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/DeclTemplate.h" 21 #include "clang/AST/Expr.h" 22 #include "clang/AST/ExprCXX.h" 23 #include "clang/AST/Type.h" 24 #include "clang/AST/TypeLocVisitor.h" 25 #include "clang/Basic/FileManager.h" 26 #include "clang/Basic/FileSystemStatCache.h" 27 #include "clang/Basic/OnDiskHashTable.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/FileSystem.h" 49 #include "llvm/Support/MemoryBuffer.h" 50 #include "llvm/Support/Path.h" 51 #include <algorithm> 52 #include <cstdio> 53 #include <string.h> 54 #include <utility> 55 using namespace clang; 56 using namespace clang::serialization; 57 58 template <typename T, typename Allocator> 59 static StringRef data(const std::vector<T, Allocator> &v) { 60 if (v.empty()) return StringRef(); 61 return StringRef(reinterpret_cast<const char*>(&v[0]), 62 sizeof(T) * v.size()); 63 } 64 65 template <typename T> 66 static StringRef data(const SmallVectorImpl<T> &v) { 67 return StringRef(reinterpret_cast<const char*>(v.data()), 68 sizeof(T) * v.size()); 69 } 70 71 //===----------------------------------------------------------------------===// 72 // Type serialization 73 //===----------------------------------------------------------------------===// 74 75 namespace { 76 class ASTTypeWriter { 77 ASTWriter &Writer; 78 ASTWriter::RecordDataImpl &Record; 79 80 public: 81 /// \brief Type code that corresponds to the record generated. 82 TypeCode Code; 83 84 ASTTypeWriter(ASTWriter &Writer, ASTWriter::RecordDataImpl &Record) 85 : Writer(Writer), Record(Record), Code(TYPE_EXT_QUAL) { } 86 87 void VisitArrayType(const ArrayType *T); 88 void VisitFunctionType(const FunctionType *T); 89 void VisitTagType(const TagType *T); 90 91 #define TYPE(Class, Base) void Visit##Class##Type(const Class##Type *T); 92 #define ABSTRACT_TYPE(Class, Base) 93 #include "clang/AST/TypeNodes.def" 94 }; 95 } 96 97 void ASTTypeWriter::VisitBuiltinType(const BuiltinType *T) { 98 llvm_unreachable("Built-in types are never serialized"); 99 } 100 101 void ASTTypeWriter::VisitComplexType(const ComplexType *T) { 102 Writer.AddTypeRef(T->getElementType(), Record); 103 Code = TYPE_COMPLEX; 104 } 105 106 void ASTTypeWriter::VisitPointerType(const PointerType *T) { 107 Writer.AddTypeRef(T->getPointeeType(), Record); 108 Code = TYPE_POINTER; 109 } 110 111 void ASTTypeWriter::VisitDecayedType(const DecayedType *T) { 112 Writer.AddTypeRef(T->getOriginalType(), Record); 113 Code = TYPE_DECAYED; 114 } 115 116 void ASTTypeWriter::VisitAdjustedType(const AdjustedType *T) { 117 Writer.AddTypeRef(T->getOriginalType(), Record); 118 Writer.AddTypeRef(T->getAdjustedType(), Record); 119 Code = TYPE_ADJUSTED; 120 } 121 122 void ASTTypeWriter::VisitBlockPointerType(const BlockPointerType *T) { 123 Writer.AddTypeRef(T->getPointeeType(), Record); 124 Code = TYPE_BLOCK_POINTER; 125 } 126 127 void ASTTypeWriter::VisitLValueReferenceType(const LValueReferenceType *T) { 128 Writer.AddTypeRef(T->getPointeeTypeAsWritten(), Record); 129 Record.push_back(T->isSpelledAsLValue()); 130 Code = TYPE_LVALUE_REFERENCE; 131 } 132 133 void ASTTypeWriter::VisitRValueReferenceType(const RValueReferenceType *T) { 134 Writer.AddTypeRef(T->getPointeeTypeAsWritten(), Record); 135 Code = TYPE_RVALUE_REFERENCE; 136 } 137 138 void ASTTypeWriter::VisitMemberPointerType(const MemberPointerType *T) { 139 Writer.AddTypeRef(T->getPointeeType(), Record); 140 Writer.AddTypeRef(QualType(T->getClass(), 0), Record); 141 Code = TYPE_MEMBER_POINTER; 142 } 143 144 void ASTTypeWriter::VisitArrayType(const ArrayType *T) { 145 Writer.AddTypeRef(T->getElementType(), Record); 146 Record.push_back(T->getSizeModifier()); // FIXME: stable values 147 Record.push_back(T->getIndexTypeCVRQualifiers()); // FIXME: stable values 148 } 149 150 void ASTTypeWriter::VisitConstantArrayType(const ConstantArrayType *T) { 151 VisitArrayType(T); 152 Writer.AddAPInt(T->getSize(), Record); 153 Code = TYPE_CONSTANT_ARRAY; 154 } 155 156 void ASTTypeWriter::VisitIncompleteArrayType(const IncompleteArrayType *T) { 157 VisitArrayType(T); 158 Code = TYPE_INCOMPLETE_ARRAY; 159 } 160 161 void ASTTypeWriter::VisitVariableArrayType(const VariableArrayType *T) { 162 VisitArrayType(T); 163 Writer.AddSourceLocation(T->getLBracketLoc(), Record); 164 Writer.AddSourceLocation(T->getRBracketLoc(), Record); 165 Writer.AddStmt(T->getSizeExpr()); 166 Code = TYPE_VARIABLE_ARRAY; 167 } 168 169 void ASTTypeWriter::VisitVectorType(const VectorType *T) { 170 Writer.AddTypeRef(T->getElementType(), Record); 171 Record.push_back(T->getNumElements()); 172 Record.push_back(T->getVectorKind()); 173 Code = TYPE_VECTOR; 174 } 175 176 void ASTTypeWriter::VisitExtVectorType(const ExtVectorType *T) { 177 VisitVectorType(T); 178 Code = TYPE_EXT_VECTOR; 179 } 180 181 void ASTTypeWriter::VisitFunctionType(const FunctionType *T) { 182 Writer.AddTypeRef(T->getReturnType(), Record); 183 FunctionType::ExtInfo C = T->getExtInfo(); 184 Record.push_back(C.getNoReturn()); 185 Record.push_back(C.getHasRegParm()); 186 Record.push_back(C.getRegParm()); 187 // FIXME: need to stabilize encoding of calling convention... 188 Record.push_back(C.getCC()); 189 Record.push_back(C.getProducesResult()); 190 } 191 192 void ASTTypeWriter::VisitFunctionNoProtoType(const FunctionNoProtoType *T) { 193 VisitFunctionType(T); 194 Code = TYPE_FUNCTION_NO_PROTO; 195 } 196 197 void ASTTypeWriter::VisitFunctionProtoType(const FunctionProtoType *T) { 198 VisitFunctionType(T); 199 Record.push_back(T->getNumParams()); 200 for (unsigned I = 0, N = T->getNumParams(); I != N; ++I) 201 Writer.AddTypeRef(T->getParamType(I), Record); 202 Record.push_back(T->isVariadic()); 203 Record.push_back(T->hasTrailingReturn()); 204 Record.push_back(T->getTypeQuals()); 205 Record.push_back(static_cast<unsigned>(T->getRefQualifier())); 206 Record.push_back(T->getExceptionSpecType()); 207 if (T->getExceptionSpecType() == EST_Dynamic) { 208 Record.push_back(T->getNumExceptions()); 209 for (unsigned I = 0, N = T->getNumExceptions(); I != N; ++I) 210 Writer.AddTypeRef(T->getExceptionType(I), Record); 211 } else if (T->getExceptionSpecType() == EST_ComputedNoexcept) { 212 Writer.AddStmt(T->getNoexceptExpr()); 213 } else if (T->getExceptionSpecType() == EST_Uninstantiated) { 214 Writer.AddDeclRef(T->getExceptionSpecDecl(), Record); 215 Writer.AddDeclRef(T->getExceptionSpecTemplate(), Record); 216 } else if (T->getExceptionSpecType() == EST_Unevaluated) { 217 Writer.AddDeclRef(T->getExceptionSpecDecl(), Record); 218 } 219 Code = TYPE_FUNCTION_PROTO; 220 } 221 222 void ASTTypeWriter::VisitUnresolvedUsingType(const UnresolvedUsingType *T) { 223 Writer.AddDeclRef(T->getDecl(), Record); 224 Code = TYPE_UNRESOLVED_USING; 225 } 226 227 void ASTTypeWriter::VisitTypedefType(const TypedefType *T) { 228 Writer.AddDeclRef(T->getDecl(), Record); 229 assert(!T->isCanonicalUnqualified() && "Invalid typedef ?"); 230 Writer.AddTypeRef(T->getCanonicalTypeInternal(), Record); 231 Code = TYPE_TYPEDEF; 232 } 233 234 void ASTTypeWriter::VisitTypeOfExprType(const TypeOfExprType *T) { 235 Writer.AddStmt(T->getUnderlyingExpr()); 236 Code = TYPE_TYPEOF_EXPR; 237 } 238 239 void ASTTypeWriter::VisitTypeOfType(const TypeOfType *T) { 240 Writer.AddTypeRef(T->getUnderlyingType(), Record); 241 Code = TYPE_TYPEOF; 242 } 243 244 void ASTTypeWriter::VisitDecltypeType(const DecltypeType *T) { 245 Writer.AddTypeRef(T->getUnderlyingType(), Record); 246 Writer.AddStmt(T->getUnderlyingExpr()); 247 Code = TYPE_DECLTYPE; 248 } 249 250 void ASTTypeWriter::VisitUnaryTransformType(const UnaryTransformType *T) { 251 Writer.AddTypeRef(T->getBaseType(), Record); 252 Writer.AddTypeRef(T->getUnderlyingType(), Record); 253 Record.push_back(T->getUTTKind()); 254 Code = TYPE_UNARY_TRANSFORM; 255 } 256 257 void ASTTypeWriter::VisitAutoType(const AutoType *T) { 258 Writer.AddTypeRef(T->getDeducedType(), Record); 259 Record.push_back(T->isDecltypeAuto()); 260 if (T->getDeducedType().isNull()) 261 Record.push_back(T->isDependentType()); 262 Code = TYPE_AUTO; 263 } 264 265 void ASTTypeWriter::VisitTagType(const TagType *T) { 266 Record.push_back(T->isDependentType()); 267 Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record); 268 assert(!T->isBeingDefined() && 269 "Cannot serialize in the middle of a type definition"); 270 } 271 272 void ASTTypeWriter::VisitRecordType(const RecordType *T) { 273 VisitTagType(T); 274 Code = TYPE_RECORD; 275 } 276 277 void ASTTypeWriter::VisitEnumType(const EnumType *T) { 278 VisitTagType(T); 279 Code = TYPE_ENUM; 280 } 281 282 void ASTTypeWriter::VisitAttributedType(const AttributedType *T) { 283 Writer.AddTypeRef(T->getModifiedType(), Record); 284 Writer.AddTypeRef(T->getEquivalentType(), Record); 285 Record.push_back(T->getAttrKind()); 286 Code = TYPE_ATTRIBUTED; 287 } 288 289 void 290 ASTTypeWriter::VisitSubstTemplateTypeParmType( 291 const SubstTemplateTypeParmType *T) { 292 Writer.AddTypeRef(QualType(T->getReplacedParameter(), 0), Record); 293 Writer.AddTypeRef(T->getReplacementType(), Record); 294 Code = TYPE_SUBST_TEMPLATE_TYPE_PARM; 295 } 296 297 void 298 ASTTypeWriter::VisitSubstTemplateTypeParmPackType( 299 const SubstTemplateTypeParmPackType *T) { 300 Writer.AddTypeRef(QualType(T->getReplacedParameter(), 0), Record); 301 Writer.AddTemplateArgument(T->getArgumentPack(), Record); 302 Code = TYPE_SUBST_TEMPLATE_TYPE_PARM_PACK; 303 } 304 305 void 306 ASTTypeWriter::VisitTemplateSpecializationType( 307 const TemplateSpecializationType *T) { 308 Record.push_back(T->isDependentType()); 309 Writer.AddTemplateName(T->getTemplateName(), Record); 310 Record.push_back(T->getNumArgs()); 311 for (TemplateSpecializationType::iterator ArgI = T->begin(), ArgE = T->end(); 312 ArgI != ArgE; ++ArgI) 313 Writer.AddTemplateArgument(*ArgI, Record); 314 Writer.AddTypeRef(T->isTypeAlias() ? T->getAliasedType() : 315 T->isCanonicalUnqualified() ? QualType() 316 : T->getCanonicalTypeInternal(), 317 Record); 318 Code = TYPE_TEMPLATE_SPECIALIZATION; 319 } 320 321 void 322 ASTTypeWriter::VisitDependentSizedArrayType(const DependentSizedArrayType *T) { 323 VisitArrayType(T); 324 Writer.AddStmt(T->getSizeExpr()); 325 Writer.AddSourceRange(T->getBracketsRange(), Record); 326 Code = TYPE_DEPENDENT_SIZED_ARRAY; 327 } 328 329 void 330 ASTTypeWriter::VisitDependentSizedExtVectorType( 331 const DependentSizedExtVectorType *T) { 332 // FIXME: Serialize this type (C++ only) 333 llvm_unreachable("Cannot serialize dependent sized extended vector types"); 334 } 335 336 void 337 ASTTypeWriter::VisitTemplateTypeParmType(const TemplateTypeParmType *T) { 338 Record.push_back(T->getDepth()); 339 Record.push_back(T->getIndex()); 340 Record.push_back(T->isParameterPack()); 341 Writer.AddDeclRef(T->getDecl(), Record); 342 Code = TYPE_TEMPLATE_TYPE_PARM; 343 } 344 345 void 346 ASTTypeWriter::VisitDependentNameType(const DependentNameType *T) { 347 Record.push_back(T->getKeyword()); 348 Writer.AddNestedNameSpecifier(T->getQualifier(), Record); 349 Writer.AddIdentifierRef(T->getIdentifier(), Record); 350 Writer.AddTypeRef(T->isCanonicalUnqualified() ? QualType() 351 : T->getCanonicalTypeInternal(), 352 Record); 353 Code = TYPE_DEPENDENT_NAME; 354 } 355 356 void 357 ASTTypeWriter::VisitDependentTemplateSpecializationType( 358 const DependentTemplateSpecializationType *T) { 359 Record.push_back(T->getKeyword()); 360 Writer.AddNestedNameSpecifier(T->getQualifier(), Record); 361 Writer.AddIdentifierRef(T->getIdentifier(), Record); 362 Record.push_back(T->getNumArgs()); 363 for (DependentTemplateSpecializationType::iterator 364 I = T->begin(), E = T->end(); I != E; ++I) 365 Writer.AddTemplateArgument(*I, Record); 366 Code = TYPE_DEPENDENT_TEMPLATE_SPECIALIZATION; 367 } 368 369 void ASTTypeWriter::VisitPackExpansionType(const PackExpansionType *T) { 370 Writer.AddTypeRef(T->getPattern(), Record); 371 if (Optional<unsigned> NumExpansions = T->getNumExpansions()) 372 Record.push_back(*NumExpansions + 1); 373 else 374 Record.push_back(0); 375 Code = TYPE_PACK_EXPANSION; 376 } 377 378 void ASTTypeWriter::VisitParenType(const ParenType *T) { 379 Writer.AddTypeRef(T->getInnerType(), Record); 380 Code = TYPE_PAREN; 381 } 382 383 void ASTTypeWriter::VisitElaboratedType(const ElaboratedType *T) { 384 Record.push_back(T->getKeyword()); 385 Writer.AddNestedNameSpecifier(T->getQualifier(), Record); 386 Writer.AddTypeRef(T->getNamedType(), Record); 387 Code = TYPE_ELABORATED; 388 } 389 390 void ASTTypeWriter::VisitInjectedClassNameType(const InjectedClassNameType *T) { 391 Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record); 392 Writer.AddTypeRef(T->getInjectedSpecializationType(), Record); 393 Code = TYPE_INJECTED_CLASS_NAME; 394 } 395 396 void ASTTypeWriter::VisitObjCInterfaceType(const ObjCInterfaceType *T) { 397 Writer.AddDeclRef(T->getDecl()->getCanonicalDecl(), Record); 398 Code = TYPE_OBJC_INTERFACE; 399 } 400 401 void ASTTypeWriter::VisitObjCObjectType(const ObjCObjectType *T) { 402 Writer.AddTypeRef(T->getBaseType(), Record); 403 Record.push_back(T->getNumProtocols()); 404 for (ObjCObjectType::qual_iterator I = T->qual_begin(), 405 E = T->qual_end(); I != E; ++I) 406 Writer.AddDeclRef(*I, Record); 407 Code = TYPE_OBJC_OBJECT; 408 } 409 410 void 411 ASTTypeWriter::VisitObjCObjectPointerType(const ObjCObjectPointerType *T) { 412 Writer.AddTypeRef(T->getPointeeType(), Record); 413 Code = TYPE_OBJC_OBJECT_POINTER; 414 } 415 416 void 417 ASTTypeWriter::VisitAtomicType(const AtomicType *T) { 418 Writer.AddTypeRef(T->getValueType(), Record); 419 Code = TYPE_ATOMIC; 420 } 421 422 namespace { 423 424 class TypeLocWriter : public TypeLocVisitor<TypeLocWriter> { 425 ASTWriter &Writer; 426 ASTWriter::RecordDataImpl &Record; 427 428 public: 429 TypeLocWriter(ASTWriter &Writer, ASTWriter::RecordDataImpl &Record) 430 : Writer(Writer), Record(Record) { } 431 432 #define ABSTRACT_TYPELOC(CLASS, PARENT) 433 #define TYPELOC(CLASS, PARENT) \ 434 void Visit##CLASS##TypeLoc(CLASS##TypeLoc TyLoc); 435 #include "clang/AST/TypeLocNodes.def" 436 437 void VisitArrayTypeLoc(ArrayTypeLoc TyLoc); 438 void VisitFunctionTypeLoc(FunctionTypeLoc TyLoc); 439 }; 440 441 } 442 443 void TypeLocWriter::VisitQualifiedTypeLoc(QualifiedTypeLoc TL) { 444 // nothing to do 445 } 446 void TypeLocWriter::VisitBuiltinTypeLoc(BuiltinTypeLoc TL) { 447 Writer.AddSourceLocation(TL.getBuiltinLoc(), Record); 448 if (TL.needsExtraLocalData()) { 449 Record.push_back(TL.getWrittenTypeSpec()); 450 Record.push_back(TL.getWrittenSignSpec()); 451 Record.push_back(TL.getWrittenWidthSpec()); 452 Record.push_back(TL.hasModeAttr()); 453 } 454 } 455 void TypeLocWriter::VisitComplexTypeLoc(ComplexTypeLoc TL) { 456 Writer.AddSourceLocation(TL.getNameLoc(), Record); 457 } 458 void TypeLocWriter::VisitPointerTypeLoc(PointerTypeLoc TL) { 459 Writer.AddSourceLocation(TL.getStarLoc(), Record); 460 } 461 void TypeLocWriter::VisitDecayedTypeLoc(DecayedTypeLoc TL) { 462 // nothing to do 463 } 464 void TypeLocWriter::VisitAdjustedTypeLoc(AdjustedTypeLoc TL) { 465 // nothing to do 466 } 467 void TypeLocWriter::VisitBlockPointerTypeLoc(BlockPointerTypeLoc TL) { 468 Writer.AddSourceLocation(TL.getCaretLoc(), Record); 469 } 470 void TypeLocWriter::VisitLValueReferenceTypeLoc(LValueReferenceTypeLoc TL) { 471 Writer.AddSourceLocation(TL.getAmpLoc(), Record); 472 } 473 void TypeLocWriter::VisitRValueReferenceTypeLoc(RValueReferenceTypeLoc TL) { 474 Writer.AddSourceLocation(TL.getAmpAmpLoc(), Record); 475 } 476 void TypeLocWriter::VisitMemberPointerTypeLoc(MemberPointerTypeLoc TL) { 477 Writer.AddSourceLocation(TL.getStarLoc(), Record); 478 Writer.AddTypeSourceInfo(TL.getClassTInfo(), Record); 479 } 480 void TypeLocWriter::VisitArrayTypeLoc(ArrayTypeLoc TL) { 481 Writer.AddSourceLocation(TL.getLBracketLoc(), Record); 482 Writer.AddSourceLocation(TL.getRBracketLoc(), Record); 483 Record.push_back(TL.getSizeExpr() ? 1 : 0); 484 if (TL.getSizeExpr()) 485 Writer.AddStmt(TL.getSizeExpr()); 486 } 487 void TypeLocWriter::VisitConstantArrayTypeLoc(ConstantArrayTypeLoc TL) { 488 VisitArrayTypeLoc(TL); 489 } 490 void TypeLocWriter::VisitIncompleteArrayTypeLoc(IncompleteArrayTypeLoc TL) { 491 VisitArrayTypeLoc(TL); 492 } 493 void TypeLocWriter::VisitVariableArrayTypeLoc(VariableArrayTypeLoc TL) { 494 VisitArrayTypeLoc(TL); 495 } 496 void TypeLocWriter::VisitDependentSizedArrayTypeLoc( 497 DependentSizedArrayTypeLoc TL) { 498 VisitArrayTypeLoc(TL); 499 } 500 void TypeLocWriter::VisitDependentSizedExtVectorTypeLoc( 501 DependentSizedExtVectorTypeLoc TL) { 502 Writer.AddSourceLocation(TL.getNameLoc(), Record); 503 } 504 void TypeLocWriter::VisitVectorTypeLoc(VectorTypeLoc TL) { 505 Writer.AddSourceLocation(TL.getNameLoc(), Record); 506 } 507 void TypeLocWriter::VisitExtVectorTypeLoc(ExtVectorTypeLoc TL) { 508 Writer.AddSourceLocation(TL.getNameLoc(), Record); 509 } 510 void TypeLocWriter::VisitFunctionTypeLoc(FunctionTypeLoc TL) { 511 Writer.AddSourceLocation(TL.getLocalRangeBegin(), Record); 512 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 513 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 514 Writer.AddSourceLocation(TL.getLocalRangeEnd(), Record); 515 for (unsigned i = 0, e = TL.getNumParams(); i != e; ++i) 516 Writer.AddDeclRef(TL.getParam(i), Record); 517 } 518 void TypeLocWriter::VisitFunctionProtoTypeLoc(FunctionProtoTypeLoc TL) { 519 VisitFunctionTypeLoc(TL); 520 } 521 void TypeLocWriter::VisitFunctionNoProtoTypeLoc(FunctionNoProtoTypeLoc TL) { 522 VisitFunctionTypeLoc(TL); 523 } 524 void TypeLocWriter::VisitUnresolvedUsingTypeLoc(UnresolvedUsingTypeLoc TL) { 525 Writer.AddSourceLocation(TL.getNameLoc(), Record); 526 } 527 void TypeLocWriter::VisitTypedefTypeLoc(TypedefTypeLoc TL) { 528 Writer.AddSourceLocation(TL.getNameLoc(), Record); 529 } 530 void TypeLocWriter::VisitTypeOfExprTypeLoc(TypeOfExprTypeLoc TL) { 531 Writer.AddSourceLocation(TL.getTypeofLoc(), Record); 532 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 533 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 534 } 535 void TypeLocWriter::VisitTypeOfTypeLoc(TypeOfTypeLoc TL) { 536 Writer.AddSourceLocation(TL.getTypeofLoc(), Record); 537 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 538 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 539 Writer.AddTypeSourceInfo(TL.getUnderlyingTInfo(), Record); 540 } 541 void TypeLocWriter::VisitDecltypeTypeLoc(DecltypeTypeLoc TL) { 542 Writer.AddSourceLocation(TL.getNameLoc(), Record); 543 } 544 void TypeLocWriter::VisitUnaryTransformTypeLoc(UnaryTransformTypeLoc TL) { 545 Writer.AddSourceLocation(TL.getKWLoc(), Record); 546 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 547 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 548 Writer.AddTypeSourceInfo(TL.getUnderlyingTInfo(), Record); 549 } 550 void TypeLocWriter::VisitAutoTypeLoc(AutoTypeLoc TL) { 551 Writer.AddSourceLocation(TL.getNameLoc(), Record); 552 } 553 void TypeLocWriter::VisitRecordTypeLoc(RecordTypeLoc TL) { 554 Writer.AddSourceLocation(TL.getNameLoc(), Record); 555 } 556 void TypeLocWriter::VisitEnumTypeLoc(EnumTypeLoc TL) { 557 Writer.AddSourceLocation(TL.getNameLoc(), Record); 558 } 559 void TypeLocWriter::VisitAttributedTypeLoc(AttributedTypeLoc TL) { 560 Writer.AddSourceLocation(TL.getAttrNameLoc(), Record); 561 if (TL.hasAttrOperand()) { 562 SourceRange range = TL.getAttrOperandParensRange(); 563 Writer.AddSourceLocation(range.getBegin(), Record); 564 Writer.AddSourceLocation(range.getEnd(), Record); 565 } 566 if (TL.hasAttrExprOperand()) { 567 Expr *operand = TL.getAttrExprOperand(); 568 Record.push_back(operand ? 1 : 0); 569 if (operand) Writer.AddStmt(operand); 570 } else if (TL.hasAttrEnumOperand()) { 571 Writer.AddSourceLocation(TL.getAttrEnumOperandLoc(), Record); 572 } 573 } 574 void TypeLocWriter::VisitTemplateTypeParmTypeLoc(TemplateTypeParmTypeLoc TL) { 575 Writer.AddSourceLocation(TL.getNameLoc(), Record); 576 } 577 void TypeLocWriter::VisitSubstTemplateTypeParmTypeLoc( 578 SubstTemplateTypeParmTypeLoc TL) { 579 Writer.AddSourceLocation(TL.getNameLoc(), Record); 580 } 581 void TypeLocWriter::VisitSubstTemplateTypeParmPackTypeLoc( 582 SubstTemplateTypeParmPackTypeLoc TL) { 583 Writer.AddSourceLocation(TL.getNameLoc(), Record); 584 } 585 void TypeLocWriter::VisitTemplateSpecializationTypeLoc( 586 TemplateSpecializationTypeLoc TL) { 587 Writer.AddSourceLocation(TL.getTemplateKeywordLoc(), Record); 588 Writer.AddSourceLocation(TL.getTemplateNameLoc(), Record); 589 Writer.AddSourceLocation(TL.getLAngleLoc(), Record); 590 Writer.AddSourceLocation(TL.getRAngleLoc(), Record); 591 for (unsigned i = 0, e = TL.getNumArgs(); i != e; ++i) 592 Writer.AddTemplateArgumentLocInfo(TL.getArgLoc(i).getArgument().getKind(), 593 TL.getArgLoc(i).getLocInfo(), Record); 594 } 595 void TypeLocWriter::VisitParenTypeLoc(ParenTypeLoc TL) { 596 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 597 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 598 } 599 void TypeLocWriter::VisitElaboratedTypeLoc(ElaboratedTypeLoc TL) { 600 Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record); 601 Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record); 602 } 603 void TypeLocWriter::VisitInjectedClassNameTypeLoc(InjectedClassNameTypeLoc TL) { 604 Writer.AddSourceLocation(TL.getNameLoc(), Record); 605 } 606 void TypeLocWriter::VisitDependentNameTypeLoc(DependentNameTypeLoc TL) { 607 Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record); 608 Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record); 609 Writer.AddSourceLocation(TL.getNameLoc(), Record); 610 } 611 void TypeLocWriter::VisitDependentTemplateSpecializationTypeLoc( 612 DependentTemplateSpecializationTypeLoc TL) { 613 Writer.AddSourceLocation(TL.getElaboratedKeywordLoc(), Record); 614 Writer.AddNestedNameSpecifierLoc(TL.getQualifierLoc(), Record); 615 Writer.AddSourceLocation(TL.getTemplateKeywordLoc(), Record); 616 Writer.AddSourceLocation(TL.getTemplateNameLoc(), Record); 617 Writer.AddSourceLocation(TL.getLAngleLoc(), Record); 618 Writer.AddSourceLocation(TL.getRAngleLoc(), Record); 619 for (unsigned I = 0, E = TL.getNumArgs(); I != E; ++I) 620 Writer.AddTemplateArgumentLocInfo(TL.getArgLoc(I).getArgument().getKind(), 621 TL.getArgLoc(I).getLocInfo(), Record); 622 } 623 void TypeLocWriter::VisitPackExpansionTypeLoc(PackExpansionTypeLoc TL) { 624 Writer.AddSourceLocation(TL.getEllipsisLoc(), Record); 625 } 626 void TypeLocWriter::VisitObjCInterfaceTypeLoc(ObjCInterfaceTypeLoc TL) { 627 Writer.AddSourceLocation(TL.getNameLoc(), Record); 628 } 629 void TypeLocWriter::VisitObjCObjectTypeLoc(ObjCObjectTypeLoc TL) { 630 Record.push_back(TL.hasBaseTypeAsWritten()); 631 Writer.AddSourceLocation(TL.getLAngleLoc(), Record); 632 Writer.AddSourceLocation(TL.getRAngleLoc(), Record); 633 for (unsigned i = 0, e = TL.getNumProtocols(); i != e; ++i) 634 Writer.AddSourceLocation(TL.getProtocolLoc(i), Record); 635 } 636 void TypeLocWriter::VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) { 637 Writer.AddSourceLocation(TL.getStarLoc(), Record); 638 } 639 void TypeLocWriter::VisitAtomicTypeLoc(AtomicTypeLoc TL) { 640 Writer.AddSourceLocation(TL.getKWLoc(), Record); 641 Writer.AddSourceLocation(TL.getLParenLoc(), Record); 642 Writer.AddSourceLocation(TL.getRParenLoc(), Record); 643 } 644 645 //===----------------------------------------------------------------------===// 646 // ASTWriter Implementation 647 //===----------------------------------------------------------------------===// 648 649 static void EmitBlockID(unsigned ID, const char *Name, 650 llvm::BitstreamWriter &Stream, 651 ASTWriter::RecordDataImpl &Record) { 652 Record.clear(); 653 Record.push_back(ID); 654 Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_SETBID, Record); 655 656 // Emit the block name if present. 657 if (Name == 0 || Name[0] == 0) return; 658 Record.clear(); 659 while (*Name) 660 Record.push_back(*Name++); 661 Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_BLOCKNAME, Record); 662 } 663 664 static void EmitRecordID(unsigned ID, const char *Name, 665 llvm::BitstreamWriter &Stream, 666 ASTWriter::RecordDataImpl &Record) { 667 Record.clear(); 668 Record.push_back(ID); 669 while (*Name) 670 Record.push_back(*Name++); 671 Stream.EmitRecord(llvm::bitc::BLOCKINFO_CODE_SETRECORDNAME, Record); 672 } 673 674 static void AddStmtsExprs(llvm::BitstreamWriter &Stream, 675 ASTWriter::RecordDataImpl &Record) { 676 #define RECORD(X) EmitRecordID(X, #X, Stream, Record) 677 RECORD(STMT_STOP); 678 RECORD(STMT_NULL_PTR); 679 RECORD(STMT_NULL); 680 RECORD(STMT_COMPOUND); 681 RECORD(STMT_CASE); 682 RECORD(STMT_DEFAULT); 683 RECORD(STMT_LABEL); 684 RECORD(STMT_ATTRIBUTED); 685 RECORD(STMT_IF); 686 RECORD(STMT_SWITCH); 687 RECORD(STMT_WHILE); 688 RECORD(STMT_DO); 689 RECORD(STMT_FOR); 690 RECORD(STMT_GOTO); 691 RECORD(STMT_INDIRECT_GOTO); 692 RECORD(STMT_CONTINUE); 693 RECORD(STMT_BREAK); 694 RECORD(STMT_RETURN); 695 RECORD(STMT_DECL); 696 RECORD(STMT_GCCASM); 697 RECORD(STMT_MSASM); 698 RECORD(EXPR_PREDEFINED); 699 RECORD(EXPR_DECL_REF); 700 RECORD(EXPR_INTEGER_LITERAL); 701 RECORD(EXPR_FLOATING_LITERAL); 702 RECORD(EXPR_IMAGINARY_LITERAL); 703 RECORD(EXPR_STRING_LITERAL); 704 RECORD(EXPR_CHARACTER_LITERAL); 705 RECORD(EXPR_PAREN); 706 RECORD(EXPR_UNARY_OPERATOR); 707 RECORD(EXPR_SIZEOF_ALIGN_OF); 708 RECORD(EXPR_ARRAY_SUBSCRIPT); 709 RECORD(EXPR_CALL); 710 RECORD(EXPR_MEMBER); 711 RECORD(EXPR_BINARY_OPERATOR); 712 RECORD(EXPR_COMPOUND_ASSIGN_OPERATOR); 713 RECORD(EXPR_CONDITIONAL_OPERATOR); 714 RECORD(EXPR_IMPLICIT_CAST); 715 RECORD(EXPR_CSTYLE_CAST); 716 RECORD(EXPR_COMPOUND_LITERAL); 717 RECORD(EXPR_EXT_VECTOR_ELEMENT); 718 RECORD(EXPR_INIT_LIST); 719 RECORD(EXPR_DESIGNATED_INIT); 720 RECORD(EXPR_IMPLICIT_VALUE_INIT); 721 RECORD(EXPR_VA_ARG); 722 RECORD(EXPR_ADDR_LABEL); 723 RECORD(EXPR_STMT); 724 RECORD(EXPR_CHOOSE); 725 RECORD(EXPR_GNU_NULL); 726 RECORD(EXPR_SHUFFLE_VECTOR); 727 RECORD(EXPR_BLOCK); 728 RECORD(EXPR_GENERIC_SELECTION); 729 RECORD(EXPR_OBJC_STRING_LITERAL); 730 RECORD(EXPR_OBJC_BOXED_EXPRESSION); 731 RECORD(EXPR_OBJC_ARRAY_LITERAL); 732 RECORD(EXPR_OBJC_DICTIONARY_LITERAL); 733 RECORD(EXPR_OBJC_ENCODE); 734 RECORD(EXPR_OBJC_SELECTOR_EXPR); 735 RECORD(EXPR_OBJC_PROTOCOL_EXPR); 736 RECORD(EXPR_OBJC_IVAR_REF_EXPR); 737 RECORD(EXPR_OBJC_PROPERTY_REF_EXPR); 738 RECORD(EXPR_OBJC_KVC_REF_EXPR); 739 RECORD(EXPR_OBJC_MESSAGE_EXPR); 740 RECORD(STMT_OBJC_FOR_COLLECTION); 741 RECORD(STMT_OBJC_CATCH); 742 RECORD(STMT_OBJC_FINALLY); 743 RECORD(STMT_OBJC_AT_TRY); 744 RECORD(STMT_OBJC_AT_SYNCHRONIZED); 745 RECORD(STMT_OBJC_AT_THROW); 746 RECORD(EXPR_OBJC_BOOL_LITERAL); 747 RECORD(EXPR_CXX_OPERATOR_CALL); 748 RECORD(EXPR_CXX_CONSTRUCT); 749 RECORD(EXPR_CXX_STATIC_CAST); 750 RECORD(EXPR_CXX_DYNAMIC_CAST); 751 RECORD(EXPR_CXX_REINTERPRET_CAST); 752 RECORD(EXPR_CXX_CONST_CAST); 753 RECORD(EXPR_CXX_FUNCTIONAL_CAST); 754 RECORD(EXPR_USER_DEFINED_LITERAL); 755 RECORD(EXPR_CXX_STD_INITIALIZER_LIST); 756 RECORD(EXPR_CXX_BOOL_LITERAL); 757 RECORD(EXPR_CXX_NULL_PTR_LITERAL); 758 RECORD(EXPR_CXX_TYPEID_EXPR); 759 RECORD(EXPR_CXX_TYPEID_TYPE); 760 RECORD(EXPR_CXX_UUIDOF_EXPR); 761 RECORD(EXPR_CXX_UUIDOF_TYPE); 762 RECORD(EXPR_CXX_THIS); 763 RECORD(EXPR_CXX_THROW); 764 RECORD(EXPR_CXX_DEFAULT_ARG); 765 RECORD(EXPR_CXX_BIND_TEMPORARY); 766 RECORD(EXPR_CXX_SCALAR_VALUE_INIT); 767 RECORD(EXPR_CXX_NEW); 768 RECORD(EXPR_CXX_DELETE); 769 RECORD(EXPR_CXX_PSEUDO_DESTRUCTOR); 770 RECORD(EXPR_EXPR_WITH_CLEANUPS); 771 RECORD(EXPR_CXX_DEPENDENT_SCOPE_MEMBER); 772 RECORD(EXPR_CXX_DEPENDENT_SCOPE_DECL_REF); 773 RECORD(EXPR_CXX_UNRESOLVED_CONSTRUCT); 774 RECORD(EXPR_CXX_UNRESOLVED_MEMBER); 775 RECORD(EXPR_CXX_UNRESOLVED_LOOKUP); 776 RECORD(EXPR_CXX_NOEXCEPT); 777 RECORD(EXPR_OPAQUE_VALUE); 778 RECORD(EXPR_PACK_EXPANSION); 779 RECORD(EXPR_SIZEOF_PACK); 780 RECORD(EXPR_SUBST_NON_TYPE_TEMPLATE_PARM_PACK); 781 RECORD(EXPR_CUDA_KERNEL_CALL); 782 #undef RECORD 783 } 784 785 void ASTWriter::WriteBlockInfoBlock() { 786 RecordData Record; 787 Stream.EnterSubblock(llvm::bitc::BLOCKINFO_BLOCK_ID, 3); 788 789 #define BLOCK(X) EmitBlockID(X ## _ID, #X, Stream, Record) 790 #define RECORD(X) EmitRecordID(X, #X, Stream, Record) 791 792 // Control Block. 793 BLOCK(CONTROL_BLOCK); 794 RECORD(METADATA); 795 RECORD(IMPORTS); 796 RECORD(LANGUAGE_OPTIONS); 797 RECORD(TARGET_OPTIONS); 798 RECORD(ORIGINAL_FILE); 799 RECORD(ORIGINAL_PCH_DIR); 800 RECORD(ORIGINAL_FILE_ID); 801 RECORD(INPUT_FILE_OFFSETS); 802 RECORD(DIAGNOSTIC_OPTIONS); 803 RECORD(FILE_SYSTEM_OPTIONS); 804 RECORD(HEADER_SEARCH_OPTIONS); 805 RECORD(PREPROCESSOR_OPTIONS); 806 807 BLOCK(INPUT_FILES_BLOCK); 808 RECORD(INPUT_FILE); 809 810 // AST Top-Level Block. 811 BLOCK(AST_BLOCK); 812 RECORD(TYPE_OFFSET); 813 RECORD(DECL_OFFSET); 814 RECORD(IDENTIFIER_OFFSET); 815 RECORD(IDENTIFIER_TABLE); 816 RECORD(EAGERLY_DESERIALIZED_DECLS); 817 RECORD(SPECIAL_TYPES); 818 RECORD(STATISTICS); 819 RECORD(TENTATIVE_DEFINITIONS); 820 RECORD(UNUSED_FILESCOPED_DECLS); 821 RECORD(LOCALLY_SCOPED_EXTERN_C_DECLS); 822 RECORD(SELECTOR_OFFSETS); 823 RECORD(METHOD_POOL); 824 RECORD(PP_COUNTER_VALUE); 825 RECORD(SOURCE_LOCATION_OFFSETS); 826 RECORD(SOURCE_LOCATION_PRELOADS); 827 RECORD(EXT_VECTOR_DECLS); 828 RECORD(PPD_ENTITIES_OFFSETS); 829 RECORD(REFERENCED_SELECTOR_POOL); 830 RECORD(TU_UPDATE_LEXICAL); 831 RECORD(LOCAL_REDECLARATIONS_MAP); 832 RECORD(SEMA_DECL_REFS); 833 RECORD(WEAK_UNDECLARED_IDENTIFIERS); 834 RECORD(PENDING_IMPLICIT_INSTANTIATIONS); 835 RECORD(DECL_REPLACEMENTS); 836 RECORD(UPDATE_VISIBLE); 837 RECORD(DECL_UPDATE_OFFSETS); 838 RECORD(DECL_UPDATES); 839 RECORD(CXX_BASE_SPECIFIER_OFFSETS); 840 RECORD(DIAG_PRAGMA_MAPPINGS); 841 RECORD(CUDA_SPECIAL_DECL_REFS); 842 RECORD(HEADER_SEARCH_TABLE); 843 RECORD(FP_PRAGMA_OPTIONS); 844 RECORD(OPENCL_EXTENSIONS); 845 RECORD(DELEGATING_CTORS); 846 RECORD(KNOWN_NAMESPACES); 847 RECORD(UNDEFINED_BUT_USED); 848 RECORD(MODULE_OFFSET_MAP); 849 RECORD(SOURCE_MANAGER_LINE_TABLE); 850 RECORD(OBJC_CATEGORIES_MAP); 851 RECORD(FILE_SORTED_DECLS); 852 RECORD(IMPORTED_MODULES); 853 RECORD(MERGED_DECLARATIONS); 854 RECORD(LOCAL_REDECLARATIONS); 855 RECORD(OBJC_CATEGORIES); 856 RECORD(MACRO_OFFSET); 857 RECORD(MACRO_TABLE); 858 RECORD(LATE_PARSED_TEMPLATE); 859 860 // SourceManager Block. 861 BLOCK(SOURCE_MANAGER_BLOCK); 862 RECORD(SM_SLOC_FILE_ENTRY); 863 RECORD(SM_SLOC_BUFFER_ENTRY); 864 RECORD(SM_SLOC_BUFFER_BLOB); 865 RECORD(SM_SLOC_EXPANSION_ENTRY); 866 867 // Preprocessor Block. 868 BLOCK(PREPROCESSOR_BLOCK); 869 RECORD(PP_MACRO_OBJECT_LIKE); 870 RECORD(PP_MACRO_FUNCTION_LIKE); 871 RECORD(PP_TOKEN); 872 873 // Decls and Types block. 874 BLOCK(DECLTYPES_BLOCK); 875 RECORD(TYPE_EXT_QUAL); 876 RECORD(TYPE_COMPLEX); 877 RECORD(TYPE_POINTER); 878 RECORD(TYPE_BLOCK_POINTER); 879 RECORD(TYPE_LVALUE_REFERENCE); 880 RECORD(TYPE_RVALUE_REFERENCE); 881 RECORD(TYPE_MEMBER_POINTER); 882 RECORD(TYPE_CONSTANT_ARRAY); 883 RECORD(TYPE_INCOMPLETE_ARRAY); 884 RECORD(TYPE_VARIABLE_ARRAY); 885 RECORD(TYPE_VECTOR); 886 RECORD(TYPE_EXT_VECTOR); 887 RECORD(TYPE_FUNCTION_PROTO); 888 RECORD(TYPE_FUNCTION_NO_PROTO); 889 RECORD(TYPE_TYPEDEF); 890 RECORD(TYPE_TYPEOF_EXPR); 891 RECORD(TYPE_TYPEOF); 892 RECORD(TYPE_RECORD); 893 RECORD(TYPE_ENUM); 894 RECORD(TYPE_OBJC_INTERFACE); 895 RECORD(TYPE_OBJC_OBJECT); 896 RECORD(TYPE_OBJC_OBJECT_POINTER); 897 RECORD(TYPE_DECLTYPE); 898 RECORD(TYPE_ELABORATED); 899 RECORD(TYPE_SUBST_TEMPLATE_TYPE_PARM); 900 RECORD(TYPE_UNRESOLVED_USING); 901 RECORD(TYPE_INJECTED_CLASS_NAME); 902 RECORD(TYPE_OBJC_OBJECT); 903 RECORD(TYPE_TEMPLATE_TYPE_PARM); 904 RECORD(TYPE_TEMPLATE_SPECIALIZATION); 905 RECORD(TYPE_DEPENDENT_NAME); 906 RECORD(TYPE_DEPENDENT_TEMPLATE_SPECIALIZATION); 907 RECORD(TYPE_DEPENDENT_SIZED_ARRAY); 908 RECORD(TYPE_PAREN); 909 RECORD(TYPE_PACK_EXPANSION); 910 RECORD(TYPE_ATTRIBUTED); 911 RECORD(TYPE_SUBST_TEMPLATE_TYPE_PARM_PACK); 912 RECORD(TYPE_ATOMIC); 913 RECORD(DECL_TYPEDEF); 914 RECORD(DECL_ENUM); 915 RECORD(DECL_RECORD); 916 RECORD(DECL_ENUM_CONSTANT); 917 RECORD(DECL_FUNCTION); 918 RECORD(DECL_OBJC_METHOD); 919 RECORD(DECL_OBJC_INTERFACE); 920 RECORD(DECL_OBJC_PROTOCOL); 921 RECORD(DECL_OBJC_IVAR); 922 RECORD(DECL_OBJC_AT_DEFS_FIELD); 923 RECORD(DECL_OBJC_CATEGORY); 924 RECORD(DECL_OBJC_CATEGORY_IMPL); 925 RECORD(DECL_OBJC_IMPLEMENTATION); 926 RECORD(DECL_OBJC_COMPATIBLE_ALIAS); 927 RECORD(DECL_OBJC_PROPERTY); 928 RECORD(DECL_OBJC_PROPERTY_IMPL); 929 RECORD(DECL_FIELD); 930 RECORD(DECL_MS_PROPERTY); 931 RECORD(DECL_VAR); 932 RECORD(DECL_IMPLICIT_PARAM); 933 RECORD(DECL_PARM_VAR); 934 RECORD(DECL_FILE_SCOPE_ASM); 935 RECORD(DECL_BLOCK); 936 RECORD(DECL_CONTEXT_LEXICAL); 937 RECORD(DECL_CONTEXT_VISIBLE); 938 RECORD(DECL_NAMESPACE); 939 RECORD(DECL_NAMESPACE_ALIAS); 940 RECORD(DECL_USING); 941 RECORD(DECL_USING_SHADOW); 942 RECORD(DECL_USING_DIRECTIVE); 943 RECORD(DECL_UNRESOLVED_USING_VALUE); 944 RECORD(DECL_UNRESOLVED_USING_TYPENAME); 945 RECORD(DECL_LINKAGE_SPEC); 946 RECORD(DECL_CXX_RECORD); 947 RECORD(DECL_CXX_METHOD); 948 RECORD(DECL_CXX_CONSTRUCTOR); 949 RECORD(DECL_CXX_DESTRUCTOR); 950 RECORD(DECL_CXX_CONVERSION); 951 RECORD(DECL_ACCESS_SPEC); 952 RECORD(DECL_FRIEND); 953 RECORD(DECL_FRIEND_TEMPLATE); 954 RECORD(DECL_CLASS_TEMPLATE); 955 RECORD(DECL_CLASS_TEMPLATE_SPECIALIZATION); 956 RECORD(DECL_CLASS_TEMPLATE_PARTIAL_SPECIALIZATION); 957 RECORD(DECL_VAR_TEMPLATE); 958 RECORD(DECL_VAR_TEMPLATE_SPECIALIZATION); 959 RECORD(DECL_VAR_TEMPLATE_PARTIAL_SPECIALIZATION); 960 RECORD(DECL_FUNCTION_TEMPLATE); 961 RECORD(DECL_TEMPLATE_TYPE_PARM); 962 RECORD(DECL_NON_TYPE_TEMPLATE_PARM); 963 RECORD(DECL_TEMPLATE_TEMPLATE_PARM); 964 RECORD(DECL_STATIC_ASSERT); 965 RECORD(DECL_CXX_BASE_SPECIFIERS); 966 RECORD(DECL_INDIRECTFIELD); 967 RECORD(DECL_EXPANDED_NON_TYPE_TEMPLATE_PARM_PACK); 968 969 // Statements and Exprs can occur in the Decls and Types block. 970 AddStmtsExprs(Stream, Record); 971 972 BLOCK(PREPROCESSOR_DETAIL_BLOCK); 973 RECORD(PPD_MACRO_EXPANSION); 974 RECORD(PPD_MACRO_DEFINITION); 975 RECORD(PPD_INCLUSION_DIRECTIVE); 976 977 #undef RECORD 978 #undef BLOCK 979 Stream.ExitBlock(); 980 } 981 982 /// \brief Adjusts the given filename to only write out the portion of the 983 /// filename that is not part of the system root directory. 984 /// 985 /// \param Filename the file name to adjust. 986 /// 987 /// \param isysroot When non-NULL, the PCH file is a relocatable PCH file and 988 /// the returned filename will be adjusted by this system root. 989 /// 990 /// \returns either the original filename (if it needs no adjustment) or the 991 /// adjusted filename (which points into the @p Filename parameter). 992 static const char * 993 adjustFilenameForRelocatablePCH(const char *Filename, StringRef isysroot) { 994 assert(Filename && "No file name to adjust?"); 995 996 if (isysroot.empty()) 997 return Filename; 998 999 // Verify that the filename and the system root have the same prefix. 1000 unsigned Pos = 0; 1001 for (; Filename[Pos] && Pos < isysroot.size(); ++Pos) 1002 if (Filename[Pos] != isysroot[Pos]) 1003 return Filename; // Prefixes don't match. 1004 1005 // We hit the end of the filename before we hit the end of the system root. 1006 if (!Filename[Pos]) 1007 return Filename; 1008 1009 // If the file name has a '/' at the current position, skip over the '/'. 1010 // We distinguish sysroot-based includes from absolute includes by the 1011 // absence of '/' at the beginning of sysroot-based includes. 1012 if (Filename[Pos] == '/') 1013 ++Pos; 1014 1015 return Filename + Pos; 1016 } 1017 1018 /// \brief Write the control block. 1019 void ASTWriter::WriteControlBlock(Preprocessor &PP, ASTContext &Context, 1020 StringRef isysroot, 1021 const std::string &OutputFile) { 1022 using namespace llvm; 1023 Stream.EnterSubblock(CONTROL_BLOCK_ID, 5); 1024 RecordData Record; 1025 1026 // Metadata 1027 BitCodeAbbrev *MetadataAbbrev = new BitCodeAbbrev(); 1028 MetadataAbbrev->Add(BitCodeAbbrevOp(METADATA)); 1029 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Major 1030 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Minor 1031 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Clang maj. 1032 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 16)); // Clang min. 1033 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Relocatable 1034 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Errors 1035 MetadataAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // SVN branch/tag 1036 unsigned MetadataAbbrevCode = Stream.EmitAbbrev(MetadataAbbrev); 1037 Record.push_back(METADATA); 1038 Record.push_back(VERSION_MAJOR); 1039 Record.push_back(VERSION_MINOR); 1040 Record.push_back(CLANG_VERSION_MAJOR); 1041 Record.push_back(CLANG_VERSION_MINOR); 1042 Record.push_back(!isysroot.empty()); 1043 Record.push_back(ASTHasCompilerErrors); 1044 Stream.EmitRecordWithBlob(MetadataAbbrevCode, Record, 1045 getClangFullRepositoryVersion()); 1046 1047 // Imports 1048 if (Chain) { 1049 serialization::ModuleManager &Mgr = Chain->getModuleManager(); 1050 Record.clear(); 1051 1052 for (ModuleManager::ModuleIterator M = Mgr.begin(), MEnd = Mgr.end(); 1053 M != MEnd; ++M) { 1054 // Skip modules that weren't directly imported. 1055 if (!(*M)->isDirectlyImported()) 1056 continue; 1057 1058 Record.push_back((unsigned)(*M)->Kind); // FIXME: Stable encoding 1059 AddSourceLocation((*M)->ImportLoc, Record); 1060 Record.push_back((*M)->File->getSize()); 1061 Record.push_back((*M)->File->getModificationTime()); 1062 // FIXME: This writes the absolute path for AST files we depend on. 1063 const std::string &FileName = (*M)->FileName; 1064 Record.push_back(FileName.size()); 1065 Record.append(FileName.begin(), FileName.end()); 1066 } 1067 Stream.EmitRecord(IMPORTS, Record); 1068 } 1069 1070 // Language options. 1071 Record.clear(); 1072 const LangOptions &LangOpts = Context.getLangOpts(); 1073 #define LANGOPT(Name, Bits, Default, Description) \ 1074 Record.push_back(LangOpts.Name); 1075 #define ENUM_LANGOPT(Name, Type, Bits, Default, Description) \ 1076 Record.push_back(static_cast<unsigned>(LangOpts.get##Name())); 1077 #include "clang/Basic/LangOptions.def" 1078 #define SANITIZER(NAME, ID) Record.push_back(LangOpts.Sanitize.ID); 1079 #include "clang/Basic/Sanitizers.def" 1080 1081 Record.push_back((unsigned) LangOpts.ObjCRuntime.getKind()); 1082 AddVersionTuple(LangOpts.ObjCRuntime.getVersion(), Record); 1083 1084 Record.push_back(LangOpts.CurrentModule.size()); 1085 Record.append(LangOpts.CurrentModule.begin(), LangOpts.CurrentModule.end()); 1086 1087 // Comment options. 1088 Record.push_back(LangOpts.CommentOpts.BlockCommandNames.size()); 1089 for (CommentOptions::BlockCommandNamesTy::const_iterator 1090 I = LangOpts.CommentOpts.BlockCommandNames.begin(), 1091 IEnd = LangOpts.CommentOpts.BlockCommandNames.end(); 1092 I != IEnd; ++I) { 1093 AddString(*I, Record); 1094 } 1095 Record.push_back(LangOpts.CommentOpts.ParseAllComments); 1096 1097 Stream.EmitRecord(LANGUAGE_OPTIONS, Record); 1098 1099 // Target options. 1100 Record.clear(); 1101 const TargetInfo &Target = Context.getTargetInfo(); 1102 const TargetOptions &TargetOpts = Target.getTargetOpts(); 1103 AddString(TargetOpts.Triple, Record); 1104 AddString(TargetOpts.CPU, Record); 1105 AddString(TargetOpts.ABI, Record); 1106 AddString(TargetOpts.LinkerVersion, Record); 1107 Record.push_back(TargetOpts.FeaturesAsWritten.size()); 1108 for (unsigned I = 0, N = TargetOpts.FeaturesAsWritten.size(); I != N; ++I) { 1109 AddString(TargetOpts.FeaturesAsWritten[I], Record); 1110 } 1111 Record.push_back(TargetOpts.Features.size()); 1112 for (unsigned I = 0, N = TargetOpts.Features.size(); I != N; ++I) { 1113 AddString(TargetOpts.Features[I], Record); 1114 } 1115 Stream.EmitRecord(TARGET_OPTIONS, Record); 1116 1117 // Diagnostic options. 1118 Record.clear(); 1119 const DiagnosticOptions &DiagOpts 1120 = Context.getDiagnostics().getDiagnosticOptions(); 1121 #define DIAGOPT(Name, Bits, Default) Record.push_back(DiagOpts.Name); 1122 #define ENUM_DIAGOPT(Name, Type, Bits, Default) \ 1123 Record.push_back(static_cast<unsigned>(DiagOpts.get##Name())); 1124 #include "clang/Basic/DiagnosticOptions.def" 1125 Record.push_back(DiagOpts.Warnings.size()); 1126 for (unsigned I = 0, N = DiagOpts.Warnings.size(); I != N; ++I) 1127 AddString(DiagOpts.Warnings[I], Record); 1128 // Note: we don't serialize the log or serialization file names, because they 1129 // are generally transient files and will almost always be overridden. 1130 Stream.EmitRecord(DIAGNOSTIC_OPTIONS, Record); 1131 1132 // File system options. 1133 Record.clear(); 1134 const FileSystemOptions &FSOpts 1135 = Context.getSourceManager().getFileManager().getFileSystemOptions(); 1136 AddString(FSOpts.WorkingDir, Record); 1137 Stream.EmitRecord(FILE_SYSTEM_OPTIONS, Record); 1138 1139 // Header search options. 1140 Record.clear(); 1141 const HeaderSearchOptions &HSOpts 1142 = PP.getHeaderSearchInfo().getHeaderSearchOpts(); 1143 AddString(HSOpts.Sysroot, Record); 1144 1145 // Include entries. 1146 Record.push_back(HSOpts.UserEntries.size()); 1147 for (unsigned I = 0, N = HSOpts.UserEntries.size(); I != N; ++I) { 1148 const HeaderSearchOptions::Entry &Entry = HSOpts.UserEntries[I]; 1149 AddString(Entry.Path, Record); 1150 Record.push_back(static_cast<unsigned>(Entry.Group)); 1151 Record.push_back(Entry.IsFramework); 1152 Record.push_back(Entry.IgnoreSysRoot); 1153 } 1154 1155 // System header prefixes. 1156 Record.push_back(HSOpts.SystemHeaderPrefixes.size()); 1157 for (unsigned I = 0, N = HSOpts.SystemHeaderPrefixes.size(); I != N; ++I) { 1158 AddString(HSOpts.SystemHeaderPrefixes[I].Prefix, Record); 1159 Record.push_back(HSOpts.SystemHeaderPrefixes[I].IsSystemHeader); 1160 } 1161 1162 AddString(HSOpts.ResourceDir, Record); 1163 AddString(HSOpts.ModuleCachePath, Record); 1164 Record.push_back(HSOpts.DisableModuleHash); 1165 Record.push_back(HSOpts.UseBuiltinIncludes); 1166 Record.push_back(HSOpts.UseStandardSystemIncludes); 1167 Record.push_back(HSOpts.UseStandardCXXIncludes); 1168 Record.push_back(HSOpts.UseLibcxx); 1169 Stream.EmitRecord(HEADER_SEARCH_OPTIONS, Record); 1170 1171 // Preprocessor options. 1172 Record.clear(); 1173 const PreprocessorOptions &PPOpts = PP.getPreprocessorOpts(); 1174 1175 // Macro definitions. 1176 Record.push_back(PPOpts.Macros.size()); 1177 for (unsigned I = 0, N = PPOpts.Macros.size(); I != N; ++I) { 1178 AddString(PPOpts.Macros[I].first, Record); 1179 Record.push_back(PPOpts.Macros[I].second); 1180 } 1181 1182 // Includes 1183 Record.push_back(PPOpts.Includes.size()); 1184 for (unsigned I = 0, N = PPOpts.Includes.size(); I != N; ++I) 1185 AddString(PPOpts.Includes[I], Record); 1186 1187 // Macro includes 1188 Record.push_back(PPOpts.MacroIncludes.size()); 1189 for (unsigned I = 0, N = PPOpts.MacroIncludes.size(); I != N; ++I) 1190 AddString(PPOpts.MacroIncludes[I], Record); 1191 1192 Record.push_back(PPOpts.UsePredefines); 1193 // Detailed record is important since it is used for the module cache hash. 1194 Record.push_back(PPOpts.DetailedRecord); 1195 AddString(PPOpts.ImplicitPCHInclude, Record); 1196 AddString(PPOpts.ImplicitPTHInclude, Record); 1197 Record.push_back(static_cast<unsigned>(PPOpts.ObjCXXARCStandardLibrary)); 1198 Stream.EmitRecord(PREPROCESSOR_OPTIONS, Record); 1199 1200 // Original file name and file ID 1201 SourceManager &SM = Context.getSourceManager(); 1202 if (const FileEntry *MainFile = SM.getFileEntryForID(SM.getMainFileID())) { 1203 BitCodeAbbrev *FileAbbrev = new BitCodeAbbrev(); 1204 FileAbbrev->Add(BitCodeAbbrevOp(ORIGINAL_FILE)); 1205 FileAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // File ID 1206 FileAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name 1207 unsigned FileAbbrevCode = Stream.EmitAbbrev(FileAbbrev); 1208 1209 SmallString<128> MainFilePath(MainFile->getName()); 1210 1211 llvm::sys::fs::make_absolute(MainFilePath); 1212 1213 const char *MainFileNameStr = MainFilePath.c_str(); 1214 MainFileNameStr = adjustFilenameForRelocatablePCH(MainFileNameStr, 1215 isysroot); 1216 Record.clear(); 1217 Record.push_back(ORIGINAL_FILE); 1218 Record.push_back(SM.getMainFileID().getOpaqueValue()); 1219 Stream.EmitRecordWithBlob(FileAbbrevCode, Record, MainFileNameStr); 1220 } 1221 1222 Record.clear(); 1223 Record.push_back(SM.getMainFileID().getOpaqueValue()); 1224 Stream.EmitRecord(ORIGINAL_FILE_ID, Record); 1225 1226 // Original PCH directory 1227 if (!OutputFile.empty() && OutputFile != "-") { 1228 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1229 Abbrev->Add(BitCodeAbbrevOp(ORIGINAL_PCH_DIR)); 1230 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name 1231 unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev); 1232 1233 SmallString<128> OutputPath(OutputFile); 1234 1235 llvm::sys::fs::make_absolute(OutputPath); 1236 StringRef origDir = llvm::sys::path::parent_path(OutputPath); 1237 1238 RecordData Record; 1239 Record.push_back(ORIGINAL_PCH_DIR); 1240 Stream.EmitRecordWithBlob(AbbrevCode, Record, origDir); 1241 } 1242 1243 WriteInputFiles(Context.SourceMgr, 1244 PP.getHeaderSearchInfo().getHeaderSearchOpts(), 1245 isysroot, 1246 PP.getLangOpts().Modules); 1247 Stream.ExitBlock(); 1248 } 1249 1250 namespace { 1251 /// \brief An input file. 1252 struct InputFileEntry { 1253 const FileEntry *File; 1254 bool IsSystemFile; 1255 bool BufferOverridden; 1256 }; 1257 } 1258 1259 void ASTWriter::WriteInputFiles(SourceManager &SourceMgr, 1260 HeaderSearchOptions &HSOpts, 1261 StringRef isysroot, 1262 bool Modules) { 1263 using namespace llvm; 1264 Stream.EnterSubblock(INPUT_FILES_BLOCK_ID, 4); 1265 RecordData Record; 1266 1267 // Create input-file abbreviation. 1268 BitCodeAbbrev *IFAbbrev = new BitCodeAbbrev(); 1269 IFAbbrev->Add(BitCodeAbbrevOp(INPUT_FILE)); 1270 IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // ID 1271 IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 12)); // Size 1272 IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 32)); // Modification time 1273 IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Overridden 1274 IFAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // File name 1275 unsigned IFAbbrevCode = Stream.EmitAbbrev(IFAbbrev); 1276 1277 // Get all ContentCache objects for files, sorted by whether the file is a 1278 // system one or not. System files go at the back, users files at the front. 1279 std::deque<InputFileEntry> SortedFiles; 1280 for (unsigned I = 1, N = SourceMgr.local_sloc_entry_size(); I != N; ++I) { 1281 // Get this source location entry. 1282 const SrcMgr::SLocEntry *SLoc = &SourceMgr.getLocalSLocEntry(I); 1283 assert(&SourceMgr.getSLocEntry(FileID::get(I)) == SLoc); 1284 1285 // We only care about file entries that were not overridden. 1286 if (!SLoc->isFile()) 1287 continue; 1288 const SrcMgr::ContentCache *Cache = SLoc->getFile().getContentCache(); 1289 if (!Cache->OrigEntry) 1290 continue; 1291 1292 InputFileEntry Entry; 1293 Entry.File = Cache->OrigEntry; 1294 Entry.IsSystemFile = Cache->IsSystemFile; 1295 Entry.BufferOverridden = Cache->BufferOverridden; 1296 if (Cache->IsSystemFile) 1297 SortedFiles.push_back(Entry); 1298 else 1299 SortedFiles.push_front(Entry); 1300 } 1301 1302 // If we have an isysroot for a Darwin SDK, include its SDKSettings.plist in 1303 // the set of (non-system) input files. This is simple heuristic for 1304 // detecting whether the system headers may have changed, because it is too 1305 // expensive to stat() all of the system headers. 1306 FileManager &FileMgr = SourceMgr.getFileManager(); 1307 if (!HSOpts.Sysroot.empty() && !Chain) { 1308 llvm::SmallString<128> SDKSettingsFileName(HSOpts.Sysroot); 1309 llvm::sys::path::append(SDKSettingsFileName, "SDKSettings.plist"); 1310 if (const FileEntry *SDKSettingsFile = FileMgr.getFile(SDKSettingsFileName)) { 1311 InputFileEntry Entry = { SDKSettingsFile, false, false }; 1312 SortedFiles.push_front(Entry); 1313 } 1314 } 1315 1316 // Add the compiler's own module.map in the set of (non-system) input files. 1317 // This is a simple heuristic for detecting whether the compiler's headers 1318 // have changed, because we don't want to stat() all of them. 1319 if (Modules && !Chain) { 1320 SmallString<128> P = StringRef(HSOpts.ResourceDir); 1321 llvm::sys::path::append(P, "include"); 1322 llvm::sys::path::append(P, "module.map"); 1323 if (const FileEntry *ModuleMapFile = FileMgr.getFile(P)) { 1324 InputFileEntry Entry = { ModuleMapFile, false, false }; 1325 SortedFiles.push_front(Entry); 1326 } 1327 } 1328 1329 unsigned UserFilesNum = 0; 1330 // Write out all of the input files. 1331 std::vector<uint32_t> InputFileOffsets; 1332 for (std::deque<InputFileEntry>::iterator 1333 I = SortedFiles.begin(), E = SortedFiles.end(); I != E; ++I) { 1334 const InputFileEntry &Entry = *I; 1335 1336 uint32_t &InputFileID = InputFileIDs[Entry.File]; 1337 if (InputFileID != 0) 1338 continue; // already recorded this file. 1339 1340 // Record this entry's offset. 1341 InputFileOffsets.push_back(Stream.GetCurrentBitNo()); 1342 1343 InputFileID = InputFileOffsets.size(); 1344 1345 if (!Entry.IsSystemFile) 1346 ++UserFilesNum; 1347 1348 Record.clear(); 1349 Record.push_back(INPUT_FILE); 1350 Record.push_back(InputFileOffsets.size()); 1351 1352 // Emit size/modification time for this file. 1353 Record.push_back(Entry.File->getSize()); 1354 Record.push_back(Entry.File->getModificationTime()); 1355 1356 // Whether this file was overridden. 1357 Record.push_back(Entry.BufferOverridden); 1358 1359 // Turn the file name into an absolute path, if it isn't already. 1360 const char *Filename = Entry.File->getName(); 1361 SmallString<128> FilePath(Filename); 1362 1363 // Ask the file manager to fixup the relative path for us. This will 1364 // honor the working directory. 1365 FileMgr.FixupRelativePath(FilePath); 1366 1367 // FIXME: This call to make_absolute shouldn't be necessary, the 1368 // call to FixupRelativePath should always return an absolute path. 1369 llvm::sys::fs::make_absolute(FilePath); 1370 Filename = FilePath.c_str(); 1371 1372 Filename = adjustFilenameForRelocatablePCH(Filename, isysroot); 1373 1374 Stream.EmitRecordWithBlob(IFAbbrevCode, Record, Filename); 1375 } 1376 1377 Stream.ExitBlock(); 1378 1379 // Create input file offsets abbreviation. 1380 BitCodeAbbrev *OffsetsAbbrev = new BitCodeAbbrev(); 1381 OffsetsAbbrev->Add(BitCodeAbbrevOp(INPUT_FILE_OFFSETS)); 1382 OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # input files 1383 OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # non-system 1384 // input files 1385 OffsetsAbbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Array 1386 unsigned OffsetsAbbrevCode = Stream.EmitAbbrev(OffsetsAbbrev); 1387 1388 // Write input file offsets. 1389 Record.clear(); 1390 Record.push_back(INPUT_FILE_OFFSETS); 1391 Record.push_back(InputFileOffsets.size()); 1392 Record.push_back(UserFilesNum); 1393 Stream.EmitRecordWithBlob(OffsetsAbbrevCode, Record, data(InputFileOffsets)); 1394 } 1395 1396 //===----------------------------------------------------------------------===// 1397 // Source Manager Serialization 1398 //===----------------------------------------------------------------------===// 1399 1400 /// \brief Create an abbreviation for the SLocEntry that refers to a 1401 /// file. 1402 static unsigned CreateSLocFileAbbrev(llvm::BitstreamWriter &Stream) { 1403 using namespace llvm; 1404 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1405 Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_FILE_ENTRY)); 1406 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset 1407 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Include location 1408 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // Characteristic 1409 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Line directives 1410 // FileEntry fields. 1411 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Input File ID 1412 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // NumCreatedFIDs 1413 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 24)); // FirstDeclIndex 1414 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // NumDecls 1415 return Stream.EmitAbbrev(Abbrev); 1416 } 1417 1418 /// \brief Create an abbreviation for the SLocEntry that refers to a 1419 /// buffer. 1420 static unsigned CreateSLocBufferAbbrev(llvm::BitstreamWriter &Stream) { 1421 using namespace llvm; 1422 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1423 Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_BUFFER_ENTRY)); 1424 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset 1425 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Include location 1426 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // Characteristic 1427 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // Line directives 1428 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Buffer name blob 1429 return Stream.EmitAbbrev(Abbrev); 1430 } 1431 1432 /// \brief Create an abbreviation for the SLocEntry that refers to a 1433 /// buffer's blob. 1434 static unsigned CreateSLocBufferBlobAbbrev(llvm::BitstreamWriter &Stream) { 1435 using namespace llvm; 1436 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1437 Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_BUFFER_BLOB)); 1438 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Blob 1439 return Stream.EmitAbbrev(Abbrev); 1440 } 1441 1442 /// \brief Create an abbreviation for the SLocEntry that refers to a macro 1443 /// expansion. 1444 static unsigned CreateSLocExpansionAbbrev(llvm::BitstreamWriter &Stream) { 1445 using namespace llvm; 1446 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1447 Abbrev->Add(BitCodeAbbrevOp(SM_SLOC_EXPANSION_ENTRY)); 1448 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Offset 1449 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Spelling location 1450 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // Start location 1451 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 8)); // End location 1452 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Token length 1453 return Stream.EmitAbbrev(Abbrev); 1454 } 1455 1456 namespace { 1457 // Trait used for the on-disk hash table of header search information. 1458 class HeaderFileInfoTrait { 1459 ASTWriter &Writer; 1460 const HeaderSearch &HS; 1461 1462 // Keep track of the framework names we've used during serialization. 1463 SmallVector<char, 128> FrameworkStringData; 1464 llvm::StringMap<unsigned> FrameworkNameOffset; 1465 1466 public: 1467 HeaderFileInfoTrait(ASTWriter &Writer, const HeaderSearch &HS) 1468 : Writer(Writer), HS(HS) { } 1469 1470 struct key_type { 1471 const FileEntry *FE; 1472 const char *Filename; 1473 }; 1474 typedef const key_type &key_type_ref; 1475 1476 typedef HeaderFileInfo data_type; 1477 typedef const data_type &data_type_ref; 1478 1479 static unsigned ComputeHash(key_type_ref key) { 1480 // The hash is based only on size/time of the file, so that the reader can 1481 // match even when symlinking or excess path elements ("foo/../", "../") 1482 // change the form of the name. However, complete path is still the key. 1483 return llvm::hash_combine(key.FE->getSize(), 1484 key.FE->getModificationTime()); 1485 } 1486 1487 std::pair<unsigned,unsigned> 1488 EmitKeyDataLength(raw_ostream& Out, key_type_ref key, data_type_ref Data) { 1489 unsigned KeyLen = strlen(key.Filename) + 1 + 8 + 8; 1490 clang::io::Emit16(Out, KeyLen); 1491 unsigned DataLen = 1 + 2 + 4 + 4; 1492 if (Data.isModuleHeader) 1493 DataLen += 4; 1494 clang::io::Emit8(Out, DataLen); 1495 return std::make_pair(KeyLen, DataLen); 1496 } 1497 1498 void EmitKey(raw_ostream& Out, key_type_ref key, unsigned KeyLen) { 1499 clang::io::Emit64(Out, key.FE->getSize()); 1500 KeyLen -= 8; 1501 clang::io::Emit64(Out, key.FE->getModificationTime()); 1502 KeyLen -= 8; 1503 Out.write(key.Filename, KeyLen); 1504 } 1505 1506 void EmitData(raw_ostream &Out, key_type_ref key, 1507 data_type_ref Data, unsigned DataLen) { 1508 using namespace clang::io; 1509 uint64_t Start = Out.tell(); (void)Start; 1510 1511 unsigned char Flags = (Data.HeaderRole << 6) 1512 | (Data.isImport << 5) 1513 | (Data.isPragmaOnce << 4) 1514 | (Data.DirInfo << 2) 1515 | (Data.Resolved << 1) 1516 | Data.IndexHeaderMapHeader; 1517 Emit8(Out, (uint8_t)Flags); 1518 Emit16(Out, (uint16_t) Data.NumIncludes); 1519 1520 if (!Data.ControllingMacro) 1521 Emit32(Out, (uint32_t)Data.ControllingMacroID); 1522 else 1523 Emit32(Out, (uint32_t)Writer.getIdentifierRef(Data.ControllingMacro)); 1524 1525 unsigned Offset = 0; 1526 if (!Data.Framework.empty()) { 1527 // If this header refers into a framework, save the framework name. 1528 llvm::StringMap<unsigned>::iterator Pos 1529 = FrameworkNameOffset.find(Data.Framework); 1530 if (Pos == FrameworkNameOffset.end()) { 1531 Offset = FrameworkStringData.size() + 1; 1532 FrameworkStringData.append(Data.Framework.begin(), 1533 Data.Framework.end()); 1534 FrameworkStringData.push_back(0); 1535 1536 FrameworkNameOffset[Data.Framework] = Offset; 1537 } else 1538 Offset = Pos->second; 1539 } 1540 Emit32(Out, Offset); 1541 1542 if (Data.isModuleHeader) { 1543 Module *Mod = HS.findModuleForHeader(key.FE).getModule(); 1544 Emit32(Out, Writer.getExistingSubmoduleID(Mod)); 1545 } 1546 1547 assert(Out.tell() - Start == DataLen && "Wrong data length"); 1548 } 1549 1550 const char *strings_begin() const { return FrameworkStringData.begin(); } 1551 const char *strings_end() const { return FrameworkStringData.end(); } 1552 }; 1553 } // end anonymous namespace 1554 1555 /// \brief Write the header search block for the list of files that 1556 /// 1557 /// \param HS The header search structure to save. 1558 void ASTWriter::WriteHeaderSearch(const HeaderSearch &HS, StringRef isysroot) { 1559 SmallVector<const FileEntry *, 16> FilesByUID; 1560 HS.getFileMgr().GetUniqueIDMapping(FilesByUID); 1561 1562 if (FilesByUID.size() > HS.header_file_size()) 1563 FilesByUID.resize(HS.header_file_size()); 1564 1565 HeaderFileInfoTrait GeneratorTrait(*this, HS); 1566 OnDiskChainedHashTableGenerator<HeaderFileInfoTrait> Generator; 1567 SmallVector<const char *, 4> SavedStrings; 1568 unsigned NumHeaderSearchEntries = 0; 1569 for (unsigned UID = 0, LastUID = FilesByUID.size(); UID != LastUID; ++UID) { 1570 const FileEntry *File = FilesByUID[UID]; 1571 if (!File) 1572 continue; 1573 1574 // Use HeaderSearch's getFileInfo to make sure we get the HeaderFileInfo 1575 // from the external source if it was not provided already. 1576 const HeaderFileInfo &HFI = HS.getFileInfo(File); 1577 if (HFI.External && Chain) 1578 continue; 1579 if (HFI.isModuleHeader && !HFI.isCompilingModuleHeader) 1580 continue; 1581 1582 // Turn the file name into an absolute path, if it isn't already. 1583 const char *Filename = File->getName(); 1584 Filename = adjustFilenameForRelocatablePCH(Filename, isysroot); 1585 1586 // If we performed any translation on the file name at all, we need to 1587 // save this string, since the generator will refer to it later. 1588 if (Filename != File->getName()) { 1589 Filename = strdup(Filename); 1590 SavedStrings.push_back(Filename); 1591 } 1592 1593 HeaderFileInfoTrait::key_type key = { File, Filename }; 1594 Generator.insert(key, HFI, GeneratorTrait); 1595 ++NumHeaderSearchEntries; 1596 } 1597 1598 // Create the on-disk hash table in a buffer. 1599 SmallString<4096> TableData; 1600 uint32_t BucketOffset; 1601 { 1602 llvm::raw_svector_ostream Out(TableData); 1603 // Make sure that no bucket is at offset 0 1604 clang::io::Emit32(Out, 0); 1605 BucketOffset = Generator.Emit(Out, GeneratorTrait); 1606 } 1607 1608 // Create a blob abbreviation 1609 using namespace llvm; 1610 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1611 Abbrev->Add(BitCodeAbbrevOp(HEADER_SEARCH_TABLE)); 1612 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 1613 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 1614 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 1615 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 1616 unsigned TableAbbrev = Stream.EmitAbbrev(Abbrev); 1617 1618 // Write the header search table 1619 RecordData Record; 1620 Record.push_back(HEADER_SEARCH_TABLE); 1621 Record.push_back(BucketOffset); 1622 Record.push_back(NumHeaderSearchEntries); 1623 Record.push_back(TableData.size()); 1624 TableData.append(GeneratorTrait.strings_begin(),GeneratorTrait.strings_end()); 1625 Stream.EmitRecordWithBlob(TableAbbrev, Record, TableData.str()); 1626 1627 // Free all of the strings we had to duplicate. 1628 for (unsigned I = 0, N = SavedStrings.size(); I != N; ++I) 1629 free(const_cast<char *>(SavedStrings[I])); 1630 } 1631 1632 /// \brief Writes the block containing the serialized form of the 1633 /// source manager. 1634 /// 1635 /// TODO: We should probably use an on-disk hash table (stored in a 1636 /// blob), indexed based on the file name, so that we only create 1637 /// entries for files that we actually need. In the common case (no 1638 /// errors), we probably won't have to create file entries for any of 1639 /// the files in the AST. 1640 void ASTWriter::WriteSourceManagerBlock(SourceManager &SourceMgr, 1641 const Preprocessor &PP, 1642 StringRef isysroot) { 1643 RecordData Record; 1644 1645 // Enter the source manager block. 1646 Stream.EnterSubblock(SOURCE_MANAGER_BLOCK_ID, 3); 1647 1648 // Abbreviations for the various kinds of source-location entries. 1649 unsigned SLocFileAbbrv = CreateSLocFileAbbrev(Stream); 1650 unsigned SLocBufferAbbrv = CreateSLocBufferAbbrev(Stream); 1651 unsigned SLocBufferBlobAbbrv = CreateSLocBufferBlobAbbrev(Stream); 1652 unsigned SLocExpansionAbbrv = CreateSLocExpansionAbbrev(Stream); 1653 1654 // Write out the source location entry table. We skip the first 1655 // entry, which is always the same dummy entry. 1656 std::vector<uint32_t> SLocEntryOffsets; 1657 RecordData PreloadSLocs; 1658 SLocEntryOffsets.reserve(SourceMgr.local_sloc_entry_size() - 1); 1659 for (unsigned I = 1, N = SourceMgr.local_sloc_entry_size(); 1660 I != N; ++I) { 1661 // Get this source location entry. 1662 const SrcMgr::SLocEntry *SLoc = &SourceMgr.getLocalSLocEntry(I); 1663 FileID FID = FileID::get(I); 1664 assert(&SourceMgr.getSLocEntry(FID) == SLoc); 1665 1666 // Record the offset of this source-location entry. 1667 SLocEntryOffsets.push_back(Stream.GetCurrentBitNo()); 1668 1669 // Figure out which record code to use. 1670 unsigned Code; 1671 if (SLoc->isFile()) { 1672 const SrcMgr::ContentCache *Cache = SLoc->getFile().getContentCache(); 1673 if (Cache->OrigEntry) { 1674 Code = SM_SLOC_FILE_ENTRY; 1675 } else 1676 Code = SM_SLOC_BUFFER_ENTRY; 1677 } else 1678 Code = SM_SLOC_EXPANSION_ENTRY; 1679 Record.clear(); 1680 Record.push_back(Code); 1681 1682 // Starting offset of this entry within this module, so skip the dummy. 1683 Record.push_back(SLoc->getOffset() - 2); 1684 if (SLoc->isFile()) { 1685 const SrcMgr::FileInfo &File = SLoc->getFile(); 1686 Record.push_back(File.getIncludeLoc().getRawEncoding()); 1687 Record.push_back(File.getFileCharacteristic()); // FIXME: stable encoding 1688 Record.push_back(File.hasLineDirectives()); 1689 1690 const SrcMgr::ContentCache *Content = File.getContentCache(); 1691 if (Content->OrigEntry) { 1692 assert(Content->OrigEntry == Content->ContentsEntry && 1693 "Writing to AST an overridden file is not supported"); 1694 1695 // The source location entry is a file. Emit input file ID. 1696 assert(InputFileIDs[Content->OrigEntry] != 0 && "Missed file entry"); 1697 Record.push_back(InputFileIDs[Content->OrigEntry]); 1698 1699 Record.push_back(File.NumCreatedFIDs); 1700 1701 FileDeclIDsTy::iterator FDI = FileDeclIDs.find(FID); 1702 if (FDI != FileDeclIDs.end()) { 1703 Record.push_back(FDI->second->FirstDeclIndex); 1704 Record.push_back(FDI->second->DeclIDs.size()); 1705 } else { 1706 Record.push_back(0); 1707 Record.push_back(0); 1708 } 1709 1710 Stream.EmitRecordWithAbbrev(SLocFileAbbrv, Record); 1711 1712 if (Content->BufferOverridden) { 1713 Record.clear(); 1714 Record.push_back(SM_SLOC_BUFFER_BLOB); 1715 const llvm::MemoryBuffer *Buffer 1716 = Content->getBuffer(PP.getDiagnostics(), PP.getSourceManager()); 1717 Stream.EmitRecordWithBlob(SLocBufferBlobAbbrv, Record, 1718 StringRef(Buffer->getBufferStart(), 1719 Buffer->getBufferSize() + 1)); 1720 } 1721 } else { 1722 // The source location entry is a buffer. The blob associated 1723 // with this entry contains the contents of the buffer. 1724 1725 // We add one to the size so that we capture the trailing NULL 1726 // that is required by llvm::MemoryBuffer::getMemBuffer (on 1727 // the reader side). 1728 const llvm::MemoryBuffer *Buffer 1729 = Content->getBuffer(PP.getDiagnostics(), PP.getSourceManager()); 1730 const char *Name = Buffer->getBufferIdentifier(); 1731 Stream.EmitRecordWithBlob(SLocBufferAbbrv, Record, 1732 StringRef(Name, strlen(Name) + 1)); 1733 Record.clear(); 1734 Record.push_back(SM_SLOC_BUFFER_BLOB); 1735 Stream.EmitRecordWithBlob(SLocBufferBlobAbbrv, Record, 1736 StringRef(Buffer->getBufferStart(), 1737 Buffer->getBufferSize() + 1)); 1738 1739 if (strcmp(Name, "<built-in>") == 0) { 1740 PreloadSLocs.push_back(SLocEntryOffsets.size()); 1741 } 1742 } 1743 } else { 1744 // The source location entry is a macro expansion. 1745 const SrcMgr::ExpansionInfo &Expansion = SLoc->getExpansion(); 1746 Record.push_back(Expansion.getSpellingLoc().getRawEncoding()); 1747 Record.push_back(Expansion.getExpansionLocStart().getRawEncoding()); 1748 Record.push_back(Expansion.isMacroArgExpansion() ? 0 1749 : Expansion.getExpansionLocEnd().getRawEncoding()); 1750 1751 // Compute the token length for this macro expansion. 1752 unsigned NextOffset = SourceMgr.getNextLocalOffset(); 1753 if (I + 1 != N) 1754 NextOffset = SourceMgr.getLocalSLocEntry(I + 1).getOffset(); 1755 Record.push_back(NextOffset - SLoc->getOffset() - 1); 1756 Stream.EmitRecordWithAbbrev(SLocExpansionAbbrv, Record); 1757 } 1758 } 1759 1760 Stream.ExitBlock(); 1761 1762 if (SLocEntryOffsets.empty()) 1763 return; 1764 1765 // Write the source-location offsets table into the AST block. This 1766 // table is used for lazily loading source-location information. 1767 using namespace llvm; 1768 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 1769 Abbrev->Add(BitCodeAbbrevOp(SOURCE_LOCATION_OFFSETS)); 1770 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 16)); // # of slocs 1771 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 16)); // total size 1772 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // offsets 1773 unsigned SLocOffsetsAbbrev = Stream.EmitAbbrev(Abbrev); 1774 1775 Record.clear(); 1776 Record.push_back(SOURCE_LOCATION_OFFSETS); 1777 Record.push_back(SLocEntryOffsets.size()); 1778 Record.push_back(SourceMgr.getNextLocalOffset() - 1); // skip dummy 1779 Stream.EmitRecordWithBlob(SLocOffsetsAbbrev, Record, data(SLocEntryOffsets)); 1780 1781 // Write the source location entry preloads array, telling the AST 1782 // reader which source locations entries it should load eagerly. 1783 Stream.EmitRecord(SOURCE_LOCATION_PRELOADS, PreloadSLocs); 1784 1785 // Write the line table. It depends on remapping working, so it must come 1786 // after the source location offsets. 1787 if (SourceMgr.hasLineTable()) { 1788 LineTableInfo &LineTable = SourceMgr.getLineTable(); 1789 1790 Record.clear(); 1791 // Emit the file names 1792 Record.push_back(LineTable.getNumFilenames()); 1793 for (unsigned I = 0, N = LineTable.getNumFilenames(); I != N; ++I) { 1794 // Emit the file name 1795 const char *Filename = LineTable.getFilename(I); 1796 Filename = adjustFilenameForRelocatablePCH(Filename, isysroot); 1797 unsigned FilenameLen = Filename? strlen(Filename) : 0; 1798 Record.push_back(FilenameLen); 1799 if (FilenameLen) 1800 Record.insert(Record.end(), Filename, Filename + FilenameLen); 1801 } 1802 1803 // Emit the line entries 1804 for (LineTableInfo::iterator L = LineTable.begin(), LEnd = LineTable.end(); 1805 L != LEnd; ++L) { 1806 // Only emit entries for local files. 1807 if (L->first.ID < 0) 1808 continue; 1809 1810 // Emit the file ID 1811 Record.push_back(L->first.ID); 1812 1813 // Emit the line entries 1814 Record.push_back(L->second.size()); 1815 for (std::vector<LineEntry>::iterator LE = L->second.begin(), 1816 LEEnd = L->second.end(); 1817 LE != LEEnd; ++LE) { 1818 Record.push_back(LE->FileOffset); 1819 Record.push_back(LE->LineNo); 1820 Record.push_back(LE->FilenameID); 1821 Record.push_back((unsigned)LE->FileKind); 1822 Record.push_back(LE->IncludeOffset); 1823 } 1824 } 1825 Stream.EmitRecord(SOURCE_MANAGER_LINE_TABLE, Record); 1826 } 1827 } 1828 1829 //===----------------------------------------------------------------------===// 1830 // Preprocessor Serialization 1831 //===----------------------------------------------------------------------===// 1832 1833 namespace { 1834 class ASTMacroTableTrait { 1835 public: 1836 typedef IdentID key_type; 1837 typedef key_type key_type_ref; 1838 1839 struct Data { 1840 uint32_t MacroDirectivesOffset; 1841 }; 1842 1843 typedef Data data_type; 1844 typedef const data_type &data_type_ref; 1845 1846 static unsigned ComputeHash(IdentID IdID) { 1847 return llvm::hash_value(IdID); 1848 } 1849 1850 std::pair<unsigned,unsigned> 1851 static EmitKeyDataLength(raw_ostream& Out, 1852 key_type_ref Key, data_type_ref Data) { 1853 unsigned KeyLen = 4; // IdentID. 1854 unsigned DataLen = 4; // MacroDirectivesOffset. 1855 return std::make_pair(KeyLen, DataLen); 1856 } 1857 1858 static void EmitKey(raw_ostream& Out, key_type_ref Key, unsigned KeyLen) { 1859 clang::io::Emit32(Out, Key); 1860 } 1861 1862 static void EmitData(raw_ostream& Out, key_type_ref Key, data_type_ref Data, 1863 unsigned) { 1864 clang::io::Emit32(Out, Data.MacroDirectivesOffset); 1865 } 1866 }; 1867 } // end anonymous namespace 1868 1869 static int compareMacroDirectives( 1870 const std::pair<const IdentifierInfo *, MacroDirective *> *X, 1871 const std::pair<const IdentifierInfo *, MacroDirective *> *Y) { 1872 return X->first->getName().compare(Y->first->getName()); 1873 } 1874 1875 static bool shouldIgnoreMacro(MacroDirective *MD, bool IsModule, 1876 const Preprocessor &PP) { 1877 if (MacroInfo *MI = MD->getMacroInfo()) 1878 if (MI->isBuiltinMacro()) 1879 return true; 1880 1881 if (IsModule) { 1882 SourceLocation Loc = MD->getLocation(); 1883 if (Loc.isInvalid()) 1884 return true; 1885 if (PP.getSourceManager().getFileID(Loc) == PP.getPredefinesFileID()) 1886 return true; 1887 } 1888 1889 return false; 1890 } 1891 1892 /// \brief Writes the block containing the serialized form of the 1893 /// preprocessor. 1894 /// 1895 void ASTWriter::WritePreprocessor(const Preprocessor &PP, bool IsModule) { 1896 PreprocessingRecord *PPRec = PP.getPreprocessingRecord(); 1897 if (PPRec) 1898 WritePreprocessorDetail(*PPRec); 1899 1900 RecordData Record; 1901 1902 // If the preprocessor __COUNTER__ value has been bumped, remember it. 1903 if (PP.getCounterValue() != 0) { 1904 Record.push_back(PP.getCounterValue()); 1905 Stream.EmitRecord(PP_COUNTER_VALUE, Record); 1906 Record.clear(); 1907 } 1908 1909 // Enter the preprocessor block. 1910 Stream.EnterSubblock(PREPROCESSOR_BLOCK_ID, 3); 1911 1912 // If the AST file contains __DATE__ or __TIME__ emit a warning about this. 1913 // FIXME: use diagnostics subsystem for localization etc. 1914 if (PP.SawDateOrTime()) 1915 fprintf(stderr, "warning: precompiled header used __DATE__ or __TIME__.\n"); 1916 1917 1918 // Loop over all the macro directives that are live at the end of the file, 1919 // emitting each to the PP section. 1920 1921 // Construct the list of macro directives that need to be serialized. 1922 SmallVector<std::pair<const IdentifierInfo *, MacroDirective *>, 2> 1923 MacroDirectives; 1924 for (Preprocessor::macro_iterator 1925 I = PP.macro_begin(/*IncludeExternalMacros=*/false), 1926 E = PP.macro_end(/*IncludeExternalMacros=*/false); 1927 I != E; ++I) { 1928 MacroDirectives.push_back(std::make_pair(I->first, I->second)); 1929 } 1930 1931 // Sort the set of macro definitions that need to be serialized by the 1932 // name of the macro, to provide a stable ordering. 1933 llvm::array_pod_sort(MacroDirectives.begin(), MacroDirectives.end(), 1934 &compareMacroDirectives); 1935 1936 OnDiskChainedHashTableGenerator<ASTMacroTableTrait> Generator; 1937 1938 // Emit the macro directives as a list and associate the offset with the 1939 // identifier they belong to. 1940 for (unsigned I = 0, N = MacroDirectives.size(); I != N; ++I) { 1941 const IdentifierInfo *Name = MacroDirectives[I].first; 1942 uint64_t MacroDirectiveOffset = Stream.GetCurrentBitNo(); 1943 MacroDirective *MD = MacroDirectives[I].second; 1944 1945 // If the macro or identifier need no updates, don't write the macro history 1946 // for this one. 1947 // FIXME: Chain the macro history instead of re-writing it. 1948 if (MD->isFromPCH() && 1949 Name->isFromAST() && !Name->hasChangedSinceDeserialization()) 1950 continue; 1951 1952 // Emit the macro directives in reverse source order. 1953 for (; MD; MD = MD->getPrevious()) { 1954 if (shouldIgnoreMacro(MD, IsModule, PP)) 1955 continue; 1956 1957 AddSourceLocation(MD->getLocation(), Record); 1958 Record.push_back(MD->getKind()); 1959 if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) { 1960 MacroID InfoID = getMacroRef(DefMD->getInfo(), Name); 1961 Record.push_back(InfoID); 1962 Record.push_back(DefMD->isImported()); 1963 Record.push_back(DefMD->isAmbiguous()); 1964 1965 } else if (VisibilityMacroDirective * 1966 VisMD = dyn_cast<VisibilityMacroDirective>(MD)) { 1967 Record.push_back(VisMD->isPublic()); 1968 } 1969 } 1970 if (Record.empty()) 1971 continue; 1972 1973 Stream.EmitRecord(PP_MACRO_DIRECTIVE_HISTORY, Record); 1974 Record.clear(); 1975 1976 IdentMacroDirectivesOffsetMap[Name] = MacroDirectiveOffset; 1977 1978 IdentID NameID = getIdentifierRef(Name); 1979 ASTMacroTableTrait::Data data; 1980 data.MacroDirectivesOffset = MacroDirectiveOffset; 1981 Generator.insert(NameID, data); 1982 } 1983 1984 /// \brief Offsets of each of the macros into the bitstream, indexed by 1985 /// the local macro ID 1986 /// 1987 /// For each identifier that is associated with a macro, this map 1988 /// provides the offset into the bitstream where that macro is 1989 /// defined. 1990 std::vector<uint32_t> MacroOffsets; 1991 1992 for (unsigned I = 0, N = MacroInfosToEmit.size(); I != N; ++I) { 1993 const IdentifierInfo *Name = MacroInfosToEmit[I].Name; 1994 MacroInfo *MI = MacroInfosToEmit[I].MI; 1995 MacroID ID = MacroInfosToEmit[I].ID; 1996 1997 if (ID < FirstMacroID) { 1998 assert(0 && "Loaded MacroInfo entered MacroInfosToEmit ?"); 1999 continue; 2000 } 2001 2002 // Record the local offset of this macro. 2003 unsigned Index = ID - FirstMacroID; 2004 if (Index == MacroOffsets.size()) 2005 MacroOffsets.push_back(Stream.GetCurrentBitNo()); 2006 else { 2007 if (Index > MacroOffsets.size()) 2008 MacroOffsets.resize(Index + 1); 2009 2010 MacroOffsets[Index] = Stream.GetCurrentBitNo(); 2011 } 2012 2013 AddIdentifierRef(Name, Record); 2014 Record.push_back(inferSubmoduleIDFromLocation(MI->getDefinitionLoc())); 2015 AddSourceLocation(MI->getDefinitionLoc(), Record); 2016 AddSourceLocation(MI->getDefinitionEndLoc(), Record); 2017 Record.push_back(MI->isUsed()); 2018 unsigned Code; 2019 if (MI->isObjectLike()) { 2020 Code = PP_MACRO_OBJECT_LIKE; 2021 } else { 2022 Code = PP_MACRO_FUNCTION_LIKE; 2023 2024 Record.push_back(MI->isC99Varargs()); 2025 Record.push_back(MI->isGNUVarargs()); 2026 Record.push_back(MI->hasCommaPasting()); 2027 Record.push_back(MI->getNumArgs()); 2028 for (MacroInfo::arg_iterator I = MI->arg_begin(), E = MI->arg_end(); 2029 I != E; ++I) 2030 AddIdentifierRef(*I, Record); 2031 } 2032 2033 // If we have a detailed preprocessing record, record the macro definition 2034 // ID that corresponds to this macro. 2035 if (PPRec) 2036 Record.push_back(MacroDefinitions[PPRec->findMacroDefinition(MI)]); 2037 2038 Stream.EmitRecord(Code, Record); 2039 Record.clear(); 2040 2041 // Emit the tokens array. 2042 for (unsigned TokNo = 0, e = MI->getNumTokens(); TokNo != e; ++TokNo) { 2043 // Note that we know that the preprocessor does not have any annotation 2044 // tokens in it because they are created by the parser, and thus can't 2045 // be in a macro definition. 2046 const Token &Tok = MI->getReplacementToken(TokNo); 2047 AddToken(Tok, Record); 2048 Stream.EmitRecord(PP_TOKEN, Record); 2049 Record.clear(); 2050 } 2051 ++NumMacros; 2052 } 2053 2054 Stream.ExitBlock(); 2055 2056 // Create the on-disk hash table in a buffer. 2057 SmallString<4096> MacroTable; 2058 uint32_t BucketOffset; 2059 { 2060 llvm::raw_svector_ostream Out(MacroTable); 2061 // Make sure that no bucket is at offset 0 2062 clang::io::Emit32(Out, 0); 2063 BucketOffset = Generator.Emit(Out); 2064 } 2065 2066 // Write the macro table 2067 using namespace llvm; 2068 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2069 Abbrev->Add(BitCodeAbbrevOp(MACRO_TABLE)); 2070 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 2071 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2072 unsigned MacroTableAbbrev = Stream.EmitAbbrev(Abbrev); 2073 2074 Record.push_back(MACRO_TABLE); 2075 Record.push_back(BucketOffset); 2076 Stream.EmitRecordWithBlob(MacroTableAbbrev, Record, MacroTable.str()); 2077 Record.clear(); 2078 2079 // Write the offsets table for macro IDs. 2080 using namespace llvm; 2081 Abbrev = new BitCodeAbbrev(); 2082 Abbrev->Add(BitCodeAbbrevOp(MACRO_OFFSET)); 2083 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of macros 2084 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID 2085 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2086 2087 unsigned MacroOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2088 Record.clear(); 2089 Record.push_back(MACRO_OFFSET); 2090 Record.push_back(MacroOffsets.size()); 2091 Record.push_back(FirstMacroID - NUM_PREDEF_MACRO_IDS); 2092 Stream.EmitRecordWithBlob(MacroOffsetAbbrev, Record, 2093 data(MacroOffsets)); 2094 } 2095 2096 void ASTWriter::WritePreprocessorDetail(PreprocessingRecord &PPRec) { 2097 if (PPRec.local_begin() == PPRec.local_end()) 2098 return; 2099 2100 SmallVector<PPEntityOffset, 64> PreprocessedEntityOffsets; 2101 2102 // Enter the preprocessor block. 2103 Stream.EnterSubblock(PREPROCESSOR_DETAIL_BLOCK_ID, 3); 2104 2105 // If the preprocessor has a preprocessing record, emit it. 2106 unsigned NumPreprocessingRecords = 0; 2107 using namespace llvm; 2108 2109 // Set up the abbreviation for 2110 unsigned InclusionAbbrev = 0; 2111 { 2112 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2113 Abbrev->Add(BitCodeAbbrevOp(PPD_INCLUSION_DIRECTIVE)); 2114 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // filename length 2115 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // in quotes 2116 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 2)); // kind 2117 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // imported module 2118 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2119 InclusionAbbrev = Stream.EmitAbbrev(Abbrev); 2120 } 2121 2122 unsigned FirstPreprocessorEntityID 2123 = (Chain ? PPRec.getNumLoadedPreprocessedEntities() : 0) 2124 + NUM_PREDEF_PP_ENTITY_IDS; 2125 unsigned NextPreprocessorEntityID = FirstPreprocessorEntityID; 2126 RecordData Record; 2127 for (PreprocessingRecord::iterator E = PPRec.local_begin(), 2128 EEnd = PPRec.local_end(); 2129 E != EEnd; 2130 (void)++E, ++NumPreprocessingRecords, ++NextPreprocessorEntityID) { 2131 Record.clear(); 2132 2133 PreprocessedEntityOffsets.push_back(PPEntityOffset((*E)->getSourceRange(), 2134 Stream.GetCurrentBitNo())); 2135 2136 if (MacroDefinition *MD = dyn_cast<MacroDefinition>(*E)) { 2137 // Record this macro definition's ID. 2138 MacroDefinitions[MD] = NextPreprocessorEntityID; 2139 2140 AddIdentifierRef(MD->getName(), Record); 2141 Stream.EmitRecord(PPD_MACRO_DEFINITION, Record); 2142 continue; 2143 } 2144 2145 if (MacroExpansion *ME = dyn_cast<MacroExpansion>(*E)) { 2146 Record.push_back(ME->isBuiltinMacro()); 2147 if (ME->isBuiltinMacro()) 2148 AddIdentifierRef(ME->getName(), Record); 2149 else 2150 Record.push_back(MacroDefinitions[ME->getDefinition()]); 2151 Stream.EmitRecord(PPD_MACRO_EXPANSION, Record); 2152 continue; 2153 } 2154 2155 if (InclusionDirective *ID = dyn_cast<InclusionDirective>(*E)) { 2156 Record.push_back(PPD_INCLUSION_DIRECTIVE); 2157 Record.push_back(ID->getFileName().size()); 2158 Record.push_back(ID->wasInQuotes()); 2159 Record.push_back(static_cast<unsigned>(ID->getKind())); 2160 Record.push_back(ID->importedModule()); 2161 SmallString<64> Buffer; 2162 Buffer += ID->getFileName(); 2163 // Check that the FileEntry is not null because it was not resolved and 2164 // we create a PCH even with compiler errors. 2165 if (ID->getFile()) 2166 Buffer += ID->getFile()->getName(); 2167 Stream.EmitRecordWithBlob(InclusionAbbrev, Record, Buffer); 2168 continue; 2169 } 2170 2171 llvm_unreachable("Unhandled PreprocessedEntity in ASTWriter"); 2172 } 2173 Stream.ExitBlock(); 2174 2175 // Write the offsets table for the preprocessing record. 2176 if (NumPreprocessingRecords > 0) { 2177 assert(PreprocessedEntityOffsets.size() == NumPreprocessingRecords); 2178 2179 // Write the offsets table for identifier IDs. 2180 using namespace llvm; 2181 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2182 Abbrev->Add(BitCodeAbbrevOp(PPD_ENTITIES_OFFSETS)); 2183 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first pp entity 2184 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2185 unsigned PPEOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2186 2187 Record.clear(); 2188 Record.push_back(PPD_ENTITIES_OFFSETS); 2189 Record.push_back(FirstPreprocessorEntityID - NUM_PREDEF_PP_ENTITY_IDS); 2190 Stream.EmitRecordWithBlob(PPEOffsetAbbrev, Record, 2191 data(PreprocessedEntityOffsets)); 2192 } 2193 } 2194 2195 unsigned ASTWriter::getSubmoduleID(Module *Mod) { 2196 llvm::DenseMap<Module *, unsigned>::iterator Known = SubmoduleIDs.find(Mod); 2197 if (Known != SubmoduleIDs.end()) 2198 return Known->second; 2199 2200 return SubmoduleIDs[Mod] = NextSubmoduleID++; 2201 } 2202 2203 unsigned ASTWriter::getExistingSubmoduleID(Module *Mod) const { 2204 if (!Mod) 2205 return 0; 2206 2207 llvm::DenseMap<Module *, unsigned>::const_iterator 2208 Known = SubmoduleIDs.find(Mod); 2209 if (Known != SubmoduleIDs.end()) 2210 return Known->second; 2211 2212 return 0; 2213 } 2214 2215 /// \brief Compute the number of modules within the given tree (including the 2216 /// given module). 2217 static unsigned getNumberOfModules(Module *Mod) { 2218 unsigned ChildModules = 0; 2219 for (Module::submodule_iterator Sub = Mod->submodule_begin(), 2220 SubEnd = Mod->submodule_end(); 2221 Sub != SubEnd; ++Sub) 2222 ChildModules += getNumberOfModules(*Sub); 2223 2224 return ChildModules + 1; 2225 } 2226 2227 void ASTWriter::WriteSubmodules(Module *WritingModule) { 2228 // Determine the dependencies of our module and each of it's submodules. 2229 // FIXME: This feels like it belongs somewhere else, but there are no 2230 // other consumers of this information. 2231 SourceManager &SrcMgr = PP->getSourceManager(); 2232 ModuleMap &ModMap = PP->getHeaderSearchInfo().getModuleMap(); 2233 for (ASTContext::import_iterator I = Context->local_import_begin(), 2234 IEnd = Context->local_import_end(); 2235 I != IEnd; ++I) { 2236 if (Module *ImportedFrom 2237 = ModMap.inferModuleFromLocation(FullSourceLoc(I->getLocation(), 2238 SrcMgr))) { 2239 ImportedFrom->Imports.push_back(I->getImportedModule()); 2240 } 2241 } 2242 2243 // Enter the submodule description block. 2244 Stream.EnterSubblock(SUBMODULE_BLOCK_ID, NUM_ALLOWED_ABBREVS_SIZE); 2245 2246 // Write the abbreviations needed for the submodules block. 2247 using namespace llvm; 2248 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2249 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_DEFINITION)); 2250 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // ID 2251 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Parent 2252 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsFramework 2253 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsExplicit 2254 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsSystem 2255 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferSubmodules... 2256 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferExplicit... 2257 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // InferExportWild... 2258 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // ConfigMacrosExh... 2259 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2260 unsigned DefinitionAbbrev = Stream.EmitAbbrev(Abbrev); 2261 2262 Abbrev = new BitCodeAbbrev(); 2263 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_UMBRELLA_HEADER)); 2264 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2265 unsigned UmbrellaAbbrev = Stream.EmitAbbrev(Abbrev); 2266 2267 Abbrev = new BitCodeAbbrev(); 2268 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_HEADER)); 2269 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2270 unsigned HeaderAbbrev = Stream.EmitAbbrev(Abbrev); 2271 2272 Abbrev = new BitCodeAbbrev(); 2273 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_TOPHEADER)); 2274 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2275 unsigned TopHeaderAbbrev = Stream.EmitAbbrev(Abbrev); 2276 2277 Abbrev = new BitCodeAbbrev(); 2278 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_UMBRELLA_DIR)); 2279 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2280 unsigned UmbrellaDirAbbrev = Stream.EmitAbbrev(Abbrev); 2281 2282 Abbrev = new BitCodeAbbrev(); 2283 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_REQUIRES)); 2284 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // State 2285 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Feature 2286 unsigned RequiresAbbrev = Stream.EmitAbbrev(Abbrev); 2287 2288 Abbrev = new BitCodeAbbrev(); 2289 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_EXCLUDED_HEADER)); 2290 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2291 unsigned ExcludedHeaderAbbrev = Stream.EmitAbbrev(Abbrev); 2292 2293 Abbrev = new BitCodeAbbrev(); 2294 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_PRIVATE_HEADER)); 2295 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2296 unsigned PrivateHeaderAbbrev = Stream.EmitAbbrev(Abbrev); 2297 2298 Abbrev = new BitCodeAbbrev(); 2299 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_LINK_LIBRARY)); 2300 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 1)); // IsFramework 2301 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Name 2302 unsigned LinkLibraryAbbrev = Stream.EmitAbbrev(Abbrev); 2303 2304 Abbrev = new BitCodeAbbrev(); 2305 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_CONFIG_MACRO)); 2306 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Macro name 2307 unsigned ConfigMacroAbbrev = Stream.EmitAbbrev(Abbrev); 2308 2309 Abbrev = new BitCodeAbbrev(); 2310 Abbrev->Add(BitCodeAbbrevOp(SUBMODULE_CONFLICT)); 2311 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // Other module 2312 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // Message 2313 unsigned ConflictAbbrev = Stream.EmitAbbrev(Abbrev); 2314 2315 // Write the submodule metadata block. 2316 RecordData Record; 2317 Record.push_back(getNumberOfModules(WritingModule)); 2318 Record.push_back(FirstSubmoduleID - NUM_PREDEF_SUBMODULE_IDS); 2319 Stream.EmitRecord(SUBMODULE_METADATA, Record); 2320 2321 // Write all of the submodules. 2322 std::queue<Module *> Q; 2323 Q.push(WritingModule); 2324 while (!Q.empty()) { 2325 Module *Mod = Q.front(); 2326 Q.pop(); 2327 unsigned ID = getSubmoduleID(Mod); 2328 2329 // Emit the definition of the block. 2330 Record.clear(); 2331 Record.push_back(SUBMODULE_DEFINITION); 2332 Record.push_back(ID); 2333 if (Mod->Parent) { 2334 assert(SubmoduleIDs[Mod->Parent] && "Submodule parent not written?"); 2335 Record.push_back(SubmoduleIDs[Mod->Parent]); 2336 } else { 2337 Record.push_back(0); 2338 } 2339 Record.push_back(Mod->IsFramework); 2340 Record.push_back(Mod->IsExplicit); 2341 Record.push_back(Mod->IsSystem); 2342 Record.push_back(Mod->InferSubmodules); 2343 Record.push_back(Mod->InferExplicitSubmodules); 2344 Record.push_back(Mod->InferExportWildcard); 2345 Record.push_back(Mod->ConfigMacrosExhaustive); 2346 Stream.EmitRecordWithBlob(DefinitionAbbrev, Record, Mod->Name); 2347 2348 // Emit the requirements. 2349 for (unsigned I = 0, N = Mod->Requirements.size(); I != N; ++I) { 2350 Record.clear(); 2351 Record.push_back(SUBMODULE_REQUIRES); 2352 Record.push_back(Mod->Requirements[I].second); 2353 Stream.EmitRecordWithBlob(RequiresAbbrev, Record, 2354 Mod->Requirements[I].first); 2355 } 2356 2357 // Emit the umbrella header, if there is one. 2358 if (const FileEntry *UmbrellaHeader = Mod->getUmbrellaHeader()) { 2359 Record.clear(); 2360 Record.push_back(SUBMODULE_UMBRELLA_HEADER); 2361 Stream.EmitRecordWithBlob(UmbrellaAbbrev, Record, 2362 UmbrellaHeader->getName()); 2363 } else if (const DirectoryEntry *UmbrellaDir = Mod->getUmbrellaDir()) { 2364 Record.clear(); 2365 Record.push_back(SUBMODULE_UMBRELLA_DIR); 2366 Stream.EmitRecordWithBlob(UmbrellaDirAbbrev, Record, 2367 UmbrellaDir->getName()); 2368 } 2369 2370 // Emit the headers. 2371 for (unsigned I = 0, N = Mod->NormalHeaders.size(); I != N; ++I) { 2372 Record.clear(); 2373 Record.push_back(SUBMODULE_HEADER); 2374 Stream.EmitRecordWithBlob(HeaderAbbrev, Record, 2375 Mod->NormalHeaders[I]->getName()); 2376 } 2377 // Emit the excluded headers. 2378 for (unsigned I = 0, N = Mod->ExcludedHeaders.size(); I != N; ++I) { 2379 Record.clear(); 2380 Record.push_back(SUBMODULE_EXCLUDED_HEADER); 2381 Stream.EmitRecordWithBlob(ExcludedHeaderAbbrev, Record, 2382 Mod->ExcludedHeaders[I]->getName()); 2383 } 2384 // Emit the private headers. 2385 for (unsigned I = 0, N = Mod->PrivateHeaders.size(); I != N; ++I) { 2386 Record.clear(); 2387 Record.push_back(SUBMODULE_PRIVATE_HEADER); 2388 Stream.EmitRecordWithBlob(PrivateHeaderAbbrev, Record, 2389 Mod->PrivateHeaders[I]->getName()); 2390 } 2391 ArrayRef<const FileEntry *> 2392 TopHeaders = Mod->getTopHeaders(PP->getFileManager()); 2393 for (unsigned I = 0, N = TopHeaders.size(); I != N; ++I) { 2394 Record.clear(); 2395 Record.push_back(SUBMODULE_TOPHEADER); 2396 Stream.EmitRecordWithBlob(TopHeaderAbbrev, Record, 2397 TopHeaders[I]->getName()); 2398 } 2399 2400 // Emit the imports. 2401 if (!Mod->Imports.empty()) { 2402 Record.clear(); 2403 for (unsigned I = 0, N = Mod->Imports.size(); I != N; ++I) { 2404 unsigned ImportedID = getSubmoduleID(Mod->Imports[I]); 2405 assert(ImportedID && "Unknown submodule!"); 2406 Record.push_back(ImportedID); 2407 } 2408 Stream.EmitRecord(SUBMODULE_IMPORTS, Record); 2409 } 2410 2411 // Emit the exports. 2412 if (!Mod->Exports.empty()) { 2413 Record.clear(); 2414 for (unsigned I = 0, N = Mod->Exports.size(); I != N; ++I) { 2415 if (Module *Exported = Mod->Exports[I].getPointer()) { 2416 unsigned ExportedID = SubmoduleIDs[Exported]; 2417 assert(ExportedID > 0 && "Unknown submodule ID?"); 2418 Record.push_back(ExportedID); 2419 } else { 2420 Record.push_back(0); 2421 } 2422 2423 Record.push_back(Mod->Exports[I].getInt()); 2424 } 2425 Stream.EmitRecord(SUBMODULE_EXPORTS, Record); 2426 } 2427 2428 //FIXME: How do we emit the 'use'd modules? They may not be submodules. 2429 // Might be unnecessary as use declarations are only used to build the 2430 // module itself. 2431 2432 // Emit the link libraries. 2433 for (unsigned I = 0, N = Mod->LinkLibraries.size(); I != N; ++I) { 2434 Record.clear(); 2435 Record.push_back(SUBMODULE_LINK_LIBRARY); 2436 Record.push_back(Mod->LinkLibraries[I].IsFramework); 2437 Stream.EmitRecordWithBlob(LinkLibraryAbbrev, Record, 2438 Mod->LinkLibraries[I].Library); 2439 } 2440 2441 // Emit the conflicts. 2442 for (unsigned I = 0, N = Mod->Conflicts.size(); I != N; ++I) { 2443 Record.clear(); 2444 Record.push_back(SUBMODULE_CONFLICT); 2445 unsigned OtherID = getSubmoduleID(Mod->Conflicts[I].Other); 2446 assert(OtherID && "Unknown submodule!"); 2447 Record.push_back(OtherID); 2448 Stream.EmitRecordWithBlob(ConflictAbbrev, Record, 2449 Mod->Conflicts[I].Message); 2450 } 2451 2452 // Emit the configuration macros. 2453 for (unsigned I = 0, N = Mod->ConfigMacros.size(); I != N; ++I) { 2454 Record.clear(); 2455 Record.push_back(SUBMODULE_CONFIG_MACRO); 2456 Stream.EmitRecordWithBlob(ConfigMacroAbbrev, Record, 2457 Mod->ConfigMacros[I]); 2458 } 2459 2460 // Queue up the submodules of this module. 2461 for (Module::submodule_iterator Sub = Mod->submodule_begin(), 2462 SubEnd = Mod->submodule_end(); 2463 Sub != SubEnd; ++Sub) 2464 Q.push(*Sub); 2465 } 2466 2467 Stream.ExitBlock(); 2468 2469 assert((NextSubmoduleID - FirstSubmoduleID 2470 == getNumberOfModules(WritingModule)) && "Wrong # of submodules"); 2471 } 2472 2473 serialization::SubmoduleID 2474 ASTWriter::inferSubmoduleIDFromLocation(SourceLocation Loc) { 2475 if (Loc.isInvalid() || !WritingModule) 2476 return 0; // No submodule 2477 2478 // Find the module that owns this location. 2479 ModuleMap &ModMap = PP->getHeaderSearchInfo().getModuleMap(); 2480 Module *OwningMod 2481 = ModMap.inferModuleFromLocation(FullSourceLoc(Loc,PP->getSourceManager())); 2482 if (!OwningMod) 2483 return 0; 2484 2485 // Check whether this submodule is part of our own module. 2486 if (WritingModule != OwningMod && !OwningMod->isSubModuleOf(WritingModule)) 2487 return 0; 2488 2489 return getSubmoduleID(OwningMod); 2490 } 2491 2492 void ASTWriter::WritePragmaDiagnosticMappings(const DiagnosticsEngine &Diag, 2493 bool isModule) { 2494 // Make sure set diagnostic pragmas don't affect the translation unit that 2495 // imports the module. 2496 // FIXME: Make diagnostic pragma sections work properly with modules. 2497 if (isModule) 2498 return; 2499 2500 llvm::SmallDenseMap<const DiagnosticsEngine::DiagState *, unsigned, 64> 2501 DiagStateIDMap; 2502 unsigned CurrID = 0; 2503 DiagStateIDMap[&Diag.DiagStates.front()] = ++CurrID; // the command-line one. 2504 RecordData Record; 2505 for (DiagnosticsEngine::DiagStatePointsTy::const_iterator 2506 I = Diag.DiagStatePoints.begin(), E = Diag.DiagStatePoints.end(); 2507 I != E; ++I) { 2508 const DiagnosticsEngine::DiagStatePoint &point = *I; 2509 if (point.Loc.isInvalid()) 2510 continue; 2511 2512 Record.push_back(point.Loc.getRawEncoding()); 2513 unsigned &DiagStateID = DiagStateIDMap[point.State]; 2514 Record.push_back(DiagStateID); 2515 2516 if (DiagStateID == 0) { 2517 DiagStateID = ++CurrID; 2518 for (DiagnosticsEngine::DiagState::const_iterator 2519 I = point.State->begin(), E = point.State->end(); I != E; ++I) { 2520 if (I->second.isPragma()) { 2521 Record.push_back(I->first); 2522 Record.push_back(I->second.getMapping()); 2523 } 2524 } 2525 Record.push_back(-1); // mark the end of the diag/map pairs for this 2526 // location. 2527 } 2528 } 2529 2530 if (!Record.empty()) 2531 Stream.EmitRecord(DIAG_PRAGMA_MAPPINGS, Record); 2532 } 2533 2534 void ASTWriter::WriteCXXBaseSpecifiersOffsets() { 2535 if (CXXBaseSpecifiersOffsets.empty()) 2536 return; 2537 2538 RecordData Record; 2539 2540 // Create a blob abbreviation for the C++ base specifiers offsets. 2541 using namespace llvm; 2542 2543 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2544 Abbrev->Add(BitCodeAbbrevOp(CXX_BASE_SPECIFIER_OFFSETS)); 2545 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // size 2546 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2547 unsigned BaseSpecifierOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2548 2549 // Write the base specifier offsets table. 2550 Record.clear(); 2551 Record.push_back(CXX_BASE_SPECIFIER_OFFSETS); 2552 Record.push_back(CXXBaseSpecifiersOffsets.size()); 2553 Stream.EmitRecordWithBlob(BaseSpecifierOffsetAbbrev, Record, 2554 data(CXXBaseSpecifiersOffsets)); 2555 } 2556 2557 //===----------------------------------------------------------------------===// 2558 // Type Serialization 2559 //===----------------------------------------------------------------------===// 2560 2561 /// \brief Write the representation of a type to the AST stream. 2562 void ASTWriter::WriteType(QualType T) { 2563 TypeIdx &Idx = TypeIdxs[T]; 2564 if (Idx.getIndex() == 0) // we haven't seen this type before. 2565 Idx = TypeIdx(NextTypeID++); 2566 2567 assert(Idx.getIndex() >= FirstTypeID && "Re-writing a type from a prior AST"); 2568 2569 // Record the offset for this type. 2570 unsigned Index = Idx.getIndex() - FirstTypeID; 2571 if (TypeOffsets.size() == Index) 2572 TypeOffsets.push_back(Stream.GetCurrentBitNo()); 2573 else if (TypeOffsets.size() < Index) { 2574 TypeOffsets.resize(Index + 1); 2575 TypeOffsets[Index] = Stream.GetCurrentBitNo(); 2576 } 2577 2578 RecordData Record; 2579 2580 // Emit the type's representation. 2581 ASTTypeWriter W(*this, Record); 2582 2583 if (T.hasLocalNonFastQualifiers()) { 2584 Qualifiers Qs = T.getLocalQualifiers(); 2585 AddTypeRef(T.getLocalUnqualifiedType(), Record); 2586 Record.push_back(Qs.getAsOpaqueValue()); 2587 W.Code = TYPE_EXT_QUAL; 2588 } else { 2589 switch (T->getTypeClass()) { 2590 // For all of the concrete, non-dependent types, call the 2591 // appropriate visitor function. 2592 #define TYPE(Class, Base) \ 2593 case Type::Class: W.Visit##Class##Type(cast<Class##Type>(T)); break; 2594 #define ABSTRACT_TYPE(Class, Base) 2595 #include "clang/AST/TypeNodes.def" 2596 } 2597 } 2598 2599 // Emit the serialized record. 2600 Stream.EmitRecord(W.Code, Record); 2601 2602 // Flush any expressions that were written as part of this type. 2603 FlushStmts(); 2604 } 2605 2606 //===----------------------------------------------------------------------===// 2607 // Declaration Serialization 2608 //===----------------------------------------------------------------------===// 2609 2610 /// \brief Write the block containing all of the declaration IDs 2611 /// lexically declared within the given DeclContext. 2612 /// 2613 /// \returns the offset of the DECL_CONTEXT_LEXICAL block within the 2614 /// bistream, or 0 if no block was written. 2615 uint64_t ASTWriter::WriteDeclContextLexicalBlock(ASTContext &Context, 2616 DeclContext *DC) { 2617 if (DC->decls_empty()) 2618 return 0; 2619 2620 uint64_t Offset = Stream.GetCurrentBitNo(); 2621 RecordData Record; 2622 Record.push_back(DECL_CONTEXT_LEXICAL); 2623 SmallVector<KindDeclIDPair, 64> Decls; 2624 for (DeclContext::decl_iterator D = DC->decls_begin(), DEnd = DC->decls_end(); 2625 D != DEnd; ++D) 2626 Decls.push_back(std::make_pair((*D)->getKind(), GetDeclRef(*D))); 2627 2628 ++NumLexicalDeclContexts; 2629 Stream.EmitRecordWithBlob(DeclContextLexicalAbbrev, Record, data(Decls)); 2630 return Offset; 2631 } 2632 2633 void ASTWriter::WriteTypeDeclOffsets() { 2634 using namespace llvm; 2635 RecordData Record; 2636 2637 // Write the type offsets array 2638 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2639 Abbrev->Add(BitCodeAbbrevOp(TYPE_OFFSET)); 2640 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of types 2641 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // base type index 2642 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // types block 2643 unsigned TypeOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2644 Record.clear(); 2645 Record.push_back(TYPE_OFFSET); 2646 Record.push_back(TypeOffsets.size()); 2647 Record.push_back(FirstTypeID - NUM_PREDEF_TYPE_IDS); 2648 Stream.EmitRecordWithBlob(TypeOffsetAbbrev, Record, data(TypeOffsets)); 2649 2650 // Write the declaration offsets array 2651 Abbrev = new BitCodeAbbrev(); 2652 Abbrev->Add(BitCodeAbbrevOp(DECL_OFFSET)); 2653 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of declarations 2654 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // base decl ID 2655 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); // declarations block 2656 unsigned DeclOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2657 Record.clear(); 2658 Record.push_back(DECL_OFFSET); 2659 Record.push_back(DeclOffsets.size()); 2660 Record.push_back(FirstDeclID - NUM_PREDEF_DECL_IDS); 2661 Stream.EmitRecordWithBlob(DeclOffsetAbbrev, Record, data(DeclOffsets)); 2662 } 2663 2664 void ASTWriter::WriteFileDeclIDsMap() { 2665 using namespace llvm; 2666 RecordData Record; 2667 2668 // Join the vectors of DeclIDs from all files. 2669 SmallVector<DeclID, 256> FileSortedIDs; 2670 for (FileDeclIDsTy::iterator 2671 FI = FileDeclIDs.begin(), FE = FileDeclIDs.end(); FI != FE; ++FI) { 2672 DeclIDInFileInfo &Info = *FI->second; 2673 Info.FirstDeclIndex = FileSortedIDs.size(); 2674 for (LocDeclIDsTy::iterator 2675 DI = Info.DeclIDs.begin(), DE = Info.DeclIDs.end(); DI != DE; ++DI) 2676 FileSortedIDs.push_back(DI->second); 2677 } 2678 2679 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2680 Abbrev->Add(BitCodeAbbrevOp(FILE_SORTED_DECLS)); 2681 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 2682 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2683 unsigned AbbrevCode = Stream.EmitAbbrev(Abbrev); 2684 Record.push_back(FILE_SORTED_DECLS); 2685 Record.push_back(FileSortedIDs.size()); 2686 Stream.EmitRecordWithBlob(AbbrevCode, Record, data(FileSortedIDs)); 2687 } 2688 2689 void ASTWriter::WriteComments() { 2690 Stream.EnterSubblock(COMMENTS_BLOCK_ID, 3); 2691 ArrayRef<RawComment *> RawComments = Context->Comments.getComments(); 2692 RecordData Record; 2693 for (ArrayRef<RawComment *>::iterator I = RawComments.begin(), 2694 E = RawComments.end(); 2695 I != E; ++I) { 2696 Record.clear(); 2697 AddSourceRange((*I)->getSourceRange(), Record); 2698 Record.push_back((*I)->getKind()); 2699 Record.push_back((*I)->isTrailingComment()); 2700 Record.push_back((*I)->isAlmostTrailingComment()); 2701 Stream.EmitRecord(COMMENTS_RAW_COMMENT, Record); 2702 } 2703 Stream.ExitBlock(); 2704 } 2705 2706 //===----------------------------------------------------------------------===// 2707 // Global Method Pool and Selector Serialization 2708 //===----------------------------------------------------------------------===// 2709 2710 namespace { 2711 // Trait used for the on-disk hash table used in the method pool. 2712 class ASTMethodPoolTrait { 2713 ASTWriter &Writer; 2714 2715 public: 2716 typedef Selector key_type; 2717 typedef key_type key_type_ref; 2718 2719 struct data_type { 2720 SelectorID ID; 2721 ObjCMethodList Instance, Factory; 2722 }; 2723 typedef const data_type& data_type_ref; 2724 2725 explicit ASTMethodPoolTrait(ASTWriter &Writer) : Writer(Writer) { } 2726 2727 static unsigned ComputeHash(Selector Sel) { 2728 return serialization::ComputeHash(Sel); 2729 } 2730 2731 std::pair<unsigned,unsigned> 2732 EmitKeyDataLength(raw_ostream& Out, Selector Sel, 2733 data_type_ref Methods) { 2734 unsigned KeyLen = 2 + (Sel.getNumArgs()? Sel.getNumArgs() * 4 : 4); 2735 clang::io::Emit16(Out, KeyLen); 2736 unsigned DataLen = 4 + 2 + 2; // 2 bytes for each of the method counts 2737 for (const ObjCMethodList *Method = &Methods.Instance; Method; 2738 Method = Method->getNext()) 2739 if (Method->Method) 2740 DataLen += 4; 2741 for (const ObjCMethodList *Method = &Methods.Factory; Method; 2742 Method = Method->getNext()) 2743 if (Method->Method) 2744 DataLen += 4; 2745 clang::io::Emit16(Out, DataLen); 2746 return std::make_pair(KeyLen, DataLen); 2747 } 2748 2749 void EmitKey(raw_ostream& Out, Selector Sel, unsigned) { 2750 uint64_t Start = Out.tell(); 2751 assert((Start >> 32) == 0 && "Selector key offset too large"); 2752 Writer.SetSelectorOffset(Sel, Start); 2753 unsigned N = Sel.getNumArgs(); 2754 clang::io::Emit16(Out, N); 2755 if (N == 0) 2756 N = 1; 2757 for (unsigned I = 0; I != N; ++I) 2758 clang::io::Emit32(Out, 2759 Writer.getIdentifierRef(Sel.getIdentifierInfoForSlot(I))); 2760 } 2761 2762 void EmitData(raw_ostream& Out, key_type_ref, 2763 data_type_ref Methods, unsigned DataLen) { 2764 uint64_t Start = Out.tell(); (void)Start; 2765 clang::io::Emit32(Out, Methods.ID); 2766 unsigned NumInstanceMethods = 0; 2767 for (const ObjCMethodList *Method = &Methods.Instance; Method; 2768 Method = Method->getNext()) 2769 if (Method->Method) 2770 ++NumInstanceMethods; 2771 2772 unsigned NumFactoryMethods = 0; 2773 for (const ObjCMethodList *Method = &Methods.Factory; Method; 2774 Method = Method->getNext()) 2775 if (Method->Method) 2776 ++NumFactoryMethods; 2777 2778 unsigned InstanceBits = Methods.Instance.getBits(); 2779 assert(InstanceBits < 4); 2780 unsigned NumInstanceMethodsAndBits = 2781 (NumInstanceMethods << 2) | InstanceBits; 2782 unsigned FactoryBits = Methods.Factory.getBits(); 2783 assert(FactoryBits < 4); 2784 unsigned NumFactoryMethodsAndBits = (NumFactoryMethods << 2) | FactoryBits; 2785 clang::io::Emit16(Out, NumInstanceMethodsAndBits); 2786 clang::io::Emit16(Out, NumFactoryMethodsAndBits); 2787 for (const ObjCMethodList *Method = &Methods.Instance; Method; 2788 Method = Method->getNext()) 2789 if (Method->Method) 2790 clang::io::Emit32(Out, Writer.getDeclID(Method->Method)); 2791 for (const ObjCMethodList *Method = &Methods.Factory; Method; 2792 Method = Method->getNext()) 2793 if (Method->Method) 2794 clang::io::Emit32(Out, Writer.getDeclID(Method->Method)); 2795 2796 assert(Out.tell() - Start == DataLen && "Data length is wrong"); 2797 } 2798 }; 2799 } // end anonymous namespace 2800 2801 /// \brief Write ObjC data: selectors and the method pool. 2802 /// 2803 /// The method pool contains both instance and factory methods, stored 2804 /// in an on-disk hash table indexed by the selector. The hash table also 2805 /// contains an empty entry for every other selector known to Sema. 2806 void ASTWriter::WriteSelectors(Sema &SemaRef) { 2807 using namespace llvm; 2808 2809 // Do we have to do anything at all? 2810 if (SemaRef.MethodPool.empty() && SelectorIDs.empty()) 2811 return; 2812 unsigned NumTableEntries = 0; 2813 // Create and write out the blob that contains selectors and the method pool. 2814 { 2815 OnDiskChainedHashTableGenerator<ASTMethodPoolTrait> Generator; 2816 ASTMethodPoolTrait Trait(*this); 2817 2818 // Create the on-disk hash table representation. We walk through every 2819 // selector we've seen and look it up in the method pool. 2820 SelectorOffsets.resize(NextSelectorID - FirstSelectorID); 2821 for (llvm::DenseMap<Selector, SelectorID>::iterator 2822 I = SelectorIDs.begin(), E = SelectorIDs.end(); 2823 I != E; ++I) { 2824 Selector S = I->first; 2825 Sema::GlobalMethodPool::iterator F = SemaRef.MethodPool.find(S); 2826 ASTMethodPoolTrait::data_type Data = { 2827 I->second, 2828 ObjCMethodList(), 2829 ObjCMethodList() 2830 }; 2831 if (F != SemaRef.MethodPool.end()) { 2832 Data.Instance = F->second.first; 2833 Data.Factory = F->second.second; 2834 } 2835 // Only write this selector if it's not in an existing AST or something 2836 // changed. 2837 if (Chain && I->second < FirstSelectorID) { 2838 // Selector already exists. Did it change? 2839 bool changed = false; 2840 for (ObjCMethodList *M = &Data.Instance; !changed && M && M->Method; 2841 M = M->getNext()) { 2842 if (!M->Method->isFromASTFile()) 2843 changed = true; 2844 } 2845 for (ObjCMethodList *M = &Data.Factory; !changed && M && M->Method; 2846 M = M->getNext()) { 2847 if (!M->Method->isFromASTFile()) 2848 changed = true; 2849 } 2850 if (!changed) 2851 continue; 2852 } else if (Data.Instance.Method || Data.Factory.Method) { 2853 // A new method pool entry. 2854 ++NumTableEntries; 2855 } 2856 Generator.insert(S, Data, Trait); 2857 } 2858 2859 // Create the on-disk hash table in a buffer. 2860 SmallString<4096> MethodPool; 2861 uint32_t BucketOffset; 2862 { 2863 ASTMethodPoolTrait Trait(*this); 2864 llvm::raw_svector_ostream Out(MethodPool); 2865 // Make sure that no bucket is at offset 0 2866 clang::io::Emit32(Out, 0); 2867 BucketOffset = Generator.Emit(Out, Trait); 2868 } 2869 2870 // Create a blob abbreviation 2871 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 2872 Abbrev->Add(BitCodeAbbrevOp(METHOD_POOL)); 2873 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 2874 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 2875 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2876 unsigned MethodPoolAbbrev = Stream.EmitAbbrev(Abbrev); 2877 2878 // Write the method pool 2879 RecordData Record; 2880 Record.push_back(METHOD_POOL); 2881 Record.push_back(BucketOffset); 2882 Record.push_back(NumTableEntries); 2883 Stream.EmitRecordWithBlob(MethodPoolAbbrev, Record, MethodPool.str()); 2884 2885 // Create a blob abbreviation for the selector table offsets. 2886 Abbrev = new BitCodeAbbrev(); 2887 Abbrev->Add(BitCodeAbbrevOp(SELECTOR_OFFSETS)); 2888 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // size 2889 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID 2890 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 2891 unsigned SelectorOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 2892 2893 // Write the selector offsets table. 2894 Record.clear(); 2895 Record.push_back(SELECTOR_OFFSETS); 2896 Record.push_back(SelectorOffsets.size()); 2897 Record.push_back(FirstSelectorID - NUM_PREDEF_SELECTOR_IDS); 2898 Stream.EmitRecordWithBlob(SelectorOffsetAbbrev, Record, 2899 data(SelectorOffsets)); 2900 } 2901 } 2902 2903 /// \brief Write the selectors referenced in @selector expression into AST file. 2904 void ASTWriter::WriteReferencedSelectorsPool(Sema &SemaRef) { 2905 using namespace llvm; 2906 if (SemaRef.ReferencedSelectors.empty()) 2907 return; 2908 2909 RecordData Record; 2910 2911 // Note: this writes out all references even for a dependent AST. But it is 2912 // very tricky to fix, and given that @selector shouldn't really appear in 2913 // headers, probably not worth it. It's not a correctness issue. 2914 for (DenseMap<Selector, SourceLocation>::iterator S = 2915 SemaRef.ReferencedSelectors.begin(), 2916 E = SemaRef.ReferencedSelectors.end(); S != E; ++S) { 2917 Selector Sel = (*S).first; 2918 SourceLocation Loc = (*S).second; 2919 AddSelectorRef(Sel, Record); 2920 AddSourceLocation(Loc, Record); 2921 } 2922 Stream.EmitRecord(REFERENCED_SELECTOR_POOL, Record); 2923 } 2924 2925 //===----------------------------------------------------------------------===// 2926 // Identifier Table Serialization 2927 //===----------------------------------------------------------------------===// 2928 2929 namespace { 2930 class ASTIdentifierTableTrait { 2931 ASTWriter &Writer; 2932 Preprocessor &PP; 2933 IdentifierResolver &IdResolver; 2934 bool IsModule; 2935 2936 /// \brief Determines whether this is an "interesting" identifier 2937 /// that needs a full IdentifierInfo structure written into the hash 2938 /// table. 2939 bool isInterestingIdentifier(IdentifierInfo *II, MacroDirective *&Macro) { 2940 if (II->isPoisoned() || 2941 II->isExtensionToken() || 2942 II->getObjCOrBuiltinID() || 2943 II->hasRevertedTokenIDToIdentifier() || 2944 II->getFETokenInfo<void>()) 2945 return true; 2946 2947 return hadMacroDefinition(II, Macro); 2948 } 2949 2950 bool hadMacroDefinition(IdentifierInfo *II, MacroDirective *&Macro) { 2951 if (!II->hadMacroDefinition()) 2952 return false; 2953 2954 if (Macro || (Macro = PP.getMacroDirectiveHistory(II))) { 2955 if (!IsModule) 2956 return !shouldIgnoreMacro(Macro, IsModule, PP); 2957 SubmoduleID ModID; 2958 if (getFirstPublicSubmoduleMacro(Macro, ModID)) 2959 return true; 2960 } 2961 2962 return false; 2963 } 2964 2965 DefMacroDirective *getFirstPublicSubmoduleMacro(MacroDirective *MD, 2966 SubmoduleID &ModID) { 2967 ModID = 0; 2968 if (DefMacroDirective *DefMD = getPublicSubmoduleMacro(MD, ModID)) 2969 if (!shouldIgnoreMacro(DefMD, IsModule, PP)) 2970 return DefMD; 2971 return 0; 2972 } 2973 2974 DefMacroDirective *getNextPublicSubmoduleMacro(DefMacroDirective *MD, 2975 SubmoduleID &ModID) { 2976 if (DefMacroDirective * 2977 DefMD = getPublicSubmoduleMacro(MD->getPrevious(), ModID)) 2978 if (!shouldIgnoreMacro(DefMD, IsModule, PP)) 2979 return DefMD; 2980 return 0; 2981 } 2982 2983 /// \brief Traverses the macro directives history and returns the latest 2984 /// macro that is public and not undefined in the same submodule. 2985 /// A macro that is defined in submodule A and undefined in submodule B, 2986 /// will still be considered as defined/exported from submodule A. 2987 DefMacroDirective *getPublicSubmoduleMacro(MacroDirective *MD, 2988 SubmoduleID &ModID) { 2989 if (!MD) 2990 return 0; 2991 2992 SubmoduleID OrigModID = ModID; 2993 bool isUndefined = false; 2994 Optional<bool> isPublic; 2995 for (; MD; MD = MD->getPrevious()) { 2996 SubmoduleID ThisModID = getSubmoduleID(MD); 2997 if (ThisModID == 0) { 2998 isUndefined = false; 2999 isPublic = Optional<bool>(); 3000 continue; 3001 } 3002 if (ThisModID != ModID){ 3003 ModID = ThisModID; 3004 isUndefined = false; 3005 isPublic = Optional<bool>(); 3006 } 3007 // We are looking for a definition in a different submodule than the one 3008 // that we started with. If a submodule has re-definitions of the same 3009 // macro, only the last definition will be used as the "exported" one. 3010 if (ModID == OrigModID) 3011 continue; 3012 3013 if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) { 3014 if (!isUndefined && (!isPublic.hasValue() || isPublic.getValue())) 3015 return DefMD; 3016 continue; 3017 } 3018 3019 if (isa<UndefMacroDirective>(MD)) { 3020 isUndefined = true; 3021 continue; 3022 } 3023 3024 VisibilityMacroDirective *VisMD = cast<VisibilityMacroDirective>(MD); 3025 if (!isPublic.hasValue()) 3026 isPublic = VisMD->isPublic(); 3027 } 3028 3029 return 0; 3030 } 3031 3032 SubmoduleID getSubmoduleID(MacroDirective *MD) { 3033 if (DefMacroDirective *DefMD = dyn_cast<DefMacroDirective>(MD)) { 3034 MacroInfo *MI = DefMD->getInfo(); 3035 if (unsigned ID = MI->getOwningModuleID()) 3036 return ID; 3037 return Writer.inferSubmoduleIDFromLocation(MI->getDefinitionLoc()); 3038 } 3039 return Writer.inferSubmoduleIDFromLocation(MD->getLocation()); 3040 } 3041 3042 public: 3043 typedef IdentifierInfo* key_type; 3044 typedef key_type key_type_ref; 3045 3046 typedef IdentID data_type; 3047 typedef data_type data_type_ref; 3048 3049 ASTIdentifierTableTrait(ASTWriter &Writer, Preprocessor &PP, 3050 IdentifierResolver &IdResolver, bool IsModule) 3051 : Writer(Writer), PP(PP), IdResolver(IdResolver), IsModule(IsModule) { } 3052 3053 static unsigned ComputeHash(const IdentifierInfo* II) { 3054 return llvm::HashString(II->getName()); 3055 } 3056 3057 std::pair<unsigned,unsigned> 3058 EmitKeyDataLength(raw_ostream& Out, IdentifierInfo* II, IdentID ID) { 3059 unsigned KeyLen = II->getLength() + 1; 3060 unsigned DataLen = 4; // 4 bytes for the persistent ID << 1 3061 MacroDirective *Macro = 0; 3062 if (isInterestingIdentifier(II, Macro)) { 3063 DataLen += 2; // 2 bytes for builtin ID 3064 DataLen += 2; // 2 bytes for flags 3065 if (hadMacroDefinition(II, Macro)) { 3066 DataLen += 4; // MacroDirectives offset. 3067 if (IsModule) { 3068 SubmoduleID ModID; 3069 for (DefMacroDirective * 3070 DefMD = getFirstPublicSubmoduleMacro(Macro, ModID); 3071 DefMD; DefMD = getNextPublicSubmoduleMacro(DefMD, ModID)) { 3072 DataLen += 4; // MacroInfo ID. 3073 } 3074 DataLen += 4; 3075 } 3076 } 3077 3078 for (IdentifierResolver::iterator D = IdResolver.begin(II), 3079 DEnd = IdResolver.end(); 3080 D != DEnd; ++D) 3081 DataLen += sizeof(DeclID); 3082 } 3083 clang::io::Emit16(Out, DataLen); 3084 // We emit the key length after the data length so that every 3085 // string is preceded by a 16-bit length. This matches the PTH 3086 // format for storing identifiers. 3087 clang::io::Emit16(Out, KeyLen); 3088 return std::make_pair(KeyLen, DataLen); 3089 } 3090 3091 void EmitKey(raw_ostream& Out, const IdentifierInfo* II, 3092 unsigned KeyLen) { 3093 // Record the location of the key data. This is used when generating 3094 // the mapping from persistent IDs to strings. 3095 Writer.SetIdentifierOffset(II, Out.tell()); 3096 Out.write(II->getNameStart(), KeyLen); 3097 } 3098 3099 void EmitData(raw_ostream& Out, IdentifierInfo* II, 3100 IdentID ID, unsigned) { 3101 MacroDirective *Macro = 0; 3102 if (!isInterestingIdentifier(II, Macro)) { 3103 clang::io::Emit32(Out, ID << 1); 3104 return; 3105 } 3106 3107 clang::io::Emit32(Out, (ID << 1) | 0x01); 3108 uint32_t Bits = (uint32_t)II->getObjCOrBuiltinID(); 3109 assert((Bits & 0xffff) == Bits && "ObjCOrBuiltinID too big for ASTReader."); 3110 clang::io::Emit16(Out, Bits); 3111 Bits = 0; 3112 bool HadMacroDefinition = hadMacroDefinition(II, Macro); 3113 Bits = (Bits << 1) | unsigned(HadMacroDefinition); 3114 Bits = (Bits << 1) | unsigned(IsModule); 3115 Bits = (Bits << 1) | unsigned(II->isExtensionToken()); 3116 Bits = (Bits << 1) | unsigned(II->isPoisoned()); 3117 Bits = (Bits << 1) | unsigned(II->hasRevertedTokenIDToIdentifier()); 3118 Bits = (Bits << 1) | unsigned(II->isCPlusPlusOperatorKeyword()); 3119 clang::io::Emit16(Out, Bits); 3120 3121 if (HadMacroDefinition) { 3122 clang::io::Emit32(Out, Writer.getMacroDirectivesOffset(II)); 3123 if (IsModule) { 3124 // Write the IDs of macros coming from different submodules. 3125 SubmoduleID ModID; 3126 for (DefMacroDirective * 3127 DefMD = getFirstPublicSubmoduleMacro(Macro, ModID); 3128 DefMD; DefMD = getNextPublicSubmoduleMacro(DefMD, ModID)) { 3129 MacroID InfoID = Writer.getMacroID(DefMD->getInfo()); 3130 assert(InfoID); 3131 clang::io::Emit32(Out, InfoID); 3132 } 3133 clang::io::Emit32(Out, 0); 3134 } 3135 } 3136 3137 // Emit the declaration IDs in reverse order, because the 3138 // IdentifierResolver provides the declarations as they would be 3139 // visible (e.g., the function "stat" would come before the struct 3140 // "stat"), but the ASTReader adds declarations to the end of the list 3141 // (so we need to see the struct "status" before the function "status"). 3142 // Only emit declarations that aren't from a chained PCH, though. 3143 SmallVector<Decl *, 16> Decls(IdResolver.begin(II), 3144 IdResolver.end()); 3145 for (SmallVectorImpl<Decl *>::reverse_iterator D = Decls.rbegin(), 3146 DEnd = Decls.rend(); 3147 D != DEnd; ++D) 3148 clang::io::Emit32(Out, Writer.getDeclID(getMostRecentLocalDecl(*D))); 3149 } 3150 3151 /// \brief Returns the most recent local decl or the given decl if there are 3152 /// no local ones. The given decl is assumed to be the most recent one. 3153 Decl *getMostRecentLocalDecl(Decl *Orig) { 3154 // The only way a "from AST file" decl would be more recent from a local one 3155 // is if it came from a module. 3156 if (!PP.getLangOpts().Modules) 3157 return Orig; 3158 3159 // Look for a local in the decl chain. 3160 for (Decl *D = Orig; D; D = D->getPreviousDecl()) { 3161 if (!D->isFromASTFile()) 3162 return D; 3163 // If we come up a decl from a (chained-)PCH stop since we won't find a 3164 // local one. 3165 if (D->getOwningModuleID() == 0) 3166 break; 3167 } 3168 3169 return Orig; 3170 } 3171 }; 3172 } // end anonymous namespace 3173 3174 /// \brief Write the identifier table into the AST file. 3175 /// 3176 /// The identifier table consists of a blob containing string data 3177 /// (the actual identifiers themselves) and a separate "offsets" index 3178 /// that maps identifier IDs to locations within the blob. 3179 void ASTWriter::WriteIdentifierTable(Preprocessor &PP, 3180 IdentifierResolver &IdResolver, 3181 bool IsModule) { 3182 using namespace llvm; 3183 3184 // Create and write out the blob that contains the identifier 3185 // strings. 3186 { 3187 OnDiskChainedHashTableGenerator<ASTIdentifierTableTrait> Generator; 3188 ASTIdentifierTableTrait Trait(*this, PP, IdResolver, IsModule); 3189 3190 // Look for any identifiers that were named while processing the 3191 // headers, but are otherwise not needed. We add these to the hash 3192 // table to enable checking of the predefines buffer in the case 3193 // where the user adds new macro definitions when building the AST 3194 // file. 3195 for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(), 3196 IDEnd = PP.getIdentifierTable().end(); 3197 ID != IDEnd; ++ID) 3198 getIdentifierRef(ID->second); 3199 3200 // Create the on-disk hash table representation. We only store offsets 3201 // for identifiers that appear here for the first time. 3202 IdentifierOffsets.resize(NextIdentID - FirstIdentID); 3203 for (llvm::DenseMap<const IdentifierInfo *, IdentID>::iterator 3204 ID = IdentifierIDs.begin(), IDEnd = IdentifierIDs.end(); 3205 ID != IDEnd; ++ID) { 3206 assert(ID->first && "NULL identifier in identifier table"); 3207 if (!Chain || !ID->first->isFromAST() || 3208 ID->first->hasChangedSinceDeserialization()) 3209 Generator.insert(const_cast<IdentifierInfo *>(ID->first), ID->second, 3210 Trait); 3211 } 3212 3213 // Create the on-disk hash table in a buffer. 3214 SmallString<4096> IdentifierTable; 3215 uint32_t BucketOffset; 3216 { 3217 ASTIdentifierTableTrait Trait(*this, PP, IdResolver, IsModule); 3218 llvm::raw_svector_ostream Out(IdentifierTable); 3219 // Make sure that no bucket is at offset 0 3220 clang::io::Emit32(Out, 0); 3221 BucketOffset = Generator.Emit(Out, Trait); 3222 } 3223 3224 // Create a blob abbreviation 3225 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 3226 Abbrev->Add(BitCodeAbbrevOp(IDENTIFIER_TABLE)); 3227 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); 3228 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 3229 unsigned IDTableAbbrev = Stream.EmitAbbrev(Abbrev); 3230 3231 // Write the identifier table 3232 RecordData Record; 3233 Record.push_back(IDENTIFIER_TABLE); 3234 Record.push_back(BucketOffset); 3235 Stream.EmitRecordWithBlob(IDTableAbbrev, Record, IdentifierTable.str()); 3236 } 3237 3238 // Write the offsets table for identifier IDs. 3239 BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 3240 Abbrev->Add(BitCodeAbbrevOp(IDENTIFIER_OFFSET)); 3241 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // # of identifiers 3242 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Fixed, 32)); // first ID 3243 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 3244 unsigned IdentifierOffsetAbbrev = Stream.EmitAbbrev(Abbrev); 3245 3246 #ifndef NDEBUG 3247 for (unsigned I = 0, N = IdentifierOffsets.size(); I != N; ++I) 3248 assert(IdentifierOffsets[I] && "Missing identifier offset?"); 3249 #endif 3250 3251 RecordData Record; 3252 Record.push_back(IDENTIFIER_OFFSET); 3253 Record.push_back(IdentifierOffsets.size()); 3254 Record.push_back(FirstIdentID - NUM_PREDEF_IDENT_IDS); 3255 Stream.EmitRecordWithBlob(IdentifierOffsetAbbrev, Record, 3256 data(IdentifierOffsets)); 3257 } 3258 3259 //===----------------------------------------------------------------------===// 3260 // DeclContext's Name Lookup Table Serialization 3261 //===----------------------------------------------------------------------===// 3262 3263 namespace { 3264 // Trait used for the on-disk hash table used in the method pool. 3265 class ASTDeclContextNameLookupTrait { 3266 ASTWriter &Writer; 3267 3268 public: 3269 typedef DeclarationName key_type; 3270 typedef key_type key_type_ref; 3271 3272 typedef DeclContext::lookup_result data_type; 3273 typedef const data_type& data_type_ref; 3274 3275 explicit ASTDeclContextNameLookupTrait(ASTWriter &Writer) : Writer(Writer) { } 3276 3277 unsigned ComputeHash(DeclarationName Name) { 3278 llvm::FoldingSetNodeID ID; 3279 ID.AddInteger(Name.getNameKind()); 3280 3281 switch (Name.getNameKind()) { 3282 case DeclarationName::Identifier: 3283 ID.AddString(Name.getAsIdentifierInfo()->getName()); 3284 break; 3285 case DeclarationName::ObjCZeroArgSelector: 3286 case DeclarationName::ObjCOneArgSelector: 3287 case DeclarationName::ObjCMultiArgSelector: 3288 ID.AddInteger(serialization::ComputeHash(Name.getObjCSelector())); 3289 break; 3290 case DeclarationName::CXXConstructorName: 3291 case DeclarationName::CXXDestructorName: 3292 case DeclarationName::CXXConversionFunctionName: 3293 break; 3294 case DeclarationName::CXXOperatorName: 3295 ID.AddInteger(Name.getCXXOverloadedOperator()); 3296 break; 3297 case DeclarationName::CXXLiteralOperatorName: 3298 ID.AddString(Name.getCXXLiteralIdentifier()->getName()); 3299 case DeclarationName::CXXUsingDirective: 3300 break; 3301 } 3302 3303 return ID.ComputeHash(); 3304 } 3305 3306 std::pair<unsigned,unsigned> 3307 EmitKeyDataLength(raw_ostream& Out, DeclarationName Name, 3308 data_type_ref Lookup) { 3309 unsigned KeyLen = 1; 3310 switch (Name.getNameKind()) { 3311 case DeclarationName::Identifier: 3312 case DeclarationName::ObjCZeroArgSelector: 3313 case DeclarationName::ObjCOneArgSelector: 3314 case DeclarationName::ObjCMultiArgSelector: 3315 case DeclarationName::CXXLiteralOperatorName: 3316 KeyLen += 4; 3317 break; 3318 case DeclarationName::CXXOperatorName: 3319 KeyLen += 1; 3320 break; 3321 case DeclarationName::CXXConstructorName: 3322 case DeclarationName::CXXDestructorName: 3323 case DeclarationName::CXXConversionFunctionName: 3324 case DeclarationName::CXXUsingDirective: 3325 break; 3326 } 3327 clang::io::Emit16(Out, KeyLen); 3328 3329 // 2 bytes for num of decls and 4 for each DeclID. 3330 unsigned DataLen = 2 + 4 * Lookup.size(); 3331 clang::io::Emit16(Out, DataLen); 3332 3333 return std::make_pair(KeyLen, DataLen); 3334 } 3335 3336 void EmitKey(raw_ostream& Out, DeclarationName Name, unsigned) { 3337 using namespace clang::io; 3338 3339 Emit8(Out, Name.getNameKind()); 3340 switch (Name.getNameKind()) { 3341 case DeclarationName::Identifier: 3342 Emit32(Out, Writer.getIdentifierRef(Name.getAsIdentifierInfo())); 3343 return; 3344 case DeclarationName::ObjCZeroArgSelector: 3345 case DeclarationName::ObjCOneArgSelector: 3346 case DeclarationName::ObjCMultiArgSelector: 3347 Emit32(Out, Writer.getSelectorRef(Name.getObjCSelector())); 3348 return; 3349 case DeclarationName::CXXOperatorName: 3350 assert(Name.getCXXOverloadedOperator() < NUM_OVERLOADED_OPERATORS && 3351 "Invalid operator?"); 3352 Emit8(Out, Name.getCXXOverloadedOperator()); 3353 return; 3354 case DeclarationName::CXXLiteralOperatorName: 3355 Emit32(Out, Writer.getIdentifierRef(Name.getCXXLiteralIdentifier())); 3356 return; 3357 case DeclarationName::CXXConstructorName: 3358 case DeclarationName::CXXDestructorName: 3359 case DeclarationName::CXXConversionFunctionName: 3360 case DeclarationName::CXXUsingDirective: 3361 return; 3362 } 3363 3364 llvm_unreachable("Invalid name kind?"); 3365 } 3366 3367 void EmitData(raw_ostream& Out, key_type_ref, 3368 data_type Lookup, unsigned DataLen) { 3369 uint64_t Start = Out.tell(); (void)Start; 3370 clang::io::Emit16(Out, Lookup.size()); 3371 for (DeclContext::lookup_iterator I = Lookup.begin(), E = Lookup.end(); 3372 I != E; ++I) 3373 clang::io::Emit32(Out, Writer.GetDeclRef(*I)); 3374 3375 assert(Out.tell() - Start == DataLen && "Data length is wrong"); 3376 } 3377 }; 3378 } // end anonymous namespace 3379 3380 /// \brief Write the block containing all of the declaration IDs 3381 /// visible from the given DeclContext. 3382 /// 3383 /// \returns the offset of the DECL_CONTEXT_VISIBLE block within the 3384 /// bitstream, or 0 if no block was written. 3385 uint64_t ASTWriter::WriteDeclContextVisibleBlock(ASTContext &Context, 3386 DeclContext *DC) { 3387 if (DC->getPrimaryContext() != DC) 3388 return 0; 3389 3390 // Since there is no name lookup into functions or methods, don't bother to 3391 // build a visible-declarations table for these entities. 3392 if (DC->isFunctionOrMethod()) 3393 return 0; 3394 3395 // If not in C++, we perform name lookup for the translation unit via the 3396 // IdentifierInfo chains, don't bother to build a visible-declarations table. 3397 if (DC->isTranslationUnit() && !Context.getLangOpts().CPlusPlus) 3398 return 0; 3399 3400 // Serialize the contents of the mapping used for lookup. Note that, 3401 // although we have two very different code paths, the serialized 3402 // representation is the same for both cases: a declaration name, 3403 // followed by a size, followed by references to the visible 3404 // declarations that have that name. 3405 uint64_t Offset = Stream.GetCurrentBitNo(); 3406 StoredDeclsMap *Map = DC->buildLookup(); 3407 if (!Map || Map->empty()) 3408 return 0; 3409 3410 OnDiskChainedHashTableGenerator<ASTDeclContextNameLookupTrait> Generator; 3411 ASTDeclContextNameLookupTrait Trait(*this); 3412 3413 // Create the on-disk hash table representation. 3414 DeclarationName ConversionName; 3415 SmallVector<NamedDecl *, 4> ConversionDecls; 3416 for (StoredDeclsMap::iterator D = Map->begin(), DEnd = Map->end(); 3417 D != DEnd; ++D) { 3418 DeclarationName Name = D->first; 3419 DeclContext::lookup_result Result = D->second.getLookupResult(); 3420 if (!Result.empty()) { 3421 if (Name.getNameKind() == DeclarationName::CXXConversionFunctionName) { 3422 // Hash all conversion function names to the same name. The actual 3423 // type information in conversion function name is not used in the 3424 // key (since such type information is not stable across different 3425 // modules), so the intended effect is to coalesce all of the conversion 3426 // functions under a single key. 3427 if (!ConversionName) 3428 ConversionName = Name; 3429 ConversionDecls.append(Result.begin(), Result.end()); 3430 continue; 3431 } 3432 3433 Generator.insert(Name, Result, Trait); 3434 } 3435 } 3436 3437 // Add the conversion functions 3438 if (!ConversionDecls.empty()) { 3439 Generator.insert(ConversionName, 3440 DeclContext::lookup_result(ConversionDecls.begin(), 3441 ConversionDecls.end()), 3442 Trait); 3443 } 3444 3445 // Create the on-disk hash table in a buffer. 3446 SmallString<4096> LookupTable; 3447 uint32_t BucketOffset; 3448 { 3449 llvm::raw_svector_ostream Out(LookupTable); 3450 // Make sure that no bucket is at offset 0 3451 clang::io::Emit32(Out, 0); 3452 BucketOffset = Generator.Emit(Out, Trait); 3453 } 3454 3455 // Write the lookup table 3456 RecordData Record; 3457 Record.push_back(DECL_CONTEXT_VISIBLE); 3458 Record.push_back(BucketOffset); 3459 Stream.EmitRecordWithBlob(DeclContextVisibleLookupAbbrev, Record, 3460 LookupTable.str()); 3461 3462 Stream.EmitRecord(DECL_CONTEXT_VISIBLE, Record); 3463 ++NumVisibleDeclContexts; 3464 return Offset; 3465 } 3466 3467 /// \brief Write an UPDATE_VISIBLE block for the given context. 3468 /// 3469 /// UPDATE_VISIBLE blocks contain the declarations that are added to an existing 3470 /// DeclContext in a dependent AST file. As such, they only exist for the TU 3471 /// (in C++), for namespaces, and for classes with forward-declared unscoped 3472 /// enumeration members (in C++11). 3473 void ASTWriter::WriteDeclContextVisibleUpdate(const DeclContext *DC) { 3474 StoredDeclsMap *Map = static_cast<StoredDeclsMap*>(DC->getLookupPtr()); 3475 if (!Map || Map->empty()) 3476 return; 3477 3478 OnDiskChainedHashTableGenerator<ASTDeclContextNameLookupTrait> Generator; 3479 ASTDeclContextNameLookupTrait Trait(*this); 3480 3481 // Create the hash table. 3482 for (StoredDeclsMap::iterator D = Map->begin(), DEnd = Map->end(); 3483 D != DEnd; ++D) { 3484 DeclarationName Name = D->first; 3485 DeclContext::lookup_result Result = D->second.getLookupResult(); 3486 // For any name that appears in this table, the results are complete, i.e. 3487 // they overwrite results from previous PCHs. Merging is always a mess. 3488 if (!Result.empty()) 3489 Generator.insert(Name, Result, Trait); 3490 } 3491 3492 // Create the on-disk hash table in a buffer. 3493 SmallString<4096> LookupTable; 3494 uint32_t BucketOffset; 3495 { 3496 llvm::raw_svector_ostream Out(LookupTable); 3497 // Make sure that no bucket is at offset 0 3498 clang::io::Emit32(Out, 0); 3499 BucketOffset = Generator.Emit(Out, Trait); 3500 } 3501 3502 // Write the lookup table 3503 RecordData Record; 3504 Record.push_back(UPDATE_VISIBLE); 3505 Record.push_back(getDeclID(cast<Decl>(DC))); 3506 Record.push_back(BucketOffset); 3507 Stream.EmitRecordWithBlob(UpdateVisibleAbbrev, Record, LookupTable.str()); 3508 } 3509 3510 /// \brief Write an FP_PRAGMA_OPTIONS block for the given FPOptions. 3511 void ASTWriter::WriteFPPragmaOptions(const FPOptions &Opts) { 3512 RecordData Record; 3513 Record.push_back(Opts.fp_contract); 3514 Stream.EmitRecord(FP_PRAGMA_OPTIONS, Record); 3515 } 3516 3517 /// \brief Write an OPENCL_EXTENSIONS block for the given OpenCLOptions. 3518 void ASTWriter::WriteOpenCLExtensions(Sema &SemaRef) { 3519 if (!SemaRef.Context.getLangOpts().OpenCL) 3520 return; 3521 3522 const OpenCLOptions &Opts = SemaRef.getOpenCLOptions(); 3523 RecordData Record; 3524 #define OPENCLEXT(nm) Record.push_back(Opts.nm); 3525 #include "clang/Basic/OpenCLExtensions.def" 3526 Stream.EmitRecord(OPENCL_EXTENSIONS, Record); 3527 } 3528 3529 void ASTWriter::WriteRedeclarations() { 3530 RecordData LocalRedeclChains; 3531 SmallVector<serialization::LocalRedeclarationsInfo, 2> LocalRedeclsMap; 3532 3533 for (unsigned I = 0, N = Redeclarations.size(); I != N; ++I) { 3534 Decl *First = Redeclarations[I]; 3535 assert(First->isFirstDecl() && "Not the first declaration?"); 3536 3537 Decl *MostRecent = First->getMostRecentDecl(); 3538 3539 // If we only have a single declaration, there is no point in storing 3540 // a redeclaration chain. 3541 if (First == MostRecent) 3542 continue; 3543 3544 unsigned Offset = LocalRedeclChains.size(); 3545 unsigned Size = 0; 3546 LocalRedeclChains.push_back(0); // Placeholder for the size. 3547 3548 // Collect the set of local redeclarations of this declaration. 3549 for (Decl *Prev = MostRecent; Prev != First; 3550 Prev = Prev->getPreviousDecl()) { 3551 if (!Prev->isFromASTFile()) { 3552 AddDeclRef(Prev, LocalRedeclChains); 3553 ++Size; 3554 } 3555 } 3556 3557 if (!First->isFromASTFile() && Chain) { 3558 Decl *FirstFromAST = MostRecent; 3559 for (Decl *Prev = MostRecent; Prev; Prev = Prev->getPreviousDecl()) { 3560 if (Prev->isFromASTFile()) 3561 FirstFromAST = Prev; 3562 } 3563 3564 Chain->MergedDecls[FirstFromAST].push_back(getDeclID(First)); 3565 } 3566 3567 LocalRedeclChains[Offset] = Size; 3568 3569 // Reverse the set of local redeclarations, so that we store them in 3570 // order (since we found them in reverse order). 3571 std::reverse(LocalRedeclChains.end() - Size, LocalRedeclChains.end()); 3572 3573 // Add the mapping from the first ID from the AST to the set of local 3574 // declarations. 3575 LocalRedeclarationsInfo Info = { getDeclID(First), Offset }; 3576 LocalRedeclsMap.push_back(Info); 3577 3578 assert(N == Redeclarations.size() && 3579 "Deserialized a declaration we shouldn't have"); 3580 } 3581 3582 if (LocalRedeclChains.empty()) 3583 return; 3584 3585 // Sort the local redeclarations map by the first declaration ID, 3586 // since the reader will be performing binary searches on this information. 3587 llvm::array_pod_sort(LocalRedeclsMap.begin(), LocalRedeclsMap.end()); 3588 3589 // Emit the local redeclarations map. 3590 using namespace llvm; 3591 llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 3592 Abbrev->Add(BitCodeAbbrevOp(LOCAL_REDECLARATIONS_MAP)); 3593 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # of entries 3594 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 3595 unsigned AbbrevID = Stream.EmitAbbrev(Abbrev); 3596 3597 RecordData Record; 3598 Record.push_back(LOCAL_REDECLARATIONS_MAP); 3599 Record.push_back(LocalRedeclsMap.size()); 3600 Stream.EmitRecordWithBlob(AbbrevID, Record, 3601 reinterpret_cast<char*>(LocalRedeclsMap.data()), 3602 LocalRedeclsMap.size() * sizeof(LocalRedeclarationsInfo)); 3603 3604 // Emit the redeclaration chains. 3605 Stream.EmitRecord(LOCAL_REDECLARATIONS, LocalRedeclChains); 3606 } 3607 3608 void ASTWriter::WriteObjCCategories() { 3609 SmallVector<ObjCCategoriesInfo, 2> CategoriesMap; 3610 RecordData Categories; 3611 3612 for (unsigned I = 0, N = ObjCClassesWithCategories.size(); I != N; ++I) { 3613 unsigned Size = 0; 3614 unsigned StartIndex = Categories.size(); 3615 3616 ObjCInterfaceDecl *Class = ObjCClassesWithCategories[I]; 3617 3618 // Allocate space for the size. 3619 Categories.push_back(0); 3620 3621 // Add the categories. 3622 for (ObjCInterfaceDecl::known_categories_iterator 3623 Cat = Class->known_categories_begin(), 3624 CatEnd = Class->known_categories_end(); 3625 Cat != CatEnd; ++Cat, ++Size) { 3626 assert(getDeclID(*Cat) != 0 && "Bogus category"); 3627 AddDeclRef(*Cat, Categories); 3628 } 3629 3630 // Update the size. 3631 Categories[StartIndex] = Size; 3632 3633 // Record this interface -> category map. 3634 ObjCCategoriesInfo CatInfo = { getDeclID(Class), StartIndex }; 3635 CategoriesMap.push_back(CatInfo); 3636 } 3637 3638 // Sort the categories map by the definition ID, since the reader will be 3639 // performing binary searches on this information. 3640 llvm::array_pod_sort(CategoriesMap.begin(), CategoriesMap.end()); 3641 3642 // Emit the categories map. 3643 using namespace llvm; 3644 llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 3645 Abbrev->Add(BitCodeAbbrevOp(OBJC_CATEGORIES_MAP)); 3646 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::VBR, 6)); // # of entries 3647 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 3648 unsigned AbbrevID = Stream.EmitAbbrev(Abbrev); 3649 3650 RecordData Record; 3651 Record.push_back(OBJC_CATEGORIES_MAP); 3652 Record.push_back(CategoriesMap.size()); 3653 Stream.EmitRecordWithBlob(AbbrevID, Record, 3654 reinterpret_cast<char*>(CategoriesMap.data()), 3655 CategoriesMap.size() * sizeof(ObjCCategoriesInfo)); 3656 3657 // Emit the category lists. 3658 Stream.EmitRecord(OBJC_CATEGORIES, Categories); 3659 } 3660 3661 void ASTWriter::WriteMergedDecls() { 3662 if (!Chain || Chain->MergedDecls.empty()) 3663 return; 3664 3665 RecordData Record; 3666 for (ASTReader::MergedDeclsMap::iterator I = Chain->MergedDecls.begin(), 3667 IEnd = Chain->MergedDecls.end(); 3668 I != IEnd; ++I) { 3669 DeclID CanonID = I->first->isFromASTFile()? I->first->getGlobalID() 3670 : getDeclID(I->first); 3671 assert(CanonID && "Merged declaration not known?"); 3672 3673 Record.push_back(CanonID); 3674 Record.push_back(I->second.size()); 3675 Record.append(I->second.begin(), I->second.end()); 3676 } 3677 Stream.EmitRecord(MERGED_DECLARATIONS, Record); 3678 } 3679 3680 void ASTWriter::WriteLateParsedTemplates(Sema &SemaRef) { 3681 Sema::LateParsedTemplateMapT &LPTMap = SemaRef.LateParsedTemplateMap; 3682 3683 if (LPTMap.empty()) 3684 return; 3685 3686 RecordData Record; 3687 for (Sema::LateParsedTemplateMapT::iterator It = LPTMap.begin(), 3688 ItEnd = LPTMap.end(); 3689 It != ItEnd; ++It) { 3690 LateParsedTemplate *LPT = It->second; 3691 AddDeclRef(It->first, Record); 3692 AddDeclRef(LPT->D, Record); 3693 Record.push_back(LPT->Toks.size()); 3694 3695 for (CachedTokens::iterator TokIt = LPT->Toks.begin(), 3696 TokEnd = LPT->Toks.end(); 3697 TokIt != TokEnd; ++TokIt) { 3698 AddToken(*TokIt, Record); 3699 } 3700 } 3701 Stream.EmitRecord(LATE_PARSED_TEMPLATE, Record); 3702 } 3703 3704 //===----------------------------------------------------------------------===// 3705 // General Serialization Routines 3706 //===----------------------------------------------------------------------===// 3707 3708 /// \brief Write a record containing the given attributes. 3709 void ASTWriter::WriteAttributes(ArrayRef<const Attr*> Attrs, 3710 RecordDataImpl &Record) { 3711 Record.push_back(Attrs.size()); 3712 for (ArrayRef<const Attr *>::iterator i = Attrs.begin(), 3713 e = Attrs.end(); i != e; ++i){ 3714 const Attr *A = *i; 3715 Record.push_back(A->getKind()); // FIXME: stable encoding, target attrs 3716 AddSourceRange(A->getRange(), Record); 3717 3718 #include "clang/Serialization/AttrPCHWrite.inc" 3719 3720 } 3721 } 3722 3723 void ASTWriter::AddToken(const Token &Tok, RecordDataImpl &Record) { 3724 AddSourceLocation(Tok.getLocation(), Record); 3725 Record.push_back(Tok.getLength()); 3726 3727 // FIXME: When reading literal tokens, reconstruct the literal pointer 3728 // if it is needed. 3729 AddIdentifierRef(Tok.getIdentifierInfo(), Record); 3730 // FIXME: Should translate token kind to a stable encoding. 3731 Record.push_back(Tok.getKind()); 3732 // FIXME: Should translate token flags to a stable encoding. 3733 Record.push_back(Tok.getFlags()); 3734 } 3735 3736 void ASTWriter::AddString(StringRef Str, RecordDataImpl &Record) { 3737 Record.push_back(Str.size()); 3738 Record.insert(Record.end(), Str.begin(), Str.end()); 3739 } 3740 3741 void ASTWriter::AddVersionTuple(const VersionTuple &Version, 3742 RecordDataImpl &Record) { 3743 Record.push_back(Version.getMajor()); 3744 if (Optional<unsigned> Minor = Version.getMinor()) 3745 Record.push_back(*Minor + 1); 3746 else 3747 Record.push_back(0); 3748 if (Optional<unsigned> Subminor = Version.getSubminor()) 3749 Record.push_back(*Subminor + 1); 3750 else 3751 Record.push_back(0); 3752 } 3753 3754 /// \brief Note that the identifier II occurs at the given offset 3755 /// within the identifier table. 3756 void ASTWriter::SetIdentifierOffset(const IdentifierInfo *II, uint32_t Offset) { 3757 IdentID ID = IdentifierIDs[II]; 3758 // Only store offsets new to this AST file. Other identifier names are looked 3759 // up earlier in the chain and thus don't need an offset. 3760 if (ID >= FirstIdentID) 3761 IdentifierOffsets[ID - FirstIdentID] = Offset; 3762 } 3763 3764 /// \brief Note that the selector Sel occurs at the given offset 3765 /// within the method pool/selector table. 3766 void ASTWriter::SetSelectorOffset(Selector Sel, uint32_t Offset) { 3767 unsigned ID = SelectorIDs[Sel]; 3768 assert(ID && "Unknown selector"); 3769 // Don't record offsets for selectors that are also available in a different 3770 // file. 3771 if (ID < FirstSelectorID) 3772 return; 3773 SelectorOffsets[ID - FirstSelectorID] = Offset; 3774 } 3775 3776 ASTWriter::ASTWriter(llvm::BitstreamWriter &Stream) 3777 : Stream(Stream), Context(0), PP(0), Chain(0), WritingModule(0), 3778 WritingAST(false), DoneWritingDeclsAndTypes(false), 3779 ASTHasCompilerErrors(false), 3780 FirstDeclID(NUM_PREDEF_DECL_IDS), NextDeclID(FirstDeclID), 3781 FirstTypeID(NUM_PREDEF_TYPE_IDS), NextTypeID(FirstTypeID), 3782 FirstIdentID(NUM_PREDEF_IDENT_IDS), NextIdentID(FirstIdentID), 3783 FirstMacroID(NUM_PREDEF_MACRO_IDS), NextMacroID(FirstMacroID), 3784 FirstSubmoduleID(NUM_PREDEF_SUBMODULE_IDS), 3785 NextSubmoduleID(FirstSubmoduleID), 3786 FirstSelectorID(NUM_PREDEF_SELECTOR_IDS), NextSelectorID(FirstSelectorID), 3787 CollectedStmts(&StmtsToEmit), 3788 NumStatements(0), NumMacros(0), NumLexicalDeclContexts(0), 3789 NumVisibleDeclContexts(0), 3790 NextCXXBaseSpecifiersID(1), 3791 DeclParmVarAbbrev(0), DeclContextLexicalAbbrev(0), 3792 DeclContextVisibleLookupAbbrev(0), UpdateVisibleAbbrev(0), 3793 DeclRefExprAbbrev(0), CharacterLiteralAbbrev(0), 3794 DeclRecordAbbrev(0), IntegerLiteralAbbrev(0), 3795 DeclTypedefAbbrev(0), 3796 DeclVarAbbrev(0), DeclFieldAbbrev(0), 3797 DeclEnumAbbrev(0), DeclObjCIvarAbbrev(0) 3798 { 3799 } 3800 3801 ASTWriter::~ASTWriter() { 3802 for (FileDeclIDsTy::iterator 3803 I = FileDeclIDs.begin(), E = FileDeclIDs.end(); I != E; ++I) 3804 delete I->second; 3805 } 3806 3807 void ASTWriter::WriteAST(Sema &SemaRef, 3808 const std::string &OutputFile, 3809 Module *WritingModule, StringRef isysroot, 3810 bool hasErrors) { 3811 WritingAST = true; 3812 3813 ASTHasCompilerErrors = hasErrors; 3814 3815 // Emit the file header. 3816 Stream.Emit((unsigned)'C', 8); 3817 Stream.Emit((unsigned)'P', 8); 3818 Stream.Emit((unsigned)'C', 8); 3819 Stream.Emit((unsigned)'H', 8); 3820 3821 WriteBlockInfoBlock(); 3822 3823 Context = &SemaRef.Context; 3824 PP = &SemaRef.PP; 3825 this->WritingModule = WritingModule; 3826 WriteASTCore(SemaRef, isysroot, OutputFile, WritingModule); 3827 Context = 0; 3828 PP = 0; 3829 this->WritingModule = 0; 3830 3831 WritingAST = false; 3832 } 3833 3834 template<typename Vector> 3835 static void AddLazyVectorDecls(ASTWriter &Writer, Vector &Vec, 3836 ASTWriter::RecordData &Record) { 3837 for (typename Vector::iterator I = Vec.begin(0, true), E = Vec.end(); 3838 I != E; ++I) { 3839 Writer.AddDeclRef(*I, Record); 3840 } 3841 } 3842 3843 void ASTWriter::WriteASTCore(Sema &SemaRef, 3844 StringRef isysroot, 3845 const std::string &OutputFile, 3846 Module *WritingModule) { 3847 using namespace llvm; 3848 3849 bool isModule = WritingModule != 0; 3850 3851 // Make sure that the AST reader knows to finalize itself. 3852 if (Chain) 3853 Chain->finalizeForWriting(); 3854 3855 ASTContext &Context = SemaRef.Context; 3856 Preprocessor &PP = SemaRef.PP; 3857 3858 // Set up predefined declaration IDs. 3859 DeclIDs[Context.getTranslationUnitDecl()] = PREDEF_DECL_TRANSLATION_UNIT_ID; 3860 if (Context.ObjCIdDecl) 3861 DeclIDs[Context.ObjCIdDecl] = PREDEF_DECL_OBJC_ID_ID; 3862 if (Context.ObjCSelDecl) 3863 DeclIDs[Context.ObjCSelDecl] = PREDEF_DECL_OBJC_SEL_ID; 3864 if (Context.ObjCClassDecl) 3865 DeclIDs[Context.ObjCClassDecl] = PREDEF_DECL_OBJC_CLASS_ID; 3866 if (Context.ObjCProtocolClassDecl) 3867 DeclIDs[Context.ObjCProtocolClassDecl] = PREDEF_DECL_OBJC_PROTOCOL_ID; 3868 if (Context.Int128Decl) 3869 DeclIDs[Context.Int128Decl] = PREDEF_DECL_INT_128_ID; 3870 if (Context.UInt128Decl) 3871 DeclIDs[Context.UInt128Decl] = PREDEF_DECL_UNSIGNED_INT_128_ID; 3872 if (Context.ObjCInstanceTypeDecl) 3873 DeclIDs[Context.ObjCInstanceTypeDecl] = PREDEF_DECL_OBJC_INSTANCETYPE_ID; 3874 if (Context.BuiltinVaListDecl) 3875 DeclIDs[Context.getBuiltinVaListDecl()] = PREDEF_DECL_BUILTIN_VA_LIST_ID; 3876 3877 if (!Chain) { 3878 // Make sure that we emit IdentifierInfos (and any attached 3879 // declarations) for builtins. We don't need to do this when we're 3880 // emitting chained PCH files, because all of the builtins will be 3881 // in the original PCH file. 3882 // FIXME: Modules won't like this at all. 3883 IdentifierTable &Table = PP.getIdentifierTable(); 3884 SmallVector<const char *, 32> BuiltinNames; 3885 if (!Context.getLangOpts().NoBuiltin) { 3886 Context.BuiltinInfo.GetBuiltinNames(BuiltinNames); 3887 } 3888 for (unsigned I = 0, N = BuiltinNames.size(); I != N; ++I) 3889 getIdentifierRef(&Table.get(BuiltinNames[I])); 3890 } 3891 3892 // If there are any out-of-date identifiers, bring them up to date. 3893 if (ExternalPreprocessorSource *ExtSource = PP.getExternalSource()) { 3894 // Find out-of-date identifiers. 3895 SmallVector<IdentifierInfo *, 4> OutOfDate; 3896 for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(), 3897 IDEnd = PP.getIdentifierTable().end(); 3898 ID != IDEnd; ++ID) { 3899 if (ID->second->isOutOfDate()) 3900 OutOfDate.push_back(ID->second); 3901 } 3902 3903 // Update the out-of-date identifiers. 3904 for (unsigned I = 0, N = OutOfDate.size(); I != N; ++I) { 3905 ExtSource->updateOutOfDateIdentifier(*OutOfDate[I]); 3906 } 3907 } 3908 3909 // Build a record containing all of the tentative definitions in this file, in 3910 // TentativeDefinitions order. Generally, this record will be empty for 3911 // headers. 3912 RecordData TentativeDefinitions; 3913 AddLazyVectorDecls(*this, SemaRef.TentativeDefinitions, TentativeDefinitions); 3914 3915 // Build a record containing all of the file scoped decls in this file. 3916 RecordData UnusedFileScopedDecls; 3917 if (!isModule) 3918 AddLazyVectorDecls(*this, SemaRef.UnusedFileScopedDecls, 3919 UnusedFileScopedDecls); 3920 3921 // Build a record containing all of the delegating constructors we still need 3922 // to resolve. 3923 RecordData DelegatingCtorDecls; 3924 if (!isModule) 3925 AddLazyVectorDecls(*this, SemaRef.DelegatingCtorDecls, DelegatingCtorDecls); 3926 3927 // Write the set of weak, undeclared identifiers. We always write the 3928 // entire table, since later PCH files in a PCH chain are only interested in 3929 // the results at the end of the chain. 3930 RecordData WeakUndeclaredIdentifiers; 3931 if (!SemaRef.WeakUndeclaredIdentifiers.empty()) { 3932 for (llvm::DenseMap<IdentifierInfo*,WeakInfo>::iterator 3933 I = SemaRef.WeakUndeclaredIdentifiers.begin(), 3934 E = SemaRef.WeakUndeclaredIdentifiers.end(); I != E; ++I) { 3935 AddIdentifierRef(I->first, WeakUndeclaredIdentifiers); 3936 AddIdentifierRef(I->second.getAlias(), WeakUndeclaredIdentifiers); 3937 AddSourceLocation(I->second.getLocation(), WeakUndeclaredIdentifiers); 3938 WeakUndeclaredIdentifiers.push_back(I->second.getUsed()); 3939 } 3940 } 3941 3942 // Build a record containing all of the locally-scoped extern "C" 3943 // declarations in this header file. Generally, this record will be 3944 // empty. 3945 RecordData LocallyScopedExternCDecls; 3946 // FIXME: This is filling in the AST file in densemap order which is 3947 // nondeterminstic! 3948 for (llvm::DenseMap<DeclarationName, NamedDecl *>::iterator 3949 TD = SemaRef.LocallyScopedExternCDecls.begin(), 3950 TDEnd = SemaRef.LocallyScopedExternCDecls.end(); 3951 TD != TDEnd; ++TD) { 3952 if (!TD->second->isFromASTFile()) 3953 AddDeclRef(TD->second, LocallyScopedExternCDecls); 3954 } 3955 3956 // Build a record containing all of the ext_vector declarations. 3957 RecordData ExtVectorDecls; 3958 AddLazyVectorDecls(*this, SemaRef.ExtVectorDecls, ExtVectorDecls); 3959 3960 // Build a record containing all of the VTable uses information. 3961 RecordData VTableUses; 3962 if (!SemaRef.VTableUses.empty()) { 3963 for (unsigned I = 0, N = SemaRef.VTableUses.size(); I != N; ++I) { 3964 AddDeclRef(SemaRef.VTableUses[I].first, VTableUses); 3965 AddSourceLocation(SemaRef.VTableUses[I].second, VTableUses); 3966 VTableUses.push_back(SemaRef.VTablesUsed[SemaRef.VTableUses[I].first]); 3967 } 3968 } 3969 3970 // Build a record containing all of dynamic classes declarations. 3971 RecordData DynamicClasses; 3972 AddLazyVectorDecls(*this, SemaRef.DynamicClasses, DynamicClasses); 3973 3974 // Build a record containing all of pending implicit instantiations. 3975 RecordData PendingInstantiations; 3976 for (std::deque<Sema::PendingImplicitInstantiation>::iterator 3977 I = SemaRef.PendingInstantiations.begin(), 3978 N = SemaRef.PendingInstantiations.end(); I != N; ++I) { 3979 AddDeclRef(I->first, PendingInstantiations); 3980 AddSourceLocation(I->second, PendingInstantiations); 3981 } 3982 assert(SemaRef.PendingLocalImplicitInstantiations.empty() && 3983 "There are local ones at end of translation unit!"); 3984 3985 // Build a record containing some declaration references. 3986 RecordData SemaDeclRefs; 3987 if (SemaRef.StdNamespace || SemaRef.StdBadAlloc) { 3988 AddDeclRef(SemaRef.getStdNamespace(), SemaDeclRefs); 3989 AddDeclRef(SemaRef.getStdBadAlloc(), SemaDeclRefs); 3990 } 3991 3992 RecordData CUDASpecialDeclRefs; 3993 if (Context.getcudaConfigureCallDecl()) { 3994 AddDeclRef(Context.getcudaConfigureCallDecl(), CUDASpecialDeclRefs); 3995 } 3996 3997 // Build a record containing all of the known namespaces. 3998 RecordData KnownNamespaces; 3999 for (llvm::MapVector<NamespaceDecl*, bool>::iterator 4000 I = SemaRef.KnownNamespaces.begin(), 4001 IEnd = SemaRef.KnownNamespaces.end(); 4002 I != IEnd; ++I) { 4003 if (!I->second) 4004 AddDeclRef(I->first, KnownNamespaces); 4005 } 4006 4007 // Build a record of all used, undefined objects that require definitions. 4008 RecordData UndefinedButUsed; 4009 4010 SmallVector<std::pair<NamedDecl *, SourceLocation>, 16> Undefined; 4011 SemaRef.getUndefinedButUsed(Undefined); 4012 for (SmallVectorImpl<std::pair<NamedDecl *, SourceLocation> >::iterator 4013 I = Undefined.begin(), E = Undefined.end(); I != E; ++I) { 4014 AddDeclRef(I->first, UndefinedButUsed); 4015 AddSourceLocation(I->second, UndefinedButUsed); 4016 } 4017 4018 // Write the control block 4019 WriteControlBlock(PP, Context, isysroot, OutputFile); 4020 4021 // Write the remaining AST contents. 4022 RecordData Record; 4023 Stream.EnterSubblock(AST_BLOCK_ID, 5); 4024 4025 // This is so that older clang versions, before the introduction 4026 // of the control block, can read and reject the newer PCH format. 4027 Record.clear(); 4028 Record.push_back(VERSION_MAJOR); 4029 Stream.EmitRecord(METADATA_OLD_FORMAT, Record); 4030 4031 // Create a lexical update block containing all of the declarations in the 4032 // translation unit that do not come from other AST files. 4033 const TranslationUnitDecl *TU = Context.getTranslationUnitDecl(); 4034 SmallVector<KindDeclIDPair, 64> NewGlobalDecls; 4035 for (DeclContext::decl_iterator I = TU->noload_decls_begin(), 4036 E = TU->noload_decls_end(); 4037 I != E; ++I) { 4038 if (!(*I)->isFromASTFile()) 4039 NewGlobalDecls.push_back(std::make_pair((*I)->getKind(), GetDeclRef(*I))); 4040 } 4041 4042 llvm::BitCodeAbbrev *Abv = new llvm::BitCodeAbbrev(); 4043 Abv->Add(llvm::BitCodeAbbrevOp(TU_UPDATE_LEXICAL)); 4044 Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Blob)); 4045 unsigned TuUpdateLexicalAbbrev = Stream.EmitAbbrev(Abv); 4046 Record.clear(); 4047 Record.push_back(TU_UPDATE_LEXICAL); 4048 Stream.EmitRecordWithBlob(TuUpdateLexicalAbbrev, Record, 4049 data(NewGlobalDecls)); 4050 4051 // And a visible updates block for the translation unit. 4052 Abv = new llvm::BitCodeAbbrev(); 4053 Abv->Add(llvm::BitCodeAbbrevOp(UPDATE_VISIBLE)); 4054 Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::VBR, 6)); 4055 Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Fixed, 32)); 4056 Abv->Add(llvm::BitCodeAbbrevOp(llvm::BitCodeAbbrevOp::Blob)); 4057 UpdateVisibleAbbrev = Stream.EmitAbbrev(Abv); 4058 WriteDeclContextVisibleUpdate(TU); 4059 4060 // If the translation unit has an anonymous namespace, and we don't already 4061 // have an update block for it, write it as an update block. 4062 if (NamespaceDecl *NS = TU->getAnonymousNamespace()) { 4063 ASTWriter::UpdateRecord &Record = DeclUpdates[TU]; 4064 if (Record.empty()) { 4065 Record.push_back(UPD_CXX_ADDED_ANONYMOUS_NAMESPACE); 4066 Record.push_back(reinterpret_cast<uint64_t>(NS)); 4067 } 4068 } 4069 4070 // Make sure visible decls, added to DeclContexts previously loaded from 4071 // an AST file, are registered for serialization. 4072 for (SmallVectorImpl<const Decl *>::iterator 4073 I = UpdatingVisibleDecls.begin(), 4074 E = UpdatingVisibleDecls.end(); I != E; ++I) { 4075 GetDeclRef(*I); 4076 } 4077 4078 // Make sure all decls associated with an identifier are registered for 4079 // serialization. 4080 for (IdentifierTable::iterator ID = PP.getIdentifierTable().begin(), 4081 IDEnd = PP.getIdentifierTable().end(); 4082 ID != IDEnd; ++ID) { 4083 const IdentifierInfo *II = ID->second; 4084 if (!Chain || !II->isFromAST() || II->hasChangedSinceDeserialization()) { 4085 for (IdentifierResolver::iterator D = SemaRef.IdResolver.begin(II), 4086 DEnd = SemaRef.IdResolver.end(); 4087 D != DEnd; ++D) { 4088 GetDeclRef(*D); 4089 } 4090 } 4091 } 4092 4093 // Resolve any declaration pointers within the declaration updates block. 4094 ResolveDeclUpdatesBlocks(); 4095 4096 // Form the record of special types. 4097 RecordData SpecialTypes; 4098 AddTypeRef(Context.getRawCFConstantStringType(), SpecialTypes); 4099 AddTypeRef(Context.getFILEType(), SpecialTypes); 4100 AddTypeRef(Context.getjmp_bufType(), SpecialTypes); 4101 AddTypeRef(Context.getsigjmp_bufType(), SpecialTypes); 4102 AddTypeRef(Context.ObjCIdRedefinitionType, SpecialTypes); 4103 AddTypeRef(Context.ObjCClassRedefinitionType, SpecialTypes); 4104 AddTypeRef(Context.ObjCSelRedefinitionType, SpecialTypes); 4105 AddTypeRef(Context.getucontext_tType(), SpecialTypes); 4106 4107 // Keep writing types and declarations until all types and 4108 // declarations have been written. 4109 Stream.EnterSubblock(DECLTYPES_BLOCK_ID, NUM_ALLOWED_ABBREVS_SIZE); 4110 WriteDeclsBlockAbbrevs(); 4111 for (DeclsToRewriteTy::iterator I = DeclsToRewrite.begin(), 4112 E = DeclsToRewrite.end(); 4113 I != E; ++I) 4114 DeclTypesToEmit.push(const_cast<Decl*>(*I)); 4115 while (!DeclTypesToEmit.empty()) { 4116 DeclOrType DOT = DeclTypesToEmit.front(); 4117 DeclTypesToEmit.pop(); 4118 if (DOT.isType()) 4119 WriteType(DOT.getType()); 4120 else 4121 WriteDecl(Context, DOT.getDecl()); 4122 } 4123 Stream.ExitBlock(); 4124 4125 DoneWritingDeclsAndTypes = true; 4126 4127 WriteFileDeclIDsMap(); 4128 WriteSourceManagerBlock(Context.getSourceManager(), PP, isysroot); 4129 WriteComments(); 4130 4131 if (Chain) { 4132 // Write the mapping information describing our module dependencies and how 4133 // each of those modules were mapped into our own offset/ID space, so that 4134 // the reader can build the appropriate mapping to its own offset/ID space. 4135 // The map consists solely of a blob with the following format: 4136 // *(module-name-len:i16 module-name:len*i8 4137 // source-location-offset:i32 4138 // identifier-id:i32 4139 // preprocessed-entity-id:i32 4140 // macro-definition-id:i32 4141 // submodule-id:i32 4142 // selector-id:i32 4143 // declaration-id:i32 4144 // c++-base-specifiers-id:i32 4145 // type-id:i32) 4146 // 4147 llvm::BitCodeAbbrev *Abbrev = new BitCodeAbbrev(); 4148 Abbrev->Add(BitCodeAbbrevOp(MODULE_OFFSET_MAP)); 4149 Abbrev->Add(BitCodeAbbrevOp(BitCodeAbbrevOp::Blob)); 4150 unsigned ModuleOffsetMapAbbrev = Stream.EmitAbbrev(Abbrev); 4151 SmallString<2048> Buffer; 4152 { 4153 llvm::raw_svector_ostream Out(Buffer); 4154 for (ModuleManager::ModuleConstIterator M = Chain->ModuleMgr.begin(), 4155 MEnd = Chain->ModuleMgr.end(); 4156 M != MEnd; ++M) { 4157 StringRef FileName = (*M)->FileName; 4158 io::Emit16(Out, FileName.size()); 4159 Out.write(FileName.data(), FileName.size()); 4160 io::Emit32(Out, (*M)->SLocEntryBaseOffset); 4161 io::Emit32(Out, (*M)->BaseIdentifierID); 4162 io::Emit32(Out, (*M)->BaseMacroID); 4163 io::Emit32(Out, (*M)->BasePreprocessedEntityID); 4164 io::Emit32(Out, (*M)->BaseSubmoduleID); 4165 io::Emit32(Out, (*M)->BaseSelectorID); 4166 io::Emit32(Out, (*M)->BaseDeclID); 4167 io::Emit32(Out, (*M)->BaseTypeIndex); 4168 } 4169 } 4170 Record.clear(); 4171 Record.push_back(MODULE_OFFSET_MAP); 4172 Stream.EmitRecordWithBlob(ModuleOffsetMapAbbrev, Record, 4173 Buffer.data(), Buffer.size()); 4174 } 4175 WritePreprocessor(PP, isModule); 4176 WriteHeaderSearch(PP.getHeaderSearchInfo(), isysroot); 4177 WriteSelectors(SemaRef); 4178 WriteReferencedSelectorsPool(SemaRef); 4179 WriteIdentifierTable(PP, SemaRef.IdResolver, isModule); 4180 WriteFPPragmaOptions(SemaRef.getFPOptions()); 4181 WriteOpenCLExtensions(SemaRef); 4182 4183 WriteTypeDeclOffsets(); 4184 WritePragmaDiagnosticMappings(Context.getDiagnostics(), isModule); 4185 4186 WriteCXXBaseSpecifiersOffsets(); 4187 4188 // If we're emitting a module, write out the submodule information. 4189 if (WritingModule) 4190 WriteSubmodules(WritingModule); 4191 4192 Stream.EmitRecord(SPECIAL_TYPES, SpecialTypes); 4193 4194 // Write the record containing external, unnamed definitions. 4195 if (!EagerlyDeserializedDecls.empty()) 4196 Stream.EmitRecord(EAGERLY_DESERIALIZED_DECLS, EagerlyDeserializedDecls); 4197 4198 // Write the record containing tentative definitions. 4199 if (!TentativeDefinitions.empty()) 4200 Stream.EmitRecord(TENTATIVE_DEFINITIONS, TentativeDefinitions); 4201 4202 // Write the record containing unused file scoped decls. 4203 if (!UnusedFileScopedDecls.empty()) 4204 Stream.EmitRecord(UNUSED_FILESCOPED_DECLS, UnusedFileScopedDecls); 4205 4206 // Write the record containing weak undeclared identifiers. 4207 if (!WeakUndeclaredIdentifiers.empty()) 4208 Stream.EmitRecord(WEAK_UNDECLARED_IDENTIFIERS, 4209 WeakUndeclaredIdentifiers); 4210 4211 // Write the record containing locally-scoped extern "C" definitions. 4212 if (!LocallyScopedExternCDecls.empty()) 4213 Stream.EmitRecord(LOCALLY_SCOPED_EXTERN_C_DECLS, 4214 LocallyScopedExternCDecls); 4215 4216 // Write the record containing ext_vector type names. 4217 if (!ExtVectorDecls.empty()) 4218 Stream.EmitRecord(EXT_VECTOR_DECLS, ExtVectorDecls); 4219 4220 // Write the record containing VTable uses information. 4221 if (!VTableUses.empty()) 4222 Stream.EmitRecord(VTABLE_USES, VTableUses); 4223 4224 // Write the record containing dynamic classes declarations. 4225 if (!DynamicClasses.empty()) 4226 Stream.EmitRecord(DYNAMIC_CLASSES, DynamicClasses); 4227 4228 // Write the record containing pending implicit instantiations. 4229 if (!PendingInstantiations.empty()) 4230 Stream.EmitRecord(PENDING_IMPLICIT_INSTANTIATIONS, PendingInstantiations); 4231 4232 // Write the record containing declaration references of Sema. 4233 if (!SemaDeclRefs.empty()) 4234 Stream.EmitRecord(SEMA_DECL_REFS, SemaDeclRefs); 4235 4236 // Write the record containing CUDA-specific declaration references. 4237 if (!CUDASpecialDeclRefs.empty()) 4238 Stream.EmitRecord(CUDA_SPECIAL_DECL_REFS, CUDASpecialDeclRefs); 4239 4240 // Write the delegating constructors. 4241 if (!DelegatingCtorDecls.empty()) 4242 Stream.EmitRecord(DELEGATING_CTORS, DelegatingCtorDecls); 4243 4244 // Write the known namespaces. 4245 if (!KnownNamespaces.empty()) 4246 Stream.EmitRecord(KNOWN_NAMESPACES, KnownNamespaces); 4247 4248 // Write the undefined internal functions and variables, and inline functions. 4249 if (!UndefinedButUsed.empty()) 4250 Stream.EmitRecord(UNDEFINED_BUT_USED, UndefinedButUsed); 4251 4252 // Write the visible updates to DeclContexts. 4253 for (llvm::SmallPtrSet<const DeclContext *, 16>::iterator 4254 I = UpdatedDeclContexts.begin(), 4255 E = UpdatedDeclContexts.end(); 4256 I != E; ++I) 4257 WriteDeclContextVisibleUpdate(*I); 4258 4259 if (!WritingModule) { 4260 // Write the submodules that were imported, if any. 4261 RecordData ImportedModules; 4262 for (ASTContext::import_iterator I = Context.local_import_begin(), 4263 IEnd = Context.local_import_end(); 4264 I != IEnd; ++I) { 4265 assert(SubmoduleIDs.find(I->getImportedModule()) != SubmoduleIDs.end()); 4266 ImportedModules.push_back(SubmoduleIDs[I->getImportedModule()]); 4267 } 4268 if (!ImportedModules.empty()) { 4269 // Sort module IDs. 4270 llvm::array_pod_sort(ImportedModules.begin(), ImportedModules.end()); 4271 4272 // Unique module IDs. 4273 ImportedModules.erase(std::unique(ImportedModules.begin(), 4274 ImportedModules.end()), 4275 ImportedModules.end()); 4276 4277 Stream.EmitRecord(IMPORTED_MODULES, ImportedModules); 4278 } 4279 } 4280 4281 WriteDeclUpdatesBlocks(); 4282 WriteDeclReplacementsBlock(); 4283 WriteRedeclarations(); 4284 WriteMergedDecls(); 4285 WriteObjCCategories(); 4286 WriteLateParsedTemplates(SemaRef); 4287 4288 // Some simple statistics 4289 Record.clear(); 4290 Record.push_back(NumStatements); 4291 Record.push_back(NumMacros); 4292 Record.push_back(NumLexicalDeclContexts); 4293 Record.push_back(NumVisibleDeclContexts); 4294 Stream.EmitRecord(STATISTICS, Record); 4295 Stream.ExitBlock(); 4296 } 4297 4298 /// \brief Go through the declaration update blocks and resolve declaration 4299 /// pointers into declaration IDs. 4300 void ASTWriter::ResolveDeclUpdatesBlocks() { 4301 for (DeclUpdateMap::iterator 4302 I = DeclUpdates.begin(), E = DeclUpdates.end(); I != E; ++I) { 4303 const Decl *D = I->first; 4304 UpdateRecord &URec = I->second; 4305 4306 if (isRewritten(D)) 4307 continue; // The decl will be written completely 4308 4309 unsigned Idx = 0, N = URec.size(); 4310 while (Idx < N) { 4311 switch ((DeclUpdateKind)URec[Idx++]) { 4312 case UPD_CXX_ADDED_IMPLICIT_MEMBER: 4313 case UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION: 4314 case UPD_CXX_ADDED_ANONYMOUS_NAMESPACE: 4315 URec[Idx] = GetDeclRef(reinterpret_cast<Decl *>(URec[Idx])); 4316 ++Idx; 4317 break; 4318 4319 case UPD_CXX_INSTANTIATED_STATIC_DATA_MEMBER: 4320 case UPD_DECL_MARKED_USED: 4321 ++Idx; 4322 break; 4323 4324 case UPD_CXX_DEDUCED_RETURN_TYPE: 4325 URec[Idx] = GetOrCreateTypeID( 4326 QualType::getFromOpaquePtr(reinterpret_cast<void *>(URec[Idx]))); 4327 ++Idx; 4328 break; 4329 } 4330 } 4331 } 4332 } 4333 4334 void ASTWriter::WriteDeclUpdatesBlocks() { 4335 if (DeclUpdates.empty()) 4336 return; 4337 4338 RecordData OffsetsRecord; 4339 Stream.EnterSubblock(DECL_UPDATES_BLOCK_ID, NUM_ALLOWED_ABBREVS_SIZE); 4340 for (DeclUpdateMap::iterator 4341 I = DeclUpdates.begin(), E = DeclUpdates.end(); I != E; ++I) { 4342 const Decl *D = I->first; 4343 UpdateRecord &URec = I->second; 4344 4345 if (isRewritten(D)) 4346 continue; // The decl will be written completely,no need to store updates. 4347 4348 uint64_t Offset = Stream.GetCurrentBitNo(); 4349 Stream.EmitRecord(DECL_UPDATES, URec); 4350 4351 OffsetsRecord.push_back(GetDeclRef(D)); 4352 OffsetsRecord.push_back(Offset); 4353 } 4354 Stream.ExitBlock(); 4355 Stream.EmitRecord(DECL_UPDATE_OFFSETS, OffsetsRecord); 4356 } 4357 4358 void ASTWriter::WriteDeclReplacementsBlock() { 4359 if (ReplacedDecls.empty()) 4360 return; 4361 4362 RecordData Record; 4363 for (SmallVectorImpl<ReplacedDeclInfo>::iterator 4364 I = ReplacedDecls.begin(), E = ReplacedDecls.end(); I != E; ++I) { 4365 Record.push_back(I->ID); 4366 Record.push_back(I->Offset); 4367 Record.push_back(I->Loc); 4368 } 4369 Stream.EmitRecord(DECL_REPLACEMENTS, Record); 4370 } 4371 4372 void ASTWriter::AddSourceLocation(SourceLocation Loc, RecordDataImpl &Record) { 4373 Record.push_back(Loc.getRawEncoding()); 4374 } 4375 4376 void ASTWriter::AddSourceRange(SourceRange Range, RecordDataImpl &Record) { 4377 AddSourceLocation(Range.getBegin(), Record); 4378 AddSourceLocation(Range.getEnd(), Record); 4379 } 4380 4381 void ASTWriter::AddAPInt(const llvm::APInt &Value, RecordDataImpl &Record) { 4382 Record.push_back(Value.getBitWidth()); 4383 const uint64_t *Words = Value.getRawData(); 4384 Record.append(Words, Words + Value.getNumWords()); 4385 } 4386 4387 void ASTWriter::AddAPSInt(const llvm::APSInt &Value, RecordDataImpl &Record) { 4388 Record.push_back(Value.isUnsigned()); 4389 AddAPInt(Value, Record); 4390 } 4391 4392 void ASTWriter::AddAPFloat(const llvm::APFloat &Value, RecordDataImpl &Record) { 4393 AddAPInt(Value.bitcastToAPInt(), Record); 4394 } 4395 4396 void ASTWriter::AddIdentifierRef(const IdentifierInfo *II, RecordDataImpl &Record) { 4397 Record.push_back(getIdentifierRef(II)); 4398 } 4399 4400 IdentID ASTWriter::getIdentifierRef(const IdentifierInfo *II) { 4401 if (II == 0) 4402 return 0; 4403 4404 IdentID &ID = IdentifierIDs[II]; 4405 if (ID == 0) 4406 ID = NextIdentID++; 4407 return ID; 4408 } 4409 4410 MacroID ASTWriter::getMacroRef(MacroInfo *MI, const IdentifierInfo *Name) { 4411 // Don't emit builtin macros like __LINE__ to the AST file unless they 4412 // have been redefined by the header (in which case they are not 4413 // isBuiltinMacro). 4414 if (MI == 0 || MI->isBuiltinMacro()) 4415 return 0; 4416 4417 MacroID &ID = MacroIDs[MI]; 4418 if (ID == 0) { 4419 ID = NextMacroID++; 4420 MacroInfoToEmitData Info = { Name, MI, ID }; 4421 MacroInfosToEmit.push_back(Info); 4422 } 4423 return ID; 4424 } 4425 4426 MacroID ASTWriter::getMacroID(MacroInfo *MI) { 4427 if (MI == 0 || MI->isBuiltinMacro()) 4428 return 0; 4429 4430 assert(MacroIDs.find(MI) != MacroIDs.end() && "Macro not emitted!"); 4431 return MacroIDs[MI]; 4432 } 4433 4434 uint64_t ASTWriter::getMacroDirectivesOffset(const IdentifierInfo *Name) { 4435 assert(IdentMacroDirectivesOffsetMap[Name] && "not set!"); 4436 return IdentMacroDirectivesOffsetMap[Name]; 4437 } 4438 4439 void ASTWriter::AddSelectorRef(const Selector SelRef, RecordDataImpl &Record) { 4440 Record.push_back(getSelectorRef(SelRef)); 4441 } 4442 4443 SelectorID ASTWriter::getSelectorRef(Selector Sel) { 4444 if (Sel.getAsOpaquePtr() == 0) { 4445 return 0; 4446 } 4447 4448 SelectorID SID = SelectorIDs[Sel]; 4449 if (SID == 0 && Chain) { 4450 // This might trigger a ReadSelector callback, which will set the ID for 4451 // this selector. 4452 Chain->LoadSelector(Sel); 4453 SID = SelectorIDs[Sel]; 4454 } 4455 if (SID == 0) { 4456 SID = NextSelectorID++; 4457 SelectorIDs[Sel] = SID; 4458 } 4459 return SID; 4460 } 4461 4462 void ASTWriter::AddCXXTemporary(const CXXTemporary *Temp, RecordDataImpl &Record) { 4463 AddDeclRef(Temp->getDestructor(), Record); 4464 } 4465 4466 void ASTWriter::AddCXXBaseSpecifiersRef(CXXBaseSpecifier const *Bases, 4467 CXXBaseSpecifier const *BasesEnd, 4468 RecordDataImpl &Record) { 4469 assert(Bases != BasesEnd && "Empty base-specifier sets are not recorded"); 4470 CXXBaseSpecifiersToWrite.push_back( 4471 QueuedCXXBaseSpecifiers(NextCXXBaseSpecifiersID, 4472 Bases, BasesEnd)); 4473 Record.push_back(NextCXXBaseSpecifiersID++); 4474 } 4475 4476 void ASTWriter::AddTemplateArgumentLocInfo(TemplateArgument::ArgKind Kind, 4477 const TemplateArgumentLocInfo &Arg, 4478 RecordDataImpl &Record) { 4479 switch (Kind) { 4480 case TemplateArgument::Expression: 4481 AddStmt(Arg.getAsExpr()); 4482 break; 4483 case TemplateArgument::Type: 4484 AddTypeSourceInfo(Arg.getAsTypeSourceInfo(), Record); 4485 break; 4486 case TemplateArgument::Template: 4487 AddNestedNameSpecifierLoc(Arg.getTemplateQualifierLoc(), Record); 4488 AddSourceLocation(Arg.getTemplateNameLoc(), Record); 4489 break; 4490 case TemplateArgument::TemplateExpansion: 4491 AddNestedNameSpecifierLoc(Arg.getTemplateQualifierLoc(), Record); 4492 AddSourceLocation(Arg.getTemplateNameLoc(), Record); 4493 AddSourceLocation(Arg.getTemplateEllipsisLoc(), Record); 4494 break; 4495 case TemplateArgument::Null: 4496 case TemplateArgument::Integral: 4497 case TemplateArgument::Declaration: 4498 case TemplateArgument::NullPtr: 4499 case TemplateArgument::Pack: 4500 // FIXME: Is this right? 4501 break; 4502 } 4503 } 4504 4505 void ASTWriter::AddTemplateArgumentLoc(const TemplateArgumentLoc &Arg, 4506 RecordDataImpl &Record) { 4507 AddTemplateArgument(Arg.getArgument(), Record); 4508 4509 if (Arg.getArgument().getKind() == TemplateArgument::Expression) { 4510 bool InfoHasSameExpr 4511 = Arg.getArgument().getAsExpr() == Arg.getLocInfo().getAsExpr(); 4512 Record.push_back(InfoHasSameExpr); 4513 if (InfoHasSameExpr) 4514 return; // Avoid storing the same expr twice. 4515 } 4516 AddTemplateArgumentLocInfo(Arg.getArgument().getKind(), Arg.getLocInfo(), 4517 Record); 4518 } 4519 4520 void ASTWriter::AddTypeSourceInfo(TypeSourceInfo *TInfo, 4521 RecordDataImpl &Record) { 4522 if (TInfo == 0) { 4523 AddTypeRef(QualType(), Record); 4524 return; 4525 } 4526 4527 AddTypeLoc(TInfo->getTypeLoc(), Record); 4528 } 4529 4530 void ASTWriter::AddTypeLoc(TypeLoc TL, RecordDataImpl &Record) { 4531 AddTypeRef(TL.getType(), Record); 4532 4533 TypeLocWriter TLW(*this, Record); 4534 for (; !TL.isNull(); TL = TL.getNextTypeLoc()) 4535 TLW.Visit(TL); 4536 } 4537 4538 void ASTWriter::AddTypeRef(QualType T, RecordDataImpl &Record) { 4539 Record.push_back(GetOrCreateTypeID(T)); 4540 } 4541 4542 TypeID ASTWriter::GetOrCreateTypeID( QualType T) { 4543 assert(Context); 4544 return MakeTypeID(*Context, T, 4545 std::bind1st(std::mem_fun(&ASTWriter::GetOrCreateTypeIdx), this)); 4546 } 4547 4548 TypeID ASTWriter::getTypeID(QualType T) const { 4549 assert(Context); 4550 return MakeTypeID(*Context, T, 4551 std::bind1st(std::mem_fun(&ASTWriter::getTypeIdx), this)); 4552 } 4553 4554 TypeIdx ASTWriter::GetOrCreateTypeIdx(QualType T) { 4555 if (T.isNull()) 4556 return TypeIdx(); 4557 assert(!T.getLocalFastQualifiers()); 4558 4559 TypeIdx &Idx = TypeIdxs[T]; 4560 if (Idx.getIndex() == 0) { 4561 if (DoneWritingDeclsAndTypes) { 4562 assert(0 && "New type seen after serializing all the types to emit!"); 4563 return TypeIdx(); 4564 } 4565 4566 // We haven't seen this type before. Assign it a new ID and put it 4567 // into the queue of types to emit. 4568 Idx = TypeIdx(NextTypeID++); 4569 DeclTypesToEmit.push(T); 4570 } 4571 return Idx; 4572 } 4573 4574 TypeIdx ASTWriter::getTypeIdx(QualType T) const { 4575 if (T.isNull()) 4576 return TypeIdx(); 4577 assert(!T.getLocalFastQualifiers()); 4578 4579 TypeIdxMap::const_iterator I = TypeIdxs.find(T); 4580 assert(I != TypeIdxs.end() && "Type not emitted!"); 4581 return I->second; 4582 } 4583 4584 void ASTWriter::AddDeclRef(const Decl *D, RecordDataImpl &Record) { 4585 Record.push_back(GetDeclRef(D)); 4586 } 4587 4588 DeclID ASTWriter::GetDeclRef(const Decl *D) { 4589 assert(WritingAST && "Cannot request a declaration ID before AST writing"); 4590 4591 if (D == 0) { 4592 return 0; 4593 } 4594 4595 // If D comes from an AST file, its declaration ID is already known and 4596 // fixed. 4597 if (D->isFromASTFile()) 4598 return D->getGlobalID(); 4599 4600 assert(!(reinterpret_cast<uintptr_t>(D) & 0x01) && "Invalid decl pointer"); 4601 DeclID &ID = DeclIDs[D]; 4602 if (ID == 0) { 4603 if (DoneWritingDeclsAndTypes) { 4604 assert(0 && "New decl seen after serializing all the decls to emit!"); 4605 return 0; 4606 } 4607 4608 // We haven't seen this declaration before. Give it a new ID and 4609 // enqueue it in the list of declarations to emit. 4610 ID = NextDeclID++; 4611 DeclTypesToEmit.push(const_cast<Decl *>(D)); 4612 } 4613 4614 return ID; 4615 } 4616 4617 DeclID ASTWriter::getDeclID(const Decl *D) { 4618 if (D == 0) 4619 return 0; 4620 4621 // If D comes from an AST file, its declaration ID is already known and 4622 // fixed. 4623 if (D->isFromASTFile()) 4624 return D->getGlobalID(); 4625 4626 assert(DeclIDs.find(D) != DeclIDs.end() && "Declaration not emitted!"); 4627 return DeclIDs[D]; 4628 } 4629 4630 void ASTWriter::associateDeclWithFile(const Decl *D, DeclID ID) { 4631 assert(ID); 4632 assert(D); 4633 4634 SourceLocation Loc = D->getLocation(); 4635 if (Loc.isInvalid()) 4636 return; 4637 4638 // We only keep track of the file-level declarations of each file. 4639 if (!D->getLexicalDeclContext()->isFileContext()) 4640 return; 4641 // FIXME: ParmVarDecls that are part of a function type of a parameter of 4642 // a function/objc method, should not have TU as lexical context. 4643 if (isa<ParmVarDecl>(D)) 4644 return; 4645 4646 SourceManager &SM = Context->getSourceManager(); 4647 SourceLocation FileLoc = SM.getFileLoc(Loc); 4648 assert(SM.isLocalSourceLocation(FileLoc)); 4649 FileID FID; 4650 unsigned Offset; 4651 llvm::tie(FID, Offset) = SM.getDecomposedLoc(FileLoc); 4652 if (FID.isInvalid()) 4653 return; 4654 assert(SM.getSLocEntry(FID).isFile()); 4655 4656 DeclIDInFileInfo *&Info = FileDeclIDs[FID]; 4657 if (!Info) 4658 Info = new DeclIDInFileInfo(); 4659 4660 std::pair<unsigned, serialization::DeclID> LocDecl(Offset, ID); 4661 LocDeclIDsTy &Decls = Info->DeclIDs; 4662 4663 if (Decls.empty() || Decls.back().first <= Offset) { 4664 Decls.push_back(LocDecl); 4665 return; 4666 } 4667 4668 LocDeclIDsTy::iterator I = 4669 std::upper_bound(Decls.begin(), Decls.end(), LocDecl, llvm::less_first()); 4670 4671 Decls.insert(I, LocDecl); 4672 } 4673 4674 void ASTWriter::AddDeclarationName(DeclarationName Name, RecordDataImpl &Record) { 4675 // FIXME: Emit a stable enum for NameKind. 0 = Identifier etc. 4676 Record.push_back(Name.getNameKind()); 4677 switch (Name.getNameKind()) { 4678 case DeclarationName::Identifier: 4679 AddIdentifierRef(Name.getAsIdentifierInfo(), Record); 4680 break; 4681 4682 case DeclarationName::ObjCZeroArgSelector: 4683 case DeclarationName::ObjCOneArgSelector: 4684 case DeclarationName::ObjCMultiArgSelector: 4685 AddSelectorRef(Name.getObjCSelector(), Record); 4686 break; 4687 4688 case DeclarationName::CXXConstructorName: 4689 case DeclarationName::CXXDestructorName: 4690 case DeclarationName::CXXConversionFunctionName: 4691 AddTypeRef(Name.getCXXNameType(), Record); 4692 break; 4693 4694 case DeclarationName::CXXOperatorName: 4695 Record.push_back(Name.getCXXOverloadedOperator()); 4696 break; 4697 4698 case DeclarationName::CXXLiteralOperatorName: 4699 AddIdentifierRef(Name.getCXXLiteralIdentifier(), Record); 4700 break; 4701 4702 case DeclarationName::CXXUsingDirective: 4703 // No extra data to emit 4704 break; 4705 } 4706 } 4707 4708 void ASTWriter::AddDeclarationNameLoc(const DeclarationNameLoc &DNLoc, 4709 DeclarationName Name, RecordDataImpl &Record) { 4710 switch (Name.getNameKind()) { 4711 case DeclarationName::CXXConstructorName: 4712 case DeclarationName::CXXDestructorName: 4713 case DeclarationName::CXXConversionFunctionName: 4714 AddTypeSourceInfo(DNLoc.NamedType.TInfo, Record); 4715 break; 4716 4717 case DeclarationName::CXXOperatorName: 4718 AddSourceLocation( 4719 SourceLocation::getFromRawEncoding(DNLoc.CXXOperatorName.BeginOpNameLoc), 4720 Record); 4721 AddSourceLocation( 4722 SourceLocation::getFromRawEncoding(DNLoc.CXXOperatorName.EndOpNameLoc), 4723 Record); 4724 break; 4725 4726 case DeclarationName::CXXLiteralOperatorName: 4727 AddSourceLocation( 4728 SourceLocation::getFromRawEncoding(DNLoc.CXXLiteralOperatorName.OpNameLoc), 4729 Record); 4730 break; 4731 4732 case DeclarationName::Identifier: 4733 case DeclarationName::ObjCZeroArgSelector: 4734 case DeclarationName::ObjCOneArgSelector: 4735 case DeclarationName::ObjCMultiArgSelector: 4736 case DeclarationName::CXXUsingDirective: 4737 break; 4738 } 4739 } 4740 4741 void ASTWriter::AddDeclarationNameInfo(const DeclarationNameInfo &NameInfo, 4742 RecordDataImpl &Record) { 4743 AddDeclarationName(NameInfo.getName(), Record); 4744 AddSourceLocation(NameInfo.getLoc(), Record); 4745 AddDeclarationNameLoc(NameInfo.getInfo(), NameInfo.getName(), Record); 4746 } 4747 4748 void ASTWriter::AddQualifierInfo(const QualifierInfo &Info, 4749 RecordDataImpl &Record) { 4750 AddNestedNameSpecifierLoc(Info.QualifierLoc, Record); 4751 Record.push_back(Info.NumTemplParamLists); 4752 for (unsigned i=0, e=Info.NumTemplParamLists; i != e; ++i) 4753 AddTemplateParameterList(Info.TemplParamLists[i], Record); 4754 } 4755 4756 void ASTWriter::AddNestedNameSpecifier(NestedNameSpecifier *NNS, 4757 RecordDataImpl &Record) { 4758 // Nested name specifiers usually aren't too long. I think that 8 would 4759 // typically accommodate the vast majority. 4760 SmallVector<NestedNameSpecifier *, 8> NestedNames; 4761 4762 // Push each of the NNS's onto a stack for serialization in reverse order. 4763 while (NNS) { 4764 NestedNames.push_back(NNS); 4765 NNS = NNS->getPrefix(); 4766 } 4767 4768 Record.push_back(NestedNames.size()); 4769 while(!NestedNames.empty()) { 4770 NNS = NestedNames.pop_back_val(); 4771 NestedNameSpecifier::SpecifierKind Kind = NNS->getKind(); 4772 Record.push_back(Kind); 4773 switch (Kind) { 4774 case NestedNameSpecifier::Identifier: 4775 AddIdentifierRef(NNS->getAsIdentifier(), Record); 4776 break; 4777 4778 case NestedNameSpecifier::Namespace: 4779 AddDeclRef(NNS->getAsNamespace(), Record); 4780 break; 4781 4782 case NestedNameSpecifier::NamespaceAlias: 4783 AddDeclRef(NNS->getAsNamespaceAlias(), Record); 4784 break; 4785 4786 case NestedNameSpecifier::TypeSpec: 4787 case NestedNameSpecifier::TypeSpecWithTemplate: 4788 AddTypeRef(QualType(NNS->getAsType(), 0), Record); 4789 Record.push_back(Kind == NestedNameSpecifier::TypeSpecWithTemplate); 4790 break; 4791 4792 case NestedNameSpecifier::Global: 4793 // Don't need to write an associated value. 4794 break; 4795 } 4796 } 4797 } 4798 4799 void ASTWriter::AddNestedNameSpecifierLoc(NestedNameSpecifierLoc NNS, 4800 RecordDataImpl &Record) { 4801 // Nested name specifiers usually aren't too long. I think that 8 would 4802 // typically accommodate the vast majority. 4803 SmallVector<NestedNameSpecifierLoc , 8> NestedNames; 4804 4805 // Push each of the nested-name-specifiers's onto a stack for 4806 // serialization in reverse order. 4807 while (NNS) { 4808 NestedNames.push_back(NNS); 4809 NNS = NNS.getPrefix(); 4810 } 4811 4812 Record.push_back(NestedNames.size()); 4813 while(!NestedNames.empty()) { 4814 NNS = NestedNames.pop_back_val(); 4815 NestedNameSpecifier::SpecifierKind Kind 4816 = NNS.getNestedNameSpecifier()->getKind(); 4817 Record.push_back(Kind); 4818 switch (Kind) { 4819 case NestedNameSpecifier::Identifier: 4820 AddIdentifierRef(NNS.getNestedNameSpecifier()->getAsIdentifier(), Record); 4821 AddSourceRange(NNS.getLocalSourceRange(), Record); 4822 break; 4823 4824 case NestedNameSpecifier::Namespace: 4825 AddDeclRef(NNS.getNestedNameSpecifier()->getAsNamespace(), Record); 4826 AddSourceRange(NNS.getLocalSourceRange(), Record); 4827 break; 4828 4829 case NestedNameSpecifier::NamespaceAlias: 4830 AddDeclRef(NNS.getNestedNameSpecifier()->getAsNamespaceAlias(), Record); 4831 AddSourceRange(NNS.getLocalSourceRange(), Record); 4832 break; 4833 4834 case NestedNameSpecifier::TypeSpec: 4835 case NestedNameSpecifier::TypeSpecWithTemplate: 4836 Record.push_back(Kind == NestedNameSpecifier::TypeSpecWithTemplate); 4837 AddTypeLoc(NNS.getTypeLoc(), Record); 4838 AddSourceLocation(NNS.getLocalSourceRange().getEnd(), Record); 4839 break; 4840 4841 case NestedNameSpecifier::Global: 4842 AddSourceLocation(NNS.getLocalSourceRange().getEnd(), Record); 4843 break; 4844 } 4845 } 4846 } 4847 4848 void ASTWriter::AddTemplateName(TemplateName Name, RecordDataImpl &Record) { 4849 TemplateName::NameKind Kind = Name.getKind(); 4850 Record.push_back(Kind); 4851 switch (Kind) { 4852 case TemplateName::Template: 4853 AddDeclRef(Name.getAsTemplateDecl(), Record); 4854 break; 4855 4856 case TemplateName::OverloadedTemplate: { 4857 OverloadedTemplateStorage *OvT = Name.getAsOverloadedTemplate(); 4858 Record.push_back(OvT->size()); 4859 for (OverloadedTemplateStorage::iterator I = OvT->begin(), E = OvT->end(); 4860 I != E; ++I) 4861 AddDeclRef(*I, Record); 4862 break; 4863 } 4864 4865 case TemplateName::QualifiedTemplate: { 4866 QualifiedTemplateName *QualT = Name.getAsQualifiedTemplateName(); 4867 AddNestedNameSpecifier(QualT->getQualifier(), Record); 4868 Record.push_back(QualT->hasTemplateKeyword()); 4869 AddDeclRef(QualT->getTemplateDecl(), Record); 4870 break; 4871 } 4872 4873 case TemplateName::DependentTemplate: { 4874 DependentTemplateName *DepT = Name.getAsDependentTemplateName(); 4875 AddNestedNameSpecifier(DepT->getQualifier(), Record); 4876 Record.push_back(DepT->isIdentifier()); 4877 if (DepT->isIdentifier()) 4878 AddIdentifierRef(DepT->getIdentifier(), Record); 4879 else 4880 Record.push_back(DepT->getOperator()); 4881 break; 4882 } 4883 4884 case TemplateName::SubstTemplateTemplateParm: { 4885 SubstTemplateTemplateParmStorage *subst 4886 = Name.getAsSubstTemplateTemplateParm(); 4887 AddDeclRef(subst->getParameter(), Record); 4888 AddTemplateName(subst->getReplacement(), Record); 4889 break; 4890 } 4891 4892 case TemplateName::SubstTemplateTemplateParmPack: { 4893 SubstTemplateTemplateParmPackStorage *SubstPack 4894 = Name.getAsSubstTemplateTemplateParmPack(); 4895 AddDeclRef(SubstPack->getParameterPack(), Record); 4896 AddTemplateArgument(SubstPack->getArgumentPack(), Record); 4897 break; 4898 } 4899 } 4900 } 4901 4902 void ASTWriter::AddTemplateArgument(const TemplateArgument &Arg, 4903 RecordDataImpl &Record) { 4904 Record.push_back(Arg.getKind()); 4905 switch (Arg.getKind()) { 4906 case TemplateArgument::Null: 4907 break; 4908 case TemplateArgument::Type: 4909 AddTypeRef(Arg.getAsType(), Record); 4910 break; 4911 case TemplateArgument::Declaration: 4912 AddDeclRef(Arg.getAsDecl(), Record); 4913 Record.push_back(Arg.isDeclForReferenceParam()); 4914 break; 4915 case TemplateArgument::NullPtr: 4916 AddTypeRef(Arg.getNullPtrType(), Record); 4917 break; 4918 case TemplateArgument::Integral: 4919 AddAPSInt(Arg.getAsIntegral(), Record); 4920 AddTypeRef(Arg.getIntegralType(), Record); 4921 break; 4922 case TemplateArgument::Template: 4923 AddTemplateName(Arg.getAsTemplateOrTemplatePattern(), Record); 4924 break; 4925 case TemplateArgument::TemplateExpansion: 4926 AddTemplateName(Arg.getAsTemplateOrTemplatePattern(), Record); 4927 if (Optional<unsigned> NumExpansions = Arg.getNumTemplateExpansions()) 4928 Record.push_back(*NumExpansions + 1); 4929 else 4930 Record.push_back(0); 4931 break; 4932 case TemplateArgument::Expression: 4933 AddStmt(Arg.getAsExpr()); 4934 break; 4935 case TemplateArgument::Pack: 4936 Record.push_back(Arg.pack_size()); 4937 for (TemplateArgument::pack_iterator I=Arg.pack_begin(), E=Arg.pack_end(); 4938 I != E; ++I) 4939 AddTemplateArgument(*I, Record); 4940 break; 4941 } 4942 } 4943 4944 void 4945 ASTWriter::AddTemplateParameterList(const TemplateParameterList *TemplateParams, 4946 RecordDataImpl &Record) { 4947 assert(TemplateParams && "No TemplateParams!"); 4948 AddSourceLocation(TemplateParams->getTemplateLoc(), Record); 4949 AddSourceLocation(TemplateParams->getLAngleLoc(), Record); 4950 AddSourceLocation(TemplateParams->getRAngleLoc(), Record); 4951 Record.push_back(TemplateParams->size()); 4952 for (TemplateParameterList::const_iterator 4953 P = TemplateParams->begin(), PEnd = TemplateParams->end(); 4954 P != PEnd; ++P) 4955 AddDeclRef(*P, Record); 4956 } 4957 4958 /// \brief Emit a template argument list. 4959 void 4960 ASTWriter::AddTemplateArgumentList(const TemplateArgumentList *TemplateArgs, 4961 RecordDataImpl &Record) { 4962 assert(TemplateArgs && "No TemplateArgs!"); 4963 Record.push_back(TemplateArgs->size()); 4964 for (int i=0, e = TemplateArgs->size(); i != e; ++i) 4965 AddTemplateArgument(TemplateArgs->get(i), Record); 4966 } 4967 4968 void 4969 ASTWriter::AddASTTemplateArgumentListInfo 4970 (const ASTTemplateArgumentListInfo *ASTTemplArgList, RecordDataImpl &Record) { 4971 assert(ASTTemplArgList && "No ASTTemplArgList!"); 4972 AddSourceLocation(ASTTemplArgList->LAngleLoc, Record); 4973 AddSourceLocation(ASTTemplArgList->RAngleLoc, Record); 4974 Record.push_back(ASTTemplArgList->NumTemplateArgs); 4975 const TemplateArgumentLoc *TemplArgs = ASTTemplArgList->getTemplateArgs(); 4976 for (int i=0, e = ASTTemplArgList->NumTemplateArgs; i != e; ++i) 4977 AddTemplateArgumentLoc(TemplArgs[i], Record); 4978 } 4979 4980 void 4981 ASTWriter::AddUnresolvedSet(const ASTUnresolvedSet &Set, RecordDataImpl &Record) { 4982 Record.push_back(Set.size()); 4983 for (ASTUnresolvedSet::const_iterator 4984 I = Set.begin(), E = Set.end(); I != E; ++I) { 4985 AddDeclRef(I.getDecl(), Record); 4986 Record.push_back(I.getAccess()); 4987 } 4988 } 4989 4990 void ASTWriter::AddCXXBaseSpecifier(const CXXBaseSpecifier &Base, 4991 RecordDataImpl &Record) { 4992 Record.push_back(Base.isVirtual()); 4993 Record.push_back(Base.isBaseOfClass()); 4994 Record.push_back(Base.getAccessSpecifierAsWritten()); 4995 Record.push_back(Base.getInheritConstructors()); 4996 AddTypeSourceInfo(Base.getTypeSourceInfo(), Record); 4997 AddSourceRange(Base.getSourceRange(), Record); 4998 AddSourceLocation(Base.isPackExpansion()? Base.getEllipsisLoc() 4999 : SourceLocation(), 5000 Record); 5001 } 5002 5003 void ASTWriter::FlushCXXBaseSpecifiers() { 5004 RecordData Record; 5005 for (unsigned I = 0, N = CXXBaseSpecifiersToWrite.size(); I != N; ++I) { 5006 Record.clear(); 5007 5008 // Record the offset of this base-specifier set. 5009 unsigned Index = CXXBaseSpecifiersToWrite[I].ID - 1; 5010 if (Index == CXXBaseSpecifiersOffsets.size()) 5011 CXXBaseSpecifiersOffsets.push_back(Stream.GetCurrentBitNo()); 5012 else { 5013 if (Index > CXXBaseSpecifiersOffsets.size()) 5014 CXXBaseSpecifiersOffsets.resize(Index + 1); 5015 CXXBaseSpecifiersOffsets[Index] = Stream.GetCurrentBitNo(); 5016 } 5017 5018 const CXXBaseSpecifier *B = CXXBaseSpecifiersToWrite[I].Bases, 5019 *BEnd = CXXBaseSpecifiersToWrite[I].BasesEnd; 5020 Record.push_back(BEnd - B); 5021 for (; B != BEnd; ++B) 5022 AddCXXBaseSpecifier(*B, Record); 5023 Stream.EmitRecord(serialization::DECL_CXX_BASE_SPECIFIERS, Record); 5024 5025 // Flush any expressions that were written as part of the base specifiers. 5026 FlushStmts(); 5027 } 5028 5029 CXXBaseSpecifiersToWrite.clear(); 5030 } 5031 5032 void ASTWriter::AddCXXCtorInitializers( 5033 const CXXCtorInitializer * const *CtorInitializers, 5034 unsigned NumCtorInitializers, 5035 RecordDataImpl &Record) { 5036 Record.push_back(NumCtorInitializers); 5037 for (unsigned i=0; i != NumCtorInitializers; ++i) { 5038 const CXXCtorInitializer *Init = CtorInitializers[i]; 5039 5040 if (Init->isBaseInitializer()) { 5041 Record.push_back(CTOR_INITIALIZER_BASE); 5042 AddTypeSourceInfo(Init->getTypeSourceInfo(), Record); 5043 Record.push_back(Init->isBaseVirtual()); 5044 } else if (Init->isDelegatingInitializer()) { 5045 Record.push_back(CTOR_INITIALIZER_DELEGATING); 5046 AddTypeSourceInfo(Init->getTypeSourceInfo(), Record); 5047 } else if (Init->isMemberInitializer()){ 5048 Record.push_back(CTOR_INITIALIZER_MEMBER); 5049 AddDeclRef(Init->getMember(), Record); 5050 } else { 5051 Record.push_back(CTOR_INITIALIZER_INDIRECT_MEMBER); 5052 AddDeclRef(Init->getIndirectMember(), Record); 5053 } 5054 5055 AddSourceLocation(Init->getMemberLocation(), Record); 5056 AddStmt(Init->getInit()); 5057 AddSourceLocation(Init->getLParenLoc(), Record); 5058 AddSourceLocation(Init->getRParenLoc(), Record); 5059 Record.push_back(Init->isWritten()); 5060 if (Init->isWritten()) { 5061 Record.push_back(Init->getSourceOrder()); 5062 } else { 5063 Record.push_back(Init->getNumArrayIndices()); 5064 for (unsigned i=0, e=Init->getNumArrayIndices(); i != e; ++i) 5065 AddDeclRef(Init->getArrayIndex(i), Record); 5066 } 5067 } 5068 } 5069 5070 void ASTWriter::AddCXXDefinitionData(const CXXRecordDecl *D, RecordDataImpl &Record) { 5071 assert(D->DefinitionData); 5072 struct CXXRecordDecl::DefinitionData &Data = *D->DefinitionData; 5073 Record.push_back(Data.IsLambda); 5074 Record.push_back(Data.UserDeclaredConstructor); 5075 Record.push_back(Data.UserDeclaredSpecialMembers); 5076 Record.push_back(Data.Aggregate); 5077 Record.push_back(Data.PlainOldData); 5078 Record.push_back(Data.Empty); 5079 Record.push_back(Data.Polymorphic); 5080 Record.push_back(Data.Abstract); 5081 Record.push_back(Data.IsStandardLayout); 5082 Record.push_back(Data.HasNoNonEmptyBases); 5083 Record.push_back(Data.HasPrivateFields); 5084 Record.push_back(Data.HasProtectedFields); 5085 Record.push_back(Data.HasPublicFields); 5086 Record.push_back(Data.HasMutableFields); 5087 Record.push_back(Data.HasVariantMembers); 5088 Record.push_back(Data.HasOnlyCMembers); 5089 Record.push_back(Data.HasInClassInitializer); 5090 Record.push_back(Data.HasUninitializedReferenceMember); 5091 Record.push_back(Data.NeedOverloadResolutionForMoveConstructor); 5092 Record.push_back(Data.NeedOverloadResolutionForMoveAssignment); 5093 Record.push_back(Data.NeedOverloadResolutionForDestructor); 5094 Record.push_back(Data.DefaultedMoveConstructorIsDeleted); 5095 Record.push_back(Data.DefaultedMoveAssignmentIsDeleted); 5096 Record.push_back(Data.DefaultedDestructorIsDeleted); 5097 Record.push_back(Data.HasTrivialSpecialMembers); 5098 Record.push_back(Data.HasIrrelevantDestructor); 5099 Record.push_back(Data.HasConstexprNonCopyMoveConstructor); 5100 Record.push_back(Data.DefaultedDefaultConstructorIsConstexpr); 5101 Record.push_back(Data.HasConstexprDefaultConstructor); 5102 Record.push_back(Data.HasNonLiteralTypeFieldsOrBases); 5103 Record.push_back(Data.ComputedVisibleConversions); 5104 Record.push_back(Data.UserProvidedDefaultConstructor); 5105 Record.push_back(Data.DeclaredSpecialMembers); 5106 Record.push_back(Data.ImplicitCopyConstructorHasConstParam); 5107 Record.push_back(Data.ImplicitCopyAssignmentHasConstParam); 5108 Record.push_back(Data.HasDeclaredCopyConstructorWithConstParam); 5109 Record.push_back(Data.HasDeclaredCopyAssignmentWithConstParam); 5110 // IsLambda bit is already saved. 5111 5112 Record.push_back(Data.NumBases); 5113 if (Data.NumBases > 0) 5114 AddCXXBaseSpecifiersRef(Data.getBases(), Data.getBases() + Data.NumBases, 5115 Record); 5116 5117 // FIXME: Make VBases lazily computed when needed to avoid storing them. 5118 Record.push_back(Data.NumVBases); 5119 if (Data.NumVBases > 0) 5120 AddCXXBaseSpecifiersRef(Data.getVBases(), Data.getVBases() + Data.NumVBases, 5121 Record); 5122 5123 AddUnresolvedSet(Data.Conversions.get(*Context), Record); 5124 AddUnresolvedSet(Data.VisibleConversions.get(*Context), Record); 5125 // Data.Definition is the owning decl, no need to write it. 5126 AddDeclRef(D->getFirstFriend(), Record); 5127 5128 // Add lambda-specific data. 5129 if (Data.IsLambda) { 5130 CXXRecordDecl::LambdaDefinitionData &Lambda = D->getLambdaData(); 5131 Record.push_back(Lambda.Dependent); 5132 Record.push_back(Lambda.IsGenericLambda); 5133 Record.push_back(Lambda.CaptureDefault); 5134 Record.push_back(Lambda.NumCaptures); 5135 Record.push_back(Lambda.NumExplicitCaptures); 5136 Record.push_back(Lambda.ManglingNumber); 5137 AddDeclRef(Lambda.ContextDecl, Record); 5138 AddTypeSourceInfo(Lambda.MethodTyInfo, Record); 5139 for (unsigned I = 0, N = Lambda.NumCaptures; I != N; ++I) { 5140 LambdaExpr::Capture &Capture = Lambda.Captures[I]; 5141 AddSourceLocation(Capture.getLocation(), Record); 5142 Record.push_back(Capture.isImplicit()); 5143 Record.push_back(Capture.getCaptureKind()); 5144 switch (Capture.getCaptureKind()) { 5145 case LCK_This: 5146 break; 5147 case LCK_ByCopy: 5148 case LCK_ByRef: 5149 VarDecl *Var = 5150 Capture.capturesVariable() ? Capture.getCapturedVar() : 0; 5151 AddDeclRef(Var, Record); 5152 AddSourceLocation(Capture.isPackExpansion() ? Capture.getEllipsisLoc() 5153 : SourceLocation(), 5154 Record); 5155 break; 5156 } 5157 } 5158 } 5159 } 5160 5161 void ASTWriter::ReaderInitialized(ASTReader *Reader) { 5162 assert(Reader && "Cannot remove chain"); 5163 assert((!Chain || Chain == Reader) && "Cannot replace chain"); 5164 assert(FirstDeclID == NextDeclID && 5165 FirstTypeID == NextTypeID && 5166 FirstIdentID == NextIdentID && 5167 FirstMacroID == NextMacroID && 5168 FirstSubmoduleID == NextSubmoduleID && 5169 FirstSelectorID == NextSelectorID && 5170 "Setting chain after writing has started."); 5171 5172 Chain = Reader; 5173 5174 FirstDeclID = NUM_PREDEF_DECL_IDS + Chain->getTotalNumDecls(); 5175 FirstTypeID = NUM_PREDEF_TYPE_IDS + Chain->getTotalNumTypes(); 5176 FirstIdentID = NUM_PREDEF_IDENT_IDS + Chain->getTotalNumIdentifiers(); 5177 FirstMacroID = NUM_PREDEF_MACRO_IDS + Chain->getTotalNumMacros(); 5178 FirstSubmoduleID = NUM_PREDEF_SUBMODULE_IDS + Chain->getTotalNumSubmodules(); 5179 FirstSelectorID = NUM_PREDEF_SELECTOR_IDS + Chain->getTotalNumSelectors(); 5180 NextDeclID = FirstDeclID; 5181 NextTypeID = FirstTypeID; 5182 NextIdentID = FirstIdentID; 5183 NextMacroID = FirstMacroID; 5184 NextSelectorID = FirstSelectorID; 5185 NextSubmoduleID = FirstSubmoduleID; 5186 } 5187 5188 void ASTWriter::IdentifierRead(IdentID ID, IdentifierInfo *II) { 5189 // Always keep the highest ID. See \p TypeRead() for more information. 5190 IdentID &StoredID = IdentifierIDs[II]; 5191 if (ID > StoredID) 5192 StoredID = ID; 5193 } 5194 5195 void ASTWriter::MacroRead(serialization::MacroID ID, MacroInfo *MI) { 5196 // Always keep the highest ID. See \p TypeRead() for more information. 5197 MacroID &StoredID = MacroIDs[MI]; 5198 if (ID > StoredID) 5199 StoredID = ID; 5200 } 5201 5202 void ASTWriter::TypeRead(TypeIdx Idx, QualType T) { 5203 // Always take the highest-numbered type index. This copes with an interesting 5204 // case for chained AST writing where we schedule writing the type and then, 5205 // later, deserialize the type from another AST. In this case, we want to 5206 // keep the higher-numbered entry so that we can properly write it out to 5207 // the AST file. 5208 TypeIdx &StoredIdx = TypeIdxs[T]; 5209 if (Idx.getIndex() >= StoredIdx.getIndex()) 5210 StoredIdx = Idx; 5211 } 5212 5213 void ASTWriter::SelectorRead(SelectorID ID, Selector S) { 5214 // Always keep the highest ID. See \p TypeRead() for more information. 5215 SelectorID &StoredID = SelectorIDs[S]; 5216 if (ID > StoredID) 5217 StoredID = ID; 5218 } 5219 5220 void ASTWriter::MacroDefinitionRead(serialization::PreprocessedEntityID ID, 5221 MacroDefinition *MD) { 5222 assert(MacroDefinitions.find(MD) == MacroDefinitions.end()); 5223 MacroDefinitions[MD] = ID; 5224 } 5225 5226 void ASTWriter::ModuleRead(serialization::SubmoduleID ID, Module *Mod) { 5227 assert(SubmoduleIDs.find(Mod) == SubmoduleIDs.end()); 5228 SubmoduleIDs[Mod] = ID; 5229 } 5230 5231 void ASTWriter::CompletedTagDefinition(const TagDecl *D) { 5232 assert(D->isCompleteDefinition()); 5233 assert(!WritingAST && "Already writing the AST!"); 5234 if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) { 5235 // We are interested when a PCH decl is modified. 5236 if (RD->isFromASTFile()) { 5237 // A forward reference was mutated into a definition. Rewrite it. 5238 // FIXME: This happens during template instantiation, should we 5239 // have created a new definition decl instead ? 5240 RewriteDecl(RD); 5241 } 5242 } 5243 } 5244 5245 void ASTWriter::AddedVisibleDecl(const DeclContext *DC, const Decl *D) { 5246 assert(!WritingAST && "Already writing the AST!"); 5247 5248 // TU and namespaces are handled elsewhere. 5249 if (isa<TranslationUnitDecl>(DC) || isa<NamespaceDecl>(DC)) 5250 return; 5251 5252 if (!(!D->isFromASTFile() && cast<Decl>(DC)->isFromASTFile())) 5253 return; // Not a source decl added to a DeclContext from PCH. 5254 5255 assert(!getDefinitiveDeclContext(DC) && "DeclContext not definitive!"); 5256 AddUpdatedDeclContext(DC); 5257 UpdatingVisibleDecls.push_back(D); 5258 } 5259 5260 void ASTWriter::AddedCXXImplicitMember(const CXXRecordDecl *RD, const Decl *D) { 5261 assert(!WritingAST && "Already writing the AST!"); 5262 assert(D->isImplicit()); 5263 if (!(!D->isFromASTFile() && RD->isFromASTFile())) 5264 return; // Not a source member added to a class from PCH. 5265 if (!isa<CXXMethodDecl>(D)) 5266 return; // We are interested in lazily declared implicit methods. 5267 5268 // A decl coming from PCH was modified. 5269 assert(RD->isCompleteDefinition()); 5270 UpdateRecord &Record = DeclUpdates[RD]; 5271 Record.push_back(UPD_CXX_ADDED_IMPLICIT_MEMBER); 5272 Record.push_back(reinterpret_cast<uint64_t>(D)); 5273 } 5274 5275 void ASTWriter::AddedCXXTemplateSpecialization(const ClassTemplateDecl *TD, 5276 const ClassTemplateSpecializationDecl *D) { 5277 // The specializations set is kept in the canonical template. 5278 assert(!WritingAST && "Already writing the AST!"); 5279 TD = TD->getCanonicalDecl(); 5280 if (!(!D->isFromASTFile() && TD->isFromASTFile())) 5281 return; // Not a source specialization added to a template from PCH. 5282 5283 UpdateRecord &Record = DeclUpdates[TD]; 5284 Record.push_back(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION); 5285 Record.push_back(reinterpret_cast<uint64_t>(D)); 5286 } 5287 5288 void ASTWriter::AddedCXXTemplateSpecialization( 5289 const VarTemplateDecl *TD, const VarTemplateSpecializationDecl *D) { 5290 // The specializations set is kept in the canonical template. 5291 assert(!WritingAST && "Already writing the AST!"); 5292 TD = TD->getCanonicalDecl(); 5293 if (!(!D->isFromASTFile() && TD->isFromASTFile())) 5294 return; // Not a source specialization added to a template from PCH. 5295 5296 UpdateRecord &Record = DeclUpdates[TD]; 5297 Record.push_back(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION); 5298 Record.push_back(reinterpret_cast<uint64_t>(D)); 5299 } 5300 5301 void ASTWriter::AddedCXXTemplateSpecialization(const FunctionTemplateDecl *TD, 5302 const FunctionDecl *D) { 5303 // The specializations set is kept in the canonical template. 5304 assert(!WritingAST && "Already writing the AST!"); 5305 TD = TD->getCanonicalDecl(); 5306 if (!(!D->isFromASTFile() && TD->isFromASTFile())) 5307 return; // Not a source specialization added to a template from PCH. 5308 5309 UpdateRecord &Record = DeclUpdates[TD]; 5310 Record.push_back(UPD_CXX_ADDED_TEMPLATE_SPECIALIZATION); 5311 Record.push_back(reinterpret_cast<uint64_t>(D)); 5312 } 5313 5314 void ASTWriter::DeducedReturnType(const FunctionDecl *FD, QualType ReturnType) { 5315 assert(!WritingAST && "Already writing the AST!"); 5316 FD = FD->getCanonicalDecl(); 5317 if (!FD->isFromASTFile()) 5318 return; // Not a function declared in PCH and defined outside. 5319 5320 UpdateRecord &Record = DeclUpdates[FD]; 5321 Record.push_back(UPD_CXX_DEDUCED_RETURN_TYPE); 5322 Record.push_back(reinterpret_cast<uint64_t>(ReturnType.getAsOpaquePtr())); 5323 } 5324 5325 void ASTWriter::CompletedImplicitDefinition(const FunctionDecl *D) { 5326 assert(!WritingAST && "Already writing the AST!"); 5327 if (!D->isFromASTFile()) 5328 return; // Declaration not imported from PCH. 5329 5330 // Implicit decl from a PCH was defined. 5331 // FIXME: Should implicit definition be a separate FunctionDecl? 5332 RewriteDecl(D); 5333 } 5334 5335 void ASTWriter::StaticDataMemberInstantiated(const VarDecl *D) { 5336 assert(!WritingAST && "Already writing the AST!"); 5337 if (!D->isFromASTFile()) 5338 return; 5339 5340 // Since the actual instantiation is delayed, this really means that we need 5341 // to update the instantiation location. 5342 UpdateRecord &Record = DeclUpdates[D]; 5343 Record.push_back(UPD_CXX_INSTANTIATED_STATIC_DATA_MEMBER); 5344 AddSourceLocation( 5345 D->getMemberSpecializationInfo()->getPointOfInstantiation(), Record); 5346 } 5347 5348 void ASTWriter::AddedObjCCategoryToInterface(const ObjCCategoryDecl *CatD, 5349 const ObjCInterfaceDecl *IFD) { 5350 assert(!WritingAST && "Already writing the AST!"); 5351 if (!IFD->isFromASTFile()) 5352 return; // Declaration not imported from PCH. 5353 5354 assert(IFD->getDefinition() && "Category on a class without a definition?"); 5355 ObjCClassesWithCategories.insert( 5356 const_cast<ObjCInterfaceDecl *>(IFD->getDefinition())); 5357 } 5358 5359 5360 void ASTWriter::AddedObjCPropertyInClassExtension(const ObjCPropertyDecl *Prop, 5361 const ObjCPropertyDecl *OrigProp, 5362 const ObjCCategoryDecl *ClassExt) { 5363 const ObjCInterfaceDecl *D = ClassExt->getClassInterface(); 5364 if (!D) 5365 return; 5366 5367 assert(!WritingAST && "Already writing the AST!"); 5368 if (!D->isFromASTFile()) 5369 return; // Declaration not imported from PCH. 5370 5371 RewriteDecl(D); 5372 } 5373 5374 void ASTWriter::DeclarationMarkedUsed(const Decl *D) { 5375 assert(!WritingAST && "Already writing the AST!"); 5376 if (!D->isFromASTFile()) 5377 return; 5378 5379 UpdateRecord &Record = DeclUpdates[D]; 5380 Record.push_back(UPD_DECL_MARKED_USED); 5381 } 5382