1 //===--- Decl.cpp - Declaration AST Node Implementation -------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the Decl subclasses. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/AST/Decl.h" 15 #include "Linkage.h" 16 #include "clang/AST/ASTContext.h" 17 #include "clang/AST/ASTLambda.h" 18 #include "clang/AST/ASTMutationListener.h" 19 #include "clang/AST/Attr.h" 20 #include "clang/AST/DeclCXX.h" 21 #include "clang/AST/DeclObjC.h" 22 #include "clang/AST/DeclOpenMP.h" 23 #include "clang/AST/DeclTemplate.h" 24 #include "clang/AST/Expr.h" 25 #include "clang/AST/ExprCXX.h" 26 #include "clang/AST/PrettyPrinter.h" 27 #include "clang/AST/Stmt.h" 28 #include "clang/AST/TypeLoc.h" 29 #include "clang/Basic/Builtins.h" 30 #include "clang/Basic/IdentifierTable.h" 31 #include "clang/Basic/Module.h" 32 #include "clang/Basic/Specifiers.h" 33 #include "clang/Basic/TargetInfo.h" 34 #include "clang/Frontend/FrontendDiagnostic.h" 35 #include "llvm/Support/ErrorHandling.h" 36 #include <algorithm> 37 38 using namespace clang; 39 40 Decl *clang::getPrimaryMergedDecl(Decl *D) { 41 return D->getASTContext().getPrimaryMergedDecl(D); 42 } 43 44 // Defined here so that it can be inlined into its direct callers. 45 bool Decl::isOutOfLine() const { 46 return !getLexicalDeclContext()->Equals(getDeclContext()); 47 } 48 49 TranslationUnitDecl::TranslationUnitDecl(ASTContext &ctx) 50 : Decl(TranslationUnit, nullptr, SourceLocation()), 51 DeclContext(TranslationUnit), Ctx(ctx), AnonymousNamespace(nullptr) {} 52 53 //===----------------------------------------------------------------------===// 54 // NamedDecl Implementation 55 //===----------------------------------------------------------------------===// 56 57 // Visibility rules aren't rigorously externally specified, but here 58 // are the basic principles behind what we implement: 59 // 60 // 1. An explicit visibility attribute is generally a direct expression 61 // of the user's intent and should be honored. Only the innermost 62 // visibility attribute applies. If no visibility attribute applies, 63 // global visibility settings are considered. 64 // 65 // 2. There is one caveat to the above: on or in a template pattern, 66 // an explicit visibility attribute is just a default rule, and 67 // visibility can be decreased by the visibility of template 68 // arguments. But this, too, has an exception: an attribute on an 69 // explicit specialization or instantiation causes all the visibility 70 // restrictions of the template arguments to be ignored. 71 // 72 // 3. A variable that does not otherwise have explicit visibility can 73 // be restricted by the visibility of its type. 74 // 75 // 4. A visibility restriction is explicit if it comes from an 76 // attribute (or something like it), not a global visibility setting. 77 // When emitting a reference to an external symbol, visibility 78 // restrictions are ignored unless they are explicit. 79 // 80 // 5. When computing the visibility of a non-type, including a 81 // non-type member of a class, only non-type visibility restrictions 82 // are considered: the 'visibility' attribute, global value-visibility 83 // settings, and a few special cases like __private_extern. 84 // 85 // 6. When computing the visibility of a type, including a type member 86 // of a class, only type visibility restrictions are considered: 87 // the 'type_visibility' attribute and global type-visibility settings. 88 // However, a 'visibility' attribute counts as a 'type_visibility' 89 // attribute on any declaration that only has the former. 90 // 91 // The visibility of a "secondary" entity, like a template argument, 92 // is computed using the kind of that entity, not the kind of the 93 // primary entity for which we are computing visibility. For example, 94 // the visibility of a specialization of either of these templates: 95 // template <class T, bool (&compare)(T, X)> bool has_match(list<T>, X); 96 // template <class T, bool (&compare)(T, X)> class matcher; 97 // is restricted according to the type visibility of the argument 'T', 98 // the type visibility of 'bool(&)(T,X)', and the value visibility of 99 // the argument function 'compare'. That 'has_match' is a value 100 // and 'matcher' is a type only matters when looking for attributes 101 // and settings from the immediate context. 102 103 /// Does this computation kind permit us to consider additional 104 /// visibility settings from attributes and the like? 105 static bool hasExplicitVisibilityAlready(LVComputationKind computation) { 106 return computation.IgnoreExplicitVisibility; 107 } 108 109 /// Given an LVComputationKind, return one of the same type/value sort 110 /// that records that it already has explicit visibility. 111 static LVComputationKind 112 withExplicitVisibilityAlready(LVComputationKind Kind) { 113 Kind.IgnoreExplicitVisibility = true; 114 return Kind; 115 } 116 117 static Optional<Visibility> getExplicitVisibility(const NamedDecl *D, 118 LVComputationKind kind) { 119 assert(!kind.IgnoreExplicitVisibility && 120 "asking for explicit visibility when we shouldn't be"); 121 return D->getExplicitVisibility(kind.getExplicitVisibilityKind()); 122 } 123 124 /// Is the given declaration a "type" or a "value" for the purposes of 125 /// visibility computation? 126 static bool usesTypeVisibility(const NamedDecl *D) { 127 return isa<TypeDecl>(D) || 128 isa<ClassTemplateDecl>(D) || 129 isa<ObjCInterfaceDecl>(D); 130 } 131 132 /// Does the given declaration have member specialization information, 133 /// and if so, is it an explicit specialization? 134 template <class T> static typename 135 std::enable_if<!std::is_base_of<RedeclarableTemplateDecl, T>::value, bool>::type 136 isExplicitMemberSpecialization(const T *D) { 137 if (const MemberSpecializationInfo *member = 138 D->getMemberSpecializationInfo()) { 139 return member->isExplicitSpecialization(); 140 } 141 return false; 142 } 143 144 /// For templates, this question is easier: a member template can't be 145 /// explicitly instantiated, so there's a single bit indicating whether 146 /// or not this is an explicit member specialization. 147 static bool isExplicitMemberSpecialization(const RedeclarableTemplateDecl *D) { 148 return D->isMemberSpecialization(); 149 } 150 151 /// Given a visibility attribute, return the explicit visibility 152 /// associated with it. 153 template <class T> 154 static Visibility getVisibilityFromAttr(const T *attr) { 155 switch (attr->getVisibility()) { 156 case T::Default: 157 return DefaultVisibility; 158 case T::Hidden: 159 return HiddenVisibility; 160 case T::Protected: 161 return ProtectedVisibility; 162 } 163 llvm_unreachable("bad visibility kind"); 164 } 165 166 /// Return the explicit visibility of the given declaration. 167 static Optional<Visibility> getVisibilityOf(const NamedDecl *D, 168 NamedDecl::ExplicitVisibilityKind kind) { 169 // If we're ultimately computing the visibility of a type, look for 170 // a 'type_visibility' attribute before looking for 'visibility'. 171 if (kind == NamedDecl::VisibilityForType) { 172 if (const auto *A = D->getAttr<TypeVisibilityAttr>()) { 173 return getVisibilityFromAttr(A); 174 } 175 } 176 177 // If this declaration has an explicit visibility attribute, use it. 178 if (const auto *A = D->getAttr<VisibilityAttr>()) { 179 return getVisibilityFromAttr(A); 180 } 181 182 return None; 183 } 184 185 LinkageInfo LinkageComputer::getLVForType(const Type &T, 186 LVComputationKind computation) { 187 if (computation.IgnoreAllVisibility) 188 return LinkageInfo(T.getLinkage(), DefaultVisibility, true); 189 return getTypeLinkageAndVisibility(&T); 190 } 191 192 /// \brief Get the most restrictive linkage for the types in the given 193 /// template parameter list. For visibility purposes, template 194 /// parameters are part of the signature of a template. 195 LinkageInfo LinkageComputer::getLVForTemplateParameterList( 196 const TemplateParameterList *Params, LVComputationKind computation) { 197 LinkageInfo LV; 198 for (const NamedDecl *P : *Params) { 199 // Template type parameters are the most common and never 200 // contribute to visibility, pack or not. 201 if (isa<TemplateTypeParmDecl>(P)) 202 continue; 203 204 // Non-type template parameters can be restricted by the value type, e.g. 205 // template <enum X> class A { ... }; 206 // We have to be careful here, though, because we can be dealing with 207 // dependent types. 208 if (const auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(P)) { 209 // Handle the non-pack case first. 210 if (!NTTP->isExpandedParameterPack()) { 211 if (!NTTP->getType()->isDependentType()) { 212 LV.merge(getLVForType(*NTTP->getType(), computation)); 213 } 214 continue; 215 } 216 217 // Look at all the types in an expanded pack. 218 for (unsigned i = 0, n = NTTP->getNumExpansionTypes(); i != n; ++i) { 219 QualType type = NTTP->getExpansionType(i); 220 if (!type->isDependentType()) 221 LV.merge(getTypeLinkageAndVisibility(type)); 222 } 223 continue; 224 } 225 226 // Template template parameters can be restricted by their 227 // template parameters, recursively. 228 const auto *TTP = cast<TemplateTemplateParmDecl>(P); 229 230 // Handle the non-pack case first. 231 if (!TTP->isExpandedParameterPack()) { 232 LV.merge(getLVForTemplateParameterList(TTP->getTemplateParameters(), 233 computation)); 234 continue; 235 } 236 237 // Look at all expansions in an expanded pack. 238 for (unsigned i = 0, n = TTP->getNumExpansionTemplateParameters(); 239 i != n; ++i) { 240 LV.merge(getLVForTemplateParameterList( 241 TTP->getExpansionTemplateParameters(i), computation)); 242 } 243 } 244 245 return LV; 246 } 247 248 static const Decl *getOutermostFuncOrBlockContext(const Decl *D) { 249 const Decl *Ret = nullptr; 250 const DeclContext *DC = D->getDeclContext(); 251 while (DC->getDeclKind() != Decl::TranslationUnit) { 252 if (isa<FunctionDecl>(DC) || isa<BlockDecl>(DC)) 253 Ret = cast<Decl>(DC); 254 DC = DC->getParent(); 255 } 256 return Ret; 257 } 258 259 /// \brief Get the most restrictive linkage for the types and 260 /// declarations in the given template argument list. 261 /// 262 /// Note that we don't take an LVComputationKind because we always 263 /// want to honor the visibility of template arguments in the same way. 264 LinkageInfo 265 LinkageComputer::getLVForTemplateArgumentList(ArrayRef<TemplateArgument> Args, 266 LVComputationKind computation) { 267 LinkageInfo LV; 268 269 for (const TemplateArgument &Arg : Args) { 270 switch (Arg.getKind()) { 271 case TemplateArgument::Null: 272 case TemplateArgument::Integral: 273 case TemplateArgument::Expression: 274 continue; 275 276 case TemplateArgument::Type: 277 LV.merge(getLVForType(*Arg.getAsType(), computation)); 278 continue; 279 280 case TemplateArgument::Declaration: 281 if (const auto *ND = dyn_cast<NamedDecl>(Arg.getAsDecl())) { 282 assert(!usesTypeVisibility(ND)); 283 LV.merge(getLVForDecl(ND, computation)); 284 } 285 continue; 286 287 case TemplateArgument::NullPtr: 288 LV.merge(getTypeLinkageAndVisibility(Arg.getNullPtrType())); 289 continue; 290 291 case TemplateArgument::Template: 292 case TemplateArgument::TemplateExpansion: 293 if (TemplateDecl *Template = 294 Arg.getAsTemplateOrTemplatePattern().getAsTemplateDecl()) 295 LV.merge(getLVForDecl(Template, computation)); 296 continue; 297 298 case TemplateArgument::Pack: 299 LV.merge(getLVForTemplateArgumentList(Arg.getPackAsArray(), computation)); 300 continue; 301 } 302 llvm_unreachable("bad template argument kind"); 303 } 304 305 return LV; 306 } 307 308 LinkageInfo 309 LinkageComputer::getLVForTemplateArgumentList(const TemplateArgumentList &TArgs, 310 LVComputationKind computation) { 311 return getLVForTemplateArgumentList(TArgs.asArray(), computation); 312 } 313 314 static bool shouldConsiderTemplateVisibility(const FunctionDecl *fn, 315 const FunctionTemplateSpecializationInfo *specInfo) { 316 // Include visibility from the template parameters and arguments 317 // only if this is not an explicit instantiation or specialization 318 // with direct explicit visibility. (Implicit instantiations won't 319 // have a direct attribute.) 320 if (!specInfo->isExplicitInstantiationOrSpecialization()) 321 return true; 322 323 return !fn->hasAttr<VisibilityAttr>(); 324 } 325 326 /// Merge in template-related linkage and visibility for the given 327 /// function template specialization. 328 /// 329 /// We don't need a computation kind here because we can assume 330 /// LVForValue. 331 /// 332 /// \param[out] LV the computation to use for the parent 333 void LinkageComputer::mergeTemplateLV( 334 LinkageInfo &LV, const FunctionDecl *fn, 335 const FunctionTemplateSpecializationInfo *specInfo, 336 LVComputationKind computation) { 337 bool considerVisibility = 338 shouldConsiderTemplateVisibility(fn, specInfo); 339 340 // Merge information from the template parameters. 341 FunctionTemplateDecl *temp = specInfo->getTemplate(); 342 LinkageInfo tempLV = 343 getLVForTemplateParameterList(temp->getTemplateParameters(), computation); 344 LV.mergeMaybeWithVisibility(tempLV, considerVisibility); 345 346 // Merge information from the template arguments. 347 const TemplateArgumentList &templateArgs = *specInfo->TemplateArguments; 348 LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation); 349 LV.mergeMaybeWithVisibility(argsLV, considerVisibility); 350 } 351 352 /// Does the given declaration have a direct visibility attribute 353 /// that would match the given rules? 354 static bool hasDirectVisibilityAttribute(const NamedDecl *D, 355 LVComputationKind computation) { 356 if (computation.IgnoreAllVisibility) 357 return false; 358 359 return (computation.isTypeVisibility() && D->hasAttr<TypeVisibilityAttr>()) || 360 D->hasAttr<VisibilityAttr>(); 361 } 362 363 /// Should we consider visibility associated with the template 364 /// arguments and parameters of the given class template specialization? 365 static bool shouldConsiderTemplateVisibility( 366 const ClassTemplateSpecializationDecl *spec, 367 LVComputationKind computation) { 368 // Include visibility from the template parameters and arguments 369 // only if this is not an explicit instantiation or specialization 370 // with direct explicit visibility (and note that implicit 371 // instantiations won't have a direct attribute). 372 // 373 // Furthermore, we want to ignore template parameters and arguments 374 // for an explicit specialization when computing the visibility of a 375 // member thereof with explicit visibility. 376 // 377 // This is a bit complex; let's unpack it. 378 // 379 // An explicit class specialization is an independent, top-level 380 // declaration. As such, if it or any of its members has an 381 // explicit visibility attribute, that must directly express the 382 // user's intent, and we should honor it. The same logic applies to 383 // an explicit instantiation of a member of such a thing. 384 385 // Fast path: if this is not an explicit instantiation or 386 // specialization, we always want to consider template-related 387 // visibility restrictions. 388 if (!spec->isExplicitInstantiationOrSpecialization()) 389 return true; 390 391 // This is the 'member thereof' check. 392 if (spec->isExplicitSpecialization() && 393 hasExplicitVisibilityAlready(computation)) 394 return false; 395 396 return !hasDirectVisibilityAttribute(spec, computation); 397 } 398 399 /// Merge in template-related linkage and visibility for the given 400 /// class template specialization. 401 void LinkageComputer::mergeTemplateLV( 402 LinkageInfo &LV, const ClassTemplateSpecializationDecl *spec, 403 LVComputationKind computation) { 404 bool considerVisibility = shouldConsiderTemplateVisibility(spec, computation); 405 406 // Merge information from the template parameters, but ignore 407 // visibility if we're only considering template arguments. 408 409 ClassTemplateDecl *temp = spec->getSpecializedTemplate(); 410 LinkageInfo tempLV = 411 getLVForTemplateParameterList(temp->getTemplateParameters(), computation); 412 LV.mergeMaybeWithVisibility(tempLV, 413 considerVisibility && !hasExplicitVisibilityAlready(computation)); 414 415 // Merge information from the template arguments. We ignore 416 // template-argument visibility if we've got an explicit 417 // instantiation with a visibility attribute. 418 const TemplateArgumentList &templateArgs = spec->getTemplateArgs(); 419 LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation); 420 if (considerVisibility) 421 LV.mergeVisibility(argsLV); 422 LV.mergeExternalVisibility(argsLV); 423 } 424 425 /// Should we consider visibility associated with the template 426 /// arguments and parameters of the given variable template 427 /// specialization? As usual, follow class template specialization 428 /// logic up to initialization. 429 static bool shouldConsiderTemplateVisibility( 430 const VarTemplateSpecializationDecl *spec, 431 LVComputationKind computation) { 432 // Include visibility from the template parameters and arguments 433 // only if this is not an explicit instantiation or specialization 434 // with direct explicit visibility (and note that implicit 435 // instantiations won't have a direct attribute). 436 if (!spec->isExplicitInstantiationOrSpecialization()) 437 return true; 438 439 // An explicit variable specialization is an independent, top-level 440 // declaration. As such, if it has an explicit visibility attribute, 441 // that must directly express the user's intent, and we should honor 442 // it. 443 if (spec->isExplicitSpecialization() && 444 hasExplicitVisibilityAlready(computation)) 445 return false; 446 447 return !hasDirectVisibilityAttribute(spec, computation); 448 } 449 450 /// Merge in template-related linkage and visibility for the given 451 /// variable template specialization. As usual, follow class template 452 /// specialization logic up to initialization. 453 void LinkageComputer::mergeTemplateLV(LinkageInfo &LV, 454 const VarTemplateSpecializationDecl *spec, 455 LVComputationKind computation) { 456 bool considerVisibility = shouldConsiderTemplateVisibility(spec, computation); 457 458 // Merge information from the template parameters, but ignore 459 // visibility if we're only considering template arguments. 460 461 VarTemplateDecl *temp = spec->getSpecializedTemplate(); 462 LinkageInfo tempLV = 463 getLVForTemplateParameterList(temp->getTemplateParameters(), computation); 464 LV.mergeMaybeWithVisibility(tempLV, 465 considerVisibility && !hasExplicitVisibilityAlready(computation)); 466 467 // Merge information from the template arguments. We ignore 468 // template-argument visibility if we've got an explicit 469 // instantiation with a visibility attribute. 470 const TemplateArgumentList &templateArgs = spec->getTemplateArgs(); 471 LinkageInfo argsLV = getLVForTemplateArgumentList(templateArgs, computation); 472 if (considerVisibility) 473 LV.mergeVisibility(argsLV); 474 LV.mergeExternalVisibility(argsLV); 475 } 476 477 static bool useInlineVisibilityHidden(const NamedDecl *D) { 478 // FIXME: we should warn if -fvisibility-inlines-hidden is used with c. 479 const LangOptions &Opts = D->getASTContext().getLangOpts(); 480 if (!Opts.CPlusPlus || !Opts.InlineVisibilityHidden) 481 return false; 482 483 const auto *FD = dyn_cast<FunctionDecl>(D); 484 if (!FD) 485 return false; 486 487 TemplateSpecializationKind TSK = TSK_Undeclared; 488 if (FunctionTemplateSpecializationInfo *spec 489 = FD->getTemplateSpecializationInfo()) { 490 TSK = spec->getTemplateSpecializationKind(); 491 } else if (MemberSpecializationInfo *MSI = 492 FD->getMemberSpecializationInfo()) { 493 TSK = MSI->getTemplateSpecializationKind(); 494 } 495 496 const FunctionDecl *Def = nullptr; 497 // InlineVisibilityHidden only applies to definitions, and 498 // isInlined() only gives meaningful answers on definitions 499 // anyway. 500 return TSK != TSK_ExplicitInstantiationDeclaration && 501 TSK != TSK_ExplicitInstantiationDefinition && 502 FD->hasBody(Def) && Def->isInlined() && !Def->hasAttr<GNUInlineAttr>(); 503 } 504 505 template <typename T> static bool isFirstInExternCContext(T *D) { 506 const T *First = D->getFirstDecl(); 507 return First->isInExternCContext(); 508 } 509 510 static bool isSingleLineLanguageLinkage(const Decl &D) { 511 if (const auto *SD = dyn_cast<LinkageSpecDecl>(D.getDeclContext())) 512 if (!SD->hasBraces()) 513 return true; 514 return false; 515 } 516 517 static bool isExportedFromModuleIntefaceUnit(const NamedDecl *D) { 518 // FIXME: Handle isModulePrivate. 519 switch (D->getModuleOwnershipKind()) { 520 case Decl::ModuleOwnershipKind::Unowned: 521 case Decl::ModuleOwnershipKind::ModulePrivate: 522 return false; 523 case Decl::ModuleOwnershipKind::Visible: 524 case Decl::ModuleOwnershipKind::VisibleWhenImported: 525 if (auto *M = D->getOwningModule()) 526 return M->Kind == Module::ModuleInterfaceUnit; 527 } 528 llvm_unreachable("unexpected module ownership kind"); 529 } 530 531 static LinkageInfo getInternalLinkageFor(const NamedDecl *D) { 532 // Internal linkage declarations within a module interface unit are modeled 533 // as "module-internal linkage", which means that they have internal linkage 534 // formally but can be indirectly accessed from outside the module via inline 535 // functions and templates defined within the module. 536 if (auto *M = D->getOwningModule()) 537 if (M->Kind == Module::ModuleInterfaceUnit) 538 return LinkageInfo(ModuleInternalLinkage, DefaultVisibility, false); 539 540 return LinkageInfo::internal(); 541 } 542 543 static LinkageInfo getExternalLinkageFor(const NamedDecl *D) { 544 // C++ Modules TS [basic.link]/6.8: 545 // - A name declared at namespace scope that does not have internal linkage 546 // by the previous rules and that is introduced by a non-exported 547 // declaration has module linkage. 548 if (auto *M = D->getOwningModule()) 549 if (M->Kind == Module::ModuleInterfaceUnit) 550 if (!isExportedFromModuleIntefaceUnit( 551 cast<NamedDecl>(D->getCanonicalDecl()))) 552 return LinkageInfo(ModuleLinkage, DefaultVisibility, false); 553 554 return LinkageInfo::external(); 555 } 556 557 LinkageInfo 558 LinkageComputer::getLVForNamespaceScopeDecl(const NamedDecl *D, 559 LVComputationKind computation, 560 bool IgnoreVarTypeLinkage) { 561 assert(D->getDeclContext()->getRedeclContext()->isFileContext() && 562 "Not a name having namespace scope"); 563 ASTContext &Context = D->getASTContext(); 564 565 // C++ [basic.link]p3: 566 // A name having namespace scope (3.3.6) has internal linkage if it 567 // is the name of 568 // - an object, reference, function or function template that is 569 // explicitly declared static; or, 570 // (This bullet corresponds to C99 6.2.2p3.) 571 if (const auto *Var = dyn_cast<VarDecl>(D)) { 572 // Explicitly declared static. 573 if (Var->getStorageClass() == SC_Static) 574 return getInternalLinkageFor(Var); 575 576 // - a non-inline, non-volatile object or reference that is explicitly 577 // declared const or constexpr and neither explicitly declared extern 578 // nor previously declared to have external linkage; or (there is no 579 // equivalent in C99) 580 // The C++ modules TS adds "non-exported" to this list. 581 if (Context.getLangOpts().CPlusPlus && 582 Var->getType().isConstQualified() && 583 !Var->getType().isVolatileQualified() && 584 !Var->isInline() && 585 !isExportedFromModuleIntefaceUnit(Var)) { 586 const VarDecl *PrevVar = Var->getPreviousDecl(); 587 if (PrevVar) 588 return getLVForDecl(PrevVar, computation); 589 590 if (Var->getStorageClass() != SC_Extern && 591 Var->getStorageClass() != SC_PrivateExtern && 592 !isSingleLineLanguageLinkage(*Var)) 593 return getInternalLinkageFor(Var); 594 } 595 596 for (const VarDecl *PrevVar = Var->getPreviousDecl(); PrevVar; 597 PrevVar = PrevVar->getPreviousDecl()) { 598 if (PrevVar->getStorageClass() == SC_PrivateExtern && 599 Var->getStorageClass() == SC_None) 600 return getDeclLinkageAndVisibility(PrevVar); 601 // Explicitly declared static. 602 if (PrevVar->getStorageClass() == SC_Static) 603 return getInternalLinkageFor(Var); 604 } 605 } else if (const FunctionDecl *Function = D->getAsFunction()) { 606 // C++ [temp]p4: 607 // A non-member function template can have internal linkage; any 608 // other template name shall have external linkage. 609 610 // Explicitly declared static. 611 if (Function->getCanonicalDecl()->getStorageClass() == SC_Static) 612 return getInternalLinkageFor(Function); 613 } else if (const auto *IFD = dyn_cast<IndirectFieldDecl>(D)) { 614 // - a data member of an anonymous union. 615 const VarDecl *VD = IFD->getVarDecl(); 616 assert(VD && "Expected a VarDecl in this IndirectFieldDecl!"); 617 return getLVForNamespaceScopeDecl(VD, computation, IgnoreVarTypeLinkage); 618 } 619 assert(!isa<FieldDecl>(D) && "Didn't expect a FieldDecl!"); 620 621 if (D->isInAnonymousNamespace()) { 622 const auto *Var = dyn_cast<VarDecl>(D); 623 const auto *Func = dyn_cast<FunctionDecl>(D); 624 // FIXME: The check for extern "C" here is not justified by the standard 625 // wording, but we retain it from the pre-DR1113 model to avoid breaking 626 // code. 627 // 628 // C++11 [basic.link]p4: 629 // An unnamed namespace or a namespace declared directly or indirectly 630 // within an unnamed namespace has internal linkage. 631 if ((!Var || !isFirstInExternCContext(Var)) && 632 (!Func || !isFirstInExternCContext(Func))) 633 return getInternalLinkageFor(D); 634 } 635 636 // Set up the defaults. 637 638 // C99 6.2.2p5: 639 // If the declaration of an identifier for an object has file 640 // scope and no storage-class specifier, its linkage is 641 // external. 642 LinkageInfo LV = getExternalLinkageFor(D); 643 644 if (!hasExplicitVisibilityAlready(computation)) { 645 if (Optional<Visibility> Vis = getExplicitVisibility(D, computation)) { 646 LV.mergeVisibility(*Vis, true); 647 } else { 648 // If we're declared in a namespace with a visibility attribute, 649 // use that namespace's visibility, and it still counts as explicit. 650 for (const DeclContext *DC = D->getDeclContext(); 651 !isa<TranslationUnitDecl>(DC); 652 DC = DC->getParent()) { 653 const auto *ND = dyn_cast<NamespaceDecl>(DC); 654 if (!ND) continue; 655 if (Optional<Visibility> Vis = getExplicitVisibility(ND, computation)) { 656 LV.mergeVisibility(*Vis, true); 657 break; 658 } 659 } 660 } 661 662 // Add in global settings if the above didn't give us direct visibility. 663 if (!LV.isVisibilityExplicit()) { 664 // Use global type/value visibility as appropriate. 665 Visibility globalVisibility = 666 computation.isValueVisibility() 667 ? Context.getLangOpts().getValueVisibilityMode() 668 : Context.getLangOpts().getTypeVisibilityMode(); 669 LV.mergeVisibility(globalVisibility, /*explicit*/ false); 670 671 // If we're paying attention to global visibility, apply 672 // -finline-visibility-hidden if this is an inline method. 673 if (useInlineVisibilityHidden(D)) 674 LV.mergeVisibility(HiddenVisibility, true); 675 } 676 } 677 678 // C++ [basic.link]p4: 679 680 // A name having namespace scope has external linkage if it is the 681 // name of 682 // 683 // - an object or reference, unless it has internal linkage; or 684 if (const auto *Var = dyn_cast<VarDecl>(D)) { 685 // GCC applies the following optimization to variables and static 686 // data members, but not to functions: 687 // 688 // Modify the variable's LV by the LV of its type unless this is 689 // C or extern "C". This follows from [basic.link]p9: 690 // A type without linkage shall not be used as the type of a 691 // variable or function with external linkage unless 692 // - the entity has C language linkage, or 693 // - the entity is declared within an unnamed namespace, or 694 // - the entity is not used or is defined in the same 695 // translation unit. 696 // and [basic.link]p10: 697 // ...the types specified by all declarations referring to a 698 // given variable or function shall be identical... 699 // C does not have an equivalent rule. 700 // 701 // Ignore this if we've got an explicit attribute; the user 702 // probably knows what they're doing. 703 // 704 // Note that we don't want to make the variable non-external 705 // because of this, but unique-external linkage suits us. 706 if (Context.getLangOpts().CPlusPlus && !isFirstInExternCContext(Var) && 707 !IgnoreVarTypeLinkage) { 708 LinkageInfo TypeLV = getLVForType(*Var->getType(), computation); 709 if (!isExternallyVisible(TypeLV.getLinkage())) 710 return LinkageInfo::uniqueExternal(); 711 if (!LV.isVisibilityExplicit()) 712 LV.mergeVisibility(TypeLV); 713 } 714 715 if (Var->getStorageClass() == SC_PrivateExtern) 716 LV.mergeVisibility(HiddenVisibility, true); 717 718 // Note that Sema::MergeVarDecl already takes care of implementing 719 // C99 6.2.2p4 and propagating the visibility attribute, so we don't have 720 // to do it here. 721 722 // As per function and class template specializations (below), 723 // consider LV for the template and template arguments. We're at file 724 // scope, so we do not need to worry about nested specializations. 725 if (const auto *spec = dyn_cast<VarTemplateSpecializationDecl>(Var)) { 726 mergeTemplateLV(LV, spec, computation); 727 } 728 729 // - a function, unless it has internal linkage; or 730 } else if (const auto *Function = dyn_cast<FunctionDecl>(D)) { 731 // In theory, we can modify the function's LV by the LV of its 732 // type unless it has C linkage (see comment above about variables 733 // for justification). In practice, GCC doesn't do this, so it's 734 // just too painful to make work. 735 736 if (Function->getStorageClass() == SC_PrivateExtern) 737 LV.mergeVisibility(HiddenVisibility, true); 738 739 // Note that Sema::MergeCompatibleFunctionDecls already takes care of 740 // merging storage classes and visibility attributes, so we don't have to 741 // look at previous decls in here. 742 743 // In C++, then if the type of the function uses a type with 744 // unique-external linkage, it's not legally usable from outside 745 // this translation unit. However, we should use the C linkage 746 // rules instead for extern "C" declarations. 747 if (Context.getLangOpts().CPlusPlus && !Function->isInExternCContext()) { 748 // Only look at the type-as-written. Otherwise, deducing the return type 749 // of a function could change its linkage. 750 QualType TypeAsWritten = Function->getType(); 751 if (TypeSourceInfo *TSI = Function->getTypeSourceInfo()) 752 TypeAsWritten = TSI->getType(); 753 if (!isExternallyVisible(TypeAsWritten->getLinkage())) 754 return LinkageInfo::uniqueExternal(); 755 } 756 757 // Consider LV from the template and the template arguments. 758 // We're at file scope, so we do not need to worry about nested 759 // specializations. 760 if (FunctionTemplateSpecializationInfo *specInfo 761 = Function->getTemplateSpecializationInfo()) { 762 mergeTemplateLV(LV, Function, specInfo, computation); 763 } 764 765 // - a named class (Clause 9), or an unnamed class defined in a 766 // typedef declaration in which the class has the typedef name 767 // for linkage purposes (7.1.3); or 768 // - a named enumeration (7.2), or an unnamed enumeration 769 // defined in a typedef declaration in which the enumeration 770 // has the typedef name for linkage purposes (7.1.3); or 771 } else if (const auto *Tag = dyn_cast<TagDecl>(D)) { 772 // Unnamed tags have no linkage. 773 if (!Tag->hasNameForLinkage()) 774 return LinkageInfo::none(); 775 776 // If this is a class template specialization, consider the 777 // linkage of the template and template arguments. We're at file 778 // scope, so we do not need to worry about nested specializations. 779 if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(Tag)) { 780 mergeTemplateLV(LV, spec, computation); 781 } 782 783 // - an enumerator belonging to an enumeration with external linkage; 784 } else if (isa<EnumConstantDecl>(D)) { 785 LinkageInfo EnumLV = getLVForDecl(cast<NamedDecl>(D->getDeclContext()), 786 computation); 787 if (!isExternalFormalLinkage(EnumLV.getLinkage())) 788 return LinkageInfo::none(); 789 LV.merge(EnumLV); 790 791 // - a template, unless it is a function template that has 792 // internal linkage (Clause 14); 793 } else if (const auto *temp = dyn_cast<TemplateDecl>(D)) { 794 bool considerVisibility = !hasExplicitVisibilityAlready(computation); 795 LinkageInfo tempLV = 796 getLVForTemplateParameterList(temp->getTemplateParameters(), computation); 797 LV.mergeMaybeWithVisibility(tempLV, considerVisibility); 798 799 // - a namespace (7.3), unless it is declared within an unnamed 800 // namespace. 801 // 802 // We handled names in anonymous namespaces above. 803 } else if (isa<NamespaceDecl>(D)) { 804 return LV; 805 806 // By extension, we assign external linkage to Objective-C 807 // interfaces. 808 } else if (isa<ObjCInterfaceDecl>(D)) { 809 // fallout 810 811 } else if (auto *TD = dyn_cast<TypedefNameDecl>(D)) { 812 // A typedef declaration has linkage if it gives a type a name for 813 // linkage purposes. 814 if (!TD->getAnonDeclWithTypedefName(/*AnyRedecl*/true)) 815 return LinkageInfo::none(); 816 817 // Everything not covered here has no linkage. 818 } else { 819 return LinkageInfo::none(); 820 } 821 822 // If we ended up with non-externally-visible linkage, visibility should 823 // always be default. 824 if (!isExternallyVisible(LV.getLinkage())) 825 return LinkageInfo(LV.getLinkage(), DefaultVisibility, false); 826 827 return LV; 828 } 829 830 LinkageInfo 831 LinkageComputer::getLVForClassMember(const NamedDecl *D, 832 LVComputationKind computation, 833 bool IgnoreVarTypeLinkage) { 834 // Only certain class members have linkage. Note that fields don't 835 // really have linkage, but it's convenient to say they do for the 836 // purposes of calculating linkage of pointer-to-data-member 837 // template arguments. 838 // 839 // Templates also don't officially have linkage, but since we ignore 840 // the C++ standard and look at template arguments when determining 841 // linkage and visibility of a template specialization, we might hit 842 // a template template argument that way. If we do, we need to 843 // consider its linkage. 844 if (!(isa<CXXMethodDecl>(D) || 845 isa<VarDecl>(D) || 846 isa<FieldDecl>(D) || 847 isa<IndirectFieldDecl>(D) || 848 isa<TagDecl>(D) || 849 isa<TemplateDecl>(D))) 850 return LinkageInfo::none(); 851 852 LinkageInfo LV; 853 854 // If we have an explicit visibility attribute, merge that in. 855 if (!hasExplicitVisibilityAlready(computation)) { 856 if (Optional<Visibility> Vis = getExplicitVisibility(D, computation)) 857 LV.mergeVisibility(*Vis, true); 858 // If we're paying attention to global visibility, apply 859 // -finline-visibility-hidden if this is an inline method. 860 // 861 // Note that we do this before merging information about 862 // the class visibility. 863 if (!LV.isVisibilityExplicit() && useInlineVisibilityHidden(D)) 864 LV.mergeVisibility(HiddenVisibility, true); 865 } 866 867 // If this class member has an explicit visibility attribute, the only 868 // thing that can change its visibility is the template arguments, so 869 // only look for them when processing the class. 870 LVComputationKind classComputation = computation; 871 if (LV.isVisibilityExplicit()) 872 classComputation = withExplicitVisibilityAlready(computation); 873 874 LinkageInfo classLV = 875 getLVForDecl(cast<RecordDecl>(D->getDeclContext()), classComputation); 876 // The member has the same linkage as the class. If that's not externally 877 // visible, we don't need to compute anything about the linkage. 878 // FIXME: If we're only computing linkage, can we bail out here? 879 if (!isExternallyVisible(classLV.getLinkage())) 880 return classLV; 881 882 883 // Otherwise, don't merge in classLV yet, because in certain cases 884 // we need to completely ignore the visibility from it. 885 886 // Specifically, if this decl exists and has an explicit attribute. 887 const NamedDecl *explicitSpecSuppressor = nullptr; 888 889 if (const auto *MD = dyn_cast<CXXMethodDecl>(D)) { 890 // Only look at the type-as-written. Otherwise, deducing the return type 891 // of a function could change its linkage. 892 QualType TypeAsWritten = MD->getType(); 893 if (TypeSourceInfo *TSI = MD->getTypeSourceInfo()) 894 TypeAsWritten = TSI->getType(); 895 if (!isExternallyVisible(TypeAsWritten->getLinkage())) 896 return LinkageInfo::uniqueExternal(); 897 898 // If this is a method template specialization, use the linkage for 899 // the template parameters and arguments. 900 if (FunctionTemplateSpecializationInfo *spec 901 = MD->getTemplateSpecializationInfo()) { 902 mergeTemplateLV(LV, MD, spec, computation); 903 if (spec->isExplicitSpecialization()) { 904 explicitSpecSuppressor = MD; 905 } else if (isExplicitMemberSpecialization(spec->getTemplate())) { 906 explicitSpecSuppressor = spec->getTemplate()->getTemplatedDecl(); 907 } 908 } else if (isExplicitMemberSpecialization(MD)) { 909 explicitSpecSuppressor = MD; 910 } 911 912 } else if (const auto *RD = dyn_cast<CXXRecordDecl>(D)) { 913 if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(RD)) { 914 mergeTemplateLV(LV, spec, computation); 915 if (spec->isExplicitSpecialization()) { 916 explicitSpecSuppressor = spec; 917 } else { 918 const ClassTemplateDecl *temp = spec->getSpecializedTemplate(); 919 if (isExplicitMemberSpecialization(temp)) { 920 explicitSpecSuppressor = temp->getTemplatedDecl(); 921 } 922 } 923 } else if (isExplicitMemberSpecialization(RD)) { 924 explicitSpecSuppressor = RD; 925 } 926 927 // Static data members. 928 } else if (const auto *VD = dyn_cast<VarDecl>(D)) { 929 if (const auto *spec = dyn_cast<VarTemplateSpecializationDecl>(VD)) 930 mergeTemplateLV(LV, spec, computation); 931 932 // Modify the variable's linkage by its type, but ignore the 933 // type's visibility unless it's a definition. 934 if (!IgnoreVarTypeLinkage) { 935 LinkageInfo typeLV = getLVForType(*VD->getType(), computation); 936 // FIXME: If the type's linkage is not externally visible, we can 937 // give this static data member UniqueExternalLinkage. 938 if (!LV.isVisibilityExplicit() && !classLV.isVisibilityExplicit()) 939 LV.mergeVisibility(typeLV); 940 LV.mergeExternalVisibility(typeLV); 941 } 942 943 if (isExplicitMemberSpecialization(VD)) { 944 explicitSpecSuppressor = VD; 945 } 946 947 // Template members. 948 } else if (const auto *temp = dyn_cast<TemplateDecl>(D)) { 949 bool considerVisibility = 950 (!LV.isVisibilityExplicit() && 951 !classLV.isVisibilityExplicit() && 952 !hasExplicitVisibilityAlready(computation)); 953 LinkageInfo tempLV = 954 getLVForTemplateParameterList(temp->getTemplateParameters(), computation); 955 LV.mergeMaybeWithVisibility(tempLV, considerVisibility); 956 957 if (const auto *redeclTemp = dyn_cast<RedeclarableTemplateDecl>(temp)) { 958 if (isExplicitMemberSpecialization(redeclTemp)) { 959 explicitSpecSuppressor = temp->getTemplatedDecl(); 960 } 961 } 962 } 963 964 // We should never be looking for an attribute directly on a template. 965 assert(!explicitSpecSuppressor || !isa<TemplateDecl>(explicitSpecSuppressor)); 966 967 // If this member is an explicit member specialization, and it has 968 // an explicit attribute, ignore visibility from the parent. 969 bool considerClassVisibility = true; 970 if (explicitSpecSuppressor && 971 // optimization: hasDVA() is true only with explicit visibility. 972 LV.isVisibilityExplicit() && 973 classLV.getVisibility() != DefaultVisibility && 974 hasDirectVisibilityAttribute(explicitSpecSuppressor, computation)) { 975 considerClassVisibility = false; 976 } 977 978 // Finally, merge in information from the class. 979 LV.mergeMaybeWithVisibility(classLV, considerClassVisibility); 980 return LV; 981 } 982 983 void NamedDecl::anchor() { } 984 985 bool NamedDecl::isLinkageValid() const { 986 if (!hasCachedLinkage()) 987 return true; 988 989 Linkage L = LinkageComputer{} 990 .computeLVForDecl(this, LVComputationKind::forLinkageOnly()) 991 .getLinkage(); 992 return L == getCachedLinkage(); 993 } 994 995 ObjCStringFormatFamily NamedDecl::getObjCFStringFormattingFamily() const { 996 StringRef name = getName(); 997 if (name.empty()) return SFF_None; 998 999 if (name.front() == 'C') 1000 if (name == "CFStringCreateWithFormat" || 1001 name == "CFStringCreateWithFormatAndArguments" || 1002 name == "CFStringAppendFormat" || 1003 name == "CFStringAppendFormatAndArguments") 1004 return SFF_CFString; 1005 return SFF_None; 1006 } 1007 1008 Linkage NamedDecl::getLinkageInternal() const { 1009 // We don't care about visibility here, so ask for the cheapest 1010 // possible visibility analysis. 1011 return LinkageComputer{} 1012 .getLVForDecl(this, LVComputationKind::forLinkageOnly()) 1013 .getLinkage(); 1014 } 1015 1016 LinkageInfo NamedDecl::getLinkageAndVisibility() const { 1017 return LinkageComputer{}.getDeclLinkageAndVisibility(this); 1018 } 1019 1020 static Optional<Visibility> 1021 getExplicitVisibilityAux(const NamedDecl *ND, 1022 NamedDecl::ExplicitVisibilityKind kind, 1023 bool IsMostRecent) { 1024 assert(!IsMostRecent || ND == ND->getMostRecentDecl()); 1025 1026 // Check the declaration itself first. 1027 if (Optional<Visibility> V = getVisibilityOf(ND, kind)) 1028 return V; 1029 1030 // If this is a member class of a specialization of a class template 1031 // and the corresponding decl has explicit visibility, use that. 1032 if (const auto *RD = dyn_cast<CXXRecordDecl>(ND)) { 1033 CXXRecordDecl *InstantiatedFrom = RD->getInstantiatedFromMemberClass(); 1034 if (InstantiatedFrom) 1035 return getVisibilityOf(InstantiatedFrom, kind); 1036 } 1037 1038 // If there wasn't explicit visibility there, and this is a 1039 // specialization of a class template, check for visibility 1040 // on the pattern. 1041 if (const auto *spec = dyn_cast<ClassTemplateSpecializationDecl>(ND)) 1042 return getVisibilityOf(spec->getSpecializedTemplate()->getTemplatedDecl(), 1043 kind); 1044 1045 // Use the most recent declaration. 1046 if (!IsMostRecent && !isa<NamespaceDecl>(ND)) { 1047 const NamedDecl *MostRecent = ND->getMostRecentDecl(); 1048 if (MostRecent != ND) 1049 return getExplicitVisibilityAux(MostRecent, kind, true); 1050 } 1051 1052 if (const auto *Var = dyn_cast<VarDecl>(ND)) { 1053 if (Var->isStaticDataMember()) { 1054 VarDecl *InstantiatedFrom = Var->getInstantiatedFromStaticDataMember(); 1055 if (InstantiatedFrom) 1056 return getVisibilityOf(InstantiatedFrom, kind); 1057 } 1058 1059 if (const auto *VTSD = dyn_cast<VarTemplateSpecializationDecl>(Var)) 1060 return getVisibilityOf(VTSD->getSpecializedTemplate()->getTemplatedDecl(), 1061 kind); 1062 1063 return None; 1064 } 1065 // Also handle function template specializations. 1066 if (const auto *fn = dyn_cast<FunctionDecl>(ND)) { 1067 // If the function is a specialization of a template with an 1068 // explicit visibility attribute, use that. 1069 if (FunctionTemplateSpecializationInfo *templateInfo 1070 = fn->getTemplateSpecializationInfo()) 1071 return getVisibilityOf(templateInfo->getTemplate()->getTemplatedDecl(), 1072 kind); 1073 1074 // If the function is a member of a specialization of a class template 1075 // and the corresponding decl has explicit visibility, use that. 1076 FunctionDecl *InstantiatedFrom = fn->getInstantiatedFromMemberFunction(); 1077 if (InstantiatedFrom) 1078 return getVisibilityOf(InstantiatedFrom, kind); 1079 1080 return None; 1081 } 1082 1083 // The visibility of a template is stored in the templated decl. 1084 if (const auto *TD = dyn_cast<TemplateDecl>(ND)) 1085 return getVisibilityOf(TD->getTemplatedDecl(), kind); 1086 1087 return None; 1088 } 1089 1090 Optional<Visibility> 1091 NamedDecl::getExplicitVisibility(ExplicitVisibilityKind kind) const { 1092 return getExplicitVisibilityAux(this, kind, false); 1093 } 1094 1095 LinkageInfo LinkageComputer::getLVForClosure(const DeclContext *DC, 1096 Decl *ContextDecl, 1097 LVComputationKind computation) { 1098 // This lambda has its linkage/visibility determined by its owner. 1099 const NamedDecl *Owner; 1100 if (!ContextDecl) 1101 Owner = dyn_cast<NamedDecl>(DC); 1102 else if (isa<ParmVarDecl>(ContextDecl)) 1103 Owner = 1104 dyn_cast<NamedDecl>(ContextDecl->getDeclContext()->getRedeclContext()); 1105 else 1106 Owner = cast<NamedDecl>(ContextDecl); 1107 1108 if (!Owner) 1109 return LinkageInfo::none(); 1110 1111 // If the owner has a deduced type, we need to skip querying the linkage and 1112 // visibility of that type, because it might involve this closure type. The 1113 // only effect of this is that we might give a lambda VisibleNoLinkage rather 1114 // than NoLinkage when we don't strictly need to, which is benign. 1115 auto *VD = dyn_cast<VarDecl>(Owner); 1116 LinkageInfo OwnerLV = 1117 VD && VD->getType()->getContainedDeducedType() 1118 ? computeLVForDecl(Owner, computation, /*IgnoreVarTypeLinkage*/true) 1119 : getLVForDecl(Owner, computation); 1120 1121 // A lambda never formally has linkage. But if the owner is externally 1122 // visible, then the lambda is too. We apply the same rules to blocks. 1123 if (!isExternallyVisible(OwnerLV.getLinkage())) 1124 return LinkageInfo::none(); 1125 return LinkageInfo(VisibleNoLinkage, OwnerLV.getVisibility(), 1126 OwnerLV.isVisibilityExplicit()); 1127 } 1128 1129 LinkageInfo LinkageComputer::getLVForLocalDecl(const NamedDecl *D, 1130 LVComputationKind computation) { 1131 if (const auto *Function = dyn_cast<FunctionDecl>(D)) { 1132 if (Function->isInAnonymousNamespace() && 1133 !Function->isInExternCContext()) 1134 return getInternalLinkageFor(Function); 1135 1136 // This is a "void f();" which got merged with a file static. 1137 if (Function->getCanonicalDecl()->getStorageClass() == SC_Static) 1138 return getInternalLinkageFor(Function); 1139 1140 LinkageInfo LV; 1141 if (!hasExplicitVisibilityAlready(computation)) { 1142 if (Optional<Visibility> Vis = 1143 getExplicitVisibility(Function, computation)) 1144 LV.mergeVisibility(*Vis, true); 1145 } 1146 1147 // Note that Sema::MergeCompatibleFunctionDecls already takes care of 1148 // merging storage classes and visibility attributes, so we don't have to 1149 // look at previous decls in here. 1150 1151 return LV; 1152 } 1153 1154 if (const auto *Var = dyn_cast<VarDecl>(D)) { 1155 if (Var->hasExternalStorage()) { 1156 if (Var->isInAnonymousNamespace() && !Var->isInExternCContext()) 1157 return getInternalLinkageFor(Var); 1158 1159 LinkageInfo LV; 1160 if (Var->getStorageClass() == SC_PrivateExtern) 1161 LV.mergeVisibility(HiddenVisibility, true); 1162 else if (!hasExplicitVisibilityAlready(computation)) { 1163 if (Optional<Visibility> Vis = getExplicitVisibility(Var, computation)) 1164 LV.mergeVisibility(*Vis, true); 1165 } 1166 1167 if (const VarDecl *Prev = Var->getPreviousDecl()) { 1168 LinkageInfo PrevLV = getLVForDecl(Prev, computation); 1169 if (PrevLV.getLinkage()) 1170 LV.setLinkage(PrevLV.getLinkage()); 1171 LV.mergeVisibility(PrevLV); 1172 } 1173 1174 return LV; 1175 } 1176 1177 if (!Var->isStaticLocal()) 1178 return LinkageInfo::none(); 1179 } 1180 1181 ASTContext &Context = D->getASTContext(); 1182 if (!Context.getLangOpts().CPlusPlus) 1183 return LinkageInfo::none(); 1184 1185 const Decl *OuterD = getOutermostFuncOrBlockContext(D); 1186 if (!OuterD || OuterD->isInvalidDecl()) 1187 return LinkageInfo::none(); 1188 1189 LinkageInfo LV; 1190 if (const auto *BD = dyn_cast<BlockDecl>(OuterD)) { 1191 if (!BD->getBlockManglingNumber()) 1192 return LinkageInfo::none(); 1193 1194 LV = getLVForClosure(BD->getDeclContext()->getRedeclContext(), 1195 BD->getBlockManglingContextDecl(), computation); 1196 } else { 1197 const auto *FD = cast<FunctionDecl>(OuterD); 1198 if (!FD->isInlined() && 1199 !isTemplateInstantiation(FD->getTemplateSpecializationKind())) 1200 return LinkageInfo::none(); 1201 1202 LV = getLVForDecl(FD, computation); 1203 } 1204 if (!isExternallyVisible(LV.getLinkage())) 1205 return LinkageInfo::none(); 1206 return LinkageInfo(VisibleNoLinkage, LV.getVisibility(), 1207 LV.isVisibilityExplicit()); 1208 } 1209 1210 static inline const CXXRecordDecl* 1211 getOutermostEnclosingLambda(const CXXRecordDecl *Record) { 1212 const CXXRecordDecl *Ret = Record; 1213 while (Record && Record->isLambda()) { 1214 Ret = Record; 1215 if (!Record->getParent()) break; 1216 // Get the Containing Class of this Lambda Class 1217 Record = dyn_cast_or_null<CXXRecordDecl>( 1218 Record->getParent()->getParent()); 1219 } 1220 return Ret; 1221 } 1222 1223 LinkageInfo LinkageComputer::computeLVForDecl(const NamedDecl *D, 1224 LVComputationKind computation, 1225 bool IgnoreVarTypeLinkage) { 1226 // Internal_linkage attribute overrides other considerations. 1227 if (D->hasAttr<InternalLinkageAttr>()) 1228 return getInternalLinkageFor(D); 1229 1230 // Objective-C: treat all Objective-C declarations as having external 1231 // linkage. 1232 switch (D->getKind()) { 1233 default: 1234 break; 1235 1236 // Per C++ [basic.link]p2, only the names of objects, references, 1237 // functions, types, templates, namespaces, and values ever have linkage. 1238 // 1239 // Note that the name of a typedef, namespace alias, using declaration, 1240 // and so on are not the name of the corresponding type, namespace, or 1241 // declaration, so they do *not* have linkage. 1242 case Decl::ImplicitParam: 1243 case Decl::Label: 1244 case Decl::NamespaceAlias: 1245 case Decl::ParmVar: 1246 case Decl::Using: 1247 case Decl::UsingShadow: 1248 case Decl::UsingDirective: 1249 return LinkageInfo::none(); 1250 1251 case Decl::EnumConstant: 1252 // C++ [basic.link]p4: an enumerator has the linkage of its enumeration. 1253 if (D->getASTContext().getLangOpts().CPlusPlus) 1254 return getLVForDecl(cast<EnumDecl>(D->getDeclContext()), computation); 1255 return LinkageInfo::visible_none(); 1256 1257 case Decl::Typedef: 1258 case Decl::TypeAlias: 1259 // A typedef declaration has linkage if it gives a type a name for 1260 // linkage purposes. 1261 if (!cast<TypedefNameDecl>(D) 1262 ->getAnonDeclWithTypedefName(/*AnyRedecl*/true)) 1263 return LinkageInfo::none(); 1264 break; 1265 1266 case Decl::TemplateTemplateParm: // count these as external 1267 case Decl::NonTypeTemplateParm: 1268 case Decl::ObjCAtDefsField: 1269 case Decl::ObjCCategory: 1270 case Decl::ObjCCategoryImpl: 1271 case Decl::ObjCCompatibleAlias: 1272 case Decl::ObjCImplementation: 1273 case Decl::ObjCMethod: 1274 case Decl::ObjCProperty: 1275 case Decl::ObjCPropertyImpl: 1276 case Decl::ObjCProtocol: 1277 return getExternalLinkageFor(D); 1278 1279 case Decl::CXXRecord: { 1280 const auto *Record = cast<CXXRecordDecl>(D); 1281 if (Record->isLambda()) { 1282 if (!Record->getLambdaManglingNumber()) { 1283 // This lambda has no mangling number, so it's internal. 1284 return getInternalLinkageFor(D); 1285 } 1286 1287 // This lambda has its linkage/visibility determined: 1288 // - either by the outermost lambda if that lambda has no mangling 1289 // number. 1290 // - or by the parent of the outer most lambda 1291 // This prevents infinite recursion in settings such as nested lambdas 1292 // used in NSDMI's, for e.g. 1293 // struct L { 1294 // int t{}; 1295 // int t2 = ([](int a) { return [](int b) { return b; };})(t)(t); 1296 // }; 1297 const CXXRecordDecl *OuterMostLambda = 1298 getOutermostEnclosingLambda(Record); 1299 if (!OuterMostLambda->getLambdaManglingNumber()) 1300 return getInternalLinkageFor(D); 1301 1302 return getLVForClosure( 1303 OuterMostLambda->getDeclContext()->getRedeclContext(), 1304 OuterMostLambda->getLambdaContextDecl(), computation); 1305 } 1306 1307 break; 1308 } 1309 } 1310 1311 // Handle linkage for namespace-scope names. 1312 if (D->getDeclContext()->getRedeclContext()->isFileContext()) 1313 return getLVForNamespaceScopeDecl(D, computation, IgnoreVarTypeLinkage); 1314 1315 // C++ [basic.link]p5: 1316 // In addition, a member function, static data member, a named 1317 // class or enumeration of class scope, or an unnamed class or 1318 // enumeration defined in a class-scope typedef declaration such 1319 // that the class or enumeration has the typedef name for linkage 1320 // purposes (7.1.3), has external linkage if the name of the class 1321 // has external linkage. 1322 if (D->getDeclContext()->isRecord()) 1323 return getLVForClassMember(D, computation, IgnoreVarTypeLinkage); 1324 1325 // C++ [basic.link]p6: 1326 // The name of a function declared in block scope and the name of 1327 // an object declared by a block scope extern declaration have 1328 // linkage. If there is a visible declaration of an entity with 1329 // linkage having the same name and type, ignoring entities 1330 // declared outside the innermost enclosing namespace scope, the 1331 // block scope declaration declares that same entity and receives 1332 // the linkage of the previous declaration. If there is more than 1333 // one such matching entity, the program is ill-formed. Otherwise, 1334 // if no matching entity is found, the block scope entity receives 1335 // external linkage. 1336 if (D->getDeclContext()->isFunctionOrMethod()) 1337 return getLVForLocalDecl(D, computation); 1338 1339 // C++ [basic.link]p6: 1340 // Names not covered by these rules have no linkage. 1341 return LinkageInfo::none(); 1342 } 1343 1344 /// getLVForDecl - Get the linkage and visibility for the given declaration. 1345 LinkageInfo LinkageComputer::getLVForDecl(const NamedDecl *D, 1346 LVComputationKind computation) { 1347 // Internal_linkage attribute overrides other considerations. 1348 if (D->hasAttr<InternalLinkageAttr>()) 1349 return getInternalLinkageFor(D); 1350 1351 if (computation.IgnoreAllVisibility && D->hasCachedLinkage()) 1352 return LinkageInfo(D->getCachedLinkage(), DefaultVisibility, false); 1353 1354 if (llvm::Optional<LinkageInfo> LI = lookup(D, computation)) 1355 return *LI; 1356 1357 LinkageInfo LV = computeLVForDecl(D, computation); 1358 if (D->hasCachedLinkage()) 1359 assert(D->getCachedLinkage() == LV.getLinkage()); 1360 1361 D->setCachedLinkage(LV.getLinkage()); 1362 cache(D, computation, LV); 1363 1364 #ifndef NDEBUG 1365 // In C (because of gnu inline) and in c++ with microsoft extensions an 1366 // static can follow an extern, so we can have two decls with different 1367 // linkages. 1368 const LangOptions &Opts = D->getASTContext().getLangOpts(); 1369 if (!Opts.CPlusPlus || Opts.MicrosoftExt) 1370 return LV; 1371 1372 // We have just computed the linkage for this decl. By induction we know 1373 // that all other computed linkages match, check that the one we just 1374 // computed also does. 1375 NamedDecl *Old = nullptr; 1376 for (auto I : D->redecls()) { 1377 auto *T = cast<NamedDecl>(I); 1378 if (T == D) 1379 continue; 1380 if (!T->isInvalidDecl() && T->hasCachedLinkage()) { 1381 Old = T; 1382 break; 1383 } 1384 } 1385 assert(!Old || Old->getCachedLinkage() == D->getCachedLinkage()); 1386 #endif 1387 1388 return LV; 1389 } 1390 1391 LinkageInfo LinkageComputer::getDeclLinkageAndVisibility(const NamedDecl *D) { 1392 return getLVForDecl(D, 1393 LVComputationKind(usesTypeVisibility(D) 1394 ? NamedDecl::VisibilityForType 1395 : NamedDecl::VisibilityForValue)); 1396 } 1397 1398 Module *Decl::getOwningModuleForLinkage(bool IgnoreLinkage) const { 1399 Module *M = getOwningModule(); 1400 if (!M) 1401 return nullptr; 1402 1403 switch (M->Kind) { 1404 case Module::ModuleMapModule: 1405 // Module map modules have no special linkage semantics. 1406 return nullptr; 1407 1408 case Module::ModuleInterfaceUnit: 1409 return M; 1410 1411 case Module::GlobalModuleFragment: 1412 // External linkage declarations in the global module have no owning module 1413 // for linkage purposes. But internal linkage declarations in the global 1414 // module fragment of a particular module are owned by that module for 1415 // linkage purposes. 1416 if (IgnoreLinkage) 1417 return nullptr; 1418 bool InternalLinkage; 1419 if (auto *ND = dyn_cast<NamedDecl>(this)) 1420 InternalLinkage = !ND->hasExternalFormalLinkage(); 1421 else { 1422 auto *NSD = dyn_cast<NamespaceDecl>(this); 1423 InternalLinkage = (NSD && NSD->isAnonymousNamespace()) || 1424 isInAnonymousNamespace(); 1425 } 1426 return InternalLinkage ? M->Parent : nullptr; 1427 } 1428 1429 llvm_unreachable("unknown module kind"); 1430 } 1431 1432 void NamedDecl::printName(raw_ostream &os) const { 1433 os << Name; 1434 } 1435 1436 std::string NamedDecl::getQualifiedNameAsString() const { 1437 std::string QualName; 1438 llvm::raw_string_ostream OS(QualName); 1439 printQualifiedName(OS, getASTContext().getPrintingPolicy()); 1440 return OS.str(); 1441 } 1442 1443 void NamedDecl::printQualifiedName(raw_ostream &OS) const { 1444 printQualifiedName(OS, getASTContext().getPrintingPolicy()); 1445 } 1446 1447 void NamedDecl::printQualifiedName(raw_ostream &OS, 1448 const PrintingPolicy &P) const { 1449 const DeclContext *Ctx = getDeclContext(); 1450 1451 // For ObjC methods, look through categories and use the interface as context. 1452 if (auto *MD = dyn_cast<ObjCMethodDecl>(this)) 1453 if (auto *ID = MD->getClassInterface()) 1454 Ctx = ID; 1455 1456 if (Ctx->isFunctionOrMethod()) { 1457 printName(OS); 1458 return; 1459 } 1460 1461 typedef SmallVector<const DeclContext *, 8> ContextsTy; 1462 ContextsTy Contexts; 1463 1464 // Collect contexts. 1465 while (Ctx && isa<NamedDecl>(Ctx)) { 1466 Contexts.push_back(Ctx); 1467 Ctx = Ctx->getParent(); 1468 } 1469 1470 for (const DeclContext *DC : reverse(Contexts)) { 1471 if (const auto *Spec = dyn_cast<ClassTemplateSpecializationDecl>(DC)) { 1472 OS << Spec->getName(); 1473 const TemplateArgumentList &TemplateArgs = Spec->getTemplateArgs(); 1474 TemplateSpecializationType::PrintTemplateArgumentList( 1475 OS, TemplateArgs.asArray(), P); 1476 } else if (const auto *ND = dyn_cast<NamespaceDecl>(DC)) { 1477 if (P.SuppressUnwrittenScope && 1478 (ND->isAnonymousNamespace() || ND->isInline())) 1479 continue; 1480 if (ND->isAnonymousNamespace()) { 1481 OS << (P.MSVCFormatting ? "`anonymous namespace\'" 1482 : "(anonymous namespace)"); 1483 } 1484 else 1485 OS << *ND; 1486 } else if (const auto *RD = dyn_cast<RecordDecl>(DC)) { 1487 if (!RD->getIdentifier()) 1488 OS << "(anonymous " << RD->getKindName() << ')'; 1489 else 1490 OS << *RD; 1491 } else if (const auto *FD = dyn_cast<FunctionDecl>(DC)) { 1492 const FunctionProtoType *FT = nullptr; 1493 if (FD->hasWrittenPrototype()) 1494 FT = dyn_cast<FunctionProtoType>(FD->getType()->castAs<FunctionType>()); 1495 1496 OS << *FD << '('; 1497 if (FT) { 1498 unsigned NumParams = FD->getNumParams(); 1499 for (unsigned i = 0; i < NumParams; ++i) { 1500 if (i) 1501 OS << ", "; 1502 OS << FD->getParamDecl(i)->getType().stream(P); 1503 } 1504 1505 if (FT->isVariadic()) { 1506 if (NumParams > 0) 1507 OS << ", "; 1508 OS << "..."; 1509 } 1510 } 1511 OS << ')'; 1512 } else if (const auto *ED = dyn_cast<EnumDecl>(DC)) { 1513 // C++ [dcl.enum]p10: Each enum-name and each unscoped 1514 // enumerator is declared in the scope that immediately contains 1515 // the enum-specifier. Each scoped enumerator is declared in the 1516 // scope of the enumeration. 1517 if (ED->isScoped() || ED->getIdentifier()) 1518 OS << *ED; 1519 else 1520 continue; 1521 } else { 1522 OS << *cast<NamedDecl>(DC); 1523 } 1524 OS << "::"; 1525 } 1526 1527 if (getDeclName() || isa<DecompositionDecl>(this)) 1528 OS << *this; 1529 else 1530 OS << "(anonymous)"; 1531 } 1532 1533 void NamedDecl::getNameForDiagnostic(raw_ostream &OS, 1534 const PrintingPolicy &Policy, 1535 bool Qualified) const { 1536 if (Qualified) 1537 printQualifiedName(OS, Policy); 1538 else 1539 printName(OS); 1540 } 1541 1542 template<typename T> static bool isRedeclarableImpl(Redeclarable<T> *) { 1543 return true; 1544 } 1545 static bool isRedeclarableImpl(...) { return false; } 1546 static bool isRedeclarable(Decl::Kind K) { 1547 switch (K) { 1548 #define DECL(Type, Base) \ 1549 case Decl::Type: \ 1550 return isRedeclarableImpl((Type##Decl *)nullptr); 1551 #define ABSTRACT_DECL(DECL) 1552 #include "clang/AST/DeclNodes.inc" 1553 } 1554 llvm_unreachable("unknown decl kind"); 1555 } 1556 1557 bool NamedDecl::declarationReplaces(NamedDecl *OldD, bool IsKnownNewer) const { 1558 assert(getDeclName() == OldD->getDeclName() && "Declaration name mismatch"); 1559 1560 // Never replace one imported declaration with another; we need both results 1561 // when re-exporting. 1562 if (OldD->isFromASTFile() && isFromASTFile()) 1563 return false; 1564 1565 // A kind mismatch implies that the declaration is not replaced. 1566 if (OldD->getKind() != getKind()) 1567 return false; 1568 1569 // For method declarations, we never replace. (Why?) 1570 if (isa<ObjCMethodDecl>(this)) 1571 return false; 1572 1573 // For parameters, pick the newer one. This is either an error or (in 1574 // Objective-C) permitted as an extension. 1575 if (isa<ParmVarDecl>(this)) 1576 return true; 1577 1578 // Inline namespaces can give us two declarations with the same 1579 // name and kind in the same scope but different contexts; we should 1580 // keep both declarations in this case. 1581 if (!this->getDeclContext()->getRedeclContext()->Equals( 1582 OldD->getDeclContext()->getRedeclContext())) 1583 return false; 1584 1585 // Using declarations can be replaced if they import the same name from the 1586 // same context. 1587 if (auto *UD = dyn_cast<UsingDecl>(this)) { 1588 ASTContext &Context = getASTContext(); 1589 return Context.getCanonicalNestedNameSpecifier(UD->getQualifier()) == 1590 Context.getCanonicalNestedNameSpecifier( 1591 cast<UsingDecl>(OldD)->getQualifier()); 1592 } 1593 if (auto *UUVD = dyn_cast<UnresolvedUsingValueDecl>(this)) { 1594 ASTContext &Context = getASTContext(); 1595 return Context.getCanonicalNestedNameSpecifier(UUVD->getQualifier()) == 1596 Context.getCanonicalNestedNameSpecifier( 1597 cast<UnresolvedUsingValueDecl>(OldD)->getQualifier()); 1598 } 1599 1600 if (isRedeclarable(getKind())) { 1601 if (getCanonicalDecl() != OldD->getCanonicalDecl()) 1602 return false; 1603 1604 if (IsKnownNewer) 1605 return true; 1606 1607 // Check whether this is actually newer than OldD. We want to keep the 1608 // newer declaration. This loop will usually only iterate once, because 1609 // OldD is usually the previous declaration. 1610 for (auto D : redecls()) { 1611 if (D == OldD) 1612 break; 1613 1614 // If we reach the canonical declaration, then OldD is not actually older 1615 // than this one. 1616 // 1617 // FIXME: In this case, we should not add this decl to the lookup table. 1618 if (D->isCanonicalDecl()) 1619 return false; 1620 } 1621 1622 // It's a newer declaration of the same kind of declaration in the same 1623 // scope: we want this decl instead of the existing one. 1624 return true; 1625 } 1626 1627 // In all other cases, we need to keep both declarations in case they have 1628 // different visibility. Any attempt to use the name will result in an 1629 // ambiguity if more than one is visible. 1630 return false; 1631 } 1632 1633 bool NamedDecl::hasLinkage() const { 1634 return getFormalLinkage() != NoLinkage; 1635 } 1636 1637 NamedDecl *NamedDecl::getUnderlyingDeclImpl() { 1638 NamedDecl *ND = this; 1639 while (auto *UD = dyn_cast<UsingShadowDecl>(ND)) 1640 ND = UD->getTargetDecl(); 1641 1642 if (auto *AD = dyn_cast<ObjCCompatibleAliasDecl>(ND)) 1643 return AD->getClassInterface(); 1644 1645 if (auto *AD = dyn_cast<NamespaceAliasDecl>(ND)) 1646 return AD->getNamespace(); 1647 1648 return ND; 1649 } 1650 1651 bool NamedDecl::isCXXInstanceMember() const { 1652 if (!isCXXClassMember()) 1653 return false; 1654 1655 const NamedDecl *D = this; 1656 if (isa<UsingShadowDecl>(D)) 1657 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 1658 1659 if (isa<FieldDecl>(D) || isa<IndirectFieldDecl>(D) || isa<MSPropertyDecl>(D)) 1660 return true; 1661 if (const auto *MD = dyn_cast_or_null<CXXMethodDecl>(D->getAsFunction())) 1662 return MD->isInstance(); 1663 return false; 1664 } 1665 1666 //===----------------------------------------------------------------------===// 1667 // DeclaratorDecl Implementation 1668 //===----------------------------------------------------------------------===// 1669 1670 template <typename DeclT> 1671 static SourceLocation getTemplateOrInnerLocStart(const DeclT *decl) { 1672 if (decl->getNumTemplateParameterLists() > 0) 1673 return decl->getTemplateParameterList(0)->getTemplateLoc(); 1674 else 1675 return decl->getInnerLocStart(); 1676 } 1677 1678 SourceLocation DeclaratorDecl::getTypeSpecStartLoc() const { 1679 TypeSourceInfo *TSI = getTypeSourceInfo(); 1680 if (TSI) return TSI->getTypeLoc().getBeginLoc(); 1681 return SourceLocation(); 1682 } 1683 1684 void DeclaratorDecl::setQualifierInfo(NestedNameSpecifierLoc QualifierLoc) { 1685 if (QualifierLoc) { 1686 // Make sure the extended decl info is allocated. 1687 if (!hasExtInfo()) { 1688 // Save (non-extended) type source info pointer. 1689 auto *savedTInfo = DeclInfo.get<TypeSourceInfo*>(); 1690 // Allocate external info struct. 1691 DeclInfo = new (getASTContext()) ExtInfo; 1692 // Restore savedTInfo into (extended) decl info. 1693 getExtInfo()->TInfo = savedTInfo; 1694 } 1695 // Set qualifier info. 1696 getExtInfo()->QualifierLoc = QualifierLoc; 1697 } else { 1698 // Here Qualifier == 0, i.e., we are removing the qualifier (if any). 1699 if (hasExtInfo()) { 1700 if (getExtInfo()->NumTemplParamLists == 0) { 1701 // Save type source info pointer. 1702 TypeSourceInfo *savedTInfo = getExtInfo()->TInfo; 1703 // Deallocate the extended decl info. 1704 getASTContext().Deallocate(getExtInfo()); 1705 // Restore savedTInfo into (non-extended) decl info. 1706 DeclInfo = savedTInfo; 1707 } 1708 else 1709 getExtInfo()->QualifierLoc = QualifierLoc; 1710 } 1711 } 1712 } 1713 1714 void DeclaratorDecl::setTemplateParameterListsInfo( 1715 ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) { 1716 assert(!TPLists.empty()); 1717 // Make sure the extended decl info is allocated. 1718 if (!hasExtInfo()) { 1719 // Save (non-extended) type source info pointer. 1720 auto *savedTInfo = DeclInfo.get<TypeSourceInfo*>(); 1721 // Allocate external info struct. 1722 DeclInfo = new (getASTContext()) ExtInfo; 1723 // Restore savedTInfo into (extended) decl info. 1724 getExtInfo()->TInfo = savedTInfo; 1725 } 1726 // Set the template parameter lists info. 1727 getExtInfo()->setTemplateParameterListsInfo(Context, TPLists); 1728 } 1729 1730 SourceLocation DeclaratorDecl::getOuterLocStart() const { 1731 return getTemplateOrInnerLocStart(this); 1732 } 1733 1734 namespace { 1735 1736 // Helper function: returns true if QT is or contains a type 1737 // having a postfix component. 1738 bool typeIsPostfix(clang::QualType QT) { 1739 while (true) { 1740 const Type* T = QT.getTypePtr(); 1741 switch (T->getTypeClass()) { 1742 default: 1743 return false; 1744 case Type::Pointer: 1745 QT = cast<PointerType>(T)->getPointeeType(); 1746 break; 1747 case Type::BlockPointer: 1748 QT = cast<BlockPointerType>(T)->getPointeeType(); 1749 break; 1750 case Type::MemberPointer: 1751 QT = cast<MemberPointerType>(T)->getPointeeType(); 1752 break; 1753 case Type::LValueReference: 1754 case Type::RValueReference: 1755 QT = cast<ReferenceType>(T)->getPointeeType(); 1756 break; 1757 case Type::PackExpansion: 1758 QT = cast<PackExpansionType>(T)->getPattern(); 1759 break; 1760 case Type::Paren: 1761 case Type::ConstantArray: 1762 case Type::DependentSizedArray: 1763 case Type::IncompleteArray: 1764 case Type::VariableArray: 1765 case Type::FunctionProto: 1766 case Type::FunctionNoProto: 1767 return true; 1768 } 1769 } 1770 } 1771 1772 } // namespace 1773 1774 SourceRange DeclaratorDecl::getSourceRange() const { 1775 SourceLocation RangeEnd = getLocation(); 1776 if (TypeSourceInfo *TInfo = getTypeSourceInfo()) { 1777 // If the declaration has no name or the type extends past the name take the 1778 // end location of the type. 1779 if (!getDeclName() || typeIsPostfix(TInfo->getType())) 1780 RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd(); 1781 } 1782 return SourceRange(getOuterLocStart(), RangeEnd); 1783 } 1784 1785 void QualifierInfo::setTemplateParameterListsInfo( 1786 ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) { 1787 // Free previous template parameters (if any). 1788 if (NumTemplParamLists > 0) { 1789 Context.Deallocate(TemplParamLists); 1790 TemplParamLists = nullptr; 1791 NumTemplParamLists = 0; 1792 } 1793 // Set info on matched template parameter lists (if any). 1794 if (!TPLists.empty()) { 1795 TemplParamLists = new (Context) TemplateParameterList *[TPLists.size()]; 1796 NumTemplParamLists = TPLists.size(); 1797 std::copy(TPLists.begin(), TPLists.end(), TemplParamLists); 1798 } 1799 } 1800 1801 //===----------------------------------------------------------------------===// 1802 // VarDecl Implementation 1803 //===----------------------------------------------------------------------===// 1804 1805 const char *VarDecl::getStorageClassSpecifierString(StorageClass SC) { 1806 switch (SC) { 1807 case SC_None: break; 1808 case SC_Auto: return "auto"; 1809 case SC_Extern: return "extern"; 1810 case SC_PrivateExtern: return "__private_extern__"; 1811 case SC_Register: return "register"; 1812 case SC_Static: return "static"; 1813 } 1814 1815 llvm_unreachable("Invalid storage class"); 1816 } 1817 1818 VarDecl::VarDecl(Kind DK, ASTContext &C, DeclContext *DC, 1819 SourceLocation StartLoc, SourceLocation IdLoc, 1820 IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo, 1821 StorageClass SC) 1822 : DeclaratorDecl(DK, DC, IdLoc, Id, T, TInfo, StartLoc), 1823 redeclarable_base(C), Init() { 1824 static_assert(sizeof(VarDeclBitfields) <= sizeof(unsigned), 1825 "VarDeclBitfields too large!"); 1826 static_assert(sizeof(ParmVarDeclBitfields) <= sizeof(unsigned), 1827 "ParmVarDeclBitfields too large!"); 1828 static_assert(sizeof(NonParmVarDeclBitfields) <= sizeof(unsigned), 1829 "NonParmVarDeclBitfields too large!"); 1830 AllBits = 0; 1831 VarDeclBits.SClass = SC; 1832 // Everything else is implicitly initialized to false. 1833 } 1834 1835 VarDecl *VarDecl::Create(ASTContext &C, DeclContext *DC, 1836 SourceLocation StartL, SourceLocation IdL, 1837 IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo, 1838 StorageClass S) { 1839 return new (C, DC) VarDecl(Var, C, DC, StartL, IdL, Id, T, TInfo, S); 1840 } 1841 1842 VarDecl *VarDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 1843 return new (C, ID) 1844 VarDecl(Var, C, nullptr, SourceLocation(), SourceLocation(), nullptr, 1845 QualType(), nullptr, SC_None); 1846 } 1847 1848 void VarDecl::setStorageClass(StorageClass SC) { 1849 assert(isLegalForVariable(SC)); 1850 VarDeclBits.SClass = SC; 1851 } 1852 1853 VarDecl::TLSKind VarDecl::getTLSKind() const { 1854 switch (VarDeclBits.TSCSpec) { 1855 case TSCS_unspecified: 1856 if (!hasAttr<ThreadAttr>() && 1857 !(getASTContext().getLangOpts().OpenMPUseTLS && 1858 getASTContext().getTargetInfo().isTLSSupported() && 1859 hasAttr<OMPThreadPrivateDeclAttr>())) 1860 return TLS_None; 1861 return ((getASTContext().getLangOpts().isCompatibleWithMSVC( 1862 LangOptions::MSVC2015)) || 1863 hasAttr<OMPThreadPrivateDeclAttr>()) 1864 ? TLS_Dynamic 1865 : TLS_Static; 1866 case TSCS___thread: // Fall through. 1867 case TSCS__Thread_local: 1868 return TLS_Static; 1869 case TSCS_thread_local: 1870 return TLS_Dynamic; 1871 } 1872 llvm_unreachable("Unknown thread storage class specifier!"); 1873 } 1874 1875 SourceRange VarDecl::getSourceRange() const { 1876 if (const Expr *Init = getInit()) { 1877 SourceLocation InitEnd = Init->getLocEnd(); 1878 // If Init is implicit, ignore its source range and fallback on 1879 // DeclaratorDecl::getSourceRange() to handle postfix elements. 1880 if (InitEnd.isValid() && InitEnd != getLocation()) 1881 return SourceRange(getOuterLocStart(), InitEnd); 1882 } 1883 return DeclaratorDecl::getSourceRange(); 1884 } 1885 1886 template<typename T> 1887 static LanguageLinkage getDeclLanguageLinkage(const T &D) { 1888 // C++ [dcl.link]p1: All function types, function names with external linkage, 1889 // and variable names with external linkage have a language linkage. 1890 if (!D.hasExternalFormalLinkage()) 1891 return NoLanguageLinkage; 1892 1893 // Language linkage is a C++ concept, but saying that everything else in C has 1894 // C language linkage fits the implementation nicely. 1895 ASTContext &Context = D.getASTContext(); 1896 if (!Context.getLangOpts().CPlusPlus) 1897 return CLanguageLinkage; 1898 1899 // C++ [dcl.link]p4: A C language linkage is ignored in determining the 1900 // language linkage of the names of class members and the function type of 1901 // class member functions. 1902 const DeclContext *DC = D.getDeclContext(); 1903 if (DC->isRecord()) 1904 return CXXLanguageLinkage; 1905 1906 // If the first decl is in an extern "C" context, any other redeclaration 1907 // will have C language linkage. If the first one is not in an extern "C" 1908 // context, we would have reported an error for any other decl being in one. 1909 if (isFirstInExternCContext(&D)) 1910 return CLanguageLinkage; 1911 return CXXLanguageLinkage; 1912 } 1913 1914 template<typename T> 1915 static bool isDeclExternC(const T &D) { 1916 // Since the context is ignored for class members, they can only have C++ 1917 // language linkage or no language linkage. 1918 const DeclContext *DC = D.getDeclContext(); 1919 if (DC->isRecord()) { 1920 assert(D.getASTContext().getLangOpts().CPlusPlus); 1921 return false; 1922 } 1923 1924 return D.getLanguageLinkage() == CLanguageLinkage; 1925 } 1926 1927 LanguageLinkage VarDecl::getLanguageLinkage() const { 1928 return getDeclLanguageLinkage(*this); 1929 } 1930 1931 bool VarDecl::isExternC() const { 1932 return isDeclExternC(*this); 1933 } 1934 1935 bool VarDecl::isInExternCContext() const { 1936 return getLexicalDeclContext()->isExternCContext(); 1937 } 1938 1939 bool VarDecl::isInExternCXXContext() const { 1940 return getLexicalDeclContext()->isExternCXXContext(); 1941 } 1942 1943 VarDecl *VarDecl::getCanonicalDecl() { return getFirstDecl(); } 1944 1945 VarDecl::DefinitionKind 1946 VarDecl::isThisDeclarationADefinition(ASTContext &C) const { 1947 // C++ [basic.def]p2: 1948 // A declaration is a definition unless [...] it contains the 'extern' 1949 // specifier or a linkage-specification and neither an initializer [...], 1950 // it declares a non-inline static data member in a class declaration [...], 1951 // it declares a static data member outside a class definition and the variable 1952 // was defined within the class with the constexpr specifier [...], 1953 // C++1y [temp.expl.spec]p15: 1954 // An explicit specialization of a static data member or an explicit 1955 // specialization of a static data member template is a definition if the 1956 // declaration includes an initializer; otherwise, it is a declaration. 1957 // 1958 // FIXME: How do you declare (but not define) a partial specialization of 1959 // a static data member template outside the containing class? 1960 if (isThisDeclarationADemotedDefinition()) 1961 return DeclarationOnly; 1962 1963 if (isStaticDataMember()) { 1964 if (isOutOfLine() && 1965 !(getCanonicalDecl()->isInline() && 1966 getCanonicalDecl()->isConstexpr()) && 1967 (hasInit() || 1968 // If the first declaration is out-of-line, this may be an 1969 // instantiation of an out-of-line partial specialization of a variable 1970 // template for which we have not yet instantiated the initializer. 1971 (getFirstDecl()->isOutOfLine() 1972 ? getTemplateSpecializationKind() == TSK_Undeclared 1973 : getTemplateSpecializationKind() != 1974 TSK_ExplicitSpecialization) || 1975 isa<VarTemplatePartialSpecializationDecl>(this))) 1976 return Definition; 1977 else if (!isOutOfLine() && isInline()) 1978 return Definition; 1979 else 1980 return DeclarationOnly; 1981 } 1982 // C99 6.7p5: 1983 // A definition of an identifier is a declaration for that identifier that 1984 // [...] causes storage to be reserved for that object. 1985 // Note: that applies for all non-file-scope objects. 1986 // C99 6.9.2p1: 1987 // If the declaration of an identifier for an object has file scope and an 1988 // initializer, the declaration is an external definition for the identifier 1989 if (hasInit()) 1990 return Definition; 1991 1992 if (hasDefiningAttr()) 1993 return Definition; 1994 1995 if (const auto *SAA = getAttr<SelectAnyAttr>()) 1996 if (!SAA->isInherited()) 1997 return Definition; 1998 1999 // A variable template specialization (other than a static data member 2000 // template or an explicit specialization) is a declaration until we 2001 // instantiate its initializer. 2002 if (isa<VarTemplateSpecializationDecl>(this) && 2003 getTemplateSpecializationKind() != TSK_ExplicitSpecialization) 2004 return DeclarationOnly; 2005 2006 if (hasExternalStorage()) 2007 return DeclarationOnly; 2008 2009 // [dcl.link] p7: 2010 // A declaration directly contained in a linkage-specification is treated 2011 // as if it contains the extern specifier for the purpose of determining 2012 // the linkage of the declared name and whether it is a definition. 2013 if (isSingleLineLanguageLinkage(*this)) 2014 return DeclarationOnly; 2015 2016 // C99 6.9.2p2: 2017 // A declaration of an object that has file scope without an initializer, 2018 // and without a storage class specifier or the scs 'static', constitutes 2019 // a tentative definition. 2020 // No such thing in C++. 2021 if (!C.getLangOpts().CPlusPlus && isFileVarDecl()) 2022 return TentativeDefinition; 2023 2024 // What's left is (in C, block-scope) declarations without initializers or 2025 // external storage. These are definitions. 2026 return Definition; 2027 } 2028 2029 VarDecl *VarDecl::getActingDefinition() { 2030 DefinitionKind Kind = isThisDeclarationADefinition(); 2031 if (Kind != TentativeDefinition) 2032 return nullptr; 2033 2034 VarDecl *LastTentative = nullptr; 2035 VarDecl *First = getFirstDecl(); 2036 for (auto I : First->redecls()) { 2037 Kind = I->isThisDeclarationADefinition(); 2038 if (Kind == Definition) 2039 return nullptr; 2040 else if (Kind == TentativeDefinition) 2041 LastTentative = I; 2042 } 2043 return LastTentative; 2044 } 2045 2046 VarDecl *VarDecl::getDefinition(ASTContext &C) { 2047 VarDecl *First = getFirstDecl(); 2048 for (auto I : First->redecls()) { 2049 if (I->isThisDeclarationADefinition(C) == Definition) 2050 return I; 2051 } 2052 return nullptr; 2053 } 2054 2055 VarDecl::DefinitionKind VarDecl::hasDefinition(ASTContext &C) const { 2056 DefinitionKind Kind = DeclarationOnly; 2057 2058 const VarDecl *First = getFirstDecl(); 2059 for (auto I : First->redecls()) { 2060 Kind = std::max(Kind, I->isThisDeclarationADefinition(C)); 2061 if (Kind == Definition) 2062 break; 2063 } 2064 2065 return Kind; 2066 } 2067 2068 const Expr *VarDecl::getAnyInitializer(const VarDecl *&D) const { 2069 for (auto I : redecls()) { 2070 if (auto Expr = I->getInit()) { 2071 D = I; 2072 return Expr; 2073 } 2074 } 2075 return nullptr; 2076 } 2077 2078 bool VarDecl::hasInit() const { 2079 if (auto *P = dyn_cast<ParmVarDecl>(this)) 2080 if (P->hasUnparsedDefaultArg() || P->hasUninstantiatedDefaultArg()) 2081 return false; 2082 2083 return !Init.isNull(); 2084 } 2085 2086 Expr *VarDecl::getInit() { 2087 if (!hasInit()) 2088 return nullptr; 2089 2090 if (auto *S = Init.dyn_cast<Stmt *>()) 2091 return cast<Expr>(S); 2092 2093 return cast_or_null<Expr>(Init.get<EvaluatedStmt *>()->Value); 2094 } 2095 2096 Stmt **VarDecl::getInitAddress() { 2097 if (auto *ES = Init.dyn_cast<EvaluatedStmt *>()) 2098 return &ES->Value; 2099 2100 return Init.getAddrOfPtr1(); 2101 } 2102 2103 bool VarDecl::isOutOfLine() const { 2104 if (Decl::isOutOfLine()) 2105 return true; 2106 2107 if (!isStaticDataMember()) 2108 return false; 2109 2110 // If this static data member was instantiated from a static data member of 2111 // a class template, check whether that static data member was defined 2112 // out-of-line. 2113 if (VarDecl *VD = getInstantiatedFromStaticDataMember()) 2114 return VD->isOutOfLine(); 2115 2116 return false; 2117 } 2118 2119 void VarDecl::setInit(Expr *I) { 2120 if (auto *Eval = Init.dyn_cast<EvaluatedStmt *>()) { 2121 Eval->~EvaluatedStmt(); 2122 getASTContext().Deallocate(Eval); 2123 } 2124 2125 Init = I; 2126 } 2127 2128 bool VarDecl::isUsableInConstantExpressions(ASTContext &C) const { 2129 const LangOptions &Lang = C.getLangOpts(); 2130 2131 if (!Lang.CPlusPlus) 2132 return false; 2133 2134 // In C++11, any variable of reference type can be used in a constant 2135 // expression if it is initialized by a constant expression. 2136 if (Lang.CPlusPlus11 && getType()->isReferenceType()) 2137 return true; 2138 2139 // Only const objects can be used in constant expressions in C++. C++98 does 2140 // not require the variable to be non-volatile, but we consider this to be a 2141 // defect. 2142 if (!getType().isConstQualified() || getType().isVolatileQualified()) 2143 return false; 2144 2145 // In C++, const, non-volatile variables of integral or enumeration types 2146 // can be used in constant expressions. 2147 if (getType()->isIntegralOrEnumerationType()) 2148 return true; 2149 2150 // Additionally, in C++11, non-volatile constexpr variables can be used in 2151 // constant expressions. 2152 return Lang.CPlusPlus11 && isConstexpr(); 2153 } 2154 2155 /// Convert the initializer for this declaration to the elaborated EvaluatedStmt 2156 /// form, which contains extra information on the evaluated value of the 2157 /// initializer. 2158 EvaluatedStmt *VarDecl::ensureEvaluatedStmt() const { 2159 auto *Eval = Init.dyn_cast<EvaluatedStmt *>(); 2160 if (!Eval) { 2161 // Note: EvaluatedStmt contains an APValue, which usually holds 2162 // resources not allocated from the ASTContext. We need to do some 2163 // work to avoid leaking those, but we do so in VarDecl::evaluateValue 2164 // where we can detect whether there's anything to clean up or not. 2165 Eval = new (getASTContext()) EvaluatedStmt; 2166 Eval->Value = Init.get<Stmt *>(); 2167 Init = Eval; 2168 } 2169 return Eval; 2170 } 2171 2172 APValue *VarDecl::evaluateValue() const { 2173 SmallVector<PartialDiagnosticAt, 8> Notes; 2174 return evaluateValue(Notes); 2175 } 2176 2177 APValue *VarDecl::evaluateValue( 2178 SmallVectorImpl<PartialDiagnosticAt> &Notes) const { 2179 EvaluatedStmt *Eval = ensureEvaluatedStmt(); 2180 2181 // We only produce notes indicating why an initializer is non-constant the 2182 // first time it is evaluated. FIXME: The notes won't always be emitted the 2183 // first time we try evaluation, so might not be produced at all. 2184 if (Eval->WasEvaluated) 2185 return Eval->Evaluated.isUninit() ? nullptr : &Eval->Evaluated; 2186 2187 const auto *Init = cast<Expr>(Eval->Value); 2188 assert(!Init->isValueDependent()); 2189 2190 if (Eval->IsEvaluating) { 2191 // FIXME: Produce a diagnostic for self-initialization. 2192 Eval->CheckedICE = true; 2193 Eval->IsICE = false; 2194 return nullptr; 2195 } 2196 2197 Eval->IsEvaluating = true; 2198 2199 bool Result = Init->EvaluateAsInitializer(Eval->Evaluated, getASTContext(), 2200 this, Notes); 2201 2202 // Ensure the computed APValue is cleaned up later if evaluation succeeded, 2203 // or that it's empty (so that there's nothing to clean up) if evaluation 2204 // failed. 2205 if (!Result) 2206 Eval->Evaluated = APValue(); 2207 else if (Eval->Evaluated.needsCleanup()) 2208 getASTContext().addDestruction(&Eval->Evaluated); 2209 2210 Eval->IsEvaluating = false; 2211 Eval->WasEvaluated = true; 2212 2213 // In C++11, we have determined whether the initializer was a constant 2214 // expression as a side-effect. 2215 if (getASTContext().getLangOpts().CPlusPlus11 && !Eval->CheckedICE) { 2216 Eval->CheckedICE = true; 2217 Eval->IsICE = Result && Notes.empty(); 2218 } 2219 2220 return Result ? &Eval->Evaluated : nullptr; 2221 } 2222 2223 APValue *VarDecl::getEvaluatedValue() const { 2224 if (EvaluatedStmt *Eval = Init.dyn_cast<EvaluatedStmt *>()) 2225 if (Eval->WasEvaluated) 2226 return &Eval->Evaluated; 2227 2228 return nullptr; 2229 } 2230 2231 bool VarDecl::isInitKnownICE() const { 2232 if (EvaluatedStmt *Eval = Init.dyn_cast<EvaluatedStmt *>()) 2233 return Eval->CheckedICE; 2234 2235 return false; 2236 } 2237 2238 bool VarDecl::isInitICE() const { 2239 assert(isInitKnownICE() && 2240 "Check whether we already know that the initializer is an ICE"); 2241 return Init.get<EvaluatedStmt *>()->IsICE; 2242 } 2243 2244 bool VarDecl::checkInitIsICE() const { 2245 // Initializers of weak variables are never ICEs. 2246 if (isWeak()) 2247 return false; 2248 2249 EvaluatedStmt *Eval = ensureEvaluatedStmt(); 2250 if (Eval->CheckedICE) 2251 // We have already checked whether this subexpression is an 2252 // integral constant expression. 2253 return Eval->IsICE; 2254 2255 const auto *Init = cast<Expr>(Eval->Value); 2256 assert(!Init->isValueDependent()); 2257 2258 // In C++11, evaluate the initializer to check whether it's a constant 2259 // expression. 2260 if (getASTContext().getLangOpts().CPlusPlus11) { 2261 SmallVector<PartialDiagnosticAt, 8> Notes; 2262 evaluateValue(Notes); 2263 return Eval->IsICE; 2264 } 2265 2266 // It's an ICE whether or not the definition we found is 2267 // out-of-line. See DR 721 and the discussion in Clang PR 2268 // 6206 for details. 2269 2270 if (Eval->CheckingICE) 2271 return false; 2272 Eval->CheckingICE = true; 2273 2274 Eval->IsICE = Init->isIntegerConstantExpr(getASTContext()); 2275 Eval->CheckingICE = false; 2276 Eval->CheckedICE = true; 2277 return Eval->IsICE; 2278 } 2279 2280 template<typename DeclT> 2281 static DeclT *getDefinitionOrSelf(DeclT *D) { 2282 assert(D); 2283 if (auto *Def = D->getDefinition()) 2284 return Def; 2285 return D; 2286 } 2287 2288 VarDecl *VarDecl::getTemplateInstantiationPattern() const { 2289 // If it's a variable template specialization, find the template or partial 2290 // specialization from which it was instantiated. 2291 if (auto *VDTemplSpec = dyn_cast<VarTemplateSpecializationDecl>(this)) { 2292 auto From = VDTemplSpec->getInstantiatedFrom(); 2293 if (auto *VTD = From.dyn_cast<VarTemplateDecl *>()) { 2294 while (auto *NewVTD = VTD->getInstantiatedFromMemberTemplate()) { 2295 if (NewVTD->isMemberSpecialization()) 2296 break; 2297 VTD = NewVTD; 2298 } 2299 return getDefinitionOrSelf(VTD->getTemplatedDecl()); 2300 } 2301 if (auto *VTPSD = 2302 From.dyn_cast<VarTemplatePartialSpecializationDecl *>()) { 2303 while (auto *NewVTPSD = VTPSD->getInstantiatedFromMember()) { 2304 if (NewVTPSD->isMemberSpecialization()) 2305 break; 2306 VTPSD = NewVTPSD; 2307 } 2308 return getDefinitionOrSelf<VarDecl>(VTPSD); 2309 } 2310 } 2311 2312 if (MemberSpecializationInfo *MSInfo = getMemberSpecializationInfo()) { 2313 if (isTemplateInstantiation(MSInfo->getTemplateSpecializationKind())) { 2314 VarDecl *VD = getInstantiatedFromStaticDataMember(); 2315 while (auto *NewVD = VD->getInstantiatedFromStaticDataMember()) 2316 VD = NewVD; 2317 return getDefinitionOrSelf(VD); 2318 } 2319 } 2320 2321 if (VarTemplateDecl *VarTemplate = getDescribedVarTemplate()) { 2322 while (VarTemplate->getInstantiatedFromMemberTemplate()) { 2323 if (VarTemplate->isMemberSpecialization()) 2324 break; 2325 VarTemplate = VarTemplate->getInstantiatedFromMemberTemplate(); 2326 } 2327 2328 return getDefinitionOrSelf(VarTemplate->getTemplatedDecl()); 2329 } 2330 return nullptr; 2331 } 2332 2333 VarDecl *VarDecl::getInstantiatedFromStaticDataMember() const { 2334 if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) 2335 return cast<VarDecl>(MSI->getInstantiatedFrom()); 2336 2337 return nullptr; 2338 } 2339 2340 TemplateSpecializationKind VarDecl::getTemplateSpecializationKind() const { 2341 if (const auto *Spec = dyn_cast<VarTemplateSpecializationDecl>(this)) 2342 return Spec->getSpecializationKind(); 2343 2344 if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) 2345 return MSI->getTemplateSpecializationKind(); 2346 2347 return TSK_Undeclared; 2348 } 2349 2350 SourceLocation VarDecl::getPointOfInstantiation() const { 2351 if (const auto *Spec = dyn_cast<VarTemplateSpecializationDecl>(this)) 2352 return Spec->getPointOfInstantiation(); 2353 2354 if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) 2355 return MSI->getPointOfInstantiation(); 2356 2357 return SourceLocation(); 2358 } 2359 2360 VarTemplateDecl *VarDecl::getDescribedVarTemplate() const { 2361 return getASTContext().getTemplateOrSpecializationInfo(this) 2362 .dyn_cast<VarTemplateDecl *>(); 2363 } 2364 2365 void VarDecl::setDescribedVarTemplate(VarTemplateDecl *Template) { 2366 getASTContext().setTemplateOrSpecializationInfo(this, Template); 2367 } 2368 2369 MemberSpecializationInfo *VarDecl::getMemberSpecializationInfo() const { 2370 if (isStaticDataMember()) 2371 // FIXME: Remove ? 2372 // return getASTContext().getInstantiatedFromStaticDataMember(this); 2373 return getASTContext().getTemplateOrSpecializationInfo(this) 2374 .dyn_cast<MemberSpecializationInfo *>(); 2375 return nullptr; 2376 } 2377 2378 void VarDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK, 2379 SourceLocation PointOfInstantiation) { 2380 assert((isa<VarTemplateSpecializationDecl>(this) || 2381 getMemberSpecializationInfo()) && 2382 "not a variable or static data member template specialization"); 2383 2384 if (VarTemplateSpecializationDecl *Spec = 2385 dyn_cast<VarTemplateSpecializationDecl>(this)) { 2386 Spec->setSpecializationKind(TSK); 2387 if (TSK != TSK_ExplicitSpecialization && PointOfInstantiation.isValid() && 2388 Spec->getPointOfInstantiation().isInvalid()) 2389 Spec->setPointOfInstantiation(PointOfInstantiation); 2390 } 2391 2392 if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) { 2393 MSI->setTemplateSpecializationKind(TSK); 2394 if (TSK != TSK_ExplicitSpecialization && PointOfInstantiation.isValid() && 2395 MSI->getPointOfInstantiation().isInvalid()) 2396 MSI->setPointOfInstantiation(PointOfInstantiation); 2397 } 2398 } 2399 2400 void 2401 VarDecl::setInstantiationOfStaticDataMember(VarDecl *VD, 2402 TemplateSpecializationKind TSK) { 2403 assert(getASTContext().getTemplateOrSpecializationInfo(this).isNull() && 2404 "Previous template or instantiation?"); 2405 getASTContext().setInstantiatedFromStaticDataMember(this, VD, TSK); 2406 } 2407 2408 //===----------------------------------------------------------------------===// 2409 // ParmVarDecl Implementation 2410 //===----------------------------------------------------------------------===// 2411 2412 ParmVarDecl *ParmVarDecl::Create(ASTContext &C, DeclContext *DC, 2413 SourceLocation StartLoc, 2414 SourceLocation IdLoc, IdentifierInfo *Id, 2415 QualType T, TypeSourceInfo *TInfo, 2416 StorageClass S, Expr *DefArg) { 2417 return new (C, DC) ParmVarDecl(ParmVar, C, DC, StartLoc, IdLoc, Id, T, TInfo, 2418 S, DefArg); 2419 } 2420 2421 QualType ParmVarDecl::getOriginalType() const { 2422 TypeSourceInfo *TSI = getTypeSourceInfo(); 2423 QualType T = TSI ? TSI->getType() : getType(); 2424 if (const auto *DT = dyn_cast<DecayedType>(T)) 2425 return DT->getOriginalType(); 2426 return T; 2427 } 2428 2429 ParmVarDecl *ParmVarDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 2430 return new (C, ID) 2431 ParmVarDecl(ParmVar, C, nullptr, SourceLocation(), SourceLocation(), 2432 nullptr, QualType(), nullptr, SC_None, nullptr); 2433 } 2434 2435 SourceRange ParmVarDecl::getSourceRange() const { 2436 if (!hasInheritedDefaultArg()) { 2437 SourceRange ArgRange = getDefaultArgRange(); 2438 if (ArgRange.isValid()) 2439 return SourceRange(getOuterLocStart(), ArgRange.getEnd()); 2440 } 2441 2442 // DeclaratorDecl considers the range of postfix types as overlapping with the 2443 // declaration name, but this is not the case with parameters in ObjC methods. 2444 if (isa<ObjCMethodDecl>(getDeclContext())) 2445 return SourceRange(DeclaratorDecl::getLocStart(), getLocation()); 2446 2447 return DeclaratorDecl::getSourceRange(); 2448 } 2449 2450 Expr *ParmVarDecl::getDefaultArg() { 2451 assert(!hasUnparsedDefaultArg() && "Default argument is not yet parsed!"); 2452 assert(!hasUninstantiatedDefaultArg() && 2453 "Default argument is not yet instantiated!"); 2454 2455 Expr *Arg = getInit(); 2456 if (auto *E = dyn_cast_or_null<ExprWithCleanups>(Arg)) 2457 return E->getSubExpr(); 2458 2459 return Arg; 2460 } 2461 2462 void ParmVarDecl::setDefaultArg(Expr *defarg) { 2463 ParmVarDeclBits.DefaultArgKind = DAK_Normal; 2464 Init = defarg; 2465 } 2466 2467 SourceRange ParmVarDecl::getDefaultArgRange() const { 2468 switch (ParmVarDeclBits.DefaultArgKind) { 2469 case DAK_None: 2470 case DAK_Unparsed: 2471 // Nothing we can do here. 2472 return SourceRange(); 2473 2474 case DAK_Uninstantiated: 2475 return getUninstantiatedDefaultArg()->getSourceRange(); 2476 2477 case DAK_Normal: 2478 if (const Expr *E = getInit()) 2479 return E->getSourceRange(); 2480 2481 // Missing an actual expression, may be invalid. 2482 return SourceRange(); 2483 } 2484 llvm_unreachable("Invalid default argument kind."); 2485 } 2486 2487 void ParmVarDecl::setUninstantiatedDefaultArg(Expr *arg) { 2488 ParmVarDeclBits.DefaultArgKind = DAK_Uninstantiated; 2489 Init = arg; 2490 } 2491 2492 Expr *ParmVarDecl::getUninstantiatedDefaultArg() { 2493 assert(hasUninstantiatedDefaultArg() && 2494 "Wrong kind of initialization expression!"); 2495 return cast_or_null<Expr>(Init.get<Stmt *>()); 2496 } 2497 2498 bool ParmVarDecl::hasDefaultArg() const { 2499 // FIXME: We should just return false for DAK_None here once callers are 2500 // prepared for the case that we encountered an invalid default argument and 2501 // were unable to even build an invalid expression. 2502 return hasUnparsedDefaultArg() || hasUninstantiatedDefaultArg() || 2503 !Init.isNull(); 2504 } 2505 2506 bool ParmVarDecl::isParameterPack() const { 2507 return isa<PackExpansionType>(getType()); 2508 } 2509 2510 void ParmVarDecl::setParameterIndexLarge(unsigned parameterIndex) { 2511 getASTContext().setParameterIndex(this, parameterIndex); 2512 ParmVarDeclBits.ParameterIndex = ParameterIndexSentinel; 2513 } 2514 2515 unsigned ParmVarDecl::getParameterIndexLarge() const { 2516 return getASTContext().getParameterIndex(this); 2517 } 2518 2519 //===----------------------------------------------------------------------===// 2520 // FunctionDecl Implementation 2521 //===----------------------------------------------------------------------===// 2522 2523 void FunctionDecl::getNameForDiagnostic( 2524 raw_ostream &OS, const PrintingPolicy &Policy, bool Qualified) const { 2525 NamedDecl::getNameForDiagnostic(OS, Policy, Qualified); 2526 const TemplateArgumentList *TemplateArgs = getTemplateSpecializationArgs(); 2527 if (TemplateArgs) 2528 TemplateSpecializationType::PrintTemplateArgumentList( 2529 OS, TemplateArgs->asArray(), Policy); 2530 } 2531 2532 bool FunctionDecl::isVariadic() const { 2533 if (const auto *FT = getType()->getAs<FunctionProtoType>()) 2534 return FT->isVariadic(); 2535 return false; 2536 } 2537 2538 bool FunctionDecl::hasBody(const FunctionDecl *&Definition) const { 2539 for (auto I : redecls()) { 2540 if (I->doesThisDeclarationHaveABody()) { 2541 Definition = I; 2542 return true; 2543 } 2544 } 2545 2546 return false; 2547 } 2548 2549 bool FunctionDecl::hasTrivialBody() const 2550 { 2551 Stmt *S = getBody(); 2552 if (!S) { 2553 // Since we don't have a body for this function, we don't know if it's 2554 // trivial or not. 2555 return false; 2556 } 2557 2558 if (isa<CompoundStmt>(S) && cast<CompoundStmt>(S)->body_empty()) 2559 return true; 2560 return false; 2561 } 2562 2563 bool FunctionDecl::isDefined(const FunctionDecl *&Definition) const { 2564 for (auto I : redecls()) { 2565 if (I->isThisDeclarationADefinition()) { 2566 Definition = I; 2567 return true; 2568 } 2569 } 2570 2571 return false; 2572 } 2573 2574 Stmt *FunctionDecl::getBody(const FunctionDecl *&Definition) const { 2575 if (!hasBody(Definition)) 2576 return nullptr; 2577 2578 if (Definition->Body) 2579 return Definition->Body.get(getASTContext().getExternalSource()); 2580 2581 return nullptr; 2582 } 2583 2584 void FunctionDecl::setBody(Stmt *B) { 2585 Body = B; 2586 if (B) 2587 EndRangeLoc = B->getLocEnd(); 2588 } 2589 2590 void FunctionDecl::setPure(bool P) { 2591 IsPure = P; 2592 if (P) 2593 if (auto *Parent = dyn_cast<CXXRecordDecl>(getDeclContext())) 2594 Parent->markedVirtualFunctionPure(); 2595 } 2596 2597 template<std::size_t Len> 2598 static bool isNamed(const NamedDecl *ND, const char (&Str)[Len]) { 2599 IdentifierInfo *II = ND->getIdentifier(); 2600 return II && II->isStr(Str); 2601 } 2602 2603 bool FunctionDecl::isMain() const { 2604 const TranslationUnitDecl *tunit = 2605 dyn_cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext()); 2606 return tunit && 2607 !tunit->getASTContext().getLangOpts().Freestanding && 2608 isNamed(this, "main"); 2609 } 2610 2611 bool FunctionDecl::isMSVCRTEntryPoint() const { 2612 const TranslationUnitDecl *TUnit = 2613 dyn_cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext()); 2614 if (!TUnit) 2615 return false; 2616 2617 // Even though we aren't really targeting MSVCRT if we are freestanding, 2618 // semantic analysis for these functions remains the same. 2619 2620 // MSVCRT entry points only exist on MSVCRT targets. 2621 if (!TUnit->getASTContext().getTargetInfo().getTriple().isOSMSVCRT()) 2622 return false; 2623 2624 // Nameless functions like constructors cannot be entry points. 2625 if (!getIdentifier()) 2626 return false; 2627 2628 return llvm::StringSwitch<bool>(getName()) 2629 .Cases("main", // an ANSI console app 2630 "wmain", // a Unicode console App 2631 "WinMain", // an ANSI GUI app 2632 "wWinMain", // a Unicode GUI app 2633 "DllMain", // a DLL 2634 true) 2635 .Default(false); 2636 } 2637 2638 bool FunctionDecl::isReservedGlobalPlacementOperator() const { 2639 assert(getDeclName().getNameKind() == DeclarationName::CXXOperatorName); 2640 assert(getDeclName().getCXXOverloadedOperator() == OO_New || 2641 getDeclName().getCXXOverloadedOperator() == OO_Delete || 2642 getDeclName().getCXXOverloadedOperator() == OO_Array_New || 2643 getDeclName().getCXXOverloadedOperator() == OO_Array_Delete); 2644 2645 if (!getDeclContext()->getRedeclContext()->isTranslationUnit()) 2646 return false; 2647 2648 const auto *proto = getType()->castAs<FunctionProtoType>(); 2649 if (proto->getNumParams() != 2 || proto->isVariadic()) 2650 return false; 2651 2652 ASTContext &Context = 2653 cast<TranslationUnitDecl>(getDeclContext()->getRedeclContext()) 2654 ->getASTContext(); 2655 2656 // The result type and first argument type are constant across all 2657 // these operators. The second argument must be exactly void*. 2658 return (proto->getParamType(1).getCanonicalType() == Context.VoidPtrTy); 2659 } 2660 2661 bool FunctionDecl::isReplaceableGlobalAllocationFunction(bool *IsAligned) const { 2662 if (getDeclName().getNameKind() != DeclarationName::CXXOperatorName) 2663 return false; 2664 if (getDeclName().getCXXOverloadedOperator() != OO_New && 2665 getDeclName().getCXXOverloadedOperator() != OO_Delete && 2666 getDeclName().getCXXOverloadedOperator() != OO_Array_New && 2667 getDeclName().getCXXOverloadedOperator() != OO_Array_Delete) 2668 return false; 2669 2670 if (isa<CXXRecordDecl>(getDeclContext())) 2671 return false; 2672 2673 // This can only fail for an invalid 'operator new' declaration. 2674 if (!getDeclContext()->getRedeclContext()->isTranslationUnit()) 2675 return false; 2676 2677 const auto *FPT = getType()->castAs<FunctionProtoType>(); 2678 if (FPT->getNumParams() == 0 || FPT->getNumParams() > 3 || FPT->isVariadic()) 2679 return false; 2680 2681 // If this is a single-parameter function, it must be a replaceable global 2682 // allocation or deallocation function. 2683 if (FPT->getNumParams() == 1) 2684 return true; 2685 2686 unsigned Params = 1; 2687 QualType Ty = FPT->getParamType(Params); 2688 ASTContext &Ctx = getASTContext(); 2689 2690 auto Consume = [&] { 2691 ++Params; 2692 Ty = Params < FPT->getNumParams() ? FPT->getParamType(Params) : QualType(); 2693 }; 2694 2695 // In C++14, the next parameter can be a 'std::size_t' for sized delete. 2696 bool IsSizedDelete = false; 2697 if (Ctx.getLangOpts().SizedDeallocation && 2698 (getDeclName().getCXXOverloadedOperator() == OO_Delete || 2699 getDeclName().getCXXOverloadedOperator() == OO_Array_Delete) && 2700 Ctx.hasSameType(Ty, Ctx.getSizeType())) { 2701 IsSizedDelete = true; 2702 Consume(); 2703 } 2704 2705 // In C++17, the next parameter can be a 'std::align_val_t' for aligned 2706 // new/delete. 2707 if (Ctx.getLangOpts().AlignedAllocation && !Ty.isNull() && Ty->isAlignValT()) { 2708 if (IsAligned) 2709 *IsAligned = true; 2710 Consume(); 2711 } 2712 2713 // Finally, if this is not a sized delete, the final parameter can 2714 // be a 'const std::nothrow_t&'. 2715 if (!IsSizedDelete && !Ty.isNull() && Ty->isReferenceType()) { 2716 Ty = Ty->getPointeeType(); 2717 if (Ty.getCVRQualifiers() != Qualifiers::Const) 2718 return false; 2719 const CXXRecordDecl *RD = Ty->getAsCXXRecordDecl(); 2720 if (RD && isNamed(RD, "nothrow_t") && RD->isInStdNamespace()) 2721 Consume(); 2722 } 2723 2724 return Params == FPT->getNumParams(); 2725 } 2726 2727 bool FunctionDecl::isDestroyingOperatorDelete() const { 2728 // C++ P0722: 2729 // Within a class C, a single object deallocation function with signature 2730 // (T, std::destroying_delete_t, <more params>) 2731 // is a destroying operator delete. 2732 if (!isa<CXXMethodDecl>(this) || getOverloadedOperator() != OO_Delete || 2733 getNumParams() < 2) 2734 return false; 2735 2736 auto *RD = getParamDecl(1)->getType()->getAsCXXRecordDecl(); 2737 return RD && RD->isInStdNamespace() && RD->getIdentifier() && 2738 RD->getIdentifier()->isStr("destroying_delete_t"); 2739 } 2740 2741 LanguageLinkage FunctionDecl::getLanguageLinkage() const { 2742 return getDeclLanguageLinkage(*this); 2743 } 2744 2745 bool FunctionDecl::isExternC() const { 2746 return isDeclExternC(*this); 2747 } 2748 2749 bool FunctionDecl::isInExternCContext() const { 2750 return getLexicalDeclContext()->isExternCContext(); 2751 } 2752 2753 bool FunctionDecl::isInExternCXXContext() const { 2754 return getLexicalDeclContext()->isExternCXXContext(); 2755 } 2756 2757 bool FunctionDecl::isGlobal() const { 2758 if (const auto *Method = dyn_cast<CXXMethodDecl>(this)) 2759 return Method->isStatic(); 2760 2761 if (getCanonicalDecl()->getStorageClass() == SC_Static) 2762 return false; 2763 2764 for (const DeclContext *DC = getDeclContext(); 2765 DC->isNamespace(); 2766 DC = DC->getParent()) { 2767 if (const auto *Namespace = cast<NamespaceDecl>(DC)) { 2768 if (!Namespace->getDeclName()) 2769 return false; 2770 break; 2771 } 2772 } 2773 2774 return true; 2775 } 2776 2777 bool FunctionDecl::isNoReturn() const { 2778 if (hasAttr<NoReturnAttr>() || hasAttr<CXX11NoReturnAttr>() || 2779 hasAttr<C11NoReturnAttr>()) 2780 return true; 2781 2782 if (auto *FnTy = getType()->getAs<FunctionType>()) 2783 return FnTy->getNoReturnAttr(); 2784 2785 return false; 2786 } 2787 2788 void 2789 FunctionDecl::setPreviousDeclaration(FunctionDecl *PrevDecl) { 2790 redeclarable_base::setPreviousDecl(PrevDecl); 2791 2792 if (FunctionTemplateDecl *FunTmpl = getDescribedFunctionTemplate()) { 2793 FunctionTemplateDecl *PrevFunTmpl 2794 = PrevDecl? PrevDecl->getDescribedFunctionTemplate() : nullptr; 2795 assert((!PrevDecl || PrevFunTmpl) && "Function/function template mismatch"); 2796 FunTmpl->setPreviousDecl(PrevFunTmpl); 2797 } 2798 2799 if (PrevDecl && PrevDecl->IsInline) 2800 IsInline = true; 2801 } 2802 2803 FunctionDecl *FunctionDecl::getCanonicalDecl() { return getFirstDecl(); } 2804 2805 /// \brief Returns a value indicating whether this function 2806 /// corresponds to a builtin function. 2807 /// 2808 /// The function corresponds to a built-in function if it is 2809 /// declared at translation scope or within an extern "C" block and 2810 /// its name matches with the name of a builtin. The returned value 2811 /// will be 0 for functions that do not correspond to a builtin, a 2812 /// value of type \c Builtin::ID if in the target-independent range 2813 /// \c [1,Builtin::First), or a target-specific builtin value. 2814 unsigned FunctionDecl::getBuiltinID() const { 2815 if (!getIdentifier()) 2816 return 0; 2817 2818 unsigned BuiltinID = getIdentifier()->getBuiltinID(); 2819 if (!BuiltinID) 2820 return 0; 2821 2822 ASTContext &Context = getASTContext(); 2823 if (Context.getLangOpts().CPlusPlus) { 2824 const auto *LinkageDecl = 2825 dyn_cast<LinkageSpecDecl>(getFirstDecl()->getDeclContext()); 2826 // In C++, the first declaration of a builtin is always inside an implicit 2827 // extern "C". 2828 // FIXME: A recognised library function may not be directly in an extern "C" 2829 // declaration, for instance "extern "C" { namespace std { decl } }". 2830 if (!LinkageDecl) { 2831 if (BuiltinID == Builtin::BI__GetExceptionInfo && 2832 Context.getTargetInfo().getCXXABI().isMicrosoft()) 2833 return Builtin::BI__GetExceptionInfo; 2834 return 0; 2835 } 2836 if (LinkageDecl->getLanguage() != LinkageSpecDecl::lang_c) 2837 return 0; 2838 } 2839 2840 // If the function is marked "overloadable", it has a different mangled name 2841 // and is not the C library function. 2842 if (hasAttr<OverloadableAttr>()) 2843 return 0; 2844 2845 if (!Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) 2846 return BuiltinID; 2847 2848 // This function has the name of a known C library 2849 // function. Determine whether it actually refers to the C library 2850 // function or whether it just has the same name. 2851 2852 // If this is a static function, it's not a builtin. 2853 if (getStorageClass() == SC_Static) 2854 return 0; 2855 2856 // OpenCL v1.2 s6.9.f - The library functions defined in 2857 // the C99 standard headers are not available. 2858 if (Context.getLangOpts().OpenCL && 2859 Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) 2860 return 0; 2861 2862 return BuiltinID; 2863 } 2864 2865 2866 /// getNumParams - Return the number of parameters this function must have 2867 /// based on its FunctionType. This is the length of the ParamInfo array 2868 /// after it has been created. 2869 unsigned FunctionDecl::getNumParams() const { 2870 const auto *FPT = getType()->getAs<FunctionProtoType>(); 2871 return FPT ? FPT->getNumParams() : 0; 2872 } 2873 2874 void FunctionDecl::setParams(ASTContext &C, 2875 ArrayRef<ParmVarDecl *> NewParamInfo) { 2876 assert(!ParamInfo && "Already has param info!"); 2877 assert(NewParamInfo.size() == getNumParams() && "Parameter count mismatch!"); 2878 2879 // Zero params -> null pointer. 2880 if (!NewParamInfo.empty()) { 2881 ParamInfo = new (C) ParmVarDecl*[NewParamInfo.size()]; 2882 std::copy(NewParamInfo.begin(), NewParamInfo.end(), ParamInfo); 2883 } 2884 } 2885 2886 /// getMinRequiredArguments - Returns the minimum number of arguments 2887 /// needed to call this function. This may be fewer than the number of 2888 /// function parameters, if some of the parameters have default 2889 /// arguments (in C++) or are parameter packs (C++11). 2890 unsigned FunctionDecl::getMinRequiredArguments() const { 2891 if (!getASTContext().getLangOpts().CPlusPlus) 2892 return getNumParams(); 2893 2894 unsigned NumRequiredArgs = 0; 2895 for (auto *Param : parameters()) 2896 if (!Param->isParameterPack() && !Param->hasDefaultArg()) 2897 ++NumRequiredArgs; 2898 return NumRequiredArgs; 2899 } 2900 2901 /// \brief The combination of the extern and inline keywords under MSVC forces 2902 /// the function to be required. 2903 /// 2904 /// Note: This function assumes that we will only get called when isInlined() 2905 /// would return true for this FunctionDecl. 2906 bool FunctionDecl::isMSExternInline() const { 2907 assert(isInlined() && "expected to get called on an inlined function!"); 2908 2909 const ASTContext &Context = getASTContext(); 2910 if (!Context.getTargetInfo().getCXXABI().isMicrosoft() && 2911 !hasAttr<DLLExportAttr>()) 2912 return false; 2913 2914 for (const FunctionDecl *FD = getMostRecentDecl(); FD; 2915 FD = FD->getPreviousDecl()) 2916 if (!FD->isImplicit() && FD->getStorageClass() == SC_Extern) 2917 return true; 2918 2919 return false; 2920 } 2921 2922 static bool redeclForcesDefMSVC(const FunctionDecl *Redecl) { 2923 if (Redecl->getStorageClass() != SC_Extern) 2924 return false; 2925 2926 for (const FunctionDecl *FD = Redecl->getPreviousDecl(); FD; 2927 FD = FD->getPreviousDecl()) 2928 if (!FD->isImplicit() && FD->getStorageClass() == SC_Extern) 2929 return false; 2930 2931 return true; 2932 } 2933 2934 static bool RedeclForcesDefC99(const FunctionDecl *Redecl) { 2935 // Only consider file-scope declarations in this test. 2936 if (!Redecl->getLexicalDeclContext()->isTranslationUnit()) 2937 return false; 2938 2939 // Only consider explicit declarations; the presence of a builtin for a 2940 // libcall shouldn't affect whether a definition is externally visible. 2941 if (Redecl->isImplicit()) 2942 return false; 2943 2944 if (!Redecl->isInlineSpecified() || Redecl->getStorageClass() == SC_Extern) 2945 return true; // Not an inline definition 2946 2947 return false; 2948 } 2949 2950 /// \brief For a function declaration in C or C++, determine whether this 2951 /// declaration causes the definition to be externally visible. 2952 /// 2953 /// For instance, this determines if adding the current declaration to the set 2954 /// of redeclarations of the given functions causes 2955 /// isInlineDefinitionExternallyVisible to change from false to true. 2956 bool FunctionDecl::doesDeclarationForceExternallyVisibleDefinition() const { 2957 assert(!doesThisDeclarationHaveABody() && 2958 "Must have a declaration without a body."); 2959 2960 ASTContext &Context = getASTContext(); 2961 2962 if (Context.getLangOpts().MSVCCompat) { 2963 const FunctionDecl *Definition; 2964 if (hasBody(Definition) && Definition->isInlined() && 2965 redeclForcesDefMSVC(this)) 2966 return true; 2967 } 2968 2969 if (Context.getLangOpts().GNUInline || hasAttr<GNUInlineAttr>()) { 2970 // With GNU inlining, a declaration with 'inline' but not 'extern', forces 2971 // an externally visible definition. 2972 // 2973 // FIXME: What happens if gnu_inline gets added on after the first 2974 // declaration? 2975 if (!isInlineSpecified() || getStorageClass() == SC_Extern) 2976 return false; 2977 2978 const FunctionDecl *Prev = this; 2979 bool FoundBody = false; 2980 while ((Prev = Prev->getPreviousDecl())) { 2981 FoundBody |= Prev->Body.isValid(); 2982 2983 if (Prev->Body) { 2984 // If it's not the case that both 'inline' and 'extern' are 2985 // specified on the definition, then it is always externally visible. 2986 if (!Prev->isInlineSpecified() || 2987 Prev->getStorageClass() != SC_Extern) 2988 return false; 2989 } else if (Prev->isInlineSpecified() && 2990 Prev->getStorageClass() != SC_Extern) { 2991 return false; 2992 } 2993 } 2994 return FoundBody; 2995 } 2996 2997 if (Context.getLangOpts().CPlusPlus) 2998 return false; 2999 3000 // C99 6.7.4p6: 3001 // [...] If all of the file scope declarations for a function in a 3002 // translation unit include the inline function specifier without extern, 3003 // then the definition in that translation unit is an inline definition. 3004 if (isInlineSpecified() && getStorageClass() != SC_Extern) 3005 return false; 3006 const FunctionDecl *Prev = this; 3007 bool FoundBody = false; 3008 while ((Prev = Prev->getPreviousDecl())) { 3009 FoundBody |= Prev->Body.isValid(); 3010 if (RedeclForcesDefC99(Prev)) 3011 return false; 3012 } 3013 return FoundBody; 3014 } 3015 3016 SourceRange FunctionDecl::getReturnTypeSourceRange() const { 3017 const TypeSourceInfo *TSI = getTypeSourceInfo(); 3018 if (!TSI) 3019 return SourceRange(); 3020 FunctionTypeLoc FTL = 3021 TSI->getTypeLoc().IgnoreParens().getAs<FunctionTypeLoc>(); 3022 if (!FTL) 3023 return SourceRange(); 3024 3025 // Skip self-referential return types. 3026 const SourceManager &SM = getASTContext().getSourceManager(); 3027 SourceRange RTRange = FTL.getReturnLoc().getSourceRange(); 3028 SourceLocation Boundary = getNameInfo().getLocStart(); 3029 if (RTRange.isInvalid() || Boundary.isInvalid() || 3030 !SM.isBeforeInTranslationUnit(RTRange.getEnd(), Boundary)) 3031 return SourceRange(); 3032 3033 return RTRange; 3034 } 3035 3036 SourceRange FunctionDecl::getExceptionSpecSourceRange() const { 3037 const TypeSourceInfo *TSI = getTypeSourceInfo(); 3038 if (!TSI) 3039 return SourceRange(); 3040 FunctionTypeLoc FTL = 3041 TSI->getTypeLoc().IgnoreParens().getAs<FunctionTypeLoc>(); 3042 if (!FTL) 3043 return SourceRange(); 3044 3045 return FTL.getExceptionSpecRange(); 3046 } 3047 3048 const Attr *FunctionDecl::getUnusedResultAttr() const { 3049 QualType RetType = getReturnType(); 3050 if (RetType->isRecordType()) { 3051 if (const auto *Ret = 3052 dyn_cast_or_null<RecordDecl>(RetType->getAsTagDecl())) { 3053 if (const auto *R = Ret->getAttr<WarnUnusedResultAttr>()) 3054 return R; 3055 } 3056 } else if (const auto *ET = RetType->getAs<EnumType>()) { 3057 if (const EnumDecl *ED = ET->getDecl()) { 3058 if (const auto *R = ED->getAttr<WarnUnusedResultAttr>()) 3059 return R; 3060 } 3061 } 3062 return getAttr<WarnUnusedResultAttr>(); 3063 } 3064 3065 /// \brief For an inline function definition in C, or for a gnu_inline function 3066 /// in C++, determine whether the definition will be externally visible. 3067 /// 3068 /// Inline function definitions are always available for inlining optimizations. 3069 /// However, depending on the language dialect, declaration specifiers, and 3070 /// attributes, the definition of an inline function may or may not be 3071 /// "externally" visible to other translation units in the program. 3072 /// 3073 /// In C99, inline definitions are not externally visible by default. However, 3074 /// if even one of the global-scope declarations is marked "extern inline", the 3075 /// inline definition becomes externally visible (C99 6.7.4p6). 3076 /// 3077 /// In GNU89 mode, or if the gnu_inline attribute is attached to the function 3078 /// definition, we use the GNU semantics for inline, which are nearly the 3079 /// opposite of C99 semantics. In particular, "inline" by itself will create 3080 /// an externally visible symbol, but "extern inline" will not create an 3081 /// externally visible symbol. 3082 bool FunctionDecl::isInlineDefinitionExternallyVisible() const { 3083 assert((doesThisDeclarationHaveABody() || willHaveBody()) && 3084 "Must be a function definition"); 3085 assert(isInlined() && "Function must be inline"); 3086 ASTContext &Context = getASTContext(); 3087 3088 if (Context.getLangOpts().GNUInline || hasAttr<GNUInlineAttr>()) { 3089 // Note: If you change the logic here, please change 3090 // doesDeclarationForceExternallyVisibleDefinition as well. 3091 // 3092 // If it's not the case that both 'inline' and 'extern' are 3093 // specified on the definition, then this inline definition is 3094 // externally visible. 3095 if (!(isInlineSpecified() && getStorageClass() == SC_Extern)) 3096 return true; 3097 3098 // If any declaration is 'inline' but not 'extern', then this definition 3099 // is externally visible. 3100 for (auto Redecl : redecls()) { 3101 if (Redecl->isInlineSpecified() && 3102 Redecl->getStorageClass() != SC_Extern) 3103 return true; 3104 } 3105 3106 return false; 3107 } 3108 3109 // The rest of this function is C-only. 3110 assert(!Context.getLangOpts().CPlusPlus && 3111 "should not use C inline rules in C++"); 3112 3113 // C99 6.7.4p6: 3114 // [...] If all of the file scope declarations for a function in a 3115 // translation unit include the inline function specifier without extern, 3116 // then the definition in that translation unit is an inline definition. 3117 for (auto Redecl : redecls()) { 3118 if (RedeclForcesDefC99(Redecl)) 3119 return true; 3120 } 3121 3122 // C99 6.7.4p6: 3123 // An inline definition does not provide an external definition for the 3124 // function, and does not forbid an external definition in another 3125 // translation unit. 3126 return false; 3127 } 3128 3129 /// getOverloadedOperator - Which C++ overloaded operator this 3130 /// function represents, if any. 3131 OverloadedOperatorKind FunctionDecl::getOverloadedOperator() const { 3132 if (getDeclName().getNameKind() == DeclarationName::CXXOperatorName) 3133 return getDeclName().getCXXOverloadedOperator(); 3134 else 3135 return OO_None; 3136 } 3137 3138 /// getLiteralIdentifier - The literal suffix identifier this function 3139 /// represents, if any. 3140 const IdentifierInfo *FunctionDecl::getLiteralIdentifier() const { 3141 if (getDeclName().getNameKind() == DeclarationName::CXXLiteralOperatorName) 3142 return getDeclName().getCXXLiteralIdentifier(); 3143 else 3144 return nullptr; 3145 } 3146 3147 FunctionDecl::TemplatedKind FunctionDecl::getTemplatedKind() const { 3148 if (TemplateOrSpecialization.isNull()) 3149 return TK_NonTemplate; 3150 if (TemplateOrSpecialization.is<FunctionTemplateDecl *>()) 3151 return TK_FunctionTemplate; 3152 if (TemplateOrSpecialization.is<MemberSpecializationInfo *>()) 3153 return TK_MemberSpecialization; 3154 if (TemplateOrSpecialization.is<FunctionTemplateSpecializationInfo *>()) 3155 return TK_FunctionTemplateSpecialization; 3156 if (TemplateOrSpecialization.is 3157 <DependentFunctionTemplateSpecializationInfo*>()) 3158 return TK_DependentFunctionTemplateSpecialization; 3159 3160 llvm_unreachable("Did we miss a TemplateOrSpecialization type?"); 3161 } 3162 3163 FunctionDecl *FunctionDecl::getInstantiatedFromMemberFunction() const { 3164 if (MemberSpecializationInfo *Info = getMemberSpecializationInfo()) 3165 return cast<FunctionDecl>(Info->getInstantiatedFrom()); 3166 3167 return nullptr; 3168 } 3169 3170 MemberSpecializationInfo *FunctionDecl::getMemberSpecializationInfo() const { 3171 return TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo *>(); 3172 } 3173 3174 void 3175 FunctionDecl::setInstantiationOfMemberFunction(ASTContext &C, 3176 FunctionDecl *FD, 3177 TemplateSpecializationKind TSK) { 3178 assert(TemplateOrSpecialization.isNull() && 3179 "Member function is already a specialization"); 3180 MemberSpecializationInfo *Info 3181 = new (C) MemberSpecializationInfo(FD, TSK); 3182 TemplateOrSpecialization = Info; 3183 } 3184 3185 FunctionTemplateDecl *FunctionDecl::getDescribedFunctionTemplate() const { 3186 return TemplateOrSpecialization.dyn_cast<FunctionTemplateDecl *>(); 3187 } 3188 3189 void FunctionDecl::setDescribedFunctionTemplate(FunctionTemplateDecl *Template) { 3190 TemplateOrSpecialization = Template; 3191 } 3192 3193 bool FunctionDecl::isImplicitlyInstantiable() const { 3194 // If the function is invalid, it can't be implicitly instantiated. 3195 if (isInvalidDecl()) 3196 return false; 3197 3198 switch (getTemplateSpecializationKind()) { 3199 case TSK_Undeclared: 3200 case TSK_ExplicitInstantiationDefinition: 3201 return false; 3202 3203 case TSK_ImplicitInstantiation: 3204 return true; 3205 3206 // It is possible to instantiate TSK_ExplicitSpecialization kind 3207 // if the FunctionDecl has a class scope specialization pattern. 3208 case TSK_ExplicitSpecialization: 3209 return getClassScopeSpecializationPattern() != nullptr; 3210 3211 case TSK_ExplicitInstantiationDeclaration: 3212 // Handled below. 3213 break; 3214 } 3215 3216 // Find the actual template from which we will instantiate. 3217 const FunctionDecl *PatternDecl = getTemplateInstantiationPattern(); 3218 bool HasPattern = false; 3219 if (PatternDecl) 3220 HasPattern = PatternDecl->hasBody(PatternDecl); 3221 3222 // C++0x [temp.explicit]p9: 3223 // Except for inline functions, other explicit instantiation declarations 3224 // have the effect of suppressing the implicit instantiation of the entity 3225 // to which they refer. 3226 if (!HasPattern || !PatternDecl) 3227 return true; 3228 3229 return PatternDecl->isInlined(); 3230 } 3231 3232 bool FunctionDecl::isTemplateInstantiation() const { 3233 switch (getTemplateSpecializationKind()) { 3234 case TSK_Undeclared: 3235 case TSK_ExplicitSpecialization: 3236 return false; 3237 case TSK_ImplicitInstantiation: 3238 case TSK_ExplicitInstantiationDeclaration: 3239 case TSK_ExplicitInstantiationDefinition: 3240 return true; 3241 } 3242 llvm_unreachable("All TSK values handled."); 3243 } 3244 3245 FunctionDecl *FunctionDecl::getTemplateInstantiationPattern() const { 3246 // Handle class scope explicit specialization special case. 3247 if (getTemplateSpecializationKind() == TSK_ExplicitSpecialization) { 3248 if (auto *Spec = getClassScopeSpecializationPattern()) 3249 return getDefinitionOrSelf(Spec); 3250 return nullptr; 3251 } 3252 3253 // If this is a generic lambda call operator specialization, its 3254 // instantiation pattern is always its primary template's pattern 3255 // even if its primary template was instantiated from another 3256 // member template (which happens with nested generic lambdas). 3257 // Since a lambda's call operator's body is transformed eagerly, 3258 // we don't have to go hunting for a prototype definition template 3259 // (i.e. instantiated-from-member-template) to use as an instantiation 3260 // pattern. 3261 3262 if (isGenericLambdaCallOperatorSpecialization( 3263 dyn_cast<CXXMethodDecl>(this))) { 3264 assert(getPrimaryTemplate() && "not a generic lambda call operator?"); 3265 return getDefinitionOrSelf(getPrimaryTemplate()->getTemplatedDecl()); 3266 } 3267 3268 if (FunctionTemplateDecl *Primary = getPrimaryTemplate()) { 3269 while (Primary->getInstantiatedFromMemberTemplate()) { 3270 // If we have hit a point where the user provided a specialization of 3271 // this template, we're done looking. 3272 if (Primary->isMemberSpecialization()) 3273 break; 3274 Primary = Primary->getInstantiatedFromMemberTemplate(); 3275 } 3276 3277 return getDefinitionOrSelf(Primary->getTemplatedDecl()); 3278 } 3279 3280 if (auto *MFD = getInstantiatedFromMemberFunction()) 3281 return getDefinitionOrSelf(MFD); 3282 3283 return nullptr; 3284 } 3285 3286 FunctionTemplateDecl *FunctionDecl::getPrimaryTemplate() const { 3287 if (FunctionTemplateSpecializationInfo *Info 3288 = TemplateOrSpecialization 3289 .dyn_cast<FunctionTemplateSpecializationInfo*>()) { 3290 return Info->Template.getPointer(); 3291 } 3292 return nullptr; 3293 } 3294 3295 FunctionDecl *FunctionDecl::getClassScopeSpecializationPattern() const { 3296 return getASTContext().getClassScopeSpecializationPattern(this); 3297 } 3298 3299 FunctionTemplateSpecializationInfo * 3300 FunctionDecl::getTemplateSpecializationInfo() const { 3301 return TemplateOrSpecialization 3302 .dyn_cast<FunctionTemplateSpecializationInfo *>(); 3303 } 3304 3305 const TemplateArgumentList * 3306 FunctionDecl::getTemplateSpecializationArgs() const { 3307 if (FunctionTemplateSpecializationInfo *Info 3308 = TemplateOrSpecialization 3309 .dyn_cast<FunctionTemplateSpecializationInfo*>()) { 3310 return Info->TemplateArguments; 3311 } 3312 return nullptr; 3313 } 3314 3315 const ASTTemplateArgumentListInfo * 3316 FunctionDecl::getTemplateSpecializationArgsAsWritten() const { 3317 if (FunctionTemplateSpecializationInfo *Info 3318 = TemplateOrSpecialization 3319 .dyn_cast<FunctionTemplateSpecializationInfo*>()) { 3320 return Info->TemplateArgumentsAsWritten; 3321 } 3322 return nullptr; 3323 } 3324 3325 void 3326 FunctionDecl::setFunctionTemplateSpecialization(ASTContext &C, 3327 FunctionTemplateDecl *Template, 3328 const TemplateArgumentList *TemplateArgs, 3329 void *InsertPos, 3330 TemplateSpecializationKind TSK, 3331 const TemplateArgumentListInfo *TemplateArgsAsWritten, 3332 SourceLocation PointOfInstantiation) { 3333 assert(TSK != TSK_Undeclared && 3334 "Must specify the type of function template specialization"); 3335 FunctionTemplateSpecializationInfo *Info 3336 = TemplateOrSpecialization.dyn_cast<FunctionTemplateSpecializationInfo*>(); 3337 if (!Info) 3338 Info = FunctionTemplateSpecializationInfo::Create(C, this, Template, TSK, 3339 TemplateArgs, 3340 TemplateArgsAsWritten, 3341 PointOfInstantiation); 3342 TemplateOrSpecialization = Info; 3343 Template->addSpecialization(Info, InsertPos); 3344 } 3345 3346 void 3347 FunctionDecl::setDependentTemplateSpecialization(ASTContext &Context, 3348 const UnresolvedSetImpl &Templates, 3349 const TemplateArgumentListInfo &TemplateArgs) { 3350 assert(TemplateOrSpecialization.isNull()); 3351 DependentFunctionTemplateSpecializationInfo *Info = 3352 DependentFunctionTemplateSpecializationInfo::Create(Context, Templates, 3353 TemplateArgs); 3354 TemplateOrSpecialization = Info; 3355 } 3356 3357 DependentFunctionTemplateSpecializationInfo * 3358 FunctionDecl::getDependentSpecializationInfo() const { 3359 return TemplateOrSpecialization 3360 .dyn_cast<DependentFunctionTemplateSpecializationInfo *>(); 3361 } 3362 3363 DependentFunctionTemplateSpecializationInfo * 3364 DependentFunctionTemplateSpecializationInfo::Create( 3365 ASTContext &Context, const UnresolvedSetImpl &Ts, 3366 const TemplateArgumentListInfo &TArgs) { 3367 void *Buffer = Context.Allocate( 3368 totalSizeToAlloc<TemplateArgumentLoc, FunctionTemplateDecl *>( 3369 TArgs.size(), Ts.size())); 3370 return new (Buffer) DependentFunctionTemplateSpecializationInfo(Ts, TArgs); 3371 } 3372 3373 DependentFunctionTemplateSpecializationInfo:: 3374 DependentFunctionTemplateSpecializationInfo(const UnresolvedSetImpl &Ts, 3375 const TemplateArgumentListInfo &TArgs) 3376 : AngleLocs(TArgs.getLAngleLoc(), TArgs.getRAngleLoc()) { 3377 3378 NumTemplates = Ts.size(); 3379 NumArgs = TArgs.size(); 3380 3381 FunctionTemplateDecl **TsArray = getTrailingObjects<FunctionTemplateDecl *>(); 3382 for (unsigned I = 0, E = Ts.size(); I != E; ++I) 3383 TsArray[I] = cast<FunctionTemplateDecl>(Ts[I]->getUnderlyingDecl()); 3384 3385 TemplateArgumentLoc *ArgsArray = getTrailingObjects<TemplateArgumentLoc>(); 3386 for (unsigned I = 0, E = TArgs.size(); I != E; ++I) 3387 new (&ArgsArray[I]) TemplateArgumentLoc(TArgs[I]); 3388 } 3389 3390 TemplateSpecializationKind FunctionDecl::getTemplateSpecializationKind() const { 3391 // For a function template specialization, query the specialization 3392 // information object. 3393 FunctionTemplateSpecializationInfo *FTSInfo 3394 = TemplateOrSpecialization.dyn_cast<FunctionTemplateSpecializationInfo*>(); 3395 if (FTSInfo) 3396 return FTSInfo->getTemplateSpecializationKind(); 3397 3398 MemberSpecializationInfo *MSInfo 3399 = TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo*>(); 3400 if (MSInfo) 3401 return MSInfo->getTemplateSpecializationKind(); 3402 3403 return TSK_Undeclared; 3404 } 3405 3406 void 3407 FunctionDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK, 3408 SourceLocation PointOfInstantiation) { 3409 if (FunctionTemplateSpecializationInfo *FTSInfo 3410 = TemplateOrSpecialization.dyn_cast< 3411 FunctionTemplateSpecializationInfo*>()) { 3412 FTSInfo->setTemplateSpecializationKind(TSK); 3413 if (TSK != TSK_ExplicitSpecialization && 3414 PointOfInstantiation.isValid() && 3415 FTSInfo->getPointOfInstantiation().isInvalid()) 3416 FTSInfo->setPointOfInstantiation(PointOfInstantiation); 3417 } else if (MemberSpecializationInfo *MSInfo 3418 = TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo*>()) { 3419 MSInfo->setTemplateSpecializationKind(TSK); 3420 if (TSK != TSK_ExplicitSpecialization && 3421 PointOfInstantiation.isValid() && 3422 MSInfo->getPointOfInstantiation().isInvalid()) 3423 MSInfo->setPointOfInstantiation(PointOfInstantiation); 3424 } else 3425 llvm_unreachable("Function cannot have a template specialization kind"); 3426 } 3427 3428 SourceLocation FunctionDecl::getPointOfInstantiation() const { 3429 if (FunctionTemplateSpecializationInfo *FTSInfo 3430 = TemplateOrSpecialization.dyn_cast< 3431 FunctionTemplateSpecializationInfo*>()) 3432 return FTSInfo->getPointOfInstantiation(); 3433 else if (MemberSpecializationInfo *MSInfo 3434 = TemplateOrSpecialization.dyn_cast<MemberSpecializationInfo*>()) 3435 return MSInfo->getPointOfInstantiation(); 3436 3437 return SourceLocation(); 3438 } 3439 3440 bool FunctionDecl::isOutOfLine() const { 3441 if (Decl::isOutOfLine()) 3442 return true; 3443 3444 // If this function was instantiated from a member function of a 3445 // class template, check whether that member function was defined out-of-line. 3446 if (FunctionDecl *FD = getInstantiatedFromMemberFunction()) { 3447 const FunctionDecl *Definition; 3448 if (FD->hasBody(Definition)) 3449 return Definition->isOutOfLine(); 3450 } 3451 3452 // If this function was instantiated from a function template, 3453 // check whether that function template was defined out-of-line. 3454 if (FunctionTemplateDecl *FunTmpl = getPrimaryTemplate()) { 3455 const FunctionDecl *Definition; 3456 if (FunTmpl->getTemplatedDecl()->hasBody(Definition)) 3457 return Definition->isOutOfLine(); 3458 } 3459 3460 return false; 3461 } 3462 3463 SourceRange FunctionDecl::getSourceRange() const { 3464 return SourceRange(getOuterLocStart(), EndRangeLoc); 3465 } 3466 3467 unsigned FunctionDecl::getMemoryFunctionKind() const { 3468 IdentifierInfo *FnInfo = getIdentifier(); 3469 3470 if (!FnInfo) 3471 return 0; 3472 3473 // Builtin handling. 3474 switch (getBuiltinID()) { 3475 case Builtin::BI__builtin_memset: 3476 case Builtin::BI__builtin___memset_chk: 3477 case Builtin::BImemset: 3478 return Builtin::BImemset; 3479 3480 case Builtin::BI__builtin_memcpy: 3481 case Builtin::BI__builtin___memcpy_chk: 3482 case Builtin::BImemcpy: 3483 return Builtin::BImemcpy; 3484 3485 case Builtin::BI__builtin_memmove: 3486 case Builtin::BI__builtin___memmove_chk: 3487 case Builtin::BImemmove: 3488 return Builtin::BImemmove; 3489 3490 case Builtin::BIstrlcpy: 3491 case Builtin::BI__builtin___strlcpy_chk: 3492 return Builtin::BIstrlcpy; 3493 3494 case Builtin::BIstrlcat: 3495 case Builtin::BI__builtin___strlcat_chk: 3496 return Builtin::BIstrlcat; 3497 3498 case Builtin::BI__builtin_memcmp: 3499 case Builtin::BImemcmp: 3500 return Builtin::BImemcmp; 3501 3502 case Builtin::BI__builtin_strncpy: 3503 case Builtin::BI__builtin___strncpy_chk: 3504 case Builtin::BIstrncpy: 3505 return Builtin::BIstrncpy; 3506 3507 case Builtin::BI__builtin_strncmp: 3508 case Builtin::BIstrncmp: 3509 return Builtin::BIstrncmp; 3510 3511 case Builtin::BI__builtin_strncasecmp: 3512 case Builtin::BIstrncasecmp: 3513 return Builtin::BIstrncasecmp; 3514 3515 case Builtin::BI__builtin_strncat: 3516 case Builtin::BI__builtin___strncat_chk: 3517 case Builtin::BIstrncat: 3518 return Builtin::BIstrncat; 3519 3520 case Builtin::BI__builtin_strndup: 3521 case Builtin::BIstrndup: 3522 return Builtin::BIstrndup; 3523 3524 case Builtin::BI__builtin_strlen: 3525 case Builtin::BIstrlen: 3526 return Builtin::BIstrlen; 3527 3528 case Builtin::BI__builtin_bzero: 3529 case Builtin::BIbzero: 3530 return Builtin::BIbzero; 3531 3532 default: 3533 if (isExternC()) { 3534 if (FnInfo->isStr("memset")) 3535 return Builtin::BImemset; 3536 else if (FnInfo->isStr("memcpy")) 3537 return Builtin::BImemcpy; 3538 else if (FnInfo->isStr("memmove")) 3539 return Builtin::BImemmove; 3540 else if (FnInfo->isStr("memcmp")) 3541 return Builtin::BImemcmp; 3542 else if (FnInfo->isStr("strncpy")) 3543 return Builtin::BIstrncpy; 3544 else if (FnInfo->isStr("strncmp")) 3545 return Builtin::BIstrncmp; 3546 else if (FnInfo->isStr("strncasecmp")) 3547 return Builtin::BIstrncasecmp; 3548 else if (FnInfo->isStr("strncat")) 3549 return Builtin::BIstrncat; 3550 else if (FnInfo->isStr("strndup")) 3551 return Builtin::BIstrndup; 3552 else if (FnInfo->isStr("strlen")) 3553 return Builtin::BIstrlen; 3554 else if (FnInfo->isStr("bzero")) 3555 return Builtin::BIbzero; 3556 } 3557 break; 3558 } 3559 return 0; 3560 } 3561 3562 //===----------------------------------------------------------------------===// 3563 // FieldDecl Implementation 3564 //===----------------------------------------------------------------------===// 3565 3566 FieldDecl *FieldDecl::Create(const ASTContext &C, DeclContext *DC, 3567 SourceLocation StartLoc, SourceLocation IdLoc, 3568 IdentifierInfo *Id, QualType T, 3569 TypeSourceInfo *TInfo, Expr *BW, bool Mutable, 3570 InClassInitStyle InitStyle) { 3571 return new (C, DC) FieldDecl(Decl::Field, DC, StartLoc, IdLoc, Id, T, TInfo, 3572 BW, Mutable, InitStyle); 3573 } 3574 3575 FieldDecl *FieldDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 3576 return new (C, ID) FieldDecl(Field, nullptr, SourceLocation(), 3577 SourceLocation(), nullptr, QualType(), nullptr, 3578 nullptr, false, ICIS_NoInit); 3579 } 3580 3581 bool FieldDecl::isAnonymousStructOrUnion() const { 3582 if (!isImplicit() || getDeclName()) 3583 return false; 3584 3585 if (const auto *Record = getType()->getAs<RecordType>()) 3586 return Record->getDecl()->isAnonymousStructOrUnion(); 3587 3588 return false; 3589 } 3590 3591 unsigned FieldDecl::getBitWidthValue(const ASTContext &Ctx) const { 3592 assert(isBitField() && "not a bitfield"); 3593 return getBitWidth()->EvaluateKnownConstInt(Ctx).getZExtValue(); 3594 } 3595 3596 unsigned FieldDecl::getFieldIndex() const { 3597 const FieldDecl *Canonical = getCanonicalDecl(); 3598 if (Canonical != this) 3599 return Canonical->getFieldIndex(); 3600 3601 if (CachedFieldIndex) return CachedFieldIndex - 1; 3602 3603 unsigned Index = 0; 3604 const RecordDecl *RD = getParent(); 3605 3606 for (auto *Field : RD->fields()) { 3607 Field->getCanonicalDecl()->CachedFieldIndex = Index + 1; 3608 ++Index; 3609 } 3610 3611 assert(CachedFieldIndex && "failed to find field in parent"); 3612 return CachedFieldIndex - 1; 3613 } 3614 3615 SourceRange FieldDecl::getSourceRange() const { 3616 const Expr *FinalExpr = getInClassInitializer(); 3617 if (!FinalExpr) 3618 FinalExpr = getBitWidth(); 3619 if (FinalExpr) 3620 return SourceRange(getInnerLocStart(), FinalExpr->getLocEnd()); 3621 return DeclaratorDecl::getSourceRange(); 3622 } 3623 3624 void FieldDecl::setCapturedVLAType(const VariableArrayType *VLAType) { 3625 assert((getParent()->isLambda() || getParent()->isCapturedRecord()) && 3626 "capturing type in non-lambda or captured record."); 3627 assert(InitStorage.getInt() == ISK_NoInit && 3628 InitStorage.getPointer() == nullptr && 3629 "bit width, initializer or captured type already set"); 3630 InitStorage.setPointerAndInt(const_cast<VariableArrayType *>(VLAType), 3631 ISK_CapturedVLAType); 3632 } 3633 3634 //===----------------------------------------------------------------------===// 3635 // TagDecl Implementation 3636 //===----------------------------------------------------------------------===// 3637 3638 SourceLocation TagDecl::getOuterLocStart() const { 3639 return getTemplateOrInnerLocStart(this); 3640 } 3641 3642 SourceRange TagDecl::getSourceRange() const { 3643 SourceLocation RBraceLoc = BraceRange.getEnd(); 3644 SourceLocation E = RBraceLoc.isValid() ? RBraceLoc : getLocation(); 3645 return SourceRange(getOuterLocStart(), E); 3646 } 3647 3648 TagDecl *TagDecl::getCanonicalDecl() { return getFirstDecl(); } 3649 3650 void TagDecl::setTypedefNameForAnonDecl(TypedefNameDecl *TDD) { 3651 TypedefNameDeclOrQualifier = TDD; 3652 if (const Type *T = getTypeForDecl()) { 3653 (void)T; 3654 assert(T->isLinkageValid()); 3655 } 3656 assert(isLinkageValid()); 3657 } 3658 3659 void TagDecl::startDefinition() { 3660 IsBeingDefined = true; 3661 3662 if (auto *D = dyn_cast<CXXRecordDecl>(this)) { 3663 struct CXXRecordDecl::DefinitionData *Data = 3664 new (getASTContext()) struct CXXRecordDecl::DefinitionData(D); 3665 for (auto I : redecls()) 3666 cast<CXXRecordDecl>(I)->DefinitionData = Data; 3667 } 3668 } 3669 3670 void TagDecl::completeDefinition() { 3671 assert((!isa<CXXRecordDecl>(this) || 3672 cast<CXXRecordDecl>(this)->hasDefinition()) && 3673 "definition completed but not started"); 3674 3675 IsCompleteDefinition = true; 3676 IsBeingDefined = false; 3677 3678 if (ASTMutationListener *L = getASTMutationListener()) 3679 L->CompletedTagDefinition(this); 3680 } 3681 3682 TagDecl *TagDecl::getDefinition() const { 3683 if (isCompleteDefinition()) 3684 return const_cast<TagDecl *>(this); 3685 3686 // If it's possible for us to have an out-of-date definition, check now. 3687 if (MayHaveOutOfDateDef) { 3688 if (IdentifierInfo *II = getIdentifier()) { 3689 if (II->isOutOfDate()) { 3690 updateOutOfDate(*II); 3691 } 3692 } 3693 } 3694 3695 if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(this)) 3696 return CXXRD->getDefinition(); 3697 3698 for (auto R : redecls()) 3699 if (R->isCompleteDefinition()) 3700 return R; 3701 3702 return nullptr; 3703 } 3704 3705 void TagDecl::setQualifierInfo(NestedNameSpecifierLoc QualifierLoc) { 3706 if (QualifierLoc) { 3707 // Make sure the extended qualifier info is allocated. 3708 if (!hasExtInfo()) 3709 TypedefNameDeclOrQualifier = new (getASTContext()) ExtInfo; 3710 // Set qualifier info. 3711 getExtInfo()->QualifierLoc = QualifierLoc; 3712 } else { 3713 // Here Qualifier == 0, i.e., we are removing the qualifier (if any). 3714 if (hasExtInfo()) { 3715 if (getExtInfo()->NumTemplParamLists == 0) { 3716 getASTContext().Deallocate(getExtInfo()); 3717 TypedefNameDeclOrQualifier = (TypedefNameDecl *)nullptr; 3718 } 3719 else 3720 getExtInfo()->QualifierLoc = QualifierLoc; 3721 } 3722 } 3723 } 3724 3725 void TagDecl::setTemplateParameterListsInfo( 3726 ASTContext &Context, ArrayRef<TemplateParameterList *> TPLists) { 3727 assert(!TPLists.empty()); 3728 // Make sure the extended decl info is allocated. 3729 if (!hasExtInfo()) 3730 // Allocate external info struct. 3731 TypedefNameDeclOrQualifier = new (getASTContext()) ExtInfo; 3732 // Set the template parameter lists info. 3733 getExtInfo()->setTemplateParameterListsInfo(Context, TPLists); 3734 } 3735 3736 //===----------------------------------------------------------------------===// 3737 // EnumDecl Implementation 3738 //===----------------------------------------------------------------------===// 3739 3740 void EnumDecl::anchor() { } 3741 3742 EnumDecl *EnumDecl::Create(ASTContext &C, DeclContext *DC, 3743 SourceLocation StartLoc, SourceLocation IdLoc, 3744 IdentifierInfo *Id, 3745 EnumDecl *PrevDecl, bool IsScoped, 3746 bool IsScopedUsingClassTag, bool IsFixed) { 3747 auto *Enum = new (C, DC) EnumDecl(C, DC, StartLoc, IdLoc, Id, PrevDecl, 3748 IsScoped, IsScopedUsingClassTag, IsFixed); 3749 Enum->MayHaveOutOfDateDef = C.getLangOpts().Modules; 3750 C.getTypeDeclType(Enum, PrevDecl); 3751 return Enum; 3752 } 3753 3754 EnumDecl *EnumDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 3755 EnumDecl *Enum = 3756 new (C, ID) EnumDecl(C, nullptr, SourceLocation(), SourceLocation(), 3757 nullptr, nullptr, false, false, false); 3758 Enum->MayHaveOutOfDateDef = C.getLangOpts().Modules; 3759 return Enum; 3760 } 3761 3762 SourceRange EnumDecl::getIntegerTypeRange() const { 3763 if (const TypeSourceInfo *TI = getIntegerTypeSourceInfo()) 3764 return TI->getTypeLoc().getSourceRange(); 3765 return SourceRange(); 3766 } 3767 3768 void EnumDecl::completeDefinition(QualType NewType, 3769 QualType NewPromotionType, 3770 unsigned NumPositiveBits, 3771 unsigned NumNegativeBits) { 3772 assert(!isCompleteDefinition() && "Cannot redefine enums!"); 3773 if (!IntegerType) 3774 IntegerType = NewType.getTypePtr(); 3775 PromotionType = NewPromotionType; 3776 setNumPositiveBits(NumPositiveBits); 3777 setNumNegativeBits(NumNegativeBits); 3778 TagDecl::completeDefinition(); 3779 } 3780 3781 bool EnumDecl::isClosed() const { 3782 if (const auto *A = getAttr<EnumExtensibilityAttr>()) 3783 return A->getExtensibility() == EnumExtensibilityAttr::Closed; 3784 return true; 3785 } 3786 3787 bool EnumDecl::isClosedFlag() const { 3788 return isClosed() && hasAttr<FlagEnumAttr>(); 3789 } 3790 3791 bool EnumDecl::isClosedNonFlag() const { 3792 return isClosed() && !hasAttr<FlagEnumAttr>(); 3793 } 3794 3795 TemplateSpecializationKind EnumDecl::getTemplateSpecializationKind() const { 3796 if (MemberSpecializationInfo *MSI = getMemberSpecializationInfo()) 3797 return MSI->getTemplateSpecializationKind(); 3798 3799 return TSK_Undeclared; 3800 } 3801 3802 void EnumDecl::setTemplateSpecializationKind(TemplateSpecializationKind TSK, 3803 SourceLocation PointOfInstantiation) { 3804 MemberSpecializationInfo *MSI = getMemberSpecializationInfo(); 3805 assert(MSI && "Not an instantiated member enumeration?"); 3806 MSI->setTemplateSpecializationKind(TSK); 3807 if (TSK != TSK_ExplicitSpecialization && 3808 PointOfInstantiation.isValid() && 3809 MSI->getPointOfInstantiation().isInvalid()) 3810 MSI->setPointOfInstantiation(PointOfInstantiation); 3811 } 3812 3813 EnumDecl *EnumDecl::getTemplateInstantiationPattern() const { 3814 if (MemberSpecializationInfo *MSInfo = getMemberSpecializationInfo()) { 3815 if (isTemplateInstantiation(MSInfo->getTemplateSpecializationKind())) { 3816 EnumDecl *ED = getInstantiatedFromMemberEnum(); 3817 while (auto *NewED = ED->getInstantiatedFromMemberEnum()) 3818 ED = NewED; 3819 return getDefinitionOrSelf(ED); 3820 } 3821 } 3822 3823 assert(!isTemplateInstantiation(getTemplateSpecializationKind()) && 3824 "couldn't find pattern for enum instantiation"); 3825 return nullptr; 3826 } 3827 3828 EnumDecl *EnumDecl::getInstantiatedFromMemberEnum() const { 3829 if (SpecializationInfo) 3830 return cast<EnumDecl>(SpecializationInfo->getInstantiatedFrom()); 3831 3832 return nullptr; 3833 } 3834 3835 void EnumDecl::setInstantiationOfMemberEnum(ASTContext &C, EnumDecl *ED, 3836 TemplateSpecializationKind TSK) { 3837 assert(!SpecializationInfo && "Member enum is already a specialization"); 3838 SpecializationInfo = new (C) MemberSpecializationInfo(ED, TSK); 3839 } 3840 3841 //===----------------------------------------------------------------------===// 3842 // RecordDecl Implementation 3843 //===----------------------------------------------------------------------===// 3844 3845 RecordDecl::RecordDecl(Kind DK, TagKind TK, const ASTContext &C, 3846 DeclContext *DC, SourceLocation StartLoc, 3847 SourceLocation IdLoc, IdentifierInfo *Id, 3848 RecordDecl *PrevDecl) 3849 : TagDecl(DK, TK, C, DC, IdLoc, Id, PrevDecl, StartLoc) { 3850 HasFlexibleArrayMember = false; 3851 AnonymousStructOrUnion = false; 3852 HasObjectMember = false; 3853 HasVolatileMember = false; 3854 LoadedFieldsFromExternalStorage = false; 3855 assert(classof(static_cast<Decl*>(this)) && "Invalid Kind!"); 3856 } 3857 3858 RecordDecl *RecordDecl::Create(const ASTContext &C, TagKind TK, DeclContext *DC, 3859 SourceLocation StartLoc, SourceLocation IdLoc, 3860 IdentifierInfo *Id, RecordDecl* PrevDecl) { 3861 RecordDecl *R = new (C, DC) RecordDecl(Record, TK, C, DC, 3862 StartLoc, IdLoc, Id, PrevDecl); 3863 R->MayHaveOutOfDateDef = C.getLangOpts().Modules; 3864 3865 C.getTypeDeclType(R, PrevDecl); 3866 return R; 3867 } 3868 3869 RecordDecl *RecordDecl::CreateDeserialized(const ASTContext &C, unsigned ID) { 3870 RecordDecl *R = 3871 new (C, ID) RecordDecl(Record, TTK_Struct, C, nullptr, SourceLocation(), 3872 SourceLocation(), nullptr, nullptr); 3873 R->MayHaveOutOfDateDef = C.getLangOpts().Modules; 3874 return R; 3875 } 3876 3877 bool RecordDecl::isInjectedClassName() const { 3878 return isImplicit() && getDeclName() && getDeclContext()->isRecord() && 3879 cast<RecordDecl>(getDeclContext())->getDeclName() == getDeclName(); 3880 } 3881 3882 bool RecordDecl::isLambda() const { 3883 if (auto RD = dyn_cast<CXXRecordDecl>(this)) 3884 return RD->isLambda(); 3885 return false; 3886 } 3887 3888 bool RecordDecl::isCapturedRecord() const { 3889 return hasAttr<CapturedRecordAttr>(); 3890 } 3891 3892 void RecordDecl::setCapturedRecord() { 3893 addAttr(CapturedRecordAttr::CreateImplicit(getASTContext())); 3894 } 3895 3896 RecordDecl::field_iterator RecordDecl::field_begin() const { 3897 if (hasExternalLexicalStorage() && !LoadedFieldsFromExternalStorage) 3898 LoadFieldsFromExternalStorage(); 3899 3900 return field_iterator(decl_iterator(FirstDecl)); 3901 } 3902 3903 /// completeDefinition - Notes that the definition of this type is now 3904 /// complete. 3905 void RecordDecl::completeDefinition() { 3906 assert(!isCompleteDefinition() && "Cannot redefine record!"); 3907 TagDecl::completeDefinition(); 3908 } 3909 3910 /// isMsStruct - Get whether or not this record uses ms_struct layout. 3911 /// This which can be turned on with an attribute, pragma, or the 3912 /// -mms-bitfields command-line option. 3913 bool RecordDecl::isMsStruct(const ASTContext &C) const { 3914 return hasAttr<MSStructAttr>() || C.getLangOpts().MSBitfields == 1; 3915 } 3916 3917 void RecordDecl::LoadFieldsFromExternalStorage() const { 3918 ExternalASTSource *Source = getASTContext().getExternalSource(); 3919 assert(hasExternalLexicalStorage() && Source && "No external storage?"); 3920 3921 // Notify that we have a RecordDecl doing some initialization. 3922 ExternalASTSource::Deserializing TheFields(Source); 3923 3924 SmallVector<Decl*, 64> Decls; 3925 LoadedFieldsFromExternalStorage = true; 3926 Source->FindExternalLexicalDecls(this, [](Decl::Kind K) { 3927 return FieldDecl::classofKind(K) || IndirectFieldDecl::classofKind(K); 3928 }, Decls); 3929 3930 #ifndef NDEBUG 3931 // Check that all decls we got were FieldDecls. 3932 for (unsigned i=0, e=Decls.size(); i != e; ++i) 3933 assert(isa<FieldDecl>(Decls[i]) || isa<IndirectFieldDecl>(Decls[i])); 3934 #endif 3935 3936 if (Decls.empty()) 3937 return; 3938 3939 std::tie(FirstDecl, LastDecl) = BuildDeclChain(Decls, 3940 /*FieldsAlreadyLoaded=*/false); 3941 } 3942 3943 bool RecordDecl::mayInsertExtraPadding(bool EmitRemark) const { 3944 ASTContext &Context = getASTContext(); 3945 const SanitizerMask EnabledAsanMask = Context.getLangOpts().Sanitize.Mask & 3946 (SanitizerKind::Address | SanitizerKind::KernelAddress); 3947 if (!EnabledAsanMask || !Context.getLangOpts().SanitizeAddressFieldPadding) 3948 return false; 3949 const auto &Blacklist = Context.getSanitizerBlacklist(); 3950 const auto *CXXRD = dyn_cast<CXXRecordDecl>(this); 3951 // We may be able to relax some of these requirements. 3952 int ReasonToReject = -1; 3953 if (!CXXRD || CXXRD->isExternCContext()) 3954 ReasonToReject = 0; // is not C++. 3955 else if (CXXRD->hasAttr<PackedAttr>()) 3956 ReasonToReject = 1; // is packed. 3957 else if (CXXRD->isUnion()) 3958 ReasonToReject = 2; // is a union. 3959 else if (CXXRD->isTriviallyCopyable()) 3960 ReasonToReject = 3; // is trivially copyable. 3961 else if (CXXRD->hasTrivialDestructor()) 3962 ReasonToReject = 4; // has trivial destructor. 3963 else if (CXXRD->isStandardLayout()) 3964 ReasonToReject = 5; // is standard layout. 3965 else if (Blacklist.isBlacklistedLocation(EnabledAsanMask, getLocation(), 3966 "field-padding")) 3967 ReasonToReject = 6; // is in a blacklisted file. 3968 else if (Blacklist.isBlacklistedType(EnabledAsanMask, 3969 getQualifiedNameAsString(), 3970 "field-padding")) 3971 ReasonToReject = 7; // is blacklisted. 3972 3973 if (EmitRemark) { 3974 if (ReasonToReject >= 0) 3975 Context.getDiagnostics().Report( 3976 getLocation(), 3977 diag::remark_sanitize_address_insert_extra_padding_rejected) 3978 << getQualifiedNameAsString() << ReasonToReject; 3979 else 3980 Context.getDiagnostics().Report( 3981 getLocation(), 3982 diag::remark_sanitize_address_insert_extra_padding_accepted) 3983 << getQualifiedNameAsString(); 3984 } 3985 return ReasonToReject < 0; 3986 } 3987 3988 const FieldDecl *RecordDecl::findFirstNamedDataMember() const { 3989 for (const auto *I : fields()) { 3990 if (I->getIdentifier()) 3991 return I; 3992 3993 if (const auto *RT = I->getType()->getAs<RecordType>()) 3994 if (const FieldDecl *NamedDataMember = 3995 RT->getDecl()->findFirstNamedDataMember()) 3996 return NamedDataMember; 3997 } 3998 3999 // We didn't find a named data member. 4000 return nullptr; 4001 } 4002 4003 4004 //===----------------------------------------------------------------------===// 4005 // BlockDecl Implementation 4006 //===----------------------------------------------------------------------===// 4007 4008 void BlockDecl::setParams(ArrayRef<ParmVarDecl *> NewParamInfo) { 4009 assert(!ParamInfo && "Already has param info!"); 4010 4011 // Zero params -> null pointer. 4012 if (!NewParamInfo.empty()) { 4013 NumParams = NewParamInfo.size(); 4014 ParamInfo = new (getASTContext()) ParmVarDecl*[NewParamInfo.size()]; 4015 std::copy(NewParamInfo.begin(), NewParamInfo.end(), ParamInfo); 4016 } 4017 } 4018 4019 void BlockDecl::setCaptures(ASTContext &Context, ArrayRef<Capture> Captures, 4020 bool CapturesCXXThis) { 4021 this->CapturesCXXThis = CapturesCXXThis; 4022 this->NumCaptures = Captures.size(); 4023 4024 if (Captures.empty()) { 4025 this->Captures = nullptr; 4026 return; 4027 } 4028 4029 this->Captures = Captures.copy(Context).data(); 4030 } 4031 4032 bool BlockDecl::capturesVariable(const VarDecl *variable) const { 4033 for (const auto &I : captures()) 4034 // Only auto vars can be captured, so no redeclaration worries. 4035 if (I.getVariable() == variable) 4036 return true; 4037 4038 return false; 4039 } 4040 4041 SourceRange BlockDecl::getSourceRange() const { 4042 return SourceRange(getLocation(), Body? Body->getLocEnd() : getLocation()); 4043 } 4044 4045 //===----------------------------------------------------------------------===// 4046 // Other Decl Allocation/Deallocation Method Implementations 4047 //===----------------------------------------------------------------------===// 4048 4049 void TranslationUnitDecl::anchor() { } 4050 4051 TranslationUnitDecl *TranslationUnitDecl::Create(ASTContext &C) { 4052 return new (C, (DeclContext *)nullptr) TranslationUnitDecl(C); 4053 } 4054 4055 void PragmaCommentDecl::anchor() { } 4056 4057 PragmaCommentDecl *PragmaCommentDecl::Create(const ASTContext &C, 4058 TranslationUnitDecl *DC, 4059 SourceLocation CommentLoc, 4060 PragmaMSCommentKind CommentKind, 4061 StringRef Arg) { 4062 PragmaCommentDecl *PCD = 4063 new (C, DC, additionalSizeToAlloc<char>(Arg.size() + 1)) 4064 PragmaCommentDecl(DC, CommentLoc, CommentKind); 4065 memcpy(PCD->getTrailingObjects<char>(), Arg.data(), Arg.size()); 4066 PCD->getTrailingObjects<char>()[Arg.size()] = '\0'; 4067 return PCD; 4068 } 4069 4070 PragmaCommentDecl *PragmaCommentDecl::CreateDeserialized(ASTContext &C, 4071 unsigned ID, 4072 unsigned ArgSize) { 4073 return new (C, ID, additionalSizeToAlloc<char>(ArgSize + 1)) 4074 PragmaCommentDecl(nullptr, SourceLocation(), PCK_Unknown); 4075 } 4076 4077 void PragmaDetectMismatchDecl::anchor() { } 4078 4079 PragmaDetectMismatchDecl * 4080 PragmaDetectMismatchDecl::Create(const ASTContext &C, TranslationUnitDecl *DC, 4081 SourceLocation Loc, StringRef Name, 4082 StringRef Value) { 4083 size_t ValueStart = Name.size() + 1; 4084 PragmaDetectMismatchDecl *PDMD = 4085 new (C, DC, additionalSizeToAlloc<char>(ValueStart + Value.size() + 1)) 4086 PragmaDetectMismatchDecl(DC, Loc, ValueStart); 4087 memcpy(PDMD->getTrailingObjects<char>(), Name.data(), Name.size()); 4088 PDMD->getTrailingObjects<char>()[Name.size()] = '\0'; 4089 memcpy(PDMD->getTrailingObjects<char>() + ValueStart, Value.data(), 4090 Value.size()); 4091 PDMD->getTrailingObjects<char>()[ValueStart + Value.size()] = '\0'; 4092 return PDMD; 4093 } 4094 4095 PragmaDetectMismatchDecl * 4096 PragmaDetectMismatchDecl::CreateDeserialized(ASTContext &C, unsigned ID, 4097 unsigned NameValueSize) { 4098 return new (C, ID, additionalSizeToAlloc<char>(NameValueSize + 1)) 4099 PragmaDetectMismatchDecl(nullptr, SourceLocation(), 0); 4100 } 4101 4102 void ExternCContextDecl::anchor() { } 4103 4104 ExternCContextDecl *ExternCContextDecl::Create(const ASTContext &C, 4105 TranslationUnitDecl *DC) { 4106 return new (C, DC) ExternCContextDecl(DC); 4107 } 4108 4109 void LabelDecl::anchor() { } 4110 4111 LabelDecl *LabelDecl::Create(ASTContext &C, DeclContext *DC, 4112 SourceLocation IdentL, IdentifierInfo *II) { 4113 return new (C, DC) LabelDecl(DC, IdentL, II, nullptr, IdentL); 4114 } 4115 4116 LabelDecl *LabelDecl::Create(ASTContext &C, DeclContext *DC, 4117 SourceLocation IdentL, IdentifierInfo *II, 4118 SourceLocation GnuLabelL) { 4119 assert(GnuLabelL != IdentL && "Use this only for GNU local labels"); 4120 return new (C, DC) LabelDecl(DC, IdentL, II, nullptr, GnuLabelL); 4121 } 4122 4123 LabelDecl *LabelDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4124 return new (C, ID) LabelDecl(nullptr, SourceLocation(), nullptr, nullptr, 4125 SourceLocation()); 4126 } 4127 4128 void LabelDecl::setMSAsmLabel(StringRef Name) { 4129 char *Buffer = new (getASTContext(), 1) char[Name.size() + 1]; 4130 memcpy(Buffer, Name.data(), Name.size()); 4131 Buffer[Name.size()] = '\0'; 4132 MSAsmName = Buffer; 4133 } 4134 4135 void ValueDecl::anchor() { } 4136 4137 bool ValueDecl::isWeak() const { 4138 for (const auto *I : attrs()) 4139 if (isa<WeakAttr>(I) || isa<WeakRefAttr>(I)) 4140 return true; 4141 4142 return isWeakImported(); 4143 } 4144 4145 void ImplicitParamDecl::anchor() { } 4146 4147 ImplicitParamDecl *ImplicitParamDecl::Create(ASTContext &C, DeclContext *DC, 4148 SourceLocation IdLoc, 4149 IdentifierInfo *Id, QualType Type, 4150 ImplicitParamKind ParamKind) { 4151 return new (C, DC) ImplicitParamDecl(C, DC, IdLoc, Id, Type, ParamKind); 4152 } 4153 4154 ImplicitParamDecl *ImplicitParamDecl::Create(ASTContext &C, QualType Type, 4155 ImplicitParamKind ParamKind) { 4156 return new (C, nullptr) ImplicitParamDecl(C, Type, ParamKind); 4157 } 4158 4159 ImplicitParamDecl *ImplicitParamDecl::CreateDeserialized(ASTContext &C, 4160 unsigned ID) { 4161 return new (C, ID) ImplicitParamDecl(C, QualType(), ImplicitParamKind::Other); 4162 } 4163 4164 FunctionDecl *FunctionDecl::Create(ASTContext &C, DeclContext *DC, 4165 SourceLocation StartLoc, 4166 const DeclarationNameInfo &NameInfo, 4167 QualType T, TypeSourceInfo *TInfo, 4168 StorageClass SC, 4169 bool isInlineSpecified, 4170 bool hasWrittenPrototype, 4171 bool isConstexprSpecified) { 4172 FunctionDecl *New = 4173 new (C, DC) FunctionDecl(Function, C, DC, StartLoc, NameInfo, T, TInfo, 4174 SC, isInlineSpecified, isConstexprSpecified); 4175 New->HasWrittenPrototype = hasWrittenPrototype; 4176 return New; 4177 } 4178 4179 FunctionDecl *FunctionDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4180 return new (C, ID) FunctionDecl(Function, C, nullptr, SourceLocation(), 4181 DeclarationNameInfo(), QualType(), nullptr, 4182 SC_None, false, false); 4183 } 4184 4185 BlockDecl *BlockDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L) { 4186 return new (C, DC) BlockDecl(DC, L); 4187 } 4188 4189 BlockDecl *BlockDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4190 return new (C, ID) BlockDecl(nullptr, SourceLocation()); 4191 } 4192 4193 CapturedDecl::CapturedDecl(DeclContext *DC, unsigned NumParams) 4194 : Decl(Captured, DC, SourceLocation()), DeclContext(Captured), 4195 NumParams(NumParams), ContextParam(0), BodyAndNothrow(nullptr, false) {} 4196 4197 CapturedDecl *CapturedDecl::Create(ASTContext &C, DeclContext *DC, 4198 unsigned NumParams) { 4199 return new (C, DC, additionalSizeToAlloc<ImplicitParamDecl *>(NumParams)) 4200 CapturedDecl(DC, NumParams); 4201 } 4202 4203 CapturedDecl *CapturedDecl::CreateDeserialized(ASTContext &C, unsigned ID, 4204 unsigned NumParams) { 4205 return new (C, ID, additionalSizeToAlloc<ImplicitParamDecl *>(NumParams)) 4206 CapturedDecl(nullptr, NumParams); 4207 } 4208 4209 Stmt *CapturedDecl::getBody() const { return BodyAndNothrow.getPointer(); } 4210 void CapturedDecl::setBody(Stmt *B) { BodyAndNothrow.setPointer(B); } 4211 4212 bool CapturedDecl::isNothrow() const { return BodyAndNothrow.getInt(); } 4213 void CapturedDecl::setNothrow(bool Nothrow) { BodyAndNothrow.setInt(Nothrow); } 4214 4215 EnumConstantDecl *EnumConstantDecl::Create(ASTContext &C, EnumDecl *CD, 4216 SourceLocation L, 4217 IdentifierInfo *Id, QualType T, 4218 Expr *E, const llvm::APSInt &V) { 4219 return new (C, CD) EnumConstantDecl(CD, L, Id, T, E, V); 4220 } 4221 4222 EnumConstantDecl * 4223 EnumConstantDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4224 return new (C, ID) EnumConstantDecl(nullptr, SourceLocation(), nullptr, 4225 QualType(), nullptr, llvm::APSInt()); 4226 } 4227 4228 void IndirectFieldDecl::anchor() { } 4229 4230 IndirectFieldDecl::IndirectFieldDecl(ASTContext &C, DeclContext *DC, 4231 SourceLocation L, DeclarationName N, 4232 QualType T, 4233 MutableArrayRef<NamedDecl *> CH) 4234 : ValueDecl(IndirectField, DC, L, N, T), Chaining(CH.data()), 4235 ChainingSize(CH.size()) { 4236 // In C++, indirect field declarations conflict with tag declarations in the 4237 // same scope, so add them to IDNS_Tag so that tag redeclaration finds them. 4238 if (C.getLangOpts().CPlusPlus) 4239 IdentifierNamespace |= IDNS_Tag; 4240 } 4241 4242 IndirectFieldDecl * 4243 IndirectFieldDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L, 4244 IdentifierInfo *Id, QualType T, 4245 llvm::MutableArrayRef<NamedDecl *> CH) { 4246 return new (C, DC) IndirectFieldDecl(C, DC, L, Id, T, CH); 4247 } 4248 4249 IndirectFieldDecl *IndirectFieldDecl::CreateDeserialized(ASTContext &C, 4250 unsigned ID) { 4251 return new (C, ID) IndirectFieldDecl(C, nullptr, SourceLocation(), 4252 DeclarationName(), QualType(), None); 4253 } 4254 4255 SourceRange EnumConstantDecl::getSourceRange() const { 4256 SourceLocation End = getLocation(); 4257 if (Init) 4258 End = Init->getLocEnd(); 4259 return SourceRange(getLocation(), End); 4260 } 4261 4262 void TypeDecl::anchor() { } 4263 4264 TypedefDecl *TypedefDecl::Create(ASTContext &C, DeclContext *DC, 4265 SourceLocation StartLoc, SourceLocation IdLoc, 4266 IdentifierInfo *Id, TypeSourceInfo *TInfo) { 4267 return new (C, DC) TypedefDecl(C, DC, StartLoc, IdLoc, Id, TInfo); 4268 } 4269 4270 void TypedefNameDecl::anchor() { } 4271 4272 TagDecl *TypedefNameDecl::getAnonDeclWithTypedefName(bool AnyRedecl) const { 4273 if (auto *TT = getTypeSourceInfo()->getType()->getAs<TagType>()) { 4274 auto *OwningTypedef = TT->getDecl()->getTypedefNameForAnonDecl(); 4275 auto *ThisTypedef = this; 4276 if (AnyRedecl && OwningTypedef) { 4277 OwningTypedef = OwningTypedef->getCanonicalDecl(); 4278 ThisTypedef = ThisTypedef->getCanonicalDecl(); 4279 } 4280 if (OwningTypedef == ThisTypedef) 4281 return TT->getDecl(); 4282 } 4283 4284 return nullptr; 4285 } 4286 4287 bool TypedefNameDecl::isTransparentTagSlow() const { 4288 auto determineIsTransparent = [&]() { 4289 if (auto *TT = getUnderlyingType()->getAs<TagType>()) { 4290 if (auto *TD = TT->getDecl()) { 4291 if (TD->getName() != getName()) 4292 return false; 4293 SourceLocation TTLoc = getLocation(); 4294 SourceLocation TDLoc = TD->getLocation(); 4295 if (!TTLoc.isMacroID() || !TDLoc.isMacroID()) 4296 return false; 4297 SourceManager &SM = getASTContext().getSourceManager(); 4298 return SM.getSpellingLoc(TTLoc) == SM.getSpellingLoc(TDLoc); 4299 } 4300 } 4301 return false; 4302 }; 4303 4304 bool isTransparent = determineIsTransparent(); 4305 CacheIsTransparentTag = 1; 4306 if (isTransparent) 4307 CacheIsTransparentTag |= 0x2; 4308 return isTransparent; 4309 } 4310 4311 TypedefDecl *TypedefDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4312 return new (C, ID) TypedefDecl(C, nullptr, SourceLocation(), SourceLocation(), 4313 nullptr, nullptr); 4314 } 4315 4316 TypeAliasDecl *TypeAliasDecl::Create(ASTContext &C, DeclContext *DC, 4317 SourceLocation StartLoc, 4318 SourceLocation IdLoc, IdentifierInfo *Id, 4319 TypeSourceInfo *TInfo) { 4320 return new (C, DC) TypeAliasDecl(C, DC, StartLoc, IdLoc, Id, TInfo); 4321 } 4322 4323 TypeAliasDecl *TypeAliasDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4324 return new (C, ID) TypeAliasDecl(C, nullptr, SourceLocation(), 4325 SourceLocation(), nullptr, nullptr); 4326 } 4327 4328 SourceRange TypedefDecl::getSourceRange() const { 4329 SourceLocation RangeEnd = getLocation(); 4330 if (TypeSourceInfo *TInfo = getTypeSourceInfo()) { 4331 if (typeIsPostfix(TInfo->getType())) 4332 RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd(); 4333 } 4334 return SourceRange(getLocStart(), RangeEnd); 4335 } 4336 4337 SourceRange TypeAliasDecl::getSourceRange() const { 4338 SourceLocation RangeEnd = getLocStart(); 4339 if (TypeSourceInfo *TInfo = getTypeSourceInfo()) 4340 RangeEnd = TInfo->getTypeLoc().getSourceRange().getEnd(); 4341 return SourceRange(getLocStart(), RangeEnd); 4342 } 4343 4344 void FileScopeAsmDecl::anchor() { } 4345 4346 FileScopeAsmDecl *FileScopeAsmDecl::Create(ASTContext &C, DeclContext *DC, 4347 StringLiteral *Str, 4348 SourceLocation AsmLoc, 4349 SourceLocation RParenLoc) { 4350 return new (C, DC) FileScopeAsmDecl(DC, Str, AsmLoc, RParenLoc); 4351 } 4352 4353 FileScopeAsmDecl *FileScopeAsmDecl::CreateDeserialized(ASTContext &C, 4354 unsigned ID) { 4355 return new (C, ID) FileScopeAsmDecl(nullptr, nullptr, SourceLocation(), 4356 SourceLocation()); 4357 } 4358 4359 void EmptyDecl::anchor() {} 4360 4361 EmptyDecl *EmptyDecl::Create(ASTContext &C, DeclContext *DC, SourceLocation L) { 4362 return new (C, DC) EmptyDecl(DC, L); 4363 } 4364 4365 EmptyDecl *EmptyDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4366 return new (C, ID) EmptyDecl(nullptr, SourceLocation()); 4367 } 4368 4369 //===----------------------------------------------------------------------===// 4370 // ImportDecl Implementation 4371 //===----------------------------------------------------------------------===// 4372 4373 /// \brief Retrieve the number of module identifiers needed to name the given 4374 /// module. 4375 static unsigned getNumModuleIdentifiers(Module *Mod) { 4376 unsigned Result = 1; 4377 while (Mod->Parent) { 4378 Mod = Mod->Parent; 4379 ++Result; 4380 } 4381 return Result; 4382 } 4383 4384 ImportDecl::ImportDecl(DeclContext *DC, SourceLocation StartLoc, 4385 Module *Imported, 4386 ArrayRef<SourceLocation> IdentifierLocs) 4387 : Decl(Import, DC, StartLoc), ImportedAndComplete(Imported, true), 4388 NextLocalImport() 4389 { 4390 assert(getNumModuleIdentifiers(Imported) == IdentifierLocs.size()); 4391 auto *StoredLocs = getTrailingObjects<SourceLocation>(); 4392 std::uninitialized_copy(IdentifierLocs.begin(), IdentifierLocs.end(), 4393 StoredLocs); 4394 } 4395 4396 ImportDecl::ImportDecl(DeclContext *DC, SourceLocation StartLoc, 4397 Module *Imported, SourceLocation EndLoc) 4398 : Decl(Import, DC, StartLoc), ImportedAndComplete(Imported, false), 4399 NextLocalImport() 4400 { 4401 *getTrailingObjects<SourceLocation>() = EndLoc; 4402 } 4403 4404 ImportDecl *ImportDecl::Create(ASTContext &C, DeclContext *DC, 4405 SourceLocation StartLoc, Module *Imported, 4406 ArrayRef<SourceLocation> IdentifierLocs) { 4407 return new (C, DC, 4408 additionalSizeToAlloc<SourceLocation>(IdentifierLocs.size())) 4409 ImportDecl(DC, StartLoc, Imported, IdentifierLocs); 4410 } 4411 4412 ImportDecl *ImportDecl::CreateImplicit(ASTContext &C, DeclContext *DC, 4413 SourceLocation StartLoc, 4414 Module *Imported, 4415 SourceLocation EndLoc) { 4416 ImportDecl *Import = new (C, DC, additionalSizeToAlloc<SourceLocation>(1)) 4417 ImportDecl(DC, StartLoc, Imported, EndLoc); 4418 Import->setImplicit(); 4419 return Import; 4420 } 4421 4422 ImportDecl *ImportDecl::CreateDeserialized(ASTContext &C, unsigned ID, 4423 unsigned NumLocations) { 4424 return new (C, ID, additionalSizeToAlloc<SourceLocation>(NumLocations)) 4425 ImportDecl(EmptyShell()); 4426 } 4427 4428 ArrayRef<SourceLocation> ImportDecl::getIdentifierLocs() const { 4429 if (!ImportedAndComplete.getInt()) 4430 return None; 4431 4432 const auto *StoredLocs = getTrailingObjects<SourceLocation>(); 4433 return llvm::makeArrayRef(StoredLocs, 4434 getNumModuleIdentifiers(getImportedModule())); 4435 } 4436 4437 SourceRange ImportDecl::getSourceRange() const { 4438 if (!ImportedAndComplete.getInt()) 4439 return SourceRange(getLocation(), *getTrailingObjects<SourceLocation>()); 4440 4441 return SourceRange(getLocation(), getIdentifierLocs().back()); 4442 } 4443 4444 //===----------------------------------------------------------------------===// 4445 // ExportDecl Implementation 4446 //===----------------------------------------------------------------------===// 4447 4448 void ExportDecl::anchor() {} 4449 4450 ExportDecl *ExportDecl::Create(ASTContext &C, DeclContext *DC, 4451 SourceLocation ExportLoc) { 4452 return new (C, DC) ExportDecl(DC, ExportLoc); 4453 } 4454 4455 ExportDecl *ExportDecl::CreateDeserialized(ASTContext &C, unsigned ID) { 4456 return new (C, ID) ExportDecl(nullptr, SourceLocation()); 4457 } 4458