1 //===--- ASTWriter.cpp - AST File Writer ----------------------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 //  This file defines the ASTWriter class, which writes AST files.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/Serialization/ASTWriter.h"
15 #include "ASTCommon.h"
16 #include "clang/AST/ASTContext.h"
17 #include "clang/AST/Decl.h"
18 #include "clang/AST/DeclContextInternals.h"
19 #include "clang/AST/DeclFriend.h"
20 #include "clang/AST/DeclLookups.h"
21 #include "clang/AST/DeclTemplate.h"
22 #include "clang/AST/Expr.h"
23 #include "clang/AST/ExprCXX.h"
24 #include "clang/AST/Type.h"
25 #include "clang/AST/TypeLocVisitor.h"
26 #include "clang/Basic/FileManager.h"
27 #include "clang/Basic/FileSystemStatCache.h"
28 #include "clang/Basic/SourceManager.h"
29 #include "clang/Basic/SourceManagerInternals.h"
30 #include "clang/Basic/TargetInfo.h"
31 #include "clang/Basic/TargetOptions.h"
32 #include "clang/Basic/Version.h"
33 #include "clang/Basic/VersionTuple.h"
34 #include "clang/Lex/HeaderSearch.h"
35 #include "clang/Lex/HeaderSearchOptions.h"
36 #include "clang/Lex/MacroInfo.h"
37 #include "clang/Lex/PreprocessingRecord.h"
38 #include "clang/Lex/Preprocessor.h"
39 #include "clang/Lex/PreprocessorOptions.h"
40 #include "clang/Sema/IdentifierResolver.h"
41 #include "clang/Sema/Sema.h"
42 #include "clang/Serialization/ASTReader.h"
43 #include "llvm/ADT/APFloat.h"
44 #include "llvm/ADT/APInt.h"
45 #include "llvm/ADT/Hashing.h"
46 #include "llvm/ADT/StringExtras.h"
47 #include "llvm/Bitcode/BitstreamWriter.h"
48 #include "llvm/Support/EndianStream.h"
49 #include "llvm/Support/FileSystem.h"
50 #include "llvm/Support/MemoryBuffer.h"
51 #include "llvm/Support/OnDiskHashTable.h"
52 #include "llvm/Support/Path.h"
53 #include <algorithm>
54 #include <cstdio>
55 #include <string.h>
56 #include <utility>
57 using namespace clang;
58 using namespace clang::serialization;
59 
60 template <typename T, typename Allocator>
61 static StringRef data(const std::vector<T, Allocator> &v) {
62   if (v.empty()) return StringRef();
63   return StringRef(reinterpret_cast<const char*>(&v[0]),
64                          sizeof(T) * v.size());
65 }
66 
67 template <typename T>
68 static StringRef data(const SmallVectorImpl<T> &v) {
69   return StringRef(reinterpret_cast<const char*>(v.data()),
70                          sizeof(T) * v.size());
71 }
72 
73 //===----------------------------------------------------------------------===//
74 // Type serialization
75 //===----------------------------------------------------------------------===//
76 
77 namespace {
78   class ASTTypeWriter {
79     ASTWriter &Writer;
80     ASTWriter::RecordDataImpl &Record;
81 
82   public:
83     /// \brief Type code that corresponds to the record generated.
84     TypeCode Code;
85 
86     ASTTypeWriter(ASTWriter &Writer, ASTWriter::RecordDataImpl &Record)
87       : Writer(Writer), Record(Record), Code(TYPE_EXT_QUAL) { }
88 
89     void VisitArrayType(const ArrayType *T);
90     void VisitFunctionType(const FunctionType *T);
91     void VisitTagType(const TagType *T);
92 
93 #define TYPE(Class, Base) void Visit##Class##Type(const Class##Type *T);
94 #define ABSTRACT_TYPE(Class, Base)
95 #include "clang/AST/TypeNodes.def"
96   };
97 }
98 
99 void ASTTypeWriter::VisitBuiltinType(const BuiltinType *T) {
100   llvm_unreachable("Built-in types are never serialized");
101 }
102 
103 void ASTTypeWriter::VisitComplexType(const ComplexType *T) {
104   Writer.AddTypeRef(T->getElementType(), Record);
105   Code = TYPE_COMPLEX;
106 }
107 
108 void ASTTypeWriter::VisitPointerType(const PointerType *T) {
109   Writer.AddTypeRef(T->getPointeeType(), Record);
110   Code = TYPE_POINTER;
111 }
112 
113 void ASTTypeWriter::VisitDecayedType(const DecayedType *T) {
114   Writer.AddTypeRef(T->getOriginalType(), Record);
115   Code = TYPE_DECAYED;
116 }
117 
118 void ASTTypeWriter::VisitAdjustedType(const AdjustedType *T) {
119   Writer.AddTypeRef(T->getOriginalType(), Record);
120   Writer.AddTypeRef(T->getAdjustedType(), Record);
121   Code = TYPE_ADJUSTED;
122 }
123 
124 void ASTTypeWriter::VisitBlockPointerType(const BlockPointerType *T) {
125   Writer.AddTypeRef(T->getPointeeType(), Record);
126   Code = TYPE_BLOCK_POINTER;
127 }
128 
129 void ASTTypeWriter::VisitLValueReferenceType(const LValueReferenceType *T) {
130   Writer.AddTypeRef(T->getPointeeTypeAsWritten(), Record);
131   Record.push_back(T->isSpelledAsLValue());
132   Code = TYPE_LVALUE_REFERENCE;
133 }
134 
135 void ASTTypeWriter::VisitRValueReferenceType(const RValueReferenceType *T) {
136   Writer.AddTypeRef(T->getPointeeTypeAsWritten(), Record);
137   Code = TYPE_RVALUE_REFERENCE;
138 }
139 
140 void ASTTypeWriter::VisitMemberPointerType(const MemberPointerType *T) {
141   Writer.AddTypeRef(T->getPointeeType(), Record);
142   Writer.AddTypeRef(QualType(T->getClass(), 0), Record);
143   Code = TYPE_MEMBER_POINTER;
144 }
145 
146 void ASTTypeWriter::VisitArrayType(const ArrayType *T) {
147   Writer.AddTypeRef(T->getElementType(), Record);
148   Record.push_back(T->getSizeModifier()); // FIXME: stable values
149   Record.push_back(T->getIndexTypeCVRQualifiers()); // FIXME: stable values
150 }
151 
152 void ASTTypeWriter::VisitConstantArrayType(const ConstantArrayType *T) {
153   VisitArrayType(T);
154   Writer.AddAPInt(T->getSize(), Record);
155   Code = TYPE_CONSTANT_ARRAY;
156 }
157 
158 void ASTTypeWriter::VisitIncompleteArrayType(const IncompleteArrayType *T) {
159   VisitArrayType(T);
160   Code = TYPE_INCOMPLETE_ARRAY;
161 }
162 
163 void ASTTypeWriter::VisitVariableArrayType(const VariableArrayType *T) {
164   VisitArrayType(T);
165   Writer.AddSourceLocation(T->getLBracketLoc(), Record);
166   Writer.AddSourceLocation(T->getRBracketLoc(), Record);
167   Writer.AddStmt(T->getSizeExpr());
168   Code = TYPE_VARIABLE_ARRAY;
169 }
170 
171 void ASTTypeWriter::VisitVectorType(const VectorType *T) {
172   Writer.AddTypeRef(T->getElementType(), Record);
173   Record.push_back(T->getNumElements());
174   Record.push_back(T->getVectorKind());
175   Code = TYPE_VECTOR;
176 }
177 
178 void ASTTypeWriter::VisitExtVectorType(const ExtVectorType *T) {
179   VisitVectorType(T);
180   Code = TYPE_EXT_VECTOR;
181 }
182 
183 void ASTTypeWriter::VisitFunctionType(const FunctionType *T) {
184   Writer.AddTypeRef(T->getReturnType(), Record);
185   FunctionType::ExtInfo C = T->getExtInfo();
186   Record.push_back(C.getNoReturn());
187   Record.push_back(C.getHasRegParm());
188   Record.push_back(C.getRegParm());
189   // FIXME: need to stabilize encoding of calling convention...
190   Record.push_back(C.getCC());
191   Record.push_back(C.getProducesResult());
192 }
193 
194 void ASTTypeWriter::VisitFunctionNoProtoType(const FunctionNoProtoType *T) {
195   VisitFunctionType(T);
196   Code = TYPE_FUNCTION_NO_PROTO;
197 }
198 
199 static void addExceptionSpec(ASTWriter &Writer, const FunctionProtoType *T,
200                              ASTWriter::RecordDataImpl &Record) {
201   Record.push_back(T->getExceptionSpecType());
202   if (T->getExceptionSpecType() == EST_Dynamic) {
203     Record.push_back(T->getNumExceptions());
204     for (unsigned I = 0, N = T->getNumExceptions(); I != N; ++I)
205       Writer.AddTypeRef(T->getExceptionType(I), Record);
206   } else if (T->getExceptionSpecType() == EST_ComputedNoexcept) {
207     Writer.AddStmt(T->getNoexceptExpr());
208   } else if (T->getExceptionSpecType() == EST_Uninstantiated) {
209     Writer.AddDeclRef(T->getExceptionSpecDecl(), Record);
210     Writer.AddDeclRef(T->getExceptionSpecTemplate(), Record);
211   } else if (T->getExceptionSpecType() == EST_Unevaluated) {
212     Writer.AddDeclRef(T->getExceptionSpecDecl(), Record);
213   }
214 }
215 
216 void ASTTypeWriter::VisitFunctionProtoType(const FunctionProtoType *T) {
217   VisitFunctionType(T);
218   Record.push_back(T->getNumParams());
219   for (unsigned I = 0, N = T->getNumParams(); I != N; ++I)
220     Writer.AddTypeRef(T->getParamType(I), Record);
221   Record.push_back(T->isVariadic());
222   Record.push_back(T->hasTrailingReturn());
223   Record.push_back(T->getTypeQuals());
224   Record.push_back(static_cast<unsigned>(T->getRefQualifier()));
225   addExceptionSpec(Writer, T, Record);
226   Code = TYPE_FUNCTION_PROTO;
227 }
228 
229 void ASTTypeWriter::VisitUnresolvedUsingType(const UnresolvedUsingType *T) {
230   Writer.AddDeclRef(T->getDecl(), Record);
231   Code = TYPE_UNRESOLVED_USING;
232 }
233 
234 void ASTTypeWriter::VisitTypedefType(const TypedefType *T) {
235   Writer.AddDeclRef(T->getDecl(), Record);
236   assert(!T->isCanonicalUnqualified() && "Invalid typedef ?");
237   Writer.AddTypeRef(T->getCanonicalTypeInternal(), Record);
238   Code = TYPE_TYPEDEF;
239 }
240 
241 void ASTTypeWriter::VisitTypeOfExprType(const TypeOfExprType *T) {
242   Writer.AddStmt(T->getUnderlyingExpr());
243   Code = TYPE_TYPEOF_EXPR;
244 }
245 
246 void ASTTypeWriter::VisitTypeOfType(const TypeOfType *T) {
247   Writer.AddTypeRef(T->getUnderlyingType(), Record);
248   Code = TYPE_TYPEOF;
249 }
250 
251 void ASTTypeWriter::VisitDecltypeType(const DecltypeType *T) {
252   Writer.AddTypeRef(T->getUnderlyingType(), Record);
253   Writer.AddStmt(T->getUnderlyingExpr());
254   Code = TYPE_DECLTYPE;
255 }
256 
257 void ASTTypeWriter::VisitUnaryTransformType(const UnaryTransformType *T) {
258   Writer.AddTypeRef(T->getBaseType(), Record);
259   Writer.AddTypeRef(T->getUnderlyingType(), Record);
260   Record.push_back(T->getUTTKind());
261   Code = TYPE_UNARY_TRANSFORM;
262 }
263 
264 void ASTTypeWriter::VisitAutoType(const AutoType *T) {
265   Writer.AddTypeRef(T->getDeducedType(), Record);
266   Record.push_back(T->isDecltypeAuto());
267   if (T->getDeducedType().isNull())
268     Record.push_back(T->isDependentType());
269   Code = TYPE_AUTO;
270 }
271 
272 void ASTTypeWriter::VisitTagType(const TagType *T) {
273   Record.push_back(T->isDependentType());
274   Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record);
275   assert(!T->isBeingDefined() &&
276          "Cannot serialize in the middle of a type definition");
277 }
278 
279 void ASTTypeWriter::VisitRecordType(const RecordType *T) {
280   VisitTagType(T);
281   Code = TYPE_RECORD;
282 }
283 
284 void ASTTypeWriter::VisitEnumType(const EnumType *T) {
285   VisitTagType(T);
286   Code = TYPE_ENUM;
287 }
288 
289 void ASTTypeWriter::VisitAttributedType(const AttributedType *T) {
290   Writer.AddTypeRef(T->getModifiedType(), Record);
291   Writer.AddTypeRef(T->getEquivalentType(), Record);
292   Record.push_back(T->getAttrKind());
293   Code = TYPE_ATTRIBUTED;
294 }
295 
296 void
297 ASTTypeWriter::VisitSubstTemplateTypeParmType(
298                                         const SubstTemplateTypeParmType *T) {
299   Writer.AddTypeRef(QualType(T->getReplacedParameter(), 0), Record);
300   Writer.AddTypeRef(T->getReplacementType(), Record);
301   Code = TYPE_SUBST_TEMPLATE_TYPE_PARM;
302 }
303 
304 void
305 ASTTypeWriter::VisitSubstTemplateTypeParmPackType(
306                                       const SubstTemplateTypeParmPackType *T) {
307   Writer.AddTypeRef(QualType(T->getReplacedParameter(), 0), Record);
308   Writer.AddTemplateArgument(T->getArgumentPack(), Record);
309   Code = TYPE_SUBST_TEMPLATE_TYPE_PARM_PACK;
310 }
311 
312 void
313 ASTTypeWriter::VisitTemplateSpecializationType(
314                                        const TemplateSpecializationType *T) {
315   Record.push_back(T->isDependentType());
316   Writer.AddTemplateName(T->getTemplateName(), Record);
317   Record.push_back(T->getNumArgs());
318   for (TemplateSpecializationType::iterator ArgI = T->begin(), ArgE = T->end();
319          ArgI != ArgE; ++ArgI)
320     Writer.AddTemplateArgument(*ArgI, Record);
321   Writer.AddTypeRef(T->isTypeAlias() ? T->getAliasedType() :
322                     T->isCanonicalUnqualified() ? QualType()
323                                                 : T->getCanonicalTypeInternal(),
324                     Record);
325   Code = TYPE_TEMPLATE_SPECIALIZATION;
326 }
327 
328 void
329 ASTTypeWriter::VisitDependentSizedArrayType(const DependentSizedArrayType *T) {
330   VisitArrayType(T);
331   Writer.AddStmt(T->getSizeExpr());
332   Writer.AddSourceRange(T->getBracketsRange(), Record);
333   Code = TYPE_DEPENDENT_SIZED_ARRAY;
334 }
335 
336 void
337 ASTTypeWriter::VisitDependentSizedExtVectorType(
338                                         const DependentSizedExtVectorType *T) {
339   // FIXME: Serialize this type (C++ only)
340   llvm_unreachable("Cannot serialize dependent sized extended vector types");
341 }
342 
343 void
344 ASTTypeWriter::VisitTemplateTypeParmType(const TemplateTypeParmType *T) {
345   Record.push_back(T->getDepth());
346   Record.push_back(T->getIndex());
347   Record.push_back(T->isParameterPack());
348   Writer.AddDeclRef(T->getDecl(), Record);
349   Code = TYPE_TEMPLATE_TYPE_PARM;
350 }
351 
352 void
353 ASTTypeWriter::VisitDependentNameType(const DependentNameType *T) {
354   Record.push_back(T->getKeyword());
355   Writer.AddNestedNameSpecifier(T->getQualifier(), Record);
356   Writer.AddIdentifierRef(T->getIdentifier(), Record);
357   Writer.AddTypeRef(T->isCanonicalUnqualified() ? QualType()
358                                                 : T->getCanonicalTypeInternal(),
359                     Record);
360   Code = TYPE_DEPENDENT_NAME;
361 }
362 
363 void
364 ASTTypeWriter::VisitDependentTemplateSpecializationType(
365                                 const DependentTemplateSpecializationType *T) {
366   Record.push_back(T->getKeyword());
367   Writer.AddNestedNameSpecifier(T->getQualifier(), Record);
368   Writer.AddIdentifierRef(T->getIdentifier(), Record);
369   Record.push_back(T->getNumArgs());
370   for (DependentTemplateSpecializationType::iterator
371          I = T->begin(), E = T->end(); I != E; ++I)
372     Writer.AddTemplateArgument(*I, Record);
373   Code = TYPE_DEPENDENT_TEMPLATE_SPECIALIZATION;
374 }
375 
376 void ASTTypeWriter::VisitPackExpansionType(const PackExpansionType *T) {
377   Writer.AddTypeRef(T->getPattern(), Record);
378   if (Optional<unsigned> NumExpansions = T->getNumExpansions())
379     Record.push_back(*NumExpansions + 1);
380   else
381     Record.push_back(0);
382   Code = TYPE_PACK_EXPANSION;
383 }
384 
385 void ASTTypeWriter::VisitParenType(const ParenType *T) {
386   Writer.AddTypeRef(T->getInnerType(), Record);
387   Code = TYPE_PAREN;
388 }
389 
390 void ASTTypeWriter::VisitElaboratedType(const ElaboratedType *T) {
391   Record.push_back(T->getKeyword());
392   Writer.AddNestedNameSpecifier(T->getQualifier(), Record);
393   Writer.AddTypeRef(T->getNamedType(), Record);
394   Code = TYPE_ELABORATED;
395 }
396 
397 void ASTTypeWriter::VisitInjectedClassNameType(const InjectedClassNameType *T) {
398   Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record);
399   Writer.AddTypeRef(T->getInjectedSpecializationType(), Record);
400   Code = TYPE_INJECTED_CLASS_NAME;
401 }
402 
403 void ASTTypeWriter::VisitObjCInterfaceType(const ObjCInterfaceType *T) {
404   Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record);
405   Code = TYPE_OBJC_INTERFACE;
406 }
407 
408 void ASTTypeWriter::VisitObjCObjectType(const ObjCObjectType *T) {
409   Writer.AddTypeRef(T->getBaseType(), Record);
410   Record.push_back(T->getNumProtocols());
411   for (const auto *I : T->quals())
412     Writer.AddDeclRef(I, Record);
413   Code = TYPE_OBJC_OBJECT;
414 }
415 
416 void
417 ASTTypeWriter::VisitObjCObjectPointerType(const ObjCObjectPointerType *T) {
418   Writer.AddTypeRef(T->getPointeeType(), Record);
419   Code = TYPE_OBJC_OBJECT_POINTER;
420 }
421 
422 void
423 ASTTypeWriter::VisitAtomicType(const AtomicType *T) {
424   Writer.AddTypeRef(T->getValueType(), Record);
425   Code = TYPE_ATOMIC;
426 }
427 
428 namespace {
429 
430 class TypeLocWriter : public TypeLocVisitor<TypeLocWriter> {
431   ASTWriter &Writer;
432   ASTWriter::RecordDataImpl &Record;
433 
434 public:
435   TypeLocWriter(ASTWriter &Writer, ASTWriter::RecordDataImpl &Record)
436     : Writer(Writer), Record(Record) { }
437 
438 #define ABSTRACT_TYPELOC(CLASS, PARENT)
439 #define TYPELOC(CLASS, PARENT) \
440     void Visit##CLASS##TypeLoc(CLASS##TypeLoc TyLoc);
441 #include "clang/AST/TypeLocNodes.def"
442 
443   void VisitArrayTypeLoc(ArrayTypeLoc TyLoc);
444   void VisitFunctionTypeLoc(FunctionTypeLoc TyLoc);
445 };
446 
447 }
448 
449 void TypeLocWriter::VisitQualifiedTypeLoc(QualifiedTypeLoc TL) {
450   // nothing to do
451 }
452 void TypeLocWriter::VisitBuiltinTypeLoc(BuiltinTypeLoc TL) {
453   Writer.AddSourceLocation(TL.getBuiltinLoc(), Record);
454   if (TL.needsExtraLocalData()) {
455     Record.push_back(TL.getWrittenTypeSpec());
456     Record.push_back(TL.getWrittenSignSpec());
457     Record.push_back(TL.getWrittenWidthSpec());
458     Record.push_back(TL.hasModeAttr());
459   }
460 }
461 void TypeLocWriter::VisitComplexTypeLoc(ComplexTypeLoc TL) {
462   Writer.AddSourceLocation(TL.getNameLoc(), Record);
463 }
464 void TypeLocWriter::VisitPointerTypeLoc(PointerTypeLoc TL) {
465   Writer.AddSourceLocation(TL.getStarLoc(), Record);
466 }
467 void TypeLocWriter::VisitDecayedTypeLoc(DecayedTypeLoc TL) {
468   // nothing to do
469 }
470 void TypeLocWriter::VisitAdjustedTypeLoc(AdjustedTypeLoc TL) {
471   // nothing to do
472 }
473 void TypeLocWriter::VisitBlockPointerTypeLoc(BlockPointerTypeLoc TL) {
474   Writer.AddSourceLocation(TL.getCaretLoc(), Record);
475 }
476 void TypeLocWriter::VisitLValueReferenceTypeLoc(LValueReferenceTypeLoc TL) {
477   Writer.AddSourceLocation(TL.getAmpLoc(), Record);
478 }
479 void TypeLocWriter::VisitRValueReferenceTypeLoc(RValueReferenceTypeLoc TL) {
480   Writer.AddSourceLocation(TL.getAmpAmpLoc(), Record);
481 }
482 void TypeLocWriter::VisitMemberPointerTypeLoc(MemberPointerTypeLoc TL) {
483   Writer.AddSourceLocation(TL.getStarLoc(), Record);
484   Writer.AddTypeSourceInfo(TL.getClassTInfo(), Record);
485 }
486 void TypeLocWriter::VisitArrayTypeLoc(ArrayTypeLoc TL) {
487   Writer.AddSourceLocation(TL.getLBracketLoc(), Record);
488   Writer.AddSourceLocation(TL.getRBracketLoc(), Record);
489   Record.push_back(TL.getSizeExpr() ? 1 : 0);
490   if (TL.getSizeExpr())
491     Writer.AddStmt(TL.getSizeExpr());
492 }
493 void TypeLocWriter::VisitConstantArrayTypeLoc(ConstantArrayTypeLoc TL) {
494   VisitArrayTypeLoc(TL);
495 }
496 void TypeLocWriter::VisitIncompleteArrayTypeLoc(IncompleteArrayTypeLoc TL) {
497   VisitArrayTypeLoc(TL);
498 }
499 void TypeLocWriter::VisitVariableArrayTypeLoc(VariableArrayTypeLoc TL) {
500   VisitArrayTypeLoc(TL);
501 }
502 void TypeLocWriter::VisitDependentSizedArrayTypeLoc(
503                                             DependentSizedArrayTypeLoc TL) {
504   VisitArrayTypeLoc(TL);
505 }
506 void TypeLocWriter::VisitDependentSizedExtVectorTypeLoc(
507                                         DependentSizedExtVectorTypeLoc TL) {
508   Writer.AddSourceLocation(TL.getNameLoc(), Record);
509 }
510 void TypeLocWriter::VisitVectorTypeLoc(VectorTypeLoc TL) {
511   Writer.AddSourceLocation(TL.getNameLoc(), Record);
512 }
513 void TypeLocWriter::VisitExtVectorTypeLoc(ExtVectorTypeLoc TL) {
514   Writer.AddSourceLocation(TL.getNameLoc(), Record);
515 }
516 void TypeLocWriter::VisitFunctionTypeLoc(FunctionTypeLoc TL) {
517   Writer.AddSourceLocation(TL.getLocalRangeBegin(), Record);
518   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
519   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
520   Writer.AddSourceLocation(TL.getLocalRangeEnd(), Record);
521   for (unsigned i = 0, e = TL.getNumParams(); i != e; ++i)
522     Writer.AddDeclRef(TL.getParam(i), Record);
523 }
524 void TypeLocWriter::VisitFunctionProtoTypeLoc(FunctionProtoTypeLoc TL) {
525   VisitFunctionTypeLoc(TL);
526 }
527 void TypeLocWriter::VisitFunctionNoProtoTypeLoc(FunctionNoProtoTypeLoc TL) {
528   VisitFunctionTypeLoc(TL);
529 }
530 void TypeLocWriter::VisitUnresolvedUsingTypeLoc(UnresolvedUsingTypeLoc TL) {
531   Writer.AddSourceLocation(TL.getNameLoc(), Record);
532 }
533 void TypeLocWriter::VisitTypedefTypeLoc(TypedefTypeLoc TL) {
534   Writer.AddSourceLocation(TL.getNameLoc(), Record);
535 }
536 void TypeLocWriter::VisitTypeOfExprTypeLoc(TypeOfExprTypeLoc TL) {
537   Writer.AddSourceLocation(TL.getTypeofLoc(), Record);
538   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
539   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
540 }
541 void TypeLocWriter::VisitTypeOfTypeLoc(TypeOfTypeLoc TL) {
542   Writer.AddSourceLocation(TL.getTypeofLoc(), Record);
543   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
544   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
545   Writer.AddTypeSourceInfo(TL.getUnderlyingTInfo(), Record);
546 }
547 void TypeLocWriter::VisitDecltypeTypeLoc(DecltypeTypeLoc TL) {
548   Writer.AddSourceLocation(TL.getNameLoc(), Record);
549 }
550 void TypeLocWriter::VisitUnaryTransformTypeLoc(UnaryTransformTypeLoc TL) {
551   Writer.AddSourceLocation(TL.getKWLoc(), Record);
552   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
553   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
554   Writer.AddTypeSourceInfo(TL.getUnderlyingTInfo(), Record);
555 }
556 void TypeLocWriter::VisitAutoTypeLoc(AutoTypeLoc TL) {
557   Writer.AddSourceLocation(TL.getNameLoc(), Record);
558 }
559 void TypeLocWriter::VisitRecordTypeLoc(RecordTypeLoc TL) {
560   Writer.AddSourceLocation(TL.getNameLoc(), Record);
561 }
562 void TypeLocWriter::VisitEnumTypeLoc(EnumTypeLoc TL) {
563   Writer.AddSourceLocation(TL.getNameLoc(), Record);
564 }
565 void TypeLocWriter::VisitAttributedTypeLoc(AttributedTypeLoc TL) {
566   Writer.AddSourceLocation(TL.getAttrNameLoc(), Record);
567   if (TL.hasAttrOperand()) {
568     SourceRange range = TL.getAttrOperandParensRange();
569     Writer.AddSourceLocation(range.getBegin(), Record);
570     Writer.AddSourceLocation(range.getEnd(), Record);
571   }
572   if (TL.hasAttrExprOperand()) {
573     Expr *operand = TL.getAttrExprOperand();
574     Record.push_back(operand ? 1 : 0);
575     if (operand) Writer.AddStmt(operand);
576   } else if (TL.hasAttrEnumOperand()) {
577     Writer.AddSourceLocation(TL.getAttrEnumOperandLoc(), Record);
578   }
579 }
580 void TypeLocWriter::VisitTemplateTypeParmTypeLoc(TemplateTypeParmTypeLoc TL) {
581   Writer.AddSourceLocation(TL.getNameLoc(), Record);
582 }
583 void TypeLocWriter::VisitSubstTemplateTypeParmTypeLoc(
584                                             SubstTemplateTypeParmTypeLoc TL) {
585   Writer.AddSourceLocation(TL.getNameLoc(), Record);
586 }
587 void TypeLocWriter::VisitSubstTemplateTypeParmPackTypeLoc(
588                                           SubstTemplateTypeParmPackTypeLoc TL) {
589   Writer.AddSourceLocation(TL.getNameLoc(), Record);
590 }
591 void TypeLocWriter::VisitTemplateSpecializationTypeLoc(
592                                            TemplateSpecializationTypeLoc TL) {
593   Writer.AddSourceLocation(TL.getTemplateKeywordLoc(), Record);
594   Writer.AddSourceLocation(TL.getTemplateNameLoc(), Record);
595   Writer.AddSourceLocation(TL.getLAngleLoc(), Record);
596   Writer.AddSourceLocation(TL.getRAngleLoc(), Record);
597   for (unsigned i = 0, e = TL.getNumArgs(); i != e; ++i)
598     Writer.AddTemplateArgumentLocInfo(TL.getArgLoc(i).getArgument().getKind(),
599                                       TL.getArgLoc(i).getLocInfo(), Record);
600 }
601 void TypeLocWriter::VisitParenTypeLoc(ParenTypeLoc TL) {
602   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
603   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
604 }
605 void TypeLocWriter::VisitElaboratedTypeLoc(ElaboratedTypeLoc TL) {
606   Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record);
607   Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record);
608 }
609 void TypeLocWriter::VisitInjectedClassNameTypeLoc(InjectedClassNameTypeLoc TL) {
610   Writer.AddSourceLocation(TL.getNameLoc(), Record);
611 }
612 void TypeLocWriter::VisitDependentNameTypeLoc(DependentNameTypeLoc TL) {
613   Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record);
614   Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record);
615   Writer.AddSourceLocation(TL.getNameLoc(), Record);
616 }
617 void TypeLocWriter::VisitDependentTemplateSpecializationTypeLoc(
618        DependentTemplateSpecializationTypeLoc TL) {
619   Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record);
620   Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record);
621   Writer.AddSourceLocation(TL.getTemplateKeywordLoc(), Record);
622   Writer.AddSourceLocation(TL.getTemplateNameLoc(), Record);
623   Writer.AddSourceLocation(TL.getLAngleLoc(), Record);
624   Writer.AddSourceLocation(TL.getRAngleLoc(), Record);
625   for (unsigned I = 0, E = TL.getNumArgs(); I != E; ++I)
626     Writer.AddTemplateArgumentLocInfo(TL.getArgLoc(I).getArgument().getKind(),
627                                       TL.getArgLoc(I).getLocInfo(), Record);
628 }
629 void TypeLocWriter::VisitPackExpansionTypeLoc(PackExpansionTypeLoc TL) {
630   Writer.AddSourceLocation(TL.getEllipsisLoc(), Record);
631 }
632 void TypeLocWriter::VisitObjCInterfaceTypeLoc(ObjCInterfaceTypeLoc TL) {
633   Writer.AddSourceLocation(TL.getNameLoc(), Record);
634 }
635 void TypeLocWriter::VisitObjCObjectTypeLoc(ObjCObjectTypeLoc TL) {
636   Record.push_back(TL.hasBaseTypeAsWritten());
637   Writer.AddSourceLocation(TL.getLAngleLoc(), Record);
638   Writer.AddSourceLocation(TL.getRAngleLoc(), Record);
639   for (unsigned i = 0, e = TL.getNumProtocols(); i != e; ++i)
640     Writer.AddSourceLocation(TL.getProtocolLoc(i), Record);
641 }
642 void TypeLocWriter::VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) {
643   Writer.AddSourceLocation(TL.getStarLoc(), Record);
644 }
645 void TypeLocWriter::VisitAtomicTypeLoc(AtomicTypeLoc TL) {
646   Writer.AddSourceLocation(TL.getKWLoc(), Record);
647   Writer.AddSourceLocation(TL.getLParenLoc(), Record);
648   Writer.AddSourceLocation(TL.getRParenLoc(), Record);
649 }
650 
651 //===----------------------------------------------------------------------===//
652 // ASTWriter Implementation
653 //===----------------------------------------------------------------------===//
654 
655 static void EmitBlockID(unsigned ID, const char *Name,
656                         llvm::BitstreamWriter &Stream,
657                         ASTWriter::RecordDataImpl &Record) {
658   Record.clear();
659   Record.push_back(ID);
660   Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_SETBID, Record);
661 
662   // Emit the block name if present.
663   if (Name == 0 || Name[0] == 0) return;
664   Record.clear();
665   while (*Name)
666     Record.push_back(*Name++);
667   Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_BLOCKNAME, Record);
668 }
669 
670 static void EmitRecordID(unsigned ID, const char *Name,
671                          llvm::BitstreamWriter &Stream,
672                          ASTWriter::RecordDataImpl &Record) {
673   Record.clear();
674   Record.push_back(ID);
675   while (*Name)
676     Record.push_back(*Name++);
677   Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_SETRECORDNAME, Record);
678 }
679 
680 static void AddStmtsExprs(llvm::BitstreamWriter &Stream,
681                           ASTWriter::RecordDataImpl &Record) {
682 #define RECORD(X) EmitRecordID(X, #X, Stream, Record)
683   RECORD(STMT_STOP);
684   RECORD(STMT_NULL_PTR);
685   RECORD(STMT_NULL);
686   RECORD(STMT_COMPOUND);
687   RECORD(STMT_CASE);
688   RECORD(STMT_DEFAULT);
689   RECORD(STMT_LABEL);
690   RECORD(STMT_ATTRIBUTED);
691   RECORD(STMT_IF);
692   RECORD(STMT_SWITCH);
693   RECORD(STMT_WHILE);
694   RECORD(STMT_DO);
695   RECORD(STMT_FOR);
696   RECORD(STMT_GOTO);
697   RECORD(STMT_INDIRECT_GOTO);
698   RECORD(STMT_CONTINUE);
699   RECORD(STMT_BREAK);
700   RECORD(STMT_RETURN);
701   RECORD(STMT_DECL);
702   RECORD(STMT_GCCASM);
703   RECORD(STMT_MSASM);
704   RECORD(EXPR_PREDEFINED);
705   RECORD(EXPR_DECL_REF);
706   RECORD(EXPR_INTEGER_LITERAL);
707   RECORD(EXPR_FLOATING_LITERAL);
708   RECORD(EXPR_IMAGINARY_LITERAL);
709   RECORD(EXPR_STRING_LITERAL);
710   RECORD(EXPR_CHARACTER_LITERAL);
711   RECORD(EXPR_PAREN);
712   RECORD(EXPR_UNARY_OPERATOR);
713   RECORD(EXPR_SIZEOF_ALIGN_OF);
714   RECORD(EXPR_ARRAY_SUBSCRIPT);
715   RECORD(EXPR_CALL);
716   RECORD(EXPR_MEMBER);
717   RECORD(EXPR_BINARY_OPERATOR);
718   RECORD(EXPR_COMPOUND_ASSIGN_OPERATOR);
719   RECORD(EXPR_CONDITIONAL_OPERATOR);
720   RECORD(EXPR_IMPLICIT_CAST);
721   RECORD(EXPR_CSTYLE_CAST);
722   RECORD(EXPR_COMPOUND_LITERAL);
723   RECORD(EXPR_EXT_VECTOR_ELEMENT);
724   RECORD(EXPR_INIT_LIST);
725   RECORD(EXPR_DESIGNATED_INIT);
726   RECORD(EXPR_IMPLICIT_VALUE_INIT);
727   RECORD(EXPR_VA_ARG);
728   RECORD(EXPR_ADDR_LABEL);
729   RECORD(EXPR_STMT);
730   RECORD(EXPR_CHOOSE);
731   RECORD(EXPR_GNU_NULL);
732   RECORD(EXPR_SHUFFLE_VECTOR);
733   RECORD(EXPR_BLOCK);
734   RECORD(EXPR_GENERIC_SELECTION);
735   RECORD(EXPR_OBJC_STRING_LITERAL);
736   RECORD(EXPR_OBJC_BOXED_EXPRESSION);
737   RECORD(EXPR_OBJC_ARRAY_LITERAL);
738   RECORD(EXPR_OBJC_DICTIONARY_LITERAL);
739   RECORD(EXPR_OBJC_ENCODE);
740   RECORD(EXPR_OBJC_SELECTOR_EXPR);
741   RECORD(EXPR_OBJC_PROTOCOL_EXPR);
742   RECORD(EXPR_OBJC_IVAR_REF_EXPR);
743   RECORD(EXPR_OBJC_PROPERTY_REF_EXPR);
744   RECORD(EXPR_OBJC_KVC_REF_EXPR);
745   RECORD(EXPR_OBJC_MESSAGE_EXPR);
746   RECORD(STMT_OBJC_FOR_COLLECTION);
747   RECORD(STMT_OBJC_CATCH);
748   RECORD(STMT_OBJC_FINALLY);
749   RECORD(STMT_OBJC_AT_TRY);
750   RECORD(STMT_OBJC_AT_SYNCHRONIZED);
751   RECORD(STMT_OBJC_AT_THROW);
752   RECORD(EXPR_OBJC_BOOL_LITERAL);
753   RECORD(EXPR_CXX_OPERATOR_CALL);
754   RECORD(EXPR_CXX_CONSTRUCT);
755   RECORD(EXPR_CXX_STATIC_CAST);
756   RECORD(EXPR_CXX_DYNAMIC_CAST);
757   RECORD(EXPR_CXX_REINTERPRET_CAST);
758   RECORD(EXPR_CXX_CONST_CAST);
759   RECORD(EXPR_CXX_FUNCTIONAL_CAST);
760   RECORD(EXPR_USER_DEFINED_LITERAL);
761   RECORD(EXPR_CXX_STD_INITIALIZER_LIST);
762   RECORD(EXPR_CXX_BOOL_LITERAL);
763   RECORD(EXPR_CXX_NULL_PTR_LITERAL);
764   RECORD(EXPR_CXX_TYPEID_EXPR);
765   RECORD(EXPR_CXX_TYPEID_TYPE);
766   RECORD(EXPR_CXX_UUIDOF_EXPR);
767   RECORD(EXPR_CXX_UUIDOF_TYPE);
768   RECORD(EXPR_CXX_THIS);
769   RECORD(EXPR_CXX_THROW);
770   RECORD(EXPR_CXX_DEFAULT_ARG);
771   RECORD(EXPR_CXX_BIND_TEMPORARY);
772   RECORD(EXPR_CXX_SCALAR_VALUE_INIT);
773   RECORD(EXPR_CXX_NEW);
774   RECORD(EXPR_CXX_DELETE);
775   RECORD(EXPR_CXX_PSEUDO_DESTRUCTOR);
776   RECORD(EXPR_EXPR_WITH_CLEANUPS);
777   RECORD(EXPR_CXX_DEPENDENT_SCOPE_MEMBER);
778   RECORD(EXPR_CXX_DEPENDENT_SCOPE_DECL_REF);
779   RECORD(EXPR_CXX_UNRESOLVED_CONSTRUCT);
780   RECORD(EXPR_CXX_UNRESOLVED_MEMBER);
781   RECORD(EXPR_CXX_UNRESOLVED_LOOKUP);
782   RECORD(EXPR_CXX_NOEXCEPT);
783   RECORD(EXPR_OPAQUE_VALUE);
784   RECORD(EXPR_PACK_EXPANSION);
785   RECORD(EXPR_SIZEOF_PACK);
786   RECORD(EXPR_SUBST_NON_TYPE_TEMPLATE_PARM_PACK);
787   RECORD(EXPR_CUDA_KERNEL_CALL);
788 #undef RECORD
789 }
790 
791 void ASTWriter::WriteBlockInfoBlock() {
792   RecordData Record;
793   Stream.EnterSubblock(llvm::bitc::BLOCKINFO_BLOCK_ID, 3);
794 
795 #define BLOCK(X) EmitBlockID(X ## _ID, #X, Stream, Record)
796 #define RECORD(X) EmitRecordID(X, #X, Stream, Record)
797 
798   // Control Block.
799   BLOCK(CONTROL_BLOCK);
800   RECORD(METADATA);
801   RECORD(MODULE_NAME);
802   RECORD(MODULE_MAP_FILE);
803   RECORD(IMPORTS);
804   RECORD(LANGUAGE_OPTIONS);
805   RECORD(TARGET_OPTIONS);
806   RECORD(ORIGINAL_FILE);
807   RECORD(ORIGINAL_PCH_DIR);
808   RECORD(ORIGINAL_FILE_ID);
809   RECORD(INPUT_FILE_OFFSETS);
810   RECORD(DIAGNOSTIC_OPTIONS);
811   RECORD(FILE_SYSTEM_OPTIONS);
812   RECORD(HEADER_SEARCH_OPTIONS);
813   RECORD(PREPROCESSOR_OPTIONS);
814 
815   BLOCK(INPUT_FILES_BLOCK);
816   RECORD(INPUT_FILE);
817 
818   // AST Top-Level Block.
819   BLOCK(AST_BLOCK);
820   RECORD(TYPE_OFFSET);
821   RECORD(DECL_OFFSET);
822   RECORD(IDENTIFIER_OFFSET);
823   RECORD(IDENTIFIER_TABLE);
824   RECORD(EAGERLY_DESERIALIZED_DECLS);
825   RECORD(SPECIAL_TYPES);
826   RECORD(STATISTICS);
827   RECORD(TENTATIVE_DEFINITIONS);
828   RECORD(UNUSED_FILESCOPED_DECLS);
829   RECORD(LOCALLY_SCOPED_EXTERN_C_DECLS);
830   RECORD(SELECTOR_OFFSETS);
831   RECORD(METHOD_POOL);
832   RECORD(PP_COUNTER_VALUE);
833   RECORD(SOURCE_LOCATION_OFFSETS);
834   RECORD(SOURCE_LOCATION_PRELOADS);
835   RECORD(EXT_VECTOR_DECLS);
836   RECORD(PPD_ENTITIES_OFFSETS);
837   RECORD(REFERENCED_SELECTOR_POOL);
838   RECORD(TU_UPDATE_LEXICAL);
839   RECORD(LOCAL_REDECLARATIONS_MAP);
840   RECORD(SEMA_DECL_REFS);
841   RECORD(WEAK_UNDECLARED_IDENTIFIERS);
842   RECORD(PENDING_IMPLICIT_INSTANTIATIONS);
843   RECORD(DECL_REPLACEMENTS);
844   RECORD(UPDATE_VISIBLE);
845   RECORD(DECL_UPDATE_OFFSETS);
846   RECORD(DECL_UPDATES);
847   RECORD(CXX_BASE_SPECIFIER_OFFSETS);
848   RECORD(DIAG_PRAGMA_MAPPINGS);
849   RECORD(CUDA_SPECIAL_DECL_REFS);
850   RECORD(HEADER_SEARCH_TABLE);
851   RECORD(FP_PRAGMA_OPTIONS);
852   RECORD(OPENCL_EXTENSIONS);
853   RECORD(DELEGATING_CTORS);
854   RECORD(KNOWN_NAMESPACES);
855   RECORD(UNDEFINED_BUT_USED);
856   RECORD(MODULE_OFFSET_MAP);
857   RECORD(SOURCE_MANAGER_LINE_TABLE);
858   RECORD(OBJC_CATEGORIES_MAP);
859   RECORD(FILE_SORTED_DECLS);
860   RECORD(IMPORTED_MODULES);
861   RECORD(MERGED_DECLARATIONS);
862   RECORD(LOCAL_REDECLARATIONS);
863   RECORD(OBJC_CATEGORIES);
864   RECORD(MACRO_OFFSET);
865   RECORD(MACRO_TABLE);
866   RECORD(LATE_PARSED_TEMPLATE);
867 
868   // SourceManager Block.
869   BLOCK(SOURCE_MANAGER_BLOCK);
870   RECORD(SM_SLOC_FILE_ENTRY);
871   RECORD(SM_SLOC_BUFFER_ENTRY);
872   RECORD(SM_SLOC_BUFFER_BLOB);
873   RECORD(SM_SLOC_EXPANSION_ENTRY);
874 
875   // Preprocessor Block.
876   BLOCK(PREPROCESSOR_BLOCK);
877   RECORD(PP_MACRO_OBJECT_LIKE);
878   RECORD(PP_MACRO_FUNCTION_LIKE);
879   RECORD(PP_TOKEN);
880 
881   // Decls and Types block.
882   BLOCK(DECLTYPES_BLOCK);
883   RECORD(TYPE_EXT_QUAL);
884   RECORD(TYPE_COMPLEX);
885   RECORD(TYPE_POINTER);
886   RECORD(TYPE_BLOCK_POINTER);
887   RECORD(TYPE_LVALUE_REFERENCE);
888   RECORD(TYPE_RVALUE_REFERENCE);
889   RECORD(TYPE_MEMBER_POINTER);
890   RECORD(TYPE_CONSTANT_ARRAY);
891   RECORD(TYPE_INCOMPLETE_ARRAY);
892   RECORD(TYPE_VARIABLE_ARRAY);
893   RECORD(TYPE_VECTOR);
894   RECORD(TYPE_EXT_VECTOR);
895   RECORD(TYPE_FUNCTION_PROTO);
896   RECORD(TYPE_FUNCTION_NO_PROTO);
897   RECORD(TYPE_TYPEDEF);
898   RECORD(TYPE_TYPEOF_EXPR);
899   RECORD(TYPE_TYPEOF);
900   RECORD(TYPE_RECORD);
901   RECORD(TYPE_ENUM);
902   RECORD(TYPE_OBJC_INTERFACE);
903   RECORD(TYPE_OBJC_OBJECT);
904   RECORD(TYPE_OBJC_OBJECT_POINTER);
905   RECORD(TYPE_DECLTYPE);
906   RECORD(TYPE_ELABORATED);
907   RECORD(TYPE_SUBST_TEMPLATE_TYPE_PARM);
908   RECORD(TYPE_UNRESOLVED_USING);
909   RECORD(TYPE_INJECTED_CLASS_NAME);
910   RECORD(TYPE_OBJC_OBJECT);
911   RECORD(TYPE_TEMPLATE_TYPE_PARM);
912   RECORD(TYPE_TEMPLATE_SPECIALIZATION);
913   RECORD(TYPE_DEPENDENT_NAME);
914   RECORD(TYPE_DEPENDENT_TEMPLATE_SPECIALIZATION);
915   RECORD(TYPE_DEPENDENT_SIZED_ARRAY);
916   RECORD(TYPE_PAREN);
917   RECORD(TYPE_PACK_EXPANSION);
918   RECORD(TYPE_ATTRIBUTED);
919   RECORD(TYPE_SUBST_TEMPLATE_TYPE_PARM_PACK);
920   RECORD(TYPE_ATOMIC);
921   RECORD(DECL_TYPEDEF);
922   RECORD(DECL_ENUM);
923   RECORD(DECL_RECORD);
924   RECORD(DECL_ENUM_CONSTANT);
925   RECORD(DECL_FUNCTION);
926   RECORD(DECL_OBJC_METHOD);
927   RECORD(DECL_OBJC_INTERFACE);
928   RECORD(DECL_OBJC_PROTOCOL);
929   RECORD(DECL_OBJC_IVAR);
930   RECORD(DECL_OBJC_AT_DEFS_FIELD);
931   RECORD(DECL_OBJC_CATEGORY);
932   RECORD(DECL_OBJC_CATEGORY_IMPL);
933   RECORD(DECL_OBJC_IMPLEMENTATION);
934   RECORD(DECL_OBJC_COMPATIBLE_ALIAS);
935   RECORD(DECL_OBJC_PROPERTY);
936   RECORD(DECL_OBJC_PROPERTY_IMPL);
937   RECORD(DECL_FIELD);
938   RECORD(DECL_MS_PROPERTY);
939   RECORD(DECL_VAR);
940   RECORD(DECL_IMPLICIT_PARAM);
941   RECORD(DECL_PARM_VAR);
942   RECORD(DECL_FILE_SCOPE_ASM);
943   RECORD(DECL_BLOCK);
944   RECORD(DECL_CONTEXT_LEXICAL);
945   RECORD(DECL_CONTEXT_VISIBLE);
946   RECORD(DECL_NAMESPACE);
947   RECORD(DECL_NAMESPACE_ALIAS);
948   RECORD(DECL_USING);
949   RECORD(DECL_USING_SHADOW);
950   RECORD(DECL_USING_DIRECTIVE);
951   RECORD(DECL_UNRESOLVED_USING_VALUE);
952   RECORD(DECL_UNRESOLVED_USING_TYPENAME);
953   RECORD(DECL_LINKAGE_SPEC);
954   RECORD(DECL_CXX_RECORD);
955   RECORD(DECL_CXX_METHOD);
956   RECORD(DECL_CXX_CONSTRUCTOR);
957   RECORD(DECL_CXX_DESTRUCTOR);
958   RECORD(DECL_CXX_CONVERSION);
959   RECORD(DECL_ACCESS_SPEC);
960   RECORD(DECL_FRIEND);
961   RECORD(DECL_FRIEND_TEMPLATE);
962   RECORD(DECL_CLASS_TEMPLATE);
963   RECORD(DECL_CLASS_TEMPLATE_SPECIALIZATION);
964   RECORD(DECL_CLASS_TEMPLATE_PARTIAL_SPECIALIZATION);
965   RECORD(DECL_VAR_TEMPLATE);
966   RECORD(DECL_VAR_TEMPLATE_SPECIALIZATION);
967   RECORD(DECL_VAR_TEMPLATE_PARTIAL_SPECIALIZATION);
968   RECORD(DECL_FUNCTION_TEMPLATE);
969   RECORD(DECL_TEMPLATE_TYPE_PARM);
970   RECORD(DECL_NON_TYPE_TEMPLATE_PARM);
971   RECORD(DECL_TEMPLATE_TEMPLATE_PARM);
972   RECORD(DECL_STATIC_ASSERT);
973   RECORD(DECL_CXX_BASE_SPECIFIERS);
974   RECORD(DECL_INDIRECTFIELD);
975   RECORD(DECL_EXPANDED_NON_TYPE_TEMPLATE_PARM_PACK);
976 
977   // Statements and Exprs can occur in the Decls and Types block.
978   AddStmtsExprs(Stream, Record);
979 
980   BLOCK(PREPROCESSOR_DETAIL_BLOCK);
981   RECORD(PPD_MACRO_EXPANSION);
982   RECORD(PPD_MACRO_DEFINITION);
983   RECORD(PPD_INCLUSION_DIRECTIVE);
984 
985 #undef RECORD
986 #undef BLOCK
987   Stream.ExitBlock();
988 }
989 
990 /// \brief Adjusts the given filename to only write out the portion of the
991 /// filename that is not part of the system root directory.
992 ///
993 /// \param Filename the file name to adjust.
994 ///
995 /// \param isysroot When non-NULL, the PCH file is a relocatable PCH file and
996 /// the returned filename will be adjusted by this system root.
997 ///
998 /// \returns either the original filename (if it needs no adjustment) or the
999 /// adjusted filename (which points into the @p Filename parameter).
1000 static const char *
1001 adjustFilenameForRelocatablePCH(const char *Filename, StringRef isysroot) {
1002   assert(Filename && "No file name to adjust?");
1003 
1004   if (isysroot.empty())
1005     return Filename;
1006 
1007   // Verify that the filename and the system root have the same prefix.
1008   unsigned Pos = 0;
1009   for (; Filename[Pos] && Pos < isysroot.size(); ++Pos)
1010     if (Filename[Pos] != isysroot[Pos])
1011       return Filename; // Prefixes don't match.
1012 
1013   // We hit the end of the filename before we hit the end of the system root.
1014   if (!Filename[Pos])
1015     return Filename;
1016 
1017   // If the file name has a '/' at the current position, skip over the '/'.
1018   // We distinguish sysroot-based includes from absolute includes by the
1019   // absence of '/' at the beginning of sysroot-based includes.
1020   if (Filename[Pos] == '/')
1021     ++Pos;
1022 
1023   return Filename + Pos;
1024 }
1025 
1026 /// \brief Write the control block.
1027 void ASTWriter::WriteControlBlock(Preprocessor &PP, ASTContext &Context,
1028                                   StringRef isysroot,
1029                                   const std::string &OutputFile) {
1030   using namespace llvm;
1031   Stream.EnterSubblock(CONTROL_BLOCK_ID, 5);
1032   RecordData Record;
1033 
1034   // Metadata
1035   BitCodeAbbrev *MetadataAbbrev = new BitCodeAbbrev();
1036   MetadataAbbrev->Add(BitCodeAbbrevOp(METADATA));
1037   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Major
1038   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Minor
1039   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Clang maj.
1040   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Clang min.
1041   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Relocatable
1042   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Errors
1043   MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // SVN branch/tag
1044   unsigned MetadataAbbrevCode = Stream.EmitAbbrev(MetadataAbbrev);
1045   Record.push_back(METADATA);
1046   Record.push_back(VERSION_MAJOR);
1047   Record.push_back(VERSION_MINOR);
1048   Record.push_back(CLANG_VERSION_MAJOR);
1049   Record.push_back(CLANG_VERSION_MINOR);
1050   Record.push_back(!isysroot.empty());
1051   Record.push_back(ASTHasCompilerErrors);
1052   Stream.EmitRecordWithBlob(MetadataAbbrevCode, Record,
1053                             getClangFullRepositoryVersion());
1054 
1055   // Module name
1056   if (WritingModule) {
1057     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1058     Abbrev->Add(BitCodeAbbrevOp(MODULE_NAME));
1059     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
1060     unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev);
1061     RecordData Record;
1062     Record.push_back(MODULE_NAME);
1063     Stream.EmitRecordWithBlob(AbbrevCode, Record, WritingModule->Name);
1064   }
1065 
1066   // Module map file
1067   if (WritingModule) {
1068     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1069     Abbrev->Add(BitCodeAbbrevOp(MODULE_MAP_FILE));
1070     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Filename
1071     unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev);
1072 
1073     assert(WritingModule->ModuleMap && "missing module map");
1074     SmallString<128> ModuleMap(WritingModule->ModuleMap->getName());
1075     llvm::sys::fs::make_absolute(ModuleMap);
1076     RecordData Record;
1077     Record.push_back(MODULE_MAP_FILE);
1078     Stream.EmitRecordWithBlob(AbbrevCode, Record, ModuleMap.str());
1079   }
1080 
1081   // Imports
1082   if (Chain) {
1083     serialization::ModuleManager &Mgr = Chain->getModuleManager();
1084     Record.clear();
1085 
1086     for (ModuleManager::ModuleIterator M = Mgr.begin(), MEnd = Mgr.end();
1087          M != MEnd; ++M) {
1088       // Skip modules that weren't directly imported.
1089       if (!(*M)->isDirectlyImported())
1090         continue;
1091 
1092       Record.push_back((unsigned)(*M)->Kind); // FIXME: Stable encoding
1093       AddSourceLocation((*M)->ImportLoc, Record);
1094       Record.push_back((*M)->File->getSize());
1095       Record.push_back((*M)->File->getModificationTime());
1096       const std::string &FileName = (*M)->FileName;
1097       Record.push_back(FileName.size());
1098       Record.append(FileName.begin(), FileName.end());
1099     }
1100     Stream.EmitRecord(IMPORTS, Record);
1101   }
1102 
1103   // Language options.
1104   Record.clear();
1105   const LangOptions &LangOpts = Context.getLangOpts();
1106 #define LANGOPT(Name, Bits, Default, Description) \
1107   Record.push_back(LangOpts.Name);
1108 #define ENUM_LANGOPT(Name, Type, Bits, Default, Description) \
1109   Record.push_back(static_cast<unsigned>(LangOpts.get##Name()));
1110 #include "clang/Basic/LangOptions.def"
1111 #define SANITIZER(NAME, ID) Record.push_back(LangOpts.Sanitize.ID);
1112 #include "clang/Basic/Sanitizers.def"
1113 
1114   Record.push_back((unsigned) LangOpts.ObjCRuntime.getKind());
1115   AddVersionTuple(LangOpts.ObjCRuntime.getVersion(), Record);
1116 
1117   Record.push_back(LangOpts.CurrentModule.size());
1118   Record.append(LangOpts.CurrentModule.begin(), LangOpts.CurrentModule.end());
1119 
1120   // Comment options.
1121   Record.push_back(LangOpts.CommentOpts.BlockCommandNames.size());
1122   for (CommentOptions::BlockCommandNamesTy::const_iterator
1123            I = LangOpts.CommentOpts.BlockCommandNames.begin(),
1124            IEnd = LangOpts.CommentOpts.BlockCommandNames.end();
1125        I != IEnd; ++I) {
1126     AddString(*I, Record);
1127   }
1128   Record.push_back(LangOpts.CommentOpts.ParseAllComments);
1129 
1130   Stream.EmitRecord(LANGUAGE_OPTIONS, Record);
1131 
1132   // Target options.
1133   Record.clear();
1134   const TargetInfo &Target = Context.getTargetInfo();
1135   const TargetOptions &TargetOpts = Target.getTargetOpts();
1136   AddString(TargetOpts.Triple, Record);
1137   AddString(TargetOpts.CPU, Record);
1138   AddString(TargetOpts.ABI, Record);
1139   AddString(TargetOpts.LinkerVersion, Record);
1140   Record.push_back(TargetOpts.FeaturesAsWritten.size());
1141   for (unsigned I = 0, N = TargetOpts.FeaturesAsWritten.size(); I != N; ++I) {
1142     AddString(TargetOpts.FeaturesAsWritten[I], Record);
1143   }
1144   Record.push_back(TargetOpts.Features.size());
1145   for (unsigned I = 0, N = TargetOpts.Features.size(); I != N; ++I) {
1146     AddString(TargetOpts.Features[I], Record);
1147   }
1148   Stream.EmitRecord(TARGET_OPTIONS, Record);
1149 
1150   // Diagnostic options.
1151   Record.clear();
1152   const DiagnosticOptions &DiagOpts
1153     = Context.getDiagnostics().getDiagnosticOptions();
1154 #define DIAGOPT(Name, Bits, Default) Record.push_back(DiagOpts.Name);
1155 #define ENUM_DIAGOPT(Name, Type, Bits, Default) \
1156   Record.push_back(static_cast<unsigned>(DiagOpts.get##Name()));
1157 #include "clang/Basic/DiagnosticOptions.def"
1158   Record.push_back(DiagOpts.Warnings.size());
1159   for (unsigned I = 0, N = DiagOpts.Warnings.size(); I != N; ++I)
1160     AddString(DiagOpts.Warnings[I], Record);
1161   // Note: we don't serialize the log or serialization file names, because they
1162   // are generally transient files and will almost always be overridden.
1163   Stream.EmitRecord(DIAGNOSTIC_OPTIONS, Record);
1164 
1165   // File system options.
1166   Record.clear();
1167   const FileSystemOptions &FSOpts
1168     = Context.getSourceManager().getFileManager().getFileSystemOptions();
1169   AddString(FSOpts.WorkingDir, Record);
1170   Stream.EmitRecord(FILE_SYSTEM_OPTIONS, Record);
1171 
1172   // Header search options.
1173   Record.clear();
1174   const HeaderSearchOptions &HSOpts
1175     = PP.getHeaderSearchInfo().getHeaderSearchOpts();
1176   AddString(HSOpts.Sysroot, Record);
1177 
1178   // Include entries.
1179   Record.push_back(HSOpts.UserEntries.size());
1180   for (unsigned I = 0, N = HSOpts.UserEntries.size(); I != N; ++I) {
1181     const HeaderSearchOptions::Entry &Entry = HSOpts.UserEntries[I];
1182     AddString(Entry.Path, Record);
1183     Record.push_back(static_cast<unsigned>(Entry.Group));
1184     Record.push_back(Entry.IsFramework);
1185     Record.push_back(Entry.IgnoreSysRoot);
1186   }
1187 
1188   // System header prefixes.
1189   Record.push_back(HSOpts.SystemHeaderPrefixes.size());
1190   for (unsigned I = 0, N = HSOpts.SystemHeaderPrefixes.size(); I != N; ++I) {
1191     AddString(HSOpts.SystemHeaderPrefixes[I].Prefix, Record);
1192     Record.push_back(HSOpts.SystemHeaderPrefixes[I].IsSystemHeader);
1193   }
1194 
1195   AddString(HSOpts.ResourceDir, Record);
1196   AddString(HSOpts.ModuleCachePath, Record);
1197   AddString(HSOpts.ModuleUserBuildPath, Record);
1198   Record.push_back(HSOpts.DisableModuleHash);
1199   Record.push_back(HSOpts.UseBuiltinIncludes);
1200   Record.push_back(HSOpts.UseStandardSystemIncludes);
1201   Record.push_back(HSOpts.UseStandardCXXIncludes);
1202   Record.push_back(HSOpts.UseLibcxx);
1203   Stream.EmitRecord(HEADER_SEARCH_OPTIONS, Record);
1204 
1205   // Preprocessor options.
1206   Record.clear();
1207   const PreprocessorOptions &PPOpts = PP.getPreprocessorOpts();
1208 
1209   // Macro definitions.
1210   Record.push_back(PPOpts.Macros.size());
1211   for (unsigned I = 0, N = PPOpts.Macros.size(); I != N; ++I) {
1212     AddString(PPOpts.Macros[I].first, Record);
1213     Record.push_back(PPOpts.Macros[I].second);
1214   }
1215 
1216   // Includes
1217   Record.push_back(PPOpts.Includes.size());
1218   for (unsigned I = 0, N = PPOpts.Includes.size(); I != N; ++I)
1219     AddString(PPOpts.Includes[I], Record);
1220 
1221   // Macro includes
1222   Record.push_back(PPOpts.MacroIncludes.size());
1223   for (unsigned I = 0, N = PPOpts.MacroIncludes.size(); I != N; ++I)
1224     AddString(PPOpts.MacroIncludes[I], Record);
1225 
1226   Record.push_back(PPOpts.UsePredefines);
1227   // Detailed record is important since it is used for the module cache hash.
1228   Record.push_back(PPOpts.DetailedRecord);
1229   AddString(PPOpts.ImplicitPCHInclude, Record);
1230   AddString(PPOpts.ImplicitPTHInclude, Record);
1231   Record.push_back(static_cast<unsigned>(PPOpts.ObjCXXARCStandardLibrary));
1232   Stream.EmitRecord(PREPROCESSOR_OPTIONS, Record);
1233 
1234   // Original file name and file ID
1235   SourceManager &SM = Context.getSourceManager();
1236   if (const FileEntry *MainFile = SM.getFileEntryForID(SM.getMainFileID())) {
1237     BitCodeAbbrev *FileAbbrev = new BitCodeAbbrev();
1238     FileAbbrev->Add(BitCodeAbbrevOp(ORIGINAL_FILE));
1239     FileAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // File ID
1240     FileAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name
1241     unsigned FileAbbrevCode = Stream.EmitAbbrev(FileAbbrev);
1242 
1243     SmallString<128> MainFilePath(MainFile->getName());
1244 
1245     llvm::sys::fs::make_absolute(MainFilePath);
1246 
1247     const char *MainFileNameStr = MainFilePath.c_str();
1248     MainFileNameStr = adjustFilenameForRelocatablePCH(MainFileNameStr,
1249                                                       isysroot);
1250     Record.clear();
1251     Record.push_back(ORIGINAL_FILE);
1252     Record.push_back(SM.getMainFileID().getOpaqueValue());
1253     Stream.EmitRecordWithBlob(FileAbbrevCode, Record, MainFileNameStr);
1254   }
1255 
1256   Record.clear();
1257   Record.push_back(SM.getMainFileID().getOpaqueValue());
1258   Stream.EmitRecord(ORIGINAL_FILE_ID, Record);
1259 
1260   // Original PCH directory
1261   if (!OutputFile.empty() && OutputFile != "-") {
1262     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1263     Abbrev->Add(BitCodeAbbrevOp(ORIGINAL_PCH_DIR));
1264     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name
1265     unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev);
1266 
1267     SmallString<128> OutputPath(OutputFile);
1268 
1269     llvm::sys::fs::make_absolute(OutputPath);
1270     StringRef origDir = llvm::sys::path::parent_path(OutputPath);
1271 
1272     RecordData Record;
1273     Record.push_back(ORIGINAL_PCH_DIR);
1274     Stream.EmitRecordWithBlob(AbbrevCode, Record, origDir);
1275   }
1276 
1277   WriteInputFiles(Context.SourceMgr,
1278                   PP.getHeaderSearchInfo().getHeaderSearchOpts(),
1279                   isysroot,
1280                   PP.getLangOpts().Modules);
1281   Stream.ExitBlock();
1282 }
1283 
1284 namespace  {
1285   /// \brief An input file.
1286   struct InputFileEntry {
1287     const FileEntry *File;
1288     bool IsSystemFile;
1289     bool BufferOverridden;
1290   };
1291 }
1292 
1293 void ASTWriter::WriteInputFiles(SourceManager &SourceMgr,
1294                                 HeaderSearchOptions &HSOpts,
1295                                 StringRef isysroot,
1296                                 bool Modules) {
1297   using namespace llvm;
1298   Stream.EnterSubblock(INPUT_FILES_BLOCK_ID, 4);
1299   RecordData Record;
1300 
1301   // Create input-file abbreviation.
1302   BitCodeAbbrev *IFAbbrev = new BitCodeAbbrev();
1303   IFAbbrev->Add(BitCodeAbbrevOp(INPUT_FILE));
1304   IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // ID
1305   IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 12)); // Size
1306   IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 32)); // Modification time
1307   IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Overridden
1308   IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name
1309   unsigned IFAbbrevCode = Stream.EmitAbbrev(IFAbbrev);
1310 
1311   // Get all ContentCache objects for files, sorted by whether the file is a
1312   // system one or not. System files go at the back, users files at the front.
1313   std::deque<InputFileEntry> SortedFiles;
1314   for (unsigned I = 1, N = SourceMgr.local_sloc_entry_size(); I != N; ++I) {
1315     // Get this source location entry.
1316     const SrcMgr::SLocEntry *SLoc = &SourceMgr.getLocalSLocEntry(I);
1317     assert(&SourceMgr.getSLocEntry(FileID::get(I)) == SLoc);
1318 
1319     // We only care about file entries that were not overridden.
1320     if (!SLoc->isFile())
1321       continue;
1322     const SrcMgr::ContentCache *Cache = SLoc->getFile().getContentCache();
1323     if (!Cache->OrigEntry)
1324       continue;
1325 
1326     InputFileEntry Entry;
1327     Entry.File = Cache->OrigEntry;
1328     Entry.IsSystemFile = Cache->IsSystemFile;
1329     Entry.BufferOverridden = Cache->BufferOverridden;
1330     if (Cache->IsSystemFile)
1331       SortedFiles.push_back(Entry);
1332     else
1333       SortedFiles.push_front(Entry);
1334   }
1335 
1336   unsigned UserFilesNum = 0;
1337   // Write out all of the input files.
1338   std::vector<uint32_t> InputFileOffsets;
1339   for (std::deque<InputFileEntry>::iterator
1340          I = SortedFiles.begin(), E = SortedFiles.end(); I != E; ++I) {
1341     const InputFileEntry &Entry = *I;
1342 
1343     uint32_t &InputFileID = InputFileIDs[Entry.File];
1344     if (InputFileID != 0)
1345       continue; // already recorded this file.
1346 
1347     // Record this entry's offset.
1348     InputFileOffsets.push_back(Stream.GetCurrentBitNo());
1349 
1350     InputFileID = InputFileOffsets.size();
1351 
1352     if (!Entry.IsSystemFile)
1353       ++UserFilesNum;
1354 
1355     Record.clear();
1356     Record.push_back(INPUT_FILE);
1357     Record.push_back(InputFileOffsets.size());
1358 
1359     // Emit size/modification time for this file.
1360     Record.push_back(Entry.File->getSize());
1361     Record.push_back(Entry.File->getModificationTime());
1362 
1363     // Whether this file was overridden.
1364     Record.push_back(Entry.BufferOverridden);
1365 
1366     // Turn the file name into an absolute path, if it isn't already.
1367     const char *Filename = Entry.File->getName();
1368     SmallString<128> FilePath(Filename);
1369 
1370     // Ask the file manager to fixup the relative path for us. This will
1371     // honor the working directory.
1372     SourceMgr.getFileManager().FixupRelativePath(FilePath);
1373 
1374     // FIXME: This call to make_absolute shouldn't be necessary, the
1375     // call to FixupRelativePath should always return an absolute path.
1376     llvm::sys::fs::make_absolute(FilePath);
1377     Filename = FilePath.c_str();
1378 
1379     Filename = adjustFilenameForRelocatablePCH(Filename, isysroot);
1380 
1381     Stream.EmitRecordWithBlob(IFAbbrevCode, Record, Filename);
1382   }
1383 
1384   Stream.ExitBlock();
1385 
1386   // Create input file offsets abbreviation.
1387   BitCodeAbbrev *OffsetsAbbrev = new BitCodeAbbrev();
1388   OffsetsAbbrev->Add(BitCodeAbbrevOp(INPUT_FILE_OFFSETS));
1389   OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # input files
1390   OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # non-system
1391                                                                 //   input files
1392   OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));   // Array
1393   unsigned OffsetsAbbrevCode = Stream.EmitAbbrev(OffsetsAbbrev);
1394 
1395   // Write input file offsets.
1396   Record.clear();
1397   Record.push_back(INPUT_FILE_OFFSETS);
1398   Record.push_back(InputFileOffsets.size());
1399   Record.push_back(UserFilesNum);
1400   Stream.EmitRecordWithBlob(OffsetsAbbrevCode, Record, data(InputFileOffsets));
1401 }
1402 
1403 //===----------------------------------------------------------------------===//
1404 // Source Manager Serialization
1405 //===----------------------------------------------------------------------===//
1406 
1407 /// \brief Create an abbreviation for the SLocEntry that refers to a
1408 /// file.
1409 static unsigned CreateSLocFileAbbrev(llvm::BitstreamWriter &Stream) {
1410   using namespace llvm;
1411   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1412   Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_FILE_ENTRY));
1413   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset
1414   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Include location
1415   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // Characteristic
1416   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Line directives
1417   // FileEntry fields.
1418   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Input File ID
1419   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // NumCreatedFIDs
1420   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 24)); // FirstDeclIndex
1421   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // NumDecls
1422   return Stream.EmitAbbrev(Abbrev);
1423 }
1424 
1425 /// \brief Create an abbreviation for the SLocEntry that refers to a
1426 /// buffer.
1427 static unsigned CreateSLocBufferAbbrev(llvm::BitstreamWriter &Stream) {
1428   using namespace llvm;
1429   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1430   Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_BUFFER_ENTRY));
1431   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset
1432   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Include location
1433   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // Characteristic
1434   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Line directives
1435   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Buffer name blob
1436   return Stream.EmitAbbrev(Abbrev);
1437 }
1438 
1439 /// \brief Create an abbreviation for the SLocEntry that refers to a
1440 /// buffer's blob.
1441 static unsigned CreateSLocBufferBlobAbbrev(llvm::BitstreamWriter &Stream) {
1442   using namespace llvm;
1443   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1444   Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_BUFFER_BLOB));
1445   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Blob
1446   return Stream.EmitAbbrev(Abbrev);
1447 }
1448 
1449 /// \brief Create an abbreviation for the SLocEntry that refers to a macro
1450 /// expansion.
1451 static unsigned CreateSLocExpansionAbbrev(llvm::BitstreamWriter &Stream) {
1452   using namespace llvm;
1453   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1454   Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_EXPANSION_ENTRY));
1455   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset
1456   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Spelling location
1457   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Start location
1458   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // End location
1459   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Token length
1460   return Stream.EmitAbbrev(Abbrev);
1461 }
1462 
1463 namespace {
1464   // Trait used for the on-disk hash table of header search information.
1465   class HeaderFileInfoTrait {
1466     ASTWriter &Writer;
1467     const HeaderSearch &HS;
1468 
1469     // Keep track of the framework names we've used during serialization.
1470     SmallVector<char, 128> FrameworkStringData;
1471     llvm::StringMap<unsigned> FrameworkNameOffset;
1472 
1473   public:
1474     HeaderFileInfoTrait(ASTWriter &Writer, const HeaderSearch &HS)
1475       : Writer(Writer), HS(HS) { }
1476 
1477     struct key_type {
1478       const FileEntry *FE;
1479       const char *Filename;
1480     };
1481     typedef const key_type &key_type_ref;
1482 
1483     typedef HeaderFileInfo data_type;
1484     typedef const data_type &data_type_ref;
1485     typedef unsigned hash_value_type;
1486     typedef unsigned offset_type;
1487 
1488     static hash_value_type ComputeHash(key_type_ref key) {
1489       // The hash is based only on size/time of the file, so that the reader can
1490       // match even when symlinking or excess path elements ("foo/../", "../")
1491       // change the form of the name. However, complete path is still the key.
1492       return llvm::hash_combine(key.FE->getSize(),
1493                                 key.FE->getModificationTime());
1494     }
1495 
1496     std::pair<unsigned,unsigned>
1497     EmitKeyDataLength(raw_ostream& Out, key_type_ref key, data_type_ref Data) {
1498       using namespace llvm::support;
1499       endian::Writer<little> Writer(Out);
1500       unsigned KeyLen = strlen(key.Filename) + 1 + 8 + 8;
1501       Writer.write<uint16_t>(KeyLen);
1502       unsigned DataLen = 1 + 2 + 4 + 4;
1503       if (Data.isModuleHeader)
1504         DataLen += 4;
1505       Writer.write<uint8_t>(DataLen);
1506       return std::make_pair(KeyLen, DataLen);
1507     }
1508 
1509     void EmitKey(raw_ostream& Out, key_type_ref key, unsigned KeyLen) {
1510       using namespace llvm::support;
1511       endian::Writer<little> LE(Out);
1512       LE.write<uint64_t>(key.FE->getSize());
1513       KeyLen -= 8;
1514       LE.write<uint64_t>(key.FE->getModificationTime());
1515       KeyLen -= 8;
1516       Out.write(key.Filename, KeyLen);
1517     }
1518 
1519     void EmitData(raw_ostream &Out, key_type_ref key,
1520                   data_type_ref Data, unsigned DataLen) {
1521       using namespace llvm::support;
1522       endian::Writer<little> LE(Out);
1523       uint64_t Start = Out.tell(); (void)Start;
1524 
1525       unsigned char Flags = (Data.HeaderRole << 6)
1526                           | (Data.isImport << 5)
1527                           | (Data.isPragmaOnce << 4)
1528                           | (Data.DirInfo << 2)
1529                           | (Data.Resolved << 1)
1530                           | Data.IndexHeaderMapHeader;
1531       LE.write<uint8_t>(Flags);
1532       LE.write<uint16_t>(Data.NumIncludes);
1533 
1534       if (!Data.ControllingMacro)
1535         LE.write<uint32_t>(Data.ControllingMacroID);
1536       else
1537         LE.write<uint32_t>(Writer.getIdentifierRef(Data.ControllingMacro));
1538 
1539       unsigned Offset = 0;
1540       if (!Data.Framework.empty()) {
1541         // If this header refers into a framework, save the framework name.
1542         llvm::StringMap<unsigned>::iterator Pos
1543           = FrameworkNameOffset.find(Data.Framework);
1544         if (Pos == FrameworkNameOffset.end()) {
1545           Offset = FrameworkStringData.size() + 1;
1546           FrameworkStringData.append(Data.Framework.begin(),
1547                                      Data.Framework.end());
1548           FrameworkStringData.push_back(0);
1549 
1550           FrameworkNameOffset[Data.Framework] = Offset;
1551         } else
1552           Offset = Pos->second;
1553       }
1554       LE.write<uint32_t>(Offset);
1555 
1556       if (Data.isModuleHeader) {
1557         Module *Mod = HS.findModuleForHeader(key.FE).getModule();
1558         LE.write<uint32_t>(Writer.getExistingSubmoduleID(Mod));
1559       }
1560 
1561       assert(Out.tell() - Start == DataLen && "Wrong data length");
1562     }
1563 
1564     const char *strings_begin() const { return FrameworkStringData.begin(); }
1565     const char *strings_end() const { return FrameworkStringData.end(); }
1566   };
1567 } // end anonymous namespace
1568 
1569 /// \brief Write the header search block for the list of files that
1570 ///
1571 /// \param HS The header search structure to save.
1572 void ASTWriter::WriteHeaderSearch(const HeaderSearch &HS, StringRef isysroot) {
1573   SmallVector<const FileEntry *, 16> FilesByUID;
1574   HS.getFileMgr().GetUniqueIDMapping(FilesByUID);
1575 
1576   if (FilesByUID.size() > HS.header_file_size())
1577     FilesByUID.resize(HS.header_file_size());
1578 
1579   HeaderFileInfoTrait GeneratorTrait(*this, HS);
1580   llvm::OnDiskChainedHashTableGenerator<HeaderFileInfoTrait> Generator;
1581   SmallVector<const char *, 4> SavedStrings;
1582   unsigned NumHeaderSearchEntries = 0;
1583   for (unsigned UID = 0, LastUID = FilesByUID.size(); UID != LastUID; ++UID) {
1584     const FileEntry *File = FilesByUID[UID];
1585     if (!File)
1586       continue;
1587 
1588     // Use HeaderSearch's getFileInfo to make sure we get the HeaderFileInfo
1589     // from the external source if it was not provided already.
1590     HeaderFileInfo HFI;
1591     if (!HS.tryGetFileInfo(File, HFI) ||
1592         (HFI.External && Chain) ||
1593         (HFI.isModuleHeader && !HFI.isCompilingModuleHeader))
1594       continue;
1595 
1596     // Turn the file name into an absolute path, if it isn't already.
1597     const char *Filename = File->getName();
1598     Filename = adjustFilenameForRelocatablePCH(Filename, isysroot);
1599 
1600     // If we performed any translation on the file name at all, we need to
1601     // save this string, since the generator will refer to it later.
1602     if (Filename != File->getName()) {
1603       Filename = strdup(Filename);
1604       SavedStrings.push_back(Filename);
1605     }
1606 
1607     HeaderFileInfoTrait::key_type key = { File, Filename };
1608     Generator.insert(key, HFI, GeneratorTrait);
1609     ++NumHeaderSearchEntries;
1610   }
1611 
1612   // Create the on-disk hash table in a buffer.
1613   SmallString<4096> TableData;
1614   uint32_t BucketOffset;
1615   {
1616     using namespace llvm::support;
1617     llvm::raw_svector_ostream Out(TableData);
1618     // Make sure that no bucket is at offset 0
1619     endian::Writer<little>(Out).write<uint32_t>(0);
1620     BucketOffset = Generator.Emit(Out, GeneratorTrait);
1621   }
1622 
1623   // Create a blob abbreviation
1624   using namespace llvm;
1625   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1626   Abbrev->Add(BitCodeAbbrevOp(HEADER_SEARCH_TABLE));
1627   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
1628   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
1629   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
1630   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
1631   unsigned TableAbbrev = Stream.EmitAbbrev(Abbrev);
1632 
1633   // Write the header search table
1634   RecordData Record;
1635   Record.push_back(HEADER_SEARCH_TABLE);
1636   Record.push_back(BucketOffset);
1637   Record.push_back(NumHeaderSearchEntries);
1638   Record.push_back(TableData.size());
1639   TableData.append(GeneratorTrait.strings_begin(),GeneratorTrait.strings_end());
1640   Stream.EmitRecordWithBlob(TableAbbrev, Record, TableData.str());
1641 
1642   // Free all of the strings we had to duplicate.
1643   for (unsigned I = 0, N = SavedStrings.size(); I != N; ++I)
1644     free(const_cast<char *>(SavedStrings[I]));
1645 }
1646 
1647 /// \brief Writes the block containing the serialized form of the
1648 /// source manager.
1649 ///
1650 /// TODO: We should probably use an on-disk hash table (stored in a
1651 /// blob), indexed based on the file name, so that we only create
1652 /// entries for files that we actually need. In the common case (no
1653 /// errors), we probably won't have to create file entries for any of
1654 /// the files in the AST.
1655 void ASTWriter::WriteSourceManagerBlock(SourceManager &SourceMgr,
1656                                         const Preprocessor &PP,
1657                                         StringRef isysroot) {
1658   RecordData Record;
1659 
1660   // Enter the source manager block.
1661   Stream.EnterSubblock(SOURCE_MANAGER_BLOCK_ID, 3);
1662 
1663   // Abbreviations for the various kinds of source-location entries.
1664   unsigned SLocFileAbbrv = CreateSLocFileAbbrev(Stream);
1665   unsigned SLocBufferAbbrv = CreateSLocBufferAbbrev(Stream);
1666   unsigned SLocBufferBlobAbbrv = CreateSLocBufferBlobAbbrev(Stream);
1667   unsigned SLocExpansionAbbrv = CreateSLocExpansionAbbrev(Stream);
1668 
1669   // Write out the source location entry table. We skip the first
1670   // entry, which is always the same dummy entry.
1671   std::vector<uint32_t> SLocEntryOffsets;
1672   RecordData PreloadSLocs;
1673   SLocEntryOffsets.reserve(SourceMgr.local_sloc_entry_size() - 1);
1674   for (unsigned I = 1, N = SourceMgr.local_sloc_entry_size();
1675        I != N; ++I) {
1676     // Get this source location entry.
1677     const SrcMgr::SLocEntry *SLoc = &SourceMgr.getLocalSLocEntry(I);
1678     FileID FID = FileID::get(I);
1679     assert(&SourceMgr.getSLocEntry(FID) == SLoc);
1680 
1681     // Record the offset of this source-location entry.
1682     SLocEntryOffsets.push_back(Stream.GetCurrentBitNo());
1683 
1684     // Figure out which record code to use.
1685     unsigned Code;
1686     if (SLoc->isFile()) {
1687       const SrcMgr::ContentCache *Cache = SLoc->getFile().getContentCache();
1688       if (Cache->OrigEntry) {
1689         Code = SM_SLOC_FILE_ENTRY;
1690       } else
1691         Code = SM_SLOC_BUFFER_ENTRY;
1692     } else
1693       Code = SM_SLOC_EXPANSION_ENTRY;
1694     Record.clear();
1695     Record.push_back(Code);
1696 
1697     // Starting offset of this entry within this module, so skip the dummy.
1698     Record.push_back(SLoc->getOffset() - 2);
1699     if (SLoc->isFile()) {
1700       const SrcMgr::FileInfo &File = SLoc->getFile();
1701       Record.push_back(File.getIncludeLoc().getRawEncoding());
1702       Record.push_back(File.getFileCharacteristic()); // FIXME: stable encoding
1703       Record.push_back(File.hasLineDirectives());
1704 
1705       const SrcMgr::ContentCache *Content = File.getContentCache();
1706       if (Content->OrigEntry) {
1707         assert(Content->OrigEntry == Content->ContentsEntry &&
1708                "Writing to AST an overridden file is not supported");
1709 
1710         // The source location entry is a file. Emit input file ID.
1711         assert(InputFileIDs[Content->OrigEntry] != 0 && "Missed file entry");
1712         Record.push_back(InputFileIDs[Content->OrigEntry]);
1713 
1714         Record.push_back(File.NumCreatedFIDs);
1715 
1716         FileDeclIDsTy::iterator FDI = FileDeclIDs.find(FID);
1717         if (FDI != FileDeclIDs.end()) {
1718           Record.push_back(FDI->second->FirstDeclIndex);
1719           Record.push_back(FDI->second->DeclIDs.size());
1720         } else {
1721           Record.push_back(0);
1722           Record.push_back(0);
1723         }
1724 
1725         Stream.EmitRecordWithAbbrev(SLocFileAbbrv, Record);
1726 
1727         if (Content->BufferOverridden) {
1728           Record.clear();
1729           Record.push_back(SM_SLOC_BUFFER_BLOB);
1730           const llvm::MemoryBuffer *Buffer
1731             = Content->getBuffer(PP.getDiagnostics(), PP.getSourceManager());
1732           Stream.EmitRecordWithBlob(SLocBufferBlobAbbrv, Record,
1733                                     StringRef(Buffer->getBufferStart(),
1734                                               Buffer->getBufferSize() + 1));
1735         }
1736       } else {
1737         // The source location entry is a buffer. The blob associated
1738         // with this entry contains the contents of the buffer.
1739 
1740         // We add one to the size so that we capture the trailing NULL
1741         // that is required by llvm::MemoryBuffer::getMemBuffer (on
1742         // the reader side).
1743         const llvm::MemoryBuffer *Buffer
1744           = Content->getBuffer(PP.getDiagnostics(), PP.getSourceManager());
1745         const char *Name = Buffer->getBufferIdentifier();
1746         Stream.EmitRecordWithBlob(SLocBufferAbbrv, Record,
1747                                   StringRef(Name, strlen(Name) + 1));
1748         Record.clear();
1749         Record.push_back(SM_SLOC_BUFFER_BLOB);
1750         Stream.EmitRecordWithBlob(SLocBufferBlobAbbrv, Record,
1751                                   StringRef(Buffer->getBufferStart(),
1752                                                   Buffer->getBufferSize() + 1));
1753 
1754         if (strcmp(Name, "<built-in>") == 0) {
1755           PreloadSLocs.push_back(SLocEntryOffsets.size());
1756         }
1757       }
1758     } else {
1759       // The source location entry is a macro expansion.
1760       const SrcMgr::ExpansionInfo &Expansion = SLoc->getExpansion();
1761       Record.push_back(Expansion.getSpellingLoc().getRawEncoding());
1762       Record.push_back(Expansion.getExpansionLocStart().getRawEncoding());
1763       Record.push_back(Expansion.isMacroArgExpansion() ? 0
1764                              : Expansion.getExpansionLocEnd().getRawEncoding());
1765 
1766       // Compute the token length for this macro expansion.
1767       unsigned NextOffset = SourceMgr.getNextLocalOffset();
1768       if (I + 1 != N)
1769         NextOffset = SourceMgr.getLocalSLocEntry(I + 1).getOffset();
1770       Record.push_back(NextOffset - SLoc->getOffset() - 1);
1771       Stream.EmitRecordWithAbbrev(SLocExpansionAbbrv, Record);
1772     }
1773   }
1774 
1775   Stream.ExitBlock();
1776 
1777   if (SLocEntryOffsets.empty())
1778     return;
1779 
1780   // Write the source-location offsets table into the AST block. This
1781   // table is used for lazily loading source-location information.
1782   using namespace llvm;
1783   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
1784   Abbrev->Add(BitCodeAbbrevOp(SOURCE_LOCATION_OFFSETS));
1785   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 16)); // # of slocs
1786   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 16)); // total size
1787   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // offsets
1788   unsigned SLocOffsetsAbbrev = Stream.EmitAbbrev(Abbrev);
1789 
1790   Record.clear();
1791   Record.push_back(SOURCE_LOCATION_OFFSETS);
1792   Record.push_back(SLocEntryOffsets.size());
1793   Record.push_back(SourceMgr.getNextLocalOffset() - 1); // skip dummy
1794   Stream.EmitRecordWithBlob(SLocOffsetsAbbrev, Record, data(SLocEntryOffsets));
1795 
1796   // Write the source location entry preloads array, telling the AST
1797   // reader which source locations entries it should load eagerly.
1798   Stream.EmitRecord(SOURCE_LOCATION_PRELOADS, PreloadSLocs);
1799 
1800   // Write the line table. It depends on remapping working, so it must come
1801   // after the source location offsets.
1802   if (SourceMgr.hasLineTable()) {
1803     LineTableInfo &LineTable = SourceMgr.getLineTable();
1804 
1805     Record.clear();
1806     // Emit the file names
1807     Record.push_back(LineTable.getNumFilenames());
1808     for (unsigned I = 0, N = LineTable.getNumFilenames(); I != N; ++I) {
1809       // Emit the file name
1810       const char *Filename = LineTable.getFilename(I);
1811       Filename = adjustFilenameForRelocatablePCH(Filename, isysroot);
1812       unsigned FilenameLen = Filename? strlen(Filename) : 0;
1813       Record.push_back(FilenameLen);
1814       if (FilenameLen)
1815         Record.insert(Record.end(), Filename, Filename + FilenameLen);
1816     }
1817 
1818     // Emit the line entries
1819     for (LineTableInfo::iterator L = LineTable.begin(), LEnd = LineTable.end();
1820          L != LEnd; ++L) {
1821       // Only emit entries for local files.
1822       if (L->first.ID < 0)
1823         continue;
1824 
1825       // Emit the file ID
1826       Record.push_back(L->first.ID);
1827 
1828       // Emit the line entries
1829       Record.push_back(L->second.size());
1830       for (std::vector<LineEntry>::iterator LE = L->second.begin(),
1831                                          LEEnd = L->second.end();
1832            LE != LEEnd; ++LE) {
1833         Record.push_back(LE->FileOffset);
1834         Record.push_back(LE->LineNo);
1835         Record.push_back(LE->FilenameID);
1836         Record.push_back((unsigned)LE->FileKind);
1837         Record.push_back(LE->IncludeOffset);
1838       }
1839     }
1840     Stream.EmitRecord(SOURCE_MANAGER_LINE_TABLE, Record);
1841   }
1842 }
1843 
1844 //===----------------------------------------------------------------------===//
1845 // Preprocessor Serialization
1846 //===----------------------------------------------------------------------===//
1847 
1848 namespace {
1849 class ASTMacroTableTrait {
1850 public:
1851   typedef IdentID key_type;
1852   typedef key_type key_type_ref;
1853 
1854   struct Data {
1855     uint32_t MacroDirectivesOffset;
1856   };
1857 
1858   typedef Data data_type;
1859   typedef const data_type &data_type_ref;
1860   typedef unsigned hash_value_type;
1861   typedef unsigned offset_type;
1862 
1863   static hash_value_type ComputeHash(IdentID IdID) {
1864     return llvm::hash_value(IdID);
1865   }
1866 
1867   std::pair<unsigned,unsigned>
1868   static EmitKeyDataLength(raw_ostream& Out,
1869                            key_type_ref Key, data_type_ref Data) {
1870     unsigned KeyLen = 4; // IdentID.
1871     unsigned DataLen = 4; // MacroDirectivesOffset.
1872     return std::make_pair(KeyLen, DataLen);
1873   }
1874 
1875   static void EmitKey(raw_ostream& Out, key_type_ref Key, unsigned KeyLen) {
1876     using namespace llvm::support;
1877     endian::Writer<little>(Out).write<uint32_t>(Key);
1878   }
1879 
1880   static void EmitData(raw_ostream& Out, key_type_ref Key, data_type_ref Data,
1881                        unsigned) {
1882     using namespace llvm::support;
1883     endian::Writer<little>(Out).write<uint32_t>(Data.MacroDirectivesOffset);
1884   }
1885 };
1886 } // end anonymous namespace
1887 
1888 static int compareMacroDirectives(
1889     const std::pair<const IdentifierInfo *, MacroDirective *> *X,
1890     const std::pair<const IdentifierInfo *, MacroDirective *> *Y) {
1891   return X->first->getName().compare(Y->first->getName());
1892 }
1893 
1894 static bool shouldIgnoreMacro(MacroDirective *MD, bool IsModule,
1895                               const Preprocessor &PP) {
1896   if (MacroInfo *MI = MD->getMacroInfo())
1897     if (MI->isBuiltinMacro())
1898       return true;
1899 
1900   if (IsModule) {
1901     SourceLocation Loc = MD->getLocation();
1902     if (Loc.isInvalid())
1903       return true;
1904     if (PP.getSourceManager().getFileID(Loc) == PP.getPredefinesFileID())
1905       return true;
1906   }
1907 
1908   return false;
1909 }
1910 
1911 /// \brief Writes the block containing the serialized form of the
1912 /// preprocessor.
1913 ///
1914 void ASTWriter::WritePreprocessor(const Preprocessor &PP, bool IsModule) {
1915   PreprocessingRecord *PPRec = PP.getPreprocessingRecord();
1916   if (PPRec)
1917     WritePreprocessorDetail(*PPRec);
1918 
1919   RecordData Record;
1920 
1921   // If the preprocessor __COUNTER__ value has been bumped, remember it.
1922   if (PP.getCounterValue() != 0) {
1923     Record.push_back(PP.getCounterValue());
1924     Stream.EmitRecord(PP_COUNTER_VALUE, Record);
1925     Record.clear();
1926   }
1927 
1928   // Enter the preprocessor block.
1929   Stream.EnterSubblock(PREPROCESSOR_BLOCK_ID, 3);
1930 
1931   // If the AST file contains __DATE__ or __TIME__ emit a warning about this.
1932   // FIXME: use diagnostics subsystem for localization etc.
1933   if (PP.SawDateOrTime())
1934     fprintf(stderr, "warning: precompiled header used __DATE__ or __TIME__.\n");
1935 
1936 
1937   // Loop over all the macro directives that are live at the end of the file,
1938   // emitting each to the PP section.
1939 
1940   // Construct the list of macro directives that need to be serialized.
1941   SmallVector<std::pair<const IdentifierInfo *, MacroDirective *>, 2>
1942     MacroDirectives;
1943   for (Preprocessor::macro_iterator
1944          I = PP.macro_begin(/*IncludeExternalMacros=*/false),
1945          E = PP.macro_end(/*IncludeExternalMacros=*/false);
1946        I != E; ++I) {
1947     MacroDirectives.push_back(std::make_pair(I->first, I->second));
1948   }
1949 
1950   // Sort the set of macro definitions that need to be serialized by the
1951   // name of the macro, to provide a stable ordering.
1952   llvm::array_pod_sort(MacroDirectives.begin(), MacroDirectives.end(),
1953                        &compareMacroDirectives);
1954 
1955   llvm::OnDiskChainedHashTableGenerator<ASTMacroTableTrait> Generator;
1956 
1957   // Emit the macro directives as a list and associate the offset with the
1958   // identifier they belong to.
1959   for (unsigned I = 0, N = MacroDirectives.size(); I != N; ++I) {
1960     const IdentifierInfo *Name = MacroDirectives[I].first;
1961     uint64_t MacroDirectiveOffset = Stream.GetCurrentBitNo();
1962     MacroDirective *MD = MacroDirectives[I].second;
1963 
1964     // If the macro or identifier need no updates, don't write the macro history
1965     // for this one.
1966     // FIXME: Chain the macro history instead of re-writing it.
1967     if (MD->isFromPCH() &&
1968         Name->isFromAST() && !Name->hasChangedSinceDeserialization())
1969       continue;
1970 
1971     // Emit the macro directives in reverse source order.
1972     for (; MD; MD = MD->getPrevious()) {
1973       if (shouldIgnoreMacro(MD, IsModule, PP))
1974         continue;
1975 
1976       AddSourceLocation(MD->getLocation(), Record);
1977       Record.push_back(MD->getKind());
1978       if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) {
1979         MacroID InfoID = getMacroRef(DefMD->getInfo(), Name);
1980         Record.push_back(InfoID);
1981         Record.push_back(DefMD->isImported());
1982         Record.push_back(DefMD->isAmbiguous());
1983 
1984       } else if (VisibilityMacroDirective *
1985                    VisMD = dyn_cast<VisibilityMacroDirective>(MD)) {
1986         Record.push_back(VisMD->isPublic());
1987       }
1988     }
1989     if (Record.empty())
1990       continue;
1991 
1992     Stream.EmitRecord(PP_MACRO_DIRECTIVE_HISTORY, Record);
1993     Record.clear();
1994 
1995     IdentMacroDirectivesOffsetMap[Name] = MacroDirectiveOffset;
1996 
1997     IdentID NameID = getIdentifierRef(Name);
1998     ASTMacroTableTrait::Data data;
1999     data.MacroDirectivesOffset = MacroDirectiveOffset;
2000     Generator.insert(NameID, data);
2001   }
2002 
2003   /// \brief Offsets of each of the macros into the bitstream, indexed by
2004   /// the local macro ID
2005   ///
2006   /// For each identifier that is associated with a macro, this map
2007   /// provides the offset into the bitstream where that macro is
2008   /// defined.
2009   std::vector<uint32_t> MacroOffsets;
2010 
2011   for (unsigned I = 0, N = MacroInfosToEmit.size(); I != N; ++I) {
2012     const IdentifierInfo *Name = MacroInfosToEmit[I].Name;
2013     MacroInfo *MI = MacroInfosToEmit[I].MI;
2014     MacroID ID = MacroInfosToEmit[I].ID;
2015 
2016     if (ID < FirstMacroID) {
2017       assert(0 && "Loaded MacroInfo entered MacroInfosToEmit ?");
2018       continue;
2019     }
2020 
2021     // Record the local offset of this macro.
2022     unsigned Index = ID - FirstMacroID;
2023     if (Index == MacroOffsets.size())
2024       MacroOffsets.push_back(Stream.GetCurrentBitNo());
2025     else {
2026       if (Index > MacroOffsets.size())
2027         MacroOffsets.resize(Index + 1);
2028 
2029       MacroOffsets[Index] = Stream.GetCurrentBitNo();
2030     }
2031 
2032     AddIdentifierRef(Name, Record);
2033     Record.push_back(inferSubmoduleIDFromLocation(MI->getDefinitionLoc()));
2034     AddSourceLocation(MI->getDefinitionLoc(), Record);
2035     AddSourceLocation(MI->getDefinitionEndLoc(), Record);
2036     Record.push_back(MI->isUsed());
2037     Record.push_back(MI->isUsedForHeaderGuard());
2038     unsigned Code;
2039     if (MI->isObjectLike()) {
2040       Code = PP_MACRO_OBJECT_LIKE;
2041     } else {
2042       Code = PP_MACRO_FUNCTION_LIKE;
2043 
2044       Record.push_back(MI->isC99Varargs());
2045       Record.push_back(MI->isGNUVarargs());
2046       Record.push_back(MI->hasCommaPasting());
2047       Record.push_back(MI->getNumArgs());
2048       for (MacroInfo::arg_iterator I = MI->arg_begin(), E = MI->arg_end();
2049            I != E; ++I)
2050         AddIdentifierRef(*I, Record);
2051     }
2052 
2053     // If we have a detailed preprocessing record, record the macro definition
2054     // ID that corresponds to this macro.
2055     if (PPRec)
2056       Record.push_back(MacroDefinitions[PPRec->findMacroDefinition(MI)]);
2057 
2058     Stream.EmitRecord(Code, Record);
2059     Record.clear();
2060 
2061     // Emit the tokens array.
2062     for (unsigned TokNo = 0, e = MI->getNumTokens(); TokNo != e; ++TokNo) {
2063       // Note that we know that the preprocessor does not have any annotation
2064       // tokens in it because they are created by the parser, and thus can't
2065       // be in a macro definition.
2066       const Token &Tok = MI->getReplacementToken(TokNo);
2067       AddToken(Tok, Record);
2068       Stream.EmitRecord(PP_TOKEN, Record);
2069       Record.clear();
2070     }
2071     ++NumMacros;
2072   }
2073 
2074   Stream.ExitBlock();
2075 
2076   // Create the on-disk hash table in a buffer.
2077   SmallString<4096> MacroTable;
2078   uint32_t BucketOffset;
2079   {
2080     using namespace llvm::support;
2081     llvm::raw_svector_ostream Out(MacroTable);
2082     // Make sure that no bucket is at offset 0
2083     endian::Writer<little>(Out).write<uint32_t>(0);
2084     BucketOffset = Generator.Emit(Out);
2085   }
2086 
2087   // Write the macro table
2088   using namespace llvm;
2089   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2090   Abbrev->Add(BitCodeAbbrevOp(MACRO_TABLE));
2091   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
2092   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2093   unsigned MacroTableAbbrev = Stream.EmitAbbrev(Abbrev);
2094 
2095   Record.push_back(MACRO_TABLE);
2096   Record.push_back(BucketOffset);
2097   Stream.EmitRecordWithBlob(MacroTableAbbrev, Record, MacroTable.str());
2098   Record.clear();
2099 
2100   // Write the offsets table for macro IDs.
2101   using namespace llvm;
2102   Abbrev = new BitCodeAbbrev();
2103   Abbrev->Add(BitCodeAbbrevOp(MACRO_OFFSET));
2104   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of macros
2105   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID
2106   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2107 
2108   unsigned MacroOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2109   Record.clear();
2110   Record.push_back(MACRO_OFFSET);
2111   Record.push_back(MacroOffsets.size());
2112   Record.push_back(FirstMacroID - NUM_PREDEF_MACRO_IDS);
2113   Stream.EmitRecordWithBlob(MacroOffsetAbbrev, Record,
2114                             data(MacroOffsets));
2115 }
2116 
2117 void ASTWriter::WritePreprocessorDetail(PreprocessingRecord &PPRec) {
2118   if (PPRec.local_begin() == PPRec.local_end())
2119     return;
2120 
2121   SmallVector<PPEntityOffset, 64> PreprocessedEntityOffsets;
2122 
2123   // Enter the preprocessor block.
2124   Stream.EnterSubblock(PREPROCESSOR_DETAIL_BLOCK_ID, 3);
2125 
2126   // If the preprocessor has a preprocessing record, emit it.
2127   unsigned NumPreprocessingRecords = 0;
2128   using namespace llvm;
2129 
2130   // Set up the abbreviation for
2131   unsigned InclusionAbbrev = 0;
2132   {
2133     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2134     Abbrev->Add(BitCodeAbbrevOp(PPD_INCLUSION_DIRECTIVE));
2135     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // filename length
2136     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // in quotes
2137     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // kind
2138     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // imported module
2139     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2140     InclusionAbbrev = Stream.EmitAbbrev(Abbrev);
2141   }
2142 
2143   unsigned FirstPreprocessorEntityID
2144     = (Chain ? PPRec.getNumLoadedPreprocessedEntities() : 0)
2145     + NUM_PREDEF_PP_ENTITY_IDS;
2146   unsigned NextPreprocessorEntityID = FirstPreprocessorEntityID;
2147   RecordData Record;
2148   for (PreprocessingRecord::iterator E = PPRec.local_begin(),
2149                                   EEnd = PPRec.local_end();
2150        E != EEnd;
2151        (void)++E, ++NumPreprocessingRecords, ++NextPreprocessorEntityID) {
2152     Record.clear();
2153 
2154     PreprocessedEntityOffsets.push_back(PPEntityOffset((*E)->getSourceRange(),
2155                                                      Stream.GetCurrentBitNo()));
2156 
2157     if (MacroDefinition *MD = dyn_cast<MacroDefinition>(*E)) {
2158       // Record this macro definition's ID.
2159       MacroDefinitions[MD] = NextPreprocessorEntityID;
2160 
2161       AddIdentifierRef(MD->getName(), Record);
2162       Stream.EmitRecord(PPD_MACRO_DEFINITION, Record);
2163       continue;
2164     }
2165 
2166     if (MacroExpansion *ME = dyn_cast<MacroExpansion>(*E)) {
2167       Record.push_back(ME->isBuiltinMacro());
2168       if (ME->isBuiltinMacro())
2169         AddIdentifierRef(ME->getName(), Record);
2170       else
2171         Record.push_back(MacroDefinitions[ME->getDefinition()]);
2172       Stream.EmitRecord(PPD_MACRO_EXPANSION, Record);
2173       continue;
2174     }
2175 
2176     if (InclusionDirective *ID = dyn_cast<InclusionDirective>(*E)) {
2177       Record.push_back(PPD_INCLUSION_DIRECTIVE);
2178       Record.push_back(ID->getFileName().size());
2179       Record.push_back(ID->wasInQuotes());
2180       Record.push_back(static_cast<unsigned>(ID->getKind()));
2181       Record.push_back(ID->importedModule());
2182       SmallString<64> Buffer;
2183       Buffer += ID->getFileName();
2184       // Check that the FileEntry is not null because it was not resolved and
2185       // we create a PCH even with compiler errors.
2186       if (ID->getFile())
2187         Buffer += ID->getFile()->getName();
2188       Stream.EmitRecordWithBlob(InclusionAbbrev, Record, Buffer);
2189       continue;
2190     }
2191 
2192     llvm_unreachable("Unhandled PreprocessedEntity in ASTWriter");
2193   }
2194   Stream.ExitBlock();
2195 
2196   // Write the offsets table for the preprocessing record.
2197   if (NumPreprocessingRecords > 0) {
2198     assert(PreprocessedEntityOffsets.size() == NumPreprocessingRecords);
2199 
2200     // Write the offsets table for identifier IDs.
2201     using namespace llvm;
2202     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2203     Abbrev->Add(BitCodeAbbrevOp(PPD_ENTITIES_OFFSETS));
2204     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first pp entity
2205     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2206     unsigned PPEOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2207 
2208     Record.clear();
2209     Record.push_back(PPD_ENTITIES_OFFSETS);
2210     Record.push_back(FirstPreprocessorEntityID - NUM_PREDEF_PP_ENTITY_IDS);
2211     Stream.EmitRecordWithBlob(PPEOffsetAbbrev, Record,
2212                               data(PreprocessedEntityOffsets));
2213   }
2214 }
2215 
2216 unsigned ASTWriter::getSubmoduleID(Module *Mod) {
2217   llvm::DenseMap<Module *, unsigned>::iterator Known = SubmoduleIDs.find(Mod);
2218   if (Known != SubmoduleIDs.end())
2219     return Known->second;
2220 
2221   return SubmoduleIDs[Mod] = NextSubmoduleID++;
2222 }
2223 
2224 unsigned ASTWriter::getExistingSubmoduleID(Module *Mod) const {
2225   if (!Mod)
2226     return 0;
2227 
2228   llvm::DenseMap<Module *, unsigned>::const_iterator
2229     Known = SubmoduleIDs.find(Mod);
2230   if (Known != SubmoduleIDs.end())
2231     return Known->second;
2232 
2233   return 0;
2234 }
2235 
2236 /// \brief Compute the number of modules within the given tree (including the
2237 /// given module).
2238 static unsigned getNumberOfModules(Module *Mod) {
2239   unsigned ChildModules = 0;
2240   for (Module::submodule_iterator Sub = Mod->submodule_begin(),
2241                                SubEnd = Mod->submodule_end();
2242        Sub != SubEnd; ++Sub)
2243     ChildModules += getNumberOfModules(*Sub);
2244 
2245   return ChildModules + 1;
2246 }
2247 
2248 void ASTWriter::WriteSubmodules(Module *WritingModule) {
2249   // Determine the dependencies of our module and each of it's submodules.
2250   // FIXME: This feels like it belongs somewhere else, but there are no
2251   // other consumers of this information.
2252   SourceManager &SrcMgr = PP->getSourceManager();
2253   ModuleMap &ModMap = PP->getHeaderSearchInfo().getModuleMap();
2254   for (const auto *I : Context->local_imports()) {
2255     if (Module *ImportedFrom
2256           = ModMap.inferModuleFromLocation(FullSourceLoc(I->getLocation(),
2257                                                          SrcMgr))) {
2258       ImportedFrom->Imports.push_back(I->getImportedModule());
2259     }
2260   }
2261 
2262   // Enter the submodule description block.
2263   Stream.EnterSubblock(SUBMODULE_BLOCK_ID, NUM_ALLOWED_ABBREVS_SIZE);
2264 
2265   // Write the abbreviations needed for the submodules block.
2266   using namespace llvm;
2267   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2268   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_DEFINITION));
2269   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // ID
2270   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Parent
2271   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsFramework
2272   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsExplicit
2273   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsSystem
2274   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsExternC
2275   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferSubmodules...
2276   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferExplicit...
2277   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferExportWild...
2278   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // ConfigMacrosExh...
2279   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2280   unsigned DefinitionAbbrev = Stream.EmitAbbrev(Abbrev);
2281 
2282   Abbrev = new BitCodeAbbrev();
2283   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_UMBRELLA_HEADER));
2284   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2285   unsigned UmbrellaAbbrev = Stream.EmitAbbrev(Abbrev);
2286 
2287   Abbrev = new BitCodeAbbrev();
2288   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_HEADER));
2289   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2290   unsigned HeaderAbbrev = Stream.EmitAbbrev(Abbrev);
2291 
2292   Abbrev = new BitCodeAbbrev();
2293   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_TOPHEADER));
2294   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2295   unsigned TopHeaderAbbrev = Stream.EmitAbbrev(Abbrev);
2296 
2297   Abbrev = new BitCodeAbbrev();
2298   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_UMBRELLA_DIR));
2299   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2300   unsigned UmbrellaDirAbbrev = Stream.EmitAbbrev(Abbrev);
2301 
2302   Abbrev = new BitCodeAbbrev();
2303   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_REQUIRES));
2304   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // State
2305   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));     // Feature
2306   unsigned RequiresAbbrev = Stream.EmitAbbrev(Abbrev);
2307 
2308   Abbrev = new BitCodeAbbrev();
2309   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_EXCLUDED_HEADER));
2310   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2311   unsigned ExcludedHeaderAbbrev = Stream.EmitAbbrev(Abbrev);
2312 
2313   Abbrev = new BitCodeAbbrev();
2314   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_PRIVATE_HEADER));
2315   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name
2316   unsigned PrivateHeaderAbbrev = Stream.EmitAbbrev(Abbrev);
2317 
2318   Abbrev = new BitCodeAbbrev();
2319   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_LINK_LIBRARY));
2320   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsFramework
2321   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));     // Name
2322   unsigned LinkLibraryAbbrev = Stream.EmitAbbrev(Abbrev);
2323 
2324   Abbrev = new BitCodeAbbrev();
2325   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_CONFIG_MACRO));
2326   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));    // Macro name
2327   unsigned ConfigMacroAbbrev = Stream.EmitAbbrev(Abbrev);
2328 
2329   Abbrev = new BitCodeAbbrev();
2330   Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_CONFLICT));
2331   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6));  // Other module
2332   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));    // Message
2333   unsigned ConflictAbbrev = Stream.EmitAbbrev(Abbrev);
2334 
2335   // Write the submodule metadata block.
2336   RecordData Record;
2337   Record.push_back(getNumberOfModules(WritingModule));
2338   Record.push_back(FirstSubmoduleID - NUM_PREDEF_SUBMODULE_IDS);
2339   Stream.EmitRecord(SUBMODULE_METADATA, Record);
2340 
2341   // Write all of the submodules.
2342   std::queue<Module *> Q;
2343   Q.push(WritingModule);
2344   while (!Q.empty()) {
2345     Module *Mod = Q.front();
2346     Q.pop();
2347     unsigned ID = getSubmoduleID(Mod);
2348 
2349     // Emit the definition of the block.
2350     Record.clear();
2351     Record.push_back(SUBMODULE_DEFINITION);
2352     Record.push_back(ID);
2353     if (Mod->Parent) {
2354       assert(SubmoduleIDs[Mod->Parent] && "Submodule parent not written?");
2355       Record.push_back(SubmoduleIDs[Mod->Parent]);
2356     } else {
2357       Record.push_back(0);
2358     }
2359     Record.push_back(Mod->IsFramework);
2360     Record.push_back(Mod->IsExplicit);
2361     Record.push_back(Mod->IsSystem);
2362     Record.push_back(Mod->IsExternC);
2363     Record.push_back(Mod->InferSubmodules);
2364     Record.push_back(Mod->InferExplicitSubmodules);
2365     Record.push_back(Mod->InferExportWildcard);
2366     Record.push_back(Mod->ConfigMacrosExhaustive);
2367     Stream.EmitRecordWithBlob(DefinitionAbbrev, Record, Mod->Name);
2368 
2369     // Emit the requirements.
2370     for (unsigned I = 0, N = Mod->Requirements.size(); I != N; ++I) {
2371       Record.clear();
2372       Record.push_back(SUBMODULE_REQUIRES);
2373       Record.push_back(Mod->Requirements[I].second);
2374       Stream.EmitRecordWithBlob(RequiresAbbrev, Record,
2375                                 Mod->Requirements[I].first);
2376     }
2377 
2378     // Emit the umbrella header, if there is one.
2379     if (const FileEntry *UmbrellaHeader = Mod->getUmbrellaHeader()) {
2380       Record.clear();
2381       Record.push_back(SUBMODULE_UMBRELLA_HEADER);
2382       Stream.EmitRecordWithBlob(UmbrellaAbbrev, Record,
2383                                 UmbrellaHeader->getName());
2384     } else if (const DirectoryEntry *UmbrellaDir = Mod->getUmbrellaDir()) {
2385       Record.clear();
2386       Record.push_back(SUBMODULE_UMBRELLA_DIR);
2387       Stream.EmitRecordWithBlob(UmbrellaDirAbbrev, Record,
2388                                 UmbrellaDir->getName());
2389     }
2390 
2391     // Emit the headers.
2392     for (unsigned I = 0, N = Mod->NormalHeaders.size(); I != N; ++I) {
2393       Record.clear();
2394       Record.push_back(SUBMODULE_HEADER);
2395       Stream.EmitRecordWithBlob(HeaderAbbrev, Record,
2396                                 Mod->NormalHeaders[I]->getName());
2397     }
2398     // Emit the excluded headers.
2399     for (unsigned I = 0, N = Mod->ExcludedHeaders.size(); I != N; ++I) {
2400       Record.clear();
2401       Record.push_back(SUBMODULE_EXCLUDED_HEADER);
2402       Stream.EmitRecordWithBlob(ExcludedHeaderAbbrev, Record,
2403                                 Mod->ExcludedHeaders[I]->getName());
2404     }
2405     // Emit the private headers.
2406     for (unsigned I = 0, N = Mod->PrivateHeaders.size(); I != N; ++I) {
2407       Record.clear();
2408       Record.push_back(SUBMODULE_PRIVATE_HEADER);
2409       Stream.EmitRecordWithBlob(PrivateHeaderAbbrev, Record,
2410                                 Mod->PrivateHeaders[I]->getName());
2411     }
2412     ArrayRef<const FileEntry *>
2413       TopHeaders = Mod->getTopHeaders(PP->getFileManager());
2414     for (unsigned I = 0, N = TopHeaders.size(); I != N; ++I) {
2415       Record.clear();
2416       Record.push_back(SUBMODULE_TOPHEADER);
2417       Stream.EmitRecordWithBlob(TopHeaderAbbrev, Record,
2418                                 TopHeaders[I]->getName());
2419     }
2420 
2421     // Emit the imports.
2422     if (!Mod->Imports.empty()) {
2423       Record.clear();
2424       for (unsigned I = 0, N = Mod->Imports.size(); I != N; ++I) {
2425         unsigned ImportedID = getSubmoduleID(Mod->Imports[I]);
2426         assert(ImportedID && "Unknown submodule!");
2427         Record.push_back(ImportedID);
2428       }
2429       Stream.EmitRecord(SUBMODULE_IMPORTS, Record);
2430     }
2431 
2432     // Emit the exports.
2433     if (!Mod->Exports.empty()) {
2434       Record.clear();
2435       for (unsigned I = 0, N = Mod->Exports.size(); I != N; ++I) {
2436         if (Module *Exported = Mod->Exports[I].getPointer()) {
2437           unsigned ExportedID = SubmoduleIDs[Exported];
2438           assert(ExportedID > 0 && "Unknown submodule ID?");
2439           Record.push_back(ExportedID);
2440         } else {
2441           Record.push_back(0);
2442         }
2443 
2444         Record.push_back(Mod->Exports[I].getInt());
2445       }
2446       Stream.EmitRecord(SUBMODULE_EXPORTS, Record);
2447     }
2448 
2449     //FIXME: How do we emit the 'use'd modules?  They may not be submodules.
2450     // Might be unnecessary as use declarations are only used to build the
2451     // module itself.
2452 
2453     // Emit the link libraries.
2454     for (unsigned I = 0, N = Mod->LinkLibraries.size(); I != N; ++I) {
2455       Record.clear();
2456       Record.push_back(SUBMODULE_LINK_LIBRARY);
2457       Record.push_back(Mod->LinkLibraries[I].IsFramework);
2458       Stream.EmitRecordWithBlob(LinkLibraryAbbrev, Record,
2459                                 Mod->LinkLibraries[I].Library);
2460     }
2461 
2462     // Emit the conflicts.
2463     for (unsigned I = 0, N = Mod->Conflicts.size(); I != N; ++I) {
2464       Record.clear();
2465       Record.push_back(SUBMODULE_CONFLICT);
2466       unsigned OtherID = getSubmoduleID(Mod->Conflicts[I].Other);
2467       assert(OtherID && "Unknown submodule!");
2468       Record.push_back(OtherID);
2469       Stream.EmitRecordWithBlob(ConflictAbbrev, Record,
2470                                 Mod->Conflicts[I].Message);
2471     }
2472 
2473     // Emit the configuration macros.
2474     for (unsigned I = 0, N =  Mod->ConfigMacros.size(); I != N; ++I) {
2475       Record.clear();
2476       Record.push_back(SUBMODULE_CONFIG_MACRO);
2477       Stream.EmitRecordWithBlob(ConfigMacroAbbrev, Record,
2478                                 Mod->ConfigMacros[I]);
2479     }
2480 
2481     // Queue up the submodules of this module.
2482     for (Module::submodule_iterator Sub = Mod->submodule_begin(),
2483                                  SubEnd = Mod->submodule_end();
2484          Sub != SubEnd; ++Sub)
2485       Q.push(*Sub);
2486   }
2487 
2488   Stream.ExitBlock();
2489 
2490   assert((NextSubmoduleID - FirstSubmoduleID
2491             == getNumberOfModules(WritingModule)) && "Wrong # of submodules");
2492 }
2493 
2494 serialization::SubmoduleID
2495 ASTWriter::inferSubmoduleIDFromLocation(SourceLocation Loc) {
2496   if (Loc.isInvalid() || !WritingModule)
2497     return 0; // No submodule
2498 
2499   // Find the module that owns this location.
2500   ModuleMap &ModMap = PP->getHeaderSearchInfo().getModuleMap();
2501   Module *OwningMod
2502     = ModMap.inferModuleFromLocation(FullSourceLoc(Loc,PP->getSourceManager()));
2503   if (!OwningMod)
2504     return 0;
2505 
2506   // Check whether this submodule is part of our own module.
2507   if (WritingModule != OwningMod && !OwningMod->isSubModuleOf(WritingModule))
2508     return 0;
2509 
2510   return getSubmoduleID(OwningMod);
2511 }
2512 
2513 void ASTWriter::WritePragmaDiagnosticMappings(const DiagnosticsEngine &Diag,
2514                                               bool isModule) {
2515   // Make sure set diagnostic pragmas don't affect the translation unit that
2516   // imports the module.
2517   // FIXME: Make diagnostic pragma sections work properly with modules.
2518   if (isModule)
2519     return;
2520 
2521   llvm::SmallDenseMap<const DiagnosticsEngine::DiagState *, unsigned, 64>
2522       DiagStateIDMap;
2523   unsigned CurrID = 0;
2524   DiagStateIDMap[&Diag.DiagStates.front()] = ++CurrID; // the command-line one.
2525   RecordData Record;
2526   for (DiagnosticsEngine::DiagStatePointsTy::const_iterator
2527          I = Diag.DiagStatePoints.begin(), E = Diag.DiagStatePoints.end();
2528          I != E; ++I) {
2529     const DiagnosticsEngine::DiagStatePoint &point = *I;
2530     if (point.Loc.isInvalid())
2531       continue;
2532 
2533     Record.push_back(point.Loc.getRawEncoding());
2534     unsigned &DiagStateID = DiagStateIDMap[point.State];
2535     Record.push_back(DiagStateID);
2536 
2537     if (DiagStateID == 0) {
2538       DiagStateID = ++CurrID;
2539       for (DiagnosticsEngine::DiagState::const_iterator
2540              I = point.State->begin(), E = point.State->end(); I != E; ++I) {
2541         if (I->second.isPragma()) {
2542           Record.push_back(I->first);
2543           Record.push_back(I->second.getMapping());
2544         }
2545       }
2546       Record.push_back(-1); // mark the end of the diag/map pairs for this
2547                             // location.
2548     }
2549   }
2550 
2551   if (!Record.empty())
2552     Stream.EmitRecord(DIAG_PRAGMA_MAPPINGS, Record);
2553 }
2554 
2555 void ASTWriter::WriteCXXBaseSpecifiersOffsets() {
2556   if (CXXBaseSpecifiersOffsets.empty())
2557     return;
2558 
2559   RecordData Record;
2560 
2561   // Create a blob abbreviation for the C++ base specifiers offsets.
2562   using namespace llvm;
2563 
2564   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2565   Abbrev->Add(BitCodeAbbrevOp(CXX_BASE_SPECIFIER_OFFSETS));
2566   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // size
2567   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2568   unsigned BaseSpecifierOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2569 
2570   // Write the base specifier offsets table.
2571   Record.clear();
2572   Record.push_back(CXX_BASE_SPECIFIER_OFFSETS);
2573   Record.push_back(CXXBaseSpecifiersOffsets.size());
2574   Stream.EmitRecordWithBlob(BaseSpecifierOffsetAbbrev, Record,
2575                             data(CXXBaseSpecifiersOffsets));
2576 }
2577 
2578 //===----------------------------------------------------------------------===//
2579 // Type Serialization
2580 //===----------------------------------------------------------------------===//
2581 
2582 /// \brief Write the representation of a type to the AST stream.
2583 void ASTWriter::WriteType(QualType T) {
2584   TypeIdx &Idx = TypeIdxs[T];
2585   if (Idx.getIndex() == 0) // we haven't seen this type before.
2586     Idx = TypeIdx(NextTypeID++);
2587 
2588   assert(Idx.getIndex() >= FirstTypeID && "Re-writing a type from a prior AST");
2589 
2590   // Record the offset for this type.
2591   unsigned Index = Idx.getIndex() - FirstTypeID;
2592   if (TypeOffsets.size() == Index)
2593     TypeOffsets.push_back(Stream.GetCurrentBitNo());
2594   else if (TypeOffsets.size() < Index) {
2595     TypeOffsets.resize(Index + 1);
2596     TypeOffsets[Index] = Stream.GetCurrentBitNo();
2597   }
2598 
2599   RecordData Record;
2600 
2601   // Emit the type's representation.
2602   ASTTypeWriter W(*this, Record);
2603 
2604   if (T.hasLocalNonFastQualifiers()) {
2605     Qualifiers Qs = T.getLocalQualifiers();
2606     AddTypeRef(T.getLocalUnqualifiedType(), Record);
2607     Record.push_back(Qs.getAsOpaqueValue());
2608     W.Code = TYPE_EXT_QUAL;
2609   } else {
2610     switch (T->getTypeClass()) {
2611       // For all of the concrete, non-dependent types, call the
2612       // appropriate visitor function.
2613 #define TYPE(Class, Base) \
2614     case Type::Class: W.Visit##Class##Type(cast<Class##Type>(T)); break;
2615 #define ABSTRACT_TYPE(Class, Base)
2616 #include "clang/AST/TypeNodes.def"
2617     }
2618   }
2619 
2620   // Emit the serialized record.
2621   Stream.EmitRecord(W.Code, Record);
2622 
2623   // Flush any expressions that were written as part of this type.
2624   FlushStmts();
2625 }
2626 
2627 //===----------------------------------------------------------------------===//
2628 // Declaration Serialization
2629 //===----------------------------------------------------------------------===//
2630 
2631 /// \brief Write the block containing all of the declaration IDs
2632 /// lexically declared within the given DeclContext.
2633 ///
2634 /// \returns the offset of the DECL_CONTEXT_LEXICAL block within the
2635 /// bistream, or 0 if no block was written.
2636 uint64_t ASTWriter::WriteDeclContextLexicalBlock(ASTContext &Context,
2637                                                  DeclContext *DC) {
2638   if (DC->decls_empty())
2639     return 0;
2640 
2641   uint64_t Offset = Stream.GetCurrentBitNo();
2642   RecordData Record;
2643   Record.push_back(DECL_CONTEXT_LEXICAL);
2644   SmallVector<KindDeclIDPair, 64> Decls;
2645   for (const auto *D : DC->decls())
2646     Decls.push_back(std::make_pair(D->getKind(), GetDeclRef(D)));
2647 
2648   ++NumLexicalDeclContexts;
2649   Stream.EmitRecordWithBlob(DeclContextLexicalAbbrev, Record, data(Decls));
2650   return Offset;
2651 }
2652 
2653 void ASTWriter::WriteTypeDeclOffsets() {
2654   using namespace llvm;
2655   RecordData Record;
2656 
2657   // Write the type offsets array
2658   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2659   Abbrev->Add(BitCodeAbbrevOp(TYPE_OFFSET));
2660   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of types
2661   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // base type index
2662   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // types block
2663   unsigned TypeOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2664   Record.clear();
2665   Record.push_back(TYPE_OFFSET);
2666   Record.push_back(TypeOffsets.size());
2667   Record.push_back(FirstTypeID - NUM_PREDEF_TYPE_IDS);
2668   Stream.EmitRecordWithBlob(TypeOffsetAbbrev, Record, data(TypeOffsets));
2669 
2670   // Write the declaration offsets array
2671   Abbrev = new BitCodeAbbrev();
2672   Abbrev->Add(BitCodeAbbrevOp(DECL_OFFSET));
2673   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of declarations
2674   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // base decl ID
2675   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // declarations block
2676   unsigned DeclOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2677   Record.clear();
2678   Record.push_back(DECL_OFFSET);
2679   Record.push_back(DeclOffsets.size());
2680   Record.push_back(FirstDeclID - NUM_PREDEF_DECL_IDS);
2681   Stream.EmitRecordWithBlob(DeclOffsetAbbrev, Record, data(DeclOffsets));
2682 }
2683 
2684 void ASTWriter::WriteFileDeclIDsMap() {
2685   using namespace llvm;
2686   RecordData Record;
2687 
2688   // Join the vectors of DeclIDs from all files.
2689   SmallVector<DeclID, 256> FileSortedIDs;
2690   for (FileDeclIDsTy::iterator
2691          FI = FileDeclIDs.begin(), FE = FileDeclIDs.end(); FI != FE; ++FI) {
2692     DeclIDInFileInfo &Info = *FI->second;
2693     Info.FirstDeclIndex = FileSortedIDs.size();
2694     for (LocDeclIDsTy::iterator
2695            DI = Info.DeclIDs.begin(), DE = Info.DeclIDs.end(); DI != DE; ++DI)
2696       FileSortedIDs.push_back(DI->second);
2697   }
2698 
2699   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2700   Abbrev->Add(BitCodeAbbrevOp(FILE_SORTED_DECLS));
2701   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
2702   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2703   unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev);
2704   Record.push_back(FILE_SORTED_DECLS);
2705   Record.push_back(FileSortedIDs.size());
2706   Stream.EmitRecordWithBlob(AbbrevCode, Record, data(FileSortedIDs));
2707 }
2708 
2709 void ASTWriter::WriteComments() {
2710   Stream.EnterSubblock(COMMENTS_BLOCK_ID, 3);
2711   ArrayRef<RawComment *> RawComments = Context->Comments.getComments();
2712   RecordData Record;
2713   for (ArrayRef<RawComment *>::iterator I = RawComments.begin(),
2714                                         E = RawComments.end();
2715        I != E; ++I) {
2716     Record.clear();
2717     AddSourceRange((*I)->getSourceRange(), Record);
2718     Record.push_back((*I)->getKind());
2719     Record.push_back((*I)->isTrailingComment());
2720     Record.push_back((*I)->isAlmostTrailingComment());
2721     Stream.EmitRecord(COMMENTS_RAW_COMMENT, Record);
2722   }
2723   Stream.ExitBlock();
2724 }
2725 
2726 //===----------------------------------------------------------------------===//
2727 // Global Method Pool and Selector Serialization
2728 //===----------------------------------------------------------------------===//
2729 
2730 namespace {
2731 // Trait used for the on-disk hash table used in the method pool.
2732 class ASTMethodPoolTrait {
2733   ASTWriter &Writer;
2734 
2735 public:
2736   typedef Selector key_type;
2737   typedef key_type key_type_ref;
2738 
2739   struct data_type {
2740     SelectorID ID;
2741     ObjCMethodList Instance, Factory;
2742   };
2743   typedef const data_type& data_type_ref;
2744 
2745   typedef unsigned hash_value_type;
2746   typedef unsigned offset_type;
2747 
2748   explicit ASTMethodPoolTrait(ASTWriter &Writer) : Writer(Writer) { }
2749 
2750   static hash_value_type ComputeHash(Selector Sel) {
2751     return serialization::ComputeHash(Sel);
2752   }
2753 
2754   std::pair<unsigned,unsigned>
2755     EmitKeyDataLength(raw_ostream& Out, Selector Sel,
2756                       data_type_ref Methods) {
2757     using namespace llvm::support;
2758     endian::Writer<little> LE(Out);
2759     unsigned KeyLen = 2 + (Sel.getNumArgs()? Sel.getNumArgs() * 4 : 4);
2760     LE.write<uint16_t>(KeyLen);
2761     unsigned DataLen = 4 + 2 + 2; // 2 bytes for each of the method counts
2762     for (const ObjCMethodList *Method = &Methods.Instance; Method;
2763          Method = Method->getNext())
2764       if (Method->Method)
2765         DataLen += 4;
2766     for (const ObjCMethodList *Method = &Methods.Factory; Method;
2767          Method = Method->getNext())
2768       if (Method->Method)
2769         DataLen += 4;
2770     LE.write<uint16_t>(DataLen);
2771     return std::make_pair(KeyLen, DataLen);
2772   }
2773 
2774   void EmitKey(raw_ostream& Out, Selector Sel, unsigned) {
2775     using namespace llvm::support;
2776     endian::Writer<little> LE(Out);
2777     uint64_t Start = Out.tell();
2778     assert((Start >> 32) == 0 && "Selector key offset too large");
2779     Writer.SetSelectorOffset(Sel, Start);
2780     unsigned N = Sel.getNumArgs();
2781     LE.write<uint16_t>(N);
2782     if (N == 0)
2783       N = 1;
2784     for (unsigned I = 0; I != N; ++I)
2785       LE.write<uint32_t>(
2786           Writer.getIdentifierRef(Sel.getIdentifierInfoForSlot(I)));
2787   }
2788 
2789   void EmitData(raw_ostream& Out, key_type_ref,
2790                 data_type_ref Methods, unsigned DataLen) {
2791     using namespace llvm::support;
2792     endian::Writer<little> LE(Out);
2793     uint64_t Start = Out.tell(); (void)Start;
2794     LE.write<uint32_t>(Methods.ID);
2795     unsigned NumInstanceMethods = 0;
2796     for (const ObjCMethodList *Method = &Methods.Instance; Method;
2797          Method = Method->getNext())
2798       if (Method->Method)
2799         ++NumInstanceMethods;
2800 
2801     unsigned NumFactoryMethods = 0;
2802     for (const ObjCMethodList *Method = &Methods.Factory; Method;
2803          Method = Method->getNext())
2804       if (Method->Method)
2805         ++NumFactoryMethods;
2806 
2807     unsigned InstanceBits = Methods.Instance.getBits();
2808     assert(InstanceBits < 4);
2809     unsigned NumInstanceMethodsAndBits =
2810         (NumInstanceMethods << 2) | InstanceBits;
2811     unsigned FactoryBits = Methods.Factory.getBits();
2812     assert(FactoryBits < 4);
2813     unsigned NumFactoryMethodsAndBits = (NumFactoryMethods << 2) | FactoryBits;
2814     LE.write<uint16_t>(NumInstanceMethodsAndBits);
2815     LE.write<uint16_t>(NumFactoryMethodsAndBits);
2816     for (const ObjCMethodList *Method = &Methods.Instance; Method;
2817          Method = Method->getNext())
2818       if (Method->Method)
2819         LE.write<uint32_t>(Writer.getDeclID(Method->Method));
2820     for (const ObjCMethodList *Method = &Methods.Factory; Method;
2821          Method = Method->getNext())
2822       if (Method->Method)
2823         LE.write<uint32_t>(Writer.getDeclID(Method->Method));
2824 
2825     assert(Out.tell() - Start == DataLen && "Data length is wrong");
2826   }
2827 };
2828 } // end anonymous namespace
2829 
2830 /// \brief Write ObjC data: selectors and the method pool.
2831 ///
2832 /// The method pool contains both instance and factory methods, stored
2833 /// in an on-disk hash table indexed by the selector. The hash table also
2834 /// contains an empty entry for every other selector known to Sema.
2835 void ASTWriter::WriteSelectors(Sema &SemaRef) {
2836   using namespace llvm;
2837 
2838   // Do we have to do anything at all?
2839   if (SemaRef.MethodPool.empty() && SelectorIDs.empty())
2840     return;
2841   unsigned NumTableEntries = 0;
2842   // Create and write out the blob that contains selectors and the method pool.
2843   {
2844     llvm::OnDiskChainedHashTableGenerator<ASTMethodPoolTrait> Generator;
2845     ASTMethodPoolTrait Trait(*this);
2846 
2847     // Create the on-disk hash table representation. We walk through every
2848     // selector we've seen and look it up in the method pool.
2849     SelectorOffsets.resize(NextSelectorID - FirstSelectorID);
2850     for (llvm::DenseMap<Selector, SelectorID>::iterator
2851              I = SelectorIDs.begin(), E = SelectorIDs.end();
2852          I != E; ++I) {
2853       Selector S = I->first;
2854       Sema::GlobalMethodPool::iterator F = SemaRef.MethodPool.find(S);
2855       ASTMethodPoolTrait::data_type Data = {
2856         I->second,
2857         ObjCMethodList(),
2858         ObjCMethodList()
2859       };
2860       if (F != SemaRef.MethodPool.end()) {
2861         Data.Instance = F->second.first;
2862         Data.Factory = F->second.second;
2863       }
2864       // Only write this selector if it's not in an existing AST or something
2865       // changed.
2866       if (Chain && I->second < FirstSelectorID) {
2867         // Selector already exists. Did it change?
2868         bool changed = false;
2869         for (ObjCMethodList *M = &Data.Instance; !changed && M && M->Method;
2870              M = M->getNext()) {
2871           if (!M->Method->isFromASTFile())
2872             changed = true;
2873         }
2874         for (ObjCMethodList *M = &Data.Factory; !changed && M && M->Method;
2875              M = M->getNext()) {
2876           if (!M->Method->isFromASTFile())
2877             changed = true;
2878         }
2879         if (!changed)
2880           continue;
2881       } else if (Data.Instance.Method || Data.Factory.Method) {
2882         // A new method pool entry.
2883         ++NumTableEntries;
2884       }
2885       Generator.insert(S, Data, Trait);
2886     }
2887 
2888     // Create the on-disk hash table in a buffer.
2889     SmallString<4096> MethodPool;
2890     uint32_t BucketOffset;
2891     {
2892       using namespace llvm::support;
2893       ASTMethodPoolTrait Trait(*this);
2894       llvm::raw_svector_ostream Out(MethodPool);
2895       // Make sure that no bucket is at offset 0
2896       endian::Writer<little>(Out).write<uint32_t>(0);
2897       BucketOffset = Generator.Emit(Out, Trait);
2898     }
2899 
2900     // Create a blob abbreviation
2901     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
2902     Abbrev->Add(BitCodeAbbrevOp(METHOD_POOL));
2903     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
2904     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
2905     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2906     unsigned MethodPoolAbbrev = Stream.EmitAbbrev(Abbrev);
2907 
2908     // Write the method pool
2909     RecordData Record;
2910     Record.push_back(METHOD_POOL);
2911     Record.push_back(BucketOffset);
2912     Record.push_back(NumTableEntries);
2913     Stream.EmitRecordWithBlob(MethodPoolAbbrev, Record, MethodPool.str());
2914 
2915     // Create a blob abbreviation for the selector table offsets.
2916     Abbrev = new BitCodeAbbrev();
2917     Abbrev->Add(BitCodeAbbrevOp(SELECTOR_OFFSETS));
2918     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // size
2919     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID
2920     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
2921     unsigned SelectorOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
2922 
2923     // Write the selector offsets table.
2924     Record.clear();
2925     Record.push_back(SELECTOR_OFFSETS);
2926     Record.push_back(SelectorOffsets.size());
2927     Record.push_back(FirstSelectorID - NUM_PREDEF_SELECTOR_IDS);
2928     Stream.EmitRecordWithBlob(SelectorOffsetAbbrev, Record,
2929                               data(SelectorOffsets));
2930   }
2931 }
2932 
2933 /// \brief Write the selectors referenced in @selector expression into AST file.
2934 void ASTWriter::WriteReferencedSelectorsPool(Sema &SemaRef) {
2935   using namespace llvm;
2936   if (SemaRef.ReferencedSelectors.empty())
2937     return;
2938 
2939   RecordData Record;
2940 
2941   // Note: this writes out all references even for a dependent AST. But it is
2942   // very tricky to fix, and given that @selector shouldn't really appear in
2943   // headers, probably not worth it. It's not a correctness issue.
2944   for (DenseMap<Selector, SourceLocation>::iterator S =
2945        SemaRef.ReferencedSelectors.begin(),
2946        E = SemaRef.ReferencedSelectors.end(); S != E; ++S) {
2947     Selector Sel = (*S).first;
2948     SourceLocation Loc = (*S).second;
2949     AddSelectorRef(Sel, Record);
2950     AddSourceLocation(Loc, Record);
2951   }
2952   Stream.EmitRecord(REFERENCED_SELECTOR_POOL, Record);
2953 }
2954 
2955 //===----------------------------------------------------------------------===//
2956 // Identifier Table Serialization
2957 //===----------------------------------------------------------------------===//
2958 
2959 namespace {
2960 class ASTIdentifierTableTrait {
2961   ASTWriter &Writer;
2962   Preprocessor &PP;
2963   IdentifierResolver &IdResolver;
2964   bool IsModule;
2965 
2966   /// \brief Determines whether this is an "interesting" identifier
2967   /// that needs a full IdentifierInfo structure written into the hash
2968   /// table.
2969   bool isInterestingIdentifier(IdentifierInfo *II, MacroDirective *&Macro) {
2970     if (II->isPoisoned() ||
2971         II->isExtensionToken() ||
2972         II->getObjCOrBuiltinID() ||
2973         II->hasRevertedTokenIDToIdentifier() ||
2974         II->getFETokenInfo<void>())
2975       return true;
2976 
2977     return hadMacroDefinition(II, Macro);
2978   }
2979 
2980   bool hadMacroDefinition(IdentifierInfo *II, MacroDirective *&Macro) {
2981     if (!II->hadMacroDefinition())
2982       return false;
2983 
2984     if (Macro || (Macro = PP.getMacroDirectiveHistory(II))) {
2985       if (!IsModule)
2986         return !shouldIgnoreMacro(Macro, IsModule, PP);
2987       SubmoduleID ModID;
2988       if (getFirstPublicSubmoduleMacro(Macro, ModID))
2989         return true;
2990     }
2991 
2992     return false;
2993   }
2994 
2995   typedef llvm::SmallVectorImpl<SubmoduleID> OverriddenList;
2996 
2997   MacroDirective *
2998   getFirstPublicSubmoduleMacro(MacroDirective *MD, SubmoduleID &ModID) {
2999     ModID = 0;
3000     llvm::SmallVector<SubmoduleID, 1> Overridden;
3001     if (MacroDirective *NextMD = getPublicSubmoduleMacro(MD, ModID, Overridden))
3002       if (!shouldIgnoreMacro(NextMD, IsModule, PP))
3003         return NextMD;
3004     return 0;
3005   }
3006 
3007   MacroDirective *
3008   getNextPublicSubmoduleMacro(MacroDirective *MD, SubmoduleID &ModID,
3009                               OverriddenList &Overridden) {
3010     if (MacroDirective *NextMD =
3011             getPublicSubmoduleMacro(MD->getPrevious(), ModID, Overridden))
3012       if (!shouldIgnoreMacro(NextMD, IsModule, PP))
3013         return NextMD;
3014     return 0;
3015   }
3016 
3017   /// \brief Traverses the macro directives history and returns the latest
3018   /// public macro definition or undefinition that is not in ModID.
3019   /// A macro that is defined in submodule A and undefined in submodule B
3020   /// will still be considered as defined/exported from submodule A.
3021   /// ModID is updated to the module containing the returned directive.
3022   ///
3023   /// FIXME: This process breaks down if a module defines a macro, imports
3024   ///        another submodule that changes the macro, then changes the
3025   ///        macro again itself.
3026   MacroDirective *getPublicSubmoduleMacro(MacroDirective *MD,
3027                                           SubmoduleID &ModID,
3028                                           OverriddenList &Overridden) {
3029     if (!MD)
3030       return 0;
3031 
3032     Overridden.clear();
3033     SubmoduleID OrigModID = ModID;
3034     Optional<bool> IsPublic;
3035     for (; MD; MD = MD->getPrevious()) {
3036       SubmoduleID ThisModID = getSubmoduleID(MD);
3037       if (ThisModID == 0) {
3038         IsPublic = Optional<bool>();
3039         continue;
3040       }
3041       if (ThisModID != ModID) {
3042         ModID = ThisModID;
3043         IsPublic = Optional<bool>();
3044       }
3045 
3046       // If this is a definition from a submodule import, that submodule's
3047       // definition is overridden by the definition or undefinition that we
3048       // started with.
3049       // FIXME: This should only apply to macros defined in OrigModID.
3050       // We can't do that currently, because a #include of a different submodule
3051       // of the same module just leaks through macros instead of providing new
3052       // DefMacroDirectives for them.
3053       if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) {
3054         // Figure out which submodule the macro was originally defined within.
3055         SubmoduleID SourceID = DefMD->getInfo()->getOwningModuleID();
3056         if (!SourceID) {
3057           SourceLocation DefLoc = DefMD->getInfo()->getDefinitionLoc();
3058           if (DefLoc == MD->getLocation())
3059             SourceID = ThisModID;
3060           else
3061             SourceID = Writer.inferSubmoduleIDFromLocation(DefLoc);
3062         }
3063         if (SourceID != OrigModID)
3064           Overridden.push_back(SourceID);
3065       }
3066 
3067       // We are looking for a definition in a different submodule than the one
3068       // that we started with. If a submodule has re-definitions of the same
3069       // macro, only the last definition will be used as the "exported" one.
3070       if (ModID == OrigModID)
3071         continue;
3072 
3073       // The latest visibility directive for a name in a submodule affects all
3074       // the directives that come before it.
3075       if (VisibilityMacroDirective *VisMD =
3076               dyn_cast<VisibilityMacroDirective>(MD)) {
3077         if (!IsPublic.hasValue())
3078           IsPublic = VisMD->isPublic();
3079       } else if (!IsPublic.hasValue() || IsPublic.getValue()) {
3080         // FIXME: If we find an imported macro, we should include its list of
3081         // overrides in our export.
3082         return MD;
3083       }
3084     }
3085 
3086     return 0;
3087   }
3088 
3089   SubmoduleID getSubmoduleID(MacroDirective *MD) {
3090     return Writer.inferSubmoduleIDFromLocation(MD->getLocation());
3091   }
3092 
3093 public:
3094   typedef IdentifierInfo* key_type;
3095   typedef key_type  key_type_ref;
3096 
3097   typedef IdentID data_type;
3098   typedef data_type data_type_ref;
3099 
3100   typedef unsigned hash_value_type;
3101   typedef unsigned offset_type;
3102 
3103   ASTIdentifierTableTrait(ASTWriter &Writer, Preprocessor &PP,
3104                           IdentifierResolver &IdResolver, bool IsModule)
3105     : Writer(Writer), PP(PP), IdResolver(IdResolver), IsModule(IsModule) { }
3106 
3107   static hash_value_type ComputeHash(const IdentifierInfo* II) {
3108     return llvm::HashString(II->getName());
3109   }
3110 
3111   std::pair<unsigned,unsigned>
3112   EmitKeyDataLength(raw_ostream& Out, IdentifierInfo* II, IdentID ID) {
3113     unsigned KeyLen = II->getLength() + 1;
3114     unsigned DataLen = 4; // 4 bytes for the persistent ID << 1
3115     MacroDirective *Macro = 0;
3116     if (isInterestingIdentifier(II, Macro)) {
3117       DataLen += 2; // 2 bytes for builtin ID
3118       DataLen += 2; // 2 bytes for flags
3119       if (hadMacroDefinition(II, Macro)) {
3120         DataLen += 4; // MacroDirectives offset.
3121         if (IsModule) {
3122           SubmoduleID ModID;
3123           llvm::SmallVector<SubmoduleID, 4> Overridden;
3124           for (MacroDirective *
3125                  MD = getFirstPublicSubmoduleMacro(Macro, ModID);
3126                  MD; MD = getNextPublicSubmoduleMacro(MD, ModID, Overridden)) {
3127             // Previous macro's overrides.
3128             if (!Overridden.empty())
3129               DataLen += 4 * (1 + Overridden.size());
3130             DataLen += 4; // MacroInfo ID or ModuleID.
3131           }
3132           // Previous macro's overrides.
3133           if (!Overridden.empty())
3134             DataLen += 4 * (1 + Overridden.size());
3135           DataLen += 4;
3136         }
3137       }
3138 
3139       for (IdentifierResolver::iterator D = IdResolver.begin(II),
3140                                      DEnd = IdResolver.end();
3141            D != DEnd; ++D)
3142         DataLen += sizeof(DeclID);
3143     }
3144     using namespace llvm::support;
3145     endian::Writer<little> LE(Out);
3146 
3147     LE.write<uint16_t>(DataLen);
3148     // We emit the key length after the data length so that every
3149     // string is preceded by a 16-bit length. This matches the PTH
3150     // format for storing identifiers.
3151     LE.write<uint16_t>(KeyLen);
3152     return std::make_pair(KeyLen, DataLen);
3153   }
3154 
3155   void EmitKey(raw_ostream& Out, const IdentifierInfo* II,
3156                unsigned KeyLen) {
3157     // Record the location of the key data.  This is used when generating
3158     // the mapping from persistent IDs to strings.
3159     Writer.SetIdentifierOffset(II, Out.tell());
3160     Out.write(II->getNameStart(), KeyLen);
3161   }
3162 
3163   static void emitMacroOverrides(raw_ostream &Out,
3164                                  llvm::ArrayRef<SubmoduleID> Overridden) {
3165     if (!Overridden.empty()) {
3166       using namespace llvm::support;
3167       endian::Writer<little> LE(Out);
3168       LE.write<uint32_t>(Overridden.size() | 0x80000000U);
3169       for (unsigned I = 0, N = Overridden.size(); I != N; ++I)
3170         LE.write<uint32_t>(Overridden[I]);
3171     }
3172   }
3173 
3174   void EmitData(raw_ostream& Out, IdentifierInfo* II,
3175                 IdentID ID, unsigned) {
3176     using namespace llvm::support;
3177     endian::Writer<little> LE(Out);
3178     MacroDirective *Macro = 0;
3179     if (!isInterestingIdentifier(II, Macro)) {
3180       LE.write<uint32_t>(ID << 1);
3181       return;
3182     }
3183 
3184     LE.write<uint32_t>((ID << 1) | 0x01);
3185     uint32_t Bits = (uint32_t)II->getObjCOrBuiltinID();
3186     assert((Bits & 0xffff) == Bits && "ObjCOrBuiltinID too big for ASTReader.");
3187     LE.write<uint16_t>(Bits);
3188     Bits = 0;
3189     bool HadMacroDefinition = hadMacroDefinition(II, Macro);
3190     Bits = (Bits << 1) | unsigned(HadMacroDefinition);
3191     Bits = (Bits << 1) | unsigned(IsModule);
3192     Bits = (Bits << 1) | unsigned(II->isExtensionToken());
3193     Bits = (Bits << 1) | unsigned(II->isPoisoned());
3194     Bits = (Bits << 1) | unsigned(II->hasRevertedTokenIDToIdentifier());
3195     Bits = (Bits << 1) | unsigned(II->isCPlusPlusOperatorKeyword());
3196     LE.write<uint16_t>(Bits);
3197 
3198     if (HadMacroDefinition) {
3199       LE.write<uint32_t>(Writer.getMacroDirectivesOffset(II));
3200       if (IsModule) {
3201         // Write the IDs of macros coming from different submodules.
3202         SubmoduleID ModID;
3203         llvm::SmallVector<SubmoduleID, 4> Overridden;
3204         for (MacroDirective *
3205                MD = getFirstPublicSubmoduleMacro(Macro, ModID);
3206                MD; MD = getNextPublicSubmoduleMacro(MD, ModID, Overridden)) {
3207           MacroID InfoID = 0;
3208           emitMacroOverrides(Out, Overridden);
3209           if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) {
3210             InfoID = Writer.getMacroID(DefMD->getInfo());
3211             assert(InfoID);
3212             LE.write<uint32_t>(InfoID << 1);
3213           } else {
3214             assert(isa<UndefMacroDirective>(MD));
3215             LE.write<uint32_t>((ModID << 1) | 1);
3216           }
3217         }
3218         emitMacroOverrides(Out, Overridden);
3219         LE.write<uint32_t>(0);
3220       }
3221     }
3222 
3223     // Emit the declaration IDs in reverse order, because the
3224     // IdentifierResolver provides the declarations as they would be
3225     // visible (e.g., the function "stat" would come before the struct
3226     // "stat"), but the ASTReader adds declarations to the end of the list
3227     // (so we need to see the struct "status" before the function "status").
3228     // Only emit declarations that aren't from a chained PCH, though.
3229     SmallVector<Decl *, 16> Decls(IdResolver.begin(II),
3230                                   IdResolver.end());
3231     for (SmallVectorImpl<Decl *>::reverse_iterator D = Decls.rbegin(),
3232                                                 DEnd = Decls.rend();
3233          D != DEnd; ++D)
3234       LE.write<uint32_t>(Writer.getDeclID(getMostRecentLocalDecl(*D)));
3235   }
3236 
3237   /// \brief Returns the most recent local decl or the given decl if there are
3238   /// no local ones. The given decl is assumed to be the most recent one.
3239   Decl *getMostRecentLocalDecl(Decl *Orig) {
3240     // The only way a "from AST file" decl would be more recent from a local one
3241     // is if it came from a module.
3242     if (!PP.getLangOpts().Modules)
3243       return Orig;
3244 
3245     // Look for a local in the decl chain.
3246     for (Decl *D = Orig; D; D = D->getPreviousDecl()) {
3247       if (!D->isFromASTFile())
3248         return D;
3249       // If we come up a decl from a (chained-)PCH stop since we won't find a
3250       // local one.
3251       if (D->getOwningModuleID() == 0)
3252         break;
3253     }
3254 
3255     return Orig;
3256   }
3257 };
3258 } // end anonymous namespace
3259 
3260 /// \brief Write the identifier table into the AST file.
3261 ///
3262 /// The identifier table consists of a blob containing string data
3263 /// (the actual identifiers themselves) and a separate "offsets" index
3264 /// that maps identifier IDs to locations within the blob.
3265 void ASTWriter::WriteIdentifierTable(Preprocessor &PP,
3266                                      IdentifierResolver &IdResolver,
3267                                      bool IsModule) {
3268   using namespace llvm;
3269 
3270   // Create and write out the blob that contains the identifier
3271   // strings.
3272   {
3273     llvm::OnDiskChainedHashTableGenerator<ASTIdentifierTableTrait> Generator;
3274     ASTIdentifierTableTrait Trait(*this, PP, IdResolver, IsModule);
3275 
3276     // Look for any identifiers that were named while processing the
3277     // headers, but are otherwise not needed. We add these to the hash
3278     // table to enable checking of the predefines buffer in the case
3279     // where the user adds new macro definitions when building the AST
3280     // file.
3281     for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(),
3282                                 IDEnd = PP.getIdentifierTable().end();
3283          ID != IDEnd; ++ID)
3284       getIdentifierRef(ID->second);
3285 
3286     // Create the on-disk hash table representation. We only store offsets
3287     // for identifiers that appear here for the first time.
3288     IdentifierOffsets.resize(NextIdentID - FirstIdentID);
3289     for (llvm::DenseMap<const IdentifierInfo *, IdentID>::iterator
3290            ID = IdentifierIDs.begin(), IDEnd = IdentifierIDs.end();
3291          ID != IDEnd; ++ID) {
3292       assert(ID->first && "NULL identifier in identifier table");
3293       if (!Chain || !ID->first->isFromAST() ||
3294           ID->first->hasChangedSinceDeserialization())
3295         Generator.insert(const_cast<IdentifierInfo *>(ID->first), ID->second,
3296                          Trait);
3297     }
3298 
3299     // Create the on-disk hash table in a buffer.
3300     SmallString<4096> IdentifierTable;
3301     uint32_t BucketOffset;
3302     {
3303       using namespace llvm::support;
3304       ASTIdentifierTableTrait Trait(*this, PP, IdResolver, IsModule);
3305       llvm::raw_svector_ostream Out(IdentifierTable);
3306       // Make sure that no bucket is at offset 0
3307       endian::Writer<little>(Out).write<uint32_t>(0);
3308       BucketOffset = Generator.Emit(Out, Trait);
3309     }
3310 
3311     // Create a blob abbreviation
3312     BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
3313     Abbrev->Add(BitCodeAbbrevOp(IDENTIFIER_TABLE));
3314     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32));
3315     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
3316     unsigned IDTableAbbrev = Stream.EmitAbbrev(Abbrev);
3317 
3318     // Write the identifier table
3319     RecordData Record;
3320     Record.push_back(IDENTIFIER_TABLE);
3321     Record.push_back(BucketOffset);
3322     Stream.EmitRecordWithBlob(IDTableAbbrev, Record, IdentifierTable.str());
3323   }
3324 
3325   // Write the offsets table for identifier IDs.
3326   BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
3327   Abbrev->Add(BitCodeAbbrevOp(IDENTIFIER_OFFSET));
3328   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of identifiers
3329   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID
3330   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
3331   unsigned IdentifierOffsetAbbrev = Stream.EmitAbbrev(Abbrev);
3332 
3333 #ifndef NDEBUG
3334   for (unsigned I = 0, N = IdentifierOffsets.size(); I != N; ++I)
3335     assert(IdentifierOffsets[I] && "Missing identifier offset?");
3336 #endif
3337 
3338   RecordData Record;
3339   Record.push_back(IDENTIFIER_OFFSET);
3340   Record.push_back(IdentifierOffsets.size());
3341   Record.push_back(FirstIdentID - NUM_PREDEF_IDENT_IDS);
3342   Stream.EmitRecordWithBlob(IdentifierOffsetAbbrev, Record,
3343                             data(IdentifierOffsets));
3344 }
3345 
3346 //===----------------------------------------------------------------------===//
3347 // DeclContext's Name Lookup Table Serialization
3348 //===----------------------------------------------------------------------===//
3349 
3350 namespace {
3351 // Trait used for the on-disk hash table used in the method pool.
3352 class ASTDeclContextNameLookupTrait {
3353   ASTWriter &Writer;
3354 
3355 public:
3356   typedef DeclarationName key_type;
3357   typedef key_type key_type_ref;
3358 
3359   typedef DeclContext::lookup_result data_type;
3360   typedef const data_type& data_type_ref;
3361 
3362   typedef unsigned hash_value_type;
3363   typedef unsigned offset_type;
3364 
3365   explicit ASTDeclContextNameLookupTrait(ASTWriter &Writer) : Writer(Writer) { }
3366 
3367   hash_value_type ComputeHash(DeclarationName Name) {
3368     llvm::FoldingSetNodeID ID;
3369     ID.AddInteger(Name.getNameKind());
3370 
3371     switch (Name.getNameKind()) {
3372     case DeclarationName::Identifier:
3373       ID.AddString(Name.getAsIdentifierInfo()->getName());
3374       break;
3375     case DeclarationName::ObjCZeroArgSelector:
3376     case DeclarationName::ObjCOneArgSelector:
3377     case DeclarationName::ObjCMultiArgSelector:
3378       ID.AddInteger(serialization::ComputeHash(Name.getObjCSelector()));
3379       break;
3380     case DeclarationName::CXXConstructorName:
3381     case DeclarationName::CXXDestructorName:
3382     case DeclarationName::CXXConversionFunctionName:
3383       break;
3384     case DeclarationName::CXXOperatorName:
3385       ID.AddInteger(Name.getCXXOverloadedOperator());
3386       break;
3387     case DeclarationName::CXXLiteralOperatorName:
3388       ID.AddString(Name.getCXXLiteralIdentifier()->getName());
3389     case DeclarationName::CXXUsingDirective:
3390       break;
3391     }
3392 
3393     return ID.ComputeHash();
3394   }
3395 
3396   std::pair<unsigned,unsigned>
3397     EmitKeyDataLength(raw_ostream& Out, DeclarationName Name,
3398                       data_type_ref Lookup) {
3399     using namespace llvm::support;
3400     endian::Writer<little> LE(Out);
3401     unsigned KeyLen = 1;
3402     switch (Name.getNameKind()) {
3403     case DeclarationName::Identifier:
3404     case DeclarationName::ObjCZeroArgSelector:
3405     case DeclarationName::ObjCOneArgSelector:
3406     case DeclarationName::ObjCMultiArgSelector:
3407     case DeclarationName::CXXLiteralOperatorName:
3408       KeyLen += 4;
3409       break;
3410     case DeclarationName::CXXOperatorName:
3411       KeyLen += 1;
3412       break;
3413     case DeclarationName::CXXConstructorName:
3414     case DeclarationName::CXXDestructorName:
3415     case DeclarationName::CXXConversionFunctionName:
3416     case DeclarationName::CXXUsingDirective:
3417       break;
3418     }
3419     LE.write<uint16_t>(KeyLen);
3420 
3421     // 2 bytes for num of decls and 4 for each DeclID.
3422     unsigned DataLen = 2 + 4 * Lookup.size();
3423     LE.write<uint16_t>(DataLen);
3424 
3425     return std::make_pair(KeyLen, DataLen);
3426   }
3427 
3428   void EmitKey(raw_ostream& Out, DeclarationName Name, unsigned) {
3429     using namespace llvm::support;
3430     endian::Writer<little> LE(Out);
3431     LE.write<uint8_t>(Name.getNameKind());
3432     switch (Name.getNameKind()) {
3433     case DeclarationName::Identifier:
3434       LE.write<uint32_t>(Writer.getIdentifierRef(Name.getAsIdentifierInfo()));
3435       return;
3436     case DeclarationName::ObjCZeroArgSelector:
3437     case DeclarationName::ObjCOneArgSelector:
3438     case DeclarationName::ObjCMultiArgSelector:
3439       LE.write<uint32_t>(Writer.getSelectorRef(Name.getObjCSelector()));
3440       return;
3441     case DeclarationName::CXXOperatorName:
3442       assert(Name.getCXXOverloadedOperator() < NUM_OVERLOADED_OPERATORS &&
3443              "Invalid operator?");
3444       LE.write<uint8_t>(Name.getCXXOverloadedOperator());
3445       return;
3446     case DeclarationName::CXXLiteralOperatorName:
3447       LE.write<uint32_t>(Writer.getIdentifierRef(Name.getCXXLiteralIdentifier()));
3448       return;
3449     case DeclarationName::CXXConstructorName:
3450     case DeclarationName::CXXDestructorName:
3451     case DeclarationName::CXXConversionFunctionName:
3452     case DeclarationName::CXXUsingDirective:
3453       return;
3454     }
3455 
3456     llvm_unreachable("Invalid name kind?");
3457   }
3458 
3459   void EmitData(raw_ostream& Out, key_type_ref,
3460                 data_type Lookup, unsigned DataLen) {
3461     using namespace llvm::support;
3462     endian::Writer<little> LE(Out);
3463     uint64_t Start = Out.tell(); (void)Start;
3464     LE.write<uint16_t>(Lookup.size());
3465     for (DeclContext::lookup_iterator I = Lookup.begin(), E = Lookup.end();
3466          I != E; ++I)
3467       LE.write<uint32_t>(Writer.GetDeclRef(*I));
3468 
3469     assert(Out.tell() - Start == DataLen && "Data length is wrong");
3470   }
3471 };
3472 } // end anonymous namespace
3473 
3474 uint32_t
3475 ASTWriter::GenerateNameLookupTable(const DeclContext *DC,
3476                                    llvm::SmallVectorImpl<char> &LookupTable) {
3477   assert(!DC->LookupPtr.getInt() && "must call buildLookups first");
3478   assert(DC == DC->getPrimaryContext() && "only primary DC has lookup table");
3479 
3480   llvm::OnDiskChainedHashTableGenerator<ASTDeclContextNameLookupTrait>
3481       Generator;
3482   ASTDeclContextNameLookupTrait Trait(*this);
3483 
3484   // Create the on-disk hash table representation.
3485   DeclarationName ConstructorName;
3486   DeclarationName ConversionName;
3487   SmallVector<NamedDecl *, 8> ConstructorDecls;
3488   SmallVector<NamedDecl *, 4> ConversionDecls;
3489 
3490   auto AddLookupResult = [&](DeclarationName Name,
3491                              DeclContext::lookup_result Result) {
3492     if (Result.empty())
3493       return;
3494 
3495     // Different DeclarationName values of certain kinds are mapped to
3496     // identical serialized keys, because we don't want to use type
3497     // identifiers in the keys (since type ids are local to the module).
3498     switch (Name.getNameKind()) {
3499     case DeclarationName::CXXConstructorName:
3500       // There may be different CXXConstructorName DeclarationName values
3501       // in a DeclContext because a UsingDecl that inherits constructors
3502       // has the DeclarationName of the inherited constructors.
3503       if (!ConstructorName)
3504         ConstructorName = Name;
3505       ConstructorDecls.append(Result.begin(), Result.end());
3506       return;
3507     case DeclarationName::CXXConversionFunctionName:
3508       if (!ConversionName)
3509         ConversionName = Name;
3510       ConversionDecls.append(Result.begin(), Result.end());
3511       return;
3512     default:
3513       break;
3514     }
3515 
3516     Generator.insert(Name, Result, Trait);
3517   };
3518 
3519   SmallVector<DeclarationName, 16> ExternalNames;
3520   for (auto &Lookup : *DC->getLookupPtr()) {
3521     if (Lookup.second.hasExternalDecls() ||
3522         DC->NeedToReconcileExternalVisibleStorage) {
3523       // We don't know for sure what declarations are found by this name,
3524       // because the external source might have a different set from the set
3525       // that are in the lookup map, and we can't update it now without
3526       // risking invalidating our lookup iterator. So add it to a queue to
3527       // deal with later.
3528       ExternalNames.push_back(Lookup.first);
3529       continue;
3530     }
3531 
3532     AddLookupResult(Lookup.first, Lookup.second.getLookupResult());
3533   }
3534 
3535   // Add the names we needed to defer. Note, this shouldn't add any new decls
3536   // to the list we need to serialize: any new declarations we find here should
3537   // be imported from an external source.
3538   // FIXME: What if the external source isn't an ASTReader?
3539   for (const auto &Name : ExternalNames)
3540     // FIXME: const_cast since OnDiskHashTable wants a non-const lookup result.
3541     AddLookupResult(Name, const_cast<DeclContext*>(DC)->lookup(Name));
3542 
3543   // Add the constructors.
3544   if (!ConstructorDecls.empty()) {
3545     Generator.insert(ConstructorName,
3546                      DeclContext::lookup_result(ConstructorDecls.begin(),
3547                                                 ConstructorDecls.end()),
3548                      Trait);
3549   }
3550   // Add the conversion functions.
3551   if (!ConversionDecls.empty()) {
3552     Generator.insert(ConversionName,
3553                      DeclContext::lookup_result(ConversionDecls.begin(),
3554                                                 ConversionDecls.end()),
3555                      Trait);
3556   }
3557 
3558   // Create the on-disk hash table in a buffer.
3559   llvm::raw_svector_ostream Out(LookupTable);
3560   // Make sure that no bucket is at offset 0
3561   using namespace llvm::support;
3562   endian::Writer<little>(Out).write<uint32_t>(0);
3563   return Generator.Emit(Out, Trait);
3564 }
3565 
3566 /// \brief Write the block containing all of the declaration IDs
3567 /// visible from the given DeclContext.
3568 ///
3569 /// \returns the offset of the DECL_CONTEXT_VISIBLE block within the
3570 /// bitstream, or 0 if no block was written.
3571 uint64_t ASTWriter::WriteDeclContextVisibleBlock(ASTContext &Context,
3572                                                  DeclContext *DC) {
3573   if (DC->getPrimaryContext() != DC)
3574     return 0;
3575 
3576   // Since there is no name lookup into functions or methods, don't bother to
3577   // build a visible-declarations table for these entities.
3578   if (DC->isFunctionOrMethod())
3579     return 0;
3580 
3581   // If not in C++, we perform name lookup for the translation unit via the
3582   // IdentifierInfo chains, don't bother to build a visible-declarations table.
3583   if (DC->isTranslationUnit() && !Context.getLangOpts().CPlusPlus)
3584     return 0;
3585 
3586   // Serialize the contents of the mapping used for lookup. Note that,
3587   // although we have two very different code paths, the serialized
3588   // representation is the same for both cases: a declaration name,
3589   // followed by a size, followed by references to the visible
3590   // declarations that have that name.
3591   uint64_t Offset = Stream.GetCurrentBitNo();
3592   StoredDeclsMap *Map = DC->buildLookup();
3593   if (!Map || Map->empty())
3594     return 0;
3595 
3596   // Create the on-disk hash table in a buffer.
3597   SmallString<4096> LookupTable;
3598   uint32_t BucketOffset = GenerateNameLookupTable(DC, LookupTable);
3599 
3600   // Write the lookup table
3601   RecordData Record;
3602   Record.push_back(DECL_CONTEXT_VISIBLE);
3603   Record.push_back(BucketOffset);
3604   Stream.EmitRecordWithBlob(DeclContextVisibleLookupAbbrev, Record,
3605                             LookupTable.str());
3606 
3607   Stream.EmitRecord(DECL_CONTEXT_VISIBLE, Record);
3608   ++NumVisibleDeclContexts;
3609   return Offset;
3610 }
3611 
3612 /// \brief Write an UPDATE_VISIBLE block for the given context.
3613 ///
3614 /// UPDATE_VISIBLE blocks contain the declarations that are added to an existing
3615 /// DeclContext in a dependent AST file. As such, they only exist for the TU
3616 /// (in C++), for namespaces, and for classes with forward-declared unscoped
3617 /// enumeration members (in C++11).
3618 void ASTWriter::WriteDeclContextVisibleUpdate(const DeclContext *DC) {
3619   StoredDeclsMap *Map = DC->getLookupPtr();
3620   if (!Map || Map->empty())
3621     return;
3622 
3623   // Create the on-disk hash table in a buffer.
3624   SmallString<4096> LookupTable;
3625   uint32_t BucketOffset = GenerateNameLookupTable(DC, LookupTable);
3626 
3627   // Write the lookup table
3628   RecordData Record;
3629   Record.push_back(UPDATE_VISIBLE);
3630   Record.push_back(getDeclID(cast<Decl>(DC)));
3631   Record.push_back(BucketOffset);
3632   Stream.EmitRecordWithBlob(UpdateVisibleAbbrev, Record, LookupTable.str());
3633 }
3634 
3635 /// \brief Write an FP_PRAGMA_OPTIONS block for the given FPOptions.
3636 void ASTWriter::WriteFPPragmaOptions(const FPOptions &Opts) {
3637   RecordData Record;
3638   Record.push_back(Opts.fp_contract);
3639   Stream.EmitRecord(FP_PRAGMA_OPTIONS, Record);
3640 }
3641 
3642 /// \brief Write an OPENCL_EXTENSIONS block for the given OpenCLOptions.
3643 void ASTWriter::WriteOpenCLExtensions(Sema &SemaRef) {
3644   if (!SemaRef.Context.getLangOpts().OpenCL)
3645     return;
3646 
3647   const OpenCLOptions &Opts = SemaRef.getOpenCLOptions();
3648   RecordData Record;
3649 #define OPENCLEXT(nm)  Record.push_back(Opts.nm);
3650 #include "clang/Basic/OpenCLExtensions.def"
3651   Stream.EmitRecord(OPENCL_EXTENSIONS, Record);
3652 }
3653 
3654 void ASTWriter::WriteRedeclarations() {
3655   RecordData LocalRedeclChains;
3656   SmallVector<serialization::LocalRedeclarationsInfo, 2> LocalRedeclsMap;
3657 
3658   for (unsigned I = 0, N = Redeclarations.size(); I != N; ++I) {
3659     Decl *First = Redeclarations[I];
3660     assert(First->isFirstDecl() && "Not the first declaration?");
3661 
3662     Decl *MostRecent = First->getMostRecentDecl();
3663 
3664     // If we only have a single declaration, there is no point in storing
3665     // a redeclaration chain.
3666     if (First == MostRecent)
3667       continue;
3668 
3669     unsigned Offset = LocalRedeclChains.size();
3670     unsigned Size = 0;
3671     LocalRedeclChains.push_back(0); // Placeholder for the size.
3672 
3673     // Collect the set of local redeclarations of this declaration.
3674     for (Decl *Prev = MostRecent; Prev != First;
3675          Prev = Prev->getPreviousDecl()) {
3676       if (!Prev->isFromASTFile()) {
3677         AddDeclRef(Prev, LocalRedeclChains);
3678         ++Size;
3679       }
3680     }
3681 
3682     if (!First->isFromASTFile() && Chain) {
3683       Decl *FirstFromAST = MostRecent;
3684       for (Decl *Prev = MostRecent; Prev; Prev = Prev->getPreviousDecl()) {
3685         if (Prev->isFromASTFile())
3686           FirstFromAST = Prev;
3687       }
3688 
3689       Chain->MergedDecls[FirstFromAST].push_back(getDeclID(First));
3690     }
3691 
3692     LocalRedeclChains[Offset] = Size;
3693 
3694     // Reverse the set of local redeclarations, so that we store them in
3695     // order (since we found them in reverse order).
3696     std::reverse(LocalRedeclChains.end() - Size, LocalRedeclChains.end());
3697 
3698     // Add the mapping from the first ID from the AST to the set of local
3699     // declarations.
3700     LocalRedeclarationsInfo Info = { getDeclID(First), Offset };
3701     LocalRedeclsMap.push_back(Info);
3702 
3703     assert(N == Redeclarations.size() &&
3704            "Deserialized a declaration we shouldn't have");
3705   }
3706 
3707   if (LocalRedeclChains.empty())
3708     return;
3709 
3710   // Sort the local redeclarations map by the first declaration ID,
3711   // since the reader will be performing binary searches on this information.
3712   llvm::array_pod_sort(LocalRedeclsMap.begin(), LocalRedeclsMap.end());
3713 
3714   // Emit the local redeclarations map.
3715   using namespace llvm;
3716   llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
3717   Abbrev->Add(BitCodeAbbrevOp(LOCAL_REDECLARATIONS_MAP));
3718   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # of entries
3719   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
3720   unsigned AbbrevID = Stream.EmitAbbrev(Abbrev);
3721 
3722   RecordData Record;
3723   Record.push_back(LOCAL_REDECLARATIONS_MAP);
3724   Record.push_back(LocalRedeclsMap.size());
3725   Stream.EmitRecordWithBlob(AbbrevID, Record,
3726     reinterpret_cast<char*>(LocalRedeclsMap.data()),
3727     LocalRedeclsMap.size() * sizeof(LocalRedeclarationsInfo));
3728 
3729   // Emit the redeclaration chains.
3730   Stream.EmitRecord(LOCAL_REDECLARATIONS, LocalRedeclChains);
3731 }
3732 
3733 void ASTWriter::WriteObjCCategories() {
3734   SmallVector<ObjCCategoriesInfo, 2> CategoriesMap;
3735   RecordData Categories;
3736 
3737   for (unsigned I = 0, N = ObjCClassesWithCategories.size(); I != N; ++I) {
3738     unsigned Size = 0;
3739     unsigned StartIndex = Categories.size();
3740 
3741     ObjCInterfaceDecl *Class = ObjCClassesWithCategories[I];
3742 
3743     // Allocate space for the size.
3744     Categories.push_back(0);
3745 
3746     // Add the categories.
3747     for (ObjCInterfaceDecl::known_categories_iterator
3748            Cat = Class->known_categories_begin(),
3749            CatEnd = Class->known_categories_end();
3750          Cat != CatEnd; ++Cat, ++Size) {
3751       assert(getDeclID(*Cat) != 0 && "Bogus category");
3752       AddDeclRef(*Cat, Categories);
3753     }
3754 
3755     // Update the size.
3756     Categories[StartIndex] = Size;
3757 
3758     // Record this interface -> category map.
3759     ObjCCategoriesInfo CatInfo = { getDeclID(Class), StartIndex };
3760     CategoriesMap.push_back(CatInfo);
3761   }
3762 
3763   // Sort the categories map by the definition ID, since the reader will be
3764   // performing binary searches on this information.
3765   llvm::array_pod_sort(CategoriesMap.begin(), CategoriesMap.end());
3766 
3767   // Emit the categories map.
3768   using namespace llvm;
3769   llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
3770   Abbrev->Add(BitCodeAbbrevOp(OBJC_CATEGORIES_MAP));
3771   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # of entries
3772   Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
3773   unsigned AbbrevID = Stream.EmitAbbrev(Abbrev);
3774 
3775   RecordData Record;
3776   Record.push_back(OBJC_CATEGORIES_MAP);
3777   Record.push_back(CategoriesMap.size());
3778   Stream.EmitRecordWithBlob(AbbrevID, Record,
3779                             reinterpret_cast<char*>(CategoriesMap.data()),
3780                             CategoriesMap.size() * sizeof(ObjCCategoriesInfo));
3781 
3782   // Emit the category lists.
3783   Stream.EmitRecord(OBJC_CATEGORIES, Categories);
3784 }
3785 
3786 void ASTWriter::WriteMergedDecls() {
3787   if (!Chain || Chain->MergedDecls.empty())
3788     return;
3789 
3790   RecordData Record;
3791   for (ASTReader::MergedDeclsMap::iterator I = Chain->MergedDecls.begin(),
3792                                         IEnd = Chain->MergedDecls.end();
3793        I != IEnd; ++I) {
3794     DeclID CanonID = I->first->isFromASTFile()? I->first->getGlobalID()
3795                                               : getDeclID(I->first);
3796     assert(CanonID && "Merged declaration not known?");
3797 
3798     Record.push_back(CanonID);
3799     Record.push_back(I->second.size());
3800     Record.append(I->second.begin(), I->second.end());
3801   }
3802   Stream.EmitRecord(MERGED_DECLARATIONS, Record);
3803 }
3804 
3805 void ASTWriter::WriteLateParsedTemplates(Sema &SemaRef) {
3806   Sema::LateParsedTemplateMapT &LPTMap = SemaRef.LateParsedTemplateMap;
3807 
3808   if (LPTMap.empty())
3809     return;
3810 
3811   RecordData Record;
3812   for (Sema::LateParsedTemplateMapT::iterator It = LPTMap.begin(),
3813                                               ItEnd = LPTMap.end();
3814        It != ItEnd; ++It) {
3815     LateParsedTemplate *LPT = It->second;
3816     AddDeclRef(It->first, Record);
3817     AddDeclRef(LPT->D, Record);
3818     Record.push_back(LPT->Toks.size());
3819 
3820     for (CachedTokens::iterator TokIt = LPT->Toks.begin(),
3821                                 TokEnd = LPT->Toks.end();
3822          TokIt != TokEnd; ++TokIt) {
3823       AddToken(*TokIt, Record);
3824     }
3825   }
3826   Stream.EmitRecord(LATE_PARSED_TEMPLATE, Record);
3827 }
3828 
3829 //===----------------------------------------------------------------------===//
3830 // General Serialization Routines
3831 //===----------------------------------------------------------------------===//
3832 
3833 /// \brief Write a record containing the given attributes.
3834 void ASTWriter::WriteAttributes(ArrayRef<const Attr*> Attrs,
3835                                 RecordDataImpl &Record) {
3836   Record.push_back(Attrs.size());
3837   for (ArrayRef<const Attr *>::iterator i = Attrs.begin(),
3838                                         e = Attrs.end(); i != e; ++i){
3839     const Attr *A = *i;
3840     Record.push_back(A->getKind()); // FIXME: stable encoding, target attrs
3841     AddSourceRange(A->getRange(), Record);
3842 
3843 #include "clang/Serialization/AttrPCHWrite.inc"
3844 
3845   }
3846 }
3847 
3848 void ASTWriter::AddToken(const Token &Tok, RecordDataImpl &Record) {
3849   AddSourceLocation(Tok.getLocation(), Record);
3850   Record.push_back(Tok.getLength());
3851 
3852   // FIXME: When reading literal tokens, reconstruct the literal pointer
3853   // if it is needed.
3854   AddIdentifierRef(Tok.getIdentifierInfo(), Record);
3855   // FIXME: Should translate token kind to a stable encoding.
3856   Record.push_back(Tok.getKind());
3857   // FIXME: Should translate token flags to a stable encoding.
3858   Record.push_back(Tok.getFlags());
3859 }
3860 
3861 void ASTWriter::AddString(StringRef Str, RecordDataImpl &Record) {
3862   Record.push_back(Str.size());
3863   Record.insert(Record.end(), Str.begin(), Str.end());
3864 }
3865 
3866 void ASTWriter::AddVersionTuple(const VersionTuple &Version,
3867                                 RecordDataImpl &Record) {
3868   Record.push_back(Version.getMajor());
3869   if (Optional<unsigned> Minor = Version.getMinor())
3870     Record.push_back(*Minor + 1);
3871   else
3872     Record.push_back(0);
3873   if (Optional<unsigned> Subminor = Version.getSubminor())
3874     Record.push_back(*Subminor + 1);
3875   else
3876     Record.push_back(0);
3877 }
3878 
3879 /// \brief Note that the identifier II occurs at the given offset
3880 /// within the identifier table.
3881 void ASTWriter::SetIdentifierOffset(const IdentifierInfo *II, uint32_t Offset) {
3882   IdentID ID = IdentifierIDs[II];
3883   // Only store offsets new to this AST file. Other identifier names are looked
3884   // up earlier in the chain and thus don't need an offset.
3885   if (ID >= FirstIdentID)
3886     IdentifierOffsets[ID - FirstIdentID] = Offset;
3887 }
3888 
3889 /// \brief Note that the selector Sel occurs at the given offset
3890 /// within the method pool/selector table.
3891 void ASTWriter::SetSelectorOffset(Selector Sel, uint32_t Offset) {
3892   unsigned ID = SelectorIDs[Sel];
3893   assert(ID && "Unknown selector");
3894   // Don't record offsets for selectors that are also available in a different
3895   // file.
3896   if (ID < FirstSelectorID)
3897     return;
3898   SelectorOffsets[ID - FirstSelectorID] = Offset;
3899 }
3900 
3901 ASTWriter::ASTWriter(llvm::BitstreamWriter &Stream)
3902   : Stream(Stream), Context(0), PP(0), Chain(0), WritingModule(0),
3903     WritingAST(false), DoneWritingDeclsAndTypes(false),
3904     ASTHasCompilerErrors(false),
3905     FirstDeclID(NUM_PREDEF_DECL_IDS), NextDeclID(FirstDeclID),
3906     FirstTypeID(NUM_PREDEF_TYPE_IDS), NextTypeID(FirstTypeID),
3907     FirstIdentID(NUM_PREDEF_IDENT_IDS), NextIdentID(FirstIdentID),
3908     FirstMacroID(NUM_PREDEF_MACRO_IDS), NextMacroID(FirstMacroID),
3909     FirstSubmoduleID(NUM_PREDEF_SUBMODULE_IDS),
3910     NextSubmoduleID(FirstSubmoduleID),
3911     FirstSelectorID(NUM_PREDEF_SELECTOR_IDS), NextSelectorID(FirstSelectorID),
3912     CollectedStmts(&StmtsToEmit),
3913     NumStatements(0), NumMacros(0), NumLexicalDeclContexts(0),
3914     NumVisibleDeclContexts(0),
3915     NextCXXBaseSpecifiersID(1),
3916     DeclParmVarAbbrev(0), DeclContextLexicalAbbrev(0),
3917     DeclContextVisibleLookupAbbrev(0), UpdateVisibleAbbrev(0),
3918     DeclRefExprAbbrev(0), CharacterLiteralAbbrev(0),
3919     DeclRecordAbbrev(0), IntegerLiteralAbbrev(0),
3920     DeclTypedefAbbrev(0),
3921     DeclVarAbbrev(0), DeclFieldAbbrev(0),
3922     DeclEnumAbbrev(0), DeclObjCIvarAbbrev(0)
3923 {
3924 }
3925 
3926 ASTWriter::~ASTWriter() {
3927   llvm::DeleteContainerSeconds(FileDeclIDs);
3928 }
3929 
3930 void ASTWriter::WriteAST(Sema &SemaRef,
3931                          const std::string &OutputFile,
3932                          Module *WritingModule, StringRef isysroot,
3933                          bool hasErrors) {
3934   WritingAST = true;
3935 
3936   ASTHasCompilerErrors = hasErrors;
3937 
3938   // Emit the file header.
3939   Stream.Emit((unsigned)'C', 8);
3940   Stream.Emit((unsigned)'P', 8);
3941   Stream.Emit((unsigned)'C', 8);
3942   Stream.Emit((unsigned)'H', 8);
3943 
3944   WriteBlockInfoBlock();
3945 
3946   Context = &SemaRef.Context;
3947   PP = &SemaRef.PP;
3948   this->WritingModule = WritingModule;
3949   WriteASTCore(SemaRef, isysroot, OutputFile, WritingModule);
3950   Context = 0;
3951   PP = 0;
3952   this->WritingModule = 0;
3953 
3954   WritingAST = false;
3955 }
3956 
3957 template<typename Vector>
3958 static void AddLazyVectorDecls(ASTWriter &Writer, Vector &Vec,
3959                                ASTWriter::RecordData &Record) {
3960   for (typename Vector::iterator I = Vec.begin(0, true), E = Vec.end();
3961        I != E; ++I)  {
3962     Writer.AddDeclRef(*I, Record);
3963   }
3964 }
3965 
3966 void ASTWriter::WriteASTCore(Sema &SemaRef,
3967                              StringRef isysroot,
3968                              const std::string &OutputFile,
3969                              Module *WritingModule) {
3970   using namespace llvm;
3971 
3972   bool isModule = WritingModule != 0;
3973 
3974   // Make sure that the AST reader knows to finalize itself.
3975   if (Chain)
3976     Chain->finalizeForWriting();
3977 
3978   ASTContext &Context = SemaRef.Context;
3979   Preprocessor &PP = SemaRef.PP;
3980 
3981   // Set up predefined declaration IDs.
3982   DeclIDs[Context.getTranslationUnitDecl()] = PREDEF_DECL_TRANSLATION_UNIT_ID;
3983   if (Context.ObjCIdDecl)
3984     DeclIDs[Context.ObjCIdDecl] = PREDEF_DECL_OBJC_ID_ID;
3985   if (Context.ObjCSelDecl)
3986     DeclIDs[Context.ObjCSelDecl] = PREDEF_DECL_OBJC_SEL_ID;
3987   if (Context.ObjCClassDecl)
3988     DeclIDs[Context.ObjCClassDecl] = PREDEF_DECL_OBJC_CLASS_ID;
3989   if (Context.ObjCProtocolClassDecl)
3990     DeclIDs[Context.ObjCProtocolClassDecl] = PREDEF_DECL_OBJC_PROTOCOL_ID;
3991   if (Context.Int128Decl)
3992     DeclIDs[Context.Int128Decl] = PREDEF_DECL_INT_128_ID;
3993   if (Context.UInt128Decl)
3994     DeclIDs[Context.UInt128Decl] = PREDEF_DECL_UNSIGNED_INT_128_ID;
3995   if (Context.ObjCInstanceTypeDecl)
3996     DeclIDs[Context.ObjCInstanceTypeDecl] = PREDEF_DECL_OBJC_INSTANCETYPE_ID;
3997   if (Context.BuiltinVaListDecl)
3998     DeclIDs[Context.getBuiltinVaListDecl()] = PREDEF_DECL_BUILTIN_VA_LIST_ID;
3999 
4000   if (!Chain) {
4001     // Make sure that we emit IdentifierInfos (and any attached
4002     // declarations) for builtins. We don't need to do this when we're
4003     // emitting chained PCH files, because all of the builtins will be
4004     // in the original PCH file.
4005     // FIXME: Modules won't like this at all.
4006     IdentifierTable &Table = PP.getIdentifierTable();
4007     SmallVector<const char *, 32> BuiltinNames;
4008     if (!Context.getLangOpts().NoBuiltin) {
4009       Context.BuiltinInfo.GetBuiltinNames(BuiltinNames);
4010     }
4011     for (unsigned I = 0, N = BuiltinNames.size(); I != N; ++I)
4012       getIdentifierRef(&Table.get(BuiltinNames[I]));
4013   }
4014 
4015   // If there are any out-of-date identifiers, bring them up to date.
4016   if (ExternalPreprocessorSource *ExtSource = PP.getExternalSource()) {
4017     // Find out-of-date identifiers.
4018     SmallVector<IdentifierInfo *, 4> OutOfDate;
4019     for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(),
4020                                 IDEnd = PP.getIdentifierTable().end();
4021          ID != IDEnd; ++ID) {
4022       if (ID->second->isOutOfDate())
4023         OutOfDate.push_back(ID->second);
4024     }
4025 
4026     // Update the out-of-date identifiers.
4027     for (unsigned I = 0, N = OutOfDate.size(); I != N; ++I) {
4028       ExtSource->updateOutOfDateIdentifier(*OutOfDate[I]);
4029     }
4030   }
4031 
4032   // Build a record containing all of the tentative definitions in this file, in
4033   // TentativeDefinitions order.  Generally, this record will be empty for
4034   // headers.
4035   RecordData TentativeDefinitions;
4036   AddLazyVectorDecls(*this, SemaRef.TentativeDefinitions, TentativeDefinitions);
4037 
4038   // Build a record containing all of the file scoped decls in this file.
4039   RecordData UnusedFileScopedDecls;
4040   if (!isModule)
4041     AddLazyVectorDecls(*this, SemaRef.UnusedFileScopedDecls,
4042                        UnusedFileScopedDecls);
4043 
4044   // Build a record containing all of the delegating constructors we still need
4045   // to resolve.
4046   RecordData DelegatingCtorDecls;
4047   if (!isModule)
4048     AddLazyVectorDecls(*this, SemaRef.DelegatingCtorDecls, DelegatingCtorDecls);
4049 
4050   // Write the set of weak, undeclared identifiers. We always write the
4051   // entire table, since later PCH files in a PCH chain are only interested in
4052   // the results at the end of the chain.
4053   RecordData WeakUndeclaredIdentifiers;
4054   if (!SemaRef.WeakUndeclaredIdentifiers.empty()) {
4055     for (llvm::DenseMap<IdentifierInfo*,WeakInfo>::iterator
4056          I = SemaRef.WeakUndeclaredIdentifiers.begin(),
4057          E = SemaRef.WeakUndeclaredIdentifiers.end(); I != E; ++I) {
4058       AddIdentifierRef(I->first, WeakUndeclaredIdentifiers);
4059       AddIdentifierRef(I->second.getAlias(), WeakUndeclaredIdentifiers);
4060       AddSourceLocation(I->second.getLocation(), WeakUndeclaredIdentifiers);
4061       WeakUndeclaredIdentifiers.push_back(I->second.getUsed());
4062     }
4063   }
4064 
4065   // Build a record containing all of the locally-scoped extern "C"
4066   // declarations in this header file. Generally, this record will be
4067   // empty.
4068   RecordData LocallyScopedExternCDecls;
4069   // FIXME: This is filling in the AST file in densemap order which is
4070   // nondeterminstic!
4071   for (llvm::DenseMap<DeclarationName, NamedDecl *>::iterator
4072          TD = SemaRef.LocallyScopedExternCDecls.begin(),
4073          TDEnd = SemaRef.LocallyScopedExternCDecls.end();
4074        TD != TDEnd; ++TD) {
4075     if (!TD->second->isFromASTFile())
4076       AddDeclRef(TD->second, LocallyScopedExternCDecls);
4077   }
4078 
4079   // Build a record containing all of the ext_vector declarations.
4080   RecordData ExtVectorDecls;
4081   AddLazyVectorDecls(*this, SemaRef.ExtVectorDecls, ExtVectorDecls);
4082 
4083   // Build a record containing all of the VTable uses information.
4084   RecordData VTableUses;
4085   if (!SemaRef.VTableUses.empty()) {
4086     for (unsigned I = 0, N = SemaRef.VTableUses.size(); I != N; ++I) {
4087       AddDeclRef(SemaRef.VTableUses[I].first, VTableUses);
4088       AddSourceLocation(SemaRef.VTableUses[I].second, VTableUses);
4089       VTableUses.push_back(SemaRef.VTablesUsed[SemaRef.VTableUses[I].first]);
4090     }
4091   }
4092 
4093   // Build a record containing all of dynamic classes declarations.
4094   RecordData DynamicClasses;
4095   AddLazyVectorDecls(*this, SemaRef.DynamicClasses, DynamicClasses);
4096 
4097   // Build a record containing all of pending implicit instantiations.
4098   RecordData PendingInstantiations;
4099   for (std::deque<Sema::PendingImplicitInstantiation>::iterator
4100          I = SemaRef.PendingInstantiations.begin(),
4101          N = SemaRef.PendingInstantiations.end(); I != N; ++I) {
4102     AddDeclRef(I->first, PendingInstantiations);
4103     AddSourceLocation(I->second, PendingInstantiations);
4104   }
4105   assert(SemaRef.PendingLocalImplicitInstantiations.empty() &&
4106          "There are local ones at end of translation unit!");
4107 
4108   // Build a record containing some declaration references.
4109   RecordData SemaDeclRefs;
4110   if (SemaRef.StdNamespace || SemaRef.StdBadAlloc) {
4111     AddDeclRef(SemaRef.getStdNamespace(), SemaDeclRefs);
4112     AddDeclRef(SemaRef.getStdBadAlloc(), SemaDeclRefs);
4113   }
4114 
4115   RecordData CUDASpecialDeclRefs;
4116   if (Context.getcudaConfigureCallDecl()) {
4117     AddDeclRef(Context.getcudaConfigureCallDecl(), CUDASpecialDeclRefs);
4118   }
4119 
4120   // Build a record containing all of the known namespaces.
4121   RecordData KnownNamespaces;
4122   for (llvm::MapVector<NamespaceDecl*, bool>::iterator
4123             I = SemaRef.KnownNamespaces.begin(),
4124          IEnd = SemaRef.KnownNamespaces.end();
4125        I != IEnd; ++I) {
4126     if (!I->second)
4127       AddDeclRef(I->first, KnownNamespaces);
4128   }
4129 
4130   // Build a record of all used, undefined objects that require definitions.
4131   RecordData UndefinedButUsed;
4132 
4133   SmallVector<std::pair<NamedDecl *, SourceLocation>, 16> Undefined;
4134   SemaRef.getUndefinedButUsed(Undefined);
4135   for (SmallVectorImpl<std::pair<NamedDecl *, SourceLocation> >::iterator
4136          I = Undefined.begin(), E = Undefined.end(); I != E; ++I) {
4137     AddDeclRef(I->first, UndefinedButUsed);
4138     AddSourceLocation(I->second, UndefinedButUsed);
4139   }
4140 
4141   // Write the control block
4142   WriteControlBlock(PP, Context, isysroot, OutputFile);
4143 
4144   // Write the remaining AST contents.
4145   RecordData Record;
4146   Stream.EnterSubblock(AST_BLOCK_ID, 5);
4147 
4148   // This is so that older clang versions, before the introduction
4149   // of the control block, can read and reject the newer PCH format.
4150   Record.clear();
4151   Record.push_back(VERSION_MAJOR);
4152   Stream.EmitRecord(METADATA_OLD_FORMAT, Record);
4153 
4154   // Create a lexical update block containing all of the declarations in the
4155   // translation unit that do not come from other AST files.
4156   const TranslationUnitDecl *TU = Context.getTranslationUnitDecl();
4157   SmallVector<KindDeclIDPair, 64> NewGlobalDecls;
4158   for (const auto *I : TU->noload_decls()) {
4159     if (!I->isFromASTFile())
4160       NewGlobalDecls.push_back(std::make_pair(I->getKind(), GetDeclRef(I)));
4161   }
4162 
4163   llvm::BitCodeAbbrev *Abv = new llvm::BitCodeAbbrev();
4164   Abv->Add(llvm::BitCodeAbbrevOp(TU_UPDATE_LEXICAL));
4165   Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Blob));
4166   unsigned TuUpdateLexicalAbbrev = Stream.EmitAbbrev(Abv);
4167   Record.clear();
4168   Record.push_back(TU_UPDATE_LEXICAL);
4169   Stream.EmitRecordWithBlob(TuUpdateLexicalAbbrev, Record,
4170                             data(NewGlobalDecls));
4171 
4172   // And a visible updates block for the translation unit.
4173   Abv = new llvm::BitCodeAbbrev();
4174   Abv->Add(llvm::BitCodeAbbrevOp(UPDATE_VISIBLE));
4175   Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::VBR, 6));
4176   Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Fixed, 32));
4177   Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Blob));
4178   UpdateVisibleAbbrev = Stream.EmitAbbrev(Abv);
4179   WriteDeclContextVisibleUpdate(TU);
4180 
4181   // If the translation unit has an anonymous namespace, and we don't already
4182   // have an update block for it, write it as an update block.
4183   // FIXME: Why do we not do this if there's already an update block?
4184   if (NamespaceDecl *NS = TU->getAnonymousNamespace()) {
4185     ASTWriter::UpdateRecord &Record = DeclUpdates[TU];
4186     if (Record.empty())
4187       Record.push_back(DeclUpdate(UPD_CXX_ADDED_ANONYMOUS_NAMESPACE, NS));
4188   }
4189 
4190   // Add update records for all mangling numbers and static local numbers.
4191   // These aren't really update records, but this is a convenient way of
4192   // tagging this rare extra data onto the declarations.
4193   for (const auto &Number : Context.MangleNumbers)
4194     if (!Number.first->isFromASTFile())
4195       DeclUpdates[Number.first].push_back(DeclUpdate(UPD_MANGLING_NUMBER,
4196                                                      Number.second));
4197   for (const auto &Number : Context.StaticLocalNumbers)
4198     if (!Number.first->isFromASTFile())
4199       DeclUpdates[Number.first].push_back(DeclUpdate(UPD_STATIC_LOCAL_NUMBER,
4200                                                      Number.second));
4201 
4202   // Make sure visible decls, added to DeclContexts previously loaded from
4203   // an AST file, are registered for serialization.
4204   for (SmallVectorImpl<const Decl *>::iterator
4205          I = UpdatingVisibleDecls.begin(),
4206          E = UpdatingVisibleDecls.end(); I != E; ++I) {
4207     GetDeclRef(*I);
4208   }
4209 
4210   // Make sure all decls associated with an identifier are registered for
4211   // serialization.
4212   for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(),
4213                               IDEnd = PP.getIdentifierTable().end();
4214        ID != IDEnd; ++ID) {
4215     const IdentifierInfo *II = ID->second;
4216     if (!Chain || !II->isFromAST() || II->hasChangedSinceDeserialization()) {
4217       for (IdentifierResolver::iterator D = SemaRef.IdResolver.begin(II),
4218                                      DEnd = SemaRef.IdResolver.end();
4219            D != DEnd; ++D) {
4220         GetDeclRef(*D);
4221       }
4222     }
4223   }
4224 
4225   // Form the record of special types.
4226   RecordData SpecialTypes;
4227   AddTypeRef(Context.getRawCFConstantStringType(), SpecialTypes);
4228   AddTypeRef(Context.getFILEType(), SpecialTypes);
4229   AddTypeRef(Context.getjmp_bufType(), SpecialTypes);
4230   AddTypeRef(Context.getsigjmp_bufType(), SpecialTypes);
4231   AddTypeRef(Context.ObjCIdRedefinitionType, SpecialTypes);
4232   AddTypeRef(Context.ObjCClassRedefinitionType, SpecialTypes);
4233   AddTypeRef(Context.ObjCSelRedefinitionType, SpecialTypes);
4234   AddTypeRef(Context.getucontext_tType(), SpecialTypes);
4235 
4236   if (Chain) {
4237     // Write the mapping information describing our module dependencies and how
4238     // each of those modules were mapped into our own offset/ID space, so that
4239     // the reader can build the appropriate mapping to its own offset/ID space.
4240     // The map consists solely of a blob with the following format:
4241     // *(module-name-len:i16 module-name:len*i8
4242     //   source-location-offset:i32
4243     //   identifier-id:i32
4244     //   preprocessed-entity-id:i32
4245     //   macro-definition-id:i32
4246     //   submodule-id:i32
4247     //   selector-id:i32
4248     //   declaration-id:i32
4249     //   c++-base-specifiers-id:i32
4250     //   type-id:i32)
4251     //
4252     llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev();
4253     Abbrev->Add(BitCodeAbbrevOp(MODULE_OFFSET_MAP));
4254     Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob));
4255     unsigned ModuleOffsetMapAbbrev = Stream.EmitAbbrev(Abbrev);
4256     SmallString<2048> Buffer;
4257     {
4258       llvm::raw_svector_ostream Out(Buffer);
4259       for (ModuleManager::ModuleConstIterator M = Chain->ModuleMgr.begin(),
4260                                            MEnd = Chain->ModuleMgr.end();
4261            M != MEnd; ++M) {
4262         using namespace llvm::support;
4263         endian::Writer<little> LE(Out);
4264         StringRef FileName = (*M)->FileName;
4265         LE.write<uint16_t>(FileName.size());
4266         Out.write(FileName.data(), FileName.size());
4267         LE.write<uint32_t>((*M)->SLocEntryBaseOffset);
4268         LE.write<uint32_t>((*M)->BaseIdentifierID);
4269         LE.write<uint32_t>((*M)->BaseMacroID);
4270         LE.write<uint32_t>((*M)->BasePreprocessedEntityID);
4271         LE.write<uint32_t>((*M)->BaseSubmoduleID);
4272         LE.write<uint32_t>((*M)->BaseSelectorID);
4273         LE.write<uint32_t>((*M)->BaseDeclID);
4274         LE.write<uint32_t>((*M)->BaseTypeIndex);
4275       }
4276     }
4277     Record.clear();
4278     Record.push_back(MODULE_OFFSET_MAP);
4279     Stream.EmitRecordWithBlob(ModuleOffsetMapAbbrev, Record,
4280                               Buffer.data(), Buffer.size());
4281   }
4282 
4283   RecordData DeclUpdatesOffsetsRecord;
4284 
4285   // Keep writing types, declarations, and declaration update records
4286   // until we've emitted all of them.
4287   Stream.EnterSubblock(DECLTYPES_BLOCK_ID, NUM_ALLOWED_ABBREVS_SIZE);
4288   WriteDeclsBlockAbbrevs();
4289   for (DeclsToRewriteTy::iterator I = DeclsToRewrite.begin(),
4290                                   E = DeclsToRewrite.end();
4291        I != E; ++I)
4292     DeclTypesToEmit.push(const_cast<Decl*>(*I));
4293   do {
4294     WriteDeclUpdatesBlocks(DeclUpdatesOffsetsRecord);
4295     while (!DeclTypesToEmit.empty()) {
4296       DeclOrType DOT = DeclTypesToEmit.front();
4297       DeclTypesToEmit.pop();
4298       if (DOT.isType())
4299         WriteType(DOT.getType());
4300       else
4301         WriteDecl(Context, DOT.getDecl());
4302     }
4303   } while (!DeclUpdates.empty());
4304   Stream.ExitBlock();
4305 
4306   DoneWritingDeclsAndTypes = true;
4307 
4308   // These things can only be done once we've written out decls and types.
4309   WriteTypeDeclOffsets();
4310   if (!DeclUpdatesOffsetsRecord.empty())
4311     Stream.EmitRecord(DECL_UPDATE_OFFSETS, DeclUpdatesOffsetsRecord);
4312   WriteCXXBaseSpecifiersOffsets();
4313   WriteFileDeclIDsMap();
4314   WriteSourceManagerBlock(Context.getSourceManager(), PP, isysroot);
4315 
4316   WriteComments();
4317   WritePreprocessor(PP, isModule);
4318   WriteHeaderSearch(PP.getHeaderSearchInfo(), isysroot);
4319   WriteSelectors(SemaRef);
4320   WriteReferencedSelectorsPool(SemaRef);
4321   WriteIdentifierTable(PP, SemaRef.IdResolver, isModule);
4322   WriteFPPragmaOptions(SemaRef.getFPOptions());
4323   WriteOpenCLExtensions(SemaRef);
4324   WritePragmaDiagnosticMappings(Context.getDiagnostics(), isModule);
4325 
4326   // If we're emitting a module, write out the submodule information.
4327   if (WritingModule)
4328     WriteSubmodules(WritingModule);
4329 
4330   Stream.EmitRecord(SPECIAL_TYPES, SpecialTypes);
4331 
4332   // Write the record containing external, unnamed definitions.
4333   if (!EagerlyDeserializedDecls.empty())
4334     Stream.EmitRecord(EAGERLY_DESERIALIZED_DECLS, EagerlyDeserializedDecls);
4335 
4336   // Write the record containing tentative definitions.
4337   if (!TentativeDefinitions.empty())
4338     Stream.EmitRecord(TENTATIVE_DEFINITIONS, TentativeDefinitions);
4339 
4340   // Write the record containing unused file scoped decls.
4341   if (!UnusedFileScopedDecls.empty())
4342     Stream.EmitRecord(UNUSED_FILESCOPED_DECLS, UnusedFileScopedDecls);
4343 
4344   // Write the record containing weak undeclared identifiers.
4345   if (!WeakUndeclaredIdentifiers.empty())
4346     Stream.EmitRecord(WEAK_UNDECLARED_IDENTIFIERS,
4347                       WeakUndeclaredIdentifiers);
4348 
4349   // Write the record containing locally-scoped extern "C" definitions.
4350   if (!LocallyScopedExternCDecls.empty())
4351     Stream.EmitRecord(LOCALLY_SCOPED_EXTERN_C_DECLS,
4352                       LocallyScopedExternCDecls);
4353 
4354   // Write the record containing ext_vector type names.
4355   if (!ExtVectorDecls.empty())
4356     Stream.EmitRecord(EXT_VECTOR_DECLS, ExtVectorDecls);
4357 
4358   // Write the record containing VTable uses information.
4359   if (!VTableUses.empty())
4360     Stream.EmitRecord(VTABLE_USES, VTableUses);
4361 
4362   // Write the record containing dynamic classes declarations.
4363   if (!DynamicClasses.empty())
4364     Stream.EmitRecord(DYNAMIC_CLASSES, DynamicClasses);
4365 
4366   // Write the record containing pending implicit instantiations.
4367   if (!PendingInstantiations.empty())
4368     Stream.EmitRecord(PENDING_IMPLICIT_INSTANTIATIONS, PendingInstantiations);
4369 
4370   // Write the record containing declaration references of Sema.
4371   if (!SemaDeclRefs.empty())
4372     Stream.EmitRecord(SEMA_DECL_REFS, SemaDeclRefs);
4373 
4374   // Write the record containing CUDA-specific declaration references.
4375   if (!CUDASpecialDeclRefs.empty())
4376     Stream.EmitRecord(CUDA_SPECIAL_DECL_REFS, CUDASpecialDeclRefs);
4377 
4378   // Write the delegating constructors.
4379   if (!DelegatingCtorDecls.empty())
4380     Stream.EmitRecord(DELEGATING_CTORS, DelegatingCtorDecls);
4381 
4382   // Write the known namespaces.
4383   if (!KnownNamespaces.empty())
4384     Stream.EmitRecord(KNOWN_NAMESPACES, KnownNamespaces);
4385 
4386   // Write the undefined internal functions and variables, and inline functions.
4387   if (!UndefinedButUsed.empty())
4388     Stream.EmitRecord(UNDEFINED_BUT_USED, UndefinedButUsed);
4389 
4390   // Write the visible updates to DeclContexts.
4391   for (llvm::SmallPtrSet<const DeclContext *, 16>::iterator
4392        I = UpdatedDeclContexts.begin(),
4393        E = UpdatedDeclContexts.end();
4394        I != E; ++I)
4395     WriteDeclContextVisibleUpdate(*I);
4396 
4397   if (!WritingModule) {
4398     // Write the submodules that were imported, if any.
4399     struct ModuleInfo {
4400       uint64_t ID;
4401       Module *M;
4402       ModuleInfo(uint64_t ID, Module *M) : ID(ID), M(M) {}
4403     };
4404     llvm::SmallVector<ModuleInfo, 64> Imports;
4405     for (const auto *I : Context.local_imports()) {
4406       assert(SubmoduleIDs.find(I->getImportedModule()) != SubmoduleIDs.end());
4407       Imports.push_back(ModuleInfo(SubmoduleIDs[I->getImportedModule()],
4408                          I->getImportedModule()));
4409     }
4410 
4411     if (!Imports.empty()) {
4412       auto Cmp = [](const ModuleInfo &A, const ModuleInfo &B) {
4413         return A.ID < B.ID;
4414       };
4415 
4416       // Sort and deduplicate module IDs.
4417       std::sort(Imports.begin(), Imports.end(), Cmp);
4418       Imports.erase(std::unique(Imports.begin(), Imports.end(), Cmp),
4419                     Imports.end());
4420 
4421       RecordData ImportedModules;
4422       for (const auto &Import : Imports) {
4423         ImportedModules.push_back(Import.ID);
4424         // FIXME: If the module has macros imported then later has declarations
4425         // imported, this location won't be the right one as a location for the
4426         // declaration imports.
4427         AddSourceLocation(Import.M->MacroVisibilityLoc, ImportedModules);
4428       }
4429 
4430       Stream.EmitRecord(IMPORTED_MODULES, ImportedModules);
4431     }
4432   }
4433 
4434   WriteDeclReplacementsBlock();
4435   WriteRedeclarations();
4436   WriteMergedDecls();
4437   WriteObjCCategories();
4438   WriteLateParsedTemplates(SemaRef);
4439 
4440   // Some simple statistics
4441   Record.clear();
4442   Record.push_back(NumStatements);
4443   Record.push_back(NumMacros);
4444   Record.push_back(NumLexicalDeclContexts);
4445   Record.push_back(NumVisibleDeclContexts);
4446   Stream.EmitRecord(STATISTICS, Record);
4447   Stream.ExitBlock();
4448 }
4449 
4450 void ASTWriter::WriteDeclUpdatesBlocks(RecordDataImpl &OffsetsRecord) {
4451   if (DeclUpdates.empty())
4452     return;
4453 
4454   DeclUpdateMap LocalUpdates;
4455   LocalUpdates.swap(DeclUpdates);
4456 
4457   for (auto &DeclUpdate : LocalUpdates) {
4458     const Decl *D = DeclUpdate.first;
4459     if (isRewritten(D))
4460       continue; // The decl will be written completely,no need to store updates.
4461 
4462     OffsetsRecord.push_back(GetDeclRef(D));
4463     OffsetsRecord.push_back(Stream.GetCurrentBitNo());
4464 
4465     bool HasUpdatedBody = false;
4466     RecordData Record;
4467     for (auto &Update : DeclUpdate.second) {
4468       DeclUpdateKind Kind = (DeclUpdateKind)Update.getKind();
4469 
4470       Record.push_back(Kind);
4471       switch (Kind) {
4472       case UPD_CXX_ADDED_IMPLICIT_MEMBER:
4473       case UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION:
4474       case UPD_CXX_ADDED_ANONYMOUS_NAMESPACE:
4475         Record.push_back(GetDeclRef(Update.getDecl()));
4476         break;
4477 
4478       case UPD_CXX_INSTANTIATED_STATIC_DATA_MEMBER:
4479         AddSourceLocation(Update.getLoc(), Record);
4480         break;
4481 
4482       case UPD_CXX_INSTANTIATED_FUNCTION_DEFINITION:
4483         // An updated body is emitted last, so that the reader doesn't need
4484         // to skip over the lazy body to reach statements for other records.
4485         Record.pop_back();
4486         HasUpdatedBody = true;
4487         break;
4488 
4489       case UPD_CXX_RESOLVED_EXCEPTION_SPEC:
4490         addExceptionSpec(
4491             *this,
4492             cast<FunctionDecl>(D)->getType()->castAs<FunctionProtoType>(),
4493             Record);
4494         break;
4495 
4496       case UPD_CXX_DEDUCED_RETURN_TYPE:
4497         Record.push_back(GetOrCreateTypeID(Update.getType()));
4498         break;
4499 
4500       case UPD_DECL_MARKED_USED:
4501         break;
4502 
4503       case UPD_MANGLING_NUMBER:
4504       case UPD_STATIC_LOCAL_NUMBER:
4505         Record.push_back(Update.getNumber());
4506         break;
4507       }
4508     }
4509 
4510     if (HasUpdatedBody) {
4511       const FunctionDecl *Def = cast<FunctionDecl>(D);
4512       Record.push_back(UPD_CXX_INSTANTIATED_FUNCTION_DEFINITION);
4513       Record.push_back(Def->isInlined());
4514       AddSourceLocation(Def->getInnerLocStart(), Record);
4515       AddFunctionDefinition(Def, Record);
4516     }
4517 
4518     Stream.EmitRecord(DECL_UPDATES, Record);
4519 
4520     // Flush any statements that were written as part of this update record.
4521     FlushStmts();
4522   }
4523 }
4524 
4525 void ASTWriter::WriteDeclReplacementsBlock() {
4526   if (ReplacedDecls.empty())
4527     return;
4528 
4529   RecordData Record;
4530   for (SmallVectorImpl<ReplacedDeclInfo>::iterator
4531          I = ReplacedDecls.begin(), E = ReplacedDecls.end(); I != E; ++I) {
4532     Record.push_back(I->ID);
4533     Record.push_back(I->Offset);
4534     Record.push_back(I->Loc);
4535   }
4536   Stream.EmitRecord(DECL_REPLACEMENTS, Record);
4537 }
4538 
4539 void ASTWriter::AddSourceLocation(SourceLocation Loc, RecordDataImpl &Record) {
4540   Record.push_back(Loc.getRawEncoding());
4541 }
4542 
4543 void ASTWriter::AddSourceRange(SourceRange Range, RecordDataImpl &Record) {
4544   AddSourceLocation(Range.getBegin(), Record);
4545   AddSourceLocation(Range.getEnd(), Record);
4546 }
4547 
4548 void ASTWriter::AddAPInt(const llvm::APInt &Value, RecordDataImpl &Record) {
4549   Record.push_back(Value.getBitWidth());
4550   const uint64_t *Words = Value.getRawData();
4551   Record.append(Words, Words + Value.getNumWords());
4552 }
4553 
4554 void ASTWriter::AddAPSInt(const llvm::APSInt &Value, RecordDataImpl &Record) {
4555   Record.push_back(Value.isUnsigned());
4556   AddAPInt(Value, Record);
4557 }
4558 
4559 void ASTWriter::AddAPFloat(const llvm::APFloat &Value, RecordDataImpl &Record) {
4560   AddAPInt(Value.bitcastToAPInt(), Record);
4561 }
4562 
4563 void ASTWriter::AddIdentifierRef(const IdentifierInfo *II, RecordDataImpl &Record) {
4564   Record.push_back(getIdentifierRef(II));
4565 }
4566 
4567 IdentID ASTWriter::getIdentifierRef(const IdentifierInfo *II) {
4568   if (II == 0)
4569     return 0;
4570 
4571   IdentID &ID = IdentifierIDs[II];
4572   if (ID == 0)
4573     ID = NextIdentID++;
4574   return ID;
4575 }
4576 
4577 MacroID ASTWriter::getMacroRef(MacroInfo *MI, const IdentifierInfo *Name) {
4578   // Don't emit builtin macros like __LINE__ to the AST file unless they
4579   // have been redefined by the header (in which case they are not
4580   // isBuiltinMacro).
4581   if (MI == 0 || MI->isBuiltinMacro())
4582     return 0;
4583 
4584   MacroID &ID = MacroIDs[MI];
4585   if (ID == 0) {
4586     ID = NextMacroID++;
4587     MacroInfoToEmitData Info = { Name, MI, ID };
4588     MacroInfosToEmit.push_back(Info);
4589   }
4590   return ID;
4591 }
4592 
4593 MacroID ASTWriter::getMacroID(MacroInfo *MI) {
4594   if (MI == 0 || MI->isBuiltinMacro())
4595     return 0;
4596 
4597   assert(MacroIDs.find(MI) != MacroIDs.end() && "Macro not emitted!");
4598   return MacroIDs[MI];
4599 }
4600 
4601 uint64_t ASTWriter::getMacroDirectivesOffset(const IdentifierInfo *Name) {
4602   assert(IdentMacroDirectivesOffsetMap[Name] && "not set!");
4603   return IdentMacroDirectivesOffsetMap[Name];
4604 }
4605 
4606 void ASTWriter::AddSelectorRef(const Selector SelRef, RecordDataImpl &Record) {
4607   Record.push_back(getSelectorRef(SelRef));
4608 }
4609 
4610 SelectorID ASTWriter::getSelectorRef(Selector Sel) {
4611   if (Sel.getAsOpaquePtr() == 0) {
4612     return 0;
4613   }
4614 
4615   SelectorID SID = SelectorIDs[Sel];
4616   if (SID == 0 && Chain) {
4617     // This might trigger a ReadSelector callback, which will set the ID for
4618     // this selector.
4619     Chain->LoadSelector(Sel);
4620     SID = SelectorIDs[Sel];
4621   }
4622   if (SID == 0) {
4623     SID = NextSelectorID++;
4624     SelectorIDs[Sel] = SID;
4625   }
4626   return SID;
4627 }
4628 
4629 void ASTWriter::AddCXXTemporary(const CXXTemporary *Temp, RecordDataImpl &Record) {
4630   AddDeclRef(Temp->getDestructor(), Record);
4631 }
4632 
4633 void ASTWriter::AddCXXBaseSpecifiersRef(CXXBaseSpecifier const *Bases,
4634                                       CXXBaseSpecifier const *BasesEnd,
4635                                         RecordDataImpl &Record) {
4636   assert(Bases != BasesEnd && "Empty base-specifier sets are not recorded");
4637   CXXBaseSpecifiersToWrite.push_back(
4638                                 QueuedCXXBaseSpecifiers(NextCXXBaseSpecifiersID,
4639                                                         Bases, BasesEnd));
4640   Record.push_back(NextCXXBaseSpecifiersID++);
4641 }
4642 
4643 void ASTWriter::AddTemplateArgumentLocInfo(TemplateArgument::ArgKind Kind,
4644                                            const TemplateArgumentLocInfo &Arg,
4645                                            RecordDataImpl &Record) {
4646   switch (Kind) {
4647   case TemplateArgument::Expression:
4648     AddStmt(Arg.getAsExpr());
4649     break;
4650   case TemplateArgument::Type:
4651     AddTypeSourceInfo(Arg.getAsTypeSourceInfo(), Record);
4652     break;
4653   case TemplateArgument::Template:
4654     AddNestedNameSpecifierLoc(Arg.getTemplateQualifierLoc(), Record);
4655     AddSourceLocation(Arg.getTemplateNameLoc(), Record);
4656     break;
4657   case TemplateArgument::TemplateExpansion:
4658     AddNestedNameSpecifierLoc(Arg.getTemplateQualifierLoc(), Record);
4659     AddSourceLocation(Arg.getTemplateNameLoc(), Record);
4660     AddSourceLocation(Arg.getTemplateEllipsisLoc(), Record);
4661     break;
4662   case TemplateArgument::Null:
4663   case TemplateArgument::Integral:
4664   case TemplateArgument::Declaration:
4665   case TemplateArgument::NullPtr:
4666   case TemplateArgument::Pack:
4667     // FIXME: Is this right?
4668     break;
4669   }
4670 }
4671 
4672 void ASTWriter::AddTemplateArgumentLoc(const TemplateArgumentLoc &Arg,
4673                                        RecordDataImpl &Record) {
4674   AddTemplateArgument(Arg.getArgument(), Record);
4675 
4676   if (Arg.getArgument().getKind() == TemplateArgument::Expression) {
4677     bool InfoHasSameExpr
4678       = Arg.getArgument().getAsExpr() == Arg.getLocInfo().getAsExpr();
4679     Record.push_back(InfoHasSameExpr);
4680     if (InfoHasSameExpr)
4681       return; // Avoid storing the same expr twice.
4682   }
4683   AddTemplateArgumentLocInfo(Arg.getArgument().getKind(), Arg.getLocInfo(),
4684                              Record);
4685 }
4686 
4687 void ASTWriter::AddTypeSourceInfo(TypeSourceInfo *TInfo,
4688                                   RecordDataImpl &Record) {
4689   if (TInfo == 0) {
4690     AddTypeRef(QualType(), Record);
4691     return;
4692   }
4693 
4694   AddTypeLoc(TInfo->getTypeLoc(), Record);
4695 }
4696 
4697 void ASTWriter::AddTypeLoc(TypeLoc TL, RecordDataImpl &Record) {
4698   AddTypeRef(TL.getType(), Record);
4699 
4700   TypeLocWriter TLW(*this, Record);
4701   for (; !TL.isNull(); TL = TL.getNextTypeLoc())
4702     TLW.Visit(TL);
4703 }
4704 
4705 void ASTWriter::AddTypeRef(QualType T, RecordDataImpl &Record) {
4706   Record.push_back(GetOrCreateTypeID(T));
4707 }
4708 
4709 TypeID ASTWriter::GetOrCreateTypeID( QualType T) {
4710   assert(Context);
4711   return MakeTypeID(*Context, T,
4712               std::bind1st(std::mem_fun(&ASTWriter::GetOrCreateTypeIdx), this));
4713 }
4714 
4715 TypeID ASTWriter::getTypeID(QualType T) const {
4716   assert(Context);
4717   return MakeTypeID(*Context, T,
4718               std::bind1st(std::mem_fun(&ASTWriter::getTypeIdx), this));
4719 }
4720 
4721 TypeIdx ASTWriter::GetOrCreateTypeIdx(QualType T) {
4722   if (T.isNull())
4723     return TypeIdx();
4724   assert(!T.getLocalFastQualifiers());
4725 
4726   TypeIdx &Idx = TypeIdxs[T];
4727   if (Idx.getIndex() == 0) {
4728     if (DoneWritingDeclsAndTypes) {
4729       assert(0 && "New type seen after serializing all the types to emit!");
4730       return TypeIdx();
4731     }
4732 
4733     // We haven't seen this type before. Assign it a new ID and put it
4734     // into the queue of types to emit.
4735     Idx = TypeIdx(NextTypeID++);
4736     DeclTypesToEmit.push(T);
4737   }
4738   return Idx;
4739 }
4740 
4741 TypeIdx ASTWriter::getTypeIdx(QualType T) const {
4742   if (T.isNull())
4743     return TypeIdx();
4744   assert(!T.getLocalFastQualifiers());
4745 
4746   TypeIdxMap::const_iterator I = TypeIdxs.find(T);
4747   assert(I != TypeIdxs.end() && "Type not emitted!");
4748   return I->second;
4749 }
4750 
4751 void ASTWriter::AddDeclRef(const Decl *D, RecordDataImpl &Record) {
4752   Record.push_back(GetDeclRef(D));
4753 }
4754 
4755 DeclID ASTWriter::GetDeclRef(const Decl *D) {
4756   assert(WritingAST && "Cannot request a declaration ID before AST writing");
4757 
4758   if (D == 0) {
4759     return 0;
4760   }
4761 
4762   // If D comes from an AST file, its declaration ID is already known and
4763   // fixed.
4764   if (D->isFromASTFile())
4765     return D->getGlobalID();
4766 
4767   assert(!(reinterpret_cast<uintptr_t>(D) & 0x01) && "Invalid decl pointer");
4768   DeclID &ID = DeclIDs[D];
4769   if (ID == 0) {
4770     if (DoneWritingDeclsAndTypes) {
4771       assert(0 && "New decl seen after serializing all the decls to emit!");
4772       return 0;
4773     }
4774 
4775     // We haven't seen this declaration before. Give it a new ID and
4776     // enqueue it in the list of declarations to emit.
4777     ID = NextDeclID++;
4778     DeclTypesToEmit.push(const_cast<Decl *>(D));
4779   }
4780 
4781   return ID;
4782 }
4783 
4784 DeclID ASTWriter::getDeclID(const Decl *D) {
4785   if (D == 0)
4786     return 0;
4787 
4788   // If D comes from an AST file, its declaration ID is already known and
4789   // fixed.
4790   if (D->isFromASTFile())
4791     return D->getGlobalID();
4792 
4793   assert(DeclIDs.find(D) != DeclIDs.end() && "Declaration not emitted!");
4794   return DeclIDs[D];
4795 }
4796 
4797 void ASTWriter::associateDeclWithFile(const Decl *D, DeclID ID) {
4798   assert(ID);
4799   assert(D);
4800 
4801   SourceLocation Loc = D->getLocation();
4802   if (Loc.isInvalid())
4803     return;
4804 
4805   // We only keep track of the file-level declarations of each file.
4806   if (!D->getLexicalDeclContext()->isFileContext())
4807     return;
4808   // FIXME: ParmVarDecls that are part of a function type of a parameter of
4809   // a function/objc method, should not have TU as lexical context.
4810   if (isa<ParmVarDecl>(D))
4811     return;
4812 
4813   SourceManager &SM = Context->getSourceManager();
4814   SourceLocation FileLoc = SM.getFileLoc(Loc);
4815   assert(SM.isLocalSourceLocation(FileLoc));
4816   FileID FID;
4817   unsigned Offset;
4818   std::tie(FID, Offset) = SM.getDecomposedLoc(FileLoc);
4819   if (FID.isInvalid())
4820     return;
4821   assert(SM.getSLocEntry(FID).isFile());
4822 
4823   DeclIDInFileInfo *&Info = FileDeclIDs[FID];
4824   if (!Info)
4825     Info = new DeclIDInFileInfo();
4826 
4827   std::pair<unsigned, serialization::DeclID> LocDecl(Offset, ID);
4828   LocDeclIDsTy &Decls = Info->DeclIDs;
4829 
4830   if (Decls.empty() || Decls.back().first <= Offset) {
4831     Decls.push_back(LocDecl);
4832     return;
4833   }
4834 
4835   LocDeclIDsTy::iterator I =
4836       std::upper_bound(Decls.begin(), Decls.end(), LocDecl, llvm::less_first());
4837 
4838   Decls.insert(I, LocDecl);
4839 }
4840 
4841 void ASTWriter::AddDeclarationName(DeclarationName Name, RecordDataImpl &Record) {
4842   // FIXME: Emit a stable enum for NameKind.  0 = Identifier etc.
4843   Record.push_back(Name.getNameKind());
4844   switch (Name.getNameKind()) {
4845   case DeclarationName::Identifier:
4846     AddIdentifierRef(Name.getAsIdentifierInfo(), Record);
4847     break;
4848 
4849   case DeclarationName::ObjCZeroArgSelector:
4850   case DeclarationName::ObjCOneArgSelector:
4851   case DeclarationName::ObjCMultiArgSelector:
4852     AddSelectorRef(Name.getObjCSelector(), Record);
4853     break;
4854 
4855   case DeclarationName::CXXConstructorName:
4856   case DeclarationName::CXXDestructorName:
4857   case DeclarationName::CXXConversionFunctionName:
4858     AddTypeRef(Name.getCXXNameType(), Record);
4859     break;
4860 
4861   case DeclarationName::CXXOperatorName:
4862     Record.push_back(Name.getCXXOverloadedOperator());
4863     break;
4864 
4865   case DeclarationName::CXXLiteralOperatorName:
4866     AddIdentifierRef(Name.getCXXLiteralIdentifier(), Record);
4867     break;
4868 
4869   case DeclarationName::CXXUsingDirective:
4870     // No extra data to emit
4871     break;
4872   }
4873 }
4874 
4875 void ASTWriter::AddDeclarationNameLoc(const DeclarationNameLoc &DNLoc,
4876                                      DeclarationName Name, RecordDataImpl &Record) {
4877   switch (Name.getNameKind()) {
4878   case DeclarationName::CXXConstructorName:
4879   case DeclarationName::CXXDestructorName:
4880   case DeclarationName::CXXConversionFunctionName:
4881     AddTypeSourceInfo(DNLoc.NamedType.TInfo, Record);
4882     break;
4883 
4884   case DeclarationName::CXXOperatorName:
4885     AddSourceLocation(
4886        SourceLocation::getFromRawEncoding(DNLoc.CXXOperatorName.BeginOpNameLoc),
4887        Record);
4888     AddSourceLocation(
4889         SourceLocation::getFromRawEncoding(DNLoc.CXXOperatorName.EndOpNameLoc),
4890         Record);
4891     break;
4892 
4893   case DeclarationName::CXXLiteralOperatorName:
4894     AddSourceLocation(
4895      SourceLocation::getFromRawEncoding(DNLoc.CXXLiteralOperatorName.OpNameLoc),
4896      Record);
4897     break;
4898 
4899   case DeclarationName::Identifier:
4900   case DeclarationName::ObjCZeroArgSelector:
4901   case DeclarationName::ObjCOneArgSelector:
4902   case DeclarationName::ObjCMultiArgSelector:
4903   case DeclarationName::CXXUsingDirective:
4904     break;
4905   }
4906 }
4907 
4908 void ASTWriter::AddDeclarationNameInfo(const DeclarationNameInfo &NameInfo,
4909                                        RecordDataImpl &Record) {
4910   AddDeclarationName(NameInfo.getName(), Record);
4911   AddSourceLocation(NameInfo.getLoc(), Record);
4912   AddDeclarationNameLoc(NameInfo.getInfo(), NameInfo.getName(), Record);
4913 }
4914 
4915 void ASTWriter::AddQualifierInfo(const QualifierInfo &Info,
4916                                  RecordDataImpl &Record) {
4917   AddNestedNameSpecifierLoc(Info.QualifierLoc, Record);
4918   Record.push_back(Info.NumTemplParamLists);
4919   for (unsigned i=0, e=Info.NumTemplParamLists; i != e; ++i)
4920     AddTemplateParameterList(Info.TemplParamLists[i], Record);
4921 }
4922 
4923 void ASTWriter::AddNestedNameSpecifier(NestedNameSpecifier *NNS,
4924                                        RecordDataImpl &Record) {
4925   // Nested name specifiers usually aren't too long. I think that 8 would
4926   // typically accommodate the vast majority.
4927   SmallVector<NestedNameSpecifier *, 8> NestedNames;
4928 
4929   // Push each of the NNS's onto a stack for serialization in reverse order.
4930   while (NNS) {
4931     NestedNames.push_back(NNS);
4932     NNS = NNS->getPrefix();
4933   }
4934 
4935   Record.push_back(NestedNames.size());
4936   while(!NestedNames.empty()) {
4937     NNS = NestedNames.pop_back_val();
4938     NestedNameSpecifier::SpecifierKind Kind = NNS->getKind();
4939     Record.push_back(Kind);
4940     switch (Kind) {
4941     case NestedNameSpecifier::Identifier:
4942       AddIdentifierRef(NNS->getAsIdentifier(), Record);
4943       break;
4944 
4945     case NestedNameSpecifier::Namespace:
4946       AddDeclRef(NNS->getAsNamespace(), Record);
4947       break;
4948 
4949     case NestedNameSpecifier::NamespaceAlias:
4950       AddDeclRef(NNS->getAsNamespaceAlias(), Record);
4951       break;
4952 
4953     case NestedNameSpecifier::TypeSpec:
4954     case NestedNameSpecifier::TypeSpecWithTemplate:
4955       AddTypeRef(QualType(NNS->getAsType(), 0), Record);
4956       Record.push_back(Kind == NestedNameSpecifier::TypeSpecWithTemplate);
4957       break;
4958 
4959     case NestedNameSpecifier::Global:
4960       // Don't need to write an associated value.
4961       break;
4962     }
4963   }
4964 }
4965 
4966 void ASTWriter::AddNestedNameSpecifierLoc(NestedNameSpecifierLoc NNS,
4967                                           RecordDataImpl &Record) {
4968   // Nested name specifiers usually aren't too long. I think that 8 would
4969   // typically accommodate the vast majority.
4970   SmallVector<NestedNameSpecifierLoc , 8> NestedNames;
4971 
4972   // Push each of the nested-name-specifiers's onto a stack for
4973   // serialization in reverse order.
4974   while (NNS) {
4975     NestedNames.push_back(NNS);
4976     NNS = NNS.getPrefix();
4977   }
4978 
4979   Record.push_back(NestedNames.size());
4980   while(!NestedNames.empty()) {
4981     NNS = NestedNames.pop_back_val();
4982     NestedNameSpecifier::SpecifierKind Kind
4983       = NNS.getNestedNameSpecifier()->getKind();
4984     Record.push_back(Kind);
4985     switch (Kind) {
4986     case NestedNameSpecifier::Identifier:
4987       AddIdentifierRef(NNS.getNestedNameSpecifier()->getAsIdentifier(), Record);
4988       AddSourceRange(NNS.getLocalSourceRange(), Record);
4989       break;
4990 
4991     case NestedNameSpecifier::Namespace:
4992       AddDeclRef(NNS.getNestedNameSpecifier()->getAsNamespace(), Record);
4993       AddSourceRange(NNS.getLocalSourceRange(), Record);
4994       break;
4995 
4996     case NestedNameSpecifier::NamespaceAlias:
4997       AddDeclRef(NNS.getNestedNameSpecifier()->getAsNamespaceAlias(), Record);
4998       AddSourceRange(NNS.getLocalSourceRange(), Record);
4999       break;
5000 
5001     case NestedNameSpecifier::TypeSpec:
5002     case NestedNameSpecifier::TypeSpecWithTemplate:
5003       Record.push_back(Kind == NestedNameSpecifier::TypeSpecWithTemplate);
5004       AddTypeLoc(NNS.getTypeLoc(), Record);
5005       AddSourceLocation(NNS.getLocalSourceRange().getEnd(), Record);
5006       break;
5007 
5008     case NestedNameSpecifier::Global:
5009       AddSourceLocation(NNS.getLocalSourceRange().getEnd(), Record);
5010       break;
5011     }
5012   }
5013 }
5014 
5015 void ASTWriter::AddTemplateName(TemplateName Name, RecordDataImpl &Record) {
5016   TemplateName::NameKind Kind = Name.getKind();
5017   Record.push_back(Kind);
5018   switch (Kind) {
5019   case TemplateName::Template:
5020     AddDeclRef(Name.getAsTemplateDecl(), Record);
5021     break;
5022 
5023   case TemplateName::OverloadedTemplate: {
5024     OverloadedTemplateStorage *OvT = Name.getAsOverloadedTemplate();
5025     Record.push_back(OvT->size());
5026     for (OverloadedTemplateStorage::iterator I = OvT->begin(), E = OvT->end();
5027            I != E; ++I)
5028       AddDeclRef(*I, Record);
5029     break;
5030   }
5031 
5032   case TemplateName::QualifiedTemplate: {
5033     QualifiedTemplateName *QualT = Name.getAsQualifiedTemplateName();
5034     AddNestedNameSpecifier(QualT->getQualifier(), Record);
5035     Record.push_back(QualT->hasTemplateKeyword());
5036     AddDeclRef(QualT->getTemplateDecl(), Record);
5037     break;
5038   }
5039 
5040   case TemplateName::DependentTemplate: {
5041     DependentTemplateName *DepT = Name.getAsDependentTemplateName();
5042     AddNestedNameSpecifier(DepT->getQualifier(), Record);
5043     Record.push_back(DepT->isIdentifier());
5044     if (DepT->isIdentifier())
5045       AddIdentifierRef(DepT->getIdentifier(), Record);
5046     else
5047       Record.push_back(DepT->getOperator());
5048     break;
5049   }
5050 
5051   case TemplateName::SubstTemplateTemplateParm: {
5052     SubstTemplateTemplateParmStorage *subst
5053       = Name.getAsSubstTemplateTemplateParm();
5054     AddDeclRef(subst->getParameter(), Record);
5055     AddTemplateName(subst->getReplacement(), Record);
5056     break;
5057   }
5058 
5059   case TemplateName::SubstTemplateTemplateParmPack: {
5060     SubstTemplateTemplateParmPackStorage *SubstPack
5061       = Name.getAsSubstTemplateTemplateParmPack();
5062     AddDeclRef(SubstPack->getParameterPack(), Record);
5063     AddTemplateArgument(SubstPack->getArgumentPack(), Record);
5064     break;
5065   }
5066   }
5067 }
5068 
5069 void ASTWriter::AddTemplateArgument(const TemplateArgument &Arg,
5070                                     RecordDataImpl &Record) {
5071   Record.push_back(Arg.getKind());
5072   switch (Arg.getKind()) {
5073   case TemplateArgument::Null:
5074     break;
5075   case TemplateArgument::Type:
5076     AddTypeRef(Arg.getAsType(), Record);
5077     break;
5078   case TemplateArgument::Declaration:
5079     AddDeclRef(Arg.getAsDecl(), Record);
5080     Record.push_back(Arg.isDeclForReferenceParam());
5081     break;
5082   case TemplateArgument::NullPtr:
5083     AddTypeRef(Arg.getNullPtrType(), Record);
5084     break;
5085   case TemplateArgument::Integral:
5086     AddAPSInt(Arg.getAsIntegral(), Record);
5087     AddTypeRef(Arg.getIntegralType(), Record);
5088     break;
5089   case TemplateArgument::Template:
5090     AddTemplateName(Arg.getAsTemplateOrTemplatePattern(), Record);
5091     break;
5092   case TemplateArgument::TemplateExpansion:
5093     AddTemplateName(Arg.getAsTemplateOrTemplatePattern(), Record);
5094     if (Optional<unsigned> NumExpansions = Arg.getNumTemplateExpansions())
5095       Record.push_back(*NumExpansions + 1);
5096     else
5097       Record.push_back(0);
5098     break;
5099   case TemplateArgument::Expression:
5100     AddStmt(Arg.getAsExpr());
5101     break;
5102   case TemplateArgument::Pack:
5103     Record.push_back(Arg.pack_size());
5104     for (TemplateArgument::pack_iterator I=Arg.pack_begin(), E=Arg.pack_end();
5105            I != E; ++I)
5106       AddTemplateArgument(*I, Record);
5107     break;
5108   }
5109 }
5110 
5111 void
5112 ASTWriter::AddTemplateParameterList(const TemplateParameterList *TemplateParams,
5113                                     RecordDataImpl &Record) {
5114   assert(TemplateParams && "No TemplateParams!");
5115   AddSourceLocation(TemplateParams->getTemplateLoc(), Record);
5116   AddSourceLocation(TemplateParams->getLAngleLoc(), Record);
5117   AddSourceLocation(TemplateParams->getRAngleLoc(), Record);
5118   Record.push_back(TemplateParams->size());
5119   for (TemplateParameterList::const_iterator
5120          P = TemplateParams->begin(), PEnd = TemplateParams->end();
5121          P != PEnd; ++P)
5122     AddDeclRef(*P, Record);
5123 }
5124 
5125 /// \brief Emit a template argument list.
5126 void
5127 ASTWriter::AddTemplateArgumentList(const TemplateArgumentList *TemplateArgs,
5128                                    RecordDataImpl &Record) {
5129   assert(TemplateArgs && "No TemplateArgs!");
5130   Record.push_back(TemplateArgs->size());
5131   for (int i=0, e = TemplateArgs->size(); i != e; ++i)
5132     AddTemplateArgument(TemplateArgs->get(i), Record);
5133 }
5134 
5135 void
5136 ASTWriter::AddASTTemplateArgumentListInfo
5137 (const ASTTemplateArgumentListInfo *ASTTemplArgList, RecordDataImpl &Record) {
5138   assert(ASTTemplArgList && "No ASTTemplArgList!");
5139   AddSourceLocation(ASTTemplArgList->LAngleLoc, Record);
5140   AddSourceLocation(ASTTemplArgList->RAngleLoc, Record);
5141   Record.push_back(ASTTemplArgList->NumTemplateArgs);
5142   const TemplateArgumentLoc *TemplArgs = ASTTemplArgList->getTemplateArgs();
5143   for (int i=0, e = ASTTemplArgList->NumTemplateArgs; i != e; ++i)
5144     AddTemplateArgumentLoc(TemplArgs[i], Record);
5145 }
5146 
5147 void
5148 ASTWriter::AddUnresolvedSet(const ASTUnresolvedSet &Set, RecordDataImpl &Record) {
5149   Record.push_back(Set.size());
5150   for (ASTUnresolvedSet::const_iterator
5151          I = Set.begin(), E = Set.end(); I != E; ++I) {
5152     AddDeclRef(I.getDecl(), Record);
5153     Record.push_back(I.getAccess());
5154   }
5155 }
5156 
5157 void ASTWriter::AddCXXBaseSpecifier(const CXXBaseSpecifier &Base,
5158                                     RecordDataImpl &Record) {
5159   Record.push_back(Base.isVirtual());
5160   Record.push_back(Base.isBaseOfClass());
5161   Record.push_back(Base.getAccessSpecifierAsWritten());
5162   Record.push_back(Base.getInheritConstructors());
5163   AddTypeSourceInfo(Base.getTypeSourceInfo(), Record);
5164   AddSourceRange(Base.getSourceRange(), Record);
5165   AddSourceLocation(Base.isPackExpansion()? Base.getEllipsisLoc()
5166                                           : SourceLocation(),
5167                     Record);
5168 }
5169 
5170 void ASTWriter::FlushCXXBaseSpecifiers() {
5171   RecordData Record;
5172   for (unsigned I = 0, N = CXXBaseSpecifiersToWrite.size(); I != N; ++I) {
5173     Record.clear();
5174 
5175     // Record the offset of this base-specifier set.
5176     unsigned Index = CXXBaseSpecifiersToWrite[I].ID - 1;
5177     if (Index == CXXBaseSpecifiersOffsets.size())
5178       CXXBaseSpecifiersOffsets.push_back(Stream.GetCurrentBitNo());
5179     else {
5180       if (Index > CXXBaseSpecifiersOffsets.size())
5181         CXXBaseSpecifiersOffsets.resize(Index + 1);
5182       CXXBaseSpecifiersOffsets[Index] = Stream.GetCurrentBitNo();
5183     }
5184 
5185     const CXXBaseSpecifier *B = CXXBaseSpecifiersToWrite[I].Bases,
5186                         *BEnd = CXXBaseSpecifiersToWrite[I].BasesEnd;
5187     Record.push_back(BEnd - B);
5188     for (; B != BEnd; ++B)
5189       AddCXXBaseSpecifier(*B, Record);
5190     Stream.EmitRecord(serialization::DECL_CXX_BASE_SPECIFIERS, Record);
5191 
5192     // Flush any expressions that were written as part of the base specifiers.
5193     FlushStmts();
5194   }
5195 
5196   CXXBaseSpecifiersToWrite.clear();
5197 }
5198 
5199 void ASTWriter::AddCXXCtorInitializers(
5200                              const CXXCtorInitializer * const *CtorInitializers,
5201                              unsigned NumCtorInitializers,
5202                              RecordDataImpl &Record) {
5203   Record.push_back(NumCtorInitializers);
5204   for (unsigned i=0; i != NumCtorInitializers; ++i) {
5205     const CXXCtorInitializer *Init = CtorInitializers[i];
5206 
5207     if (Init->isBaseInitializer()) {
5208       Record.push_back(CTOR_INITIALIZER_BASE);
5209       AddTypeSourceInfo(Init->getTypeSourceInfo(), Record);
5210       Record.push_back(Init->isBaseVirtual());
5211     } else if (Init->isDelegatingInitializer()) {
5212       Record.push_back(CTOR_INITIALIZER_DELEGATING);
5213       AddTypeSourceInfo(Init->getTypeSourceInfo(), Record);
5214     } else if (Init->isMemberInitializer()){
5215       Record.push_back(CTOR_INITIALIZER_MEMBER);
5216       AddDeclRef(Init->getMember(), Record);
5217     } else {
5218       Record.push_back(CTOR_INITIALIZER_INDIRECT_MEMBER);
5219       AddDeclRef(Init->getIndirectMember(), Record);
5220     }
5221 
5222     AddSourceLocation(Init->getMemberLocation(), Record);
5223     AddStmt(Init->getInit());
5224     AddSourceLocation(Init->getLParenLoc(), Record);
5225     AddSourceLocation(Init->getRParenLoc(), Record);
5226     Record.push_back(Init->isWritten());
5227     if (Init->isWritten()) {
5228       Record.push_back(Init->getSourceOrder());
5229     } else {
5230       Record.push_back(Init->getNumArrayIndices());
5231       for (unsigned i=0, e=Init->getNumArrayIndices(); i != e; ++i)
5232         AddDeclRef(Init->getArrayIndex(i), Record);
5233     }
5234   }
5235 }
5236 
5237 void ASTWriter::AddCXXDefinitionData(const CXXRecordDecl *D, RecordDataImpl &Record) {
5238   assert(D->DefinitionData);
5239   struct CXXRecordDecl::DefinitionData &Data = *D->DefinitionData;
5240   Record.push_back(Data.IsLambda);
5241   Record.push_back(Data.UserDeclaredConstructor);
5242   Record.push_back(Data.UserDeclaredSpecialMembers);
5243   Record.push_back(Data.Aggregate);
5244   Record.push_back(Data.PlainOldData);
5245   Record.push_back(Data.Empty);
5246   Record.push_back(Data.Polymorphic);
5247   Record.push_back(Data.Abstract);
5248   Record.push_back(Data.IsStandardLayout);
5249   Record.push_back(Data.HasNoNonEmptyBases);
5250   Record.push_back(Data.HasPrivateFields);
5251   Record.push_back(Data.HasProtectedFields);
5252   Record.push_back(Data.HasPublicFields);
5253   Record.push_back(Data.HasMutableFields);
5254   Record.push_back(Data.HasVariantMembers);
5255   Record.push_back(Data.HasOnlyCMembers);
5256   Record.push_back(Data.HasInClassInitializer);
5257   Record.push_back(Data.HasUninitializedReferenceMember);
5258   Record.push_back(Data.NeedOverloadResolutionForMoveConstructor);
5259   Record.push_back(Data.NeedOverloadResolutionForMoveAssignment);
5260   Record.push_back(Data.NeedOverloadResolutionForDestructor);
5261   Record.push_back(Data.DefaultedMoveConstructorIsDeleted);
5262   Record.push_back(Data.DefaultedMoveAssignmentIsDeleted);
5263   Record.push_back(Data.DefaultedDestructorIsDeleted);
5264   Record.push_back(Data.HasTrivialSpecialMembers);
5265   Record.push_back(Data.DeclaredNonTrivialSpecialMembers);
5266   Record.push_back(Data.HasIrrelevantDestructor);
5267   Record.push_back(Data.HasConstexprNonCopyMoveConstructor);
5268   Record.push_back(Data.DefaultedDefaultConstructorIsConstexpr);
5269   Record.push_back(Data.HasConstexprDefaultConstructor);
5270   Record.push_back(Data.HasNonLiteralTypeFieldsOrBases);
5271   Record.push_back(Data.ComputedVisibleConversions);
5272   Record.push_back(Data.UserProvidedDefaultConstructor);
5273   Record.push_back(Data.DeclaredSpecialMembers);
5274   Record.push_back(Data.ImplicitCopyConstructorHasConstParam);
5275   Record.push_back(Data.ImplicitCopyAssignmentHasConstParam);
5276   Record.push_back(Data.HasDeclaredCopyConstructorWithConstParam);
5277   Record.push_back(Data.HasDeclaredCopyAssignmentWithConstParam);
5278   // IsLambda bit is already saved.
5279 
5280   Record.push_back(Data.NumBases);
5281   if (Data.NumBases > 0)
5282     AddCXXBaseSpecifiersRef(Data.getBases(), Data.getBases() + Data.NumBases,
5283                             Record);
5284 
5285   // FIXME: Make VBases lazily computed when needed to avoid storing them.
5286   Record.push_back(Data.NumVBases);
5287   if (Data.NumVBases > 0)
5288     AddCXXBaseSpecifiersRef(Data.getVBases(), Data.getVBases() + Data.NumVBases,
5289                             Record);
5290 
5291   AddUnresolvedSet(Data.Conversions.get(*Context), Record);
5292   AddUnresolvedSet(Data.VisibleConversions.get(*Context), Record);
5293   // Data.Definition is the owning decl, no need to write it.
5294   AddDeclRef(D->getFirstFriend(), Record);
5295 
5296   // Add lambda-specific data.
5297   if (Data.IsLambda) {
5298     CXXRecordDecl::LambdaDefinitionData &Lambda = D->getLambdaData();
5299     Record.push_back(Lambda.Dependent);
5300     Record.push_back(Lambda.IsGenericLambda);
5301     Record.push_back(Lambda.CaptureDefault);
5302     Record.push_back(Lambda.NumCaptures);
5303     Record.push_back(Lambda.NumExplicitCaptures);
5304     Record.push_back(Lambda.ManglingNumber);
5305     AddDeclRef(Lambda.ContextDecl, Record);
5306     AddTypeSourceInfo(Lambda.MethodTyInfo, Record);
5307     for (unsigned I = 0, N = Lambda.NumCaptures; I != N; ++I) {
5308       LambdaExpr::Capture &Capture = Lambda.Captures[I];
5309       AddSourceLocation(Capture.getLocation(), Record);
5310       Record.push_back(Capture.isImplicit());
5311       Record.push_back(Capture.getCaptureKind());
5312       switch (Capture.getCaptureKind()) {
5313       case LCK_This:
5314         break;
5315       case LCK_ByCopy:
5316       case LCK_ByRef:
5317         VarDecl *Var =
5318             Capture.capturesVariable() ? Capture.getCapturedVar() : 0;
5319         AddDeclRef(Var, Record);
5320         AddSourceLocation(Capture.isPackExpansion() ? Capture.getEllipsisLoc()
5321                                                     : SourceLocation(),
5322                           Record);
5323         break;
5324       }
5325     }
5326   }
5327 }
5328 
5329 void ASTWriter::ReaderInitialized(ASTReader *Reader) {
5330   assert(Reader && "Cannot remove chain");
5331   assert((!Chain || Chain == Reader) && "Cannot replace chain");
5332   assert(FirstDeclID == NextDeclID &&
5333          FirstTypeID == NextTypeID &&
5334          FirstIdentID == NextIdentID &&
5335          FirstMacroID == NextMacroID &&
5336          FirstSubmoduleID == NextSubmoduleID &&
5337          FirstSelectorID == NextSelectorID &&
5338          "Setting chain after writing has started.");
5339 
5340   Chain = Reader;
5341 
5342   FirstDeclID = NUM_PREDEF_DECL_IDS + Chain->getTotalNumDecls();
5343   FirstTypeID = NUM_PREDEF_TYPE_IDS + Chain->getTotalNumTypes();
5344   FirstIdentID = NUM_PREDEF_IDENT_IDS + Chain->getTotalNumIdentifiers();
5345   FirstMacroID = NUM_PREDEF_MACRO_IDS + Chain->getTotalNumMacros();
5346   FirstSubmoduleID = NUM_PREDEF_SUBMODULE_IDS + Chain->getTotalNumSubmodules();
5347   FirstSelectorID = NUM_PREDEF_SELECTOR_IDS + Chain->getTotalNumSelectors();
5348   NextDeclID = FirstDeclID;
5349   NextTypeID = FirstTypeID;
5350   NextIdentID = FirstIdentID;
5351   NextMacroID = FirstMacroID;
5352   NextSelectorID = FirstSelectorID;
5353   NextSubmoduleID = FirstSubmoduleID;
5354 }
5355 
5356 void ASTWriter::IdentifierRead(IdentID ID, IdentifierInfo *II) {
5357   // Always keep the highest ID. See \p TypeRead() for more information.
5358   IdentID &StoredID = IdentifierIDs[II];
5359   if (ID > StoredID)
5360     StoredID = ID;
5361 }
5362 
5363 void ASTWriter::MacroRead(serialization::MacroID ID, MacroInfo *MI) {
5364   // Always keep the highest ID. See \p TypeRead() for more information.
5365   MacroID &StoredID = MacroIDs[MI];
5366   if (ID > StoredID)
5367     StoredID = ID;
5368 }
5369 
5370 void ASTWriter::TypeRead(TypeIdx Idx, QualType T) {
5371   // Always take the highest-numbered type index. This copes with an interesting
5372   // case for chained AST writing where we schedule writing the type and then,
5373   // later, deserialize the type from another AST. In this case, we want to
5374   // keep the higher-numbered entry so that we can properly write it out to
5375   // the AST file.
5376   TypeIdx &StoredIdx = TypeIdxs[T];
5377   if (Idx.getIndex() >= StoredIdx.getIndex())
5378     StoredIdx = Idx;
5379 }
5380 
5381 void ASTWriter::SelectorRead(SelectorID ID, Selector S) {
5382   // Always keep the highest ID. See \p TypeRead() for more information.
5383   SelectorID &StoredID = SelectorIDs[S];
5384   if (ID > StoredID)
5385     StoredID = ID;
5386 }
5387 
5388 void ASTWriter::MacroDefinitionRead(serialization::PreprocessedEntityID ID,
5389                                     MacroDefinition *MD) {
5390   assert(MacroDefinitions.find(MD) == MacroDefinitions.end());
5391   MacroDefinitions[MD] = ID;
5392 }
5393 
5394 void ASTWriter::ModuleRead(serialization::SubmoduleID ID, Module *Mod) {
5395   assert(SubmoduleIDs.find(Mod) == SubmoduleIDs.end());
5396   SubmoduleIDs[Mod] = ID;
5397 }
5398 
5399 void ASTWriter::CompletedTagDefinition(const TagDecl *D) {
5400   assert(D->isCompleteDefinition());
5401   assert(!WritingAST && "Already writing the AST!");
5402   if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) {
5403     // We are interested when a PCH decl is modified.
5404     if (RD->isFromASTFile()) {
5405       // A forward reference was mutated into a definition. Rewrite it.
5406       // FIXME: This happens during template instantiation, should we
5407       // have created a new definition decl instead ?
5408       RewriteDecl(RD);
5409     }
5410   }
5411 }
5412 
5413 void ASTWriter::AddedVisibleDecl(const DeclContext *DC, const Decl *D) {
5414   assert(!WritingAST && "Already writing the AST!");
5415 
5416   // TU and namespaces are handled elsewhere.
5417   if (isa<TranslationUnitDecl>(DC) || isa<NamespaceDecl>(DC))
5418     return;
5419 
5420   if (!(!D->isFromASTFile() && cast<Decl>(DC)->isFromASTFile()))
5421     return; // Not a source decl added to a DeclContext from PCH.
5422 
5423   assert(!getDefinitiveDeclContext(DC) && "DeclContext not definitive!");
5424   AddUpdatedDeclContext(DC);
5425   UpdatingVisibleDecls.push_back(D);
5426 }
5427 
5428 void ASTWriter::AddedCXXImplicitMember(const CXXRecordDecl *RD, const Decl *D) {
5429   assert(!WritingAST && "Already writing the AST!");
5430   assert(D->isImplicit());
5431   if (!(!D->isFromASTFile() && RD->isFromASTFile()))
5432     return; // Not a source member added to a class from PCH.
5433   if (!isa<CXXMethodDecl>(D))
5434     return; // We are interested in lazily declared implicit methods.
5435 
5436   // A decl coming from PCH was modified.
5437   assert(RD->isCompleteDefinition());
5438   DeclUpdates[RD].push_back(DeclUpdate(UPD_CXX_ADDED_IMPLICIT_MEMBER, D));
5439 }
5440 
5441 void ASTWriter::AddedCXXTemplateSpecialization(const ClassTemplateDecl *TD,
5442                                      const ClassTemplateSpecializationDecl *D) {
5443   // The specializations set is kept in the canonical template.
5444   assert(!WritingAST && "Already writing the AST!");
5445   TD = TD->getCanonicalDecl();
5446   if (!(!D->isFromASTFile() && TD->isFromASTFile()))
5447     return; // Not a source specialization added to a template from PCH.
5448 
5449   DeclUpdates[TD].push_back(DeclUpdate(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION,
5450                                        D));
5451 }
5452 
5453 void ASTWriter::AddedCXXTemplateSpecialization(
5454     const VarTemplateDecl *TD, const VarTemplateSpecializationDecl *D) {
5455   // The specializations set is kept in the canonical template.
5456   assert(!WritingAST && "Already writing the AST!");
5457   TD = TD->getCanonicalDecl();
5458   if (!(!D->isFromASTFile() && TD->isFromASTFile()))
5459     return; // Not a source specialization added to a template from PCH.
5460 
5461   DeclUpdates[TD].push_back(DeclUpdate(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION,
5462                                        D));
5463 }
5464 
5465 void ASTWriter::AddedCXXTemplateSpecialization(const FunctionTemplateDecl *TD,
5466                                                const FunctionDecl *D) {
5467   // The specializations set is kept in the canonical template.
5468   assert(!WritingAST && "Already writing the AST!");
5469   TD = TD->getCanonicalDecl();
5470   if (!(!D->isFromASTFile() && TD->isFromASTFile()))
5471     return; // Not a source specialization added to a template from PCH.
5472 
5473   DeclUpdates[TD].push_back(DeclUpdate(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION,
5474                                        D));
5475 }
5476 
5477 void ASTWriter::ResolvedExceptionSpec(const FunctionDecl *FD) {
5478   assert(!WritingAST && "Already writing the AST!");
5479   FD = FD->getCanonicalDecl();
5480   if (!FD->isFromASTFile())
5481     return; // Not a function declared in PCH and defined outside.
5482 
5483   DeclUpdates[FD].push_back(UPD_CXX_RESOLVED_EXCEPTION_SPEC);
5484 }
5485 
5486 void ASTWriter::DeducedReturnType(const FunctionDecl *FD, QualType ReturnType) {
5487   assert(!WritingAST && "Already writing the AST!");
5488   FD = FD->getCanonicalDecl();
5489   if (!FD->isFromASTFile())
5490     return; // Not a function declared in PCH and defined outside.
5491 
5492   DeclUpdates[FD].push_back(DeclUpdate(UPD_CXX_DEDUCED_RETURN_TYPE, ReturnType));
5493 }
5494 
5495 void ASTWriter::CompletedImplicitDefinition(const FunctionDecl *D) {
5496   assert(!WritingAST && "Already writing the AST!");
5497   if (!D->isFromASTFile())
5498     return; // Declaration not imported from PCH.
5499 
5500   // Implicit decl from a PCH was defined.
5501   // FIXME: Should implicit definition be a separate FunctionDecl?
5502   RewriteDecl(D);
5503 }
5504 
5505 void ASTWriter::FunctionDefinitionInstantiated(const FunctionDecl *D) {
5506   assert(!WritingAST && "Already writing the AST!");
5507   if (!D->isFromASTFile())
5508     return;
5509 
5510   // Since the actual instantiation is delayed, this really means that we need
5511   // to update the instantiation location.
5512   DeclUpdates[D].push_back(
5513       DeclUpdate(UPD_CXX_INSTANTIATED_FUNCTION_DEFINITION));
5514 }
5515 
5516 void ASTWriter::StaticDataMemberInstantiated(const VarDecl *D) {
5517   assert(!WritingAST && "Already writing the AST!");
5518   if (!D->isFromASTFile())
5519     return;
5520 
5521   // Since the actual instantiation is delayed, this really means that we need
5522   // to update the instantiation location.
5523   DeclUpdates[D].push_back(
5524       DeclUpdate(UPD_CXX_INSTANTIATED_STATIC_DATA_MEMBER,
5525        D->getMemberSpecializationInfo()->getPointOfInstantiation()));
5526 }
5527 
5528 void ASTWriter::AddedObjCCategoryToInterface(const ObjCCategoryDecl *CatD,
5529                                              const ObjCInterfaceDecl *IFD) {
5530   assert(!WritingAST && "Already writing the AST!");
5531   if (!IFD->isFromASTFile())
5532     return; // Declaration not imported from PCH.
5533 
5534   assert(IFD->getDefinition() && "Category on a class without a definition?");
5535   ObjCClassesWithCategories.insert(
5536     const_cast<ObjCInterfaceDecl *>(IFD->getDefinition()));
5537 }
5538 
5539 
5540 void ASTWriter::AddedObjCPropertyInClassExtension(const ObjCPropertyDecl *Prop,
5541                                           const ObjCPropertyDecl *OrigProp,
5542                                           const ObjCCategoryDecl *ClassExt) {
5543   const ObjCInterfaceDecl *D = ClassExt->getClassInterface();
5544   if (!D)
5545     return;
5546 
5547   assert(!WritingAST && "Already writing the AST!");
5548   if (!D->isFromASTFile())
5549     return; // Declaration not imported from PCH.
5550 
5551   RewriteDecl(D);
5552 }
5553 
5554 void ASTWriter::DeclarationMarkedUsed(const Decl *D) {
5555   assert(!WritingAST && "Already writing the AST!");
5556   if (!D->isFromASTFile())
5557     return;
5558 
5559   DeclUpdates[D].push_back(DeclUpdate(UPD_DECL_MARKED_USED));
5560 }
5561