
1555   }
1556   case TemplateArgument::Integral: {
1557     QualType T = TA.getIntegralType();
1558     mangleIntegerLiteral(TA.getAsIntegral(),
1559                          cast<NonTypeTemplateParmDecl>(Parm), T);
1560     break;
1561   }
1562   case TemplateArgument::NullPtr: {
1563     QualType T = TA.getNullPtrType();
1564     if (const MemberPointerType *MPT = T->getAs<MemberPointerType>()) {
1565       const CXXRecordDecl *RD = MPT->getMostRecentCXXRecordDecl();
1566       if (MPT->isMemberFunctionPointerType() &&
1567           !isa<FunctionTemplateDecl>(TD)) {
1568         mangleMemberFunctionPointer(RD, nullptr);
1569         return;
1570       }
1571       if (MPT->isMemberDataPointer()) {
1572         if (!isa<FunctionTemplateDecl>(TD)) {
1573           mangleMemberDataPointer(RD, nullptr);
1574           return;
1575         }
1576         // nullptr data pointers are always represented with a single field
1577         // which is initialized with either 0 or -1.  Why -1?  Well, we need to
1578         // distinguish the case where the data member is at offset zero in the
1579         // record.
1580         // However, we are free to use 0 *if* we would use multiple fields for
1581         // non-nullptr member pointers.
1582         if (!RD->nullFieldOffsetIsZero()) {
1583           mangleIntegerLiteral(llvm::APSInt::get(-1),
1584                                cast<NonTypeTemplateParmDecl>(Parm), T);
1585           return;
1586         }
1587       }
1588     }
1589     mangleIntegerLiteral(llvm::APSInt::getUnsigned(0),
1590                          cast<NonTypeTemplateParmDecl>(Parm), T);
1591     break;
1592   }
1593   case TemplateArgument::UncommonValue:
1594     if (ValueDecl *D = getAsArrayToPointerDecayedDecl(
1595             TA.getUncommonValueType(), TA.getAsUncommonValue())) {
1596       // Mangle the result of array-to-pointer decay as if it were a reference
1597       // to the original declaration, to match MSVC's behavior. This can result
1598       // in mangling collisions in some cases!
1599       return mangleTemplateArg(
1600           TD, TemplateArgument(D, TA.getUncommonValueType()), Parm);
1601     }
1602     Out << "$";
1603     if (cast<NonTypeTemplateParmDecl>(Parm)
1604             ->getType()
1605             ->getContainedDeducedType()) {
1606       Out << "M";
1607       mangleType(TA.getNonTypeTemplateArgumentType(), SourceRange(), QMM_Drop);
1608     }
1609     mangleTemplateArgValue(TA.getUncommonValueType(), TA.getAsUncommonValue(),
1610                            /*WithScalarType=*/false);
1611     break;
1612   case TemplateArgument::Expression:
1613     mangleExpression(TA.getAsExpr(), cast<NonTypeTemplateParmDecl>(Parm));
1614     break;
1615   case TemplateArgument::Pack: {
1616     ArrayRef<TemplateArgument> TemplateArgs = TA.getPackAsArray();
1617     if (TemplateArgs.empty()) {
1618       if (isa<TemplateTypeParmDecl>(Parm) ||
1619           isa<TemplateTemplateParmDecl>(Parm))
1620         // MSVC 2015 changed the mangling for empty expanded template packs,
1621         // use the old mangling for link compatibility for old versions.
1622         Out << (Context.getASTContext().getLangOpts().isCompatibleWithMSVC(
1623                     LangOptions::MSVC2015)
1624                     ? "$$V"
1625                     : "$$$V");
1626       else if (isa<NonTypeTemplateParmDecl>(Parm))
1627         Out << "$S";
1628       else
1629         llvm_unreachable("unexpected template parameter decl!");
1630     } else {
1631       for (const TemplateArgument &PA : TemplateArgs)
1632         mangleTemplateArg(TD, PA, Parm);
1633     }
1634     break;
1635   }
1636   case TemplateArgument::Template: {
1637     const NamedDecl *ND =
1638         TA.getAsTemplate().getAsTemplateDecl()->getTemplatedDecl();
1639     if (const auto *TD = dyn_cast<TagDecl>(ND)) {
1640       mangleType(TD);
1641     } else if (isa<TypeAliasDecl>(ND)) {
1642       Out << "$$Y";
1643       mangleName(ND);
1644     } else {
1645       llvm_unreachable("unexpected template template NamedDecl!");
1646     }
1647     break;
1648   }
1649   }
1650 }
1651 
1652 void MicrosoftCXXNameMangler::mangleTemplateArgValue(QualType T,
1653                                                      const APValue &V,
1654                                                      bool WithScalarType) {
1655   switch (V.getKind()) {
1656   case APValue::None:
1657   case APValue::Indeterminate:
1658     // FIXME: MSVC doesn't allow this, so we can't be sure how it should be
1659     // mangled.
1660     if (WithScalarType)
1661       mangleType(T, SourceRange(), QMM_Escape);
1662     Out << '@';
1663     return;
1664 
1665   case APValue::Int:
1666     if (WithScalarType)
1667       mangleType(T, SourceRange(), QMM_Escape);
1668     Out << '0';
1669     mangleNumber(V.getInt());
1670     return;
1671 
1672   case APValue::Float:
1673     if (WithScalarType)
1674       mangleType(T, SourceRange(), QMM_Escape);
1675     mangleFloat(V.getFloat());
1676     return;
1677 
1678   case APValue::LValue: {
1679     if (WithScalarType)
1680       mangleType(T, SourceRange(), QMM_Escape);
1681 
1682     // We don't know how to mangle past-the-end pointers yet.
1683     if (V.isLValueOnePastTheEnd())
1684       break;
1685 
1686     APValue::LValueBase Base = V.getLValueBase();
1687     if (!V.hasLValuePath() || V.getLValuePath().empty()) {
1688       // Taking the address of a complete object has a special-case mangling.
1689       if (Base.isNull()) {
1690         // MSVC emits 0A@ for null pointers. Generalize this for arbitrary
1691         // integers cast to pointers.
1692         // FIXME: This mangles 0 cast to a pointer the same as a null pointer,
1693         // even in cases where the two are different values.
1694         Out << "0";
1695         mangleNumber(V.getLValueOffset().getQuantity());
1696       } else if (!V.hasLValuePath()) {
1697         // FIXME: This can only happen as an extension. Invent a mangling.
1698         break;
1699       } else if (auto *VD = Base.dyn_cast<const ValueDecl*>()) {
1700         Out << (T->isReferenceType() ? "E" : "1");
1701         mangle(VD);
1702       } else {
1703         break;
1704       }
1705     } else {
1706       unsigned NumAts = 0;
1707       if (T->isPointerType()) {
1708         Out << "5";
1709         ++NumAts;
1710       }
1711 
1712       QualType T = Base.getType();
1713       for (APValue::LValuePathEntry E : V.getLValuePath()) {
1714         // We don't know how to mangle array subscripting yet.
1715         if (T->isArrayType())
1716           goto mangling_unknown;
1717 
1718         const Decl *D = E.getAsBaseOrMember().getPointer();
1719         auto *FD = dyn_cast<FieldDecl>(D);
1720         // We don't know how to mangle derived-to-base conversions yet.
1721         if (!FD)
1722           goto mangling_unknown;
1723 
1724         Out << "6";
1725         ++NumAts;
1726         T = FD->getType();
1727       }
1728 
1729       auto *VD = Base.dyn_cast<const ValueDecl*>();
1730       if (!VD)
1731         break;
1732       Out << "E";
1733       mangle(VD);
1734 
1735       for (APValue::LValuePathEntry E : V.getLValuePath()) {
1736         const Decl *D = E.getAsBaseOrMember().getPointer();
1737         mangleUnqualifiedName(cast<FieldDecl>(D));
1738       }
1739       for (unsigned I = 0; I != NumAts; ++I)
1740         Out << '@';
1741     }
1742 
1743     return;
1744   }
1745 
1746   case APValue::MemberPointer: {
1747     if (WithScalarType)
1748       mangleType(T, SourceRange(), QMM_Escape);
1749 
1750     // FIXME: The below manglings don't include a conversion, so bail if there
1751     // would be one. MSVC mangles the (possibly converted) value of the
1752     // pointer-to-member object as if it were a struct, leading to collisions
1753     // in some cases.
1754     if (!V.getMemberPointerPath().empty())
1755       break;
1756 
1757     const CXXRecordDecl *RD =
1758         T->castAs<MemberPointerType>()->getMostRecentCXXRecordDecl();
1759     const ValueDecl *D = V.getMemberPointerDecl();
1760     if (T->isMemberDataPointerType())
1761       mangleMemberDataPointer(RD, D, "");
1762     else
1763       mangleMemberFunctionPointer(RD, cast_or_null<CXXMethodDecl>(D), "");
1764     return;
1765   }
1766 
1767   case APValue::Struct: {
1768     Out << '2';
1769     mangleType(T, SourceRange(), QMM_Escape);
1770     const CXXRecordDecl *RD = T->getAsCXXRecordDecl();
1771     assert(RD && "unexpected type for record value");
1772 
1773     unsigned BaseIndex = 0;
1774     for (const CXXBaseSpecifier &B : RD->bases())
1775       mangleTemplateArgValue(B.getType(), V.getStructBase(BaseIndex++));
1776     for (const FieldDecl *FD : RD->fields())
1777       if (!FD->isUnnamedBitfield())
1778         mangleTemplateArgValue(FD->getType(),
1779                                V.getStructField(FD->getFieldIndex()),
1780                                /*WithScalarType*/ true);
1781     Out << '@';
1782     return;
1783   }
1784 
1785   case APValue::Union:
1786     Out << '7';
1787     mangleType(T, SourceRange(), QMM_Escape);
1788     if (const FieldDecl *FD = V.getUnionField()) {
1789       mangleUnqualifiedName(FD);
1790       mangleTemplateArgValue(FD->getType(), V.getUnionValue());
1791     }
1792     Out << '@';
1793     return;
1794 
1795   case APValue::ComplexInt:
1796     // We mangle complex types as structs, so mangle the value as a struct too.
1797     Out << '2';
1798     mangleType(T, SourceRange(), QMM_Escape);
1799     Out << '0';
1800     mangleNumber(V.getComplexIntReal());
1801     Out << '0';
1802     mangleNumber(V.getComplexIntImag());
1803     Out << '@';
1804     return;
1805 
1806   case APValue::ComplexFloat:
1807     Out << '2';
1808     mangleType(T, SourceRange(), QMM_Escape);
1809     mangleFloat(V.getComplexFloatReal());
1810     mangleFloat(V.getComplexFloatImag());
1811     Out << '@';
1812     return;
1813 
1814   case APValue::Array: {
1815     Out << '3';
1816     QualType ElemT = getASTContext().getAsArrayType(T)->getElementType();
1817     mangleType(ElemT, SourceRange(), QMM_Escape);
1818     for (unsigned I = 0, N = V.getArraySize(); I != N; ++I) {
1819       const APValue &ElemV = I < V.getArrayInitializedElts()
1820                                  ? V.getArrayInitializedElt(I)
1821                                  : V.getArrayFiller();
1822       mangleTemplateArgValue(ElemT, ElemV);
1823       Out << '@';
1824     }
1825     Out << '@';
1826     return;
1827   }
1828 
1829   case APValue::Vector: {
1830     // __m128 is mangled as a struct containing an array. We follow this
1831     // approach for all vector types.
1832     Out << '2';
1833     mangleType(T, SourceRange(), QMM_Escape);
1834     Out << '3';
1835     QualType ElemT = T->castAs<VectorType>()->getElementType();
1836     mangleType(ElemT, SourceRange(), QMM_Escape);
1837     for (unsigned I = 0, N = V.getVectorLength(); I != N; ++I) {
1838       const APValue &ElemV = V.getVectorElt(I);
1839       mangleTemplateArgValue(ElemT, ElemV);
1840       Out << '@';
1841     }
1842     Out << "@@";
1843     return;
1844   }
1845 
1846   case APValue::AddrLabelDiff:
1847   case APValue::FixedPoint:
1848     break;
1849   }
1850 
1851 mangling_unknown:
1852   DiagnosticsEngine &Diags = Context.getDiags();
1853   unsigned DiagID = Diags.getCustomDiagID(
1854       DiagnosticsEngine::Error, "cannot mangle this template argument yet");
1855   Diags.Report(DiagID);
1856 }
1857 
1858 void MicrosoftCXXNameMangler::mangleObjCProtocol(const ObjCProtocolDecl *PD) {
1859   llvm::SmallString<64> TemplateMangling;
1860   llvm::raw_svector_ostream Stream(TemplateMangling);
1861   MicrosoftCXXNameMangler Extra(Context, Stream);
1862 
1863   Stream << "?$";
1864   Extra.mangleSourceName("Protocol");
1865   Extra.mangleArtificialTagType(TTK_Struct, PD->getName());
1866 
1867   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__ObjC"});
1868 }
1869 
1870 void MicrosoftCXXNameMangler::mangleObjCLifetime(const QualType Type,
1871                                                  Qualifiers Quals,
1872                                                  SourceRange Range) {
1873   llvm::SmallString<64> TemplateMangling;
1874   llvm::raw_svector_ostream Stream(TemplateMangling);
1875   MicrosoftCXXNameMangler Extra(Context, Stream);
1876 
1877   Stream << "?$";
1878   switch (Quals.getObjCLifetime()) {
1879   case Qualifiers::OCL_None:
1880   case Qualifiers::OCL_ExplicitNone:
1881     break;
1882   case Qualifiers::OCL_Autoreleasing:
1883     Extra.mangleSourceName("Autoreleasing");
1884     break;
1885   case Qualifiers::OCL_Strong:
1886     Extra.mangleSourceName("Strong");
1887     break;
1888   case Qualifiers::OCL_Weak:
1889     Extra.mangleSourceName("Weak");
1890     break;
1891   }
1892   Extra.manglePointerCVQualifiers(Quals);
1893   Extra.manglePointerExtQualifiers(Quals, Type);
1894   Extra.mangleType(Type, Range);
1895 
1896   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__ObjC"});
1897 }
1898 
1899 void MicrosoftCXXNameMangler::mangleObjCKindOfType(const ObjCObjectType *T,
1900                                                    Qualifiers Quals,
1901                                                    SourceRange Range) {
1902   llvm::SmallString<64> TemplateMangling;
1903   llvm::raw_svector_ostream Stream(TemplateMangling);
1904   MicrosoftCXXNameMangler Extra(Context, Stream);
1905 
1906   Stream << "?$";
1907   Extra.mangleSourceName("KindOf");
1908   Extra.mangleType(QualType(T, 0)
1909                        .stripObjCKindOfType(getASTContext())
1910                        ->getAs<ObjCObjectType>(),
1911                    Quals, Range);
1912 
1913   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__ObjC"});
1914 }
1915 
1916 void MicrosoftCXXNameMangler::mangleQualifiers(Qualifiers Quals,
1917                                                bool IsMember) {
1918   // <cvr-qualifiers> ::= [E] [F] [I] <base-cvr-qualifiers>
1919   // 'E' means __ptr64 (32-bit only); 'F' means __unaligned (32/64-bit only);
1920   // 'I' means __restrict (32/64-bit).
1921   // Note that the MSVC __restrict keyword isn't the same as the C99 restrict
1922   // keyword!
1923   // <base-cvr-qualifiers> ::= A  # near
1924   //                       ::= B  # near const
1925   //                       ::= C  # near volatile
1926   //                       ::= D  # near const volatile
1927   //                       ::= E  # far (16-bit)
1928   //                       ::= F  # far const (16-bit)
1929   //                       ::= G  # far volatile (16-bit)
1930   //                       ::= H  # far const volatile (16-bit)
1931   //                       ::= I  # huge (16-bit)
1932   //                       ::= J  # huge const (16-bit)
1933   //                       ::= K  # huge volatile (16-bit)
1934   //                       ::= L  # huge const volatile (16-bit)
1935   //                       ::= M <basis> # based
1936   //                       ::= N <basis> # based const
1937   //                       ::= O <basis> # based volatile
1938   //                       ::= P <basis> # based const volatile
1939   //                       ::= Q  # near member
1940   //                       ::= R  # near const member
1941   //                       ::= S  # near volatile member
1942   //                       ::= T  # near const volatile member
1943   //                       ::= U  # far member (16-bit)
1944   //                       ::= V  # far const member (16-bit)
1945   //                       ::= W  # far volatile member (16-bit)
1946   //                       ::= X  # far const volatile member (16-bit)
1947   //                       ::= Y  # huge member (16-bit)
1948   //                       ::= Z  # huge const member (16-bit)
1949   //                       ::= 0  # huge volatile member (16-bit)
1950   //                       ::= 1  # huge const volatile member (16-bit)
1951   //                       ::= 2 <basis> # based member
1952   //                       ::= 3 <basis> # based const member
1953   //                       ::= 4 <basis> # based volatile member
1954   //                       ::= 5 <basis> # based const volatile member
1955   //                       ::= 6  # near function (pointers only)
1956   //                       ::= 7  # far function (pointers only)
1957   //                       ::= 8  # near method (pointers only)
1958   //                       ::= 9  # far method (pointers only)
1959   //                       ::= _A <basis> # based function (pointers only)
1960   //                       ::= _B <basis> # based function (far?) (pointers only)
1961   //                       ::= _C <basis> # based method (pointers only)
1962   //                       ::= _D <basis> # based method (far?) (pointers only)
1963   //                       ::= _E # block (Clang)
1964   // <basis> ::= 0 # __based(void)
1965   //         ::= 1 # __based(segment)?
1966   //         ::= 2 <name> # __based(name)
1967   //         ::= 3 # ?
1968   //         ::= 4 # ?
1969   //         ::= 5 # not really based
1970   bool HasConst = Quals.hasConst(),
1971        HasVolatile = Quals.hasVolatile();
1972 
1973   if (!IsMember) {
1974     if (HasConst && HasVolatile) {
1975       Out << 'D';
1976     } else if (HasVolatile) {
1977       Out << 'C';
1978     } else if (HasConst) {
1979       Out << 'B';
1980     } else {
1981       Out << 'A';
1982     }
1983   } else {
1984     if (HasConst && HasVolatile) {
1985       Out << 'T';
1986     } else if (HasVolatile) {
1987       Out << 'S';
1988     } else if (HasConst) {
1989       Out << 'R';
1990     } else {
1991       Out << 'Q';
1992     }
1993   }
1994 
1995   // FIXME: For now, just drop all extension qualifiers on the floor.
1996 }
1997 
1998 void
1999 MicrosoftCXXNameMangler::mangleRefQualifier(RefQualifierKind RefQualifier) {
2000   // <ref-qualifier> ::= G                # lvalue reference
2001   //                 ::= H                # rvalue-reference
2002   switch (RefQualifier) {
2003   case RQ_None:
2004     break;
2005 
2006   case RQ_LValue:
2007     Out << 'G';
2008     break;
2009 
2010   case RQ_RValue:
2011     Out << 'H';
2012     break;
2013   }
2014 }
2015 
2016 void MicrosoftCXXNameMangler::manglePointerExtQualifiers(Qualifiers Quals,
2017                                                          QualType PointeeType) {
2018   // Check if this is a default 64-bit pointer or has __ptr64 qualifier.
2019   bool is64Bit = PointeeType.isNull() ? PointersAre64Bit :
2020       is64BitPointer(PointeeType.getQualifiers());
2021   if (is64Bit && (PointeeType.isNull() || !PointeeType->isFunctionType()))
2022     Out << 'E';
2023 
2024   if (Quals.hasRestrict())
2025     Out << 'I';
2026 
2027   if (Quals.hasUnaligned() ||
2028       (!PointeeType.isNull() && PointeeType.getLocalQualifiers().hasUnaligned()))
2029     Out << 'F';
2030 }
2031 
2032 void MicrosoftCXXNameMangler::manglePointerCVQualifiers(Qualifiers Quals) {
2033   // <pointer-cv-qualifiers> ::= P  # no qualifiers
2034   //                         ::= Q  # const
2035   //                         ::= R  # volatile
2036   //                         ::= S  # const volatile
2037   bool HasConst = Quals.hasConst(),
2038        HasVolatile = Quals.hasVolatile();
2039 
2040   if (HasConst && HasVolatile) {
2041     Out << 'S';
2042   } else if (HasVolatile) {
2043     Out << 'R';
2044   } else if (HasConst) {
2045     Out << 'Q';
2046   } else {
2047     Out << 'P';
2048   }
2049 }
2050 
2051 void MicrosoftCXXNameMangler::mangleFunctionArgumentType(QualType T,
2052                                                          SourceRange Range) {
2053   // MSVC will backreference two canonically equivalent types that have slightly
2054   // different manglings when mangled alone.
2055 
2056   // Decayed types do not match up with non-decayed versions of the same type.
2057   //
2058   // e.g.
2059   // void (*x)(void) will not form a backreference with void x(void)
2060   void *TypePtr;
2061   if (const auto *DT = T->getAs<DecayedType>()) {
2062     QualType OriginalType = DT->getOriginalType();
2063     // All decayed ArrayTypes should be treated identically; as-if they were
2064     // a decayed IncompleteArrayType.
2065     if (const auto *AT = getASTContext().getAsArrayType(OriginalType))
2066       OriginalType = getASTContext().getIncompleteArrayType(
2067           AT->getElementType(), AT->getSizeModifier(),
2068           AT->getIndexTypeCVRQualifiers());
2069 
2070     TypePtr = OriginalType.getCanonicalType().getAsOpaquePtr();
2071     // If the original parameter was textually written as an array,
2072     // instead treat the decayed parameter like it's const.
2073     //
2074     // e.g.
2075     // int [] -> int * const
2076     if (OriginalType->isArrayType())
2077       T = T.withConst();
2078   } else {
2079     TypePtr = T.getCanonicalType().getAsOpaquePtr();
2080   }
2081 
2082   ArgBackRefMap::iterator Found = FunArgBackReferences.find(TypePtr);
2083 
2084   if (Found == FunArgBackReferences.end()) {
2085     size_t OutSizeBefore = Out.tell();
2086 
2087     mangleType(T, Range, QMM_Drop);
2088 
2089     // See if it's worth creating a back reference.
2090     // Only types longer than 1 character are considered
2091     // and only 10 back references slots are available:
2092     bool LongerThanOneChar = (Out.tell() - OutSizeBefore > 1);
2093     if (LongerThanOneChar && FunArgBackReferences.size() < 10) {
2094       size_t Size = FunArgBackReferences.size();
2095       FunArgBackReferences[TypePtr] = Size;
2096     }
2097   } else {
2098     Out << Found->second;
2099   }
2100 }
2101 
2102 void MicrosoftCXXNameMangler::manglePassObjectSizeArg(
2103     const PassObjectSizeAttr *POSA) {
2104   int Type = POSA->getType();
2105   bool Dynamic = POSA->isDynamic();
2106 
2107   auto Iter = PassObjectSizeArgs.insert({Type, Dynamic}).first;
2108   auto *TypePtr = (const void *)&*Iter;
2109   ArgBackRefMap::iterator Found = FunArgBackReferences.find(TypePtr);
2110 
2111   if (Found == FunArgBackReferences.end()) {
2112     std::string Name =
2113         Dynamic ? "__pass_dynamic_object_size" : "__pass_object_size";
2114     mangleArtificialTagType(TTK_Enum, Name + llvm::utostr(Type), {"__clang"});
2115 
2116     if (FunArgBackReferences.size() < 10) {
2117       size_t Size = FunArgBackReferences.size();
2118       FunArgBackReferences[TypePtr] = Size;
2119     }
2120   } else {
2121     Out << Found->second;
2122   }
2123 }
2124 
2125 void MicrosoftCXXNameMangler::mangleAddressSpaceType(QualType T,
2126                                                      Qualifiers Quals,
2127                                                      SourceRange Range) {
2128   // Address space is mangled as an unqualified templated type in the __clang
2129   // namespace. The demangled version of this is:
2130   // In the case of a language specific address space:
2131   // __clang::struct _AS[language_addr_space]<Type>
2132   // where:
2133   //  <language_addr_space> ::= <OpenCL-addrspace> | <CUDA-addrspace>
2134   //    <OpenCL-addrspace> ::= "CL" [ "global" | "local" | "constant" |
2135   //                                "private"| "generic" | "device" | "host" ]
2136   //    <CUDA-addrspace> ::= "CU" [ "device" | "constant" | "shared" ]
2137   //    Note that the above were chosen to match the Itanium mangling for this.
2138   //
2139   // In the case of a non-language specific address space:
2140   //  __clang::struct _AS<TargetAS, Type>
2141   assert(Quals.hasAddressSpace() && "Not valid without address space");
2142   llvm::SmallString<32> ASMangling;
2143   llvm::raw_svector_ostream Stream(ASMangling);
2144   MicrosoftCXXNameMangler Extra(Context, Stream);
2145   Stream << "?$";
2146 
2147   LangAS AS = Quals.getAddressSpace();
2148   if (Context.getASTContext().addressSpaceMapManglingFor(AS)) {
2149     unsigned TargetAS = Context.getASTContext().getTargetAddressSpace(AS);
2150     Extra.mangleSourceName("_AS");
2151     Extra.mangleIntegerLiteral(llvm::APSInt::getUnsigned(TargetAS));
2152   } else {
2153     switch (AS) {
2154     default:
2155       llvm_unreachable("Not a language specific address space");
2156     case LangAS::opencl_global:
2157       Extra.mangleSourceName("_ASCLglobal");
2158       break;
2159     case LangAS::opencl_global_device:
2160       Extra.mangleSourceName("_ASCLdevice");
2161       break;
2162     case LangAS::opencl_global_host:
2163       Extra.mangleSourceName("_ASCLhost");
2164       break;
2165     case LangAS::opencl_local:
2166       Extra.mangleSourceName("_ASCLlocal");
2167       break;
2168     case LangAS::opencl_constant:
2169       Extra.mangleSourceName("_ASCLconstant");
2170       break;
2171     case LangAS::opencl_private:
2172       Extra.mangleSourceName("_ASCLprivate");
2173       break;
2174     case LangAS::opencl_generic:
2175       Extra.mangleSourceName("_ASCLgeneric");
2176       break;
2177     case LangAS::cuda_device:
2178       Extra.mangleSourceName("_ASCUdevice");
2179       break;
2180     case LangAS::cuda_constant:
2181       Extra.mangleSourceName("_ASCUconstant");
2182       break;
2183     case LangAS::cuda_shared:
2184       Extra.mangleSourceName("_ASCUshared");
2185       break;
2186     case LangAS::ptr32_sptr:
2187     case LangAS::ptr32_uptr:
2188     case LangAS::ptr64:
2189       llvm_unreachable("don't mangle ptr address spaces with _AS");
2190     }
2191   }
2192 
2193   Extra.mangleType(T, Range, QMM_Escape);
2194   mangleQualifiers(Qualifiers(), false);
2195   mangleArtificialTagType(TTK_Struct, ASMangling, {"__clang"});
2196 }
2197 
2198 void MicrosoftCXXNameMangler::mangleType(QualType T, SourceRange Range,
2199                                          QualifierMangleMode QMM) {
2200   // Don't use the canonical types.  MSVC includes things like 'const' on
2201   // pointer arguments to function pointers that canonicalization strips away.
2202   T = T.getDesugaredType(getASTContext());
2203   Qualifiers Quals = T.getLocalQualifiers();
2204 
2205   if (const ArrayType *AT = getASTContext().getAsArrayType(T)) {
2206     // If there were any Quals, getAsArrayType() pushed them onto the array
2207     // element type.
2208     if (QMM == QMM_Mangle)
2209       Out << 'A';
2210     else if (QMM == QMM_Escape || QMM == QMM_Result)
2211       Out << "$$B";
2212     mangleArrayType(AT);
2213     return;
2214   }
2215 
2216   bool IsPointer = T->isAnyPointerType() || T->isMemberPointerType() ||
2217                    T->isReferenceType() || T->isBlockPointerType();
2218 
2219   switch (QMM) {
2220   case QMM_Drop:
2221     if (Quals.hasObjCLifetime())
2222       Quals = Quals.withoutObjCLifetime();
2223     break;
2224   case QMM_Mangle:
2225     if (const FunctionType *FT = dyn_cast<FunctionType>(T)) {
2226       Out << '6';
2227       mangleFunctionType(FT);
2228       return;
2229     }
2230     mangleQualifiers(Quals, false);
2231     break;
2232   case QMM_Escape:
2233     if (!IsPointer && Quals) {
2234       Out << "$$C";
2235       mangleQualifiers(Quals, false);
2236     }
2237     break;
2238   case QMM_Result:
2239     // Presence of __unaligned qualifier shouldn't affect mangling here.
2240     Quals.removeUnaligned();
2241     if (Quals.hasObjCLifetime())
2242       Quals = Quals.withoutObjCLifetime();
2243     if ((!IsPointer && Quals) || isa<TagType>(T) || isArtificialTagType(T)) {
2244       Out << '?';
2245       mangleQualifiers(Quals, false);
2246     }
2247     break;
2248   }
2249 
2250   const Type *ty = T.getTypePtr();
2251 
2252   switch (ty->getTypeClass()) {
2253 #define ABSTRACT_TYPE(CLASS, PARENT)
2254 #define NON_CANONICAL_TYPE(CLASS, PARENT) \
2255   case Type::CLASS: \
2256     llvm_unreachable("can't mangle non-canonical type " #CLASS "Type"); \
2257     return;
2258 #define TYPE(CLASS, PARENT) \
2259   case Type::CLASS: \
2260     mangleType(cast<CLASS##Type>(ty), Quals, Range); \
2261     break;
2262 #include "clang/AST/TypeNodes.inc"
2263 #undef ABSTRACT_TYPE
2264 #undef NON_CANONICAL_TYPE
2265 #undef TYPE
2266   }
2267 }
2268 
2269 void MicrosoftCXXNameMangler::mangleType(const BuiltinType *T, Qualifiers,
2270                                          SourceRange Range) {
2271   //  <type>         ::= <builtin-type>
2272   //  <builtin-type> ::= X  # void
2273   //                 ::= C  # signed char
2274   //                 ::= D  # char
2275   //                 ::= E  # unsigned char
2276   //                 ::= F  # short
2277   //                 ::= G  # unsigned short (or wchar_t if it's not a builtin)
2278   //                 ::= H  # int
2279   //                 ::= I  # unsigned int
2280   //                 ::= J  # long
2281   //                 ::= K  # unsigned long
2282   //                     L  # <none>
2283   //                 ::= M  # float
2284   //                 ::= N  # double
2285   //                 ::= O  # long double (__float80 is mangled differently)
2286   //                 ::= _J # long long, __int64
2287   //                 ::= _K # unsigned long long, __int64
2288   //                 ::= _L # __int128
2289   //                 ::= _M # unsigned __int128
2290   //                 ::= _N # bool
2291   //                     _O # <array in parameter>
2292   //                 ::= _Q # char8_t
2293   //                 ::= _S # char16_t
2294   //                 ::= _T # __float80 (Intel)
2295   //                 ::= _U # char32_t
2296   //                 ::= _W # wchar_t
2297   //                 ::= _Z # __float80 (Digital Mars)
2298   switch (T->getKind()) {
2299   case BuiltinType::Void:
2300     Out << 'X';
2301     break;
2302   case BuiltinType::SChar:
2303     Out << 'C';
2304     break;
2305   case BuiltinType::Char_U:
2306   case BuiltinType::Char_S:
2307     Out << 'D';
2308     break;
2309   case BuiltinType::UChar:
2310     Out << 'E';
2311     break;
2312   case BuiltinType::Short:
2313     Out << 'F';
2314     break;
2315   case BuiltinType::UShort:
2316     Out << 'G';
2317     break;
2318   case BuiltinType::Int:
2319     Out << 'H';
2320     break;
2321   case BuiltinType::UInt:
2322     Out << 'I';
2323     break;
2324   case BuiltinType::Long:
2325     Out << 'J';
2326     break;
2327   case BuiltinType::ULong:
2328     Out << 'K';
2329     break;
2330   case BuiltinType::Float:
2331     Out << 'M';
2332     break;
2333   case BuiltinType::Double:
2334     Out << 'N';
2335     break;
2336   // TODO: Determine size and mangle accordingly
2337   case BuiltinType::LongDouble:
2338     Out << 'O';
2339     break;
2340   case BuiltinType::LongLong:
2341     Out << "_J";
2342     break;
2343   case BuiltinType::ULongLong:
2344     Out << "_K";
2345     break;
2346   case BuiltinType::Int128:
2347     Out << "_L";
2348     break;
2349   case BuiltinType::UInt128:
2350     Out << "_M";
2351     break;
2352   case BuiltinType::Bool:
2353     Out << "_N";
2354     break;
2355   case BuiltinType::Char8:
2356     Out << "_Q";
2357     break;
2358   case BuiltinType::Char16:
2359     Out << "_S";
2360     break;
2361   case BuiltinType::Char32:
2362     Out << "_U";
2363     break;
2364   case BuiltinType::WChar_S:
2365   case BuiltinType::WChar_U:
2366     Out << "_W";
2367     break;
2368 
2369 #define BUILTIN_TYPE(Id, SingletonId)
2370 #define PLACEHOLDER_TYPE(Id, SingletonId) \
2371   case BuiltinType::Id:
2372 #include "clang/AST/BuiltinTypes.def"
2373   case BuiltinType::Dependent:
2374     llvm_unreachable("placeholder types shouldn't get to name mangling");
2375 
2376   case BuiltinType::ObjCId:
2377     mangleArtificialTagType(TTK_Struct, "objc_object");
2378     break;
2379   case BuiltinType::ObjCClass:
2380     mangleArtificialTagType(TTK_Struct, "objc_class");
2381     break;
2382   case BuiltinType::ObjCSel:
2383     mangleArtificialTagType(TTK_Struct, "objc_selector");
2384     break;
2385 
2386 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
2387   case BuiltinType::Id: \
2388     Out << "PAUocl_" #ImgType "_" #Suffix "@@"; \
2389     break;
2390 #include "clang/Basic/OpenCLImageTypes.def"
2391   case BuiltinType::OCLSampler:
2392     Out << "PA";
2393     mangleArtificialTagType(TTK_Struct, "ocl_sampler");
2394     break;
2395   case BuiltinType::OCLEvent:
2396     Out << "PA";
2397     mangleArtificialTagType(TTK_Struct, "ocl_event");
2398     break;
2399   case BuiltinType::OCLClkEvent:
2400     Out << "PA";
2401     mangleArtificialTagType(TTK_Struct, "ocl_clkevent");
2402     break;
2403   case BuiltinType::OCLQueue:
2404     Out << "PA";
2405     mangleArtificialTagType(TTK_Struct, "ocl_queue");
2406     break;
2407   case BuiltinType::OCLReserveID:
2408     Out << "PA";
2409     mangleArtificialTagType(TTK_Struct, "ocl_reserveid");
2410     break;
2411 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \
2412   case BuiltinType::Id: \
2413     mangleArtificialTagType(TTK_Struct, "ocl_" #ExtType); \
2414     break;
2415 #include "clang/Basic/OpenCLExtensionTypes.def"
2416 
2417   case BuiltinType::NullPtr:
2418     Out << "$$T";
2419     break;
2420 
2421   case BuiltinType::Float16:
2422     mangleArtificialTagType(TTK_Struct, "_Float16", {"__clang"});
2423     break;
2424 
2425   case BuiltinType::Half:
2426     mangleArtificialTagType(TTK_Struct, "_Half", {"__clang"});
2427     break;
2428 
2429 #define SVE_TYPE(Name, Id, SingletonId) \
2430   case BuiltinType::Id:
2431 #include "clang/Basic/AArch64SVEACLETypes.def"
2432 #define PPC_VECTOR_TYPE(Name, Id, Size) \
2433   case BuiltinType::Id:
2434 #include "clang/Basic/PPCTypes.def"
2435   case BuiltinType::ShortAccum:
2436   case BuiltinType::Accum:
2437   case BuiltinType::LongAccum:
2438   case BuiltinType::UShortAccum:
2439   case BuiltinType::UAccum:
2440   case BuiltinType::ULongAccum:
2441   case BuiltinType::ShortFract:
2442   case BuiltinType::Fract:
2443   case BuiltinType::LongFract:
2444   case BuiltinType::UShortFract:
2445   case BuiltinType::UFract:
2446   case BuiltinType::ULongFract:
2447   case BuiltinType::SatShortAccum:
2448   case BuiltinType::SatAccum:
2449   case BuiltinType::SatLongAccum:
2450   case BuiltinType::SatUShortAccum:
2451   case BuiltinType::SatUAccum:
2452   case BuiltinType::SatULongAccum:
2453   case BuiltinType::SatShortFract:
2454   case BuiltinType::SatFract:
2455   case BuiltinType::SatLongFract:
2456   case BuiltinType::SatUShortFract:
2457   case BuiltinType::SatUFract:
2458   case BuiltinType::SatULongFract:
2459   case BuiltinType::BFloat16:
2460   case BuiltinType::Float128: {
2461     DiagnosticsEngine &Diags = Context.getDiags();
2462     unsigned DiagID = Diags.getCustomDiagID(
2463         DiagnosticsEngine::Error, "cannot mangle this built-in %0 type yet");
2464     Diags.Report(Range.getBegin(), DiagID)
2465         << T->getName(Context.getASTContext().getPrintingPolicy()) << Range;
2466     break;
2467   }
2468   }
2469 }
2470 
2471 // <type>          ::= <function-type>
2472 void MicrosoftCXXNameMangler::mangleType(const FunctionProtoType *T, Qualifiers,
2473                                          SourceRange) {
2474   // Structors only appear in decls, so at this point we know it's not a
2475   // structor type.
2476   // FIXME: This may not be lambda-friendly.
2477   if (T->getMethodQuals() || T->getRefQualifier() != RQ_None) {
2478     Out << "$$A8@@";
2479     mangleFunctionType(T, /*D=*/nullptr, /*ForceThisQuals=*/true);
2480   } else {
2481     Out << "$$A6";
2482     mangleFunctionType(T);
2483   }
2484 }
2485 void MicrosoftCXXNameMangler::mangleType(const FunctionNoProtoType *T,
2486                                          Qualifiers, SourceRange) {
2487   Out << "$$A6";
2488   mangleFunctionType(T);
2489 }
2490 
2491 void MicrosoftCXXNameMangler::mangleFunctionType(const FunctionType *T,
2492                                                  const FunctionDecl *D,
2493                                                  bool ForceThisQuals,
2494                                                  bool MangleExceptionSpec) {
2495   // <function-type> ::= <this-cvr-qualifiers> <calling-convention>
2496   //                     <return-type> <argument-list> <throw-spec>
2497   const FunctionProtoType *Proto = dyn_cast<FunctionProtoType>(T);
2498 
2499   SourceRange Range;
2500   if (D) Range = D->getSourceRange();
2501 
2502   bool IsInLambda = false;
2503   bool IsStructor = false, HasThisQuals = ForceThisQuals, IsCtorClosure = false;
2504   CallingConv CC = T->getCallConv();
2505   if (const CXXMethodDecl *MD = dyn_cast_or_null<CXXMethodDecl>(D)) {
2506     if (MD->getParent()->isLambda())
2507       IsInLambda = true;
2508     if (MD->isInstance())
2509       HasThisQuals = true;
2510     if (isa<CXXDestructorDecl>(MD)) {
2511       IsStructor = true;
2512     } else if (isa<CXXConstructorDecl>(MD)) {
2513       IsStructor = true;
2514       IsCtorClosure = (StructorType == Ctor_CopyingClosure ||
2515                        StructorType == Ctor_DefaultClosure) &&
2516                       isStructorDecl(MD);
2517       if (IsCtorClosure)
2518         CC = getASTContext().getDefaultCallingConvention(
2519             /*IsVariadic=*/false, /*IsCXXMethod=*/true);
2520     }
2521   }
2522 
2523   // If this is a C++ instance method, mangle the CVR qualifiers for the
2524   // this pointer.
2525   if (HasThisQuals) {
2526     Qualifiers Quals = Proto->getMethodQuals();
2527     manglePointerExtQualifiers(Quals, /*PointeeType=*/QualType());
2528     mangleRefQualifier(Proto->getRefQualifier());
2529     mangleQualifiers(Quals, /*IsMember=*/false);
2530   }
2531 
2532   mangleCallingConvention(CC);
2533 
2534   // <return-type> ::= <type>
2535   //               ::= @ # structors (they have no declared return type)
2536   if (IsStructor) {
2537     if (isa<CXXDestructorDecl>(D) && isStructorDecl(D)) {
2538       // The scalar deleting destructor takes an extra int argument which is not
2539       // reflected in the AST.
2540       if (StructorType == Dtor_Deleting) {
2541         Out << (PointersAre64Bit ? "PEAXI@Z" : "PAXI@Z");
2542         return;
2543       }
2544       // The vbase destructor returns void which is not reflected in the AST.
2545       if (StructorType == Dtor_Complete) {
2546         Out << "XXZ";
2547         return;
2548       }
2549     }
2550     if (IsCtorClosure) {
2551       // Default constructor closure and copy constructor closure both return
2552       // void.
2553       Out << 'X';
2554 
2555       if (StructorType == Ctor_DefaultClosure) {
2556         // Default constructor closure always has no arguments.
2557         Out << 'X';
2558       } else if (StructorType == Ctor_CopyingClosure) {
2559         // Copy constructor closure always takes an unqualified reference.
2560         mangleFunctionArgumentType(getASTContext().getLValueReferenceType(
2561                                        Proto->getParamType(0)
2562                                            ->getAs<LValueReferenceType>()
2563                                            ->getPointeeType(),
2564                                        /*SpelledAsLValue=*/true),
2565                                    Range);
2566         Out << '@';
2567       } else {
2568         llvm_unreachable("unexpected constructor closure!");
2569       }
2570       Out << 'Z';
2571       return;
2572     }
2573     Out << '@';
2574   } else if (IsInLambda && D && isa<CXXConversionDecl>(D)) {
2575     // The only lambda conversion operators are to function pointers, which
2576     // can differ by their calling convention and are typically deduced.  So
2577     // we make sure that this type gets mangled properly.
2578     mangleType(T->getReturnType(), Range, QMM_Result);
2579   } else {
2580     QualType ResultType = T->getReturnType();
2581     if (IsInLambda && isa<CXXConversionDecl>(D)) {
2582       // The only lambda conversion operators are to function pointers, which
2583       // can differ by their calling convention and are typically deduced.  So
2584       // we make sure that this type gets mangled properly.
2585       mangleType(ResultType, Range, QMM_Result);
2586     } else if (const auto *AT = dyn_cast_or_null<AutoType>(
2587                    ResultType->getContainedAutoType())) {
2588       Out << '?';
2589       mangleQualifiers(ResultType.getLocalQualifiers(), /*IsMember=*/false);
2590       Out << '?';
2591       assert(AT->getKeyword() != AutoTypeKeyword::GNUAutoType &&
2592              "shouldn't need to mangle __auto_type!");
2593       mangleSourceName(AT->isDecltypeAuto() ? "<decltype-auto>" : "<auto>");
2594       Out << '@';
2595     } else if (IsInLambda) {
2596       Out << '@';
2597     } else {
2598       if (ResultType->isVoidType())
2599         ResultType = ResultType.getUnqualifiedType();
2600       mangleType(ResultType, Range, QMM_Result);
2601     }
2602   }
2603 
2604   // <argument-list> ::= X # void
2605   //                 ::= <type>+ @
2606   //                 ::= <type>* Z # varargs
2607   if (!Proto) {
2608     // Function types without prototypes can arise when mangling a function type
2609     // within an overloadable function in C. We mangle these as the absence of
2610     // any parameter types (not even an empty parameter list).
2611     Out << '@';
2612   } else if (Proto->getNumParams() == 0 && !Proto->isVariadic()) {
2613     Out << 'X';
2614   } else {
2615     // Happens for function pointer type arguments for example.
2616     for (unsigned I = 0, E = Proto->getNumParams(); I != E; ++I) {
2617       mangleFunctionArgumentType(Proto->getParamType(I), Range);
2618       // Mangle each pass_object_size parameter as if it's a parameter of enum
2619       // type passed directly after the parameter with the pass_object_size
2620       // attribute. The aforementioned enum's name is __pass_object_size, and we
2621       // pretend it resides in a top-level namespace called __clang.
2622       //
2623       // FIXME: Is there a defined extension notation for the MS ABI, or is it
2624       // necessary to just cross our fingers and hope this type+namespace
2625       // combination doesn't conflict with anything?
2626       if (D)
2627         if (const auto *P = D->getParamDecl(I)->getAttr<PassObjectSizeAttr>())
2628           manglePassObjectSizeArg(P);
2629     }
2630     // <builtin-type>      ::= Z  # ellipsis
2631     if (Proto->isVariadic())
2632       Out << 'Z';
2633     else
2634       Out << '@';
2635   }
2636 
2637   if (MangleExceptionSpec && getASTContext().getLangOpts().CPlusPlus17 &&
2638       getASTContext().getLangOpts().isCompatibleWithMSVC(
2639           LangOptions::MSVC2017_5))
2640     mangleThrowSpecification(Proto);
2641   else
2642     Out << 'Z';
2643 }
2644 
2645 void MicrosoftCXXNameMangler::mangleFunctionClass(const FunctionDecl *FD) {
2646   // <function-class>  ::= <member-function> E? # E designates a 64-bit 'this'
2647   //                                            # pointer. in 64-bit mode *all*
2648   //                                            # 'this' pointers are 64-bit.
2649   //                   ::= <global-function>
2650   // <member-function> ::= A # private: near
2651   //                   ::= B # private: far
2652   //                   ::= C # private: static near
2653   //                   ::= D # private: static far
2654   //                   ::= E # private: virtual near
2655   //                   ::= F # private: virtual far
2656   //                   ::= I # protected: near
2657   //                   ::= J # protected: far
2658   //                   ::= K # protected: static near
2659   //                   ::= L # protected: static far
2660   //                   ::= M # protected: virtual near
2661   //                   ::= N # protected: virtual far
2662   //                   ::= Q # public: near
2663   //                   ::= R # public: far
2664   //                   ::= S # public: static near
2665   //                   ::= T # public: static far
2666   //                   ::= U # public: virtual near
2667   //                   ::= V # public: virtual far
2668   // <global-function> ::= Y # global near
2669   //                   ::= Z # global far
2670   if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) {
2671     bool IsVirtual = MD->isVirtual();
2672     // When mangling vbase destructor variants, ignore whether or not the
2673     // underlying destructor was defined to be virtual.
2674     if (isa<CXXDestructorDecl>(MD) && isStructorDecl(MD) &&
2675         StructorType == Dtor_Complete) {
2676       IsVirtual = false;
2677     }
2678     switch (MD->getAccess()) {
2679       case AS_none:
2680         llvm_unreachable("Unsupported access specifier");
2681       case AS_private:
2682         if (MD->isStatic())
2683           Out << 'C';
2684         else if (IsVirtual)
2685           Out << 'E';
2686         else
2687           Out << 'A';
2688         break;
2689       case AS_protected:
2690         if (MD->isStatic())
2691           Out << 'K';
2692         else if (IsVirtual)
2693           Out << 'M';
2694         else
2695           Out << 'I';
2696         break;
2697       case AS_public:
2698         if (MD->isStatic())
2699           Out << 'S';
2700         else if (IsVirtual)
2701           Out << 'U';
2702         else
2703           Out << 'Q';
2704     }
2705   } else {
2706     Out << 'Y';
2707   }
2708 }
2709 void MicrosoftCXXNameMangler::mangleCallingConvention(CallingConv CC) {
2710   // <calling-convention> ::= A # __cdecl
2711   //                      ::= B # __export __cdecl
2712   //                      ::= C # __pascal
2713   //                      ::= D # __export __pascal
2714   //                      ::= E # __thiscall
2715   //                      ::= F # __export __thiscall
2716   //                      ::= G # __stdcall
2717   //                      ::= H # __export __stdcall
2718   //                      ::= I # __fastcall
2719   //                      ::= J # __export __fastcall
2720   //                      ::= Q # __vectorcall
2721   //                      ::= w # __regcall
2722   // The 'export' calling conventions are from a bygone era
2723   // (*cough*Win16*cough*) when functions were declared for export with
2724   // that keyword. (It didn't actually export them, it just made them so
2725   // that they could be in a DLL and somebody from another module could call
2726   // them.)
2727 
2728   switch (CC) {
2729     default:
2730       llvm_unreachable("Unsupported CC for mangling");
2731     case CC_Win64:
2732     case CC_X86_64SysV:
2733     case CC_C: Out << 'A'; break;
2734     case CC_X86Pascal: Out << 'C'; break;
2735     case CC_X86ThisCall: Out << 'E'; break;
2736     case CC_X86StdCall: Out << 'G'; break;
2737     case CC_X86FastCall: Out << 'I'; break;
2738     case CC_X86VectorCall: Out << 'Q'; break;
2739     case CC_Swift: Out << 'S'; break;
2740     case CC_PreserveMost: Out << 'U'; break;
2741     case CC_X86RegCall: Out << 'w'; break;
2742   }
2743 }
2744 void MicrosoftCXXNameMangler::mangleCallingConvention(const FunctionType *T) {
2745   mangleCallingConvention(T->getCallConv());
2746 }
2747 
2748 void MicrosoftCXXNameMangler::mangleThrowSpecification(
2749                                                 const FunctionProtoType *FT) {
2750   // <throw-spec> ::= Z # (default)
2751   //              ::= _E # noexcept
2752   if (FT->canThrow())
2753     Out << 'Z';
2754   else
2755     Out << "_E";
2756 }
2757 
2758 void MicrosoftCXXNameMangler::mangleType(const UnresolvedUsingType *T,
2759                                          Qualifiers, SourceRange Range) {
2760   // Probably should be mangled as a template instantiation; need to see what
2761   // VC does first.
2762   DiagnosticsEngine &Diags = Context.getDiags();
2763   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
2764     "cannot mangle this unresolved dependent type yet");
2765   Diags.Report(Range.getBegin(), DiagID)
2766     << Range;
2767 }
2768 
2769 // <type>        ::= <union-type> | <struct-type> | <class-type> | <enum-type>
2770 // <union-type>  ::= T <name>
2771 // <struct-type> ::= U <name>
2772 // <class-type>  ::= V <name>
2773 // <enum-type>   ::= W4 <name>
2774 void MicrosoftCXXNameMangler::mangleTagTypeKind(TagTypeKind TTK) {
2775   switch (TTK) {
2776     case TTK_Union:
2777       Out << 'T';
2778       break;
2779     case TTK_Struct:
2780     case TTK_Interface:
2781       Out << 'U';
2782       break;
2783     case TTK_Class:
2784       Out << 'V';
2785       break;
2786     case TTK_Enum:
2787       Out << "W4";
2788       break;
2789   }
2790 }
2791 void MicrosoftCXXNameMangler::mangleType(const EnumType *T, Qualifiers,
2792                                          SourceRange) {
2793   mangleType(cast<TagType>(T)->getDecl());
2794 }
2795 void MicrosoftCXXNameMangler::mangleType(const RecordType *T, Qualifiers,
2796                                          SourceRange) {
2797   mangleType(cast<TagType>(T)->getDecl());
2798 }
2799 void MicrosoftCXXNameMangler::mangleType(const TagDecl *TD) {
2800   mangleTagTypeKind(TD->getTagKind());
2801   mangleName(TD);
2802 }
2803 
2804 // If you add a call to this, consider updating isArtificialTagType() too.
2805 void MicrosoftCXXNameMangler::mangleArtificialTagType(
2806     TagTypeKind TK, StringRef UnqualifiedName,
2807     ArrayRef<StringRef> NestedNames) {
2808   // <name> ::= <unscoped-name> {[<named-scope>]+ | [<nested-name>]}? @
2809   mangleTagTypeKind(TK);
2810 
2811   // Always start with the unqualified name.
2812   mangleSourceName(UnqualifiedName);
2813 
2814   for (auto I = NestedNames.rbegin(), E = NestedNames.rend(); I != E; ++I)
2815     mangleSourceName(*I);
2816 
2817   // Terminate the whole name with an '@'.
2818   Out << '@';
2819 }
2820 
2821 // <type>       ::= <array-type>
2822 // <array-type> ::= <pointer-cvr-qualifiers> <cvr-qualifiers>
2823 //                  [Y <dimension-count> <dimension>+]
2824 //                  <element-type> # as global, E is never required
2825 // It's supposed to be the other way around, but for some strange reason, it
2826 // isn't. Today this behavior is retained for the sole purpose of backwards
2827 // compatibility.
2828 void MicrosoftCXXNameMangler::mangleDecayedArrayType(const ArrayType *T) {
2829   // This isn't a recursive mangling, so now we have to do it all in this
2830   // one call.
2831   manglePointerCVQualifiers(T->getElementType().getQualifiers());
2832   mangleType(T->getElementType(), SourceRange());
2833 }
2834 void MicrosoftCXXNameMangler::mangleType(const ConstantArrayType *T, Qualifiers,
2835                                          SourceRange) {
2836   llvm_unreachable("Should have been special cased");
2837 }
2838 void MicrosoftCXXNameMangler::mangleType(const VariableArrayType *T, Qualifiers,
2839                                          SourceRange) {
2840   llvm_unreachable("Should have been special cased");
2841 }
2842 void MicrosoftCXXNameMangler::mangleType(const DependentSizedArrayType *T,
2843                                          Qualifiers, SourceRange) {
2844   llvm_unreachable("Should have been special cased");
2845 }
2846 void MicrosoftCXXNameMangler::mangleType(const IncompleteArrayType *T,
2847                                          Qualifiers, SourceRange) {
2848   llvm_unreachable("Should have been special cased");
2849 }
2850 void MicrosoftCXXNameMangler::mangleArrayType(const ArrayType *T) {
2851   QualType ElementTy(T, 0);
2852   SmallVector<llvm::APInt, 3> Dimensions;
2853   for (;;) {
2854     if (ElementTy->isConstantArrayType()) {
2855       const ConstantArrayType *CAT =
2856           getASTContext().getAsConstantArrayType(ElementTy);
2857       Dimensions.push_back(CAT->getSize());
2858       ElementTy = CAT->getElementType();
2859     } else if (ElementTy->isIncompleteArrayType()) {
2860       const IncompleteArrayType *IAT =
2861           getASTContext().getAsIncompleteArrayType(ElementTy);
2862       Dimensions.push_back(llvm::APInt(32, 0));
2863       ElementTy = IAT->getElementType();
2864     } else if (ElementTy->isVariableArrayType()) {
2865       const VariableArrayType *VAT =
2866         getASTContext().getAsVariableArrayType(ElementTy);
2867       Dimensions.push_back(llvm::APInt(32, 0));
2868       ElementTy = VAT->getElementType();
2869     } else if (ElementTy->isDependentSizedArrayType()) {
2870       // The dependent expression has to be folded into a constant (TODO).
2871       const DependentSizedArrayType *DSAT =
2872         getASTContext().getAsDependentSizedArrayType(ElementTy);
2873       DiagnosticsEngine &Diags = Context.getDiags();
2874       unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
2875         "cannot mangle this dependent-length array yet");
2876       Diags.Report(DSAT->getSizeExpr()->getExprLoc(), DiagID)
2877         << DSAT->getBracketsRange();
2878       return;
2879     } else {
2880       break;
2881     }
2882   }
2883   Out << 'Y';
2884   // <dimension-count> ::= <number> # number of extra dimensions
2885   mangleNumber(Dimensions.size());
2886   for (const llvm::APInt &Dimension : Dimensions)
2887     mangleNumber(Dimension.getLimitedValue());
2888   mangleType(ElementTy, SourceRange(), QMM_Escape);
2889 }
2890 
2891 // <type>                   ::= <pointer-to-member-type>
2892 // <pointer-to-member-type> ::= <pointer-cvr-qualifiers> <cvr-qualifiers>
2893 //                                                          <class name> <type>
2894 void MicrosoftCXXNameMangler::mangleType(const MemberPointerType *T,
2895                                          Qualifiers Quals, SourceRange Range) {
2896   QualType PointeeType = T->getPointeeType();
2897   manglePointerCVQualifiers(Quals);
2898   manglePointerExtQualifiers(Quals, PointeeType);
2899   if (const FunctionProtoType *FPT = PointeeType->getAs<FunctionProtoType>()) {
2900     Out << '8';
2901     mangleName(T->getClass()->castAs<RecordType>()->getDecl());
2902     mangleFunctionType(FPT, nullptr, true);
2903   } else {
2904     mangleQualifiers(PointeeType.getQualifiers(), true);
2905     mangleName(T->getClass()->castAs<RecordType>()->getDecl());
2906     mangleType(PointeeType, Range, QMM_Drop);
2907   }
2908 }
2909 
2910 void MicrosoftCXXNameMangler::mangleType(const TemplateTypeParmType *T,
2911                                          Qualifiers, SourceRange Range) {
2912   DiagnosticsEngine &Diags = Context.getDiags();
2913   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
2914     "cannot mangle this template type parameter type yet");
2915   Diags.Report(Range.getBegin(), DiagID)
2916     << Range;
2917 }
2918 
2919 void MicrosoftCXXNameMangler::mangleType(const SubstTemplateTypeParmPackType *T,
2920                                          Qualifiers, SourceRange Range) {
2921   DiagnosticsEngine &Diags = Context.getDiags();
2922   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
2923     "cannot mangle this substituted parameter pack yet");
2924   Diags.Report(Range.getBegin(), DiagID)
2925     << Range;
2926 }
2927 
2928 // <type> ::= <pointer-type>
2929 // <pointer-type> ::= E? <pointer-cvr-qualifiers> <cvr-qualifiers> <type>
2930 //                       # the E is required for 64-bit non-static pointers
2931 void MicrosoftCXXNameMangler::mangleType(const PointerType *T, Qualifiers Quals,
2932                                          SourceRange Range) {
2933   QualType PointeeType = T->getPointeeType();
2934   manglePointerCVQualifiers(Quals);
2935   manglePointerExtQualifiers(Quals, PointeeType);
2936 
2937   // For pointer size address spaces, go down the same type mangling path as
2938   // non address space types.
2939   LangAS AddrSpace = PointeeType.getQualifiers().getAddressSpace();
2940   if (isPtrSizeAddressSpace(AddrSpace) || AddrSpace == LangAS::Default)
2941     mangleType(PointeeType, Range);
2942   else
2943     mangleAddressSpaceType(PointeeType, PointeeType.getQualifiers(), Range);
2944 }
2945 
2946 void MicrosoftCXXNameMangler::mangleType(const ObjCObjectPointerType *T,
2947                                          Qualifiers Quals, SourceRange Range) {
2948   QualType PointeeType = T->getPointeeType();
2949   switch (Quals.getObjCLifetime()) {
2950   case Qualifiers::OCL_None:
2951   case Qualifiers::OCL_ExplicitNone:
2952     break;
2953   case Qualifiers::OCL_Autoreleasing:
2954   case Qualifiers::OCL_Strong:
2955   case Qualifiers::OCL_Weak:
2956     return mangleObjCLifetime(PointeeType, Quals, Range);
2957   }
2958   manglePointerCVQualifiers(Quals);
2959   manglePointerExtQualifiers(Quals, PointeeType);
2960   mangleType(PointeeType, Range);
2961 }
2962 
2963 // <type> ::= <reference-type>
2964 // <reference-type> ::= A E? <cvr-qualifiers> <type>
2965 //                 # the E is required for 64-bit non-static lvalue references
2966 void MicrosoftCXXNameMangler::mangleType(const LValueReferenceType *T,
2967                                          Qualifiers Quals, SourceRange Range) {
2968   QualType PointeeType = T->getPointeeType();
2969   assert(!Quals.hasConst() && !Quals.hasVolatile() && "unexpected qualifier!");
2970   Out << 'A';
2971   manglePointerExtQualifiers(Quals, PointeeType);
2972   mangleType(PointeeType, Range);
2973 }
2974 
2975 // <type> ::= <r-value-reference-type>
2976 // <r-value-reference-type> ::= $$Q E? <cvr-qualifiers> <type>
2977 //                 # the E is required for 64-bit non-static rvalue references
2978 void MicrosoftCXXNameMangler::mangleType(const RValueReferenceType *T,
2979                                          Qualifiers Quals, SourceRange Range) {
2980   QualType PointeeType = T->getPointeeType();
2981   assert(!Quals.hasConst() && !Quals.hasVolatile() && "unexpected qualifier!");
2982   Out << "$$Q";
2983   manglePointerExtQualifiers(Quals, PointeeType);
2984   mangleType(PointeeType, Range);
2985 }
2986 
2987 void MicrosoftCXXNameMangler::mangleType(const ComplexType *T, Qualifiers,
2988                                          SourceRange Range) {
2989   QualType ElementType = T->getElementType();
2990 
2991   llvm::SmallString<64> TemplateMangling;
2992   llvm::raw_svector_ostream Stream(TemplateMangling);
2993   MicrosoftCXXNameMangler Extra(Context, Stream);
2994   Stream << "?$";
2995   Extra.mangleSourceName("_Complex");
2996   Extra.mangleType(ElementType, Range, QMM_Escape);
2997 
2998   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__clang"});
2999 }
3000 
3001 // Returns true for types that mangleArtificialTagType() gets called for with
3002 // TTK_Union, TTK_Struct, TTK_Class and where compatibility with MSVC's
3003 // mangling matters.
3004 // (It doesn't matter for Objective-C types and the like that cl.exe doesn't
3005 // support.)
3006 bool MicrosoftCXXNameMangler::isArtificialTagType(QualType T) const {
3007   const Type *ty = T.getTypePtr();
3008   switch (ty->getTypeClass()) {
3009   default:
3010     return false;
3011 
3012   case Type::Vector: {
3013     // For ABI compatibility only __m64, __m128(id), and __m256(id) matter,
3014     // but since mangleType(VectorType*) always calls mangleArtificialTagType()
3015     // just always return true (the other vector types are clang-only).
3016     return true;
3017   }
3018   }
3019 }
3020 
3021 void MicrosoftCXXNameMangler::mangleType(const VectorType *T, Qualifiers Quals,
3022                                          SourceRange Range) {
3023   const BuiltinType *ET = T->getElementType()->getAs<BuiltinType>();
3024   assert(ET && "vectors with non-builtin elements are unsupported");
3025   uint64_t Width = getASTContext().getTypeSize(T);
3026   // Pattern match exactly the typedefs in our intrinsic headers.  Anything that
3027   // doesn't match the Intel types uses a custom mangling below.
3028   size_t OutSizeBefore = Out.tell();
3029   if (!isa<ExtVectorType>(T)) {
3030     if (getASTContext().getTargetInfo().getTriple().isX86()) {
3031       if (Width == 64 && ET->getKind() == BuiltinType::LongLong) {
3032         mangleArtificialTagType(TTK_Union, "__m64");
3033       } else if (Width >= 128) {
3034         if (ET->getKind() == BuiltinType::Float)
3035           mangleArtificialTagType(TTK_Union, "__m" + llvm::utostr(Width));
3036         else if (ET->getKind() == BuiltinType::LongLong)
3037           mangleArtificialTagType(TTK_Union, "__m" + llvm::utostr(Width) + 'i');
3038         else if (ET->getKind() == BuiltinType::Double)
3039           mangleArtificialTagType(TTK_Struct, "__m" + llvm::utostr(Width) + 'd');
3040       }
3041     }
3042   }
3043 
3044   bool IsBuiltin = Out.tell() != OutSizeBefore;
3045   if (!IsBuiltin) {
3046     // The MS ABI doesn't have a special mangling for vector types, so we define
3047     // our own mangling to handle uses of __vector_size__ on user-specified
3048     // types, and for extensions like __v4sf.
3049 
3050     llvm::SmallString<64> TemplateMangling;
3051     llvm::raw_svector_ostream Stream(TemplateMangling);
3052     MicrosoftCXXNameMangler Extra(Context, Stream);
3053     Stream << "?$";
3054     Extra.mangleSourceName("__vector");
3055     Extra.mangleType(QualType(ET, 0), Range, QMM_Escape);
3056     Extra.mangleIntegerLiteral(llvm::APSInt::getUnsigned(T->getNumElements()));
3057 
3058     mangleArtificialTagType(TTK_Union, TemplateMangling, {"__clang"});
3059   }
3060 }
3061 
3062 void MicrosoftCXXNameMangler::mangleType(const ExtVectorType *T,
3063                                          Qualifiers Quals, SourceRange Range) {
3064   mangleType(static_cast<const VectorType *>(T), Quals, Range);
3065 }
3066 
3067 void MicrosoftCXXNameMangler::mangleType(const DependentVectorType *T,
3068                                          Qualifiers, SourceRange Range) {
3069   DiagnosticsEngine &Diags = Context.getDiags();
3070   unsigned DiagID = Diags.getCustomDiagID(
3071       DiagnosticsEngine::Error,
3072       "cannot mangle this dependent-sized vector type yet");
3073   Diags.Report(Range.getBegin(), DiagID) << Range;
3074 }
3075 
3076 void MicrosoftCXXNameMangler::mangleType(const DependentSizedExtVectorType *T,
3077                                          Qualifiers, SourceRange Range) {
3078   DiagnosticsEngine &Diags = Context.getDiags();
3079   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3080     "cannot mangle this dependent-sized extended vector type yet");
3081   Diags.Report(Range.getBegin(), DiagID)
3082     << Range;
3083 }
3084 
3085 void MicrosoftCXXNameMangler::mangleType(const ConstantMatrixType *T,
3086                                          Qualifiers quals, SourceRange Range) {
3087   DiagnosticsEngine &Diags = Context.getDiags();
3088   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3089                                           "Cannot mangle this matrix type yet");
3090   Diags.Report(Range.getBegin(), DiagID) << Range;
3091 }
3092 
3093 void MicrosoftCXXNameMangler::mangleType(const DependentSizedMatrixType *T,
3094                                          Qualifiers quals, SourceRange Range) {
3095   DiagnosticsEngine &Diags = Context.getDiags();
3096   unsigned DiagID = Diags.getCustomDiagID(
3097       DiagnosticsEngine::Error,
3098       "Cannot mangle this dependent-sized matrix type yet");
3099   Diags.Report(Range.getBegin(), DiagID) << Range;
3100 }
3101 
3102 void MicrosoftCXXNameMangler::mangleType(const DependentAddressSpaceType *T,
3103                                          Qualifiers, SourceRange Range) {
3104   DiagnosticsEngine &Diags = Context.getDiags();
3105   unsigned DiagID = Diags.getCustomDiagID(
3106       DiagnosticsEngine::Error,
3107       "cannot mangle this dependent address space type yet");
3108   Diags.Report(Range.getBegin(), DiagID) << Range;
3109 }
3110 
3111 void MicrosoftCXXNameMangler::mangleType(const ObjCInterfaceType *T, Qualifiers,
3112                                          SourceRange) {
3113   // ObjC interfaces have structs underlying them.
3114   mangleTagTypeKind(TTK_Struct);
3115   mangleName(T->getDecl());
3116 }
3117 
3118 void MicrosoftCXXNameMangler::mangleType(const ObjCObjectType *T,
3119                                          Qualifiers Quals, SourceRange Range) {
3120   if (T->isKindOfType())
3121     return mangleObjCKindOfType(T, Quals, Range);
3122 
3123   if (T->qual_empty() && !T->isSpecialized())
3124     return mangleType(T->getBaseType(), Range, QMM_Drop);
3125 
3126   ArgBackRefMap OuterFunArgsContext;
3127   ArgBackRefMap OuterTemplateArgsContext;
3128   BackRefVec OuterTemplateContext;
3129 
3130   FunArgBackReferences.swap(OuterFunArgsContext);
3131   TemplateArgBackReferences.swap(OuterTemplateArgsContext);
3132   NameBackReferences.swap(OuterTemplateContext);
3133 
3134   mangleTagTypeKind(TTK_Struct);
3135 
3136   Out << "?$";
3137   if (T->isObjCId())
3138     mangleSourceName("objc_object");
3139   else if (T->isObjCClass())
3140     mangleSourceName("objc_class");
3141   else
3142     mangleSourceName(T->getInterface()->getName());
3143 
3144   for (const auto &Q : T->quals())
3145     mangleObjCProtocol(Q);
3146 
3147   if (T->isSpecialized())
3148     for (const auto &TA : T->getTypeArgs())
3149       mangleType(TA, Range, QMM_Drop);
3150 
3151   Out << '@';
3152 
3153   Out << '@';
3154 
3155   FunArgBackReferences.swap(OuterFunArgsContext);
3156   TemplateArgBackReferences.swap(OuterTemplateArgsContext);
3157   NameBackReferences.swap(OuterTemplateContext);
3158 }
3159 
3160 void MicrosoftCXXNameMangler::mangleType(const BlockPointerType *T,
3161                                          Qualifiers Quals, SourceRange Range) {
3162   QualType PointeeType = T->getPointeeType();
3163   manglePointerCVQualifiers(Quals);
3164   manglePointerExtQualifiers(Quals, PointeeType);
3165 
3166   Out << "_E";
3167 
3168   mangleFunctionType(PointeeType->castAs<FunctionProtoType>());
3169 }
3170 
3171 void MicrosoftCXXNameMangler::mangleType(const InjectedClassNameType *,
3172                                          Qualifiers, SourceRange) {
3173   llvm_unreachable("Cannot mangle injected class name type.");
3174 }
3175 
3176 void MicrosoftCXXNameMangler::mangleType(const TemplateSpecializationType *T,
3177                                          Qualifiers, SourceRange Range) {
3178   DiagnosticsEngine &Diags = Context.getDiags();
3179   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3180     "cannot mangle this template specialization type yet");
3181   Diags.Report(Range.getBegin(), DiagID)
3182     << Range;
3183 }
3184 
3185 void MicrosoftCXXNameMangler::mangleType(const DependentNameType *T, Qualifiers,
3186                                          SourceRange Range) {
3187   DiagnosticsEngine &Diags = Context.getDiags();
3188   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3189     "cannot mangle this dependent name type yet");
3190   Diags.Report(Range.getBegin(), DiagID)
3191     << Range;
3192 }
3193 
3194 void MicrosoftCXXNameMangler::mangleType(
3195     const DependentTemplateSpecializationType *T, Qualifiers,
3196     SourceRange Range) {
3197   DiagnosticsEngine &Diags = Context.getDiags();
3198   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3199     "cannot mangle this dependent template specialization type yet");
3200   Diags.Report(Range.getBegin(), DiagID)
3201     << Range;
3202 }
3203 
3204 void MicrosoftCXXNameMangler::mangleType(const PackExpansionType *T, Qualifiers,
3205                                          SourceRange Range) {
3206   DiagnosticsEngine &Diags = Context.getDiags();
3207   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3208     "cannot mangle this pack expansion yet");
3209   Diags.Report(Range.getBegin(), DiagID)
3210     << Range;
3211 }
3212 
3213 void MicrosoftCXXNameMangler::mangleType(const TypeOfType *T, Qualifiers,
3214                                          SourceRange Range) {
3215   DiagnosticsEngine &Diags = Context.getDiags();
3216   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3217     "cannot mangle this typeof(type) yet");
3218   Diags.Report(Range.getBegin(), DiagID)
3219     << Range;
3220 }
3221 
3222 void MicrosoftCXXNameMangler::mangleType(const TypeOfExprType *T, Qualifiers,
3223                                          SourceRange Range) {
3224   DiagnosticsEngine &Diags = Context.getDiags();
3225   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3226     "cannot mangle this typeof(expression) yet");
3227   Diags.Report(Range.getBegin(), DiagID)
3228     << Range;
3229 }
3230 
3231 void MicrosoftCXXNameMangler::mangleType(const DecltypeType *T, Qualifiers,
3232                                          SourceRange Range) {
3233   DiagnosticsEngine &Diags = Context.getDiags();
3234   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3235     "cannot mangle this decltype() yet");
3236   Diags.Report(Range.getBegin(), DiagID)
3237     << Range;
3238 }
3239 
3240 void MicrosoftCXXNameMangler::mangleType(const UnaryTransformType *T,
3241                                          Qualifiers, SourceRange Range) {
3242   DiagnosticsEngine &Diags = Context.getDiags();
3243   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3244     "cannot mangle this unary transform type yet");
3245   Diags.Report(Range.getBegin(), DiagID)
3246     << Range;
3247 }
3248 
3249 void MicrosoftCXXNameMangler::mangleType(const AutoType *T, Qualifiers,
3250                                          SourceRange Range) {
3251   assert(T->getDeducedType().isNull() && "expecting a dependent type!");
3252 
3253   DiagnosticsEngine &Diags = Context.getDiags();
3254   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3255     "cannot mangle this 'auto' type yet");
3256   Diags.Report(Range.getBegin(), DiagID)
3257     << Range;
3258 }
3259 
3260 void MicrosoftCXXNameMangler::mangleType(
3261     const DeducedTemplateSpecializationType *T, Qualifiers, SourceRange Range) {
3262   assert(T->getDeducedType().isNull() && "expecting a dependent type!");
3263 
3264   DiagnosticsEngine &Diags = Context.getDiags();
3265   unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error,
3266     "cannot mangle this deduced class template specialization type yet");
3267   Diags.Report(Range.getBegin(), DiagID)
3268     << Range;
3269 }
3270 
3271 void MicrosoftCXXNameMangler::mangleType(const AtomicType *T, Qualifiers,
3272                                          SourceRange Range) {
3273   QualType ValueType = T->getValueType();
3274 
3275   llvm::SmallString<64> TemplateMangling;
3276   llvm::raw_svector_ostream Stream(TemplateMangling);
3277   MicrosoftCXXNameMangler Extra(Context, Stream);
3278   Stream << "?$";
3279   Extra.mangleSourceName("_Atomic");
3280   Extra.mangleType(ValueType, Range, QMM_Escape);
3281 
3282   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__clang"});
3283 }
3284 
3285 void MicrosoftCXXNameMangler::mangleType(const PipeType *T, Qualifiers,
3286                                          SourceRange Range) {
3287   QualType ElementType = T->getElementType();
3288 
3289   llvm::SmallString<64> TemplateMangling;
3290   llvm::raw_svector_ostream Stream(TemplateMangling);
3291   MicrosoftCXXNameMangler Extra(Context, Stream);
3292   Stream << "?$";
3293   Extra.mangleSourceName("ocl_pipe");
3294   Extra.mangleType(ElementType, Range, QMM_Escape);
3295   Extra.mangleIntegerLiteral(llvm::APSInt::get(T->isReadOnly()));
3296 
3297   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__clang"});
3298 }
3299 
3300 void MicrosoftMangleContextImpl::mangleCXXName(GlobalDecl GD,
3301                                                raw_ostream &Out) {
3302   const NamedDecl *D = cast<NamedDecl>(GD.getDecl());
3303   PrettyStackTraceDecl CrashInfo(D, SourceLocation(),
3304                                  getASTContext().getSourceManager(),
3305                                  "Mangling declaration");
3306 
3307   msvc_hashing_ostream MHO(Out);
3308 
3309   if (auto *CD = dyn_cast<CXXConstructorDecl>(D)) {
3310     auto Type = GD.getCtorType();
3311     MicrosoftCXXNameMangler mangler(*this, MHO, CD, Type);
3312     return mangler.mangle(D);
3313   }
3314 
3315   if (auto *DD = dyn_cast<CXXDestructorDecl>(D)) {
3316     auto Type = GD.getDtorType();
3317     MicrosoftCXXNameMangler mangler(*this, MHO, DD, Type);
3318     return mangler.mangle(D);
3319   }
3320 
3321   MicrosoftCXXNameMangler Mangler(*this, MHO);
3322   return Mangler.mangle(D);
3323 }
3324 
3325 void MicrosoftCXXNameMangler::mangleType(const ExtIntType *T, Qualifiers,
3326                                          SourceRange Range) {
3327   llvm::SmallString<64> TemplateMangling;
3328   llvm::raw_svector_ostream Stream(TemplateMangling);
3329   MicrosoftCXXNameMangler Extra(Context, Stream);
3330   Stream << "?$";
3331   if (T->isUnsigned())
3332     Extra.mangleSourceName("_UExtInt");
3333   else
3334     Extra.mangleSourceName("_ExtInt");
3335   Extra.mangleIntegerLiteral(llvm::APSInt::getUnsigned(T->getNumBits()));
3336 
3337   mangleArtificialTagType(TTK_Struct, TemplateMangling, {"__clang"});
3338 }
3339 
3340 void MicrosoftCXXNameMangler::mangleType(const DependentExtIntType *T,
3341                                          Qualifiers, SourceRange Range) {
3342   DiagnosticsEngine &Diags = Context.getDiags();
3343   unsigned DiagID = Diags.getCustomDiagID(
3344       DiagnosticsEngine::Error, "cannot mangle this DependentExtInt type yet");
3345   Diags.Report(Range.getBegin(), DiagID) << Range;
3346 }
3347 
3348 // <this-adjustment> ::= <no-adjustment> | <static-adjustment> |
3349 //                       <virtual-adjustment>
3350 // <no-adjustment>      ::= A # private near
3351 //                      ::= B # private far
3352 //                      ::= I # protected near
3353 //                      ::= J # protected far
3354 //                      ::= Q # public near
3355 //                      ::= R # public far
3356 // <static-adjustment>  ::= G <static-offset> # private near
3357 //                      ::= H <static-offset> # private far
3358 //                      ::= O <static-offset> # protected near
3359 //                      ::= P <static-offset> # protected far
3360 //                      ::= W <static-offset> # public near
3361 //                      ::= X <static-offset> # public far
3362 // <virtual-adjustment> ::= $0 <virtual-shift> <static-offset> # private near
3363 //                      ::= $1 <virtual-shift> <static-offset> # private far
3364 //                      ::= $2 <virtual-shift> <static-offset> # protected near
3365 //                      ::= $3 <virtual-shift> <static-offset> # protected far
3366 //                      ::= $4 <virtual-shift> <static-offset> # public near
3367 //                      ::= $5 <virtual-shift> <static-offset> # public far
3368 // <virtual-shift>      ::= <vtordisp-shift> | <vtordispex-shift>
3369 // <vtordisp-shift>     ::= <offset-to-vtordisp>
3370 // <vtordispex-shift>   ::= <offset-to-vbptr> <vbase-offset-offset>
3371 //                          <offset-to-vtordisp>
3372 static void mangleThunkThisAdjustment(AccessSpecifier AS,
3373                                       const ThisAdjustment &Adjustment,
3374                                       MicrosoftCXXNameMangler &Mangler,
3375                                       raw_ostream &Out) {
3376   if (!Adjustment.Virtual.isEmpty()) {
3377     Out << '$';
3378     char AccessSpec;
3379     switch (AS) {
3380     case AS_none:
3381       llvm_unreachable("Unsupported access specifier");
3382     case AS_private:
3383       AccessSpec = '0';
3384       break;
3385     case AS_protected:
3386       AccessSpec = '2';
3387       break;
3388     case AS_public:
3389       AccessSpec = '4';
3390     }
3391     if (Adjustment.Virtual.Microsoft.VBPtrOffset) {
3392       Out << 'R' << AccessSpec;
3393       Mangler.mangleNumber(
3394           static_cast<uint32_t>(Adjustment.Virtual.Microsoft.VBPtrOffset));
3395       Mangler.mangleNumber(
3396           static_cast<uint32_t>(Adjustment.Virtual.Microsoft.VBOffsetOffset));
3397       Mangler.mangleNumber(
3398           static_cast<uint32_t>(Adjustment.Virtual.Microsoft.VtordispOffset));
3399       Mangler.mangleNumber(static_cast<uint32_t>(Adjustment.NonVirtual));
3400     } else {
3401       Out << AccessSpec;
3402       Mangler.mangleNumber(
3403           static_cast<uint32_t>(Adjustment.Virtual.Microsoft.VtordispOffset));
3404       Mangler.mangleNumber(-static_cast<uint32_t>(Adjustment.NonVirtual));
3405     }
3406   } else if (Adjustment.NonVirtual != 0) {
3407     switch (AS) {
3408     case AS_none:
3409       llvm_unreachable("Unsupported access specifier");
3410     case AS_private:
3411       Out << 'G';
3412       break;
3413     case AS_protected:
3414       Out << 'O';
3415       break;
3416     case AS_public:
3417       Out << 'W';
3418     }
3419     Mangler.mangleNumber(-static_cast<uint32_t>(Adjustment.NonVirtual));
3420   } else {
3421     switch (AS) {
3422     case AS_none:
3423       llvm_unreachable("Unsupported access specifier");
3424     case AS_private:
3425       Out << 'A';
3426       break;
3427     case AS_protected:
3428       Out << 'I';
3429       break;
3430     case AS_public:
3431       Out << 'Q';
3432     }
3433   }
3434 }
3435 
3436 void MicrosoftMangleContextImpl::mangleVirtualMemPtrThunk(
3437     const CXXMethodDecl *MD, const MethodVFTableLocation &ML,
3438     raw_ostream &Out) {
3439   msvc_hashing_ostream MHO(Out);
3440   MicrosoftCXXNameMangler Mangler(*this, MHO);
3441   Mangler.getStream() << '?';
3442   Mangler.mangleVirtualMemPtrThunk(MD, ML);
3443 }
3444 
3445 void MicrosoftMangleContextImpl::mangleThunk(const CXXMethodDecl *MD,
3446                                              const ThunkInfo &Thunk,
3447                                              raw_ostream &Out) {
3448   msvc_hashing_ostream MHO(Out);
3449   MicrosoftCXXNameMangler Mangler(*this, MHO);
3450   Mangler.getStream() << '?';
3451   Mangler.mangleName(MD);
3452 
3453   // Usually the thunk uses the access specifier of the new method, but if this
3454   // is a covariant return thunk, then MSVC always uses the public access
3455   // specifier, and we do the same.
3456   AccessSpecifier AS = Thunk.Return.isEmpty() ? MD->getAccess() : AS_public;
3457   mangleThunkThisAdjustment(AS, Thunk.This, Mangler, MHO);
3458 
3459   if (!Thunk.Return.isEmpty())
3460     assert(Thunk.Method != nullptr &&
3461            "Thunk info should hold the overridee decl");
3462 
3463   const CXXMethodDecl *DeclForFPT = Thunk.Method ? Thunk.Method : MD;
3464   Mangler.mangleFunctionType(
3465       DeclForFPT->getType()->castAs<FunctionProtoType>(), MD);
3466 }
3467 
3468 void MicrosoftMangleContextImpl::mangleCXXDtorThunk(
3469     const CXXDestructorDecl *DD, CXXDtorType Type,
3470     const ThisAdjustment &Adjustment, raw_ostream &Out) {
3471   // FIXME: Actually, the dtor thunk should be emitted for vector deleting
3472   // dtors rather than scalar deleting dtors. Just use the vector deleting dtor
3473   // mangling manually until we support both deleting dtor types.
3474   assert(Type == Dtor_Deleting);
3475   msvc_hashing_ostream MHO(Out);
3476   MicrosoftCXXNameMangler Mangler(*this, MHO, DD, Type);
3477   Mangler.getStream() << "??_E";
3478   Mangler.mangleName(DD->getParent());
3479   mangleThunkThisAdjustment(DD->getAccess(), Adjustment, Mangler, MHO);
3480   Mangler.mangleFunctionType(DD->getType()->castAs<FunctionProtoType>(), DD);
3481 }
3482 
3483 void MicrosoftMangleContextImpl::mangleCXXVFTable(
3484     const CXXRecordDecl *Derived, ArrayRef<const CXXRecordDecl *> BasePath,
3485     raw_ostream &Out) {
3486   // <mangled-name> ::= ?_7 <class-name> <storage-class>
3487   //                    <cvr-qualifiers> [<name>] @
3488   // NOTE: <cvr-qualifiers> here is always 'B' (const). <storage-class>
3489   // is always '6' for vftables.
3490   msvc_hashing_ostream MHO(Out);
3491   MicrosoftCXXNameMangler Mangler(*this, MHO);
3492   if (Derived->hasAttr<DLLImportAttr>())
3493     Mangler.getStream() << "??_S";
3494   else
3495     Mangler.getStream() << "??_7";
3496   Mangler.mangleName(Derived);
3497   Mangler.getStream() << "6B"; // '6' for vftable, 'B' for const.
3498   for (const CXXRecordDecl *RD : BasePath)
3499     Mangler.mangleName(RD);
3500   Mangler.getStream() << '@';
3501 }
3502 
3503 void MicrosoftMangleContextImpl::mangleCXXVBTable(
3504     const CXXRecordDecl *Derived, ArrayRef<const CXXRecordDecl *> BasePath,
3505     raw_ostream &Out) {
3506   // <mangled-name> ::= ?_8 <class-name> <storage-class>
3507   //                    <cvr-qualifiers> [<name>] @
3508   // NOTE: <cvr-qualifiers> here is always 'B' (const). <storage-class>
3509   // is always '7' for vbtables.
3510   msvc_hashing_ostream MHO(Out);
3511   MicrosoftCXXNameMangler Mangler(*this, MHO);
3512   Mangler.getStream() << "??_8";
3513   Mangler.mangleName(Derived);
3514   Mangler.getStream() << "7B";  // '7' for vbtable, 'B' for const.
3515   for (const CXXRecordDecl *RD : BasePath)
3516     Mangler.mangleName(RD);
3517   Mangler.getStream() << '@';
3518 }
3519 
3520 void MicrosoftMangleContextImpl::mangleCXXRTTI(QualType T, raw_ostream &Out) {
3521   msvc_hashing_ostream MHO(Out);
3522   MicrosoftCXXNameMangler Mangler(*this, MHO);
3523   Mangler.getStream() << "??_R0";
3524   Mangler.mangleType(T, SourceRange(), MicrosoftCXXNameMangler::QMM_Result);
3525   Mangler.getStream() << "@8";
3526 }
3527 
3528 void MicrosoftMangleContextImpl::mangleCXXRTTIName(QualType T,
3529                                                    raw_ostream &Out) {
3530   MicrosoftCXXNameMangler Mangler(*this, Out);
3531   Mangler.getStream() << '.';
3532   Mangler.mangleType(T, SourceRange(), MicrosoftCXXNameMangler::QMM_Result);
3533 }
3534 
3535 void MicrosoftMangleContextImpl::mangleCXXVirtualDisplacementMap(
3536     const CXXRecordDecl *SrcRD, const CXXRecordDecl *DstRD, raw_ostream &Out) {
3537   msvc_hashing_ostream MHO(Out);
3538   MicrosoftCXXNameMangler Mangler(*this, MHO);
3539   Mangler.getStream() << "??_K";
3540   Mangler.mangleName(SrcRD);
3541   Mangler.getStream() << "$C";
3542   Mangler.mangleName(DstRD);
3543 }
3544 
3545 void MicrosoftMangleContextImpl::mangleCXXThrowInfo(QualType T, bool IsConst,
3546                                                     bool IsVolatile,
3547                                                     bool IsUnaligned,
3548                                                     uint32_t NumEntries,
3549                                                     raw_ostream &Out) {
3550   msvc_hashing_ostream MHO(Out);
3551   MicrosoftCXXNameMangler Mangler(*this, MHO);
3552   Mangler.getStream() << "_TI";
3553   if (IsConst)
3554     Mangler.getStream() << 'C';
3555   if (IsVolatile)
3556     Mangler.getStream() << 'V';
3557   if (IsUnaligned)
3558     Mangler.getStream() << 'U';
3559   Mangler.getStream() << NumEntries;
3560   Mangler.mangleType(T, SourceRange(), MicrosoftCXXNameMangler::QMM_Result);
3561 }
3562 
3563 void MicrosoftMangleContextImpl::mangleCXXCatchableTypeArray(
3564     QualType T, uint32_t NumEntries, raw_ostream &Out) {
3565   msvc_hashing_ostream MHO(Out);
3566   MicrosoftCXXNameMangler Mangler(*this, MHO);
3567   Mangler.getStream() << "_CTA";
3568   Mangler.getStream() << NumEntries;
3569   Mangler.mangleType(T, SourceRange(), MicrosoftCXXNameMangler::QMM_Result);
3570 }
3571 
3572 void MicrosoftMangleContextImpl::mangleCXXCatchableType(
3573     QualType T, const CXXConstructorDecl *CD, CXXCtorType CT, uint32_t Size,
3574     uint32_t NVOffset, int32_t VBPtrOffset, uint32_t VBIndex,
3575     raw_ostream &Out) {
3576   MicrosoftCXXNameMangler Mangler(*this, Out);
3577   Mangler.getStream() << "_CT";
3578 
3579   llvm::SmallString<64> RTTIMangling;
3580   {
3581     llvm::raw_svector_ostream Stream(RTTIMangling);
3582     msvc_hashing_ostream MHO(Stream);
3583     mangleCXXRTTI(T, MHO);
3584   }
3585   Mangler.getStream() << RTTIMangling;
3586 
3587   // VS2015 and VS2017.1 omit the copy-constructor in the mangled name but
3588   // both older and newer versions include it.
3589   // FIXME: It is known that the Ctor is present in 2013, and in 2017.7
3590   // (_MSC_VER 1914) and newer, and that it's omitted in 2015 and 2017.4
3591   // (_MSC_VER 1911), but it's unknown when exactly it reappeared (1914?
3592   // Or 1912, 1913 aleady?).
3593   bool OmitCopyCtor = getASTContext().getLangOpts().isCompatibleWithMSVC(
3594                           LangOptions::MSVC2015) &&
3595                       !getASTContext().getLangOpts().isCompatibleWithMSVC(
3596                           LangOptions::MSVC2017_7);
3597   llvm::SmallString<64> CopyCtorMangling;
3598   if (!OmitCopyCtor && CD) {
3599     llvm::raw_svector_ostream Stream(CopyCtorMangling);
3600     msvc_hashing_ostream MHO(Stream);
3601     mangleCXXName(GlobalDecl(CD, CT), MHO);
3602   }
3603   Mangler.getStream() << CopyCtorMangling;
3604 
3605   Mangler.getStream() << Size;
3606   if (VBPtrOffset == -1) {
3607     if (NVOffset) {
3608       Mangler.getStream() << NVOffset;
3609     }
3610   } else {
3611     Mangler.getStream() << NVOffset;
3612     Mangler.getStream() << VBPtrOffset;
3613     Mangler.getStream() << VBIndex;
3614   }
3615 }
3616 
3617 void MicrosoftMangleContextImpl::mangleCXXRTTIBaseClassDescriptor(
3618     const CXXRecordDecl *Derived, uint32_t NVOffset, int32_t VBPtrOffset,
3619     uint32_t VBTableOffset, uint32_t Flags, raw_ostream &Out) {
3620   msvc_hashing_ostream MHO(Out);
3621   MicrosoftCXXNameMangler Mangler(*this, MHO);
3622   Mangler.getStream() << "??_R1";
3623   Mangler.mangleNumber(NVOffset);
3624   Mangler.mangleNumber(VBPtrOffset);
3625   Mangler.mangleNumber(VBTableOffset);
3626   Mangler.mangleNumber(Flags);
3627   Mangler.mangleName(Derived);
3628   Mangler.getStream() << "8";
3629 }
3630 
3631 void MicrosoftMangleContextImpl::mangleCXXRTTIBaseClassArray(
3632     const CXXRecordDecl *Derived, raw_ostream &Out) {
3633   msvc_hashing_ostream MHO(Out);
3634   MicrosoftCXXNameMangler Mangler(*this, MHO);
3635   Mangler.getStream() << "??_R2";
3636   Mangler.mangleName(Derived);
3637   Mangler.getStream() << "8";
3638 }
3639 
3640 void MicrosoftMangleContextImpl::mangleCXXRTTIClassHierarchyDescriptor(
3641     const CXXRecordDecl *Derived, raw_ostream &Out) {
3642   msvc_hashing_ostream MHO(Out);
3643   MicrosoftCXXNameMangler Mangler(*this, MHO);
3644   Mangler.getStream() << "??_R3";
3645   Mangler.mangleName(Derived);
3646   Mangler.getStream() << "8";
3647 }
3648 
3649 void MicrosoftMangleContextImpl::mangleCXXRTTICompleteObjectLocator(
3650     const CXXRecordDecl *Derived, ArrayRef<const CXXRecordDecl *> BasePath,
3651     raw_ostream &Out) {
3652   // <mangled-name> ::= ?_R4 <class-name> <storage-class>
3653   //                    <cvr-qualifiers> [<name>] @
3654   // NOTE: <cvr-qualifiers> here is always 'B' (const). <storage-class>
3655   // is always '6' for vftables.
3656   llvm::SmallString<64> VFTableMangling;
3657   llvm::raw_svector_ostream Stream(VFTableMangling);
3658   mangleCXXVFTable(Derived, BasePath, Stream);
3659 
3660   if (VFTableMangling.startswith("??@")) {
3661     assert(VFTableMangling.endswith("@"));
3662     Out << VFTableMangling << "??_R4@";
3663     return;
3664   }
3665 
3666   assert(VFTableMangling.startswith("??_7") ||
3667          VFTableMangling.startswith("??_S"));
3668 
3669   Out << "??_R4" << StringRef(VFTableMangling).drop_front(4);
3670 }
3671 
3672 void MicrosoftMangleContextImpl::mangleSEHFilterExpression(
3673     const NamedDecl *EnclosingDecl, raw_ostream &Out) {
3674   msvc_hashing_ostream MHO(Out);
3675   MicrosoftCXXNameMangler Mangler(*this, MHO);
3676   // The function body is in the same comdat as the function with the handler,
3677   // so the numbering here doesn't have to be the same across TUs.
3678   //
3679   // <mangled-name> ::= ?filt$ <filter-number> @0
3680   Mangler.getStream() << "?filt$" << SEHFilterIds[EnclosingDecl]++ << "@0@";
3681   Mangler.mangleName(EnclosingDecl);
3682 }
3683 
3684 void MicrosoftMangleContextImpl::mangleSEHFinallyBlock(
3685     const NamedDecl *EnclosingDecl, raw_ostream &Out) {
3686   msvc_hashing_ostream MHO(Out);
3687   MicrosoftCXXNameMangler Mangler(*this, MHO);
3688   // The function body is in the same comdat as the function with the handler,
3689   // so the numbering here doesn't have to be the same across TUs.
3690   //
3691   // <mangled-name> ::= ?fin$ <filter-number> @0
3692   Mangler.getStream() << "?fin$" << SEHFinallyIds[EnclosingDecl]++ << "@0@";
3693   Mangler.mangleName(EnclosingDecl);
3694 }
3695 
3696 void MicrosoftMangleContextImpl::mangleTypeName(QualType T, raw_ostream &Out) {
3697   // This is just a made up unique string for the purposes of tbaa.  undname
3698   // does *not* know how to demangle it.
3699   MicrosoftCXXNameMangler Mangler(*this, Out);
3700   Mangler.getStream() << '?';
3701   Mangler.mangleType(T, SourceRange());
3702 }
3703 
3704 void MicrosoftMangleContextImpl::mangleReferenceTemporary(
3705     const VarDecl *VD, unsigned ManglingNumber, raw_ostream &Out) {
3706   msvc_hashing_ostream MHO(Out);
3707   MicrosoftCXXNameMangler Mangler(*this, MHO);
3708 
3709   Mangler.getStream() << "?$RT" << ManglingNumber << '@';
3710   Mangler.mangle(VD, "");
3711 }
3712 
3713 void MicrosoftMangleContextImpl::mangleThreadSafeStaticGuardVariable(
3714     const VarDecl *VD, unsigned GuardNum, raw_ostream &Out) {
3715   msvc_hashing_ostream MHO(Out);
3716   MicrosoftCXXNameMangler Mangler(*this, MHO);
3717 
3718   Mangler.getStream() << "?$TSS" << GuardNum << '@';
3719   Mangler.mangleNestedName(VD);
3720   Mangler.getStream() << "@4HA";
3721 }
3722 
3723 void MicrosoftMangleContextImpl::mangleStaticGuardVariable(const VarDecl *VD,
3724                                                            raw_ostream &Out) {
3725   // <guard-name> ::= ?_B <postfix> @5 <scope-depth>
3726   //              ::= ?__J <postfix> @5 <scope-depth>
3727   //              ::= ?$S <guard-num> @ <postfix> @4IA
3728 
3729   // The first mangling is what MSVC uses to guard static locals in inline
3730   // functions.  It uses a different mangling in external functions to support
3731   // guarding more than 32 variables.  MSVC rejects inline functions with more
3732   // than 32 static locals.  We don't fully implement the second mangling
3733   // because those guards are not externally visible, and instead use LLVM's
3734   // default renaming when creating a new guard variable.
3735   msvc_hashing_ostream MHO(Out);
3736   MicrosoftCXXNameMangler Mangler(*this, MHO);
3737 
3738   bool Visible = VD->isExternallyVisible();
3739   if (Visible) {
3740     Mangler.getStream() << (VD->getTLSKind() ? "??__J" : "??_B");
3741   } else {
3742     Mangler.getStream() << "?$S1@";
3743   }
3744   unsigned ScopeDepth = 0;
3745   if (Visible && !getNextDiscriminator(VD, ScopeDepth))
3746     // If we do not have a discriminator and are emitting a guard variable for
3747     // use at global scope, then mangling the nested name will not be enough to
3748     // remove ambiguities.
3749     Mangler.mangle(VD, "");
3750   else
3751     Mangler.mangleNestedName(VD);
3752   Mangler.getStream() << (Visible ? "@5" : "@4IA");
3753   if (ScopeDepth)
3754     Mangler.mangleNumber(ScopeDepth);
3755 }
3756 
3757 void MicrosoftMangleContextImpl::mangleInitFiniStub(const VarDecl *D,
3758                                                     char CharCode,
3759                                                     raw_ostream &Out) {
3760   msvc_hashing_ostream MHO(Out);
3761   MicrosoftCXXNameMangler Mangler(*this, MHO);
3762   Mangler.getStream() << "??__" << CharCode;
3763   if (D->isStaticDataMember()) {
3764     Mangler.getStream() << '?';
3765     Mangler.mangleName(D);
3766     Mangler.mangleVariableEncoding(D);
3767     Mangler.getStream() << "@@";
3768   } else {
3769     Mangler.mangleName(D);
3770   }
3771   // This is the function class mangling.  These stubs are global, non-variadic,
3772   // cdecl functions that return void and take no args.
3773   Mangler.getStream() << "YAXXZ";
3774 }
3775 
3776 void MicrosoftMangleContextImpl::mangleDynamicInitializer(const VarDecl *D,
3777                                                           raw_ostream &Out) {
3778   // <initializer-name> ::= ?__E <name> YAXXZ
3779   mangleInitFiniStub(D, 'E', Out);
3780 }
3781 
3782 void
3783 MicrosoftMangleContextImpl::mangleDynamicAtExitDestructor(const VarDecl *D,
3784                                                           raw_ostream &Out) {
3785   // <destructor-name> ::= ?__F <name> YAXXZ
3786   mangleInitFiniStub(D, 'F', Out);
3787 }
3788 
3789 void MicrosoftMangleContextImpl::mangleStringLiteral(const StringLiteral *SL,
3790                                                      raw_ostream &Out) {
3791   // <char-type> ::= 0   # char, char16_t, char32_t
3792   //                     # (little endian char data in mangling)
3793   //             ::= 1   # wchar_t (big endian char data in mangling)
3794   //
3795   // <literal-length> ::= <non-negative integer>  # the length of the literal
3796   //
3797   // <encoded-crc>    ::= <hex digit>+ @          # crc of the literal including
3798   //                                              # trailing null bytes
3799   //
3800   // <encoded-string> ::= <simple character>           # uninteresting character
3801   //                  ::= '?$' <hex digit> <hex digit> # these two nibbles
3802   //                                                   # encode the byte for the
3803   //                                                   # character
3804   //                  ::= '?' [a-z]                    # \xe1 - \xfa
3805   //                  ::= '?' [A-Z]                    # \xc1 - \xda
3806   //                  ::= '?' [0-9]                    # [,/\:. \n\t'-]
3807   //
3808   // <literal> ::= '??_C@_' <char-type> <literal-length> <encoded-crc>
3809   //               <encoded-string> '@'
3810   MicrosoftCXXNameMangler Mangler(*this, Out);
3811   Mangler.getStream() << "??_C@_";
3812 
3813   // The actual string length might be different from that of the string literal
3814   // in cases like:
3815   // char foo[3] = "foobar";
3816   // char bar[42] = "foobar";
3817   // Where it is truncated or zero-padded to fit the array. This is the length
3818   // used for mangling, and any trailing null-bytes also need to be mangled.
3819   unsigned StringLength = getASTContext()
3820                               .getAsConstantArrayType(SL->getType())
3821                               ->getSize()
3822                               .getZExtValue();
3823   unsigned StringByteLength = StringLength * SL->getCharByteWidth();
3824 
3825   // <char-type>: The "kind" of string literal is encoded into the mangled name.
3826   if (SL->isWide())
3827     Mangler.getStream() << '1';
3828   else
3829     Mangler.getStream() << '0';
3830 
3831   // <literal-length>: The next part of the mangled name consists of the length
3832   // of the string in bytes.
3833   Mangler.mangleNumber(StringByteLength);
3834 
3835   auto GetLittleEndianByte = [&SL](unsigned Index) {
3836     unsigned CharByteWidth = SL->getCharByteWidth();
3837     if (Index / CharByteWidth >= SL->getLength())
3838       return static_cast<char>(0);
3839     uint32_t CodeUnit = SL->getCodeUnit(Index / CharByteWidth);
3840     unsigned OffsetInCodeUnit = Index % CharByteWidth;
3841     return static_cast<char>((CodeUnit >> (8 * OffsetInCodeUnit)) & 0xff);
3842   };
3843 
3844   auto GetBigEndianByte = [&SL](unsigned Index) {
3845     unsigned CharByteWidth = SL->getCharByteWidth();
3846     if (Index / CharByteWidth >= SL->getLength())
3847       return static_cast<char>(0);
3848     uint32_t CodeUnit = SL->getCodeUnit(Index / CharByteWidth);
3849     unsigned OffsetInCodeUnit = (CharByteWidth - 1) - (Index % CharByteWidth);
3850     return static_cast<char>((CodeUnit >> (8 * OffsetInCodeUnit)) & 0xff);
3851   };
3852 
3853   // CRC all the bytes of the StringLiteral.
3854   llvm::JamCRC JC;
3855   for (unsigned I = 0, E = StringByteLength; I != E; ++I)
3856     JC.update(GetLittleEndianByte(I));
3857 
3858   // <encoded-crc>: The CRC is encoded utilizing the standard number mangling
3859   // scheme.
3860   Mangler.mangleNumber(JC.getCRC());
3861 
3862   // <encoded-string>: The mangled name also contains the first 32 bytes
3863   // (including null-terminator bytes) of the encoded StringLiteral.
3864   // Each character is encoded by splitting them into bytes and then encoding
3865   // the constituent bytes.
3866   auto MangleByte = [&Mangler](char Byte) {
3867     // There are five different manglings for characters:
3868     // - [a-zA-Z0-9_$]: A one-to-one mapping.
3869     // - ?[a-z]: The range from \xe1 to \xfa.
3870     // - ?[A-Z]: The range from \xc1 to \xda.
3871     // - ?[0-9]: The set of [,/\:. \n\t'-].
3872     // - ?$XX: A fallback which maps nibbles.
3873     if (isIdentifierBody(Byte, /*AllowDollar=*/true)) {
3874       Mangler.getStream() << Byte;
3875     } else if (isLetter(Byte & 0x7f)) {
3876       Mangler.getStream() << '?' << static_cast<char>(Byte & 0x7f);
3877     } else {
3878       const char SpecialChars[] = {',', '/',  '\\', ':',  '.',
3879                                    ' ', '\n', '\t', '\'', '-'};
3880       const char *Pos = llvm::find(SpecialChars, Byte);
3881       if (Pos != std::end(SpecialChars)) {
3882         Mangler.getStream() << '?' << (Pos - std::begin(SpecialChars));
3883       } else {
3884         Mangler.getStream() << "?$";
3885         Mangler.getStream() << static_cast<char>('A' + ((Byte >> 4) & 0xf));
3886         Mangler.getStream() << static_cast<char>('A' + (Byte & 0xf));
3887       }
3888     }
3889   };
3890 
3891   // Enforce our 32 bytes max, except wchar_t which gets 32 chars instead.
3892   unsigned MaxBytesToMangle = SL->isWide() ? 64U : 32U;
3893   unsigned NumBytesToMangle = std::min(MaxBytesToMangle, StringByteLength);
3894   for (unsigned I = 0; I != NumBytesToMangle; ++I) {
3895     if (SL->isWide())
3896       MangleByte(GetBigEndianByte(I));
3897     else
3898       MangleByte(GetLittleEndianByte(I));
3899   }
3900 
3901   Mangler.getStream() << '@';
3902 }
3903 
3904 MicrosoftMangleContext *
3905 MicrosoftMangleContext::create(ASTContext &Context, DiagnosticsEngine &Diags) {
3906   return new MicrosoftMangleContextImpl(Context, Diags);
3907 }
3908