1 //===- DeclCXX.h - Classes for representing C++ declarations --*- C++ -*-=====// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 /// \file 10 /// Defines the C++ Decl subclasses, other than those for templates 11 /// (found in DeclTemplate.h) and friends (in DeclFriend.h). 12 // 13 //===----------------------------------------------------------------------===// 14 15 #ifndef LLVM_CLANG_AST_DECLCXX_H 16 #define LLVM_CLANG_AST_DECLCXX_H 17 18 #include "clang/AST/ASTUnresolvedSet.h" 19 #include "clang/AST/Decl.h" 20 #include "clang/AST/DeclBase.h" 21 #include "clang/AST/DeclarationName.h" 22 #include "clang/AST/Expr.h" 23 #include "clang/AST/ExternalASTSource.h" 24 #include "clang/AST/LambdaCapture.h" 25 #include "clang/AST/NestedNameSpecifier.h" 26 #include "clang/AST/Redeclarable.h" 27 #include "clang/AST/Stmt.h" 28 #include "clang/AST/Type.h" 29 #include "clang/AST/TypeLoc.h" 30 #include "clang/AST/UnresolvedSet.h" 31 #include "clang/Basic/LLVM.h" 32 #include "clang/Basic/Lambda.h" 33 #include "clang/Basic/LangOptions.h" 34 #include "clang/Basic/OperatorKinds.h" 35 #include "clang/Basic/SourceLocation.h" 36 #include "clang/Basic/Specifiers.h" 37 #include "llvm/ADT/ArrayRef.h" 38 #include "llvm/ADT/DenseMap.h" 39 #include "llvm/ADT/PointerIntPair.h" 40 #include "llvm/ADT/PointerUnion.h" 41 #include "llvm/ADT/STLExtras.h" 42 #include "llvm/ADT/TinyPtrVector.h" 43 #include "llvm/ADT/iterator_range.h" 44 #include "llvm/Support/Casting.h" 45 #include "llvm/Support/Compiler.h" 46 #include "llvm/Support/PointerLikeTypeTraits.h" 47 #include "llvm/Support/TrailingObjects.h" 48 #include <cassert> 49 #include <cstddef> 50 #include <iterator> 51 #include <memory> 52 #include <vector> 53 54 namespace clang { 55 56 class ASTContext; 57 class ClassTemplateDecl; 58 class ConstructorUsingShadowDecl; 59 class CXXBasePath; 60 class CXXBasePaths; 61 class CXXConstructorDecl; 62 class CXXDestructorDecl; 63 class CXXFinalOverriderMap; 64 class CXXIndirectPrimaryBaseSet; 65 class CXXMethodDecl; 66 class DecompositionDecl; 67 class FriendDecl; 68 class FunctionTemplateDecl; 69 class IdentifierInfo; 70 class MemberSpecializationInfo; 71 class BaseUsingDecl; 72 class TemplateDecl; 73 class TemplateParameterList; 74 class UsingDecl; 75 76 /// Represents an access specifier followed by colon ':'. 77 /// 78 /// An objects of this class represents sugar for the syntactic occurrence 79 /// of an access specifier followed by a colon in the list of member 80 /// specifiers of a C++ class definition. 81 /// 82 /// Note that they do not represent other uses of access specifiers, 83 /// such as those occurring in a list of base specifiers. 84 /// Also note that this class has nothing to do with so-called 85 /// "access declarations" (C++98 11.3 [class.access.dcl]). 86 class AccessSpecDecl : public Decl { 87 /// The location of the ':'. 88 SourceLocation ColonLoc; 89 AccessSpecDecl(AccessSpecifier AS,DeclContext * DC,SourceLocation ASLoc,SourceLocation ColonLoc)90 AccessSpecDecl(AccessSpecifier AS, DeclContext *DC, 91 SourceLocation ASLoc, SourceLocation ColonLoc) 92 : Decl(AccessSpec, DC, ASLoc), ColonLoc(ColonLoc) { 93 setAccess(AS); 94 } 95 AccessSpecDecl(EmptyShell Empty)96 AccessSpecDecl(EmptyShell Empty) : Decl(AccessSpec, Empty) {} 97 98 virtual void anchor(); 99 100 public: 101 /// The location of the access specifier. getAccessSpecifierLoc()102 SourceLocation getAccessSpecifierLoc() const { return getLocation(); } 103 104 /// Sets the location of the access specifier. setAccessSpecifierLoc(SourceLocation ASLoc)105 void setAccessSpecifierLoc(SourceLocation ASLoc) { setLocation(ASLoc); } 106 107 /// The location of the colon following the access specifier. getColonLoc()108 SourceLocation getColonLoc() const { return ColonLoc; } 109 110 /// Sets the location of the colon. setColonLoc(SourceLocation CLoc)111 void setColonLoc(SourceLocation CLoc) { ColonLoc = CLoc; } 112 getSourceRange()113 SourceRange getSourceRange() const override LLVM_READONLY { 114 return SourceRange(getAccessSpecifierLoc(), getColonLoc()); 115 } 116 Create(ASTContext & C,AccessSpecifier AS,DeclContext * DC,SourceLocation ASLoc,SourceLocation ColonLoc)117 static AccessSpecDecl *Create(ASTContext &C, AccessSpecifier AS, 118 DeclContext *DC, SourceLocation ASLoc, 119 SourceLocation ColonLoc) { 120 return new (C, DC) AccessSpecDecl(AS, DC, ASLoc, ColonLoc); 121 } 122 123 static AccessSpecDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 124 125 // Implement isa/cast/dyncast/etc. classof(const Decl * D)126 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)127 static bool classofKind(Kind K) { return K == AccessSpec; } 128 }; 129 130 /// Represents a base class of a C++ class. 131 /// 132 /// Each CXXBaseSpecifier represents a single, direct base class (or 133 /// struct) of a C++ class (or struct). It specifies the type of that 134 /// base class, whether it is a virtual or non-virtual base, and what 135 /// level of access (public, protected, private) is used for the 136 /// derivation. For example: 137 /// 138 /// \code 139 /// class A { }; 140 /// class B { }; 141 /// class C : public virtual A, protected B { }; 142 /// \endcode 143 /// 144 /// In this code, C will have two CXXBaseSpecifiers, one for "public 145 /// virtual A" and the other for "protected B". 146 class CXXBaseSpecifier { 147 /// The source code range that covers the full base 148 /// specifier, including the "virtual" (if present) and access 149 /// specifier (if present). 150 SourceRange Range; 151 152 /// The source location of the ellipsis, if this is a pack 153 /// expansion. 154 SourceLocation EllipsisLoc; 155 156 /// Whether this is a virtual base class or not. 157 LLVM_PREFERRED_TYPE(bool) 158 unsigned Virtual : 1; 159 160 /// Whether this is the base of a class (true) or of a struct (false). 161 /// 162 /// This determines the mapping from the access specifier as written in the 163 /// source code to the access specifier used for semantic analysis. 164 LLVM_PREFERRED_TYPE(bool) 165 unsigned BaseOfClass : 1; 166 167 /// Access specifier as written in the source code (may be AS_none). 168 /// 169 /// The actual type of data stored here is an AccessSpecifier, but we use 170 /// "unsigned" here to work around Microsoft ABI. 171 LLVM_PREFERRED_TYPE(AccessSpecifier) 172 unsigned Access : 2; 173 174 /// Whether the class contains a using declaration 175 /// to inherit the named class's constructors. 176 LLVM_PREFERRED_TYPE(bool) 177 unsigned InheritConstructors : 1; 178 179 /// The type of the base class. 180 /// 181 /// This will be a class or struct (or a typedef of such). The source code 182 /// range does not include the \c virtual or the access specifier. 183 TypeSourceInfo *BaseTypeInfo; 184 185 public: 186 CXXBaseSpecifier() = default; CXXBaseSpecifier(SourceRange R,bool V,bool BC,AccessSpecifier A,TypeSourceInfo * TInfo,SourceLocation EllipsisLoc)187 CXXBaseSpecifier(SourceRange R, bool V, bool BC, AccessSpecifier A, 188 TypeSourceInfo *TInfo, SourceLocation EllipsisLoc) 189 : Range(R), EllipsisLoc(EllipsisLoc), Virtual(V), BaseOfClass(BC), 190 Access(A), InheritConstructors(false), BaseTypeInfo(TInfo) {} 191 192 /// Retrieves the source range that contains the entire base specifier. getSourceRange()193 SourceRange getSourceRange() const LLVM_READONLY { return Range; } getBeginLoc()194 SourceLocation getBeginLoc() const LLVM_READONLY { return Range.getBegin(); } getEndLoc()195 SourceLocation getEndLoc() const LLVM_READONLY { return Range.getEnd(); } 196 197 /// Get the location at which the base class type was written. getBaseTypeLoc()198 SourceLocation getBaseTypeLoc() const LLVM_READONLY { 199 return BaseTypeInfo->getTypeLoc().getBeginLoc(); 200 } 201 202 /// Determines whether the base class is a virtual base class (or not). isVirtual()203 bool isVirtual() const { return Virtual; } 204 205 /// Determine whether this base class is a base of a class declared 206 /// with the 'class' keyword (vs. one declared with the 'struct' keyword). isBaseOfClass()207 bool isBaseOfClass() const { return BaseOfClass; } 208 209 /// Determine whether this base specifier is a pack expansion. isPackExpansion()210 bool isPackExpansion() const { return EllipsisLoc.isValid(); } 211 212 /// Determine whether this base class's constructors get inherited. getInheritConstructors()213 bool getInheritConstructors() const { return InheritConstructors; } 214 215 /// Set that this base class's constructors should be inherited. 216 void setInheritConstructors(bool Inherit = true) { 217 InheritConstructors = Inherit; 218 } 219 220 /// For a pack expansion, determine the location of the ellipsis. getEllipsisLoc()221 SourceLocation getEllipsisLoc() const { 222 return EllipsisLoc; 223 } 224 225 /// Returns the access specifier for this base specifier. 226 /// 227 /// This is the actual base specifier as used for semantic analysis, so 228 /// the result can never be AS_none. To retrieve the access specifier as 229 /// written in the source code, use getAccessSpecifierAsWritten(). getAccessSpecifier()230 AccessSpecifier getAccessSpecifier() const { 231 if ((AccessSpecifier)Access == AS_none) 232 return BaseOfClass? AS_private : AS_public; 233 else 234 return (AccessSpecifier)Access; 235 } 236 237 /// Retrieves the access specifier as written in the source code 238 /// (which may mean that no access specifier was explicitly written). 239 /// 240 /// Use getAccessSpecifier() to retrieve the access specifier for use in 241 /// semantic analysis. getAccessSpecifierAsWritten()242 AccessSpecifier getAccessSpecifierAsWritten() const { 243 return (AccessSpecifier)Access; 244 } 245 246 /// Retrieves the type of the base class. 247 /// 248 /// This type will always be an unqualified class type. getType()249 QualType getType() const { 250 return BaseTypeInfo->getType().getUnqualifiedType(); 251 } 252 253 /// Retrieves the type and source location of the base class. getTypeSourceInfo()254 TypeSourceInfo *getTypeSourceInfo() const { return BaseTypeInfo; } 255 }; 256 257 /// Represents a C++ struct/union/class. 258 class CXXRecordDecl : public RecordDecl { 259 friend class ASTDeclMerger; 260 friend class ASTDeclReader; 261 friend class ASTDeclWriter; 262 friend class ASTNodeImporter; 263 friend class ASTReader; 264 friend class ASTRecordWriter; 265 friend class ASTWriter; 266 friend class DeclContext; 267 friend class LambdaExpr; 268 friend class ODRDiagsEmitter; 269 270 friend void FunctionDecl::setIsPureVirtual(bool); 271 friend void TagDecl::startDefinition(); 272 273 /// Values used in DefinitionData fields to represent special members. 274 enum SpecialMemberFlags { 275 SMF_DefaultConstructor = 0x1, 276 SMF_CopyConstructor = 0x2, 277 SMF_MoveConstructor = 0x4, 278 SMF_CopyAssignment = 0x8, 279 SMF_MoveAssignment = 0x10, 280 SMF_Destructor = 0x20, 281 SMF_All = 0x3f 282 }; 283 284 public: 285 enum LambdaDependencyKind { 286 LDK_Unknown = 0, 287 LDK_AlwaysDependent, 288 LDK_NeverDependent, 289 }; 290 291 private: 292 struct DefinitionData { 293 #define FIELD(Name, Width, Merge) \ 294 unsigned Name : Width; 295 #include "CXXRecordDeclDefinitionBits.def" 296 297 /// Whether this class describes a C++ lambda. 298 LLVM_PREFERRED_TYPE(bool) 299 unsigned IsLambda : 1; 300 301 /// Whether we are currently parsing base specifiers. 302 LLVM_PREFERRED_TYPE(bool) 303 unsigned IsParsingBaseSpecifiers : 1; 304 305 /// True when visible conversion functions are already computed 306 /// and are available. 307 LLVM_PREFERRED_TYPE(bool) 308 unsigned ComputedVisibleConversions : 1; 309 310 LLVM_PREFERRED_TYPE(bool) 311 unsigned HasODRHash : 1; 312 313 /// A hash of parts of the class to help in ODR checking. 314 unsigned ODRHash = 0; 315 316 /// The number of base class specifiers in Bases. 317 unsigned NumBases = 0; 318 319 /// The number of virtual base class specifiers in VBases. 320 unsigned NumVBases = 0; 321 322 /// Base classes of this class. 323 /// 324 /// FIXME: This is wasted space for a union. 325 LazyCXXBaseSpecifiersPtr Bases; 326 327 /// direct and indirect virtual base classes of this class. 328 LazyCXXBaseSpecifiersPtr VBases; 329 330 /// The conversion functions of this C++ class (but not its 331 /// inherited conversion functions). 332 /// 333 /// Each of the entries in this overload set is a CXXConversionDecl. 334 LazyASTUnresolvedSet Conversions; 335 336 /// The conversion functions of this C++ class and all those 337 /// inherited conversion functions that are visible in this class. 338 /// 339 /// Each of the entries in this overload set is a CXXConversionDecl or a 340 /// FunctionTemplateDecl. 341 LazyASTUnresolvedSet VisibleConversions; 342 343 /// The declaration which defines this record. 344 CXXRecordDecl *Definition; 345 346 /// The first friend declaration in this class, or null if there 347 /// aren't any. 348 /// 349 /// This is actually currently stored in reverse order. 350 LazyDeclPtr FirstFriend; 351 352 DefinitionData(CXXRecordDecl *D); 353 354 /// Retrieve the set of direct base classes. getBasesDefinitionData355 CXXBaseSpecifier *getBases() const { 356 if (!Bases.isOffset()) 357 return Bases.get(nullptr); 358 return getBasesSlowCase(); 359 } 360 361 /// Retrieve the set of virtual base classes. getVBasesDefinitionData362 CXXBaseSpecifier *getVBases() const { 363 if (!VBases.isOffset()) 364 return VBases.get(nullptr); 365 return getVBasesSlowCase(); 366 } 367 basesDefinitionData368 ArrayRef<CXXBaseSpecifier> bases() const { return {getBases(), NumBases}; } 369 vbasesDefinitionData370 ArrayRef<CXXBaseSpecifier> vbases() const { 371 return {getVBases(), NumVBases}; 372 } 373 374 private: 375 CXXBaseSpecifier *getBasesSlowCase() const; 376 CXXBaseSpecifier *getVBasesSlowCase() const; 377 }; 378 379 struct DefinitionData *DefinitionData; 380 381 /// Describes a C++ closure type (generated by a lambda expression). 382 struct LambdaDefinitionData : public DefinitionData { 383 using Capture = LambdaCapture; 384 385 /// Whether this lambda is known to be dependent, even if its 386 /// context isn't dependent. 387 /// 388 /// A lambda with a non-dependent context can be dependent if it occurs 389 /// within the default argument of a function template, because the 390 /// lambda will have been created with the enclosing context as its 391 /// declaration context, rather than function. This is an unfortunate 392 /// artifact of having to parse the default arguments before. 393 LLVM_PREFERRED_TYPE(LambdaDependencyKind) 394 unsigned DependencyKind : 2; 395 396 /// Whether this lambda is a generic lambda. 397 LLVM_PREFERRED_TYPE(bool) 398 unsigned IsGenericLambda : 1; 399 400 /// The Default Capture. 401 LLVM_PREFERRED_TYPE(LambdaCaptureDefault) 402 unsigned CaptureDefault : 2; 403 404 /// The number of captures in this lambda is limited 2^NumCaptures. 405 unsigned NumCaptures : 15; 406 407 /// The number of explicit captures in this lambda. 408 unsigned NumExplicitCaptures : 12; 409 410 /// Has known `internal` linkage. 411 LLVM_PREFERRED_TYPE(bool) 412 unsigned HasKnownInternalLinkage : 1; 413 414 /// The number used to indicate this lambda expression for name 415 /// mangling in the Itanium C++ ABI. 416 unsigned ManglingNumber : 31; 417 418 /// The index of this lambda within its context declaration. This is not in 419 /// general the same as the mangling number. 420 unsigned IndexInContext; 421 422 /// The declaration that provides context for this lambda, if the 423 /// actual DeclContext does not suffice. This is used for lambdas that 424 /// occur within default arguments of function parameters within the class 425 /// or within a data member initializer. 426 LazyDeclPtr ContextDecl; 427 428 /// The lists of captures, both explicit and implicit, for this 429 /// lambda. One list is provided for each merged copy of the lambda. 430 /// The first list corresponds to the canonical definition. 431 /// The destructor is registered by AddCaptureList when necessary. 432 llvm::TinyPtrVector<Capture*> Captures; 433 434 /// The type of the call method. 435 TypeSourceInfo *MethodTyInfo; 436 LambdaDefinitionDataLambdaDefinitionData437 LambdaDefinitionData(CXXRecordDecl *D, TypeSourceInfo *Info, unsigned DK, 438 bool IsGeneric, LambdaCaptureDefault CaptureDefault) 439 : DefinitionData(D), DependencyKind(DK), IsGenericLambda(IsGeneric), 440 CaptureDefault(CaptureDefault), NumCaptures(0), 441 NumExplicitCaptures(0), HasKnownInternalLinkage(0), ManglingNumber(0), 442 IndexInContext(0), MethodTyInfo(Info) { 443 IsLambda = true; 444 445 // C++1z [expr.prim.lambda]p4: 446 // This class type is not an aggregate type. 447 Aggregate = false; 448 PlainOldData = false; 449 } 450 451 // Add a list of captures. 452 void AddCaptureList(ASTContext &Ctx, Capture *CaptureList); 453 }; 454 dataPtr()455 struct DefinitionData *dataPtr() const { 456 // Complete the redecl chain (if necessary). 457 getMostRecentDecl(); 458 return DefinitionData; 459 } 460 data()461 struct DefinitionData &data() const { 462 auto *DD = dataPtr(); 463 assert(DD && "queried property of class with no definition"); 464 return *DD; 465 } 466 getLambdaData()467 struct LambdaDefinitionData &getLambdaData() const { 468 // No update required: a merged definition cannot change any lambda 469 // properties. 470 auto *DD = DefinitionData; 471 assert(DD && DD->IsLambda && "queried lambda property of non-lambda class"); 472 return static_cast<LambdaDefinitionData&>(*DD); 473 } 474 475 /// The template or declaration that this declaration 476 /// describes or was instantiated from, respectively. 477 /// 478 /// For non-templates, this value will be null. For record 479 /// declarations that describe a class template, this will be a 480 /// pointer to a ClassTemplateDecl. For member 481 /// classes of class template specializations, this will be the 482 /// MemberSpecializationInfo referring to the member class that was 483 /// instantiated or specialized. 484 llvm::PointerUnion<ClassTemplateDecl *, MemberSpecializationInfo *> 485 TemplateOrInstantiation; 486 487 /// Called from setBases and addedMember to notify the class that a 488 /// direct or virtual base class or a member of class type has been added. 489 void addedClassSubobject(CXXRecordDecl *Base); 490 491 /// Notify the class that member has been added. 492 /// 493 /// This routine helps maintain information about the class based on which 494 /// members have been added. It will be invoked by DeclContext::addDecl() 495 /// whenever a member is added to this record. 496 void addedMember(Decl *D); 497 498 void markedVirtualFunctionPure(); 499 500 /// Get the head of our list of friend declarations, possibly 501 /// deserializing the friends from an external AST source. 502 FriendDecl *getFirstFriend() const; 503 504 /// Determine whether this class has an empty base class subobject of type X 505 /// or of one of the types that might be at offset 0 within X (per the C++ 506 /// "standard layout" rules). 507 bool hasSubobjectAtOffsetZeroOfEmptyBaseType(ASTContext &Ctx, 508 const CXXRecordDecl *X); 509 510 protected: 511 CXXRecordDecl(Kind K, TagKind TK, const ASTContext &C, DeclContext *DC, 512 SourceLocation StartLoc, SourceLocation IdLoc, 513 IdentifierInfo *Id, CXXRecordDecl *PrevDecl); 514 515 public: 516 /// Iterator that traverses the base classes of a class. 517 using base_class_iterator = CXXBaseSpecifier *; 518 519 /// Iterator that traverses the base classes of a class. 520 using base_class_const_iterator = const CXXBaseSpecifier *; 521 getCanonicalDecl()522 CXXRecordDecl *getCanonicalDecl() override { 523 return cast<CXXRecordDecl>(RecordDecl::getCanonicalDecl()); 524 } 525 getCanonicalDecl()526 const CXXRecordDecl *getCanonicalDecl() const { 527 return const_cast<CXXRecordDecl*>(this)->getCanonicalDecl(); 528 } 529 getPreviousDecl()530 CXXRecordDecl *getPreviousDecl() { 531 return cast_or_null<CXXRecordDecl>( 532 static_cast<RecordDecl *>(this)->getPreviousDecl()); 533 } 534 getPreviousDecl()535 const CXXRecordDecl *getPreviousDecl() const { 536 return const_cast<CXXRecordDecl*>(this)->getPreviousDecl(); 537 } 538 getMostRecentDecl()539 CXXRecordDecl *getMostRecentDecl() { 540 return cast<CXXRecordDecl>( 541 static_cast<RecordDecl *>(this)->getMostRecentDecl()); 542 } 543 getMostRecentDecl()544 const CXXRecordDecl *getMostRecentDecl() const { 545 return const_cast<CXXRecordDecl*>(this)->getMostRecentDecl(); 546 } 547 getMostRecentNonInjectedDecl()548 CXXRecordDecl *getMostRecentNonInjectedDecl() { 549 CXXRecordDecl *Recent = getMostRecentDecl(); 550 while (Recent->isInjectedClassName()) { 551 // FIXME: Does injected class name need to be in the redeclarations chain? 552 assert(Recent->getPreviousDecl()); 553 Recent = Recent->getPreviousDecl(); 554 } 555 return Recent; 556 } 557 getMostRecentNonInjectedDecl()558 const CXXRecordDecl *getMostRecentNonInjectedDecl() const { 559 return const_cast<CXXRecordDecl*>(this)->getMostRecentNonInjectedDecl(); 560 } 561 getDefinition()562 CXXRecordDecl *getDefinition() const { 563 // We only need an update if we don't already know which 564 // declaration is the definition. 565 auto *DD = DefinitionData ? DefinitionData : dataPtr(); 566 return DD ? DD->Definition : nullptr; 567 } 568 hasDefinition()569 bool hasDefinition() const { return DefinitionData || dataPtr(); } 570 571 static CXXRecordDecl *Create(const ASTContext &C, TagKind TK, DeclContext *DC, 572 SourceLocation StartLoc, SourceLocation IdLoc, 573 IdentifierInfo *Id, 574 CXXRecordDecl *PrevDecl = nullptr, 575 bool DelayTypeCreation = false); 576 static CXXRecordDecl *CreateLambda(const ASTContext &C, DeclContext *DC, 577 TypeSourceInfo *Info, SourceLocation Loc, 578 unsigned DependencyKind, bool IsGeneric, 579 LambdaCaptureDefault CaptureDefault); 580 static CXXRecordDecl *CreateDeserialized(const ASTContext &C, 581 GlobalDeclID ID); 582 isDynamicClass()583 bool isDynamicClass() const { 584 return data().Polymorphic || data().NumVBases != 0; 585 } 586 587 /// @returns true if class is dynamic or might be dynamic because the 588 /// definition is incomplete of dependent. mayBeDynamicClass()589 bool mayBeDynamicClass() const { 590 return !hasDefinition() || isDynamicClass() || hasAnyDependentBases(); 591 } 592 593 /// @returns true if class is non dynamic or might be non dynamic because the 594 /// definition is incomplete of dependent. mayBeNonDynamicClass()595 bool mayBeNonDynamicClass() const { 596 return !hasDefinition() || !isDynamicClass() || hasAnyDependentBases(); 597 } 598 setIsParsingBaseSpecifiers()599 void setIsParsingBaseSpecifiers() { data().IsParsingBaseSpecifiers = true; } 600 isParsingBaseSpecifiers()601 bool isParsingBaseSpecifiers() const { 602 return data().IsParsingBaseSpecifiers; 603 } 604 605 unsigned getODRHash() const; 606 607 /// Sets the base classes of this struct or class. 608 void setBases(CXXBaseSpecifier const * const *Bases, unsigned NumBases); 609 610 /// Retrieves the number of base classes of this class. getNumBases()611 unsigned getNumBases() const { return data().NumBases; } 612 613 using base_class_range = llvm::iterator_range<base_class_iterator>; 614 using base_class_const_range = 615 llvm::iterator_range<base_class_const_iterator>; 616 bases()617 base_class_range bases() { 618 return base_class_range(bases_begin(), bases_end()); 619 } bases()620 base_class_const_range bases() const { 621 return base_class_const_range(bases_begin(), bases_end()); 622 } 623 bases_begin()624 base_class_iterator bases_begin() { return data().getBases(); } bases_begin()625 base_class_const_iterator bases_begin() const { return data().getBases(); } bases_end()626 base_class_iterator bases_end() { return bases_begin() + data().NumBases; } bases_end()627 base_class_const_iterator bases_end() const { 628 return bases_begin() + data().NumBases; 629 } 630 631 /// Retrieves the number of virtual base classes of this class. getNumVBases()632 unsigned getNumVBases() const { return data().NumVBases; } 633 vbases()634 base_class_range vbases() { 635 return base_class_range(vbases_begin(), vbases_end()); 636 } vbases()637 base_class_const_range vbases() const { 638 return base_class_const_range(vbases_begin(), vbases_end()); 639 } 640 vbases_begin()641 base_class_iterator vbases_begin() { return data().getVBases(); } vbases_begin()642 base_class_const_iterator vbases_begin() const { return data().getVBases(); } vbases_end()643 base_class_iterator vbases_end() { return vbases_begin() + data().NumVBases; } vbases_end()644 base_class_const_iterator vbases_end() const { 645 return vbases_begin() + data().NumVBases; 646 } 647 648 /// Determine whether this class has any dependent base classes which 649 /// are not the current instantiation. 650 bool hasAnyDependentBases() const; 651 652 /// Iterator access to method members. The method iterator visits 653 /// all method members of the class, including non-instance methods, 654 /// special methods, etc. 655 using method_iterator = specific_decl_iterator<CXXMethodDecl>; 656 using method_range = 657 llvm::iterator_range<specific_decl_iterator<CXXMethodDecl>>; 658 methods()659 method_range methods() const { 660 return method_range(method_begin(), method_end()); 661 } 662 663 /// Method begin iterator. Iterates in the order the methods 664 /// were declared. method_begin()665 method_iterator method_begin() const { 666 return method_iterator(decls_begin()); 667 } 668 669 /// Method past-the-end iterator. method_end()670 method_iterator method_end() const { 671 return method_iterator(decls_end()); 672 } 673 674 /// Iterator access to constructor members. 675 using ctor_iterator = specific_decl_iterator<CXXConstructorDecl>; 676 using ctor_range = 677 llvm::iterator_range<specific_decl_iterator<CXXConstructorDecl>>; 678 ctors()679 ctor_range ctors() const { return ctor_range(ctor_begin(), ctor_end()); } 680 ctor_begin()681 ctor_iterator ctor_begin() const { 682 return ctor_iterator(decls_begin()); 683 } 684 ctor_end()685 ctor_iterator ctor_end() const { 686 return ctor_iterator(decls_end()); 687 } 688 689 /// An iterator over friend declarations. All of these are defined 690 /// in DeclFriend.h. 691 class friend_iterator; 692 using friend_range = llvm::iterator_range<friend_iterator>; 693 694 friend_range friends() const; 695 friend_iterator friend_begin() const; 696 friend_iterator friend_end() const; 697 void pushFriendDecl(FriendDecl *FD); 698 699 /// Determines whether this record has any friends. hasFriends()700 bool hasFriends() const { 701 return data().FirstFriend.isValid(); 702 } 703 704 /// \c true if a defaulted copy constructor for this class would be 705 /// deleted. defaultedCopyConstructorIsDeleted()706 bool defaultedCopyConstructorIsDeleted() const { 707 assert((!needsOverloadResolutionForCopyConstructor() || 708 (data().DeclaredSpecialMembers & SMF_CopyConstructor)) && 709 "this property has not yet been computed by Sema"); 710 return data().DefaultedCopyConstructorIsDeleted; 711 } 712 713 /// \c true if a defaulted move constructor for this class would be 714 /// deleted. defaultedMoveConstructorIsDeleted()715 bool defaultedMoveConstructorIsDeleted() const { 716 assert((!needsOverloadResolutionForMoveConstructor() || 717 (data().DeclaredSpecialMembers & SMF_MoveConstructor)) && 718 "this property has not yet been computed by Sema"); 719 return data().DefaultedMoveConstructorIsDeleted; 720 } 721 722 /// \c true if a defaulted destructor for this class would be deleted. defaultedDestructorIsDeleted()723 bool defaultedDestructorIsDeleted() const { 724 assert((!needsOverloadResolutionForDestructor() || 725 (data().DeclaredSpecialMembers & SMF_Destructor)) && 726 "this property has not yet been computed by Sema"); 727 return data().DefaultedDestructorIsDeleted; 728 } 729 730 /// \c true if we know for sure that this class has a single, 731 /// accessible, unambiguous copy constructor that is not deleted. hasSimpleCopyConstructor()732 bool hasSimpleCopyConstructor() const { 733 return !hasUserDeclaredCopyConstructor() && 734 !data().DefaultedCopyConstructorIsDeleted; 735 } 736 737 /// \c true if we know for sure that this class has a single, 738 /// accessible, unambiguous move constructor that is not deleted. hasSimpleMoveConstructor()739 bool hasSimpleMoveConstructor() const { 740 return !hasUserDeclaredMoveConstructor() && hasMoveConstructor() && 741 !data().DefaultedMoveConstructorIsDeleted; 742 } 743 744 /// \c true if we know for sure that this class has a single, 745 /// accessible, unambiguous copy assignment operator that is not deleted. hasSimpleCopyAssignment()746 bool hasSimpleCopyAssignment() const { 747 return !hasUserDeclaredCopyAssignment() && 748 !data().DefaultedCopyAssignmentIsDeleted; 749 } 750 751 /// \c true if we know for sure that this class has a single, 752 /// accessible, unambiguous move assignment operator that is not deleted. hasSimpleMoveAssignment()753 bool hasSimpleMoveAssignment() const { 754 return !hasUserDeclaredMoveAssignment() && hasMoveAssignment() && 755 !data().DefaultedMoveAssignmentIsDeleted; 756 } 757 758 /// \c true if we know for sure that this class has an accessible 759 /// destructor that is not deleted. hasSimpleDestructor()760 bool hasSimpleDestructor() const { 761 return !hasUserDeclaredDestructor() && 762 !data().DefaultedDestructorIsDeleted; 763 } 764 765 /// Determine whether this class has any default constructors. hasDefaultConstructor()766 bool hasDefaultConstructor() const { 767 return (data().DeclaredSpecialMembers & SMF_DefaultConstructor) || 768 needsImplicitDefaultConstructor(); 769 } 770 771 /// Determine if we need to declare a default constructor for 772 /// this class. 773 /// 774 /// This value is used for lazy creation of default constructors. needsImplicitDefaultConstructor()775 bool needsImplicitDefaultConstructor() const { 776 return (!data().UserDeclaredConstructor && 777 !(data().DeclaredSpecialMembers & SMF_DefaultConstructor) && 778 (!isLambda() || lambdaIsDefaultConstructibleAndAssignable())) || 779 // FIXME: Proposed fix to core wording issue: if a class inherits 780 // a default constructor and doesn't explicitly declare one, one 781 // is declared implicitly. 782 (data().HasInheritedDefaultConstructor && 783 !(data().DeclaredSpecialMembers & SMF_DefaultConstructor)); 784 } 785 786 /// Determine whether this class has any user-declared constructors. 787 /// 788 /// When true, a default constructor will not be implicitly declared. hasUserDeclaredConstructor()789 bool hasUserDeclaredConstructor() const { 790 return data().UserDeclaredConstructor; 791 } 792 793 /// Whether this class has a user-provided default constructor 794 /// per C++11. hasUserProvidedDefaultConstructor()795 bool hasUserProvidedDefaultConstructor() const { 796 return data().UserProvidedDefaultConstructor; 797 } 798 799 /// Determine whether this class has a user-declared copy constructor. 800 /// 801 /// When false, a copy constructor will be implicitly declared. hasUserDeclaredCopyConstructor()802 bool hasUserDeclaredCopyConstructor() const { 803 return data().UserDeclaredSpecialMembers & SMF_CopyConstructor; 804 } 805 806 /// Determine whether this class needs an implicit copy 807 /// constructor to be lazily declared. needsImplicitCopyConstructor()808 bool needsImplicitCopyConstructor() const { 809 return !(data().DeclaredSpecialMembers & SMF_CopyConstructor); 810 } 811 812 /// Determine whether we need to eagerly declare a defaulted copy 813 /// constructor for this class. needsOverloadResolutionForCopyConstructor()814 bool needsOverloadResolutionForCopyConstructor() const { 815 // C++17 [class.copy.ctor]p6: 816 // If the class definition declares a move constructor or move assignment 817 // operator, the implicitly declared copy constructor is defined as 818 // deleted. 819 // In MSVC mode, sometimes a declared move assignment does not delete an 820 // implicit copy constructor, so defer this choice to Sema. 821 if (data().UserDeclaredSpecialMembers & 822 (SMF_MoveConstructor | SMF_MoveAssignment)) 823 return true; 824 return data().NeedOverloadResolutionForCopyConstructor; 825 } 826 827 /// Determine whether an implicit copy constructor for this type 828 /// would have a parameter with a const-qualified reference type. implicitCopyConstructorHasConstParam()829 bool implicitCopyConstructorHasConstParam() const { 830 return data().ImplicitCopyConstructorCanHaveConstParamForNonVBase && 831 (isAbstract() || 832 data().ImplicitCopyConstructorCanHaveConstParamForVBase); 833 } 834 835 /// Determine whether this class has a copy constructor with 836 /// a parameter type which is a reference to a const-qualified type. hasCopyConstructorWithConstParam()837 bool hasCopyConstructorWithConstParam() const { 838 return data().HasDeclaredCopyConstructorWithConstParam || 839 (needsImplicitCopyConstructor() && 840 implicitCopyConstructorHasConstParam()); 841 } 842 843 /// Whether this class has a user-declared move constructor or 844 /// assignment operator. 845 /// 846 /// When false, a move constructor and assignment operator may be 847 /// implicitly declared. hasUserDeclaredMoveOperation()848 bool hasUserDeclaredMoveOperation() const { 849 return data().UserDeclaredSpecialMembers & 850 (SMF_MoveConstructor | SMF_MoveAssignment); 851 } 852 853 /// Determine whether this class has had a move constructor 854 /// declared by the user. hasUserDeclaredMoveConstructor()855 bool hasUserDeclaredMoveConstructor() const { 856 return data().UserDeclaredSpecialMembers & SMF_MoveConstructor; 857 } 858 859 /// Determine whether this class has a move constructor. hasMoveConstructor()860 bool hasMoveConstructor() const { 861 return (data().DeclaredSpecialMembers & SMF_MoveConstructor) || 862 needsImplicitMoveConstructor(); 863 } 864 865 /// Set that we attempted to declare an implicit copy 866 /// constructor, but overload resolution failed so we deleted it. setImplicitCopyConstructorIsDeleted()867 void setImplicitCopyConstructorIsDeleted() { 868 assert((data().DefaultedCopyConstructorIsDeleted || 869 needsOverloadResolutionForCopyConstructor()) && 870 "Copy constructor should not be deleted"); 871 data().DefaultedCopyConstructorIsDeleted = true; 872 } 873 874 /// Set that we attempted to declare an implicit move 875 /// constructor, but overload resolution failed so we deleted it. setImplicitMoveConstructorIsDeleted()876 void setImplicitMoveConstructorIsDeleted() { 877 assert((data().DefaultedMoveConstructorIsDeleted || 878 needsOverloadResolutionForMoveConstructor()) && 879 "move constructor should not be deleted"); 880 data().DefaultedMoveConstructorIsDeleted = true; 881 } 882 883 /// Set that we attempted to declare an implicit destructor, 884 /// but overload resolution failed so we deleted it. setImplicitDestructorIsDeleted()885 void setImplicitDestructorIsDeleted() { 886 assert((data().DefaultedDestructorIsDeleted || 887 needsOverloadResolutionForDestructor()) && 888 "destructor should not be deleted"); 889 data().DefaultedDestructorIsDeleted = true; 890 // C++23 [dcl.constexpr]p3.2: 891 // if the function is a constructor or destructor, its class does not have 892 // any virtual base classes. 893 // C++20 [dcl.constexpr]p5: 894 // The definition of a constexpr destructor whose function-body is 895 // not = delete shall additionally satisfy... 896 data().DefaultedDestructorIsConstexpr = data().NumVBases == 0; 897 } 898 899 /// Determine whether this class should get an implicit move 900 /// constructor or if any existing special member function inhibits this. needsImplicitMoveConstructor()901 bool needsImplicitMoveConstructor() const { 902 return !(data().DeclaredSpecialMembers & SMF_MoveConstructor) && 903 !hasUserDeclaredCopyConstructor() && 904 !hasUserDeclaredCopyAssignment() && 905 !hasUserDeclaredMoveAssignment() && 906 !hasUserDeclaredDestructor(); 907 } 908 909 /// Determine whether we need to eagerly declare a defaulted move 910 /// constructor for this class. needsOverloadResolutionForMoveConstructor()911 bool needsOverloadResolutionForMoveConstructor() const { 912 return data().NeedOverloadResolutionForMoveConstructor; 913 } 914 915 /// Determine whether this class has a user-declared copy assignment 916 /// operator. 917 /// 918 /// When false, a copy assignment operator will be implicitly declared. hasUserDeclaredCopyAssignment()919 bool hasUserDeclaredCopyAssignment() const { 920 return data().UserDeclaredSpecialMembers & SMF_CopyAssignment; 921 } 922 923 /// Set that we attempted to declare an implicit copy assignment 924 /// operator, but overload resolution failed so we deleted it. setImplicitCopyAssignmentIsDeleted()925 void setImplicitCopyAssignmentIsDeleted() { 926 assert((data().DefaultedCopyAssignmentIsDeleted || 927 needsOverloadResolutionForCopyAssignment()) && 928 "copy assignment should not be deleted"); 929 data().DefaultedCopyAssignmentIsDeleted = true; 930 } 931 932 /// Determine whether this class needs an implicit copy 933 /// assignment operator to be lazily declared. needsImplicitCopyAssignment()934 bool needsImplicitCopyAssignment() const { 935 return !(data().DeclaredSpecialMembers & SMF_CopyAssignment); 936 } 937 938 /// Determine whether we need to eagerly declare a defaulted copy 939 /// assignment operator for this class. needsOverloadResolutionForCopyAssignment()940 bool needsOverloadResolutionForCopyAssignment() const { 941 // C++20 [class.copy.assign]p2: 942 // If the class definition declares a move constructor or move assignment 943 // operator, the implicitly declared copy assignment operator is defined 944 // as deleted. 945 // In MSVC mode, sometimes a declared move constructor does not delete an 946 // implicit copy assignment, so defer this choice to Sema. 947 if (data().UserDeclaredSpecialMembers & 948 (SMF_MoveConstructor | SMF_MoveAssignment)) 949 return true; 950 return data().NeedOverloadResolutionForCopyAssignment; 951 } 952 953 /// Determine whether an implicit copy assignment operator for this 954 /// type would have a parameter with a const-qualified reference type. implicitCopyAssignmentHasConstParam()955 bool implicitCopyAssignmentHasConstParam() const { 956 return data().ImplicitCopyAssignmentHasConstParam; 957 } 958 959 /// Determine whether this class has a copy assignment operator with 960 /// a parameter type which is a reference to a const-qualified type or is not 961 /// a reference. hasCopyAssignmentWithConstParam()962 bool hasCopyAssignmentWithConstParam() const { 963 return data().HasDeclaredCopyAssignmentWithConstParam || 964 (needsImplicitCopyAssignment() && 965 implicitCopyAssignmentHasConstParam()); 966 } 967 968 /// Determine whether this class has had a move assignment 969 /// declared by the user. hasUserDeclaredMoveAssignment()970 bool hasUserDeclaredMoveAssignment() const { 971 return data().UserDeclaredSpecialMembers & SMF_MoveAssignment; 972 } 973 974 /// Determine whether this class has a move assignment operator. hasMoveAssignment()975 bool hasMoveAssignment() const { 976 return (data().DeclaredSpecialMembers & SMF_MoveAssignment) || 977 needsImplicitMoveAssignment(); 978 } 979 980 /// Set that we attempted to declare an implicit move assignment 981 /// operator, but overload resolution failed so we deleted it. setImplicitMoveAssignmentIsDeleted()982 void setImplicitMoveAssignmentIsDeleted() { 983 assert((data().DefaultedMoveAssignmentIsDeleted || 984 needsOverloadResolutionForMoveAssignment()) && 985 "move assignment should not be deleted"); 986 data().DefaultedMoveAssignmentIsDeleted = true; 987 } 988 989 /// Determine whether this class should get an implicit move 990 /// assignment operator or if any existing special member function inhibits 991 /// this. needsImplicitMoveAssignment()992 bool needsImplicitMoveAssignment() const { 993 return !(data().DeclaredSpecialMembers & SMF_MoveAssignment) && 994 !hasUserDeclaredCopyConstructor() && 995 !hasUserDeclaredCopyAssignment() && 996 !hasUserDeclaredMoveConstructor() && 997 !hasUserDeclaredDestructor() && 998 (!isLambda() || lambdaIsDefaultConstructibleAndAssignable()); 999 } 1000 1001 /// Determine whether we need to eagerly declare a move assignment 1002 /// operator for this class. needsOverloadResolutionForMoveAssignment()1003 bool needsOverloadResolutionForMoveAssignment() const { 1004 return data().NeedOverloadResolutionForMoveAssignment; 1005 } 1006 1007 /// Determine whether this class has a user-declared destructor. 1008 /// 1009 /// When false, a destructor will be implicitly declared. hasUserDeclaredDestructor()1010 bool hasUserDeclaredDestructor() const { 1011 return data().UserDeclaredSpecialMembers & SMF_Destructor; 1012 } 1013 1014 /// Determine whether this class needs an implicit destructor to 1015 /// be lazily declared. needsImplicitDestructor()1016 bool needsImplicitDestructor() const { 1017 return !(data().DeclaredSpecialMembers & SMF_Destructor); 1018 } 1019 1020 /// Determine whether we need to eagerly declare a destructor for this 1021 /// class. needsOverloadResolutionForDestructor()1022 bool needsOverloadResolutionForDestructor() const { 1023 return data().NeedOverloadResolutionForDestructor; 1024 } 1025 1026 /// Determine whether this class describes a lambda function object. isLambda()1027 bool isLambda() const { 1028 // An update record can't turn a non-lambda into a lambda. 1029 auto *DD = DefinitionData; 1030 return DD && DD->IsLambda; 1031 } 1032 1033 /// Determine whether this class describes a generic 1034 /// lambda function object (i.e. function call operator is 1035 /// a template). 1036 bool isGenericLambda() const; 1037 1038 /// Determine whether this lambda should have an implicit default constructor 1039 /// and copy and move assignment operators. 1040 bool lambdaIsDefaultConstructibleAndAssignable() const; 1041 1042 /// Retrieve the lambda call operator of the closure type 1043 /// if this is a closure type. 1044 CXXMethodDecl *getLambdaCallOperator() const; 1045 1046 /// Retrieve the dependent lambda call operator of the closure type 1047 /// if this is a templated closure type. 1048 FunctionTemplateDecl *getDependentLambdaCallOperator() const; 1049 1050 /// Retrieve the lambda static invoker, the address of which 1051 /// is returned by the conversion operator, and the body of which 1052 /// is forwarded to the lambda call operator. The version that does not 1053 /// take a calling convention uses the 'default' calling convention for free 1054 /// functions if the Lambda's calling convention was not modified via 1055 /// attribute. Otherwise, it will return the calling convention specified for 1056 /// the lambda. 1057 CXXMethodDecl *getLambdaStaticInvoker() const; 1058 CXXMethodDecl *getLambdaStaticInvoker(CallingConv CC) const; 1059 1060 /// Retrieve the generic lambda's template parameter list. 1061 /// Returns null if the class does not represent a lambda or a generic 1062 /// lambda. 1063 TemplateParameterList *getGenericLambdaTemplateParameterList() const; 1064 1065 /// Retrieve the lambda template parameters that were specified explicitly. 1066 ArrayRef<NamedDecl *> getLambdaExplicitTemplateParameters() const; 1067 getLambdaCaptureDefault()1068 LambdaCaptureDefault getLambdaCaptureDefault() const { 1069 assert(isLambda()); 1070 return static_cast<LambdaCaptureDefault>(getLambdaData().CaptureDefault); 1071 } 1072 isCapturelessLambda()1073 bool isCapturelessLambda() const { 1074 if (!isLambda()) 1075 return false; 1076 return getLambdaCaptureDefault() == LCD_None && capture_size() == 0; 1077 } 1078 1079 /// Set the captures for this lambda closure type. 1080 void setCaptures(ASTContext &Context, ArrayRef<LambdaCapture> Captures); 1081 1082 /// For a closure type, retrieve the mapping from captured 1083 /// variables and \c this to the non-static data members that store the 1084 /// values or references of the captures. 1085 /// 1086 /// \param Captures Will be populated with the mapping from captured 1087 /// variables to the corresponding fields. 1088 /// 1089 /// \param ThisCapture Will be set to the field declaration for the 1090 /// \c this capture. 1091 /// 1092 /// \note No entries will be added for init-captures, as they do not capture 1093 /// variables. 1094 /// 1095 /// \note If multiple versions of the lambda are merged together, they may 1096 /// have different variable declarations corresponding to the same capture. 1097 /// In that case, all of those variable declarations will be added to the 1098 /// Captures list, so it may have more than one variable listed per field. 1099 void 1100 getCaptureFields(llvm::DenseMap<const ValueDecl *, FieldDecl *> &Captures, 1101 FieldDecl *&ThisCapture) const; 1102 1103 using capture_const_iterator = const LambdaCapture *; 1104 using capture_const_range = llvm::iterator_range<capture_const_iterator>; 1105 captures()1106 capture_const_range captures() const { 1107 return capture_const_range(captures_begin(), captures_end()); 1108 } 1109 captures_begin()1110 capture_const_iterator captures_begin() const { 1111 if (!isLambda()) return nullptr; 1112 LambdaDefinitionData &LambdaData = getLambdaData(); 1113 return LambdaData.Captures.empty() ? nullptr : LambdaData.Captures.front(); 1114 } 1115 captures_end()1116 capture_const_iterator captures_end() const { 1117 return isLambda() ? captures_begin() + getLambdaData().NumCaptures 1118 : nullptr; 1119 } 1120 capture_size()1121 unsigned capture_size() const { return getLambdaData().NumCaptures; } 1122 getCapture(unsigned I)1123 const LambdaCapture *getCapture(unsigned I) const { 1124 assert(isLambda() && I < capture_size() && "invalid index for capture"); 1125 return captures_begin() + I; 1126 } 1127 1128 using conversion_iterator = UnresolvedSetIterator; 1129 conversion_begin()1130 conversion_iterator conversion_begin() const { 1131 return data().Conversions.get(getASTContext()).begin(); 1132 } 1133 conversion_end()1134 conversion_iterator conversion_end() const { 1135 return data().Conversions.get(getASTContext()).end(); 1136 } 1137 1138 /// Removes a conversion function from this class. The conversion 1139 /// function must currently be a member of this class. Furthermore, 1140 /// this class must currently be in the process of being defined. 1141 void removeConversion(const NamedDecl *Old); 1142 1143 /// Get all conversion functions visible in current class, 1144 /// including conversion function templates. 1145 llvm::iterator_range<conversion_iterator> 1146 getVisibleConversionFunctions() const; 1147 1148 /// Determine whether this class is an aggregate (C++ [dcl.init.aggr]), 1149 /// which is a class with no user-declared constructors, no private 1150 /// or protected non-static data members, no base classes, and no virtual 1151 /// functions (C++ [dcl.init.aggr]p1). isAggregate()1152 bool isAggregate() const { return data().Aggregate; } 1153 1154 /// Whether this class has any in-class initializers 1155 /// for non-static data members (including those in anonymous unions or 1156 /// structs). hasInClassInitializer()1157 bool hasInClassInitializer() const { return data().HasInClassInitializer; } 1158 1159 /// Whether this class or any of its subobjects has any members of 1160 /// reference type which would make value-initialization ill-formed. 1161 /// 1162 /// Per C++03 [dcl.init]p5: 1163 /// - if T is a non-union class type without a user-declared constructor, 1164 /// then every non-static data member and base-class component of T is 1165 /// value-initialized [...] A program that calls for [...] 1166 /// value-initialization of an entity of reference type is ill-formed. hasUninitializedReferenceMember()1167 bool hasUninitializedReferenceMember() const { 1168 return !isUnion() && !hasUserDeclaredConstructor() && 1169 data().HasUninitializedReferenceMember; 1170 } 1171 1172 /// Whether this class is a POD-type (C++ [class]p4) 1173 /// 1174 /// For purposes of this function a class is POD if it is an aggregate 1175 /// that has no non-static non-POD data members, no reference data 1176 /// members, no user-defined copy assignment operator and no 1177 /// user-defined destructor. 1178 /// 1179 /// Note that this is the C++ TR1 definition of POD. isPOD()1180 bool isPOD() const { return data().PlainOldData; } 1181 1182 /// True if this class is C-like, without C++-specific features, e.g. 1183 /// it contains only public fields, no bases, tag kind is not 'class', etc. 1184 bool isCLike() const; 1185 1186 /// Determine whether this is an empty class in the sense of 1187 /// (C++11 [meta.unary.prop]). 1188 /// 1189 /// The CXXRecordDecl is a class type, but not a union type, 1190 /// with no non-static data members other than bit-fields of length 0, 1191 /// no virtual member functions, no virtual base classes, 1192 /// and no base class B for which is_empty<B>::value is false. 1193 /// 1194 /// \note This does NOT include a check for union-ness. isEmpty()1195 bool isEmpty() const { return data().Empty; } 1196 setInitMethod(bool Val)1197 void setInitMethod(bool Val) { data().HasInitMethod = Val; } hasInitMethod()1198 bool hasInitMethod() const { return data().HasInitMethod; } 1199 hasPrivateFields()1200 bool hasPrivateFields() const { 1201 return data().HasPrivateFields; 1202 } 1203 hasProtectedFields()1204 bool hasProtectedFields() const { 1205 return data().HasProtectedFields; 1206 } 1207 1208 /// Determine whether this class has direct non-static data members. hasDirectFields()1209 bool hasDirectFields() const { 1210 auto &D = data(); 1211 return D.HasPublicFields || D.HasProtectedFields || D.HasPrivateFields; 1212 } 1213 1214 /// If this is a standard-layout class or union, any and all data members will 1215 /// be declared in the same type. 1216 /// 1217 /// This retrieves the type where any fields are declared, 1218 /// or the current class if there is no class with fields. 1219 const CXXRecordDecl *getStandardLayoutBaseWithFields() const; 1220 1221 /// Whether this class is polymorphic (C++ [class.virtual]), 1222 /// which means that the class contains or inherits a virtual function. isPolymorphic()1223 bool isPolymorphic() const { return data().Polymorphic; } 1224 1225 /// Determine whether this class has a pure virtual function. 1226 /// 1227 /// The class is abstract per (C++ [class.abstract]p2) if it declares 1228 /// a pure virtual function or inherits a pure virtual function that is 1229 /// not overridden. isAbstract()1230 bool isAbstract() const { return data().Abstract; } 1231 1232 /// Determine whether this class is standard-layout per 1233 /// C++ [class]p7. isStandardLayout()1234 bool isStandardLayout() const { return data().IsStandardLayout; } 1235 1236 /// Determine whether this class was standard-layout per 1237 /// C++11 [class]p7, specifically using the C++11 rules without any DRs. isCXX11StandardLayout()1238 bool isCXX11StandardLayout() const { return data().IsCXX11StandardLayout; } 1239 1240 /// Determine whether this class, or any of its class subobjects, 1241 /// contains a mutable field. hasMutableFields()1242 bool hasMutableFields() const { return data().HasMutableFields; } 1243 1244 /// Determine whether this class has any variant members. hasVariantMembers()1245 bool hasVariantMembers() const { return data().HasVariantMembers; } 1246 1247 /// Determine whether this class has a trivial default constructor 1248 /// (C++11 [class.ctor]p5). hasTrivialDefaultConstructor()1249 bool hasTrivialDefaultConstructor() const { 1250 return hasDefaultConstructor() && 1251 (data().HasTrivialSpecialMembers & SMF_DefaultConstructor); 1252 } 1253 1254 /// Determine whether this class has a non-trivial default constructor 1255 /// (C++11 [class.ctor]p5). hasNonTrivialDefaultConstructor()1256 bool hasNonTrivialDefaultConstructor() const { 1257 return (data().DeclaredNonTrivialSpecialMembers & SMF_DefaultConstructor) || 1258 (needsImplicitDefaultConstructor() && 1259 !(data().HasTrivialSpecialMembers & SMF_DefaultConstructor)); 1260 } 1261 1262 /// Determine whether this class has at least one constexpr constructor 1263 /// other than the copy or move constructors. hasConstexprNonCopyMoveConstructor()1264 bool hasConstexprNonCopyMoveConstructor() const { 1265 return data().HasConstexprNonCopyMoveConstructor || 1266 (needsImplicitDefaultConstructor() && 1267 defaultedDefaultConstructorIsConstexpr()); 1268 } 1269 1270 /// Determine whether a defaulted default constructor for this class 1271 /// would be constexpr. defaultedDefaultConstructorIsConstexpr()1272 bool defaultedDefaultConstructorIsConstexpr() const { 1273 return data().DefaultedDefaultConstructorIsConstexpr && 1274 (!isUnion() || hasInClassInitializer() || !hasVariantMembers() || 1275 getLangOpts().CPlusPlus20); 1276 } 1277 1278 /// Determine whether this class has a constexpr default constructor. hasConstexprDefaultConstructor()1279 bool hasConstexprDefaultConstructor() const { 1280 return data().HasConstexprDefaultConstructor || 1281 (needsImplicitDefaultConstructor() && 1282 defaultedDefaultConstructorIsConstexpr()); 1283 } 1284 1285 /// Determine whether this class has a trivial copy constructor 1286 /// (C++ [class.copy]p6, C++11 [class.copy]p12) hasTrivialCopyConstructor()1287 bool hasTrivialCopyConstructor() const { 1288 return data().HasTrivialSpecialMembers & SMF_CopyConstructor; 1289 } 1290 hasTrivialCopyConstructorForCall()1291 bool hasTrivialCopyConstructorForCall() const { 1292 return data().HasTrivialSpecialMembersForCall & SMF_CopyConstructor; 1293 } 1294 1295 /// Determine whether this class has a non-trivial copy constructor 1296 /// (C++ [class.copy]p6, C++11 [class.copy]p12) hasNonTrivialCopyConstructor()1297 bool hasNonTrivialCopyConstructor() const { 1298 return data().DeclaredNonTrivialSpecialMembers & SMF_CopyConstructor || 1299 !hasTrivialCopyConstructor(); 1300 } 1301 hasNonTrivialCopyConstructorForCall()1302 bool hasNonTrivialCopyConstructorForCall() const { 1303 return (data().DeclaredNonTrivialSpecialMembersForCall & 1304 SMF_CopyConstructor) || 1305 !hasTrivialCopyConstructorForCall(); 1306 } 1307 1308 /// Determine whether this class has a trivial move constructor 1309 /// (C++11 [class.copy]p12) hasTrivialMoveConstructor()1310 bool hasTrivialMoveConstructor() const { 1311 return hasMoveConstructor() && 1312 (data().HasTrivialSpecialMembers & SMF_MoveConstructor); 1313 } 1314 hasTrivialMoveConstructorForCall()1315 bool hasTrivialMoveConstructorForCall() const { 1316 return hasMoveConstructor() && 1317 (data().HasTrivialSpecialMembersForCall & SMF_MoveConstructor); 1318 } 1319 1320 /// Determine whether this class has a non-trivial move constructor 1321 /// (C++11 [class.copy]p12) hasNonTrivialMoveConstructor()1322 bool hasNonTrivialMoveConstructor() const { 1323 return (data().DeclaredNonTrivialSpecialMembers & SMF_MoveConstructor) || 1324 (needsImplicitMoveConstructor() && 1325 !(data().HasTrivialSpecialMembers & SMF_MoveConstructor)); 1326 } 1327 hasNonTrivialMoveConstructorForCall()1328 bool hasNonTrivialMoveConstructorForCall() const { 1329 return (data().DeclaredNonTrivialSpecialMembersForCall & 1330 SMF_MoveConstructor) || 1331 (needsImplicitMoveConstructor() && 1332 !(data().HasTrivialSpecialMembersForCall & SMF_MoveConstructor)); 1333 } 1334 1335 /// Determine whether this class has a trivial copy assignment operator 1336 /// (C++ [class.copy]p11, C++11 [class.copy]p25) hasTrivialCopyAssignment()1337 bool hasTrivialCopyAssignment() const { 1338 return data().HasTrivialSpecialMembers & SMF_CopyAssignment; 1339 } 1340 1341 /// Determine whether this class has a non-trivial copy assignment 1342 /// operator (C++ [class.copy]p11, C++11 [class.copy]p25) hasNonTrivialCopyAssignment()1343 bool hasNonTrivialCopyAssignment() const { 1344 return data().DeclaredNonTrivialSpecialMembers & SMF_CopyAssignment || 1345 !hasTrivialCopyAssignment(); 1346 } 1347 1348 /// Determine whether this class has a trivial move assignment operator 1349 /// (C++11 [class.copy]p25) hasTrivialMoveAssignment()1350 bool hasTrivialMoveAssignment() const { 1351 return hasMoveAssignment() && 1352 (data().HasTrivialSpecialMembers & SMF_MoveAssignment); 1353 } 1354 1355 /// Determine whether this class has a non-trivial move assignment 1356 /// operator (C++11 [class.copy]p25) hasNonTrivialMoveAssignment()1357 bool hasNonTrivialMoveAssignment() const { 1358 return (data().DeclaredNonTrivialSpecialMembers & SMF_MoveAssignment) || 1359 (needsImplicitMoveAssignment() && 1360 !(data().HasTrivialSpecialMembers & SMF_MoveAssignment)); 1361 } 1362 1363 /// Determine whether a defaulted default constructor for this class 1364 /// would be constexpr. defaultedDestructorIsConstexpr()1365 bool defaultedDestructorIsConstexpr() const { 1366 return data().DefaultedDestructorIsConstexpr && 1367 getLangOpts().CPlusPlus20; 1368 } 1369 1370 /// Determine whether this class has a constexpr destructor. 1371 bool hasConstexprDestructor() const; 1372 1373 /// Determine whether this class has a trivial destructor 1374 /// (C++ [class.dtor]p3) hasTrivialDestructor()1375 bool hasTrivialDestructor() const { 1376 return data().HasTrivialSpecialMembers & SMF_Destructor; 1377 } 1378 hasTrivialDestructorForCall()1379 bool hasTrivialDestructorForCall() const { 1380 return data().HasTrivialSpecialMembersForCall & SMF_Destructor; 1381 } 1382 1383 /// Determine whether this class has a non-trivial destructor 1384 /// (C++ [class.dtor]p3) hasNonTrivialDestructor()1385 bool hasNonTrivialDestructor() const { 1386 return !(data().HasTrivialSpecialMembers & SMF_Destructor); 1387 } 1388 hasNonTrivialDestructorForCall()1389 bool hasNonTrivialDestructorForCall() const { 1390 return !(data().HasTrivialSpecialMembersForCall & SMF_Destructor); 1391 } 1392 setHasTrivialSpecialMemberForCall()1393 void setHasTrivialSpecialMemberForCall() { 1394 data().HasTrivialSpecialMembersForCall = 1395 (SMF_CopyConstructor | SMF_MoveConstructor | SMF_Destructor); 1396 } 1397 1398 /// Determine whether declaring a const variable with this type is ok 1399 /// per core issue 253. allowConstDefaultInit()1400 bool allowConstDefaultInit() const { 1401 return !data().HasUninitializedFields || 1402 !(data().HasDefaultedDefaultConstructor || 1403 needsImplicitDefaultConstructor()); 1404 } 1405 1406 /// Determine whether this class has a destructor which has no 1407 /// semantic effect. 1408 /// 1409 /// Any such destructor will be trivial, public, defaulted and not deleted, 1410 /// and will call only irrelevant destructors. hasIrrelevantDestructor()1411 bool hasIrrelevantDestructor() const { 1412 return data().HasIrrelevantDestructor; 1413 } 1414 1415 /// Determine whether this class has a non-literal or/ volatile type 1416 /// non-static data member or base class. hasNonLiteralTypeFieldsOrBases()1417 bool hasNonLiteralTypeFieldsOrBases() const { 1418 return data().HasNonLiteralTypeFieldsOrBases; 1419 } 1420 1421 /// Determine whether this class has a using-declaration that names 1422 /// a user-declared base class constructor. hasInheritedConstructor()1423 bool hasInheritedConstructor() const { 1424 return data().HasInheritedConstructor; 1425 } 1426 1427 /// Determine whether this class has a using-declaration that names 1428 /// a base class assignment operator. hasInheritedAssignment()1429 bool hasInheritedAssignment() const { 1430 return data().HasInheritedAssignment; 1431 } 1432 1433 /// Determine whether this class is considered trivially copyable per 1434 /// (C++11 [class]p6). 1435 bool isTriviallyCopyable() const; 1436 1437 /// Determine whether this class is considered trivially copyable per 1438 bool isTriviallyCopyConstructible() const; 1439 1440 /// Determine whether this class is considered trivial. 1441 /// 1442 /// C++11 [class]p6: 1443 /// "A trivial class is a class that has a trivial default constructor and 1444 /// is trivially copyable." isTrivial()1445 bool isTrivial() const { 1446 return isTriviallyCopyable() && hasTrivialDefaultConstructor(); 1447 } 1448 1449 /// Determine whether this class is a literal type. 1450 /// 1451 /// C++20 [basic.types]p10: 1452 /// A class type that has all the following properties: 1453 /// - it has a constexpr destructor 1454 /// - all of its non-static non-variant data members and base classes 1455 /// are of non-volatile literal types, and it: 1456 /// - is a closure type 1457 /// - is an aggregate union type that has either no variant members 1458 /// or at least one variant member of non-volatile literal type 1459 /// - is a non-union aggregate type for which each of its anonymous 1460 /// union members satisfies the above requirements for an aggregate 1461 /// union type, or 1462 /// - has at least one constexpr constructor or constructor template 1463 /// that is not a copy or move constructor. 1464 bool isLiteral() const; 1465 1466 /// Determine whether this is a structural type. isStructural()1467 bool isStructural() const { 1468 return isLiteral() && data().StructuralIfLiteral; 1469 } 1470 1471 /// Notify the class that this destructor is now selected. 1472 /// 1473 /// Important properties of the class depend on destructor properties. Since 1474 /// C++20, it is possible to have multiple destructor declarations in a class 1475 /// out of which one will be selected at the end. 1476 /// This is called separately from addedMember because it has to be deferred 1477 /// to the completion of the class. 1478 void addedSelectedDestructor(CXXDestructorDecl *DD); 1479 1480 /// Notify the class that an eligible SMF has been added. 1481 /// This updates triviality and destructor based properties of the class accordingly. 1482 void addedEligibleSpecialMemberFunction(const CXXMethodDecl *MD, unsigned SMKind); 1483 1484 /// If this record is an instantiation of a member class, 1485 /// retrieves the member class from which it was instantiated. 1486 /// 1487 /// This routine will return non-null for (non-templated) member 1488 /// classes of class templates. For example, given: 1489 /// 1490 /// \code 1491 /// template<typename T> 1492 /// struct X { 1493 /// struct A { }; 1494 /// }; 1495 /// \endcode 1496 /// 1497 /// The declaration for X<int>::A is a (non-templated) CXXRecordDecl 1498 /// whose parent is the class template specialization X<int>. For 1499 /// this declaration, getInstantiatedFromMemberClass() will return 1500 /// the CXXRecordDecl X<T>::A. When a complete definition of 1501 /// X<int>::A is required, it will be instantiated from the 1502 /// declaration returned by getInstantiatedFromMemberClass(). 1503 CXXRecordDecl *getInstantiatedFromMemberClass() const; 1504 1505 /// If this class is an instantiation of a member class of a 1506 /// class template specialization, retrieves the member specialization 1507 /// information. 1508 MemberSpecializationInfo *getMemberSpecializationInfo() const; 1509 1510 /// Specify that this record is an instantiation of the 1511 /// member class \p RD. 1512 void setInstantiationOfMemberClass(CXXRecordDecl *RD, 1513 TemplateSpecializationKind TSK); 1514 1515 /// Retrieves the class template that is described by this 1516 /// class declaration. 1517 /// 1518 /// Every class template is represented as a ClassTemplateDecl and a 1519 /// CXXRecordDecl. The former contains template properties (such as 1520 /// the template parameter lists) while the latter contains the 1521 /// actual description of the template's 1522 /// contents. ClassTemplateDecl::getTemplatedDecl() retrieves the 1523 /// CXXRecordDecl that from a ClassTemplateDecl, while 1524 /// getDescribedClassTemplate() retrieves the ClassTemplateDecl from 1525 /// a CXXRecordDecl. 1526 ClassTemplateDecl *getDescribedClassTemplate() const; 1527 1528 void setDescribedClassTemplate(ClassTemplateDecl *Template); 1529 1530 /// Determine whether this particular class is a specialization or 1531 /// instantiation of a class template or member class of a class template, 1532 /// and how it was instantiated or specialized. 1533 TemplateSpecializationKind getTemplateSpecializationKind() const; 1534 1535 /// Set the kind of specialization or template instantiation this is. 1536 void setTemplateSpecializationKind(TemplateSpecializationKind TSK); 1537 1538 /// Retrieve the record declaration from which this record could be 1539 /// instantiated. Returns null if this class is not a template instantiation. 1540 const CXXRecordDecl *getTemplateInstantiationPattern() const; 1541 getTemplateInstantiationPattern()1542 CXXRecordDecl *getTemplateInstantiationPattern() { 1543 return const_cast<CXXRecordDecl *>(const_cast<const CXXRecordDecl *>(this) 1544 ->getTemplateInstantiationPattern()); 1545 } 1546 1547 /// Returns the destructor decl for this class. 1548 CXXDestructorDecl *getDestructor() const; 1549 1550 /// Returns the destructor decl for this class. 1551 bool hasDeletedDestructor() const; 1552 1553 /// Returns true if the class destructor, or any implicitly invoked 1554 /// destructors are marked noreturn. isAnyDestructorNoReturn()1555 bool isAnyDestructorNoReturn() const { return data().IsAnyDestructorNoReturn; } 1556 1557 /// Returns true if the class contains HLSL intangible type, either as 1558 /// a field or in base class. isHLSLIntangible()1559 bool isHLSLIntangible() const { return data().IsHLSLIntangible; } 1560 1561 /// If the class is a local class [class.local], returns 1562 /// the enclosing function declaration. isLocalClass()1563 const FunctionDecl *isLocalClass() const { 1564 if (const auto *RD = dyn_cast<CXXRecordDecl>(getDeclContext())) 1565 return RD->isLocalClass(); 1566 1567 return dyn_cast<FunctionDecl>(getDeclContext()); 1568 } 1569 isLocalClass()1570 FunctionDecl *isLocalClass() { 1571 return const_cast<FunctionDecl*>( 1572 const_cast<const CXXRecordDecl*>(this)->isLocalClass()); 1573 } 1574 1575 /// Determine whether this dependent class is a current instantiation, 1576 /// when viewed from within the given context. 1577 bool isCurrentInstantiation(const DeclContext *CurContext) const; 1578 1579 /// Determine whether this class is derived from the class \p Base. 1580 /// 1581 /// This routine only determines whether this class is derived from \p Base, 1582 /// but does not account for factors that may make a Derived -> Base class 1583 /// ill-formed, such as private/protected inheritance or multiple, ambiguous 1584 /// base class subobjects. 1585 /// 1586 /// \param Base the base class we are searching for. 1587 /// 1588 /// \returns true if this class is derived from Base, false otherwise. 1589 bool isDerivedFrom(const CXXRecordDecl *Base) const; 1590 1591 /// Determine whether this class is derived from the type \p Base. 1592 /// 1593 /// This routine only determines whether this class is derived from \p Base, 1594 /// but does not account for factors that may make a Derived -> Base class 1595 /// ill-formed, such as private/protected inheritance or multiple, ambiguous 1596 /// base class subobjects. 1597 /// 1598 /// \param Base the base class we are searching for. 1599 /// 1600 /// \param Paths will contain the paths taken from the current class to the 1601 /// given \p Base class. 1602 /// 1603 /// \returns true if this class is derived from \p Base, false otherwise. 1604 /// 1605 /// \todo add a separate parameter to configure IsDerivedFrom, rather than 1606 /// tangling input and output in \p Paths 1607 bool isDerivedFrom(const CXXRecordDecl *Base, CXXBasePaths &Paths) const; 1608 1609 /// Determine whether this class is virtually derived from 1610 /// the class \p Base. 1611 /// 1612 /// This routine only determines whether this class is virtually 1613 /// derived from \p Base, but does not account for factors that may 1614 /// make a Derived -> Base class ill-formed, such as 1615 /// private/protected inheritance or multiple, ambiguous base class 1616 /// subobjects. 1617 /// 1618 /// \param Base the base class we are searching for. 1619 /// 1620 /// \returns true if this class is virtually derived from Base, 1621 /// false otherwise. 1622 bool isVirtuallyDerivedFrom(const CXXRecordDecl *Base) const; 1623 1624 /// Determine whether this class is provably not derived from 1625 /// the type \p Base. 1626 bool isProvablyNotDerivedFrom(const CXXRecordDecl *Base) const; 1627 1628 /// Function type used by forallBases() as a callback. 1629 /// 1630 /// \param BaseDefinition the definition of the base class 1631 /// 1632 /// \returns true if this base matched the search criteria 1633 using ForallBasesCallback = 1634 llvm::function_ref<bool(const CXXRecordDecl *BaseDefinition)>; 1635 1636 /// Determines if the given callback holds for all the direct 1637 /// or indirect base classes of this type. 1638 /// 1639 /// The class itself does not count as a base class. This routine 1640 /// returns false if the class has non-computable base classes. 1641 /// 1642 /// \param BaseMatches Callback invoked for each (direct or indirect) base 1643 /// class of this type until a call returns false. 1644 bool forallBases(ForallBasesCallback BaseMatches) const; 1645 1646 /// Function type used by lookupInBases() to determine whether a 1647 /// specific base class subobject matches the lookup criteria. 1648 /// 1649 /// \param Specifier the base-class specifier that describes the inheritance 1650 /// from the base class we are trying to match. 1651 /// 1652 /// \param Path the current path, from the most-derived class down to the 1653 /// base named by the \p Specifier. 1654 /// 1655 /// \returns true if this base matched the search criteria, false otherwise. 1656 using BaseMatchesCallback = 1657 llvm::function_ref<bool(const CXXBaseSpecifier *Specifier, 1658 CXXBasePath &Path)>; 1659 1660 /// Look for entities within the base classes of this C++ class, 1661 /// transitively searching all base class subobjects. 1662 /// 1663 /// This routine uses the callback function \p BaseMatches to find base 1664 /// classes meeting some search criteria, walking all base class subobjects 1665 /// and populating the given \p Paths structure with the paths through the 1666 /// inheritance hierarchy that resulted in a match. On a successful search, 1667 /// the \p Paths structure can be queried to retrieve the matching paths and 1668 /// to determine if there were any ambiguities. 1669 /// 1670 /// \param BaseMatches callback function used to determine whether a given 1671 /// base matches the user-defined search criteria. 1672 /// 1673 /// \param Paths used to record the paths from this class to its base class 1674 /// subobjects that match the search criteria. 1675 /// 1676 /// \param LookupInDependent can be set to true to extend the search to 1677 /// dependent base classes. 1678 /// 1679 /// \returns true if there exists any path from this class to a base class 1680 /// subobject that matches the search criteria. 1681 bool lookupInBases(BaseMatchesCallback BaseMatches, CXXBasePaths &Paths, 1682 bool LookupInDependent = false) const; 1683 1684 /// Base-class lookup callback that determines whether the given 1685 /// base class specifier refers to a specific class declaration. 1686 /// 1687 /// This callback can be used with \c lookupInBases() to determine whether 1688 /// a given derived class has is a base class subobject of a particular type. 1689 /// The base record pointer should refer to the canonical CXXRecordDecl of the 1690 /// base class that we are searching for. 1691 static bool FindBaseClass(const CXXBaseSpecifier *Specifier, 1692 CXXBasePath &Path, const CXXRecordDecl *BaseRecord); 1693 1694 /// Base-class lookup callback that determines whether the 1695 /// given base class specifier refers to a specific class 1696 /// declaration and describes virtual derivation. 1697 /// 1698 /// This callback can be used with \c lookupInBases() to determine 1699 /// whether a given derived class has is a virtual base class 1700 /// subobject of a particular type. The base record pointer should 1701 /// refer to the canonical CXXRecordDecl of the base class that we 1702 /// are searching for. 1703 static bool FindVirtualBaseClass(const CXXBaseSpecifier *Specifier, 1704 CXXBasePath &Path, 1705 const CXXRecordDecl *BaseRecord); 1706 1707 /// Retrieve the final overriders for each virtual member 1708 /// function in the class hierarchy where this class is the 1709 /// most-derived class in the class hierarchy. 1710 void getFinalOverriders(CXXFinalOverriderMap &FinaOverriders) const; 1711 1712 /// Get the indirect primary bases for this class. 1713 void getIndirectPrimaryBases(CXXIndirectPrimaryBaseSet& Bases) const; 1714 1715 /// Determine whether this class has a member with the given name, possibly 1716 /// in a non-dependent base class. 1717 /// 1718 /// No check for ambiguity is performed, so this should never be used when 1719 /// implementing language semantics, but it may be appropriate for warnings, 1720 /// static analysis, or similar. 1721 bool hasMemberName(DeclarationName N) const; 1722 1723 /// Renders and displays an inheritance diagram 1724 /// for this C++ class and all of its base classes (transitively) using 1725 /// GraphViz. 1726 void viewInheritance(ASTContext& Context) const; 1727 1728 /// Calculates the access of a decl that is reached 1729 /// along a path. MergeAccess(AccessSpecifier PathAccess,AccessSpecifier DeclAccess)1730 static AccessSpecifier MergeAccess(AccessSpecifier PathAccess, 1731 AccessSpecifier DeclAccess) { 1732 assert(DeclAccess != AS_none); 1733 if (DeclAccess == AS_private) return AS_none; 1734 return (PathAccess > DeclAccess ? PathAccess : DeclAccess); 1735 } 1736 1737 /// Indicates that the declaration of a defaulted or deleted special 1738 /// member function is now complete. 1739 void finishedDefaultedOrDeletedMember(CXXMethodDecl *MD); 1740 1741 void setTrivialForCallFlags(CXXMethodDecl *MD); 1742 1743 /// Indicates that the definition of this class is now complete. 1744 void completeDefinition() override; 1745 1746 /// Indicates that the definition of this class is now complete, 1747 /// and provides a final overrider map to help determine 1748 /// 1749 /// \param FinalOverriders The final overrider map for this class, which can 1750 /// be provided as an optimization for abstract-class checking. If NULL, 1751 /// final overriders will be computed if they are needed to complete the 1752 /// definition. 1753 void completeDefinition(CXXFinalOverriderMap *FinalOverriders); 1754 1755 /// Determine whether this class may end up being abstract, even though 1756 /// it is not yet known to be abstract. 1757 /// 1758 /// \returns true if this class is not known to be abstract but has any 1759 /// base classes that are abstract. In this case, \c completeDefinition() 1760 /// will need to compute final overriders to determine whether the class is 1761 /// actually abstract. 1762 bool mayBeAbstract() const; 1763 1764 /// Determine whether it's impossible for a class to be derived from this 1765 /// class. This is best-effort, and may conservatively return false. 1766 bool isEffectivelyFinal() const; 1767 1768 /// If this is the closure type of a lambda expression, retrieve the 1769 /// number to be used for name mangling in the Itanium C++ ABI. 1770 /// 1771 /// Zero indicates that this closure type has internal linkage, so the 1772 /// mangling number does not matter, while a non-zero value indicates which 1773 /// lambda expression this is in this particular context. getLambdaManglingNumber()1774 unsigned getLambdaManglingNumber() const { 1775 assert(isLambda() && "Not a lambda closure type!"); 1776 return getLambdaData().ManglingNumber; 1777 } 1778 1779 /// The lambda is known to has internal linkage no matter whether it has name 1780 /// mangling number. hasKnownLambdaInternalLinkage()1781 bool hasKnownLambdaInternalLinkage() const { 1782 assert(isLambda() && "Not a lambda closure type!"); 1783 return getLambdaData().HasKnownInternalLinkage; 1784 } 1785 1786 /// Retrieve the declaration that provides additional context for a 1787 /// lambda, when the normal declaration context is not specific enough. 1788 /// 1789 /// Certain contexts (default arguments of in-class function parameters and 1790 /// the initializers of data members) have separate name mangling rules for 1791 /// lambdas within the Itanium C++ ABI. For these cases, this routine provides 1792 /// the declaration in which the lambda occurs, e.g., the function parameter 1793 /// or the non-static data member. Otherwise, it returns NULL to imply that 1794 /// the declaration context suffices. 1795 Decl *getLambdaContextDecl() const; 1796 1797 /// Retrieve the index of this lambda within the context declaration returned 1798 /// by getLambdaContextDecl(). getLambdaIndexInContext()1799 unsigned getLambdaIndexInContext() const { 1800 assert(isLambda() && "Not a lambda closure type!"); 1801 return getLambdaData().IndexInContext; 1802 } 1803 1804 /// Information about how a lambda is numbered within its context. 1805 struct LambdaNumbering { 1806 Decl *ContextDecl = nullptr; 1807 unsigned IndexInContext = 0; 1808 unsigned ManglingNumber = 0; 1809 unsigned DeviceManglingNumber = 0; 1810 bool HasKnownInternalLinkage = false; 1811 }; 1812 1813 /// Set the mangling numbers and context declaration for a lambda class. 1814 void setLambdaNumbering(LambdaNumbering Numbering); 1815 1816 // Get the mangling numbers and context declaration for a lambda class. getLambdaNumbering()1817 LambdaNumbering getLambdaNumbering() const { 1818 return {getLambdaContextDecl(), getLambdaIndexInContext(), 1819 getLambdaManglingNumber(), getDeviceLambdaManglingNumber(), 1820 hasKnownLambdaInternalLinkage()}; 1821 } 1822 1823 /// Retrieve the device side mangling number. 1824 unsigned getDeviceLambdaManglingNumber() const; 1825 1826 /// Returns the inheritance model used for this record. 1827 MSInheritanceModel getMSInheritanceModel() const; 1828 1829 /// Calculate what the inheritance model would be for this class. 1830 MSInheritanceModel calculateInheritanceModel() const; 1831 1832 /// In the Microsoft C++ ABI, use zero for the field offset of a null data 1833 /// member pointer if we can guarantee that zero is not a valid field offset, 1834 /// or if the member pointer has multiple fields. Polymorphic classes have a 1835 /// vfptr at offset zero, so we can use zero for null. If there are multiple 1836 /// fields, we can use zero even if it is a valid field offset because 1837 /// null-ness testing will check the other fields. 1838 bool nullFieldOffsetIsZero() const; 1839 1840 /// Controls when vtordisps will be emitted if this record is used as a 1841 /// virtual base. 1842 MSVtorDispMode getMSVtorDispMode() const; 1843 1844 /// Determine whether this lambda expression was known to be dependent 1845 /// at the time it was created, even if its context does not appear to be 1846 /// dependent. 1847 /// 1848 /// This flag is a workaround for an issue with parsing, where default 1849 /// arguments are parsed before their enclosing function declarations have 1850 /// been created. This means that any lambda expressions within those 1851 /// default arguments will have as their DeclContext the context enclosing 1852 /// the function declaration, which may be non-dependent even when the 1853 /// function declaration itself is dependent. This flag indicates when we 1854 /// know that the lambda is dependent despite that. isDependentLambda()1855 bool isDependentLambda() const { 1856 return isLambda() && getLambdaData().DependencyKind == LDK_AlwaysDependent; 1857 } 1858 isNeverDependentLambda()1859 bool isNeverDependentLambda() const { 1860 return isLambda() && getLambdaData().DependencyKind == LDK_NeverDependent; 1861 } 1862 getLambdaDependencyKind()1863 unsigned getLambdaDependencyKind() const { 1864 if (!isLambda()) 1865 return LDK_Unknown; 1866 return getLambdaData().DependencyKind; 1867 } 1868 getLambdaTypeInfo()1869 TypeSourceInfo *getLambdaTypeInfo() const { 1870 return getLambdaData().MethodTyInfo; 1871 } 1872 setLambdaTypeInfo(TypeSourceInfo * TS)1873 void setLambdaTypeInfo(TypeSourceInfo *TS) { 1874 assert(DefinitionData && DefinitionData->IsLambda && 1875 "setting lambda property of non-lambda class"); 1876 auto &DL = static_cast<LambdaDefinitionData &>(*DefinitionData); 1877 DL.MethodTyInfo = TS; 1878 } 1879 setLambdaDependencyKind(unsigned Kind)1880 void setLambdaDependencyKind(unsigned Kind) { 1881 getLambdaData().DependencyKind = Kind; 1882 } 1883 setLambdaIsGeneric(bool IsGeneric)1884 void setLambdaIsGeneric(bool IsGeneric) { 1885 assert(DefinitionData && DefinitionData->IsLambda && 1886 "setting lambda property of non-lambda class"); 1887 auto &DL = static_cast<LambdaDefinitionData &>(*DefinitionData); 1888 DL.IsGenericLambda = IsGeneric; 1889 } 1890 1891 /// Determines whether this declaration represents the 1892 /// injected class name. 1893 /// 1894 /// The injected class name in C++ is the name of the class that 1895 /// appears inside the class itself. For example: 1896 /// 1897 /// \code 1898 /// struct C { 1899 /// // C is implicitly declared here as a synonym for the class name. 1900 /// }; 1901 /// 1902 /// C::C c; // same as "C c;" 1903 /// \endcode 1904 bool isInjectedClassName() const; 1905 1906 // Determine whether this type is an Interface Like type for 1907 // __interface inheritance purposes. 1908 bool isInterfaceLike() const; 1909 classof(const Decl * D)1910 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)1911 static bool classofKind(Kind K) { 1912 return K >= firstCXXRecord && K <= lastCXXRecord; 1913 } markAbstract()1914 void markAbstract() { data().Abstract = true; } 1915 }; 1916 1917 /// Store information needed for an explicit specifier. 1918 /// Used by CXXDeductionGuideDecl, CXXConstructorDecl and CXXConversionDecl. 1919 class ExplicitSpecifier { 1920 llvm::PointerIntPair<Expr *, 2, ExplicitSpecKind> ExplicitSpec{ 1921 nullptr, ExplicitSpecKind::ResolvedFalse}; 1922 1923 public: 1924 ExplicitSpecifier() = default; ExplicitSpecifier(Expr * Expression,ExplicitSpecKind Kind)1925 ExplicitSpecifier(Expr *Expression, ExplicitSpecKind Kind) 1926 : ExplicitSpec(Expression, Kind) {} getKind()1927 ExplicitSpecKind getKind() const { return ExplicitSpec.getInt(); } getExpr()1928 const Expr *getExpr() const { return ExplicitSpec.getPointer(); } getExpr()1929 Expr *getExpr() { return ExplicitSpec.getPointer(); } 1930 1931 /// Determine if the declaration had an explicit specifier of any kind. isSpecified()1932 bool isSpecified() const { 1933 return ExplicitSpec.getInt() != ExplicitSpecKind::ResolvedFalse || 1934 ExplicitSpec.getPointer(); 1935 } 1936 1937 /// Check for equivalence of explicit specifiers. 1938 /// \return true if the explicit specifier are equivalent, false otherwise. 1939 bool isEquivalent(const ExplicitSpecifier Other) const; 1940 /// Determine whether this specifier is known to correspond to an explicit 1941 /// declaration. Returns false if the specifier is absent or has an 1942 /// expression that is value-dependent or evaluates to false. isExplicit()1943 bool isExplicit() const { 1944 return ExplicitSpec.getInt() == ExplicitSpecKind::ResolvedTrue; 1945 } 1946 /// Determine if the explicit specifier is invalid. 1947 /// This state occurs after a substitution failures. isInvalid()1948 bool isInvalid() const { 1949 return ExplicitSpec.getInt() == ExplicitSpecKind::Unresolved && 1950 !ExplicitSpec.getPointer(); 1951 } setKind(ExplicitSpecKind Kind)1952 void setKind(ExplicitSpecKind Kind) { ExplicitSpec.setInt(Kind); } setExpr(Expr * E)1953 void setExpr(Expr *E) { ExplicitSpec.setPointer(E); } 1954 // Retrieve the explicit specifier in the given declaration, if any. 1955 static ExplicitSpecifier getFromDecl(FunctionDecl *Function); getFromDecl(const FunctionDecl * Function)1956 static const ExplicitSpecifier getFromDecl(const FunctionDecl *Function) { 1957 return getFromDecl(const_cast<FunctionDecl *>(Function)); 1958 } Invalid()1959 static ExplicitSpecifier Invalid() { 1960 return ExplicitSpecifier(nullptr, ExplicitSpecKind::Unresolved); 1961 } 1962 }; 1963 1964 /// Represents a C++ deduction guide declaration. 1965 /// 1966 /// \code 1967 /// template<typename T> struct A { A(); A(T); }; 1968 /// A() -> A<int>; 1969 /// \endcode 1970 /// 1971 /// In this example, there will be an explicit deduction guide from the 1972 /// second line, and implicit deduction guide templates synthesized from 1973 /// the constructors of \c A. 1974 class CXXDeductionGuideDecl : public FunctionDecl { 1975 void anchor() override; 1976 1977 public: 1978 // Represents the relationship between this deduction guide and the 1979 // deduction guide that it was generated from (or lack thereof). 1980 // See the SourceDeductionGuide member for more details. 1981 enum class SourceDeductionGuideKind : uint8_t { 1982 None, 1983 Alias, 1984 }; 1985 1986 private: CXXDeductionGuideDecl(ASTContext & C,DeclContext * DC,SourceLocation StartLoc,ExplicitSpecifier ES,const DeclarationNameInfo & NameInfo,QualType T,TypeSourceInfo * TInfo,SourceLocation EndLocation,CXXConstructorDecl * Ctor,DeductionCandidate Kind,const AssociatedConstraint & TrailingRequiresClause,const CXXDeductionGuideDecl * GeneratedFrom,SourceDeductionGuideKind SourceKind)1987 CXXDeductionGuideDecl(ASTContext &C, DeclContext *DC, SourceLocation StartLoc, 1988 ExplicitSpecifier ES, 1989 const DeclarationNameInfo &NameInfo, QualType T, 1990 TypeSourceInfo *TInfo, SourceLocation EndLocation, 1991 CXXConstructorDecl *Ctor, DeductionCandidate Kind, 1992 const AssociatedConstraint &TrailingRequiresClause, 1993 const CXXDeductionGuideDecl *GeneratedFrom, 1994 SourceDeductionGuideKind SourceKind) 1995 : FunctionDecl(CXXDeductionGuide, C, DC, StartLoc, NameInfo, T, TInfo, 1996 SC_None, false, false, ConstexprSpecKind::Unspecified, 1997 TrailingRequiresClause), 1998 Ctor(Ctor), ExplicitSpec(ES), 1999 SourceDeductionGuide(GeneratedFrom, SourceKind) { 2000 if (EndLocation.isValid()) 2001 setRangeEnd(EndLocation); 2002 setDeductionCandidateKind(Kind); 2003 } 2004 2005 CXXConstructorDecl *Ctor; 2006 ExplicitSpecifier ExplicitSpec; 2007 // The deduction guide, if any, that this deduction guide was generated from, 2008 // in the case of alias template deduction. The SourceDeductionGuideKind 2009 // member indicates which of these sources applies, or is None otherwise. 2010 llvm::PointerIntPair<const CXXDeductionGuideDecl *, 2, 2011 SourceDeductionGuideKind> 2012 SourceDeductionGuide; setExplicitSpecifier(ExplicitSpecifier ES)2013 void setExplicitSpecifier(ExplicitSpecifier ES) { ExplicitSpec = ES; } 2014 2015 public: 2016 friend class ASTDeclReader; 2017 friend class ASTDeclWriter; 2018 2019 static CXXDeductionGuideDecl * 2020 Create(ASTContext &C, DeclContext *DC, SourceLocation StartLoc, 2021 ExplicitSpecifier ES, const DeclarationNameInfo &NameInfo, QualType T, 2022 TypeSourceInfo *TInfo, SourceLocation EndLocation, 2023 CXXConstructorDecl *Ctor = nullptr, 2024 DeductionCandidate Kind = DeductionCandidate::Normal, 2025 const AssociatedConstraint &TrailingRequiresClause = {}, 2026 const CXXDeductionGuideDecl *SourceDG = nullptr, 2027 SourceDeductionGuideKind SK = SourceDeductionGuideKind::None); 2028 2029 static CXXDeductionGuideDecl *CreateDeserialized(ASTContext &C, 2030 GlobalDeclID ID); 2031 getExplicitSpecifier()2032 ExplicitSpecifier getExplicitSpecifier() { return ExplicitSpec; } getExplicitSpecifier()2033 const ExplicitSpecifier getExplicitSpecifier() const { return ExplicitSpec; } 2034 2035 /// Return true if the declaration is already resolved to be explicit. isExplicit()2036 bool isExplicit() const { return ExplicitSpec.isExplicit(); } 2037 2038 /// Get the template for which this guide performs deduction. getDeducedTemplate()2039 TemplateDecl *getDeducedTemplate() const { 2040 return getDeclName().getCXXDeductionGuideTemplate(); 2041 } 2042 2043 /// Get the constructor from which this deduction guide was generated, if 2044 /// this is an implicit deduction guide. getCorrespondingConstructor()2045 CXXConstructorDecl *getCorrespondingConstructor() const { return Ctor; } 2046 2047 /// Get the deduction guide from which this deduction guide was generated, 2048 /// if it was generated as part of alias template deduction or from an 2049 /// inherited constructor. getSourceDeductionGuide()2050 const CXXDeductionGuideDecl *getSourceDeductionGuide() const { 2051 return SourceDeductionGuide.getPointer(); 2052 } 2053 setSourceDeductionGuide(CXXDeductionGuideDecl * DG)2054 void setSourceDeductionGuide(CXXDeductionGuideDecl *DG) { 2055 SourceDeductionGuide.setPointer(DG); 2056 } 2057 getSourceDeductionGuideKind()2058 SourceDeductionGuideKind getSourceDeductionGuideKind() const { 2059 return SourceDeductionGuide.getInt(); 2060 } 2061 setSourceDeductionGuideKind(SourceDeductionGuideKind SK)2062 void setSourceDeductionGuideKind(SourceDeductionGuideKind SK) { 2063 SourceDeductionGuide.setInt(SK); 2064 } 2065 setDeductionCandidateKind(DeductionCandidate K)2066 void setDeductionCandidateKind(DeductionCandidate K) { 2067 FunctionDeclBits.DeductionCandidateKind = static_cast<unsigned char>(K); 2068 } 2069 getDeductionCandidateKind()2070 DeductionCandidate getDeductionCandidateKind() const { 2071 return static_cast<DeductionCandidate>( 2072 FunctionDeclBits.DeductionCandidateKind); 2073 } 2074 2075 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2076 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2077 static bool classofKind(Kind K) { return K == CXXDeductionGuide; } 2078 }; 2079 2080 /// \brief Represents the body of a requires-expression. 2081 /// 2082 /// This decl exists merely to serve as the DeclContext for the local 2083 /// parameters of the requires expression as well as other declarations inside 2084 /// it. 2085 /// 2086 /// \code 2087 /// template<typename T> requires requires (T t) { {t++} -> regular; } 2088 /// \endcode 2089 /// 2090 /// In this example, a RequiresExpr object will be generated for the expression, 2091 /// and a RequiresExprBodyDecl will be created to hold the parameter t and the 2092 /// template argument list imposed by the compound requirement. 2093 class RequiresExprBodyDecl : public Decl, public DeclContext { RequiresExprBodyDecl(ASTContext & C,DeclContext * DC,SourceLocation StartLoc)2094 RequiresExprBodyDecl(ASTContext &C, DeclContext *DC, SourceLocation StartLoc) 2095 : Decl(RequiresExprBody, DC, StartLoc), DeclContext(RequiresExprBody) {} 2096 2097 public: 2098 friend class ASTDeclReader; 2099 friend class ASTDeclWriter; 2100 2101 static RequiresExprBodyDecl *Create(ASTContext &C, DeclContext *DC, 2102 SourceLocation StartLoc); 2103 2104 static RequiresExprBodyDecl *CreateDeserialized(ASTContext &C, 2105 GlobalDeclID ID); 2106 2107 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2108 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2109 static bool classofKind(Kind K) { return K == RequiresExprBody; } 2110 castToDeclContext(const RequiresExprBodyDecl * D)2111 static DeclContext *castToDeclContext(const RequiresExprBodyDecl *D) { 2112 return static_cast<DeclContext *>(const_cast<RequiresExprBodyDecl *>(D)); 2113 } 2114 castFromDeclContext(const DeclContext * DC)2115 static RequiresExprBodyDecl *castFromDeclContext(const DeclContext *DC) { 2116 return static_cast<RequiresExprBodyDecl *>(const_cast<DeclContext *>(DC)); 2117 } 2118 }; 2119 2120 /// Represents a static or instance method of a struct/union/class. 2121 /// 2122 /// In the terminology of the C++ Standard, these are the (static and 2123 /// non-static) member functions, whether virtual or not. 2124 class CXXMethodDecl : public FunctionDecl { 2125 void anchor() override; 2126 2127 protected: 2128 CXXMethodDecl(Kind DK, ASTContext &C, CXXRecordDecl *RD, 2129 SourceLocation StartLoc, const DeclarationNameInfo &NameInfo, 2130 QualType T, TypeSourceInfo *TInfo, StorageClass SC, 2131 bool UsesFPIntrin, bool isInline, 2132 ConstexprSpecKind ConstexprKind, SourceLocation EndLocation, 2133 const AssociatedConstraint &TrailingRequiresClause = {}) FunctionDecl(DK,C,RD,StartLoc,NameInfo,T,TInfo,SC,UsesFPIntrin,isInline,ConstexprKind,TrailingRequiresClause)2134 : FunctionDecl(DK, C, RD, StartLoc, NameInfo, T, TInfo, SC, UsesFPIntrin, 2135 isInline, ConstexprKind, TrailingRequiresClause) { 2136 if (EndLocation.isValid()) 2137 setRangeEnd(EndLocation); 2138 } 2139 2140 public: 2141 static CXXMethodDecl * 2142 Create(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2143 const DeclarationNameInfo &NameInfo, QualType T, TypeSourceInfo *TInfo, 2144 StorageClass SC, bool UsesFPIntrin, bool isInline, 2145 ConstexprSpecKind ConstexprKind, SourceLocation EndLocation, 2146 const AssociatedConstraint &TrailingRequiresClause = {}); 2147 2148 static CXXMethodDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 2149 2150 bool isStatic() const; isInstance()2151 bool isInstance() const { return !isStatic(); } 2152 2153 /// [C++2b][dcl.fct]/p7 2154 /// An explicit object member function is a non-static 2155 /// member function with an explicit object parameter. e.g., 2156 /// void func(this SomeType); 2157 bool isExplicitObjectMemberFunction() const; 2158 2159 /// [C++2b][dcl.fct]/p7 2160 /// An implicit object member function is a non-static 2161 /// member function without an explicit object parameter. 2162 bool isImplicitObjectMemberFunction() const; 2163 2164 /// Returns true if the given operator is implicitly static in a record 2165 /// context. isStaticOverloadedOperator(OverloadedOperatorKind OOK)2166 static bool isStaticOverloadedOperator(OverloadedOperatorKind OOK) { 2167 // [class.free]p1: 2168 // Any allocation function for a class T is a static member 2169 // (even if not explicitly declared static). 2170 // [class.free]p6 Any deallocation function for a class X is a static member 2171 // (even if not explicitly declared static). 2172 return OOK == OO_New || OOK == OO_Array_New || OOK == OO_Delete || 2173 OOK == OO_Array_Delete; 2174 } 2175 isConst()2176 bool isConst() const { return getType()->castAs<FunctionType>()->isConst(); } isVolatile()2177 bool isVolatile() const { return getType()->castAs<FunctionType>()->isVolatile(); } 2178 isVirtual()2179 bool isVirtual() const { 2180 CXXMethodDecl *CD = const_cast<CXXMethodDecl*>(this)->getCanonicalDecl(); 2181 2182 // Member function is virtual if it is marked explicitly so, or if it is 2183 // declared in __interface -- then it is automatically pure virtual. 2184 if (CD->isVirtualAsWritten() || CD->isPureVirtual()) 2185 return true; 2186 2187 return CD->size_overridden_methods() != 0; 2188 } 2189 2190 /// If it's possible to devirtualize a call to this method, return the called 2191 /// function. Otherwise, return null. 2192 2193 /// \param Base The object on which this virtual function is called. 2194 /// \param IsAppleKext True if we are compiling for Apple kext. 2195 CXXMethodDecl *getDevirtualizedMethod(const Expr *Base, bool IsAppleKext); 2196 getDevirtualizedMethod(const Expr * Base,bool IsAppleKext)2197 const CXXMethodDecl *getDevirtualizedMethod(const Expr *Base, 2198 bool IsAppleKext) const { 2199 return const_cast<CXXMethodDecl *>(this)->getDevirtualizedMethod( 2200 Base, IsAppleKext); 2201 } 2202 2203 /// Determine whether this is a usual deallocation function (C++ 2204 /// [basic.stc.dynamic.deallocation]p2), which is an overloaded delete or 2205 /// delete[] operator with a particular signature. Populates \p PreventedBy 2206 /// with the declarations of the functions of the same kind if they were the 2207 /// reason for this function returning false. This is used by 2208 /// Sema::isUsualDeallocationFunction to reconsider the answer based on the 2209 /// context. 2210 bool isUsualDeallocationFunction( 2211 SmallVectorImpl<const FunctionDecl *> &PreventedBy) const; 2212 2213 /// Determine whether this is a copy-assignment operator, regardless 2214 /// of whether it was declared implicitly or explicitly. 2215 bool isCopyAssignmentOperator() const; 2216 2217 /// Determine whether this is a move assignment operator. 2218 bool isMoveAssignmentOperator() const; 2219 getCanonicalDecl()2220 CXXMethodDecl *getCanonicalDecl() override { 2221 return cast<CXXMethodDecl>(FunctionDecl::getCanonicalDecl()); 2222 } getCanonicalDecl()2223 const CXXMethodDecl *getCanonicalDecl() const { 2224 return const_cast<CXXMethodDecl*>(this)->getCanonicalDecl(); 2225 } 2226 getMostRecentDecl()2227 CXXMethodDecl *getMostRecentDecl() { 2228 return cast<CXXMethodDecl>( 2229 static_cast<FunctionDecl *>(this)->getMostRecentDecl()); 2230 } getMostRecentDecl()2231 const CXXMethodDecl *getMostRecentDecl() const { 2232 return const_cast<CXXMethodDecl*>(this)->getMostRecentDecl(); 2233 } 2234 2235 void addOverriddenMethod(const CXXMethodDecl *MD); 2236 2237 using method_iterator = const CXXMethodDecl *const *; 2238 2239 method_iterator begin_overridden_methods() const; 2240 method_iterator end_overridden_methods() const; 2241 unsigned size_overridden_methods() const; 2242 2243 using overridden_method_range = llvm::iterator_range< 2244 llvm::TinyPtrVector<const CXXMethodDecl *>::const_iterator>; 2245 2246 overridden_method_range overridden_methods() const; 2247 2248 /// Return the parent of this method declaration, which 2249 /// is the class in which this method is defined. getParent()2250 const CXXRecordDecl *getParent() const { 2251 return cast<CXXRecordDecl>(FunctionDecl::getParent()); 2252 } 2253 2254 /// Return the parent of this method declaration, which 2255 /// is the class in which this method is defined. getParent()2256 CXXRecordDecl *getParent() { 2257 return const_cast<CXXRecordDecl *>( 2258 cast<CXXRecordDecl>(FunctionDecl::getParent())); 2259 } 2260 2261 /// Return the type of the \c this pointer. 2262 /// 2263 /// Should only be called for instance (i.e., non-static) methods. Note 2264 /// that for the call operator of a lambda closure type, this returns the 2265 /// desugared 'this' type (a pointer to the closure type), not the captured 2266 /// 'this' type. 2267 QualType getThisType() const; 2268 2269 /// Return the type of the object pointed by \c this. 2270 /// 2271 /// See getThisType() for usage restriction. 2272 2273 QualType getFunctionObjectParameterReferenceType() const; getFunctionObjectParameterType()2274 QualType getFunctionObjectParameterType() const { 2275 return getFunctionObjectParameterReferenceType().getNonReferenceType(); 2276 } 2277 getNumExplicitParams()2278 unsigned getNumExplicitParams() const { 2279 return getNumParams() - (isExplicitObjectMemberFunction() ? 1 : 0); 2280 } 2281 2282 static QualType getThisType(const FunctionProtoType *FPT, 2283 const CXXRecordDecl *Decl); 2284 getMethodQualifiers()2285 Qualifiers getMethodQualifiers() const { 2286 return getType()->castAs<FunctionProtoType>()->getMethodQuals(); 2287 } 2288 2289 /// Retrieve the ref-qualifier associated with this method. 2290 /// 2291 /// In the following example, \c f() has an lvalue ref-qualifier, \c g() 2292 /// has an rvalue ref-qualifier, and \c h() has no ref-qualifier. 2293 /// @code 2294 /// struct X { 2295 /// void f() &; 2296 /// void g() &&; 2297 /// void h(); 2298 /// }; 2299 /// @endcode getRefQualifier()2300 RefQualifierKind getRefQualifier() const { 2301 return getType()->castAs<FunctionProtoType>()->getRefQualifier(); 2302 } 2303 2304 bool hasInlineBody() const; 2305 2306 /// Determine whether this is a lambda closure type's static member 2307 /// function that is used for the result of the lambda's conversion to 2308 /// function pointer (for a lambda with no captures). 2309 /// 2310 /// The function itself, if used, will have a placeholder body that will be 2311 /// supplied by IR generation to either forward to the function call operator 2312 /// or clone the function call operator. 2313 bool isLambdaStaticInvoker() const; 2314 2315 /// Find the method in \p RD that corresponds to this one. 2316 /// 2317 /// Find if \p RD or one of the classes it inherits from override this method. 2318 /// If so, return it. \p RD is assumed to be a subclass of the class defining 2319 /// this method (or be the class itself), unless \p MayBeBase is set to true. 2320 CXXMethodDecl * 2321 getCorrespondingMethodInClass(const CXXRecordDecl *RD, 2322 bool MayBeBase = false); 2323 2324 const CXXMethodDecl * 2325 getCorrespondingMethodInClass(const CXXRecordDecl *RD, 2326 bool MayBeBase = false) const { 2327 return const_cast<CXXMethodDecl *>(this) 2328 ->getCorrespondingMethodInClass(RD, MayBeBase); 2329 } 2330 2331 /// Find if \p RD declares a function that overrides this function, and if so, 2332 /// return it. Does not search base classes. 2333 CXXMethodDecl *getCorrespondingMethodDeclaredInClass(const CXXRecordDecl *RD, 2334 bool MayBeBase = false); 2335 const CXXMethodDecl * 2336 getCorrespondingMethodDeclaredInClass(const CXXRecordDecl *RD, 2337 bool MayBeBase = false) const { 2338 return const_cast<CXXMethodDecl *>(this) 2339 ->getCorrespondingMethodDeclaredInClass(RD, MayBeBase); 2340 } 2341 2342 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2343 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2344 static bool classofKind(Kind K) { 2345 return K >= firstCXXMethod && K <= lastCXXMethod; 2346 } 2347 }; 2348 2349 /// Represents a C++ base or member initializer. 2350 /// 2351 /// This is part of a constructor initializer that 2352 /// initializes one non-static member variable or one base class. For 2353 /// example, in the following, both 'A(a)' and 'f(3.14159)' are member 2354 /// initializers: 2355 /// 2356 /// \code 2357 /// class A { }; 2358 /// class B : public A { 2359 /// float f; 2360 /// public: 2361 /// B(A& a) : A(a), f(3.14159) { } 2362 /// }; 2363 /// \endcode 2364 class CXXCtorInitializer final { 2365 /// Either the base class name/delegating constructor type (stored as 2366 /// a TypeSourceInfo*), an normal field (FieldDecl), or an anonymous field 2367 /// (IndirectFieldDecl*) being initialized. 2368 llvm::PointerUnion<TypeSourceInfo *, FieldDecl *, IndirectFieldDecl *> 2369 Initializee; 2370 2371 /// The argument used to initialize the base or member, which may 2372 /// end up constructing an object (when multiple arguments are involved). 2373 Stmt *Init; 2374 2375 /// The source location for the field name or, for a base initializer 2376 /// pack expansion, the location of the ellipsis. 2377 /// 2378 /// In the case of a delegating 2379 /// constructor, it will still include the type's source location as the 2380 /// Initializee points to the CXXConstructorDecl (to allow loop detection). 2381 SourceLocation MemberOrEllipsisLocation; 2382 2383 /// Location of the left paren of the ctor-initializer. 2384 SourceLocation LParenLoc; 2385 2386 /// Location of the right paren of the ctor-initializer. 2387 SourceLocation RParenLoc; 2388 2389 /// If the initializee is a type, whether that type makes this 2390 /// a delegating initialization. 2391 LLVM_PREFERRED_TYPE(bool) 2392 unsigned IsDelegating : 1; 2393 2394 /// If the initializer is a base initializer, this keeps track 2395 /// of whether the base is virtual or not. 2396 LLVM_PREFERRED_TYPE(bool) 2397 unsigned IsVirtual : 1; 2398 2399 /// Whether or not the initializer is explicitly written 2400 /// in the sources. 2401 LLVM_PREFERRED_TYPE(bool) 2402 unsigned IsWritten : 1; 2403 2404 /// If IsWritten is true, then this number keeps track of the textual order 2405 /// of this initializer in the original sources, counting from 0. 2406 unsigned SourceOrder : 13; 2407 2408 public: 2409 /// Creates a new base-class initializer. 2410 explicit 2411 CXXCtorInitializer(ASTContext &Context, TypeSourceInfo *TInfo, bool IsVirtual, 2412 SourceLocation L, Expr *Init, SourceLocation R, 2413 SourceLocation EllipsisLoc); 2414 2415 /// Creates a new member initializer. 2416 explicit 2417 CXXCtorInitializer(ASTContext &Context, FieldDecl *Member, 2418 SourceLocation MemberLoc, SourceLocation L, Expr *Init, 2419 SourceLocation R); 2420 2421 /// Creates a new anonymous field initializer. 2422 explicit 2423 CXXCtorInitializer(ASTContext &Context, IndirectFieldDecl *Member, 2424 SourceLocation MemberLoc, SourceLocation L, Expr *Init, 2425 SourceLocation R); 2426 2427 /// Creates a new delegating initializer. 2428 explicit 2429 CXXCtorInitializer(ASTContext &Context, TypeSourceInfo *TInfo, 2430 SourceLocation L, Expr *Init, SourceLocation R); 2431 2432 /// \return Unique reproducible object identifier. 2433 int64_t getID(const ASTContext &Context) const; 2434 2435 /// Determine whether this initializer is initializing a base class. isBaseInitializer()2436 bool isBaseInitializer() const { 2437 return isa<TypeSourceInfo *>(Initializee) && !IsDelegating; 2438 } 2439 2440 /// Determine whether this initializer is initializing a non-static 2441 /// data member. isMemberInitializer()2442 bool isMemberInitializer() const { return isa<FieldDecl *>(Initializee); } 2443 isAnyMemberInitializer()2444 bool isAnyMemberInitializer() const { 2445 return isMemberInitializer() || isIndirectMemberInitializer(); 2446 } 2447 isIndirectMemberInitializer()2448 bool isIndirectMemberInitializer() const { 2449 return isa<IndirectFieldDecl *>(Initializee); 2450 } 2451 2452 /// Determine whether this initializer is an implicit initializer 2453 /// generated for a field with an initializer defined on the member 2454 /// declaration. 2455 /// 2456 /// In-class member initializers (also known as "non-static data member 2457 /// initializations", NSDMIs) were introduced in C++11. isInClassMemberInitializer()2458 bool isInClassMemberInitializer() const { 2459 return Init->getStmtClass() == Stmt::CXXDefaultInitExprClass; 2460 } 2461 2462 /// Determine whether this initializer is creating a delegating 2463 /// constructor. isDelegatingInitializer()2464 bool isDelegatingInitializer() const { 2465 return isa<TypeSourceInfo *>(Initializee) && IsDelegating; 2466 } 2467 2468 /// Determine whether this initializer is a pack expansion. isPackExpansion()2469 bool isPackExpansion() const { 2470 return isBaseInitializer() && MemberOrEllipsisLocation.isValid(); 2471 } 2472 2473 // For a pack expansion, returns the location of the ellipsis. getEllipsisLoc()2474 SourceLocation getEllipsisLoc() const { 2475 if (!isPackExpansion()) 2476 return {}; 2477 return MemberOrEllipsisLocation; 2478 } 2479 2480 /// If this is a base class initializer, returns the type of the 2481 /// base class with location information. Otherwise, returns an NULL 2482 /// type location. 2483 TypeLoc getBaseClassLoc() const; 2484 2485 /// If this is a base class initializer, returns the type of the base class. 2486 /// Otherwise, returns null. 2487 const Type *getBaseClass() const; 2488 2489 /// Returns whether the base is virtual or not. isBaseVirtual()2490 bool isBaseVirtual() const { 2491 assert(isBaseInitializer() && "Must call this on base initializer!"); 2492 2493 return IsVirtual; 2494 } 2495 2496 /// Returns the declarator information for a base class or delegating 2497 /// initializer. getTypeSourceInfo()2498 TypeSourceInfo *getTypeSourceInfo() const { 2499 return Initializee.dyn_cast<TypeSourceInfo *>(); 2500 } 2501 2502 /// If this is a member initializer, returns the declaration of the 2503 /// non-static data member being initialized. Otherwise, returns null. getMember()2504 FieldDecl *getMember() const { 2505 if (isMemberInitializer()) 2506 return cast<FieldDecl *>(Initializee); 2507 return nullptr; 2508 } 2509 getAnyMember()2510 FieldDecl *getAnyMember() const { 2511 if (isMemberInitializer()) 2512 return cast<FieldDecl *>(Initializee); 2513 if (isIndirectMemberInitializer()) 2514 return cast<IndirectFieldDecl *>(Initializee)->getAnonField(); 2515 return nullptr; 2516 } 2517 getIndirectMember()2518 IndirectFieldDecl *getIndirectMember() const { 2519 if (isIndirectMemberInitializer()) 2520 return cast<IndirectFieldDecl *>(Initializee); 2521 return nullptr; 2522 } 2523 getMemberLocation()2524 SourceLocation getMemberLocation() const { 2525 return MemberOrEllipsisLocation; 2526 } 2527 2528 /// Determine the source location of the initializer. 2529 SourceLocation getSourceLocation() const; 2530 2531 /// Determine the source range covering the entire initializer. 2532 SourceRange getSourceRange() const LLVM_READONLY; 2533 2534 /// Determine whether this initializer is explicitly written 2535 /// in the source code. isWritten()2536 bool isWritten() const { return IsWritten; } 2537 2538 /// Return the source position of the initializer, counting from 0. 2539 /// If the initializer was implicit, -1 is returned. getSourceOrder()2540 int getSourceOrder() const { 2541 return IsWritten ? static_cast<int>(SourceOrder) : -1; 2542 } 2543 2544 /// Set the source order of this initializer. 2545 /// 2546 /// This can only be called once for each initializer; it cannot be called 2547 /// on an initializer having a positive number of (implicit) array indices. 2548 /// 2549 /// This assumes that the initializer was written in the source code, and 2550 /// ensures that isWritten() returns true. setSourceOrder(int Pos)2551 void setSourceOrder(int Pos) { 2552 assert(!IsWritten && 2553 "setSourceOrder() used on implicit initializer"); 2554 assert(SourceOrder == 0 && 2555 "calling twice setSourceOrder() on the same initializer"); 2556 assert(Pos >= 0 && 2557 "setSourceOrder() used to make an initializer implicit"); 2558 IsWritten = true; 2559 SourceOrder = static_cast<unsigned>(Pos); 2560 } 2561 getLParenLoc()2562 SourceLocation getLParenLoc() const { return LParenLoc; } getRParenLoc()2563 SourceLocation getRParenLoc() const { return RParenLoc; } 2564 2565 /// Get the initializer. getInit()2566 Expr *getInit() const { return static_cast<Expr *>(Init); } 2567 }; 2568 2569 /// Description of a constructor that was inherited from a base class. 2570 class InheritedConstructor { 2571 ConstructorUsingShadowDecl *Shadow = nullptr; 2572 CXXConstructorDecl *BaseCtor = nullptr; 2573 2574 public: 2575 InheritedConstructor() = default; InheritedConstructor(ConstructorUsingShadowDecl * Shadow,CXXConstructorDecl * BaseCtor)2576 InheritedConstructor(ConstructorUsingShadowDecl *Shadow, 2577 CXXConstructorDecl *BaseCtor) 2578 : Shadow(Shadow), BaseCtor(BaseCtor) {} 2579 2580 explicit operator bool() const { return Shadow; } 2581 getShadowDecl()2582 ConstructorUsingShadowDecl *getShadowDecl() const { return Shadow; } getConstructor()2583 CXXConstructorDecl *getConstructor() const { return BaseCtor; } 2584 }; 2585 2586 /// Represents a C++ constructor within a class. 2587 /// 2588 /// For example: 2589 /// 2590 /// \code 2591 /// class X { 2592 /// public: 2593 /// explicit X(int); // represented by a CXXConstructorDecl. 2594 /// }; 2595 /// \endcode 2596 class CXXConstructorDecl final 2597 : public CXXMethodDecl, 2598 private llvm::TrailingObjects<CXXConstructorDecl, InheritedConstructor, 2599 ExplicitSpecifier> { 2600 // This class stores some data in DeclContext::CXXConstructorDeclBits 2601 // to save some space. Use the provided accessors to access it. 2602 2603 /// \name Support for base and member initializers. 2604 /// \{ 2605 /// The arguments used to initialize the base or member. 2606 LazyCXXCtorInitializersPtr CtorInitializers; 2607 2608 CXXConstructorDecl(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2609 const DeclarationNameInfo &NameInfo, QualType T, 2610 TypeSourceInfo *TInfo, ExplicitSpecifier ES, 2611 bool UsesFPIntrin, bool isInline, 2612 bool isImplicitlyDeclared, ConstexprSpecKind ConstexprKind, 2613 InheritedConstructor Inherited, 2614 const AssociatedConstraint &TrailingRequiresClause); 2615 2616 void anchor() override; 2617 numTrailingObjects(OverloadToken<InheritedConstructor>)2618 size_t numTrailingObjects(OverloadToken<InheritedConstructor>) const { 2619 return CXXConstructorDeclBits.IsInheritingConstructor; 2620 } 2621 getExplicitSpecifierInternal()2622 ExplicitSpecifier getExplicitSpecifierInternal() const { 2623 if (CXXConstructorDeclBits.HasTrailingExplicitSpecifier) 2624 return *getTrailingObjects<ExplicitSpecifier>(); 2625 return ExplicitSpecifier( 2626 nullptr, CXXConstructorDeclBits.IsSimpleExplicit 2627 ? ExplicitSpecKind::ResolvedTrue 2628 : ExplicitSpecKind::ResolvedFalse); 2629 } 2630 2631 enum TrailingAllocKind { 2632 TAKInheritsConstructor = 1, 2633 TAKHasTailExplicit = 1 << 1, 2634 }; 2635 getTrailingAllocKind()2636 uint64_t getTrailingAllocKind() const { 2637 uint64_t Kind = 0; 2638 if (CXXConstructorDeclBits.IsInheritingConstructor) 2639 Kind |= TAKInheritsConstructor; 2640 if (CXXConstructorDeclBits.HasTrailingExplicitSpecifier) 2641 Kind |= TAKHasTailExplicit; 2642 return Kind; 2643 } 2644 2645 public: 2646 friend class ASTDeclReader; 2647 friend class ASTDeclWriter; 2648 friend TrailingObjects; 2649 2650 static CXXConstructorDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID, 2651 uint64_t AllocKind); 2652 static CXXConstructorDecl * 2653 Create(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2654 const DeclarationNameInfo &NameInfo, QualType T, TypeSourceInfo *TInfo, 2655 ExplicitSpecifier ES, bool UsesFPIntrin, bool isInline, 2656 bool isImplicitlyDeclared, ConstexprSpecKind ConstexprKind, 2657 InheritedConstructor Inherited = InheritedConstructor(), 2658 const AssociatedConstraint &TrailingRequiresClause = {}); 2659 setExplicitSpecifier(ExplicitSpecifier ES)2660 void setExplicitSpecifier(ExplicitSpecifier ES) { 2661 assert((!ES.getExpr() || 2662 CXXConstructorDeclBits.HasTrailingExplicitSpecifier) && 2663 "cannot set this explicit specifier. no trail-allocated space for " 2664 "explicit"); 2665 if (ES.getExpr()) 2666 *getCanonicalDecl()->getTrailingObjects<ExplicitSpecifier>() = ES; 2667 else 2668 CXXConstructorDeclBits.IsSimpleExplicit = ES.isExplicit(); 2669 } 2670 getExplicitSpecifier()2671 ExplicitSpecifier getExplicitSpecifier() { 2672 return getCanonicalDecl()->getExplicitSpecifierInternal(); 2673 } getExplicitSpecifier()2674 const ExplicitSpecifier getExplicitSpecifier() const { 2675 return getCanonicalDecl()->getExplicitSpecifierInternal(); 2676 } 2677 2678 /// Return true if the declaration is already resolved to be explicit. isExplicit()2679 bool isExplicit() const { return getExplicitSpecifier().isExplicit(); } 2680 2681 /// Iterates through the member/base initializer list. 2682 using init_iterator = CXXCtorInitializer **; 2683 2684 /// Iterates through the member/base initializer list. 2685 using init_const_iterator = CXXCtorInitializer *const *; 2686 2687 using init_range = llvm::iterator_range<init_iterator>; 2688 using init_const_range = llvm::iterator_range<init_const_iterator>; 2689 inits()2690 init_range inits() { return init_range(init_begin(), init_end()); } inits()2691 init_const_range inits() const { 2692 return init_const_range(init_begin(), init_end()); 2693 } 2694 2695 /// Retrieve an iterator to the first initializer. init_begin()2696 init_iterator init_begin() { 2697 const auto *ConstThis = this; 2698 return const_cast<init_iterator>(ConstThis->init_begin()); 2699 } 2700 2701 /// Retrieve an iterator to the first initializer. 2702 init_const_iterator init_begin() const; 2703 2704 /// Retrieve an iterator past the last initializer. init_end()2705 init_iterator init_end() { 2706 return init_begin() + getNumCtorInitializers(); 2707 } 2708 2709 /// Retrieve an iterator past the last initializer. init_end()2710 init_const_iterator init_end() const { 2711 return init_begin() + getNumCtorInitializers(); 2712 } 2713 2714 using init_reverse_iterator = std::reverse_iterator<init_iterator>; 2715 using init_const_reverse_iterator = 2716 std::reverse_iterator<init_const_iterator>; 2717 init_rbegin()2718 init_reverse_iterator init_rbegin() { 2719 return init_reverse_iterator(init_end()); 2720 } init_rbegin()2721 init_const_reverse_iterator init_rbegin() const { 2722 return init_const_reverse_iterator(init_end()); 2723 } 2724 init_rend()2725 init_reverse_iterator init_rend() { 2726 return init_reverse_iterator(init_begin()); 2727 } init_rend()2728 init_const_reverse_iterator init_rend() const { 2729 return init_const_reverse_iterator(init_begin()); 2730 } 2731 2732 /// Determine the number of arguments used to initialize the member 2733 /// or base. getNumCtorInitializers()2734 unsigned getNumCtorInitializers() const { 2735 return CXXConstructorDeclBits.NumCtorInitializers; 2736 } 2737 setNumCtorInitializers(unsigned numCtorInitializers)2738 void setNumCtorInitializers(unsigned numCtorInitializers) { 2739 CXXConstructorDeclBits.NumCtorInitializers = numCtorInitializers; 2740 // This assert added because NumCtorInitializers is stored 2741 // in CXXConstructorDeclBits as a bitfield and its width has 2742 // been shrunk from 32 bits to fit into CXXConstructorDeclBitfields. 2743 assert(CXXConstructorDeclBits.NumCtorInitializers == 2744 numCtorInitializers && "NumCtorInitializers overflow!"); 2745 } 2746 setCtorInitializers(CXXCtorInitializer ** Initializers)2747 void setCtorInitializers(CXXCtorInitializer **Initializers) { 2748 CtorInitializers = Initializers; 2749 } 2750 2751 /// Determine whether this constructor is a delegating constructor. isDelegatingConstructor()2752 bool isDelegatingConstructor() const { 2753 return (getNumCtorInitializers() == 1) && 2754 init_begin()[0]->isDelegatingInitializer(); 2755 } 2756 2757 /// When this constructor delegates to another, retrieve the target. 2758 CXXConstructorDecl *getTargetConstructor() const; 2759 2760 /// Whether this constructor is a default 2761 /// constructor (C++ [class.ctor]p5), which can be used to 2762 /// default-initialize a class of this type. 2763 bool isDefaultConstructor() const; 2764 2765 /// Whether this constructor is a copy constructor (C++ [class.copy]p2, 2766 /// which can be used to copy the class. 2767 /// 2768 /// \p TypeQuals will be set to the qualifiers on the 2769 /// argument type. For example, \p TypeQuals would be set to \c 2770 /// Qualifiers::Const for the following copy constructor: 2771 /// 2772 /// \code 2773 /// class X { 2774 /// public: 2775 /// X(const X&); 2776 /// }; 2777 /// \endcode 2778 bool isCopyConstructor(unsigned &TypeQuals) const; 2779 2780 /// Whether this constructor is a copy 2781 /// constructor (C++ [class.copy]p2, which can be used to copy the 2782 /// class. isCopyConstructor()2783 bool isCopyConstructor() const { 2784 unsigned TypeQuals = 0; 2785 return isCopyConstructor(TypeQuals); 2786 } 2787 2788 /// Determine whether this constructor is a move constructor 2789 /// (C++11 [class.copy]p3), which can be used to move values of the class. 2790 /// 2791 /// \param TypeQuals If this constructor is a move constructor, will be set 2792 /// to the type qualifiers on the referent of the first parameter's type. 2793 bool isMoveConstructor(unsigned &TypeQuals) const; 2794 2795 /// Determine whether this constructor is a move constructor 2796 /// (C++11 [class.copy]p3), which can be used to move values of the class. isMoveConstructor()2797 bool isMoveConstructor() const { 2798 unsigned TypeQuals = 0; 2799 return isMoveConstructor(TypeQuals); 2800 } 2801 2802 /// Determine whether this is a copy or move constructor. 2803 /// 2804 /// \param TypeQuals Will be set to the type qualifiers on the reference 2805 /// parameter, if in fact this is a copy or move constructor. 2806 bool isCopyOrMoveConstructor(unsigned &TypeQuals) const; 2807 2808 /// Determine whether this a copy or move constructor. isCopyOrMoveConstructor()2809 bool isCopyOrMoveConstructor() const { 2810 unsigned Quals; 2811 return isCopyOrMoveConstructor(Quals); 2812 } 2813 2814 /// Whether this constructor is a 2815 /// converting constructor (C++ [class.conv.ctor]), which can be 2816 /// used for user-defined conversions. 2817 bool isConvertingConstructor(bool AllowExplicit) const; 2818 2819 /// Determine whether this is a member template specialization that 2820 /// would copy the object to itself. Such constructors are never used to copy 2821 /// an object. 2822 bool isSpecializationCopyingObject() const; 2823 2824 /// Determine whether this is an implicit constructor synthesized to 2825 /// model a call to a constructor inherited from a base class. isInheritingConstructor()2826 bool isInheritingConstructor() const { 2827 return CXXConstructorDeclBits.IsInheritingConstructor; 2828 } 2829 2830 /// State that this is an implicit constructor synthesized to 2831 /// model a call to a constructor inherited from a base class. 2832 void setInheritingConstructor(bool isIC = true) { 2833 CXXConstructorDeclBits.IsInheritingConstructor = isIC; 2834 } 2835 2836 /// Get the constructor that this inheriting constructor is based on. getInheritedConstructor()2837 InheritedConstructor getInheritedConstructor() const { 2838 return isInheritingConstructor() ? 2839 *getTrailingObjects<InheritedConstructor>() : InheritedConstructor(); 2840 } 2841 getCanonicalDecl()2842 CXXConstructorDecl *getCanonicalDecl() override { 2843 return cast<CXXConstructorDecl>(FunctionDecl::getCanonicalDecl()); 2844 } getCanonicalDecl()2845 const CXXConstructorDecl *getCanonicalDecl() const { 2846 return const_cast<CXXConstructorDecl*>(this)->getCanonicalDecl(); 2847 } 2848 2849 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2850 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2851 static bool classofKind(Kind K) { return K == CXXConstructor; } 2852 }; 2853 2854 /// Represents a C++ destructor within a class. 2855 /// 2856 /// For example: 2857 /// 2858 /// \code 2859 /// class X { 2860 /// public: 2861 /// ~X(); // represented by a CXXDestructorDecl. 2862 /// }; 2863 /// \endcode 2864 class CXXDestructorDecl : public CXXMethodDecl { 2865 friend class ASTDeclReader; 2866 friend class ASTDeclWriter; 2867 2868 // FIXME: Don't allocate storage for these except in the first declaration 2869 // of a virtual destructor. 2870 FunctionDecl *OperatorDelete = nullptr; 2871 Expr *OperatorDeleteThisArg = nullptr; 2872 2873 CXXDestructorDecl(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2874 const DeclarationNameInfo &NameInfo, QualType T, 2875 TypeSourceInfo *TInfo, bool UsesFPIntrin, bool isInline, 2876 bool isImplicitlyDeclared, ConstexprSpecKind ConstexprKind, 2877 const AssociatedConstraint &TrailingRequiresClause = {}) CXXMethodDecl(CXXDestructor,C,RD,StartLoc,NameInfo,T,TInfo,SC_None,UsesFPIntrin,isInline,ConstexprKind,SourceLocation (),TrailingRequiresClause)2878 : CXXMethodDecl(CXXDestructor, C, RD, StartLoc, NameInfo, T, TInfo, 2879 SC_None, UsesFPIntrin, isInline, ConstexprKind, 2880 SourceLocation(), TrailingRequiresClause) { 2881 setImplicit(isImplicitlyDeclared); 2882 } 2883 2884 void anchor() override; 2885 2886 public: 2887 static CXXDestructorDecl * 2888 Create(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2889 const DeclarationNameInfo &NameInfo, QualType T, TypeSourceInfo *TInfo, 2890 bool UsesFPIntrin, bool isInline, bool isImplicitlyDeclared, 2891 ConstexprSpecKind ConstexprKind, 2892 const AssociatedConstraint &TrailingRequiresClause = {}); 2893 static CXXDestructorDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 2894 2895 void setOperatorDelete(FunctionDecl *OD, Expr *ThisArg); 2896 getOperatorDelete()2897 const FunctionDecl *getOperatorDelete() const { 2898 return getCanonicalDecl()->OperatorDelete; 2899 } 2900 getOperatorDeleteThisArg()2901 Expr *getOperatorDeleteThisArg() const { 2902 return getCanonicalDecl()->OperatorDeleteThisArg; 2903 } 2904 2905 /// Will this destructor ever be called when considering which deallocation 2906 /// function is associated with the destructor? Can optionally be passed an 2907 /// 'operator delete' function declaration to test against specifically. 2908 bool isCalledByDelete(const FunctionDecl *OpDel = nullptr) const; 2909 getCanonicalDecl()2910 CXXDestructorDecl *getCanonicalDecl() override { 2911 return cast<CXXDestructorDecl>(FunctionDecl::getCanonicalDecl()); 2912 } getCanonicalDecl()2913 const CXXDestructorDecl *getCanonicalDecl() const { 2914 return const_cast<CXXDestructorDecl*>(this)->getCanonicalDecl(); 2915 } 2916 2917 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2918 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2919 static bool classofKind(Kind K) { return K == CXXDestructor; } 2920 }; 2921 2922 /// Represents a C++ conversion function within a class. 2923 /// 2924 /// For example: 2925 /// 2926 /// \code 2927 /// class X { 2928 /// public: 2929 /// operator bool(); 2930 /// }; 2931 /// \endcode 2932 class CXXConversionDecl : public CXXMethodDecl { 2933 CXXConversionDecl(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2934 const DeclarationNameInfo &NameInfo, QualType T, 2935 TypeSourceInfo *TInfo, bool UsesFPIntrin, bool isInline, 2936 ExplicitSpecifier ES, ConstexprSpecKind ConstexprKind, 2937 SourceLocation EndLocation, 2938 const AssociatedConstraint &TrailingRequiresClause = {}) CXXMethodDecl(CXXConversion,C,RD,StartLoc,NameInfo,T,TInfo,SC_None,UsesFPIntrin,isInline,ConstexprKind,EndLocation,TrailingRequiresClause)2939 : CXXMethodDecl(CXXConversion, C, RD, StartLoc, NameInfo, T, TInfo, 2940 SC_None, UsesFPIntrin, isInline, ConstexprKind, 2941 EndLocation, TrailingRequiresClause), 2942 ExplicitSpec(ES) {} 2943 void anchor() override; 2944 2945 ExplicitSpecifier ExplicitSpec; 2946 2947 public: 2948 friend class ASTDeclReader; 2949 friend class ASTDeclWriter; 2950 2951 static CXXConversionDecl * 2952 Create(ASTContext &C, CXXRecordDecl *RD, SourceLocation StartLoc, 2953 const DeclarationNameInfo &NameInfo, QualType T, TypeSourceInfo *TInfo, 2954 bool UsesFPIntrin, bool isInline, ExplicitSpecifier ES, 2955 ConstexprSpecKind ConstexprKind, SourceLocation EndLocation, 2956 const AssociatedConstraint &TrailingRequiresClause = {}); 2957 static CXXConversionDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 2958 getExplicitSpecifier()2959 ExplicitSpecifier getExplicitSpecifier() { 2960 return getCanonicalDecl()->ExplicitSpec; 2961 } 2962 getExplicitSpecifier()2963 const ExplicitSpecifier getExplicitSpecifier() const { 2964 return getCanonicalDecl()->ExplicitSpec; 2965 } 2966 2967 /// Return true if the declaration is already resolved to be explicit. isExplicit()2968 bool isExplicit() const { return getExplicitSpecifier().isExplicit(); } setExplicitSpecifier(ExplicitSpecifier ES)2969 void setExplicitSpecifier(ExplicitSpecifier ES) { ExplicitSpec = ES; } 2970 2971 /// Returns the type that this conversion function is converting to. getConversionType()2972 QualType getConversionType() const { 2973 return getType()->castAs<FunctionType>()->getReturnType(); 2974 } 2975 2976 /// Determine whether this conversion function is a conversion from 2977 /// a lambda closure type to a block pointer. 2978 bool isLambdaToBlockPointerConversion() const; 2979 getCanonicalDecl()2980 CXXConversionDecl *getCanonicalDecl() override { 2981 return cast<CXXConversionDecl>(FunctionDecl::getCanonicalDecl()); 2982 } getCanonicalDecl()2983 const CXXConversionDecl *getCanonicalDecl() const { 2984 return const_cast<CXXConversionDecl*>(this)->getCanonicalDecl(); 2985 } 2986 2987 // Implement isa/cast/dyncast/etc. classof(const Decl * D)2988 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)2989 static bool classofKind(Kind K) { return K == CXXConversion; } 2990 }; 2991 2992 /// Represents the language in a linkage specification. 2993 /// 2994 /// The values are part of the serialization ABI for 2995 /// ASTs and cannot be changed without altering that ABI. 2996 enum class LinkageSpecLanguageIDs { C = 1, CXX = 2 }; 2997 2998 /// Represents a linkage specification. 2999 /// 3000 /// For example: 3001 /// \code 3002 /// extern "C" void foo(); 3003 /// \endcode 3004 class LinkageSpecDecl : public Decl, public DeclContext { 3005 virtual void anchor(); 3006 // This class stores some data in DeclContext::LinkageSpecDeclBits to save 3007 // some space. Use the provided accessors to access it. 3008 3009 /// The source location for the extern keyword. 3010 SourceLocation ExternLoc; 3011 3012 /// The source location for the right brace (if valid). 3013 SourceLocation RBraceLoc; 3014 3015 LinkageSpecDecl(DeclContext *DC, SourceLocation ExternLoc, 3016 SourceLocation LangLoc, LinkageSpecLanguageIDs lang, 3017 bool HasBraces); 3018 3019 public: 3020 static LinkageSpecDecl *Create(ASTContext &C, DeclContext *DC, 3021 SourceLocation ExternLoc, 3022 SourceLocation LangLoc, 3023 LinkageSpecLanguageIDs Lang, bool HasBraces); 3024 static LinkageSpecDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3025 3026 /// Return the language specified by this linkage specification. getLanguage()3027 LinkageSpecLanguageIDs getLanguage() const { 3028 return static_cast<LinkageSpecLanguageIDs>(LinkageSpecDeclBits.Language); 3029 } 3030 3031 /// Set the language specified by this linkage specification. setLanguage(LinkageSpecLanguageIDs L)3032 void setLanguage(LinkageSpecLanguageIDs L) { 3033 LinkageSpecDeclBits.Language = llvm::to_underlying(L); 3034 } 3035 3036 /// Determines whether this linkage specification had braces in 3037 /// its syntactic form. hasBraces()3038 bool hasBraces() const { 3039 assert(!RBraceLoc.isValid() || LinkageSpecDeclBits.HasBraces); 3040 return LinkageSpecDeclBits.HasBraces; 3041 } 3042 getExternLoc()3043 SourceLocation getExternLoc() const { return ExternLoc; } getRBraceLoc()3044 SourceLocation getRBraceLoc() const { return RBraceLoc; } setExternLoc(SourceLocation L)3045 void setExternLoc(SourceLocation L) { ExternLoc = L; } setRBraceLoc(SourceLocation L)3046 void setRBraceLoc(SourceLocation L) { 3047 RBraceLoc = L; 3048 LinkageSpecDeclBits.HasBraces = RBraceLoc.isValid(); 3049 } 3050 getEndLoc()3051 SourceLocation getEndLoc() const LLVM_READONLY { 3052 if (hasBraces()) 3053 return getRBraceLoc(); 3054 // No braces: get the end location of the (only) declaration in context 3055 // (if present). 3056 return decls_empty() ? getLocation() : decls_begin()->getEndLoc(); 3057 } 3058 getSourceRange()3059 SourceRange getSourceRange() const override LLVM_READONLY { 3060 return SourceRange(ExternLoc, getEndLoc()); 3061 } 3062 classof(const Decl * D)3063 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3064 static bool classofKind(Kind K) { return K == LinkageSpec; } 3065 castToDeclContext(const LinkageSpecDecl * D)3066 static DeclContext *castToDeclContext(const LinkageSpecDecl *D) { 3067 return static_cast<DeclContext *>(const_cast<LinkageSpecDecl*>(D)); 3068 } 3069 castFromDeclContext(const DeclContext * DC)3070 static LinkageSpecDecl *castFromDeclContext(const DeclContext *DC) { 3071 return static_cast<LinkageSpecDecl *>(const_cast<DeclContext*>(DC)); 3072 } 3073 }; 3074 3075 /// Represents C++ using-directive. 3076 /// 3077 /// For example: 3078 /// \code 3079 /// using namespace std; 3080 /// \endcode 3081 /// 3082 /// \note UsingDirectiveDecl should be Decl not NamedDecl, but we provide 3083 /// artificial names for all using-directives in order to store 3084 /// them in DeclContext effectively. 3085 class UsingDirectiveDecl : public NamedDecl { 3086 /// The location of the \c using keyword. 3087 SourceLocation UsingLoc; 3088 3089 /// The location of the \c namespace keyword. 3090 SourceLocation NamespaceLoc; 3091 3092 /// The nested-name-specifier that precedes the namespace. 3093 NestedNameSpecifierLoc QualifierLoc; 3094 3095 /// The namespace nominated by this using-directive. 3096 NamedDecl *NominatedNamespace; 3097 3098 /// Enclosing context containing both using-directive and nominated 3099 /// namespace. 3100 DeclContext *CommonAncestor; 3101 UsingDirectiveDecl(DeclContext * DC,SourceLocation UsingLoc,SourceLocation NamespcLoc,NestedNameSpecifierLoc QualifierLoc,SourceLocation IdentLoc,NamedDecl * Nominated,DeclContext * CommonAncestor)3102 UsingDirectiveDecl(DeclContext *DC, SourceLocation UsingLoc, 3103 SourceLocation NamespcLoc, 3104 NestedNameSpecifierLoc QualifierLoc, 3105 SourceLocation IdentLoc, 3106 NamedDecl *Nominated, 3107 DeclContext *CommonAncestor) 3108 : NamedDecl(UsingDirective, DC, IdentLoc, getName()), UsingLoc(UsingLoc), 3109 NamespaceLoc(NamespcLoc), QualifierLoc(QualifierLoc), 3110 NominatedNamespace(Nominated), CommonAncestor(CommonAncestor) {} 3111 3112 /// Returns special DeclarationName used by using-directives. 3113 /// 3114 /// This is only used by DeclContext for storing UsingDirectiveDecls in 3115 /// its lookup structure. getName()3116 static DeclarationName getName() { 3117 return DeclarationName::getUsingDirectiveName(); 3118 } 3119 3120 void anchor() override; 3121 3122 public: 3123 friend class ASTDeclReader; 3124 3125 // Friend for getUsingDirectiveName. 3126 friend class DeclContext; 3127 3128 /// Retrieve the nested-name-specifier that qualifies the 3129 /// name of the namespace, with source-location information. getQualifierLoc()3130 NestedNameSpecifierLoc getQualifierLoc() const { return QualifierLoc; } 3131 3132 /// Retrieve the nested-name-specifier that qualifies the 3133 /// name of the namespace. getQualifier()3134 NestedNameSpecifier *getQualifier() const { 3135 return QualifierLoc.getNestedNameSpecifier(); 3136 } 3137 getNominatedNamespaceAsWritten()3138 NamedDecl *getNominatedNamespaceAsWritten() { return NominatedNamespace; } getNominatedNamespaceAsWritten()3139 const NamedDecl *getNominatedNamespaceAsWritten() const { 3140 return NominatedNamespace; 3141 } 3142 3143 /// Returns the namespace nominated by this using-directive. 3144 NamespaceDecl *getNominatedNamespace(); 3145 getNominatedNamespace()3146 const NamespaceDecl *getNominatedNamespace() const { 3147 return const_cast<UsingDirectiveDecl*>(this)->getNominatedNamespace(); 3148 } 3149 3150 /// Returns the common ancestor context of this using-directive and 3151 /// its nominated namespace. getCommonAncestor()3152 DeclContext *getCommonAncestor() { return CommonAncestor; } getCommonAncestor()3153 const DeclContext *getCommonAncestor() const { return CommonAncestor; } 3154 3155 /// Return the location of the \c using keyword. getUsingLoc()3156 SourceLocation getUsingLoc() const { return UsingLoc; } 3157 3158 // FIXME: Could omit 'Key' in name. 3159 /// Returns the location of the \c namespace keyword. getNamespaceKeyLocation()3160 SourceLocation getNamespaceKeyLocation() const { return NamespaceLoc; } 3161 3162 /// Returns the location of this using declaration's identifier. getIdentLocation()3163 SourceLocation getIdentLocation() const { return getLocation(); } 3164 3165 static UsingDirectiveDecl *Create(ASTContext &C, DeclContext *DC, 3166 SourceLocation UsingLoc, 3167 SourceLocation NamespaceLoc, 3168 NestedNameSpecifierLoc QualifierLoc, 3169 SourceLocation IdentLoc, 3170 NamedDecl *Nominated, 3171 DeclContext *CommonAncestor); 3172 static UsingDirectiveDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3173 getSourceRange()3174 SourceRange getSourceRange() const override LLVM_READONLY { 3175 return SourceRange(UsingLoc, getLocation()); 3176 } 3177 classof(const Decl * D)3178 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3179 static bool classofKind(Kind K) { return K == UsingDirective; } 3180 }; 3181 3182 /// Represents a C++ namespace alias. 3183 /// 3184 /// For example: 3185 /// 3186 /// \code 3187 /// namespace Foo = Bar; 3188 /// \endcode 3189 class NamespaceAliasDecl : public NamedDecl, 3190 public Redeclarable<NamespaceAliasDecl> { 3191 friend class ASTDeclReader; 3192 3193 /// The location of the \c namespace keyword. 3194 SourceLocation NamespaceLoc; 3195 3196 /// The location of the namespace's identifier. 3197 /// 3198 /// This is accessed by TargetNameLoc. 3199 SourceLocation IdentLoc; 3200 3201 /// The nested-name-specifier that precedes the namespace. 3202 NestedNameSpecifierLoc QualifierLoc; 3203 3204 /// The Decl that this alias points to, either a NamespaceDecl or 3205 /// a NamespaceAliasDecl. 3206 NamedDecl *Namespace; 3207 NamespaceAliasDecl(ASTContext & C,DeclContext * DC,SourceLocation NamespaceLoc,SourceLocation AliasLoc,IdentifierInfo * Alias,NestedNameSpecifierLoc QualifierLoc,SourceLocation IdentLoc,NamedDecl * Namespace)3208 NamespaceAliasDecl(ASTContext &C, DeclContext *DC, 3209 SourceLocation NamespaceLoc, SourceLocation AliasLoc, 3210 IdentifierInfo *Alias, NestedNameSpecifierLoc QualifierLoc, 3211 SourceLocation IdentLoc, NamedDecl *Namespace) 3212 : NamedDecl(NamespaceAlias, DC, AliasLoc, Alias), redeclarable_base(C), 3213 NamespaceLoc(NamespaceLoc), IdentLoc(IdentLoc), 3214 QualifierLoc(QualifierLoc), Namespace(Namespace) {} 3215 3216 void anchor() override; 3217 3218 using redeclarable_base = Redeclarable<NamespaceAliasDecl>; 3219 3220 NamespaceAliasDecl *getNextRedeclarationImpl() override; 3221 NamespaceAliasDecl *getPreviousDeclImpl() override; 3222 NamespaceAliasDecl *getMostRecentDeclImpl() override; 3223 3224 public: 3225 static NamespaceAliasDecl *Create(ASTContext &C, DeclContext *DC, 3226 SourceLocation NamespaceLoc, 3227 SourceLocation AliasLoc, 3228 IdentifierInfo *Alias, 3229 NestedNameSpecifierLoc QualifierLoc, 3230 SourceLocation IdentLoc, 3231 NamedDecl *Namespace); 3232 3233 static NamespaceAliasDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3234 3235 using redecl_range = redeclarable_base::redecl_range; 3236 using redecl_iterator = redeclarable_base::redecl_iterator; 3237 3238 using redeclarable_base::redecls_begin; 3239 using redeclarable_base::redecls_end; 3240 using redeclarable_base::redecls; 3241 using redeclarable_base::getPreviousDecl; 3242 using redeclarable_base::getMostRecentDecl; 3243 getCanonicalDecl()3244 NamespaceAliasDecl *getCanonicalDecl() override { 3245 return getFirstDecl(); 3246 } getCanonicalDecl()3247 const NamespaceAliasDecl *getCanonicalDecl() const { 3248 return getFirstDecl(); 3249 } 3250 3251 /// Retrieve the nested-name-specifier that qualifies the 3252 /// name of the namespace, with source-location information. getQualifierLoc()3253 NestedNameSpecifierLoc getQualifierLoc() const { return QualifierLoc; } 3254 3255 /// Retrieve the nested-name-specifier that qualifies the 3256 /// name of the namespace. getQualifier()3257 NestedNameSpecifier *getQualifier() const { 3258 return QualifierLoc.getNestedNameSpecifier(); 3259 } 3260 3261 /// Retrieve the namespace declaration aliased by this directive. getNamespace()3262 NamespaceDecl *getNamespace() { 3263 if (auto *AD = dyn_cast<NamespaceAliasDecl>(Namespace)) 3264 return AD->getNamespace(); 3265 3266 return cast<NamespaceDecl>(Namespace); 3267 } 3268 getNamespace()3269 const NamespaceDecl *getNamespace() const { 3270 return const_cast<NamespaceAliasDecl *>(this)->getNamespace(); 3271 } 3272 3273 /// Returns the location of the alias name, i.e. 'foo' in 3274 /// "namespace foo = ns::bar;". getAliasLoc()3275 SourceLocation getAliasLoc() const { return getLocation(); } 3276 3277 /// Returns the location of the \c namespace keyword. getNamespaceLoc()3278 SourceLocation getNamespaceLoc() const { return NamespaceLoc; } 3279 3280 /// Returns the location of the identifier in the named namespace. getTargetNameLoc()3281 SourceLocation getTargetNameLoc() const { return IdentLoc; } 3282 3283 /// Retrieve the namespace that this alias refers to, which 3284 /// may either be a NamespaceDecl or a NamespaceAliasDecl. getAliasedNamespace()3285 NamedDecl *getAliasedNamespace() const { return Namespace; } 3286 getSourceRange()3287 SourceRange getSourceRange() const override LLVM_READONLY { 3288 return SourceRange(NamespaceLoc, IdentLoc); 3289 } 3290 classof(const Decl * D)3291 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3292 static bool classofKind(Kind K) { return K == NamespaceAlias; } 3293 }; 3294 3295 /// Implicit declaration of a temporary that was materialized by 3296 /// a MaterializeTemporaryExpr and lifetime-extended by a declaration 3297 class LifetimeExtendedTemporaryDecl final 3298 : public Decl, 3299 public Mergeable<LifetimeExtendedTemporaryDecl> { 3300 friend class MaterializeTemporaryExpr; 3301 friend class ASTDeclReader; 3302 3303 Stmt *ExprWithTemporary = nullptr; 3304 3305 /// The declaration which lifetime-extended this reference, if any. 3306 /// Either a VarDecl, or (for a ctor-initializer) a FieldDecl. 3307 ValueDecl *ExtendingDecl = nullptr; 3308 unsigned ManglingNumber; 3309 3310 mutable APValue *Value = nullptr; 3311 3312 LLVM_DECLARE_VIRTUAL_ANCHOR_FUNCTION(); 3313 LifetimeExtendedTemporaryDecl(Expr * Temp,ValueDecl * EDecl,unsigned Mangling)3314 LifetimeExtendedTemporaryDecl(Expr *Temp, ValueDecl *EDecl, unsigned Mangling) 3315 : Decl(Decl::LifetimeExtendedTemporary, EDecl->getDeclContext(), 3316 EDecl->getLocation()), 3317 ExprWithTemporary(Temp), ExtendingDecl(EDecl), 3318 ManglingNumber(Mangling) {} 3319 LifetimeExtendedTemporaryDecl(EmptyShell)3320 LifetimeExtendedTemporaryDecl(EmptyShell) 3321 : Decl(Decl::LifetimeExtendedTemporary, EmptyShell{}) {} 3322 3323 public: Create(Expr * Temp,ValueDecl * EDec,unsigned Mangling)3324 static LifetimeExtendedTemporaryDecl *Create(Expr *Temp, ValueDecl *EDec, 3325 unsigned Mangling) { 3326 return new (EDec->getASTContext(), EDec->getDeclContext()) 3327 LifetimeExtendedTemporaryDecl(Temp, EDec, Mangling); 3328 } CreateDeserialized(ASTContext & C,GlobalDeclID ID)3329 static LifetimeExtendedTemporaryDecl *CreateDeserialized(ASTContext &C, 3330 GlobalDeclID ID) { 3331 return new (C, ID) LifetimeExtendedTemporaryDecl(EmptyShell{}); 3332 } 3333 getExtendingDecl()3334 ValueDecl *getExtendingDecl() { return ExtendingDecl; } getExtendingDecl()3335 const ValueDecl *getExtendingDecl() const { return ExtendingDecl; } 3336 3337 /// Retrieve the storage duration for the materialized temporary. 3338 StorageDuration getStorageDuration() const; 3339 3340 /// Retrieve the expression to which the temporary materialization conversion 3341 /// was applied. This isn't necessarily the initializer of the temporary due 3342 /// to the C++98 delayed materialization rules, but 3343 /// skipRValueSubobjectAdjustments can be used to find said initializer within 3344 /// the subexpression. getTemporaryExpr()3345 Expr *getTemporaryExpr() { return cast<Expr>(ExprWithTemporary); } getTemporaryExpr()3346 const Expr *getTemporaryExpr() const { return cast<Expr>(ExprWithTemporary); } 3347 getManglingNumber()3348 unsigned getManglingNumber() const { return ManglingNumber; } 3349 3350 /// Get the storage for the constant value of a materialized temporary 3351 /// of static storage duration. 3352 APValue *getOrCreateValue(bool MayCreate) const; 3353 getValue()3354 APValue *getValue() const { return Value; } 3355 3356 // Iterators childrenExpr()3357 Stmt::child_range childrenExpr() { 3358 return Stmt::child_range(&ExprWithTemporary, &ExprWithTemporary + 1); 3359 } 3360 childrenExpr()3361 Stmt::const_child_range childrenExpr() const { 3362 return Stmt::const_child_range(&ExprWithTemporary, &ExprWithTemporary + 1); 3363 } 3364 classof(const Decl * D)3365 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3366 static bool classofKind(Kind K) { 3367 return K == Decl::LifetimeExtendedTemporary; 3368 } 3369 }; 3370 3371 /// Represents a shadow declaration implicitly introduced into a scope by a 3372 /// (resolved) using-declaration or using-enum-declaration to achieve 3373 /// the desired lookup semantics. 3374 /// 3375 /// For example: 3376 /// \code 3377 /// namespace A { 3378 /// void foo(); 3379 /// void foo(int); 3380 /// struct foo {}; 3381 /// enum bar { bar1, bar2 }; 3382 /// } 3383 /// namespace B { 3384 /// // add a UsingDecl and three UsingShadowDecls (named foo) to B. 3385 /// using A::foo; 3386 /// // adds UsingEnumDecl and two UsingShadowDecls (named bar1 and bar2) to B. 3387 /// using enum A::bar; 3388 /// } 3389 /// \endcode 3390 class UsingShadowDecl : public NamedDecl, public Redeclarable<UsingShadowDecl> { 3391 friend class BaseUsingDecl; 3392 3393 /// The referenced declaration. 3394 NamedDecl *Underlying = nullptr; 3395 3396 /// The using declaration which introduced this decl or the next using 3397 /// shadow declaration contained in the aforementioned using declaration. 3398 NamedDecl *UsingOrNextShadow = nullptr; 3399 3400 void anchor() override; 3401 3402 using redeclarable_base = Redeclarable<UsingShadowDecl>; 3403 getNextRedeclarationImpl()3404 UsingShadowDecl *getNextRedeclarationImpl() override { 3405 return getNextRedeclaration(); 3406 } 3407 getPreviousDeclImpl()3408 UsingShadowDecl *getPreviousDeclImpl() override { 3409 return getPreviousDecl(); 3410 } 3411 getMostRecentDeclImpl()3412 UsingShadowDecl *getMostRecentDeclImpl() override { 3413 return getMostRecentDecl(); 3414 } 3415 3416 protected: 3417 UsingShadowDecl(Kind K, ASTContext &C, DeclContext *DC, SourceLocation Loc, 3418 DeclarationName Name, BaseUsingDecl *Introducer, 3419 NamedDecl *Target); 3420 UsingShadowDecl(Kind K, ASTContext &C, EmptyShell); 3421 3422 public: 3423 friend class ASTDeclReader; 3424 friend class ASTDeclWriter; 3425 Create(ASTContext & C,DeclContext * DC,SourceLocation Loc,DeclarationName Name,BaseUsingDecl * Introducer,NamedDecl * Target)3426 static UsingShadowDecl *Create(ASTContext &C, DeclContext *DC, 3427 SourceLocation Loc, DeclarationName Name, 3428 BaseUsingDecl *Introducer, NamedDecl *Target) { 3429 return new (C, DC) 3430 UsingShadowDecl(UsingShadow, C, DC, Loc, Name, Introducer, Target); 3431 } 3432 3433 static UsingShadowDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3434 3435 using redecl_range = redeclarable_base::redecl_range; 3436 using redecl_iterator = redeclarable_base::redecl_iterator; 3437 3438 using redeclarable_base::redecls_begin; 3439 using redeclarable_base::redecls_end; 3440 using redeclarable_base::redecls; 3441 using redeclarable_base::getPreviousDecl; 3442 using redeclarable_base::getMostRecentDecl; 3443 using redeclarable_base::isFirstDecl; 3444 getCanonicalDecl()3445 UsingShadowDecl *getCanonicalDecl() override { 3446 return getFirstDecl(); 3447 } getCanonicalDecl()3448 const UsingShadowDecl *getCanonicalDecl() const { 3449 return getFirstDecl(); 3450 } 3451 3452 /// Gets the underlying declaration which has been brought into the 3453 /// local scope. getTargetDecl()3454 NamedDecl *getTargetDecl() const { return Underlying; } 3455 3456 /// Sets the underlying declaration which has been brought into the 3457 /// local scope. setTargetDecl(NamedDecl * ND)3458 void setTargetDecl(NamedDecl *ND) { 3459 assert(ND && "Target decl is null!"); 3460 Underlying = ND; 3461 // A UsingShadowDecl is never a friend or local extern declaration, even 3462 // if it is a shadow declaration for one. 3463 IdentifierNamespace = 3464 ND->getIdentifierNamespace() & 3465 ~(IDNS_OrdinaryFriend | IDNS_TagFriend | IDNS_LocalExtern); 3466 } 3467 3468 /// Gets the (written or instantiated) using declaration that introduced this 3469 /// declaration. 3470 BaseUsingDecl *getIntroducer() const; 3471 3472 /// The next using shadow declaration contained in the shadow decl 3473 /// chain of the using declaration which introduced this decl. getNextUsingShadowDecl()3474 UsingShadowDecl *getNextUsingShadowDecl() const { 3475 return dyn_cast_or_null<UsingShadowDecl>(UsingOrNextShadow); 3476 } 3477 classof(const Decl * D)3478 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3479 static bool classofKind(Kind K) { 3480 return K == Decl::UsingShadow || K == Decl::ConstructorUsingShadow; 3481 } 3482 }; 3483 3484 /// Represents a C++ declaration that introduces decls from somewhere else. It 3485 /// provides a set of the shadow decls so introduced. 3486 3487 class BaseUsingDecl : public NamedDecl { 3488 /// The first shadow declaration of the shadow decl chain associated 3489 /// with this using declaration. 3490 /// 3491 /// The bool member of the pair is a bool flag a derived type may use 3492 /// (UsingDecl makes use of it). 3493 llvm::PointerIntPair<UsingShadowDecl *, 1, bool> FirstUsingShadow; 3494 3495 protected: BaseUsingDecl(Kind DK,DeclContext * DC,SourceLocation L,DeclarationName N)3496 BaseUsingDecl(Kind DK, DeclContext *DC, SourceLocation L, DeclarationName N) 3497 : NamedDecl(DK, DC, L, N), FirstUsingShadow(nullptr, false) {} 3498 3499 private: 3500 void anchor() override; 3501 3502 protected: 3503 /// A bool flag for use by a derived type getShadowFlag()3504 bool getShadowFlag() const { return FirstUsingShadow.getInt(); } 3505 3506 /// A bool flag a derived type may set setShadowFlag(bool V)3507 void setShadowFlag(bool V) { FirstUsingShadow.setInt(V); } 3508 3509 public: 3510 friend class ASTDeclReader; 3511 friend class ASTDeclWriter; 3512 3513 /// Iterates through the using shadow declarations associated with 3514 /// this using declaration. 3515 class shadow_iterator { 3516 /// The current using shadow declaration. 3517 UsingShadowDecl *Current = nullptr; 3518 3519 public: 3520 using value_type = UsingShadowDecl *; 3521 using reference = UsingShadowDecl *; 3522 using pointer = UsingShadowDecl *; 3523 using iterator_category = std::forward_iterator_tag; 3524 using difference_type = std::ptrdiff_t; 3525 3526 shadow_iterator() = default; shadow_iterator(UsingShadowDecl * C)3527 explicit shadow_iterator(UsingShadowDecl *C) : Current(C) {} 3528 3529 reference operator*() const { return Current; } 3530 pointer operator->() const { return Current; } 3531 3532 shadow_iterator &operator++() { 3533 Current = Current->getNextUsingShadowDecl(); 3534 return *this; 3535 } 3536 3537 shadow_iterator operator++(int) { 3538 shadow_iterator tmp(*this); 3539 ++(*this); 3540 return tmp; 3541 } 3542 3543 friend bool operator==(shadow_iterator x, shadow_iterator y) { 3544 return x.Current == y.Current; 3545 } 3546 friend bool operator!=(shadow_iterator x, shadow_iterator y) { 3547 return x.Current != y.Current; 3548 } 3549 }; 3550 3551 using shadow_range = llvm::iterator_range<shadow_iterator>; 3552 shadows()3553 shadow_range shadows() const { 3554 return shadow_range(shadow_begin(), shadow_end()); 3555 } 3556 shadow_begin()3557 shadow_iterator shadow_begin() const { 3558 return shadow_iterator(FirstUsingShadow.getPointer()); 3559 } 3560 shadow_end()3561 shadow_iterator shadow_end() const { return shadow_iterator(); } 3562 3563 /// Return the number of shadowed declarations associated with this 3564 /// using declaration. shadow_size()3565 unsigned shadow_size() const { 3566 return std::distance(shadow_begin(), shadow_end()); 3567 } 3568 3569 void addShadowDecl(UsingShadowDecl *S); 3570 void removeShadowDecl(UsingShadowDecl *S); 3571 classof(const Decl * D)3572 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3573 static bool classofKind(Kind K) { return K == Using || K == UsingEnum; } 3574 }; 3575 3576 /// Represents a C++ using-declaration. 3577 /// 3578 /// For example: 3579 /// \code 3580 /// using someNameSpace::someIdentifier; 3581 /// \endcode 3582 class UsingDecl : public BaseUsingDecl, public Mergeable<UsingDecl> { 3583 /// The source location of the 'using' keyword itself. 3584 SourceLocation UsingLocation; 3585 3586 /// The nested-name-specifier that precedes the name. 3587 NestedNameSpecifierLoc QualifierLoc; 3588 3589 /// Provides source/type location info for the declaration name 3590 /// embedded in the ValueDecl base class. 3591 DeclarationNameLoc DNLoc; 3592 UsingDecl(DeclContext * DC,SourceLocation UL,NestedNameSpecifierLoc QualifierLoc,const DeclarationNameInfo & NameInfo,bool HasTypenameKeyword)3593 UsingDecl(DeclContext *DC, SourceLocation UL, 3594 NestedNameSpecifierLoc QualifierLoc, 3595 const DeclarationNameInfo &NameInfo, bool HasTypenameKeyword) 3596 : BaseUsingDecl(Using, DC, NameInfo.getLoc(), NameInfo.getName()), 3597 UsingLocation(UL), QualifierLoc(QualifierLoc), 3598 DNLoc(NameInfo.getInfo()) { 3599 setShadowFlag(HasTypenameKeyword); 3600 } 3601 3602 void anchor() override; 3603 3604 public: 3605 friend class ASTDeclReader; 3606 friend class ASTDeclWriter; 3607 3608 /// Return the source location of the 'using' keyword. getUsingLoc()3609 SourceLocation getUsingLoc() const { return UsingLocation; } 3610 3611 /// Set the source location of the 'using' keyword. setUsingLoc(SourceLocation L)3612 void setUsingLoc(SourceLocation L) { UsingLocation = L; } 3613 3614 /// Retrieve the nested-name-specifier that qualifies the name, 3615 /// with source-location information. getQualifierLoc()3616 NestedNameSpecifierLoc getQualifierLoc() const { return QualifierLoc; } 3617 3618 /// Retrieve the nested-name-specifier that qualifies the name. getQualifier()3619 NestedNameSpecifier *getQualifier() const { 3620 return QualifierLoc.getNestedNameSpecifier(); 3621 } 3622 getNameInfo()3623 DeclarationNameInfo getNameInfo() const { 3624 return DeclarationNameInfo(getDeclName(), getLocation(), DNLoc); 3625 } 3626 3627 /// Return true if it is a C++03 access declaration (no 'using'). isAccessDeclaration()3628 bool isAccessDeclaration() const { return UsingLocation.isInvalid(); } 3629 3630 /// Return true if the using declaration has 'typename'. hasTypename()3631 bool hasTypename() const { return getShadowFlag(); } 3632 3633 /// Sets whether the using declaration has 'typename'. setTypename(bool TN)3634 void setTypename(bool TN) { setShadowFlag(TN); } 3635 3636 static UsingDecl *Create(ASTContext &C, DeclContext *DC, 3637 SourceLocation UsingL, 3638 NestedNameSpecifierLoc QualifierLoc, 3639 const DeclarationNameInfo &NameInfo, 3640 bool HasTypenameKeyword); 3641 3642 static UsingDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3643 3644 SourceRange getSourceRange() const override LLVM_READONLY; 3645 3646 /// Retrieves the canonical declaration of this declaration. getCanonicalDecl()3647 UsingDecl *getCanonicalDecl() override { 3648 return cast<UsingDecl>(getFirstDecl()); 3649 } getCanonicalDecl()3650 const UsingDecl *getCanonicalDecl() const { 3651 return cast<UsingDecl>(getFirstDecl()); 3652 } 3653 classof(const Decl * D)3654 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3655 static bool classofKind(Kind K) { return K == Using; } 3656 }; 3657 3658 /// Represents a shadow constructor declaration introduced into a 3659 /// class by a C++11 using-declaration that names a constructor. 3660 /// 3661 /// For example: 3662 /// \code 3663 /// struct Base { Base(int); }; 3664 /// struct Derived { 3665 /// using Base::Base; // creates a UsingDecl and a ConstructorUsingShadowDecl 3666 /// }; 3667 /// \endcode 3668 class ConstructorUsingShadowDecl final : public UsingShadowDecl { 3669 /// If this constructor using declaration inherted the constructor 3670 /// from an indirect base class, this is the ConstructorUsingShadowDecl 3671 /// in the named direct base class from which the declaration was inherited. 3672 ConstructorUsingShadowDecl *NominatedBaseClassShadowDecl = nullptr; 3673 3674 /// If this constructor using declaration inherted the constructor 3675 /// from an indirect base class, this is the ConstructorUsingShadowDecl 3676 /// that will be used to construct the unique direct or virtual base class 3677 /// that receives the constructor arguments. 3678 ConstructorUsingShadowDecl *ConstructedBaseClassShadowDecl = nullptr; 3679 3680 /// \c true if the constructor ultimately named by this using shadow 3681 /// declaration is within a virtual base class subobject of the class that 3682 /// contains this declaration. 3683 LLVM_PREFERRED_TYPE(bool) 3684 unsigned IsVirtual : 1; 3685 ConstructorUsingShadowDecl(ASTContext & C,DeclContext * DC,SourceLocation Loc,UsingDecl * Using,NamedDecl * Target,bool TargetInVirtualBase)3686 ConstructorUsingShadowDecl(ASTContext &C, DeclContext *DC, SourceLocation Loc, 3687 UsingDecl *Using, NamedDecl *Target, 3688 bool TargetInVirtualBase) 3689 : UsingShadowDecl(ConstructorUsingShadow, C, DC, Loc, 3690 Using->getDeclName(), Using, 3691 Target->getUnderlyingDecl()), 3692 NominatedBaseClassShadowDecl( 3693 dyn_cast<ConstructorUsingShadowDecl>(Target)), 3694 ConstructedBaseClassShadowDecl(NominatedBaseClassShadowDecl), 3695 IsVirtual(TargetInVirtualBase) { 3696 // If we found a constructor that chains to a constructor for a virtual 3697 // base, we should directly call that virtual base constructor instead. 3698 // FIXME: This logic belongs in Sema. 3699 if (NominatedBaseClassShadowDecl && 3700 NominatedBaseClassShadowDecl->constructsVirtualBase()) { 3701 ConstructedBaseClassShadowDecl = 3702 NominatedBaseClassShadowDecl->ConstructedBaseClassShadowDecl; 3703 IsVirtual = true; 3704 } 3705 } 3706 ConstructorUsingShadowDecl(ASTContext & C,EmptyShell Empty)3707 ConstructorUsingShadowDecl(ASTContext &C, EmptyShell Empty) 3708 : UsingShadowDecl(ConstructorUsingShadow, C, Empty), IsVirtual(false) {} 3709 3710 void anchor() override; 3711 3712 public: 3713 friend class ASTDeclReader; 3714 friend class ASTDeclWriter; 3715 3716 static ConstructorUsingShadowDecl *Create(ASTContext &C, DeclContext *DC, 3717 SourceLocation Loc, 3718 UsingDecl *Using, NamedDecl *Target, 3719 bool IsVirtual); 3720 static ConstructorUsingShadowDecl *CreateDeserialized(ASTContext &C, 3721 GlobalDeclID ID); 3722 3723 /// Override the UsingShadowDecl's getIntroducer, returning the UsingDecl that 3724 /// introduced this. getIntroducer()3725 UsingDecl *getIntroducer() const { 3726 return cast<UsingDecl>(UsingShadowDecl::getIntroducer()); 3727 } 3728 3729 /// Returns the parent of this using shadow declaration, which 3730 /// is the class in which this is declared. 3731 //@{ getParent()3732 const CXXRecordDecl *getParent() const { 3733 return cast<CXXRecordDecl>(getDeclContext()); 3734 } getParent()3735 CXXRecordDecl *getParent() { 3736 return cast<CXXRecordDecl>(getDeclContext()); 3737 } 3738 //@} 3739 3740 /// Get the inheriting constructor declaration for the direct base 3741 /// class from which this using shadow declaration was inherited, if there is 3742 /// one. This can be different for each redeclaration of the same shadow decl. getNominatedBaseClassShadowDecl()3743 ConstructorUsingShadowDecl *getNominatedBaseClassShadowDecl() const { 3744 return NominatedBaseClassShadowDecl; 3745 } 3746 3747 /// Get the inheriting constructor declaration for the base class 3748 /// for which we don't have an explicit initializer, if there is one. getConstructedBaseClassShadowDecl()3749 ConstructorUsingShadowDecl *getConstructedBaseClassShadowDecl() const { 3750 return ConstructedBaseClassShadowDecl; 3751 } 3752 3753 /// Get the base class that was named in the using declaration. This 3754 /// can be different for each redeclaration of this same shadow decl. 3755 CXXRecordDecl *getNominatedBaseClass() const; 3756 3757 /// Get the base class whose constructor or constructor shadow 3758 /// declaration is passed the constructor arguments. getConstructedBaseClass()3759 CXXRecordDecl *getConstructedBaseClass() const { 3760 return cast<CXXRecordDecl>((ConstructedBaseClassShadowDecl 3761 ? ConstructedBaseClassShadowDecl 3762 : getTargetDecl()) 3763 ->getDeclContext()); 3764 } 3765 3766 /// Returns \c true if the constructed base class is a virtual base 3767 /// class subobject of this declaration's class. constructsVirtualBase()3768 bool constructsVirtualBase() const { 3769 return IsVirtual; 3770 } 3771 classof(const Decl * D)3772 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3773 static bool classofKind(Kind K) { return K == ConstructorUsingShadow; } 3774 }; 3775 3776 /// Represents a C++ using-enum-declaration. 3777 /// 3778 /// For example: 3779 /// \code 3780 /// using enum SomeEnumTag ; 3781 /// \endcode 3782 3783 class UsingEnumDecl : public BaseUsingDecl, public Mergeable<UsingEnumDecl> { 3784 /// The source location of the 'using' keyword itself. 3785 SourceLocation UsingLocation; 3786 /// The source location of the 'enum' keyword. 3787 SourceLocation EnumLocation; 3788 /// 'qual::SomeEnum' as an EnumType, possibly with Elaborated/Typedef sugar. 3789 TypeSourceInfo *EnumType; 3790 UsingEnumDecl(DeclContext * DC,DeclarationName DN,SourceLocation UL,SourceLocation EL,SourceLocation NL,TypeSourceInfo * EnumType)3791 UsingEnumDecl(DeclContext *DC, DeclarationName DN, SourceLocation UL, 3792 SourceLocation EL, SourceLocation NL, TypeSourceInfo *EnumType) 3793 : BaseUsingDecl(UsingEnum, DC, NL, DN), UsingLocation(UL), EnumLocation(EL), 3794 EnumType(EnumType){} 3795 3796 void anchor() override; 3797 3798 public: 3799 friend class ASTDeclReader; 3800 friend class ASTDeclWriter; 3801 3802 /// The source location of the 'using' keyword. getUsingLoc()3803 SourceLocation getUsingLoc() const { return UsingLocation; } setUsingLoc(SourceLocation L)3804 void setUsingLoc(SourceLocation L) { UsingLocation = L; } 3805 3806 /// The source location of the 'enum' keyword. getEnumLoc()3807 SourceLocation getEnumLoc() const { return EnumLocation; } setEnumLoc(SourceLocation L)3808 void setEnumLoc(SourceLocation L) { EnumLocation = L; } getQualifier()3809 NestedNameSpecifier *getQualifier() const { 3810 return getQualifierLoc().getNestedNameSpecifier(); 3811 } getQualifierLoc()3812 NestedNameSpecifierLoc getQualifierLoc() const { 3813 if (auto ETL = EnumType->getTypeLoc().getAs<ElaboratedTypeLoc>()) 3814 return ETL.getQualifierLoc(); 3815 return NestedNameSpecifierLoc(); 3816 } 3817 // Returns the "qualifier::Name" part as a TypeLoc. getEnumTypeLoc()3818 TypeLoc getEnumTypeLoc() const { 3819 return EnumType->getTypeLoc(); 3820 } getEnumType()3821 TypeSourceInfo *getEnumType() const { 3822 return EnumType; 3823 } setEnumType(TypeSourceInfo * TSI)3824 void setEnumType(TypeSourceInfo *TSI) { EnumType = TSI; } 3825 3826 public: getEnumDecl()3827 EnumDecl *getEnumDecl() const { return cast<EnumDecl>(EnumType->getType()->getAsTagDecl()); } 3828 3829 static UsingEnumDecl *Create(ASTContext &C, DeclContext *DC, 3830 SourceLocation UsingL, SourceLocation EnumL, 3831 SourceLocation NameL, TypeSourceInfo *EnumType); 3832 3833 static UsingEnumDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 3834 3835 SourceRange getSourceRange() const override LLVM_READONLY; 3836 3837 /// Retrieves the canonical declaration of this declaration. getCanonicalDecl()3838 UsingEnumDecl *getCanonicalDecl() override { 3839 return cast<UsingEnumDecl>(getFirstDecl()); 3840 } getCanonicalDecl()3841 const UsingEnumDecl *getCanonicalDecl() const { 3842 return cast<UsingEnumDecl>(getFirstDecl()); 3843 } 3844 classof(const Decl * D)3845 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3846 static bool classofKind(Kind K) { return K == UsingEnum; } 3847 }; 3848 3849 /// Represents a pack of using declarations that a single 3850 /// using-declarator pack-expanded into. 3851 /// 3852 /// \code 3853 /// template<typename ...T> struct X : T... { 3854 /// using T::operator()...; 3855 /// using T::operator T...; 3856 /// }; 3857 /// \endcode 3858 /// 3859 /// In the second case above, the UsingPackDecl will have the name 3860 /// 'operator T' (which contains an unexpanded pack), but the individual 3861 /// UsingDecls and UsingShadowDecls will have more reasonable names. 3862 class UsingPackDecl final 3863 : public NamedDecl, public Mergeable<UsingPackDecl>, 3864 private llvm::TrailingObjects<UsingPackDecl, NamedDecl *> { 3865 /// The UnresolvedUsingValueDecl or UnresolvedUsingTypenameDecl from 3866 /// which this waas instantiated. 3867 NamedDecl *InstantiatedFrom; 3868 3869 /// The number of using-declarations created by this pack expansion. 3870 unsigned NumExpansions; 3871 UsingPackDecl(DeclContext * DC,NamedDecl * InstantiatedFrom,ArrayRef<NamedDecl * > UsingDecls)3872 UsingPackDecl(DeclContext *DC, NamedDecl *InstantiatedFrom, 3873 ArrayRef<NamedDecl *> UsingDecls) 3874 : NamedDecl(UsingPack, DC, 3875 InstantiatedFrom ? InstantiatedFrom->getLocation() 3876 : SourceLocation(), 3877 InstantiatedFrom ? InstantiatedFrom->getDeclName() 3878 : DeclarationName()), 3879 InstantiatedFrom(InstantiatedFrom), NumExpansions(UsingDecls.size()) { 3880 llvm::uninitialized_copy(UsingDecls, getTrailingObjects()); 3881 } 3882 3883 void anchor() override; 3884 3885 public: 3886 friend class ASTDeclReader; 3887 friend class ASTDeclWriter; 3888 friend TrailingObjects; 3889 3890 /// Get the using declaration from which this was instantiated. This will 3891 /// always be an UnresolvedUsingValueDecl or an UnresolvedUsingTypenameDecl 3892 /// that is a pack expansion. getInstantiatedFromUsingDecl()3893 NamedDecl *getInstantiatedFromUsingDecl() const { return InstantiatedFrom; } 3894 3895 /// Get the set of using declarations that this pack expanded into. Note that 3896 /// some of these may still be unresolved. expansions()3897 ArrayRef<NamedDecl *> expansions() const { 3898 return getTrailingObjects(NumExpansions); 3899 } 3900 3901 static UsingPackDecl *Create(ASTContext &C, DeclContext *DC, 3902 NamedDecl *InstantiatedFrom, 3903 ArrayRef<NamedDecl *> UsingDecls); 3904 3905 static UsingPackDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID, 3906 unsigned NumExpansions); 3907 getSourceRange()3908 SourceRange getSourceRange() const override LLVM_READONLY { 3909 return InstantiatedFrom->getSourceRange(); 3910 } 3911 getCanonicalDecl()3912 UsingPackDecl *getCanonicalDecl() override { return getFirstDecl(); } getCanonicalDecl()3913 const UsingPackDecl *getCanonicalDecl() const { return getFirstDecl(); } 3914 classof(const Decl * D)3915 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)3916 static bool classofKind(Kind K) { return K == UsingPack; } 3917 }; 3918 3919 /// Represents a dependent using declaration which was not marked with 3920 /// \c typename. 3921 /// 3922 /// Unlike non-dependent using declarations, these *only* bring through 3923 /// non-types; otherwise they would break two-phase lookup. 3924 /// 3925 /// \code 3926 /// template \<class T> class A : public Base<T> { 3927 /// using Base<T>::foo; 3928 /// }; 3929 /// \endcode 3930 class UnresolvedUsingValueDecl : public ValueDecl, 3931 public Mergeable<UnresolvedUsingValueDecl> { 3932 /// The source location of the 'using' keyword 3933 SourceLocation UsingLocation; 3934 3935 /// If this is a pack expansion, the location of the '...'. 3936 SourceLocation EllipsisLoc; 3937 3938 /// The nested-name-specifier that precedes the name. 3939 NestedNameSpecifierLoc QualifierLoc; 3940 3941 /// Provides source/type location info for the declaration name 3942 /// embedded in the ValueDecl base class. 3943 DeclarationNameLoc DNLoc; 3944 UnresolvedUsingValueDecl(DeclContext * DC,QualType Ty,SourceLocation UsingLoc,NestedNameSpecifierLoc QualifierLoc,const DeclarationNameInfo & NameInfo,SourceLocation EllipsisLoc)3945 UnresolvedUsingValueDecl(DeclContext *DC, QualType Ty, 3946 SourceLocation UsingLoc, 3947 NestedNameSpecifierLoc QualifierLoc, 3948 const DeclarationNameInfo &NameInfo, 3949 SourceLocation EllipsisLoc) 3950 : ValueDecl(UnresolvedUsingValue, DC, 3951 NameInfo.getLoc(), NameInfo.getName(), Ty), 3952 UsingLocation(UsingLoc), EllipsisLoc(EllipsisLoc), 3953 QualifierLoc(QualifierLoc), DNLoc(NameInfo.getInfo()) {} 3954 3955 void anchor() override; 3956 3957 public: 3958 friend class ASTDeclReader; 3959 friend class ASTDeclWriter; 3960 3961 /// Returns the source location of the 'using' keyword. getUsingLoc()3962 SourceLocation getUsingLoc() const { return UsingLocation; } 3963 3964 /// Set the source location of the 'using' keyword. setUsingLoc(SourceLocation L)3965 void setUsingLoc(SourceLocation L) { UsingLocation = L; } 3966 3967 /// Return true if it is a C++03 access declaration (no 'using'). isAccessDeclaration()3968 bool isAccessDeclaration() const { return UsingLocation.isInvalid(); } 3969 3970 /// Retrieve the nested-name-specifier that qualifies the name, 3971 /// with source-location information. getQualifierLoc()3972 NestedNameSpecifierLoc getQualifierLoc() const { return QualifierLoc; } 3973 3974 /// Retrieve the nested-name-specifier that qualifies the name. getQualifier()3975 NestedNameSpecifier *getQualifier() const { 3976 return QualifierLoc.getNestedNameSpecifier(); 3977 } 3978 getNameInfo()3979 DeclarationNameInfo getNameInfo() const { 3980 return DeclarationNameInfo(getDeclName(), getLocation(), DNLoc); 3981 } 3982 3983 /// Determine whether this is a pack expansion. isPackExpansion()3984 bool isPackExpansion() const { 3985 return EllipsisLoc.isValid(); 3986 } 3987 3988 /// Get the location of the ellipsis if this is a pack expansion. getEllipsisLoc()3989 SourceLocation getEllipsisLoc() const { 3990 return EllipsisLoc; 3991 } 3992 3993 static UnresolvedUsingValueDecl * 3994 Create(ASTContext &C, DeclContext *DC, SourceLocation UsingLoc, 3995 NestedNameSpecifierLoc QualifierLoc, 3996 const DeclarationNameInfo &NameInfo, SourceLocation EllipsisLoc); 3997 3998 static UnresolvedUsingValueDecl *CreateDeserialized(ASTContext &C, 3999 GlobalDeclID ID); 4000 4001 SourceRange getSourceRange() const override LLVM_READONLY; 4002 4003 /// Retrieves the canonical declaration of this declaration. getCanonicalDecl()4004 UnresolvedUsingValueDecl *getCanonicalDecl() override { 4005 return getFirstDecl(); 4006 } getCanonicalDecl()4007 const UnresolvedUsingValueDecl *getCanonicalDecl() const { 4008 return getFirstDecl(); 4009 } 4010 classof(const Decl * D)4011 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4012 static bool classofKind(Kind K) { return K == UnresolvedUsingValue; } 4013 }; 4014 4015 /// Represents a dependent using declaration which was marked with 4016 /// \c typename. 4017 /// 4018 /// \code 4019 /// template \<class T> class A : public Base<T> { 4020 /// using typename Base<T>::foo; 4021 /// }; 4022 /// \endcode 4023 /// 4024 /// The type associated with an unresolved using typename decl is 4025 /// currently always a typename type. 4026 class UnresolvedUsingTypenameDecl 4027 : public TypeDecl, 4028 public Mergeable<UnresolvedUsingTypenameDecl> { 4029 friend class ASTDeclReader; 4030 4031 /// The source location of the 'typename' keyword 4032 SourceLocation TypenameLocation; 4033 4034 /// If this is a pack expansion, the location of the '...'. 4035 SourceLocation EllipsisLoc; 4036 4037 /// The nested-name-specifier that precedes the name. 4038 NestedNameSpecifierLoc QualifierLoc; 4039 UnresolvedUsingTypenameDecl(DeclContext * DC,SourceLocation UsingLoc,SourceLocation TypenameLoc,NestedNameSpecifierLoc QualifierLoc,SourceLocation TargetNameLoc,IdentifierInfo * TargetName,SourceLocation EllipsisLoc)4040 UnresolvedUsingTypenameDecl(DeclContext *DC, SourceLocation UsingLoc, 4041 SourceLocation TypenameLoc, 4042 NestedNameSpecifierLoc QualifierLoc, 4043 SourceLocation TargetNameLoc, 4044 IdentifierInfo *TargetName, 4045 SourceLocation EllipsisLoc) 4046 : TypeDecl(UnresolvedUsingTypename, DC, TargetNameLoc, TargetName, 4047 UsingLoc), 4048 TypenameLocation(TypenameLoc), EllipsisLoc(EllipsisLoc), 4049 QualifierLoc(QualifierLoc) {} 4050 4051 void anchor() override; 4052 4053 public: 4054 /// Returns the source location of the 'using' keyword. getUsingLoc()4055 SourceLocation getUsingLoc() const { return getBeginLoc(); } 4056 4057 /// Returns the source location of the 'typename' keyword. getTypenameLoc()4058 SourceLocation getTypenameLoc() const { return TypenameLocation; } 4059 4060 /// Retrieve the nested-name-specifier that qualifies the name, 4061 /// with source-location information. getQualifierLoc()4062 NestedNameSpecifierLoc getQualifierLoc() const { return QualifierLoc; } 4063 4064 /// Retrieve the nested-name-specifier that qualifies the name. getQualifier()4065 NestedNameSpecifier *getQualifier() const { 4066 return QualifierLoc.getNestedNameSpecifier(); 4067 } 4068 getNameInfo()4069 DeclarationNameInfo getNameInfo() const { 4070 return DeclarationNameInfo(getDeclName(), getLocation()); 4071 } 4072 4073 /// Determine whether this is a pack expansion. isPackExpansion()4074 bool isPackExpansion() const { 4075 return EllipsisLoc.isValid(); 4076 } 4077 4078 /// Get the location of the ellipsis if this is a pack expansion. getEllipsisLoc()4079 SourceLocation getEllipsisLoc() const { 4080 return EllipsisLoc; 4081 } 4082 4083 static UnresolvedUsingTypenameDecl * 4084 Create(ASTContext &C, DeclContext *DC, SourceLocation UsingLoc, 4085 SourceLocation TypenameLoc, NestedNameSpecifierLoc QualifierLoc, 4086 SourceLocation TargetNameLoc, DeclarationName TargetName, 4087 SourceLocation EllipsisLoc); 4088 4089 static UnresolvedUsingTypenameDecl *CreateDeserialized(ASTContext &C, 4090 GlobalDeclID ID); 4091 4092 /// Retrieves the canonical declaration of this declaration. getCanonicalDecl()4093 UnresolvedUsingTypenameDecl *getCanonicalDecl() override { 4094 return getFirstDecl(); 4095 } getCanonicalDecl()4096 const UnresolvedUsingTypenameDecl *getCanonicalDecl() const { 4097 return getFirstDecl(); 4098 } 4099 classof(const Decl * D)4100 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4101 static bool classofKind(Kind K) { return K == UnresolvedUsingTypename; } 4102 }; 4103 4104 /// This node is generated when a using-declaration that was annotated with 4105 /// __attribute__((using_if_exists)) failed to resolve to a known declaration. 4106 /// In that case, Sema builds a UsingShadowDecl whose target is an instance of 4107 /// this declaration, adding it to the current scope. Referring to this 4108 /// declaration in any way is an error. 4109 class UnresolvedUsingIfExistsDecl final : public NamedDecl { 4110 UnresolvedUsingIfExistsDecl(DeclContext *DC, SourceLocation Loc, 4111 DeclarationName Name); 4112 4113 void anchor() override; 4114 4115 public: 4116 static UnresolvedUsingIfExistsDecl *Create(ASTContext &Ctx, DeclContext *DC, 4117 SourceLocation Loc, 4118 DeclarationName Name); 4119 static UnresolvedUsingIfExistsDecl *CreateDeserialized(ASTContext &Ctx, 4120 GlobalDeclID ID); 4121 classof(const Decl * D)4122 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4123 static bool classofKind(Kind K) { return K == Decl::UnresolvedUsingIfExists; } 4124 }; 4125 4126 /// Represents a C++11 static_assert declaration. 4127 class StaticAssertDecl : public Decl { 4128 llvm::PointerIntPair<Expr *, 1, bool> AssertExprAndFailed; 4129 Expr *Message; 4130 SourceLocation RParenLoc; 4131 StaticAssertDecl(DeclContext * DC,SourceLocation StaticAssertLoc,Expr * AssertExpr,Expr * Message,SourceLocation RParenLoc,bool Failed)4132 StaticAssertDecl(DeclContext *DC, SourceLocation StaticAssertLoc, 4133 Expr *AssertExpr, Expr *Message, SourceLocation RParenLoc, 4134 bool Failed) 4135 : Decl(StaticAssert, DC, StaticAssertLoc), 4136 AssertExprAndFailed(AssertExpr, Failed), Message(Message), 4137 RParenLoc(RParenLoc) {} 4138 4139 virtual void anchor(); 4140 4141 public: 4142 friend class ASTDeclReader; 4143 4144 static StaticAssertDecl *Create(ASTContext &C, DeclContext *DC, 4145 SourceLocation StaticAssertLoc, 4146 Expr *AssertExpr, Expr *Message, 4147 SourceLocation RParenLoc, bool Failed); 4148 static StaticAssertDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 4149 getAssertExpr()4150 Expr *getAssertExpr() { return AssertExprAndFailed.getPointer(); } getAssertExpr()4151 const Expr *getAssertExpr() const { return AssertExprAndFailed.getPointer(); } 4152 getMessage()4153 Expr *getMessage() { return Message; } getMessage()4154 const Expr *getMessage() const { return Message; } 4155 isFailed()4156 bool isFailed() const { return AssertExprAndFailed.getInt(); } 4157 getRParenLoc()4158 SourceLocation getRParenLoc() const { return RParenLoc; } 4159 getSourceRange()4160 SourceRange getSourceRange() const override LLVM_READONLY { 4161 return SourceRange(getLocation(), getRParenLoc()); 4162 } 4163 classof(const Decl * D)4164 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4165 static bool classofKind(Kind K) { return K == StaticAssert; } 4166 }; 4167 4168 /// A binding in a decomposition declaration. For instance, given: 4169 /// 4170 /// int n[3]; 4171 /// auto &[a, b, c] = n; 4172 /// 4173 /// a, b, and c are BindingDecls, whose bindings are the expressions 4174 /// x[0], x[1], and x[2] respectively, where x is the implicit 4175 /// DecompositionDecl of type 'int (&)[3]'. 4176 class BindingDecl : public ValueDecl { 4177 /// The declaration that this binding binds to part of. 4178 ValueDecl *Decomp = nullptr; 4179 /// The binding represented by this declaration. References to this 4180 /// declaration are effectively equivalent to this expression (except 4181 /// that it is only evaluated once at the point of declaration of the 4182 /// binding). 4183 Expr *Binding = nullptr; 4184 BindingDecl(DeclContext * DC,SourceLocation IdLoc,IdentifierInfo * Id,QualType T)4185 BindingDecl(DeclContext *DC, SourceLocation IdLoc, IdentifierInfo *Id, 4186 QualType T) 4187 : ValueDecl(Decl::Binding, DC, IdLoc, Id, T) {} 4188 4189 void anchor() override; 4190 4191 public: 4192 friend class ASTDeclReader; 4193 4194 static BindingDecl *Create(ASTContext &C, DeclContext *DC, 4195 SourceLocation IdLoc, IdentifierInfo *Id, 4196 QualType T); 4197 static BindingDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 4198 4199 /// Get the expression to which this declaration is bound. This may be null 4200 /// in two different cases: while parsing the initializer for the 4201 /// decomposition declaration, and when the initializer is type-dependent. getBinding()4202 Expr *getBinding() const { return Binding; } 4203 4204 // Get the array of nested BindingDecls when the binding represents a pack. 4205 ArrayRef<BindingDecl *> getBindingPackDecls() const; 4206 4207 /// Get the decomposition declaration that this binding represents a 4208 /// decomposition of. getDecomposedDecl()4209 ValueDecl *getDecomposedDecl() const { return Decomp; } 4210 4211 /// Set the binding for this BindingDecl, along with its declared type (which 4212 /// should be a possibly-cv-qualified form of the type of the binding, or a 4213 /// reference to such a type). setBinding(QualType DeclaredType,Expr * Binding)4214 void setBinding(QualType DeclaredType, Expr *Binding) { 4215 setType(DeclaredType); 4216 this->Binding = Binding; 4217 } 4218 4219 /// Set the decomposed variable for this BindingDecl. setDecomposedDecl(ValueDecl * Decomposed)4220 void setDecomposedDecl(ValueDecl *Decomposed) { Decomp = Decomposed; } 4221 4222 /// Get the variable (if any) that holds the value of evaluating the binding. 4223 /// Only present for user-defined bindings for tuple-like types. 4224 VarDecl *getHoldingVar() const; 4225 classof(const Decl * D)4226 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4227 static bool classofKind(Kind K) { return K == Decl::Binding; } 4228 }; 4229 4230 /// A decomposition declaration. For instance, given: 4231 /// 4232 /// int n[3]; 4233 /// auto &[a, b, c] = n; 4234 /// 4235 /// the second line declares a DecompositionDecl of type 'int (&)[3]', and 4236 /// three BindingDecls (named a, b, and c). An instance of this class is always 4237 /// unnamed, but behaves in almost all other respects like a VarDecl. 4238 class DecompositionDecl final 4239 : public VarDecl, 4240 private llvm::TrailingObjects<DecompositionDecl, BindingDecl *> { 4241 /// The number of BindingDecl*s following this object. 4242 unsigned NumBindings; 4243 DecompositionDecl(ASTContext & C,DeclContext * DC,SourceLocation StartLoc,SourceLocation LSquareLoc,QualType T,TypeSourceInfo * TInfo,StorageClass SC,ArrayRef<BindingDecl * > Bindings)4244 DecompositionDecl(ASTContext &C, DeclContext *DC, SourceLocation StartLoc, 4245 SourceLocation LSquareLoc, QualType T, 4246 TypeSourceInfo *TInfo, StorageClass SC, 4247 ArrayRef<BindingDecl *> Bindings) 4248 : VarDecl(Decomposition, C, DC, StartLoc, LSquareLoc, nullptr, T, TInfo, 4249 SC), 4250 NumBindings(Bindings.size()) { 4251 llvm::uninitialized_copy(Bindings, getTrailingObjects()); 4252 for (auto *B : Bindings) { 4253 B->setDecomposedDecl(this); 4254 if (B->isParameterPack() && B->getBinding()) { 4255 for (BindingDecl *NestedBD : B->getBindingPackDecls()) { 4256 NestedBD->setDecomposedDecl(this); 4257 } 4258 } 4259 } 4260 } 4261 4262 void anchor() override; 4263 4264 public: 4265 friend class ASTDeclReader; 4266 friend TrailingObjects; 4267 4268 static DecompositionDecl *Create(ASTContext &C, DeclContext *DC, 4269 SourceLocation StartLoc, 4270 SourceLocation LSquareLoc, 4271 QualType T, TypeSourceInfo *TInfo, 4272 StorageClass S, 4273 ArrayRef<BindingDecl *> Bindings); 4274 static DecompositionDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID, 4275 unsigned NumBindings); 4276 4277 // Provide the range of bindings which may have a nested pack. bindings()4278 ArrayRef<BindingDecl *> bindings() const { 4279 return getTrailingObjects(NumBindings); 4280 } 4281 4282 // Provide a flattened range to visit each binding. flat_bindings()4283 auto flat_bindings() const { 4284 ArrayRef<BindingDecl *> Bindings = bindings(); 4285 ArrayRef<BindingDecl *> PackBindings; 4286 4287 // Split the bindings into subranges split by the pack. 4288 ArrayRef<BindingDecl *> BeforePackBindings = Bindings.take_until( 4289 [](BindingDecl *BD) { return BD->isParameterPack(); }); 4290 4291 Bindings = Bindings.drop_front(BeforePackBindings.size()); 4292 if (!Bindings.empty() && Bindings.front()->getBinding()) { 4293 PackBindings = Bindings.front()->getBindingPackDecls(); 4294 Bindings = Bindings.drop_front(); 4295 } 4296 4297 return llvm::concat<BindingDecl *const>(std::move(BeforePackBindings), 4298 std::move(PackBindings), 4299 std::move(Bindings)); 4300 } 4301 4302 void printName(raw_ostream &OS, const PrintingPolicy &Policy) const override; 4303 classof(const Decl * D)4304 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4305 static bool classofKind(Kind K) { return K == Decomposition; } 4306 }; 4307 4308 /// An instance of this class represents the declaration of a property 4309 /// member. This is a Microsoft extension to C++, first introduced in 4310 /// Visual Studio .NET 2003 as a parallel to similar features in C# 4311 /// and Managed C++. 4312 /// 4313 /// A property must always be a non-static class member. 4314 /// 4315 /// A property member superficially resembles a non-static data 4316 /// member, except preceded by a property attribute: 4317 /// __declspec(property(get=GetX, put=PutX)) int x; 4318 /// Either (but not both) of the 'get' and 'put' names may be omitted. 4319 /// 4320 /// A reference to a property is always an lvalue. If the lvalue 4321 /// undergoes lvalue-to-rvalue conversion, then a getter name is 4322 /// required, and that member is called with no arguments. 4323 /// If the lvalue is assigned into, then a setter name is required, 4324 /// and that member is called with one argument, the value assigned. 4325 /// Both operations are potentially overloaded. Compound assignments 4326 /// are permitted, as are the increment and decrement operators. 4327 /// 4328 /// The getter and putter methods are permitted to be overloaded, 4329 /// although their return and parameter types are subject to certain 4330 /// restrictions according to the type of the property. 4331 /// 4332 /// A property declared using an incomplete array type may 4333 /// additionally be subscripted, adding extra parameters to the getter 4334 /// and putter methods. 4335 class MSPropertyDecl : public DeclaratorDecl { 4336 IdentifierInfo *GetterId, *SetterId; 4337 MSPropertyDecl(DeclContext * DC,SourceLocation L,DeclarationName N,QualType T,TypeSourceInfo * TInfo,SourceLocation StartL,IdentifierInfo * Getter,IdentifierInfo * Setter)4338 MSPropertyDecl(DeclContext *DC, SourceLocation L, DeclarationName N, 4339 QualType T, TypeSourceInfo *TInfo, SourceLocation StartL, 4340 IdentifierInfo *Getter, IdentifierInfo *Setter) 4341 : DeclaratorDecl(MSProperty, DC, L, N, T, TInfo, StartL), 4342 GetterId(Getter), SetterId(Setter) {} 4343 4344 void anchor() override; 4345 public: 4346 friend class ASTDeclReader; 4347 4348 static MSPropertyDecl *Create(ASTContext &C, DeclContext *DC, 4349 SourceLocation L, DeclarationName N, QualType T, 4350 TypeSourceInfo *TInfo, SourceLocation StartL, 4351 IdentifierInfo *Getter, IdentifierInfo *Setter); 4352 static MSPropertyDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 4353 classof(const Decl * D)4354 static bool classof(const Decl *D) { return D->getKind() == MSProperty; } 4355 hasGetter()4356 bool hasGetter() const { return GetterId != nullptr; } getGetterId()4357 IdentifierInfo* getGetterId() const { return GetterId; } hasSetter()4358 bool hasSetter() const { return SetterId != nullptr; } getSetterId()4359 IdentifierInfo* getSetterId() const { return SetterId; } 4360 }; 4361 4362 /// Parts of a decomposed MSGuidDecl. Factored out to avoid unnecessary 4363 /// dependencies on DeclCXX.h. 4364 struct MSGuidDeclParts { 4365 /// {01234567-... 4366 uint32_t Part1; 4367 /// ...-89ab-... 4368 uint16_t Part2; 4369 /// ...-cdef-... 4370 uint16_t Part3; 4371 /// ...-0123-456789abcdef} 4372 uint8_t Part4And5[8]; 4373 getPart4And5AsUint64MSGuidDeclParts4374 uint64_t getPart4And5AsUint64() const { 4375 uint64_t Val; 4376 memcpy(&Val, &Part4And5, sizeof(Part4And5)); 4377 return Val; 4378 } 4379 }; 4380 4381 /// A global _GUID constant. These are implicitly created by UuidAttrs. 4382 /// 4383 /// struct _declspec(uuid("01234567-89ab-cdef-0123-456789abcdef")) X{}; 4384 /// 4385 /// X is a CXXRecordDecl that contains a UuidAttr that references the (unique) 4386 /// MSGuidDecl for the specified UUID. 4387 class MSGuidDecl : public ValueDecl, 4388 public Mergeable<MSGuidDecl>, 4389 public llvm::FoldingSetNode { 4390 public: 4391 using Parts = MSGuidDeclParts; 4392 4393 private: 4394 /// The decomposed form of the UUID. 4395 Parts PartVal; 4396 4397 /// The resolved value of the UUID as an APValue. Computed on demand and 4398 /// cached. 4399 mutable APValue APVal; 4400 4401 void anchor() override; 4402 4403 MSGuidDecl(DeclContext *DC, QualType T, Parts P); 4404 4405 static MSGuidDecl *Create(const ASTContext &C, QualType T, Parts P); 4406 static MSGuidDecl *CreateDeserialized(ASTContext &C, GlobalDeclID ID); 4407 4408 // Only ASTContext::getMSGuidDecl and deserialization create these. 4409 friend class ASTContext; 4410 friend class ASTReader; 4411 friend class ASTDeclReader; 4412 4413 public: 4414 /// Print this UUID in a human-readable format. 4415 void printName(llvm::raw_ostream &OS, 4416 const PrintingPolicy &Policy) const override; 4417 4418 /// Get the decomposed parts of this declaration. getParts()4419 Parts getParts() const { return PartVal; } 4420 4421 /// Get the value of this MSGuidDecl as an APValue. This may fail and return 4422 /// an absent APValue if the type of the declaration is not of the expected 4423 /// shape. 4424 APValue &getAsAPValue() const; 4425 Profile(llvm::FoldingSetNodeID & ID,Parts P)4426 static void Profile(llvm::FoldingSetNodeID &ID, Parts P) { 4427 ID.AddInteger(P.Part1); 4428 ID.AddInteger(P.Part2); 4429 ID.AddInteger(P.Part3); 4430 ID.AddInteger(P.getPart4And5AsUint64()); 4431 } Profile(llvm::FoldingSetNodeID & ID)4432 void Profile(llvm::FoldingSetNodeID &ID) { Profile(ID, PartVal); } 4433 classof(const Decl * D)4434 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4435 static bool classofKind(Kind K) { return K == Decl::MSGuid; } 4436 }; 4437 4438 /// An artificial decl, representing a global anonymous constant value which is 4439 /// uniquified by value within a translation unit. 4440 /// 4441 /// These is currently only used to back the LValue returned by 4442 /// __builtin_source_location, but could potentially be used for other similar 4443 /// situations in the future. 4444 class UnnamedGlobalConstantDecl : public ValueDecl, 4445 public Mergeable<UnnamedGlobalConstantDecl>, 4446 public llvm::FoldingSetNode { 4447 4448 // The constant value of this global. 4449 APValue Value; 4450 4451 void anchor() override; 4452 4453 UnnamedGlobalConstantDecl(const ASTContext &C, DeclContext *DC, QualType T, 4454 const APValue &Val); 4455 4456 static UnnamedGlobalConstantDecl *Create(const ASTContext &C, QualType T, 4457 const APValue &APVal); 4458 static UnnamedGlobalConstantDecl *CreateDeserialized(ASTContext &C, 4459 GlobalDeclID ID); 4460 4461 // Only ASTContext::getUnnamedGlobalConstantDecl and deserialization create 4462 // these. 4463 friend class ASTContext; 4464 friend class ASTReader; 4465 friend class ASTDeclReader; 4466 4467 public: 4468 /// Print this in a human-readable format. 4469 void printName(llvm::raw_ostream &OS, 4470 const PrintingPolicy &Policy) const override; 4471 getValue()4472 const APValue &getValue() const { return Value; } 4473 Profile(llvm::FoldingSetNodeID & ID,QualType Ty,const APValue & APVal)4474 static void Profile(llvm::FoldingSetNodeID &ID, QualType Ty, 4475 const APValue &APVal) { 4476 Ty.Profile(ID); 4477 APVal.Profile(ID); 4478 } Profile(llvm::FoldingSetNodeID & ID)4479 void Profile(llvm::FoldingSetNodeID &ID) { 4480 Profile(ID, getType(), getValue()); 4481 } 4482 classof(const Decl * D)4483 static bool classof(const Decl *D) { return classofKind(D->getKind()); } classofKind(Kind K)4484 static bool classofKind(Kind K) { return K == Decl::UnnamedGlobalConstant; } 4485 }; 4486 4487 /// Insertion operator for diagnostics. This allows sending an AccessSpecifier 4488 /// into a diagnostic with <<. 4489 const StreamingDiagnostic &operator<<(const StreamingDiagnostic &DB, 4490 AccessSpecifier AS); 4491 4492 } // namespace clang 4493 4494 #endif // LLVM_CLANG_AST_DECLCXX_H 4495