1 //===--- SemaDecl.cpp - Semantic Analysis for Declarations ----------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements semantic analysis for declarations. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "TypeLocBuilder.h" 14 #include "clang/AST/ASTConsumer.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/ASTLambda.h" 17 #include "clang/AST/CXXInheritance.h" 18 #include "clang/AST/CharUnits.h" 19 #include "clang/AST/CommentDiagnostic.h" 20 #include "clang/AST/DeclCXX.h" 21 #include "clang/AST/DeclObjC.h" 22 #include "clang/AST/DeclTemplate.h" 23 #include "clang/AST/EvaluatedExprVisitor.h" 24 #include "clang/AST/Expr.h" 25 #include "clang/AST/ExprCXX.h" 26 #include "clang/AST/NonTrivialTypeVisitor.h" 27 #include "clang/AST/StmtCXX.h" 28 #include "clang/Basic/Builtins.h" 29 #include "clang/Basic/PartialDiagnostic.h" 30 #include "clang/Basic/SourceManager.h" 31 #include "clang/Basic/TargetInfo.h" 32 #include "clang/Lex/HeaderSearch.h" // TODO: Sema shouldn't depend on Lex 33 #include "clang/Lex/Lexer.h" // TODO: Extract static functions to fix layering. 34 #include "clang/Lex/ModuleLoader.h" // TODO: Sema shouldn't depend on Lex 35 #include "clang/Lex/Preprocessor.h" // Included for isCodeCompletionEnabled() 36 #include "clang/Sema/CXXFieldCollector.h" 37 #include "clang/Sema/DeclSpec.h" 38 #include "clang/Sema/DelayedDiagnostic.h" 39 #include "clang/Sema/Initialization.h" 40 #include "clang/Sema/Lookup.h" 41 #include "clang/Sema/ParsedTemplate.h" 42 #include "clang/Sema/Scope.h" 43 #include "clang/Sema/ScopeInfo.h" 44 #include "clang/Sema/SemaInternal.h" 45 #include "clang/Sema/Template.h" 46 #include "llvm/ADT/SmallString.h" 47 #include "llvm/ADT/Triple.h" 48 #include <algorithm> 49 #include <cstring> 50 #include <functional> 51 #include <unordered_map> 52 53 using namespace clang; 54 using namespace sema; 55 56 Sema::DeclGroupPtrTy Sema::ConvertDeclToDeclGroup(Decl *Ptr, Decl *OwnedType) { 57 if (OwnedType) { 58 Decl *Group[2] = { OwnedType, Ptr }; 59 return DeclGroupPtrTy::make(DeclGroupRef::Create(Context, Group, 2)); 60 } 61 62 return DeclGroupPtrTy::make(DeclGroupRef(Ptr)); 63 } 64 65 namespace { 66 67 class TypeNameValidatorCCC final : public CorrectionCandidateCallback { 68 public: 69 TypeNameValidatorCCC(bool AllowInvalid, bool WantClass = false, 70 bool AllowTemplates = false, 71 bool AllowNonTemplates = true) 72 : AllowInvalidDecl(AllowInvalid), WantClassName(WantClass), 73 AllowTemplates(AllowTemplates), AllowNonTemplates(AllowNonTemplates) { 74 WantExpressionKeywords = false; 75 WantCXXNamedCasts = false; 76 WantRemainingKeywords = false; 77 } 78 79 bool ValidateCandidate(const TypoCorrection &candidate) override { 80 if (NamedDecl *ND = candidate.getCorrectionDecl()) { 81 if (!AllowInvalidDecl && ND->isInvalidDecl()) 82 return false; 83 84 if (getAsTypeTemplateDecl(ND)) 85 return AllowTemplates; 86 87 bool IsType = isa<TypeDecl>(ND) || isa<ObjCInterfaceDecl>(ND); 88 if (!IsType) 89 return false; 90 91 if (AllowNonTemplates) 92 return true; 93 94 // An injected-class-name of a class template (specialization) is valid 95 // as a template or as a non-template. 96 if (AllowTemplates) { 97 auto *RD = dyn_cast<CXXRecordDecl>(ND); 98 if (!RD || !RD->isInjectedClassName()) 99 return false; 100 RD = cast<CXXRecordDecl>(RD->getDeclContext()); 101 return RD->getDescribedClassTemplate() || 102 isa<ClassTemplateSpecializationDecl>(RD); 103 } 104 105 return false; 106 } 107 108 return !WantClassName && candidate.isKeyword(); 109 } 110 111 std::unique_ptr<CorrectionCandidateCallback> clone() override { 112 return std::make_unique<TypeNameValidatorCCC>(*this); 113 } 114 115 private: 116 bool AllowInvalidDecl; 117 bool WantClassName; 118 bool AllowTemplates; 119 bool AllowNonTemplates; 120 }; 121 122 } // end anonymous namespace 123 124 /// Determine whether the token kind starts a simple-type-specifier. 125 bool Sema::isSimpleTypeSpecifier(tok::TokenKind Kind) const { 126 switch (Kind) { 127 // FIXME: Take into account the current language when deciding whether a 128 // token kind is a valid type specifier 129 case tok::kw_short: 130 case tok::kw_long: 131 case tok::kw___int64: 132 case tok::kw___int128: 133 case tok::kw_signed: 134 case tok::kw_unsigned: 135 case tok::kw_void: 136 case tok::kw_char: 137 case tok::kw_int: 138 case tok::kw_half: 139 case tok::kw_float: 140 case tok::kw_double: 141 case tok::kw___bf16: 142 case tok::kw__Float16: 143 case tok::kw___float128: 144 case tok::kw_wchar_t: 145 case tok::kw_bool: 146 case tok::kw___underlying_type: 147 case tok::kw___auto_type: 148 return true; 149 150 case tok::annot_typename: 151 case tok::kw_char16_t: 152 case tok::kw_char32_t: 153 case tok::kw_typeof: 154 case tok::annot_decltype: 155 case tok::kw_decltype: 156 return getLangOpts().CPlusPlus; 157 158 case tok::kw_char8_t: 159 return getLangOpts().Char8; 160 161 default: 162 break; 163 } 164 165 return false; 166 } 167 168 namespace { 169 enum class UnqualifiedTypeNameLookupResult { 170 NotFound, 171 FoundNonType, 172 FoundType 173 }; 174 } // end anonymous namespace 175 176 /// Tries to perform unqualified lookup of the type decls in bases for 177 /// dependent class. 178 /// \return \a NotFound if no any decls is found, \a FoundNotType if found not a 179 /// type decl, \a FoundType if only type decls are found. 180 static UnqualifiedTypeNameLookupResult 181 lookupUnqualifiedTypeNameInBase(Sema &S, const IdentifierInfo &II, 182 SourceLocation NameLoc, 183 const CXXRecordDecl *RD) { 184 if (!RD->hasDefinition()) 185 return UnqualifiedTypeNameLookupResult::NotFound; 186 // Look for type decls in base classes. 187 UnqualifiedTypeNameLookupResult FoundTypeDecl = 188 UnqualifiedTypeNameLookupResult::NotFound; 189 for (const auto &Base : RD->bases()) { 190 const CXXRecordDecl *BaseRD = nullptr; 191 if (auto *BaseTT = Base.getType()->getAs<TagType>()) 192 BaseRD = BaseTT->getAsCXXRecordDecl(); 193 else if (auto *TST = Base.getType()->getAs<TemplateSpecializationType>()) { 194 // Look for type decls in dependent base classes that have known primary 195 // templates. 196 if (!TST || !TST->isDependentType()) 197 continue; 198 auto *TD = TST->getTemplateName().getAsTemplateDecl(); 199 if (!TD) 200 continue; 201 if (auto *BasePrimaryTemplate = 202 dyn_cast_or_null<CXXRecordDecl>(TD->getTemplatedDecl())) { 203 if (BasePrimaryTemplate->getCanonicalDecl() != RD->getCanonicalDecl()) 204 BaseRD = BasePrimaryTemplate; 205 else if (auto *CTD = dyn_cast<ClassTemplateDecl>(TD)) { 206 if (const ClassTemplatePartialSpecializationDecl *PS = 207 CTD->findPartialSpecialization(Base.getType())) 208 if (PS->getCanonicalDecl() != RD->getCanonicalDecl()) 209 BaseRD = PS; 210 } 211 } 212 } 213 if (BaseRD) { 214 for (NamedDecl *ND : BaseRD->lookup(&II)) { 215 if (!isa<TypeDecl>(ND)) 216 return UnqualifiedTypeNameLookupResult::FoundNonType; 217 FoundTypeDecl = UnqualifiedTypeNameLookupResult::FoundType; 218 } 219 if (FoundTypeDecl == UnqualifiedTypeNameLookupResult::NotFound) { 220 switch (lookupUnqualifiedTypeNameInBase(S, II, NameLoc, BaseRD)) { 221 case UnqualifiedTypeNameLookupResult::FoundNonType: 222 return UnqualifiedTypeNameLookupResult::FoundNonType; 223 case UnqualifiedTypeNameLookupResult::FoundType: 224 FoundTypeDecl = UnqualifiedTypeNameLookupResult::FoundType; 225 break; 226 case UnqualifiedTypeNameLookupResult::NotFound: 227 break; 228 } 229 } 230 } 231 } 232 233 return FoundTypeDecl; 234 } 235 236 static ParsedType recoverFromTypeInKnownDependentBase(Sema &S, 237 const IdentifierInfo &II, 238 SourceLocation NameLoc) { 239 // Lookup in the parent class template context, if any. 240 const CXXRecordDecl *RD = nullptr; 241 UnqualifiedTypeNameLookupResult FoundTypeDecl = 242 UnqualifiedTypeNameLookupResult::NotFound; 243 for (DeclContext *DC = S.CurContext; 244 DC && FoundTypeDecl == UnqualifiedTypeNameLookupResult::NotFound; 245 DC = DC->getParent()) { 246 // Look for type decls in dependent base classes that have known primary 247 // templates. 248 RD = dyn_cast<CXXRecordDecl>(DC); 249 if (RD && RD->getDescribedClassTemplate()) 250 FoundTypeDecl = lookupUnqualifiedTypeNameInBase(S, II, NameLoc, RD); 251 } 252 if (FoundTypeDecl != UnqualifiedTypeNameLookupResult::FoundType) 253 return nullptr; 254 255 // We found some types in dependent base classes. Recover as if the user 256 // wrote 'typename MyClass::II' instead of 'II'. We'll fully resolve the 257 // lookup during template instantiation. 258 S.Diag(NameLoc, diag::ext_found_in_dependent_base) << &II; 259 260 ASTContext &Context = S.Context; 261 auto *NNS = NestedNameSpecifier::Create(Context, nullptr, false, 262 cast<Type>(Context.getRecordType(RD))); 263 QualType T = Context.getDependentNameType(ETK_Typename, NNS, &II); 264 265 CXXScopeSpec SS; 266 SS.MakeTrivial(Context, NNS, SourceRange(NameLoc)); 267 268 TypeLocBuilder Builder; 269 DependentNameTypeLoc DepTL = Builder.push<DependentNameTypeLoc>(T); 270 DepTL.setNameLoc(NameLoc); 271 DepTL.setElaboratedKeywordLoc(SourceLocation()); 272 DepTL.setQualifierLoc(SS.getWithLocInContext(Context)); 273 return S.CreateParsedType(T, Builder.getTypeSourceInfo(Context, T)); 274 } 275 276 /// If the identifier refers to a type name within this scope, 277 /// return the declaration of that type. 278 /// 279 /// This routine performs ordinary name lookup of the identifier II 280 /// within the given scope, with optional C++ scope specifier SS, to 281 /// determine whether the name refers to a type. If so, returns an 282 /// opaque pointer (actually a QualType) corresponding to that 283 /// type. Otherwise, returns NULL. 284 ParsedType Sema::getTypeName(const IdentifierInfo &II, SourceLocation NameLoc, 285 Scope *S, CXXScopeSpec *SS, 286 bool isClassName, bool HasTrailingDot, 287 ParsedType ObjectTypePtr, 288 bool IsCtorOrDtorName, 289 bool WantNontrivialTypeSourceInfo, 290 bool IsClassTemplateDeductionContext, 291 IdentifierInfo **CorrectedII) { 292 // FIXME: Consider allowing this outside C++1z mode as an extension. 293 bool AllowDeducedTemplate = IsClassTemplateDeductionContext && 294 getLangOpts().CPlusPlus17 && !IsCtorOrDtorName && 295 !isClassName && !HasTrailingDot; 296 297 // Determine where we will perform name lookup. 298 DeclContext *LookupCtx = nullptr; 299 if (ObjectTypePtr) { 300 QualType ObjectType = ObjectTypePtr.get(); 301 if (ObjectType->isRecordType()) 302 LookupCtx = computeDeclContext(ObjectType); 303 } else if (SS && SS->isNotEmpty()) { 304 LookupCtx = computeDeclContext(*SS, false); 305 306 if (!LookupCtx) { 307 if (isDependentScopeSpecifier(*SS)) { 308 // C++ [temp.res]p3: 309 // A qualified-id that refers to a type and in which the 310 // nested-name-specifier depends on a template-parameter (14.6.2) 311 // shall be prefixed by the keyword typename to indicate that the 312 // qualified-id denotes a type, forming an 313 // elaborated-type-specifier (7.1.5.3). 314 // 315 // We therefore do not perform any name lookup if the result would 316 // refer to a member of an unknown specialization. 317 if (!isClassName && !IsCtorOrDtorName) 318 return nullptr; 319 320 // We know from the grammar that this name refers to a type, 321 // so build a dependent node to describe the type. 322 if (WantNontrivialTypeSourceInfo) 323 return ActOnTypenameType(S, SourceLocation(), *SS, II, NameLoc).get(); 324 325 NestedNameSpecifierLoc QualifierLoc = SS->getWithLocInContext(Context); 326 QualType T = CheckTypenameType(ETK_None, SourceLocation(), QualifierLoc, 327 II, NameLoc); 328 return ParsedType::make(T); 329 } 330 331 return nullptr; 332 } 333 334 if (!LookupCtx->isDependentContext() && 335 RequireCompleteDeclContext(*SS, LookupCtx)) 336 return nullptr; 337 } 338 339 // FIXME: LookupNestedNameSpecifierName isn't the right kind of 340 // lookup for class-names. 341 LookupNameKind Kind = isClassName ? LookupNestedNameSpecifierName : 342 LookupOrdinaryName; 343 LookupResult Result(*this, &II, NameLoc, Kind); 344 if (LookupCtx) { 345 // Perform "qualified" name lookup into the declaration context we 346 // computed, which is either the type of the base of a member access 347 // expression or the declaration context associated with a prior 348 // nested-name-specifier. 349 LookupQualifiedName(Result, LookupCtx); 350 351 if (ObjectTypePtr && Result.empty()) { 352 // C++ [basic.lookup.classref]p3: 353 // If the unqualified-id is ~type-name, the type-name is looked up 354 // in the context of the entire postfix-expression. If the type T of 355 // the object expression is of a class type C, the type-name is also 356 // looked up in the scope of class C. At least one of the lookups shall 357 // find a name that refers to (possibly cv-qualified) T. 358 LookupName(Result, S); 359 } 360 } else { 361 // Perform unqualified name lookup. 362 LookupName(Result, S); 363 364 // For unqualified lookup in a class template in MSVC mode, look into 365 // dependent base classes where the primary class template is known. 366 if (Result.empty() && getLangOpts().MSVCCompat && (!SS || SS->isEmpty())) { 367 if (ParsedType TypeInBase = 368 recoverFromTypeInKnownDependentBase(*this, II, NameLoc)) 369 return TypeInBase; 370 } 371 } 372 373 NamedDecl *IIDecl = nullptr; 374 switch (Result.getResultKind()) { 375 case LookupResult::NotFound: 376 case LookupResult::NotFoundInCurrentInstantiation: 377 if (CorrectedII) { 378 TypeNameValidatorCCC CCC(/*AllowInvalid=*/true, isClassName, 379 AllowDeducedTemplate); 380 TypoCorrection Correction = CorrectTypo(Result.getLookupNameInfo(), Kind, 381 S, SS, CCC, CTK_ErrorRecovery); 382 IdentifierInfo *NewII = Correction.getCorrectionAsIdentifierInfo(); 383 TemplateTy Template; 384 bool MemberOfUnknownSpecialization; 385 UnqualifiedId TemplateName; 386 TemplateName.setIdentifier(NewII, NameLoc); 387 NestedNameSpecifier *NNS = Correction.getCorrectionSpecifier(); 388 CXXScopeSpec NewSS, *NewSSPtr = SS; 389 if (SS && NNS) { 390 NewSS.MakeTrivial(Context, NNS, SourceRange(NameLoc)); 391 NewSSPtr = &NewSS; 392 } 393 if (Correction && (NNS || NewII != &II) && 394 // Ignore a correction to a template type as the to-be-corrected 395 // identifier is not a template (typo correction for template names 396 // is handled elsewhere). 397 !(getLangOpts().CPlusPlus && NewSSPtr && 398 isTemplateName(S, *NewSSPtr, false, TemplateName, nullptr, false, 399 Template, MemberOfUnknownSpecialization))) { 400 ParsedType Ty = getTypeName(*NewII, NameLoc, S, NewSSPtr, 401 isClassName, HasTrailingDot, ObjectTypePtr, 402 IsCtorOrDtorName, 403 WantNontrivialTypeSourceInfo, 404 IsClassTemplateDeductionContext); 405 if (Ty) { 406 diagnoseTypo(Correction, 407 PDiag(diag::err_unknown_type_or_class_name_suggest) 408 << Result.getLookupName() << isClassName); 409 if (SS && NNS) 410 SS->MakeTrivial(Context, NNS, SourceRange(NameLoc)); 411 *CorrectedII = NewII; 412 return Ty; 413 } 414 } 415 } 416 // If typo correction failed or was not performed, fall through 417 LLVM_FALLTHROUGH; 418 case LookupResult::FoundOverloaded: 419 case LookupResult::FoundUnresolvedValue: 420 Result.suppressDiagnostics(); 421 return nullptr; 422 423 case LookupResult::Ambiguous: 424 // Recover from type-hiding ambiguities by hiding the type. We'll 425 // do the lookup again when looking for an object, and we can 426 // diagnose the error then. If we don't do this, then the error 427 // about hiding the type will be immediately followed by an error 428 // that only makes sense if the identifier was treated like a type. 429 if (Result.getAmbiguityKind() == LookupResult::AmbiguousTagHiding) { 430 Result.suppressDiagnostics(); 431 return nullptr; 432 } 433 434 // Look to see if we have a type anywhere in the list of results. 435 for (LookupResult::iterator Res = Result.begin(), ResEnd = Result.end(); 436 Res != ResEnd; ++Res) { 437 if (isa<TypeDecl>(*Res) || isa<ObjCInterfaceDecl>(*Res) || 438 (AllowDeducedTemplate && getAsTypeTemplateDecl(*Res))) { 439 if (!IIDecl || (*Res)->getLocation() < IIDecl->getLocation()) 440 IIDecl = *Res; 441 } 442 } 443 444 if (!IIDecl) { 445 // None of the entities we found is a type, so there is no way 446 // to even assume that the result is a type. In this case, don't 447 // complain about the ambiguity. The parser will either try to 448 // perform this lookup again (e.g., as an object name), which 449 // will produce the ambiguity, or will complain that it expected 450 // a type name. 451 Result.suppressDiagnostics(); 452 return nullptr; 453 } 454 455 // We found a type within the ambiguous lookup; diagnose the 456 // ambiguity and then return that type. This might be the right 457 // answer, or it might not be, but it suppresses any attempt to 458 // perform the name lookup again. 459 break; 460 461 case LookupResult::Found: 462 IIDecl = Result.getFoundDecl(); 463 break; 464 } 465 466 assert(IIDecl && "Didn't find decl"); 467 468 QualType T; 469 if (TypeDecl *TD = dyn_cast<TypeDecl>(IIDecl)) { 470 // C++ [class.qual]p2: A lookup that would find the injected-class-name 471 // instead names the constructors of the class, except when naming a class. 472 // This is ill-formed when we're not actually forming a ctor or dtor name. 473 auto *LookupRD = dyn_cast_or_null<CXXRecordDecl>(LookupCtx); 474 auto *FoundRD = dyn_cast<CXXRecordDecl>(TD); 475 if (!isClassName && !IsCtorOrDtorName && LookupRD && FoundRD && 476 FoundRD->isInjectedClassName() && 477 declaresSameEntity(LookupRD, cast<Decl>(FoundRD->getParent()))) 478 Diag(NameLoc, diag::err_out_of_line_qualified_id_type_names_constructor) 479 << &II << /*Type*/1; 480 481 DiagnoseUseOfDecl(IIDecl, NameLoc); 482 483 T = Context.getTypeDeclType(TD); 484 MarkAnyDeclReferenced(TD->getLocation(), TD, /*OdrUse=*/false); 485 } else if (ObjCInterfaceDecl *IDecl = dyn_cast<ObjCInterfaceDecl>(IIDecl)) { 486 (void)DiagnoseUseOfDecl(IDecl, NameLoc); 487 if (!HasTrailingDot) 488 T = Context.getObjCInterfaceType(IDecl); 489 } else if (AllowDeducedTemplate) { 490 if (auto *TD = getAsTypeTemplateDecl(IIDecl)) 491 T = Context.getDeducedTemplateSpecializationType(TemplateName(TD), 492 QualType(), false); 493 } 494 495 if (T.isNull()) { 496 // If it's not plausibly a type, suppress diagnostics. 497 Result.suppressDiagnostics(); 498 return nullptr; 499 } 500 501 // NOTE: avoid constructing an ElaboratedType(Loc) if this is a 502 // constructor or destructor name (in such a case, the scope specifier 503 // will be attached to the enclosing Expr or Decl node). 504 if (SS && SS->isNotEmpty() && !IsCtorOrDtorName && 505 !isa<ObjCInterfaceDecl>(IIDecl)) { 506 if (WantNontrivialTypeSourceInfo) { 507 // Construct a type with type-source information. 508 TypeLocBuilder Builder; 509 Builder.pushTypeSpec(T).setNameLoc(NameLoc); 510 511 T = getElaboratedType(ETK_None, *SS, T); 512 ElaboratedTypeLoc ElabTL = Builder.push<ElaboratedTypeLoc>(T); 513 ElabTL.setElaboratedKeywordLoc(SourceLocation()); 514 ElabTL.setQualifierLoc(SS->getWithLocInContext(Context)); 515 return CreateParsedType(T, Builder.getTypeSourceInfo(Context, T)); 516 } else { 517 T = getElaboratedType(ETK_None, *SS, T); 518 } 519 } 520 521 return ParsedType::make(T); 522 } 523 524 // Builds a fake NNS for the given decl context. 525 static NestedNameSpecifier * 526 synthesizeCurrentNestedNameSpecifier(ASTContext &Context, DeclContext *DC) { 527 for (;; DC = DC->getLookupParent()) { 528 DC = DC->getPrimaryContext(); 529 auto *ND = dyn_cast<NamespaceDecl>(DC); 530 if (ND && !ND->isInline() && !ND->isAnonymousNamespace()) 531 return NestedNameSpecifier::Create(Context, nullptr, ND); 532 else if (auto *RD = dyn_cast<CXXRecordDecl>(DC)) 533 return NestedNameSpecifier::Create(Context, nullptr, RD->isTemplateDecl(), 534 RD->getTypeForDecl()); 535 else if (isa<TranslationUnitDecl>(DC)) 536 return NestedNameSpecifier::GlobalSpecifier(Context); 537 } 538 llvm_unreachable("something isn't in TU scope?"); 539 } 540 541 /// Find the parent class with dependent bases of the innermost enclosing method 542 /// context. Do not look for enclosing CXXRecordDecls directly, or we will end 543 /// up allowing unqualified dependent type names at class-level, which MSVC 544 /// correctly rejects. 545 static const CXXRecordDecl * 546 findRecordWithDependentBasesOfEnclosingMethod(const DeclContext *DC) { 547 for (; DC && DC->isDependentContext(); DC = DC->getLookupParent()) { 548 DC = DC->getPrimaryContext(); 549 if (const auto *MD = dyn_cast<CXXMethodDecl>(DC)) 550 if (MD->getParent()->hasAnyDependentBases()) 551 return MD->getParent(); 552 } 553 return nullptr; 554 } 555 556 ParsedType Sema::ActOnMSVCUnknownTypeName(const IdentifierInfo &II, 557 SourceLocation NameLoc, 558 bool IsTemplateTypeArg) { 559 assert(getLangOpts().MSVCCompat && "shouldn't be called in non-MSVC mode"); 560 561 NestedNameSpecifier *NNS = nullptr; 562 if (IsTemplateTypeArg && getCurScope()->isTemplateParamScope()) { 563 // If we weren't able to parse a default template argument, delay lookup 564 // until instantiation time by making a non-dependent DependentTypeName. We 565 // pretend we saw a NestedNameSpecifier referring to the current scope, and 566 // lookup is retried. 567 // FIXME: This hurts our diagnostic quality, since we get errors like "no 568 // type named 'Foo' in 'current_namespace'" when the user didn't write any 569 // name specifiers. 570 NNS = synthesizeCurrentNestedNameSpecifier(Context, CurContext); 571 Diag(NameLoc, diag::ext_ms_delayed_template_argument) << &II; 572 } else if (const CXXRecordDecl *RD = 573 findRecordWithDependentBasesOfEnclosingMethod(CurContext)) { 574 // Build a DependentNameType that will perform lookup into RD at 575 // instantiation time. 576 NNS = NestedNameSpecifier::Create(Context, nullptr, RD->isTemplateDecl(), 577 RD->getTypeForDecl()); 578 579 // Diagnose that this identifier was undeclared, and retry the lookup during 580 // template instantiation. 581 Diag(NameLoc, diag::ext_undeclared_unqual_id_with_dependent_base) << &II 582 << RD; 583 } else { 584 // This is not a situation that we should recover from. 585 return ParsedType(); 586 } 587 588 QualType T = Context.getDependentNameType(ETK_None, NNS, &II); 589 590 // Build type location information. We synthesized the qualifier, so we have 591 // to build a fake NestedNameSpecifierLoc. 592 NestedNameSpecifierLocBuilder NNSLocBuilder; 593 NNSLocBuilder.MakeTrivial(Context, NNS, SourceRange(NameLoc)); 594 NestedNameSpecifierLoc QualifierLoc = NNSLocBuilder.getWithLocInContext(Context); 595 596 TypeLocBuilder Builder; 597 DependentNameTypeLoc DepTL = Builder.push<DependentNameTypeLoc>(T); 598 DepTL.setNameLoc(NameLoc); 599 DepTL.setElaboratedKeywordLoc(SourceLocation()); 600 DepTL.setQualifierLoc(QualifierLoc); 601 return CreateParsedType(T, Builder.getTypeSourceInfo(Context, T)); 602 } 603 604 /// isTagName() - This method is called *for error recovery purposes only* 605 /// to determine if the specified name is a valid tag name ("struct foo"). If 606 /// so, this returns the TST for the tag corresponding to it (TST_enum, 607 /// TST_union, TST_struct, TST_interface, TST_class). This is used to diagnose 608 /// cases in C where the user forgot to specify the tag. 609 DeclSpec::TST Sema::isTagName(IdentifierInfo &II, Scope *S) { 610 // Do a tag name lookup in this scope. 611 LookupResult R(*this, &II, SourceLocation(), LookupTagName); 612 LookupName(R, S, false); 613 R.suppressDiagnostics(); 614 if (R.getResultKind() == LookupResult::Found) 615 if (const TagDecl *TD = R.getAsSingle<TagDecl>()) { 616 switch (TD->getTagKind()) { 617 case TTK_Struct: return DeclSpec::TST_struct; 618 case TTK_Interface: return DeclSpec::TST_interface; 619 case TTK_Union: return DeclSpec::TST_union; 620 case TTK_Class: return DeclSpec::TST_class; 621 case TTK_Enum: return DeclSpec::TST_enum; 622 } 623 } 624 625 return DeclSpec::TST_unspecified; 626 } 627 628 /// isMicrosoftMissingTypename - In Microsoft mode, within class scope, 629 /// if a CXXScopeSpec's type is equal to the type of one of the base classes 630 /// then downgrade the missing typename error to a warning. 631 /// This is needed for MSVC compatibility; Example: 632 /// @code 633 /// template<class T> class A { 634 /// public: 635 /// typedef int TYPE; 636 /// }; 637 /// template<class T> class B : public A<T> { 638 /// public: 639 /// A<T>::TYPE a; // no typename required because A<T> is a base class. 640 /// }; 641 /// @endcode 642 bool Sema::isMicrosoftMissingTypename(const CXXScopeSpec *SS, Scope *S) { 643 if (CurContext->isRecord()) { 644 if (SS->getScopeRep()->getKind() == NestedNameSpecifier::Super) 645 return true; 646 647 const Type *Ty = SS->getScopeRep()->getAsType(); 648 649 CXXRecordDecl *RD = cast<CXXRecordDecl>(CurContext); 650 for (const auto &Base : RD->bases()) 651 if (Ty && Context.hasSameUnqualifiedType(QualType(Ty, 1), Base.getType())) 652 return true; 653 return S->isFunctionPrototypeScope(); 654 } 655 return CurContext->isFunctionOrMethod() || S->isFunctionPrototypeScope(); 656 } 657 658 void Sema::DiagnoseUnknownTypeName(IdentifierInfo *&II, 659 SourceLocation IILoc, 660 Scope *S, 661 CXXScopeSpec *SS, 662 ParsedType &SuggestedType, 663 bool IsTemplateName) { 664 // Don't report typename errors for editor placeholders. 665 if (II->isEditorPlaceholder()) 666 return; 667 // We don't have anything to suggest (yet). 668 SuggestedType = nullptr; 669 670 // There may have been a typo in the name of the type. Look up typo 671 // results, in case we have something that we can suggest. 672 TypeNameValidatorCCC CCC(/*AllowInvalid=*/false, /*WantClass=*/false, 673 /*AllowTemplates=*/IsTemplateName, 674 /*AllowNonTemplates=*/!IsTemplateName); 675 if (TypoCorrection Corrected = 676 CorrectTypo(DeclarationNameInfo(II, IILoc), LookupOrdinaryName, S, SS, 677 CCC, CTK_ErrorRecovery)) { 678 // FIXME: Support error recovery for the template-name case. 679 bool CanRecover = !IsTemplateName; 680 if (Corrected.isKeyword()) { 681 // We corrected to a keyword. 682 diagnoseTypo(Corrected, 683 PDiag(IsTemplateName ? diag::err_no_template_suggest 684 : diag::err_unknown_typename_suggest) 685 << II); 686 II = Corrected.getCorrectionAsIdentifierInfo(); 687 } else { 688 // We found a similarly-named type or interface; suggest that. 689 if (!SS || !SS->isSet()) { 690 diagnoseTypo(Corrected, 691 PDiag(IsTemplateName ? diag::err_no_template_suggest 692 : diag::err_unknown_typename_suggest) 693 << II, CanRecover); 694 } else if (DeclContext *DC = computeDeclContext(*SS, false)) { 695 std::string CorrectedStr(Corrected.getAsString(getLangOpts())); 696 bool DroppedSpecifier = Corrected.WillReplaceSpecifier() && 697 II->getName().equals(CorrectedStr); 698 diagnoseTypo(Corrected, 699 PDiag(IsTemplateName 700 ? diag::err_no_member_template_suggest 701 : diag::err_unknown_nested_typename_suggest) 702 << II << DC << DroppedSpecifier << SS->getRange(), 703 CanRecover); 704 } else { 705 llvm_unreachable("could not have corrected a typo here"); 706 } 707 708 if (!CanRecover) 709 return; 710 711 CXXScopeSpec tmpSS; 712 if (Corrected.getCorrectionSpecifier()) 713 tmpSS.MakeTrivial(Context, Corrected.getCorrectionSpecifier(), 714 SourceRange(IILoc)); 715 // FIXME: Support class template argument deduction here. 716 SuggestedType = 717 getTypeName(*Corrected.getCorrectionAsIdentifierInfo(), IILoc, S, 718 tmpSS.isSet() ? &tmpSS : SS, false, false, nullptr, 719 /*IsCtorOrDtorName=*/false, 720 /*WantNontrivialTypeSourceInfo=*/true); 721 } 722 return; 723 } 724 725 if (getLangOpts().CPlusPlus && !IsTemplateName) { 726 // See if II is a class template that the user forgot to pass arguments to. 727 UnqualifiedId Name; 728 Name.setIdentifier(II, IILoc); 729 CXXScopeSpec EmptySS; 730 TemplateTy TemplateResult; 731 bool MemberOfUnknownSpecialization; 732 if (isTemplateName(S, SS ? *SS : EmptySS, /*hasTemplateKeyword=*/false, 733 Name, nullptr, true, TemplateResult, 734 MemberOfUnknownSpecialization) == TNK_Type_template) { 735 diagnoseMissingTemplateArguments(TemplateResult.get(), IILoc); 736 return; 737 } 738 } 739 740 // FIXME: Should we move the logic that tries to recover from a missing tag 741 // (struct, union, enum) from Parser::ParseImplicitInt here, instead? 742 743 if (!SS || (!SS->isSet() && !SS->isInvalid())) 744 Diag(IILoc, IsTemplateName ? diag::err_no_template 745 : diag::err_unknown_typename) 746 << II; 747 else if (DeclContext *DC = computeDeclContext(*SS, false)) 748 Diag(IILoc, IsTemplateName ? diag::err_no_member_template 749 : diag::err_typename_nested_not_found) 750 << II << DC << SS->getRange(); 751 else if (SS->isValid() && SS->getScopeRep()->containsErrors()) { 752 SuggestedType = 753 ActOnTypenameType(S, SourceLocation(), *SS, *II, IILoc).get(); 754 } else if (isDependentScopeSpecifier(*SS)) { 755 unsigned DiagID = diag::err_typename_missing; 756 if (getLangOpts().MSVCCompat && isMicrosoftMissingTypename(SS, S)) 757 DiagID = diag::ext_typename_missing; 758 759 Diag(SS->getRange().getBegin(), DiagID) 760 << SS->getScopeRep() << II->getName() 761 << SourceRange(SS->getRange().getBegin(), IILoc) 762 << FixItHint::CreateInsertion(SS->getRange().getBegin(), "typename "); 763 SuggestedType = ActOnTypenameType(S, SourceLocation(), 764 *SS, *II, IILoc).get(); 765 } else { 766 assert(SS && SS->isInvalid() && 767 "Invalid scope specifier has already been diagnosed"); 768 } 769 } 770 771 /// Determine whether the given result set contains either a type name 772 /// or 773 static bool isResultTypeOrTemplate(LookupResult &R, const Token &NextToken) { 774 bool CheckTemplate = R.getSema().getLangOpts().CPlusPlus && 775 NextToken.is(tok::less); 776 777 for (LookupResult::iterator I = R.begin(), IEnd = R.end(); I != IEnd; ++I) { 778 if (isa<TypeDecl>(*I) || isa<ObjCInterfaceDecl>(*I)) 779 return true; 780 781 if (CheckTemplate && isa<TemplateDecl>(*I)) 782 return true; 783 } 784 785 return false; 786 } 787 788 static bool isTagTypeWithMissingTag(Sema &SemaRef, LookupResult &Result, 789 Scope *S, CXXScopeSpec &SS, 790 IdentifierInfo *&Name, 791 SourceLocation NameLoc) { 792 LookupResult R(SemaRef, Name, NameLoc, Sema::LookupTagName); 793 SemaRef.LookupParsedName(R, S, &SS); 794 if (TagDecl *Tag = R.getAsSingle<TagDecl>()) { 795 StringRef FixItTagName; 796 switch (Tag->getTagKind()) { 797 case TTK_Class: 798 FixItTagName = "class "; 799 break; 800 801 case TTK_Enum: 802 FixItTagName = "enum "; 803 break; 804 805 case TTK_Struct: 806 FixItTagName = "struct "; 807 break; 808 809 case TTK_Interface: 810 FixItTagName = "__interface "; 811 break; 812 813 case TTK_Union: 814 FixItTagName = "union "; 815 break; 816 } 817 818 StringRef TagName = FixItTagName.drop_back(); 819 SemaRef.Diag(NameLoc, diag::err_use_of_tag_name_without_tag) 820 << Name << TagName << SemaRef.getLangOpts().CPlusPlus 821 << FixItHint::CreateInsertion(NameLoc, FixItTagName); 822 823 for (LookupResult::iterator I = Result.begin(), IEnd = Result.end(); 824 I != IEnd; ++I) 825 SemaRef.Diag((*I)->getLocation(), diag::note_decl_hiding_tag_type) 826 << Name << TagName; 827 828 // Replace lookup results with just the tag decl. 829 Result.clear(Sema::LookupTagName); 830 SemaRef.LookupParsedName(Result, S, &SS); 831 return true; 832 } 833 834 return false; 835 } 836 837 /// Build a ParsedType for a simple-type-specifier with a nested-name-specifier. 838 static ParsedType buildNestedType(Sema &S, CXXScopeSpec &SS, 839 QualType T, SourceLocation NameLoc) { 840 ASTContext &Context = S.Context; 841 842 TypeLocBuilder Builder; 843 Builder.pushTypeSpec(T).setNameLoc(NameLoc); 844 845 T = S.getElaboratedType(ETK_None, SS, T); 846 ElaboratedTypeLoc ElabTL = Builder.push<ElaboratedTypeLoc>(T); 847 ElabTL.setElaboratedKeywordLoc(SourceLocation()); 848 ElabTL.setQualifierLoc(SS.getWithLocInContext(Context)); 849 return S.CreateParsedType(T, Builder.getTypeSourceInfo(Context, T)); 850 } 851 852 Sema::NameClassification Sema::ClassifyName(Scope *S, CXXScopeSpec &SS, 853 IdentifierInfo *&Name, 854 SourceLocation NameLoc, 855 const Token &NextToken, 856 CorrectionCandidateCallback *CCC) { 857 DeclarationNameInfo NameInfo(Name, NameLoc); 858 ObjCMethodDecl *CurMethod = getCurMethodDecl(); 859 860 assert(NextToken.isNot(tok::coloncolon) && 861 "parse nested name specifiers before calling ClassifyName"); 862 if (getLangOpts().CPlusPlus && SS.isSet() && 863 isCurrentClassName(*Name, S, &SS)) { 864 // Per [class.qual]p2, this names the constructors of SS, not the 865 // injected-class-name. We don't have a classification for that. 866 // There's not much point caching this result, since the parser 867 // will reject it later. 868 return NameClassification::Unknown(); 869 } 870 871 LookupResult Result(*this, Name, NameLoc, LookupOrdinaryName); 872 LookupParsedName(Result, S, &SS, !CurMethod); 873 874 if (SS.isInvalid()) 875 return NameClassification::Error(); 876 877 // For unqualified lookup in a class template in MSVC mode, look into 878 // dependent base classes where the primary class template is known. 879 if (Result.empty() && SS.isEmpty() && getLangOpts().MSVCCompat) { 880 if (ParsedType TypeInBase = 881 recoverFromTypeInKnownDependentBase(*this, *Name, NameLoc)) 882 return TypeInBase; 883 } 884 885 // Perform lookup for Objective-C instance variables (including automatically 886 // synthesized instance variables), if we're in an Objective-C method. 887 // FIXME: This lookup really, really needs to be folded in to the normal 888 // unqualified lookup mechanism. 889 if (SS.isEmpty() && CurMethod && !isResultTypeOrTemplate(Result, NextToken)) { 890 DeclResult Ivar = LookupIvarInObjCMethod(Result, S, Name); 891 if (Ivar.isInvalid()) 892 return NameClassification::Error(); 893 if (Ivar.isUsable()) 894 return NameClassification::NonType(cast<NamedDecl>(Ivar.get())); 895 896 // We defer builtin creation until after ivar lookup inside ObjC methods. 897 if (Result.empty()) 898 LookupBuiltin(Result); 899 } 900 901 bool SecondTry = false; 902 bool IsFilteredTemplateName = false; 903 904 Corrected: 905 switch (Result.getResultKind()) { 906 case LookupResult::NotFound: 907 // If an unqualified-id is followed by a '(', then we have a function 908 // call. 909 if (SS.isEmpty() && NextToken.is(tok::l_paren)) { 910 // In C++, this is an ADL-only call. 911 // FIXME: Reference? 912 if (getLangOpts().CPlusPlus) 913 return NameClassification::UndeclaredNonType(); 914 915 // C90 6.3.2.2: 916 // If the expression that precedes the parenthesized argument list in a 917 // function call consists solely of an identifier, and if no 918 // declaration is visible for this identifier, the identifier is 919 // implicitly declared exactly as if, in the innermost block containing 920 // the function call, the declaration 921 // 922 // extern int identifier (); 923 // 924 // appeared. 925 // 926 // We also allow this in C99 as an extension. 927 if (NamedDecl *D = ImplicitlyDefineFunction(NameLoc, *Name, S)) 928 return NameClassification::NonType(D); 929 } 930 931 if (getLangOpts().CPlusPlus20 && SS.isEmpty() && NextToken.is(tok::less)) { 932 // In C++20 onwards, this could be an ADL-only call to a function 933 // template, and we're required to assume that this is a template name. 934 // 935 // FIXME: Find a way to still do typo correction in this case. 936 TemplateName Template = 937 Context.getAssumedTemplateName(NameInfo.getName()); 938 return NameClassification::UndeclaredTemplate(Template); 939 } 940 941 // In C, we first see whether there is a tag type by the same name, in 942 // which case it's likely that the user just forgot to write "enum", 943 // "struct", or "union". 944 if (!getLangOpts().CPlusPlus && !SecondTry && 945 isTagTypeWithMissingTag(*this, Result, S, SS, Name, NameLoc)) { 946 break; 947 } 948 949 // Perform typo correction to determine if there is another name that is 950 // close to this name. 951 if (!SecondTry && CCC) { 952 SecondTry = true; 953 if (TypoCorrection Corrected = 954 CorrectTypo(Result.getLookupNameInfo(), Result.getLookupKind(), S, 955 &SS, *CCC, CTK_ErrorRecovery)) { 956 unsigned UnqualifiedDiag = diag::err_undeclared_var_use_suggest; 957 unsigned QualifiedDiag = diag::err_no_member_suggest; 958 959 NamedDecl *FirstDecl = Corrected.getFoundDecl(); 960 NamedDecl *UnderlyingFirstDecl = Corrected.getCorrectionDecl(); 961 if (getLangOpts().CPlusPlus && NextToken.is(tok::less) && 962 UnderlyingFirstDecl && isa<TemplateDecl>(UnderlyingFirstDecl)) { 963 UnqualifiedDiag = diag::err_no_template_suggest; 964 QualifiedDiag = diag::err_no_member_template_suggest; 965 } else if (UnderlyingFirstDecl && 966 (isa<TypeDecl>(UnderlyingFirstDecl) || 967 isa<ObjCInterfaceDecl>(UnderlyingFirstDecl) || 968 isa<ObjCCompatibleAliasDecl>(UnderlyingFirstDecl))) { 969 UnqualifiedDiag = diag::err_unknown_typename_suggest; 970 QualifiedDiag = diag::err_unknown_nested_typename_suggest; 971 } 972 973 if (SS.isEmpty()) { 974 diagnoseTypo(Corrected, PDiag(UnqualifiedDiag) << Name); 975 } else {// FIXME: is this even reachable? Test it. 976 std::string CorrectedStr(Corrected.getAsString(getLangOpts())); 977 bool DroppedSpecifier = Corrected.WillReplaceSpecifier() && 978 Name->getName().equals(CorrectedStr); 979 diagnoseTypo(Corrected, PDiag(QualifiedDiag) 980 << Name << computeDeclContext(SS, false) 981 << DroppedSpecifier << SS.getRange()); 982 } 983 984 // Update the name, so that the caller has the new name. 985 Name = Corrected.getCorrectionAsIdentifierInfo(); 986 987 // Typo correction corrected to a keyword. 988 if (Corrected.isKeyword()) 989 return Name; 990 991 // Also update the LookupResult... 992 // FIXME: This should probably go away at some point 993 Result.clear(); 994 Result.setLookupName(Corrected.getCorrection()); 995 if (FirstDecl) 996 Result.addDecl(FirstDecl); 997 998 // If we found an Objective-C instance variable, let 999 // LookupInObjCMethod build the appropriate expression to 1000 // reference the ivar. 1001 // FIXME: This is a gross hack. 1002 if (ObjCIvarDecl *Ivar = Result.getAsSingle<ObjCIvarDecl>()) { 1003 DeclResult R = 1004 LookupIvarInObjCMethod(Result, S, Ivar->getIdentifier()); 1005 if (R.isInvalid()) 1006 return NameClassification::Error(); 1007 if (R.isUsable()) 1008 return NameClassification::NonType(Ivar); 1009 } 1010 1011 goto Corrected; 1012 } 1013 } 1014 1015 // We failed to correct; just fall through and let the parser deal with it. 1016 Result.suppressDiagnostics(); 1017 return NameClassification::Unknown(); 1018 1019 case LookupResult::NotFoundInCurrentInstantiation: { 1020 // We performed name lookup into the current instantiation, and there were 1021 // dependent bases, so we treat this result the same way as any other 1022 // dependent nested-name-specifier. 1023 1024 // C++ [temp.res]p2: 1025 // A name used in a template declaration or definition and that is 1026 // dependent on a template-parameter is assumed not to name a type 1027 // unless the applicable name lookup finds a type name or the name is 1028 // qualified by the keyword typename. 1029 // 1030 // FIXME: If the next token is '<', we might want to ask the parser to 1031 // perform some heroics to see if we actually have a 1032 // template-argument-list, which would indicate a missing 'template' 1033 // keyword here. 1034 return NameClassification::DependentNonType(); 1035 } 1036 1037 case LookupResult::Found: 1038 case LookupResult::FoundOverloaded: 1039 case LookupResult::FoundUnresolvedValue: 1040 break; 1041 1042 case LookupResult::Ambiguous: 1043 if (getLangOpts().CPlusPlus && NextToken.is(tok::less) && 1044 hasAnyAcceptableTemplateNames(Result, /*AllowFunctionTemplates=*/true, 1045 /*AllowDependent=*/false)) { 1046 // C++ [temp.local]p3: 1047 // A lookup that finds an injected-class-name (10.2) can result in an 1048 // ambiguity in certain cases (for example, if it is found in more than 1049 // one base class). If all of the injected-class-names that are found 1050 // refer to specializations of the same class template, and if the name 1051 // is followed by a template-argument-list, the reference refers to the 1052 // class template itself and not a specialization thereof, and is not 1053 // ambiguous. 1054 // 1055 // This filtering can make an ambiguous result into an unambiguous one, 1056 // so try again after filtering out template names. 1057 FilterAcceptableTemplateNames(Result); 1058 if (!Result.isAmbiguous()) { 1059 IsFilteredTemplateName = true; 1060 break; 1061 } 1062 } 1063 1064 // Diagnose the ambiguity and return an error. 1065 return NameClassification::Error(); 1066 } 1067 1068 if (getLangOpts().CPlusPlus && NextToken.is(tok::less) && 1069 (IsFilteredTemplateName || 1070 hasAnyAcceptableTemplateNames( 1071 Result, /*AllowFunctionTemplates=*/true, 1072 /*AllowDependent=*/false, 1073 /*AllowNonTemplateFunctions*/ SS.isEmpty() && 1074 getLangOpts().CPlusPlus20))) { 1075 // C++ [temp.names]p3: 1076 // After name lookup (3.4) finds that a name is a template-name or that 1077 // an operator-function-id or a literal- operator-id refers to a set of 1078 // overloaded functions any member of which is a function template if 1079 // this is followed by a <, the < is always taken as the delimiter of a 1080 // template-argument-list and never as the less-than operator. 1081 // C++2a [temp.names]p2: 1082 // A name is also considered to refer to a template if it is an 1083 // unqualified-id followed by a < and name lookup finds either one 1084 // or more functions or finds nothing. 1085 if (!IsFilteredTemplateName) 1086 FilterAcceptableTemplateNames(Result); 1087 1088 bool IsFunctionTemplate; 1089 bool IsVarTemplate; 1090 TemplateName Template; 1091 if (Result.end() - Result.begin() > 1) { 1092 IsFunctionTemplate = true; 1093 Template = Context.getOverloadedTemplateName(Result.begin(), 1094 Result.end()); 1095 } else if (!Result.empty()) { 1096 auto *TD = cast<TemplateDecl>(getAsTemplateNameDecl( 1097 *Result.begin(), /*AllowFunctionTemplates=*/true, 1098 /*AllowDependent=*/false)); 1099 IsFunctionTemplate = isa<FunctionTemplateDecl>(TD); 1100 IsVarTemplate = isa<VarTemplateDecl>(TD); 1101 1102 if (SS.isNotEmpty()) 1103 Template = 1104 Context.getQualifiedTemplateName(SS.getScopeRep(), 1105 /*TemplateKeyword=*/false, TD); 1106 else 1107 Template = TemplateName(TD); 1108 } else { 1109 // All results were non-template functions. This is a function template 1110 // name. 1111 IsFunctionTemplate = true; 1112 Template = Context.getAssumedTemplateName(NameInfo.getName()); 1113 } 1114 1115 if (IsFunctionTemplate) { 1116 // Function templates always go through overload resolution, at which 1117 // point we'll perform the various checks (e.g., accessibility) we need 1118 // to based on which function we selected. 1119 Result.suppressDiagnostics(); 1120 1121 return NameClassification::FunctionTemplate(Template); 1122 } 1123 1124 return IsVarTemplate ? NameClassification::VarTemplate(Template) 1125 : NameClassification::TypeTemplate(Template); 1126 } 1127 1128 NamedDecl *FirstDecl = (*Result.begin())->getUnderlyingDecl(); 1129 if (TypeDecl *Type = dyn_cast<TypeDecl>(FirstDecl)) { 1130 DiagnoseUseOfDecl(Type, NameLoc); 1131 MarkAnyDeclReferenced(Type->getLocation(), Type, /*OdrUse=*/false); 1132 QualType T = Context.getTypeDeclType(Type); 1133 if (SS.isNotEmpty()) 1134 return buildNestedType(*this, SS, T, NameLoc); 1135 return ParsedType::make(T); 1136 } 1137 1138 ObjCInterfaceDecl *Class = dyn_cast<ObjCInterfaceDecl>(FirstDecl); 1139 if (!Class) { 1140 // FIXME: It's unfortunate that we don't have a Type node for handling this. 1141 if (ObjCCompatibleAliasDecl *Alias = 1142 dyn_cast<ObjCCompatibleAliasDecl>(FirstDecl)) 1143 Class = Alias->getClassInterface(); 1144 } 1145 1146 if (Class) { 1147 DiagnoseUseOfDecl(Class, NameLoc); 1148 1149 if (NextToken.is(tok::period)) { 1150 // Interface. <something> is parsed as a property reference expression. 1151 // Just return "unknown" as a fall-through for now. 1152 Result.suppressDiagnostics(); 1153 return NameClassification::Unknown(); 1154 } 1155 1156 QualType T = Context.getObjCInterfaceType(Class); 1157 return ParsedType::make(T); 1158 } 1159 1160 if (isa<ConceptDecl>(FirstDecl)) 1161 return NameClassification::Concept( 1162 TemplateName(cast<TemplateDecl>(FirstDecl))); 1163 1164 // We can have a type template here if we're classifying a template argument. 1165 if (isa<TemplateDecl>(FirstDecl) && !isa<FunctionTemplateDecl>(FirstDecl) && 1166 !isa<VarTemplateDecl>(FirstDecl)) 1167 return NameClassification::TypeTemplate( 1168 TemplateName(cast<TemplateDecl>(FirstDecl))); 1169 1170 // Check for a tag type hidden by a non-type decl in a few cases where it 1171 // seems likely a type is wanted instead of the non-type that was found. 1172 bool NextIsOp = NextToken.isOneOf(tok::amp, tok::star); 1173 if ((NextToken.is(tok::identifier) || 1174 (NextIsOp && 1175 FirstDecl->getUnderlyingDecl()->isFunctionOrFunctionTemplate())) && 1176 isTagTypeWithMissingTag(*this, Result, S, SS, Name, NameLoc)) { 1177 TypeDecl *Type = Result.getAsSingle<TypeDecl>(); 1178 DiagnoseUseOfDecl(Type, NameLoc); 1179 QualType T = Context.getTypeDeclType(Type); 1180 if (SS.isNotEmpty()) 1181 return buildNestedType(*this, SS, T, NameLoc); 1182 return ParsedType::make(T); 1183 } 1184 1185 // If we already know which single declaration is referenced, just annotate 1186 // that declaration directly. Defer resolving even non-overloaded class 1187 // member accesses, as we need to defer certain access checks until we know 1188 // the context. 1189 bool ADL = UseArgumentDependentLookup(SS, Result, NextToken.is(tok::l_paren)); 1190 if (Result.isSingleResult() && !ADL && !FirstDecl->isCXXClassMember()) 1191 return NameClassification::NonType(Result.getRepresentativeDecl()); 1192 1193 // Otherwise, this is an overload set that we will need to resolve later. 1194 Result.suppressDiagnostics(); 1195 return NameClassification::OverloadSet(UnresolvedLookupExpr::Create( 1196 Context, Result.getNamingClass(), SS.getWithLocInContext(Context), 1197 Result.getLookupNameInfo(), ADL, Result.isOverloadedResult(), 1198 Result.begin(), Result.end())); 1199 } 1200 1201 ExprResult 1202 Sema::ActOnNameClassifiedAsUndeclaredNonType(IdentifierInfo *Name, 1203 SourceLocation NameLoc) { 1204 assert(getLangOpts().CPlusPlus && "ADL-only call in C?"); 1205 CXXScopeSpec SS; 1206 LookupResult Result(*this, Name, NameLoc, LookupOrdinaryName); 1207 return BuildDeclarationNameExpr(SS, Result, /*ADL=*/true); 1208 } 1209 1210 ExprResult 1211 Sema::ActOnNameClassifiedAsDependentNonType(const CXXScopeSpec &SS, 1212 IdentifierInfo *Name, 1213 SourceLocation NameLoc, 1214 bool IsAddressOfOperand) { 1215 DeclarationNameInfo NameInfo(Name, NameLoc); 1216 return ActOnDependentIdExpression(SS, /*TemplateKWLoc=*/SourceLocation(), 1217 NameInfo, IsAddressOfOperand, 1218 /*TemplateArgs=*/nullptr); 1219 } 1220 1221 ExprResult Sema::ActOnNameClassifiedAsNonType(Scope *S, const CXXScopeSpec &SS, 1222 NamedDecl *Found, 1223 SourceLocation NameLoc, 1224 const Token &NextToken) { 1225 if (getCurMethodDecl() && SS.isEmpty()) 1226 if (auto *Ivar = dyn_cast<ObjCIvarDecl>(Found->getUnderlyingDecl())) 1227 return BuildIvarRefExpr(S, NameLoc, Ivar); 1228 1229 // Reconstruct the lookup result. 1230 LookupResult Result(*this, Found->getDeclName(), NameLoc, LookupOrdinaryName); 1231 Result.addDecl(Found); 1232 Result.resolveKind(); 1233 1234 bool ADL = UseArgumentDependentLookup(SS, Result, NextToken.is(tok::l_paren)); 1235 return BuildDeclarationNameExpr(SS, Result, ADL); 1236 } 1237 1238 ExprResult Sema::ActOnNameClassifiedAsOverloadSet(Scope *S, Expr *E) { 1239 // For an implicit class member access, transform the result into a member 1240 // access expression if necessary. 1241 auto *ULE = cast<UnresolvedLookupExpr>(E); 1242 if ((*ULE->decls_begin())->isCXXClassMember()) { 1243 CXXScopeSpec SS; 1244 SS.Adopt(ULE->getQualifierLoc()); 1245 1246 // Reconstruct the lookup result. 1247 LookupResult Result(*this, ULE->getName(), ULE->getNameLoc(), 1248 LookupOrdinaryName); 1249 Result.setNamingClass(ULE->getNamingClass()); 1250 for (auto I = ULE->decls_begin(), E = ULE->decls_end(); I != E; ++I) 1251 Result.addDecl(*I, I.getAccess()); 1252 Result.resolveKind(); 1253 return BuildPossibleImplicitMemberExpr(SS, SourceLocation(), Result, 1254 nullptr, S); 1255 } 1256 1257 // Otherwise, this is already in the form we needed, and no further checks 1258 // are necessary. 1259 return ULE; 1260 } 1261 1262 Sema::TemplateNameKindForDiagnostics 1263 Sema::getTemplateNameKindForDiagnostics(TemplateName Name) { 1264 auto *TD = Name.getAsTemplateDecl(); 1265 if (!TD) 1266 return TemplateNameKindForDiagnostics::DependentTemplate; 1267 if (isa<ClassTemplateDecl>(TD)) 1268 return TemplateNameKindForDiagnostics::ClassTemplate; 1269 if (isa<FunctionTemplateDecl>(TD)) 1270 return TemplateNameKindForDiagnostics::FunctionTemplate; 1271 if (isa<VarTemplateDecl>(TD)) 1272 return TemplateNameKindForDiagnostics::VarTemplate; 1273 if (isa<TypeAliasTemplateDecl>(TD)) 1274 return TemplateNameKindForDiagnostics::AliasTemplate; 1275 if (isa<TemplateTemplateParmDecl>(TD)) 1276 return TemplateNameKindForDiagnostics::TemplateTemplateParam; 1277 if (isa<ConceptDecl>(TD)) 1278 return TemplateNameKindForDiagnostics::Concept; 1279 return TemplateNameKindForDiagnostics::DependentTemplate; 1280 } 1281 1282 void Sema::PushDeclContext(Scope *S, DeclContext *DC) { 1283 assert(DC->getLexicalParent() == CurContext && 1284 "The next DeclContext should be lexically contained in the current one."); 1285 CurContext = DC; 1286 S->setEntity(DC); 1287 } 1288 1289 void Sema::PopDeclContext() { 1290 assert(CurContext && "DeclContext imbalance!"); 1291 1292 CurContext = CurContext->getLexicalParent(); 1293 assert(CurContext && "Popped translation unit!"); 1294 } 1295 1296 Sema::SkippedDefinitionContext Sema::ActOnTagStartSkippedDefinition(Scope *S, 1297 Decl *D) { 1298 // Unlike PushDeclContext, the context to which we return is not necessarily 1299 // the containing DC of TD, because the new context will be some pre-existing 1300 // TagDecl definition instead of a fresh one. 1301 auto Result = static_cast<SkippedDefinitionContext>(CurContext); 1302 CurContext = cast<TagDecl>(D)->getDefinition(); 1303 assert(CurContext && "skipping definition of undefined tag"); 1304 // Start lookups from the parent of the current context; we don't want to look 1305 // into the pre-existing complete definition. 1306 S->setEntity(CurContext->getLookupParent()); 1307 return Result; 1308 } 1309 1310 void Sema::ActOnTagFinishSkippedDefinition(SkippedDefinitionContext Context) { 1311 CurContext = static_cast<decltype(CurContext)>(Context); 1312 } 1313 1314 /// EnterDeclaratorContext - Used when we must lookup names in the context 1315 /// of a declarator's nested name specifier. 1316 /// 1317 void Sema::EnterDeclaratorContext(Scope *S, DeclContext *DC) { 1318 // C++0x [basic.lookup.unqual]p13: 1319 // A name used in the definition of a static data member of class 1320 // X (after the qualified-id of the static member) is looked up as 1321 // if the name was used in a member function of X. 1322 // C++0x [basic.lookup.unqual]p14: 1323 // If a variable member of a namespace is defined outside of the 1324 // scope of its namespace then any name used in the definition of 1325 // the variable member (after the declarator-id) is looked up as 1326 // if the definition of the variable member occurred in its 1327 // namespace. 1328 // Both of these imply that we should push a scope whose context 1329 // is the semantic context of the declaration. We can't use 1330 // PushDeclContext here because that context is not necessarily 1331 // lexically contained in the current context. Fortunately, 1332 // the containing scope should have the appropriate information. 1333 1334 assert(!S->getEntity() && "scope already has entity"); 1335 1336 #ifndef NDEBUG 1337 Scope *Ancestor = S->getParent(); 1338 while (!Ancestor->getEntity()) Ancestor = Ancestor->getParent(); 1339 assert(Ancestor->getEntity() == CurContext && "ancestor context mismatch"); 1340 #endif 1341 1342 CurContext = DC; 1343 S->setEntity(DC); 1344 1345 if (S->getParent()->isTemplateParamScope()) { 1346 // Also set the corresponding entities for all immediately-enclosing 1347 // template parameter scopes. 1348 EnterTemplatedContext(S->getParent(), DC); 1349 } 1350 } 1351 1352 void Sema::ExitDeclaratorContext(Scope *S) { 1353 assert(S->getEntity() == CurContext && "Context imbalance!"); 1354 1355 // Switch back to the lexical context. The safety of this is 1356 // enforced by an assert in EnterDeclaratorContext. 1357 Scope *Ancestor = S->getParent(); 1358 while (!Ancestor->getEntity()) Ancestor = Ancestor->getParent(); 1359 CurContext = Ancestor->getEntity(); 1360 1361 // We don't need to do anything with the scope, which is going to 1362 // disappear. 1363 } 1364 1365 void Sema::EnterTemplatedContext(Scope *S, DeclContext *DC) { 1366 assert(S->isTemplateParamScope() && 1367 "expected to be initializing a template parameter scope"); 1368 1369 // C++20 [temp.local]p7: 1370 // In the definition of a member of a class template that appears outside 1371 // of the class template definition, the name of a member of the class 1372 // template hides the name of a template-parameter of any enclosing class 1373 // templates (but not a template-parameter of the member if the member is a 1374 // class or function template). 1375 // C++20 [temp.local]p9: 1376 // In the definition of a class template or in the definition of a member 1377 // of such a template that appears outside of the template definition, for 1378 // each non-dependent base class (13.8.2.1), if the name of the base class 1379 // or the name of a member of the base class is the same as the name of a 1380 // template-parameter, the base class name or member name hides the 1381 // template-parameter name (6.4.10). 1382 // 1383 // This means that a template parameter scope should be searched immediately 1384 // after searching the DeclContext for which it is a template parameter 1385 // scope. For example, for 1386 // template<typename T> template<typename U> template<typename V> 1387 // void N::A<T>::B<U>::f(...) 1388 // we search V then B<U> (and base classes) then U then A<T> (and base 1389 // classes) then T then N then ::. 1390 unsigned ScopeDepth = getTemplateDepth(S); 1391 for (; S && S->isTemplateParamScope(); S = S->getParent(), --ScopeDepth) { 1392 DeclContext *SearchDCAfterScope = DC; 1393 for (; DC; DC = DC->getLookupParent()) { 1394 if (const TemplateParameterList *TPL = 1395 cast<Decl>(DC)->getDescribedTemplateParams()) { 1396 unsigned DCDepth = TPL->getDepth() + 1; 1397 if (DCDepth > ScopeDepth) 1398 continue; 1399 if (ScopeDepth == DCDepth) 1400 SearchDCAfterScope = DC = DC->getLookupParent(); 1401 break; 1402 } 1403 } 1404 S->setLookupEntity(SearchDCAfterScope); 1405 } 1406 } 1407 1408 void Sema::ActOnReenterFunctionContext(Scope* S, Decl *D) { 1409 // We assume that the caller has already called 1410 // ActOnReenterTemplateScope so getTemplatedDecl() works. 1411 FunctionDecl *FD = D->getAsFunction(); 1412 if (!FD) 1413 return; 1414 1415 // Same implementation as PushDeclContext, but enters the context 1416 // from the lexical parent, rather than the top-level class. 1417 assert(CurContext == FD->getLexicalParent() && 1418 "The next DeclContext should be lexically contained in the current one."); 1419 CurContext = FD; 1420 S->setEntity(CurContext); 1421 1422 for (unsigned P = 0, NumParams = FD->getNumParams(); P < NumParams; ++P) { 1423 ParmVarDecl *Param = FD->getParamDecl(P); 1424 // If the parameter has an identifier, then add it to the scope 1425 if (Param->getIdentifier()) { 1426 S->AddDecl(Param); 1427 IdResolver.AddDecl(Param); 1428 } 1429 } 1430 } 1431 1432 void Sema::ActOnExitFunctionContext() { 1433 // Same implementation as PopDeclContext, but returns to the lexical parent, 1434 // rather than the top-level class. 1435 assert(CurContext && "DeclContext imbalance!"); 1436 CurContext = CurContext->getLexicalParent(); 1437 assert(CurContext && "Popped translation unit!"); 1438 } 1439 1440 /// Determine whether we allow overloading of the function 1441 /// PrevDecl with another declaration. 1442 /// 1443 /// This routine determines whether overloading is possible, not 1444 /// whether some new function is actually an overload. It will return 1445 /// true in C++ (where we can always provide overloads) or, as an 1446 /// extension, in C when the previous function is already an 1447 /// overloaded function declaration or has the "overloadable" 1448 /// attribute. 1449 static bool AllowOverloadingOfFunction(LookupResult &Previous, 1450 ASTContext &Context, 1451 const FunctionDecl *New) { 1452 if (Context.getLangOpts().CPlusPlus) 1453 return true; 1454 1455 if (Previous.getResultKind() == LookupResult::FoundOverloaded) 1456 return true; 1457 1458 return Previous.getResultKind() == LookupResult::Found && 1459 (Previous.getFoundDecl()->hasAttr<OverloadableAttr>() || 1460 New->hasAttr<OverloadableAttr>()); 1461 } 1462 1463 /// Add this decl to the scope shadowed decl chains. 1464 void Sema::PushOnScopeChains(NamedDecl *D, Scope *S, bool AddToContext) { 1465 // Move up the scope chain until we find the nearest enclosing 1466 // non-transparent context. The declaration will be introduced into this 1467 // scope. 1468 while (S->getEntity() && S->getEntity()->isTransparentContext()) 1469 S = S->getParent(); 1470 1471 // Add scoped declarations into their context, so that they can be 1472 // found later. Declarations without a context won't be inserted 1473 // into any context. 1474 if (AddToContext) 1475 CurContext->addDecl(D); 1476 1477 // Out-of-line definitions shouldn't be pushed into scope in C++, unless they 1478 // are function-local declarations. 1479 if (getLangOpts().CPlusPlus && D->isOutOfLine() && !S->getFnParent()) 1480 return; 1481 1482 // Template instantiations should also not be pushed into scope. 1483 if (isa<FunctionDecl>(D) && 1484 cast<FunctionDecl>(D)->isFunctionTemplateSpecialization()) 1485 return; 1486 1487 // If this replaces anything in the current scope, 1488 IdentifierResolver::iterator I = IdResolver.begin(D->getDeclName()), 1489 IEnd = IdResolver.end(); 1490 for (; I != IEnd; ++I) { 1491 if (S->isDeclScope(*I) && D->declarationReplaces(*I)) { 1492 S->RemoveDecl(*I); 1493 IdResolver.RemoveDecl(*I); 1494 1495 // Should only need to replace one decl. 1496 break; 1497 } 1498 } 1499 1500 S->AddDecl(D); 1501 1502 if (isa<LabelDecl>(D) && !cast<LabelDecl>(D)->isGnuLocal()) { 1503 // Implicitly-generated labels may end up getting generated in an order that 1504 // isn't strictly lexical, which breaks name lookup. Be careful to insert 1505 // the label at the appropriate place in the identifier chain. 1506 for (I = IdResolver.begin(D->getDeclName()); I != IEnd; ++I) { 1507 DeclContext *IDC = (*I)->getLexicalDeclContext()->getRedeclContext(); 1508 if (IDC == CurContext) { 1509 if (!S->isDeclScope(*I)) 1510 continue; 1511 } else if (IDC->Encloses(CurContext)) 1512 break; 1513 } 1514 1515 IdResolver.InsertDeclAfter(I, D); 1516 } else { 1517 IdResolver.AddDecl(D); 1518 } 1519 } 1520 1521 bool Sema::isDeclInScope(NamedDecl *D, DeclContext *Ctx, Scope *S, 1522 bool AllowInlineNamespace) { 1523 return IdResolver.isDeclInScope(D, Ctx, S, AllowInlineNamespace); 1524 } 1525 1526 Scope *Sema::getScopeForDeclContext(Scope *S, DeclContext *DC) { 1527 DeclContext *TargetDC = DC->getPrimaryContext(); 1528 do { 1529 if (DeclContext *ScopeDC = S->getEntity()) 1530 if (ScopeDC->getPrimaryContext() == TargetDC) 1531 return S; 1532 } while ((S = S->getParent())); 1533 1534 return nullptr; 1535 } 1536 1537 static bool isOutOfScopePreviousDeclaration(NamedDecl *, 1538 DeclContext*, 1539 ASTContext&); 1540 1541 /// Filters out lookup results that don't fall within the given scope 1542 /// as determined by isDeclInScope. 1543 void Sema::FilterLookupForScope(LookupResult &R, DeclContext *Ctx, Scope *S, 1544 bool ConsiderLinkage, 1545 bool AllowInlineNamespace) { 1546 LookupResult::Filter F = R.makeFilter(); 1547 while (F.hasNext()) { 1548 NamedDecl *D = F.next(); 1549 1550 if (isDeclInScope(D, Ctx, S, AllowInlineNamespace)) 1551 continue; 1552 1553 if (ConsiderLinkage && isOutOfScopePreviousDeclaration(D, Ctx, Context)) 1554 continue; 1555 1556 F.erase(); 1557 } 1558 1559 F.done(); 1560 } 1561 1562 /// We've determined that \p New is a redeclaration of \p Old. Check that they 1563 /// have compatible owning modules. 1564 bool Sema::CheckRedeclarationModuleOwnership(NamedDecl *New, NamedDecl *Old) { 1565 // FIXME: The Modules TS is not clear about how friend declarations are 1566 // to be treated. It's not meaningful to have different owning modules for 1567 // linkage in redeclarations of the same entity, so for now allow the 1568 // redeclaration and change the owning modules to match. 1569 if (New->getFriendObjectKind() && 1570 Old->getOwningModuleForLinkage() != New->getOwningModuleForLinkage()) { 1571 New->setLocalOwningModule(Old->getOwningModule()); 1572 makeMergedDefinitionVisible(New); 1573 return false; 1574 } 1575 1576 Module *NewM = New->getOwningModule(); 1577 Module *OldM = Old->getOwningModule(); 1578 1579 if (NewM && NewM->Kind == Module::PrivateModuleFragment) 1580 NewM = NewM->Parent; 1581 if (OldM && OldM->Kind == Module::PrivateModuleFragment) 1582 OldM = OldM->Parent; 1583 1584 if (NewM == OldM) 1585 return false; 1586 1587 bool NewIsModuleInterface = NewM && NewM->isModulePurview(); 1588 bool OldIsModuleInterface = OldM && OldM->isModulePurview(); 1589 if (NewIsModuleInterface || OldIsModuleInterface) { 1590 // C++ Modules TS [basic.def.odr] 6.2/6.7 [sic]: 1591 // if a declaration of D [...] appears in the purview of a module, all 1592 // other such declarations shall appear in the purview of the same module 1593 Diag(New->getLocation(), diag::err_mismatched_owning_module) 1594 << New 1595 << NewIsModuleInterface 1596 << (NewIsModuleInterface ? NewM->getFullModuleName() : "") 1597 << OldIsModuleInterface 1598 << (OldIsModuleInterface ? OldM->getFullModuleName() : ""); 1599 Diag(Old->getLocation(), diag::note_previous_declaration); 1600 New->setInvalidDecl(); 1601 return true; 1602 } 1603 1604 return false; 1605 } 1606 1607 static bool isUsingDecl(NamedDecl *D) { 1608 return isa<UsingShadowDecl>(D) || 1609 isa<UnresolvedUsingTypenameDecl>(D) || 1610 isa<UnresolvedUsingValueDecl>(D); 1611 } 1612 1613 /// Removes using shadow declarations from the lookup results. 1614 static void RemoveUsingDecls(LookupResult &R) { 1615 LookupResult::Filter F = R.makeFilter(); 1616 while (F.hasNext()) 1617 if (isUsingDecl(F.next())) 1618 F.erase(); 1619 1620 F.done(); 1621 } 1622 1623 /// Check for this common pattern: 1624 /// @code 1625 /// class S { 1626 /// S(const S&); // DO NOT IMPLEMENT 1627 /// void operator=(const S&); // DO NOT IMPLEMENT 1628 /// }; 1629 /// @endcode 1630 static bool IsDisallowedCopyOrAssign(const CXXMethodDecl *D) { 1631 // FIXME: Should check for private access too but access is set after we get 1632 // the decl here. 1633 if (D->doesThisDeclarationHaveABody()) 1634 return false; 1635 1636 if (const CXXConstructorDecl *CD = dyn_cast<CXXConstructorDecl>(D)) 1637 return CD->isCopyConstructor(); 1638 return D->isCopyAssignmentOperator(); 1639 } 1640 1641 // We need this to handle 1642 // 1643 // typedef struct { 1644 // void *foo() { return 0; } 1645 // } A; 1646 // 1647 // When we see foo we don't know if after the typedef we will get 'A' or '*A' 1648 // for example. If 'A', foo will have external linkage. If we have '*A', 1649 // foo will have no linkage. Since we can't know until we get to the end 1650 // of the typedef, this function finds out if D might have non-external linkage. 1651 // Callers should verify at the end of the TU if it D has external linkage or 1652 // not. 1653 bool Sema::mightHaveNonExternalLinkage(const DeclaratorDecl *D) { 1654 const DeclContext *DC = D->getDeclContext(); 1655 while (!DC->isTranslationUnit()) { 1656 if (const RecordDecl *RD = dyn_cast<RecordDecl>(DC)){ 1657 if (!RD->hasNameForLinkage()) 1658 return true; 1659 } 1660 DC = DC->getParent(); 1661 } 1662 1663 return !D->isExternallyVisible(); 1664 } 1665 1666 // FIXME: This needs to be refactored; some other isInMainFile users want 1667 // these semantics. 1668 static bool isMainFileLoc(const Sema &S, SourceLocation Loc) { 1669 if (S.TUKind != TU_Complete) 1670 return false; 1671 return S.SourceMgr.isInMainFile(Loc); 1672 } 1673 1674 bool Sema::ShouldWarnIfUnusedFileScopedDecl(const DeclaratorDecl *D) const { 1675 assert(D); 1676 1677 if (D->isInvalidDecl() || D->isUsed() || D->hasAttr<UnusedAttr>()) 1678 return false; 1679 1680 // Ignore all entities declared within templates, and out-of-line definitions 1681 // of members of class templates. 1682 if (D->getDeclContext()->isDependentContext() || 1683 D->getLexicalDeclContext()->isDependentContext()) 1684 return false; 1685 1686 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) { 1687 if (FD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 1688 return false; 1689 // A non-out-of-line declaration of a member specialization was implicitly 1690 // instantiated; it's the out-of-line declaration that we're interested in. 1691 if (FD->getTemplateSpecializationKind() == TSK_ExplicitSpecialization && 1692 FD->getMemberSpecializationInfo() && !FD->isOutOfLine()) 1693 return false; 1694 1695 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) { 1696 if (MD->isVirtual() || IsDisallowedCopyOrAssign(MD)) 1697 return false; 1698 } else { 1699 // 'static inline' functions are defined in headers; don't warn. 1700 if (FD->isInlined() && !isMainFileLoc(*this, FD->getLocation())) 1701 return false; 1702 } 1703 1704 if (FD->doesThisDeclarationHaveABody() && 1705 Context.DeclMustBeEmitted(FD)) 1706 return false; 1707 } else if (const VarDecl *VD = dyn_cast<VarDecl>(D)) { 1708 // Constants and utility variables are defined in headers with internal 1709 // linkage; don't warn. (Unlike functions, there isn't a convenient marker 1710 // like "inline".) 1711 if (!isMainFileLoc(*this, VD->getLocation())) 1712 return false; 1713 1714 if (Context.DeclMustBeEmitted(VD)) 1715 return false; 1716 1717 if (VD->isStaticDataMember() && 1718 VD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 1719 return false; 1720 if (VD->isStaticDataMember() && 1721 VD->getTemplateSpecializationKind() == TSK_ExplicitSpecialization && 1722 VD->getMemberSpecializationInfo() && !VD->isOutOfLine()) 1723 return false; 1724 1725 if (VD->isInline() && !isMainFileLoc(*this, VD->getLocation())) 1726 return false; 1727 } else { 1728 return false; 1729 } 1730 1731 // Only warn for unused decls internal to the translation unit. 1732 // FIXME: This seems like a bogus check; it suppresses -Wunused-function 1733 // for inline functions defined in the main source file, for instance. 1734 return mightHaveNonExternalLinkage(D); 1735 } 1736 1737 void Sema::MarkUnusedFileScopedDecl(const DeclaratorDecl *D) { 1738 if (!D) 1739 return; 1740 1741 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) { 1742 const FunctionDecl *First = FD->getFirstDecl(); 1743 if (FD != First && ShouldWarnIfUnusedFileScopedDecl(First)) 1744 return; // First should already be in the vector. 1745 } 1746 1747 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) { 1748 const VarDecl *First = VD->getFirstDecl(); 1749 if (VD != First && ShouldWarnIfUnusedFileScopedDecl(First)) 1750 return; // First should already be in the vector. 1751 } 1752 1753 if (ShouldWarnIfUnusedFileScopedDecl(D)) 1754 UnusedFileScopedDecls.push_back(D); 1755 } 1756 1757 static bool ShouldDiagnoseUnusedDecl(const NamedDecl *D) { 1758 if (D->isInvalidDecl()) 1759 return false; 1760 1761 if (auto *DD = dyn_cast<DecompositionDecl>(D)) { 1762 // For a decomposition declaration, warn if none of the bindings are 1763 // referenced, instead of if the variable itself is referenced (which 1764 // it is, by the bindings' expressions). 1765 for (auto *BD : DD->bindings()) 1766 if (BD->isReferenced()) 1767 return false; 1768 } else if (!D->getDeclName()) { 1769 return false; 1770 } else if (D->isReferenced() || D->isUsed()) { 1771 return false; 1772 } 1773 1774 if (D->hasAttr<UnusedAttr>() || D->hasAttr<ObjCPreciseLifetimeAttr>()) 1775 return false; 1776 1777 if (isa<LabelDecl>(D)) 1778 return true; 1779 1780 // Except for labels, we only care about unused decls that are local to 1781 // functions. 1782 bool WithinFunction = D->getDeclContext()->isFunctionOrMethod(); 1783 if (const auto *R = dyn_cast<CXXRecordDecl>(D->getDeclContext())) 1784 // For dependent types, the diagnostic is deferred. 1785 WithinFunction = 1786 WithinFunction || (R->isLocalClass() && !R->isDependentType()); 1787 if (!WithinFunction) 1788 return false; 1789 1790 if (isa<TypedefNameDecl>(D)) 1791 return true; 1792 1793 // White-list anything that isn't a local variable. 1794 if (!isa<VarDecl>(D) || isa<ParmVarDecl>(D) || isa<ImplicitParamDecl>(D)) 1795 return false; 1796 1797 // Types of valid local variables should be complete, so this should succeed. 1798 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) { 1799 1800 // White-list anything with an __attribute__((unused)) type. 1801 const auto *Ty = VD->getType().getTypePtr(); 1802 1803 // Only look at the outermost level of typedef. 1804 if (const TypedefType *TT = Ty->getAs<TypedefType>()) { 1805 if (TT->getDecl()->hasAttr<UnusedAttr>()) 1806 return false; 1807 } 1808 1809 // If we failed to complete the type for some reason, or if the type is 1810 // dependent, don't diagnose the variable. 1811 if (Ty->isIncompleteType() || Ty->isDependentType()) 1812 return false; 1813 1814 // Look at the element type to ensure that the warning behaviour is 1815 // consistent for both scalars and arrays. 1816 Ty = Ty->getBaseElementTypeUnsafe(); 1817 1818 if (const TagType *TT = Ty->getAs<TagType>()) { 1819 const TagDecl *Tag = TT->getDecl(); 1820 if (Tag->hasAttr<UnusedAttr>()) 1821 return false; 1822 1823 if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Tag)) { 1824 if (!RD->hasTrivialDestructor() && !RD->hasAttr<WarnUnusedAttr>()) 1825 return false; 1826 1827 if (const Expr *Init = VD->getInit()) { 1828 if (const ExprWithCleanups *Cleanups = 1829 dyn_cast<ExprWithCleanups>(Init)) 1830 Init = Cleanups->getSubExpr(); 1831 const CXXConstructExpr *Construct = 1832 dyn_cast<CXXConstructExpr>(Init); 1833 if (Construct && !Construct->isElidable()) { 1834 CXXConstructorDecl *CD = Construct->getConstructor(); 1835 if (!CD->isTrivial() && !RD->hasAttr<WarnUnusedAttr>() && 1836 (VD->getInit()->isValueDependent() || !VD->evaluateValue())) 1837 return false; 1838 } 1839 1840 // Suppress the warning if we don't know how this is constructed, and 1841 // it could possibly be non-trivial constructor. 1842 if (Init->isTypeDependent()) 1843 for (const CXXConstructorDecl *Ctor : RD->ctors()) 1844 if (!Ctor->isTrivial()) 1845 return false; 1846 } 1847 } 1848 } 1849 1850 // TODO: __attribute__((unused)) templates? 1851 } 1852 1853 return true; 1854 } 1855 1856 static void GenerateFixForUnusedDecl(const NamedDecl *D, ASTContext &Ctx, 1857 FixItHint &Hint) { 1858 if (isa<LabelDecl>(D)) { 1859 SourceLocation AfterColon = Lexer::findLocationAfterToken( 1860 D->getEndLoc(), tok::colon, Ctx.getSourceManager(), Ctx.getLangOpts(), 1861 true); 1862 if (AfterColon.isInvalid()) 1863 return; 1864 Hint = FixItHint::CreateRemoval( 1865 CharSourceRange::getCharRange(D->getBeginLoc(), AfterColon)); 1866 } 1867 } 1868 1869 void Sema::DiagnoseUnusedNestedTypedefs(const RecordDecl *D) { 1870 if (D->getTypeForDecl()->isDependentType()) 1871 return; 1872 1873 for (auto *TmpD : D->decls()) { 1874 if (const auto *T = dyn_cast<TypedefNameDecl>(TmpD)) 1875 DiagnoseUnusedDecl(T); 1876 else if(const auto *R = dyn_cast<RecordDecl>(TmpD)) 1877 DiagnoseUnusedNestedTypedefs(R); 1878 } 1879 } 1880 1881 /// DiagnoseUnusedDecl - Emit warnings about declarations that are not used 1882 /// unless they are marked attr(unused). 1883 void Sema::DiagnoseUnusedDecl(const NamedDecl *D) { 1884 if (!ShouldDiagnoseUnusedDecl(D)) 1885 return; 1886 1887 if (auto *TD = dyn_cast<TypedefNameDecl>(D)) { 1888 // typedefs can be referenced later on, so the diagnostics are emitted 1889 // at end-of-translation-unit. 1890 UnusedLocalTypedefNameCandidates.insert(TD); 1891 return; 1892 } 1893 1894 FixItHint Hint; 1895 GenerateFixForUnusedDecl(D, Context, Hint); 1896 1897 unsigned DiagID; 1898 if (isa<VarDecl>(D) && cast<VarDecl>(D)->isExceptionVariable()) 1899 DiagID = diag::warn_unused_exception_param; 1900 else if (isa<LabelDecl>(D)) 1901 DiagID = diag::warn_unused_label; 1902 else 1903 DiagID = diag::warn_unused_variable; 1904 1905 Diag(D->getLocation(), DiagID) << D << Hint; 1906 } 1907 1908 static void CheckPoppedLabel(LabelDecl *L, Sema &S) { 1909 // Verify that we have no forward references left. If so, there was a goto 1910 // or address of a label taken, but no definition of it. Label fwd 1911 // definitions are indicated with a null substmt which is also not a resolved 1912 // MS inline assembly label name. 1913 bool Diagnose = false; 1914 if (L->isMSAsmLabel()) 1915 Diagnose = !L->isResolvedMSAsmLabel(); 1916 else 1917 Diagnose = L->getStmt() == nullptr; 1918 if (Diagnose) 1919 S.Diag(L->getLocation(), diag::err_undeclared_label_use) << L; 1920 } 1921 1922 void Sema::ActOnPopScope(SourceLocation Loc, Scope *S) { 1923 S->mergeNRVOIntoParent(); 1924 1925 if (S->decl_empty()) return; 1926 assert((S->getFlags() & (Scope::DeclScope | Scope::TemplateParamScope)) && 1927 "Scope shouldn't contain decls!"); 1928 1929 for (auto *TmpD : S->decls()) { 1930 assert(TmpD && "This decl didn't get pushed??"); 1931 1932 assert(isa<NamedDecl>(TmpD) && "Decl isn't NamedDecl?"); 1933 NamedDecl *D = cast<NamedDecl>(TmpD); 1934 1935 // Diagnose unused variables in this scope. 1936 if (!S->hasUnrecoverableErrorOccurred()) { 1937 DiagnoseUnusedDecl(D); 1938 if (const auto *RD = dyn_cast<RecordDecl>(D)) 1939 DiagnoseUnusedNestedTypedefs(RD); 1940 } 1941 1942 if (!D->getDeclName()) continue; 1943 1944 // If this was a forward reference to a label, verify it was defined. 1945 if (LabelDecl *LD = dyn_cast<LabelDecl>(D)) 1946 CheckPoppedLabel(LD, *this); 1947 1948 // Remove this name from our lexical scope, and warn on it if we haven't 1949 // already. 1950 IdResolver.RemoveDecl(D); 1951 auto ShadowI = ShadowingDecls.find(D); 1952 if (ShadowI != ShadowingDecls.end()) { 1953 if (const auto *FD = dyn_cast<FieldDecl>(ShadowI->second)) { 1954 Diag(D->getLocation(), diag::warn_ctor_parm_shadows_field) 1955 << D << FD << FD->getParent(); 1956 Diag(FD->getLocation(), diag::note_previous_declaration); 1957 } 1958 ShadowingDecls.erase(ShadowI); 1959 } 1960 } 1961 } 1962 1963 /// Look for an Objective-C class in the translation unit. 1964 /// 1965 /// \param Id The name of the Objective-C class we're looking for. If 1966 /// typo-correction fixes this name, the Id will be updated 1967 /// to the fixed name. 1968 /// 1969 /// \param IdLoc The location of the name in the translation unit. 1970 /// 1971 /// \param DoTypoCorrection If true, this routine will attempt typo correction 1972 /// if there is no class with the given name. 1973 /// 1974 /// \returns The declaration of the named Objective-C class, or NULL if the 1975 /// class could not be found. 1976 ObjCInterfaceDecl *Sema::getObjCInterfaceDecl(IdentifierInfo *&Id, 1977 SourceLocation IdLoc, 1978 bool DoTypoCorrection) { 1979 // The third "scope" argument is 0 since we aren't enabling lazy built-in 1980 // creation from this context. 1981 NamedDecl *IDecl = LookupSingleName(TUScope, Id, IdLoc, LookupOrdinaryName); 1982 1983 if (!IDecl && DoTypoCorrection) { 1984 // Perform typo correction at the given location, but only if we 1985 // find an Objective-C class name. 1986 DeclFilterCCC<ObjCInterfaceDecl> CCC{}; 1987 if (TypoCorrection C = 1988 CorrectTypo(DeclarationNameInfo(Id, IdLoc), LookupOrdinaryName, 1989 TUScope, nullptr, CCC, CTK_ErrorRecovery)) { 1990 diagnoseTypo(C, PDiag(diag::err_undef_interface_suggest) << Id); 1991 IDecl = C.getCorrectionDeclAs<ObjCInterfaceDecl>(); 1992 Id = IDecl->getIdentifier(); 1993 } 1994 } 1995 ObjCInterfaceDecl *Def = dyn_cast_or_null<ObjCInterfaceDecl>(IDecl); 1996 // This routine must always return a class definition, if any. 1997 if (Def && Def->getDefinition()) 1998 Def = Def->getDefinition(); 1999 return Def; 2000 } 2001 2002 /// getNonFieldDeclScope - Retrieves the innermost scope, starting 2003 /// from S, where a non-field would be declared. This routine copes 2004 /// with the difference between C and C++ scoping rules in structs and 2005 /// unions. For example, the following code is well-formed in C but 2006 /// ill-formed in C++: 2007 /// @code 2008 /// struct S6 { 2009 /// enum { BAR } e; 2010 /// }; 2011 /// 2012 /// void test_S6() { 2013 /// struct S6 a; 2014 /// a.e = BAR; 2015 /// } 2016 /// @endcode 2017 /// For the declaration of BAR, this routine will return a different 2018 /// scope. The scope S will be the scope of the unnamed enumeration 2019 /// within S6. In C++, this routine will return the scope associated 2020 /// with S6, because the enumeration's scope is a transparent 2021 /// context but structures can contain non-field names. In C, this 2022 /// routine will return the translation unit scope, since the 2023 /// enumeration's scope is a transparent context and structures cannot 2024 /// contain non-field names. 2025 Scope *Sema::getNonFieldDeclScope(Scope *S) { 2026 while (((S->getFlags() & Scope::DeclScope) == 0) || 2027 (S->getEntity() && S->getEntity()->isTransparentContext()) || 2028 (S->isClassScope() && !getLangOpts().CPlusPlus)) 2029 S = S->getParent(); 2030 return S; 2031 } 2032 2033 static StringRef getHeaderName(Builtin::Context &BuiltinInfo, unsigned ID, 2034 ASTContext::GetBuiltinTypeError Error) { 2035 switch (Error) { 2036 case ASTContext::GE_None: 2037 return ""; 2038 case ASTContext::GE_Missing_type: 2039 return BuiltinInfo.getHeaderName(ID); 2040 case ASTContext::GE_Missing_stdio: 2041 return "stdio.h"; 2042 case ASTContext::GE_Missing_setjmp: 2043 return "setjmp.h"; 2044 case ASTContext::GE_Missing_ucontext: 2045 return "ucontext.h"; 2046 } 2047 llvm_unreachable("unhandled error kind"); 2048 } 2049 2050 FunctionDecl *Sema::CreateBuiltin(IdentifierInfo *II, QualType Type, 2051 unsigned ID, SourceLocation Loc) { 2052 DeclContext *Parent = Context.getTranslationUnitDecl(); 2053 2054 if (getLangOpts().CPlusPlus) { 2055 LinkageSpecDecl *CLinkageDecl = LinkageSpecDecl::Create( 2056 Context, Parent, Loc, Loc, LinkageSpecDecl::lang_c, false); 2057 CLinkageDecl->setImplicit(); 2058 Parent->addDecl(CLinkageDecl); 2059 Parent = CLinkageDecl; 2060 } 2061 2062 FunctionDecl *New = FunctionDecl::Create(Context, Parent, Loc, Loc, II, Type, 2063 /*TInfo=*/nullptr, SC_Extern, false, 2064 Type->isFunctionProtoType()); 2065 New->setImplicit(); 2066 New->addAttr(BuiltinAttr::CreateImplicit(Context, ID)); 2067 2068 // Create Decl objects for each parameter, adding them to the 2069 // FunctionDecl. 2070 if (const FunctionProtoType *FT = dyn_cast<FunctionProtoType>(Type)) { 2071 SmallVector<ParmVarDecl *, 16> Params; 2072 for (unsigned i = 0, e = FT->getNumParams(); i != e; ++i) { 2073 ParmVarDecl *parm = ParmVarDecl::Create( 2074 Context, New, SourceLocation(), SourceLocation(), nullptr, 2075 FT->getParamType(i), /*TInfo=*/nullptr, SC_None, nullptr); 2076 parm->setScopeInfo(0, i); 2077 Params.push_back(parm); 2078 } 2079 New->setParams(Params); 2080 } 2081 2082 AddKnownFunctionAttributes(New); 2083 return New; 2084 } 2085 2086 /// LazilyCreateBuiltin - The specified Builtin-ID was first used at 2087 /// file scope. lazily create a decl for it. ForRedeclaration is true 2088 /// if we're creating this built-in in anticipation of redeclaring the 2089 /// built-in. 2090 NamedDecl *Sema::LazilyCreateBuiltin(IdentifierInfo *II, unsigned ID, 2091 Scope *S, bool ForRedeclaration, 2092 SourceLocation Loc) { 2093 LookupNecessaryTypesForBuiltin(S, ID); 2094 2095 ASTContext::GetBuiltinTypeError Error; 2096 QualType R = Context.GetBuiltinType(ID, Error); 2097 if (Error) { 2098 if (!ForRedeclaration) 2099 return nullptr; 2100 2101 // If we have a builtin without an associated type we should not emit a 2102 // warning when we were not able to find a type for it. 2103 if (Error == ASTContext::GE_Missing_type || 2104 Context.BuiltinInfo.allowTypeMismatch(ID)) 2105 return nullptr; 2106 2107 // If we could not find a type for setjmp it is because the jmp_buf type was 2108 // not defined prior to the setjmp declaration. 2109 if (Error == ASTContext::GE_Missing_setjmp) { 2110 Diag(Loc, diag::warn_implicit_decl_no_jmp_buf) 2111 << Context.BuiltinInfo.getName(ID); 2112 return nullptr; 2113 } 2114 2115 // Generally, we emit a warning that the declaration requires the 2116 // appropriate header. 2117 Diag(Loc, diag::warn_implicit_decl_requires_sysheader) 2118 << getHeaderName(Context.BuiltinInfo, ID, Error) 2119 << Context.BuiltinInfo.getName(ID); 2120 return nullptr; 2121 } 2122 2123 if (!ForRedeclaration && 2124 (Context.BuiltinInfo.isPredefinedLibFunction(ID) || 2125 Context.BuiltinInfo.isHeaderDependentFunction(ID))) { 2126 Diag(Loc, diag::ext_implicit_lib_function_decl) 2127 << Context.BuiltinInfo.getName(ID) << R; 2128 if (const char *Header = Context.BuiltinInfo.getHeaderName(ID)) 2129 Diag(Loc, diag::note_include_header_or_declare) 2130 << Header << Context.BuiltinInfo.getName(ID); 2131 } 2132 2133 if (R.isNull()) 2134 return nullptr; 2135 2136 FunctionDecl *New = CreateBuiltin(II, R, ID, Loc); 2137 RegisterLocallyScopedExternCDecl(New, S); 2138 2139 // TUScope is the translation-unit scope to insert this function into. 2140 // FIXME: This is hideous. We need to teach PushOnScopeChains to 2141 // relate Scopes to DeclContexts, and probably eliminate CurContext 2142 // entirely, but we're not there yet. 2143 DeclContext *SavedContext = CurContext; 2144 CurContext = New->getDeclContext(); 2145 PushOnScopeChains(New, TUScope); 2146 CurContext = SavedContext; 2147 return New; 2148 } 2149 2150 /// Typedef declarations don't have linkage, but they still denote the same 2151 /// entity if their types are the same. 2152 /// FIXME: This is notionally doing the same thing as ASTReaderDecl's 2153 /// isSameEntity. 2154 static void filterNonConflictingPreviousTypedefDecls(Sema &S, 2155 TypedefNameDecl *Decl, 2156 LookupResult &Previous) { 2157 // This is only interesting when modules are enabled. 2158 if (!S.getLangOpts().Modules && !S.getLangOpts().ModulesLocalVisibility) 2159 return; 2160 2161 // Empty sets are uninteresting. 2162 if (Previous.empty()) 2163 return; 2164 2165 LookupResult::Filter Filter = Previous.makeFilter(); 2166 while (Filter.hasNext()) { 2167 NamedDecl *Old = Filter.next(); 2168 2169 // Non-hidden declarations are never ignored. 2170 if (S.isVisible(Old)) 2171 continue; 2172 2173 // Declarations of the same entity are not ignored, even if they have 2174 // different linkages. 2175 if (auto *OldTD = dyn_cast<TypedefNameDecl>(Old)) { 2176 if (S.Context.hasSameType(OldTD->getUnderlyingType(), 2177 Decl->getUnderlyingType())) 2178 continue; 2179 2180 // If both declarations give a tag declaration a typedef name for linkage 2181 // purposes, then they declare the same entity. 2182 if (OldTD->getAnonDeclWithTypedefName(/*AnyRedecl*/true) && 2183 Decl->getAnonDeclWithTypedefName()) 2184 continue; 2185 } 2186 2187 Filter.erase(); 2188 } 2189 2190 Filter.done(); 2191 } 2192 2193 bool Sema::isIncompatibleTypedef(TypeDecl *Old, TypedefNameDecl *New) { 2194 QualType OldType; 2195 if (TypedefNameDecl *OldTypedef = dyn_cast<TypedefNameDecl>(Old)) 2196 OldType = OldTypedef->getUnderlyingType(); 2197 else 2198 OldType = Context.getTypeDeclType(Old); 2199 QualType NewType = New->getUnderlyingType(); 2200 2201 if (NewType->isVariablyModifiedType()) { 2202 // Must not redefine a typedef with a variably-modified type. 2203 int Kind = isa<TypeAliasDecl>(Old) ? 1 : 0; 2204 Diag(New->getLocation(), diag::err_redefinition_variably_modified_typedef) 2205 << Kind << NewType; 2206 if (Old->getLocation().isValid()) 2207 notePreviousDefinition(Old, New->getLocation()); 2208 New->setInvalidDecl(); 2209 return true; 2210 } 2211 2212 if (OldType != NewType && 2213 !OldType->isDependentType() && 2214 !NewType->isDependentType() && 2215 !Context.hasSameType(OldType, NewType)) { 2216 int Kind = isa<TypeAliasDecl>(Old) ? 1 : 0; 2217 Diag(New->getLocation(), diag::err_redefinition_different_typedef) 2218 << Kind << NewType << OldType; 2219 if (Old->getLocation().isValid()) 2220 notePreviousDefinition(Old, New->getLocation()); 2221 New->setInvalidDecl(); 2222 return true; 2223 } 2224 return false; 2225 } 2226 2227 /// MergeTypedefNameDecl - We just parsed a typedef 'New' which has the 2228 /// same name and scope as a previous declaration 'Old'. Figure out 2229 /// how to resolve this situation, merging decls or emitting 2230 /// diagnostics as appropriate. If there was an error, set New to be invalid. 2231 /// 2232 void Sema::MergeTypedefNameDecl(Scope *S, TypedefNameDecl *New, 2233 LookupResult &OldDecls) { 2234 // If the new decl is known invalid already, don't bother doing any 2235 // merging checks. 2236 if (New->isInvalidDecl()) return; 2237 2238 // Allow multiple definitions for ObjC built-in typedefs. 2239 // FIXME: Verify the underlying types are equivalent! 2240 if (getLangOpts().ObjC) { 2241 const IdentifierInfo *TypeID = New->getIdentifier(); 2242 switch (TypeID->getLength()) { 2243 default: break; 2244 case 2: 2245 { 2246 if (!TypeID->isStr("id")) 2247 break; 2248 QualType T = New->getUnderlyingType(); 2249 if (!T->isPointerType()) 2250 break; 2251 if (!T->isVoidPointerType()) { 2252 QualType PT = T->castAs<PointerType>()->getPointeeType(); 2253 if (!PT->isStructureType()) 2254 break; 2255 } 2256 Context.setObjCIdRedefinitionType(T); 2257 // Install the built-in type for 'id', ignoring the current definition. 2258 New->setTypeForDecl(Context.getObjCIdType().getTypePtr()); 2259 return; 2260 } 2261 case 5: 2262 if (!TypeID->isStr("Class")) 2263 break; 2264 Context.setObjCClassRedefinitionType(New->getUnderlyingType()); 2265 // Install the built-in type for 'Class', ignoring the current definition. 2266 New->setTypeForDecl(Context.getObjCClassType().getTypePtr()); 2267 return; 2268 case 3: 2269 if (!TypeID->isStr("SEL")) 2270 break; 2271 Context.setObjCSelRedefinitionType(New->getUnderlyingType()); 2272 // Install the built-in type for 'SEL', ignoring the current definition. 2273 New->setTypeForDecl(Context.getObjCSelType().getTypePtr()); 2274 return; 2275 } 2276 // Fall through - the typedef name was not a builtin type. 2277 } 2278 2279 // Verify the old decl was also a type. 2280 TypeDecl *Old = OldDecls.getAsSingle<TypeDecl>(); 2281 if (!Old) { 2282 Diag(New->getLocation(), diag::err_redefinition_different_kind) 2283 << New->getDeclName(); 2284 2285 NamedDecl *OldD = OldDecls.getRepresentativeDecl(); 2286 if (OldD->getLocation().isValid()) 2287 notePreviousDefinition(OldD, New->getLocation()); 2288 2289 return New->setInvalidDecl(); 2290 } 2291 2292 // If the old declaration is invalid, just give up here. 2293 if (Old->isInvalidDecl()) 2294 return New->setInvalidDecl(); 2295 2296 if (auto *OldTD = dyn_cast<TypedefNameDecl>(Old)) { 2297 auto *OldTag = OldTD->getAnonDeclWithTypedefName(/*AnyRedecl*/true); 2298 auto *NewTag = New->getAnonDeclWithTypedefName(); 2299 NamedDecl *Hidden = nullptr; 2300 if (OldTag && NewTag && 2301 OldTag->getCanonicalDecl() != NewTag->getCanonicalDecl() && 2302 !hasVisibleDefinition(OldTag, &Hidden)) { 2303 // There is a definition of this tag, but it is not visible. Use it 2304 // instead of our tag. 2305 New->setTypeForDecl(OldTD->getTypeForDecl()); 2306 if (OldTD->isModed()) 2307 New->setModedTypeSourceInfo(OldTD->getTypeSourceInfo(), 2308 OldTD->getUnderlyingType()); 2309 else 2310 New->setTypeSourceInfo(OldTD->getTypeSourceInfo()); 2311 2312 // Make the old tag definition visible. 2313 makeMergedDefinitionVisible(Hidden); 2314 2315 // If this was an unscoped enumeration, yank all of its enumerators 2316 // out of the scope. 2317 if (isa<EnumDecl>(NewTag)) { 2318 Scope *EnumScope = getNonFieldDeclScope(S); 2319 for (auto *D : NewTag->decls()) { 2320 auto *ED = cast<EnumConstantDecl>(D); 2321 assert(EnumScope->isDeclScope(ED)); 2322 EnumScope->RemoveDecl(ED); 2323 IdResolver.RemoveDecl(ED); 2324 ED->getLexicalDeclContext()->removeDecl(ED); 2325 } 2326 } 2327 } 2328 } 2329 2330 // If the typedef types are not identical, reject them in all languages and 2331 // with any extensions enabled. 2332 if (isIncompatibleTypedef(Old, New)) 2333 return; 2334 2335 // The types match. Link up the redeclaration chain and merge attributes if 2336 // the old declaration was a typedef. 2337 if (TypedefNameDecl *Typedef = dyn_cast<TypedefNameDecl>(Old)) { 2338 New->setPreviousDecl(Typedef); 2339 mergeDeclAttributes(New, Old); 2340 } 2341 2342 if (getLangOpts().MicrosoftExt) 2343 return; 2344 2345 if (getLangOpts().CPlusPlus) { 2346 // C++ [dcl.typedef]p2: 2347 // In a given non-class scope, a typedef specifier can be used to 2348 // redefine the name of any type declared in that scope to refer 2349 // to the type to which it already refers. 2350 if (!isa<CXXRecordDecl>(CurContext)) 2351 return; 2352 2353 // C++0x [dcl.typedef]p4: 2354 // In a given class scope, a typedef specifier can be used to redefine 2355 // any class-name declared in that scope that is not also a typedef-name 2356 // to refer to the type to which it already refers. 2357 // 2358 // This wording came in via DR424, which was a correction to the 2359 // wording in DR56, which accidentally banned code like: 2360 // 2361 // struct S { 2362 // typedef struct A { } A; 2363 // }; 2364 // 2365 // in the C++03 standard. We implement the C++0x semantics, which 2366 // allow the above but disallow 2367 // 2368 // struct S { 2369 // typedef int I; 2370 // typedef int I; 2371 // }; 2372 // 2373 // since that was the intent of DR56. 2374 if (!isa<TypedefNameDecl>(Old)) 2375 return; 2376 2377 Diag(New->getLocation(), diag::err_redefinition) 2378 << New->getDeclName(); 2379 notePreviousDefinition(Old, New->getLocation()); 2380 return New->setInvalidDecl(); 2381 } 2382 2383 // Modules always permit redefinition of typedefs, as does C11. 2384 if (getLangOpts().Modules || getLangOpts().C11) 2385 return; 2386 2387 // If we have a redefinition of a typedef in C, emit a warning. This warning 2388 // is normally mapped to an error, but can be controlled with 2389 // -Wtypedef-redefinition. If either the original or the redefinition is 2390 // in a system header, don't emit this for compatibility with GCC. 2391 if (getDiagnostics().getSuppressSystemWarnings() && 2392 // Some standard types are defined implicitly in Clang (e.g. OpenCL). 2393 (Old->isImplicit() || 2394 Context.getSourceManager().isInSystemHeader(Old->getLocation()) || 2395 Context.getSourceManager().isInSystemHeader(New->getLocation()))) 2396 return; 2397 2398 Diag(New->getLocation(), diag::ext_redefinition_of_typedef) 2399 << New->getDeclName(); 2400 notePreviousDefinition(Old, New->getLocation()); 2401 } 2402 2403 /// DeclhasAttr - returns true if decl Declaration already has the target 2404 /// attribute. 2405 static bool DeclHasAttr(const Decl *D, const Attr *A) { 2406 const OwnershipAttr *OA = dyn_cast<OwnershipAttr>(A); 2407 const AnnotateAttr *Ann = dyn_cast<AnnotateAttr>(A); 2408 for (const auto *i : D->attrs()) 2409 if (i->getKind() == A->getKind()) { 2410 if (Ann) { 2411 if (Ann->getAnnotation() == cast<AnnotateAttr>(i)->getAnnotation()) 2412 return true; 2413 continue; 2414 } 2415 // FIXME: Don't hardcode this check 2416 if (OA && isa<OwnershipAttr>(i)) 2417 return OA->getOwnKind() == cast<OwnershipAttr>(i)->getOwnKind(); 2418 return true; 2419 } 2420 2421 return false; 2422 } 2423 2424 static bool isAttributeTargetADefinition(Decl *D) { 2425 if (VarDecl *VD = dyn_cast<VarDecl>(D)) 2426 return VD->isThisDeclarationADefinition(); 2427 if (TagDecl *TD = dyn_cast<TagDecl>(D)) 2428 return TD->isCompleteDefinition() || TD->isBeingDefined(); 2429 return true; 2430 } 2431 2432 /// Merge alignment attributes from \p Old to \p New, taking into account the 2433 /// special semantics of C11's _Alignas specifier and C++11's alignas attribute. 2434 /// 2435 /// \return \c true if any attributes were added to \p New. 2436 static bool mergeAlignedAttrs(Sema &S, NamedDecl *New, Decl *Old) { 2437 // Look for alignas attributes on Old, and pick out whichever attribute 2438 // specifies the strictest alignment requirement. 2439 AlignedAttr *OldAlignasAttr = nullptr; 2440 AlignedAttr *OldStrictestAlignAttr = nullptr; 2441 unsigned OldAlign = 0; 2442 for (auto *I : Old->specific_attrs<AlignedAttr>()) { 2443 // FIXME: We have no way of representing inherited dependent alignments 2444 // in a case like: 2445 // template<int A, int B> struct alignas(A) X; 2446 // template<int A, int B> struct alignas(B) X {}; 2447 // For now, we just ignore any alignas attributes which are not on the 2448 // definition in such a case. 2449 if (I->isAlignmentDependent()) 2450 return false; 2451 2452 if (I->isAlignas()) 2453 OldAlignasAttr = I; 2454 2455 unsigned Align = I->getAlignment(S.Context); 2456 if (Align > OldAlign) { 2457 OldAlign = Align; 2458 OldStrictestAlignAttr = I; 2459 } 2460 } 2461 2462 // Look for alignas attributes on New. 2463 AlignedAttr *NewAlignasAttr = nullptr; 2464 unsigned NewAlign = 0; 2465 for (auto *I : New->specific_attrs<AlignedAttr>()) { 2466 if (I->isAlignmentDependent()) 2467 return false; 2468 2469 if (I->isAlignas()) 2470 NewAlignasAttr = I; 2471 2472 unsigned Align = I->getAlignment(S.Context); 2473 if (Align > NewAlign) 2474 NewAlign = Align; 2475 } 2476 2477 if (OldAlignasAttr && NewAlignasAttr && OldAlign != NewAlign) { 2478 // Both declarations have 'alignas' attributes. We require them to match. 2479 // C++11 [dcl.align]p6 and C11 6.7.5/7 both come close to saying this, but 2480 // fall short. (If two declarations both have alignas, they must both match 2481 // every definition, and so must match each other if there is a definition.) 2482 2483 // If either declaration only contains 'alignas(0)' specifiers, then it 2484 // specifies the natural alignment for the type. 2485 if (OldAlign == 0 || NewAlign == 0) { 2486 QualType Ty; 2487 if (ValueDecl *VD = dyn_cast<ValueDecl>(New)) 2488 Ty = VD->getType(); 2489 else 2490 Ty = S.Context.getTagDeclType(cast<TagDecl>(New)); 2491 2492 if (OldAlign == 0) 2493 OldAlign = S.Context.getTypeAlign(Ty); 2494 if (NewAlign == 0) 2495 NewAlign = S.Context.getTypeAlign(Ty); 2496 } 2497 2498 if (OldAlign != NewAlign) { 2499 S.Diag(NewAlignasAttr->getLocation(), diag::err_alignas_mismatch) 2500 << (unsigned)S.Context.toCharUnitsFromBits(OldAlign).getQuantity() 2501 << (unsigned)S.Context.toCharUnitsFromBits(NewAlign).getQuantity(); 2502 S.Diag(OldAlignasAttr->getLocation(), diag::note_previous_declaration); 2503 } 2504 } 2505 2506 if (OldAlignasAttr && !NewAlignasAttr && isAttributeTargetADefinition(New)) { 2507 // C++11 [dcl.align]p6: 2508 // if any declaration of an entity has an alignment-specifier, 2509 // every defining declaration of that entity shall specify an 2510 // equivalent alignment. 2511 // C11 6.7.5/7: 2512 // If the definition of an object does not have an alignment 2513 // specifier, any other declaration of that object shall also 2514 // have no alignment specifier. 2515 S.Diag(New->getLocation(), diag::err_alignas_missing_on_definition) 2516 << OldAlignasAttr; 2517 S.Diag(OldAlignasAttr->getLocation(), diag::note_alignas_on_declaration) 2518 << OldAlignasAttr; 2519 } 2520 2521 bool AnyAdded = false; 2522 2523 // Ensure we have an attribute representing the strictest alignment. 2524 if (OldAlign > NewAlign) { 2525 AlignedAttr *Clone = OldStrictestAlignAttr->clone(S.Context); 2526 Clone->setInherited(true); 2527 New->addAttr(Clone); 2528 AnyAdded = true; 2529 } 2530 2531 // Ensure we have an alignas attribute if the old declaration had one. 2532 if (OldAlignasAttr && !NewAlignasAttr && 2533 !(AnyAdded && OldStrictestAlignAttr->isAlignas())) { 2534 AlignedAttr *Clone = OldAlignasAttr->clone(S.Context); 2535 Clone->setInherited(true); 2536 New->addAttr(Clone); 2537 AnyAdded = true; 2538 } 2539 2540 return AnyAdded; 2541 } 2542 2543 #define WANT_MERGE_LOGIC 2544 #include "clang/Sema/AttrParsedAttrImpl.inc" 2545 #undef WANT_MERGE_LOGIC 2546 2547 static bool mergeDeclAttribute(Sema &S, NamedDecl *D, 2548 const InheritableAttr *Attr, 2549 Sema::AvailabilityMergeKind AMK) { 2550 // Diagnose any mutual exclusions between the attribute that we want to add 2551 // and attributes that already exist on the declaration. 2552 if (!DiagnoseMutualExclusions(S, D, Attr)) 2553 return false; 2554 2555 // This function copies an attribute Attr from a previous declaration to the 2556 // new declaration D if the new declaration doesn't itself have that attribute 2557 // yet or if that attribute allows duplicates. 2558 // If you're adding a new attribute that requires logic different from 2559 // "use explicit attribute on decl if present, else use attribute from 2560 // previous decl", for example if the attribute needs to be consistent 2561 // between redeclarations, you need to call a custom merge function here. 2562 InheritableAttr *NewAttr = nullptr; 2563 if (const auto *AA = dyn_cast<AvailabilityAttr>(Attr)) 2564 NewAttr = S.mergeAvailabilityAttr( 2565 D, *AA, AA->getPlatform(), AA->isImplicit(), AA->getIntroduced(), 2566 AA->getDeprecated(), AA->getObsoleted(), AA->getUnavailable(), 2567 AA->getMessage(), AA->getStrict(), AA->getReplacement(), AMK, 2568 AA->getPriority()); 2569 else if (const auto *VA = dyn_cast<VisibilityAttr>(Attr)) 2570 NewAttr = S.mergeVisibilityAttr(D, *VA, VA->getVisibility()); 2571 else if (const auto *VA = dyn_cast<TypeVisibilityAttr>(Attr)) 2572 NewAttr = S.mergeTypeVisibilityAttr(D, *VA, VA->getVisibility()); 2573 else if (const auto *ImportA = dyn_cast<DLLImportAttr>(Attr)) 2574 NewAttr = S.mergeDLLImportAttr(D, *ImportA); 2575 else if (const auto *ExportA = dyn_cast<DLLExportAttr>(Attr)) 2576 NewAttr = S.mergeDLLExportAttr(D, *ExportA); 2577 else if (const auto *FA = dyn_cast<FormatAttr>(Attr)) 2578 NewAttr = S.mergeFormatAttr(D, *FA, FA->getType(), FA->getFormatIdx(), 2579 FA->getFirstArg()); 2580 else if (const auto *SA = dyn_cast<SectionAttr>(Attr)) 2581 NewAttr = S.mergeSectionAttr(D, *SA, SA->getName()); 2582 else if (const auto *CSA = dyn_cast<CodeSegAttr>(Attr)) 2583 NewAttr = S.mergeCodeSegAttr(D, *CSA, CSA->getName()); 2584 else if (const auto *IA = dyn_cast<MSInheritanceAttr>(Attr)) 2585 NewAttr = S.mergeMSInheritanceAttr(D, *IA, IA->getBestCase(), 2586 IA->getInheritanceModel()); 2587 else if (const auto *AA = dyn_cast<AlwaysInlineAttr>(Attr)) 2588 NewAttr = S.mergeAlwaysInlineAttr(D, *AA, 2589 &S.Context.Idents.get(AA->getSpelling())); 2590 else if (S.getLangOpts().CUDA && isa<FunctionDecl>(D) && 2591 (isa<CUDAHostAttr>(Attr) || isa<CUDADeviceAttr>(Attr) || 2592 isa<CUDAGlobalAttr>(Attr))) { 2593 // CUDA target attributes are part of function signature for 2594 // overloading purposes and must not be merged. 2595 return false; 2596 } else if (const auto *MA = dyn_cast<MinSizeAttr>(Attr)) 2597 NewAttr = S.mergeMinSizeAttr(D, *MA); 2598 else if (const auto *SNA = dyn_cast<SwiftNameAttr>(Attr)) 2599 NewAttr = S.mergeSwiftNameAttr(D, *SNA, SNA->getName()); 2600 else if (const auto *OA = dyn_cast<OptimizeNoneAttr>(Attr)) 2601 NewAttr = S.mergeOptimizeNoneAttr(D, *OA); 2602 else if (const auto *InternalLinkageA = dyn_cast<InternalLinkageAttr>(Attr)) 2603 NewAttr = S.mergeInternalLinkageAttr(D, *InternalLinkageA); 2604 else if (isa<AlignedAttr>(Attr)) 2605 // AlignedAttrs are handled separately, because we need to handle all 2606 // such attributes on a declaration at the same time. 2607 NewAttr = nullptr; 2608 else if ((isa<DeprecatedAttr>(Attr) || isa<UnavailableAttr>(Attr)) && 2609 (AMK == Sema::AMK_Override || 2610 AMK == Sema::AMK_ProtocolImplementation)) 2611 NewAttr = nullptr; 2612 else if (const auto *UA = dyn_cast<UuidAttr>(Attr)) 2613 NewAttr = S.mergeUuidAttr(D, *UA, UA->getGuid(), UA->getGuidDecl()); 2614 else if (const auto *IMA = dyn_cast<WebAssemblyImportModuleAttr>(Attr)) 2615 NewAttr = S.mergeImportModuleAttr(D, *IMA); 2616 else if (const auto *INA = dyn_cast<WebAssemblyImportNameAttr>(Attr)) 2617 NewAttr = S.mergeImportNameAttr(D, *INA); 2618 else if (const auto *TCBA = dyn_cast<EnforceTCBAttr>(Attr)) 2619 NewAttr = S.mergeEnforceTCBAttr(D, *TCBA); 2620 else if (const auto *TCBLA = dyn_cast<EnforceTCBLeafAttr>(Attr)) 2621 NewAttr = S.mergeEnforceTCBLeafAttr(D, *TCBLA); 2622 else if (Attr->shouldInheritEvenIfAlreadyPresent() || !DeclHasAttr(D, Attr)) 2623 NewAttr = cast<InheritableAttr>(Attr->clone(S.Context)); 2624 2625 if (NewAttr) { 2626 NewAttr->setInherited(true); 2627 D->addAttr(NewAttr); 2628 if (isa<MSInheritanceAttr>(NewAttr)) 2629 S.Consumer.AssignInheritanceModel(cast<CXXRecordDecl>(D)); 2630 return true; 2631 } 2632 2633 return false; 2634 } 2635 2636 static const NamedDecl *getDefinition(const Decl *D) { 2637 if (const TagDecl *TD = dyn_cast<TagDecl>(D)) 2638 return TD->getDefinition(); 2639 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) { 2640 const VarDecl *Def = VD->getDefinition(); 2641 if (Def) 2642 return Def; 2643 return VD->getActingDefinition(); 2644 } 2645 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) { 2646 const FunctionDecl *Def = nullptr; 2647 if (FD->isDefined(Def, true)) 2648 return Def; 2649 } 2650 return nullptr; 2651 } 2652 2653 static bool hasAttribute(const Decl *D, attr::Kind Kind) { 2654 for (const auto *Attribute : D->attrs()) 2655 if (Attribute->getKind() == Kind) 2656 return true; 2657 return false; 2658 } 2659 2660 /// checkNewAttributesAfterDef - If we already have a definition, check that 2661 /// there are no new attributes in this declaration. 2662 static void checkNewAttributesAfterDef(Sema &S, Decl *New, const Decl *Old) { 2663 if (!New->hasAttrs()) 2664 return; 2665 2666 const NamedDecl *Def = getDefinition(Old); 2667 if (!Def || Def == New) 2668 return; 2669 2670 AttrVec &NewAttributes = New->getAttrs(); 2671 for (unsigned I = 0, E = NewAttributes.size(); I != E;) { 2672 const Attr *NewAttribute = NewAttributes[I]; 2673 2674 if (isa<AliasAttr>(NewAttribute) || isa<IFuncAttr>(NewAttribute)) { 2675 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(New)) { 2676 Sema::SkipBodyInfo SkipBody; 2677 S.CheckForFunctionRedefinition(FD, cast<FunctionDecl>(Def), &SkipBody); 2678 2679 // If we're skipping this definition, drop the "alias" attribute. 2680 if (SkipBody.ShouldSkip) { 2681 NewAttributes.erase(NewAttributes.begin() + I); 2682 --E; 2683 continue; 2684 } 2685 } else { 2686 VarDecl *VD = cast<VarDecl>(New); 2687 unsigned Diag = cast<VarDecl>(Def)->isThisDeclarationADefinition() == 2688 VarDecl::TentativeDefinition 2689 ? diag::err_alias_after_tentative 2690 : diag::err_redefinition; 2691 S.Diag(VD->getLocation(), Diag) << VD->getDeclName(); 2692 if (Diag == diag::err_redefinition) 2693 S.notePreviousDefinition(Def, VD->getLocation()); 2694 else 2695 S.Diag(Def->getLocation(), diag::note_previous_definition); 2696 VD->setInvalidDecl(); 2697 } 2698 ++I; 2699 continue; 2700 } 2701 2702 if (const VarDecl *VD = dyn_cast<VarDecl>(Def)) { 2703 // Tentative definitions are only interesting for the alias check above. 2704 if (VD->isThisDeclarationADefinition() != VarDecl::Definition) { 2705 ++I; 2706 continue; 2707 } 2708 } 2709 2710 if (hasAttribute(Def, NewAttribute->getKind())) { 2711 ++I; 2712 continue; // regular attr merging will take care of validating this. 2713 } 2714 2715 if (isa<C11NoReturnAttr>(NewAttribute)) { 2716 // C's _Noreturn is allowed to be added to a function after it is defined. 2717 ++I; 2718 continue; 2719 } else if (isa<UuidAttr>(NewAttribute)) { 2720 // msvc will allow a subsequent definition to add an uuid to a class 2721 ++I; 2722 continue; 2723 } else if (const AlignedAttr *AA = dyn_cast<AlignedAttr>(NewAttribute)) { 2724 if (AA->isAlignas()) { 2725 // C++11 [dcl.align]p6: 2726 // if any declaration of an entity has an alignment-specifier, 2727 // every defining declaration of that entity shall specify an 2728 // equivalent alignment. 2729 // C11 6.7.5/7: 2730 // If the definition of an object does not have an alignment 2731 // specifier, any other declaration of that object shall also 2732 // have no alignment specifier. 2733 S.Diag(Def->getLocation(), diag::err_alignas_missing_on_definition) 2734 << AA; 2735 S.Diag(NewAttribute->getLocation(), diag::note_alignas_on_declaration) 2736 << AA; 2737 NewAttributes.erase(NewAttributes.begin() + I); 2738 --E; 2739 continue; 2740 } 2741 } else if (isa<LoaderUninitializedAttr>(NewAttribute)) { 2742 // If there is a C definition followed by a redeclaration with this 2743 // attribute then there are two different definitions. In C++, prefer the 2744 // standard diagnostics. 2745 if (!S.getLangOpts().CPlusPlus) { 2746 S.Diag(NewAttribute->getLocation(), 2747 diag::err_loader_uninitialized_redeclaration); 2748 S.Diag(Def->getLocation(), diag::note_previous_definition); 2749 NewAttributes.erase(NewAttributes.begin() + I); 2750 --E; 2751 continue; 2752 } 2753 } else if (isa<SelectAnyAttr>(NewAttribute) && 2754 cast<VarDecl>(New)->isInline() && 2755 !cast<VarDecl>(New)->isInlineSpecified()) { 2756 // Don't warn about applying selectany to implicitly inline variables. 2757 // Older compilers and language modes would require the use of selectany 2758 // to make such variables inline, and it would have no effect if we 2759 // honored it. 2760 ++I; 2761 continue; 2762 } else if (isa<OMPDeclareVariantAttr>(NewAttribute)) { 2763 // We allow to add OMP[Begin]DeclareVariantAttr to be added to 2764 // declarations after defintions. 2765 ++I; 2766 continue; 2767 } 2768 2769 S.Diag(NewAttribute->getLocation(), 2770 diag::warn_attribute_precede_definition); 2771 S.Diag(Def->getLocation(), diag::note_previous_definition); 2772 NewAttributes.erase(NewAttributes.begin() + I); 2773 --E; 2774 } 2775 } 2776 2777 static void diagnoseMissingConstinit(Sema &S, const VarDecl *InitDecl, 2778 const ConstInitAttr *CIAttr, 2779 bool AttrBeforeInit) { 2780 SourceLocation InsertLoc = InitDecl->getInnerLocStart(); 2781 2782 // Figure out a good way to write this specifier on the old declaration. 2783 // FIXME: We should just use the spelling of CIAttr, but we don't preserve 2784 // enough of the attribute list spelling information to extract that without 2785 // heroics. 2786 std::string SuitableSpelling; 2787 if (S.getLangOpts().CPlusPlus20) 2788 SuitableSpelling = std::string( 2789 S.PP.getLastMacroWithSpelling(InsertLoc, {tok::kw_constinit})); 2790 if (SuitableSpelling.empty() && S.getLangOpts().CPlusPlus11) 2791 SuitableSpelling = std::string(S.PP.getLastMacroWithSpelling( 2792 InsertLoc, {tok::l_square, tok::l_square, 2793 S.PP.getIdentifierInfo("clang"), tok::coloncolon, 2794 S.PP.getIdentifierInfo("require_constant_initialization"), 2795 tok::r_square, tok::r_square})); 2796 if (SuitableSpelling.empty()) 2797 SuitableSpelling = std::string(S.PP.getLastMacroWithSpelling( 2798 InsertLoc, {tok::kw___attribute, tok::l_paren, tok::r_paren, 2799 S.PP.getIdentifierInfo("require_constant_initialization"), 2800 tok::r_paren, tok::r_paren})); 2801 if (SuitableSpelling.empty() && S.getLangOpts().CPlusPlus20) 2802 SuitableSpelling = "constinit"; 2803 if (SuitableSpelling.empty() && S.getLangOpts().CPlusPlus11) 2804 SuitableSpelling = "[[clang::require_constant_initialization]]"; 2805 if (SuitableSpelling.empty()) 2806 SuitableSpelling = "__attribute__((require_constant_initialization))"; 2807 SuitableSpelling += " "; 2808 2809 if (AttrBeforeInit) { 2810 // extern constinit int a; 2811 // int a = 0; // error (missing 'constinit'), accepted as extension 2812 assert(CIAttr->isConstinit() && "should not diagnose this for attribute"); 2813 S.Diag(InitDecl->getLocation(), diag::ext_constinit_missing) 2814 << InitDecl << FixItHint::CreateInsertion(InsertLoc, SuitableSpelling); 2815 S.Diag(CIAttr->getLocation(), diag::note_constinit_specified_here); 2816 } else { 2817 // int a = 0; 2818 // constinit extern int a; // error (missing 'constinit') 2819 S.Diag(CIAttr->getLocation(), 2820 CIAttr->isConstinit() ? diag::err_constinit_added_too_late 2821 : diag::warn_require_const_init_added_too_late) 2822 << FixItHint::CreateRemoval(SourceRange(CIAttr->getLocation())); 2823 S.Diag(InitDecl->getLocation(), diag::note_constinit_missing_here) 2824 << CIAttr->isConstinit() 2825 << FixItHint::CreateInsertion(InsertLoc, SuitableSpelling); 2826 } 2827 } 2828 2829 /// mergeDeclAttributes - Copy attributes from the Old decl to the New one. 2830 void Sema::mergeDeclAttributes(NamedDecl *New, Decl *Old, 2831 AvailabilityMergeKind AMK) { 2832 if (UsedAttr *OldAttr = Old->getMostRecentDecl()->getAttr<UsedAttr>()) { 2833 UsedAttr *NewAttr = OldAttr->clone(Context); 2834 NewAttr->setInherited(true); 2835 New->addAttr(NewAttr); 2836 } 2837 if (RetainAttr *OldAttr = Old->getMostRecentDecl()->getAttr<RetainAttr>()) { 2838 RetainAttr *NewAttr = OldAttr->clone(Context); 2839 NewAttr->setInherited(true); 2840 New->addAttr(NewAttr); 2841 } 2842 2843 if (!Old->hasAttrs() && !New->hasAttrs()) 2844 return; 2845 2846 // [dcl.constinit]p1: 2847 // If the [constinit] specifier is applied to any declaration of a 2848 // variable, it shall be applied to the initializing declaration. 2849 const auto *OldConstInit = Old->getAttr<ConstInitAttr>(); 2850 const auto *NewConstInit = New->getAttr<ConstInitAttr>(); 2851 if (bool(OldConstInit) != bool(NewConstInit)) { 2852 const auto *OldVD = cast<VarDecl>(Old); 2853 auto *NewVD = cast<VarDecl>(New); 2854 2855 // Find the initializing declaration. Note that we might not have linked 2856 // the new declaration into the redeclaration chain yet. 2857 const VarDecl *InitDecl = OldVD->getInitializingDeclaration(); 2858 if (!InitDecl && 2859 (NewVD->hasInit() || NewVD->isThisDeclarationADefinition())) 2860 InitDecl = NewVD; 2861 2862 if (InitDecl == NewVD) { 2863 // This is the initializing declaration. If it would inherit 'constinit', 2864 // that's ill-formed. (Note that we do not apply this to the attribute 2865 // form). 2866 if (OldConstInit && OldConstInit->isConstinit()) 2867 diagnoseMissingConstinit(*this, NewVD, OldConstInit, 2868 /*AttrBeforeInit=*/true); 2869 } else if (NewConstInit) { 2870 // This is the first time we've been told that this declaration should 2871 // have a constant initializer. If we already saw the initializing 2872 // declaration, this is too late. 2873 if (InitDecl && InitDecl != NewVD) { 2874 diagnoseMissingConstinit(*this, InitDecl, NewConstInit, 2875 /*AttrBeforeInit=*/false); 2876 NewVD->dropAttr<ConstInitAttr>(); 2877 } 2878 } 2879 } 2880 2881 // Attributes declared post-definition are currently ignored. 2882 checkNewAttributesAfterDef(*this, New, Old); 2883 2884 if (AsmLabelAttr *NewA = New->getAttr<AsmLabelAttr>()) { 2885 if (AsmLabelAttr *OldA = Old->getAttr<AsmLabelAttr>()) { 2886 if (!OldA->isEquivalent(NewA)) { 2887 // This redeclaration changes __asm__ label. 2888 Diag(New->getLocation(), diag::err_different_asm_label); 2889 Diag(OldA->getLocation(), diag::note_previous_declaration); 2890 } 2891 } else if (Old->isUsed()) { 2892 // This redeclaration adds an __asm__ label to a declaration that has 2893 // already been ODR-used. 2894 Diag(New->getLocation(), diag::err_late_asm_label_name) 2895 << isa<FunctionDecl>(Old) << New->getAttr<AsmLabelAttr>()->getRange(); 2896 } 2897 } 2898 2899 // Re-declaration cannot add abi_tag's. 2900 if (const auto *NewAbiTagAttr = New->getAttr<AbiTagAttr>()) { 2901 if (const auto *OldAbiTagAttr = Old->getAttr<AbiTagAttr>()) { 2902 for (const auto &NewTag : NewAbiTagAttr->tags()) { 2903 if (std::find(OldAbiTagAttr->tags_begin(), OldAbiTagAttr->tags_end(), 2904 NewTag) == OldAbiTagAttr->tags_end()) { 2905 Diag(NewAbiTagAttr->getLocation(), 2906 diag::err_new_abi_tag_on_redeclaration) 2907 << NewTag; 2908 Diag(OldAbiTagAttr->getLocation(), diag::note_previous_declaration); 2909 } 2910 } 2911 } else { 2912 Diag(NewAbiTagAttr->getLocation(), diag::err_abi_tag_on_redeclaration); 2913 Diag(Old->getLocation(), diag::note_previous_declaration); 2914 } 2915 } 2916 2917 // This redeclaration adds a section attribute. 2918 if (New->hasAttr<SectionAttr>() && !Old->hasAttr<SectionAttr>()) { 2919 if (auto *VD = dyn_cast<VarDecl>(New)) { 2920 if (VD->isThisDeclarationADefinition() == VarDecl::DeclarationOnly) { 2921 Diag(New->getLocation(), diag::warn_attribute_section_on_redeclaration); 2922 Diag(Old->getLocation(), diag::note_previous_declaration); 2923 } 2924 } 2925 } 2926 2927 // Redeclaration adds code-seg attribute. 2928 const auto *NewCSA = New->getAttr<CodeSegAttr>(); 2929 if (NewCSA && !Old->hasAttr<CodeSegAttr>() && 2930 !NewCSA->isImplicit() && isa<CXXMethodDecl>(New)) { 2931 Diag(New->getLocation(), diag::warn_mismatched_section) 2932 << 0 /*codeseg*/; 2933 Diag(Old->getLocation(), diag::note_previous_declaration); 2934 } 2935 2936 if (!Old->hasAttrs()) 2937 return; 2938 2939 bool foundAny = New->hasAttrs(); 2940 2941 // Ensure that any moving of objects within the allocated map is done before 2942 // we process them. 2943 if (!foundAny) New->setAttrs(AttrVec()); 2944 2945 for (auto *I : Old->specific_attrs<InheritableAttr>()) { 2946 // Ignore deprecated/unavailable/availability attributes if requested. 2947 AvailabilityMergeKind LocalAMK = AMK_None; 2948 if (isa<DeprecatedAttr>(I) || 2949 isa<UnavailableAttr>(I) || 2950 isa<AvailabilityAttr>(I)) { 2951 switch (AMK) { 2952 case AMK_None: 2953 continue; 2954 2955 case AMK_Redeclaration: 2956 case AMK_Override: 2957 case AMK_ProtocolImplementation: 2958 LocalAMK = AMK; 2959 break; 2960 } 2961 } 2962 2963 // Already handled. 2964 if (isa<UsedAttr>(I) || isa<RetainAttr>(I)) 2965 continue; 2966 2967 if (mergeDeclAttribute(*this, New, I, LocalAMK)) 2968 foundAny = true; 2969 } 2970 2971 if (mergeAlignedAttrs(*this, New, Old)) 2972 foundAny = true; 2973 2974 if (!foundAny) New->dropAttrs(); 2975 } 2976 2977 /// mergeParamDeclAttributes - Copy attributes from the old parameter 2978 /// to the new one. 2979 static void mergeParamDeclAttributes(ParmVarDecl *newDecl, 2980 const ParmVarDecl *oldDecl, 2981 Sema &S) { 2982 // C++11 [dcl.attr.depend]p2: 2983 // The first declaration of a function shall specify the 2984 // carries_dependency attribute for its declarator-id if any declaration 2985 // of the function specifies the carries_dependency attribute. 2986 const CarriesDependencyAttr *CDA = newDecl->getAttr<CarriesDependencyAttr>(); 2987 if (CDA && !oldDecl->hasAttr<CarriesDependencyAttr>()) { 2988 S.Diag(CDA->getLocation(), 2989 diag::err_carries_dependency_missing_on_first_decl) << 1/*Param*/; 2990 // Find the first declaration of the parameter. 2991 // FIXME: Should we build redeclaration chains for function parameters? 2992 const FunctionDecl *FirstFD = 2993 cast<FunctionDecl>(oldDecl->getDeclContext())->getFirstDecl(); 2994 const ParmVarDecl *FirstVD = 2995 FirstFD->getParamDecl(oldDecl->getFunctionScopeIndex()); 2996 S.Diag(FirstVD->getLocation(), 2997 diag::note_carries_dependency_missing_first_decl) << 1/*Param*/; 2998 } 2999 3000 if (!oldDecl->hasAttrs()) 3001 return; 3002 3003 bool foundAny = newDecl->hasAttrs(); 3004 3005 // Ensure that any moving of objects within the allocated map is 3006 // done before we process them. 3007 if (!foundAny) newDecl->setAttrs(AttrVec()); 3008 3009 for (const auto *I : oldDecl->specific_attrs<InheritableParamAttr>()) { 3010 if (!DeclHasAttr(newDecl, I)) { 3011 InheritableAttr *newAttr = 3012 cast<InheritableParamAttr>(I->clone(S.Context)); 3013 newAttr->setInherited(true); 3014 newDecl->addAttr(newAttr); 3015 foundAny = true; 3016 } 3017 } 3018 3019 if (!foundAny) newDecl->dropAttrs(); 3020 } 3021 3022 static void mergeParamDeclTypes(ParmVarDecl *NewParam, 3023 const ParmVarDecl *OldParam, 3024 Sema &S) { 3025 if (auto Oldnullability = OldParam->getType()->getNullability(S.Context)) { 3026 if (auto Newnullability = NewParam->getType()->getNullability(S.Context)) { 3027 if (*Oldnullability != *Newnullability) { 3028 S.Diag(NewParam->getLocation(), diag::warn_mismatched_nullability_attr) 3029 << DiagNullabilityKind( 3030 *Newnullability, 3031 ((NewParam->getObjCDeclQualifier() & Decl::OBJC_TQ_CSNullability) 3032 != 0)) 3033 << DiagNullabilityKind( 3034 *Oldnullability, 3035 ((OldParam->getObjCDeclQualifier() & Decl::OBJC_TQ_CSNullability) 3036 != 0)); 3037 S.Diag(OldParam->getLocation(), diag::note_previous_declaration); 3038 } 3039 } else { 3040 QualType NewT = NewParam->getType(); 3041 NewT = S.Context.getAttributedType( 3042 AttributedType::getNullabilityAttrKind(*Oldnullability), 3043 NewT, NewT); 3044 NewParam->setType(NewT); 3045 } 3046 } 3047 } 3048 3049 namespace { 3050 3051 /// Used in MergeFunctionDecl to keep track of function parameters in 3052 /// C. 3053 struct GNUCompatibleParamWarning { 3054 ParmVarDecl *OldParm; 3055 ParmVarDecl *NewParm; 3056 QualType PromotedType; 3057 }; 3058 3059 } // end anonymous namespace 3060 3061 // Determine whether the previous declaration was a definition, implicit 3062 // declaration, or a declaration. 3063 template <typename T> 3064 static std::pair<diag::kind, SourceLocation> 3065 getNoteDiagForInvalidRedeclaration(const T *Old, const T *New) { 3066 diag::kind PrevDiag; 3067 SourceLocation OldLocation = Old->getLocation(); 3068 if (Old->isThisDeclarationADefinition()) 3069 PrevDiag = diag::note_previous_definition; 3070 else if (Old->isImplicit()) { 3071 PrevDiag = diag::note_previous_implicit_declaration; 3072 if (OldLocation.isInvalid()) 3073 OldLocation = New->getLocation(); 3074 } else 3075 PrevDiag = diag::note_previous_declaration; 3076 return std::make_pair(PrevDiag, OldLocation); 3077 } 3078 3079 /// canRedefineFunction - checks if a function can be redefined. Currently, 3080 /// only extern inline functions can be redefined, and even then only in 3081 /// GNU89 mode. 3082 static bool canRedefineFunction(const FunctionDecl *FD, 3083 const LangOptions& LangOpts) { 3084 return ((FD->hasAttr<GNUInlineAttr>() || LangOpts.GNUInline) && 3085 !LangOpts.CPlusPlus && 3086 FD->isInlineSpecified() && 3087 FD->getStorageClass() == SC_Extern); 3088 } 3089 3090 const AttributedType *Sema::getCallingConvAttributedType(QualType T) const { 3091 const AttributedType *AT = T->getAs<AttributedType>(); 3092 while (AT && !AT->isCallingConv()) 3093 AT = AT->getModifiedType()->getAs<AttributedType>(); 3094 return AT; 3095 } 3096 3097 template <typename T> 3098 static bool haveIncompatibleLanguageLinkages(const T *Old, const T *New) { 3099 const DeclContext *DC = Old->getDeclContext(); 3100 if (DC->isRecord()) 3101 return false; 3102 3103 LanguageLinkage OldLinkage = Old->getLanguageLinkage(); 3104 if (OldLinkage == CXXLanguageLinkage && New->isInExternCContext()) 3105 return true; 3106 if (OldLinkage == CLanguageLinkage && New->isInExternCXXContext()) 3107 return true; 3108 return false; 3109 } 3110 3111 template<typename T> static bool isExternC(T *D) { return D->isExternC(); } 3112 static bool isExternC(VarTemplateDecl *) { return false; } 3113 3114 /// Check whether a redeclaration of an entity introduced by a 3115 /// using-declaration is valid, given that we know it's not an overload 3116 /// (nor a hidden tag declaration). 3117 template<typename ExpectedDecl> 3118 static bool checkUsingShadowRedecl(Sema &S, UsingShadowDecl *OldS, 3119 ExpectedDecl *New) { 3120 // C++11 [basic.scope.declarative]p4: 3121 // Given a set of declarations in a single declarative region, each of 3122 // which specifies the same unqualified name, 3123 // -- they shall all refer to the same entity, or all refer to functions 3124 // and function templates; or 3125 // -- exactly one declaration shall declare a class name or enumeration 3126 // name that is not a typedef name and the other declarations shall all 3127 // refer to the same variable or enumerator, or all refer to functions 3128 // and function templates; in this case the class name or enumeration 3129 // name is hidden (3.3.10). 3130 3131 // C++11 [namespace.udecl]p14: 3132 // If a function declaration in namespace scope or block scope has the 3133 // same name and the same parameter-type-list as a function introduced 3134 // by a using-declaration, and the declarations do not declare the same 3135 // function, the program is ill-formed. 3136 3137 auto *Old = dyn_cast<ExpectedDecl>(OldS->getTargetDecl()); 3138 if (Old && 3139 !Old->getDeclContext()->getRedeclContext()->Equals( 3140 New->getDeclContext()->getRedeclContext()) && 3141 !(isExternC(Old) && isExternC(New))) 3142 Old = nullptr; 3143 3144 if (!Old) { 3145 S.Diag(New->getLocation(), diag::err_using_decl_conflict_reverse); 3146 S.Diag(OldS->getTargetDecl()->getLocation(), diag::note_using_decl_target); 3147 S.Diag(OldS->getUsingDecl()->getLocation(), diag::note_using_decl) << 0; 3148 return true; 3149 } 3150 return false; 3151 } 3152 3153 static bool hasIdenticalPassObjectSizeAttrs(const FunctionDecl *A, 3154 const FunctionDecl *B) { 3155 assert(A->getNumParams() == B->getNumParams()); 3156 3157 auto AttrEq = [](const ParmVarDecl *A, const ParmVarDecl *B) { 3158 const auto *AttrA = A->getAttr<PassObjectSizeAttr>(); 3159 const auto *AttrB = B->getAttr<PassObjectSizeAttr>(); 3160 if (AttrA == AttrB) 3161 return true; 3162 return AttrA && AttrB && AttrA->getType() == AttrB->getType() && 3163 AttrA->isDynamic() == AttrB->isDynamic(); 3164 }; 3165 3166 return std::equal(A->param_begin(), A->param_end(), B->param_begin(), AttrEq); 3167 } 3168 3169 /// If necessary, adjust the semantic declaration context for a qualified 3170 /// declaration to name the correct inline namespace within the qualifier. 3171 static void adjustDeclContextForDeclaratorDecl(DeclaratorDecl *NewD, 3172 DeclaratorDecl *OldD) { 3173 // The only case where we need to update the DeclContext is when 3174 // redeclaration lookup for a qualified name finds a declaration 3175 // in an inline namespace within the context named by the qualifier: 3176 // 3177 // inline namespace N { int f(); } 3178 // int ::f(); // Sema DC needs adjusting from :: to N::. 3179 // 3180 // For unqualified declarations, the semantic context *can* change 3181 // along the redeclaration chain (for local extern declarations, 3182 // extern "C" declarations, and friend declarations in particular). 3183 if (!NewD->getQualifier()) 3184 return; 3185 3186 // NewD is probably already in the right context. 3187 auto *NamedDC = NewD->getDeclContext()->getRedeclContext(); 3188 auto *SemaDC = OldD->getDeclContext()->getRedeclContext(); 3189 if (NamedDC->Equals(SemaDC)) 3190 return; 3191 3192 assert((NamedDC->InEnclosingNamespaceSetOf(SemaDC) || 3193 NewD->isInvalidDecl() || OldD->isInvalidDecl()) && 3194 "unexpected context for redeclaration"); 3195 3196 auto *LexDC = NewD->getLexicalDeclContext(); 3197 auto FixSemaDC = [=](NamedDecl *D) { 3198 if (!D) 3199 return; 3200 D->setDeclContext(SemaDC); 3201 D->setLexicalDeclContext(LexDC); 3202 }; 3203 3204 FixSemaDC(NewD); 3205 if (auto *FD = dyn_cast<FunctionDecl>(NewD)) 3206 FixSemaDC(FD->getDescribedFunctionTemplate()); 3207 else if (auto *VD = dyn_cast<VarDecl>(NewD)) 3208 FixSemaDC(VD->getDescribedVarTemplate()); 3209 } 3210 3211 /// MergeFunctionDecl - We just parsed a function 'New' from 3212 /// declarator D which has the same name and scope as a previous 3213 /// declaration 'Old'. Figure out how to resolve this situation, 3214 /// merging decls or emitting diagnostics as appropriate. 3215 /// 3216 /// In C++, New and Old must be declarations that are not 3217 /// overloaded. Use IsOverload to determine whether New and Old are 3218 /// overloaded, and to select the Old declaration that New should be 3219 /// merged with. 3220 /// 3221 /// Returns true if there was an error, false otherwise. 3222 bool Sema::MergeFunctionDecl(FunctionDecl *New, NamedDecl *&OldD, 3223 Scope *S, bool MergeTypeWithOld) { 3224 // Verify the old decl was also a function. 3225 FunctionDecl *Old = OldD->getAsFunction(); 3226 if (!Old) { 3227 if (UsingShadowDecl *Shadow = dyn_cast<UsingShadowDecl>(OldD)) { 3228 if (New->getFriendObjectKind()) { 3229 Diag(New->getLocation(), diag::err_using_decl_friend); 3230 Diag(Shadow->getTargetDecl()->getLocation(), 3231 diag::note_using_decl_target); 3232 Diag(Shadow->getUsingDecl()->getLocation(), 3233 diag::note_using_decl) << 0; 3234 return true; 3235 } 3236 3237 // Check whether the two declarations might declare the same function. 3238 if (checkUsingShadowRedecl<FunctionDecl>(*this, Shadow, New)) 3239 return true; 3240 OldD = Old = cast<FunctionDecl>(Shadow->getTargetDecl()); 3241 } else { 3242 Diag(New->getLocation(), diag::err_redefinition_different_kind) 3243 << New->getDeclName(); 3244 notePreviousDefinition(OldD, New->getLocation()); 3245 return true; 3246 } 3247 } 3248 3249 // If the old declaration was found in an inline namespace and the new 3250 // declaration was qualified, update the DeclContext to match. 3251 adjustDeclContextForDeclaratorDecl(New, Old); 3252 3253 // If the old declaration is invalid, just give up here. 3254 if (Old->isInvalidDecl()) 3255 return true; 3256 3257 // Disallow redeclaration of some builtins. 3258 if (!getASTContext().canBuiltinBeRedeclared(Old)) { 3259 Diag(New->getLocation(), diag::err_builtin_redeclare) << Old->getDeclName(); 3260 Diag(Old->getLocation(), diag::note_previous_builtin_declaration) 3261 << Old << Old->getType(); 3262 return true; 3263 } 3264 3265 diag::kind PrevDiag; 3266 SourceLocation OldLocation; 3267 std::tie(PrevDiag, OldLocation) = 3268 getNoteDiagForInvalidRedeclaration(Old, New); 3269 3270 // Don't complain about this if we're in GNU89 mode and the old function 3271 // is an extern inline function. 3272 // Don't complain about specializations. They are not supposed to have 3273 // storage classes. 3274 if (!isa<CXXMethodDecl>(New) && !isa<CXXMethodDecl>(Old) && 3275 New->getStorageClass() == SC_Static && 3276 Old->hasExternalFormalLinkage() && 3277 !New->getTemplateSpecializationInfo() && 3278 !canRedefineFunction(Old, getLangOpts())) { 3279 if (getLangOpts().MicrosoftExt) { 3280 Diag(New->getLocation(), diag::ext_static_non_static) << New; 3281 Diag(OldLocation, PrevDiag); 3282 } else { 3283 Diag(New->getLocation(), diag::err_static_non_static) << New; 3284 Diag(OldLocation, PrevDiag); 3285 return true; 3286 } 3287 } 3288 3289 if (New->hasAttr<InternalLinkageAttr>() && 3290 !Old->hasAttr<InternalLinkageAttr>()) { 3291 Diag(New->getLocation(), diag::err_internal_linkage_redeclaration) 3292 << New->getDeclName(); 3293 notePreviousDefinition(Old, New->getLocation()); 3294 New->dropAttr<InternalLinkageAttr>(); 3295 } 3296 3297 if (CheckRedeclarationModuleOwnership(New, Old)) 3298 return true; 3299 3300 if (!getLangOpts().CPlusPlus) { 3301 bool OldOvl = Old->hasAttr<OverloadableAttr>(); 3302 if (OldOvl != New->hasAttr<OverloadableAttr>() && !Old->isImplicit()) { 3303 Diag(New->getLocation(), diag::err_attribute_overloadable_mismatch) 3304 << New << OldOvl; 3305 3306 // Try our best to find a decl that actually has the overloadable 3307 // attribute for the note. In most cases (e.g. programs with only one 3308 // broken declaration/definition), this won't matter. 3309 // 3310 // FIXME: We could do this if we juggled some extra state in 3311 // OverloadableAttr, rather than just removing it. 3312 const Decl *DiagOld = Old; 3313 if (OldOvl) { 3314 auto OldIter = llvm::find_if(Old->redecls(), [](const Decl *D) { 3315 const auto *A = D->getAttr<OverloadableAttr>(); 3316 return A && !A->isImplicit(); 3317 }); 3318 // If we've implicitly added *all* of the overloadable attrs to this 3319 // chain, emitting a "previous redecl" note is pointless. 3320 DiagOld = OldIter == Old->redecls_end() ? nullptr : *OldIter; 3321 } 3322 3323 if (DiagOld) 3324 Diag(DiagOld->getLocation(), 3325 diag::note_attribute_overloadable_prev_overload) 3326 << OldOvl; 3327 3328 if (OldOvl) 3329 New->addAttr(OverloadableAttr::CreateImplicit(Context)); 3330 else 3331 New->dropAttr<OverloadableAttr>(); 3332 } 3333 } 3334 3335 // If a function is first declared with a calling convention, but is later 3336 // declared or defined without one, all following decls assume the calling 3337 // convention of the first. 3338 // 3339 // It's OK if a function is first declared without a calling convention, 3340 // but is later declared or defined with the default calling convention. 3341 // 3342 // To test if either decl has an explicit calling convention, we look for 3343 // AttributedType sugar nodes on the type as written. If they are missing or 3344 // were canonicalized away, we assume the calling convention was implicit. 3345 // 3346 // Note also that we DO NOT return at this point, because we still have 3347 // other tests to run. 3348 QualType OldQType = Context.getCanonicalType(Old->getType()); 3349 QualType NewQType = Context.getCanonicalType(New->getType()); 3350 const FunctionType *OldType = cast<FunctionType>(OldQType); 3351 const FunctionType *NewType = cast<FunctionType>(NewQType); 3352 FunctionType::ExtInfo OldTypeInfo = OldType->getExtInfo(); 3353 FunctionType::ExtInfo NewTypeInfo = NewType->getExtInfo(); 3354 bool RequiresAdjustment = false; 3355 3356 if (OldTypeInfo.getCC() != NewTypeInfo.getCC()) { 3357 FunctionDecl *First = Old->getFirstDecl(); 3358 const FunctionType *FT = 3359 First->getType().getCanonicalType()->castAs<FunctionType>(); 3360 FunctionType::ExtInfo FI = FT->getExtInfo(); 3361 bool NewCCExplicit = getCallingConvAttributedType(New->getType()); 3362 if (!NewCCExplicit) { 3363 // Inherit the CC from the previous declaration if it was specified 3364 // there but not here. 3365 NewTypeInfo = NewTypeInfo.withCallingConv(OldTypeInfo.getCC()); 3366 RequiresAdjustment = true; 3367 } else if (Old->getBuiltinID()) { 3368 // Builtin attribute isn't propagated to the new one yet at this point, 3369 // so we check if the old one is a builtin. 3370 3371 // Calling Conventions on a Builtin aren't really useful and setting a 3372 // default calling convention and cdecl'ing some builtin redeclarations is 3373 // common, so warn and ignore the calling convention on the redeclaration. 3374 Diag(New->getLocation(), diag::warn_cconv_unsupported) 3375 << FunctionType::getNameForCallConv(NewTypeInfo.getCC()) 3376 << (int)CallingConventionIgnoredReason::BuiltinFunction; 3377 NewTypeInfo = NewTypeInfo.withCallingConv(OldTypeInfo.getCC()); 3378 RequiresAdjustment = true; 3379 } else { 3380 // Calling conventions aren't compatible, so complain. 3381 bool FirstCCExplicit = getCallingConvAttributedType(First->getType()); 3382 Diag(New->getLocation(), diag::err_cconv_change) 3383 << FunctionType::getNameForCallConv(NewTypeInfo.getCC()) 3384 << !FirstCCExplicit 3385 << (!FirstCCExplicit ? "" : 3386 FunctionType::getNameForCallConv(FI.getCC())); 3387 3388 // Put the note on the first decl, since it is the one that matters. 3389 Diag(First->getLocation(), diag::note_previous_declaration); 3390 return true; 3391 } 3392 } 3393 3394 // FIXME: diagnose the other way around? 3395 if (OldTypeInfo.getNoReturn() && !NewTypeInfo.getNoReturn()) { 3396 NewTypeInfo = NewTypeInfo.withNoReturn(true); 3397 RequiresAdjustment = true; 3398 } 3399 3400 // Merge regparm attribute. 3401 if (OldTypeInfo.getHasRegParm() != NewTypeInfo.getHasRegParm() || 3402 OldTypeInfo.getRegParm() != NewTypeInfo.getRegParm()) { 3403 if (NewTypeInfo.getHasRegParm()) { 3404 Diag(New->getLocation(), diag::err_regparm_mismatch) 3405 << NewType->getRegParmType() 3406 << OldType->getRegParmType(); 3407 Diag(OldLocation, diag::note_previous_declaration); 3408 return true; 3409 } 3410 3411 NewTypeInfo = NewTypeInfo.withRegParm(OldTypeInfo.getRegParm()); 3412 RequiresAdjustment = true; 3413 } 3414 3415 // Merge ns_returns_retained attribute. 3416 if (OldTypeInfo.getProducesResult() != NewTypeInfo.getProducesResult()) { 3417 if (NewTypeInfo.getProducesResult()) { 3418 Diag(New->getLocation(), diag::err_function_attribute_mismatch) 3419 << "'ns_returns_retained'"; 3420 Diag(OldLocation, diag::note_previous_declaration); 3421 return true; 3422 } 3423 3424 NewTypeInfo = NewTypeInfo.withProducesResult(true); 3425 RequiresAdjustment = true; 3426 } 3427 3428 if (OldTypeInfo.getNoCallerSavedRegs() != 3429 NewTypeInfo.getNoCallerSavedRegs()) { 3430 if (NewTypeInfo.getNoCallerSavedRegs()) { 3431 AnyX86NoCallerSavedRegistersAttr *Attr = 3432 New->getAttr<AnyX86NoCallerSavedRegistersAttr>(); 3433 Diag(New->getLocation(), diag::err_function_attribute_mismatch) << Attr; 3434 Diag(OldLocation, diag::note_previous_declaration); 3435 return true; 3436 } 3437 3438 NewTypeInfo = NewTypeInfo.withNoCallerSavedRegs(true); 3439 RequiresAdjustment = true; 3440 } 3441 3442 if (RequiresAdjustment) { 3443 const FunctionType *AdjustedType = New->getType()->getAs<FunctionType>(); 3444 AdjustedType = Context.adjustFunctionType(AdjustedType, NewTypeInfo); 3445 New->setType(QualType(AdjustedType, 0)); 3446 NewQType = Context.getCanonicalType(New->getType()); 3447 } 3448 3449 // If this redeclaration makes the function inline, we may need to add it to 3450 // UndefinedButUsed. 3451 if (!Old->isInlined() && New->isInlined() && 3452 !New->hasAttr<GNUInlineAttr>() && 3453 !getLangOpts().GNUInline && 3454 Old->isUsed(false) && 3455 !Old->isDefined() && !New->isThisDeclarationADefinition()) 3456 UndefinedButUsed.insert(std::make_pair(Old->getCanonicalDecl(), 3457 SourceLocation())); 3458 3459 // If this redeclaration makes it newly gnu_inline, we don't want to warn 3460 // about it. 3461 if (New->hasAttr<GNUInlineAttr>() && 3462 Old->isInlined() && !Old->hasAttr<GNUInlineAttr>()) { 3463 UndefinedButUsed.erase(Old->getCanonicalDecl()); 3464 } 3465 3466 // If pass_object_size params don't match up perfectly, this isn't a valid 3467 // redeclaration. 3468 if (Old->getNumParams() > 0 && Old->getNumParams() == New->getNumParams() && 3469 !hasIdenticalPassObjectSizeAttrs(Old, New)) { 3470 Diag(New->getLocation(), diag::err_different_pass_object_size_params) 3471 << New->getDeclName(); 3472 Diag(OldLocation, PrevDiag) << Old << Old->getType(); 3473 return true; 3474 } 3475 3476 if (getLangOpts().CPlusPlus) { 3477 // C++1z [over.load]p2 3478 // Certain function declarations cannot be overloaded: 3479 // -- Function declarations that differ only in the return type, 3480 // the exception specification, or both cannot be overloaded. 3481 3482 // Check the exception specifications match. This may recompute the type of 3483 // both Old and New if it resolved exception specifications, so grab the 3484 // types again after this. Because this updates the type, we do this before 3485 // any of the other checks below, which may update the "de facto" NewQType 3486 // but do not necessarily update the type of New. 3487 if (CheckEquivalentExceptionSpec(Old, New)) 3488 return true; 3489 OldQType = Context.getCanonicalType(Old->getType()); 3490 NewQType = Context.getCanonicalType(New->getType()); 3491 3492 // Go back to the type source info to compare the declared return types, 3493 // per C++1y [dcl.type.auto]p13: 3494 // Redeclarations or specializations of a function or function template 3495 // with a declared return type that uses a placeholder type shall also 3496 // use that placeholder, not a deduced type. 3497 QualType OldDeclaredReturnType = Old->getDeclaredReturnType(); 3498 QualType NewDeclaredReturnType = New->getDeclaredReturnType(); 3499 if (!Context.hasSameType(OldDeclaredReturnType, NewDeclaredReturnType) && 3500 canFullyTypeCheckRedeclaration(New, Old, NewDeclaredReturnType, 3501 OldDeclaredReturnType)) { 3502 QualType ResQT; 3503 if (NewDeclaredReturnType->isObjCObjectPointerType() && 3504 OldDeclaredReturnType->isObjCObjectPointerType()) 3505 // FIXME: This does the wrong thing for a deduced return type. 3506 ResQT = Context.mergeObjCGCQualifiers(NewQType, OldQType); 3507 if (ResQT.isNull()) { 3508 if (New->isCXXClassMember() && New->isOutOfLine()) 3509 Diag(New->getLocation(), diag::err_member_def_does_not_match_ret_type) 3510 << New << New->getReturnTypeSourceRange(); 3511 else 3512 Diag(New->getLocation(), diag::err_ovl_diff_return_type) 3513 << New->getReturnTypeSourceRange(); 3514 Diag(OldLocation, PrevDiag) << Old << Old->getType() 3515 << Old->getReturnTypeSourceRange(); 3516 return true; 3517 } 3518 else 3519 NewQType = ResQT; 3520 } 3521 3522 QualType OldReturnType = OldType->getReturnType(); 3523 QualType NewReturnType = cast<FunctionType>(NewQType)->getReturnType(); 3524 if (OldReturnType != NewReturnType) { 3525 // If this function has a deduced return type and has already been 3526 // defined, copy the deduced value from the old declaration. 3527 AutoType *OldAT = Old->getReturnType()->getContainedAutoType(); 3528 if (OldAT && OldAT->isDeduced()) { 3529 New->setType( 3530 SubstAutoType(New->getType(), 3531 OldAT->isDependentType() ? Context.DependentTy 3532 : OldAT->getDeducedType())); 3533 NewQType = Context.getCanonicalType( 3534 SubstAutoType(NewQType, 3535 OldAT->isDependentType() ? Context.DependentTy 3536 : OldAT->getDeducedType())); 3537 } 3538 } 3539 3540 const CXXMethodDecl *OldMethod = dyn_cast<CXXMethodDecl>(Old); 3541 CXXMethodDecl *NewMethod = dyn_cast<CXXMethodDecl>(New); 3542 if (OldMethod && NewMethod) { 3543 // Preserve triviality. 3544 NewMethod->setTrivial(OldMethod->isTrivial()); 3545 3546 // MSVC allows explicit template specialization at class scope: 3547 // 2 CXXMethodDecls referring to the same function will be injected. 3548 // We don't want a redeclaration error. 3549 bool IsClassScopeExplicitSpecialization = 3550 OldMethod->isFunctionTemplateSpecialization() && 3551 NewMethod->isFunctionTemplateSpecialization(); 3552 bool isFriend = NewMethod->getFriendObjectKind(); 3553 3554 if (!isFriend && NewMethod->getLexicalDeclContext()->isRecord() && 3555 !IsClassScopeExplicitSpecialization) { 3556 // -- Member function declarations with the same name and the 3557 // same parameter types cannot be overloaded if any of them 3558 // is a static member function declaration. 3559 if (OldMethod->isStatic() != NewMethod->isStatic()) { 3560 Diag(New->getLocation(), diag::err_ovl_static_nonstatic_member); 3561 Diag(OldLocation, PrevDiag) << Old << Old->getType(); 3562 return true; 3563 } 3564 3565 // C++ [class.mem]p1: 3566 // [...] A member shall not be declared twice in the 3567 // member-specification, except that a nested class or member 3568 // class template can be declared and then later defined. 3569 if (!inTemplateInstantiation()) { 3570 unsigned NewDiag; 3571 if (isa<CXXConstructorDecl>(OldMethod)) 3572 NewDiag = diag::err_constructor_redeclared; 3573 else if (isa<CXXDestructorDecl>(NewMethod)) 3574 NewDiag = diag::err_destructor_redeclared; 3575 else if (isa<CXXConversionDecl>(NewMethod)) 3576 NewDiag = diag::err_conv_function_redeclared; 3577 else 3578 NewDiag = diag::err_member_redeclared; 3579 3580 Diag(New->getLocation(), NewDiag); 3581 } else { 3582 Diag(New->getLocation(), diag::err_member_redeclared_in_instantiation) 3583 << New << New->getType(); 3584 } 3585 Diag(OldLocation, PrevDiag) << Old << Old->getType(); 3586 return true; 3587 3588 // Complain if this is an explicit declaration of a special 3589 // member that was initially declared implicitly. 3590 // 3591 // As an exception, it's okay to befriend such methods in order 3592 // to permit the implicit constructor/destructor/operator calls. 3593 } else if (OldMethod->isImplicit()) { 3594 if (isFriend) { 3595 NewMethod->setImplicit(); 3596 } else { 3597 Diag(NewMethod->getLocation(), 3598 diag::err_definition_of_implicitly_declared_member) 3599 << New << getSpecialMember(OldMethod); 3600 return true; 3601 } 3602 } else if (OldMethod->getFirstDecl()->isExplicitlyDefaulted() && !isFriend) { 3603 Diag(NewMethod->getLocation(), 3604 diag::err_definition_of_explicitly_defaulted_member) 3605 << getSpecialMember(OldMethod); 3606 return true; 3607 } 3608 } 3609 3610 // C++11 [dcl.attr.noreturn]p1: 3611 // The first declaration of a function shall specify the noreturn 3612 // attribute if any declaration of that function specifies the noreturn 3613 // attribute. 3614 const CXX11NoReturnAttr *NRA = New->getAttr<CXX11NoReturnAttr>(); 3615 if (NRA && !Old->hasAttr<CXX11NoReturnAttr>()) { 3616 Diag(NRA->getLocation(), diag::err_noreturn_missing_on_first_decl); 3617 Diag(Old->getFirstDecl()->getLocation(), 3618 diag::note_noreturn_missing_first_decl); 3619 } 3620 3621 // C++11 [dcl.attr.depend]p2: 3622 // The first declaration of a function shall specify the 3623 // carries_dependency attribute for its declarator-id if any declaration 3624 // of the function specifies the carries_dependency attribute. 3625 const CarriesDependencyAttr *CDA = New->getAttr<CarriesDependencyAttr>(); 3626 if (CDA && !Old->hasAttr<CarriesDependencyAttr>()) { 3627 Diag(CDA->getLocation(), 3628 diag::err_carries_dependency_missing_on_first_decl) << 0/*Function*/; 3629 Diag(Old->getFirstDecl()->getLocation(), 3630 diag::note_carries_dependency_missing_first_decl) << 0/*Function*/; 3631 } 3632 3633 // (C++98 8.3.5p3): 3634 // All declarations for a function shall agree exactly in both the 3635 // return type and the parameter-type-list. 3636 // We also want to respect all the extended bits except noreturn. 3637 3638 // noreturn should now match unless the old type info didn't have it. 3639 QualType OldQTypeForComparison = OldQType; 3640 if (!OldTypeInfo.getNoReturn() && NewTypeInfo.getNoReturn()) { 3641 auto *OldType = OldQType->castAs<FunctionProtoType>(); 3642 const FunctionType *OldTypeForComparison 3643 = Context.adjustFunctionType(OldType, OldTypeInfo.withNoReturn(true)); 3644 OldQTypeForComparison = QualType(OldTypeForComparison, 0); 3645 assert(OldQTypeForComparison.isCanonical()); 3646 } 3647 3648 if (haveIncompatibleLanguageLinkages(Old, New)) { 3649 // As a special case, retain the language linkage from previous 3650 // declarations of a friend function as an extension. 3651 // 3652 // This liberal interpretation of C++ [class.friend]p3 matches GCC/MSVC 3653 // and is useful because there's otherwise no way to specify language 3654 // linkage within class scope. 3655 // 3656 // Check cautiously as the friend object kind isn't yet complete. 3657 if (New->getFriendObjectKind() != Decl::FOK_None) { 3658 Diag(New->getLocation(), diag::ext_retained_language_linkage) << New; 3659 Diag(OldLocation, PrevDiag); 3660 } else { 3661 Diag(New->getLocation(), diag::err_different_language_linkage) << New; 3662 Diag(OldLocation, PrevDiag); 3663 return true; 3664 } 3665 } 3666 3667 // If the function types are compatible, merge the declarations. Ignore the 3668 // exception specifier because it was already checked above in 3669 // CheckEquivalentExceptionSpec, and we don't want follow-on diagnostics 3670 // about incompatible types under -fms-compatibility. 3671 if (Context.hasSameFunctionTypeIgnoringExceptionSpec(OldQTypeForComparison, 3672 NewQType)) 3673 return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld); 3674 3675 // If the types are imprecise (due to dependent constructs in friends or 3676 // local extern declarations), it's OK if they differ. We'll check again 3677 // during instantiation. 3678 if (!canFullyTypeCheckRedeclaration(New, Old, NewQType, OldQType)) 3679 return false; 3680 3681 // Fall through for conflicting redeclarations and redefinitions. 3682 } 3683 3684 // C: Function types need to be compatible, not identical. This handles 3685 // duplicate function decls like "void f(int); void f(enum X);" properly. 3686 if (!getLangOpts().CPlusPlus && 3687 Context.typesAreCompatible(OldQType, NewQType)) { 3688 const FunctionType *OldFuncType = OldQType->getAs<FunctionType>(); 3689 const FunctionType *NewFuncType = NewQType->getAs<FunctionType>(); 3690 const FunctionProtoType *OldProto = nullptr; 3691 if (MergeTypeWithOld && isa<FunctionNoProtoType>(NewFuncType) && 3692 (OldProto = dyn_cast<FunctionProtoType>(OldFuncType))) { 3693 // The old declaration provided a function prototype, but the 3694 // new declaration does not. Merge in the prototype. 3695 assert(!OldProto->hasExceptionSpec() && "Exception spec in C"); 3696 SmallVector<QualType, 16> ParamTypes(OldProto->param_types()); 3697 NewQType = 3698 Context.getFunctionType(NewFuncType->getReturnType(), ParamTypes, 3699 OldProto->getExtProtoInfo()); 3700 New->setType(NewQType); 3701 New->setHasInheritedPrototype(); 3702 3703 // Synthesize parameters with the same types. 3704 SmallVector<ParmVarDecl*, 16> Params; 3705 for (const auto &ParamType : OldProto->param_types()) { 3706 ParmVarDecl *Param = ParmVarDecl::Create(Context, New, SourceLocation(), 3707 SourceLocation(), nullptr, 3708 ParamType, /*TInfo=*/nullptr, 3709 SC_None, nullptr); 3710 Param->setScopeInfo(0, Params.size()); 3711 Param->setImplicit(); 3712 Params.push_back(Param); 3713 } 3714 3715 New->setParams(Params); 3716 } 3717 3718 return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld); 3719 } 3720 3721 // Check if the function types are compatible when pointer size address 3722 // spaces are ignored. 3723 if (Context.hasSameFunctionTypeIgnoringPtrSizes(OldQType, NewQType)) 3724 return false; 3725 3726 // GNU C permits a K&R definition to follow a prototype declaration 3727 // if the declared types of the parameters in the K&R definition 3728 // match the types in the prototype declaration, even when the 3729 // promoted types of the parameters from the K&R definition differ 3730 // from the types in the prototype. GCC then keeps the types from 3731 // the prototype. 3732 // 3733 // If a variadic prototype is followed by a non-variadic K&R definition, 3734 // the K&R definition becomes variadic. This is sort of an edge case, but 3735 // it's legal per the standard depending on how you read C99 6.7.5.3p15 and 3736 // C99 6.9.1p8. 3737 if (!getLangOpts().CPlusPlus && 3738 Old->hasPrototype() && !New->hasPrototype() && 3739 New->getType()->getAs<FunctionProtoType>() && 3740 Old->getNumParams() == New->getNumParams()) { 3741 SmallVector<QualType, 16> ArgTypes; 3742 SmallVector<GNUCompatibleParamWarning, 16> Warnings; 3743 const FunctionProtoType *OldProto 3744 = Old->getType()->getAs<FunctionProtoType>(); 3745 const FunctionProtoType *NewProto 3746 = New->getType()->getAs<FunctionProtoType>(); 3747 3748 // Determine whether this is the GNU C extension. 3749 QualType MergedReturn = Context.mergeTypes(OldProto->getReturnType(), 3750 NewProto->getReturnType()); 3751 bool LooseCompatible = !MergedReturn.isNull(); 3752 for (unsigned Idx = 0, End = Old->getNumParams(); 3753 LooseCompatible && Idx != End; ++Idx) { 3754 ParmVarDecl *OldParm = Old->getParamDecl(Idx); 3755 ParmVarDecl *NewParm = New->getParamDecl(Idx); 3756 if (Context.typesAreCompatible(OldParm->getType(), 3757 NewProto->getParamType(Idx))) { 3758 ArgTypes.push_back(NewParm->getType()); 3759 } else if (Context.typesAreCompatible(OldParm->getType(), 3760 NewParm->getType(), 3761 /*CompareUnqualified=*/true)) { 3762 GNUCompatibleParamWarning Warn = { OldParm, NewParm, 3763 NewProto->getParamType(Idx) }; 3764 Warnings.push_back(Warn); 3765 ArgTypes.push_back(NewParm->getType()); 3766 } else 3767 LooseCompatible = false; 3768 } 3769 3770 if (LooseCompatible) { 3771 for (unsigned Warn = 0; Warn < Warnings.size(); ++Warn) { 3772 Diag(Warnings[Warn].NewParm->getLocation(), 3773 diag::ext_param_promoted_not_compatible_with_prototype) 3774 << Warnings[Warn].PromotedType 3775 << Warnings[Warn].OldParm->getType(); 3776 if (Warnings[Warn].OldParm->getLocation().isValid()) 3777 Diag(Warnings[Warn].OldParm->getLocation(), 3778 diag::note_previous_declaration); 3779 } 3780 3781 if (MergeTypeWithOld) 3782 New->setType(Context.getFunctionType(MergedReturn, ArgTypes, 3783 OldProto->getExtProtoInfo())); 3784 return MergeCompatibleFunctionDecls(New, Old, S, MergeTypeWithOld); 3785 } 3786 3787 // Fall through to diagnose conflicting types. 3788 } 3789 3790 // A function that has already been declared has been redeclared or 3791 // defined with a different type; show an appropriate diagnostic. 3792 3793 // If the previous declaration was an implicitly-generated builtin 3794 // declaration, then at the very least we should use a specialized note. 3795 unsigned BuiltinID; 3796 if (Old->isImplicit() && (BuiltinID = Old->getBuiltinID())) { 3797 // If it's actually a library-defined builtin function like 'malloc' 3798 // or 'printf', just warn about the incompatible redeclaration. 3799 if (Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) { 3800 Diag(New->getLocation(), diag::warn_redecl_library_builtin) << New; 3801 Diag(OldLocation, diag::note_previous_builtin_declaration) 3802 << Old << Old->getType(); 3803 return false; 3804 } 3805 3806 PrevDiag = diag::note_previous_builtin_declaration; 3807 } 3808 3809 Diag(New->getLocation(), diag::err_conflicting_types) << New->getDeclName(); 3810 Diag(OldLocation, PrevDiag) << Old << Old->getType(); 3811 return true; 3812 } 3813 3814 /// Completes the merge of two function declarations that are 3815 /// known to be compatible. 3816 /// 3817 /// This routine handles the merging of attributes and other 3818 /// properties of function declarations from the old declaration to 3819 /// the new declaration, once we know that New is in fact a 3820 /// redeclaration of Old. 3821 /// 3822 /// \returns false 3823 bool Sema::MergeCompatibleFunctionDecls(FunctionDecl *New, FunctionDecl *Old, 3824 Scope *S, bool MergeTypeWithOld) { 3825 // Merge the attributes 3826 mergeDeclAttributes(New, Old); 3827 3828 // Merge "pure" flag. 3829 if (Old->isPure()) 3830 New->setPure(); 3831 3832 // Merge "used" flag. 3833 if (Old->getMostRecentDecl()->isUsed(false)) 3834 New->setIsUsed(); 3835 3836 // Merge attributes from the parameters. These can mismatch with K&R 3837 // declarations. 3838 if (New->getNumParams() == Old->getNumParams()) 3839 for (unsigned i = 0, e = New->getNumParams(); i != e; ++i) { 3840 ParmVarDecl *NewParam = New->getParamDecl(i); 3841 ParmVarDecl *OldParam = Old->getParamDecl(i); 3842 mergeParamDeclAttributes(NewParam, OldParam, *this); 3843 mergeParamDeclTypes(NewParam, OldParam, *this); 3844 } 3845 3846 if (getLangOpts().CPlusPlus) 3847 return MergeCXXFunctionDecl(New, Old, S); 3848 3849 // Merge the function types so the we get the composite types for the return 3850 // and argument types. Per C11 6.2.7/4, only update the type if the old decl 3851 // was visible. 3852 QualType Merged = Context.mergeTypes(Old->getType(), New->getType()); 3853 if (!Merged.isNull() && MergeTypeWithOld) 3854 New->setType(Merged); 3855 3856 return false; 3857 } 3858 3859 void Sema::mergeObjCMethodDecls(ObjCMethodDecl *newMethod, 3860 ObjCMethodDecl *oldMethod) { 3861 // Merge the attributes, including deprecated/unavailable 3862 AvailabilityMergeKind MergeKind = 3863 isa<ObjCProtocolDecl>(oldMethod->getDeclContext()) 3864 ? AMK_ProtocolImplementation 3865 : isa<ObjCImplDecl>(newMethod->getDeclContext()) ? AMK_Redeclaration 3866 : AMK_Override; 3867 3868 mergeDeclAttributes(newMethod, oldMethod, MergeKind); 3869 3870 // Merge attributes from the parameters. 3871 ObjCMethodDecl::param_const_iterator oi = oldMethod->param_begin(), 3872 oe = oldMethod->param_end(); 3873 for (ObjCMethodDecl::param_iterator 3874 ni = newMethod->param_begin(), ne = newMethod->param_end(); 3875 ni != ne && oi != oe; ++ni, ++oi) 3876 mergeParamDeclAttributes(*ni, *oi, *this); 3877 3878 CheckObjCMethodOverride(newMethod, oldMethod); 3879 } 3880 3881 static void diagnoseVarDeclTypeMismatch(Sema &S, VarDecl *New, VarDecl* Old) { 3882 assert(!S.Context.hasSameType(New->getType(), Old->getType())); 3883 3884 S.Diag(New->getLocation(), New->isThisDeclarationADefinition() 3885 ? diag::err_redefinition_different_type 3886 : diag::err_redeclaration_different_type) 3887 << New->getDeclName() << New->getType() << Old->getType(); 3888 3889 diag::kind PrevDiag; 3890 SourceLocation OldLocation; 3891 std::tie(PrevDiag, OldLocation) 3892 = getNoteDiagForInvalidRedeclaration(Old, New); 3893 S.Diag(OldLocation, PrevDiag); 3894 New->setInvalidDecl(); 3895 } 3896 3897 /// MergeVarDeclTypes - We parsed a variable 'New' which has the same name and 3898 /// scope as a previous declaration 'Old'. Figure out how to merge their types, 3899 /// emitting diagnostics as appropriate. 3900 /// 3901 /// Declarations using the auto type specifier (C++ [decl.spec.auto]) call back 3902 /// to here in AddInitializerToDecl. We can't check them before the initializer 3903 /// is attached. 3904 void Sema::MergeVarDeclTypes(VarDecl *New, VarDecl *Old, 3905 bool MergeTypeWithOld) { 3906 if (New->isInvalidDecl() || Old->isInvalidDecl()) 3907 return; 3908 3909 QualType MergedT; 3910 if (getLangOpts().CPlusPlus) { 3911 if (New->getType()->isUndeducedType()) { 3912 // We don't know what the new type is until the initializer is attached. 3913 return; 3914 } else if (Context.hasSameType(New->getType(), Old->getType())) { 3915 // These could still be something that needs exception specs checked. 3916 return MergeVarDeclExceptionSpecs(New, Old); 3917 } 3918 // C++ [basic.link]p10: 3919 // [...] the types specified by all declarations referring to a given 3920 // object or function shall be identical, except that declarations for an 3921 // array object can specify array types that differ by the presence or 3922 // absence of a major array bound (8.3.4). 3923 else if (Old->getType()->isArrayType() && New->getType()->isArrayType()) { 3924 const ArrayType *OldArray = Context.getAsArrayType(Old->getType()); 3925 const ArrayType *NewArray = Context.getAsArrayType(New->getType()); 3926 3927 // We are merging a variable declaration New into Old. If it has an array 3928 // bound, and that bound differs from Old's bound, we should diagnose the 3929 // mismatch. 3930 if (!NewArray->isIncompleteArrayType() && !NewArray->isDependentType()) { 3931 for (VarDecl *PrevVD = Old->getMostRecentDecl(); PrevVD; 3932 PrevVD = PrevVD->getPreviousDecl()) { 3933 QualType PrevVDTy = PrevVD->getType(); 3934 if (PrevVDTy->isIncompleteArrayType() || PrevVDTy->isDependentType()) 3935 continue; 3936 3937 if (!Context.hasSameType(New->getType(), PrevVDTy)) 3938 return diagnoseVarDeclTypeMismatch(*this, New, PrevVD); 3939 } 3940 } 3941 3942 if (OldArray->isIncompleteArrayType() && NewArray->isArrayType()) { 3943 if (Context.hasSameType(OldArray->getElementType(), 3944 NewArray->getElementType())) 3945 MergedT = New->getType(); 3946 } 3947 // FIXME: Check visibility. New is hidden but has a complete type. If New 3948 // has no array bound, it should not inherit one from Old, if Old is not 3949 // visible. 3950 else if (OldArray->isArrayType() && NewArray->isIncompleteArrayType()) { 3951 if (Context.hasSameType(OldArray->getElementType(), 3952 NewArray->getElementType())) 3953 MergedT = Old->getType(); 3954 } 3955 } 3956 else if (New->getType()->isObjCObjectPointerType() && 3957 Old->getType()->isObjCObjectPointerType()) { 3958 MergedT = Context.mergeObjCGCQualifiers(New->getType(), 3959 Old->getType()); 3960 } 3961 } else { 3962 // C 6.2.7p2: 3963 // All declarations that refer to the same object or function shall have 3964 // compatible type. 3965 MergedT = Context.mergeTypes(New->getType(), Old->getType()); 3966 } 3967 if (MergedT.isNull()) { 3968 // It's OK if we couldn't merge types if either type is dependent, for a 3969 // block-scope variable. In other cases (static data members of class 3970 // templates, variable templates, ...), we require the types to be 3971 // equivalent. 3972 // FIXME: The C++ standard doesn't say anything about this. 3973 if ((New->getType()->isDependentType() || 3974 Old->getType()->isDependentType()) && New->isLocalVarDecl()) { 3975 // If the old type was dependent, we can't merge with it, so the new type 3976 // becomes dependent for now. We'll reproduce the original type when we 3977 // instantiate the TypeSourceInfo for the variable. 3978 if (!New->getType()->isDependentType() && MergeTypeWithOld) 3979 New->setType(Context.DependentTy); 3980 return; 3981 } 3982 return diagnoseVarDeclTypeMismatch(*this, New, Old); 3983 } 3984 3985 // Don't actually update the type on the new declaration if the old 3986 // declaration was an extern declaration in a different scope. 3987 if (MergeTypeWithOld) 3988 New->setType(MergedT); 3989 } 3990 3991 static bool mergeTypeWithPrevious(Sema &S, VarDecl *NewVD, VarDecl *OldVD, 3992 LookupResult &Previous) { 3993 // C11 6.2.7p4: 3994 // For an identifier with internal or external linkage declared 3995 // in a scope in which a prior declaration of that identifier is 3996 // visible, if the prior declaration specifies internal or 3997 // external linkage, the type of the identifier at the later 3998 // declaration becomes the composite type. 3999 // 4000 // If the variable isn't visible, we do not merge with its type. 4001 if (Previous.isShadowed()) 4002 return false; 4003 4004 if (S.getLangOpts().CPlusPlus) { 4005 // C++11 [dcl.array]p3: 4006 // If there is a preceding declaration of the entity in the same 4007 // scope in which the bound was specified, an omitted array bound 4008 // is taken to be the same as in that earlier declaration. 4009 return NewVD->isPreviousDeclInSameBlockScope() || 4010 (!OldVD->getLexicalDeclContext()->isFunctionOrMethod() && 4011 !NewVD->getLexicalDeclContext()->isFunctionOrMethod()); 4012 } else { 4013 // If the old declaration was function-local, don't merge with its 4014 // type unless we're in the same function. 4015 return !OldVD->getLexicalDeclContext()->isFunctionOrMethod() || 4016 OldVD->getLexicalDeclContext() == NewVD->getLexicalDeclContext(); 4017 } 4018 } 4019 4020 /// MergeVarDecl - We just parsed a variable 'New' which has the same name 4021 /// and scope as a previous declaration 'Old'. Figure out how to resolve this 4022 /// situation, merging decls or emitting diagnostics as appropriate. 4023 /// 4024 /// Tentative definition rules (C99 6.9.2p2) are checked by 4025 /// FinalizeDeclaratorGroup. Unfortunately, we can't analyze tentative 4026 /// definitions here, since the initializer hasn't been attached. 4027 /// 4028 void Sema::MergeVarDecl(VarDecl *New, LookupResult &Previous) { 4029 // If the new decl is already invalid, don't do any other checking. 4030 if (New->isInvalidDecl()) 4031 return; 4032 4033 if (!shouldLinkPossiblyHiddenDecl(Previous, New)) 4034 return; 4035 4036 VarTemplateDecl *NewTemplate = New->getDescribedVarTemplate(); 4037 4038 // Verify the old decl was also a variable or variable template. 4039 VarDecl *Old = nullptr; 4040 VarTemplateDecl *OldTemplate = nullptr; 4041 if (Previous.isSingleResult()) { 4042 if (NewTemplate) { 4043 OldTemplate = dyn_cast<VarTemplateDecl>(Previous.getFoundDecl()); 4044 Old = OldTemplate ? OldTemplate->getTemplatedDecl() : nullptr; 4045 4046 if (auto *Shadow = 4047 dyn_cast<UsingShadowDecl>(Previous.getRepresentativeDecl())) 4048 if (checkUsingShadowRedecl<VarTemplateDecl>(*this, Shadow, NewTemplate)) 4049 return New->setInvalidDecl(); 4050 } else { 4051 Old = dyn_cast<VarDecl>(Previous.getFoundDecl()); 4052 4053 if (auto *Shadow = 4054 dyn_cast<UsingShadowDecl>(Previous.getRepresentativeDecl())) 4055 if (checkUsingShadowRedecl<VarDecl>(*this, Shadow, New)) 4056 return New->setInvalidDecl(); 4057 } 4058 } 4059 if (!Old) { 4060 Diag(New->getLocation(), diag::err_redefinition_different_kind) 4061 << New->getDeclName(); 4062 notePreviousDefinition(Previous.getRepresentativeDecl(), 4063 New->getLocation()); 4064 return New->setInvalidDecl(); 4065 } 4066 4067 // If the old declaration was found in an inline namespace and the new 4068 // declaration was qualified, update the DeclContext to match. 4069 adjustDeclContextForDeclaratorDecl(New, Old); 4070 4071 // Ensure the template parameters are compatible. 4072 if (NewTemplate && 4073 !TemplateParameterListsAreEqual(NewTemplate->getTemplateParameters(), 4074 OldTemplate->getTemplateParameters(), 4075 /*Complain=*/true, TPL_TemplateMatch)) 4076 return New->setInvalidDecl(); 4077 4078 // C++ [class.mem]p1: 4079 // A member shall not be declared twice in the member-specification [...] 4080 // 4081 // Here, we need only consider static data members. 4082 if (Old->isStaticDataMember() && !New->isOutOfLine()) { 4083 Diag(New->getLocation(), diag::err_duplicate_member) 4084 << New->getIdentifier(); 4085 Diag(Old->getLocation(), diag::note_previous_declaration); 4086 New->setInvalidDecl(); 4087 } 4088 4089 mergeDeclAttributes(New, Old); 4090 // Warn if an already-declared variable is made a weak_import in a subsequent 4091 // declaration 4092 if (New->hasAttr<WeakImportAttr>() && 4093 Old->getStorageClass() == SC_None && 4094 !Old->hasAttr<WeakImportAttr>()) { 4095 Diag(New->getLocation(), diag::warn_weak_import) << New->getDeclName(); 4096 notePreviousDefinition(Old, New->getLocation()); 4097 // Remove weak_import attribute on new declaration. 4098 New->dropAttr<WeakImportAttr>(); 4099 } 4100 4101 if (New->hasAttr<InternalLinkageAttr>() && 4102 !Old->hasAttr<InternalLinkageAttr>()) { 4103 Diag(New->getLocation(), diag::err_internal_linkage_redeclaration) 4104 << New->getDeclName(); 4105 notePreviousDefinition(Old, New->getLocation()); 4106 New->dropAttr<InternalLinkageAttr>(); 4107 } 4108 4109 // Merge the types. 4110 VarDecl *MostRecent = Old->getMostRecentDecl(); 4111 if (MostRecent != Old) { 4112 MergeVarDeclTypes(New, MostRecent, 4113 mergeTypeWithPrevious(*this, New, MostRecent, Previous)); 4114 if (New->isInvalidDecl()) 4115 return; 4116 } 4117 4118 MergeVarDeclTypes(New, Old, mergeTypeWithPrevious(*this, New, Old, Previous)); 4119 if (New->isInvalidDecl()) 4120 return; 4121 4122 diag::kind PrevDiag; 4123 SourceLocation OldLocation; 4124 std::tie(PrevDiag, OldLocation) = 4125 getNoteDiagForInvalidRedeclaration(Old, New); 4126 4127 // [dcl.stc]p8: Check if we have a non-static decl followed by a static. 4128 if (New->getStorageClass() == SC_Static && 4129 !New->isStaticDataMember() && 4130 Old->hasExternalFormalLinkage()) { 4131 if (getLangOpts().MicrosoftExt) { 4132 Diag(New->getLocation(), diag::ext_static_non_static) 4133 << New->getDeclName(); 4134 Diag(OldLocation, PrevDiag); 4135 } else { 4136 Diag(New->getLocation(), diag::err_static_non_static) 4137 << New->getDeclName(); 4138 Diag(OldLocation, PrevDiag); 4139 return New->setInvalidDecl(); 4140 } 4141 } 4142 // C99 6.2.2p4: 4143 // For an identifier declared with the storage-class specifier 4144 // extern in a scope in which a prior declaration of that 4145 // identifier is visible,23) if the prior declaration specifies 4146 // internal or external linkage, the linkage of the identifier at 4147 // the later declaration is the same as the linkage specified at 4148 // the prior declaration. If no prior declaration is visible, or 4149 // if the prior declaration specifies no linkage, then the 4150 // identifier has external linkage. 4151 if (New->hasExternalStorage() && Old->hasLinkage()) 4152 /* Okay */; 4153 else if (New->getCanonicalDecl()->getStorageClass() != SC_Static && 4154 !New->isStaticDataMember() && 4155 Old->getCanonicalDecl()->getStorageClass() == SC_Static) { 4156 Diag(New->getLocation(), diag::err_non_static_static) << New->getDeclName(); 4157 Diag(OldLocation, PrevDiag); 4158 return New->setInvalidDecl(); 4159 } 4160 4161 // Check if extern is followed by non-extern and vice-versa. 4162 if (New->hasExternalStorage() && 4163 !Old->hasLinkage() && Old->isLocalVarDeclOrParm()) { 4164 Diag(New->getLocation(), diag::err_extern_non_extern) << New->getDeclName(); 4165 Diag(OldLocation, PrevDiag); 4166 return New->setInvalidDecl(); 4167 } 4168 if (Old->hasLinkage() && New->isLocalVarDeclOrParm() && 4169 !New->hasExternalStorage()) { 4170 Diag(New->getLocation(), diag::err_non_extern_extern) << New->getDeclName(); 4171 Diag(OldLocation, PrevDiag); 4172 return New->setInvalidDecl(); 4173 } 4174 4175 if (CheckRedeclarationModuleOwnership(New, Old)) 4176 return; 4177 4178 // Variables with external linkage are analyzed in FinalizeDeclaratorGroup. 4179 4180 // FIXME: The test for external storage here seems wrong? We still 4181 // need to check for mismatches. 4182 if (!New->hasExternalStorage() && !New->isFileVarDecl() && 4183 // Don't complain about out-of-line definitions of static members. 4184 !(Old->getLexicalDeclContext()->isRecord() && 4185 !New->getLexicalDeclContext()->isRecord())) { 4186 Diag(New->getLocation(), diag::err_redefinition) << New->getDeclName(); 4187 Diag(OldLocation, PrevDiag); 4188 return New->setInvalidDecl(); 4189 } 4190 4191 if (New->isInline() && !Old->getMostRecentDecl()->isInline()) { 4192 if (VarDecl *Def = Old->getDefinition()) { 4193 // C++1z [dcl.fcn.spec]p4: 4194 // If the definition of a variable appears in a translation unit before 4195 // its first declaration as inline, the program is ill-formed. 4196 Diag(New->getLocation(), diag::err_inline_decl_follows_def) << New; 4197 Diag(Def->getLocation(), diag::note_previous_definition); 4198 } 4199 } 4200 4201 // If this redeclaration makes the variable inline, we may need to add it to 4202 // UndefinedButUsed. 4203 if (!Old->isInline() && New->isInline() && Old->isUsed(false) && 4204 !Old->getDefinition() && !New->isThisDeclarationADefinition()) 4205 UndefinedButUsed.insert(std::make_pair(Old->getCanonicalDecl(), 4206 SourceLocation())); 4207 4208 if (New->getTLSKind() != Old->getTLSKind()) { 4209 if (!Old->getTLSKind()) { 4210 Diag(New->getLocation(), diag::err_thread_non_thread) << New->getDeclName(); 4211 Diag(OldLocation, PrevDiag); 4212 } else if (!New->getTLSKind()) { 4213 Diag(New->getLocation(), diag::err_non_thread_thread) << New->getDeclName(); 4214 Diag(OldLocation, PrevDiag); 4215 } else { 4216 // Do not allow redeclaration to change the variable between requiring 4217 // static and dynamic initialization. 4218 // FIXME: GCC allows this, but uses the TLS keyword on the first 4219 // declaration to determine the kind. Do we need to be compatible here? 4220 Diag(New->getLocation(), diag::err_thread_thread_different_kind) 4221 << New->getDeclName() << (New->getTLSKind() == VarDecl::TLS_Dynamic); 4222 Diag(OldLocation, PrevDiag); 4223 } 4224 } 4225 4226 // C++ doesn't have tentative definitions, so go right ahead and check here. 4227 if (getLangOpts().CPlusPlus && 4228 New->isThisDeclarationADefinition() == VarDecl::Definition) { 4229 if (Old->isStaticDataMember() && Old->getCanonicalDecl()->isInline() && 4230 Old->getCanonicalDecl()->isConstexpr()) { 4231 // This definition won't be a definition any more once it's been merged. 4232 Diag(New->getLocation(), 4233 diag::warn_deprecated_redundant_constexpr_static_def); 4234 } else if (VarDecl *Def = Old->getDefinition()) { 4235 if (checkVarDeclRedefinition(Def, New)) 4236 return; 4237 } 4238 } 4239 4240 if (haveIncompatibleLanguageLinkages(Old, New)) { 4241 Diag(New->getLocation(), diag::err_different_language_linkage) << New; 4242 Diag(OldLocation, PrevDiag); 4243 New->setInvalidDecl(); 4244 return; 4245 } 4246 4247 // Merge "used" flag. 4248 if (Old->getMostRecentDecl()->isUsed(false)) 4249 New->setIsUsed(); 4250 4251 // Keep a chain of previous declarations. 4252 New->setPreviousDecl(Old); 4253 if (NewTemplate) 4254 NewTemplate->setPreviousDecl(OldTemplate); 4255 4256 // Inherit access appropriately. 4257 New->setAccess(Old->getAccess()); 4258 if (NewTemplate) 4259 NewTemplate->setAccess(New->getAccess()); 4260 4261 if (Old->isInline()) 4262 New->setImplicitlyInline(); 4263 } 4264 4265 void Sema::notePreviousDefinition(const NamedDecl *Old, SourceLocation New) { 4266 SourceManager &SrcMgr = getSourceManager(); 4267 auto FNewDecLoc = SrcMgr.getDecomposedLoc(New); 4268 auto FOldDecLoc = SrcMgr.getDecomposedLoc(Old->getLocation()); 4269 auto *FNew = SrcMgr.getFileEntryForID(FNewDecLoc.first); 4270 auto *FOld = SrcMgr.getFileEntryForID(FOldDecLoc.first); 4271 auto &HSI = PP.getHeaderSearchInfo(); 4272 StringRef HdrFilename = 4273 SrcMgr.getFilename(SrcMgr.getSpellingLoc(Old->getLocation())); 4274 4275 auto noteFromModuleOrInclude = [&](Module *Mod, 4276 SourceLocation IncLoc) -> bool { 4277 // Redefinition errors with modules are common with non modular mapped 4278 // headers, example: a non-modular header H in module A that also gets 4279 // included directly in a TU. Pointing twice to the same header/definition 4280 // is confusing, try to get better diagnostics when modules is on. 4281 if (IncLoc.isValid()) { 4282 if (Mod) { 4283 Diag(IncLoc, diag::note_redefinition_modules_same_file) 4284 << HdrFilename.str() << Mod->getFullModuleName(); 4285 if (!Mod->DefinitionLoc.isInvalid()) 4286 Diag(Mod->DefinitionLoc, diag::note_defined_here) 4287 << Mod->getFullModuleName(); 4288 } else { 4289 Diag(IncLoc, diag::note_redefinition_include_same_file) 4290 << HdrFilename.str(); 4291 } 4292 return true; 4293 } 4294 4295 return false; 4296 }; 4297 4298 // Is it the same file and same offset? Provide more information on why 4299 // this leads to a redefinition error. 4300 if (FNew == FOld && FNewDecLoc.second == FOldDecLoc.second) { 4301 SourceLocation OldIncLoc = SrcMgr.getIncludeLoc(FOldDecLoc.first); 4302 SourceLocation NewIncLoc = SrcMgr.getIncludeLoc(FNewDecLoc.first); 4303 bool EmittedDiag = 4304 noteFromModuleOrInclude(Old->getOwningModule(), OldIncLoc); 4305 EmittedDiag |= noteFromModuleOrInclude(getCurrentModule(), NewIncLoc); 4306 4307 // If the header has no guards, emit a note suggesting one. 4308 if (FOld && !HSI.isFileMultipleIncludeGuarded(FOld)) 4309 Diag(Old->getLocation(), diag::note_use_ifdef_guards); 4310 4311 if (EmittedDiag) 4312 return; 4313 } 4314 4315 // Redefinition coming from different files or couldn't do better above. 4316 if (Old->getLocation().isValid()) 4317 Diag(Old->getLocation(), diag::note_previous_definition); 4318 } 4319 4320 /// We've just determined that \p Old and \p New both appear to be definitions 4321 /// of the same variable. Either diagnose or fix the problem. 4322 bool Sema::checkVarDeclRedefinition(VarDecl *Old, VarDecl *New) { 4323 if (!hasVisibleDefinition(Old) && 4324 (New->getFormalLinkage() == InternalLinkage || 4325 New->isInline() || 4326 New->getDescribedVarTemplate() || 4327 New->getNumTemplateParameterLists() || 4328 New->getDeclContext()->isDependentContext())) { 4329 // The previous definition is hidden, and multiple definitions are 4330 // permitted (in separate TUs). Demote this to a declaration. 4331 New->demoteThisDefinitionToDeclaration(); 4332 4333 // Make the canonical definition visible. 4334 if (auto *OldTD = Old->getDescribedVarTemplate()) 4335 makeMergedDefinitionVisible(OldTD); 4336 makeMergedDefinitionVisible(Old); 4337 return false; 4338 } else { 4339 Diag(New->getLocation(), diag::err_redefinition) << New; 4340 notePreviousDefinition(Old, New->getLocation()); 4341 New->setInvalidDecl(); 4342 return true; 4343 } 4344 } 4345 4346 /// ParsedFreeStandingDeclSpec - This method is invoked when a declspec with 4347 /// no declarator (e.g. "struct foo;") is parsed. 4348 Decl * 4349 Sema::ParsedFreeStandingDeclSpec(Scope *S, AccessSpecifier AS, DeclSpec &DS, 4350 RecordDecl *&AnonRecord) { 4351 return ParsedFreeStandingDeclSpec(S, AS, DS, MultiTemplateParamsArg(), false, 4352 AnonRecord); 4353 } 4354 4355 // The MS ABI changed between VS2013 and VS2015 with regard to numbers used to 4356 // disambiguate entities defined in different scopes. 4357 // While the VS2015 ABI fixes potential miscompiles, it is also breaks 4358 // compatibility. 4359 // We will pick our mangling number depending on which version of MSVC is being 4360 // targeted. 4361 static unsigned getMSManglingNumber(const LangOptions &LO, Scope *S) { 4362 return LO.isCompatibleWithMSVC(LangOptions::MSVC2015) 4363 ? S->getMSCurManglingNumber() 4364 : S->getMSLastManglingNumber(); 4365 } 4366 4367 void Sema::handleTagNumbering(const TagDecl *Tag, Scope *TagScope) { 4368 if (!Context.getLangOpts().CPlusPlus) 4369 return; 4370 4371 if (isa<CXXRecordDecl>(Tag->getParent())) { 4372 // If this tag is the direct child of a class, number it if 4373 // it is anonymous. 4374 if (!Tag->getName().empty() || Tag->getTypedefNameForAnonDecl()) 4375 return; 4376 MangleNumberingContext &MCtx = 4377 Context.getManglingNumberContext(Tag->getParent()); 4378 Context.setManglingNumber( 4379 Tag, MCtx.getManglingNumber( 4380 Tag, getMSManglingNumber(getLangOpts(), TagScope))); 4381 return; 4382 } 4383 4384 // If this tag isn't a direct child of a class, number it if it is local. 4385 MangleNumberingContext *MCtx; 4386 Decl *ManglingContextDecl; 4387 std::tie(MCtx, ManglingContextDecl) = 4388 getCurrentMangleNumberContext(Tag->getDeclContext()); 4389 if (MCtx) { 4390 Context.setManglingNumber( 4391 Tag, MCtx->getManglingNumber( 4392 Tag, getMSManglingNumber(getLangOpts(), TagScope))); 4393 } 4394 } 4395 4396 namespace { 4397 struct NonCLikeKind { 4398 enum { 4399 None, 4400 BaseClass, 4401 DefaultMemberInit, 4402 Lambda, 4403 Friend, 4404 OtherMember, 4405 Invalid, 4406 } Kind = None; 4407 SourceRange Range; 4408 4409 explicit operator bool() { return Kind != None; } 4410 }; 4411 } 4412 4413 /// Determine whether a class is C-like, according to the rules of C++ 4414 /// [dcl.typedef] for anonymous classes with typedef names for linkage. 4415 static NonCLikeKind getNonCLikeKindForAnonymousStruct(const CXXRecordDecl *RD) { 4416 if (RD->isInvalidDecl()) 4417 return {NonCLikeKind::Invalid, {}}; 4418 4419 // C++ [dcl.typedef]p9: [P1766R1] 4420 // An unnamed class with a typedef name for linkage purposes shall not 4421 // 4422 // -- have any base classes 4423 if (RD->getNumBases()) 4424 return {NonCLikeKind::BaseClass, 4425 SourceRange(RD->bases_begin()->getBeginLoc(), 4426 RD->bases_end()[-1].getEndLoc())}; 4427 bool Invalid = false; 4428 for (Decl *D : RD->decls()) { 4429 // Don't complain about things we already diagnosed. 4430 if (D->isInvalidDecl()) { 4431 Invalid = true; 4432 continue; 4433 } 4434 4435 // -- have any [...] default member initializers 4436 if (auto *FD = dyn_cast<FieldDecl>(D)) { 4437 if (FD->hasInClassInitializer()) { 4438 auto *Init = FD->getInClassInitializer(); 4439 return {NonCLikeKind::DefaultMemberInit, 4440 Init ? Init->getSourceRange() : D->getSourceRange()}; 4441 } 4442 continue; 4443 } 4444 4445 // FIXME: We don't allow friend declarations. This violates the wording of 4446 // P1766, but not the intent. 4447 if (isa<FriendDecl>(D)) 4448 return {NonCLikeKind::Friend, D->getSourceRange()}; 4449 4450 // -- declare any members other than non-static data members, member 4451 // enumerations, or member classes, 4452 if (isa<StaticAssertDecl>(D) || isa<IndirectFieldDecl>(D) || 4453 isa<EnumDecl>(D)) 4454 continue; 4455 auto *MemberRD = dyn_cast<CXXRecordDecl>(D); 4456 if (!MemberRD) { 4457 if (D->isImplicit()) 4458 continue; 4459 return {NonCLikeKind::OtherMember, D->getSourceRange()}; 4460 } 4461 4462 // -- contain a lambda-expression, 4463 if (MemberRD->isLambda()) 4464 return {NonCLikeKind::Lambda, MemberRD->getSourceRange()}; 4465 4466 // and all member classes shall also satisfy these requirements 4467 // (recursively). 4468 if (MemberRD->isThisDeclarationADefinition()) { 4469 if (auto Kind = getNonCLikeKindForAnonymousStruct(MemberRD)) 4470 return Kind; 4471 } 4472 } 4473 4474 return {Invalid ? NonCLikeKind::Invalid : NonCLikeKind::None, {}}; 4475 } 4476 4477 void Sema::setTagNameForLinkagePurposes(TagDecl *TagFromDeclSpec, 4478 TypedefNameDecl *NewTD) { 4479 if (TagFromDeclSpec->isInvalidDecl()) 4480 return; 4481 4482 // Do nothing if the tag already has a name for linkage purposes. 4483 if (TagFromDeclSpec->hasNameForLinkage()) 4484 return; 4485 4486 // A well-formed anonymous tag must always be a TUK_Definition. 4487 assert(TagFromDeclSpec->isThisDeclarationADefinition()); 4488 4489 // The type must match the tag exactly; no qualifiers allowed. 4490 if (!Context.hasSameType(NewTD->getUnderlyingType(), 4491 Context.getTagDeclType(TagFromDeclSpec))) { 4492 if (getLangOpts().CPlusPlus) 4493 Context.addTypedefNameForUnnamedTagDecl(TagFromDeclSpec, NewTD); 4494 return; 4495 } 4496 4497 // C++ [dcl.typedef]p9: [P1766R1, applied as DR] 4498 // An unnamed class with a typedef name for linkage purposes shall [be 4499 // C-like]. 4500 // 4501 // FIXME: Also diagnose if we've already computed the linkage. That ideally 4502 // shouldn't happen, but there are constructs that the language rule doesn't 4503 // disallow for which we can't reasonably avoid computing linkage early. 4504 const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(TagFromDeclSpec); 4505 NonCLikeKind NonCLike = RD ? getNonCLikeKindForAnonymousStruct(RD) 4506 : NonCLikeKind(); 4507 bool ChangesLinkage = TagFromDeclSpec->hasLinkageBeenComputed(); 4508 if (NonCLike || ChangesLinkage) { 4509 if (NonCLike.Kind == NonCLikeKind::Invalid) 4510 return; 4511 4512 unsigned DiagID = diag::ext_non_c_like_anon_struct_in_typedef; 4513 if (ChangesLinkage) { 4514 // If the linkage changes, we can't accept this as an extension. 4515 if (NonCLike.Kind == NonCLikeKind::None) 4516 DiagID = diag::err_typedef_changes_linkage; 4517 else 4518 DiagID = diag::err_non_c_like_anon_struct_in_typedef; 4519 } 4520 4521 SourceLocation FixitLoc = 4522 getLocForEndOfToken(TagFromDeclSpec->getInnerLocStart()); 4523 llvm::SmallString<40> TextToInsert; 4524 TextToInsert += ' '; 4525 TextToInsert += NewTD->getIdentifier()->getName(); 4526 4527 Diag(FixitLoc, DiagID) 4528 << isa<TypeAliasDecl>(NewTD) 4529 << FixItHint::CreateInsertion(FixitLoc, TextToInsert); 4530 if (NonCLike.Kind != NonCLikeKind::None) { 4531 Diag(NonCLike.Range.getBegin(), diag::note_non_c_like_anon_struct) 4532 << NonCLike.Kind - 1 << NonCLike.Range; 4533 } 4534 Diag(NewTD->getLocation(), diag::note_typedef_for_linkage_here) 4535 << NewTD << isa<TypeAliasDecl>(NewTD); 4536 4537 if (ChangesLinkage) 4538 return; 4539 } 4540 4541 // Otherwise, set this as the anon-decl typedef for the tag. 4542 TagFromDeclSpec->setTypedefNameForAnonDecl(NewTD); 4543 } 4544 4545 static unsigned GetDiagnosticTypeSpecifierID(DeclSpec::TST T) { 4546 switch (T) { 4547 case DeclSpec::TST_class: 4548 return 0; 4549 case DeclSpec::TST_struct: 4550 return 1; 4551 case DeclSpec::TST_interface: 4552 return 2; 4553 case DeclSpec::TST_union: 4554 return 3; 4555 case DeclSpec::TST_enum: 4556 return 4; 4557 default: 4558 llvm_unreachable("unexpected type specifier"); 4559 } 4560 } 4561 4562 /// ParsedFreeStandingDeclSpec - This method is invoked when a declspec with 4563 /// no declarator (e.g. "struct foo;") is parsed. It also accepts template 4564 /// parameters to cope with template friend declarations. 4565 Decl * 4566 Sema::ParsedFreeStandingDeclSpec(Scope *S, AccessSpecifier AS, DeclSpec &DS, 4567 MultiTemplateParamsArg TemplateParams, 4568 bool IsExplicitInstantiation, 4569 RecordDecl *&AnonRecord) { 4570 Decl *TagD = nullptr; 4571 TagDecl *Tag = nullptr; 4572 if (DS.getTypeSpecType() == DeclSpec::TST_class || 4573 DS.getTypeSpecType() == DeclSpec::TST_struct || 4574 DS.getTypeSpecType() == DeclSpec::TST_interface || 4575 DS.getTypeSpecType() == DeclSpec::TST_union || 4576 DS.getTypeSpecType() == DeclSpec::TST_enum) { 4577 TagD = DS.getRepAsDecl(); 4578 4579 if (!TagD) // We probably had an error 4580 return nullptr; 4581 4582 // Note that the above type specs guarantee that the 4583 // type rep is a Decl, whereas in many of the others 4584 // it's a Type. 4585 if (isa<TagDecl>(TagD)) 4586 Tag = cast<TagDecl>(TagD); 4587 else if (ClassTemplateDecl *CTD = dyn_cast<ClassTemplateDecl>(TagD)) 4588 Tag = CTD->getTemplatedDecl(); 4589 } 4590 4591 if (Tag) { 4592 handleTagNumbering(Tag, S); 4593 Tag->setFreeStanding(); 4594 if (Tag->isInvalidDecl()) 4595 return Tag; 4596 } 4597 4598 if (unsigned TypeQuals = DS.getTypeQualifiers()) { 4599 // Enforce C99 6.7.3p2: "Types other than pointer types derived from object 4600 // or incomplete types shall not be restrict-qualified." 4601 if (TypeQuals & DeclSpec::TQ_restrict) 4602 Diag(DS.getRestrictSpecLoc(), 4603 diag::err_typecheck_invalid_restrict_not_pointer_noarg) 4604 << DS.getSourceRange(); 4605 } 4606 4607 if (DS.isInlineSpecified()) 4608 Diag(DS.getInlineSpecLoc(), diag::err_inline_non_function) 4609 << getLangOpts().CPlusPlus17; 4610 4611 if (DS.hasConstexprSpecifier()) { 4612 // C++0x [dcl.constexpr]p1: constexpr can only be applied to declarations 4613 // and definitions of functions and variables. 4614 // C++2a [dcl.constexpr]p1: The consteval specifier shall be applied only to 4615 // the declaration of a function or function template 4616 if (Tag) 4617 Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_tag) 4618 << GetDiagnosticTypeSpecifierID(DS.getTypeSpecType()) 4619 << static_cast<int>(DS.getConstexprSpecifier()); 4620 else 4621 Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_wrong_decl_kind) 4622 << static_cast<int>(DS.getConstexprSpecifier()); 4623 // Don't emit warnings after this error. 4624 return TagD; 4625 } 4626 4627 DiagnoseFunctionSpecifiers(DS); 4628 4629 if (DS.isFriendSpecified()) { 4630 // If we're dealing with a decl but not a TagDecl, assume that 4631 // whatever routines created it handled the friendship aspect. 4632 if (TagD && !Tag) 4633 return nullptr; 4634 return ActOnFriendTypeDecl(S, DS, TemplateParams); 4635 } 4636 4637 const CXXScopeSpec &SS = DS.getTypeSpecScope(); 4638 bool IsExplicitSpecialization = 4639 !TemplateParams.empty() && TemplateParams.back()->size() == 0; 4640 if (Tag && SS.isNotEmpty() && !Tag->isCompleteDefinition() && 4641 !IsExplicitInstantiation && !IsExplicitSpecialization && 4642 !isa<ClassTemplatePartialSpecializationDecl>(Tag)) { 4643 // Per C++ [dcl.type.elab]p1, a class declaration cannot have a 4644 // nested-name-specifier unless it is an explicit instantiation 4645 // or an explicit specialization. 4646 // 4647 // FIXME: We allow class template partial specializations here too, per the 4648 // obvious intent of DR1819. 4649 // 4650 // Per C++ [dcl.enum]p1, an opaque-enum-declaration can't either. 4651 Diag(SS.getBeginLoc(), diag::err_standalone_class_nested_name_specifier) 4652 << GetDiagnosticTypeSpecifierID(DS.getTypeSpecType()) << SS.getRange(); 4653 return nullptr; 4654 } 4655 4656 // Track whether this decl-specifier declares anything. 4657 bool DeclaresAnything = true; 4658 4659 // Handle anonymous struct definitions. 4660 if (RecordDecl *Record = dyn_cast_or_null<RecordDecl>(Tag)) { 4661 if (!Record->getDeclName() && Record->isCompleteDefinition() && 4662 DS.getStorageClassSpec() != DeclSpec::SCS_typedef) { 4663 if (getLangOpts().CPlusPlus || 4664 Record->getDeclContext()->isRecord()) { 4665 // If CurContext is a DeclContext that can contain statements, 4666 // RecursiveASTVisitor won't visit the decls that 4667 // BuildAnonymousStructOrUnion() will put into CurContext. 4668 // Also store them here so that they can be part of the 4669 // DeclStmt that gets created in this case. 4670 // FIXME: Also return the IndirectFieldDecls created by 4671 // BuildAnonymousStructOr union, for the same reason? 4672 if (CurContext->isFunctionOrMethod()) 4673 AnonRecord = Record; 4674 return BuildAnonymousStructOrUnion(S, DS, AS, Record, 4675 Context.getPrintingPolicy()); 4676 } 4677 4678 DeclaresAnything = false; 4679 } 4680 } 4681 4682 // C11 6.7.2.1p2: 4683 // A struct-declaration that does not declare an anonymous structure or 4684 // anonymous union shall contain a struct-declarator-list. 4685 // 4686 // This rule also existed in C89 and C99; the grammar for struct-declaration 4687 // did not permit a struct-declaration without a struct-declarator-list. 4688 if (!getLangOpts().CPlusPlus && CurContext->isRecord() && 4689 DS.getStorageClassSpec() == DeclSpec::SCS_unspecified) { 4690 // Check for Microsoft C extension: anonymous struct/union member. 4691 // Handle 2 kinds of anonymous struct/union: 4692 // struct STRUCT; 4693 // union UNION; 4694 // and 4695 // STRUCT_TYPE; <- where STRUCT_TYPE is a typedef struct. 4696 // UNION_TYPE; <- where UNION_TYPE is a typedef union. 4697 if ((Tag && Tag->getDeclName()) || 4698 DS.getTypeSpecType() == DeclSpec::TST_typename) { 4699 RecordDecl *Record = nullptr; 4700 if (Tag) 4701 Record = dyn_cast<RecordDecl>(Tag); 4702 else if (const RecordType *RT = 4703 DS.getRepAsType().get()->getAsStructureType()) 4704 Record = RT->getDecl(); 4705 else if (const RecordType *UT = DS.getRepAsType().get()->getAsUnionType()) 4706 Record = UT->getDecl(); 4707 4708 if (Record && getLangOpts().MicrosoftExt) { 4709 Diag(DS.getBeginLoc(), diag::ext_ms_anonymous_record) 4710 << Record->isUnion() << DS.getSourceRange(); 4711 return BuildMicrosoftCAnonymousStruct(S, DS, Record); 4712 } 4713 4714 DeclaresAnything = false; 4715 } 4716 } 4717 4718 // Skip all the checks below if we have a type error. 4719 if (DS.getTypeSpecType() == DeclSpec::TST_error || 4720 (TagD && TagD->isInvalidDecl())) 4721 return TagD; 4722 4723 if (getLangOpts().CPlusPlus && 4724 DS.getStorageClassSpec() != DeclSpec::SCS_typedef) 4725 if (EnumDecl *Enum = dyn_cast_or_null<EnumDecl>(Tag)) 4726 if (Enum->enumerator_begin() == Enum->enumerator_end() && 4727 !Enum->getIdentifier() && !Enum->isInvalidDecl()) 4728 DeclaresAnything = false; 4729 4730 if (!DS.isMissingDeclaratorOk()) { 4731 // Customize diagnostic for a typedef missing a name. 4732 if (DS.getStorageClassSpec() == DeclSpec::SCS_typedef) 4733 Diag(DS.getBeginLoc(), diag::ext_typedef_without_a_name) 4734 << DS.getSourceRange(); 4735 else 4736 DeclaresAnything = false; 4737 } 4738 4739 if (DS.isModulePrivateSpecified() && 4740 Tag && Tag->getDeclContext()->isFunctionOrMethod()) 4741 Diag(DS.getModulePrivateSpecLoc(), diag::err_module_private_local_class) 4742 << Tag->getTagKind() 4743 << FixItHint::CreateRemoval(DS.getModulePrivateSpecLoc()); 4744 4745 ActOnDocumentableDecl(TagD); 4746 4747 // C 6.7/2: 4748 // A declaration [...] shall declare at least a declarator [...], a tag, 4749 // or the members of an enumeration. 4750 // C++ [dcl.dcl]p3: 4751 // [If there are no declarators], and except for the declaration of an 4752 // unnamed bit-field, the decl-specifier-seq shall introduce one or more 4753 // names into the program, or shall redeclare a name introduced by a 4754 // previous declaration. 4755 if (!DeclaresAnything) { 4756 // In C, we allow this as a (popular) extension / bug. Don't bother 4757 // producing further diagnostics for redundant qualifiers after this. 4758 Diag(DS.getBeginLoc(), (IsExplicitInstantiation || !TemplateParams.empty()) 4759 ? diag::err_no_declarators 4760 : diag::ext_no_declarators) 4761 << DS.getSourceRange(); 4762 return TagD; 4763 } 4764 4765 // C++ [dcl.stc]p1: 4766 // If a storage-class-specifier appears in a decl-specifier-seq, [...] the 4767 // init-declarator-list of the declaration shall not be empty. 4768 // C++ [dcl.fct.spec]p1: 4769 // If a cv-qualifier appears in a decl-specifier-seq, the 4770 // init-declarator-list of the declaration shall not be empty. 4771 // 4772 // Spurious qualifiers here appear to be valid in C. 4773 unsigned DiagID = diag::warn_standalone_specifier; 4774 if (getLangOpts().CPlusPlus) 4775 DiagID = diag::ext_standalone_specifier; 4776 4777 // Note that a linkage-specification sets a storage class, but 4778 // 'extern "C" struct foo;' is actually valid and not theoretically 4779 // useless. 4780 if (DeclSpec::SCS SCS = DS.getStorageClassSpec()) { 4781 if (SCS == DeclSpec::SCS_mutable) 4782 // Since mutable is not a viable storage class specifier in C, there is 4783 // no reason to treat it as an extension. Instead, diagnose as an error. 4784 Diag(DS.getStorageClassSpecLoc(), diag::err_mutable_nonmember); 4785 else if (!DS.isExternInLinkageSpec() && SCS != DeclSpec::SCS_typedef) 4786 Diag(DS.getStorageClassSpecLoc(), DiagID) 4787 << DeclSpec::getSpecifierName(SCS); 4788 } 4789 4790 if (DeclSpec::TSCS TSCS = DS.getThreadStorageClassSpec()) 4791 Diag(DS.getThreadStorageClassSpecLoc(), DiagID) 4792 << DeclSpec::getSpecifierName(TSCS); 4793 if (DS.getTypeQualifiers()) { 4794 if (DS.getTypeQualifiers() & DeclSpec::TQ_const) 4795 Diag(DS.getConstSpecLoc(), DiagID) << "const"; 4796 if (DS.getTypeQualifiers() & DeclSpec::TQ_volatile) 4797 Diag(DS.getConstSpecLoc(), DiagID) << "volatile"; 4798 // Restrict is covered above. 4799 if (DS.getTypeQualifiers() & DeclSpec::TQ_atomic) 4800 Diag(DS.getAtomicSpecLoc(), DiagID) << "_Atomic"; 4801 if (DS.getTypeQualifiers() & DeclSpec::TQ_unaligned) 4802 Diag(DS.getUnalignedSpecLoc(), DiagID) << "__unaligned"; 4803 } 4804 4805 // Warn about ignored type attributes, for example: 4806 // __attribute__((aligned)) struct A; 4807 // Attributes should be placed after tag to apply to type declaration. 4808 if (!DS.getAttributes().empty()) { 4809 DeclSpec::TST TypeSpecType = DS.getTypeSpecType(); 4810 if (TypeSpecType == DeclSpec::TST_class || 4811 TypeSpecType == DeclSpec::TST_struct || 4812 TypeSpecType == DeclSpec::TST_interface || 4813 TypeSpecType == DeclSpec::TST_union || 4814 TypeSpecType == DeclSpec::TST_enum) { 4815 for (const ParsedAttr &AL : DS.getAttributes()) 4816 Diag(AL.getLoc(), diag::warn_declspec_attribute_ignored) 4817 << AL << GetDiagnosticTypeSpecifierID(TypeSpecType); 4818 } 4819 } 4820 4821 return TagD; 4822 } 4823 4824 /// We are trying to inject an anonymous member into the given scope; 4825 /// check if there's an existing declaration that can't be overloaded. 4826 /// 4827 /// \return true if this is a forbidden redeclaration 4828 static bool CheckAnonMemberRedeclaration(Sema &SemaRef, 4829 Scope *S, 4830 DeclContext *Owner, 4831 DeclarationName Name, 4832 SourceLocation NameLoc, 4833 bool IsUnion) { 4834 LookupResult R(SemaRef, Name, NameLoc, Sema::LookupMemberName, 4835 Sema::ForVisibleRedeclaration); 4836 if (!SemaRef.LookupName(R, S)) return false; 4837 4838 // Pick a representative declaration. 4839 NamedDecl *PrevDecl = R.getRepresentativeDecl()->getUnderlyingDecl(); 4840 assert(PrevDecl && "Expected a non-null Decl"); 4841 4842 if (!SemaRef.isDeclInScope(PrevDecl, Owner, S)) 4843 return false; 4844 4845 SemaRef.Diag(NameLoc, diag::err_anonymous_record_member_redecl) 4846 << IsUnion << Name; 4847 SemaRef.Diag(PrevDecl->getLocation(), diag::note_previous_declaration); 4848 4849 return true; 4850 } 4851 4852 /// InjectAnonymousStructOrUnionMembers - Inject the members of the 4853 /// anonymous struct or union AnonRecord into the owning context Owner 4854 /// and scope S. This routine will be invoked just after we realize 4855 /// that an unnamed union or struct is actually an anonymous union or 4856 /// struct, e.g., 4857 /// 4858 /// @code 4859 /// union { 4860 /// int i; 4861 /// float f; 4862 /// }; // InjectAnonymousStructOrUnionMembers called here to inject i and 4863 /// // f into the surrounding scope.x 4864 /// @endcode 4865 /// 4866 /// This routine is recursive, injecting the names of nested anonymous 4867 /// structs/unions into the owning context and scope as well. 4868 static bool 4869 InjectAnonymousStructOrUnionMembers(Sema &SemaRef, Scope *S, DeclContext *Owner, 4870 RecordDecl *AnonRecord, AccessSpecifier AS, 4871 SmallVectorImpl<NamedDecl *> &Chaining) { 4872 bool Invalid = false; 4873 4874 // Look every FieldDecl and IndirectFieldDecl with a name. 4875 for (auto *D : AnonRecord->decls()) { 4876 if ((isa<FieldDecl>(D) || isa<IndirectFieldDecl>(D)) && 4877 cast<NamedDecl>(D)->getDeclName()) { 4878 ValueDecl *VD = cast<ValueDecl>(D); 4879 if (CheckAnonMemberRedeclaration(SemaRef, S, Owner, VD->getDeclName(), 4880 VD->getLocation(), 4881 AnonRecord->isUnion())) { 4882 // C++ [class.union]p2: 4883 // The names of the members of an anonymous union shall be 4884 // distinct from the names of any other entity in the 4885 // scope in which the anonymous union is declared. 4886 Invalid = true; 4887 } else { 4888 // C++ [class.union]p2: 4889 // For the purpose of name lookup, after the anonymous union 4890 // definition, the members of the anonymous union are 4891 // considered to have been defined in the scope in which the 4892 // anonymous union is declared. 4893 unsigned OldChainingSize = Chaining.size(); 4894 if (IndirectFieldDecl *IF = dyn_cast<IndirectFieldDecl>(VD)) 4895 Chaining.append(IF->chain_begin(), IF->chain_end()); 4896 else 4897 Chaining.push_back(VD); 4898 4899 assert(Chaining.size() >= 2); 4900 NamedDecl **NamedChain = 4901 new (SemaRef.Context)NamedDecl*[Chaining.size()]; 4902 for (unsigned i = 0; i < Chaining.size(); i++) 4903 NamedChain[i] = Chaining[i]; 4904 4905 IndirectFieldDecl *IndirectField = IndirectFieldDecl::Create( 4906 SemaRef.Context, Owner, VD->getLocation(), VD->getIdentifier(), 4907 VD->getType(), {NamedChain, Chaining.size()}); 4908 4909 for (const auto *Attr : VD->attrs()) 4910 IndirectField->addAttr(Attr->clone(SemaRef.Context)); 4911 4912 IndirectField->setAccess(AS); 4913 IndirectField->setImplicit(); 4914 SemaRef.PushOnScopeChains(IndirectField, S); 4915 4916 // That includes picking up the appropriate access specifier. 4917 if (AS != AS_none) IndirectField->setAccess(AS); 4918 4919 Chaining.resize(OldChainingSize); 4920 } 4921 } 4922 } 4923 4924 return Invalid; 4925 } 4926 4927 /// StorageClassSpecToVarDeclStorageClass - Maps a DeclSpec::SCS to 4928 /// a VarDecl::StorageClass. Any error reporting is up to the caller: 4929 /// illegal input values are mapped to SC_None. 4930 static StorageClass 4931 StorageClassSpecToVarDeclStorageClass(const DeclSpec &DS) { 4932 DeclSpec::SCS StorageClassSpec = DS.getStorageClassSpec(); 4933 assert(StorageClassSpec != DeclSpec::SCS_typedef && 4934 "Parser allowed 'typedef' as storage class VarDecl."); 4935 switch (StorageClassSpec) { 4936 case DeclSpec::SCS_unspecified: return SC_None; 4937 case DeclSpec::SCS_extern: 4938 if (DS.isExternInLinkageSpec()) 4939 return SC_None; 4940 return SC_Extern; 4941 case DeclSpec::SCS_static: return SC_Static; 4942 case DeclSpec::SCS_auto: return SC_Auto; 4943 case DeclSpec::SCS_register: return SC_Register; 4944 case DeclSpec::SCS_private_extern: return SC_PrivateExtern; 4945 // Illegal SCSs map to None: error reporting is up to the caller. 4946 case DeclSpec::SCS_mutable: // Fall through. 4947 case DeclSpec::SCS_typedef: return SC_None; 4948 } 4949 llvm_unreachable("unknown storage class specifier"); 4950 } 4951 4952 static SourceLocation findDefaultInitializer(const CXXRecordDecl *Record) { 4953 assert(Record->hasInClassInitializer()); 4954 4955 for (const auto *I : Record->decls()) { 4956 const auto *FD = dyn_cast<FieldDecl>(I); 4957 if (const auto *IFD = dyn_cast<IndirectFieldDecl>(I)) 4958 FD = IFD->getAnonField(); 4959 if (FD && FD->hasInClassInitializer()) 4960 return FD->getLocation(); 4961 } 4962 4963 llvm_unreachable("couldn't find in-class initializer"); 4964 } 4965 4966 static void checkDuplicateDefaultInit(Sema &S, CXXRecordDecl *Parent, 4967 SourceLocation DefaultInitLoc) { 4968 if (!Parent->isUnion() || !Parent->hasInClassInitializer()) 4969 return; 4970 4971 S.Diag(DefaultInitLoc, diag::err_multiple_mem_union_initialization); 4972 S.Diag(findDefaultInitializer(Parent), diag::note_previous_initializer) << 0; 4973 } 4974 4975 static void checkDuplicateDefaultInit(Sema &S, CXXRecordDecl *Parent, 4976 CXXRecordDecl *AnonUnion) { 4977 if (!Parent->isUnion() || !Parent->hasInClassInitializer()) 4978 return; 4979 4980 checkDuplicateDefaultInit(S, Parent, findDefaultInitializer(AnonUnion)); 4981 } 4982 4983 /// BuildAnonymousStructOrUnion - Handle the declaration of an 4984 /// anonymous structure or union. Anonymous unions are a C++ feature 4985 /// (C++ [class.union]) and a C11 feature; anonymous structures 4986 /// are a C11 feature and GNU C++ extension. 4987 Decl *Sema::BuildAnonymousStructOrUnion(Scope *S, DeclSpec &DS, 4988 AccessSpecifier AS, 4989 RecordDecl *Record, 4990 const PrintingPolicy &Policy) { 4991 DeclContext *Owner = Record->getDeclContext(); 4992 4993 // Diagnose whether this anonymous struct/union is an extension. 4994 if (Record->isUnion() && !getLangOpts().CPlusPlus && !getLangOpts().C11) 4995 Diag(Record->getLocation(), diag::ext_anonymous_union); 4996 else if (!Record->isUnion() && getLangOpts().CPlusPlus) 4997 Diag(Record->getLocation(), diag::ext_gnu_anonymous_struct); 4998 else if (!Record->isUnion() && !getLangOpts().C11) 4999 Diag(Record->getLocation(), diag::ext_c11_anonymous_struct); 5000 5001 // C and C++ require different kinds of checks for anonymous 5002 // structs/unions. 5003 bool Invalid = false; 5004 if (getLangOpts().CPlusPlus) { 5005 const char *PrevSpec = nullptr; 5006 if (Record->isUnion()) { 5007 // C++ [class.union]p6: 5008 // C++17 [class.union.anon]p2: 5009 // Anonymous unions declared in a named namespace or in the 5010 // global namespace shall be declared static. 5011 unsigned DiagID; 5012 DeclContext *OwnerScope = Owner->getRedeclContext(); 5013 if (DS.getStorageClassSpec() != DeclSpec::SCS_static && 5014 (OwnerScope->isTranslationUnit() || 5015 (OwnerScope->isNamespace() && 5016 !cast<NamespaceDecl>(OwnerScope)->isAnonymousNamespace()))) { 5017 Diag(Record->getLocation(), diag::err_anonymous_union_not_static) 5018 << FixItHint::CreateInsertion(Record->getLocation(), "static "); 5019 5020 // Recover by adding 'static'. 5021 DS.SetStorageClassSpec(*this, DeclSpec::SCS_static, SourceLocation(), 5022 PrevSpec, DiagID, Policy); 5023 } 5024 // C++ [class.union]p6: 5025 // A storage class is not allowed in a declaration of an 5026 // anonymous union in a class scope. 5027 else if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified && 5028 isa<RecordDecl>(Owner)) { 5029 Diag(DS.getStorageClassSpecLoc(), 5030 diag::err_anonymous_union_with_storage_spec) 5031 << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc()); 5032 5033 // Recover by removing the storage specifier. 5034 DS.SetStorageClassSpec(*this, DeclSpec::SCS_unspecified, 5035 SourceLocation(), 5036 PrevSpec, DiagID, Context.getPrintingPolicy()); 5037 } 5038 } 5039 5040 // Ignore const/volatile/restrict qualifiers. 5041 if (DS.getTypeQualifiers()) { 5042 if (DS.getTypeQualifiers() & DeclSpec::TQ_const) 5043 Diag(DS.getConstSpecLoc(), diag::ext_anonymous_struct_union_qualified) 5044 << Record->isUnion() << "const" 5045 << FixItHint::CreateRemoval(DS.getConstSpecLoc()); 5046 if (DS.getTypeQualifiers() & DeclSpec::TQ_volatile) 5047 Diag(DS.getVolatileSpecLoc(), 5048 diag::ext_anonymous_struct_union_qualified) 5049 << Record->isUnion() << "volatile" 5050 << FixItHint::CreateRemoval(DS.getVolatileSpecLoc()); 5051 if (DS.getTypeQualifiers() & DeclSpec::TQ_restrict) 5052 Diag(DS.getRestrictSpecLoc(), 5053 diag::ext_anonymous_struct_union_qualified) 5054 << Record->isUnion() << "restrict" 5055 << FixItHint::CreateRemoval(DS.getRestrictSpecLoc()); 5056 if (DS.getTypeQualifiers() & DeclSpec::TQ_atomic) 5057 Diag(DS.getAtomicSpecLoc(), 5058 diag::ext_anonymous_struct_union_qualified) 5059 << Record->isUnion() << "_Atomic" 5060 << FixItHint::CreateRemoval(DS.getAtomicSpecLoc()); 5061 if (DS.getTypeQualifiers() & DeclSpec::TQ_unaligned) 5062 Diag(DS.getUnalignedSpecLoc(), 5063 diag::ext_anonymous_struct_union_qualified) 5064 << Record->isUnion() << "__unaligned" 5065 << FixItHint::CreateRemoval(DS.getUnalignedSpecLoc()); 5066 5067 DS.ClearTypeQualifiers(); 5068 } 5069 5070 // C++ [class.union]p2: 5071 // The member-specification of an anonymous union shall only 5072 // define non-static data members. [Note: nested types and 5073 // functions cannot be declared within an anonymous union. ] 5074 for (auto *Mem : Record->decls()) { 5075 // Ignore invalid declarations; we already diagnosed them. 5076 if (Mem->isInvalidDecl()) 5077 continue; 5078 5079 if (auto *FD = dyn_cast<FieldDecl>(Mem)) { 5080 // C++ [class.union]p3: 5081 // An anonymous union shall not have private or protected 5082 // members (clause 11). 5083 assert(FD->getAccess() != AS_none); 5084 if (FD->getAccess() != AS_public) { 5085 Diag(FD->getLocation(), diag::err_anonymous_record_nonpublic_member) 5086 << Record->isUnion() << (FD->getAccess() == AS_protected); 5087 Invalid = true; 5088 } 5089 5090 // C++ [class.union]p1 5091 // An object of a class with a non-trivial constructor, a non-trivial 5092 // copy constructor, a non-trivial destructor, or a non-trivial copy 5093 // assignment operator cannot be a member of a union, nor can an 5094 // array of such objects. 5095 if (CheckNontrivialField(FD)) 5096 Invalid = true; 5097 } else if (Mem->isImplicit()) { 5098 // Any implicit members are fine. 5099 } else if (isa<TagDecl>(Mem) && Mem->getDeclContext() != Record) { 5100 // This is a type that showed up in an 5101 // elaborated-type-specifier inside the anonymous struct or 5102 // union, but which actually declares a type outside of the 5103 // anonymous struct or union. It's okay. 5104 } else if (auto *MemRecord = dyn_cast<RecordDecl>(Mem)) { 5105 if (!MemRecord->isAnonymousStructOrUnion() && 5106 MemRecord->getDeclName()) { 5107 // Visual C++ allows type definition in anonymous struct or union. 5108 if (getLangOpts().MicrosoftExt) 5109 Diag(MemRecord->getLocation(), diag::ext_anonymous_record_with_type) 5110 << Record->isUnion(); 5111 else { 5112 // This is a nested type declaration. 5113 Diag(MemRecord->getLocation(), diag::err_anonymous_record_with_type) 5114 << Record->isUnion(); 5115 Invalid = true; 5116 } 5117 } else { 5118 // This is an anonymous type definition within another anonymous type. 5119 // This is a popular extension, provided by Plan9, MSVC and GCC, but 5120 // not part of standard C++. 5121 Diag(MemRecord->getLocation(), 5122 diag::ext_anonymous_record_with_anonymous_type) 5123 << Record->isUnion(); 5124 } 5125 } else if (isa<AccessSpecDecl>(Mem)) { 5126 // Any access specifier is fine. 5127 } else if (isa<StaticAssertDecl>(Mem)) { 5128 // In C++1z, static_assert declarations are also fine. 5129 } else { 5130 // We have something that isn't a non-static data 5131 // member. Complain about it. 5132 unsigned DK = diag::err_anonymous_record_bad_member; 5133 if (isa<TypeDecl>(Mem)) 5134 DK = diag::err_anonymous_record_with_type; 5135 else if (isa<FunctionDecl>(Mem)) 5136 DK = diag::err_anonymous_record_with_function; 5137 else if (isa<VarDecl>(Mem)) 5138 DK = diag::err_anonymous_record_with_static; 5139 5140 // Visual C++ allows type definition in anonymous struct or union. 5141 if (getLangOpts().MicrosoftExt && 5142 DK == diag::err_anonymous_record_with_type) 5143 Diag(Mem->getLocation(), diag::ext_anonymous_record_with_type) 5144 << Record->isUnion(); 5145 else { 5146 Diag(Mem->getLocation(), DK) << Record->isUnion(); 5147 Invalid = true; 5148 } 5149 } 5150 } 5151 5152 // C++11 [class.union]p8 (DR1460): 5153 // At most one variant member of a union may have a 5154 // brace-or-equal-initializer. 5155 if (cast<CXXRecordDecl>(Record)->hasInClassInitializer() && 5156 Owner->isRecord()) 5157 checkDuplicateDefaultInit(*this, cast<CXXRecordDecl>(Owner), 5158 cast<CXXRecordDecl>(Record)); 5159 } 5160 5161 if (!Record->isUnion() && !Owner->isRecord()) { 5162 Diag(Record->getLocation(), diag::err_anonymous_struct_not_member) 5163 << getLangOpts().CPlusPlus; 5164 Invalid = true; 5165 } 5166 5167 // C++ [dcl.dcl]p3: 5168 // [If there are no declarators], and except for the declaration of an 5169 // unnamed bit-field, the decl-specifier-seq shall introduce one or more 5170 // names into the program 5171 // C++ [class.mem]p2: 5172 // each such member-declaration shall either declare at least one member 5173 // name of the class or declare at least one unnamed bit-field 5174 // 5175 // For C this is an error even for a named struct, and is diagnosed elsewhere. 5176 if (getLangOpts().CPlusPlus && Record->field_empty()) 5177 Diag(DS.getBeginLoc(), diag::ext_no_declarators) << DS.getSourceRange(); 5178 5179 // Mock up a declarator. 5180 Declarator Dc(DS, DeclaratorContext::Member); 5181 TypeSourceInfo *TInfo = GetTypeForDeclarator(Dc, S); 5182 assert(TInfo && "couldn't build declarator info for anonymous struct/union"); 5183 5184 // Create a declaration for this anonymous struct/union. 5185 NamedDecl *Anon = nullptr; 5186 if (RecordDecl *OwningClass = dyn_cast<RecordDecl>(Owner)) { 5187 Anon = FieldDecl::Create( 5188 Context, OwningClass, DS.getBeginLoc(), Record->getLocation(), 5189 /*IdentifierInfo=*/nullptr, Context.getTypeDeclType(Record), TInfo, 5190 /*BitWidth=*/nullptr, /*Mutable=*/false, 5191 /*InitStyle=*/ICIS_NoInit); 5192 Anon->setAccess(AS); 5193 ProcessDeclAttributes(S, Anon, Dc); 5194 5195 if (getLangOpts().CPlusPlus) 5196 FieldCollector->Add(cast<FieldDecl>(Anon)); 5197 } else { 5198 DeclSpec::SCS SCSpec = DS.getStorageClassSpec(); 5199 StorageClass SC = StorageClassSpecToVarDeclStorageClass(DS); 5200 if (SCSpec == DeclSpec::SCS_mutable) { 5201 // mutable can only appear on non-static class members, so it's always 5202 // an error here 5203 Diag(Record->getLocation(), diag::err_mutable_nonmember); 5204 Invalid = true; 5205 SC = SC_None; 5206 } 5207 5208 assert(DS.getAttributes().empty() && "No attribute expected"); 5209 Anon = VarDecl::Create(Context, Owner, DS.getBeginLoc(), 5210 Record->getLocation(), /*IdentifierInfo=*/nullptr, 5211 Context.getTypeDeclType(Record), TInfo, SC); 5212 5213 // Default-initialize the implicit variable. This initialization will be 5214 // trivial in almost all cases, except if a union member has an in-class 5215 // initializer: 5216 // union { int n = 0; }; 5217 if (!Invalid) 5218 ActOnUninitializedDecl(Anon); 5219 } 5220 Anon->setImplicit(); 5221 5222 // Mark this as an anonymous struct/union type. 5223 Record->setAnonymousStructOrUnion(true); 5224 5225 // Add the anonymous struct/union object to the current 5226 // context. We'll be referencing this object when we refer to one of 5227 // its members. 5228 Owner->addDecl(Anon); 5229 5230 // Inject the members of the anonymous struct/union into the owning 5231 // context and into the identifier resolver chain for name lookup 5232 // purposes. 5233 SmallVector<NamedDecl*, 2> Chain; 5234 Chain.push_back(Anon); 5235 5236 if (InjectAnonymousStructOrUnionMembers(*this, S, Owner, Record, AS, Chain)) 5237 Invalid = true; 5238 5239 if (VarDecl *NewVD = dyn_cast<VarDecl>(Anon)) { 5240 if (getLangOpts().CPlusPlus && NewVD->isStaticLocal()) { 5241 MangleNumberingContext *MCtx; 5242 Decl *ManglingContextDecl; 5243 std::tie(MCtx, ManglingContextDecl) = 5244 getCurrentMangleNumberContext(NewVD->getDeclContext()); 5245 if (MCtx) { 5246 Context.setManglingNumber( 5247 NewVD, MCtx->getManglingNumber( 5248 NewVD, getMSManglingNumber(getLangOpts(), S))); 5249 Context.setStaticLocalNumber(NewVD, MCtx->getStaticLocalNumber(NewVD)); 5250 } 5251 } 5252 } 5253 5254 if (Invalid) 5255 Anon->setInvalidDecl(); 5256 5257 return Anon; 5258 } 5259 5260 /// BuildMicrosoftCAnonymousStruct - Handle the declaration of an 5261 /// Microsoft C anonymous structure. 5262 /// Ref: http://msdn.microsoft.com/en-us/library/z2cx9y4f.aspx 5263 /// Example: 5264 /// 5265 /// struct A { int a; }; 5266 /// struct B { struct A; int b; }; 5267 /// 5268 /// void foo() { 5269 /// B var; 5270 /// var.a = 3; 5271 /// } 5272 /// 5273 Decl *Sema::BuildMicrosoftCAnonymousStruct(Scope *S, DeclSpec &DS, 5274 RecordDecl *Record) { 5275 assert(Record && "expected a record!"); 5276 5277 // Mock up a declarator. 5278 Declarator Dc(DS, DeclaratorContext::TypeName); 5279 TypeSourceInfo *TInfo = GetTypeForDeclarator(Dc, S); 5280 assert(TInfo && "couldn't build declarator info for anonymous struct"); 5281 5282 auto *ParentDecl = cast<RecordDecl>(CurContext); 5283 QualType RecTy = Context.getTypeDeclType(Record); 5284 5285 // Create a declaration for this anonymous struct. 5286 NamedDecl *Anon = 5287 FieldDecl::Create(Context, ParentDecl, DS.getBeginLoc(), DS.getBeginLoc(), 5288 /*IdentifierInfo=*/nullptr, RecTy, TInfo, 5289 /*BitWidth=*/nullptr, /*Mutable=*/false, 5290 /*InitStyle=*/ICIS_NoInit); 5291 Anon->setImplicit(); 5292 5293 // Add the anonymous struct object to the current context. 5294 CurContext->addDecl(Anon); 5295 5296 // Inject the members of the anonymous struct into the current 5297 // context and into the identifier resolver chain for name lookup 5298 // purposes. 5299 SmallVector<NamedDecl*, 2> Chain; 5300 Chain.push_back(Anon); 5301 5302 RecordDecl *RecordDef = Record->getDefinition(); 5303 if (RequireCompleteSizedType(Anon->getLocation(), RecTy, 5304 diag::err_field_incomplete_or_sizeless) || 5305 InjectAnonymousStructOrUnionMembers(*this, S, CurContext, RecordDef, 5306 AS_none, Chain)) { 5307 Anon->setInvalidDecl(); 5308 ParentDecl->setInvalidDecl(); 5309 } 5310 5311 return Anon; 5312 } 5313 5314 /// GetNameForDeclarator - Determine the full declaration name for the 5315 /// given Declarator. 5316 DeclarationNameInfo Sema::GetNameForDeclarator(Declarator &D) { 5317 return GetNameFromUnqualifiedId(D.getName()); 5318 } 5319 5320 /// Retrieves the declaration name from a parsed unqualified-id. 5321 DeclarationNameInfo 5322 Sema::GetNameFromUnqualifiedId(const UnqualifiedId &Name) { 5323 DeclarationNameInfo NameInfo; 5324 NameInfo.setLoc(Name.StartLocation); 5325 5326 switch (Name.getKind()) { 5327 5328 case UnqualifiedIdKind::IK_ImplicitSelfParam: 5329 case UnqualifiedIdKind::IK_Identifier: 5330 NameInfo.setName(Name.Identifier); 5331 return NameInfo; 5332 5333 case UnqualifiedIdKind::IK_DeductionGuideName: { 5334 // C++ [temp.deduct.guide]p3: 5335 // The simple-template-id shall name a class template specialization. 5336 // The template-name shall be the same identifier as the template-name 5337 // of the simple-template-id. 5338 // These together intend to imply that the template-name shall name a 5339 // class template. 5340 // FIXME: template<typename T> struct X {}; 5341 // template<typename T> using Y = X<T>; 5342 // Y(int) -> Y<int>; 5343 // satisfies these rules but does not name a class template. 5344 TemplateName TN = Name.TemplateName.get().get(); 5345 auto *Template = TN.getAsTemplateDecl(); 5346 if (!Template || !isa<ClassTemplateDecl>(Template)) { 5347 Diag(Name.StartLocation, 5348 diag::err_deduction_guide_name_not_class_template) 5349 << (int)getTemplateNameKindForDiagnostics(TN) << TN; 5350 if (Template) 5351 Diag(Template->getLocation(), diag::note_template_decl_here); 5352 return DeclarationNameInfo(); 5353 } 5354 5355 NameInfo.setName( 5356 Context.DeclarationNames.getCXXDeductionGuideName(Template)); 5357 return NameInfo; 5358 } 5359 5360 case UnqualifiedIdKind::IK_OperatorFunctionId: 5361 NameInfo.setName(Context.DeclarationNames.getCXXOperatorName( 5362 Name.OperatorFunctionId.Operator)); 5363 NameInfo.setCXXOperatorNameRange(SourceRange( 5364 Name.OperatorFunctionId.SymbolLocations[0], Name.EndLocation)); 5365 return NameInfo; 5366 5367 case UnqualifiedIdKind::IK_LiteralOperatorId: 5368 NameInfo.setName(Context.DeclarationNames.getCXXLiteralOperatorName( 5369 Name.Identifier)); 5370 NameInfo.setCXXLiteralOperatorNameLoc(Name.EndLocation); 5371 return NameInfo; 5372 5373 case UnqualifiedIdKind::IK_ConversionFunctionId: { 5374 TypeSourceInfo *TInfo; 5375 QualType Ty = GetTypeFromParser(Name.ConversionFunctionId, &TInfo); 5376 if (Ty.isNull()) 5377 return DeclarationNameInfo(); 5378 NameInfo.setName(Context.DeclarationNames.getCXXConversionFunctionName( 5379 Context.getCanonicalType(Ty))); 5380 NameInfo.setNamedTypeInfo(TInfo); 5381 return NameInfo; 5382 } 5383 5384 case UnqualifiedIdKind::IK_ConstructorName: { 5385 TypeSourceInfo *TInfo; 5386 QualType Ty = GetTypeFromParser(Name.ConstructorName, &TInfo); 5387 if (Ty.isNull()) 5388 return DeclarationNameInfo(); 5389 NameInfo.setName(Context.DeclarationNames.getCXXConstructorName( 5390 Context.getCanonicalType(Ty))); 5391 NameInfo.setNamedTypeInfo(TInfo); 5392 return NameInfo; 5393 } 5394 5395 case UnqualifiedIdKind::IK_ConstructorTemplateId: { 5396 // In well-formed code, we can only have a constructor 5397 // template-id that refers to the current context, so go there 5398 // to find the actual type being constructed. 5399 CXXRecordDecl *CurClass = dyn_cast<CXXRecordDecl>(CurContext); 5400 if (!CurClass || CurClass->getIdentifier() != Name.TemplateId->Name) 5401 return DeclarationNameInfo(); 5402 5403 // Determine the type of the class being constructed. 5404 QualType CurClassType = Context.getTypeDeclType(CurClass); 5405 5406 // FIXME: Check two things: that the template-id names the same type as 5407 // CurClassType, and that the template-id does not occur when the name 5408 // was qualified. 5409 5410 NameInfo.setName(Context.DeclarationNames.getCXXConstructorName( 5411 Context.getCanonicalType(CurClassType))); 5412 // FIXME: should we retrieve TypeSourceInfo? 5413 NameInfo.setNamedTypeInfo(nullptr); 5414 return NameInfo; 5415 } 5416 5417 case UnqualifiedIdKind::IK_DestructorName: { 5418 TypeSourceInfo *TInfo; 5419 QualType Ty = GetTypeFromParser(Name.DestructorName, &TInfo); 5420 if (Ty.isNull()) 5421 return DeclarationNameInfo(); 5422 NameInfo.setName(Context.DeclarationNames.getCXXDestructorName( 5423 Context.getCanonicalType(Ty))); 5424 NameInfo.setNamedTypeInfo(TInfo); 5425 return NameInfo; 5426 } 5427 5428 case UnqualifiedIdKind::IK_TemplateId: { 5429 TemplateName TName = Name.TemplateId->Template.get(); 5430 SourceLocation TNameLoc = Name.TemplateId->TemplateNameLoc; 5431 return Context.getNameForTemplate(TName, TNameLoc); 5432 } 5433 5434 } // switch (Name.getKind()) 5435 5436 llvm_unreachable("Unknown name kind"); 5437 } 5438 5439 static QualType getCoreType(QualType Ty) { 5440 do { 5441 if (Ty->isPointerType() || Ty->isReferenceType()) 5442 Ty = Ty->getPointeeType(); 5443 else if (Ty->isArrayType()) 5444 Ty = Ty->castAsArrayTypeUnsafe()->getElementType(); 5445 else 5446 return Ty.withoutLocalFastQualifiers(); 5447 } while (true); 5448 } 5449 5450 /// hasSimilarParameters - Determine whether the C++ functions Declaration 5451 /// and Definition have "nearly" matching parameters. This heuristic is 5452 /// used to improve diagnostics in the case where an out-of-line function 5453 /// definition doesn't match any declaration within the class or namespace. 5454 /// Also sets Params to the list of indices to the parameters that differ 5455 /// between the declaration and the definition. If hasSimilarParameters 5456 /// returns true and Params is empty, then all of the parameters match. 5457 static bool hasSimilarParameters(ASTContext &Context, 5458 FunctionDecl *Declaration, 5459 FunctionDecl *Definition, 5460 SmallVectorImpl<unsigned> &Params) { 5461 Params.clear(); 5462 if (Declaration->param_size() != Definition->param_size()) 5463 return false; 5464 for (unsigned Idx = 0; Idx < Declaration->param_size(); ++Idx) { 5465 QualType DeclParamTy = Declaration->getParamDecl(Idx)->getType(); 5466 QualType DefParamTy = Definition->getParamDecl(Idx)->getType(); 5467 5468 // The parameter types are identical 5469 if (Context.hasSameUnqualifiedType(DefParamTy, DeclParamTy)) 5470 continue; 5471 5472 QualType DeclParamBaseTy = getCoreType(DeclParamTy); 5473 QualType DefParamBaseTy = getCoreType(DefParamTy); 5474 const IdentifierInfo *DeclTyName = DeclParamBaseTy.getBaseTypeIdentifier(); 5475 const IdentifierInfo *DefTyName = DefParamBaseTy.getBaseTypeIdentifier(); 5476 5477 if (Context.hasSameUnqualifiedType(DeclParamBaseTy, DefParamBaseTy) || 5478 (DeclTyName && DeclTyName == DefTyName)) 5479 Params.push_back(Idx); 5480 else // The two parameters aren't even close 5481 return false; 5482 } 5483 5484 return true; 5485 } 5486 5487 /// NeedsRebuildingInCurrentInstantiation - Checks whether the given 5488 /// declarator needs to be rebuilt in the current instantiation. 5489 /// Any bits of declarator which appear before the name are valid for 5490 /// consideration here. That's specifically the type in the decl spec 5491 /// and the base type in any member-pointer chunks. 5492 static bool RebuildDeclaratorInCurrentInstantiation(Sema &S, Declarator &D, 5493 DeclarationName Name) { 5494 // The types we specifically need to rebuild are: 5495 // - typenames, typeofs, and decltypes 5496 // - types which will become injected class names 5497 // Of course, we also need to rebuild any type referencing such a 5498 // type. It's safest to just say "dependent", but we call out a 5499 // few cases here. 5500 5501 DeclSpec &DS = D.getMutableDeclSpec(); 5502 switch (DS.getTypeSpecType()) { 5503 case DeclSpec::TST_typename: 5504 case DeclSpec::TST_typeofType: 5505 case DeclSpec::TST_underlyingType: 5506 case DeclSpec::TST_atomic: { 5507 // Grab the type from the parser. 5508 TypeSourceInfo *TSI = nullptr; 5509 QualType T = S.GetTypeFromParser(DS.getRepAsType(), &TSI); 5510 if (T.isNull() || !T->isInstantiationDependentType()) break; 5511 5512 // Make sure there's a type source info. This isn't really much 5513 // of a waste; most dependent types should have type source info 5514 // attached already. 5515 if (!TSI) 5516 TSI = S.Context.getTrivialTypeSourceInfo(T, DS.getTypeSpecTypeLoc()); 5517 5518 // Rebuild the type in the current instantiation. 5519 TSI = S.RebuildTypeInCurrentInstantiation(TSI, D.getIdentifierLoc(), Name); 5520 if (!TSI) return true; 5521 5522 // Store the new type back in the decl spec. 5523 ParsedType LocType = S.CreateParsedType(TSI->getType(), TSI); 5524 DS.UpdateTypeRep(LocType); 5525 break; 5526 } 5527 5528 case DeclSpec::TST_decltype: 5529 case DeclSpec::TST_typeofExpr: { 5530 Expr *E = DS.getRepAsExpr(); 5531 ExprResult Result = S.RebuildExprInCurrentInstantiation(E); 5532 if (Result.isInvalid()) return true; 5533 DS.UpdateExprRep(Result.get()); 5534 break; 5535 } 5536 5537 default: 5538 // Nothing to do for these decl specs. 5539 break; 5540 } 5541 5542 // It doesn't matter what order we do this in. 5543 for (unsigned I = 0, E = D.getNumTypeObjects(); I != E; ++I) { 5544 DeclaratorChunk &Chunk = D.getTypeObject(I); 5545 5546 // The only type information in the declarator which can come 5547 // before the declaration name is the base type of a member 5548 // pointer. 5549 if (Chunk.Kind != DeclaratorChunk::MemberPointer) 5550 continue; 5551 5552 // Rebuild the scope specifier in-place. 5553 CXXScopeSpec &SS = Chunk.Mem.Scope(); 5554 if (S.RebuildNestedNameSpecifierInCurrentInstantiation(SS)) 5555 return true; 5556 } 5557 5558 return false; 5559 } 5560 5561 Decl *Sema::ActOnDeclarator(Scope *S, Declarator &D) { 5562 D.setFunctionDefinitionKind(FunctionDefinitionKind::Declaration); 5563 Decl *Dcl = HandleDeclarator(S, D, MultiTemplateParamsArg()); 5564 5565 if (OriginalLexicalContext && OriginalLexicalContext->isObjCContainer() && 5566 Dcl && Dcl->getDeclContext()->isFileContext()) 5567 Dcl->setTopLevelDeclInObjCContainer(); 5568 5569 if (getLangOpts().OpenCL) 5570 setCurrentOpenCLExtensionForDecl(Dcl); 5571 5572 return Dcl; 5573 } 5574 5575 /// DiagnoseClassNameShadow - Implement C++ [class.mem]p13: 5576 /// If T is the name of a class, then each of the following shall have a 5577 /// name different from T: 5578 /// - every static data member of class T; 5579 /// - every member function of class T 5580 /// - every member of class T that is itself a type; 5581 /// \returns true if the declaration name violates these rules. 5582 bool Sema::DiagnoseClassNameShadow(DeclContext *DC, 5583 DeclarationNameInfo NameInfo) { 5584 DeclarationName Name = NameInfo.getName(); 5585 5586 CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(DC); 5587 while (Record && Record->isAnonymousStructOrUnion()) 5588 Record = dyn_cast<CXXRecordDecl>(Record->getParent()); 5589 if (Record && Record->getIdentifier() && Record->getDeclName() == Name) { 5590 Diag(NameInfo.getLoc(), diag::err_member_name_of_class) << Name; 5591 return true; 5592 } 5593 5594 return false; 5595 } 5596 5597 /// Diagnose a declaration whose declarator-id has the given 5598 /// nested-name-specifier. 5599 /// 5600 /// \param SS The nested-name-specifier of the declarator-id. 5601 /// 5602 /// \param DC The declaration context to which the nested-name-specifier 5603 /// resolves. 5604 /// 5605 /// \param Name The name of the entity being declared. 5606 /// 5607 /// \param Loc The location of the name of the entity being declared. 5608 /// 5609 /// \param IsTemplateId Whether the name is a (simple-)template-id, and thus 5610 /// we're declaring an explicit / partial specialization / instantiation. 5611 /// 5612 /// \returns true if we cannot safely recover from this error, false otherwise. 5613 bool Sema::diagnoseQualifiedDeclaration(CXXScopeSpec &SS, DeclContext *DC, 5614 DeclarationName Name, 5615 SourceLocation Loc, bool IsTemplateId) { 5616 DeclContext *Cur = CurContext; 5617 while (isa<LinkageSpecDecl>(Cur) || isa<CapturedDecl>(Cur)) 5618 Cur = Cur->getParent(); 5619 5620 // If the user provided a superfluous scope specifier that refers back to the 5621 // class in which the entity is already declared, diagnose and ignore it. 5622 // 5623 // class X { 5624 // void X::f(); 5625 // }; 5626 // 5627 // Note, it was once ill-formed to give redundant qualification in all 5628 // contexts, but that rule was removed by DR482. 5629 if (Cur->Equals(DC)) { 5630 if (Cur->isRecord()) { 5631 Diag(Loc, LangOpts.MicrosoftExt ? diag::warn_member_extra_qualification 5632 : diag::err_member_extra_qualification) 5633 << Name << FixItHint::CreateRemoval(SS.getRange()); 5634 SS.clear(); 5635 } else { 5636 Diag(Loc, diag::warn_namespace_member_extra_qualification) << Name; 5637 } 5638 return false; 5639 } 5640 5641 // Check whether the qualifying scope encloses the scope of the original 5642 // declaration. For a template-id, we perform the checks in 5643 // CheckTemplateSpecializationScope. 5644 if (!Cur->Encloses(DC) && !IsTemplateId) { 5645 if (Cur->isRecord()) 5646 Diag(Loc, diag::err_member_qualification) 5647 << Name << SS.getRange(); 5648 else if (isa<TranslationUnitDecl>(DC)) 5649 Diag(Loc, diag::err_invalid_declarator_global_scope) 5650 << Name << SS.getRange(); 5651 else if (isa<FunctionDecl>(Cur)) 5652 Diag(Loc, diag::err_invalid_declarator_in_function) 5653 << Name << SS.getRange(); 5654 else if (isa<BlockDecl>(Cur)) 5655 Diag(Loc, diag::err_invalid_declarator_in_block) 5656 << Name << SS.getRange(); 5657 else 5658 Diag(Loc, diag::err_invalid_declarator_scope) 5659 << Name << cast<NamedDecl>(Cur) << cast<NamedDecl>(DC) << SS.getRange(); 5660 5661 return true; 5662 } 5663 5664 if (Cur->isRecord()) { 5665 // Cannot qualify members within a class. 5666 Diag(Loc, diag::err_member_qualification) 5667 << Name << SS.getRange(); 5668 SS.clear(); 5669 5670 // C++ constructors and destructors with incorrect scopes can break 5671 // our AST invariants by having the wrong underlying types. If 5672 // that's the case, then drop this declaration entirely. 5673 if ((Name.getNameKind() == DeclarationName::CXXConstructorName || 5674 Name.getNameKind() == DeclarationName::CXXDestructorName) && 5675 !Context.hasSameType(Name.getCXXNameType(), 5676 Context.getTypeDeclType(cast<CXXRecordDecl>(Cur)))) 5677 return true; 5678 5679 return false; 5680 } 5681 5682 // C++11 [dcl.meaning]p1: 5683 // [...] "The nested-name-specifier of the qualified declarator-id shall 5684 // not begin with a decltype-specifer" 5685 NestedNameSpecifierLoc SpecLoc(SS.getScopeRep(), SS.location_data()); 5686 while (SpecLoc.getPrefix()) 5687 SpecLoc = SpecLoc.getPrefix(); 5688 if (dyn_cast_or_null<DecltypeType>( 5689 SpecLoc.getNestedNameSpecifier()->getAsType())) 5690 Diag(Loc, diag::err_decltype_in_declarator) 5691 << SpecLoc.getTypeLoc().getSourceRange(); 5692 5693 return false; 5694 } 5695 5696 NamedDecl *Sema::HandleDeclarator(Scope *S, Declarator &D, 5697 MultiTemplateParamsArg TemplateParamLists) { 5698 // TODO: consider using NameInfo for diagnostic. 5699 DeclarationNameInfo NameInfo = GetNameForDeclarator(D); 5700 DeclarationName Name = NameInfo.getName(); 5701 5702 // All of these full declarators require an identifier. If it doesn't have 5703 // one, the ParsedFreeStandingDeclSpec action should be used. 5704 if (D.isDecompositionDeclarator()) { 5705 return ActOnDecompositionDeclarator(S, D, TemplateParamLists); 5706 } else if (!Name) { 5707 if (!D.isInvalidType()) // Reject this if we think it is valid. 5708 Diag(D.getDeclSpec().getBeginLoc(), diag::err_declarator_need_ident) 5709 << D.getDeclSpec().getSourceRange() << D.getSourceRange(); 5710 return nullptr; 5711 } else if (DiagnoseUnexpandedParameterPack(NameInfo, UPPC_DeclarationType)) 5712 return nullptr; 5713 5714 // The scope passed in may not be a decl scope. Zip up the scope tree until 5715 // we find one that is. 5716 while ((S->getFlags() & Scope::DeclScope) == 0 || 5717 (S->getFlags() & Scope::TemplateParamScope) != 0) 5718 S = S->getParent(); 5719 5720 DeclContext *DC = CurContext; 5721 if (D.getCXXScopeSpec().isInvalid()) 5722 D.setInvalidType(); 5723 else if (D.getCXXScopeSpec().isSet()) { 5724 if (DiagnoseUnexpandedParameterPack(D.getCXXScopeSpec(), 5725 UPPC_DeclarationQualifier)) 5726 return nullptr; 5727 5728 bool EnteringContext = !D.getDeclSpec().isFriendSpecified(); 5729 DC = computeDeclContext(D.getCXXScopeSpec(), EnteringContext); 5730 if (!DC || isa<EnumDecl>(DC)) { 5731 // If we could not compute the declaration context, it's because the 5732 // declaration context is dependent but does not refer to a class, 5733 // class template, or class template partial specialization. Complain 5734 // and return early, to avoid the coming semantic disaster. 5735 Diag(D.getIdentifierLoc(), 5736 diag::err_template_qualified_declarator_no_match) 5737 << D.getCXXScopeSpec().getScopeRep() 5738 << D.getCXXScopeSpec().getRange(); 5739 return nullptr; 5740 } 5741 bool IsDependentContext = DC->isDependentContext(); 5742 5743 if (!IsDependentContext && 5744 RequireCompleteDeclContext(D.getCXXScopeSpec(), DC)) 5745 return nullptr; 5746 5747 // If a class is incomplete, do not parse entities inside it. 5748 if (isa<CXXRecordDecl>(DC) && !cast<CXXRecordDecl>(DC)->hasDefinition()) { 5749 Diag(D.getIdentifierLoc(), 5750 diag::err_member_def_undefined_record) 5751 << Name << DC << D.getCXXScopeSpec().getRange(); 5752 return nullptr; 5753 } 5754 if (!D.getDeclSpec().isFriendSpecified()) { 5755 if (diagnoseQualifiedDeclaration( 5756 D.getCXXScopeSpec(), DC, Name, D.getIdentifierLoc(), 5757 D.getName().getKind() == UnqualifiedIdKind::IK_TemplateId)) { 5758 if (DC->isRecord()) 5759 return nullptr; 5760 5761 D.setInvalidType(); 5762 } 5763 } 5764 5765 // Check whether we need to rebuild the type of the given 5766 // declaration in the current instantiation. 5767 if (EnteringContext && IsDependentContext && 5768 TemplateParamLists.size() != 0) { 5769 ContextRAII SavedContext(*this, DC); 5770 if (RebuildDeclaratorInCurrentInstantiation(*this, D, Name)) 5771 D.setInvalidType(); 5772 } 5773 } 5774 5775 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S); 5776 QualType R = TInfo->getType(); 5777 5778 if (DiagnoseUnexpandedParameterPack(D.getIdentifierLoc(), TInfo, 5779 UPPC_DeclarationType)) 5780 D.setInvalidType(); 5781 5782 LookupResult Previous(*this, NameInfo, LookupOrdinaryName, 5783 forRedeclarationInCurContext()); 5784 5785 // See if this is a redefinition of a variable in the same scope. 5786 if (!D.getCXXScopeSpec().isSet()) { 5787 bool IsLinkageLookup = false; 5788 bool CreateBuiltins = false; 5789 5790 // If the declaration we're planning to build will be a function 5791 // or object with linkage, then look for another declaration with 5792 // linkage (C99 6.2.2p4-5 and C++ [basic.link]p6). 5793 // 5794 // If the declaration we're planning to build will be declared with 5795 // external linkage in the translation unit, create any builtin with 5796 // the same name. 5797 if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef) 5798 /* Do nothing*/; 5799 else if (CurContext->isFunctionOrMethod() && 5800 (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_extern || 5801 R->isFunctionType())) { 5802 IsLinkageLookup = true; 5803 CreateBuiltins = 5804 CurContext->getEnclosingNamespaceContext()->isTranslationUnit(); 5805 } else if (CurContext->getRedeclContext()->isTranslationUnit() && 5806 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static) 5807 CreateBuiltins = true; 5808 5809 if (IsLinkageLookup) { 5810 Previous.clear(LookupRedeclarationWithLinkage); 5811 Previous.setRedeclarationKind(ForExternalRedeclaration); 5812 } 5813 5814 LookupName(Previous, S, CreateBuiltins); 5815 } else { // Something like "int foo::x;" 5816 LookupQualifiedName(Previous, DC); 5817 5818 // C++ [dcl.meaning]p1: 5819 // When the declarator-id is qualified, the declaration shall refer to a 5820 // previously declared member of the class or namespace to which the 5821 // qualifier refers (or, in the case of a namespace, of an element of the 5822 // inline namespace set of that namespace (7.3.1)) or to a specialization 5823 // thereof; [...] 5824 // 5825 // Note that we already checked the context above, and that we do not have 5826 // enough information to make sure that Previous contains the declaration 5827 // we want to match. For example, given: 5828 // 5829 // class X { 5830 // void f(); 5831 // void f(float); 5832 // }; 5833 // 5834 // void X::f(int) { } // ill-formed 5835 // 5836 // In this case, Previous will point to the overload set 5837 // containing the two f's declared in X, but neither of them 5838 // matches. 5839 5840 // C++ [dcl.meaning]p1: 5841 // [...] the member shall not merely have been introduced by a 5842 // using-declaration in the scope of the class or namespace nominated by 5843 // the nested-name-specifier of the declarator-id. 5844 RemoveUsingDecls(Previous); 5845 } 5846 5847 if (Previous.isSingleResult() && 5848 Previous.getFoundDecl()->isTemplateParameter()) { 5849 // Maybe we will complain about the shadowed template parameter. 5850 if (!D.isInvalidType()) 5851 DiagnoseTemplateParameterShadow(D.getIdentifierLoc(), 5852 Previous.getFoundDecl()); 5853 5854 // Just pretend that we didn't see the previous declaration. 5855 Previous.clear(); 5856 } 5857 5858 if (!R->isFunctionType() && DiagnoseClassNameShadow(DC, NameInfo)) 5859 // Forget that the previous declaration is the injected-class-name. 5860 Previous.clear(); 5861 5862 // In C++, the previous declaration we find might be a tag type 5863 // (class or enum). In this case, the new declaration will hide the 5864 // tag type. Note that this applies to functions, function templates, and 5865 // variables, but not to typedefs (C++ [dcl.typedef]p4) or variable templates. 5866 if (Previous.isSingleTagDecl() && 5867 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef && 5868 (TemplateParamLists.size() == 0 || R->isFunctionType())) 5869 Previous.clear(); 5870 5871 // Check that there are no default arguments other than in the parameters 5872 // of a function declaration (C++ only). 5873 if (getLangOpts().CPlusPlus) 5874 CheckExtraCXXDefaultArguments(D); 5875 5876 NamedDecl *New; 5877 5878 bool AddToScope = true; 5879 if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef) { 5880 if (TemplateParamLists.size()) { 5881 Diag(D.getIdentifierLoc(), diag::err_template_typedef); 5882 return nullptr; 5883 } 5884 5885 New = ActOnTypedefDeclarator(S, D, DC, TInfo, Previous); 5886 } else if (R->isFunctionType()) { 5887 New = ActOnFunctionDeclarator(S, D, DC, TInfo, Previous, 5888 TemplateParamLists, 5889 AddToScope); 5890 } else { 5891 New = ActOnVariableDeclarator(S, D, DC, TInfo, Previous, TemplateParamLists, 5892 AddToScope); 5893 } 5894 5895 if (!New) 5896 return nullptr; 5897 5898 // If this has an identifier and is not a function template specialization, 5899 // add it to the scope stack. 5900 if (New->getDeclName() && AddToScope) 5901 PushOnScopeChains(New, S); 5902 5903 if (isInOpenMPDeclareTargetContext()) 5904 checkDeclIsAllowedInOpenMPTarget(nullptr, New); 5905 5906 return New; 5907 } 5908 5909 /// Helper method to turn variable array types into constant array 5910 /// types in certain situations which would otherwise be errors (for 5911 /// GCC compatibility). 5912 static QualType TryToFixInvalidVariablyModifiedType(QualType T, 5913 ASTContext &Context, 5914 bool &SizeIsNegative, 5915 llvm::APSInt &Oversized) { 5916 // This method tries to turn a variable array into a constant 5917 // array even when the size isn't an ICE. This is necessary 5918 // for compatibility with code that depends on gcc's buggy 5919 // constant expression folding, like struct {char x[(int)(char*)2];} 5920 SizeIsNegative = false; 5921 Oversized = 0; 5922 5923 if (T->isDependentType()) 5924 return QualType(); 5925 5926 QualifierCollector Qs; 5927 const Type *Ty = Qs.strip(T); 5928 5929 if (const PointerType* PTy = dyn_cast<PointerType>(Ty)) { 5930 QualType Pointee = PTy->getPointeeType(); 5931 QualType FixedType = 5932 TryToFixInvalidVariablyModifiedType(Pointee, Context, SizeIsNegative, 5933 Oversized); 5934 if (FixedType.isNull()) return FixedType; 5935 FixedType = Context.getPointerType(FixedType); 5936 return Qs.apply(Context, FixedType); 5937 } 5938 if (const ParenType* PTy = dyn_cast<ParenType>(Ty)) { 5939 QualType Inner = PTy->getInnerType(); 5940 QualType FixedType = 5941 TryToFixInvalidVariablyModifiedType(Inner, Context, SizeIsNegative, 5942 Oversized); 5943 if (FixedType.isNull()) return FixedType; 5944 FixedType = Context.getParenType(FixedType); 5945 return Qs.apply(Context, FixedType); 5946 } 5947 5948 const VariableArrayType* VLATy = dyn_cast<VariableArrayType>(T); 5949 if (!VLATy) 5950 return QualType(); 5951 5952 QualType ElemTy = VLATy->getElementType(); 5953 if (ElemTy->isVariablyModifiedType()) { 5954 ElemTy = TryToFixInvalidVariablyModifiedType(ElemTy, Context, 5955 SizeIsNegative, Oversized); 5956 if (ElemTy.isNull()) 5957 return QualType(); 5958 } 5959 5960 Expr::EvalResult Result; 5961 if (!VLATy->getSizeExpr() || 5962 !VLATy->getSizeExpr()->EvaluateAsInt(Result, Context)) 5963 return QualType(); 5964 5965 llvm::APSInt Res = Result.Val.getInt(); 5966 5967 // Check whether the array size is negative. 5968 if (Res.isSigned() && Res.isNegative()) { 5969 SizeIsNegative = true; 5970 return QualType(); 5971 } 5972 5973 // Check whether the array is too large to be addressed. 5974 unsigned ActiveSizeBits = 5975 (!ElemTy->isDependentType() && !ElemTy->isVariablyModifiedType() && 5976 !ElemTy->isIncompleteType() && !ElemTy->isUndeducedType()) 5977 ? ConstantArrayType::getNumAddressingBits(Context, ElemTy, Res) 5978 : Res.getActiveBits(); 5979 if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) { 5980 Oversized = Res; 5981 return QualType(); 5982 } 5983 5984 QualType FoldedArrayType = Context.getConstantArrayType( 5985 ElemTy, Res, VLATy->getSizeExpr(), ArrayType::Normal, 0); 5986 return Qs.apply(Context, FoldedArrayType); 5987 } 5988 5989 static void 5990 FixInvalidVariablyModifiedTypeLoc(TypeLoc SrcTL, TypeLoc DstTL) { 5991 SrcTL = SrcTL.getUnqualifiedLoc(); 5992 DstTL = DstTL.getUnqualifiedLoc(); 5993 if (PointerTypeLoc SrcPTL = SrcTL.getAs<PointerTypeLoc>()) { 5994 PointerTypeLoc DstPTL = DstTL.castAs<PointerTypeLoc>(); 5995 FixInvalidVariablyModifiedTypeLoc(SrcPTL.getPointeeLoc(), 5996 DstPTL.getPointeeLoc()); 5997 DstPTL.setStarLoc(SrcPTL.getStarLoc()); 5998 return; 5999 } 6000 if (ParenTypeLoc SrcPTL = SrcTL.getAs<ParenTypeLoc>()) { 6001 ParenTypeLoc DstPTL = DstTL.castAs<ParenTypeLoc>(); 6002 FixInvalidVariablyModifiedTypeLoc(SrcPTL.getInnerLoc(), 6003 DstPTL.getInnerLoc()); 6004 DstPTL.setLParenLoc(SrcPTL.getLParenLoc()); 6005 DstPTL.setRParenLoc(SrcPTL.getRParenLoc()); 6006 return; 6007 } 6008 ArrayTypeLoc SrcATL = SrcTL.castAs<ArrayTypeLoc>(); 6009 ArrayTypeLoc DstATL = DstTL.castAs<ArrayTypeLoc>(); 6010 TypeLoc SrcElemTL = SrcATL.getElementLoc(); 6011 TypeLoc DstElemTL = DstATL.getElementLoc(); 6012 if (VariableArrayTypeLoc SrcElemATL = 6013 SrcElemTL.getAs<VariableArrayTypeLoc>()) { 6014 ConstantArrayTypeLoc DstElemATL = DstElemTL.castAs<ConstantArrayTypeLoc>(); 6015 FixInvalidVariablyModifiedTypeLoc(SrcElemATL, DstElemATL); 6016 } else { 6017 DstElemTL.initializeFullCopy(SrcElemTL); 6018 } 6019 DstATL.setLBracketLoc(SrcATL.getLBracketLoc()); 6020 DstATL.setSizeExpr(SrcATL.getSizeExpr()); 6021 DstATL.setRBracketLoc(SrcATL.getRBracketLoc()); 6022 } 6023 6024 /// Helper method to turn variable array types into constant array 6025 /// types in certain situations which would otherwise be errors (for 6026 /// GCC compatibility). 6027 static TypeSourceInfo* 6028 TryToFixInvalidVariablyModifiedTypeSourceInfo(TypeSourceInfo *TInfo, 6029 ASTContext &Context, 6030 bool &SizeIsNegative, 6031 llvm::APSInt &Oversized) { 6032 QualType FixedTy 6033 = TryToFixInvalidVariablyModifiedType(TInfo->getType(), Context, 6034 SizeIsNegative, Oversized); 6035 if (FixedTy.isNull()) 6036 return nullptr; 6037 TypeSourceInfo *FixedTInfo = Context.getTrivialTypeSourceInfo(FixedTy); 6038 FixInvalidVariablyModifiedTypeLoc(TInfo->getTypeLoc(), 6039 FixedTInfo->getTypeLoc()); 6040 return FixedTInfo; 6041 } 6042 6043 /// Attempt to fold a variable-sized type to a constant-sized type, returning 6044 /// true if we were successful. 6045 static bool tryToFixVariablyModifiedVarType(Sema &S, TypeSourceInfo *&TInfo, 6046 QualType &T, SourceLocation Loc, 6047 unsigned FailedFoldDiagID) { 6048 bool SizeIsNegative; 6049 llvm::APSInt Oversized; 6050 TypeSourceInfo *FixedTInfo = TryToFixInvalidVariablyModifiedTypeSourceInfo( 6051 TInfo, S.Context, SizeIsNegative, Oversized); 6052 if (FixedTInfo) { 6053 S.Diag(Loc, diag::ext_vla_folded_to_constant); 6054 TInfo = FixedTInfo; 6055 T = FixedTInfo->getType(); 6056 return true; 6057 } 6058 6059 if (SizeIsNegative) 6060 S.Diag(Loc, diag::err_typecheck_negative_array_size); 6061 else if (Oversized.getBoolValue()) 6062 S.Diag(Loc, diag::err_array_too_large) << Oversized.toString(10); 6063 else if (FailedFoldDiagID) 6064 S.Diag(Loc, FailedFoldDiagID); 6065 return false; 6066 } 6067 6068 /// Register the given locally-scoped extern "C" declaration so 6069 /// that it can be found later for redeclarations. We include any extern "C" 6070 /// declaration that is not visible in the translation unit here, not just 6071 /// function-scope declarations. 6072 void 6073 Sema::RegisterLocallyScopedExternCDecl(NamedDecl *ND, Scope *S) { 6074 if (!getLangOpts().CPlusPlus && 6075 ND->getLexicalDeclContext()->getRedeclContext()->isTranslationUnit()) 6076 // Don't need to track declarations in the TU in C. 6077 return; 6078 6079 // Note that we have a locally-scoped external with this name. 6080 Context.getExternCContextDecl()->makeDeclVisibleInContext(ND); 6081 } 6082 6083 NamedDecl *Sema::findLocallyScopedExternCDecl(DeclarationName Name) { 6084 // FIXME: We can have multiple results via __attribute__((overloadable)). 6085 auto Result = Context.getExternCContextDecl()->lookup(Name); 6086 return Result.empty() ? nullptr : *Result.begin(); 6087 } 6088 6089 /// Diagnose function specifiers on a declaration of an identifier that 6090 /// does not identify a function. 6091 void Sema::DiagnoseFunctionSpecifiers(const DeclSpec &DS) { 6092 // FIXME: We should probably indicate the identifier in question to avoid 6093 // confusion for constructs like "virtual int a(), b;" 6094 if (DS.isVirtualSpecified()) 6095 Diag(DS.getVirtualSpecLoc(), 6096 diag::err_virtual_non_function); 6097 6098 if (DS.hasExplicitSpecifier()) 6099 Diag(DS.getExplicitSpecLoc(), 6100 diag::err_explicit_non_function); 6101 6102 if (DS.isNoreturnSpecified()) 6103 Diag(DS.getNoreturnSpecLoc(), 6104 diag::err_noreturn_non_function); 6105 } 6106 6107 NamedDecl* 6108 Sema::ActOnTypedefDeclarator(Scope* S, Declarator& D, DeclContext* DC, 6109 TypeSourceInfo *TInfo, LookupResult &Previous) { 6110 // Typedef declarators cannot be qualified (C++ [dcl.meaning]p1). 6111 if (D.getCXXScopeSpec().isSet()) { 6112 Diag(D.getIdentifierLoc(), diag::err_qualified_typedef_declarator) 6113 << D.getCXXScopeSpec().getRange(); 6114 D.setInvalidType(); 6115 // Pretend we didn't see the scope specifier. 6116 DC = CurContext; 6117 Previous.clear(); 6118 } 6119 6120 DiagnoseFunctionSpecifiers(D.getDeclSpec()); 6121 6122 if (D.getDeclSpec().isInlineSpecified()) 6123 Diag(D.getDeclSpec().getInlineSpecLoc(), diag::err_inline_non_function) 6124 << getLangOpts().CPlusPlus17; 6125 if (D.getDeclSpec().hasConstexprSpecifier()) 6126 Diag(D.getDeclSpec().getConstexprSpecLoc(), diag::err_invalid_constexpr) 6127 << 1 << static_cast<int>(D.getDeclSpec().getConstexprSpecifier()); 6128 6129 if (D.getName().Kind != UnqualifiedIdKind::IK_Identifier) { 6130 if (D.getName().Kind == UnqualifiedIdKind::IK_DeductionGuideName) 6131 Diag(D.getName().StartLocation, 6132 diag::err_deduction_guide_invalid_specifier) 6133 << "typedef"; 6134 else 6135 Diag(D.getName().StartLocation, diag::err_typedef_not_identifier) 6136 << D.getName().getSourceRange(); 6137 return nullptr; 6138 } 6139 6140 TypedefDecl *NewTD = ParseTypedefDecl(S, D, TInfo->getType(), TInfo); 6141 if (!NewTD) return nullptr; 6142 6143 // Handle attributes prior to checking for duplicates in MergeVarDecl 6144 ProcessDeclAttributes(S, NewTD, D); 6145 6146 CheckTypedefForVariablyModifiedType(S, NewTD); 6147 6148 bool Redeclaration = D.isRedeclaration(); 6149 NamedDecl *ND = ActOnTypedefNameDecl(S, DC, NewTD, Previous, Redeclaration); 6150 D.setRedeclaration(Redeclaration); 6151 return ND; 6152 } 6153 6154 void 6155 Sema::CheckTypedefForVariablyModifiedType(Scope *S, TypedefNameDecl *NewTD) { 6156 // C99 6.7.7p2: If a typedef name specifies a variably modified type 6157 // then it shall have block scope. 6158 // Note that variably modified types must be fixed before merging the decl so 6159 // that redeclarations will match. 6160 TypeSourceInfo *TInfo = NewTD->getTypeSourceInfo(); 6161 QualType T = TInfo->getType(); 6162 if (T->isVariablyModifiedType()) { 6163 setFunctionHasBranchProtectedScope(); 6164 6165 if (S->getFnParent() == nullptr) { 6166 bool SizeIsNegative; 6167 llvm::APSInt Oversized; 6168 TypeSourceInfo *FixedTInfo = 6169 TryToFixInvalidVariablyModifiedTypeSourceInfo(TInfo, Context, 6170 SizeIsNegative, 6171 Oversized); 6172 if (FixedTInfo) { 6173 Diag(NewTD->getLocation(), diag::ext_vla_folded_to_constant); 6174 NewTD->setTypeSourceInfo(FixedTInfo); 6175 } else { 6176 if (SizeIsNegative) 6177 Diag(NewTD->getLocation(), diag::err_typecheck_negative_array_size); 6178 else if (T->isVariableArrayType()) 6179 Diag(NewTD->getLocation(), diag::err_vla_decl_in_file_scope); 6180 else if (Oversized.getBoolValue()) 6181 Diag(NewTD->getLocation(), diag::err_array_too_large) 6182 << Oversized.toString(10); 6183 else 6184 Diag(NewTD->getLocation(), diag::err_vm_decl_in_file_scope); 6185 NewTD->setInvalidDecl(); 6186 } 6187 } 6188 } 6189 } 6190 6191 /// ActOnTypedefNameDecl - Perform semantic checking for a declaration which 6192 /// declares a typedef-name, either using the 'typedef' type specifier or via 6193 /// a C++0x [dcl.typedef]p2 alias-declaration: 'using T = A;'. 6194 NamedDecl* 6195 Sema::ActOnTypedefNameDecl(Scope *S, DeclContext *DC, TypedefNameDecl *NewTD, 6196 LookupResult &Previous, bool &Redeclaration) { 6197 6198 // Find the shadowed declaration before filtering for scope. 6199 NamedDecl *ShadowedDecl = getShadowedDeclaration(NewTD, Previous); 6200 6201 // Merge the decl with the existing one if appropriate. If the decl is 6202 // in an outer scope, it isn't the same thing. 6203 FilterLookupForScope(Previous, DC, S, /*ConsiderLinkage*/false, 6204 /*AllowInlineNamespace*/false); 6205 filterNonConflictingPreviousTypedefDecls(*this, NewTD, Previous); 6206 if (!Previous.empty()) { 6207 Redeclaration = true; 6208 MergeTypedefNameDecl(S, NewTD, Previous); 6209 } else { 6210 inferGslPointerAttribute(NewTD); 6211 } 6212 6213 if (ShadowedDecl && !Redeclaration) 6214 CheckShadow(NewTD, ShadowedDecl, Previous); 6215 6216 // If this is the C FILE type, notify the AST context. 6217 if (IdentifierInfo *II = NewTD->getIdentifier()) 6218 if (!NewTD->isInvalidDecl() && 6219 NewTD->getDeclContext()->getRedeclContext()->isTranslationUnit()) { 6220 if (II->isStr("FILE")) 6221 Context.setFILEDecl(NewTD); 6222 else if (II->isStr("jmp_buf")) 6223 Context.setjmp_bufDecl(NewTD); 6224 else if (II->isStr("sigjmp_buf")) 6225 Context.setsigjmp_bufDecl(NewTD); 6226 else if (II->isStr("ucontext_t")) 6227 Context.setucontext_tDecl(NewTD); 6228 } 6229 6230 return NewTD; 6231 } 6232 6233 /// Determines whether the given declaration is an out-of-scope 6234 /// previous declaration. 6235 /// 6236 /// This routine should be invoked when name lookup has found a 6237 /// previous declaration (PrevDecl) that is not in the scope where a 6238 /// new declaration by the same name is being introduced. If the new 6239 /// declaration occurs in a local scope, previous declarations with 6240 /// linkage may still be considered previous declarations (C99 6241 /// 6.2.2p4-5, C++ [basic.link]p6). 6242 /// 6243 /// \param PrevDecl the previous declaration found by name 6244 /// lookup 6245 /// 6246 /// \param DC the context in which the new declaration is being 6247 /// declared. 6248 /// 6249 /// \returns true if PrevDecl is an out-of-scope previous declaration 6250 /// for a new delcaration with the same name. 6251 static bool 6252 isOutOfScopePreviousDeclaration(NamedDecl *PrevDecl, DeclContext *DC, 6253 ASTContext &Context) { 6254 if (!PrevDecl) 6255 return false; 6256 6257 if (!PrevDecl->hasLinkage()) 6258 return false; 6259 6260 if (Context.getLangOpts().CPlusPlus) { 6261 // C++ [basic.link]p6: 6262 // If there is a visible declaration of an entity with linkage 6263 // having the same name and type, ignoring entities declared 6264 // outside the innermost enclosing namespace scope, the block 6265 // scope declaration declares that same entity and receives the 6266 // linkage of the previous declaration. 6267 DeclContext *OuterContext = DC->getRedeclContext(); 6268 if (!OuterContext->isFunctionOrMethod()) 6269 // This rule only applies to block-scope declarations. 6270 return false; 6271 6272 DeclContext *PrevOuterContext = PrevDecl->getDeclContext(); 6273 if (PrevOuterContext->isRecord()) 6274 // We found a member function: ignore it. 6275 return false; 6276 6277 // Find the innermost enclosing namespace for the new and 6278 // previous declarations. 6279 OuterContext = OuterContext->getEnclosingNamespaceContext(); 6280 PrevOuterContext = PrevOuterContext->getEnclosingNamespaceContext(); 6281 6282 // The previous declaration is in a different namespace, so it 6283 // isn't the same function. 6284 if (!OuterContext->Equals(PrevOuterContext)) 6285 return false; 6286 } 6287 6288 return true; 6289 } 6290 6291 static void SetNestedNameSpecifier(Sema &S, DeclaratorDecl *DD, Declarator &D) { 6292 CXXScopeSpec &SS = D.getCXXScopeSpec(); 6293 if (!SS.isSet()) return; 6294 DD->setQualifierInfo(SS.getWithLocInContext(S.Context)); 6295 } 6296 6297 bool Sema::inferObjCARCLifetime(ValueDecl *decl) { 6298 QualType type = decl->getType(); 6299 Qualifiers::ObjCLifetime lifetime = type.getObjCLifetime(); 6300 if (lifetime == Qualifiers::OCL_Autoreleasing) { 6301 // Various kinds of declaration aren't allowed to be __autoreleasing. 6302 unsigned kind = -1U; 6303 if (VarDecl *var = dyn_cast<VarDecl>(decl)) { 6304 if (var->hasAttr<BlocksAttr>()) 6305 kind = 0; // __block 6306 else if (!var->hasLocalStorage()) 6307 kind = 1; // global 6308 } else if (isa<ObjCIvarDecl>(decl)) { 6309 kind = 3; // ivar 6310 } else if (isa<FieldDecl>(decl)) { 6311 kind = 2; // field 6312 } 6313 6314 if (kind != -1U) { 6315 Diag(decl->getLocation(), diag::err_arc_autoreleasing_var) 6316 << kind; 6317 } 6318 } else if (lifetime == Qualifiers::OCL_None) { 6319 // Try to infer lifetime. 6320 if (!type->isObjCLifetimeType()) 6321 return false; 6322 6323 lifetime = type->getObjCARCImplicitLifetime(); 6324 type = Context.getLifetimeQualifiedType(type, lifetime); 6325 decl->setType(type); 6326 } 6327 6328 if (VarDecl *var = dyn_cast<VarDecl>(decl)) { 6329 // Thread-local variables cannot have lifetime. 6330 if (lifetime && lifetime != Qualifiers::OCL_ExplicitNone && 6331 var->getTLSKind()) { 6332 Diag(var->getLocation(), diag::err_arc_thread_ownership) 6333 << var->getType(); 6334 return true; 6335 } 6336 } 6337 6338 return false; 6339 } 6340 6341 void Sema::deduceOpenCLAddressSpace(ValueDecl *Decl) { 6342 if (Decl->getType().hasAddressSpace()) 6343 return; 6344 if (Decl->getType()->isDependentType()) 6345 return; 6346 if (VarDecl *Var = dyn_cast<VarDecl>(Decl)) { 6347 QualType Type = Var->getType(); 6348 if (Type->isSamplerT() || Type->isVoidType()) 6349 return; 6350 LangAS ImplAS = LangAS::opencl_private; 6351 if ((getLangOpts().OpenCLCPlusPlus || getLangOpts().OpenCLVersion >= 200) && 6352 Var->hasGlobalStorage()) 6353 ImplAS = LangAS::opencl_global; 6354 // If the original type from a decayed type is an array type and that array 6355 // type has no address space yet, deduce it now. 6356 if (auto DT = dyn_cast<DecayedType>(Type)) { 6357 auto OrigTy = DT->getOriginalType(); 6358 if (!OrigTy.hasAddressSpace() && OrigTy->isArrayType()) { 6359 // Add the address space to the original array type and then propagate 6360 // that to the element type through `getAsArrayType`. 6361 OrigTy = Context.getAddrSpaceQualType(OrigTy, ImplAS); 6362 OrigTy = QualType(Context.getAsArrayType(OrigTy), 0); 6363 // Re-generate the decayed type. 6364 Type = Context.getDecayedType(OrigTy); 6365 } 6366 } 6367 Type = Context.getAddrSpaceQualType(Type, ImplAS); 6368 // Apply any qualifiers (including address space) from the array type to 6369 // the element type. This implements C99 6.7.3p8: "If the specification of 6370 // an array type includes any type qualifiers, the element type is so 6371 // qualified, not the array type." 6372 if (Type->isArrayType()) 6373 Type = QualType(Context.getAsArrayType(Type), 0); 6374 Decl->setType(Type); 6375 } 6376 } 6377 6378 static void checkAttributesAfterMerging(Sema &S, NamedDecl &ND) { 6379 // Ensure that an auto decl is deduced otherwise the checks below might cache 6380 // the wrong linkage. 6381 assert(S.ParsingInitForAutoVars.count(&ND) == 0); 6382 6383 // 'weak' only applies to declarations with external linkage. 6384 if (WeakAttr *Attr = ND.getAttr<WeakAttr>()) { 6385 if (!ND.isExternallyVisible()) { 6386 S.Diag(Attr->getLocation(), diag::err_attribute_weak_static); 6387 ND.dropAttr<WeakAttr>(); 6388 } 6389 } 6390 if (WeakRefAttr *Attr = ND.getAttr<WeakRefAttr>()) { 6391 if (ND.isExternallyVisible()) { 6392 S.Diag(Attr->getLocation(), diag::err_attribute_weakref_not_static); 6393 ND.dropAttr<WeakRefAttr>(); 6394 ND.dropAttr<AliasAttr>(); 6395 } 6396 } 6397 6398 if (auto *VD = dyn_cast<VarDecl>(&ND)) { 6399 if (VD->hasInit()) { 6400 if (const auto *Attr = VD->getAttr<AliasAttr>()) { 6401 assert(VD->isThisDeclarationADefinition() && 6402 !VD->isExternallyVisible() && "Broken AliasAttr handled late!"); 6403 S.Diag(Attr->getLocation(), diag::err_alias_is_definition) << VD << 0; 6404 VD->dropAttr<AliasAttr>(); 6405 } 6406 } 6407 } 6408 6409 // 'selectany' only applies to externally visible variable declarations. 6410 // It does not apply to functions. 6411 if (SelectAnyAttr *Attr = ND.getAttr<SelectAnyAttr>()) { 6412 if (isa<FunctionDecl>(ND) || !ND.isExternallyVisible()) { 6413 S.Diag(Attr->getLocation(), 6414 diag::err_attribute_selectany_non_extern_data); 6415 ND.dropAttr<SelectAnyAttr>(); 6416 } 6417 } 6418 6419 if (const InheritableAttr *Attr = getDLLAttr(&ND)) { 6420 auto *VD = dyn_cast<VarDecl>(&ND); 6421 bool IsAnonymousNS = false; 6422 bool IsMicrosoft = S.Context.getTargetInfo().getCXXABI().isMicrosoft(); 6423 if (VD) { 6424 const NamespaceDecl *NS = dyn_cast<NamespaceDecl>(VD->getDeclContext()); 6425 while (NS && !IsAnonymousNS) { 6426 IsAnonymousNS = NS->isAnonymousNamespace(); 6427 NS = dyn_cast<NamespaceDecl>(NS->getParent()); 6428 } 6429 } 6430 // dll attributes require external linkage. Static locals may have external 6431 // linkage but still cannot be explicitly imported or exported. 6432 // In Microsoft mode, a variable defined in anonymous namespace must have 6433 // external linkage in order to be exported. 6434 bool AnonNSInMicrosoftMode = IsAnonymousNS && IsMicrosoft; 6435 if ((ND.isExternallyVisible() && AnonNSInMicrosoftMode) || 6436 (!AnonNSInMicrosoftMode && 6437 (!ND.isExternallyVisible() || (VD && VD->isStaticLocal())))) { 6438 S.Diag(ND.getLocation(), diag::err_attribute_dll_not_extern) 6439 << &ND << Attr; 6440 ND.setInvalidDecl(); 6441 } 6442 } 6443 6444 // Check the attributes on the function type, if any. 6445 if (const auto *FD = dyn_cast<FunctionDecl>(&ND)) { 6446 // Don't declare this variable in the second operand of the for-statement; 6447 // GCC miscompiles that by ending its lifetime before evaluating the 6448 // third operand. See gcc.gnu.org/PR86769. 6449 AttributedTypeLoc ATL; 6450 for (TypeLoc TL = FD->getTypeSourceInfo()->getTypeLoc(); 6451 (ATL = TL.getAsAdjusted<AttributedTypeLoc>()); 6452 TL = ATL.getModifiedLoc()) { 6453 // The [[lifetimebound]] attribute can be applied to the implicit object 6454 // parameter of a non-static member function (other than a ctor or dtor) 6455 // by applying it to the function type. 6456 if (const auto *A = ATL.getAttrAs<LifetimeBoundAttr>()) { 6457 const auto *MD = dyn_cast<CXXMethodDecl>(FD); 6458 if (!MD || MD->isStatic()) { 6459 S.Diag(A->getLocation(), diag::err_lifetimebound_no_object_param) 6460 << !MD << A->getRange(); 6461 } else if (isa<CXXConstructorDecl>(MD) || isa<CXXDestructorDecl>(MD)) { 6462 S.Diag(A->getLocation(), diag::err_lifetimebound_ctor_dtor) 6463 << isa<CXXDestructorDecl>(MD) << A->getRange(); 6464 } 6465 } 6466 } 6467 } 6468 } 6469 6470 static void checkDLLAttributeRedeclaration(Sema &S, NamedDecl *OldDecl, 6471 NamedDecl *NewDecl, 6472 bool IsSpecialization, 6473 bool IsDefinition) { 6474 if (OldDecl->isInvalidDecl() || NewDecl->isInvalidDecl()) 6475 return; 6476 6477 bool IsTemplate = false; 6478 if (TemplateDecl *OldTD = dyn_cast<TemplateDecl>(OldDecl)) { 6479 OldDecl = OldTD->getTemplatedDecl(); 6480 IsTemplate = true; 6481 if (!IsSpecialization) 6482 IsDefinition = false; 6483 } 6484 if (TemplateDecl *NewTD = dyn_cast<TemplateDecl>(NewDecl)) { 6485 NewDecl = NewTD->getTemplatedDecl(); 6486 IsTemplate = true; 6487 } 6488 6489 if (!OldDecl || !NewDecl) 6490 return; 6491 6492 const DLLImportAttr *OldImportAttr = OldDecl->getAttr<DLLImportAttr>(); 6493 const DLLExportAttr *OldExportAttr = OldDecl->getAttr<DLLExportAttr>(); 6494 const DLLImportAttr *NewImportAttr = NewDecl->getAttr<DLLImportAttr>(); 6495 const DLLExportAttr *NewExportAttr = NewDecl->getAttr<DLLExportAttr>(); 6496 6497 // dllimport and dllexport are inheritable attributes so we have to exclude 6498 // inherited attribute instances. 6499 bool HasNewAttr = (NewImportAttr && !NewImportAttr->isInherited()) || 6500 (NewExportAttr && !NewExportAttr->isInherited()); 6501 6502 // A redeclaration is not allowed to add a dllimport or dllexport attribute, 6503 // the only exception being explicit specializations. 6504 // Implicitly generated declarations are also excluded for now because there 6505 // is no other way to switch these to use dllimport or dllexport. 6506 bool AddsAttr = !(OldImportAttr || OldExportAttr) && HasNewAttr; 6507 6508 if (AddsAttr && !IsSpecialization && !OldDecl->isImplicit()) { 6509 // Allow with a warning for free functions and global variables. 6510 bool JustWarn = false; 6511 if (!OldDecl->isCXXClassMember()) { 6512 auto *VD = dyn_cast<VarDecl>(OldDecl); 6513 if (VD && !VD->getDescribedVarTemplate()) 6514 JustWarn = true; 6515 auto *FD = dyn_cast<FunctionDecl>(OldDecl); 6516 if (FD && FD->getTemplatedKind() == FunctionDecl::TK_NonTemplate) 6517 JustWarn = true; 6518 } 6519 6520 // We cannot change a declaration that's been used because IR has already 6521 // been emitted. Dllimported functions will still work though (modulo 6522 // address equality) as they can use the thunk. 6523 if (OldDecl->isUsed()) 6524 if (!isa<FunctionDecl>(OldDecl) || !NewImportAttr) 6525 JustWarn = false; 6526 6527 unsigned DiagID = JustWarn ? diag::warn_attribute_dll_redeclaration 6528 : diag::err_attribute_dll_redeclaration; 6529 S.Diag(NewDecl->getLocation(), DiagID) 6530 << NewDecl 6531 << (NewImportAttr ? (const Attr *)NewImportAttr : NewExportAttr); 6532 S.Diag(OldDecl->getLocation(), diag::note_previous_declaration); 6533 if (!JustWarn) { 6534 NewDecl->setInvalidDecl(); 6535 return; 6536 } 6537 } 6538 6539 // A redeclaration is not allowed to drop a dllimport attribute, the only 6540 // exceptions being inline function definitions (except for function 6541 // templates), local extern declarations, qualified friend declarations or 6542 // special MSVC extension: in the last case, the declaration is treated as if 6543 // it were marked dllexport. 6544 bool IsInline = false, IsStaticDataMember = false, IsQualifiedFriend = false; 6545 bool IsMicrosoftABI = S.Context.getTargetInfo().shouldDLLImportComdatSymbols(); 6546 if (const auto *VD = dyn_cast<VarDecl>(NewDecl)) { 6547 // Ignore static data because out-of-line definitions are diagnosed 6548 // separately. 6549 IsStaticDataMember = VD->isStaticDataMember(); 6550 IsDefinition = VD->isThisDeclarationADefinition(S.Context) != 6551 VarDecl::DeclarationOnly; 6552 } else if (const auto *FD = dyn_cast<FunctionDecl>(NewDecl)) { 6553 IsInline = FD->isInlined(); 6554 IsQualifiedFriend = FD->getQualifier() && 6555 FD->getFriendObjectKind() == Decl::FOK_Declared; 6556 } 6557 6558 if (OldImportAttr && !HasNewAttr && 6559 (!IsInline || (IsMicrosoftABI && IsTemplate)) && !IsStaticDataMember && 6560 !NewDecl->isLocalExternDecl() && !IsQualifiedFriend) { 6561 if (IsMicrosoftABI && IsDefinition) { 6562 S.Diag(NewDecl->getLocation(), 6563 diag::warn_redeclaration_without_import_attribute) 6564 << NewDecl; 6565 S.Diag(OldDecl->getLocation(), diag::note_previous_declaration); 6566 NewDecl->dropAttr<DLLImportAttr>(); 6567 NewDecl->addAttr( 6568 DLLExportAttr::CreateImplicit(S.Context, NewImportAttr->getRange())); 6569 } else { 6570 S.Diag(NewDecl->getLocation(), 6571 diag::warn_redeclaration_without_attribute_prev_attribute_ignored) 6572 << NewDecl << OldImportAttr; 6573 S.Diag(OldDecl->getLocation(), diag::note_previous_declaration); 6574 S.Diag(OldImportAttr->getLocation(), diag::note_previous_attribute); 6575 OldDecl->dropAttr<DLLImportAttr>(); 6576 NewDecl->dropAttr<DLLImportAttr>(); 6577 } 6578 } else if (IsInline && OldImportAttr && !IsMicrosoftABI) { 6579 // In MinGW, seeing a function declared inline drops the dllimport 6580 // attribute. 6581 OldDecl->dropAttr<DLLImportAttr>(); 6582 NewDecl->dropAttr<DLLImportAttr>(); 6583 S.Diag(NewDecl->getLocation(), 6584 diag::warn_dllimport_dropped_from_inline_function) 6585 << NewDecl << OldImportAttr; 6586 } 6587 6588 // A specialization of a class template member function is processed here 6589 // since it's a redeclaration. If the parent class is dllexport, the 6590 // specialization inherits that attribute. This doesn't happen automatically 6591 // since the parent class isn't instantiated until later. 6592 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewDecl)) { 6593 if (MD->getTemplatedKind() == FunctionDecl::TK_MemberSpecialization && 6594 !NewImportAttr && !NewExportAttr) { 6595 if (const DLLExportAttr *ParentExportAttr = 6596 MD->getParent()->getAttr<DLLExportAttr>()) { 6597 DLLExportAttr *NewAttr = ParentExportAttr->clone(S.Context); 6598 NewAttr->setInherited(true); 6599 NewDecl->addAttr(NewAttr); 6600 } 6601 } 6602 } 6603 } 6604 6605 /// Given that we are within the definition of the given function, 6606 /// will that definition behave like C99's 'inline', where the 6607 /// definition is discarded except for optimization purposes? 6608 static bool isFunctionDefinitionDiscarded(Sema &S, FunctionDecl *FD) { 6609 // Try to avoid calling GetGVALinkageForFunction. 6610 6611 // All cases of this require the 'inline' keyword. 6612 if (!FD->isInlined()) return false; 6613 6614 // This is only possible in C++ with the gnu_inline attribute. 6615 if (S.getLangOpts().CPlusPlus && !FD->hasAttr<GNUInlineAttr>()) 6616 return false; 6617 6618 // Okay, go ahead and call the relatively-more-expensive function. 6619 return S.Context.GetGVALinkageForFunction(FD) == GVA_AvailableExternally; 6620 } 6621 6622 /// Determine whether a variable is extern "C" prior to attaching 6623 /// an initializer. We can't just call isExternC() here, because that 6624 /// will also compute and cache whether the declaration is externally 6625 /// visible, which might change when we attach the initializer. 6626 /// 6627 /// This can only be used if the declaration is known to not be a 6628 /// redeclaration of an internal linkage declaration. 6629 /// 6630 /// For instance: 6631 /// 6632 /// auto x = []{}; 6633 /// 6634 /// Attaching the initializer here makes this declaration not externally 6635 /// visible, because its type has internal linkage. 6636 /// 6637 /// FIXME: This is a hack. 6638 template<typename T> 6639 static bool isIncompleteDeclExternC(Sema &S, const T *D) { 6640 if (S.getLangOpts().CPlusPlus) { 6641 // In C++, the overloadable attribute negates the effects of extern "C". 6642 if (!D->isInExternCContext() || D->template hasAttr<OverloadableAttr>()) 6643 return false; 6644 6645 // So do CUDA's host/device attributes. 6646 if (S.getLangOpts().CUDA && (D->template hasAttr<CUDADeviceAttr>() || 6647 D->template hasAttr<CUDAHostAttr>())) 6648 return false; 6649 } 6650 return D->isExternC(); 6651 } 6652 6653 static bool shouldConsiderLinkage(const VarDecl *VD) { 6654 const DeclContext *DC = VD->getDeclContext()->getRedeclContext(); 6655 if (DC->isFunctionOrMethod() || isa<OMPDeclareReductionDecl>(DC) || 6656 isa<OMPDeclareMapperDecl>(DC)) 6657 return VD->hasExternalStorage(); 6658 if (DC->isFileContext()) 6659 return true; 6660 if (DC->isRecord()) 6661 return false; 6662 if (isa<RequiresExprBodyDecl>(DC)) 6663 return false; 6664 llvm_unreachable("Unexpected context"); 6665 } 6666 6667 static bool shouldConsiderLinkage(const FunctionDecl *FD) { 6668 const DeclContext *DC = FD->getDeclContext()->getRedeclContext(); 6669 if (DC->isFileContext() || DC->isFunctionOrMethod() || 6670 isa<OMPDeclareReductionDecl>(DC) || isa<OMPDeclareMapperDecl>(DC)) 6671 return true; 6672 if (DC->isRecord()) 6673 return false; 6674 llvm_unreachable("Unexpected context"); 6675 } 6676 6677 static bool hasParsedAttr(Scope *S, const Declarator &PD, 6678 ParsedAttr::Kind Kind) { 6679 // Check decl attributes on the DeclSpec. 6680 if (PD.getDeclSpec().getAttributes().hasAttribute(Kind)) 6681 return true; 6682 6683 // Walk the declarator structure, checking decl attributes that were in a type 6684 // position to the decl itself. 6685 for (unsigned I = 0, E = PD.getNumTypeObjects(); I != E; ++I) { 6686 if (PD.getTypeObject(I).getAttrs().hasAttribute(Kind)) 6687 return true; 6688 } 6689 6690 // Finally, check attributes on the decl itself. 6691 return PD.getAttributes().hasAttribute(Kind); 6692 } 6693 6694 /// Adjust the \c DeclContext for a function or variable that might be a 6695 /// function-local external declaration. 6696 bool Sema::adjustContextForLocalExternDecl(DeclContext *&DC) { 6697 if (!DC->isFunctionOrMethod()) 6698 return false; 6699 6700 // If this is a local extern function or variable declared within a function 6701 // template, don't add it into the enclosing namespace scope until it is 6702 // instantiated; it might have a dependent type right now. 6703 if (DC->isDependentContext()) 6704 return true; 6705 6706 // C++11 [basic.link]p7: 6707 // When a block scope declaration of an entity with linkage is not found to 6708 // refer to some other declaration, then that entity is a member of the 6709 // innermost enclosing namespace. 6710 // 6711 // Per C++11 [namespace.def]p6, the innermost enclosing namespace is a 6712 // semantically-enclosing namespace, not a lexically-enclosing one. 6713 while (!DC->isFileContext() && !isa<LinkageSpecDecl>(DC)) 6714 DC = DC->getParent(); 6715 return true; 6716 } 6717 6718 /// Returns true if given declaration has external C language linkage. 6719 static bool isDeclExternC(const Decl *D) { 6720 if (const auto *FD = dyn_cast<FunctionDecl>(D)) 6721 return FD->isExternC(); 6722 if (const auto *VD = dyn_cast<VarDecl>(D)) 6723 return VD->isExternC(); 6724 6725 llvm_unreachable("Unknown type of decl!"); 6726 } 6727 /// Returns true if there hasn't been any invalid type diagnosed. 6728 static bool diagnoseOpenCLTypes(Scope *S, Sema &Se, Declarator &D, 6729 DeclContext *DC, QualType R) { 6730 // OpenCL v2.0 s6.9.b - Image type can only be used as a function argument. 6731 // OpenCL v2.0 s6.13.16.1 - Pipe type can only be used as a function 6732 // argument. 6733 if (R->isImageType() || R->isPipeType()) { 6734 Se.Diag(D.getIdentifierLoc(), 6735 diag::err_opencl_type_can_only_be_used_as_function_parameter) 6736 << R; 6737 D.setInvalidType(); 6738 return false; 6739 } 6740 6741 // OpenCL v1.2 s6.9.r: 6742 // The event type cannot be used to declare a program scope variable. 6743 // OpenCL v2.0 s6.9.q: 6744 // The clk_event_t and reserve_id_t types cannot be declared in program 6745 // scope. 6746 if (NULL == S->getParent()) { 6747 if (R->isReserveIDT() || R->isClkEventT() || R->isEventT()) { 6748 Se.Diag(D.getIdentifierLoc(), 6749 diag::err_invalid_type_for_program_scope_var) 6750 << R; 6751 D.setInvalidType(); 6752 return false; 6753 } 6754 } 6755 6756 // OpenCL v1.0 s6.8.a.3: Pointers to functions are not allowed. 6757 if (!Se.getOpenCLOptions().isAvailableOption("__cl_clang_function_pointers", 6758 Se.getLangOpts())) { 6759 QualType NR = R.getCanonicalType(); 6760 while (NR->isPointerType() || NR->isMemberFunctionPointerType() || 6761 NR->isReferenceType()) { 6762 if (NR->isFunctionPointerType() || NR->isMemberFunctionPointerType() || 6763 NR->isFunctionReferenceType()) { 6764 Se.Diag(D.getIdentifierLoc(), diag::err_opencl_function_pointer) 6765 << NR->isReferenceType(); 6766 D.setInvalidType(); 6767 return false; 6768 } 6769 NR = NR->getPointeeType(); 6770 } 6771 } 6772 6773 if (!Se.getOpenCLOptions().isAvailableOption("cl_khr_fp16", 6774 Se.getLangOpts())) { 6775 // OpenCL v1.2 s6.1.1.1: reject declaring variables of the half and 6776 // half array type (unless the cl_khr_fp16 extension is enabled). 6777 if (Se.Context.getBaseElementType(R)->isHalfType()) { 6778 Se.Diag(D.getIdentifierLoc(), diag::err_opencl_half_declaration) << R; 6779 D.setInvalidType(); 6780 return false; 6781 } 6782 } 6783 6784 // OpenCL v1.2 s6.9.r: 6785 // The event type cannot be used with the __local, __constant and __global 6786 // address space qualifiers. 6787 if (R->isEventT()) { 6788 if (R.getAddressSpace() != LangAS::opencl_private) { 6789 Se.Diag(D.getBeginLoc(), diag::err_event_t_addr_space_qual); 6790 D.setInvalidType(); 6791 return false; 6792 } 6793 } 6794 6795 // C++ for OpenCL does not allow the thread_local storage qualifier. 6796 // OpenCL C does not support thread_local either, and 6797 // also reject all other thread storage class specifiers. 6798 DeclSpec::TSCS TSC = D.getDeclSpec().getThreadStorageClassSpec(); 6799 if (TSC != TSCS_unspecified) { 6800 bool IsCXX = Se.getLangOpts().OpenCLCPlusPlus; 6801 Se.Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 6802 diag::err_opencl_unknown_type_specifier) 6803 << IsCXX << Se.getLangOpts().getOpenCLVersionTuple().getAsString() 6804 << DeclSpec::getSpecifierName(TSC) << 1; 6805 D.setInvalidType(); 6806 return false; 6807 } 6808 6809 if (R->isSamplerT()) { 6810 // OpenCL v1.2 s6.9.b p4: 6811 // The sampler type cannot be used with the __local and __global address 6812 // space qualifiers. 6813 if (R.getAddressSpace() == LangAS::opencl_local || 6814 R.getAddressSpace() == LangAS::opencl_global) { 6815 Se.Diag(D.getIdentifierLoc(), diag::err_wrong_sampler_addressspace); 6816 D.setInvalidType(); 6817 } 6818 6819 // OpenCL v1.2 s6.12.14.1: 6820 // A global sampler must be declared with either the constant address 6821 // space qualifier or with the const qualifier. 6822 if (DC->isTranslationUnit() && 6823 !(R.getAddressSpace() == LangAS::opencl_constant || 6824 R.isConstQualified())) { 6825 Se.Diag(D.getIdentifierLoc(), diag::err_opencl_nonconst_global_sampler); 6826 D.setInvalidType(); 6827 } 6828 if (D.isInvalidType()) 6829 return false; 6830 } 6831 return true; 6832 } 6833 6834 NamedDecl *Sema::ActOnVariableDeclarator( 6835 Scope *S, Declarator &D, DeclContext *DC, TypeSourceInfo *TInfo, 6836 LookupResult &Previous, MultiTemplateParamsArg TemplateParamLists, 6837 bool &AddToScope, ArrayRef<BindingDecl *> Bindings) { 6838 QualType R = TInfo->getType(); 6839 DeclarationName Name = GetNameForDeclarator(D).getName(); 6840 6841 IdentifierInfo *II = Name.getAsIdentifierInfo(); 6842 6843 if (D.isDecompositionDeclarator()) { 6844 // Take the name of the first declarator as our name for diagnostic 6845 // purposes. 6846 auto &Decomp = D.getDecompositionDeclarator(); 6847 if (!Decomp.bindings().empty()) { 6848 II = Decomp.bindings()[0].Name; 6849 Name = II; 6850 } 6851 } else if (!II) { 6852 Diag(D.getIdentifierLoc(), diag::err_bad_variable_name) << Name; 6853 return nullptr; 6854 } 6855 6856 6857 DeclSpec::SCS SCSpec = D.getDeclSpec().getStorageClassSpec(); 6858 StorageClass SC = StorageClassSpecToVarDeclStorageClass(D.getDeclSpec()); 6859 6860 // dllimport globals without explicit storage class are treated as extern. We 6861 // have to change the storage class this early to get the right DeclContext. 6862 if (SC == SC_None && !DC->isRecord() && 6863 hasParsedAttr(S, D, ParsedAttr::AT_DLLImport) && 6864 !hasParsedAttr(S, D, ParsedAttr::AT_DLLExport)) 6865 SC = SC_Extern; 6866 6867 DeclContext *OriginalDC = DC; 6868 bool IsLocalExternDecl = SC == SC_Extern && 6869 adjustContextForLocalExternDecl(DC); 6870 6871 if (SCSpec == DeclSpec::SCS_mutable) { 6872 // mutable can only appear on non-static class members, so it's always 6873 // an error here 6874 Diag(D.getIdentifierLoc(), diag::err_mutable_nonmember); 6875 D.setInvalidType(); 6876 SC = SC_None; 6877 } 6878 6879 if (getLangOpts().CPlusPlus11 && SCSpec == DeclSpec::SCS_register && 6880 !D.getAsmLabel() && !getSourceManager().isInSystemMacro( 6881 D.getDeclSpec().getStorageClassSpecLoc())) { 6882 // In C++11, the 'register' storage class specifier is deprecated. 6883 // Suppress the warning in system macros, it's used in macros in some 6884 // popular C system headers, such as in glibc's htonl() macro. 6885 Diag(D.getDeclSpec().getStorageClassSpecLoc(), 6886 getLangOpts().CPlusPlus17 ? diag::ext_register_storage_class 6887 : diag::warn_deprecated_register) 6888 << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc()); 6889 } 6890 6891 DiagnoseFunctionSpecifiers(D.getDeclSpec()); 6892 6893 if (!DC->isRecord() && S->getFnParent() == nullptr) { 6894 // C99 6.9p2: The storage-class specifiers auto and register shall not 6895 // appear in the declaration specifiers in an external declaration. 6896 // Global Register+Asm is a GNU extension we support. 6897 if (SC == SC_Auto || (SC == SC_Register && !D.getAsmLabel())) { 6898 Diag(D.getIdentifierLoc(), diag::err_typecheck_sclass_fscope); 6899 D.setInvalidType(); 6900 } 6901 } 6902 6903 // If this variable has a variable-modified type and an initializer, try to 6904 // fold to a constant-sized type. This is otherwise invalid. 6905 if (D.hasInitializer() && R->isVariablyModifiedType()) 6906 tryToFixVariablyModifiedVarType(*this, TInfo, R, D.getIdentifierLoc(), 6907 /*DiagID=*/0); 6908 6909 bool IsMemberSpecialization = false; 6910 bool IsVariableTemplateSpecialization = false; 6911 bool IsPartialSpecialization = false; 6912 bool IsVariableTemplate = false; 6913 VarDecl *NewVD = nullptr; 6914 VarTemplateDecl *NewTemplate = nullptr; 6915 TemplateParameterList *TemplateParams = nullptr; 6916 if (!getLangOpts().CPlusPlus) { 6917 NewVD = VarDecl::Create(Context, DC, D.getBeginLoc(), D.getIdentifierLoc(), 6918 II, R, TInfo, SC); 6919 6920 if (R->getContainedDeducedType()) 6921 ParsingInitForAutoVars.insert(NewVD); 6922 6923 if (D.isInvalidType()) 6924 NewVD->setInvalidDecl(); 6925 6926 if (NewVD->getType().hasNonTrivialToPrimitiveDestructCUnion() && 6927 NewVD->hasLocalStorage()) 6928 checkNonTrivialCUnion(NewVD->getType(), NewVD->getLocation(), 6929 NTCUC_AutoVar, NTCUK_Destruct); 6930 } else { 6931 bool Invalid = false; 6932 6933 if (DC->isRecord() && !CurContext->isRecord()) { 6934 // This is an out-of-line definition of a static data member. 6935 switch (SC) { 6936 case SC_None: 6937 break; 6938 case SC_Static: 6939 Diag(D.getDeclSpec().getStorageClassSpecLoc(), 6940 diag::err_static_out_of_line) 6941 << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc()); 6942 break; 6943 case SC_Auto: 6944 case SC_Register: 6945 case SC_Extern: 6946 // [dcl.stc] p2: The auto or register specifiers shall be applied only 6947 // to names of variables declared in a block or to function parameters. 6948 // [dcl.stc] p6: The extern specifier cannot be used in the declaration 6949 // of class members 6950 6951 Diag(D.getDeclSpec().getStorageClassSpecLoc(), 6952 diag::err_storage_class_for_static_member) 6953 << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc()); 6954 break; 6955 case SC_PrivateExtern: 6956 llvm_unreachable("C storage class in c++!"); 6957 } 6958 } 6959 6960 if (SC == SC_Static && CurContext->isRecord()) { 6961 if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(DC)) { 6962 // Walk up the enclosing DeclContexts to check for any that are 6963 // incompatible with static data members. 6964 const DeclContext *FunctionOrMethod = nullptr; 6965 const CXXRecordDecl *AnonStruct = nullptr; 6966 for (DeclContext *Ctxt = DC; Ctxt; Ctxt = Ctxt->getParent()) { 6967 if (Ctxt->isFunctionOrMethod()) { 6968 FunctionOrMethod = Ctxt; 6969 break; 6970 } 6971 const CXXRecordDecl *ParentDecl = dyn_cast<CXXRecordDecl>(Ctxt); 6972 if (ParentDecl && !ParentDecl->getDeclName()) { 6973 AnonStruct = ParentDecl; 6974 break; 6975 } 6976 } 6977 if (FunctionOrMethod) { 6978 // C++ [class.static.data]p5: A local class shall not have static data 6979 // members. 6980 Diag(D.getIdentifierLoc(), 6981 diag::err_static_data_member_not_allowed_in_local_class) 6982 << Name << RD->getDeclName() << RD->getTagKind(); 6983 } else if (AnonStruct) { 6984 // C++ [class.static.data]p4: Unnamed classes and classes contained 6985 // directly or indirectly within unnamed classes shall not contain 6986 // static data members. 6987 Diag(D.getIdentifierLoc(), 6988 diag::err_static_data_member_not_allowed_in_anon_struct) 6989 << Name << AnonStruct->getTagKind(); 6990 Invalid = true; 6991 } else if (RD->isUnion()) { 6992 // C++98 [class.union]p1: If a union contains a static data member, 6993 // the program is ill-formed. C++11 drops this restriction. 6994 Diag(D.getIdentifierLoc(), 6995 getLangOpts().CPlusPlus11 6996 ? diag::warn_cxx98_compat_static_data_member_in_union 6997 : diag::ext_static_data_member_in_union) << Name; 6998 } 6999 } 7000 } 7001 7002 // Match up the template parameter lists with the scope specifier, then 7003 // determine whether we have a template or a template specialization. 7004 bool InvalidScope = false; 7005 TemplateParams = MatchTemplateParametersToScopeSpecifier( 7006 D.getDeclSpec().getBeginLoc(), D.getIdentifierLoc(), 7007 D.getCXXScopeSpec(), 7008 D.getName().getKind() == UnqualifiedIdKind::IK_TemplateId 7009 ? D.getName().TemplateId 7010 : nullptr, 7011 TemplateParamLists, 7012 /*never a friend*/ false, IsMemberSpecialization, InvalidScope); 7013 Invalid |= InvalidScope; 7014 7015 if (TemplateParams) { 7016 if (!TemplateParams->size() && 7017 D.getName().getKind() != UnqualifiedIdKind::IK_TemplateId) { 7018 // There is an extraneous 'template<>' for this variable. Complain 7019 // about it, but allow the declaration of the variable. 7020 Diag(TemplateParams->getTemplateLoc(), 7021 diag::err_template_variable_noparams) 7022 << II 7023 << SourceRange(TemplateParams->getTemplateLoc(), 7024 TemplateParams->getRAngleLoc()); 7025 TemplateParams = nullptr; 7026 } else { 7027 // Check that we can declare a template here. 7028 if (CheckTemplateDeclScope(S, TemplateParams)) 7029 return nullptr; 7030 7031 if (D.getName().getKind() == UnqualifiedIdKind::IK_TemplateId) { 7032 // This is an explicit specialization or a partial specialization. 7033 IsVariableTemplateSpecialization = true; 7034 IsPartialSpecialization = TemplateParams->size() > 0; 7035 } else { // if (TemplateParams->size() > 0) 7036 // This is a template declaration. 7037 IsVariableTemplate = true; 7038 7039 // Only C++1y supports variable templates (N3651). 7040 Diag(D.getIdentifierLoc(), 7041 getLangOpts().CPlusPlus14 7042 ? diag::warn_cxx11_compat_variable_template 7043 : diag::ext_variable_template); 7044 } 7045 } 7046 } else { 7047 // Check that we can declare a member specialization here. 7048 if (!TemplateParamLists.empty() && IsMemberSpecialization && 7049 CheckTemplateDeclScope(S, TemplateParamLists.back())) 7050 return nullptr; 7051 assert((Invalid || 7052 D.getName().getKind() != UnqualifiedIdKind::IK_TemplateId) && 7053 "should have a 'template<>' for this decl"); 7054 } 7055 7056 if (IsVariableTemplateSpecialization) { 7057 SourceLocation TemplateKWLoc = 7058 TemplateParamLists.size() > 0 7059 ? TemplateParamLists[0]->getTemplateLoc() 7060 : SourceLocation(); 7061 DeclResult Res = ActOnVarTemplateSpecialization( 7062 S, D, TInfo, TemplateKWLoc, TemplateParams, SC, 7063 IsPartialSpecialization); 7064 if (Res.isInvalid()) 7065 return nullptr; 7066 NewVD = cast<VarDecl>(Res.get()); 7067 AddToScope = false; 7068 } else if (D.isDecompositionDeclarator()) { 7069 NewVD = DecompositionDecl::Create(Context, DC, D.getBeginLoc(), 7070 D.getIdentifierLoc(), R, TInfo, SC, 7071 Bindings); 7072 } else 7073 NewVD = VarDecl::Create(Context, DC, D.getBeginLoc(), 7074 D.getIdentifierLoc(), II, R, TInfo, SC); 7075 7076 // If this is supposed to be a variable template, create it as such. 7077 if (IsVariableTemplate) { 7078 NewTemplate = 7079 VarTemplateDecl::Create(Context, DC, D.getIdentifierLoc(), Name, 7080 TemplateParams, NewVD); 7081 NewVD->setDescribedVarTemplate(NewTemplate); 7082 } 7083 7084 // If this decl has an auto type in need of deduction, make a note of the 7085 // Decl so we can diagnose uses of it in its own initializer. 7086 if (R->getContainedDeducedType()) 7087 ParsingInitForAutoVars.insert(NewVD); 7088 7089 if (D.isInvalidType() || Invalid) { 7090 NewVD->setInvalidDecl(); 7091 if (NewTemplate) 7092 NewTemplate->setInvalidDecl(); 7093 } 7094 7095 SetNestedNameSpecifier(*this, NewVD, D); 7096 7097 // If we have any template parameter lists that don't directly belong to 7098 // the variable (matching the scope specifier), store them. 7099 unsigned VDTemplateParamLists = TemplateParams ? 1 : 0; 7100 if (TemplateParamLists.size() > VDTemplateParamLists) 7101 NewVD->setTemplateParameterListsInfo( 7102 Context, TemplateParamLists.drop_back(VDTemplateParamLists)); 7103 } 7104 7105 if (D.getDeclSpec().isInlineSpecified()) { 7106 if (!getLangOpts().CPlusPlus) { 7107 Diag(D.getDeclSpec().getInlineSpecLoc(), diag::err_inline_non_function) 7108 << 0; 7109 } else if (CurContext->isFunctionOrMethod()) { 7110 // 'inline' is not allowed on block scope variable declaration. 7111 Diag(D.getDeclSpec().getInlineSpecLoc(), 7112 diag::err_inline_declaration_block_scope) << Name 7113 << FixItHint::CreateRemoval(D.getDeclSpec().getInlineSpecLoc()); 7114 } else { 7115 Diag(D.getDeclSpec().getInlineSpecLoc(), 7116 getLangOpts().CPlusPlus17 ? diag::warn_cxx14_compat_inline_variable 7117 : diag::ext_inline_variable); 7118 NewVD->setInlineSpecified(); 7119 } 7120 } 7121 7122 // Set the lexical context. If the declarator has a C++ scope specifier, the 7123 // lexical context will be different from the semantic context. 7124 NewVD->setLexicalDeclContext(CurContext); 7125 if (NewTemplate) 7126 NewTemplate->setLexicalDeclContext(CurContext); 7127 7128 if (IsLocalExternDecl) { 7129 if (D.isDecompositionDeclarator()) 7130 for (auto *B : Bindings) 7131 B->setLocalExternDecl(); 7132 else 7133 NewVD->setLocalExternDecl(); 7134 } 7135 7136 bool EmitTLSUnsupportedError = false; 7137 if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec()) { 7138 // C++11 [dcl.stc]p4: 7139 // When thread_local is applied to a variable of block scope the 7140 // storage-class-specifier static is implied if it does not appear 7141 // explicitly. 7142 // Core issue: 'static' is not implied if the variable is declared 7143 // 'extern'. 7144 if (NewVD->hasLocalStorage() && 7145 (SCSpec != DeclSpec::SCS_unspecified || 7146 TSCS != DeclSpec::TSCS_thread_local || 7147 !DC->isFunctionOrMethod())) 7148 Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 7149 diag::err_thread_non_global) 7150 << DeclSpec::getSpecifierName(TSCS); 7151 else if (!Context.getTargetInfo().isTLSSupported()) { 7152 if (getLangOpts().CUDA || getLangOpts().OpenMPIsDevice || 7153 getLangOpts().SYCLIsDevice) { 7154 // Postpone error emission until we've collected attributes required to 7155 // figure out whether it's a host or device variable and whether the 7156 // error should be ignored. 7157 EmitTLSUnsupportedError = true; 7158 // We still need to mark the variable as TLS so it shows up in AST with 7159 // proper storage class for other tools to use even if we're not going 7160 // to emit any code for it. 7161 NewVD->setTSCSpec(TSCS); 7162 } else 7163 Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 7164 diag::err_thread_unsupported); 7165 } else 7166 NewVD->setTSCSpec(TSCS); 7167 } 7168 7169 switch (D.getDeclSpec().getConstexprSpecifier()) { 7170 case ConstexprSpecKind::Unspecified: 7171 break; 7172 7173 case ConstexprSpecKind::Consteval: 7174 Diag(D.getDeclSpec().getConstexprSpecLoc(), 7175 diag::err_constexpr_wrong_decl_kind) 7176 << static_cast<int>(D.getDeclSpec().getConstexprSpecifier()); 7177 LLVM_FALLTHROUGH; 7178 7179 case ConstexprSpecKind::Constexpr: 7180 NewVD->setConstexpr(true); 7181 MaybeAddCUDAConstantAttr(NewVD); 7182 // C++1z [dcl.spec.constexpr]p1: 7183 // A static data member declared with the constexpr specifier is 7184 // implicitly an inline variable. 7185 if (NewVD->isStaticDataMember() && 7186 (getLangOpts().CPlusPlus17 || 7187 Context.getTargetInfo().getCXXABI().isMicrosoft())) 7188 NewVD->setImplicitlyInline(); 7189 break; 7190 7191 case ConstexprSpecKind::Constinit: 7192 if (!NewVD->hasGlobalStorage()) 7193 Diag(D.getDeclSpec().getConstexprSpecLoc(), 7194 diag::err_constinit_local_variable); 7195 else 7196 NewVD->addAttr(ConstInitAttr::Create( 7197 Context, D.getDeclSpec().getConstexprSpecLoc(), 7198 AttributeCommonInfo::AS_Keyword, ConstInitAttr::Keyword_constinit)); 7199 break; 7200 } 7201 7202 // C99 6.7.4p3 7203 // An inline definition of a function with external linkage shall 7204 // not contain a definition of a modifiable object with static or 7205 // thread storage duration... 7206 // We only apply this when the function is required to be defined 7207 // elsewhere, i.e. when the function is not 'extern inline'. Note 7208 // that a local variable with thread storage duration still has to 7209 // be marked 'static'. Also note that it's possible to get these 7210 // semantics in C++ using __attribute__((gnu_inline)). 7211 if (SC == SC_Static && S->getFnParent() != nullptr && 7212 !NewVD->getType().isConstQualified()) { 7213 FunctionDecl *CurFD = getCurFunctionDecl(); 7214 if (CurFD && isFunctionDefinitionDiscarded(*this, CurFD)) { 7215 Diag(D.getDeclSpec().getStorageClassSpecLoc(), 7216 diag::warn_static_local_in_extern_inline); 7217 MaybeSuggestAddingStaticToDecl(CurFD); 7218 } 7219 } 7220 7221 if (D.getDeclSpec().isModulePrivateSpecified()) { 7222 if (IsVariableTemplateSpecialization) 7223 Diag(NewVD->getLocation(), diag::err_module_private_specialization) 7224 << (IsPartialSpecialization ? 1 : 0) 7225 << FixItHint::CreateRemoval( 7226 D.getDeclSpec().getModulePrivateSpecLoc()); 7227 else if (IsMemberSpecialization) 7228 Diag(NewVD->getLocation(), diag::err_module_private_specialization) 7229 << 2 7230 << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc()); 7231 else if (NewVD->hasLocalStorage()) 7232 Diag(NewVD->getLocation(), diag::err_module_private_local) 7233 << 0 << NewVD 7234 << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc()) 7235 << FixItHint::CreateRemoval( 7236 D.getDeclSpec().getModulePrivateSpecLoc()); 7237 else { 7238 NewVD->setModulePrivate(); 7239 if (NewTemplate) 7240 NewTemplate->setModulePrivate(); 7241 for (auto *B : Bindings) 7242 B->setModulePrivate(); 7243 } 7244 } 7245 7246 if (getLangOpts().OpenCL) { 7247 7248 deduceOpenCLAddressSpace(NewVD); 7249 7250 diagnoseOpenCLTypes(S, *this, D, DC, NewVD->getType()); 7251 } 7252 7253 // Handle attributes prior to checking for duplicates in MergeVarDecl 7254 ProcessDeclAttributes(S, NewVD, D); 7255 7256 if (getLangOpts().CUDA || getLangOpts().OpenMPIsDevice || 7257 getLangOpts().SYCLIsDevice) { 7258 if (EmitTLSUnsupportedError && 7259 ((getLangOpts().CUDA && DeclAttrsMatchCUDAMode(getLangOpts(), NewVD)) || 7260 (getLangOpts().OpenMPIsDevice && 7261 OMPDeclareTargetDeclAttr::isDeclareTargetDeclaration(NewVD)))) 7262 Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 7263 diag::err_thread_unsupported); 7264 7265 if (EmitTLSUnsupportedError && 7266 (LangOpts.SYCLIsDevice || (LangOpts.OpenMP && LangOpts.OpenMPIsDevice))) 7267 targetDiag(D.getIdentifierLoc(), diag::err_thread_unsupported); 7268 // CUDA B.2.5: "__shared__ and __constant__ variables have implied static 7269 // storage [duration]." 7270 if (SC == SC_None && S->getFnParent() != nullptr && 7271 (NewVD->hasAttr<CUDASharedAttr>() || 7272 NewVD->hasAttr<CUDAConstantAttr>())) { 7273 NewVD->setStorageClass(SC_Static); 7274 } 7275 } 7276 7277 // Ensure that dllimport globals without explicit storage class are treated as 7278 // extern. The storage class is set above using parsed attributes. Now we can 7279 // check the VarDecl itself. 7280 assert(!NewVD->hasAttr<DLLImportAttr>() || 7281 NewVD->getAttr<DLLImportAttr>()->isInherited() || 7282 NewVD->isStaticDataMember() || NewVD->getStorageClass() != SC_None); 7283 7284 // In auto-retain/release, infer strong retension for variables of 7285 // retainable type. 7286 if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewVD)) 7287 NewVD->setInvalidDecl(); 7288 7289 // Handle GNU asm-label extension (encoded as an attribute). 7290 if (Expr *E = (Expr*)D.getAsmLabel()) { 7291 // The parser guarantees this is a string. 7292 StringLiteral *SE = cast<StringLiteral>(E); 7293 StringRef Label = SE->getString(); 7294 if (S->getFnParent() != nullptr) { 7295 switch (SC) { 7296 case SC_None: 7297 case SC_Auto: 7298 Diag(E->getExprLoc(), diag::warn_asm_label_on_auto_decl) << Label; 7299 break; 7300 case SC_Register: 7301 // Local Named register 7302 if (!Context.getTargetInfo().isValidGCCRegisterName(Label) && 7303 DeclAttrsMatchCUDAMode(getLangOpts(), getCurFunctionDecl())) 7304 Diag(E->getExprLoc(), diag::err_asm_unknown_register_name) << Label; 7305 break; 7306 case SC_Static: 7307 case SC_Extern: 7308 case SC_PrivateExtern: 7309 break; 7310 } 7311 } else if (SC == SC_Register) { 7312 // Global Named register 7313 if (DeclAttrsMatchCUDAMode(getLangOpts(), NewVD)) { 7314 const auto &TI = Context.getTargetInfo(); 7315 bool HasSizeMismatch; 7316 7317 if (!TI.isValidGCCRegisterName(Label)) 7318 Diag(E->getExprLoc(), diag::err_asm_unknown_register_name) << Label; 7319 else if (!TI.validateGlobalRegisterVariable(Label, 7320 Context.getTypeSize(R), 7321 HasSizeMismatch)) 7322 Diag(E->getExprLoc(), diag::err_asm_invalid_global_var_reg) << Label; 7323 else if (HasSizeMismatch) 7324 Diag(E->getExprLoc(), diag::err_asm_register_size_mismatch) << Label; 7325 } 7326 7327 if (!R->isIntegralType(Context) && !R->isPointerType()) { 7328 Diag(D.getBeginLoc(), diag::err_asm_bad_register_type); 7329 NewVD->setInvalidDecl(true); 7330 } 7331 } 7332 7333 NewVD->addAttr(AsmLabelAttr::Create(Context, Label, 7334 /*IsLiteralLabel=*/true, 7335 SE->getStrTokenLoc(0))); 7336 } else if (!ExtnameUndeclaredIdentifiers.empty()) { 7337 llvm::DenseMap<IdentifierInfo*,AsmLabelAttr*>::iterator I = 7338 ExtnameUndeclaredIdentifiers.find(NewVD->getIdentifier()); 7339 if (I != ExtnameUndeclaredIdentifiers.end()) { 7340 if (isDeclExternC(NewVD)) { 7341 NewVD->addAttr(I->second); 7342 ExtnameUndeclaredIdentifiers.erase(I); 7343 } else 7344 Diag(NewVD->getLocation(), diag::warn_redefine_extname_not_applied) 7345 << /*Variable*/1 << NewVD; 7346 } 7347 } 7348 7349 // Find the shadowed declaration before filtering for scope. 7350 NamedDecl *ShadowedDecl = D.getCXXScopeSpec().isEmpty() 7351 ? getShadowedDeclaration(NewVD, Previous) 7352 : nullptr; 7353 7354 // Don't consider existing declarations that are in a different 7355 // scope and are out-of-semantic-context declarations (if the new 7356 // declaration has linkage). 7357 FilterLookupForScope(Previous, OriginalDC, S, shouldConsiderLinkage(NewVD), 7358 D.getCXXScopeSpec().isNotEmpty() || 7359 IsMemberSpecialization || 7360 IsVariableTemplateSpecialization); 7361 7362 // Check whether the previous declaration is in the same block scope. This 7363 // affects whether we merge types with it, per C++11 [dcl.array]p3. 7364 if (getLangOpts().CPlusPlus && 7365 NewVD->isLocalVarDecl() && NewVD->hasExternalStorage()) 7366 NewVD->setPreviousDeclInSameBlockScope( 7367 Previous.isSingleResult() && !Previous.isShadowed() && 7368 isDeclInScope(Previous.getFoundDecl(), OriginalDC, S, false)); 7369 7370 if (!getLangOpts().CPlusPlus) { 7371 D.setRedeclaration(CheckVariableDeclaration(NewVD, Previous)); 7372 } else { 7373 // If this is an explicit specialization of a static data member, check it. 7374 if (IsMemberSpecialization && !NewVD->isInvalidDecl() && 7375 CheckMemberSpecialization(NewVD, Previous)) 7376 NewVD->setInvalidDecl(); 7377 7378 // Merge the decl with the existing one if appropriate. 7379 if (!Previous.empty()) { 7380 if (Previous.isSingleResult() && 7381 isa<FieldDecl>(Previous.getFoundDecl()) && 7382 D.getCXXScopeSpec().isSet()) { 7383 // The user tried to define a non-static data member 7384 // out-of-line (C++ [dcl.meaning]p1). 7385 Diag(NewVD->getLocation(), diag::err_nonstatic_member_out_of_line) 7386 << D.getCXXScopeSpec().getRange(); 7387 Previous.clear(); 7388 NewVD->setInvalidDecl(); 7389 } 7390 } else if (D.getCXXScopeSpec().isSet()) { 7391 // No previous declaration in the qualifying scope. 7392 Diag(D.getIdentifierLoc(), diag::err_no_member) 7393 << Name << computeDeclContext(D.getCXXScopeSpec(), true) 7394 << D.getCXXScopeSpec().getRange(); 7395 NewVD->setInvalidDecl(); 7396 } 7397 7398 if (!IsVariableTemplateSpecialization) 7399 D.setRedeclaration(CheckVariableDeclaration(NewVD, Previous)); 7400 7401 if (NewTemplate) { 7402 VarTemplateDecl *PrevVarTemplate = 7403 NewVD->getPreviousDecl() 7404 ? NewVD->getPreviousDecl()->getDescribedVarTemplate() 7405 : nullptr; 7406 7407 // Check the template parameter list of this declaration, possibly 7408 // merging in the template parameter list from the previous variable 7409 // template declaration. 7410 if (CheckTemplateParameterList( 7411 TemplateParams, 7412 PrevVarTemplate ? PrevVarTemplate->getTemplateParameters() 7413 : nullptr, 7414 (D.getCXXScopeSpec().isSet() && DC && DC->isRecord() && 7415 DC->isDependentContext()) 7416 ? TPC_ClassTemplateMember 7417 : TPC_VarTemplate)) 7418 NewVD->setInvalidDecl(); 7419 7420 // If we are providing an explicit specialization of a static variable 7421 // template, make a note of that. 7422 if (PrevVarTemplate && 7423 PrevVarTemplate->getInstantiatedFromMemberTemplate()) 7424 PrevVarTemplate->setMemberSpecialization(); 7425 } 7426 } 7427 7428 // Diagnose shadowed variables iff this isn't a redeclaration. 7429 if (ShadowedDecl && !D.isRedeclaration()) 7430 CheckShadow(NewVD, ShadowedDecl, Previous); 7431 7432 ProcessPragmaWeak(S, NewVD); 7433 7434 // If this is the first declaration of an extern C variable, update 7435 // the map of such variables. 7436 if (NewVD->isFirstDecl() && !NewVD->isInvalidDecl() && 7437 isIncompleteDeclExternC(*this, NewVD)) 7438 RegisterLocallyScopedExternCDecl(NewVD, S); 7439 7440 if (getLangOpts().CPlusPlus && NewVD->isStaticLocal()) { 7441 MangleNumberingContext *MCtx; 7442 Decl *ManglingContextDecl; 7443 std::tie(MCtx, ManglingContextDecl) = 7444 getCurrentMangleNumberContext(NewVD->getDeclContext()); 7445 if (MCtx) { 7446 Context.setManglingNumber( 7447 NewVD, MCtx->getManglingNumber( 7448 NewVD, getMSManglingNumber(getLangOpts(), S))); 7449 Context.setStaticLocalNumber(NewVD, MCtx->getStaticLocalNumber(NewVD)); 7450 } 7451 } 7452 7453 // Special handling of variable named 'main'. 7454 if (Name.getAsIdentifierInfo() && Name.getAsIdentifierInfo()->isStr("main") && 7455 NewVD->getDeclContext()->getRedeclContext()->isTranslationUnit() && 7456 !getLangOpts().Freestanding && !NewVD->getDescribedVarTemplate()) { 7457 7458 // C++ [basic.start.main]p3 7459 // A program that declares a variable main at global scope is ill-formed. 7460 if (getLangOpts().CPlusPlus) 7461 Diag(D.getBeginLoc(), diag::err_main_global_variable); 7462 7463 // In C, and external-linkage variable named main results in undefined 7464 // behavior. 7465 else if (NewVD->hasExternalFormalLinkage()) 7466 Diag(D.getBeginLoc(), diag::warn_main_redefined); 7467 } 7468 7469 if (D.isRedeclaration() && !Previous.empty()) { 7470 NamedDecl *Prev = Previous.getRepresentativeDecl(); 7471 checkDLLAttributeRedeclaration(*this, Prev, NewVD, IsMemberSpecialization, 7472 D.isFunctionDefinition()); 7473 } 7474 7475 if (NewTemplate) { 7476 if (NewVD->isInvalidDecl()) 7477 NewTemplate->setInvalidDecl(); 7478 ActOnDocumentableDecl(NewTemplate); 7479 return NewTemplate; 7480 } 7481 7482 if (IsMemberSpecialization && !NewVD->isInvalidDecl()) 7483 CompleteMemberSpecialization(NewVD, Previous); 7484 7485 return NewVD; 7486 } 7487 7488 /// Enum describing the %select options in diag::warn_decl_shadow. 7489 enum ShadowedDeclKind { 7490 SDK_Local, 7491 SDK_Global, 7492 SDK_StaticMember, 7493 SDK_Field, 7494 SDK_Typedef, 7495 SDK_Using, 7496 SDK_StructuredBinding 7497 }; 7498 7499 /// Determine what kind of declaration we're shadowing. 7500 static ShadowedDeclKind computeShadowedDeclKind(const NamedDecl *ShadowedDecl, 7501 const DeclContext *OldDC) { 7502 if (isa<TypeAliasDecl>(ShadowedDecl)) 7503 return SDK_Using; 7504 else if (isa<TypedefDecl>(ShadowedDecl)) 7505 return SDK_Typedef; 7506 else if (isa<BindingDecl>(ShadowedDecl)) 7507 return SDK_StructuredBinding; 7508 else if (isa<RecordDecl>(OldDC)) 7509 return isa<FieldDecl>(ShadowedDecl) ? SDK_Field : SDK_StaticMember; 7510 7511 return OldDC->isFileContext() ? SDK_Global : SDK_Local; 7512 } 7513 7514 /// Return the location of the capture if the given lambda captures the given 7515 /// variable \p VD, or an invalid source location otherwise. 7516 static SourceLocation getCaptureLocation(const LambdaScopeInfo *LSI, 7517 const VarDecl *VD) { 7518 for (const Capture &Capture : LSI->Captures) { 7519 if (Capture.isVariableCapture() && Capture.getVariable() == VD) 7520 return Capture.getLocation(); 7521 } 7522 return SourceLocation(); 7523 } 7524 7525 static bool shouldWarnIfShadowedDecl(const DiagnosticsEngine &Diags, 7526 const LookupResult &R) { 7527 // Only diagnose if we're shadowing an unambiguous field or variable. 7528 if (R.getResultKind() != LookupResult::Found) 7529 return false; 7530 7531 // Return false if warning is ignored. 7532 return !Diags.isIgnored(diag::warn_decl_shadow, R.getNameLoc()); 7533 } 7534 7535 /// Return the declaration shadowed by the given variable \p D, or null 7536 /// if it doesn't shadow any declaration or shadowing warnings are disabled. 7537 NamedDecl *Sema::getShadowedDeclaration(const VarDecl *D, 7538 const LookupResult &R) { 7539 if (!shouldWarnIfShadowedDecl(Diags, R)) 7540 return nullptr; 7541 7542 // Don't diagnose declarations at file scope. 7543 if (D->hasGlobalStorage()) 7544 return nullptr; 7545 7546 NamedDecl *ShadowedDecl = R.getFoundDecl(); 7547 return isa<VarDecl, FieldDecl, BindingDecl>(ShadowedDecl) ? ShadowedDecl 7548 : nullptr; 7549 } 7550 7551 /// Return the declaration shadowed by the given typedef \p D, or null 7552 /// if it doesn't shadow any declaration or shadowing warnings are disabled. 7553 NamedDecl *Sema::getShadowedDeclaration(const TypedefNameDecl *D, 7554 const LookupResult &R) { 7555 // Don't warn if typedef declaration is part of a class 7556 if (D->getDeclContext()->isRecord()) 7557 return nullptr; 7558 7559 if (!shouldWarnIfShadowedDecl(Diags, R)) 7560 return nullptr; 7561 7562 NamedDecl *ShadowedDecl = R.getFoundDecl(); 7563 return isa<TypedefNameDecl>(ShadowedDecl) ? ShadowedDecl : nullptr; 7564 } 7565 7566 /// Return the declaration shadowed by the given variable \p D, or null 7567 /// if it doesn't shadow any declaration or shadowing warnings are disabled. 7568 NamedDecl *Sema::getShadowedDeclaration(const BindingDecl *D, 7569 const LookupResult &R) { 7570 if (!shouldWarnIfShadowedDecl(Diags, R)) 7571 return nullptr; 7572 7573 NamedDecl *ShadowedDecl = R.getFoundDecl(); 7574 return isa<VarDecl, FieldDecl, BindingDecl>(ShadowedDecl) ? ShadowedDecl 7575 : nullptr; 7576 } 7577 7578 /// Diagnose variable or built-in function shadowing. Implements 7579 /// -Wshadow. 7580 /// 7581 /// This method is called whenever a VarDecl is added to a "useful" 7582 /// scope. 7583 /// 7584 /// \param ShadowedDecl the declaration that is shadowed by the given variable 7585 /// \param R the lookup of the name 7586 /// 7587 void Sema::CheckShadow(NamedDecl *D, NamedDecl *ShadowedDecl, 7588 const LookupResult &R) { 7589 DeclContext *NewDC = D->getDeclContext(); 7590 7591 if (FieldDecl *FD = dyn_cast<FieldDecl>(ShadowedDecl)) { 7592 // Fields are not shadowed by variables in C++ static methods. 7593 if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewDC)) 7594 if (MD->isStatic()) 7595 return; 7596 7597 // Fields shadowed by constructor parameters are a special case. Usually 7598 // the constructor initializes the field with the parameter. 7599 if (isa<CXXConstructorDecl>(NewDC)) 7600 if (const auto PVD = dyn_cast<ParmVarDecl>(D)) { 7601 // Remember that this was shadowed so we can either warn about its 7602 // modification or its existence depending on warning settings. 7603 ShadowingDecls.insert({PVD->getCanonicalDecl(), FD}); 7604 return; 7605 } 7606 } 7607 7608 if (VarDecl *shadowedVar = dyn_cast<VarDecl>(ShadowedDecl)) 7609 if (shadowedVar->isExternC()) { 7610 // For shadowing external vars, make sure that we point to the global 7611 // declaration, not a locally scoped extern declaration. 7612 for (auto I : shadowedVar->redecls()) 7613 if (I->isFileVarDecl()) { 7614 ShadowedDecl = I; 7615 break; 7616 } 7617 } 7618 7619 DeclContext *OldDC = ShadowedDecl->getDeclContext()->getRedeclContext(); 7620 7621 unsigned WarningDiag = diag::warn_decl_shadow; 7622 SourceLocation CaptureLoc; 7623 if (isa<VarDecl>(D) && isa<VarDecl>(ShadowedDecl) && NewDC && 7624 isa<CXXMethodDecl>(NewDC)) { 7625 if (const auto *RD = dyn_cast<CXXRecordDecl>(NewDC->getParent())) { 7626 if (RD->isLambda() && OldDC->Encloses(NewDC->getLexicalParent())) { 7627 if (RD->getLambdaCaptureDefault() == LCD_None) { 7628 // Try to avoid warnings for lambdas with an explicit capture list. 7629 const auto *LSI = cast<LambdaScopeInfo>(getCurFunction()); 7630 // Warn only when the lambda captures the shadowed decl explicitly. 7631 CaptureLoc = getCaptureLocation(LSI, cast<VarDecl>(ShadowedDecl)); 7632 if (CaptureLoc.isInvalid()) 7633 WarningDiag = diag::warn_decl_shadow_uncaptured_local; 7634 } else { 7635 // Remember that this was shadowed so we can avoid the warning if the 7636 // shadowed decl isn't captured and the warning settings allow it. 7637 cast<LambdaScopeInfo>(getCurFunction()) 7638 ->ShadowingDecls.push_back( 7639 {cast<VarDecl>(D), cast<VarDecl>(ShadowedDecl)}); 7640 return; 7641 } 7642 } 7643 7644 if (cast<VarDecl>(ShadowedDecl)->hasLocalStorage()) { 7645 // A variable can't shadow a local variable in an enclosing scope, if 7646 // they are separated by a non-capturing declaration context. 7647 for (DeclContext *ParentDC = NewDC; 7648 ParentDC && !ParentDC->Equals(OldDC); 7649 ParentDC = getLambdaAwareParentOfDeclContext(ParentDC)) { 7650 // Only block literals, captured statements, and lambda expressions 7651 // can capture; other scopes don't. 7652 if (!isa<BlockDecl>(ParentDC) && !isa<CapturedDecl>(ParentDC) && 7653 !isLambdaCallOperator(ParentDC)) { 7654 return; 7655 } 7656 } 7657 } 7658 } 7659 } 7660 7661 // Only warn about certain kinds of shadowing for class members. 7662 if (NewDC && NewDC->isRecord()) { 7663 // In particular, don't warn about shadowing non-class members. 7664 if (!OldDC->isRecord()) 7665 return; 7666 7667 // TODO: should we warn about static data members shadowing 7668 // static data members from base classes? 7669 7670 // TODO: don't diagnose for inaccessible shadowed members. 7671 // This is hard to do perfectly because we might friend the 7672 // shadowing context, but that's just a false negative. 7673 } 7674 7675 7676 DeclarationName Name = R.getLookupName(); 7677 7678 // Emit warning and note. 7679 if (getSourceManager().isInSystemMacro(R.getNameLoc())) 7680 return; 7681 ShadowedDeclKind Kind = computeShadowedDeclKind(ShadowedDecl, OldDC); 7682 Diag(R.getNameLoc(), WarningDiag) << Name << Kind << OldDC; 7683 if (!CaptureLoc.isInvalid()) 7684 Diag(CaptureLoc, diag::note_var_explicitly_captured_here) 7685 << Name << /*explicitly*/ 1; 7686 Diag(ShadowedDecl->getLocation(), diag::note_previous_declaration); 7687 } 7688 7689 /// Diagnose shadowing for variables shadowed in the lambda record \p LambdaRD 7690 /// when these variables are captured by the lambda. 7691 void Sema::DiagnoseShadowingLambdaDecls(const LambdaScopeInfo *LSI) { 7692 for (const auto &Shadow : LSI->ShadowingDecls) { 7693 const VarDecl *ShadowedDecl = Shadow.ShadowedDecl; 7694 // Try to avoid the warning when the shadowed decl isn't captured. 7695 SourceLocation CaptureLoc = getCaptureLocation(LSI, ShadowedDecl); 7696 const DeclContext *OldDC = ShadowedDecl->getDeclContext(); 7697 Diag(Shadow.VD->getLocation(), CaptureLoc.isInvalid() 7698 ? diag::warn_decl_shadow_uncaptured_local 7699 : diag::warn_decl_shadow) 7700 << Shadow.VD->getDeclName() 7701 << computeShadowedDeclKind(ShadowedDecl, OldDC) << OldDC; 7702 if (!CaptureLoc.isInvalid()) 7703 Diag(CaptureLoc, diag::note_var_explicitly_captured_here) 7704 << Shadow.VD->getDeclName() << /*explicitly*/ 0; 7705 Diag(ShadowedDecl->getLocation(), diag::note_previous_declaration); 7706 } 7707 } 7708 7709 /// Check -Wshadow without the advantage of a previous lookup. 7710 void Sema::CheckShadow(Scope *S, VarDecl *D) { 7711 if (Diags.isIgnored(diag::warn_decl_shadow, D->getLocation())) 7712 return; 7713 7714 LookupResult R(*this, D->getDeclName(), D->getLocation(), 7715 Sema::LookupOrdinaryName, Sema::ForVisibleRedeclaration); 7716 LookupName(R, S); 7717 if (NamedDecl *ShadowedDecl = getShadowedDeclaration(D, R)) 7718 CheckShadow(D, ShadowedDecl, R); 7719 } 7720 7721 /// Check if 'E', which is an expression that is about to be modified, refers 7722 /// to a constructor parameter that shadows a field. 7723 void Sema::CheckShadowingDeclModification(Expr *E, SourceLocation Loc) { 7724 // Quickly ignore expressions that can't be shadowing ctor parameters. 7725 if (!getLangOpts().CPlusPlus || ShadowingDecls.empty()) 7726 return; 7727 E = E->IgnoreParenImpCasts(); 7728 auto *DRE = dyn_cast<DeclRefExpr>(E); 7729 if (!DRE) 7730 return; 7731 const NamedDecl *D = cast<NamedDecl>(DRE->getDecl()->getCanonicalDecl()); 7732 auto I = ShadowingDecls.find(D); 7733 if (I == ShadowingDecls.end()) 7734 return; 7735 const NamedDecl *ShadowedDecl = I->second; 7736 const DeclContext *OldDC = ShadowedDecl->getDeclContext(); 7737 Diag(Loc, diag::warn_modifying_shadowing_decl) << D << OldDC; 7738 Diag(D->getLocation(), diag::note_var_declared_here) << D; 7739 Diag(ShadowedDecl->getLocation(), diag::note_previous_declaration); 7740 7741 // Avoid issuing multiple warnings about the same decl. 7742 ShadowingDecls.erase(I); 7743 } 7744 7745 /// Check for conflict between this global or extern "C" declaration and 7746 /// previous global or extern "C" declarations. This is only used in C++. 7747 template<typename T> 7748 static bool checkGlobalOrExternCConflict( 7749 Sema &S, const T *ND, bool IsGlobal, LookupResult &Previous) { 7750 assert(S.getLangOpts().CPlusPlus && "only C++ has extern \"C\""); 7751 NamedDecl *Prev = S.findLocallyScopedExternCDecl(ND->getDeclName()); 7752 7753 if (!Prev && IsGlobal && !isIncompleteDeclExternC(S, ND)) { 7754 // The common case: this global doesn't conflict with any extern "C" 7755 // declaration. 7756 return false; 7757 } 7758 7759 if (Prev) { 7760 if (!IsGlobal || isIncompleteDeclExternC(S, ND)) { 7761 // Both the old and new declarations have C language linkage. This is a 7762 // redeclaration. 7763 Previous.clear(); 7764 Previous.addDecl(Prev); 7765 return true; 7766 } 7767 7768 // This is a global, non-extern "C" declaration, and there is a previous 7769 // non-global extern "C" declaration. Diagnose if this is a variable 7770 // declaration. 7771 if (!isa<VarDecl>(ND)) 7772 return false; 7773 } else { 7774 // The declaration is extern "C". Check for any declaration in the 7775 // translation unit which might conflict. 7776 if (IsGlobal) { 7777 // We have already performed the lookup into the translation unit. 7778 IsGlobal = false; 7779 for (LookupResult::iterator I = Previous.begin(), E = Previous.end(); 7780 I != E; ++I) { 7781 if (isa<VarDecl>(*I)) { 7782 Prev = *I; 7783 break; 7784 } 7785 } 7786 } else { 7787 DeclContext::lookup_result R = 7788 S.Context.getTranslationUnitDecl()->lookup(ND->getDeclName()); 7789 for (DeclContext::lookup_result::iterator I = R.begin(), E = R.end(); 7790 I != E; ++I) { 7791 if (isa<VarDecl>(*I)) { 7792 Prev = *I; 7793 break; 7794 } 7795 // FIXME: If we have any other entity with this name in global scope, 7796 // the declaration is ill-formed, but that is a defect: it breaks the 7797 // 'stat' hack, for instance. Only variables can have mangled name 7798 // clashes with extern "C" declarations, so only they deserve a 7799 // diagnostic. 7800 } 7801 } 7802 7803 if (!Prev) 7804 return false; 7805 } 7806 7807 // Use the first declaration's location to ensure we point at something which 7808 // is lexically inside an extern "C" linkage-spec. 7809 assert(Prev && "should have found a previous declaration to diagnose"); 7810 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(Prev)) 7811 Prev = FD->getFirstDecl(); 7812 else 7813 Prev = cast<VarDecl>(Prev)->getFirstDecl(); 7814 7815 S.Diag(ND->getLocation(), diag::err_extern_c_global_conflict) 7816 << IsGlobal << ND; 7817 S.Diag(Prev->getLocation(), diag::note_extern_c_global_conflict) 7818 << IsGlobal; 7819 return false; 7820 } 7821 7822 /// Apply special rules for handling extern "C" declarations. Returns \c true 7823 /// if we have found that this is a redeclaration of some prior entity. 7824 /// 7825 /// Per C++ [dcl.link]p6: 7826 /// Two declarations [for a function or variable] with C language linkage 7827 /// with the same name that appear in different scopes refer to the same 7828 /// [entity]. An entity with C language linkage shall not be declared with 7829 /// the same name as an entity in global scope. 7830 template<typename T> 7831 static bool checkForConflictWithNonVisibleExternC(Sema &S, const T *ND, 7832 LookupResult &Previous) { 7833 if (!S.getLangOpts().CPlusPlus) { 7834 // In C, when declaring a global variable, look for a corresponding 'extern' 7835 // variable declared in function scope. We don't need this in C++, because 7836 // we find local extern decls in the surrounding file-scope DeclContext. 7837 if (ND->getDeclContext()->getRedeclContext()->isTranslationUnit()) { 7838 if (NamedDecl *Prev = S.findLocallyScopedExternCDecl(ND->getDeclName())) { 7839 Previous.clear(); 7840 Previous.addDecl(Prev); 7841 return true; 7842 } 7843 } 7844 return false; 7845 } 7846 7847 // A declaration in the translation unit can conflict with an extern "C" 7848 // declaration. 7849 if (ND->getDeclContext()->getRedeclContext()->isTranslationUnit()) 7850 return checkGlobalOrExternCConflict(S, ND, /*IsGlobal*/true, Previous); 7851 7852 // An extern "C" declaration can conflict with a declaration in the 7853 // translation unit or can be a redeclaration of an extern "C" declaration 7854 // in another scope. 7855 if (isIncompleteDeclExternC(S,ND)) 7856 return checkGlobalOrExternCConflict(S, ND, /*IsGlobal*/false, Previous); 7857 7858 // Neither global nor extern "C": nothing to do. 7859 return false; 7860 } 7861 7862 void Sema::CheckVariableDeclarationType(VarDecl *NewVD) { 7863 // If the decl is already known invalid, don't check it. 7864 if (NewVD->isInvalidDecl()) 7865 return; 7866 7867 QualType T = NewVD->getType(); 7868 7869 // Defer checking an 'auto' type until its initializer is attached. 7870 if (T->isUndeducedType()) 7871 return; 7872 7873 if (NewVD->hasAttrs()) 7874 CheckAlignasUnderalignment(NewVD); 7875 7876 if (T->isObjCObjectType()) { 7877 Diag(NewVD->getLocation(), diag::err_statically_allocated_object) 7878 << FixItHint::CreateInsertion(NewVD->getLocation(), "*"); 7879 T = Context.getObjCObjectPointerType(T); 7880 NewVD->setType(T); 7881 } 7882 7883 // Emit an error if an address space was applied to decl with local storage. 7884 // This includes arrays of objects with address space qualifiers, but not 7885 // automatic variables that point to other address spaces. 7886 // ISO/IEC TR 18037 S5.1.2 7887 if (!getLangOpts().OpenCL && NewVD->hasLocalStorage() && 7888 T.getAddressSpace() != LangAS::Default) { 7889 Diag(NewVD->getLocation(), diag::err_as_qualified_auto_decl) << 0; 7890 NewVD->setInvalidDecl(); 7891 return; 7892 } 7893 7894 // OpenCL v1.2 s6.8 - The static qualifier is valid only in program 7895 // scope. 7896 if (getLangOpts().OpenCLVersion == 120 && 7897 !getOpenCLOptions().isAvailableOption("cl_clang_storage_class_specifiers", 7898 getLangOpts()) && 7899 NewVD->isStaticLocal()) { 7900 Diag(NewVD->getLocation(), diag::err_static_function_scope); 7901 NewVD->setInvalidDecl(); 7902 return; 7903 } 7904 7905 if (getLangOpts().OpenCL) { 7906 // OpenCL v2.0 s6.12.5 - The __block storage type is not supported. 7907 if (NewVD->hasAttr<BlocksAttr>()) { 7908 Diag(NewVD->getLocation(), diag::err_opencl_block_storage_type); 7909 return; 7910 } 7911 7912 if (T->isBlockPointerType()) { 7913 // OpenCL v2.0 s6.12.5 - Any block declaration must be const qualified and 7914 // can't use 'extern' storage class. 7915 if (!T.isConstQualified()) { 7916 Diag(NewVD->getLocation(), diag::err_opencl_invalid_block_declaration) 7917 << 0 /*const*/; 7918 NewVD->setInvalidDecl(); 7919 return; 7920 } 7921 if (NewVD->hasExternalStorage()) { 7922 Diag(NewVD->getLocation(), diag::err_opencl_extern_block_declaration); 7923 NewVD->setInvalidDecl(); 7924 return; 7925 } 7926 } 7927 // OpenCL C v1.2 s6.5 - All program scope variables must be declared in the 7928 // __constant address space. 7929 // OpenCL C v2.0 s6.5.1 - Variables defined at program scope and static 7930 // variables inside a function can also be declared in the global 7931 // address space. 7932 // C++ for OpenCL inherits rule from OpenCL C v2.0. 7933 // FIXME: Adding local AS in C++ for OpenCL might make sense. 7934 if (NewVD->isFileVarDecl() || NewVD->isStaticLocal() || 7935 NewVD->hasExternalStorage()) { 7936 if (!T->isSamplerT() && 7937 !T->isDependentType() && 7938 !(T.getAddressSpace() == LangAS::opencl_constant || 7939 (T.getAddressSpace() == LangAS::opencl_global && 7940 (getLangOpts().OpenCLVersion == 200 || 7941 getLangOpts().OpenCLCPlusPlus)))) { 7942 int Scope = NewVD->isStaticLocal() | NewVD->hasExternalStorage() << 1; 7943 if (getLangOpts().OpenCLVersion == 200 || getLangOpts().OpenCLCPlusPlus) 7944 Diag(NewVD->getLocation(), diag::err_opencl_global_invalid_addr_space) 7945 << Scope << "global or constant"; 7946 else 7947 Diag(NewVD->getLocation(), diag::err_opencl_global_invalid_addr_space) 7948 << Scope << "constant"; 7949 NewVD->setInvalidDecl(); 7950 return; 7951 } 7952 } else { 7953 if (T.getAddressSpace() == LangAS::opencl_global) { 7954 Diag(NewVD->getLocation(), diag::err_opencl_function_variable) 7955 << 1 /*is any function*/ << "global"; 7956 NewVD->setInvalidDecl(); 7957 return; 7958 } 7959 if (T.getAddressSpace() == LangAS::opencl_constant || 7960 T.getAddressSpace() == LangAS::opencl_local) { 7961 FunctionDecl *FD = getCurFunctionDecl(); 7962 // OpenCL v1.1 s6.5.2 and s6.5.3: no local or constant variables 7963 // in functions. 7964 if (FD && !FD->hasAttr<OpenCLKernelAttr>()) { 7965 if (T.getAddressSpace() == LangAS::opencl_constant) 7966 Diag(NewVD->getLocation(), diag::err_opencl_function_variable) 7967 << 0 /*non-kernel only*/ << "constant"; 7968 else 7969 Diag(NewVD->getLocation(), diag::err_opencl_function_variable) 7970 << 0 /*non-kernel only*/ << "local"; 7971 NewVD->setInvalidDecl(); 7972 return; 7973 } 7974 // OpenCL v2.0 s6.5.2 and s6.5.3: local and constant variables must be 7975 // in the outermost scope of a kernel function. 7976 if (FD && FD->hasAttr<OpenCLKernelAttr>()) { 7977 if (!getCurScope()->isFunctionScope()) { 7978 if (T.getAddressSpace() == LangAS::opencl_constant) 7979 Diag(NewVD->getLocation(), diag::err_opencl_addrspace_scope) 7980 << "constant"; 7981 else 7982 Diag(NewVD->getLocation(), diag::err_opencl_addrspace_scope) 7983 << "local"; 7984 NewVD->setInvalidDecl(); 7985 return; 7986 } 7987 } 7988 } else if (T.getAddressSpace() != LangAS::opencl_private && 7989 // If we are parsing a template we didn't deduce an addr 7990 // space yet. 7991 T.getAddressSpace() != LangAS::Default) { 7992 // Do not allow other address spaces on automatic variable. 7993 Diag(NewVD->getLocation(), diag::err_as_qualified_auto_decl) << 1; 7994 NewVD->setInvalidDecl(); 7995 return; 7996 } 7997 } 7998 } 7999 8000 if (NewVD->hasLocalStorage() && T.isObjCGCWeak() 8001 && !NewVD->hasAttr<BlocksAttr>()) { 8002 if (getLangOpts().getGC() != LangOptions::NonGC) 8003 Diag(NewVD->getLocation(), diag::warn_gc_attribute_weak_on_local); 8004 else { 8005 assert(!getLangOpts().ObjCAutoRefCount); 8006 Diag(NewVD->getLocation(), diag::warn_attribute_weak_on_local); 8007 } 8008 } 8009 8010 bool isVM = T->isVariablyModifiedType(); 8011 if (isVM || NewVD->hasAttr<CleanupAttr>() || 8012 NewVD->hasAttr<BlocksAttr>()) 8013 setFunctionHasBranchProtectedScope(); 8014 8015 if ((isVM && NewVD->hasLinkage()) || 8016 (T->isVariableArrayType() && NewVD->hasGlobalStorage())) { 8017 bool SizeIsNegative; 8018 llvm::APSInt Oversized; 8019 TypeSourceInfo *FixedTInfo = TryToFixInvalidVariablyModifiedTypeSourceInfo( 8020 NewVD->getTypeSourceInfo(), Context, SizeIsNegative, Oversized); 8021 QualType FixedT; 8022 if (FixedTInfo && T == NewVD->getTypeSourceInfo()->getType()) 8023 FixedT = FixedTInfo->getType(); 8024 else if (FixedTInfo) { 8025 // Type and type-as-written are canonically different. We need to fix up 8026 // both types separately. 8027 FixedT = TryToFixInvalidVariablyModifiedType(T, Context, SizeIsNegative, 8028 Oversized); 8029 } 8030 if ((!FixedTInfo || FixedT.isNull()) && T->isVariableArrayType()) { 8031 const VariableArrayType *VAT = Context.getAsVariableArrayType(T); 8032 // FIXME: This won't give the correct result for 8033 // int a[10][n]; 8034 SourceRange SizeRange = VAT->getSizeExpr()->getSourceRange(); 8035 8036 if (NewVD->isFileVarDecl()) 8037 Diag(NewVD->getLocation(), diag::err_vla_decl_in_file_scope) 8038 << SizeRange; 8039 else if (NewVD->isStaticLocal()) 8040 Diag(NewVD->getLocation(), diag::err_vla_decl_has_static_storage) 8041 << SizeRange; 8042 else 8043 Diag(NewVD->getLocation(), diag::err_vla_decl_has_extern_linkage) 8044 << SizeRange; 8045 NewVD->setInvalidDecl(); 8046 return; 8047 } 8048 8049 if (!FixedTInfo) { 8050 if (NewVD->isFileVarDecl()) 8051 Diag(NewVD->getLocation(), diag::err_vm_decl_in_file_scope); 8052 else 8053 Diag(NewVD->getLocation(), diag::err_vm_decl_has_extern_linkage); 8054 NewVD->setInvalidDecl(); 8055 return; 8056 } 8057 8058 Diag(NewVD->getLocation(), diag::ext_vla_folded_to_constant); 8059 NewVD->setType(FixedT); 8060 NewVD->setTypeSourceInfo(FixedTInfo); 8061 } 8062 8063 if (T->isVoidType()) { 8064 // C++98 [dcl.stc]p5: The extern specifier can be applied only to the names 8065 // of objects and functions. 8066 if (NewVD->isThisDeclarationADefinition() || getLangOpts().CPlusPlus) { 8067 Diag(NewVD->getLocation(), diag::err_typecheck_decl_incomplete_type) 8068 << T; 8069 NewVD->setInvalidDecl(); 8070 return; 8071 } 8072 } 8073 8074 if (!NewVD->hasLocalStorage() && NewVD->hasAttr<BlocksAttr>()) { 8075 Diag(NewVD->getLocation(), diag::err_block_on_nonlocal); 8076 NewVD->setInvalidDecl(); 8077 return; 8078 } 8079 8080 if (!NewVD->hasLocalStorage() && T->isSizelessType()) { 8081 Diag(NewVD->getLocation(), diag::err_sizeless_nonlocal) << T; 8082 NewVD->setInvalidDecl(); 8083 return; 8084 } 8085 8086 if (isVM && NewVD->hasAttr<BlocksAttr>()) { 8087 Diag(NewVD->getLocation(), diag::err_block_on_vm); 8088 NewVD->setInvalidDecl(); 8089 return; 8090 } 8091 8092 if (NewVD->isConstexpr() && !T->isDependentType() && 8093 RequireLiteralType(NewVD->getLocation(), T, 8094 diag::err_constexpr_var_non_literal)) { 8095 NewVD->setInvalidDecl(); 8096 return; 8097 } 8098 8099 // PPC MMA non-pointer types are not allowed as non-local variable types. 8100 if (Context.getTargetInfo().getTriple().isPPC64() && 8101 !NewVD->isLocalVarDecl() && 8102 CheckPPCMMAType(T, NewVD->getLocation())) { 8103 NewVD->setInvalidDecl(); 8104 return; 8105 } 8106 } 8107 8108 /// Perform semantic checking on a newly-created variable 8109 /// declaration. 8110 /// 8111 /// This routine performs all of the type-checking required for a 8112 /// variable declaration once it has been built. It is used both to 8113 /// check variables after they have been parsed and their declarators 8114 /// have been translated into a declaration, and to check variables 8115 /// that have been instantiated from a template. 8116 /// 8117 /// Sets NewVD->isInvalidDecl() if an error was encountered. 8118 /// 8119 /// Returns true if the variable declaration is a redeclaration. 8120 bool Sema::CheckVariableDeclaration(VarDecl *NewVD, LookupResult &Previous) { 8121 CheckVariableDeclarationType(NewVD); 8122 8123 // If the decl is already known invalid, don't check it. 8124 if (NewVD->isInvalidDecl()) 8125 return false; 8126 8127 // If we did not find anything by this name, look for a non-visible 8128 // extern "C" declaration with the same name. 8129 if (Previous.empty() && 8130 checkForConflictWithNonVisibleExternC(*this, NewVD, Previous)) 8131 Previous.setShadowed(); 8132 8133 if (!Previous.empty()) { 8134 MergeVarDecl(NewVD, Previous); 8135 return true; 8136 } 8137 return false; 8138 } 8139 8140 /// AddOverriddenMethods - See if a method overrides any in the base classes, 8141 /// and if so, check that it's a valid override and remember it. 8142 bool Sema::AddOverriddenMethods(CXXRecordDecl *DC, CXXMethodDecl *MD) { 8143 llvm::SmallPtrSet<const CXXMethodDecl*, 4> Overridden; 8144 8145 // Look for methods in base classes that this method might override. 8146 CXXBasePaths Paths(/*FindAmbiguities=*/true, /*RecordPaths=*/false, 8147 /*DetectVirtual=*/false); 8148 auto VisitBase = [&] (const CXXBaseSpecifier *Specifier, CXXBasePath &Path) { 8149 CXXRecordDecl *BaseRecord = Specifier->getType()->getAsCXXRecordDecl(); 8150 DeclarationName Name = MD->getDeclName(); 8151 8152 if (Name.getNameKind() == DeclarationName::CXXDestructorName) { 8153 // We really want to find the base class destructor here. 8154 QualType T = Context.getTypeDeclType(BaseRecord); 8155 CanQualType CT = Context.getCanonicalType(T); 8156 Name = Context.DeclarationNames.getCXXDestructorName(CT); 8157 } 8158 8159 for (NamedDecl *BaseND : BaseRecord->lookup(Name)) { 8160 CXXMethodDecl *BaseMD = 8161 dyn_cast<CXXMethodDecl>(BaseND->getCanonicalDecl()); 8162 if (!BaseMD || !BaseMD->isVirtual() || 8163 IsOverload(MD, BaseMD, /*UseMemberUsingDeclRules=*/false, 8164 /*ConsiderCudaAttrs=*/true, 8165 // C++2a [class.virtual]p2 does not consider requires 8166 // clauses when overriding. 8167 /*ConsiderRequiresClauses=*/false)) 8168 continue; 8169 8170 if (Overridden.insert(BaseMD).second) { 8171 MD->addOverriddenMethod(BaseMD); 8172 CheckOverridingFunctionReturnType(MD, BaseMD); 8173 CheckOverridingFunctionAttributes(MD, BaseMD); 8174 CheckOverridingFunctionExceptionSpec(MD, BaseMD); 8175 CheckIfOverriddenFunctionIsMarkedFinal(MD, BaseMD); 8176 } 8177 8178 // A method can only override one function from each base class. We 8179 // don't track indirectly overridden methods from bases of bases. 8180 return true; 8181 } 8182 8183 return false; 8184 }; 8185 8186 DC->lookupInBases(VisitBase, Paths); 8187 return !Overridden.empty(); 8188 } 8189 8190 namespace { 8191 // Struct for holding all of the extra arguments needed by 8192 // DiagnoseInvalidRedeclaration to call Sema::ActOnFunctionDeclarator. 8193 struct ActOnFDArgs { 8194 Scope *S; 8195 Declarator &D; 8196 MultiTemplateParamsArg TemplateParamLists; 8197 bool AddToScope; 8198 }; 8199 } // end anonymous namespace 8200 8201 namespace { 8202 8203 // Callback to only accept typo corrections that have a non-zero edit distance. 8204 // Also only accept corrections that have the same parent decl. 8205 class DifferentNameValidatorCCC final : public CorrectionCandidateCallback { 8206 public: 8207 DifferentNameValidatorCCC(ASTContext &Context, FunctionDecl *TypoFD, 8208 CXXRecordDecl *Parent) 8209 : Context(Context), OriginalFD(TypoFD), 8210 ExpectedParent(Parent ? Parent->getCanonicalDecl() : nullptr) {} 8211 8212 bool ValidateCandidate(const TypoCorrection &candidate) override { 8213 if (candidate.getEditDistance() == 0) 8214 return false; 8215 8216 SmallVector<unsigned, 1> MismatchedParams; 8217 for (TypoCorrection::const_decl_iterator CDecl = candidate.begin(), 8218 CDeclEnd = candidate.end(); 8219 CDecl != CDeclEnd; ++CDecl) { 8220 FunctionDecl *FD = dyn_cast<FunctionDecl>(*CDecl); 8221 8222 if (FD && !FD->hasBody() && 8223 hasSimilarParameters(Context, FD, OriginalFD, MismatchedParams)) { 8224 if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) { 8225 CXXRecordDecl *Parent = MD->getParent(); 8226 if (Parent && Parent->getCanonicalDecl() == ExpectedParent) 8227 return true; 8228 } else if (!ExpectedParent) { 8229 return true; 8230 } 8231 } 8232 } 8233 8234 return false; 8235 } 8236 8237 std::unique_ptr<CorrectionCandidateCallback> clone() override { 8238 return std::make_unique<DifferentNameValidatorCCC>(*this); 8239 } 8240 8241 private: 8242 ASTContext &Context; 8243 FunctionDecl *OriginalFD; 8244 CXXRecordDecl *ExpectedParent; 8245 }; 8246 8247 } // end anonymous namespace 8248 8249 void Sema::MarkTypoCorrectedFunctionDefinition(const NamedDecl *F) { 8250 TypoCorrectedFunctionDefinitions.insert(F); 8251 } 8252 8253 /// Generate diagnostics for an invalid function redeclaration. 8254 /// 8255 /// This routine handles generating the diagnostic messages for an invalid 8256 /// function redeclaration, including finding possible similar declarations 8257 /// or performing typo correction if there are no previous declarations with 8258 /// the same name. 8259 /// 8260 /// Returns a NamedDecl iff typo correction was performed and substituting in 8261 /// the new declaration name does not cause new errors. 8262 static NamedDecl *DiagnoseInvalidRedeclaration( 8263 Sema &SemaRef, LookupResult &Previous, FunctionDecl *NewFD, 8264 ActOnFDArgs &ExtraArgs, bool IsLocalFriend, Scope *S) { 8265 DeclarationName Name = NewFD->getDeclName(); 8266 DeclContext *NewDC = NewFD->getDeclContext(); 8267 SmallVector<unsigned, 1> MismatchedParams; 8268 SmallVector<std::pair<FunctionDecl *, unsigned>, 1> NearMatches; 8269 TypoCorrection Correction; 8270 bool IsDefinition = ExtraArgs.D.isFunctionDefinition(); 8271 unsigned DiagMsg = 8272 IsLocalFriend ? diag::err_no_matching_local_friend : 8273 NewFD->getFriendObjectKind() ? diag::err_qualified_friend_no_match : 8274 diag::err_member_decl_does_not_match; 8275 LookupResult Prev(SemaRef, Name, NewFD->getLocation(), 8276 IsLocalFriend ? Sema::LookupLocalFriendName 8277 : Sema::LookupOrdinaryName, 8278 Sema::ForVisibleRedeclaration); 8279 8280 NewFD->setInvalidDecl(); 8281 if (IsLocalFriend) 8282 SemaRef.LookupName(Prev, S); 8283 else 8284 SemaRef.LookupQualifiedName(Prev, NewDC); 8285 assert(!Prev.isAmbiguous() && 8286 "Cannot have an ambiguity in previous-declaration lookup"); 8287 CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewFD); 8288 DifferentNameValidatorCCC CCC(SemaRef.Context, NewFD, 8289 MD ? MD->getParent() : nullptr); 8290 if (!Prev.empty()) { 8291 for (LookupResult::iterator Func = Prev.begin(), FuncEnd = Prev.end(); 8292 Func != FuncEnd; ++Func) { 8293 FunctionDecl *FD = dyn_cast<FunctionDecl>(*Func); 8294 if (FD && 8295 hasSimilarParameters(SemaRef.Context, FD, NewFD, MismatchedParams)) { 8296 // Add 1 to the index so that 0 can mean the mismatch didn't 8297 // involve a parameter 8298 unsigned ParamNum = 8299 MismatchedParams.empty() ? 0 : MismatchedParams.front() + 1; 8300 NearMatches.push_back(std::make_pair(FD, ParamNum)); 8301 } 8302 } 8303 // If the qualified name lookup yielded nothing, try typo correction 8304 } else if ((Correction = SemaRef.CorrectTypo( 8305 Prev.getLookupNameInfo(), Prev.getLookupKind(), S, 8306 &ExtraArgs.D.getCXXScopeSpec(), CCC, Sema::CTK_ErrorRecovery, 8307 IsLocalFriend ? nullptr : NewDC))) { 8308 // Set up everything for the call to ActOnFunctionDeclarator 8309 ExtraArgs.D.SetIdentifier(Correction.getCorrectionAsIdentifierInfo(), 8310 ExtraArgs.D.getIdentifierLoc()); 8311 Previous.clear(); 8312 Previous.setLookupName(Correction.getCorrection()); 8313 for (TypoCorrection::decl_iterator CDecl = Correction.begin(), 8314 CDeclEnd = Correction.end(); 8315 CDecl != CDeclEnd; ++CDecl) { 8316 FunctionDecl *FD = dyn_cast<FunctionDecl>(*CDecl); 8317 if (FD && !FD->hasBody() && 8318 hasSimilarParameters(SemaRef.Context, FD, NewFD, MismatchedParams)) { 8319 Previous.addDecl(FD); 8320 } 8321 } 8322 bool wasRedeclaration = ExtraArgs.D.isRedeclaration(); 8323 8324 NamedDecl *Result; 8325 // Retry building the function declaration with the new previous 8326 // declarations, and with errors suppressed. 8327 { 8328 // Trap errors. 8329 Sema::SFINAETrap Trap(SemaRef); 8330 8331 // TODO: Refactor ActOnFunctionDeclarator so that we can call only the 8332 // pieces need to verify the typo-corrected C++ declaration and hopefully 8333 // eliminate the need for the parameter pack ExtraArgs. 8334 Result = SemaRef.ActOnFunctionDeclarator( 8335 ExtraArgs.S, ExtraArgs.D, 8336 Correction.getCorrectionDecl()->getDeclContext(), 8337 NewFD->getTypeSourceInfo(), Previous, ExtraArgs.TemplateParamLists, 8338 ExtraArgs.AddToScope); 8339 8340 if (Trap.hasErrorOccurred()) 8341 Result = nullptr; 8342 } 8343 8344 if (Result) { 8345 // Determine which correction we picked. 8346 Decl *Canonical = Result->getCanonicalDecl(); 8347 for (LookupResult::iterator I = Previous.begin(), E = Previous.end(); 8348 I != E; ++I) 8349 if ((*I)->getCanonicalDecl() == Canonical) 8350 Correction.setCorrectionDecl(*I); 8351 8352 // Let Sema know about the correction. 8353 SemaRef.MarkTypoCorrectedFunctionDefinition(Result); 8354 SemaRef.diagnoseTypo( 8355 Correction, 8356 SemaRef.PDiag(IsLocalFriend 8357 ? diag::err_no_matching_local_friend_suggest 8358 : diag::err_member_decl_does_not_match_suggest) 8359 << Name << NewDC << IsDefinition); 8360 return Result; 8361 } 8362 8363 // Pretend the typo correction never occurred 8364 ExtraArgs.D.SetIdentifier(Name.getAsIdentifierInfo(), 8365 ExtraArgs.D.getIdentifierLoc()); 8366 ExtraArgs.D.setRedeclaration(wasRedeclaration); 8367 Previous.clear(); 8368 Previous.setLookupName(Name); 8369 } 8370 8371 SemaRef.Diag(NewFD->getLocation(), DiagMsg) 8372 << Name << NewDC << IsDefinition << NewFD->getLocation(); 8373 8374 bool NewFDisConst = false; 8375 if (CXXMethodDecl *NewMD = dyn_cast<CXXMethodDecl>(NewFD)) 8376 NewFDisConst = NewMD->isConst(); 8377 8378 for (SmallVectorImpl<std::pair<FunctionDecl *, unsigned> >::iterator 8379 NearMatch = NearMatches.begin(), NearMatchEnd = NearMatches.end(); 8380 NearMatch != NearMatchEnd; ++NearMatch) { 8381 FunctionDecl *FD = NearMatch->first; 8382 CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD); 8383 bool FDisConst = MD && MD->isConst(); 8384 bool IsMember = MD || !IsLocalFriend; 8385 8386 // FIXME: These notes are poorly worded for the local friend case. 8387 if (unsigned Idx = NearMatch->second) { 8388 ParmVarDecl *FDParam = FD->getParamDecl(Idx-1); 8389 SourceLocation Loc = FDParam->getTypeSpecStartLoc(); 8390 if (Loc.isInvalid()) Loc = FD->getLocation(); 8391 SemaRef.Diag(Loc, IsMember ? diag::note_member_def_close_param_match 8392 : diag::note_local_decl_close_param_match) 8393 << Idx << FDParam->getType() 8394 << NewFD->getParamDecl(Idx - 1)->getType(); 8395 } else if (FDisConst != NewFDisConst) { 8396 SemaRef.Diag(FD->getLocation(), diag::note_member_def_close_const_match) 8397 << NewFDisConst << FD->getSourceRange().getEnd(); 8398 } else 8399 SemaRef.Diag(FD->getLocation(), 8400 IsMember ? diag::note_member_def_close_match 8401 : diag::note_local_decl_close_match); 8402 } 8403 return nullptr; 8404 } 8405 8406 static StorageClass getFunctionStorageClass(Sema &SemaRef, Declarator &D) { 8407 switch (D.getDeclSpec().getStorageClassSpec()) { 8408 default: llvm_unreachable("Unknown storage class!"); 8409 case DeclSpec::SCS_auto: 8410 case DeclSpec::SCS_register: 8411 case DeclSpec::SCS_mutable: 8412 SemaRef.Diag(D.getDeclSpec().getStorageClassSpecLoc(), 8413 diag::err_typecheck_sclass_func); 8414 D.getMutableDeclSpec().ClearStorageClassSpecs(); 8415 D.setInvalidType(); 8416 break; 8417 case DeclSpec::SCS_unspecified: break; 8418 case DeclSpec::SCS_extern: 8419 if (D.getDeclSpec().isExternInLinkageSpec()) 8420 return SC_None; 8421 return SC_Extern; 8422 case DeclSpec::SCS_static: { 8423 if (SemaRef.CurContext->getRedeclContext()->isFunctionOrMethod()) { 8424 // C99 6.7.1p5: 8425 // The declaration of an identifier for a function that has 8426 // block scope shall have no explicit storage-class specifier 8427 // other than extern 8428 // See also (C++ [dcl.stc]p4). 8429 SemaRef.Diag(D.getDeclSpec().getStorageClassSpecLoc(), 8430 diag::err_static_block_func); 8431 break; 8432 } else 8433 return SC_Static; 8434 } 8435 case DeclSpec::SCS_private_extern: return SC_PrivateExtern; 8436 } 8437 8438 // No explicit storage class has already been returned 8439 return SC_None; 8440 } 8441 8442 static FunctionDecl *CreateNewFunctionDecl(Sema &SemaRef, Declarator &D, 8443 DeclContext *DC, QualType &R, 8444 TypeSourceInfo *TInfo, 8445 StorageClass SC, 8446 bool &IsVirtualOkay) { 8447 DeclarationNameInfo NameInfo = SemaRef.GetNameForDeclarator(D); 8448 DeclarationName Name = NameInfo.getName(); 8449 8450 FunctionDecl *NewFD = nullptr; 8451 bool isInline = D.getDeclSpec().isInlineSpecified(); 8452 8453 if (!SemaRef.getLangOpts().CPlusPlus) { 8454 // Determine whether the function was written with a 8455 // prototype. This true when: 8456 // - there is a prototype in the declarator, or 8457 // - the type R of the function is some kind of typedef or other non- 8458 // attributed reference to a type name (which eventually refers to a 8459 // function type). 8460 bool HasPrototype = 8461 (D.isFunctionDeclarator() && D.getFunctionTypeInfo().hasPrototype) || 8462 (!R->getAsAdjusted<FunctionType>() && R->isFunctionProtoType()); 8463 8464 NewFD = FunctionDecl::Create(SemaRef.Context, DC, D.getBeginLoc(), NameInfo, 8465 R, TInfo, SC, isInline, HasPrototype, 8466 ConstexprSpecKind::Unspecified, 8467 /*TrailingRequiresClause=*/nullptr); 8468 if (D.isInvalidType()) 8469 NewFD->setInvalidDecl(); 8470 8471 return NewFD; 8472 } 8473 8474 ExplicitSpecifier ExplicitSpecifier = D.getDeclSpec().getExplicitSpecifier(); 8475 8476 ConstexprSpecKind ConstexprKind = D.getDeclSpec().getConstexprSpecifier(); 8477 if (ConstexprKind == ConstexprSpecKind::Constinit) { 8478 SemaRef.Diag(D.getDeclSpec().getConstexprSpecLoc(), 8479 diag::err_constexpr_wrong_decl_kind) 8480 << static_cast<int>(ConstexprKind); 8481 ConstexprKind = ConstexprSpecKind::Unspecified; 8482 D.getMutableDeclSpec().ClearConstexprSpec(); 8483 } 8484 Expr *TrailingRequiresClause = D.getTrailingRequiresClause(); 8485 8486 // Check that the return type is not an abstract class type. 8487 // For record types, this is done by the AbstractClassUsageDiagnoser once 8488 // the class has been completely parsed. 8489 if (!DC->isRecord() && 8490 SemaRef.RequireNonAbstractType( 8491 D.getIdentifierLoc(), R->castAs<FunctionType>()->getReturnType(), 8492 diag::err_abstract_type_in_decl, SemaRef.AbstractReturnType)) 8493 D.setInvalidType(); 8494 8495 if (Name.getNameKind() == DeclarationName::CXXConstructorName) { 8496 // This is a C++ constructor declaration. 8497 assert(DC->isRecord() && 8498 "Constructors can only be declared in a member context"); 8499 8500 R = SemaRef.CheckConstructorDeclarator(D, R, SC); 8501 return CXXConstructorDecl::Create( 8502 SemaRef.Context, cast<CXXRecordDecl>(DC), D.getBeginLoc(), NameInfo, R, 8503 TInfo, ExplicitSpecifier, isInline, 8504 /*isImplicitlyDeclared=*/false, ConstexprKind, InheritedConstructor(), 8505 TrailingRequiresClause); 8506 8507 } else if (Name.getNameKind() == DeclarationName::CXXDestructorName) { 8508 // This is a C++ destructor declaration. 8509 if (DC->isRecord()) { 8510 R = SemaRef.CheckDestructorDeclarator(D, R, SC); 8511 CXXRecordDecl *Record = cast<CXXRecordDecl>(DC); 8512 CXXDestructorDecl *NewDD = CXXDestructorDecl::Create( 8513 SemaRef.Context, Record, D.getBeginLoc(), NameInfo, R, TInfo, 8514 isInline, /*isImplicitlyDeclared=*/false, ConstexprKind, 8515 TrailingRequiresClause); 8516 8517 // If the destructor needs an implicit exception specification, set it 8518 // now. FIXME: It'd be nice to be able to create the right type to start 8519 // with, but the type needs to reference the destructor declaration. 8520 if (SemaRef.getLangOpts().CPlusPlus11) 8521 SemaRef.AdjustDestructorExceptionSpec(NewDD); 8522 8523 IsVirtualOkay = true; 8524 return NewDD; 8525 8526 } else { 8527 SemaRef.Diag(D.getIdentifierLoc(), diag::err_destructor_not_member); 8528 D.setInvalidType(); 8529 8530 // Create a FunctionDecl to satisfy the function definition parsing 8531 // code path. 8532 return FunctionDecl::Create(SemaRef.Context, DC, D.getBeginLoc(), 8533 D.getIdentifierLoc(), Name, R, TInfo, SC, 8534 isInline, 8535 /*hasPrototype=*/true, ConstexprKind, 8536 TrailingRequiresClause); 8537 } 8538 8539 } else if (Name.getNameKind() == DeclarationName::CXXConversionFunctionName) { 8540 if (!DC->isRecord()) { 8541 SemaRef.Diag(D.getIdentifierLoc(), 8542 diag::err_conv_function_not_member); 8543 return nullptr; 8544 } 8545 8546 SemaRef.CheckConversionDeclarator(D, R, SC); 8547 if (D.isInvalidType()) 8548 return nullptr; 8549 8550 IsVirtualOkay = true; 8551 return CXXConversionDecl::Create( 8552 SemaRef.Context, cast<CXXRecordDecl>(DC), D.getBeginLoc(), NameInfo, R, 8553 TInfo, isInline, ExplicitSpecifier, ConstexprKind, SourceLocation(), 8554 TrailingRequiresClause); 8555 8556 } else if (Name.getNameKind() == DeclarationName::CXXDeductionGuideName) { 8557 if (TrailingRequiresClause) 8558 SemaRef.Diag(TrailingRequiresClause->getBeginLoc(), 8559 diag::err_trailing_requires_clause_on_deduction_guide) 8560 << TrailingRequiresClause->getSourceRange(); 8561 SemaRef.CheckDeductionGuideDeclarator(D, R, SC); 8562 8563 return CXXDeductionGuideDecl::Create(SemaRef.Context, DC, D.getBeginLoc(), 8564 ExplicitSpecifier, NameInfo, R, TInfo, 8565 D.getEndLoc()); 8566 } else if (DC->isRecord()) { 8567 // If the name of the function is the same as the name of the record, 8568 // then this must be an invalid constructor that has a return type. 8569 // (The parser checks for a return type and makes the declarator a 8570 // constructor if it has no return type). 8571 if (Name.getAsIdentifierInfo() && 8572 Name.getAsIdentifierInfo() == cast<CXXRecordDecl>(DC)->getIdentifier()){ 8573 SemaRef.Diag(D.getIdentifierLoc(), diag::err_constructor_return_type) 8574 << SourceRange(D.getDeclSpec().getTypeSpecTypeLoc()) 8575 << SourceRange(D.getIdentifierLoc()); 8576 return nullptr; 8577 } 8578 8579 // This is a C++ method declaration. 8580 CXXMethodDecl *Ret = CXXMethodDecl::Create( 8581 SemaRef.Context, cast<CXXRecordDecl>(DC), D.getBeginLoc(), NameInfo, R, 8582 TInfo, SC, isInline, ConstexprKind, SourceLocation(), 8583 TrailingRequiresClause); 8584 IsVirtualOkay = !Ret->isStatic(); 8585 return Ret; 8586 } else { 8587 bool isFriend = 8588 SemaRef.getLangOpts().CPlusPlus && D.getDeclSpec().isFriendSpecified(); 8589 if (!isFriend && SemaRef.CurContext->isRecord()) 8590 return nullptr; 8591 8592 // Determine whether the function was written with a 8593 // prototype. This true when: 8594 // - we're in C++ (where every function has a prototype), 8595 return FunctionDecl::Create(SemaRef.Context, DC, D.getBeginLoc(), NameInfo, 8596 R, TInfo, SC, isInline, true /*HasPrototype*/, 8597 ConstexprKind, TrailingRequiresClause); 8598 } 8599 } 8600 8601 enum OpenCLParamType { 8602 ValidKernelParam, 8603 PtrPtrKernelParam, 8604 PtrKernelParam, 8605 InvalidAddrSpacePtrKernelParam, 8606 InvalidKernelParam, 8607 RecordKernelParam 8608 }; 8609 8610 static bool isOpenCLSizeDependentType(ASTContext &C, QualType Ty) { 8611 // Size dependent types are just typedefs to normal integer types 8612 // (e.g. unsigned long), so we cannot distinguish them from other typedefs to 8613 // integers other than by their names. 8614 StringRef SizeTypeNames[] = {"size_t", "intptr_t", "uintptr_t", "ptrdiff_t"}; 8615 8616 // Remove typedefs one by one until we reach a typedef 8617 // for a size dependent type. 8618 QualType DesugaredTy = Ty; 8619 do { 8620 ArrayRef<StringRef> Names(SizeTypeNames); 8621 auto Match = llvm::find(Names, DesugaredTy.getUnqualifiedType().getAsString()); 8622 if (Names.end() != Match) 8623 return true; 8624 8625 Ty = DesugaredTy; 8626 DesugaredTy = Ty.getSingleStepDesugaredType(C); 8627 } while (DesugaredTy != Ty); 8628 8629 return false; 8630 } 8631 8632 static OpenCLParamType getOpenCLKernelParameterType(Sema &S, QualType PT) { 8633 if (PT->isPointerType()) { 8634 QualType PointeeType = PT->getPointeeType(); 8635 if (PointeeType.getAddressSpace() == LangAS::opencl_generic || 8636 PointeeType.getAddressSpace() == LangAS::opencl_private || 8637 PointeeType.getAddressSpace() == LangAS::Default) 8638 return InvalidAddrSpacePtrKernelParam; 8639 8640 if (PointeeType->isPointerType()) { 8641 // This is a pointer to pointer parameter. 8642 // Recursively check inner type. 8643 OpenCLParamType ParamKind = getOpenCLKernelParameterType(S, PointeeType); 8644 if (ParamKind == InvalidAddrSpacePtrKernelParam || 8645 ParamKind == InvalidKernelParam) 8646 return ParamKind; 8647 8648 return PtrPtrKernelParam; 8649 } 8650 return PtrKernelParam; 8651 } 8652 8653 // OpenCL v1.2 s6.9.k: 8654 // Arguments to kernel functions in a program cannot be declared with the 8655 // built-in scalar types bool, half, size_t, ptrdiff_t, intptr_t, and 8656 // uintptr_t or a struct and/or union that contain fields declared to be one 8657 // of these built-in scalar types. 8658 if (isOpenCLSizeDependentType(S.getASTContext(), PT)) 8659 return InvalidKernelParam; 8660 8661 if (PT->isImageType()) 8662 return PtrKernelParam; 8663 8664 if (PT->isBooleanType() || PT->isEventT() || PT->isReserveIDT()) 8665 return InvalidKernelParam; 8666 8667 // OpenCL extension spec v1.2 s9.5: 8668 // This extension adds support for half scalar and vector types as built-in 8669 // types that can be used for arithmetic operations, conversions etc. 8670 if (!S.getOpenCLOptions().isAvailableOption("cl_khr_fp16", S.getLangOpts()) && 8671 PT->isHalfType()) 8672 return InvalidKernelParam; 8673 8674 if (PT->isRecordType()) 8675 return RecordKernelParam; 8676 8677 // Look into an array argument to check if it has a forbidden type. 8678 if (PT->isArrayType()) { 8679 const Type *UnderlyingTy = PT->getPointeeOrArrayElementType(); 8680 // Call ourself to check an underlying type of an array. Since the 8681 // getPointeeOrArrayElementType returns an innermost type which is not an 8682 // array, this recursive call only happens once. 8683 return getOpenCLKernelParameterType(S, QualType(UnderlyingTy, 0)); 8684 } 8685 8686 return ValidKernelParam; 8687 } 8688 8689 static void checkIsValidOpenCLKernelParameter( 8690 Sema &S, 8691 Declarator &D, 8692 ParmVarDecl *Param, 8693 llvm::SmallPtrSetImpl<const Type *> &ValidTypes) { 8694 QualType PT = Param->getType(); 8695 8696 // Cache the valid types we encounter to avoid rechecking structs that are 8697 // used again 8698 if (ValidTypes.count(PT.getTypePtr())) 8699 return; 8700 8701 switch (getOpenCLKernelParameterType(S, PT)) { 8702 case PtrPtrKernelParam: 8703 // OpenCL v3.0 s6.11.a: 8704 // A kernel function argument cannot be declared as a pointer to a pointer 8705 // type. [...] This restriction only applies to OpenCL C 1.2 or below. 8706 if (S.getLangOpts().OpenCLVersion < 120 && 8707 !S.getLangOpts().OpenCLCPlusPlus) { 8708 S.Diag(Param->getLocation(), diag::err_opencl_ptrptr_kernel_param); 8709 D.setInvalidType(); 8710 return; 8711 } 8712 8713 ValidTypes.insert(PT.getTypePtr()); 8714 return; 8715 8716 case InvalidAddrSpacePtrKernelParam: 8717 // OpenCL v1.0 s6.5: 8718 // __kernel function arguments declared to be a pointer of a type can point 8719 // to one of the following address spaces only : __global, __local or 8720 // __constant. 8721 S.Diag(Param->getLocation(), diag::err_kernel_arg_address_space); 8722 D.setInvalidType(); 8723 return; 8724 8725 // OpenCL v1.2 s6.9.k: 8726 // Arguments to kernel functions in a program cannot be declared with the 8727 // built-in scalar types bool, half, size_t, ptrdiff_t, intptr_t, and 8728 // uintptr_t or a struct and/or union that contain fields declared to be 8729 // one of these built-in scalar types. 8730 8731 case InvalidKernelParam: 8732 // OpenCL v1.2 s6.8 n: 8733 // A kernel function argument cannot be declared 8734 // of event_t type. 8735 // Do not diagnose half type since it is diagnosed as invalid argument 8736 // type for any function elsewhere. 8737 if (!PT->isHalfType()) { 8738 S.Diag(Param->getLocation(), diag::err_bad_kernel_param_type) << PT; 8739 8740 // Explain what typedefs are involved. 8741 const TypedefType *Typedef = nullptr; 8742 while ((Typedef = PT->getAs<TypedefType>())) { 8743 SourceLocation Loc = Typedef->getDecl()->getLocation(); 8744 // SourceLocation may be invalid for a built-in type. 8745 if (Loc.isValid()) 8746 S.Diag(Loc, diag::note_entity_declared_at) << PT; 8747 PT = Typedef->desugar(); 8748 } 8749 } 8750 8751 D.setInvalidType(); 8752 return; 8753 8754 case PtrKernelParam: 8755 case ValidKernelParam: 8756 ValidTypes.insert(PT.getTypePtr()); 8757 return; 8758 8759 case RecordKernelParam: 8760 break; 8761 } 8762 8763 // Track nested structs we will inspect 8764 SmallVector<const Decl *, 4> VisitStack; 8765 8766 // Track where we are in the nested structs. Items will migrate from 8767 // VisitStack to HistoryStack as we do the DFS for bad field. 8768 SmallVector<const FieldDecl *, 4> HistoryStack; 8769 HistoryStack.push_back(nullptr); 8770 8771 // At this point we already handled everything except of a RecordType or 8772 // an ArrayType of a RecordType. 8773 assert((PT->isArrayType() || PT->isRecordType()) && "Unexpected type."); 8774 const RecordType *RecTy = 8775 PT->getPointeeOrArrayElementType()->getAs<RecordType>(); 8776 const RecordDecl *OrigRecDecl = RecTy->getDecl(); 8777 8778 VisitStack.push_back(RecTy->getDecl()); 8779 assert(VisitStack.back() && "First decl null?"); 8780 8781 do { 8782 const Decl *Next = VisitStack.pop_back_val(); 8783 if (!Next) { 8784 assert(!HistoryStack.empty()); 8785 // Found a marker, we have gone up a level 8786 if (const FieldDecl *Hist = HistoryStack.pop_back_val()) 8787 ValidTypes.insert(Hist->getType().getTypePtr()); 8788 8789 continue; 8790 } 8791 8792 // Adds everything except the original parameter declaration (which is not a 8793 // field itself) to the history stack. 8794 const RecordDecl *RD; 8795 if (const FieldDecl *Field = dyn_cast<FieldDecl>(Next)) { 8796 HistoryStack.push_back(Field); 8797 8798 QualType FieldTy = Field->getType(); 8799 // Other field types (known to be valid or invalid) are handled while we 8800 // walk around RecordDecl::fields(). 8801 assert((FieldTy->isArrayType() || FieldTy->isRecordType()) && 8802 "Unexpected type."); 8803 const Type *FieldRecTy = FieldTy->getPointeeOrArrayElementType(); 8804 8805 RD = FieldRecTy->castAs<RecordType>()->getDecl(); 8806 } else { 8807 RD = cast<RecordDecl>(Next); 8808 } 8809 8810 // Add a null marker so we know when we've gone back up a level 8811 VisitStack.push_back(nullptr); 8812 8813 for (const auto *FD : RD->fields()) { 8814 QualType QT = FD->getType(); 8815 8816 if (ValidTypes.count(QT.getTypePtr())) 8817 continue; 8818 8819 OpenCLParamType ParamType = getOpenCLKernelParameterType(S, QT); 8820 if (ParamType == ValidKernelParam) 8821 continue; 8822 8823 if (ParamType == RecordKernelParam) { 8824 VisitStack.push_back(FD); 8825 continue; 8826 } 8827 8828 // OpenCL v1.2 s6.9.p: 8829 // Arguments to kernel functions that are declared to be a struct or union 8830 // do not allow OpenCL objects to be passed as elements of the struct or 8831 // union. 8832 if (ParamType == PtrKernelParam || ParamType == PtrPtrKernelParam || 8833 ParamType == InvalidAddrSpacePtrKernelParam) { 8834 S.Diag(Param->getLocation(), 8835 diag::err_record_with_pointers_kernel_param) 8836 << PT->isUnionType() 8837 << PT; 8838 } else { 8839 S.Diag(Param->getLocation(), diag::err_bad_kernel_param_type) << PT; 8840 } 8841 8842 S.Diag(OrigRecDecl->getLocation(), diag::note_within_field_of_type) 8843 << OrigRecDecl->getDeclName(); 8844 8845 // We have an error, now let's go back up through history and show where 8846 // the offending field came from 8847 for (ArrayRef<const FieldDecl *>::const_iterator 8848 I = HistoryStack.begin() + 1, 8849 E = HistoryStack.end(); 8850 I != E; ++I) { 8851 const FieldDecl *OuterField = *I; 8852 S.Diag(OuterField->getLocation(), diag::note_within_field_of_type) 8853 << OuterField->getType(); 8854 } 8855 8856 S.Diag(FD->getLocation(), diag::note_illegal_field_declared_here) 8857 << QT->isPointerType() 8858 << QT; 8859 D.setInvalidType(); 8860 return; 8861 } 8862 } while (!VisitStack.empty()); 8863 } 8864 8865 /// Find the DeclContext in which a tag is implicitly declared if we see an 8866 /// elaborated type specifier in the specified context, and lookup finds 8867 /// nothing. 8868 static DeclContext *getTagInjectionContext(DeclContext *DC) { 8869 while (!DC->isFileContext() && !DC->isFunctionOrMethod()) 8870 DC = DC->getParent(); 8871 return DC; 8872 } 8873 8874 /// Find the Scope in which a tag is implicitly declared if we see an 8875 /// elaborated type specifier in the specified context, and lookup finds 8876 /// nothing. 8877 static Scope *getTagInjectionScope(Scope *S, const LangOptions &LangOpts) { 8878 while (S->isClassScope() || 8879 (LangOpts.CPlusPlus && 8880 S->isFunctionPrototypeScope()) || 8881 ((S->getFlags() & Scope::DeclScope) == 0) || 8882 (S->getEntity() && S->getEntity()->isTransparentContext())) 8883 S = S->getParent(); 8884 return S; 8885 } 8886 8887 NamedDecl* 8888 Sema::ActOnFunctionDeclarator(Scope *S, Declarator &D, DeclContext *DC, 8889 TypeSourceInfo *TInfo, LookupResult &Previous, 8890 MultiTemplateParamsArg TemplateParamListsRef, 8891 bool &AddToScope) { 8892 QualType R = TInfo->getType(); 8893 8894 assert(R->isFunctionType()); 8895 if (R.getCanonicalType()->castAs<FunctionType>()->getCmseNSCallAttr()) 8896 Diag(D.getIdentifierLoc(), diag::err_function_decl_cmse_ns_call); 8897 8898 SmallVector<TemplateParameterList *, 4> TemplateParamLists; 8899 for (TemplateParameterList *TPL : TemplateParamListsRef) 8900 TemplateParamLists.push_back(TPL); 8901 if (TemplateParameterList *Invented = D.getInventedTemplateParameterList()) { 8902 if (!TemplateParamLists.empty() && 8903 Invented->getDepth() == TemplateParamLists.back()->getDepth()) 8904 TemplateParamLists.back() = Invented; 8905 else 8906 TemplateParamLists.push_back(Invented); 8907 } 8908 8909 // TODO: consider using NameInfo for diagnostic. 8910 DeclarationNameInfo NameInfo = GetNameForDeclarator(D); 8911 DeclarationName Name = NameInfo.getName(); 8912 StorageClass SC = getFunctionStorageClass(*this, D); 8913 8914 if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec()) 8915 Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 8916 diag::err_invalid_thread) 8917 << DeclSpec::getSpecifierName(TSCS); 8918 8919 if (D.isFirstDeclarationOfMember()) 8920 adjustMemberFunctionCC(R, D.isStaticMember(), D.isCtorOrDtor(), 8921 D.getIdentifierLoc()); 8922 8923 bool isFriend = false; 8924 FunctionTemplateDecl *FunctionTemplate = nullptr; 8925 bool isMemberSpecialization = false; 8926 bool isFunctionTemplateSpecialization = false; 8927 8928 bool isDependentClassScopeExplicitSpecialization = false; 8929 bool HasExplicitTemplateArgs = false; 8930 TemplateArgumentListInfo TemplateArgs; 8931 8932 bool isVirtualOkay = false; 8933 8934 DeclContext *OriginalDC = DC; 8935 bool IsLocalExternDecl = adjustContextForLocalExternDecl(DC); 8936 8937 FunctionDecl *NewFD = CreateNewFunctionDecl(*this, D, DC, R, TInfo, SC, 8938 isVirtualOkay); 8939 if (!NewFD) return nullptr; 8940 8941 if (OriginalLexicalContext && OriginalLexicalContext->isObjCContainer()) 8942 NewFD->setTopLevelDeclInObjCContainer(); 8943 8944 // Set the lexical context. If this is a function-scope declaration, or has a 8945 // C++ scope specifier, or is the object of a friend declaration, the lexical 8946 // context will be different from the semantic context. 8947 NewFD->setLexicalDeclContext(CurContext); 8948 8949 if (IsLocalExternDecl) 8950 NewFD->setLocalExternDecl(); 8951 8952 if (getLangOpts().CPlusPlus) { 8953 bool isInline = D.getDeclSpec().isInlineSpecified(); 8954 bool isVirtual = D.getDeclSpec().isVirtualSpecified(); 8955 bool hasExplicit = D.getDeclSpec().hasExplicitSpecifier(); 8956 isFriend = D.getDeclSpec().isFriendSpecified(); 8957 if (isFriend && !isInline && D.isFunctionDefinition()) { 8958 // C++ [class.friend]p5 8959 // A function can be defined in a friend declaration of a 8960 // class . . . . Such a function is implicitly inline. 8961 NewFD->setImplicitlyInline(); 8962 } 8963 8964 // If this is a method defined in an __interface, and is not a constructor 8965 // or an overloaded operator, then set the pure flag (isVirtual will already 8966 // return true). 8967 if (const CXXRecordDecl *Parent = 8968 dyn_cast<CXXRecordDecl>(NewFD->getDeclContext())) { 8969 if (Parent->isInterface() && cast<CXXMethodDecl>(NewFD)->isUserProvided()) 8970 NewFD->setPure(true); 8971 8972 // C++ [class.union]p2 8973 // A union can have member functions, but not virtual functions. 8974 if (isVirtual && Parent->isUnion()) 8975 Diag(D.getDeclSpec().getVirtualSpecLoc(), diag::err_virtual_in_union); 8976 } 8977 8978 SetNestedNameSpecifier(*this, NewFD, D); 8979 isMemberSpecialization = false; 8980 isFunctionTemplateSpecialization = false; 8981 if (D.isInvalidType()) 8982 NewFD->setInvalidDecl(); 8983 8984 // Match up the template parameter lists with the scope specifier, then 8985 // determine whether we have a template or a template specialization. 8986 bool Invalid = false; 8987 TemplateParameterList *TemplateParams = 8988 MatchTemplateParametersToScopeSpecifier( 8989 D.getDeclSpec().getBeginLoc(), D.getIdentifierLoc(), 8990 D.getCXXScopeSpec(), 8991 D.getName().getKind() == UnqualifiedIdKind::IK_TemplateId 8992 ? D.getName().TemplateId 8993 : nullptr, 8994 TemplateParamLists, isFriend, isMemberSpecialization, 8995 Invalid); 8996 if (TemplateParams) { 8997 // Check that we can declare a template here. 8998 if (CheckTemplateDeclScope(S, TemplateParams)) 8999 NewFD->setInvalidDecl(); 9000 9001 if (TemplateParams->size() > 0) { 9002 // This is a function template 9003 9004 // A destructor cannot be a template. 9005 if (Name.getNameKind() == DeclarationName::CXXDestructorName) { 9006 Diag(NewFD->getLocation(), diag::err_destructor_template); 9007 NewFD->setInvalidDecl(); 9008 } 9009 9010 // If we're adding a template to a dependent context, we may need to 9011 // rebuilding some of the types used within the template parameter list, 9012 // now that we know what the current instantiation is. 9013 if (DC->isDependentContext()) { 9014 ContextRAII SavedContext(*this, DC); 9015 if (RebuildTemplateParamsInCurrentInstantiation(TemplateParams)) 9016 Invalid = true; 9017 } 9018 9019 FunctionTemplate = FunctionTemplateDecl::Create(Context, DC, 9020 NewFD->getLocation(), 9021 Name, TemplateParams, 9022 NewFD); 9023 FunctionTemplate->setLexicalDeclContext(CurContext); 9024 NewFD->setDescribedFunctionTemplate(FunctionTemplate); 9025 9026 // For source fidelity, store the other template param lists. 9027 if (TemplateParamLists.size() > 1) { 9028 NewFD->setTemplateParameterListsInfo(Context, 9029 ArrayRef<TemplateParameterList *>(TemplateParamLists) 9030 .drop_back(1)); 9031 } 9032 } else { 9033 // This is a function template specialization. 9034 isFunctionTemplateSpecialization = true; 9035 // For source fidelity, store all the template param lists. 9036 if (TemplateParamLists.size() > 0) 9037 NewFD->setTemplateParameterListsInfo(Context, TemplateParamLists); 9038 9039 // C++0x [temp.expl.spec]p20 forbids "template<> friend void foo(int);". 9040 if (isFriend) { 9041 // We want to remove the "template<>", found here. 9042 SourceRange RemoveRange = TemplateParams->getSourceRange(); 9043 9044 // If we remove the template<> and the name is not a 9045 // template-id, we're actually silently creating a problem: 9046 // the friend declaration will refer to an untemplated decl, 9047 // and clearly the user wants a template specialization. So 9048 // we need to insert '<>' after the name. 9049 SourceLocation InsertLoc; 9050 if (D.getName().getKind() != UnqualifiedIdKind::IK_TemplateId) { 9051 InsertLoc = D.getName().getSourceRange().getEnd(); 9052 InsertLoc = getLocForEndOfToken(InsertLoc); 9053 } 9054 9055 Diag(D.getIdentifierLoc(), diag::err_template_spec_decl_friend) 9056 << Name << RemoveRange 9057 << FixItHint::CreateRemoval(RemoveRange) 9058 << FixItHint::CreateInsertion(InsertLoc, "<>"); 9059 } 9060 } 9061 } else { 9062 // Check that we can declare a template here. 9063 if (!TemplateParamLists.empty() && isMemberSpecialization && 9064 CheckTemplateDeclScope(S, TemplateParamLists.back())) 9065 NewFD->setInvalidDecl(); 9066 9067 // All template param lists were matched against the scope specifier: 9068 // this is NOT (an explicit specialization of) a template. 9069 if (TemplateParamLists.size() > 0) 9070 // For source fidelity, store all the template param lists. 9071 NewFD->setTemplateParameterListsInfo(Context, TemplateParamLists); 9072 } 9073 9074 if (Invalid) { 9075 NewFD->setInvalidDecl(); 9076 if (FunctionTemplate) 9077 FunctionTemplate->setInvalidDecl(); 9078 } 9079 9080 // C++ [dcl.fct.spec]p5: 9081 // The virtual specifier shall only be used in declarations of 9082 // nonstatic class member functions that appear within a 9083 // member-specification of a class declaration; see 10.3. 9084 // 9085 if (isVirtual && !NewFD->isInvalidDecl()) { 9086 if (!isVirtualOkay) { 9087 Diag(D.getDeclSpec().getVirtualSpecLoc(), 9088 diag::err_virtual_non_function); 9089 } else if (!CurContext->isRecord()) { 9090 // 'virtual' was specified outside of the class. 9091 Diag(D.getDeclSpec().getVirtualSpecLoc(), 9092 diag::err_virtual_out_of_class) 9093 << FixItHint::CreateRemoval(D.getDeclSpec().getVirtualSpecLoc()); 9094 } else if (NewFD->getDescribedFunctionTemplate()) { 9095 // C++ [temp.mem]p3: 9096 // A member function template shall not be virtual. 9097 Diag(D.getDeclSpec().getVirtualSpecLoc(), 9098 diag::err_virtual_member_function_template) 9099 << FixItHint::CreateRemoval(D.getDeclSpec().getVirtualSpecLoc()); 9100 } else { 9101 // Okay: Add virtual to the method. 9102 NewFD->setVirtualAsWritten(true); 9103 } 9104 9105 if (getLangOpts().CPlusPlus14 && 9106 NewFD->getReturnType()->isUndeducedType()) 9107 Diag(D.getDeclSpec().getVirtualSpecLoc(), diag::err_auto_fn_virtual); 9108 } 9109 9110 if (getLangOpts().CPlusPlus14 && 9111 (NewFD->isDependentContext() || 9112 (isFriend && CurContext->isDependentContext())) && 9113 NewFD->getReturnType()->isUndeducedType()) { 9114 // If the function template is referenced directly (for instance, as a 9115 // member of the current instantiation), pretend it has a dependent type. 9116 // This is not really justified by the standard, but is the only sane 9117 // thing to do. 9118 // FIXME: For a friend function, we have not marked the function as being 9119 // a friend yet, so 'isDependentContext' on the FD doesn't work. 9120 const FunctionProtoType *FPT = 9121 NewFD->getType()->castAs<FunctionProtoType>(); 9122 QualType Result = 9123 SubstAutoType(FPT->getReturnType(), Context.DependentTy); 9124 NewFD->setType(Context.getFunctionType(Result, FPT->getParamTypes(), 9125 FPT->getExtProtoInfo())); 9126 } 9127 9128 // C++ [dcl.fct.spec]p3: 9129 // The inline specifier shall not appear on a block scope function 9130 // declaration. 9131 if (isInline && !NewFD->isInvalidDecl()) { 9132 if (CurContext->isFunctionOrMethod()) { 9133 // 'inline' is not allowed on block scope function declaration. 9134 Diag(D.getDeclSpec().getInlineSpecLoc(), 9135 diag::err_inline_declaration_block_scope) << Name 9136 << FixItHint::CreateRemoval(D.getDeclSpec().getInlineSpecLoc()); 9137 } 9138 } 9139 9140 // C++ [dcl.fct.spec]p6: 9141 // The explicit specifier shall be used only in the declaration of a 9142 // constructor or conversion function within its class definition; 9143 // see 12.3.1 and 12.3.2. 9144 if (hasExplicit && !NewFD->isInvalidDecl() && 9145 !isa<CXXDeductionGuideDecl>(NewFD)) { 9146 if (!CurContext->isRecord()) { 9147 // 'explicit' was specified outside of the class. 9148 Diag(D.getDeclSpec().getExplicitSpecLoc(), 9149 diag::err_explicit_out_of_class) 9150 << FixItHint::CreateRemoval(D.getDeclSpec().getExplicitSpecRange()); 9151 } else if (!isa<CXXConstructorDecl>(NewFD) && 9152 !isa<CXXConversionDecl>(NewFD)) { 9153 // 'explicit' was specified on a function that wasn't a constructor 9154 // or conversion function. 9155 Diag(D.getDeclSpec().getExplicitSpecLoc(), 9156 diag::err_explicit_non_ctor_or_conv_function) 9157 << FixItHint::CreateRemoval(D.getDeclSpec().getExplicitSpecRange()); 9158 } 9159 } 9160 9161 ConstexprSpecKind ConstexprKind = D.getDeclSpec().getConstexprSpecifier(); 9162 if (ConstexprKind != ConstexprSpecKind::Unspecified) { 9163 // C++11 [dcl.constexpr]p2: constexpr functions and constexpr constructors 9164 // are implicitly inline. 9165 NewFD->setImplicitlyInline(); 9166 9167 // C++11 [dcl.constexpr]p3: functions declared constexpr are required to 9168 // be either constructors or to return a literal type. Therefore, 9169 // destructors cannot be declared constexpr. 9170 if (isa<CXXDestructorDecl>(NewFD) && 9171 (!getLangOpts().CPlusPlus20 || 9172 ConstexprKind == ConstexprSpecKind::Consteval)) { 9173 Diag(D.getDeclSpec().getConstexprSpecLoc(), diag::err_constexpr_dtor) 9174 << static_cast<int>(ConstexprKind); 9175 NewFD->setConstexprKind(getLangOpts().CPlusPlus20 9176 ? ConstexprSpecKind::Unspecified 9177 : ConstexprSpecKind::Constexpr); 9178 } 9179 // C++20 [dcl.constexpr]p2: An allocation function, or a 9180 // deallocation function shall not be declared with the consteval 9181 // specifier. 9182 if (ConstexprKind == ConstexprSpecKind::Consteval && 9183 (NewFD->getOverloadedOperator() == OO_New || 9184 NewFD->getOverloadedOperator() == OO_Array_New || 9185 NewFD->getOverloadedOperator() == OO_Delete || 9186 NewFD->getOverloadedOperator() == OO_Array_Delete)) { 9187 Diag(D.getDeclSpec().getConstexprSpecLoc(), 9188 diag::err_invalid_consteval_decl_kind) 9189 << NewFD; 9190 NewFD->setConstexprKind(ConstexprSpecKind::Constexpr); 9191 } 9192 } 9193 9194 // If __module_private__ was specified, mark the function accordingly. 9195 if (D.getDeclSpec().isModulePrivateSpecified()) { 9196 if (isFunctionTemplateSpecialization) { 9197 SourceLocation ModulePrivateLoc 9198 = D.getDeclSpec().getModulePrivateSpecLoc(); 9199 Diag(ModulePrivateLoc, diag::err_module_private_specialization) 9200 << 0 9201 << FixItHint::CreateRemoval(ModulePrivateLoc); 9202 } else { 9203 NewFD->setModulePrivate(); 9204 if (FunctionTemplate) 9205 FunctionTemplate->setModulePrivate(); 9206 } 9207 } 9208 9209 if (isFriend) { 9210 if (FunctionTemplate) { 9211 FunctionTemplate->setObjectOfFriendDecl(); 9212 FunctionTemplate->setAccess(AS_public); 9213 } 9214 NewFD->setObjectOfFriendDecl(); 9215 NewFD->setAccess(AS_public); 9216 } 9217 9218 // If a function is defined as defaulted or deleted, mark it as such now. 9219 // We'll do the relevant checks on defaulted / deleted functions later. 9220 switch (D.getFunctionDefinitionKind()) { 9221 case FunctionDefinitionKind::Declaration: 9222 case FunctionDefinitionKind::Definition: 9223 break; 9224 9225 case FunctionDefinitionKind::Defaulted: 9226 NewFD->setDefaulted(); 9227 break; 9228 9229 case FunctionDefinitionKind::Deleted: 9230 NewFD->setDeletedAsWritten(); 9231 break; 9232 } 9233 9234 if (isa<CXXMethodDecl>(NewFD) && DC == CurContext && 9235 D.isFunctionDefinition()) { 9236 // C++ [class.mfct]p2: 9237 // A member function may be defined (8.4) in its class definition, in 9238 // which case it is an inline member function (7.1.2) 9239 NewFD->setImplicitlyInline(); 9240 } 9241 9242 if (SC == SC_Static && isa<CXXMethodDecl>(NewFD) && 9243 !CurContext->isRecord()) { 9244 // C++ [class.static]p1: 9245 // A data or function member of a class may be declared static 9246 // in a class definition, in which case it is a static member of 9247 // the class. 9248 9249 // Complain about the 'static' specifier if it's on an out-of-line 9250 // member function definition. 9251 9252 // MSVC permits the use of a 'static' storage specifier on an out-of-line 9253 // member function template declaration and class member template 9254 // declaration (MSVC versions before 2015), warn about this. 9255 Diag(D.getDeclSpec().getStorageClassSpecLoc(), 9256 ((!getLangOpts().isCompatibleWithMSVC(LangOptions::MSVC2015) && 9257 cast<CXXRecordDecl>(DC)->getDescribedClassTemplate()) || 9258 (getLangOpts().MSVCCompat && NewFD->getDescribedFunctionTemplate())) 9259 ? diag::ext_static_out_of_line : diag::err_static_out_of_line) 9260 << FixItHint::CreateRemoval(D.getDeclSpec().getStorageClassSpecLoc()); 9261 } 9262 9263 // C++11 [except.spec]p15: 9264 // A deallocation function with no exception-specification is treated 9265 // as if it were specified with noexcept(true). 9266 const FunctionProtoType *FPT = R->getAs<FunctionProtoType>(); 9267 if ((Name.getCXXOverloadedOperator() == OO_Delete || 9268 Name.getCXXOverloadedOperator() == OO_Array_Delete) && 9269 getLangOpts().CPlusPlus11 && FPT && !FPT->hasExceptionSpec()) 9270 NewFD->setType(Context.getFunctionType( 9271 FPT->getReturnType(), FPT->getParamTypes(), 9272 FPT->getExtProtoInfo().withExceptionSpec(EST_BasicNoexcept))); 9273 } 9274 9275 // Filter out previous declarations that don't match the scope. 9276 FilterLookupForScope(Previous, OriginalDC, S, shouldConsiderLinkage(NewFD), 9277 D.getCXXScopeSpec().isNotEmpty() || 9278 isMemberSpecialization || 9279 isFunctionTemplateSpecialization); 9280 9281 // Handle GNU asm-label extension (encoded as an attribute). 9282 if (Expr *E = (Expr*) D.getAsmLabel()) { 9283 // The parser guarantees this is a string. 9284 StringLiteral *SE = cast<StringLiteral>(E); 9285 NewFD->addAttr(AsmLabelAttr::Create(Context, SE->getString(), 9286 /*IsLiteralLabel=*/true, 9287 SE->getStrTokenLoc(0))); 9288 } else if (!ExtnameUndeclaredIdentifiers.empty()) { 9289 llvm::DenseMap<IdentifierInfo*,AsmLabelAttr*>::iterator I = 9290 ExtnameUndeclaredIdentifiers.find(NewFD->getIdentifier()); 9291 if (I != ExtnameUndeclaredIdentifiers.end()) { 9292 if (isDeclExternC(NewFD)) { 9293 NewFD->addAttr(I->second); 9294 ExtnameUndeclaredIdentifiers.erase(I); 9295 } else 9296 Diag(NewFD->getLocation(), diag::warn_redefine_extname_not_applied) 9297 << /*Variable*/0 << NewFD; 9298 } 9299 } 9300 9301 // Copy the parameter declarations from the declarator D to the function 9302 // declaration NewFD, if they are available. First scavenge them into Params. 9303 SmallVector<ParmVarDecl*, 16> Params; 9304 unsigned FTIIdx; 9305 if (D.isFunctionDeclarator(FTIIdx)) { 9306 DeclaratorChunk::FunctionTypeInfo &FTI = D.getTypeObject(FTIIdx).Fun; 9307 9308 // Check for C99 6.7.5.3p10 - foo(void) is a non-varargs 9309 // function that takes no arguments, not a function that takes a 9310 // single void argument. 9311 // We let through "const void" here because Sema::GetTypeForDeclarator 9312 // already checks for that case. 9313 if (FTIHasNonVoidParameters(FTI) && FTI.Params[0].Param) { 9314 for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) { 9315 ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param); 9316 assert(Param->getDeclContext() != NewFD && "Was set before ?"); 9317 Param->setDeclContext(NewFD); 9318 Params.push_back(Param); 9319 9320 if (Param->isInvalidDecl()) 9321 NewFD->setInvalidDecl(); 9322 } 9323 } 9324 9325 if (!getLangOpts().CPlusPlus) { 9326 // In C, find all the tag declarations from the prototype and move them 9327 // into the function DeclContext. Remove them from the surrounding tag 9328 // injection context of the function, which is typically but not always 9329 // the TU. 9330 DeclContext *PrototypeTagContext = 9331 getTagInjectionContext(NewFD->getLexicalDeclContext()); 9332 for (NamedDecl *NonParmDecl : FTI.getDeclsInPrototype()) { 9333 auto *TD = dyn_cast<TagDecl>(NonParmDecl); 9334 9335 // We don't want to reparent enumerators. Look at their parent enum 9336 // instead. 9337 if (!TD) { 9338 if (auto *ECD = dyn_cast<EnumConstantDecl>(NonParmDecl)) 9339 TD = cast<EnumDecl>(ECD->getDeclContext()); 9340 } 9341 if (!TD) 9342 continue; 9343 DeclContext *TagDC = TD->getLexicalDeclContext(); 9344 if (!TagDC->containsDecl(TD)) 9345 continue; 9346 TagDC->removeDecl(TD); 9347 TD->setDeclContext(NewFD); 9348 NewFD->addDecl(TD); 9349 9350 // Preserve the lexical DeclContext if it is not the surrounding tag 9351 // injection context of the FD. In this example, the semantic context of 9352 // E will be f and the lexical context will be S, while both the 9353 // semantic and lexical contexts of S will be f: 9354 // void f(struct S { enum E { a } f; } s); 9355 if (TagDC != PrototypeTagContext) 9356 TD->setLexicalDeclContext(TagDC); 9357 } 9358 } 9359 } else if (const FunctionProtoType *FT = R->getAs<FunctionProtoType>()) { 9360 // When we're declaring a function with a typedef, typeof, etc as in the 9361 // following example, we'll need to synthesize (unnamed) 9362 // parameters for use in the declaration. 9363 // 9364 // @code 9365 // typedef void fn(int); 9366 // fn f; 9367 // @endcode 9368 9369 // Synthesize a parameter for each argument type. 9370 for (const auto &AI : FT->param_types()) { 9371 ParmVarDecl *Param = 9372 BuildParmVarDeclForTypedef(NewFD, D.getIdentifierLoc(), AI); 9373 Param->setScopeInfo(0, Params.size()); 9374 Params.push_back(Param); 9375 } 9376 } else { 9377 assert(R->isFunctionNoProtoType() && NewFD->getNumParams() == 0 && 9378 "Should not need args for typedef of non-prototype fn"); 9379 } 9380 9381 // Finally, we know we have the right number of parameters, install them. 9382 NewFD->setParams(Params); 9383 9384 if (D.getDeclSpec().isNoreturnSpecified()) 9385 NewFD->addAttr(C11NoReturnAttr::Create(Context, 9386 D.getDeclSpec().getNoreturnSpecLoc(), 9387 AttributeCommonInfo::AS_Keyword)); 9388 9389 // Functions returning a variably modified type violate C99 6.7.5.2p2 9390 // because all functions have linkage. 9391 if (!NewFD->isInvalidDecl() && 9392 NewFD->getReturnType()->isVariablyModifiedType()) { 9393 Diag(NewFD->getLocation(), diag::err_vm_func_decl); 9394 NewFD->setInvalidDecl(); 9395 } 9396 9397 // Apply an implicit SectionAttr if '#pragma clang section text' is active 9398 if (PragmaClangTextSection.Valid && D.isFunctionDefinition() && 9399 !NewFD->hasAttr<SectionAttr>()) 9400 NewFD->addAttr(PragmaClangTextSectionAttr::CreateImplicit( 9401 Context, PragmaClangTextSection.SectionName, 9402 PragmaClangTextSection.PragmaLocation, AttributeCommonInfo::AS_Pragma)); 9403 9404 // Apply an implicit SectionAttr if #pragma code_seg is active. 9405 if (CodeSegStack.CurrentValue && D.isFunctionDefinition() && 9406 !NewFD->hasAttr<SectionAttr>()) { 9407 NewFD->addAttr(SectionAttr::CreateImplicit( 9408 Context, CodeSegStack.CurrentValue->getString(), 9409 CodeSegStack.CurrentPragmaLocation, AttributeCommonInfo::AS_Pragma, 9410 SectionAttr::Declspec_allocate)); 9411 if (UnifySection(CodeSegStack.CurrentValue->getString(), 9412 ASTContext::PSF_Implicit | ASTContext::PSF_Execute | 9413 ASTContext::PSF_Read, 9414 NewFD)) 9415 NewFD->dropAttr<SectionAttr>(); 9416 } 9417 9418 // Apply an implicit CodeSegAttr from class declspec or 9419 // apply an implicit SectionAttr from #pragma code_seg if active. 9420 if (!NewFD->hasAttr<CodeSegAttr>()) { 9421 if (Attr *SAttr = getImplicitCodeSegOrSectionAttrForFunction(NewFD, 9422 D.isFunctionDefinition())) { 9423 NewFD->addAttr(SAttr); 9424 } 9425 } 9426 9427 // Handle attributes. 9428 ProcessDeclAttributes(S, NewFD, D); 9429 9430 if (getLangOpts().OpenCL) { 9431 // OpenCL v1.1 s6.5: Using an address space qualifier in a function return 9432 // type declaration will generate a compilation error. 9433 LangAS AddressSpace = NewFD->getReturnType().getAddressSpace(); 9434 if (AddressSpace != LangAS::Default) { 9435 Diag(NewFD->getLocation(), 9436 diag::err_opencl_return_value_with_address_space); 9437 NewFD->setInvalidDecl(); 9438 } 9439 } 9440 9441 if (LangOpts.SYCLIsDevice || (LangOpts.OpenMP && LangOpts.OpenMPIsDevice)) 9442 checkDeviceDecl(NewFD, D.getBeginLoc()); 9443 9444 if (!getLangOpts().CPlusPlus) { 9445 // Perform semantic checking on the function declaration. 9446 if (!NewFD->isInvalidDecl() && NewFD->isMain()) 9447 CheckMain(NewFD, D.getDeclSpec()); 9448 9449 if (!NewFD->isInvalidDecl() && NewFD->isMSVCRTEntryPoint()) 9450 CheckMSVCRTEntryPoint(NewFD); 9451 9452 if (!NewFD->isInvalidDecl()) 9453 D.setRedeclaration(CheckFunctionDeclaration(S, NewFD, Previous, 9454 isMemberSpecialization)); 9455 else if (!Previous.empty()) 9456 // Recover gracefully from an invalid redeclaration. 9457 D.setRedeclaration(true); 9458 assert((NewFD->isInvalidDecl() || !D.isRedeclaration() || 9459 Previous.getResultKind() != LookupResult::FoundOverloaded) && 9460 "previous declaration set still overloaded"); 9461 9462 // Diagnose no-prototype function declarations with calling conventions that 9463 // don't support variadic calls. Only do this in C and do it after merging 9464 // possibly prototyped redeclarations. 9465 const FunctionType *FT = NewFD->getType()->castAs<FunctionType>(); 9466 if (isa<FunctionNoProtoType>(FT) && !D.isFunctionDefinition()) { 9467 CallingConv CC = FT->getExtInfo().getCC(); 9468 if (!supportsVariadicCall(CC)) { 9469 // Windows system headers sometimes accidentally use stdcall without 9470 // (void) parameters, so we relax this to a warning. 9471 int DiagID = 9472 CC == CC_X86StdCall ? diag::warn_cconv_knr : diag::err_cconv_knr; 9473 Diag(NewFD->getLocation(), DiagID) 9474 << FunctionType::getNameForCallConv(CC); 9475 } 9476 } 9477 9478 if (NewFD->getReturnType().hasNonTrivialToPrimitiveDestructCUnion() || 9479 NewFD->getReturnType().hasNonTrivialToPrimitiveCopyCUnion()) 9480 checkNonTrivialCUnion(NewFD->getReturnType(), 9481 NewFD->getReturnTypeSourceRange().getBegin(), 9482 NTCUC_FunctionReturn, NTCUK_Destruct|NTCUK_Copy); 9483 } else { 9484 // C++11 [replacement.functions]p3: 9485 // The program's definitions shall not be specified as inline. 9486 // 9487 // N.B. We diagnose declarations instead of definitions per LWG issue 2340. 9488 // 9489 // Suppress the diagnostic if the function is __attribute__((used)), since 9490 // that forces an external definition to be emitted. 9491 if (D.getDeclSpec().isInlineSpecified() && 9492 NewFD->isReplaceableGlobalAllocationFunction() && 9493 !NewFD->hasAttr<UsedAttr>()) 9494 Diag(D.getDeclSpec().getInlineSpecLoc(), 9495 diag::ext_operator_new_delete_declared_inline) 9496 << NewFD->getDeclName(); 9497 9498 // If the declarator is a template-id, translate the parser's template 9499 // argument list into our AST format. 9500 if (D.getName().getKind() == UnqualifiedIdKind::IK_TemplateId) { 9501 TemplateIdAnnotation *TemplateId = D.getName().TemplateId; 9502 TemplateArgs.setLAngleLoc(TemplateId->LAngleLoc); 9503 TemplateArgs.setRAngleLoc(TemplateId->RAngleLoc); 9504 ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(), 9505 TemplateId->NumArgs); 9506 translateTemplateArguments(TemplateArgsPtr, 9507 TemplateArgs); 9508 9509 HasExplicitTemplateArgs = true; 9510 9511 if (NewFD->isInvalidDecl()) { 9512 HasExplicitTemplateArgs = false; 9513 } else if (FunctionTemplate) { 9514 // Function template with explicit template arguments. 9515 Diag(D.getIdentifierLoc(), diag::err_function_template_partial_spec) 9516 << SourceRange(TemplateId->LAngleLoc, TemplateId->RAngleLoc); 9517 9518 HasExplicitTemplateArgs = false; 9519 } else { 9520 assert((isFunctionTemplateSpecialization || 9521 D.getDeclSpec().isFriendSpecified()) && 9522 "should have a 'template<>' for this decl"); 9523 // "friend void foo<>(int);" is an implicit specialization decl. 9524 isFunctionTemplateSpecialization = true; 9525 } 9526 } else if (isFriend && isFunctionTemplateSpecialization) { 9527 // This combination is only possible in a recovery case; the user 9528 // wrote something like: 9529 // template <> friend void foo(int); 9530 // which we're recovering from as if the user had written: 9531 // friend void foo<>(int); 9532 // Go ahead and fake up a template id. 9533 HasExplicitTemplateArgs = true; 9534 TemplateArgs.setLAngleLoc(D.getIdentifierLoc()); 9535 TemplateArgs.setRAngleLoc(D.getIdentifierLoc()); 9536 } 9537 9538 // We do not add HD attributes to specializations here because 9539 // they may have different constexpr-ness compared to their 9540 // templates and, after maybeAddCUDAHostDeviceAttrs() is applied, 9541 // may end up with different effective targets. Instead, a 9542 // specialization inherits its target attributes from its template 9543 // in the CheckFunctionTemplateSpecialization() call below. 9544 if (getLangOpts().CUDA && !isFunctionTemplateSpecialization) 9545 maybeAddCUDAHostDeviceAttrs(NewFD, Previous); 9546 9547 // If it's a friend (and only if it's a friend), it's possible 9548 // that either the specialized function type or the specialized 9549 // template is dependent, and therefore matching will fail. In 9550 // this case, don't check the specialization yet. 9551 if (isFunctionTemplateSpecialization && isFriend && 9552 (NewFD->getType()->isDependentType() || DC->isDependentContext() || 9553 TemplateSpecializationType::anyInstantiationDependentTemplateArguments( 9554 TemplateArgs.arguments()))) { 9555 assert(HasExplicitTemplateArgs && 9556 "friend function specialization without template args"); 9557 if (CheckDependentFunctionTemplateSpecialization(NewFD, TemplateArgs, 9558 Previous)) 9559 NewFD->setInvalidDecl(); 9560 } else if (isFunctionTemplateSpecialization) { 9561 if (CurContext->isDependentContext() && CurContext->isRecord() 9562 && !isFriend) { 9563 isDependentClassScopeExplicitSpecialization = true; 9564 } else if (!NewFD->isInvalidDecl() && 9565 CheckFunctionTemplateSpecialization( 9566 NewFD, (HasExplicitTemplateArgs ? &TemplateArgs : nullptr), 9567 Previous)) 9568 NewFD->setInvalidDecl(); 9569 9570 // C++ [dcl.stc]p1: 9571 // A storage-class-specifier shall not be specified in an explicit 9572 // specialization (14.7.3) 9573 FunctionTemplateSpecializationInfo *Info = 9574 NewFD->getTemplateSpecializationInfo(); 9575 if (Info && SC != SC_None) { 9576 if (SC != Info->getTemplate()->getTemplatedDecl()->getStorageClass()) 9577 Diag(NewFD->getLocation(), 9578 diag::err_explicit_specialization_inconsistent_storage_class) 9579 << SC 9580 << FixItHint::CreateRemoval( 9581 D.getDeclSpec().getStorageClassSpecLoc()); 9582 9583 else 9584 Diag(NewFD->getLocation(), 9585 diag::ext_explicit_specialization_storage_class) 9586 << FixItHint::CreateRemoval( 9587 D.getDeclSpec().getStorageClassSpecLoc()); 9588 } 9589 } else if (isMemberSpecialization && isa<CXXMethodDecl>(NewFD)) { 9590 if (CheckMemberSpecialization(NewFD, Previous)) 9591 NewFD->setInvalidDecl(); 9592 } 9593 9594 // Perform semantic checking on the function declaration. 9595 if (!isDependentClassScopeExplicitSpecialization) { 9596 if (!NewFD->isInvalidDecl() && NewFD->isMain()) 9597 CheckMain(NewFD, D.getDeclSpec()); 9598 9599 if (!NewFD->isInvalidDecl() && NewFD->isMSVCRTEntryPoint()) 9600 CheckMSVCRTEntryPoint(NewFD); 9601 9602 if (!NewFD->isInvalidDecl()) 9603 D.setRedeclaration(CheckFunctionDeclaration(S, NewFD, Previous, 9604 isMemberSpecialization)); 9605 else if (!Previous.empty()) 9606 // Recover gracefully from an invalid redeclaration. 9607 D.setRedeclaration(true); 9608 } 9609 9610 assert((NewFD->isInvalidDecl() || !D.isRedeclaration() || 9611 Previous.getResultKind() != LookupResult::FoundOverloaded) && 9612 "previous declaration set still overloaded"); 9613 9614 NamedDecl *PrincipalDecl = (FunctionTemplate 9615 ? cast<NamedDecl>(FunctionTemplate) 9616 : NewFD); 9617 9618 if (isFriend && NewFD->getPreviousDecl()) { 9619 AccessSpecifier Access = AS_public; 9620 if (!NewFD->isInvalidDecl()) 9621 Access = NewFD->getPreviousDecl()->getAccess(); 9622 9623 NewFD->setAccess(Access); 9624 if (FunctionTemplate) FunctionTemplate->setAccess(Access); 9625 } 9626 9627 if (NewFD->isOverloadedOperator() && !DC->isRecord() && 9628 PrincipalDecl->isInIdentifierNamespace(Decl::IDNS_Ordinary)) 9629 PrincipalDecl->setNonMemberOperator(); 9630 9631 // If we have a function template, check the template parameter 9632 // list. This will check and merge default template arguments. 9633 if (FunctionTemplate) { 9634 FunctionTemplateDecl *PrevTemplate = 9635 FunctionTemplate->getPreviousDecl(); 9636 CheckTemplateParameterList(FunctionTemplate->getTemplateParameters(), 9637 PrevTemplate ? PrevTemplate->getTemplateParameters() 9638 : nullptr, 9639 D.getDeclSpec().isFriendSpecified() 9640 ? (D.isFunctionDefinition() 9641 ? TPC_FriendFunctionTemplateDefinition 9642 : TPC_FriendFunctionTemplate) 9643 : (D.getCXXScopeSpec().isSet() && 9644 DC && DC->isRecord() && 9645 DC->isDependentContext()) 9646 ? TPC_ClassTemplateMember 9647 : TPC_FunctionTemplate); 9648 } 9649 9650 if (NewFD->isInvalidDecl()) { 9651 // Ignore all the rest of this. 9652 } else if (!D.isRedeclaration()) { 9653 struct ActOnFDArgs ExtraArgs = { S, D, TemplateParamLists, 9654 AddToScope }; 9655 // Fake up an access specifier if it's supposed to be a class member. 9656 if (isa<CXXRecordDecl>(NewFD->getDeclContext())) 9657 NewFD->setAccess(AS_public); 9658 9659 // Qualified decls generally require a previous declaration. 9660 if (D.getCXXScopeSpec().isSet()) { 9661 // ...with the major exception of templated-scope or 9662 // dependent-scope friend declarations. 9663 9664 // TODO: we currently also suppress this check in dependent 9665 // contexts because (1) the parameter depth will be off when 9666 // matching friend templates and (2) we might actually be 9667 // selecting a friend based on a dependent factor. But there 9668 // are situations where these conditions don't apply and we 9669 // can actually do this check immediately. 9670 // 9671 // Unless the scope is dependent, it's always an error if qualified 9672 // redeclaration lookup found nothing at all. Diagnose that now; 9673 // nothing will diagnose that error later. 9674 if (isFriend && 9675 (D.getCXXScopeSpec().getScopeRep()->isDependent() || 9676 (!Previous.empty() && CurContext->isDependentContext()))) { 9677 // ignore these 9678 } else { 9679 // The user tried to provide an out-of-line definition for a 9680 // function that is a member of a class or namespace, but there 9681 // was no such member function declared (C++ [class.mfct]p2, 9682 // C++ [namespace.memdef]p2). For example: 9683 // 9684 // class X { 9685 // void f() const; 9686 // }; 9687 // 9688 // void X::f() { } // ill-formed 9689 // 9690 // Complain about this problem, and attempt to suggest close 9691 // matches (e.g., those that differ only in cv-qualifiers and 9692 // whether the parameter types are references). 9693 9694 if (NamedDecl *Result = DiagnoseInvalidRedeclaration( 9695 *this, Previous, NewFD, ExtraArgs, false, nullptr)) { 9696 AddToScope = ExtraArgs.AddToScope; 9697 return Result; 9698 } 9699 } 9700 9701 // Unqualified local friend declarations are required to resolve 9702 // to something. 9703 } else if (isFriend && cast<CXXRecordDecl>(CurContext)->isLocalClass()) { 9704 if (NamedDecl *Result = DiagnoseInvalidRedeclaration( 9705 *this, Previous, NewFD, ExtraArgs, true, S)) { 9706 AddToScope = ExtraArgs.AddToScope; 9707 return Result; 9708 } 9709 } 9710 } else if (!D.isFunctionDefinition() && 9711 isa<CXXMethodDecl>(NewFD) && NewFD->isOutOfLine() && 9712 !isFriend && !isFunctionTemplateSpecialization && 9713 !isMemberSpecialization) { 9714 // An out-of-line member function declaration must also be a 9715 // definition (C++ [class.mfct]p2). 9716 // Note that this is not the case for explicit specializations of 9717 // function templates or member functions of class templates, per 9718 // C++ [temp.expl.spec]p2. We also allow these declarations as an 9719 // extension for compatibility with old SWIG code which likes to 9720 // generate them. 9721 Diag(NewFD->getLocation(), diag::ext_out_of_line_declaration) 9722 << D.getCXXScopeSpec().getRange(); 9723 } 9724 } 9725 9726 // If this is the first declaration of a library builtin function, add 9727 // attributes as appropriate. 9728 if (!D.isRedeclaration() && 9729 NewFD->getDeclContext()->getRedeclContext()->isFileContext()) { 9730 if (IdentifierInfo *II = Previous.getLookupName().getAsIdentifierInfo()) { 9731 if (unsigned BuiltinID = II->getBuiltinID()) { 9732 if (NewFD->getLanguageLinkage() == CLanguageLinkage) { 9733 // Validate the type matches unless this builtin is specified as 9734 // matching regardless of its declared type. 9735 if (Context.BuiltinInfo.allowTypeMismatch(BuiltinID)) { 9736 NewFD->addAttr(BuiltinAttr::CreateImplicit(Context, BuiltinID)); 9737 } else { 9738 ASTContext::GetBuiltinTypeError Error; 9739 LookupNecessaryTypesForBuiltin(S, BuiltinID); 9740 QualType BuiltinType = Context.GetBuiltinType(BuiltinID, Error); 9741 9742 if (!Error && !BuiltinType.isNull() && 9743 Context.hasSameFunctionTypeIgnoringExceptionSpec( 9744 NewFD->getType(), BuiltinType)) 9745 NewFD->addAttr(BuiltinAttr::CreateImplicit(Context, BuiltinID)); 9746 } 9747 } else if (BuiltinID == Builtin::BI__GetExceptionInfo && 9748 Context.getTargetInfo().getCXXABI().isMicrosoft()) { 9749 // FIXME: We should consider this a builtin only in the std namespace. 9750 NewFD->addAttr(BuiltinAttr::CreateImplicit(Context, BuiltinID)); 9751 } 9752 } 9753 } 9754 } 9755 9756 ProcessPragmaWeak(S, NewFD); 9757 checkAttributesAfterMerging(*this, *NewFD); 9758 9759 AddKnownFunctionAttributes(NewFD); 9760 9761 if (NewFD->hasAttr<OverloadableAttr>() && 9762 !NewFD->getType()->getAs<FunctionProtoType>()) { 9763 Diag(NewFD->getLocation(), 9764 diag::err_attribute_overloadable_no_prototype) 9765 << NewFD; 9766 9767 // Turn this into a variadic function with no parameters. 9768 const FunctionType *FT = NewFD->getType()->getAs<FunctionType>(); 9769 FunctionProtoType::ExtProtoInfo EPI( 9770 Context.getDefaultCallingConvention(true, false)); 9771 EPI.Variadic = true; 9772 EPI.ExtInfo = FT->getExtInfo(); 9773 9774 QualType R = Context.getFunctionType(FT->getReturnType(), None, EPI); 9775 NewFD->setType(R); 9776 } 9777 9778 // If there's a #pragma GCC visibility in scope, and this isn't a class 9779 // member, set the visibility of this function. 9780 if (!DC->isRecord() && NewFD->isExternallyVisible()) 9781 AddPushedVisibilityAttribute(NewFD); 9782 9783 // If there's a #pragma clang arc_cf_code_audited in scope, consider 9784 // marking the function. 9785 AddCFAuditedAttribute(NewFD); 9786 9787 // If this is a function definition, check if we have to apply optnone due to 9788 // a pragma. 9789 if(D.isFunctionDefinition()) 9790 AddRangeBasedOptnone(NewFD); 9791 9792 // If this is the first declaration of an extern C variable, update 9793 // the map of such variables. 9794 if (NewFD->isFirstDecl() && !NewFD->isInvalidDecl() && 9795 isIncompleteDeclExternC(*this, NewFD)) 9796 RegisterLocallyScopedExternCDecl(NewFD, S); 9797 9798 // Set this FunctionDecl's range up to the right paren. 9799 NewFD->setRangeEnd(D.getSourceRange().getEnd()); 9800 9801 if (D.isRedeclaration() && !Previous.empty()) { 9802 NamedDecl *Prev = Previous.getRepresentativeDecl(); 9803 checkDLLAttributeRedeclaration(*this, Prev, NewFD, 9804 isMemberSpecialization || 9805 isFunctionTemplateSpecialization, 9806 D.isFunctionDefinition()); 9807 } 9808 9809 if (getLangOpts().CUDA) { 9810 IdentifierInfo *II = NewFD->getIdentifier(); 9811 if (II && II->isStr(getCudaConfigureFuncName()) && 9812 !NewFD->isInvalidDecl() && 9813 NewFD->getDeclContext()->getRedeclContext()->isTranslationUnit()) { 9814 if (!R->castAs<FunctionType>()->getReturnType()->isScalarType()) 9815 Diag(NewFD->getLocation(), diag::err_config_scalar_return) 9816 << getCudaConfigureFuncName(); 9817 Context.setcudaConfigureCallDecl(NewFD); 9818 } 9819 9820 // Variadic functions, other than a *declaration* of printf, are not allowed 9821 // in device-side CUDA code, unless someone passed 9822 // -fcuda-allow-variadic-functions. 9823 if (!getLangOpts().CUDAAllowVariadicFunctions && NewFD->isVariadic() && 9824 (NewFD->hasAttr<CUDADeviceAttr>() || 9825 NewFD->hasAttr<CUDAGlobalAttr>()) && 9826 !(II && II->isStr("printf") && NewFD->isExternC() && 9827 !D.isFunctionDefinition())) { 9828 Diag(NewFD->getLocation(), diag::err_variadic_device_fn); 9829 } 9830 } 9831 9832 MarkUnusedFileScopedDecl(NewFD); 9833 9834 9835 9836 if (getLangOpts().OpenCL && NewFD->hasAttr<OpenCLKernelAttr>()) { 9837 // OpenCL v1.2 s6.8 static is invalid for kernel functions. 9838 if ((getLangOpts().OpenCLVersion >= 120) 9839 && (SC == SC_Static)) { 9840 Diag(D.getIdentifierLoc(), diag::err_static_kernel); 9841 D.setInvalidType(); 9842 } 9843 9844 // OpenCL v1.2, s6.9 -- Kernels can only have return type void. 9845 if (!NewFD->getReturnType()->isVoidType()) { 9846 SourceRange RTRange = NewFD->getReturnTypeSourceRange(); 9847 Diag(D.getIdentifierLoc(), diag::err_expected_kernel_void_return_type) 9848 << (RTRange.isValid() ? FixItHint::CreateReplacement(RTRange, "void") 9849 : FixItHint()); 9850 D.setInvalidType(); 9851 } 9852 9853 llvm::SmallPtrSet<const Type *, 16> ValidTypes; 9854 for (auto Param : NewFD->parameters()) 9855 checkIsValidOpenCLKernelParameter(*this, D, Param, ValidTypes); 9856 9857 if (getLangOpts().OpenCLCPlusPlus) { 9858 if (DC->isRecord()) { 9859 Diag(D.getIdentifierLoc(), diag::err_method_kernel); 9860 D.setInvalidType(); 9861 } 9862 if (FunctionTemplate) { 9863 Diag(D.getIdentifierLoc(), diag::err_template_kernel); 9864 D.setInvalidType(); 9865 } 9866 } 9867 } 9868 9869 if (getLangOpts().CPlusPlus) { 9870 if (FunctionTemplate) { 9871 if (NewFD->isInvalidDecl()) 9872 FunctionTemplate->setInvalidDecl(); 9873 return FunctionTemplate; 9874 } 9875 9876 if (isMemberSpecialization && !NewFD->isInvalidDecl()) 9877 CompleteMemberSpecialization(NewFD, Previous); 9878 } 9879 9880 for (const ParmVarDecl *Param : NewFD->parameters()) { 9881 QualType PT = Param->getType(); 9882 9883 // OpenCL 2.0 pipe restrictions forbids pipe packet types to be non-value 9884 // types. 9885 if (getLangOpts().OpenCLVersion >= 200 || getLangOpts().OpenCLCPlusPlus) { 9886 if(const PipeType *PipeTy = PT->getAs<PipeType>()) { 9887 QualType ElemTy = PipeTy->getElementType(); 9888 if (ElemTy->isReferenceType() || ElemTy->isPointerType()) { 9889 Diag(Param->getTypeSpecStartLoc(), diag::err_reference_pipe_type ); 9890 D.setInvalidType(); 9891 } 9892 } 9893 } 9894 } 9895 9896 // Here we have an function template explicit specialization at class scope. 9897 // The actual specialization will be postponed to template instatiation 9898 // time via the ClassScopeFunctionSpecializationDecl node. 9899 if (isDependentClassScopeExplicitSpecialization) { 9900 ClassScopeFunctionSpecializationDecl *NewSpec = 9901 ClassScopeFunctionSpecializationDecl::Create( 9902 Context, CurContext, NewFD->getLocation(), 9903 cast<CXXMethodDecl>(NewFD), 9904 HasExplicitTemplateArgs, TemplateArgs); 9905 CurContext->addDecl(NewSpec); 9906 AddToScope = false; 9907 } 9908 9909 // Diagnose availability attributes. Availability cannot be used on functions 9910 // that are run during load/unload. 9911 if (const auto *attr = NewFD->getAttr<AvailabilityAttr>()) { 9912 if (NewFD->hasAttr<ConstructorAttr>()) { 9913 Diag(attr->getLocation(), diag::warn_availability_on_static_initializer) 9914 << 1; 9915 NewFD->dropAttr<AvailabilityAttr>(); 9916 } 9917 if (NewFD->hasAttr<DestructorAttr>()) { 9918 Diag(attr->getLocation(), diag::warn_availability_on_static_initializer) 9919 << 2; 9920 NewFD->dropAttr<AvailabilityAttr>(); 9921 } 9922 } 9923 9924 // Diagnose no_builtin attribute on function declaration that are not a 9925 // definition. 9926 // FIXME: We should really be doing this in 9927 // SemaDeclAttr.cpp::handleNoBuiltinAttr, unfortunately we only have access to 9928 // the FunctionDecl and at this point of the code 9929 // FunctionDecl::isThisDeclarationADefinition() which always returns `false` 9930 // because Sema::ActOnStartOfFunctionDef has not been called yet. 9931 if (const auto *NBA = NewFD->getAttr<NoBuiltinAttr>()) 9932 switch (D.getFunctionDefinitionKind()) { 9933 case FunctionDefinitionKind::Defaulted: 9934 case FunctionDefinitionKind::Deleted: 9935 Diag(NBA->getLocation(), 9936 diag::err_attribute_no_builtin_on_defaulted_deleted_function) 9937 << NBA->getSpelling(); 9938 break; 9939 case FunctionDefinitionKind::Declaration: 9940 Diag(NBA->getLocation(), diag::err_attribute_no_builtin_on_non_definition) 9941 << NBA->getSpelling(); 9942 break; 9943 case FunctionDefinitionKind::Definition: 9944 break; 9945 } 9946 9947 return NewFD; 9948 } 9949 9950 /// Return a CodeSegAttr from a containing class. The Microsoft docs say 9951 /// when __declspec(code_seg) "is applied to a class, all member functions of 9952 /// the class and nested classes -- this includes compiler-generated special 9953 /// member functions -- are put in the specified segment." 9954 /// The actual behavior is a little more complicated. The Microsoft compiler 9955 /// won't check outer classes if there is an active value from #pragma code_seg. 9956 /// The CodeSeg is always applied from the direct parent but only from outer 9957 /// classes when the #pragma code_seg stack is empty. See: 9958 /// https://reviews.llvm.org/D22931, the Microsoft feedback page is no longer 9959 /// available since MS has removed the page. 9960 static Attr *getImplicitCodeSegAttrFromClass(Sema &S, const FunctionDecl *FD) { 9961 const auto *Method = dyn_cast<CXXMethodDecl>(FD); 9962 if (!Method) 9963 return nullptr; 9964 const CXXRecordDecl *Parent = Method->getParent(); 9965 if (const auto *SAttr = Parent->getAttr<CodeSegAttr>()) { 9966 Attr *NewAttr = SAttr->clone(S.getASTContext()); 9967 NewAttr->setImplicit(true); 9968 return NewAttr; 9969 } 9970 9971 // The Microsoft compiler won't check outer classes for the CodeSeg 9972 // when the #pragma code_seg stack is active. 9973 if (S.CodeSegStack.CurrentValue) 9974 return nullptr; 9975 9976 while ((Parent = dyn_cast<CXXRecordDecl>(Parent->getParent()))) { 9977 if (const auto *SAttr = Parent->getAttr<CodeSegAttr>()) { 9978 Attr *NewAttr = SAttr->clone(S.getASTContext()); 9979 NewAttr->setImplicit(true); 9980 return NewAttr; 9981 } 9982 } 9983 return nullptr; 9984 } 9985 9986 /// Returns an implicit CodeSegAttr if a __declspec(code_seg) is found on a 9987 /// containing class. Otherwise it will return implicit SectionAttr if the 9988 /// function is a definition and there is an active value on CodeSegStack 9989 /// (from the current #pragma code-seg value). 9990 /// 9991 /// \param FD Function being declared. 9992 /// \param IsDefinition Whether it is a definition or just a declarartion. 9993 /// \returns A CodeSegAttr or SectionAttr to apply to the function or 9994 /// nullptr if no attribute should be added. 9995 Attr *Sema::getImplicitCodeSegOrSectionAttrForFunction(const FunctionDecl *FD, 9996 bool IsDefinition) { 9997 if (Attr *A = getImplicitCodeSegAttrFromClass(*this, FD)) 9998 return A; 9999 if (!FD->hasAttr<SectionAttr>() && IsDefinition && 10000 CodeSegStack.CurrentValue) 10001 return SectionAttr::CreateImplicit( 10002 getASTContext(), CodeSegStack.CurrentValue->getString(), 10003 CodeSegStack.CurrentPragmaLocation, AttributeCommonInfo::AS_Pragma, 10004 SectionAttr::Declspec_allocate); 10005 return nullptr; 10006 } 10007 10008 /// Determines if we can perform a correct type check for \p D as a 10009 /// redeclaration of \p PrevDecl. If not, we can generally still perform a 10010 /// best-effort check. 10011 /// 10012 /// \param NewD The new declaration. 10013 /// \param OldD The old declaration. 10014 /// \param NewT The portion of the type of the new declaration to check. 10015 /// \param OldT The portion of the type of the old declaration to check. 10016 bool Sema::canFullyTypeCheckRedeclaration(ValueDecl *NewD, ValueDecl *OldD, 10017 QualType NewT, QualType OldT) { 10018 if (!NewD->getLexicalDeclContext()->isDependentContext()) 10019 return true; 10020 10021 // For dependently-typed local extern declarations and friends, we can't 10022 // perform a correct type check in general until instantiation: 10023 // 10024 // int f(); 10025 // template<typename T> void g() { T f(); } 10026 // 10027 // (valid if g() is only instantiated with T = int). 10028 if (NewT->isDependentType() && 10029 (NewD->isLocalExternDecl() || NewD->getFriendObjectKind())) 10030 return false; 10031 10032 // Similarly, if the previous declaration was a dependent local extern 10033 // declaration, we don't really know its type yet. 10034 if (OldT->isDependentType() && OldD->isLocalExternDecl()) 10035 return false; 10036 10037 return true; 10038 } 10039 10040 /// Checks if the new declaration declared in dependent context must be 10041 /// put in the same redeclaration chain as the specified declaration. 10042 /// 10043 /// \param D Declaration that is checked. 10044 /// \param PrevDecl Previous declaration found with proper lookup method for the 10045 /// same declaration name. 10046 /// \returns True if D must be added to the redeclaration chain which PrevDecl 10047 /// belongs to. 10048 /// 10049 bool Sema::shouldLinkDependentDeclWithPrevious(Decl *D, Decl *PrevDecl) { 10050 if (!D->getLexicalDeclContext()->isDependentContext()) 10051 return true; 10052 10053 // Don't chain dependent friend function definitions until instantiation, to 10054 // permit cases like 10055 // 10056 // void func(); 10057 // template<typename T> class C1 { friend void func() {} }; 10058 // template<typename T> class C2 { friend void func() {} }; 10059 // 10060 // ... which is valid if only one of C1 and C2 is ever instantiated. 10061 // 10062 // FIXME: This need only apply to function definitions. For now, we proxy 10063 // this by checking for a file-scope function. We do not want this to apply 10064 // to friend declarations nominating member functions, because that gets in 10065 // the way of access checks. 10066 if (D->getFriendObjectKind() && D->getDeclContext()->isFileContext()) 10067 return false; 10068 10069 auto *VD = dyn_cast<ValueDecl>(D); 10070 auto *PrevVD = dyn_cast<ValueDecl>(PrevDecl); 10071 return !VD || !PrevVD || 10072 canFullyTypeCheckRedeclaration(VD, PrevVD, VD->getType(), 10073 PrevVD->getType()); 10074 } 10075 10076 /// Check the target attribute of the function for MultiVersion 10077 /// validity. 10078 /// 10079 /// Returns true if there was an error, false otherwise. 10080 static bool CheckMultiVersionValue(Sema &S, const FunctionDecl *FD) { 10081 const auto *TA = FD->getAttr<TargetAttr>(); 10082 assert(TA && "MultiVersion Candidate requires a target attribute"); 10083 ParsedTargetAttr ParseInfo = TA->parse(); 10084 const TargetInfo &TargetInfo = S.Context.getTargetInfo(); 10085 enum ErrType { Feature = 0, Architecture = 1 }; 10086 10087 if (!ParseInfo.Architecture.empty() && 10088 !TargetInfo.validateCpuIs(ParseInfo.Architecture)) { 10089 S.Diag(FD->getLocation(), diag::err_bad_multiversion_option) 10090 << Architecture << ParseInfo.Architecture; 10091 return true; 10092 } 10093 10094 for (const auto &Feat : ParseInfo.Features) { 10095 auto BareFeat = StringRef{Feat}.substr(1); 10096 if (Feat[0] == '-') { 10097 S.Diag(FD->getLocation(), diag::err_bad_multiversion_option) 10098 << Feature << ("no-" + BareFeat).str(); 10099 return true; 10100 } 10101 10102 if (!TargetInfo.validateCpuSupports(BareFeat) || 10103 !TargetInfo.isValidFeatureName(BareFeat)) { 10104 S.Diag(FD->getLocation(), diag::err_bad_multiversion_option) 10105 << Feature << BareFeat; 10106 return true; 10107 } 10108 } 10109 return false; 10110 } 10111 10112 // Provide a white-list of attributes that are allowed to be combined with 10113 // multiversion functions. 10114 static bool AttrCompatibleWithMultiVersion(attr::Kind Kind, 10115 MultiVersionKind MVType) { 10116 // Note: this list/diagnosis must match the list in 10117 // checkMultiversionAttributesAllSame. 10118 switch (Kind) { 10119 default: 10120 return false; 10121 case attr::Used: 10122 return MVType == MultiVersionKind::Target; 10123 case attr::NonNull: 10124 case attr::NoThrow: 10125 return true; 10126 } 10127 } 10128 10129 static bool checkNonMultiVersionCompatAttributes(Sema &S, 10130 const FunctionDecl *FD, 10131 const FunctionDecl *CausedFD, 10132 MultiVersionKind MVType) { 10133 bool IsCPUSpecificCPUDispatchMVType = 10134 MVType == MultiVersionKind::CPUDispatch || 10135 MVType == MultiVersionKind::CPUSpecific; 10136 const auto Diagnose = [FD, CausedFD, IsCPUSpecificCPUDispatchMVType]( 10137 Sema &S, const Attr *A) { 10138 S.Diag(FD->getLocation(), diag::err_multiversion_disallowed_other_attr) 10139 << IsCPUSpecificCPUDispatchMVType << A; 10140 if (CausedFD) 10141 S.Diag(CausedFD->getLocation(), diag::note_multiversioning_caused_here); 10142 return true; 10143 }; 10144 10145 for (const Attr *A : FD->attrs()) { 10146 switch (A->getKind()) { 10147 case attr::CPUDispatch: 10148 case attr::CPUSpecific: 10149 if (MVType != MultiVersionKind::CPUDispatch && 10150 MVType != MultiVersionKind::CPUSpecific) 10151 return Diagnose(S, A); 10152 break; 10153 case attr::Target: 10154 if (MVType != MultiVersionKind::Target) 10155 return Diagnose(S, A); 10156 break; 10157 default: 10158 if (!AttrCompatibleWithMultiVersion(A->getKind(), MVType)) 10159 return Diagnose(S, A); 10160 break; 10161 } 10162 } 10163 return false; 10164 } 10165 10166 bool Sema::areMultiversionVariantFunctionsCompatible( 10167 const FunctionDecl *OldFD, const FunctionDecl *NewFD, 10168 const PartialDiagnostic &NoProtoDiagID, 10169 const PartialDiagnosticAt &NoteCausedDiagIDAt, 10170 const PartialDiagnosticAt &NoSupportDiagIDAt, 10171 const PartialDiagnosticAt &DiffDiagIDAt, bool TemplatesSupported, 10172 bool ConstexprSupported, bool CLinkageMayDiffer) { 10173 enum DoesntSupport { 10174 FuncTemplates = 0, 10175 VirtFuncs = 1, 10176 DeducedReturn = 2, 10177 Constructors = 3, 10178 Destructors = 4, 10179 DeletedFuncs = 5, 10180 DefaultedFuncs = 6, 10181 ConstexprFuncs = 7, 10182 ConstevalFuncs = 8, 10183 }; 10184 enum Different { 10185 CallingConv = 0, 10186 ReturnType = 1, 10187 ConstexprSpec = 2, 10188 InlineSpec = 3, 10189 StorageClass = 4, 10190 Linkage = 5, 10191 }; 10192 10193 if (NoProtoDiagID.getDiagID() != 0 && OldFD && 10194 !OldFD->getType()->getAs<FunctionProtoType>()) { 10195 Diag(OldFD->getLocation(), NoProtoDiagID); 10196 Diag(NoteCausedDiagIDAt.first, NoteCausedDiagIDAt.second); 10197 return true; 10198 } 10199 10200 if (NoProtoDiagID.getDiagID() != 0 && 10201 !NewFD->getType()->getAs<FunctionProtoType>()) 10202 return Diag(NewFD->getLocation(), NoProtoDiagID); 10203 10204 if (!TemplatesSupported && 10205 NewFD->getTemplatedKind() == FunctionDecl::TK_FunctionTemplate) 10206 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10207 << FuncTemplates; 10208 10209 if (const auto *NewCXXFD = dyn_cast<CXXMethodDecl>(NewFD)) { 10210 if (NewCXXFD->isVirtual()) 10211 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10212 << VirtFuncs; 10213 10214 if (isa<CXXConstructorDecl>(NewCXXFD)) 10215 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10216 << Constructors; 10217 10218 if (isa<CXXDestructorDecl>(NewCXXFD)) 10219 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10220 << Destructors; 10221 } 10222 10223 if (NewFD->isDeleted()) 10224 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10225 << DeletedFuncs; 10226 10227 if (NewFD->isDefaulted()) 10228 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10229 << DefaultedFuncs; 10230 10231 if (!ConstexprSupported && NewFD->isConstexpr()) 10232 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10233 << (NewFD->isConsteval() ? ConstevalFuncs : ConstexprFuncs); 10234 10235 QualType NewQType = Context.getCanonicalType(NewFD->getType()); 10236 const auto *NewType = cast<FunctionType>(NewQType); 10237 QualType NewReturnType = NewType->getReturnType(); 10238 10239 if (NewReturnType->isUndeducedType()) 10240 return Diag(NoSupportDiagIDAt.first, NoSupportDiagIDAt.second) 10241 << DeducedReturn; 10242 10243 // Ensure the return type is identical. 10244 if (OldFD) { 10245 QualType OldQType = Context.getCanonicalType(OldFD->getType()); 10246 const auto *OldType = cast<FunctionType>(OldQType); 10247 FunctionType::ExtInfo OldTypeInfo = OldType->getExtInfo(); 10248 FunctionType::ExtInfo NewTypeInfo = NewType->getExtInfo(); 10249 10250 if (OldTypeInfo.getCC() != NewTypeInfo.getCC()) 10251 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << CallingConv; 10252 10253 QualType OldReturnType = OldType->getReturnType(); 10254 10255 if (OldReturnType != NewReturnType) 10256 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << ReturnType; 10257 10258 if (OldFD->getConstexprKind() != NewFD->getConstexprKind()) 10259 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << ConstexprSpec; 10260 10261 if (OldFD->isInlineSpecified() != NewFD->isInlineSpecified()) 10262 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << InlineSpec; 10263 10264 if (OldFD->getStorageClass() != NewFD->getStorageClass()) 10265 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << StorageClass; 10266 10267 if (!CLinkageMayDiffer && OldFD->isExternC() != NewFD->isExternC()) 10268 return Diag(DiffDiagIDAt.first, DiffDiagIDAt.second) << Linkage; 10269 10270 if (CheckEquivalentExceptionSpec( 10271 OldFD->getType()->getAs<FunctionProtoType>(), OldFD->getLocation(), 10272 NewFD->getType()->getAs<FunctionProtoType>(), NewFD->getLocation())) 10273 return true; 10274 } 10275 return false; 10276 } 10277 10278 static bool CheckMultiVersionAdditionalRules(Sema &S, const FunctionDecl *OldFD, 10279 const FunctionDecl *NewFD, 10280 bool CausesMV, 10281 MultiVersionKind MVType) { 10282 if (!S.getASTContext().getTargetInfo().supportsMultiVersioning()) { 10283 S.Diag(NewFD->getLocation(), diag::err_multiversion_not_supported); 10284 if (OldFD) 10285 S.Diag(OldFD->getLocation(), diag::note_previous_declaration); 10286 return true; 10287 } 10288 10289 bool IsCPUSpecificCPUDispatchMVType = 10290 MVType == MultiVersionKind::CPUDispatch || 10291 MVType == MultiVersionKind::CPUSpecific; 10292 10293 if (CausesMV && OldFD && 10294 checkNonMultiVersionCompatAttributes(S, OldFD, NewFD, MVType)) 10295 return true; 10296 10297 if (checkNonMultiVersionCompatAttributes(S, NewFD, nullptr, MVType)) 10298 return true; 10299 10300 // Only allow transition to MultiVersion if it hasn't been used. 10301 if (OldFD && CausesMV && OldFD->isUsed(false)) 10302 return S.Diag(NewFD->getLocation(), diag::err_multiversion_after_used); 10303 10304 return S.areMultiversionVariantFunctionsCompatible( 10305 OldFD, NewFD, S.PDiag(diag::err_multiversion_noproto), 10306 PartialDiagnosticAt(NewFD->getLocation(), 10307 S.PDiag(diag::note_multiversioning_caused_here)), 10308 PartialDiagnosticAt(NewFD->getLocation(), 10309 S.PDiag(diag::err_multiversion_doesnt_support) 10310 << IsCPUSpecificCPUDispatchMVType), 10311 PartialDiagnosticAt(NewFD->getLocation(), 10312 S.PDiag(diag::err_multiversion_diff)), 10313 /*TemplatesSupported=*/false, 10314 /*ConstexprSupported=*/!IsCPUSpecificCPUDispatchMVType, 10315 /*CLinkageMayDiffer=*/false); 10316 } 10317 10318 /// Check the validity of a multiversion function declaration that is the 10319 /// first of its kind. Also sets the multiversion'ness' of the function itself. 10320 /// 10321 /// This sets NewFD->isInvalidDecl() to true if there was an error. 10322 /// 10323 /// Returns true if there was an error, false otherwise. 10324 static bool CheckMultiVersionFirstFunction(Sema &S, FunctionDecl *FD, 10325 MultiVersionKind MVType, 10326 const TargetAttr *TA) { 10327 assert(MVType != MultiVersionKind::None && 10328 "Function lacks multiversion attribute"); 10329 10330 // Target only causes MV if it is default, otherwise this is a normal 10331 // function. 10332 if (MVType == MultiVersionKind::Target && !TA->isDefaultVersion()) 10333 return false; 10334 10335 if (MVType == MultiVersionKind::Target && CheckMultiVersionValue(S, FD)) { 10336 FD->setInvalidDecl(); 10337 return true; 10338 } 10339 10340 if (CheckMultiVersionAdditionalRules(S, nullptr, FD, true, MVType)) { 10341 FD->setInvalidDecl(); 10342 return true; 10343 } 10344 10345 FD->setIsMultiVersion(); 10346 return false; 10347 } 10348 10349 static bool PreviousDeclsHaveMultiVersionAttribute(const FunctionDecl *FD) { 10350 for (const Decl *D = FD->getPreviousDecl(); D; D = D->getPreviousDecl()) { 10351 if (D->getAsFunction()->getMultiVersionKind() != MultiVersionKind::None) 10352 return true; 10353 } 10354 10355 return false; 10356 } 10357 10358 static bool CheckTargetCausesMultiVersioning( 10359 Sema &S, FunctionDecl *OldFD, FunctionDecl *NewFD, const TargetAttr *NewTA, 10360 bool &Redeclaration, NamedDecl *&OldDecl, bool &MergeTypeWithPrevious, 10361 LookupResult &Previous) { 10362 const auto *OldTA = OldFD->getAttr<TargetAttr>(); 10363 ParsedTargetAttr NewParsed = NewTA->parse(); 10364 // Sort order doesn't matter, it just needs to be consistent. 10365 llvm::sort(NewParsed.Features); 10366 10367 // If the old decl is NOT MultiVersioned yet, and we don't cause that 10368 // to change, this is a simple redeclaration. 10369 if (!NewTA->isDefaultVersion() && 10370 (!OldTA || OldTA->getFeaturesStr() == NewTA->getFeaturesStr())) 10371 return false; 10372 10373 // Otherwise, this decl causes MultiVersioning. 10374 if (!S.getASTContext().getTargetInfo().supportsMultiVersioning()) { 10375 S.Diag(NewFD->getLocation(), diag::err_multiversion_not_supported); 10376 S.Diag(OldFD->getLocation(), diag::note_previous_declaration); 10377 NewFD->setInvalidDecl(); 10378 return true; 10379 } 10380 10381 if (CheckMultiVersionAdditionalRules(S, OldFD, NewFD, true, 10382 MultiVersionKind::Target)) { 10383 NewFD->setInvalidDecl(); 10384 return true; 10385 } 10386 10387 if (CheckMultiVersionValue(S, NewFD)) { 10388 NewFD->setInvalidDecl(); 10389 return true; 10390 } 10391 10392 // If this is 'default', permit the forward declaration. 10393 if (!OldFD->isMultiVersion() && !OldTA && NewTA->isDefaultVersion()) { 10394 Redeclaration = true; 10395 OldDecl = OldFD; 10396 OldFD->setIsMultiVersion(); 10397 NewFD->setIsMultiVersion(); 10398 return false; 10399 } 10400 10401 if (CheckMultiVersionValue(S, OldFD)) { 10402 S.Diag(NewFD->getLocation(), diag::note_multiversioning_caused_here); 10403 NewFD->setInvalidDecl(); 10404 return true; 10405 } 10406 10407 ParsedTargetAttr OldParsed = OldTA->parse(std::less<std::string>()); 10408 10409 if (OldParsed == NewParsed) { 10410 S.Diag(NewFD->getLocation(), diag::err_multiversion_duplicate); 10411 S.Diag(OldFD->getLocation(), diag::note_previous_declaration); 10412 NewFD->setInvalidDecl(); 10413 return true; 10414 } 10415 10416 for (const auto *FD : OldFD->redecls()) { 10417 const auto *CurTA = FD->getAttr<TargetAttr>(); 10418 // We allow forward declarations before ANY multiversioning attributes, but 10419 // nothing after the fact. 10420 if (PreviousDeclsHaveMultiVersionAttribute(FD) && 10421 (!CurTA || CurTA->isInherited())) { 10422 S.Diag(FD->getLocation(), diag::err_multiversion_required_in_redecl) 10423 << 0; 10424 S.Diag(NewFD->getLocation(), diag::note_multiversioning_caused_here); 10425 NewFD->setInvalidDecl(); 10426 return true; 10427 } 10428 } 10429 10430 OldFD->setIsMultiVersion(); 10431 NewFD->setIsMultiVersion(); 10432 Redeclaration = false; 10433 MergeTypeWithPrevious = false; 10434 OldDecl = nullptr; 10435 Previous.clear(); 10436 return false; 10437 } 10438 10439 /// Check the validity of a new function declaration being added to an existing 10440 /// multiversioned declaration collection. 10441 static bool CheckMultiVersionAdditionalDecl( 10442 Sema &S, FunctionDecl *OldFD, FunctionDecl *NewFD, 10443 MultiVersionKind NewMVType, const TargetAttr *NewTA, 10444 const CPUDispatchAttr *NewCPUDisp, const CPUSpecificAttr *NewCPUSpec, 10445 bool &Redeclaration, NamedDecl *&OldDecl, bool &MergeTypeWithPrevious, 10446 LookupResult &Previous) { 10447 10448 MultiVersionKind OldMVType = OldFD->getMultiVersionKind(); 10449 // Disallow mixing of multiversioning types. 10450 if ((OldMVType == MultiVersionKind::Target && 10451 NewMVType != MultiVersionKind::Target) || 10452 (NewMVType == MultiVersionKind::Target && 10453 OldMVType != MultiVersionKind::Target)) { 10454 S.Diag(NewFD->getLocation(), diag::err_multiversion_types_mixed); 10455 S.Diag(OldFD->getLocation(), diag::note_previous_declaration); 10456 NewFD->setInvalidDecl(); 10457 return true; 10458 } 10459 10460 ParsedTargetAttr NewParsed; 10461 if (NewTA) { 10462 NewParsed = NewTA->parse(); 10463 llvm::sort(NewParsed.Features); 10464 } 10465 10466 bool UseMemberUsingDeclRules = 10467 S.CurContext->isRecord() && !NewFD->getFriendObjectKind(); 10468 10469 // Next, check ALL non-overloads to see if this is a redeclaration of a 10470 // previous member of the MultiVersion set. 10471 for (NamedDecl *ND : Previous) { 10472 FunctionDecl *CurFD = ND->getAsFunction(); 10473 if (!CurFD) 10474 continue; 10475 if (S.IsOverload(NewFD, CurFD, UseMemberUsingDeclRules)) 10476 continue; 10477 10478 if (NewMVType == MultiVersionKind::Target) { 10479 const auto *CurTA = CurFD->getAttr<TargetAttr>(); 10480 if (CurTA->getFeaturesStr() == NewTA->getFeaturesStr()) { 10481 NewFD->setIsMultiVersion(); 10482 Redeclaration = true; 10483 OldDecl = ND; 10484 return false; 10485 } 10486 10487 ParsedTargetAttr CurParsed = CurTA->parse(std::less<std::string>()); 10488 if (CurParsed == NewParsed) { 10489 S.Diag(NewFD->getLocation(), diag::err_multiversion_duplicate); 10490 S.Diag(CurFD->getLocation(), diag::note_previous_declaration); 10491 NewFD->setInvalidDecl(); 10492 return true; 10493 } 10494 } else { 10495 const auto *CurCPUSpec = CurFD->getAttr<CPUSpecificAttr>(); 10496 const auto *CurCPUDisp = CurFD->getAttr<CPUDispatchAttr>(); 10497 // Handle CPUDispatch/CPUSpecific versions. 10498 // Only 1 CPUDispatch function is allowed, this will make it go through 10499 // the redeclaration errors. 10500 if (NewMVType == MultiVersionKind::CPUDispatch && 10501 CurFD->hasAttr<CPUDispatchAttr>()) { 10502 if (CurCPUDisp->cpus_size() == NewCPUDisp->cpus_size() && 10503 std::equal( 10504 CurCPUDisp->cpus_begin(), CurCPUDisp->cpus_end(), 10505 NewCPUDisp->cpus_begin(), 10506 [](const IdentifierInfo *Cur, const IdentifierInfo *New) { 10507 return Cur->getName() == New->getName(); 10508 })) { 10509 NewFD->setIsMultiVersion(); 10510 Redeclaration = true; 10511 OldDecl = ND; 10512 return false; 10513 } 10514 10515 // If the declarations don't match, this is an error condition. 10516 S.Diag(NewFD->getLocation(), diag::err_cpu_dispatch_mismatch); 10517 S.Diag(CurFD->getLocation(), diag::note_previous_declaration); 10518 NewFD->setInvalidDecl(); 10519 return true; 10520 } 10521 if (NewMVType == MultiVersionKind::CPUSpecific && CurCPUSpec) { 10522 10523 if (CurCPUSpec->cpus_size() == NewCPUSpec->cpus_size() && 10524 std::equal( 10525 CurCPUSpec->cpus_begin(), CurCPUSpec->cpus_end(), 10526 NewCPUSpec->cpus_begin(), 10527 [](const IdentifierInfo *Cur, const IdentifierInfo *New) { 10528 return Cur->getName() == New->getName(); 10529 })) { 10530 NewFD->setIsMultiVersion(); 10531 Redeclaration = true; 10532 OldDecl = ND; 10533 return false; 10534 } 10535 10536 // Only 1 version of CPUSpecific is allowed for each CPU. 10537 for (const IdentifierInfo *CurII : CurCPUSpec->cpus()) { 10538 for (const IdentifierInfo *NewII : NewCPUSpec->cpus()) { 10539 if (CurII == NewII) { 10540 S.Diag(NewFD->getLocation(), diag::err_cpu_specific_multiple_defs) 10541 << NewII; 10542 S.Diag(CurFD->getLocation(), diag::note_previous_declaration); 10543 NewFD->setInvalidDecl(); 10544 return true; 10545 } 10546 } 10547 } 10548 } 10549 // If the two decls aren't the same MVType, there is no possible error 10550 // condition. 10551 } 10552 } 10553 10554 // Else, this is simply a non-redecl case. Checking the 'value' is only 10555 // necessary in the Target case, since The CPUSpecific/Dispatch cases are 10556 // handled in the attribute adding step. 10557 if (NewMVType == MultiVersionKind::Target && 10558 CheckMultiVersionValue(S, NewFD)) { 10559 NewFD->setInvalidDecl(); 10560 return true; 10561 } 10562 10563 if (CheckMultiVersionAdditionalRules(S, OldFD, NewFD, 10564 !OldFD->isMultiVersion(), NewMVType)) { 10565 NewFD->setInvalidDecl(); 10566 return true; 10567 } 10568 10569 // Permit forward declarations in the case where these two are compatible. 10570 if (!OldFD->isMultiVersion()) { 10571 OldFD->setIsMultiVersion(); 10572 NewFD->setIsMultiVersion(); 10573 Redeclaration = true; 10574 OldDecl = OldFD; 10575 return false; 10576 } 10577 10578 NewFD->setIsMultiVersion(); 10579 Redeclaration = false; 10580 MergeTypeWithPrevious = false; 10581 OldDecl = nullptr; 10582 Previous.clear(); 10583 return false; 10584 } 10585 10586 10587 /// Check the validity of a mulitversion function declaration. 10588 /// Also sets the multiversion'ness' of the function itself. 10589 /// 10590 /// This sets NewFD->isInvalidDecl() to true if there was an error. 10591 /// 10592 /// Returns true if there was an error, false otherwise. 10593 static bool CheckMultiVersionFunction(Sema &S, FunctionDecl *NewFD, 10594 bool &Redeclaration, NamedDecl *&OldDecl, 10595 bool &MergeTypeWithPrevious, 10596 LookupResult &Previous) { 10597 const auto *NewTA = NewFD->getAttr<TargetAttr>(); 10598 const auto *NewCPUDisp = NewFD->getAttr<CPUDispatchAttr>(); 10599 const auto *NewCPUSpec = NewFD->getAttr<CPUSpecificAttr>(); 10600 10601 // Mixing Multiversioning types is prohibited. 10602 if ((NewTA && NewCPUDisp) || (NewTA && NewCPUSpec) || 10603 (NewCPUDisp && NewCPUSpec)) { 10604 S.Diag(NewFD->getLocation(), diag::err_multiversion_types_mixed); 10605 NewFD->setInvalidDecl(); 10606 return true; 10607 } 10608 10609 MultiVersionKind MVType = NewFD->getMultiVersionKind(); 10610 10611 // Main isn't allowed to become a multiversion function, however it IS 10612 // permitted to have 'main' be marked with the 'target' optimization hint. 10613 if (NewFD->isMain()) { 10614 if ((MVType == MultiVersionKind::Target && NewTA->isDefaultVersion()) || 10615 MVType == MultiVersionKind::CPUDispatch || 10616 MVType == MultiVersionKind::CPUSpecific) { 10617 S.Diag(NewFD->getLocation(), diag::err_multiversion_not_allowed_on_main); 10618 NewFD->setInvalidDecl(); 10619 return true; 10620 } 10621 return false; 10622 } 10623 10624 if (!OldDecl || !OldDecl->getAsFunction() || 10625 OldDecl->getDeclContext()->getRedeclContext() != 10626 NewFD->getDeclContext()->getRedeclContext()) { 10627 // If there's no previous declaration, AND this isn't attempting to cause 10628 // multiversioning, this isn't an error condition. 10629 if (MVType == MultiVersionKind::None) 10630 return false; 10631 return CheckMultiVersionFirstFunction(S, NewFD, MVType, NewTA); 10632 } 10633 10634 FunctionDecl *OldFD = OldDecl->getAsFunction(); 10635 10636 if (!OldFD->isMultiVersion() && MVType == MultiVersionKind::None) 10637 return false; 10638 10639 if (OldFD->isMultiVersion() && MVType == MultiVersionKind::None) { 10640 S.Diag(NewFD->getLocation(), diag::err_multiversion_required_in_redecl) 10641 << (OldFD->getMultiVersionKind() != MultiVersionKind::Target); 10642 NewFD->setInvalidDecl(); 10643 return true; 10644 } 10645 10646 // Handle the target potentially causes multiversioning case. 10647 if (!OldFD->isMultiVersion() && MVType == MultiVersionKind::Target) 10648 return CheckTargetCausesMultiVersioning(S, OldFD, NewFD, NewTA, 10649 Redeclaration, OldDecl, 10650 MergeTypeWithPrevious, Previous); 10651 10652 // At this point, we have a multiversion function decl (in OldFD) AND an 10653 // appropriate attribute in the current function decl. Resolve that these are 10654 // still compatible with previous declarations. 10655 return CheckMultiVersionAdditionalDecl( 10656 S, OldFD, NewFD, MVType, NewTA, NewCPUDisp, NewCPUSpec, Redeclaration, 10657 OldDecl, MergeTypeWithPrevious, Previous); 10658 } 10659 10660 /// Perform semantic checking of a new function declaration. 10661 /// 10662 /// Performs semantic analysis of the new function declaration 10663 /// NewFD. This routine performs all semantic checking that does not 10664 /// require the actual declarator involved in the declaration, and is 10665 /// used both for the declaration of functions as they are parsed 10666 /// (called via ActOnDeclarator) and for the declaration of functions 10667 /// that have been instantiated via C++ template instantiation (called 10668 /// via InstantiateDecl). 10669 /// 10670 /// \param IsMemberSpecialization whether this new function declaration is 10671 /// a member specialization (that replaces any definition provided by the 10672 /// previous declaration). 10673 /// 10674 /// This sets NewFD->isInvalidDecl() to true if there was an error. 10675 /// 10676 /// \returns true if the function declaration is a redeclaration. 10677 bool Sema::CheckFunctionDeclaration(Scope *S, FunctionDecl *NewFD, 10678 LookupResult &Previous, 10679 bool IsMemberSpecialization) { 10680 assert(!NewFD->getReturnType()->isVariablyModifiedType() && 10681 "Variably modified return types are not handled here"); 10682 10683 // Determine whether the type of this function should be merged with 10684 // a previous visible declaration. This never happens for functions in C++, 10685 // and always happens in C if the previous declaration was visible. 10686 bool MergeTypeWithPrevious = !getLangOpts().CPlusPlus && 10687 !Previous.isShadowed(); 10688 10689 bool Redeclaration = false; 10690 NamedDecl *OldDecl = nullptr; 10691 bool MayNeedOverloadableChecks = false; 10692 10693 // Merge or overload the declaration with an existing declaration of 10694 // the same name, if appropriate. 10695 if (!Previous.empty()) { 10696 // Determine whether NewFD is an overload of PrevDecl or 10697 // a declaration that requires merging. If it's an overload, 10698 // there's no more work to do here; we'll just add the new 10699 // function to the scope. 10700 if (!AllowOverloadingOfFunction(Previous, Context, NewFD)) { 10701 NamedDecl *Candidate = Previous.getRepresentativeDecl(); 10702 if (shouldLinkPossiblyHiddenDecl(Candidate, NewFD)) { 10703 Redeclaration = true; 10704 OldDecl = Candidate; 10705 } 10706 } else { 10707 MayNeedOverloadableChecks = true; 10708 switch (CheckOverload(S, NewFD, Previous, OldDecl, 10709 /*NewIsUsingDecl*/ false)) { 10710 case Ovl_Match: 10711 Redeclaration = true; 10712 break; 10713 10714 case Ovl_NonFunction: 10715 Redeclaration = true; 10716 break; 10717 10718 case Ovl_Overload: 10719 Redeclaration = false; 10720 break; 10721 } 10722 } 10723 } 10724 10725 // Check for a previous extern "C" declaration with this name. 10726 if (!Redeclaration && 10727 checkForConflictWithNonVisibleExternC(*this, NewFD, Previous)) { 10728 if (!Previous.empty()) { 10729 // This is an extern "C" declaration with the same name as a previous 10730 // declaration, and thus redeclares that entity... 10731 Redeclaration = true; 10732 OldDecl = Previous.getFoundDecl(); 10733 MergeTypeWithPrevious = false; 10734 10735 // ... except in the presence of __attribute__((overloadable)). 10736 if (OldDecl->hasAttr<OverloadableAttr>() || 10737 NewFD->hasAttr<OverloadableAttr>()) { 10738 if (IsOverload(NewFD, cast<FunctionDecl>(OldDecl), false)) { 10739 MayNeedOverloadableChecks = true; 10740 Redeclaration = false; 10741 OldDecl = nullptr; 10742 } 10743 } 10744 } 10745 } 10746 10747 if (CheckMultiVersionFunction(*this, NewFD, Redeclaration, OldDecl, 10748 MergeTypeWithPrevious, Previous)) 10749 return Redeclaration; 10750 10751 // PPC MMA non-pointer types are not allowed as function return types. 10752 if (Context.getTargetInfo().getTriple().isPPC64() && 10753 CheckPPCMMAType(NewFD->getReturnType(), NewFD->getLocation())) { 10754 NewFD->setInvalidDecl(); 10755 } 10756 10757 // C++11 [dcl.constexpr]p8: 10758 // A constexpr specifier for a non-static member function that is not 10759 // a constructor declares that member function to be const. 10760 // 10761 // This needs to be delayed until we know whether this is an out-of-line 10762 // definition of a static member function. 10763 // 10764 // This rule is not present in C++1y, so we produce a backwards 10765 // compatibility warning whenever it happens in C++11. 10766 CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(NewFD); 10767 if (!getLangOpts().CPlusPlus14 && MD && MD->isConstexpr() && 10768 !MD->isStatic() && !isa<CXXConstructorDecl>(MD) && 10769 !isa<CXXDestructorDecl>(MD) && !MD->getMethodQualifiers().hasConst()) { 10770 CXXMethodDecl *OldMD = nullptr; 10771 if (OldDecl) 10772 OldMD = dyn_cast_or_null<CXXMethodDecl>(OldDecl->getAsFunction()); 10773 if (!OldMD || !OldMD->isStatic()) { 10774 const FunctionProtoType *FPT = 10775 MD->getType()->castAs<FunctionProtoType>(); 10776 FunctionProtoType::ExtProtoInfo EPI = FPT->getExtProtoInfo(); 10777 EPI.TypeQuals.addConst(); 10778 MD->setType(Context.getFunctionType(FPT->getReturnType(), 10779 FPT->getParamTypes(), EPI)); 10780 10781 // Warn that we did this, if we're not performing template instantiation. 10782 // In that case, we'll have warned already when the template was defined. 10783 if (!inTemplateInstantiation()) { 10784 SourceLocation AddConstLoc; 10785 if (FunctionTypeLoc FTL = MD->getTypeSourceInfo()->getTypeLoc() 10786 .IgnoreParens().getAs<FunctionTypeLoc>()) 10787 AddConstLoc = getLocForEndOfToken(FTL.getRParenLoc()); 10788 10789 Diag(MD->getLocation(), diag::warn_cxx14_compat_constexpr_not_const) 10790 << FixItHint::CreateInsertion(AddConstLoc, " const"); 10791 } 10792 } 10793 } 10794 10795 if (Redeclaration) { 10796 // NewFD and OldDecl represent declarations that need to be 10797 // merged. 10798 if (MergeFunctionDecl(NewFD, OldDecl, S, MergeTypeWithPrevious)) { 10799 NewFD->setInvalidDecl(); 10800 return Redeclaration; 10801 } 10802 10803 Previous.clear(); 10804 Previous.addDecl(OldDecl); 10805 10806 if (FunctionTemplateDecl *OldTemplateDecl = 10807 dyn_cast<FunctionTemplateDecl>(OldDecl)) { 10808 auto *OldFD = OldTemplateDecl->getTemplatedDecl(); 10809 FunctionTemplateDecl *NewTemplateDecl 10810 = NewFD->getDescribedFunctionTemplate(); 10811 assert(NewTemplateDecl && "Template/non-template mismatch"); 10812 10813 // The call to MergeFunctionDecl above may have created some state in 10814 // NewTemplateDecl that needs to be merged with OldTemplateDecl before we 10815 // can add it as a redeclaration. 10816 NewTemplateDecl->mergePrevDecl(OldTemplateDecl); 10817 10818 NewFD->setPreviousDeclaration(OldFD); 10819 if (NewFD->isCXXClassMember()) { 10820 NewFD->setAccess(OldTemplateDecl->getAccess()); 10821 NewTemplateDecl->setAccess(OldTemplateDecl->getAccess()); 10822 } 10823 10824 // If this is an explicit specialization of a member that is a function 10825 // template, mark it as a member specialization. 10826 if (IsMemberSpecialization && 10827 NewTemplateDecl->getInstantiatedFromMemberTemplate()) { 10828 NewTemplateDecl->setMemberSpecialization(); 10829 assert(OldTemplateDecl->isMemberSpecialization()); 10830 // Explicit specializations of a member template do not inherit deleted 10831 // status from the parent member template that they are specializing. 10832 if (OldFD->isDeleted()) { 10833 // FIXME: This assert will not hold in the presence of modules. 10834 assert(OldFD->getCanonicalDecl() == OldFD); 10835 // FIXME: We need an update record for this AST mutation. 10836 OldFD->setDeletedAsWritten(false); 10837 } 10838 } 10839 10840 } else { 10841 if (shouldLinkDependentDeclWithPrevious(NewFD, OldDecl)) { 10842 auto *OldFD = cast<FunctionDecl>(OldDecl); 10843 // This needs to happen first so that 'inline' propagates. 10844 NewFD->setPreviousDeclaration(OldFD); 10845 if (NewFD->isCXXClassMember()) 10846 NewFD->setAccess(OldFD->getAccess()); 10847 } 10848 } 10849 } else if (!getLangOpts().CPlusPlus && MayNeedOverloadableChecks && 10850 !NewFD->getAttr<OverloadableAttr>()) { 10851 assert((Previous.empty() || 10852 llvm::any_of(Previous, 10853 [](const NamedDecl *ND) { 10854 return ND->hasAttr<OverloadableAttr>(); 10855 })) && 10856 "Non-redecls shouldn't happen without overloadable present"); 10857 10858 auto OtherUnmarkedIter = llvm::find_if(Previous, [](const NamedDecl *ND) { 10859 const auto *FD = dyn_cast<FunctionDecl>(ND); 10860 return FD && !FD->hasAttr<OverloadableAttr>(); 10861 }); 10862 10863 if (OtherUnmarkedIter != Previous.end()) { 10864 Diag(NewFD->getLocation(), 10865 diag::err_attribute_overloadable_multiple_unmarked_overloads); 10866 Diag((*OtherUnmarkedIter)->getLocation(), 10867 diag::note_attribute_overloadable_prev_overload) 10868 << false; 10869 10870 NewFD->addAttr(OverloadableAttr::CreateImplicit(Context)); 10871 } 10872 } 10873 10874 if (LangOpts.OpenMP) 10875 ActOnFinishedFunctionDefinitionInOpenMPAssumeScope(NewFD); 10876 10877 // Semantic checking for this function declaration (in isolation). 10878 10879 if (getLangOpts().CPlusPlus) { 10880 // C++-specific checks. 10881 if (CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(NewFD)) { 10882 CheckConstructor(Constructor); 10883 } else if (CXXDestructorDecl *Destructor = 10884 dyn_cast<CXXDestructorDecl>(NewFD)) { 10885 CXXRecordDecl *Record = Destructor->getParent(); 10886 QualType ClassType = Context.getTypeDeclType(Record); 10887 10888 // FIXME: Shouldn't we be able to perform this check even when the class 10889 // type is dependent? Both gcc and edg can handle that. 10890 if (!ClassType->isDependentType()) { 10891 DeclarationName Name 10892 = Context.DeclarationNames.getCXXDestructorName( 10893 Context.getCanonicalType(ClassType)); 10894 if (NewFD->getDeclName() != Name) { 10895 Diag(NewFD->getLocation(), diag::err_destructor_name); 10896 NewFD->setInvalidDecl(); 10897 return Redeclaration; 10898 } 10899 } 10900 } else if (auto *Guide = dyn_cast<CXXDeductionGuideDecl>(NewFD)) { 10901 if (auto *TD = Guide->getDescribedFunctionTemplate()) 10902 CheckDeductionGuideTemplate(TD); 10903 10904 // A deduction guide is not on the list of entities that can be 10905 // explicitly specialized. 10906 if (Guide->getTemplateSpecializationKind() == TSK_ExplicitSpecialization) 10907 Diag(Guide->getBeginLoc(), diag::err_deduction_guide_specialized) 10908 << /*explicit specialization*/ 1; 10909 } 10910 10911 // Find any virtual functions that this function overrides. 10912 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(NewFD)) { 10913 if (!Method->isFunctionTemplateSpecialization() && 10914 !Method->getDescribedFunctionTemplate() && 10915 Method->isCanonicalDecl()) { 10916 AddOverriddenMethods(Method->getParent(), Method); 10917 } 10918 if (Method->isVirtual() && NewFD->getTrailingRequiresClause()) 10919 // C++2a [class.virtual]p6 10920 // A virtual method shall not have a requires-clause. 10921 Diag(NewFD->getTrailingRequiresClause()->getBeginLoc(), 10922 diag::err_constrained_virtual_method); 10923 10924 if (Method->isStatic()) 10925 checkThisInStaticMemberFunctionType(Method); 10926 } 10927 10928 if (CXXConversionDecl *Conversion = dyn_cast<CXXConversionDecl>(NewFD)) 10929 ActOnConversionDeclarator(Conversion); 10930 10931 // Extra checking for C++ overloaded operators (C++ [over.oper]). 10932 if (NewFD->isOverloadedOperator() && 10933 CheckOverloadedOperatorDeclaration(NewFD)) { 10934 NewFD->setInvalidDecl(); 10935 return Redeclaration; 10936 } 10937 10938 // Extra checking for C++0x literal operators (C++0x [over.literal]). 10939 if (NewFD->getLiteralIdentifier() && 10940 CheckLiteralOperatorDeclaration(NewFD)) { 10941 NewFD->setInvalidDecl(); 10942 return Redeclaration; 10943 } 10944 10945 // In C++, check default arguments now that we have merged decls. Unless 10946 // the lexical context is the class, because in this case this is done 10947 // during delayed parsing anyway. 10948 if (!CurContext->isRecord()) 10949 CheckCXXDefaultArguments(NewFD); 10950 10951 // If this function declares a builtin function, check the type of this 10952 // declaration against the expected type for the builtin. 10953 if (unsigned BuiltinID = NewFD->getBuiltinID()) { 10954 ASTContext::GetBuiltinTypeError Error; 10955 LookupNecessaryTypesForBuiltin(S, BuiltinID); 10956 QualType T = Context.GetBuiltinType(BuiltinID, Error); 10957 // If the type of the builtin differs only in its exception 10958 // specification, that's OK. 10959 // FIXME: If the types do differ in this way, it would be better to 10960 // retain the 'noexcept' form of the type. 10961 if (!T.isNull() && 10962 !Context.hasSameFunctionTypeIgnoringExceptionSpec(T, 10963 NewFD->getType())) 10964 // The type of this function differs from the type of the builtin, 10965 // so forget about the builtin entirely. 10966 Context.BuiltinInfo.forgetBuiltin(BuiltinID, Context.Idents); 10967 } 10968 10969 // If this function is declared as being extern "C", then check to see if 10970 // the function returns a UDT (class, struct, or union type) that is not C 10971 // compatible, and if it does, warn the user. 10972 // But, issue any diagnostic on the first declaration only. 10973 if (Previous.empty() && NewFD->isExternC()) { 10974 QualType R = NewFD->getReturnType(); 10975 if (R->isIncompleteType() && !R->isVoidType()) 10976 Diag(NewFD->getLocation(), diag::warn_return_value_udt_incomplete) 10977 << NewFD << R; 10978 else if (!R.isPODType(Context) && !R->isVoidType() && 10979 !R->isObjCObjectPointerType()) 10980 Diag(NewFD->getLocation(), diag::warn_return_value_udt) << NewFD << R; 10981 } 10982 10983 // C++1z [dcl.fct]p6: 10984 // [...] whether the function has a non-throwing exception-specification 10985 // [is] part of the function type 10986 // 10987 // This results in an ABI break between C++14 and C++17 for functions whose 10988 // declared type includes an exception-specification in a parameter or 10989 // return type. (Exception specifications on the function itself are OK in 10990 // most cases, and exception specifications are not permitted in most other 10991 // contexts where they could make it into a mangling.) 10992 if (!getLangOpts().CPlusPlus17 && !NewFD->getPrimaryTemplate()) { 10993 auto HasNoexcept = [&](QualType T) -> bool { 10994 // Strip off declarator chunks that could be between us and a function 10995 // type. We don't need to look far, exception specifications are very 10996 // restricted prior to C++17. 10997 if (auto *RT = T->getAs<ReferenceType>()) 10998 T = RT->getPointeeType(); 10999 else if (T->isAnyPointerType()) 11000 T = T->getPointeeType(); 11001 else if (auto *MPT = T->getAs<MemberPointerType>()) 11002 T = MPT->getPointeeType(); 11003 if (auto *FPT = T->getAs<FunctionProtoType>()) 11004 if (FPT->isNothrow()) 11005 return true; 11006 return false; 11007 }; 11008 11009 auto *FPT = NewFD->getType()->castAs<FunctionProtoType>(); 11010 bool AnyNoexcept = HasNoexcept(FPT->getReturnType()); 11011 for (QualType T : FPT->param_types()) 11012 AnyNoexcept |= HasNoexcept(T); 11013 if (AnyNoexcept) 11014 Diag(NewFD->getLocation(), 11015 diag::warn_cxx17_compat_exception_spec_in_signature) 11016 << NewFD; 11017 } 11018 11019 if (!Redeclaration && LangOpts.CUDA) 11020 checkCUDATargetOverload(NewFD, Previous); 11021 } 11022 return Redeclaration; 11023 } 11024 11025 void Sema::CheckMain(FunctionDecl* FD, const DeclSpec& DS) { 11026 // C++11 [basic.start.main]p3: 11027 // A program that [...] declares main to be inline, static or 11028 // constexpr is ill-formed. 11029 // C11 6.7.4p4: In a hosted environment, no function specifier(s) shall 11030 // appear in a declaration of main. 11031 // static main is not an error under C99, but we should warn about it. 11032 // We accept _Noreturn main as an extension. 11033 if (FD->getStorageClass() == SC_Static) 11034 Diag(DS.getStorageClassSpecLoc(), getLangOpts().CPlusPlus 11035 ? diag::err_static_main : diag::warn_static_main) 11036 << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc()); 11037 if (FD->isInlineSpecified()) 11038 Diag(DS.getInlineSpecLoc(), diag::err_inline_main) 11039 << FixItHint::CreateRemoval(DS.getInlineSpecLoc()); 11040 if (DS.isNoreturnSpecified()) { 11041 SourceLocation NoreturnLoc = DS.getNoreturnSpecLoc(); 11042 SourceRange NoreturnRange(NoreturnLoc, getLocForEndOfToken(NoreturnLoc)); 11043 Diag(NoreturnLoc, diag::ext_noreturn_main); 11044 Diag(NoreturnLoc, diag::note_main_remove_noreturn) 11045 << FixItHint::CreateRemoval(NoreturnRange); 11046 } 11047 if (FD->isConstexpr()) { 11048 Diag(DS.getConstexprSpecLoc(), diag::err_constexpr_main) 11049 << FD->isConsteval() 11050 << FixItHint::CreateRemoval(DS.getConstexprSpecLoc()); 11051 FD->setConstexprKind(ConstexprSpecKind::Unspecified); 11052 } 11053 11054 if (getLangOpts().OpenCL) { 11055 Diag(FD->getLocation(), diag::err_opencl_no_main) 11056 << FD->hasAttr<OpenCLKernelAttr>(); 11057 FD->setInvalidDecl(); 11058 return; 11059 } 11060 11061 QualType T = FD->getType(); 11062 assert(T->isFunctionType() && "function decl is not of function type"); 11063 const FunctionType* FT = T->castAs<FunctionType>(); 11064 11065 // Set default calling convention for main() 11066 if (FT->getCallConv() != CC_C) { 11067 FT = Context.adjustFunctionType(FT, FT->getExtInfo().withCallingConv(CC_C)); 11068 FD->setType(QualType(FT, 0)); 11069 T = Context.getCanonicalType(FD->getType()); 11070 } 11071 11072 if (getLangOpts().GNUMode && !getLangOpts().CPlusPlus) { 11073 // In C with GNU extensions we allow main() to have non-integer return 11074 // type, but we should warn about the extension, and we disable the 11075 // implicit-return-zero rule. 11076 11077 // GCC in C mode accepts qualified 'int'. 11078 if (Context.hasSameUnqualifiedType(FT->getReturnType(), Context.IntTy)) 11079 FD->setHasImplicitReturnZero(true); 11080 else { 11081 Diag(FD->getTypeSpecStartLoc(), diag::ext_main_returns_nonint); 11082 SourceRange RTRange = FD->getReturnTypeSourceRange(); 11083 if (RTRange.isValid()) 11084 Diag(RTRange.getBegin(), diag::note_main_change_return_type) 11085 << FixItHint::CreateReplacement(RTRange, "int"); 11086 } 11087 } else { 11088 // In C and C++, main magically returns 0 if you fall off the end; 11089 // set the flag which tells us that. 11090 // This is C++ [basic.start.main]p5 and C99 5.1.2.2.3. 11091 11092 // All the standards say that main() should return 'int'. 11093 if (Context.hasSameType(FT->getReturnType(), Context.IntTy)) 11094 FD->setHasImplicitReturnZero(true); 11095 else { 11096 // Otherwise, this is just a flat-out error. 11097 SourceRange RTRange = FD->getReturnTypeSourceRange(); 11098 Diag(FD->getTypeSpecStartLoc(), diag::err_main_returns_nonint) 11099 << (RTRange.isValid() ? FixItHint::CreateReplacement(RTRange, "int") 11100 : FixItHint()); 11101 FD->setInvalidDecl(true); 11102 } 11103 } 11104 11105 // Treat protoless main() as nullary. 11106 if (isa<FunctionNoProtoType>(FT)) return; 11107 11108 const FunctionProtoType* FTP = cast<const FunctionProtoType>(FT); 11109 unsigned nparams = FTP->getNumParams(); 11110 assert(FD->getNumParams() == nparams); 11111 11112 bool HasExtraParameters = (nparams > 3); 11113 11114 if (FTP->isVariadic()) { 11115 Diag(FD->getLocation(), diag::ext_variadic_main); 11116 // FIXME: if we had information about the location of the ellipsis, we 11117 // could add a FixIt hint to remove it as a parameter. 11118 } 11119 11120 // Darwin passes an undocumented fourth argument of type char**. If 11121 // other platforms start sprouting these, the logic below will start 11122 // getting shifty. 11123 if (nparams == 4 && Context.getTargetInfo().getTriple().isOSDarwin()) 11124 HasExtraParameters = false; 11125 11126 if (HasExtraParameters) { 11127 Diag(FD->getLocation(), diag::err_main_surplus_args) << nparams; 11128 FD->setInvalidDecl(true); 11129 nparams = 3; 11130 } 11131 11132 // FIXME: a lot of the following diagnostics would be improved 11133 // if we had some location information about types. 11134 11135 QualType CharPP = 11136 Context.getPointerType(Context.getPointerType(Context.CharTy)); 11137 QualType Expected[] = { Context.IntTy, CharPP, CharPP, CharPP }; 11138 11139 for (unsigned i = 0; i < nparams; ++i) { 11140 QualType AT = FTP->getParamType(i); 11141 11142 bool mismatch = true; 11143 11144 if (Context.hasSameUnqualifiedType(AT, Expected[i])) 11145 mismatch = false; 11146 else if (Expected[i] == CharPP) { 11147 // As an extension, the following forms are okay: 11148 // char const ** 11149 // char const * const * 11150 // char * const * 11151 11152 QualifierCollector qs; 11153 const PointerType* PT; 11154 if ((PT = qs.strip(AT)->getAs<PointerType>()) && 11155 (PT = qs.strip(PT->getPointeeType())->getAs<PointerType>()) && 11156 Context.hasSameType(QualType(qs.strip(PT->getPointeeType()), 0), 11157 Context.CharTy)) { 11158 qs.removeConst(); 11159 mismatch = !qs.empty(); 11160 } 11161 } 11162 11163 if (mismatch) { 11164 Diag(FD->getLocation(), diag::err_main_arg_wrong) << i << Expected[i]; 11165 // TODO: suggest replacing given type with expected type 11166 FD->setInvalidDecl(true); 11167 } 11168 } 11169 11170 if (nparams == 1 && !FD->isInvalidDecl()) { 11171 Diag(FD->getLocation(), diag::warn_main_one_arg); 11172 } 11173 11174 if (!FD->isInvalidDecl() && FD->getDescribedFunctionTemplate()) { 11175 Diag(FD->getLocation(), diag::err_mainlike_template_decl) << FD; 11176 FD->setInvalidDecl(); 11177 } 11178 } 11179 11180 static bool isDefaultStdCall(FunctionDecl *FD, Sema &S) { 11181 11182 // Default calling convention for main and wmain is __cdecl 11183 if (FD->getName() == "main" || FD->getName() == "wmain") 11184 return false; 11185 11186 // Default calling convention for MinGW is __cdecl 11187 const llvm::Triple &T = S.Context.getTargetInfo().getTriple(); 11188 if (T.isWindowsGNUEnvironment()) 11189 return false; 11190 11191 // Default calling convention for WinMain, wWinMain and DllMain 11192 // is __stdcall on 32 bit Windows 11193 if (T.isOSWindows() && T.getArch() == llvm::Triple::x86) 11194 return true; 11195 11196 return false; 11197 } 11198 11199 void Sema::CheckMSVCRTEntryPoint(FunctionDecl *FD) { 11200 QualType T = FD->getType(); 11201 assert(T->isFunctionType() && "function decl is not of function type"); 11202 const FunctionType *FT = T->castAs<FunctionType>(); 11203 11204 // Set an implicit return of 'zero' if the function can return some integral, 11205 // enumeration, pointer or nullptr type. 11206 if (FT->getReturnType()->isIntegralOrEnumerationType() || 11207 FT->getReturnType()->isAnyPointerType() || 11208 FT->getReturnType()->isNullPtrType()) 11209 // DllMain is exempt because a return value of zero means it failed. 11210 if (FD->getName() != "DllMain") 11211 FD->setHasImplicitReturnZero(true); 11212 11213 // Explicity specified calling conventions are applied to MSVC entry points 11214 if (!hasExplicitCallingConv(T)) { 11215 if (isDefaultStdCall(FD, *this)) { 11216 if (FT->getCallConv() != CC_X86StdCall) { 11217 FT = Context.adjustFunctionType( 11218 FT, FT->getExtInfo().withCallingConv(CC_X86StdCall)); 11219 FD->setType(QualType(FT, 0)); 11220 } 11221 } else if (FT->getCallConv() != CC_C) { 11222 FT = Context.adjustFunctionType(FT, 11223 FT->getExtInfo().withCallingConv(CC_C)); 11224 FD->setType(QualType(FT, 0)); 11225 } 11226 } 11227 11228 if (!FD->isInvalidDecl() && FD->getDescribedFunctionTemplate()) { 11229 Diag(FD->getLocation(), diag::err_mainlike_template_decl) << FD; 11230 FD->setInvalidDecl(); 11231 } 11232 } 11233 11234 bool Sema::CheckForConstantInitializer(Expr *Init, QualType DclT) { 11235 // FIXME: Need strict checking. In C89, we need to check for 11236 // any assignment, increment, decrement, function-calls, or 11237 // commas outside of a sizeof. In C99, it's the same list, 11238 // except that the aforementioned are allowed in unevaluated 11239 // expressions. Everything else falls under the 11240 // "may accept other forms of constant expressions" exception. 11241 // 11242 // Regular C++ code will not end up here (exceptions: language extensions, 11243 // OpenCL C++ etc), so the constant expression rules there don't matter. 11244 if (Init->isValueDependent()) { 11245 assert(Init->containsErrors() && 11246 "Dependent code should only occur in error-recovery path."); 11247 return true; 11248 } 11249 const Expr *Culprit; 11250 if (Init->isConstantInitializer(Context, false, &Culprit)) 11251 return false; 11252 Diag(Culprit->getExprLoc(), diag::err_init_element_not_constant) 11253 << Culprit->getSourceRange(); 11254 return true; 11255 } 11256 11257 namespace { 11258 // Visits an initialization expression to see if OrigDecl is evaluated in 11259 // its own initialization and throws a warning if it does. 11260 class SelfReferenceChecker 11261 : public EvaluatedExprVisitor<SelfReferenceChecker> { 11262 Sema &S; 11263 Decl *OrigDecl; 11264 bool isRecordType; 11265 bool isPODType; 11266 bool isReferenceType; 11267 11268 bool isInitList; 11269 llvm::SmallVector<unsigned, 4> InitFieldIndex; 11270 11271 public: 11272 typedef EvaluatedExprVisitor<SelfReferenceChecker> Inherited; 11273 11274 SelfReferenceChecker(Sema &S, Decl *OrigDecl) : Inherited(S.Context), 11275 S(S), OrigDecl(OrigDecl) { 11276 isPODType = false; 11277 isRecordType = false; 11278 isReferenceType = false; 11279 isInitList = false; 11280 if (ValueDecl *VD = dyn_cast<ValueDecl>(OrigDecl)) { 11281 isPODType = VD->getType().isPODType(S.Context); 11282 isRecordType = VD->getType()->isRecordType(); 11283 isReferenceType = VD->getType()->isReferenceType(); 11284 } 11285 } 11286 11287 // For most expressions, just call the visitor. For initializer lists, 11288 // track the index of the field being initialized since fields are 11289 // initialized in order allowing use of previously initialized fields. 11290 void CheckExpr(Expr *E) { 11291 InitListExpr *InitList = dyn_cast<InitListExpr>(E); 11292 if (!InitList) { 11293 Visit(E); 11294 return; 11295 } 11296 11297 // Track and increment the index here. 11298 isInitList = true; 11299 InitFieldIndex.push_back(0); 11300 for (auto Child : InitList->children()) { 11301 CheckExpr(cast<Expr>(Child)); 11302 ++InitFieldIndex.back(); 11303 } 11304 InitFieldIndex.pop_back(); 11305 } 11306 11307 // Returns true if MemberExpr is checked and no further checking is needed. 11308 // Returns false if additional checking is required. 11309 bool CheckInitListMemberExpr(MemberExpr *E, bool CheckReference) { 11310 llvm::SmallVector<FieldDecl*, 4> Fields; 11311 Expr *Base = E; 11312 bool ReferenceField = false; 11313 11314 // Get the field members used. 11315 while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) { 11316 FieldDecl *FD = dyn_cast<FieldDecl>(ME->getMemberDecl()); 11317 if (!FD) 11318 return false; 11319 Fields.push_back(FD); 11320 if (FD->getType()->isReferenceType()) 11321 ReferenceField = true; 11322 Base = ME->getBase()->IgnoreParenImpCasts(); 11323 } 11324 11325 // Keep checking only if the base Decl is the same. 11326 DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base); 11327 if (!DRE || DRE->getDecl() != OrigDecl) 11328 return false; 11329 11330 // A reference field can be bound to an unininitialized field. 11331 if (CheckReference && !ReferenceField) 11332 return true; 11333 11334 // Convert FieldDecls to their index number. 11335 llvm::SmallVector<unsigned, 4> UsedFieldIndex; 11336 for (const FieldDecl *I : llvm::reverse(Fields)) 11337 UsedFieldIndex.push_back(I->getFieldIndex()); 11338 11339 // See if a warning is needed by checking the first difference in index 11340 // numbers. If field being used has index less than the field being 11341 // initialized, then the use is safe. 11342 for (auto UsedIter = UsedFieldIndex.begin(), 11343 UsedEnd = UsedFieldIndex.end(), 11344 OrigIter = InitFieldIndex.begin(), 11345 OrigEnd = InitFieldIndex.end(); 11346 UsedIter != UsedEnd && OrigIter != OrigEnd; ++UsedIter, ++OrigIter) { 11347 if (*UsedIter < *OrigIter) 11348 return true; 11349 if (*UsedIter > *OrigIter) 11350 break; 11351 } 11352 11353 // TODO: Add a different warning which will print the field names. 11354 HandleDeclRefExpr(DRE); 11355 return true; 11356 } 11357 11358 // For most expressions, the cast is directly above the DeclRefExpr. 11359 // For conditional operators, the cast can be outside the conditional 11360 // operator if both expressions are DeclRefExpr's. 11361 void HandleValue(Expr *E) { 11362 E = E->IgnoreParens(); 11363 if (DeclRefExpr* DRE = dyn_cast<DeclRefExpr>(E)) { 11364 HandleDeclRefExpr(DRE); 11365 return; 11366 } 11367 11368 if (ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) { 11369 Visit(CO->getCond()); 11370 HandleValue(CO->getTrueExpr()); 11371 HandleValue(CO->getFalseExpr()); 11372 return; 11373 } 11374 11375 if (BinaryConditionalOperator *BCO = 11376 dyn_cast<BinaryConditionalOperator>(E)) { 11377 Visit(BCO->getCond()); 11378 HandleValue(BCO->getFalseExpr()); 11379 return; 11380 } 11381 11382 if (OpaqueValueExpr *OVE = dyn_cast<OpaqueValueExpr>(E)) { 11383 HandleValue(OVE->getSourceExpr()); 11384 return; 11385 } 11386 11387 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 11388 if (BO->getOpcode() == BO_Comma) { 11389 Visit(BO->getLHS()); 11390 HandleValue(BO->getRHS()); 11391 return; 11392 } 11393 } 11394 11395 if (isa<MemberExpr>(E)) { 11396 if (isInitList) { 11397 if (CheckInitListMemberExpr(cast<MemberExpr>(E), 11398 false /*CheckReference*/)) 11399 return; 11400 } 11401 11402 Expr *Base = E->IgnoreParenImpCasts(); 11403 while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) { 11404 // Check for static member variables and don't warn on them. 11405 if (!isa<FieldDecl>(ME->getMemberDecl())) 11406 return; 11407 Base = ME->getBase()->IgnoreParenImpCasts(); 11408 } 11409 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base)) 11410 HandleDeclRefExpr(DRE); 11411 return; 11412 } 11413 11414 Visit(E); 11415 } 11416 11417 // Reference types not handled in HandleValue are handled here since all 11418 // uses of references are bad, not just r-value uses. 11419 void VisitDeclRefExpr(DeclRefExpr *E) { 11420 if (isReferenceType) 11421 HandleDeclRefExpr(E); 11422 } 11423 11424 void VisitImplicitCastExpr(ImplicitCastExpr *E) { 11425 if (E->getCastKind() == CK_LValueToRValue) { 11426 HandleValue(E->getSubExpr()); 11427 return; 11428 } 11429 11430 Inherited::VisitImplicitCastExpr(E); 11431 } 11432 11433 void VisitMemberExpr(MemberExpr *E) { 11434 if (isInitList) { 11435 if (CheckInitListMemberExpr(E, true /*CheckReference*/)) 11436 return; 11437 } 11438 11439 // Don't warn on arrays since they can be treated as pointers. 11440 if (E->getType()->canDecayToPointerType()) return; 11441 11442 // Warn when a non-static method call is followed by non-static member 11443 // field accesses, which is followed by a DeclRefExpr. 11444 CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(E->getMemberDecl()); 11445 bool Warn = (MD && !MD->isStatic()); 11446 Expr *Base = E->getBase()->IgnoreParenImpCasts(); 11447 while (MemberExpr *ME = dyn_cast<MemberExpr>(Base)) { 11448 if (!isa<FieldDecl>(ME->getMemberDecl())) 11449 Warn = false; 11450 Base = ME->getBase()->IgnoreParenImpCasts(); 11451 } 11452 11453 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Base)) { 11454 if (Warn) 11455 HandleDeclRefExpr(DRE); 11456 return; 11457 } 11458 11459 // The base of a MemberExpr is not a MemberExpr or a DeclRefExpr. 11460 // Visit that expression. 11461 Visit(Base); 11462 } 11463 11464 void VisitCXXOperatorCallExpr(CXXOperatorCallExpr *E) { 11465 Expr *Callee = E->getCallee(); 11466 11467 if (isa<UnresolvedLookupExpr>(Callee)) 11468 return Inherited::VisitCXXOperatorCallExpr(E); 11469 11470 Visit(Callee); 11471 for (auto Arg: E->arguments()) 11472 HandleValue(Arg->IgnoreParenImpCasts()); 11473 } 11474 11475 void VisitUnaryOperator(UnaryOperator *E) { 11476 // For POD record types, addresses of its own members are well-defined. 11477 if (E->getOpcode() == UO_AddrOf && isRecordType && 11478 isa<MemberExpr>(E->getSubExpr()->IgnoreParens())) { 11479 if (!isPODType) 11480 HandleValue(E->getSubExpr()); 11481 return; 11482 } 11483 11484 if (E->isIncrementDecrementOp()) { 11485 HandleValue(E->getSubExpr()); 11486 return; 11487 } 11488 11489 Inherited::VisitUnaryOperator(E); 11490 } 11491 11492 void VisitObjCMessageExpr(ObjCMessageExpr *E) {} 11493 11494 void VisitCXXConstructExpr(CXXConstructExpr *E) { 11495 if (E->getConstructor()->isCopyConstructor()) { 11496 Expr *ArgExpr = E->getArg(0); 11497 if (InitListExpr *ILE = dyn_cast<InitListExpr>(ArgExpr)) 11498 if (ILE->getNumInits() == 1) 11499 ArgExpr = ILE->getInit(0); 11500 if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(ArgExpr)) 11501 if (ICE->getCastKind() == CK_NoOp) 11502 ArgExpr = ICE->getSubExpr(); 11503 HandleValue(ArgExpr); 11504 return; 11505 } 11506 Inherited::VisitCXXConstructExpr(E); 11507 } 11508 11509 void VisitCallExpr(CallExpr *E) { 11510 // Treat std::move as a use. 11511 if (E->isCallToStdMove()) { 11512 HandleValue(E->getArg(0)); 11513 return; 11514 } 11515 11516 Inherited::VisitCallExpr(E); 11517 } 11518 11519 void VisitBinaryOperator(BinaryOperator *E) { 11520 if (E->isCompoundAssignmentOp()) { 11521 HandleValue(E->getLHS()); 11522 Visit(E->getRHS()); 11523 return; 11524 } 11525 11526 Inherited::VisitBinaryOperator(E); 11527 } 11528 11529 // A custom visitor for BinaryConditionalOperator is needed because the 11530 // regular visitor would check the condition and true expression separately 11531 // but both point to the same place giving duplicate diagnostics. 11532 void VisitBinaryConditionalOperator(BinaryConditionalOperator *E) { 11533 Visit(E->getCond()); 11534 Visit(E->getFalseExpr()); 11535 } 11536 11537 void HandleDeclRefExpr(DeclRefExpr *DRE) { 11538 Decl* ReferenceDecl = DRE->getDecl(); 11539 if (OrigDecl != ReferenceDecl) return; 11540 unsigned diag; 11541 if (isReferenceType) { 11542 diag = diag::warn_uninit_self_reference_in_reference_init; 11543 } else if (cast<VarDecl>(OrigDecl)->isStaticLocal()) { 11544 diag = diag::warn_static_self_reference_in_init; 11545 } else if (isa<TranslationUnitDecl>(OrigDecl->getDeclContext()) || 11546 isa<NamespaceDecl>(OrigDecl->getDeclContext()) || 11547 DRE->getDecl()->getType()->isRecordType()) { 11548 diag = diag::warn_uninit_self_reference_in_init; 11549 } else { 11550 // Local variables will be handled by the CFG analysis. 11551 return; 11552 } 11553 11554 S.DiagRuntimeBehavior(DRE->getBeginLoc(), DRE, 11555 S.PDiag(diag) 11556 << DRE->getDecl() << OrigDecl->getLocation() 11557 << DRE->getSourceRange()); 11558 } 11559 }; 11560 11561 /// CheckSelfReference - Warns if OrigDecl is used in expression E. 11562 static void CheckSelfReference(Sema &S, Decl* OrigDecl, Expr *E, 11563 bool DirectInit) { 11564 // Parameters arguments are occassionially constructed with itself, 11565 // for instance, in recursive functions. Skip them. 11566 if (isa<ParmVarDecl>(OrigDecl)) 11567 return; 11568 11569 E = E->IgnoreParens(); 11570 11571 // Skip checking T a = a where T is not a record or reference type. 11572 // Doing so is a way to silence uninitialized warnings. 11573 if (!DirectInit && !cast<VarDecl>(OrigDecl)->getType()->isRecordType()) 11574 if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) 11575 if (ICE->getCastKind() == CK_LValueToRValue) 11576 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(ICE->getSubExpr())) 11577 if (DRE->getDecl() == OrigDecl) 11578 return; 11579 11580 SelfReferenceChecker(S, OrigDecl).CheckExpr(E); 11581 } 11582 } // end anonymous namespace 11583 11584 namespace { 11585 // Simple wrapper to add the name of a variable or (if no variable is 11586 // available) a DeclarationName into a diagnostic. 11587 struct VarDeclOrName { 11588 VarDecl *VDecl; 11589 DeclarationName Name; 11590 11591 friend const Sema::SemaDiagnosticBuilder & 11592 operator<<(const Sema::SemaDiagnosticBuilder &Diag, VarDeclOrName VN) { 11593 return VN.VDecl ? Diag << VN.VDecl : Diag << VN.Name; 11594 } 11595 }; 11596 } // end anonymous namespace 11597 11598 QualType Sema::deduceVarTypeFromInitializer(VarDecl *VDecl, 11599 DeclarationName Name, QualType Type, 11600 TypeSourceInfo *TSI, 11601 SourceRange Range, bool DirectInit, 11602 Expr *Init) { 11603 bool IsInitCapture = !VDecl; 11604 assert((!VDecl || !VDecl->isInitCapture()) && 11605 "init captures are expected to be deduced prior to initialization"); 11606 11607 VarDeclOrName VN{VDecl, Name}; 11608 11609 DeducedType *Deduced = Type->getContainedDeducedType(); 11610 assert(Deduced && "deduceVarTypeFromInitializer for non-deduced type"); 11611 11612 // C++11 [dcl.spec.auto]p3 11613 if (!Init) { 11614 assert(VDecl && "no init for init capture deduction?"); 11615 11616 // Except for class argument deduction, and then for an initializing 11617 // declaration only, i.e. no static at class scope or extern. 11618 if (!isa<DeducedTemplateSpecializationType>(Deduced) || 11619 VDecl->hasExternalStorage() || 11620 VDecl->isStaticDataMember()) { 11621 Diag(VDecl->getLocation(), diag::err_auto_var_requires_init) 11622 << VDecl->getDeclName() << Type; 11623 return QualType(); 11624 } 11625 } 11626 11627 ArrayRef<Expr*> DeduceInits; 11628 if (Init) 11629 DeduceInits = Init; 11630 11631 if (DirectInit) { 11632 if (auto *PL = dyn_cast_or_null<ParenListExpr>(Init)) 11633 DeduceInits = PL->exprs(); 11634 } 11635 11636 if (isa<DeducedTemplateSpecializationType>(Deduced)) { 11637 assert(VDecl && "non-auto type for init capture deduction?"); 11638 InitializedEntity Entity = InitializedEntity::InitializeVariable(VDecl); 11639 InitializationKind Kind = InitializationKind::CreateForInit( 11640 VDecl->getLocation(), DirectInit, Init); 11641 // FIXME: Initialization should not be taking a mutable list of inits. 11642 SmallVector<Expr*, 8> InitsCopy(DeduceInits.begin(), DeduceInits.end()); 11643 return DeduceTemplateSpecializationFromInitializer(TSI, Entity, Kind, 11644 InitsCopy); 11645 } 11646 11647 if (DirectInit) { 11648 if (auto *IL = dyn_cast<InitListExpr>(Init)) 11649 DeduceInits = IL->inits(); 11650 } 11651 11652 // Deduction only works if we have exactly one source expression. 11653 if (DeduceInits.empty()) { 11654 // It isn't possible to write this directly, but it is possible to 11655 // end up in this situation with "auto x(some_pack...);" 11656 Diag(Init->getBeginLoc(), IsInitCapture 11657 ? diag::err_init_capture_no_expression 11658 : diag::err_auto_var_init_no_expression) 11659 << VN << Type << Range; 11660 return QualType(); 11661 } 11662 11663 if (DeduceInits.size() > 1) { 11664 Diag(DeduceInits[1]->getBeginLoc(), 11665 IsInitCapture ? diag::err_init_capture_multiple_expressions 11666 : diag::err_auto_var_init_multiple_expressions) 11667 << VN << Type << Range; 11668 return QualType(); 11669 } 11670 11671 Expr *DeduceInit = DeduceInits[0]; 11672 if (DirectInit && isa<InitListExpr>(DeduceInit)) { 11673 Diag(Init->getBeginLoc(), IsInitCapture 11674 ? diag::err_init_capture_paren_braces 11675 : diag::err_auto_var_init_paren_braces) 11676 << isa<InitListExpr>(Init) << VN << Type << Range; 11677 return QualType(); 11678 } 11679 11680 // Expressions default to 'id' when we're in a debugger. 11681 bool DefaultedAnyToId = false; 11682 if (getLangOpts().DebuggerCastResultToId && 11683 Init->getType() == Context.UnknownAnyTy && !IsInitCapture) { 11684 ExprResult Result = forceUnknownAnyToType(Init, Context.getObjCIdType()); 11685 if (Result.isInvalid()) { 11686 return QualType(); 11687 } 11688 Init = Result.get(); 11689 DefaultedAnyToId = true; 11690 } 11691 11692 // C++ [dcl.decomp]p1: 11693 // If the assignment-expression [...] has array type A and no ref-qualifier 11694 // is present, e has type cv A 11695 if (VDecl && isa<DecompositionDecl>(VDecl) && 11696 Context.hasSameUnqualifiedType(Type, Context.getAutoDeductType()) && 11697 DeduceInit->getType()->isConstantArrayType()) 11698 return Context.getQualifiedType(DeduceInit->getType(), 11699 Type.getQualifiers()); 11700 11701 QualType DeducedType; 11702 if (DeduceAutoType(TSI, DeduceInit, DeducedType) == DAR_Failed) { 11703 if (!IsInitCapture) 11704 DiagnoseAutoDeductionFailure(VDecl, DeduceInit); 11705 else if (isa<InitListExpr>(Init)) 11706 Diag(Range.getBegin(), 11707 diag::err_init_capture_deduction_failure_from_init_list) 11708 << VN 11709 << (DeduceInit->getType().isNull() ? TSI->getType() 11710 : DeduceInit->getType()) 11711 << DeduceInit->getSourceRange(); 11712 else 11713 Diag(Range.getBegin(), diag::err_init_capture_deduction_failure) 11714 << VN << TSI->getType() 11715 << (DeduceInit->getType().isNull() ? TSI->getType() 11716 : DeduceInit->getType()) 11717 << DeduceInit->getSourceRange(); 11718 } 11719 11720 // Warn if we deduced 'id'. 'auto' usually implies type-safety, but using 11721 // 'id' instead of a specific object type prevents most of our usual 11722 // checks. 11723 // We only want to warn outside of template instantiations, though: 11724 // inside a template, the 'id' could have come from a parameter. 11725 if (!inTemplateInstantiation() && !DefaultedAnyToId && !IsInitCapture && 11726 !DeducedType.isNull() && DeducedType->isObjCIdType()) { 11727 SourceLocation Loc = TSI->getTypeLoc().getBeginLoc(); 11728 Diag(Loc, diag::warn_auto_var_is_id) << VN << Range; 11729 } 11730 11731 return DeducedType; 11732 } 11733 11734 bool Sema::DeduceVariableDeclarationType(VarDecl *VDecl, bool DirectInit, 11735 Expr *Init) { 11736 assert(!Init || !Init->containsErrors()); 11737 QualType DeducedType = deduceVarTypeFromInitializer( 11738 VDecl, VDecl->getDeclName(), VDecl->getType(), VDecl->getTypeSourceInfo(), 11739 VDecl->getSourceRange(), DirectInit, Init); 11740 if (DeducedType.isNull()) { 11741 VDecl->setInvalidDecl(); 11742 return true; 11743 } 11744 11745 VDecl->setType(DeducedType); 11746 assert(VDecl->isLinkageValid()); 11747 11748 // In ARC, infer lifetime. 11749 if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(VDecl)) 11750 VDecl->setInvalidDecl(); 11751 11752 if (getLangOpts().OpenCL) 11753 deduceOpenCLAddressSpace(VDecl); 11754 11755 // If this is a redeclaration, check that the type we just deduced matches 11756 // the previously declared type. 11757 if (VarDecl *Old = VDecl->getPreviousDecl()) { 11758 // We never need to merge the type, because we cannot form an incomplete 11759 // array of auto, nor deduce such a type. 11760 MergeVarDeclTypes(VDecl, Old, /*MergeTypeWithPrevious*/ false); 11761 } 11762 11763 // Check the deduced type is valid for a variable declaration. 11764 CheckVariableDeclarationType(VDecl); 11765 return VDecl->isInvalidDecl(); 11766 } 11767 11768 void Sema::checkNonTrivialCUnionInInitializer(const Expr *Init, 11769 SourceLocation Loc) { 11770 if (auto *EWC = dyn_cast<ExprWithCleanups>(Init)) 11771 Init = EWC->getSubExpr(); 11772 11773 if (auto *CE = dyn_cast<ConstantExpr>(Init)) 11774 Init = CE->getSubExpr(); 11775 11776 QualType InitType = Init->getType(); 11777 assert((InitType.hasNonTrivialToPrimitiveDefaultInitializeCUnion() || 11778 InitType.hasNonTrivialToPrimitiveCopyCUnion()) && 11779 "shouldn't be called if type doesn't have a non-trivial C struct"); 11780 if (auto *ILE = dyn_cast<InitListExpr>(Init)) { 11781 for (auto I : ILE->inits()) { 11782 if (!I->getType().hasNonTrivialToPrimitiveDefaultInitializeCUnion() && 11783 !I->getType().hasNonTrivialToPrimitiveCopyCUnion()) 11784 continue; 11785 SourceLocation SL = I->getExprLoc(); 11786 checkNonTrivialCUnionInInitializer(I, SL.isValid() ? SL : Loc); 11787 } 11788 return; 11789 } 11790 11791 if (isa<ImplicitValueInitExpr>(Init)) { 11792 if (InitType.hasNonTrivialToPrimitiveDefaultInitializeCUnion()) 11793 checkNonTrivialCUnion(InitType, Loc, NTCUC_DefaultInitializedObject, 11794 NTCUK_Init); 11795 } else { 11796 // Assume all other explicit initializers involving copying some existing 11797 // object. 11798 // TODO: ignore any explicit initializers where we can guarantee 11799 // copy-elision. 11800 if (InitType.hasNonTrivialToPrimitiveCopyCUnion()) 11801 checkNonTrivialCUnion(InitType, Loc, NTCUC_CopyInit, NTCUK_Copy); 11802 } 11803 } 11804 11805 namespace { 11806 11807 bool shouldIgnoreForRecordTriviality(const FieldDecl *FD) { 11808 // Ignore unavailable fields. A field can be marked as unavailable explicitly 11809 // in the source code or implicitly by the compiler if it is in a union 11810 // defined in a system header and has non-trivial ObjC ownership 11811 // qualifications. We don't want those fields to participate in determining 11812 // whether the containing union is non-trivial. 11813 return FD->hasAttr<UnavailableAttr>(); 11814 } 11815 11816 struct DiagNonTrivalCUnionDefaultInitializeVisitor 11817 : DefaultInitializedTypeVisitor<DiagNonTrivalCUnionDefaultInitializeVisitor, 11818 void> { 11819 using Super = 11820 DefaultInitializedTypeVisitor<DiagNonTrivalCUnionDefaultInitializeVisitor, 11821 void>; 11822 11823 DiagNonTrivalCUnionDefaultInitializeVisitor( 11824 QualType OrigTy, SourceLocation OrigLoc, 11825 Sema::NonTrivialCUnionContext UseContext, Sema &S) 11826 : OrigTy(OrigTy), OrigLoc(OrigLoc), UseContext(UseContext), S(S) {} 11827 11828 void visitWithKind(QualType::PrimitiveDefaultInitializeKind PDIK, QualType QT, 11829 const FieldDecl *FD, bool InNonTrivialUnion) { 11830 if (const auto *AT = S.Context.getAsArrayType(QT)) 11831 return this->asDerived().visit(S.Context.getBaseElementType(AT), FD, 11832 InNonTrivialUnion); 11833 return Super::visitWithKind(PDIK, QT, FD, InNonTrivialUnion); 11834 } 11835 11836 void visitARCStrong(QualType QT, const FieldDecl *FD, 11837 bool InNonTrivialUnion) { 11838 if (InNonTrivialUnion) 11839 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11840 << 1 << 0 << QT << FD->getName(); 11841 } 11842 11843 void visitARCWeak(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11844 if (InNonTrivialUnion) 11845 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11846 << 1 << 0 << QT << FD->getName(); 11847 } 11848 11849 void visitStruct(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11850 const RecordDecl *RD = QT->castAs<RecordType>()->getDecl(); 11851 if (RD->isUnion()) { 11852 if (OrigLoc.isValid()) { 11853 bool IsUnion = false; 11854 if (auto *OrigRD = OrigTy->getAsRecordDecl()) 11855 IsUnion = OrigRD->isUnion(); 11856 S.Diag(OrigLoc, diag::err_non_trivial_c_union_in_invalid_context) 11857 << 0 << OrigTy << IsUnion << UseContext; 11858 // Reset OrigLoc so that this diagnostic is emitted only once. 11859 OrigLoc = SourceLocation(); 11860 } 11861 InNonTrivialUnion = true; 11862 } 11863 11864 if (InNonTrivialUnion) 11865 S.Diag(RD->getLocation(), diag::note_non_trivial_c_union) 11866 << 0 << 0 << QT.getUnqualifiedType() << ""; 11867 11868 for (const FieldDecl *FD : RD->fields()) 11869 if (!shouldIgnoreForRecordTriviality(FD)) 11870 asDerived().visit(FD->getType(), FD, InNonTrivialUnion); 11871 } 11872 11873 void visitTrivial(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) {} 11874 11875 // The non-trivial C union type or the struct/union type that contains a 11876 // non-trivial C union. 11877 QualType OrigTy; 11878 SourceLocation OrigLoc; 11879 Sema::NonTrivialCUnionContext UseContext; 11880 Sema &S; 11881 }; 11882 11883 struct DiagNonTrivalCUnionDestructedTypeVisitor 11884 : DestructedTypeVisitor<DiagNonTrivalCUnionDestructedTypeVisitor, void> { 11885 using Super = 11886 DestructedTypeVisitor<DiagNonTrivalCUnionDestructedTypeVisitor, void>; 11887 11888 DiagNonTrivalCUnionDestructedTypeVisitor( 11889 QualType OrigTy, SourceLocation OrigLoc, 11890 Sema::NonTrivialCUnionContext UseContext, Sema &S) 11891 : OrigTy(OrigTy), OrigLoc(OrigLoc), UseContext(UseContext), S(S) {} 11892 11893 void visitWithKind(QualType::DestructionKind DK, QualType QT, 11894 const FieldDecl *FD, bool InNonTrivialUnion) { 11895 if (const auto *AT = S.Context.getAsArrayType(QT)) 11896 return this->asDerived().visit(S.Context.getBaseElementType(AT), FD, 11897 InNonTrivialUnion); 11898 return Super::visitWithKind(DK, QT, FD, InNonTrivialUnion); 11899 } 11900 11901 void visitARCStrong(QualType QT, const FieldDecl *FD, 11902 bool InNonTrivialUnion) { 11903 if (InNonTrivialUnion) 11904 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11905 << 1 << 1 << QT << FD->getName(); 11906 } 11907 11908 void visitARCWeak(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11909 if (InNonTrivialUnion) 11910 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11911 << 1 << 1 << QT << FD->getName(); 11912 } 11913 11914 void visitStruct(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11915 const RecordDecl *RD = QT->castAs<RecordType>()->getDecl(); 11916 if (RD->isUnion()) { 11917 if (OrigLoc.isValid()) { 11918 bool IsUnion = false; 11919 if (auto *OrigRD = OrigTy->getAsRecordDecl()) 11920 IsUnion = OrigRD->isUnion(); 11921 S.Diag(OrigLoc, diag::err_non_trivial_c_union_in_invalid_context) 11922 << 1 << OrigTy << IsUnion << UseContext; 11923 // Reset OrigLoc so that this diagnostic is emitted only once. 11924 OrigLoc = SourceLocation(); 11925 } 11926 InNonTrivialUnion = true; 11927 } 11928 11929 if (InNonTrivialUnion) 11930 S.Diag(RD->getLocation(), diag::note_non_trivial_c_union) 11931 << 0 << 1 << QT.getUnqualifiedType() << ""; 11932 11933 for (const FieldDecl *FD : RD->fields()) 11934 if (!shouldIgnoreForRecordTriviality(FD)) 11935 asDerived().visit(FD->getType(), FD, InNonTrivialUnion); 11936 } 11937 11938 void visitTrivial(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) {} 11939 void visitCXXDestructor(QualType QT, const FieldDecl *FD, 11940 bool InNonTrivialUnion) {} 11941 11942 // The non-trivial C union type or the struct/union type that contains a 11943 // non-trivial C union. 11944 QualType OrigTy; 11945 SourceLocation OrigLoc; 11946 Sema::NonTrivialCUnionContext UseContext; 11947 Sema &S; 11948 }; 11949 11950 struct DiagNonTrivalCUnionCopyVisitor 11951 : CopiedTypeVisitor<DiagNonTrivalCUnionCopyVisitor, false, void> { 11952 using Super = CopiedTypeVisitor<DiagNonTrivalCUnionCopyVisitor, false, void>; 11953 11954 DiagNonTrivalCUnionCopyVisitor(QualType OrigTy, SourceLocation OrigLoc, 11955 Sema::NonTrivialCUnionContext UseContext, 11956 Sema &S) 11957 : OrigTy(OrigTy), OrigLoc(OrigLoc), UseContext(UseContext), S(S) {} 11958 11959 void visitWithKind(QualType::PrimitiveCopyKind PCK, QualType QT, 11960 const FieldDecl *FD, bool InNonTrivialUnion) { 11961 if (const auto *AT = S.Context.getAsArrayType(QT)) 11962 return this->asDerived().visit(S.Context.getBaseElementType(AT), FD, 11963 InNonTrivialUnion); 11964 return Super::visitWithKind(PCK, QT, FD, InNonTrivialUnion); 11965 } 11966 11967 void visitARCStrong(QualType QT, const FieldDecl *FD, 11968 bool InNonTrivialUnion) { 11969 if (InNonTrivialUnion) 11970 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11971 << 1 << 2 << QT << FD->getName(); 11972 } 11973 11974 void visitARCWeak(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11975 if (InNonTrivialUnion) 11976 S.Diag(FD->getLocation(), diag::note_non_trivial_c_union) 11977 << 1 << 2 << QT << FD->getName(); 11978 } 11979 11980 void visitStruct(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) { 11981 const RecordDecl *RD = QT->castAs<RecordType>()->getDecl(); 11982 if (RD->isUnion()) { 11983 if (OrigLoc.isValid()) { 11984 bool IsUnion = false; 11985 if (auto *OrigRD = OrigTy->getAsRecordDecl()) 11986 IsUnion = OrigRD->isUnion(); 11987 S.Diag(OrigLoc, diag::err_non_trivial_c_union_in_invalid_context) 11988 << 2 << OrigTy << IsUnion << UseContext; 11989 // Reset OrigLoc so that this diagnostic is emitted only once. 11990 OrigLoc = SourceLocation(); 11991 } 11992 InNonTrivialUnion = true; 11993 } 11994 11995 if (InNonTrivialUnion) 11996 S.Diag(RD->getLocation(), diag::note_non_trivial_c_union) 11997 << 0 << 2 << QT.getUnqualifiedType() << ""; 11998 11999 for (const FieldDecl *FD : RD->fields()) 12000 if (!shouldIgnoreForRecordTriviality(FD)) 12001 asDerived().visit(FD->getType(), FD, InNonTrivialUnion); 12002 } 12003 12004 void preVisit(QualType::PrimitiveCopyKind PCK, QualType QT, 12005 const FieldDecl *FD, bool InNonTrivialUnion) {} 12006 void visitTrivial(QualType QT, const FieldDecl *FD, bool InNonTrivialUnion) {} 12007 void visitVolatileTrivial(QualType QT, const FieldDecl *FD, 12008 bool InNonTrivialUnion) {} 12009 12010 // The non-trivial C union type or the struct/union type that contains a 12011 // non-trivial C union. 12012 QualType OrigTy; 12013 SourceLocation OrigLoc; 12014 Sema::NonTrivialCUnionContext UseContext; 12015 Sema &S; 12016 }; 12017 12018 } // namespace 12019 12020 void Sema::checkNonTrivialCUnion(QualType QT, SourceLocation Loc, 12021 NonTrivialCUnionContext UseContext, 12022 unsigned NonTrivialKind) { 12023 assert((QT.hasNonTrivialToPrimitiveDefaultInitializeCUnion() || 12024 QT.hasNonTrivialToPrimitiveDestructCUnion() || 12025 QT.hasNonTrivialToPrimitiveCopyCUnion()) && 12026 "shouldn't be called if type doesn't have a non-trivial C union"); 12027 12028 if ((NonTrivialKind & NTCUK_Init) && 12029 QT.hasNonTrivialToPrimitiveDefaultInitializeCUnion()) 12030 DiagNonTrivalCUnionDefaultInitializeVisitor(QT, Loc, UseContext, *this) 12031 .visit(QT, nullptr, false); 12032 if ((NonTrivialKind & NTCUK_Destruct) && 12033 QT.hasNonTrivialToPrimitiveDestructCUnion()) 12034 DiagNonTrivalCUnionDestructedTypeVisitor(QT, Loc, UseContext, *this) 12035 .visit(QT, nullptr, false); 12036 if ((NonTrivialKind & NTCUK_Copy) && QT.hasNonTrivialToPrimitiveCopyCUnion()) 12037 DiagNonTrivalCUnionCopyVisitor(QT, Loc, UseContext, *this) 12038 .visit(QT, nullptr, false); 12039 } 12040 12041 /// AddInitializerToDecl - Adds the initializer Init to the 12042 /// declaration dcl. If DirectInit is true, this is C++ direct 12043 /// initialization rather than copy initialization. 12044 void Sema::AddInitializerToDecl(Decl *RealDecl, Expr *Init, bool DirectInit) { 12045 // If there is no declaration, there was an error parsing it. Just ignore 12046 // the initializer. 12047 if (!RealDecl || RealDecl->isInvalidDecl()) { 12048 CorrectDelayedTyposInExpr(Init, dyn_cast_or_null<VarDecl>(RealDecl)); 12049 return; 12050 } 12051 12052 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(RealDecl)) { 12053 // Pure-specifiers are handled in ActOnPureSpecifier. 12054 Diag(Method->getLocation(), diag::err_member_function_initialization) 12055 << Method->getDeclName() << Init->getSourceRange(); 12056 Method->setInvalidDecl(); 12057 return; 12058 } 12059 12060 VarDecl *VDecl = dyn_cast<VarDecl>(RealDecl); 12061 if (!VDecl) { 12062 assert(!isa<FieldDecl>(RealDecl) && "field init shouldn't get here"); 12063 Diag(RealDecl->getLocation(), diag::err_illegal_initializer); 12064 RealDecl->setInvalidDecl(); 12065 return; 12066 } 12067 12068 // C++11 [decl.spec.auto]p6. Deduce the type which 'auto' stands in for. 12069 if (VDecl->getType()->isUndeducedType()) { 12070 // Attempt typo correction early so that the type of the init expression can 12071 // be deduced based on the chosen correction if the original init contains a 12072 // TypoExpr. 12073 ExprResult Res = CorrectDelayedTyposInExpr(Init, VDecl); 12074 if (!Res.isUsable()) { 12075 // There are unresolved typos in Init, just drop them. 12076 // FIXME: improve the recovery strategy to preserve the Init. 12077 RealDecl->setInvalidDecl(); 12078 return; 12079 } 12080 if (Res.get()->containsErrors()) { 12081 // Invalidate the decl as we don't know the type for recovery-expr yet. 12082 RealDecl->setInvalidDecl(); 12083 VDecl->setInit(Res.get()); 12084 return; 12085 } 12086 Init = Res.get(); 12087 12088 if (DeduceVariableDeclarationType(VDecl, DirectInit, Init)) 12089 return; 12090 } 12091 12092 // dllimport cannot be used on variable definitions. 12093 if (VDecl->hasAttr<DLLImportAttr>() && !VDecl->isStaticDataMember()) { 12094 Diag(VDecl->getLocation(), diag::err_attribute_dllimport_data_definition); 12095 VDecl->setInvalidDecl(); 12096 return; 12097 } 12098 12099 if (VDecl->isLocalVarDecl() && VDecl->hasExternalStorage()) { 12100 // C99 6.7.8p5. C++ has no such restriction, but that is a defect. 12101 Diag(VDecl->getLocation(), diag::err_block_extern_cant_init); 12102 VDecl->setInvalidDecl(); 12103 return; 12104 } 12105 12106 if (!VDecl->getType()->isDependentType()) { 12107 // A definition must end up with a complete type, which means it must be 12108 // complete with the restriction that an array type might be completed by 12109 // the initializer; note that later code assumes this restriction. 12110 QualType BaseDeclType = VDecl->getType(); 12111 if (const ArrayType *Array = Context.getAsIncompleteArrayType(BaseDeclType)) 12112 BaseDeclType = Array->getElementType(); 12113 if (RequireCompleteType(VDecl->getLocation(), BaseDeclType, 12114 diag::err_typecheck_decl_incomplete_type)) { 12115 RealDecl->setInvalidDecl(); 12116 return; 12117 } 12118 12119 // The variable can not have an abstract class type. 12120 if (RequireNonAbstractType(VDecl->getLocation(), VDecl->getType(), 12121 diag::err_abstract_type_in_decl, 12122 AbstractVariableType)) 12123 VDecl->setInvalidDecl(); 12124 } 12125 12126 // If adding the initializer will turn this declaration into a definition, 12127 // and we already have a definition for this variable, diagnose or otherwise 12128 // handle the situation. 12129 VarDecl *Def; 12130 if ((Def = VDecl->getDefinition()) && Def != VDecl && 12131 (!VDecl->isStaticDataMember() || VDecl->isOutOfLine()) && 12132 !VDecl->isThisDeclarationADemotedDefinition() && 12133 checkVarDeclRedefinition(Def, VDecl)) 12134 return; 12135 12136 if (getLangOpts().CPlusPlus) { 12137 // C++ [class.static.data]p4 12138 // If a static data member is of const integral or const 12139 // enumeration type, its declaration in the class definition can 12140 // specify a constant-initializer which shall be an integral 12141 // constant expression (5.19). In that case, the member can appear 12142 // in integral constant expressions. The member shall still be 12143 // defined in a namespace scope if it is used in the program and the 12144 // namespace scope definition shall not contain an initializer. 12145 // 12146 // We already performed a redefinition check above, but for static 12147 // data members we also need to check whether there was an in-class 12148 // declaration with an initializer. 12149 if (VDecl->isStaticDataMember() && VDecl->getCanonicalDecl()->hasInit()) { 12150 Diag(Init->getExprLoc(), diag::err_static_data_member_reinitialization) 12151 << VDecl->getDeclName(); 12152 Diag(VDecl->getCanonicalDecl()->getInit()->getExprLoc(), 12153 diag::note_previous_initializer) 12154 << 0; 12155 return; 12156 } 12157 12158 if (VDecl->hasLocalStorage()) 12159 setFunctionHasBranchProtectedScope(); 12160 12161 if (DiagnoseUnexpandedParameterPack(Init, UPPC_Initializer)) { 12162 VDecl->setInvalidDecl(); 12163 return; 12164 } 12165 } 12166 12167 // OpenCL 1.1 6.5.2: "Variables allocated in the __local address space inside 12168 // a kernel function cannot be initialized." 12169 if (VDecl->getType().getAddressSpace() == LangAS::opencl_local) { 12170 Diag(VDecl->getLocation(), diag::err_local_cant_init); 12171 VDecl->setInvalidDecl(); 12172 return; 12173 } 12174 12175 // The LoaderUninitialized attribute acts as a definition (of undef). 12176 if (VDecl->hasAttr<LoaderUninitializedAttr>()) { 12177 Diag(VDecl->getLocation(), diag::err_loader_uninitialized_cant_init); 12178 VDecl->setInvalidDecl(); 12179 return; 12180 } 12181 12182 // Get the decls type and save a reference for later, since 12183 // CheckInitializerTypes may change it. 12184 QualType DclT = VDecl->getType(), SavT = DclT; 12185 12186 // Expressions default to 'id' when we're in a debugger 12187 // and we are assigning it to a variable of Objective-C pointer type. 12188 if (getLangOpts().DebuggerCastResultToId && DclT->isObjCObjectPointerType() && 12189 Init->getType() == Context.UnknownAnyTy) { 12190 ExprResult Result = forceUnknownAnyToType(Init, Context.getObjCIdType()); 12191 if (Result.isInvalid()) { 12192 VDecl->setInvalidDecl(); 12193 return; 12194 } 12195 Init = Result.get(); 12196 } 12197 12198 // Perform the initialization. 12199 ParenListExpr *CXXDirectInit = dyn_cast<ParenListExpr>(Init); 12200 if (!VDecl->isInvalidDecl()) { 12201 InitializedEntity Entity = InitializedEntity::InitializeVariable(VDecl); 12202 InitializationKind Kind = InitializationKind::CreateForInit( 12203 VDecl->getLocation(), DirectInit, Init); 12204 12205 MultiExprArg Args = Init; 12206 if (CXXDirectInit) 12207 Args = MultiExprArg(CXXDirectInit->getExprs(), 12208 CXXDirectInit->getNumExprs()); 12209 12210 // Try to correct any TypoExprs in the initialization arguments. 12211 for (size_t Idx = 0; Idx < Args.size(); ++Idx) { 12212 ExprResult Res = CorrectDelayedTyposInExpr( 12213 Args[Idx], VDecl, /*RecoverUncorrectedTypos=*/true, 12214 [this, Entity, Kind](Expr *E) { 12215 InitializationSequence Init(*this, Entity, Kind, MultiExprArg(E)); 12216 return Init.Failed() ? ExprError() : E; 12217 }); 12218 if (Res.isInvalid()) { 12219 VDecl->setInvalidDecl(); 12220 } else if (Res.get() != Args[Idx]) { 12221 Args[Idx] = Res.get(); 12222 } 12223 } 12224 if (VDecl->isInvalidDecl()) 12225 return; 12226 12227 InitializationSequence InitSeq(*this, Entity, Kind, Args, 12228 /*TopLevelOfInitList=*/false, 12229 /*TreatUnavailableAsInvalid=*/false); 12230 ExprResult Result = InitSeq.Perform(*this, Entity, Kind, Args, &DclT); 12231 if (Result.isInvalid()) { 12232 // If the provied initializer fails to initialize the var decl, 12233 // we attach a recovery expr for better recovery. 12234 auto RecoveryExpr = 12235 CreateRecoveryExpr(Init->getBeginLoc(), Init->getEndLoc(), Args); 12236 if (RecoveryExpr.get()) 12237 VDecl->setInit(RecoveryExpr.get()); 12238 return; 12239 } 12240 12241 Init = Result.getAs<Expr>(); 12242 } 12243 12244 // Check for self-references within variable initializers. 12245 // Variables declared within a function/method body (except for references) 12246 // are handled by a dataflow analysis. 12247 // This is undefined behavior in C++, but valid in C. 12248 if (getLangOpts().CPlusPlus) { 12249 if (!VDecl->hasLocalStorage() || VDecl->getType()->isRecordType() || 12250 VDecl->getType()->isReferenceType()) { 12251 CheckSelfReference(*this, RealDecl, Init, DirectInit); 12252 } 12253 } 12254 12255 // If the type changed, it means we had an incomplete type that was 12256 // completed by the initializer. For example: 12257 // int ary[] = { 1, 3, 5 }; 12258 // "ary" transitions from an IncompleteArrayType to a ConstantArrayType. 12259 if (!VDecl->isInvalidDecl() && (DclT != SavT)) 12260 VDecl->setType(DclT); 12261 12262 if (!VDecl->isInvalidDecl()) { 12263 checkUnsafeAssigns(VDecl->getLocation(), VDecl->getType(), Init); 12264 12265 if (VDecl->hasAttr<BlocksAttr>()) 12266 checkRetainCycles(VDecl, Init); 12267 12268 // It is safe to assign a weak reference into a strong variable. 12269 // Although this code can still have problems: 12270 // id x = self.weakProp; 12271 // id y = self.weakProp; 12272 // we do not warn to warn spuriously when 'x' and 'y' are on separate 12273 // paths through the function. This should be revisited if 12274 // -Wrepeated-use-of-weak is made flow-sensitive. 12275 if (FunctionScopeInfo *FSI = getCurFunction()) 12276 if ((VDecl->getType().getObjCLifetime() == Qualifiers::OCL_Strong || 12277 VDecl->getType().isNonWeakInMRRWithObjCWeak(Context)) && 12278 !Diags.isIgnored(diag::warn_arc_repeated_use_of_weak, 12279 Init->getBeginLoc())) 12280 FSI->markSafeWeakUse(Init); 12281 } 12282 12283 // The initialization is usually a full-expression. 12284 // 12285 // FIXME: If this is a braced initialization of an aggregate, it is not 12286 // an expression, and each individual field initializer is a separate 12287 // full-expression. For instance, in: 12288 // 12289 // struct Temp { ~Temp(); }; 12290 // struct S { S(Temp); }; 12291 // struct T { S a, b; } t = { Temp(), Temp() } 12292 // 12293 // we should destroy the first Temp before constructing the second. 12294 ExprResult Result = 12295 ActOnFinishFullExpr(Init, VDecl->getLocation(), 12296 /*DiscardedValue*/ false, VDecl->isConstexpr()); 12297 if (Result.isInvalid()) { 12298 VDecl->setInvalidDecl(); 12299 return; 12300 } 12301 Init = Result.get(); 12302 12303 // Attach the initializer to the decl. 12304 VDecl->setInit(Init); 12305 12306 if (VDecl->isLocalVarDecl()) { 12307 // Don't check the initializer if the declaration is malformed. 12308 if (VDecl->isInvalidDecl()) { 12309 // do nothing 12310 12311 // OpenCL v1.2 s6.5.3: __constant locals must be constant-initialized. 12312 // This is true even in C++ for OpenCL. 12313 } else if (VDecl->getType().getAddressSpace() == LangAS::opencl_constant) { 12314 CheckForConstantInitializer(Init, DclT); 12315 12316 // Otherwise, C++ does not restrict the initializer. 12317 } else if (getLangOpts().CPlusPlus) { 12318 // do nothing 12319 12320 // C99 6.7.8p4: All the expressions in an initializer for an object that has 12321 // static storage duration shall be constant expressions or string literals. 12322 } else if (VDecl->getStorageClass() == SC_Static) { 12323 CheckForConstantInitializer(Init, DclT); 12324 12325 // C89 is stricter than C99 for aggregate initializers. 12326 // C89 6.5.7p3: All the expressions [...] in an initializer list 12327 // for an object that has aggregate or union type shall be 12328 // constant expressions. 12329 } else if (!getLangOpts().C99 && VDecl->getType()->isAggregateType() && 12330 isa<InitListExpr>(Init)) { 12331 const Expr *Culprit; 12332 if (!Init->isConstantInitializer(Context, false, &Culprit)) { 12333 Diag(Culprit->getExprLoc(), 12334 diag::ext_aggregate_init_not_constant) 12335 << Culprit->getSourceRange(); 12336 } 12337 } 12338 12339 if (auto *E = dyn_cast<ExprWithCleanups>(Init)) 12340 if (auto *BE = dyn_cast<BlockExpr>(E->getSubExpr()->IgnoreParens())) 12341 if (VDecl->hasLocalStorage()) 12342 BE->getBlockDecl()->setCanAvoidCopyToHeap(); 12343 } else if (VDecl->isStaticDataMember() && !VDecl->isInline() && 12344 VDecl->getLexicalDeclContext()->isRecord()) { 12345 // This is an in-class initialization for a static data member, e.g., 12346 // 12347 // struct S { 12348 // static const int value = 17; 12349 // }; 12350 12351 // C++ [class.mem]p4: 12352 // A member-declarator can contain a constant-initializer only 12353 // if it declares a static member (9.4) of const integral or 12354 // const enumeration type, see 9.4.2. 12355 // 12356 // C++11 [class.static.data]p3: 12357 // If a non-volatile non-inline const static data member is of integral 12358 // or enumeration type, its declaration in the class definition can 12359 // specify a brace-or-equal-initializer in which every initializer-clause 12360 // that is an assignment-expression is a constant expression. A static 12361 // data member of literal type can be declared in the class definition 12362 // with the constexpr specifier; if so, its declaration shall specify a 12363 // brace-or-equal-initializer in which every initializer-clause that is 12364 // an assignment-expression is a constant expression. 12365 12366 // Do nothing on dependent types. 12367 if (DclT->isDependentType()) { 12368 12369 // Allow any 'static constexpr' members, whether or not they are of literal 12370 // type. We separately check that every constexpr variable is of literal 12371 // type. 12372 } else if (VDecl->isConstexpr()) { 12373 12374 // Require constness. 12375 } else if (!DclT.isConstQualified()) { 12376 Diag(VDecl->getLocation(), diag::err_in_class_initializer_non_const) 12377 << Init->getSourceRange(); 12378 VDecl->setInvalidDecl(); 12379 12380 // We allow integer constant expressions in all cases. 12381 } else if (DclT->isIntegralOrEnumerationType()) { 12382 // Check whether the expression is a constant expression. 12383 SourceLocation Loc; 12384 if (getLangOpts().CPlusPlus11 && DclT.isVolatileQualified()) 12385 // In C++11, a non-constexpr const static data member with an 12386 // in-class initializer cannot be volatile. 12387 Diag(VDecl->getLocation(), diag::err_in_class_initializer_volatile); 12388 else if (Init->isValueDependent()) 12389 ; // Nothing to check. 12390 else if (Init->isIntegerConstantExpr(Context, &Loc)) 12391 ; // Ok, it's an ICE! 12392 else if (Init->getType()->isScopedEnumeralType() && 12393 Init->isCXX11ConstantExpr(Context)) 12394 ; // Ok, it is a scoped-enum constant expression. 12395 else if (Init->isEvaluatable(Context)) { 12396 // If we can constant fold the initializer through heroics, accept it, 12397 // but report this as a use of an extension for -pedantic. 12398 Diag(Loc, diag::ext_in_class_initializer_non_constant) 12399 << Init->getSourceRange(); 12400 } else { 12401 // Otherwise, this is some crazy unknown case. Report the issue at the 12402 // location provided by the isIntegerConstantExpr failed check. 12403 Diag(Loc, diag::err_in_class_initializer_non_constant) 12404 << Init->getSourceRange(); 12405 VDecl->setInvalidDecl(); 12406 } 12407 12408 // We allow foldable floating-point constants as an extension. 12409 } else if (DclT->isFloatingType()) { // also permits complex, which is ok 12410 // In C++98, this is a GNU extension. In C++11, it is not, but we support 12411 // it anyway and provide a fixit to add the 'constexpr'. 12412 if (getLangOpts().CPlusPlus11) { 12413 Diag(VDecl->getLocation(), 12414 diag::ext_in_class_initializer_float_type_cxx11) 12415 << DclT << Init->getSourceRange(); 12416 Diag(VDecl->getBeginLoc(), 12417 diag::note_in_class_initializer_float_type_cxx11) 12418 << FixItHint::CreateInsertion(VDecl->getBeginLoc(), "constexpr "); 12419 } else { 12420 Diag(VDecl->getLocation(), diag::ext_in_class_initializer_float_type) 12421 << DclT << Init->getSourceRange(); 12422 12423 if (!Init->isValueDependent() && !Init->isEvaluatable(Context)) { 12424 Diag(Init->getExprLoc(), diag::err_in_class_initializer_non_constant) 12425 << Init->getSourceRange(); 12426 VDecl->setInvalidDecl(); 12427 } 12428 } 12429 12430 // Suggest adding 'constexpr' in C++11 for literal types. 12431 } else if (getLangOpts().CPlusPlus11 && DclT->isLiteralType(Context)) { 12432 Diag(VDecl->getLocation(), diag::err_in_class_initializer_literal_type) 12433 << DclT << Init->getSourceRange() 12434 << FixItHint::CreateInsertion(VDecl->getBeginLoc(), "constexpr "); 12435 VDecl->setConstexpr(true); 12436 12437 } else { 12438 Diag(VDecl->getLocation(), diag::err_in_class_initializer_bad_type) 12439 << DclT << Init->getSourceRange(); 12440 VDecl->setInvalidDecl(); 12441 } 12442 } else if (VDecl->isFileVarDecl()) { 12443 // In C, extern is typically used to avoid tentative definitions when 12444 // declaring variables in headers, but adding an intializer makes it a 12445 // definition. This is somewhat confusing, so GCC and Clang both warn on it. 12446 // In C++, extern is often used to give implictly static const variables 12447 // external linkage, so don't warn in that case. If selectany is present, 12448 // this might be header code intended for C and C++ inclusion, so apply the 12449 // C++ rules. 12450 if (VDecl->getStorageClass() == SC_Extern && 12451 ((!getLangOpts().CPlusPlus && !VDecl->hasAttr<SelectAnyAttr>()) || 12452 !Context.getBaseElementType(VDecl->getType()).isConstQualified()) && 12453 !(getLangOpts().CPlusPlus && VDecl->isExternC()) && 12454 !isTemplateInstantiation(VDecl->getTemplateSpecializationKind())) 12455 Diag(VDecl->getLocation(), diag::warn_extern_init); 12456 12457 // In Microsoft C++ mode, a const variable defined in namespace scope has 12458 // external linkage by default if the variable is declared with 12459 // __declspec(dllexport). 12460 if (Context.getTargetInfo().getCXXABI().isMicrosoft() && 12461 getLangOpts().CPlusPlus && VDecl->getType().isConstQualified() && 12462 VDecl->hasAttr<DLLExportAttr>() && VDecl->getDefinition()) 12463 VDecl->setStorageClass(SC_Extern); 12464 12465 // C99 6.7.8p4. All file scoped initializers need to be constant. 12466 if (!getLangOpts().CPlusPlus && !VDecl->isInvalidDecl()) 12467 CheckForConstantInitializer(Init, DclT); 12468 } 12469 12470 QualType InitType = Init->getType(); 12471 if (!InitType.isNull() && 12472 (InitType.hasNonTrivialToPrimitiveDefaultInitializeCUnion() || 12473 InitType.hasNonTrivialToPrimitiveCopyCUnion())) 12474 checkNonTrivialCUnionInInitializer(Init, Init->getExprLoc()); 12475 12476 // We will represent direct-initialization similarly to copy-initialization: 12477 // int x(1); -as-> int x = 1; 12478 // ClassType x(a,b,c); -as-> ClassType x = ClassType(a,b,c); 12479 // 12480 // Clients that want to distinguish between the two forms, can check for 12481 // direct initializer using VarDecl::getInitStyle(). 12482 // A major benefit is that clients that don't particularly care about which 12483 // exactly form was it (like the CodeGen) can handle both cases without 12484 // special case code. 12485 12486 // C++ 8.5p11: 12487 // The form of initialization (using parentheses or '=') is generally 12488 // insignificant, but does matter when the entity being initialized has a 12489 // class type. 12490 if (CXXDirectInit) { 12491 assert(DirectInit && "Call-style initializer must be direct init."); 12492 VDecl->setInitStyle(VarDecl::CallInit); 12493 } else if (DirectInit) { 12494 // This must be list-initialization. No other way is direct-initialization. 12495 VDecl->setInitStyle(VarDecl::ListInit); 12496 } 12497 12498 if (LangOpts.OpenMP && VDecl->isFileVarDecl()) 12499 DeclsToCheckForDeferredDiags.push_back(VDecl); 12500 CheckCompleteVariableDeclaration(VDecl); 12501 } 12502 12503 /// ActOnInitializerError - Given that there was an error parsing an 12504 /// initializer for the given declaration, try to return to some form 12505 /// of sanity. 12506 void Sema::ActOnInitializerError(Decl *D) { 12507 // Our main concern here is re-establishing invariants like "a 12508 // variable's type is either dependent or complete". 12509 if (!D || D->isInvalidDecl()) return; 12510 12511 VarDecl *VD = dyn_cast<VarDecl>(D); 12512 if (!VD) return; 12513 12514 // Bindings are not usable if we can't make sense of the initializer. 12515 if (auto *DD = dyn_cast<DecompositionDecl>(D)) 12516 for (auto *BD : DD->bindings()) 12517 BD->setInvalidDecl(); 12518 12519 // Auto types are meaningless if we can't make sense of the initializer. 12520 if (VD->getType()->isUndeducedType()) { 12521 D->setInvalidDecl(); 12522 return; 12523 } 12524 12525 QualType Ty = VD->getType(); 12526 if (Ty->isDependentType()) return; 12527 12528 // Require a complete type. 12529 if (RequireCompleteType(VD->getLocation(), 12530 Context.getBaseElementType(Ty), 12531 diag::err_typecheck_decl_incomplete_type)) { 12532 VD->setInvalidDecl(); 12533 return; 12534 } 12535 12536 // Require a non-abstract type. 12537 if (RequireNonAbstractType(VD->getLocation(), Ty, 12538 diag::err_abstract_type_in_decl, 12539 AbstractVariableType)) { 12540 VD->setInvalidDecl(); 12541 return; 12542 } 12543 12544 // Don't bother complaining about constructors or destructors, 12545 // though. 12546 } 12547 12548 void Sema::ActOnUninitializedDecl(Decl *RealDecl) { 12549 // If there is no declaration, there was an error parsing it. Just ignore it. 12550 if (!RealDecl) 12551 return; 12552 12553 if (VarDecl *Var = dyn_cast<VarDecl>(RealDecl)) { 12554 QualType Type = Var->getType(); 12555 12556 // C++1z [dcl.dcl]p1 grammar implies that an initializer is mandatory. 12557 if (isa<DecompositionDecl>(RealDecl)) { 12558 Diag(Var->getLocation(), diag::err_decomp_decl_requires_init) << Var; 12559 Var->setInvalidDecl(); 12560 return; 12561 } 12562 12563 if (Type->isUndeducedType() && 12564 DeduceVariableDeclarationType(Var, false, nullptr)) 12565 return; 12566 12567 // C++11 [class.static.data]p3: A static data member can be declared with 12568 // the constexpr specifier; if so, its declaration shall specify 12569 // a brace-or-equal-initializer. 12570 // C++11 [dcl.constexpr]p1: The constexpr specifier shall be applied only to 12571 // the definition of a variable [...] or the declaration of a static data 12572 // member. 12573 if (Var->isConstexpr() && !Var->isThisDeclarationADefinition() && 12574 !Var->isThisDeclarationADemotedDefinition()) { 12575 if (Var->isStaticDataMember()) { 12576 // C++1z removes the relevant rule; the in-class declaration is always 12577 // a definition there. 12578 if (!getLangOpts().CPlusPlus17 && 12579 !Context.getTargetInfo().getCXXABI().isMicrosoft()) { 12580 Diag(Var->getLocation(), 12581 diag::err_constexpr_static_mem_var_requires_init) 12582 << Var; 12583 Var->setInvalidDecl(); 12584 return; 12585 } 12586 } else { 12587 Diag(Var->getLocation(), diag::err_invalid_constexpr_var_decl); 12588 Var->setInvalidDecl(); 12589 return; 12590 } 12591 } 12592 12593 // OpenCL v1.1 s6.5.3: variables declared in the constant address space must 12594 // be initialized. 12595 if (!Var->isInvalidDecl() && 12596 Var->getType().getAddressSpace() == LangAS::opencl_constant && 12597 Var->getStorageClass() != SC_Extern && !Var->getInit()) { 12598 Diag(Var->getLocation(), diag::err_opencl_constant_no_init); 12599 Var->setInvalidDecl(); 12600 return; 12601 } 12602 12603 if (!Var->isInvalidDecl() && RealDecl->hasAttr<LoaderUninitializedAttr>()) { 12604 if (Var->getStorageClass() == SC_Extern) { 12605 Diag(Var->getLocation(), diag::err_loader_uninitialized_extern_decl) 12606 << Var; 12607 Var->setInvalidDecl(); 12608 return; 12609 } 12610 if (RequireCompleteType(Var->getLocation(), Var->getType(), 12611 diag::err_typecheck_decl_incomplete_type)) { 12612 Var->setInvalidDecl(); 12613 return; 12614 } 12615 if (CXXRecordDecl *RD = Var->getType()->getAsCXXRecordDecl()) { 12616 if (!RD->hasTrivialDefaultConstructor()) { 12617 Diag(Var->getLocation(), diag::err_loader_uninitialized_trivial_ctor); 12618 Var->setInvalidDecl(); 12619 return; 12620 } 12621 } 12622 } 12623 12624 VarDecl::DefinitionKind DefKind = Var->isThisDeclarationADefinition(); 12625 if (!Var->isInvalidDecl() && DefKind != VarDecl::DeclarationOnly && 12626 Var->getType().hasNonTrivialToPrimitiveDefaultInitializeCUnion()) 12627 checkNonTrivialCUnion(Var->getType(), Var->getLocation(), 12628 NTCUC_DefaultInitializedObject, NTCUK_Init); 12629 12630 12631 switch (DefKind) { 12632 case VarDecl::Definition: 12633 if (!Var->isStaticDataMember() || !Var->getAnyInitializer()) 12634 break; 12635 12636 // We have an out-of-line definition of a static data member 12637 // that has an in-class initializer, so we type-check this like 12638 // a declaration. 12639 // 12640 LLVM_FALLTHROUGH; 12641 12642 case VarDecl::DeclarationOnly: 12643 // It's only a declaration. 12644 12645 // Block scope. C99 6.7p7: If an identifier for an object is 12646 // declared with no linkage (C99 6.2.2p6), the type for the 12647 // object shall be complete. 12648 if (!Type->isDependentType() && Var->isLocalVarDecl() && 12649 !Var->hasLinkage() && !Var->isInvalidDecl() && 12650 RequireCompleteType(Var->getLocation(), Type, 12651 diag::err_typecheck_decl_incomplete_type)) 12652 Var->setInvalidDecl(); 12653 12654 // Make sure that the type is not abstract. 12655 if (!Type->isDependentType() && !Var->isInvalidDecl() && 12656 RequireNonAbstractType(Var->getLocation(), Type, 12657 diag::err_abstract_type_in_decl, 12658 AbstractVariableType)) 12659 Var->setInvalidDecl(); 12660 if (!Type->isDependentType() && !Var->isInvalidDecl() && 12661 Var->getStorageClass() == SC_PrivateExtern) { 12662 Diag(Var->getLocation(), diag::warn_private_extern); 12663 Diag(Var->getLocation(), diag::note_private_extern); 12664 } 12665 12666 if (Context.getTargetInfo().allowDebugInfoForExternalVar() && 12667 !Var->isInvalidDecl() && !getLangOpts().CPlusPlus) 12668 ExternalDeclarations.push_back(Var); 12669 12670 return; 12671 12672 case VarDecl::TentativeDefinition: 12673 // File scope. C99 6.9.2p2: A declaration of an identifier for an 12674 // object that has file scope without an initializer, and without a 12675 // storage-class specifier or with the storage-class specifier "static", 12676 // constitutes a tentative definition. Note: A tentative definition with 12677 // external linkage is valid (C99 6.2.2p5). 12678 if (!Var->isInvalidDecl()) { 12679 if (const IncompleteArrayType *ArrayT 12680 = Context.getAsIncompleteArrayType(Type)) { 12681 if (RequireCompleteSizedType( 12682 Var->getLocation(), ArrayT->getElementType(), 12683 diag::err_array_incomplete_or_sizeless_type)) 12684 Var->setInvalidDecl(); 12685 } else if (Var->getStorageClass() == SC_Static) { 12686 // C99 6.9.2p3: If the declaration of an identifier for an object is 12687 // a tentative definition and has internal linkage (C99 6.2.2p3), the 12688 // declared type shall not be an incomplete type. 12689 // NOTE: code such as the following 12690 // static struct s; 12691 // struct s { int a; }; 12692 // is accepted by gcc. Hence here we issue a warning instead of 12693 // an error and we do not invalidate the static declaration. 12694 // NOTE: to avoid multiple warnings, only check the first declaration. 12695 if (Var->isFirstDecl()) 12696 RequireCompleteType(Var->getLocation(), Type, 12697 diag::ext_typecheck_decl_incomplete_type); 12698 } 12699 } 12700 12701 // Record the tentative definition; we're done. 12702 if (!Var->isInvalidDecl()) 12703 TentativeDefinitions.push_back(Var); 12704 return; 12705 } 12706 12707 // Provide a specific diagnostic for uninitialized variable 12708 // definitions with incomplete array type. 12709 if (Type->isIncompleteArrayType()) { 12710 Diag(Var->getLocation(), 12711 diag::err_typecheck_incomplete_array_needs_initializer); 12712 Var->setInvalidDecl(); 12713 return; 12714 } 12715 12716 // Provide a specific diagnostic for uninitialized variable 12717 // definitions with reference type. 12718 if (Type->isReferenceType()) { 12719 Diag(Var->getLocation(), diag::err_reference_var_requires_init) 12720 << Var << SourceRange(Var->getLocation(), Var->getLocation()); 12721 Var->setInvalidDecl(); 12722 return; 12723 } 12724 12725 // Do not attempt to type-check the default initializer for a 12726 // variable with dependent type. 12727 if (Type->isDependentType()) 12728 return; 12729 12730 if (Var->isInvalidDecl()) 12731 return; 12732 12733 if (!Var->hasAttr<AliasAttr>()) { 12734 if (RequireCompleteType(Var->getLocation(), 12735 Context.getBaseElementType(Type), 12736 diag::err_typecheck_decl_incomplete_type)) { 12737 Var->setInvalidDecl(); 12738 return; 12739 } 12740 } else { 12741 return; 12742 } 12743 12744 // The variable can not have an abstract class type. 12745 if (RequireNonAbstractType(Var->getLocation(), Type, 12746 diag::err_abstract_type_in_decl, 12747 AbstractVariableType)) { 12748 Var->setInvalidDecl(); 12749 return; 12750 } 12751 12752 // Check for jumps past the implicit initializer. C++0x 12753 // clarifies that this applies to a "variable with automatic 12754 // storage duration", not a "local variable". 12755 // C++11 [stmt.dcl]p3 12756 // A program that jumps from a point where a variable with automatic 12757 // storage duration is not in scope to a point where it is in scope is 12758 // ill-formed unless the variable has scalar type, class type with a 12759 // trivial default constructor and a trivial destructor, a cv-qualified 12760 // version of one of these types, or an array of one of the preceding 12761 // types and is declared without an initializer. 12762 if (getLangOpts().CPlusPlus && Var->hasLocalStorage()) { 12763 if (const RecordType *Record 12764 = Context.getBaseElementType(Type)->getAs<RecordType>()) { 12765 CXXRecordDecl *CXXRecord = cast<CXXRecordDecl>(Record->getDecl()); 12766 // Mark the function (if we're in one) for further checking even if the 12767 // looser rules of C++11 do not require such checks, so that we can 12768 // diagnose incompatibilities with C++98. 12769 if (!CXXRecord->isPOD()) 12770 setFunctionHasBranchProtectedScope(); 12771 } 12772 } 12773 // In OpenCL, we can't initialize objects in the __local address space, 12774 // even implicitly, so don't synthesize an implicit initializer. 12775 if (getLangOpts().OpenCL && 12776 Var->getType().getAddressSpace() == LangAS::opencl_local) 12777 return; 12778 // C++03 [dcl.init]p9: 12779 // If no initializer is specified for an object, and the 12780 // object is of (possibly cv-qualified) non-POD class type (or 12781 // array thereof), the object shall be default-initialized; if 12782 // the object is of const-qualified type, the underlying class 12783 // type shall have a user-declared default 12784 // constructor. Otherwise, if no initializer is specified for 12785 // a non- static object, the object and its subobjects, if 12786 // any, have an indeterminate initial value); if the object 12787 // or any of its subobjects are of const-qualified type, the 12788 // program is ill-formed. 12789 // C++0x [dcl.init]p11: 12790 // If no initializer is specified for an object, the object is 12791 // default-initialized; [...]. 12792 InitializedEntity Entity = InitializedEntity::InitializeVariable(Var); 12793 InitializationKind Kind 12794 = InitializationKind::CreateDefault(Var->getLocation()); 12795 12796 InitializationSequence InitSeq(*this, Entity, Kind, None); 12797 ExprResult Init = InitSeq.Perform(*this, Entity, Kind, None); 12798 12799 if (Init.get()) { 12800 Var->setInit(MaybeCreateExprWithCleanups(Init.get())); 12801 // This is important for template substitution. 12802 Var->setInitStyle(VarDecl::CallInit); 12803 } else if (Init.isInvalid()) { 12804 // If default-init fails, attach a recovery-expr initializer to track 12805 // that initialization was attempted and failed. 12806 auto RecoveryExpr = 12807 CreateRecoveryExpr(Var->getLocation(), Var->getLocation(), {}); 12808 if (RecoveryExpr.get()) 12809 Var->setInit(RecoveryExpr.get()); 12810 } 12811 12812 CheckCompleteVariableDeclaration(Var); 12813 } 12814 } 12815 12816 void Sema::ActOnCXXForRangeDecl(Decl *D) { 12817 // If there is no declaration, there was an error parsing it. Ignore it. 12818 if (!D) 12819 return; 12820 12821 VarDecl *VD = dyn_cast<VarDecl>(D); 12822 if (!VD) { 12823 Diag(D->getLocation(), diag::err_for_range_decl_must_be_var); 12824 D->setInvalidDecl(); 12825 return; 12826 } 12827 12828 VD->setCXXForRangeDecl(true); 12829 12830 // for-range-declaration cannot be given a storage class specifier. 12831 int Error = -1; 12832 switch (VD->getStorageClass()) { 12833 case SC_None: 12834 break; 12835 case SC_Extern: 12836 Error = 0; 12837 break; 12838 case SC_Static: 12839 Error = 1; 12840 break; 12841 case SC_PrivateExtern: 12842 Error = 2; 12843 break; 12844 case SC_Auto: 12845 Error = 3; 12846 break; 12847 case SC_Register: 12848 Error = 4; 12849 break; 12850 } 12851 12852 // for-range-declaration cannot be given a storage class specifier con't. 12853 switch (VD->getTSCSpec()) { 12854 case TSCS_thread_local: 12855 Error = 6; 12856 break; 12857 case TSCS___thread: 12858 case TSCS__Thread_local: 12859 case TSCS_unspecified: 12860 break; 12861 } 12862 12863 if (Error != -1) { 12864 Diag(VD->getOuterLocStart(), diag::err_for_range_storage_class) 12865 << VD << Error; 12866 D->setInvalidDecl(); 12867 } 12868 } 12869 12870 StmtResult 12871 Sema::ActOnCXXForRangeIdentifier(Scope *S, SourceLocation IdentLoc, 12872 IdentifierInfo *Ident, 12873 ParsedAttributes &Attrs, 12874 SourceLocation AttrEnd) { 12875 // C++1y [stmt.iter]p1: 12876 // A range-based for statement of the form 12877 // for ( for-range-identifier : for-range-initializer ) statement 12878 // is equivalent to 12879 // for ( auto&& for-range-identifier : for-range-initializer ) statement 12880 DeclSpec DS(Attrs.getPool().getFactory()); 12881 12882 const char *PrevSpec; 12883 unsigned DiagID; 12884 DS.SetTypeSpecType(DeclSpec::TST_auto, IdentLoc, PrevSpec, DiagID, 12885 getPrintingPolicy()); 12886 12887 Declarator D(DS, DeclaratorContext::ForInit); 12888 D.SetIdentifier(Ident, IdentLoc); 12889 D.takeAttributes(Attrs, AttrEnd); 12890 12891 D.AddTypeInfo(DeclaratorChunk::getReference(0, IdentLoc, /*lvalue*/ false), 12892 IdentLoc); 12893 Decl *Var = ActOnDeclarator(S, D); 12894 cast<VarDecl>(Var)->setCXXForRangeDecl(true); 12895 FinalizeDeclaration(Var); 12896 return ActOnDeclStmt(FinalizeDeclaratorGroup(S, DS, Var), IdentLoc, 12897 AttrEnd.isValid() ? AttrEnd : IdentLoc); 12898 } 12899 12900 void Sema::CheckCompleteVariableDeclaration(VarDecl *var) { 12901 if (var->isInvalidDecl()) return; 12902 12903 if (getLangOpts().OpenCL) { 12904 // OpenCL v2.0 s6.12.5 - Every block variable declaration must have an 12905 // initialiser 12906 if (var->getTypeSourceInfo()->getType()->isBlockPointerType() && 12907 !var->hasInit()) { 12908 Diag(var->getLocation(), diag::err_opencl_invalid_block_declaration) 12909 << 1 /*Init*/; 12910 var->setInvalidDecl(); 12911 return; 12912 } 12913 } 12914 12915 // In Objective-C, don't allow jumps past the implicit initialization of a 12916 // local retaining variable. 12917 if (getLangOpts().ObjC && 12918 var->hasLocalStorage()) { 12919 switch (var->getType().getObjCLifetime()) { 12920 case Qualifiers::OCL_None: 12921 case Qualifiers::OCL_ExplicitNone: 12922 case Qualifiers::OCL_Autoreleasing: 12923 break; 12924 12925 case Qualifiers::OCL_Weak: 12926 case Qualifiers::OCL_Strong: 12927 setFunctionHasBranchProtectedScope(); 12928 break; 12929 } 12930 } 12931 12932 if (var->hasLocalStorage() && 12933 var->getType().isDestructedType() == QualType::DK_nontrivial_c_struct) 12934 setFunctionHasBranchProtectedScope(); 12935 12936 // Warn about externally-visible variables being defined without a 12937 // prior declaration. We only want to do this for global 12938 // declarations, but we also specifically need to avoid doing it for 12939 // class members because the linkage of an anonymous class can 12940 // change if it's later given a typedef name. 12941 if (var->isThisDeclarationADefinition() && 12942 var->getDeclContext()->getRedeclContext()->isFileContext() && 12943 var->isExternallyVisible() && var->hasLinkage() && 12944 !var->isInline() && !var->getDescribedVarTemplate() && 12945 !isa<VarTemplatePartialSpecializationDecl>(var) && 12946 !isTemplateInstantiation(var->getTemplateSpecializationKind()) && 12947 !getDiagnostics().isIgnored(diag::warn_missing_variable_declarations, 12948 var->getLocation())) { 12949 // Find a previous declaration that's not a definition. 12950 VarDecl *prev = var->getPreviousDecl(); 12951 while (prev && prev->isThisDeclarationADefinition()) 12952 prev = prev->getPreviousDecl(); 12953 12954 if (!prev) { 12955 Diag(var->getLocation(), diag::warn_missing_variable_declarations) << var; 12956 Diag(var->getTypeSpecStartLoc(), diag::note_static_for_internal_linkage) 12957 << /* variable */ 0; 12958 } 12959 } 12960 12961 // Cache the result of checking for constant initialization. 12962 Optional<bool> CacheHasConstInit; 12963 const Expr *CacheCulprit = nullptr; 12964 auto checkConstInit = [&]() mutable { 12965 if (!CacheHasConstInit) 12966 CacheHasConstInit = var->getInit()->isConstantInitializer( 12967 Context, var->getType()->isReferenceType(), &CacheCulprit); 12968 return *CacheHasConstInit; 12969 }; 12970 12971 if (var->getTLSKind() == VarDecl::TLS_Static) { 12972 if (var->getType().isDestructedType()) { 12973 // GNU C++98 edits for __thread, [basic.start.term]p3: 12974 // The type of an object with thread storage duration shall not 12975 // have a non-trivial destructor. 12976 Diag(var->getLocation(), diag::err_thread_nontrivial_dtor); 12977 if (getLangOpts().CPlusPlus11) 12978 Diag(var->getLocation(), diag::note_use_thread_local); 12979 } else if (getLangOpts().CPlusPlus && var->hasInit()) { 12980 if (!checkConstInit()) { 12981 // GNU C++98 edits for __thread, [basic.start.init]p4: 12982 // An object of thread storage duration shall not require dynamic 12983 // initialization. 12984 // FIXME: Need strict checking here. 12985 Diag(CacheCulprit->getExprLoc(), diag::err_thread_dynamic_init) 12986 << CacheCulprit->getSourceRange(); 12987 if (getLangOpts().CPlusPlus11) 12988 Diag(var->getLocation(), diag::note_use_thread_local); 12989 } 12990 } 12991 } 12992 12993 // Apply section attributes and pragmas to global variables. 12994 bool GlobalStorage = var->hasGlobalStorage(); 12995 if (GlobalStorage && var->isThisDeclarationADefinition() && 12996 !inTemplateInstantiation()) { 12997 PragmaStack<StringLiteral *> *Stack = nullptr; 12998 int SectionFlags = ASTContext::PSF_Read; 12999 if (var->getType().isConstQualified()) 13000 Stack = &ConstSegStack; 13001 else if (!var->getInit()) { 13002 Stack = &BSSSegStack; 13003 SectionFlags |= ASTContext::PSF_Write; 13004 } else { 13005 Stack = &DataSegStack; 13006 SectionFlags |= ASTContext::PSF_Write; 13007 } 13008 if (const SectionAttr *SA = var->getAttr<SectionAttr>()) { 13009 if (SA->getSyntax() == AttributeCommonInfo::AS_Declspec) 13010 SectionFlags |= ASTContext::PSF_Implicit; 13011 UnifySection(SA->getName(), SectionFlags, var); 13012 } else if (Stack->CurrentValue) { 13013 SectionFlags |= ASTContext::PSF_Implicit; 13014 auto SectionName = Stack->CurrentValue->getString(); 13015 var->addAttr(SectionAttr::CreateImplicit( 13016 Context, SectionName, Stack->CurrentPragmaLocation, 13017 AttributeCommonInfo::AS_Pragma, SectionAttr::Declspec_allocate)); 13018 if (UnifySection(SectionName, SectionFlags, var)) 13019 var->dropAttr<SectionAttr>(); 13020 } 13021 13022 // Apply the init_seg attribute if this has an initializer. If the 13023 // initializer turns out to not be dynamic, we'll end up ignoring this 13024 // attribute. 13025 if (CurInitSeg && var->getInit()) 13026 var->addAttr(InitSegAttr::CreateImplicit(Context, CurInitSeg->getString(), 13027 CurInitSegLoc, 13028 AttributeCommonInfo::AS_Pragma)); 13029 } 13030 13031 if (!var->getType()->isStructureType() && var->hasInit() && 13032 isa<InitListExpr>(var->getInit())) { 13033 const auto *ILE = cast<InitListExpr>(var->getInit()); 13034 unsigned NumInits = ILE->getNumInits(); 13035 if (NumInits > 2) 13036 for (unsigned I = 0; I < NumInits; ++I) { 13037 const auto *Init = ILE->getInit(I); 13038 if (!Init) 13039 break; 13040 const auto *SL = dyn_cast<StringLiteral>(Init->IgnoreImpCasts()); 13041 if (!SL) 13042 break; 13043 13044 unsigned NumConcat = SL->getNumConcatenated(); 13045 // Diagnose missing comma in string array initialization. 13046 // Do not warn when all the elements in the initializer are concatenated 13047 // together. Do not warn for macros too. 13048 if (NumConcat == 2 && !SL->getBeginLoc().isMacroID()) { 13049 bool OnlyOneMissingComma = true; 13050 for (unsigned J = I + 1; J < NumInits; ++J) { 13051 const auto *Init = ILE->getInit(J); 13052 if (!Init) 13053 break; 13054 const auto *SLJ = dyn_cast<StringLiteral>(Init->IgnoreImpCasts()); 13055 if (!SLJ || SLJ->getNumConcatenated() > 1) { 13056 OnlyOneMissingComma = false; 13057 break; 13058 } 13059 } 13060 13061 if (OnlyOneMissingComma) { 13062 SmallVector<FixItHint, 1> Hints; 13063 for (unsigned i = 0; i < NumConcat - 1; ++i) 13064 Hints.push_back(FixItHint::CreateInsertion( 13065 PP.getLocForEndOfToken(SL->getStrTokenLoc(i)), ",")); 13066 13067 Diag(SL->getStrTokenLoc(1), 13068 diag::warn_concatenated_literal_array_init) 13069 << Hints; 13070 Diag(SL->getBeginLoc(), 13071 diag::note_concatenated_string_literal_silence); 13072 } 13073 // In any case, stop now. 13074 break; 13075 } 13076 } 13077 } 13078 13079 // All the following checks are C++ only. 13080 if (!getLangOpts().CPlusPlus) { 13081 // If this variable must be emitted, add it as an initializer for the 13082 // current module. 13083 if (Context.DeclMustBeEmitted(var) && !ModuleScopes.empty()) 13084 Context.addModuleInitializer(ModuleScopes.back().Module, var); 13085 return; 13086 } 13087 13088 QualType type = var->getType(); 13089 13090 if (var->hasAttr<BlocksAttr>()) 13091 getCurFunction()->addByrefBlockVar(var); 13092 13093 Expr *Init = var->getInit(); 13094 bool IsGlobal = GlobalStorage && !var->isStaticLocal(); 13095 QualType baseType = Context.getBaseElementType(type); 13096 13097 // Check whether the initializer is sufficiently constant. 13098 if (!type->isDependentType() && Init && !Init->isValueDependent() && 13099 (GlobalStorage || var->isConstexpr() || 13100 var->mightBeUsableInConstantExpressions(Context))) { 13101 // If this variable might have a constant initializer or might be usable in 13102 // constant expressions, check whether or not it actually is now. We can't 13103 // do this lazily, because the result might depend on things that change 13104 // later, such as which constexpr functions happen to be defined. 13105 SmallVector<PartialDiagnosticAt, 8> Notes; 13106 bool HasConstInit; 13107 if (!getLangOpts().CPlusPlus11) { 13108 // Prior to C++11, in contexts where a constant initializer is required, 13109 // the set of valid constant initializers is described by syntactic rules 13110 // in [expr.const]p2-6. 13111 // FIXME: Stricter checking for these rules would be useful for constinit / 13112 // -Wglobal-constructors. 13113 HasConstInit = checkConstInit(); 13114 13115 // Compute and cache the constant value, and remember that we have a 13116 // constant initializer. 13117 if (HasConstInit) { 13118 (void)var->checkForConstantInitialization(Notes); 13119 Notes.clear(); 13120 } else if (CacheCulprit) { 13121 Notes.emplace_back(CacheCulprit->getExprLoc(), 13122 PDiag(diag::note_invalid_subexpr_in_const_expr)); 13123 Notes.back().second << CacheCulprit->getSourceRange(); 13124 } 13125 } else { 13126 // Evaluate the initializer to see if it's a constant initializer. 13127 HasConstInit = var->checkForConstantInitialization(Notes); 13128 } 13129 13130 if (HasConstInit) { 13131 // FIXME: Consider replacing the initializer with a ConstantExpr. 13132 } else if (var->isConstexpr()) { 13133 SourceLocation DiagLoc = var->getLocation(); 13134 // If the note doesn't add any useful information other than a source 13135 // location, fold it into the primary diagnostic. 13136 if (Notes.size() == 1 && Notes[0].second.getDiagID() == 13137 diag::note_invalid_subexpr_in_const_expr) { 13138 DiagLoc = Notes[0].first; 13139 Notes.clear(); 13140 } 13141 Diag(DiagLoc, diag::err_constexpr_var_requires_const_init) 13142 << var << Init->getSourceRange(); 13143 for (unsigned I = 0, N = Notes.size(); I != N; ++I) 13144 Diag(Notes[I].first, Notes[I].second); 13145 } else if (GlobalStorage && var->hasAttr<ConstInitAttr>()) { 13146 auto *Attr = var->getAttr<ConstInitAttr>(); 13147 Diag(var->getLocation(), diag::err_require_constant_init_failed) 13148 << Init->getSourceRange(); 13149 Diag(Attr->getLocation(), diag::note_declared_required_constant_init_here) 13150 << Attr->getRange() << Attr->isConstinit(); 13151 for (auto &it : Notes) 13152 Diag(it.first, it.second); 13153 } else if (IsGlobal && 13154 !getDiagnostics().isIgnored(diag::warn_global_constructor, 13155 var->getLocation())) { 13156 // Warn about globals which don't have a constant initializer. Don't 13157 // warn about globals with a non-trivial destructor because we already 13158 // warned about them. 13159 CXXRecordDecl *RD = baseType->getAsCXXRecordDecl(); 13160 if (!(RD && !RD->hasTrivialDestructor())) { 13161 // checkConstInit() here permits trivial default initialization even in 13162 // C++11 onwards, where such an initializer is not a constant initializer 13163 // but nonetheless doesn't require a global constructor. 13164 if (!checkConstInit()) 13165 Diag(var->getLocation(), diag::warn_global_constructor) 13166 << Init->getSourceRange(); 13167 } 13168 } 13169 } 13170 13171 // Require the destructor. 13172 if (!type->isDependentType()) 13173 if (const RecordType *recordType = baseType->getAs<RecordType>()) 13174 FinalizeVarWithDestructor(var, recordType); 13175 13176 // If this variable must be emitted, add it as an initializer for the current 13177 // module. 13178 if (Context.DeclMustBeEmitted(var) && !ModuleScopes.empty()) 13179 Context.addModuleInitializer(ModuleScopes.back().Module, var); 13180 13181 // Build the bindings if this is a structured binding declaration. 13182 if (auto *DD = dyn_cast<DecompositionDecl>(var)) 13183 CheckCompleteDecompositionDeclaration(DD); 13184 } 13185 13186 /// Determines if a variable's alignment is dependent. 13187 static bool hasDependentAlignment(VarDecl *VD) { 13188 if (VD->getType()->isDependentType()) 13189 return true; 13190 for (auto *I : VD->specific_attrs<AlignedAttr>()) 13191 if (I->isAlignmentDependent()) 13192 return true; 13193 return false; 13194 } 13195 13196 /// Check if VD needs to be dllexport/dllimport due to being in a 13197 /// dllexport/import function. 13198 void Sema::CheckStaticLocalForDllExport(VarDecl *VD) { 13199 assert(VD->isStaticLocal()); 13200 13201 auto *FD = dyn_cast_or_null<FunctionDecl>(VD->getParentFunctionOrMethod()); 13202 13203 // Find outermost function when VD is in lambda function. 13204 while (FD && !getDLLAttr(FD) && 13205 !FD->hasAttr<DLLExportStaticLocalAttr>() && 13206 !FD->hasAttr<DLLImportStaticLocalAttr>()) { 13207 FD = dyn_cast_or_null<FunctionDecl>(FD->getParentFunctionOrMethod()); 13208 } 13209 13210 if (!FD) 13211 return; 13212 13213 // Static locals inherit dll attributes from their function. 13214 if (Attr *A = getDLLAttr(FD)) { 13215 auto *NewAttr = cast<InheritableAttr>(A->clone(getASTContext())); 13216 NewAttr->setInherited(true); 13217 VD->addAttr(NewAttr); 13218 } else if (Attr *A = FD->getAttr<DLLExportStaticLocalAttr>()) { 13219 auto *NewAttr = DLLExportAttr::CreateImplicit(getASTContext(), *A); 13220 NewAttr->setInherited(true); 13221 VD->addAttr(NewAttr); 13222 13223 // Export this function to enforce exporting this static variable even 13224 // if it is not used in this compilation unit. 13225 if (!FD->hasAttr<DLLExportAttr>()) 13226 FD->addAttr(NewAttr); 13227 13228 } else if (Attr *A = FD->getAttr<DLLImportStaticLocalAttr>()) { 13229 auto *NewAttr = DLLImportAttr::CreateImplicit(getASTContext(), *A); 13230 NewAttr->setInherited(true); 13231 VD->addAttr(NewAttr); 13232 } 13233 } 13234 13235 /// FinalizeDeclaration - called by ParseDeclarationAfterDeclarator to perform 13236 /// any semantic actions necessary after any initializer has been attached. 13237 void Sema::FinalizeDeclaration(Decl *ThisDecl) { 13238 // Note that we are no longer parsing the initializer for this declaration. 13239 ParsingInitForAutoVars.erase(ThisDecl); 13240 13241 VarDecl *VD = dyn_cast_or_null<VarDecl>(ThisDecl); 13242 if (!VD) 13243 return; 13244 13245 // Apply an implicit SectionAttr if '#pragma clang section bss|data|rodata' is active 13246 if (VD->hasGlobalStorage() && VD->isThisDeclarationADefinition() && 13247 !inTemplateInstantiation() && !VD->hasAttr<SectionAttr>()) { 13248 if (PragmaClangBSSSection.Valid) 13249 VD->addAttr(PragmaClangBSSSectionAttr::CreateImplicit( 13250 Context, PragmaClangBSSSection.SectionName, 13251 PragmaClangBSSSection.PragmaLocation, 13252 AttributeCommonInfo::AS_Pragma)); 13253 if (PragmaClangDataSection.Valid) 13254 VD->addAttr(PragmaClangDataSectionAttr::CreateImplicit( 13255 Context, PragmaClangDataSection.SectionName, 13256 PragmaClangDataSection.PragmaLocation, 13257 AttributeCommonInfo::AS_Pragma)); 13258 if (PragmaClangRodataSection.Valid) 13259 VD->addAttr(PragmaClangRodataSectionAttr::CreateImplicit( 13260 Context, PragmaClangRodataSection.SectionName, 13261 PragmaClangRodataSection.PragmaLocation, 13262 AttributeCommonInfo::AS_Pragma)); 13263 if (PragmaClangRelroSection.Valid) 13264 VD->addAttr(PragmaClangRelroSectionAttr::CreateImplicit( 13265 Context, PragmaClangRelroSection.SectionName, 13266 PragmaClangRelroSection.PragmaLocation, 13267 AttributeCommonInfo::AS_Pragma)); 13268 } 13269 13270 if (auto *DD = dyn_cast<DecompositionDecl>(ThisDecl)) { 13271 for (auto *BD : DD->bindings()) { 13272 FinalizeDeclaration(BD); 13273 } 13274 } 13275 13276 checkAttributesAfterMerging(*this, *VD); 13277 13278 // Perform TLS alignment check here after attributes attached to the variable 13279 // which may affect the alignment have been processed. Only perform the check 13280 // if the target has a maximum TLS alignment (zero means no constraints). 13281 if (unsigned MaxAlign = Context.getTargetInfo().getMaxTLSAlign()) { 13282 // Protect the check so that it's not performed on dependent types and 13283 // dependent alignments (we can't determine the alignment in that case). 13284 if (VD->getTLSKind() && !hasDependentAlignment(VD) && 13285 !VD->isInvalidDecl()) { 13286 CharUnits MaxAlignChars = Context.toCharUnitsFromBits(MaxAlign); 13287 if (Context.getDeclAlign(VD) > MaxAlignChars) { 13288 Diag(VD->getLocation(), diag::err_tls_var_aligned_over_maximum) 13289 << (unsigned)Context.getDeclAlign(VD).getQuantity() << VD 13290 << (unsigned)MaxAlignChars.getQuantity(); 13291 } 13292 } 13293 } 13294 13295 if (VD->isStaticLocal()) 13296 CheckStaticLocalForDllExport(VD); 13297 13298 // Perform check for initializers of device-side global variables. 13299 // CUDA allows empty constructors as initializers (see E.2.3.1, CUDA 13300 // 7.5). We must also apply the same checks to all __shared__ 13301 // variables whether they are local or not. CUDA also allows 13302 // constant initializers for __constant__ and __device__ variables. 13303 if (getLangOpts().CUDA) 13304 checkAllowedCUDAInitializer(VD); 13305 13306 // Grab the dllimport or dllexport attribute off of the VarDecl. 13307 const InheritableAttr *DLLAttr = getDLLAttr(VD); 13308 13309 // Imported static data members cannot be defined out-of-line. 13310 if (const auto *IA = dyn_cast_or_null<DLLImportAttr>(DLLAttr)) { 13311 if (VD->isStaticDataMember() && VD->isOutOfLine() && 13312 VD->isThisDeclarationADefinition()) { 13313 // We allow definitions of dllimport class template static data members 13314 // with a warning. 13315 CXXRecordDecl *Context = 13316 cast<CXXRecordDecl>(VD->getFirstDecl()->getDeclContext()); 13317 bool IsClassTemplateMember = 13318 isa<ClassTemplatePartialSpecializationDecl>(Context) || 13319 Context->getDescribedClassTemplate(); 13320 13321 Diag(VD->getLocation(), 13322 IsClassTemplateMember 13323 ? diag::warn_attribute_dllimport_static_field_definition 13324 : diag::err_attribute_dllimport_static_field_definition); 13325 Diag(IA->getLocation(), diag::note_attribute); 13326 if (!IsClassTemplateMember) 13327 VD->setInvalidDecl(); 13328 } 13329 } 13330 13331 // dllimport/dllexport variables cannot be thread local, their TLS index 13332 // isn't exported with the variable. 13333 if (DLLAttr && VD->getTLSKind()) { 13334 auto *F = dyn_cast_or_null<FunctionDecl>(VD->getParentFunctionOrMethod()); 13335 if (F && getDLLAttr(F)) { 13336 assert(VD->isStaticLocal()); 13337 // But if this is a static local in a dlimport/dllexport function, the 13338 // function will never be inlined, which means the var would never be 13339 // imported, so having it marked import/export is safe. 13340 } else { 13341 Diag(VD->getLocation(), diag::err_attribute_dll_thread_local) << VD 13342 << DLLAttr; 13343 VD->setInvalidDecl(); 13344 } 13345 } 13346 13347 if (UsedAttr *Attr = VD->getAttr<UsedAttr>()) { 13348 if (!Attr->isInherited() && !VD->isThisDeclarationADefinition()) { 13349 Diag(Attr->getLocation(), diag::warn_attribute_ignored_on_non_definition) 13350 << Attr; 13351 VD->dropAttr<UsedAttr>(); 13352 } 13353 } 13354 if (RetainAttr *Attr = VD->getAttr<RetainAttr>()) { 13355 if (!Attr->isInherited() && !VD->isThisDeclarationADefinition()) { 13356 Diag(Attr->getLocation(), diag::warn_attribute_ignored_on_non_definition) 13357 << Attr; 13358 VD->dropAttr<RetainAttr>(); 13359 } 13360 } 13361 13362 const DeclContext *DC = VD->getDeclContext(); 13363 // If there's a #pragma GCC visibility in scope, and this isn't a class 13364 // member, set the visibility of this variable. 13365 if (DC->getRedeclContext()->isFileContext() && VD->isExternallyVisible()) 13366 AddPushedVisibilityAttribute(VD); 13367 13368 // FIXME: Warn on unused var template partial specializations. 13369 if (VD->isFileVarDecl() && !isa<VarTemplatePartialSpecializationDecl>(VD)) 13370 MarkUnusedFileScopedDecl(VD); 13371 13372 // Now we have parsed the initializer and can update the table of magic 13373 // tag values. 13374 if (!VD->hasAttr<TypeTagForDatatypeAttr>() || 13375 !VD->getType()->isIntegralOrEnumerationType()) 13376 return; 13377 13378 for (const auto *I : ThisDecl->specific_attrs<TypeTagForDatatypeAttr>()) { 13379 const Expr *MagicValueExpr = VD->getInit(); 13380 if (!MagicValueExpr) { 13381 continue; 13382 } 13383 Optional<llvm::APSInt> MagicValueInt; 13384 if (!(MagicValueInt = MagicValueExpr->getIntegerConstantExpr(Context))) { 13385 Diag(I->getRange().getBegin(), 13386 diag::err_type_tag_for_datatype_not_ice) 13387 << LangOpts.CPlusPlus << MagicValueExpr->getSourceRange(); 13388 continue; 13389 } 13390 if (MagicValueInt->getActiveBits() > 64) { 13391 Diag(I->getRange().getBegin(), 13392 diag::err_type_tag_for_datatype_too_large) 13393 << LangOpts.CPlusPlus << MagicValueExpr->getSourceRange(); 13394 continue; 13395 } 13396 uint64_t MagicValue = MagicValueInt->getZExtValue(); 13397 RegisterTypeTagForDatatype(I->getArgumentKind(), 13398 MagicValue, 13399 I->getMatchingCType(), 13400 I->getLayoutCompatible(), 13401 I->getMustBeNull()); 13402 } 13403 } 13404 13405 static bool hasDeducedAuto(DeclaratorDecl *DD) { 13406 auto *VD = dyn_cast<VarDecl>(DD); 13407 return VD && !VD->getType()->hasAutoForTrailingReturnType(); 13408 } 13409 13410 Sema::DeclGroupPtrTy Sema::FinalizeDeclaratorGroup(Scope *S, const DeclSpec &DS, 13411 ArrayRef<Decl *> Group) { 13412 SmallVector<Decl*, 8> Decls; 13413 13414 if (DS.isTypeSpecOwned()) 13415 Decls.push_back(DS.getRepAsDecl()); 13416 13417 DeclaratorDecl *FirstDeclaratorInGroup = nullptr; 13418 DecompositionDecl *FirstDecompDeclaratorInGroup = nullptr; 13419 bool DiagnosedMultipleDecomps = false; 13420 DeclaratorDecl *FirstNonDeducedAutoInGroup = nullptr; 13421 bool DiagnosedNonDeducedAuto = false; 13422 13423 for (unsigned i = 0, e = Group.size(); i != e; ++i) { 13424 if (Decl *D = Group[i]) { 13425 // For declarators, there are some additional syntactic-ish checks we need 13426 // to perform. 13427 if (auto *DD = dyn_cast<DeclaratorDecl>(D)) { 13428 if (!FirstDeclaratorInGroup) 13429 FirstDeclaratorInGroup = DD; 13430 if (!FirstDecompDeclaratorInGroup) 13431 FirstDecompDeclaratorInGroup = dyn_cast<DecompositionDecl>(D); 13432 if (!FirstNonDeducedAutoInGroup && DS.hasAutoTypeSpec() && 13433 !hasDeducedAuto(DD)) 13434 FirstNonDeducedAutoInGroup = DD; 13435 13436 if (FirstDeclaratorInGroup != DD) { 13437 // A decomposition declaration cannot be combined with any other 13438 // declaration in the same group. 13439 if (FirstDecompDeclaratorInGroup && !DiagnosedMultipleDecomps) { 13440 Diag(FirstDecompDeclaratorInGroup->getLocation(), 13441 diag::err_decomp_decl_not_alone) 13442 << FirstDeclaratorInGroup->getSourceRange() 13443 << DD->getSourceRange(); 13444 DiagnosedMultipleDecomps = true; 13445 } 13446 13447 // A declarator that uses 'auto' in any way other than to declare a 13448 // variable with a deduced type cannot be combined with any other 13449 // declarator in the same group. 13450 if (FirstNonDeducedAutoInGroup && !DiagnosedNonDeducedAuto) { 13451 Diag(FirstNonDeducedAutoInGroup->getLocation(), 13452 diag::err_auto_non_deduced_not_alone) 13453 << FirstNonDeducedAutoInGroup->getType() 13454 ->hasAutoForTrailingReturnType() 13455 << FirstDeclaratorInGroup->getSourceRange() 13456 << DD->getSourceRange(); 13457 DiagnosedNonDeducedAuto = true; 13458 } 13459 } 13460 } 13461 13462 Decls.push_back(D); 13463 } 13464 } 13465 13466 if (DeclSpec::isDeclRep(DS.getTypeSpecType())) { 13467 if (TagDecl *Tag = dyn_cast_or_null<TagDecl>(DS.getRepAsDecl())) { 13468 handleTagNumbering(Tag, S); 13469 if (FirstDeclaratorInGroup && !Tag->hasNameForLinkage() && 13470 getLangOpts().CPlusPlus) 13471 Context.addDeclaratorForUnnamedTagDecl(Tag, FirstDeclaratorInGroup); 13472 } 13473 } 13474 13475 return BuildDeclaratorGroup(Decls); 13476 } 13477 13478 /// BuildDeclaratorGroup - convert a list of declarations into a declaration 13479 /// group, performing any necessary semantic checking. 13480 Sema::DeclGroupPtrTy 13481 Sema::BuildDeclaratorGroup(MutableArrayRef<Decl *> Group) { 13482 // C++14 [dcl.spec.auto]p7: (DR1347) 13483 // If the type that replaces the placeholder type is not the same in each 13484 // deduction, the program is ill-formed. 13485 if (Group.size() > 1) { 13486 QualType Deduced; 13487 VarDecl *DeducedDecl = nullptr; 13488 for (unsigned i = 0, e = Group.size(); i != e; ++i) { 13489 VarDecl *D = dyn_cast<VarDecl>(Group[i]); 13490 if (!D || D->isInvalidDecl()) 13491 break; 13492 DeducedType *DT = D->getType()->getContainedDeducedType(); 13493 if (!DT || DT->getDeducedType().isNull()) 13494 continue; 13495 if (Deduced.isNull()) { 13496 Deduced = DT->getDeducedType(); 13497 DeducedDecl = D; 13498 } else if (!Context.hasSameType(DT->getDeducedType(), Deduced)) { 13499 auto *AT = dyn_cast<AutoType>(DT); 13500 auto Dia = Diag(D->getTypeSourceInfo()->getTypeLoc().getBeginLoc(), 13501 diag::err_auto_different_deductions) 13502 << (AT ? (unsigned)AT->getKeyword() : 3) << Deduced 13503 << DeducedDecl->getDeclName() << DT->getDeducedType() 13504 << D->getDeclName(); 13505 if (DeducedDecl->hasInit()) 13506 Dia << DeducedDecl->getInit()->getSourceRange(); 13507 if (D->getInit()) 13508 Dia << D->getInit()->getSourceRange(); 13509 D->setInvalidDecl(); 13510 break; 13511 } 13512 } 13513 } 13514 13515 ActOnDocumentableDecls(Group); 13516 13517 return DeclGroupPtrTy::make( 13518 DeclGroupRef::Create(Context, Group.data(), Group.size())); 13519 } 13520 13521 void Sema::ActOnDocumentableDecl(Decl *D) { 13522 ActOnDocumentableDecls(D); 13523 } 13524 13525 void Sema::ActOnDocumentableDecls(ArrayRef<Decl *> Group) { 13526 // Don't parse the comment if Doxygen diagnostics are ignored. 13527 if (Group.empty() || !Group[0]) 13528 return; 13529 13530 if (Diags.isIgnored(diag::warn_doc_param_not_found, 13531 Group[0]->getLocation()) && 13532 Diags.isIgnored(diag::warn_unknown_comment_command_name, 13533 Group[0]->getLocation())) 13534 return; 13535 13536 if (Group.size() >= 2) { 13537 // This is a decl group. Normally it will contain only declarations 13538 // produced from declarator list. But in case we have any definitions or 13539 // additional declaration references: 13540 // 'typedef struct S {} S;' 13541 // 'typedef struct S *S;' 13542 // 'struct S *pS;' 13543 // FinalizeDeclaratorGroup adds these as separate declarations. 13544 Decl *MaybeTagDecl = Group[0]; 13545 if (MaybeTagDecl && isa<TagDecl>(MaybeTagDecl)) { 13546 Group = Group.slice(1); 13547 } 13548 } 13549 13550 // FIMXE: We assume every Decl in the group is in the same file. 13551 // This is false when preprocessor constructs the group from decls in 13552 // different files (e. g. macros or #include). 13553 Context.attachCommentsToJustParsedDecls(Group, &getPreprocessor()); 13554 } 13555 13556 /// Common checks for a parameter-declaration that should apply to both function 13557 /// parameters and non-type template parameters. 13558 void Sema::CheckFunctionOrTemplateParamDeclarator(Scope *S, Declarator &D) { 13559 // Check that there are no default arguments inside the type of this 13560 // parameter. 13561 if (getLangOpts().CPlusPlus) 13562 CheckExtraCXXDefaultArguments(D); 13563 13564 // Parameter declarators cannot be qualified (C++ [dcl.meaning]p1). 13565 if (D.getCXXScopeSpec().isSet()) { 13566 Diag(D.getIdentifierLoc(), diag::err_qualified_param_declarator) 13567 << D.getCXXScopeSpec().getRange(); 13568 } 13569 13570 // [dcl.meaning]p1: An unqualified-id occurring in a declarator-id shall be a 13571 // simple identifier except [...irrelevant cases...]. 13572 switch (D.getName().getKind()) { 13573 case UnqualifiedIdKind::IK_Identifier: 13574 break; 13575 13576 case UnqualifiedIdKind::IK_OperatorFunctionId: 13577 case UnqualifiedIdKind::IK_ConversionFunctionId: 13578 case UnqualifiedIdKind::IK_LiteralOperatorId: 13579 case UnqualifiedIdKind::IK_ConstructorName: 13580 case UnqualifiedIdKind::IK_DestructorName: 13581 case UnqualifiedIdKind::IK_ImplicitSelfParam: 13582 case UnqualifiedIdKind::IK_DeductionGuideName: 13583 Diag(D.getIdentifierLoc(), diag::err_bad_parameter_name) 13584 << GetNameForDeclarator(D).getName(); 13585 break; 13586 13587 case UnqualifiedIdKind::IK_TemplateId: 13588 case UnqualifiedIdKind::IK_ConstructorTemplateId: 13589 // GetNameForDeclarator would not produce a useful name in this case. 13590 Diag(D.getIdentifierLoc(), diag::err_bad_parameter_name_template_id); 13591 break; 13592 } 13593 } 13594 13595 /// ActOnParamDeclarator - Called from Parser::ParseFunctionDeclarator() 13596 /// to introduce parameters into function prototype scope. 13597 Decl *Sema::ActOnParamDeclarator(Scope *S, Declarator &D) { 13598 const DeclSpec &DS = D.getDeclSpec(); 13599 13600 // Verify C99 6.7.5.3p2: The only SCS allowed is 'register'. 13601 13602 // C++03 [dcl.stc]p2 also permits 'auto'. 13603 StorageClass SC = SC_None; 13604 if (DS.getStorageClassSpec() == DeclSpec::SCS_register) { 13605 SC = SC_Register; 13606 // In C++11, the 'register' storage class specifier is deprecated. 13607 // In C++17, it is not allowed, but we tolerate it as an extension. 13608 if (getLangOpts().CPlusPlus11) { 13609 Diag(DS.getStorageClassSpecLoc(), 13610 getLangOpts().CPlusPlus17 ? diag::ext_register_storage_class 13611 : diag::warn_deprecated_register) 13612 << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc()); 13613 } 13614 } else if (getLangOpts().CPlusPlus && 13615 DS.getStorageClassSpec() == DeclSpec::SCS_auto) { 13616 SC = SC_Auto; 13617 } else if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified) { 13618 Diag(DS.getStorageClassSpecLoc(), 13619 diag::err_invalid_storage_class_in_func_decl); 13620 D.getMutableDeclSpec().ClearStorageClassSpecs(); 13621 } 13622 13623 if (DeclSpec::TSCS TSCS = DS.getThreadStorageClassSpec()) 13624 Diag(DS.getThreadStorageClassSpecLoc(), diag::err_invalid_thread) 13625 << DeclSpec::getSpecifierName(TSCS); 13626 if (DS.isInlineSpecified()) 13627 Diag(DS.getInlineSpecLoc(), diag::err_inline_non_function) 13628 << getLangOpts().CPlusPlus17; 13629 if (DS.hasConstexprSpecifier()) 13630 Diag(DS.getConstexprSpecLoc(), diag::err_invalid_constexpr) 13631 << 0 << static_cast<int>(D.getDeclSpec().getConstexprSpecifier()); 13632 13633 DiagnoseFunctionSpecifiers(DS); 13634 13635 CheckFunctionOrTemplateParamDeclarator(S, D); 13636 13637 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S); 13638 QualType parmDeclType = TInfo->getType(); 13639 13640 // Check for redeclaration of parameters, e.g. int foo(int x, int x); 13641 IdentifierInfo *II = D.getIdentifier(); 13642 if (II) { 13643 LookupResult R(*this, II, D.getIdentifierLoc(), LookupOrdinaryName, 13644 ForVisibleRedeclaration); 13645 LookupName(R, S); 13646 if (R.isSingleResult()) { 13647 NamedDecl *PrevDecl = R.getFoundDecl(); 13648 if (PrevDecl->isTemplateParameter()) { 13649 // Maybe we will complain about the shadowed template parameter. 13650 DiagnoseTemplateParameterShadow(D.getIdentifierLoc(), PrevDecl); 13651 // Just pretend that we didn't see the previous declaration. 13652 PrevDecl = nullptr; 13653 } else if (S->isDeclScope(PrevDecl)) { 13654 Diag(D.getIdentifierLoc(), diag::err_param_redefinition) << II; 13655 Diag(PrevDecl->getLocation(), diag::note_previous_declaration); 13656 13657 // Recover by removing the name 13658 II = nullptr; 13659 D.SetIdentifier(nullptr, D.getIdentifierLoc()); 13660 D.setInvalidType(true); 13661 } 13662 } 13663 } 13664 13665 // Temporarily put parameter variables in the translation unit, not 13666 // the enclosing context. This prevents them from accidentally 13667 // looking like class members in C++. 13668 ParmVarDecl *New = 13669 CheckParameter(Context.getTranslationUnitDecl(), D.getBeginLoc(), 13670 D.getIdentifierLoc(), II, parmDeclType, TInfo, SC); 13671 13672 if (D.isInvalidType()) 13673 New->setInvalidDecl(); 13674 13675 assert(S->isFunctionPrototypeScope()); 13676 assert(S->getFunctionPrototypeDepth() >= 1); 13677 New->setScopeInfo(S->getFunctionPrototypeDepth() - 1, 13678 S->getNextFunctionPrototypeIndex()); 13679 13680 // Add the parameter declaration into this scope. 13681 S->AddDecl(New); 13682 if (II) 13683 IdResolver.AddDecl(New); 13684 13685 ProcessDeclAttributes(S, New, D); 13686 13687 if (D.getDeclSpec().isModulePrivateSpecified()) 13688 Diag(New->getLocation(), diag::err_module_private_local) 13689 << 1 << New << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc()) 13690 << FixItHint::CreateRemoval(D.getDeclSpec().getModulePrivateSpecLoc()); 13691 13692 if (New->hasAttr<BlocksAttr>()) { 13693 Diag(New->getLocation(), diag::err_block_on_nonlocal); 13694 } 13695 13696 if (getLangOpts().OpenCL) 13697 deduceOpenCLAddressSpace(New); 13698 13699 return New; 13700 } 13701 13702 /// Synthesizes a variable for a parameter arising from a 13703 /// typedef. 13704 ParmVarDecl *Sema::BuildParmVarDeclForTypedef(DeclContext *DC, 13705 SourceLocation Loc, 13706 QualType T) { 13707 /* FIXME: setting StartLoc == Loc. 13708 Would it be worth to modify callers so as to provide proper source 13709 location for the unnamed parameters, embedding the parameter's type? */ 13710 ParmVarDecl *Param = ParmVarDecl::Create(Context, DC, Loc, Loc, nullptr, 13711 T, Context.getTrivialTypeSourceInfo(T, Loc), 13712 SC_None, nullptr); 13713 Param->setImplicit(); 13714 return Param; 13715 } 13716 13717 void Sema::DiagnoseUnusedParameters(ArrayRef<ParmVarDecl *> Parameters) { 13718 // Don't diagnose unused-parameter errors in template instantiations; we 13719 // will already have done so in the template itself. 13720 if (inTemplateInstantiation()) 13721 return; 13722 13723 for (const ParmVarDecl *Parameter : Parameters) { 13724 if (!Parameter->isReferenced() && Parameter->getDeclName() && 13725 !Parameter->hasAttr<UnusedAttr>()) { 13726 Diag(Parameter->getLocation(), diag::warn_unused_parameter) 13727 << Parameter->getDeclName(); 13728 } 13729 } 13730 } 13731 13732 void Sema::DiagnoseSizeOfParametersAndReturnValue( 13733 ArrayRef<ParmVarDecl *> Parameters, QualType ReturnTy, NamedDecl *D) { 13734 if (LangOpts.NumLargeByValueCopy == 0) // No check. 13735 return; 13736 13737 // Warn if the return value is pass-by-value and larger than the specified 13738 // threshold. 13739 if (!ReturnTy->isDependentType() && ReturnTy.isPODType(Context)) { 13740 unsigned Size = Context.getTypeSizeInChars(ReturnTy).getQuantity(); 13741 if (Size > LangOpts.NumLargeByValueCopy) 13742 Diag(D->getLocation(), diag::warn_return_value_size) << D << Size; 13743 } 13744 13745 // Warn if any parameter is pass-by-value and larger than the specified 13746 // threshold. 13747 for (const ParmVarDecl *Parameter : Parameters) { 13748 QualType T = Parameter->getType(); 13749 if (T->isDependentType() || !T.isPODType(Context)) 13750 continue; 13751 unsigned Size = Context.getTypeSizeInChars(T).getQuantity(); 13752 if (Size > LangOpts.NumLargeByValueCopy) 13753 Diag(Parameter->getLocation(), diag::warn_parameter_size) 13754 << Parameter << Size; 13755 } 13756 } 13757 13758 ParmVarDecl *Sema::CheckParameter(DeclContext *DC, SourceLocation StartLoc, 13759 SourceLocation NameLoc, IdentifierInfo *Name, 13760 QualType T, TypeSourceInfo *TSInfo, 13761 StorageClass SC) { 13762 // In ARC, infer a lifetime qualifier for appropriate parameter types. 13763 if (getLangOpts().ObjCAutoRefCount && 13764 T.getObjCLifetime() == Qualifiers::OCL_None && 13765 T->isObjCLifetimeType()) { 13766 13767 Qualifiers::ObjCLifetime lifetime; 13768 13769 // Special cases for arrays: 13770 // - if it's const, use __unsafe_unretained 13771 // - otherwise, it's an error 13772 if (T->isArrayType()) { 13773 if (!T.isConstQualified()) { 13774 if (DelayedDiagnostics.shouldDelayDiagnostics()) 13775 DelayedDiagnostics.add( 13776 sema::DelayedDiagnostic::makeForbiddenType( 13777 NameLoc, diag::err_arc_array_param_no_ownership, T, false)); 13778 else 13779 Diag(NameLoc, diag::err_arc_array_param_no_ownership) 13780 << TSInfo->getTypeLoc().getSourceRange(); 13781 } 13782 lifetime = Qualifiers::OCL_ExplicitNone; 13783 } else { 13784 lifetime = T->getObjCARCImplicitLifetime(); 13785 } 13786 T = Context.getLifetimeQualifiedType(T, lifetime); 13787 } 13788 13789 ParmVarDecl *New = ParmVarDecl::Create(Context, DC, StartLoc, NameLoc, Name, 13790 Context.getAdjustedParameterType(T), 13791 TSInfo, SC, nullptr); 13792 13793 // Make a note if we created a new pack in the scope of a lambda, so that 13794 // we know that references to that pack must also be expanded within the 13795 // lambda scope. 13796 if (New->isParameterPack()) 13797 if (auto *LSI = getEnclosingLambda()) 13798 LSI->LocalPacks.push_back(New); 13799 13800 if (New->getType().hasNonTrivialToPrimitiveDestructCUnion() || 13801 New->getType().hasNonTrivialToPrimitiveCopyCUnion()) 13802 checkNonTrivialCUnion(New->getType(), New->getLocation(), 13803 NTCUC_FunctionParam, NTCUK_Destruct|NTCUK_Copy); 13804 13805 // Parameters can not be abstract class types. 13806 // For record types, this is done by the AbstractClassUsageDiagnoser once 13807 // the class has been completely parsed. 13808 if (!CurContext->isRecord() && 13809 RequireNonAbstractType(NameLoc, T, diag::err_abstract_type_in_decl, 13810 AbstractParamType)) 13811 New->setInvalidDecl(); 13812 13813 // Parameter declarators cannot be interface types. All ObjC objects are 13814 // passed by reference. 13815 if (T->isObjCObjectType()) { 13816 SourceLocation TypeEndLoc = 13817 getLocForEndOfToken(TSInfo->getTypeLoc().getEndLoc()); 13818 Diag(NameLoc, 13819 diag::err_object_cannot_be_passed_returned_by_value) << 1 << T 13820 << FixItHint::CreateInsertion(TypeEndLoc, "*"); 13821 T = Context.getObjCObjectPointerType(T); 13822 New->setType(T); 13823 } 13824 13825 // ISO/IEC TR 18037 S6.7.3: "The type of an object with automatic storage 13826 // duration shall not be qualified by an address-space qualifier." 13827 // Since all parameters have automatic store duration, they can not have 13828 // an address space. 13829 if (T.getAddressSpace() != LangAS::Default && 13830 // OpenCL allows function arguments declared to be an array of a type 13831 // to be qualified with an address space. 13832 !(getLangOpts().OpenCL && 13833 (T->isArrayType() || T.getAddressSpace() == LangAS::opencl_private))) { 13834 Diag(NameLoc, diag::err_arg_with_address_space); 13835 New->setInvalidDecl(); 13836 } 13837 13838 // PPC MMA non-pointer types are not allowed as function argument types. 13839 if (Context.getTargetInfo().getTriple().isPPC64() && 13840 CheckPPCMMAType(New->getOriginalType(), New->getLocation())) { 13841 New->setInvalidDecl(); 13842 } 13843 13844 return New; 13845 } 13846 13847 void Sema::ActOnFinishKNRParamDeclarations(Scope *S, Declarator &D, 13848 SourceLocation LocAfterDecls) { 13849 DeclaratorChunk::FunctionTypeInfo &FTI = D.getFunctionTypeInfo(); 13850 13851 // Verify 6.9.1p6: 'every identifier in the identifier list shall be declared' 13852 // for a K&R function. 13853 if (!FTI.hasPrototype) { 13854 for (int i = FTI.NumParams; i != 0; /* decrement in loop */) { 13855 --i; 13856 if (FTI.Params[i].Param == nullptr) { 13857 SmallString<256> Code; 13858 llvm::raw_svector_ostream(Code) 13859 << " int " << FTI.Params[i].Ident->getName() << ";\n"; 13860 Diag(FTI.Params[i].IdentLoc, diag::ext_param_not_declared) 13861 << FTI.Params[i].Ident 13862 << FixItHint::CreateInsertion(LocAfterDecls, Code); 13863 13864 // Implicitly declare the argument as type 'int' for lack of a better 13865 // type. 13866 AttributeFactory attrs; 13867 DeclSpec DS(attrs); 13868 const char* PrevSpec; // unused 13869 unsigned DiagID; // unused 13870 DS.SetTypeSpecType(DeclSpec::TST_int, FTI.Params[i].IdentLoc, PrevSpec, 13871 DiagID, Context.getPrintingPolicy()); 13872 // Use the identifier location for the type source range. 13873 DS.SetRangeStart(FTI.Params[i].IdentLoc); 13874 DS.SetRangeEnd(FTI.Params[i].IdentLoc); 13875 Declarator ParamD(DS, DeclaratorContext::KNRTypeList); 13876 ParamD.SetIdentifier(FTI.Params[i].Ident, FTI.Params[i].IdentLoc); 13877 FTI.Params[i].Param = ActOnParamDeclarator(S, ParamD); 13878 } 13879 } 13880 } 13881 } 13882 13883 Decl * 13884 Sema::ActOnStartOfFunctionDef(Scope *FnBodyScope, Declarator &D, 13885 MultiTemplateParamsArg TemplateParameterLists, 13886 SkipBodyInfo *SkipBody) { 13887 assert(getCurFunctionDecl() == nullptr && "Function parsing confused"); 13888 assert(D.isFunctionDeclarator() && "Not a function declarator!"); 13889 Scope *ParentScope = FnBodyScope->getParent(); 13890 13891 // Check if we are in an `omp begin/end declare variant` scope. If we are, and 13892 // we define a non-templated function definition, we will create a declaration 13893 // instead (=BaseFD), and emit the definition with a mangled name afterwards. 13894 // The base function declaration will have the equivalent of an `omp declare 13895 // variant` annotation which specifies the mangled definition as a 13896 // specialization function under the OpenMP context defined as part of the 13897 // `omp begin declare variant`. 13898 SmallVector<FunctionDecl *, 4> Bases; 13899 if (LangOpts.OpenMP && isInOpenMPDeclareVariantScope()) 13900 ActOnStartOfFunctionDefinitionInOpenMPDeclareVariantScope( 13901 ParentScope, D, TemplateParameterLists, Bases); 13902 13903 D.setFunctionDefinitionKind(FunctionDefinitionKind::Definition); 13904 Decl *DP = HandleDeclarator(ParentScope, D, TemplateParameterLists); 13905 Decl *Dcl = ActOnStartOfFunctionDef(FnBodyScope, DP, SkipBody); 13906 13907 if (!Bases.empty()) 13908 ActOnFinishedFunctionDefinitionInOpenMPDeclareVariantScope(Dcl, Bases); 13909 13910 return Dcl; 13911 } 13912 13913 void Sema::ActOnFinishInlineFunctionDef(FunctionDecl *D) { 13914 Consumer.HandleInlineFunctionDefinition(D); 13915 } 13916 13917 static bool 13918 ShouldWarnAboutMissingPrototype(const FunctionDecl *FD, 13919 const FunctionDecl *&PossiblePrototype) { 13920 // Don't warn about invalid declarations. 13921 if (FD->isInvalidDecl()) 13922 return false; 13923 13924 // Or declarations that aren't global. 13925 if (!FD->isGlobal()) 13926 return false; 13927 13928 // Don't warn about C++ member functions. 13929 if (isa<CXXMethodDecl>(FD)) 13930 return false; 13931 13932 // Don't warn about 'main'. 13933 if (isa<TranslationUnitDecl>(FD->getDeclContext()->getRedeclContext())) 13934 if (IdentifierInfo *II = FD->getIdentifier()) 13935 if (II->isStr("main") || II->isStr("efi_main")) 13936 return false; 13937 13938 // Don't warn about inline functions. 13939 if (FD->isInlined()) 13940 return false; 13941 13942 // Don't warn about function templates. 13943 if (FD->getDescribedFunctionTemplate()) 13944 return false; 13945 13946 // Don't warn about function template specializations. 13947 if (FD->isFunctionTemplateSpecialization()) 13948 return false; 13949 13950 // Don't warn for OpenCL kernels. 13951 if (FD->hasAttr<OpenCLKernelAttr>()) 13952 return false; 13953 13954 // Don't warn on explicitly deleted functions. 13955 if (FD->isDeleted()) 13956 return false; 13957 13958 for (const FunctionDecl *Prev = FD->getPreviousDecl(); 13959 Prev; Prev = Prev->getPreviousDecl()) { 13960 // Ignore any declarations that occur in function or method 13961 // scope, because they aren't visible from the header. 13962 if (Prev->getLexicalDeclContext()->isFunctionOrMethod()) 13963 continue; 13964 13965 PossiblePrototype = Prev; 13966 return Prev->getType()->isFunctionNoProtoType(); 13967 } 13968 13969 return true; 13970 } 13971 13972 void 13973 Sema::CheckForFunctionRedefinition(FunctionDecl *FD, 13974 const FunctionDecl *EffectiveDefinition, 13975 SkipBodyInfo *SkipBody) { 13976 const FunctionDecl *Definition = EffectiveDefinition; 13977 if (!Definition && 13978 !FD->isDefined(Definition, /*CheckForPendingFriendDefinition*/ true)) 13979 return; 13980 13981 if (Definition->getFriendObjectKind() != Decl::FOK_None) { 13982 if (FunctionDecl *OrigDef = Definition->getInstantiatedFromMemberFunction()) { 13983 if (FunctionDecl *OrigFD = FD->getInstantiatedFromMemberFunction()) { 13984 // A merged copy of the same function, instantiated as a member of 13985 // the same class, is OK. 13986 if (declaresSameEntity(OrigFD, OrigDef) && 13987 declaresSameEntity(cast<Decl>(Definition->getLexicalDeclContext()), 13988 cast<Decl>(FD->getLexicalDeclContext()))) 13989 return; 13990 } 13991 } 13992 } 13993 13994 if (canRedefineFunction(Definition, getLangOpts())) 13995 return; 13996 13997 // Don't emit an error when this is redefinition of a typo-corrected 13998 // definition. 13999 if (TypoCorrectedFunctionDefinitions.count(Definition)) 14000 return; 14001 14002 // If we don't have a visible definition of the function, and it's inline or 14003 // a template, skip the new definition. 14004 if (SkipBody && !hasVisibleDefinition(Definition) && 14005 (Definition->getFormalLinkage() == InternalLinkage || 14006 Definition->isInlined() || 14007 Definition->getDescribedFunctionTemplate() || 14008 Definition->getNumTemplateParameterLists())) { 14009 SkipBody->ShouldSkip = true; 14010 SkipBody->Previous = const_cast<FunctionDecl*>(Definition); 14011 if (auto *TD = Definition->getDescribedFunctionTemplate()) 14012 makeMergedDefinitionVisible(TD); 14013 makeMergedDefinitionVisible(const_cast<FunctionDecl*>(Definition)); 14014 return; 14015 } 14016 14017 if (getLangOpts().GNUMode && Definition->isInlineSpecified() && 14018 Definition->getStorageClass() == SC_Extern) 14019 Diag(FD->getLocation(), diag::err_redefinition_extern_inline) 14020 << FD << getLangOpts().CPlusPlus; 14021 else 14022 Diag(FD->getLocation(), diag::err_redefinition) << FD; 14023 14024 Diag(Definition->getLocation(), diag::note_previous_definition); 14025 FD->setInvalidDecl(); 14026 } 14027 14028 static void RebuildLambdaScopeInfo(CXXMethodDecl *CallOperator, 14029 Sema &S) { 14030 CXXRecordDecl *const LambdaClass = CallOperator->getParent(); 14031 14032 LambdaScopeInfo *LSI = S.PushLambdaScope(); 14033 LSI->CallOperator = CallOperator; 14034 LSI->Lambda = LambdaClass; 14035 LSI->ReturnType = CallOperator->getReturnType(); 14036 const LambdaCaptureDefault LCD = LambdaClass->getLambdaCaptureDefault(); 14037 14038 if (LCD == LCD_None) 14039 LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_None; 14040 else if (LCD == LCD_ByCopy) 14041 LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_LambdaByval; 14042 else if (LCD == LCD_ByRef) 14043 LSI->ImpCaptureStyle = CapturingScopeInfo::ImpCap_LambdaByref; 14044 DeclarationNameInfo DNI = CallOperator->getNameInfo(); 14045 14046 LSI->IntroducerRange = DNI.getCXXOperatorNameRange(); 14047 LSI->Mutable = !CallOperator->isConst(); 14048 14049 // Add the captures to the LSI so they can be noted as already 14050 // captured within tryCaptureVar. 14051 auto I = LambdaClass->field_begin(); 14052 for (const auto &C : LambdaClass->captures()) { 14053 if (C.capturesVariable()) { 14054 VarDecl *VD = C.getCapturedVar(); 14055 if (VD->isInitCapture()) 14056 S.CurrentInstantiationScope->InstantiatedLocal(VD, VD); 14057 const bool ByRef = C.getCaptureKind() == LCK_ByRef; 14058 LSI->addCapture(VD, /*IsBlock*/false, ByRef, 14059 /*RefersToEnclosingVariableOrCapture*/true, C.getLocation(), 14060 /*EllipsisLoc*/C.isPackExpansion() 14061 ? C.getEllipsisLoc() : SourceLocation(), 14062 I->getType(), /*Invalid*/false); 14063 14064 } else if (C.capturesThis()) { 14065 LSI->addThisCapture(/*Nested*/ false, C.getLocation(), I->getType(), 14066 C.getCaptureKind() == LCK_StarThis); 14067 } else { 14068 LSI->addVLATypeCapture(C.getLocation(), I->getCapturedVLAType(), 14069 I->getType()); 14070 } 14071 ++I; 14072 } 14073 } 14074 14075 Decl *Sema::ActOnStartOfFunctionDef(Scope *FnBodyScope, Decl *D, 14076 SkipBodyInfo *SkipBody) { 14077 if (!D) { 14078 // Parsing the function declaration failed in some way. Push on a fake scope 14079 // anyway so we can try to parse the function body. 14080 PushFunctionScope(); 14081 PushExpressionEvaluationContext(ExprEvalContexts.back().Context); 14082 return D; 14083 } 14084 14085 FunctionDecl *FD = nullptr; 14086 14087 if (FunctionTemplateDecl *FunTmpl = dyn_cast<FunctionTemplateDecl>(D)) 14088 FD = FunTmpl->getTemplatedDecl(); 14089 else 14090 FD = cast<FunctionDecl>(D); 14091 14092 // Do not push if it is a lambda because one is already pushed when building 14093 // the lambda in ActOnStartOfLambdaDefinition(). 14094 if (!isLambdaCallOperator(FD)) 14095 PushExpressionEvaluationContext( 14096 FD->isConsteval() ? ExpressionEvaluationContext::ConstantEvaluated 14097 : ExprEvalContexts.back().Context); 14098 14099 // Check for defining attributes before the check for redefinition. 14100 if (const auto *Attr = FD->getAttr<AliasAttr>()) { 14101 Diag(Attr->getLocation(), diag::err_alias_is_definition) << FD << 0; 14102 FD->dropAttr<AliasAttr>(); 14103 FD->setInvalidDecl(); 14104 } 14105 if (const auto *Attr = FD->getAttr<IFuncAttr>()) { 14106 Diag(Attr->getLocation(), diag::err_alias_is_definition) << FD << 1; 14107 FD->dropAttr<IFuncAttr>(); 14108 FD->setInvalidDecl(); 14109 } 14110 14111 if (auto *Ctor = dyn_cast<CXXConstructorDecl>(FD)) { 14112 if (Ctor->getTemplateSpecializationKind() == TSK_ExplicitSpecialization && 14113 Ctor->isDefaultConstructor() && 14114 Context.getTargetInfo().getCXXABI().isMicrosoft()) { 14115 // If this is an MS ABI dllexport default constructor, instantiate any 14116 // default arguments. 14117 InstantiateDefaultCtorDefaultArgs(Ctor); 14118 } 14119 } 14120 14121 // See if this is a redefinition. If 'will have body' (or similar) is already 14122 // set, then these checks were already performed when it was set. 14123 if (!FD->willHaveBody() && !FD->isLateTemplateParsed() && 14124 !FD->isThisDeclarationInstantiatedFromAFriendDefinition()) { 14125 CheckForFunctionRedefinition(FD, nullptr, SkipBody); 14126 14127 // If we're skipping the body, we're done. Don't enter the scope. 14128 if (SkipBody && SkipBody->ShouldSkip) 14129 return D; 14130 } 14131 14132 // Mark this function as "will have a body eventually". This lets users to 14133 // call e.g. isInlineDefinitionExternallyVisible while we're still parsing 14134 // this function. 14135 FD->setWillHaveBody(); 14136 14137 // If we are instantiating a generic lambda call operator, push 14138 // a LambdaScopeInfo onto the function stack. But use the information 14139 // that's already been calculated (ActOnLambdaExpr) to prime the current 14140 // LambdaScopeInfo. 14141 // When the template operator is being specialized, the LambdaScopeInfo, 14142 // has to be properly restored so that tryCaptureVariable doesn't try 14143 // and capture any new variables. In addition when calculating potential 14144 // captures during transformation of nested lambdas, it is necessary to 14145 // have the LSI properly restored. 14146 if (isGenericLambdaCallOperatorSpecialization(FD)) { 14147 assert(inTemplateInstantiation() && 14148 "There should be an active template instantiation on the stack " 14149 "when instantiating a generic lambda!"); 14150 RebuildLambdaScopeInfo(cast<CXXMethodDecl>(D), *this); 14151 } else { 14152 // Enter a new function scope 14153 PushFunctionScope(); 14154 } 14155 14156 // Builtin functions cannot be defined. 14157 if (unsigned BuiltinID = FD->getBuiltinID()) { 14158 if (!Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID) && 14159 !Context.BuiltinInfo.isPredefinedRuntimeFunction(BuiltinID)) { 14160 Diag(FD->getLocation(), diag::err_builtin_definition) << FD; 14161 FD->setInvalidDecl(); 14162 } 14163 } 14164 14165 // The return type of a function definition must be complete 14166 // (C99 6.9.1p3, C++ [dcl.fct]p6). 14167 QualType ResultType = FD->getReturnType(); 14168 if (!ResultType->isDependentType() && !ResultType->isVoidType() && 14169 !FD->isInvalidDecl() && 14170 RequireCompleteType(FD->getLocation(), ResultType, 14171 diag::err_func_def_incomplete_result)) 14172 FD->setInvalidDecl(); 14173 14174 if (FnBodyScope) 14175 PushDeclContext(FnBodyScope, FD); 14176 14177 // Check the validity of our function parameters 14178 CheckParmsForFunctionDef(FD->parameters(), 14179 /*CheckParameterNames=*/true); 14180 14181 // Add non-parameter declarations already in the function to the current 14182 // scope. 14183 if (FnBodyScope) { 14184 for (Decl *NPD : FD->decls()) { 14185 auto *NonParmDecl = dyn_cast<NamedDecl>(NPD); 14186 if (!NonParmDecl) 14187 continue; 14188 assert(!isa<ParmVarDecl>(NonParmDecl) && 14189 "parameters should not be in newly created FD yet"); 14190 14191 // If the decl has a name, make it accessible in the current scope. 14192 if (NonParmDecl->getDeclName()) 14193 PushOnScopeChains(NonParmDecl, FnBodyScope, /*AddToContext=*/false); 14194 14195 // Similarly, dive into enums and fish their constants out, making them 14196 // accessible in this scope. 14197 if (auto *ED = dyn_cast<EnumDecl>(NonParmDecl)) { 14198 for (auto *EI : ED->enumerators()) 14199 PushOnScopeChains(EI, FnBodyScope, /*AddToContext=*/false); 14200 } 14201 } 14202 } 14203 14204 // Introduce our parameters into the function scope 14205 for (auto Param : FD->parameters()) { 14206 Param->setOwningFunction(FD); 14207 14208 // If this has an identifier, add it to the scope stack. 14209 if (Param->getIdentifier() && FnBodyScope) { 14210 CheckShadow(FnBodyScope, Param); 14211 14212 PushOnScopeChains(Param, FnBodyScope); 14213 } 14214 } 14215 14216 // Ensure that the function's exception specification is instantiated. 14217 if (const FunctionProtoType *FPT = FD->getType()->getAs<FunctionProtoType>()) 14218 ResolveExceptionSpec(D->getLocation(), FPT); 14219 14220 // dllimport cannot be applied to non-inline function definitions. 14221 if (FD->hasAttr<DLLImportAttr>() && !FD->isInlined() && 14222 !FD->isTemplateInstantiation()) { 14223 assert(!FD->hasAttr<DLLExportAttr>()); 14224 Diag(FD->getLocation(), diag::err_attribute_dllimport_function_definition); 14225 FD->setInvalidDecl(); 14226 return D; 14227 } 14228 // We want to attach documentation to original Decl (which might be 14229 // a function template). 14230 ActOnDocumentableDecl(D); 14231 if (getCurLexicalContext()->isObjCContainer() && 14232 getCurLexicalContext()->getDeclKind() != Decl::ObjCCategoryImpl && 14233 getCurLexicalContext()->getDeclKind() != Decl::ObjCImplementation) 14234 Diag(FD->getLocation(), diag::warn_function_def_in_objc_container); 14235 14236 return D; 14237 } 14238 14239 /// Given the set of return statements within a function body, 14240 /// compute the variables that are subject to the named return value 14241 /// optimization. 14242 /// 14243 /// Each of the variables that is subject to the named return value 14244 /// optimization will be marked as NRVO variables in the AST, and any 14245 /// return statement that has a marked NRVO variable as its NRVO candidate can 14246 /// use the named return value optimization. 14247 /// 14248 /// This function applies a very simplistic algorithm for NRVO: if every return 14249 /// statement in the scope of a variable has the same NRVO candidate, that 14250 /// candidate is an NRVO variable. 14251 void Sema::computeNRVO(Stmt *Body, FunctionScopeInfo *Scope) { 14252 ReturnStmt **Returns = Scope->Returns.data(); 14253 14254 for (unsigned I = 0, E = Scope->Returns.size(); I != E; ++I) { 14255 if (const VarDecl *NRVOCandidate = Returns[I]->getNRVOCandidate()) { 14256 if (!NRVOCandidate->isNRVOVariable()) 14257 Returns[I]->setNRVOCandidate(nullptr); 14258 } 14259 } 14260 } 14261 14262 bool Sema::canDelayFunctionBody(const Declarator &D) { 14263 // We can't delay parsing the body of a constexpr function template (yet). 14264 if (D.getDeclSpec().hasConstexprSpecifier()) 14265 return false; 14266 14267 // We can't delay parsing the body of a function template with a deduced 14268 // return type (yet). 14269 if (D.getDeclSpec().hasAutoTypeSpec()) { 14270 // If the placeholder introduces a non-deduced trailing return type, 14271 // we can still delay parsing it. 14272 if (D.getNumTypeObjects()) { 14273 const auto &Outer = D.getTypeObject(D.getNumTypeObjects() - 1); 14274 if (Outer.Kind == DeclaratorChunk::Function && 14275 Outer.Fun.hasTrailingReturnType()) { 14276 QualType Ty = GetTypeFromParser(Outer.Fun.getTrailingReturnType()); 14277 return Ty.isNull() || !Ty->isUndeducedType(); 14278 } 14279 } 14280 return false; 14281 } 14282 14283 return true; 14284 } 14285 14286 bool Sema::canSkipFunctionBody(Decl *D) { 14287 // We cannot skip the body of a function (or function template) which is 14288 // constexpr, since we may need to evaluate its body in order to parse the 14289 // rest of the file. 14290 // We cannot skip the body of a function with an undeduced return type, 14291 // because any callers of that function need to know the type. 14292 if (const FunctionDecl *FD = D->getAsFunction()) { 14293 if (FD->isConstexpr()) 14294 return false; 14295 // We can't simply call Type::isUndeducedType here, because inside template 14296 // auto can be deduced to a dependent type, which is not considered 14297 // "undeduced". 14298 if (FD->getReturnType()->getContainedDeducedType()) 14299 return false; 14300 } 14301 return Consumer.shouldSkipFunctionBody(D); 14302 } 14303 14304 Decl *Sema::ActOnSkippedFunctionBody(Decl *Decl) { 14305 if (!Decl) 14306 return nullptr; 14307 if (FunctionDecl *FD = Decl->getAsFunction()) 14308 FD->setHasSkippedBody(); 14309 else if (ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(Decl)) 14310 MD->setHasSkippedBody(); 14311 return Decl; 14312 } 14313 14314 Decl *Sema::ActOnFinishFunctionBody(Decl *D, Stmt *BodyArg) { 14315 return ActOnFinishFunctionBody(D, BodyArg, false); 14316 } 14317 14318 /// RAII object that pops an ExpressionEvaluationContext when exiting a function 14319 /// body. 14320 class ExitFunctionBodyRAII { 14321 public: 14322 ExitFunctionBodyRAII(Sema &S, bool IsLambda) : S(S), IsLambda(IsLambda) {} 14323 ~ExitFunctionBodyRAII() { 14324 if (!IsLambda) 14325 S.PopExpressionEvaluationContext(); 14326 } 14327 14328 private: 14329 Sema &S; 14330 bool IsLambda = false; 14331 }; 14332 14333 static void diagnoseImplicitlyRetainedSelf(Sema &S) { 14334 llvm::DenseMap<const BlockDecl *, bool> EscapeInfo; 14335 14336 auto IsOrNestedInEscapingBlock = [&](const BlockDecl *BD) { 14337 if (EscapeInfo.count(BD)) 14338 return EscapeInfo[BD]; 14339 14340 bool R = false; 14341 const BlockDecl *CurBD = BD; 14342 14343 do { 14344 R = !CurBD->doesNotEscape(); 14345 if (R) 14346 break; 14347 CurBD = CurBD->getParent()->getInnermostBlockDecl(); 14348 } while (CurBD); 14349 14350 return EscapeInfo[BD] = R; 14351 }; 14352 14353 // If the location where 'self' is implicitly retained is inside a escaping 14354 // block, emit a diagnostic. 14355 for (const std::pair<SourceLocation, const BlockDecl *> &P : 14356 S.ImplicitlyRetainedSelfLocs) 14357 if (IsOrNestedInEscapingBlock(P.second)) 14358 S.Diag(P.first, diag::warn_implicitly_retains_self) 14359 << FixItHint::CreateInsertion(P.first, "self->"); 14360 } 14361 14362 Decl *Sema::ActOnFinishFunctionBody(Decl *dcl, Stmt *Body, 14363 bool IsInstantiation) { 14364 FunctionScopeInfo *FSI = getCurFunction(); 14365 FunctionDecl *FD = dcl ? dcl->getAsFunction() : nullptr; 14366 14367 if (FSI->UsesFPIntrin && !FD->hasAttr<StrictFPAttr>()) 14368 FD->addAttr(StrictFPAttr::CreateImplicit(Context)); 14369 14370 sema::AnalysisBasedWarnings::Policy WP = AnalysisWarnings.getDefaultPolicy(); 14371 sema::AnalysisBasedWarnings::Policy *ActivePolicy = nullptr; 14372 14373 if (getLangOpts().Coroutines && FSI->isCoroutine()) 14374 CheckCompletedCoroutineBody(FD, Body); 14375 14376 // Do not call PopExpressionEvaluationContext() if it is a lambda because one 14377 // is already popped when finishing the lambda in BuildLambdaExpr(). This is 14378 // meant to pop the context added in ActOnStartOfFunctionDef(). 14379 ExitFunctionBodyRAII ExitRAII(*this, isLambdaCallOperator(FD)); 14380 14381 if (FD) { 14382 FD->setBody(Body); 14383 FD->setWillHaveBody(false); 14384 14385 if (getLangOpts().CPlusPlus14) { 14386 if (!FD->isInvalidDecl() && Body && !FD->isDependentContext() && 14387 FD->getReturnType()->isUndeducedType()) { 14388 // If the function has a deduced result type but contains no 'return' 14389 // statements, the result type as written must be exactly 'auto', and 14390 // the deduced result type is 'void'. 14391 if (!FD->getReturnType()->getAs<AutoType>()) { 14392 Diag(dcl->getLocation(), diag::err_auto_fn_no_return_but_not_auto) 14393 << FD->getReturnType(); 14394 FD->setInvalidDecl(); 14395 } else { 14396 // Substitute 'void' for the 'auto' in the type. 14397 TypeLoc ResultType = getReturnTypeLoc(FD); 14398 Context.adjustDeducedFunctionResultType( 14399 FD, SubstAutoType(ResultType.getType(), Context.VoidTy)); 14400 } 14401 } 14402 } else if (getLangOpts().CPlusPlus11 && isLambdaCallOperator(FD)) { 14403 // In C++11, we don't use 'auto' deduction rules for lambda call 14404 // operators because we don't support return type deduction. 14405 auto *LSI = getCurLambda(); 14406 if (LSI->HasImplicitReturnType) { 14407 deduceClosureReturnType(*LSI); 14408 14409 // C++11 [expr.prim.lambda]p4: 14410 // [...] if there are no return statements in the compound-statement 14411 // [the deduced type is] the type void 14412 QualType RetType = 14413 LSI->ReturnType.isNull() ? Context.VoidTy : LSI->ReturnType; 14414 14415 // Update the return type to the deduced type. 14416 const auto *Proto = FD->getType()->castAs<FunctionProtoType>(); 14417 FD->setType(Context.getFunctionType(RetType, Proto->getParamTypes(), 14418 Proto->getExtProtoInfo())); 14419 } 14420 } 14421 14422 // If the function implicitly returns zero (like 'main') or is naked, 14423 // don't complain about missing return statements. 14424 if (FD->hasImplicitReturnZero() || FD->hasAttr<NakedAttr>()) 14425 WP.disableCheckFallThrough(); 14426 14427 // MSVC permits the use of pure specifier (=0) on function definition, 14428 // defined at class scope, warn about this non-standard construct. 14429 if (getLangOpts().MicrosoftExt && FD->isPure() && !FD->isOutOfLine()) 14430 Diag(FD->getLocation(), diag::ext_pure_function_definition); 14431 14432 if (!FD->isInvalidDecl()) { 14433 // Don't diagnose unused parameters of defaulted or deleted functions. 14434 if (!FD->isDeleted() && !FD->isDefaulted() && !FD->hasSkippedBody()) 14435 DiagnoseUnusedParameters(FD->parameters()); 14436 DiagnoseSizeOfParametersAndReturnValue(FD->parameters(), 14437 FD->getReturnType(), FD); 14438 14439 // If this is a structor, we need a vtable. 14440 if (CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(FD)) 14441 MarkVTableUsed(FD->getLocation(), Constructor->getParent()); 14442 else if (CXXDestructorDecl *Destructor = dyn_cast<CXXDestructorDecl>(FD)) 14443 MarkVTableUsed(FD->getLocation(), Destructor->getParent()); 14444 14445 // Try to apply the named return value optimization. We have to check 14446 // if we can do this here because lambdas keep return statements around 14447 // to deduce an implicit return type. 14448 if (FD->getReturnType()->isRecordType() && 14449 (!getLangOpts().CPlusPlus || !FD->isDependentContext())) 14450 computeNRVO(Body, FSI); 14451 } 14452 14453 // GNU warning -Wmissing-prototypes: 14454 // Warn if a global function is defined without a previous 14455 // prototype declaration. This warning is issued even if the 14456 // definition itself provides a prototype. The aim is to detect 14457 // global functions that fail to be declared in header files. 14458 const FunctionDecl *PossiblePrototype = nullptr; 14459 if (ShouldWarnAboutMissingPrototype(FD, PossiblePrototype)) { 14460 Diag(FD->getLocation(), diag::warn_missing_prototype) << FD; 14461 14462 if (PossiblePrototype) { 14463 // We found a declaration that is not a prototype, 14464 // but that could be a zero-parameter prototype 14465 if (TypeSourceInfo *TI = PossiblePrototype->getTypeSourceInfo()) { 14466 TypeLoc TL = TI->getTypeLoc(); 14467 if (FunctionNoProtoTypeLoc FTL = TL.getAs<FunctionNoProtoTypeLoc>()) 14468 Diag(PossiblePrototype->getLocation(), 14469 diag::note_declaration_not_a_prototype) 14470 << (FD->getNumParams() != 0) 14471 << (FD->getNumParams() == 0 14472 ? FixItHint::CreateInsertion(FTL.getRParenLoc(), "void") 14473 : FixItHint{}); 14474 } 14475 } else { 14476 // Returns true if the token beginning at this Loc is `const`. 14477 auto isLocAtConst = [&](SourceLocation Loc, const SourceManager &SM, 14478 const LangOptions &LangOpts) { 14479 std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(Loc); 14480 if (LocInfo.first.isInvalid()) 14481 return false; 14482 14483 bool Invalid = false; 14484 StringRef Buffer = SM.getBufferData(LocInfo.first, &Invalid); 14485 if (Invalid) 14486 return false; 14487 14488 if (LocInfo.second > Buffer.size()) 14489 return false; 14490 14491 const char *LexStart = Buffer.data() + LocInfo.second; 14492 StringRef StartTok(LexStart, Buffer.size() - LocInfo.second); 14493 14494 return StartTok.consume_front("const") && 14495 (StartTok.empty() || isWhitespace(StartTok[0]) || 14496 StartTok.startswith("/*") || StartTok.startswith("//")); 14497 }; 14498 14499 auto findBeginLoc = [&]() { 14500 // If the return type has `const` qualifier, we want to insert 14501 // `static` before `const` (and not before the typename). 14502 if ((FD->getReturnType()->isAnyPointerType() && 14503 FD->getReturnType()->getPointeeType().isConstQualified()) || 14504 FD->getReturnType().isConstQualified()) { 14505 // But only do this if we can determine where the `const` is. 14506 14507 if (isLocAtConst(FD->getBeginLoc(), getSourceManager(), 14508 getLangOpts())) 14509 14510 return FD->getBeginLoc(); 14511 } 14512 return FD->getTypeSpecStartLoc(); 14513 }; 14514 Diag(FD->getTypeSpecStartLoc(), diag::note_static_for_internal_linkage) 14515 << /* function */ 1 14516 << (FD->getStorageClass() == SC_None 14517 ? FixItHint::CreateInsertion(findBeginLoc(), "static ") 14518 : FixItHint{}); 14519 } 14520 14521 // GNU warning -Wstrict-prototypes 14522 // Warn if K&R function is defined without a previous declaration. 14523 // This warning is issued only if the definition itself does not provide 14524 // a prototype. Only K&R definitions do not provide a prototype. 14525 if (!FD->hasWrittenPrototype()) { 14526 TypeSourceInfo *TI = FD->getTypeSourceInfo(); 14527 TypeLoc TL = TI->getTypeLoc(); 14528 FunctionTypeLoc FTL = TL.getAsAdjusted<FunctionTypeLoc>(); 14529 Diag(FTL.getLParenLoc(), diag::warn_strict_prototypes) << 2; 14530 } 14531 } 14532 14533 // Warn on CPUDispatch with an actual body. 14534 if (FD->isMultiVersion() && FD->hasAttr<CPUDispatchAttr>() && Body) 14535 if (const auto *CmpndBody = dyn_cast<CompoundStmt>(Body)) 14536 if (!CmpndBody->body_empty()) 14537 Diag(CmpndBody->body_front()->getBeginLoc(), 14538 diag::warn_dispatch_body_ignored); 14539 14540 if (auto *MD = dyn_cast<CXXMethodDecl>(FD)) { 14541 const CXXMethodDecl *KeyFunction; 14542 if (MD->isOutOfLine() && (MD = MD->getCanonicalDecl()) && 14543 MD->isVirtual() && 14544 (KeyFunction = Context.getCurrentKeyFunction(MD->getParent())) && 14545 MD == KeyFunction->getCanonicalDecl()) { 14546 // Update the key-function state if necessary for this ABI. 14547 if (FD->isInlined() && 14548 !Context.getTargetInfo().getCXXABI().canKeyFunctionBeInline()) { 14549 Context.setNonKeyFunction(MD); 14550 14551 // If the newly-chosen key function is already defined, then we 14552 // need to mark the vtable as used retroactively. 14553 KeyFunction = Context.getCurrentKeyFunction(MD->getParent()); 14554 const FunctionDecl *Definition; 14555 if (KeyFunction && KeyFunction->isDefined(Definition)) 14556 MarkVTableUsed(Definition->getLocation(), MD->getParent(), true); 14557 } else { 14558 // We just defined they key function; mark the vtable as used. 14559 MarkVTableUsed(FD->getLocation(), MD->getParent(), true); 14560 } 14561 } 14562 } 14563 14564 assert((FD == getCurFunctionDecl() || getCurLambda()->CallOperator == FD) && 14565 "Function parsing confused"); 14566 } else if (ObjCMethodDecl *MD = dyn_cast_or_null<ObjCMethodDecl>(dcl)) { 14567 assert(MD == getCurMethodDecl() && "Method parsing confused"); 14568 MD->setBody(Body); 14569 if (!MD->isInvalidDecl()) { 14570 DiagnoseSizeOfParametersAndReturnValue(MD->parameters(), 14571 MD->getReturnType(), MD); 14572 14573 if (Body) 14574 computeNRVO(Body, FSI); 14575 } 14576 if (FSI->ObjCShouldCallSuper) { 14577 Diag(MD->getEndLoc(), diag::warn_objc_missing_super_call) 14578 << MD->getSelector().getAsString(); 14579 FSI->ObjCShouldCallSuper = false; 14580 } 14581 if (FSI->ObjCWarnForNoDesignatedInitChain) { 14582 const ObjCMethodDecl *InitMethod = nullptr; 14583 bool isDesignated = 14584 MD->isDesignatedInitializerForTheInterface(&InitMethod); 14585 assert(isDesignated && InitMethod); 14586 (void)isDesignated; 14587 14588 auto superIsNSObject = [&](const ObjCMethodDecl *MD) { 14589 auto IFace = MD->getClassInterface(); 14590 if (!IFace) 14591 return false; 14592 auto SuperD = IFace->getSuperClass(); 14593 if (!SuperD) 14594 return false; 14595 return SuperD->getIdentifier() == 14596 NSAPIObj->getNSClassId(NSAPI::ClassId_NSObject); 14597 }; 14598 // Don't issue this warning for unavailable inits or direct subclasses 14599 // of NSObject. 14600 if (!MD->isUnavailable() && !superIsNSObject(MD)) { 14601 Diag(MD->getLocation(), 14602 diag::warn_objc_designated_init_missing_super_call); 14603 Diag(InitMethod->getLocation(), 14604 diag::note_objc_designated_init_marked_here); 14605 } 14606 FSI->ObjCWarnForNoDesignatedInitChain = false; 14607 } 14608 if (FSI->ObjCWarnForNoInitDelegation) { 14609 // Don't issue this warning for unavaialable inits. 14610 if (!MD->isUnavailable()) 14611 Diag(MD->getLocation(), 14612 diag::warn_objc_secondary_init_missing_init_call); 14613 FSI->ObjCWarnForNoInitDelegation = false; 14614 } 14615 14616 diagnoseImplicitlyRetainedSelf(*this); 14617 } else { 14618 // Parsing the function declaration failed in some way. Pop the fake scope 14619 // we pushed on. 14620 PopFunctionScopeInfo(ActivePolicy, dcl); 14621 return nullptr; 14622 } 14623 14624 if (Body && FSI->HasPotentialAvailabilityViolations) 14625 DiagnoseUnguardedAvailabilityViolations(dcl); 14626 14627 assert(!FSI->ObjCShouldCallSuper && 14628 "This should only be set for ObjC methods, which should have been " 14629 "handled in the block above."); 14630 14631 // Verify and clean out per-function state. 14632 if (Body && (!FD || !FD->isDefaulted())) { 14633 // C++ constructors that have function-try-blocks can't have return 14634 // statements in the handlers of that block. (C++ [except.handle]p14) 14635 // Verify this. 14636 if (FD && isa<CXXConstructorDecl>(FD) && isa<CXXTryStmt>(Body)) 14637 DiagnoseReturnInConstructorExceptionHandler(cast<CXXTryStmt>(Body)); 14638 14639 // Verify that gotos and switch cases don't jump into scopes illegally. 14640 if (FSI->NeedsScopeChecking() && 14641 !PP.isCodeCompletionEnabled()) 14642 DiagnoseInvalidJumps(Body); 14643 14644 if (CXXDestructorDecl *Destructor = dyn_cast<CXXDestructorDecl>(dcl)) { 14645 if (!Destructor->getParent()->isDependentType()) 14646 CheckDestructor(Destructor); 14647 14648 MarkBaseAndMemberDestructorsReferenced(Destructor->getLocation(), 14649 Destructor->getParent()); 14650 } 14651 14652 // If any errors have occurred, clear out any temporaries that may have 14653 // been leftover. This ensures that these temporaries won't be picked up for 14654 // deletion in some later function. 14655 if (hasUncompilableErrorOccurred() || 14656 getDiagnostics().getSuppressAllDiagnostics()) { 14657 DiscardCleanupsInEvaluationContext(); 14658 } 14659 if (!hasUncompilableErrorOccurred() && 14660 !isa<FunctionTemplateDecl>(dcl)) { 14661 // Since the body is valid, issue any analysis-based warnings that are 14662 // enabled. 14663 ActivePolicy = &WP; 14664 } 14665 14666 if (!IsInstantiation && FD && FD->isConstexpr() && !FD->isInvalidDecl() && 14667 !CheckConstexprFunctionDefinition(FD, CheckConstexprKind::Diagnose)) 14668 FD->setInvalidDecl(); 14669 14670 if (FD && FD->hasAttr<NakedAttr>()) { 14671 for (const Stmt *S : Body->children()) { 14672 // Allow local register variables without initializer as they don't 14673 // require prologue. 14674 bool RegisterVariables = false; 14675 if (auto *DS = dyn_cast<DeclStmt>(S)) { 14676 for (const auto *Decl : DS->decls()) { 14677 if (const auto *Var = dyn_cast<VarDecl>(Decl)) { 14678 RegisterVariables = 14679 Var->hasAttr<AsmLabelAttr>() && !Var->hasInit(); 14680 if (!RegisterVariables) 14681 break; 14682 } 14683 } 14684 } 14685 if (RegisterVariables) 14686 continue; 14687 if (!isa<AsmStmt>(S) && !isa<NullStmt>(S)) { 14688 Diag(S->getBeginLoc(), diag::err_non_asm_stmt_in_naked_function); 14689 Diag(FD->getAttr<NakedAttr>()->getLocation(), diag::note_attribute); 14690 FD->setInvalidDecl(); 14691 break; 14692 } 14693 } 14694 } 14695 14696 assert(ExprCleanupObjects.size() == 14697 ExprEvalContexts.back().NumCleanupObjects && 14698 "Leftover temporaries in function"); 14699 assert(!Cleanup.exprNeedsCleanups() && "Unaccounted cleanups in function"); 14700 assert(MaybeODRUseExprs.empty() && 14701 "Leftover expressions for odr-use checking"); 14702 } 14703 14704 if (!IsInstantiation) 14705 PopDeclContext(); 14706 14707 PopFunctionScopeInfo(ActivePolicy, dcl); 14708 // If any errors have occurred, clear out any temporaries that may have 14709 // been leftover. This ensures that these temporaries won't be picked up for 14710 // deletion in some later function. 14711 if (hasUncompilableErrorOccurred()) { 14712 DiscardCleanupsInEvaluationContext(); 14713 } 14714 14715 if (FD && (LangOpts.OpenMP || LangOpts.CUDA || LangOpts.SYCLIsDevice)) { 14716 auto ES = getEmissionStatus(FD); 14717 if (ES == Sema::FunctionEmissionStatus::Emitted || 14718 ES == Sema::FunctionEmissionStatus::Unknown) 14719 DeclsToCheckForDeferredDiags.push_back(FD); 14720 } 14721 14722 return dcl; 14723 } 14724 14725 /// When we finish delayed parsing of an attribute, we must attach it to the 14726 /// relevant Decl. 14727 void Sema::ActOnFinishDelayedAttribute(Scope *S, Decl *D, 14728 ParsedAttributes &Attrs) { 14729 // Always attach attributes to the underlying decl. 14730 if (TemplateDecl *TD = dyn_cast<TemplateDecl>(D)) 14731 D = TD->getTemplatedDecl(); 14732 ProcessDeclAttributeList(S, D, Attrs); 14733 14734 if (CXXMethodDecl *Method = dyn_cast_or_null<CXXMethodDecl>(D)) 14735 if (Method->isStatic()) 14736 checkThisInStaticMemberFunctionAttributes(Method); 14737 } 14738 14739 /// ImplicitlyDefineFunction - An undeclared identifier was used in a function 14740 /// call, forming a call to an implicitly defined function (per C99 6.5.1p2). 14741 NamedDecl *Sema::ImplicitlyDefineFunction(SourceLocation Loc, 14742 IdentifierInfo &II, Scope *S) { 14743 // Find the scope in which the identifier is injected and the corresponding 14744 // DeclContext. 14745 // FIXME: C89 does not say what happens if there is no enclosing block scope. 14746 // In that case, we inject the declaration into the translation unit scope 14747 // instead. 14748 Scope *BlockScope = S; 14749 while (!BlockScope->isCompoundStmtScope() && BlockScope->getParent()) 14750 BlockScope = BlockScope->getParent(); 14751 14752 Scope *ContextScope = BlockScope; 14753 while (!ContextScope->getEntity()) 14754 ContextScope = ContextScope->getParent(); 14755 ContextRAII SavedContext(*this, ContextScope->getEntity()); 14756 14757 // Before we produce a declaration for an implicitly defined 14758 // function, see whether there was a locally-scoped declaration of 14759 // this name as a function or variable. If so, use that 14760 // (non-visible) declaration, and complain about it. 14761 NamedDecl *ExternCPrev = findLocallyScopedExternCDecl(&II); 14762 if (ExternCPrev) { 14763 // We still need to inject the function into the enclosing block scope so 14764 // that later (non-call) uses can see it. 14765 PushOnScopeChains(ExternCPrev, BlockScope, /*AddToContext*/false); 14766 14767 // C89 footnote 38: 14768 // If in fact it is not defined as having type "function returning int", 14769 // the behavior is undefined. 14770 if (!isa<FunctionDecl>(ExternCPrev) || 14771 !Context.typesAreCompatible( 14772 cast<FunctionDecl>(ExternCPrev)->getType(), 14773 Context.getFunctionNoProtoType(Context.IntTy))) { 14774 Diag(Loc, diag::ext_use_out_of_scope_declaration) 14775 << ExternCPrev << !getLangOpts().C99; 14776 Diag(ExternCPrev->getLocation(), diag::note_previous_declaration); 14777 return ExternCPrev; 14778 } 14779 } 14780 14781 // Extension in C99. Legal in C90, but warn about it. 14782 unsigned diag_id; 14783 if (II.getName().startswith("__builtin_")) 14784 diag_id = diag::warn_builtin_unknown; 14785 // OpenCL v2.0 s6.9.u - Implicit function declaration is not supported. 14786 else if (getLangOpts().OpenCL) 14787 diag_id = diag::err_opencl_implicit_function_decl; 14788 else if (getLangOpts().C99) 14789 diag_id = diag::ext_implicit_function_decl; 14790 else 14791 diag_id = diag::warn_implicit_function_decl; 14792 Diag(Loc, diag_id) << &II; 14793 14794 // If we found a prior declaration of this function, don't bother building 14795 // another one. We've already pushed that one into scope, so there's nothing 14796 // more to do. 14797 if (ExternCPrev) 14798 return ExternCPrev; 14799 14800 // Because typo correction is expensive, only do it if the implicit 14801 // function declaration is going to be treated as an error. 14802 if (Diags.getDiagnosticLevel(diag_id, Loc) >= DiagnosticsEngine::Error) { 14803 TypoCorrection Corrected; 14804 DeclFilterCCC<FunctionDecl> CCC{}; 14805 if (S && (Corrected = 14806 CorrectTypo(DeclarationNameInfo(&II, Loc), LookupOrdinaryName, 14807 S, nullptr, CCC, CTK_NonError))) 14808 diagnoseTypo(Corrected, PDiag(diag::note_function_suggestion), 14809 /*ErrorRecovery*/false); 14810 } 14811 14812 // Set a Declarator for the implicit definition: int foo(); 14813 const char *Dummy; 14814 AttributeFactory attrFactory; 14815 DeclSpec DS(attrFactory); 14816 unsigned DiagID; 14817 bool Error = DS.SetTypeSpecType(DeclSpec::TST_int, Loc, Dummy, DiagID, 14818 Context.getPrintingPolicy()); 14819 (void)Error; // Silence warning. 14820 assert(!Error && "Error setting up implicit decl!"); 14821 SourceLocation NoLoc; 14822 Declarator D(DS, DeclaratorContext::Block); 14823 D.AddTypeInfo(DeclaratorChunk::getFunction(/*HasProto=*/false, 14824 /*IsAmbiguous=*/false, 14825 /*LParenLoc=*/NoLoc, 14826 /*Params=*/nullptr, 14827 /*NumParams=*/0, 14828 /*EllipsisLoc=*/NoLoc, 14829 /*RParenLoc=*/NoLoc, 14830 /*RefQualifierIsLvalueRef=*/true, 14831 /*RefQualifierLoc=*/NoLoc, 14832 /*MutableLoc=*/NoLoc, EST_None, 14833 /*ESpecRange=*/SourceRange(), 14834 /*Exceptions=*/nullptr, 14835 /*ExceptionRanges=*/nullptr, 14836 /*NumExceptions=*/0, 14837 /*NoexceptExpr=*/nullptr, 14838 /*ExceptionSpecTokens=*/nullptr, 14839 /*DeclsInPrototype=*/None, Loc, 14840 Loc, D), 14841 std::move(DS.getAttributes()), SourceLocation()); 14842 D.SetIdentifier(&II, Loc); 14843 14844 // Insert this function into the enclosing block scope. 14845 FunctionDecl *FD = cast<FunctionDecl>(ActOnDeclarator(BlockScope, D)); 14846 FD->setImplicit(); 14847 14848 AddKnownFunctionAttributes(FD); 14849 14850 return FD; 14851 } 14852 14853 /// If this function is a C++ replaceable global allocation function 14854 /// (C++2a [basic.stc.dynamic.allocation], C++2a [new.delete]), 14855 /// adds any function attributes that we know a priori based on the standard. 14856 /// 14857 /// We need to check for duplicate attributes both here and where user-written 14858 /// attributes are applied to declarations. 14859 void Sema::AddKnownFunctionAttributesForReplaceableGlobalAllocationFunction( 14860 FunctionDecl *FD) { 14861 if (FD->isInvalidDecl()) 14862 return; 14863 14864 if (FD->getDeclName().getCXXOverloadedOperator() != OO_New && 14865 FD->getDeclName().getCXXOverloadedOperator() != OO_Array_New) 14866 return; 14867 14868 Optional<unsigned> AlignmentParam; 14869 bool IsNothrow = false; 14870 if (!FD->isReplaceableGlobalAllocationFunction(&AlignmentParam, &IsNothrow)) 14871 return; 14872 14873 // C++2a [basic.stc.dynamic.allocation]p4: 14874 // An allocation function that has a non-throwing exception specification 14875 // indicates failure by returning a null pointer value. Any other allocation 14876 // function never returns a null pointer value and indicates failure only by 14877 // throwing an exception [...] 14878 if (!IsNothrow && !FD->hasAttr<ReturnsNonNullAttr>()) 14879 FD->addAttr(ReturnsNonNullAttr::CreateImplicit(Context, FD->getLocation())); 14880 14881 // C++2a [basic.stc.dynamic.allocation]p2: 14882 // An allocation function attempts to allocate the requested amount of 14883 // storage. [...] If the request succeeds, the value returned by a 14884 // replaceable allocation function is a [...] pointer value p0 different 14885 // from any previously returned value p1 [...] 14886 // 14887 // However, this particular information is being added in codegen, 14888 // because there is an opt-out switch for it (-fno-assume-sane-operator-new) 14889 14890 // C++2a [basic.stc.dynamic.allocation]p2: 14891 // An allocation function attempts to allocate the requested amount of 14892 // storage. If it is successful, it returns the address of the start of a 14893 // block of storage whose length in bytes is at least as large as the 14894 // requested size. 14895 if (!FD->hasAttr<AllocSizeAttr>()) { 14896 FD->addAttr(AllocSizeAttr::CreateImplicit( 14897 Context, /*ElemSizeParam=*/ParamIdx(1, FD), 14898 /*NumElemsParam=*/ParamIdx(), FD->getLocation())); 14899 } 14900 14901 // C++2a [basic.stc.dynamic.allocation]p3: 14902 // For an allocation function [...], the pointer returned on a successful 14903 // call shall represent the address of storage that is aligned as follows: 14904 // (3.1) If the allocation function takes an argument of type 14905 // std::align_val_t, the storage will have the alignment 14906 // specified by the value of this argument. 14907 if (AlignmentParam.hasValue() && !FD->hasAttr<AllocAlignAttr>()) { 14908 FD->addAttr(AllocAlignAttr::CreateImplicit( 14909 Context, ParamIdx(AlignmentParam.getValue(), FD), FD->getLocation())); 14910 } 14911 14912 // FIXME: 14913 // C++2a [basic.stc.dynamic.allocation]p3: 14914 // For an allocation function [...], the pointer returned on a successful 14915 // call shall represent the address of storage that is aligned as follows: 14916 // (3.2) Otherwise, if the allocation function is named operator new[], 14917 // the storage is aligned for any object that does not have 14918 // new-extended alignment ([basic.align]) and is no larger than the 14919 // requested size. 14920 // (3.3) Otherwise, the storage is aligned for any object that does not 14921 // have new-extended alignment and is of the requested size. 14922 } 14923 14924 /// Adds any function attributes that we know a priori based on 14925 /// the declaration of this function. 14926 /// 14927 /// These attributes can apply both to implicitly-declared builtins 14928 /// (like __builtin___printf_chk) or to library-declared functions 14929 /// like NSLog or printf. 14930 /// 14931 /// We need to check for duplicate attributes both here and where user-written 14932 /// attributes are applied to declarations. 14933 void Sema::AddKnownFunctionAttributes(FunctionDecl *FD) { 14934 if (FD->isInvalidDecl()) 14935 return; 14936 14937 // If this is a built-in function, map its builtin attributes to 14938 // actual attributes. 14939 if (unsigned BuiltinID = FD->getBuiltinID()) { 14940 // Handle printf-formatting attributes. 14941 unsigned FormatIdx; 14942 bool HasVAListArg; 14943 if (Context.BuiltinInfo.isPrintfLike(BuiltinID, FormatIdx, HasVAListArg)) { 14944 if (!FD->hasAttr<FormatAttr>()) { 14945 const char *fmt = "printf"; 14946 unsigned int NumParams = FD->getNumParams(); 14947 if (FormatIdx < NumParams && // NumParams may be 0 (e.g. vfprintf) 14948 FD->getParamDecl(FormatIdx)->getType()->isObjCObjectPointerType()) 14949 fmt = "NSString"; 14950 FD->addAttr(FormatAttr::CreateImplicit(Context, 14951 &Context.Idents.get(fmt), 14952 FormatIdx+1, 14953 HasVAListArg ? 0 : FormatIdx+2, 14954 FD->getLocation())); 14955 } 14956 } 14957 if (Context.BuiltinInfo.isScanfLike(BuiltinID, FormatIdx, 14958 HasVAListArg)) { 14959 if (!FD->hasAttr<FormatAttr>()) 14960 FD->addAttr(FormatAttr::CreateImplicit(Context, 14961 &Context.Idents.get("scanf"), 14962 FormatIdx+1, 14963 HasVAListArg ? 0 : FormatIdx+2, 14964 FD->getLocation())); 14965 } 14966 14967 // Handle automatically recognized callbacks. 14968 SmallVector<int, 4> Encoding; 14969 if (!FD->hasAttr<CallbackAttr>() && 14970 Context.BuiltinInfo.performsCallback(BuiltinID, Encoding)) 14971 FD->addAttr(CallbackAttr::CreateImplicit( 14972 Context, Encoding.data(), Encoding.size(), FD->getLocation())); 14973 14974 // Mark const if we don't care about errno and that is the only thing 14975 // preventing the function from being const. This allows IRgen to use LLVM 14976 // intrinsics for such functions. 14977 if (!getLangOpts().MathErrno && !FD->hasAttr<ConstAttr>() && 14978 Context.BuiltinInfo.isConstWithoutErrno(BuiltinID)) 14979 FD->addAttr(ConstAttr::CreateImplicit(Context, FD->getLocation())); 14980 14981 // We make "fma" on some platforms const because we know it does not set 14982 // errno in those environments even though it could set errno based on the 14983 // C standard. 14984 const llvm::Triple &Trip = Context.getTargetInfo().getTriple(); 14985 if ((Trip.isGNUEnvironment() || Trip.isAndroid() || Trip.isOSMSVCRT()) && 14986 !FD->hasAttr<ConstAttr>()) { 14987 switch (BuiltinID) { 14988 case Builtin::BI__builtin_fma: 14989 case Builtin::BI__builtin_fmaf: 14990 case Builtin::BI__builtin_fmal: 14991 case Builtin::BIfma: 14992 case Builtin::BIfmaf: 14993 case Builtin::BIfmal: 14994 FD->addAttr(ConstAttr::CreateImplicit(Context, FD->getLocation())); 14995 break; 14996 default: 14997 break; 14998 } 14999 } 15000 15001 if (Context.BuiltinInfo.isReturnsTwice(BuiltinID) && 15002 !FD->hasAttr<ReturnsTwiceAttr>()) 15003 FD->addAttr(ReturnsTwiceAttr::CreateImplicit(Context, 15004 FD->getLocation())); 15005 if (Context.BuiltinInfo.isNoThrow(BuiltinID) && !FD->hasAttr<NoThrowAttr>()) 15006 FD->addAttr(NoThrowAttr::CreateImplicit(Context, FD->getLocation())); 15007 if (Context.BuiltinInfo.isPure(BuiltinID) && !FD->hasAttr<PureAttr>()) 15008 FD->addAttr(PureAttr::CreateImplicit(Context, FD->getLocation())); 15009 if (Context.BuiltinInfo.isConst(BuiltinID) && !FD->hasAttr<ConstAttr>()) 15010 FD->addAttr(ConstAttr::CreateImplicit(Context, FD->getLocation())); 15011 if (getLangOpts().CUDA && Context.BuiltinInfo.isTSBuiltin(BuiltinID) && 15012 !FD->hasAttr<CUDADeviceAttr>() && !FD->hasAttr<CUDAHostAttr>()) { 15013 // Add the appropriate attribute, depending on the CUDA compilation mode 15014 // and which target the builtin belongs to. For example, during host 15015 // compilation, aux builtins are __device__, while the rest are __host__. 15016 if (getLangOpts().CUDAIsDevice != 15017 Context.BuiltinInfo.isAuxBuiltinID(BuiltinID)) 15018 FD->addAttr(CUDADeviceAttr::CreateImplicit(Context, FD->getLocation())); 15019 else 15020 FD->addAttr(CUDAHostAttr::CreateImplicit(Context, FD->getLocation())); 15021 } 15022 } 15023 15024 AddKnownFunctionAttributesForReplaceableGlobalAllocationFunction(FD); 15025 15026 // If C++ exceptions are enabled but we are told extern "C" functions cannot 15027 // throw, add an implicit nothrow attribute to any extern "C" function we come 15028 // across. 15029 if (getLangOpts().CXXExceptions && getLangOpts().ExternCNoUnwind && 15030 FD->isExternC() && !FD->hasAttr<NoThrowAttr>()) { 15031 const auto *FPT = FD->getType()->getAs<FunctionProtoType>(); 15032 if (!FPT || FPT->getExceptionSpecType() == EST_None) 15033 FD->addAttr(NoThrowAttr::CreateImplicit(Context, FD->getLocation())); 15034 } 15035 15036 IdentifierInfo *Name = FD->getIdentifier(); 15037 if (!Name) 15038 return; 15039 if ((!getLangOpts().CPlusPlus && 15040 FD->getDeclContext()->isTranslationUnit()) || 15041 (isa<LinkageSpecDecl>(FD->getDeclContext()) && 15042 cast<LinkageSpecDecl>(FD->getDeclContext())->getLanguage() == 15043 LinkageSpecDecl::lang_c)) { 15044 // Okay: this could be a libc/libm/Objective-C function we know 15045 // about. 15046 } else 15047 return; 15048 15049 if (Name->isStr("asprintf") || Name->isStr("vasprintf")) { 15050 // FIXME: asprintf and vasprintf aren't C99 functions. Should they be 15051 // target-specific builtins, perhaps? 15052 if (!FD->hasAttr<FormatAttr>()) 15053 FD->addAttr(FormatAttr::CreateImplicit(Context, 15054 &Context.Idents.get("printf"), 2, 15055 Name->isStr("vasprintf") ? 0 : 3, 15056 FD->getLocation())); 15057 } 15058 15059 if (Name->isStr("__CFStringMakeConstantString")) { 15060 // We already have a __builtin___CFStringMakeConstantString, 15061 // but builds that use -fno-constant-cfstrings don't go through that. 15062 if (!FD->hasAttr<FormatArgAttr>()) 15063 FD->addAttr(FormatArgAttr::CreateImplicit(Context, ParamIdx(1, FD), 15064 FD->getLocation())); 15065 } 15066 } 15067 15068 TypedefDecl *Sema::ParseTypedefDecl(Scope *S, Declarator &D, QualType T, 15069 TypeSourceInfo *TInfo) { 15070 assert(D.getIdentifier() && "Wrong callback for declspec without declarator"); 15071 assert(!T.isNull() && "GetTypeForDeclarator() returned null type"); 15072 15073 if (!TInfo) { 15074 assert(D.isInvalidType() && "no declarator info for valid type"); 15075 TInfo = Context.getTrivialTypeSourceInfo(T); 15076 } 15077 15078 // Scope manipulation handled by caller. 15079 TypedefDecl *NewTD = 15080 TypedefDecl::Create(Context, CurContext, D.getBeginLoc(), 15081 D.getIdentifierLoc(), D.getIdentifier(), TInfo); 15082 15083 // Bail out immediately if we have an invalid declaration. 15084 if (D.isInvalidType()) { 15085 NewTD->setInvalidDecl(); 15086 return NewTD; 15087 } 15088 15089 if (D.getDeclSpec().isModulePrivateSpecified()) { 15090 if (CurContext->isFunctionOrMethod()) 15091 Diag(NewTD->getLocation(), diag::err_module_private_local) 15092 << 2 << NewTD 15093 << SourceRange(D.getDeclSpec().getModulePrivateSpecLoc()) 15094 << FixItHint::CreateRemoval( 15095 D.getDeclSpec().getModulePrivateSpecLoc()); 15096 else 15097 NewTD->setModulePrivate(); 15098 } 15099 15100 // C++ [dcl.typedef]p8: 15101 // If the typedef declaration defines an unnamed class (or 15102 // enum), the first typedef-name declared by the declaration 15103 // to be that class type (or enum type) is used to denote the 15104 // class type (or enum type) for linkage purposes only. 15105 // We need to check whether the type was declared in the declaration. 15106 switch (D.getDeclSpec().getTypeSpecType()) { 15107 case TST_enum: 15108 case TST_struct: 15109 case TST_interface: 15110 case TST_union: 15111 case TST_class: { 15112 TagDecl *tagFromDeclSpec = cast<TagDecl>(D.getDeclSpec().getRepAsDecl()); 15113 setTagNameForLinkagePurposes(tagFromDeclSpec, NewTD); 15114 break; 15115 } 15116 15117 default: 15118 break; 15119 } 15120 15121 return NewTD; 15122 } 15123 15124 /// Check that this is a valid underlying type for an enum declaration. 15125 bool Sema::CheckEnumUnderlyingType(TypeSourceInfo *TI) { 15126 SourceLocation UnderlyingLoc = TI->getTypeLoc().getBeginLoc(); 15127 QualType T = TI->getType(); 15128 15129 if (T->isDependentType()) 15130 return false; 15131 15132 // This doesn't use 'isIntegralType' despite the error message mentioning 15133 // integral type because isIntegralType would also allow enum types in C. 15134 if (const BuiltinType *BT = T->getAs<BuiltinType>()) 15135 if (BT->isInteger()) 15136 return false; 15137 15138 if (T->isExtIntType()) 15139 return false; 15140 15141 return Diag(UnderlyingLoc, diag::err_enum_invalid_underlying) << T; 15142 } 15143 15144 /// Check whether this is a valid redeclaration of a previous enumeration. 15145 /// \return true if the redeclaration was invalid. 15146 bool Sema::CheckEnumRedeclaration(SourceLocation EnumLoc, bool IsScoped, 15147 QualType EnumUnderlyingTy, bool IsFixed, 15148 const EnumDecl *Prev) { 15149 if (IsScoped != Prev->isScoped()) { 15150 Diag(EnumLoc, diag::err_enum_redeclare_scoped_mismatch) 15151 << Prev->isScoped(); 15152 Diag(Prev->getLocation(), diag::note_previous_declaration); 15153 return true; 15154 } 15155 15156 if (IsFixed && Prev->isFixed()) { 15157 if (!EnumUnderlyingTy->isDependentType() && 15158 !Prev->getIntegerType()->isDependentType() && 15159 !Context.hasSameUnqualifiedType(EnumUnderlyingTy, 15160 Prev->getIntegerType())) { 15161 // TODO: Highlight the underlying type of the redeclaration. 15162 Diag(EnumLoc, diag::err_enum_redeclare_type_mismatch) 15163 << EnumUnderlyingTy << Prev->getIntegerType(); 15164 Diag(Prev->getLocation(), diag::note_previous_declaration) 15165 << Prev->getIntegerTypeRange(); 15166 return true; 15167 } 15168 } else if (IsFixed != Prev->isFixed()) { 15169 Diag(EnumLoc, diag::err_enum_redeclare_fixed_mismatch) 15170 << Prev->isFixed(); 15171 Diag(Prev->getLocation(), diag::note_previous_declaration); 15172 return true; 15173 } 15174 15175 return false; 15176 } 15177 15178 /// Get diagnostic %select index for tag kind for 15179 /// redeclaration diagnostic message. 15180 /// WARNING: Indexes apply to particular diagnostics only! 15181 /// 15182 /// \returns diagnostic %select index. 15183 static unsigned getRedeclDiagFromTagKind(TagTypeKind Tag) { 15184 switch (Tag) { 15185 case TTK_Struct: return 0; 15186 case TTK_Interface: return 1; 15187 case TTK_Class: return 2; 15188 default: llvm_unreachable("Invalid tag kind for redecl diagnostic!"); 15189 } 15190 } 15191 15192 /// Determine if tag kind is a class-key compatible with 15193 /// class for redeclaration (class, struct, or __interface). 15194 /// 15195 /// \returns true iff the tag kind is compatible. 15196 static bool isClassCompatTagKind(TagTypeKind Tag) 15197 { 15198 return Tag == TTK_Struct || Tag == TTK_Class || Tag == TTK_Interface; 15199 } 15200 15201 Sema::NonTagKind Sema::getNonTagTypeDeclKind(const Decl *PrevDecl, 15202 TagTypeKind TTK) { 15203 if (isa<TypedefDecl>(PrevDecl)) 15204 return NTK_Typedef; 15205 else if (isa<TypeAliasDecl>(PrevDecl)) 15206 return NTK_TypeAlias; 15207 else if (isa<ClassTemplateDecl>(PrevDecl)) 15208 return NTK_Template; 15209 else if (isa<TypeAliasTemplateDecl>(PrevDecl)) 15210 return NTK_TypeAliasTemplate; 15211 else if (isa<TemplateTemplateParmDecl>(PrevDecl)) 15212 return NTK_TemplateTemplateArgument; 15213 switch (TTK) { 15214 case TTK_Struct: 15215 case TTK_Interface: 15216 case TTK_Class: 15217 return getLangOpts().CPlusPlus ? NTK_NonClass : NTK_NonStruct; 15218 case TTK_Union: 15219 return NTK_NonUnion; 15220 case TTK_Enum: 15221 return NTK_NonEnum; 15222 } 15223 llvm_unreachable("invalid TTK"); 15224 } 15225 15226 /// Determine whether a tag with a given kind is acceptable 15227 /// as a redeclaration of the given tag declaration. 15228 /// 15229 /// \returns true if the new tag kind is acceptable, false otherwise. 15230 bool Sema::isAcceptableTagRedeclaration(const TagDecl *Previous, 15231 TagTypeKind NewTag, bool isDefinition, 15232 SourceLocation NewTagLoc, 15233 const IdentifierInfo *Name) { 15234 // C++ [dcl.type.elab]p3: 15235 // The class-key or enum keyword present in the 15236 // elaborated-type-specifier shall agree in kind with the 15237 // declaration to which the name in the elaborated-type-specifier 15238 // refers. This rule also applies to the form of 15239 // elaborated-type-specifier that declares a class-name or 15240 // friend class since it can be construed as referring to the 15241 // definition of the class. Thus, in any 15242 // elaborated-type-specifier, the enum keyword shall be used to 15243 // refer to an enumeration (7.2), the union class-key shall be 15244 // used to refer to a union (clause 9), and either the class or 15245 // struct class-key shall be used to refer to a class (clause 9) 15246 // declared using the class or struct class-key. 15247 TagTypeKind OldTag = Previous->getTagKind(); 15248 if (OldTag != NewTag && 15249 !(isClassCompatTagKind(OldTag) && isClassCompatTagKind(NewTag))) 15250 return false; 15251 15252 // Tags are compatible, but we might still want to warn on mismatched tags. 15253 // Non-class tags can't be mismatched at this point. 15254 if (!isClassCompatTagKind(NewTag)) 15255 return true; 15256 15257 // Declarations for which -Wmismatched-tags is disabled are entirely ignored 15258 // by our warning analysis. We don't want to warn about mismatches with (eg) 15259 // declarations in system headers that are designed to be specialized, but if 15260 // a user asks us to warn, we should warn if their code contains mismatched 15261 // declarations. 15262 auto IsIgnoredLoc = [&](SourceLocation Loc) { 15263 return getDiagnostics().isIgnored(diag::warn_struct_class_tag_mismatch, 15264 Loc); 15265 }; 15266 if (IsIgnoredLoc(NewTagLoc)) 15267 return true; 15268 15269 auto IsIgnored = [&](const TagDecl *Tag) { 15270 return IsIgnoredLoc(Tag->getLocation()); 15271 }; 15272 while (IsIgnored(Previous)) { 15273 Previous = Previous->getPreviousDecl(); 15274 if (!Previous) 15275 return true; 15276 OldTag = Previous->getTagKind(); 15277 } 15278 15279 bool isTemplate = false; 15280 if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(Previous)) 15281 isTemplate = Record->getDescribedClassTemplate(); 15282 15283 if (inTemplateInstantiation()) { 15284 if (OldTag != NewTag) { 15285 // In a template instantiation, do not offer fix-its for tag mismatches 15286 // since they usually mess up the template instead of fixing the problem. 15287 Diag(NewTagLoc, diag::warn_struct_class_tag_mismatch) 15288 << getRedeclDiagFromTagKind(NewTag) << isTemplate << Name 15289 << getRedeclDiagFromTagKind(OldTag); 15290 // FIXME: Note previous location? 15291 } 15292 return true; 15293 } 15294 15295 if (isDefinition) { 15296 // On definitions, check all previous tags and issue a fix-it for each 15297 // one that doesn't match the current tag. 15298 if (Previous->getDefinition()) { 15299 // Don't suggest fix-its for redefinitions. 15300 return true; 15301 } 15302 15303 bool previousMismatch = false; 15304 for (const TagDecl *I : Previous->redecls()) { 15305 if (I->getTagKind() != NewTag) { 15306 // Ignore previous declarations for which the warning was disabled. 15307 if (IsIgnored(I)) 15308 continue; 15309 15310 if (!previousMismatch) { 15311 previousMismatch = true; 15312 Diag(NewTagLoc, diag::warn_struct_class_previous_tag_mismatch) 15313 << getRedeclDiagFromTagKind(NewTag) << isTemplate << Name 15314 << getRedeclDiagFromTagKind(I->getTagKind()); 15315 } 15316 Diag(I->getInnerLocStart(), diag::note_struct_class_suggestion) 15317 << getRedeclDiagFromTagKind(NewTag) 15318 << FixItHint::CreateReplacement(I->getInnerLocStart(), 15319 TypeWithKeyword::getTagTypeKindName(NewTag)); 15320 } 15321 } 15322 return true; 15323 } 15324 15325 // Identify the prevailing tag kind: this is the kind of the definition (if 15326 // there is a non-ignored definition), or otherwise the kind of the prior 15327 // (non-ignored) declaration. 15328 const TagDecl *PrevDef = Previous->getDefinition(); 15329 if (PrevDef && IsIgnored(PrevDef)) 15330 PrevDef = nullptr; 15331 const TagDecl *Redecl = PrevDef ? PrevDef : Previous; 15332 if (Redecl->getTagKind() != NewTag) { 15333 Diag(NewTagLoc, diag::warn_struct_class_tag_mismatch) 15334 << getRedeclDiagFromTagKind(NewTag) << isTemplate << Name 15335 << getRedeclDiagFromTagKind(OldTag); 15336 Diag(Redecl->getLocation(), diag::note_previous_use); 15337 15338 // If there is a previous definition, suggest a fix-it. 15339 if (PrevDef) { 15340 Diag(NewTagLoc, diag::note_struct_class_suggestion) 15341 << getRedeclDiagFromTagKind(Redecl->getTagKind()) 15342 << FixItHint::CreateReplacement(SourceRange(NewTagLoc), 15343 TypeWithKeyword::getTagTypeKindName(Redecl->getTagKind())); 15344 } 15345 } 15346 15347 return true; 15348 } 15349 15350 /// Add a minimal nested name specifier fixit hint to allow lookup of a tag name 15351 /// from an outer enclosing namespace or file scope inside a friend declaration. 15352 /// This should provide the commented out code in the following snippet: 15353 /// namespace N { 15354 /// struct X; 15355 /// namespace M { 15356 /// struct Y { friend struct /*N::*/ X; }; 15357 /// } 15358 /// } 15359 static FixItHint createFriendTagNNSFixIt(Sema &SemaRef, NamedDecl *ND, Scope *S, 15360 SourceLocation NameLoc) { 15361 // While the decl is in a namespace, do repeated lookup of that name and see 15362 // if we get the same namespace back. If we do not, continue until 15363 // translation unit scope, at which point we have a fully qualified NNS. 15364 SmallVector<IdentifierInfo *, 4> Namespaces; 15365 DeclContext *DC = ND->getDeclContext()->getRedeclContext(); 15366 for (; !DC->isTranslationUnit(); DC = DC->getParent()) { 15367 // This tag should be declared in a namespace, which can only be enclosed by 15368 // other namespaces. Bail if there's an anonymous namespace in the chain. 15369 NamespaceDecl *Namespace = dyn_cast<NamespaceDecl>(DC); 15370 if (!Namespace || Namespace->isAnonymousNamespace()) 15371 return FixItHint(); 15372 IdentifierInfo *II = Namespace->getIdentifier(); 15373 Namespaces.push_back(II); 15374 NamedDecl *Lookup = SemaRef.LookupSingleName( 15375 S, II, NameLoc, Sema::LookupNestedNameSpecifierName); 15376 if (Lookup == Namespace) 15377 break; 15378 } 15379 15380 // Once we have all the namespaces, reverse them to go outermost first, and 15381 // build an NNS. 15382 SmallString<64> Insertion; 15383 llvm::raw_svector_ostream OS(Insertion); 15384 if (DC->isTranslationUnit()) 15385 OS << "::"; 15386 std::reverse(Namespaces.begin(), Namespaces.end()); 15387 for (auto *II : Namespaces) 15388 OS << II->getName() << "::"; 15389 return FixItHint::CreateInsertion(NameLoc, Insertion); 15390 } 15391 15392 /// Determine whether a tag originally declared in context \p OldDC can 15393 /// be redeclared with an unqualified name in \p NewDC (assuming name lookup 15394 /// found a declaration in \p OldDC as a previous decl, perhaps through a 15395 /// using-declaration). 15396 static bool isAcceptableTagRedeclContext(Sema &S, DeclContext *OldDC, 15397 DeclContext *NewDC) { 15398 OldDC = OldDC->getRedeclContext(); 15399 NewDC = NewDC->getRedeclContext(); 15400 15401 if (OldDC->Equals(NewDC)) 15402 return true; 15403 15404 // In MSVC mode, we allow a redeclaration if the contexts are related (either 15405 // encloses the other). 15406 if (S.getLangOpts().MSVCCompat && 15407 (OldDC->Encloses(NewDC) || NewDC->Encloses(OldDC))) 15408 return true; 15409 15410 return false; 15411 } 15412 15413 /// This is invoked when we see 'struct foo' or 'struct {'. In the 15414 /// former case, Name will be non-null. In the later case, Name will be null. 15415 /// TagSpec indicates what kind of tag this is. TUK indicates whether this is a 15416 /// reference/declaration/definition of a tag. 15417 /// 15418 /// \param IsTypeSpecifier \c true if this is a type-specifier (or 15419 /// trailing-type-specifier) other than one in an alias-declaration. 15420 /// 15421 /// \param SkipBody If non-null, will be set to indicate if the caller should 15422 /// skip the definition of this tag and treat it as if it were a declaration. 15423 Decl *Sema::ActOnTag(Scope *S, unsigned TagSpec, TagUseKind TUK, 15424 SourceLocation KWLoc, CXXScopeSpec &SS, 15425 IdentifierInfo *Name, SourceLocation NameLoc, 15426 const ParsedAttributesView &Attrs, AccessSpecifier AS, 15427 SourceLocation ModulePrivateLoc, 15428 MultiTemplateParamsArg TemplateParameterLists, 15429 bool &OwnedDecl, bool &IsDependent, 15430 SourceLocation ScopedEnumKWLoc, 15431 bool ScopedEnumUsesClassTag, TypeResult UnderlyingType, 15432 bool IsTypeSpecifier, bool IsTemplateParamOrArg, 15433 SkipBodyInfo *SkipBody) { 15434 // If this is not a definition, it must have a name. 15435 IdentifierInfo *OrigName = Name; 15436 assert((Name != nullptr || TUK == TUK_Definition) && 15437 "Nameless record must be a definition!"); 15438 assert(TemplateParameterLists.size() == 0 || TUK != TUK_Reference); 15439 15440 OwnedDecl = false; 15441 TagTypeKind Kind = TypeWithKeyword::getTagTypeKindForTypeSpec(TagSpec); 15442 bool ScopedEnum = ScopedEnumKWLoc.isValid(); 15443 15444 // FIXME: Check member specializations more carefully. 15445 bool isMemberSpecialization = false; 15446 bool Invalid = false; 15447 15448 // We only need to do this matching if we have template parameters 15449 // or a scope specifier, which also conveniently avoids this work 15450 // for non-C++ cases. 15451 if (TemplateParameterLists.size() > 0 || 15452 (SS.isNotEmpty() && TUK != TUK_Reference)) { 15453 if (TemplateParameterList *TemplateParams = 15454 MatchTemplateParametersToScopeSpecifier( 15455 KWLoc, NameLoc, SS, nullptr, TemplateParameterLists, 15456 TUK == TUK_Friend, isMemberSpecialization, Invalid)) { 15457 if (Kind == TTK_Enum) { 15458 Diag(KWLoc, diag::err_enum_template); 15459 return nullptr; 15460 } 15461 15462 if (TemplateParams->size() > 0) { 15463 // This is a declaration or definition of a class template (which may 15464 // be a member of another template). 15465 15466 if (Invalid) 15467 return nullptr; 15468 15469 OwnedDecl = false; 15470 DeclResult Result = CheckClassTemplate( 15471 S, TagSpec, TUK, KWLoc, SS, Name, NameLoc, Attrs, TemplateParams, 15472 AS, ModulePrivateLoc, 15473 /*FriendLoc*/ SourceLocation(), TemplateParameterLists.size() - 1, 15474 TemplateParameterLists.data(), SkipBody); 15475 return Result.get(); 15476 } else { 15477 // The "template<>" header is extraneous. 15478 Diag(TemplateParams->getTemplateLoc(), diag::err_template_tag_noparams) 15479 << TypeWithKeyword::getTagTypeKindName(Kind) << Name; 15480 isMemberSpecialization = true; 15481 } 15482 } 15483 15484 if (!TemplateParameterLists.empty() && isMemberSpecialization && 15485 CheckTemplateDeclScope(S, TemplateParameterLists.back())) 15486 return nullptr; 15487 } 15488 15489 // Figure out the underlying type if this a enum declaration. We need to do 15490 // this early, because it's needed to detect if this is an incompatible 15491 // redeclaration. 15492 llvm::PointerUnion<const Type*, TypeSourceInfo*> EnumUnderlying; 15493 bool IsFixed = !UnderlyingType.isUnset() || ScopedEnum; 15494 15495 if (Kind == TTK_Enum) { 15496 if (UnderlyingType.isInvalid() || (!UnderlyingType.get() && ScopedEnum)) { 15497 // No underlying type explicitly specified, or we failed to parse the 15498 // type, default to int. 15499 EnumUnderlying = Context.IntTy.getTypePtr(); 15500 } else if (UnderlyingType.get()) { 15501 // C++0x 7.2p2: The type-specifier-seq of an enum-base shall name an 15502 // integral type; any cv-qualification is ignored. 15503 TypeSourceInfo *TI = nullptr; 15504 GetTypeFromParser(UnderlyingType.get(), &TI); 15505 EnumUnderlying = TI; 15506 15507 if (CheckEnumUnderlyingType(TI)) 15508 // Recover by falling back to int. 15509 EnumUnderlying = Context.IntTy.getTypePtr(); 15510 15511 if (DiagnoseUnexpandedParameterPack(TI->getTypeLoc().getBeginLoc(), TI, 15512 UPPC_FixedUnderlyingType)) 15513 EnumUnderlying = Context.IntTy.getTypePtr(); 15514 15515 } else if (Context.getTargetInfo().getTriple().isWindowsMSVCEnvironment()) { 15516 // For MSVC ABI compatibility, unfixed enums must use an underlying type 15517 // of 'int'. However, if this is an unfixed forward declaration, don't set 15518 // the underlying type unless the user enables -fms-compatibility. This 15519 // makes unfixed forward declared enums incomplete and is more conforming. 15520 if (TUK == TUK_Definition || getLangOpts().MSVCCompat) 15521 EnumUnderlying = Context.IntTy.getTypePtr(); 15522 } 15523 } 15524 15525 DeclContext *SearchDC = CurContext; 15526 DeclContext *DC = CurContext; 15527 bool isStdBadAlloc = false; 15528 bool isStdAlignValT = false; 15529 15530 RedeclarationKind Redecl = forRedeclarationInCurContext(); 15531 if (TUK == TUK_Friend || TUK == TUK_Reference) 15532 Redecl = NotForRedeclaration; 15533 15534 /// Create a new tag decl in C/ObjC. Since the ODR-like semantics for ObjC/C 15535 /// implemented asks for structural equivalence checking, the returned decl 15536 /// here is passed back to the parser, allowing the tag body to be parsed. 15537 auto createTagFromNewDecl = [&]() -> TagDecl * { 15538 assert(!getLangOpts().CPlusPlus && "not meant for C++ usage"); 15539 // If there is an identifier, use the location of the identifier as the 15540 // location of the decl, otherwise use the location of the struct/union 15541 // keyword. 15542 SourceLocation Loc = NameLoc.isValid() ? NameLoc : KWLoc; 15543 TagDecl *New = nullptr; 15544 15545 if (Kind == TTK_Enum) { 15546 New = EnumDecl::Create(Context, SearchDC, KWLoc, Loc, Name, nullptr, 15547 ScopedEnum, ScopedEnumUsesClassTag, IsFixed); 15548 // If this is an undefined enum, bail. 15549 if (TUK != TUK_Definition && !Invalid) 15550 return nullptr; 15551 if (EnumUnderlying) { 15552 EnumDecl *ED = cast<EnumDecl>(New); 15553 if (TypeSourceInfo *TI = EnumUnderlying.dyn_cast<TypeSourceInfo *>()) 15554 ED->setIntegerTypeSourceInfo(TI); 15555 else 15556 ED->setIntegerType(QualType(EnumUnderlying.get<const Type *>(), 0)); 15557 ED->setPromotionType(ED->getIntegerType()); 15558 } 15559 } else { // struct/union 15560 New = RecordDecl::Create(Context, Kind, SearchDC, KWLoc, Loc, Name, 15561 nullptr); 15562 } 15563 15564 if (RecordDecl *RD = dyn_cast<RecordDecl>(New)) { 15565 // Add alignment attributes if necessary; these attributes are checked 15566 // when the ASTContext lays out the structure. 15567 // 15568 // It is important for implementing the correct semantics that this 15569 // happen here (in ActOnTag). The #pragma pack stack is 15570 // maintained as a result of parser callbacks which can occur at 15571 // many points during the parsing of a struct declaration (because 15572 // the #pragma tokens are effectively skipped over during the 15573 // parsing of the struct). 15574 if (TUK == TUK_Definition && (!SkipBody || !SkipBody->ShouldSkip)) { 15575 AddAlignmentAttributesForRecord(RD); 15576 AddMsStructLayoutForRecord(RD); 15577 } 15578 } 15579 New->setLexicalDeclContext(CurContext); 15580 return New; 15581 }; 15582 15583 LookupResult Previous(*this, Name, NameLoc, LookupTagName, Redecl); 15584 if (Name && SS.isNotEmpty()) { 15585 // We have a nested-name tag ('struct foo::bar'). 15586 15587 // Check for invalid 'foo::'. 15588 if (SS.isInvalid()) { 15589 Name = nullptr; 15590 goto CreateNewDecl; 15591 } 15592 15593 // If this is a friend or a reference to a class in a dependent 15594 // context, don't try to make a decl for it. 15595 if (TUK == TUK_Friend || TUK == TUK_Reference) { 15596 DC = computeDeclContext(SS, false); 15597 if (!DC) { 15598 IsDependent = true; 15599 return nullptr; 15600 } 15601 } else { 15602 DC = computeDeclContext(SS, true); 15603 if (!DC) { 15604 Diag(SS.getRange().getBegin(), diag::err_dependent_nested_name_spec) 15605 << SS.getRange(); 15606 return nullptr; 15607 } 15608 } 15609 15610 if (RequireCompleteDeclContext(SS, DC)) 15611 return nullptr; 15612 15613 SearchDC = DC; 15614 // Look-up name inside 'foo::'. 15615 LookupQualifiedName(Previous, DC); 15616 15617 if (Previous.isAmbiguous()) 15618 return nullptr; 15619 15620 if (Previous.empty()) { 15621 // Name lookup did not find anything. However, if the 15622 // nested-name-specifier refers to the current instantiation, 15623 // and that current instantiation has any dependent base 15624 // classes, we might find something at instantiation time: treat 15625 // this as a dependent elaborated-type-specifier. 15626 // But this only makes any sense for reference-like lookups. 15627 if (Previous.wasNotFoundInCurrentInstantiation() && 15628 (TUK == TUK_Reference || TUK == TUK_Friend)) { 15629 IsDependent = true; 15630 return nullptr; 15631 } 15632 15633 // A tag 'foo::bar' must already exist. 15634 Diag(NameLoc, diag::err_not_tag_in_scope) 15635 << Kind << Name << DC << SS.getRange(); 15636 Name = nullptr; 15637 Invalid = true; 15638 goto CreateNewDecl; 15639 } 15640 } else if (Name) { 15641 // C++14 [class.mem]p14: 15642 // If T is the name of a class, then each of the following shall have a 15643 // name different from T: 15644 // -- every member of class T that is itself a type 15645 if (TUK != TUK_Reference && TUK != TUK_Friend && 15646 DiagnoseClassNameShadow(SearchDC, DeclarationNameInfo(Name, NameLoc))) 15647 return nullptr; 15648 15649 // If this is a named struct, check to see if there was a previous forward 15650 // declaration or definition. 15651 // FIXME: We're looking into outer scopes here, even when we 15652 // shouldn't be. Doing so can result in ambiguities that we 15653 // shouldn't be diagnosing. 15654 LookupName(Previous, S); 15655 15656 // When declaring or defining a tag, ignore ambiguities introduced 15657 // by types using'ed into this scope. 15658 if (Previous.isAmbiguous() && 15659 (TUK == TUK_Definition || TUK == TUK_Declaration)) { 15660 LookupResult::Filter F = Previous.makeFilter(); 15661 while (F.hasNext()) { 15662 NamedDecl *ND = F.next(); 15663 if (!ND->getDeclContext()->getRedeclContext()->Equals( 15664 SearchDC->getRedeclContext())) 15665 F.erase(); 15666 } 15667 F.done(); 15668 } 15669 15670 // C++11 [namespace.memdef]p3: 15671 // If the name in a friend declaration is neither qualified nor 15672 // a template-id and the declaration is a function or an 15673 // elaborated-type-specifier, the lookup to determine whether 15674 // the entity has been previously declared shall not consider 15675 // any scopes outside the innermost enclosing namespace. 15676 // 15677 // MSVC doesn't implement the above rule for types, so a friend tag 15678 // declaration may be a redeclaration of a type declared in an enclosing 15679 // scope. They do implement this rule for friend functions. 15680 // 15681 // Does it matter that this should be by scope instead of by 15682 // semantic context? 15683 if (!Previous.empty() && TUK == TUK_Friend) { 15684 DeclContext *EnclosingNS = SearchDC->getEnclosingNamespaceContext(); 15685 LookupResult::Filter F = Previous.makeFilter(); 15686 bool FriendSawTagOutsideEnclosingNamespace = false; 15687 while (F.hasNext()) { 15688 NamedDecl *ND = F.next(); 15689 DeclContext *DC = ND->getDeclContext()->getRedeclContext(); 15690 if (DC->isFileContext() && 15691 !EnclosingNS->Encloses(ND->getDeclContext())) { 15692 if (getLangOpts().MSVCCompat) 15693 FriendSawTagOutsideEnclosingNamespace = true; 15694 else 15695 F.erase(); 15696 } 15697 } 15698 F.done(); 15699 15700 // Diagnose this MSVC extension in the easy case where lookup would have 15701 // unambiguously found something outside the enclosing namespace. 15702 if (Previous.isSingleResult() && FriendSawTagOutsideEnclosingNamespace) { 15703 NamedDecl *ND = Previous.getFoundDecl(); 15704 Diag(NameLoc, diag::ext_friend_tag_redecl_outside_namespace) 15705 << createFriendTagNNSFixIt(*this, ND, S, NameLoc); 15706 } 15707 } 15708 15709 // Note: there used to be some attempt at recovery here. 15710 if (Previous.isAmbiguous()) 15711 return nullptr; 15712 15713 if (!getLangOpts().CPlusPlus && TUK != TUK_Reference) { 15714 // FIXME: This makes sure that we ignore the contexts associated 15715 // with C structs, unions, and enums when looking for a matching 15716 // tag declaration or definition. See the similar lookup tweak 15717 // in Sema::LookupName; is there a better way to deal with this? 15718 while (isa<RecordDecl>(SearchDC) || isa<EnumDecl>(SearchDC)) 15719 SearchDC = SearchDC->getParent(); 15720 } 15721 } 15722 15723 if (Previous.isSingleResult() && 15724 Previous.getFoundDecl()->isTemplateParameter()) { 15725 // Maybe we will complain about the shadowed template parameter. 15726 DiagnoseTemplateParameterShadow(NameLoc, Previous.getFoundDecl()); 15727 // Just pretend that we didn't see the previous declaration. 15728 Previous.clear(); 15729 } 15730 15731 if (getLangOpts().CPlusPlus && Name && DC && StdNamespace && 15732 DC->Equals(getStdNamespace())) { 15733 if (Name->isStr("bad_alloc")) { 15734 // This is a declaration of or a reference to "std::bad_alloc". 15735 isStdBadAlloc = true; 15736 15737 // If std::bad_alloc has been implicitly declared (but made invisible to 15738 // name lookup), fill in this implicit declaration as the previous 15739 // declaration, so that the declarations get chained appropriately. 15740 if (Previous.empty() && StdBadAlloc) 15741 Previous.addDecl(getStdBadAlloc()); 15742 } else if (Name->isStr("align_val_t")) { 15743 isStdAlignValT = true; 15744 if (Previous.empty() && StdAlignValT) 15745 Previous.addDecl(getStdAlignValT()); 15746 } 15747 } 15748 15749 // If we didn't find a previous declaration, and this is a reference 15750 // (or friend reference), move to the correct scope. In C++, we 15751 // also need to do a redeclaration lookup there, just in case 15752 // there's a shadow friend decl. 15753 if (Name && Previous.empty() && 15754 (TUK == TUK_Reference || TUK == TUK_Friend || IsTemplateParamOrArg)) { 15755 if (Invalid) goto CreateNewDecl; 15756 assert(SS.isEmpty()); 15757 15758 if (TUK == TUK_Reference || IsTemplateParamOrArg) { 15759 // C++ [basic.scope.pdecl]p5: 15760 // -- for an elaborated-type-specifier of the form 15761 // 15762 // class-key identifier 15763 // 15764 // if the elaborated-type-specifier is used in the 15765 // decl-specifier-seq or parameter-declaration-clause of a 15766 // function defined in namespace scope, the identifier is 15767 // declared as a class-name in the namespace that contains 15768 // the declaration; otherwise, except as a friend 15769 // declaration, the identifier is declared in the smallest 15770 // non-class, non-function-prototype scope that contains the 15771 // declaration. 15772 // 15773 // C99 6.7.2.3p8 has a similar (but not identical!) provision for 15774 // C structs and unions. 15775 // 15776 // It is an error in C++ to declare (rather than define) an enum 15777 // type, including via an elaborated type specifier. We'll 15778 // diagnose that later; for now, declare the enum in the same 15779 // scope as we would have picked for any other tag type. 15780 // 15781 // GNU C also supports this behavior as part of its incomplete 15782 // enum types extension, while GNU C++ does not. 15783 // 15784 // Find the context where we'll be declaring the tag. 15785 // FIXME: We would like to maintain the current DeclContext as the 15786 // lexical context, 15787 SearchDC = getTagInjectionContext(SearchDC); 15788 15789 // Find the scope where we'll be declaring the tag. 15790 S = getTagInjectionScope(S, getLangOpts()); 15791 } else { 15792 assert(TUK == TUK_Friend); 15793 // C++ [namespace.memdef]p3: 15794 // If a friend declaration in a non-local class first declares a 15795 // class or function, the friend class or function is a member of 15796 // the innermost enclosing namespace. 15797 SearchDC = SearchDC->getEnclosingNamespaceContext(); 15798 } 15799 15800 // In C++, we need to do a redeclaration lookup to properly 15801 // diagnose some problems. 15802 // FIXME: redeclaration lookup is also used (with and without C++) to find a 15803 // hidden declaration so that we don't get ambiguity errors when using a 15804 // type declared by an elaborated-type-specifier. In C that is not correct 15805 // and we should instead merge compatible types found by lookup. 15806 if (getLangOpts().CPlusPlus) { 15807 // FIXME: This can perform qualified lookups into function contexts, 15808 // which are meaningless. 15809 Previous.setRedeclarationKind(forRedeclarationInCurContext()); 15810 LookupQualifiedName(Previous, SearchDC); 15811 } else { 15812 Previous.setRedeclarationKind(forRedeclarationInCurContext()); 15813 LookupName(Previous, S); 15814 } 15815 } 15816 15817 // If we have a known previous declaration to use, then use it. 15818 if (Previous.empty() && SkipBody && SkipBody->Previous) 15819 Previous.addDecl(SkipBody->Previous); 15820 15821 if (!Previous.empty()) { 15822 NamedDecl *PrevDecl = Previous.getFoundDecl(); 15823 NamedDecl *DirectPrevDecl = Previous.getRepresentativeDecl(); 15824 15825 // It's okay to have a tag decl in the same scope as a typedef 15826 // which hides a tag decl in the same scope. Finding this 15827 // insanity with a redeclaration lookup can only actually happen 15828 // in C++. 15829 // 15830 // This is also okay for elaborated-type-specifiers, which is 15831 // technically forbidden by the current standard but which is 15832 // okay according to the likely resolution of an open issue; 15833 // see http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#407 15834 if (getLangOpts().CPlusPlus) { 15835 if (TypedefNameDecl *TD = dyn_cast<TypedefNameDecl>(PrevDecl)) { 15836 if (const TagType *TT = TD->getUnderlyingType()->getAs<TagType>()) { 15837 TagDecl *Tag = TT->getDecl(); 15838 if (Tag->getDeclName() == Name && 15839 Tag->getDeclContext()->getRedeclContext() 15840 ->Equals(TD->getDeclContext()->getRedeclContext())) { 15841 PrevDecl = Tag; 15842 Previous.clear(); 15843 Previous.addDecl(Tag); 15844 Previous.resolveKind(); 15845 } 15846 } 15847 } 15848 } 15849 15850 // If this is a redeclaration of a using shadow declaration, it must 15851 // declare a tag in the same context. In MSVC mode, we allow a 15852 // redefinition if either context is within the other. 15853 if (auto *Shadow = dyn_cast<UsingShadowDecl>(DirectPrevDecl)) { 15854 auto *OldTag = dyn_cast<TagDecl>(PrevDecl); 15855 if (SS.isEmpty() && TUK != TUK_Reference && TUK != TUK_Friend && 15856 isDeclInScope(Shadow, SearchDC, S, isMemberSpecialization) && 15857 !(OldTag && isAcceptableTagRedeclContext( 15858 *this, OldTag->getDeclContext(), SearchDC))) { 15859 Diag(KWLoc, diag::err_using_decl_conflict_reverse); 15860 Diag(Shadow->getTargetDecl()->getLocation(), 15861 diag::note_using_decl_target); 15862 Diag(Shadow->getUsingDecl()->getLocation(), diag::note_using_decl) 15863 << 0; 15864 // Recover by ignoring the old declaration. 15865 Previous.clear(); 15866 goto CreateNewDecl; 15867 } 15868 } 15869 15870 if (TagDecl *PrevTagDecl = dyn_cast<TagDecl>(PrevDecl)) { 15871 // If this is a use of a previous tag, or if the tag is already declared 15872 // in the same scope (so that the definition/declaration completes or 15873 // rementions the tag), reuse the decl. 15874 if (TUK == TUK_Reference || TUK == TUK_Friend || 15875 isDeclInScope(DirectPrevDecl, SearchDC, S, 15876 SS.isNotEmpty() || isMemberSpecialization)) { 15877 // Make sure that this wasn't declared as an enum and now used as a 15878 // struct or something similar. 15879 if (!isAcceptableTagRedeclaration(PrevTagDecl, Kind, 15880 TUK == TUK_Definition, KWLoc, 15881 Name)) { 15882 bool SafeToContinue 15883 = (PrevTagDecl->getTagKind() != TTK_Enum && 15884 Kind != TTK_Enum); 15885 if (SafeToContinue) 15886 Diag(KWLoc, diag::err_use_with_wrong_tag) 15887 << Name 15888 << FixItHint::CreateReplacement(SourceRange(KWLoc), 15889 PrevTagDecl->getKindName()); 15890 else 15891 Diag(KWLoc, diag::err_use_with_wrong_tag) << Name; 15892 Diag(PrevTagDecl->getLocation(), diag::note_previous_use); 15893 15894 if (SafeToContinue) 15895 Kind = PrevTagDecl->getTagKind(); 15896 else { 15897 // Recover by making this an anonymous redefinition. 15898 Name = nullptr; 15899 Previous.clear(); 15900 Invalid = true; 15901 } 15902 } 15903 15904 if (Kind == TTK_Enum && PrevTagDecl->getTagKind() == TTK_Enum) { 15905 const EnumDecl *PrevEnum = cast<EnumDecl>(PrevTagDecl); 15906 if (TUK == TUK_Reference || TUK == TUK_Friend) 15907 return PrevTagDecl; 15908 15909 QualType EnumUnderlyingTy; 15910 if (TypeSourceInfo *TI = EnumUnderlying.dyn_cast<TypeSourceInfo*>()) 15911 EnumUnderlyingTy = TI->getType().getUnqualifiedType(); 15912 else if (const Type *T = EnumUnderlying.dyn_cast<const Type*>()) 15913 EnumUnderlyingTy = QualType(T, 0); 15914 15915 // All conflicts with previous declarations are recovered by 15916 // returning the previous declaration, unless this is a definition, 15917 // in which case we want the caller to bail out. 15918 if (CheckEnumRedeclaration(NameLoc.isValid() ? NameLoc : KWLoc, 15919 ScopedEnum, EnumUnderlyingTy, 15920 IsFixed, PrevEnum)) 15921 return TUK == TUK_Declaration ? PrevTagDecl : nullptr; 15922 } 15923 15924 // C++11 [class.mem]p1: 15925 // A member shall not be declared twice in the member-specification, 15926 // except that a nested class or member class template can be declared 15927 // and then later defined. 15928 if (TUK == TUK_Declaration && PrevDecl->isCXXClassMember() && 15929 S->isDeclScope(PrevDecl)) { 15930 Diag(NameLoc, diag::ext_member_redeclared); 15931 Diag(PrevTagDecl->getLocation(), diag::note_previous_declaration); 15932 } 15933 15934 if (!Invalid) { 15935 // If this is a use, just return the declaration we found, unless 15936 // we have attributes. 15937 if (TUK == TUK_Reference || TUK == TUK_Friend) { 15938 if (!Attrs.empty()) { 15939 // FIXME: Diagnose these attributes. For now, we create a new 15940 // declaration to hold them. 15941 } else if (TUK == TUK_Reference && 15942 (PrevTagDecl->getFriendObjectKind() == 15943 Decl::FOK_Undeclared || 15944 PrevDecl->getOwningModule() != getCurrentModule()) && 15945 SS.isEmpty()) { 15946 // This declaration is a reference to an existing entity, but 15947 // has different visibility from that entity: it either makes 15948 // a friend visible or it makes a type visible in a new module. 15949 // In either case, create a new declaration. We only do this if 15950 // the declaration would have meant the same thing if no prior 15951 // declaration were found, that is, if it was found in the same 15952 // scope where we would have injected a declaration. 15953 if (!getTagInjectionContext(CurContext)->getRedeclContext() 15954 ->Equals(PrevDecl->getDeclContext()->getRedeclContext())) 15955 return PrevTagDecl; 15956 // This is in the injected scope, create a new declaration in 15957 // that scope. 15958 S = getTagInjectionScope(S, getLangOpts()); 15959 } else { 15960 return PrevTagDecl; 15961 } 15962 } 15963 15964 // Diagnose attempts to redefine a tag. 15965 if (TUK == TUK_Definition) { 15966 if (NamedDecl *Def = PrevTagDecl->getDefinition()) { 15967 // If we're defining a specialization and the previous definition 15968 // is from an implicit instantiation, don't emit an error 15969 // here; we'll catch this in the general case below. 15970 bool IsExplicitSpecializationAfterInstantiation = false; 15971 if (isMemberSpecialization) { 15972 if (CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Def)) 15973 IsExplicitSpecializationAfterInstantiation = 15974 RD->getTemplateSpecializationKind() != 15975 TSK_ExplicitSpecialization; 15976 else if (EnumDecl *ED = dyn_cast<EnumDecl>(Def)) 15977 IsExplicitSpecializationAfterInstantiation = 15978 ED->getTemplateSpecializationKind() != 15979 TSK_ExplicitSpecialization; 15980 } 15981 15982 // Note that clang allows ODR-like semantics for ObjC/C, i.e., do 15983 // not keep more that one definition around (merge them). However, 15984 // ensure the decl passes the structural compatibility check in 15985 // C11 6.2.7/1 (or 6.1.2.6/1 in C89). 15986 NamedDecl *Hidden = nullptr; 15987 if (SkipBody && !hasVisibleDefinition(Def, &Hidden)) { 15988 // There is a definition of this tag, but it is not visible. We 15989 // explicitly make use of C++'s one definition rule here, and 15990 // assume that this definition is identical to the hidden one 15991 // we already have. Make the existing definition visible and 15992 // use it in place of this one. 15993 if (!getLangOpts().CPlusPlus) { 15994 // Postpone making the old definition visible until after we 15995 // complete parsing the new one and do the structural 15996 // comparison. 15997 SkipBody->CheckSameAsPrevious = true; 15998 SkipBody->New = createTagFromNewDecl(); 15999 SkipBody->Previous = Def; 16000 return Def; 16001 } else { 16002 SkipBody->ShouldSkip = true; 16003 SkipBody->Previous = Def; 16004 makeMergedDefinitionVisible(Hidden); 16005 // Carry on and handle it like a normal definition. We'll 16006 // skip starting the definitiion later. 16007 } 16008 } else if (!IsExplicitSpecializationAfterInstantiation) { 16009 // A redeclaration in function prototype scope in C isn't 16010 // visible elsewhere, so merely issue a warning. 16011 if (!getLangOpts().CPlusPlus && S->containedInPrototypeScope()) 16012 Diag(NameLoc, diag::warn_redefinition_in_param_list) << Name; 16013 else 16014 Diag(NameLoc, diag::err_redefinition) << Name; 16015 notePreviousDefinition(Def, 16016 NameLoc.isValid() ? NameLoc : KWLoc); 16017 // If this is a redefinition, recover by making this 16018 // struct be anonymous, which will make any later 16019 // references get the previous definition. 16020 Name = nullptr; 16021 Previous.clear(); 16022 Invalid = true; 16023 } 16024 } else { 16025 // If the type is currently being defined, complain 16026 // about a nested redefinition. 16027 auto *TD = Context.getTagDeclType(PrevTagDecl)->getAsTagDecl(); 16028 if (TD->isBeingDefined()) { 16029 Diag(NameLoc, diag::err_nested_redefinition) << Name; 16030 Diag(PrevTagDecl->getLocation(), 16031 diag::note_previous_definition); 16032 Name = nullptr; 16033 Previous.clear(); 16034 Invalid = true; 16035 } 16036 } 16037 16038 // Okay, this is definition of a previously declared or referenced 16039 // tag. We're going to create a new Decl for it. 16040 } 16041 16042 // Okay, we're going to make a redeclaration. If this is some kind 16043 // of reference, make sure we build the redeclaration in the same DC 16044 // as the original, and ignore the current access specifier. 16045 if (TUK == TUK_Friend || TUK == TUK_Reference) { 16046 SearchDC = PrevTagDecl->getDeclContext(); 16047 AS = AS_none; 16048 } 16049 } 16050 // If we get here we have (another) forward declaration or we 16051 // have a definition. Just create a new decl. 16052 16053 } else { 16054 // If we get here, this is a definition of a new tag type in a nested 16055 // scope, e.g. "struct foo; void bar() { struct foo; }", just create a 16056 // new decl/type. We set PrevDecl to NULL so that the entities 16057 // have distinct types. 16058 Previous.clear(); 16059 } 16060 // If we get here, we're going to create a new Decl. If PrevDecl 16061 // is non-NULL, it's a definition of the tag declared by 16062 // PrevDecl. If it's NULL, we have a new definition. 16063 16064 // Otherwise, PrevDecl is not a tag, but was found with tag 16065 // lookup. This is only actually possible in C++, where a few 16066 // things like templates still live in the tag namespace. 16067 } else { 16068 // Use a better diagnostic if an elaborated-type-specifier 16069 // found the wrong kind of type on the first 16070 // (non-redeclaration) lookup. 16071 if ((TUK == TUK_Reference || TUK == TUK_Friend) && 16072 !Previous.isForRedeclaration()) { 16073 NonTagKind NTK = getNonTagTypeDeclKind(PrevDecl, Kind); 16074 Diag(NameLoc, diag::err_tag_reference_non_tag) << PrevDecl << NTK 16075 << Kind; 16076 Diag(PrevDecl->getLocation(), diag::note_declared_at); 16077 Invalid = true; 16078 16079 // Otherwise, only diagnose if the declaration is in scope. 16080 } else if (!isDeclInScope(DirectPrevDecl, SearchDC, S, 16081 SS.isNotEmpty() || isMemberSpecialization)) { 16082 // do nothing 16083 16084 // Diagnose implicit declarations introduced by elaborated types. 16085 } else if (TUK == TUK_Reference || TUK == TUK_Friend) { 16086 NonTagKind NTK = getNonTagTypeDeclKind(PrevDecl, Kind); 16087 Diag(NameLoc, diag::err_tag_reference_conflict) << NTK; 16088 Diag(PrevDecl->getLocation(), diag::note_previous_decl) << PrevDecl; 16089 Invalid = true; 16090 16091 // Otherwise it's a declaration. Call out a particularly common 16092 // case here. 16093 } else if (TypedefNameDecl *TND = dyn_cast<TypedefNameDecl>(PrevDecl)) { 16094 unsigned Kind = 0; 16095 if (isa<TypeAliasDecl>(PrevDecl)) Kind = 1; 16096 Diag(NameLoc, diag::err_tag_definition_of_typedef) 16097 << Name << Kind << TND->getUnderlyingType(); 16098 Diag(PrevDecl->getLocation(), diag::note_previous_decl) << PrevDecl; 16099 Invalid = true; 16100 16101 // Otherwise, diagnose. 16102 } else { 16103 // The tag name clashes with something else in the target scope, 16104 // issue an error and recover by making this tag be anonymous. 16105 Diag(NameLoc, diag::err_redefinition_different_kind) << Name; 16106 notePreviousDefinition(PrevDecl, NameLoc); 16107 Name = nullptr; 16108 Invalid = true; 16109 } 16110 16111 // The existing declaration isn't relevant to us; we're in a 16112 // new scope, so clear out the previous declaration. 16113 Previous.clear(); 16114 } 16115 } 16116 16117 CreateNewDecl: 16118 16119 TagDecl *PrevDecl = nullptr; 16120 if (Previous.isSingleResult()) 16121 PrevDecl = cast<TagDecl>(Previous.getFoundDecl()); 16122 16123 // If there is an identifier, use the location of the identifier as the 16124 // location of the decl, otherwise use the location of the struct/union 16125 // keyword. 16126 SourceLocation Loc = NameLoc.isValid() ? NameLoc : KWLoc; 16127 16128 // Otherwise, create a new declaration. If there is a previous 16129 // declaration of the same entity, the two will be linked via 16130 // PrevDecl. 16131 TagDecl *New; 16132 16133 if (Kind == TTK_Enum) { 16134 // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.: 16135 // enum X { A, B, C } D; D should chain to X. 16136 New = EnumDecl::Create(Context, SearchDC, KWLoc, Loc, Name, 16137 cast_or_null<EnumDecl>(PrevDecl), ScopedEnum, 16138 ScopedEnumUsesClassTag, IsFixed); 16139 16140 if (isStdAlignValT && (!StdAlignValT || getStdAlignValT()->isImplicit())) 16141 StdAlignValT = cast<EnumDecl>(New); 16142 16143 // If this is an undefined enum, warn. 16144 if (TUK != TUK_Definition && !Invalid) { 16145 TagDecl *Def; 16146 if (IsFixed && cast<EnumDecl>(New)->isFixed()) { 16147 // C++0x: 7.2p2: opaque-enum-declaration. 16148 // Conflicts are diagnosed above. Do nothing. 16149 } 16150 else if (PrevDecl && (Def = cast<EnumDecl>(PrevDecl)->getDefinition())) { 16151 Diag(Loc, diag::ext_forward_ref_enum_def) 16152 << New; 16153 Diag(Def->getLocation(), diag::note_previous_definition); 16154 } else { 16155 unsigned DiagID = diag::ext_forward_ref_enum; 16156 if (getLangOpts().MSVCCompat) 16157 DiagID = diag::ext_ms_forward_ref_enum; 16158 else if (getLangOpts().CPlusPlus) 16159 DiagID = diag::err_forward_ref_enum; 16160 Diag(Loc, DiagID); 16161 } 16162 } 16163 16164 if (EnumUnderlying) { 16165 EnumDecl *ED = cast<EnumDecl>(New); 16166 if (TypeSourceInfo *TI = EnumUnderlying.dyn_cast<TypeSourceInfo*>()) 16167 ED->setIntegerTypeSourceInfo(TI); 16168 else 16169 ED->setIntegerType(QualType(EnumUnderlying.get<const Type*>(), 0)); 16170 ED->setPromotionType(ED->getIntegerType()); 16171 assert(ED->isComplete() && "enum with type should be complete"); 16172 } 16173 } else { 16174 // struct/union/class 16175 16176 // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.: 16177 // struct X { int A; } D; D should chain to X. 16178 if (getLangOpts().CPlusPlus) { 16179 // FIXME: Look for a way to use RecordDecl for simple structs. 16180 New = CXXRecordDecl::Create(Context, Kind, SearchDC, KWLoc, Loc, Name, 16181 cast_or_null<CXXRecordDecl>(PrevDecl)); 16182 16183 if (isStdBadAlloc && (!StdBadAlloc || getStdBadAlloc()->isImplicit())) 16184 StdBadAlloc = cast<CXXRecordDecl>(New); 16185 } else 16186 New = RecordDecl::Create(Context, Kind, SearchDC, KWLoc, Loc, Name, 16187 cast_or_null<RecordDecl>(PrevDecl)); 16188 } 16189 16190 // C++11 [dcl.type]p3: 16191 // A type-specifier-seq shall not define a class or enumeration [...]. 16192 if (getLangOpts().CPlusPlus && (IsTypeSpecifier || IsTemplateParamOrArg) && 16193 TUK == TUK_Definition) { 16194 Diag(New->getLocation(), diag::err_type_defined_in_type_specifier) 16195 << Context.getTagDeclType(New); 16196 Invalid = true; 16197 } 16198 16199 if (!Invalid && getLangOpts().CPlusPlus && TUK == TUK_Definition && 16200 DC->getDeclKind() == Decl::Enum) { 16201 Diag(New->getLocation(), diag::err_type_defined_in_enum) 16202 << Context.getTagDeclType(New); 16203 Invalid = true; 16204 } 16205 16206 // Maybe add qualifier info. 16207 if (SS.isNotEmpty()) { 16208 if (SS.isSet()) { 16209 // If this is either a declaration or a definition, check the 16210 // nested-name-specifier against the current context. 16211 if ((TUK == TUK_Definition || TUK == TUK_Declaration) && 16212 diagnoseQualifiedDeclaration(SS, DC, OrigName, Loc, 16213 isMemberSpecialization)) 16214 Invalid = true; 16215 16216 New->setQualifierInfo(SS.getWithLocInContext(Context)); 16217 if (TemplateParameterLists.size() > 0) { 16218 New->setTemplateParameterListsInfo(Context, TemplateParameterLists); 16219 } 16220 } 16221 else 16222 Invalid = true; 16223 } 16224 16225 if (RecordDecl *RD = dyn_cast<RecordDecl>(New)) { 16226 // Add alignment attributes if necessary; these attributes are checked when 16227 // the ASTContext lays out the structure. 16228 // 16229 // It is important for implementing the correct semantics that this 16230 // happen here (in ActOnTag). The #pragma pack stack is 16231 // maintained as a result of parser callbacks which can occur at 16232 // many points during the parsing of a struct declaration (because 16233 // the #pragma tokens are effectively skipped over during the 16234 // parsing of the struct). 16235 if (TUK == TUK_Definition && (!SkipBody || !SkipBody->ShouldSkip)) { 16236 AddAlignmentAttributesForRecord(RD); 16237 AddMsStructLayoutForRecord(RD); 16238 } 16239 } 16240 16241 if (ModulePrivateLoc.isValid()) { 16242 if (isMemberSpecialization) 16243 Diag(New->getLocation(), diag::err_module_private_specialization) 16244 << 2 16245 << FixItHint::CreateRemoval(ModulePrivateLoc); 16246 // __module_private__ does not apply to local classes. However, we only 16247 // diagnose this as an error when the declaration specifiers are 16248 // freestanding. Here, we just ignore the __module_private__. 16249 else if (!SearchDC->isFunctionOrMethod()) 16250 New->setModulePrivate(); 16251 } 16252 16253 // If this is a specialization of a member class (of a class template), 16254 // check the specialization. 16255 if (isMemberSpecialization && CheckMemberSpecialization(New, Previous)) 16256 Invalid = true; 16257 16258 // If we're declaring or defining a tag in function prototype scope in C, 16259 // note that this type can only be used within the function and add it to 16260 // the list of decls to inject into the function definition scope. 16261 if ((Name || Kind == TTK_Enum) && 16262 getNonFieldDeclScope(S)->isFunctionPrototypeScope()) { 16263 if (getLangOpts().CPlusPlus) { 16264 // C++ [dcl.fct]p6: 16265 // Types shall not be defined in return or parameter types. 16266 if (TUK == TUK_Definition && !IsTypeSpecifier) { 16267 Diag(Loc, diag::err_type_defined_in_param_type) 16268 << Name; 16269 Invalid = true; 16270 } 16271 } else if (!PrevDecl) { 16272 Diag(Loc, diag::warn_decl_in_param_list) << Context.getTagDeclType(New); 16273 } 16274 } 16275 16276 if (Invalid) 16277 New->setInvalidDecl(); 16278 16279 // Set the lexical context. If the tag has a C++ scope specifier, the 16280 // lexical context will be different from the semantic context. 16281 New->setLexicalDeclContext(CurContext); 16282 16283 // Mark this as a friend decl if applicable. 16284 // In Microsoft mode, a friend declaration also acts as a forward 16285 // declaration so we always pass true to setObjectOfFriendDecl to make 16286 // the tag name visible. 16287 if (TUK == TUK_Friend) 16288 New->setObjectOfFriendDecl(getLangOpts().MSVCCompat); 16289 16290 // Set the access specifier. 16291 if (!Invalid && SearchDC->isRecord()) 16292 SetMemberAccessSpecifier(New, PrevDecl, AS); 16293 16294 if (PrevDecl) 16295 CheckRedeclarationModuleOwnership(New, PrevDecl); 16296 16297 if (TUK == TUK_Definition && (!SkipBody || !SkipBody->ShouldSkip)) 16298 New->startDefinition(); 16299 16300 ProcessDeclAttributeList(S, New, Attrs); 16301 AddPragmaAttributes(S, New); 16302 16303 // If this has an identifier, add it to the scope stack. 16304 if (TUK == TUK_Friend) { 16305 // We might be replacing an existing declaration in the lookup tables; 16306 // if so, borrow its access specifier. 16307 if (PrevDecl) 16308 New->setAccess(PrevDecl->getAccess()); 16309 16310 DeclContext *DC = New->getDeclContext()->getRedeclContext(); 16311 DC->makeDeclVisibleInContext(New); 16312 if (Name) // can be null along some error paths 16313 if (Scope *EnclosingScope = getScopeForDeclContext(S, DC)) 16314 PushOnScopeChains(New, EnclosingScope, /* AddToContext = */ false); 16315 } else if (Name) { 16316 S = getNonFieldDeclScope(S); 16317 PushOnScopeChains(New, S, true); 16318 } else { 16319 CurContext->addDecl(New); 16320 } 16321 16322 // If this is the C FILE type, notify the AST context. 16323 if (IdentifierInfo *II = New->getIdentifier()) 16324 if (!New->isInvalidDecl() && 16325 New->getDeclContext()->getRedeclContext()->isTranslationUnit() && 16326 II->isStr("FILE")) 16327 Context.setFILEDecl(New); 16328 16329 if (PrevDecl) 16330 mergeDeclAttributes(New, PrevDecl); 16331 16332 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(New)) 16333 inferGslOwnerPointerAttribute(CXXRD); 16334 16335 // If there's a #pragma GCC visibility in scope, set the visibility of this 16336 // record. 16337 AddPushedVisibilityAttribute(New); 16338 16339 if (isMemberSpecialization && !New->isInvalidDecl()) 16340 CompleteMemberSpecialization(New, Previous); 16341 16342 OwnedDecl = true; 16343 // In C++, don't return an invalid declaration. We can't recover well from 16344 // the cases where we make the type anonymous. 16345 if (Invalid && getLangOpts().CPlusPlus) { 16346 if (New->isBeingDefined()) 16347 if (auto RD = dyn_cast<RecordDecl>(New)) 16348 RD->completeDefinition(); 16349 return nullptr; 16350 } else if (SkipBody && SkipBody->ShouldSkip) { 16351 return SkipBody->Previous; 16352 } else { 16353 return New; 16354 } 16355 } 16356 16357 void Sema::ActOnTagStartDefinition(Scope *S, Decl *TagD) { 16358 AdjustDeclIfTemplate(TagD); 16359 TagDecl *Tag = cast<TagDecl>(TagD); 16360 16361 // Enter the tag context. 16362 PushDeclContext(S, Tag); 16363 16364 ActOnDocumentableDecl(TagD); 16365 16366 // If there's a #pragma GCC visibility in scope, set the visibility of this 16367 // record. 16368 AddPushedVisibilityAttribute(Tag); 16369 } 16370 16371 bool Sema::ActOnDuplicateDefinition(DeclSpec &DS, Decl *Prev, 16372 SkipBodyInfo &SkipBody) { 16373 if (!hasStructuralCompatLayout(Prev, SkipBody.New)) 16374 return false; 16375 16376 // Make the previous decl visible. 16377 makeMergedDefinitionVisible(SkipBody.Previous); 16378 return true; 16379 } 16380 16381 Decl *Sema::ActOnObjCContainerStartDefinition(Decl *IDecl) { 16382 assert(isa<ObjCContainerDecl>(IDecl) && 16383 "ActOnObjCContainerStartDefinition - Not ObjCContainerDecl"); 16384 DeclContext *OCD = cast<DeclContext>(IDecl); 16385 assert(OCD->getLexicalParent() == CurContext && 16386 "The next DeclContext should be lexically contained in the current one."); 16387 CurContext = OCD; 16388 return IDecl; 16389 } 16390 16391 void Sema::ActOnStartCXXMemberDeclarations(Scope *S, Decl *TagD, 16392 SourceLocation FinalLoc, 16393 bool IsFinalSpelledSealed, 16394 SourceLocation LBraceLoc) { 16395 AdjustDeclIfTemplate(TagD); 16396 CXXRecordDecl *Record = cast<CXXRecordDecl>(TagD); 16397 16398 FieldCollector->StartClass(); 16399 16400 if (!Record->getIdentifier()) 16401 return; 16402 16403 if (FinalLoc.isValid()) 16404 Record->addAttr(FinalAttr::Create( 16405 Context, FinalLoc, AttributeCommonInfo::AS_Keyword, 16406 static_cast<FinalAttr::Spelling>(IsFinalSpelledSealed))); 16407 16408 // C++ [class]p2: 16409 // [...] The class-name is also inserted into the scope of the 16410 // class itself; this is known as the injected-class-name. For 16411 // purposes of access checking, the injected-class-name is treated 16412 // as if it were a public member name. 16413 CXXRecordDecl *InjectedClassName = CXXRecordDecl::Create( 16414 Context, Record->getTagKind(), CurContext, Record->getBeginLoc(), 16415 Record->getLocation(), Record->getIdentifier(), 16416 /*PrevDecl=*/nullptr, 16417 /*DelayTypeCreation=*/true); 16418 Context.getTypeDeclType(InjectedClassName, Record); 16419 InjectedClassName->setImplicit(); 16420 InjectedClassName->setAccess(AS_public); 16421 if (ClassTemplateDecl *Template = Record->getDescribedClassTemplate()) 16422 InjectedClassName->setDescribedClassTemplate(Template); 16423 PushOnScopeChains(InjectedClassName, S); 16424 assert(InjectedClassName->isInjectedClassName() && 16425 "Broken injected-class-name"); 16426 } 16427 16428 void Sema::ActOnTagFinishDefinition(Scope *S, Decl *TagD, 16429 SourceRange BraceRange) { 16430 AdjustDeclIfTemplate(TagD); 16431 TagDecl *Tag = cast<TagDecl>(TagD); 16432 Tag->setBraceRange(BraceRange); 16433 16434 // Make sure we "complete" the definition even it is invalid. 16435 if (Tag->isBeingDefined()) { 16436 assert(Tag->isInvalidDecl() && "We should already have completed it"); 16437 if (RecordDecl *RD = dyn_cast<RecordDecl>(Tag)) 16438 RD->completeDefinition(); 16439 } 16440 16441 if (isa<CXXRecordDecl>(Tag)) { 16442 FieldCollector->FinishClass(); 16443 } 16444 16445 // Exit this scope of this tag's definition. 16446 PopDeclContext(); 16447 16448 if (getCurLexicalContext()->isObjCContainer() && 16449 Tag->getDeclContext()->isFileContext()) 16450 Tag->setTopLevelDeclInObjCContainer(); 16451 16452 // Notify the consumer that we've defined a tag. 16453 if (!Tag->isInvalidDecl()) 16454 Consumer.HandleTagDeclDefinition(Tag); 16455 } 16456 16457 void Sema::ActOnObjCContainerFinishDefinition() { 16458 // Exit this scope of this interface definition. 16459 PopDeclContext(); 16460 } 16461 16462 void Sema::ActOnObjCTemporaryExitContainerContext(DeclContext *DC) { 16463 assert(DC == CurContext && "Mismatch of container contexts"); 16464 OriginalLexicalContext = DC; 16465 ActOnObjCContainerFinishDefinition(); 16466 } 16467 16468 void Sema::ActOnObjCReenterContainerContext(DeclContext *DC) { 16469 ActOnObjCContainerStartDefinition(cast<Decl>(DC)); 16470 OriginalLexicalContext = nullptr; 16471 } 16472 16473 void Sema::ActOnTagDefinitionError(Scope *S, Decl *TagD) { 16474 AdjustDeclIfTemplate(TagD); 16475 TagDecl *Tag = cast<TagDecl>(TagD); 16476 Tag->setInvalidDecl(); 16477 16478 // Make sure we "complete" the definition even it is invalid. 16479 if (Tag->isBeingDefined()) { 16480 if (RecordDecl *RD = dyn_cast<RecordDecl>(Tag)) 16481 RD->completeDefinition(); 16482 } 16483 16484 // We're undoing ActOnTagStartDefinition here, not 16485 // ActOnStartCXXMemberDeclarations, so we don't have to mess with 16486 // the FieldCollector. 16487 16488 PopDeclContext(); 16489 } 16490 16491 // Note that FieldName may be null for anonymous bitfields. 16492 ExprResult Sema::VerifyBitField(SourceLocation FieldLoc, 16493 IdentifierInfo *FieldName, 16494 QualType FieldTy, bool IsMsStruct, 16495 Expr *BitWidth, bool *ZeroWidth) { 16496 assert(BitWidth); 16497 if (BitWidth->containsErrors()) 16498 return ExprError(); 16499 16500 // Default to true; that shouldn't confuse checks for emptiness 16501 if (ZeroWidth) 16502 *ZeroWidth = true; 16503 16504 // C99 6.7.2.1p4 - verify the field type. 16505 // C++ 9.6p3: A bit-field shall have integral or enumeration type. 16506 if (!FieldTy->isDependentType() && !FieldTy->isIntegralOrEnumerationType()) { 16507 // Handle incomplete and sizeless types with a specific error. 16508 if (RequireCompleteSizedType(FieldLoc, FieldTy, 16509 diag::err_field_incomplete_or_sizeless)) 16510 return ExprError(); 16511 if (FieldName) 16512 return Diag(FieldLoc, diag::err_not_integral_type_bitfield) 16513 << FieldName << FieldTy << BitWidth->getSourceRange(); 16514 return Diag(FieldLoc, diag::err_not_integral_type_anon_bitfield) 16515 << FieldTy << BitWidth->getSourceRange(); 16516 } else if (DiagnoseUnexpandedParameterPack(const_cast<Expr *>(BitWidth), 16517 UPPC_BitFieldWidth)) 16518 return ExprError(); 16519 16520 // If the bit-width is type- or value-dependent, don't try to check 16521 // it now. 16522 if (BitWidth->isValueDependent() || BitWidth->isTypeDependent()) 16523 return BitWidth; 16524 16525 llvm::APSInt Value; 16526 ExprResult ICE = VerifyIntegerConstantExpression(BitWidth, &Value, AllowFold); 16527 if (ICE.isInvalid()) 16528 return ICE; 16529 BitWidth = ICE.get(); 16530 16531 if (Value != 0 && ZeroWidth) 16532 *ZeroWidth = false; 16533 16534 // Zero-width bitfield is ok for anonymous field. 16535 if (Value == 0 && FieldName) 16536 return Diag(FieldLoc, diag::err_bitfield_has_zero_width) << FieldName; 16537 16538 if (Value.isSigned() && Value.isNegative()) { 16539 if (FieldName) 16540 return Diag(FieldLoc, diag::err_bitfield_has_negative_width) 16541 << FieldName << Value.toString(10); 16542 return Diag(FieldLoc, diag::err_anon_bitfield_has_negative_width) 16543 << Value.toString(10); 16544 } 16545 16546 // The size of the bit-field must not exceed our maximum permitted object 16547 // size. 16548 if (Value.getActiveBits() > ConstantArrayType::getMaxSizeBits(Context)) { 16549 return Diag(FieldLoc, diag::err_bitfield_too_wide) 16550 << !FieldName << FieldName << Value.toString(10); 16551 } 16552 16553 if (!FieldTy->isDependentType()) { 16554 uint64_t TypeStorageSize = Context.getTypeSize(FieldTy); 16555 uint64_t TypeWidth = Context.getIntWidth(FieldTy); 16556 bool BitfieldIsOverwide = Value.ugt(TypeWidth); 16557 16558 // Over-wide bitfields are an error in C or when using the MSVC bitfield 16559 // ABI. 16560 bool CStdConstraintViolation = 16561 BitfieldIsOverwide && !getLangOpts().CPlusPlus; 16562 bool MSBitfieldViolation = 16563 Value.ugt(TypeStorageSize) && 16564 (IsMsStruct || Context.getTargetInfo().getCXXABI().isMicrosoft()); 16565 if (CStdConstraintViolation || MSBitfieldViolation) { 16566 unsigned DiagWidth = 16567 CStdConstraintViolation ? TypeWidth : TypeStorageSize; 16568 if (FieldName) 16569 return Diag(FieldLoc, diag::err_bitfield_width_exceeds_type_width) 16570 << FieldName << Value.toString(10) 16571 << !CStdConstraintViolation << DiagWidth; 16572 16573 return Diag(FieldLoc, diag::err_anon_bitfield_width_exceeds_type_width) 16574 << Value.toString(10) << !CStdConstraintViolation 16575 << DiagWidth; 16576 } 16577 16578 // Warn on types where the user might conceivably expect to get all 16579 // specified bits as value bits: that's all integral types other than 16580 // 'bool'. 16581 if (BitfieldIsOverwide && !FieldTy->isBooleanType() && FieldName) { 16582 Diag(FieldLoc, diag::warn_bitfield_width_exceeds_type_width) 16583 << FieldName << Value.toString(10) 16584 << (unsigned)TypeWidth; 16585 } 16586 } 16587 16588 return BitWidth; 16589 } 16590 16591 /// ActOnField - Each field of a C struct/union is passed into this in order 16592 /// to create a FieldDecl object for it. 16593 Decl *Sema::ActOnField(Scope *S, Decl *TagD, SourceLocation DeclStart, 16594 Declarator &D, Expr *BitfieldWidth) { 16595 FieldDecl *Res = HandleField(S, cast_or_null<RecordDecl>(TagD), 16596 DeclStart, D, static_cast<Expr*>(BitfieldWidth), 16597 /*InitStyle=*/ICIS_NoInit, AS_public); 16598 return Res; 16599 } 16600 16601 /// HandleField - Analyze a field of a C struct or a C++ data member. 16602 /// 16603 FieldDecl *Sema::HandleField(Scope *S, RecordDecl *Record, 16604 SourceLocation DeclStart, 16605 Declarator &D, Expr *BitWidth, 16606 InClassInitStyle InitStyle, 16607 AccessSpecifier AS) { 16608 if (D.isDecompositionDeclarator()) { 16609 const DecompositionDeclarator &Decomp = D.getDecompositionDeclarator(); 16610 Diag(Decomp.getLSquareLoc(), diag::err_decomp_decl_context) 16611 << Decomp.getSourceRange(); 16612 return nullptr; 16613 } 16614 16615 IdentifierInfo *II = D.getIdentifier(); 16616 SourceLocation Loc = DeclStart; 16617 if (II) Loc = D.getIdentifierLoc(); 16618 16619 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S); 16620 QualType T = TInfo->getType(); 16621 if (getLangOpts().CPlusPlus) { 16622 CheckExtraCXXDefaultArguments(D); 16623 16624 if (DiagnoseUnexpandedParameterPack(D.getIdentifierLoc(), TInfo, 16625 UPPC_DataMemberType)) { 16626 D.setInvalidType(); 16627 T = Context.IntTy; 16628 TInfo = Context.getTrivialTypeSourceInfo(T, Loc); 16629 } 16630 } 16631 16632 DiagnoseFunctionSpecifiers(D.getDeclSpec()); 16633 16634 if (D.getDeclSpec().isInlineSpecified()) 16635 Diag(D.getDeclSpec().getInlineSpecLoc(), diag::err_inline_non_function) 16636 << getLangOpts().CPlusPlus17; 16637 if (DeclSpec::TSCS TSCS = D.getDeclSpec().getThreadStorageClassSpec()) 16638 Diag(D.getDeclSpec().getThreadStorageClassSpecLoc(), 16639 diag::err_invalid_thread) 16640 << DeclSpec::getSpecifierName(TSCS); 16641 16642 // Check to see if this name was declared as a member previously 16643 NamedDecl *PrevDecl = nullptr; 16644 LookupResult Previous(*this, II, Loc, LookupMemberName, 16645 ForVisibleRedeclaration); 16646 LookupName(Previous, S); 16647 switch (Previous.getResultKind()) { 16648 case LookupResult::Found: 16649 case LookupResult::FoundUnresolvedValue: 16650 PrevDecl = Previous.getAsSingle<NamedDecl>(); 16651 break; 16652 16653 case LookupResult::FoundOverloaded: 16654 PrevDecl = Previous.getRepresentativeDecl(); 16655 break; 16656 16657 case LookupResult::NotFound: 16658 case LookupResult::NotFoundInCurrentInstantiation: 16659 case LookupResult::Ambiguous: 16660 break; 16661 } 16662 Previous.suppressDiagnostics(); 16663 16664 if (PrevDecl && PrevDecl->isTemplateParameter()) { 16665 // Maybe we will complain about the shadowed template parameter. 16666 DiagnoseTemplateParameterShadow(D.getIdentifierLoc(), PrevDecl); 16667 // Just pretend that we didn't see the previous declaration. 16668 PrevDecl = nullptr; 16669 } 16670 16671 if (PrevDecl && !isDeclInScope(PrevDecl, Record, S)) 16672 PrevDecl = nullptr; 16673 16674 bool Mutable 16675 = (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_mutable); 16676 SourceLocation TSSL = D.getBeginLoc(); 16677 FieldDecl *NewFD 16678 = CheckFieldDecl(II, T, TInfo, Record, Loc, Mutable, BitWidth, InitStyle, 16679 TSSL, AS, PrevDecl, &D); 16680 16681 if (NewFD->isInvalidDecl()) 16682 Record->setInvalidDecl(); 16683 16684 if (D.getDeclSpec().isModulePrivateSpecified()) 16685 NewFD->setModulePrivate(); 16686 16687 if (NewFD->isInvalidDecl() && PrevDecl) { 16688 // Don't introduce NewFD into scope; there's already something 16689 // with the same name in the same scope. 16690 } else if (II) { 16691 PushOnScopeChains(NewFD, S); 16692 } else 16693 Record->addDecl(NewFD); 16694 16695 return NewFD; 16696 } 16697 16698 /// Build a new FieldDecl and check its well-formedness. 16699 /// 16700 /// This routine builds a new FieldDecl given the fields name, type, 16701 /// record, etc. \p PrevDecl should refer to any previous declaration 16702 /// with the same name and in the same scope as the field to be 16703 /// created. 16704 /// 16705 /// \returns a new FieldDecl. 16706 /// 16707 /// \todo The Declarator argument is a hack. It will be removed once 16708 FieldDecl *Sema::CheckFieldDecl(DeclarationName Name, QualType T, 16709 TypeSourceInfo *TInfo, 16710 RecordDecl *Record, SourceLocation Loc, 16711 bool Mutable, Expr *BitWidth, 16712 InClassInitStyle InitStyle, 16713 SourceLocation TSSL, 16714 AccessSpecifier AS, NamedDecl *PrevDecl, 16715 Declarator *D) { 16716 IdentifierInfo *II = Name.getAsIdentifierInfo(); 16717 bool InvalidDecl = false; 16718 if (D) InvalidDecl = D->isInvalidType(); 16719 16720 // If we receive a broken type, recover by assuming 'int' and 16721 // marking this declaration as invalid. 16722 if (T.isNull() || T->containsErrors()) { 16723 InvalidDecl = true; 16724 T = Context.IntTy; 16725 } 16726 16727 QualType EltTy = Context.getBaseElementType(T); 16728 if (!EltTy->isDependentType() && !EltTy->containsErrors()) { 16729 if (RequireCompleteSizedType(Loc, EltTy, 16730 diag::err_field_incomplete_or_sizeless)) { 16731 // Fields of incomplete type force their record to be invalid. 16732 Record->setInvalidDecl(); 16733 InvalidDecl = true; 16734 } else { 16735 NamedDecl *Def; 16736 EltTy->isIncompleteType(&Def); 16737 if (Def && Def->isInvalidDecl()) { 16738 Record->setInvalidDecl(); 16739 InvalidDecl = true; 16740 } 16741 } 16742 } 16743 16744 // TR 18037 does not allow fields to be declared with address space 16745 if (T.hasAddressSpace() || T->isDependentAddressSpaceType() || 16746 T->getBaseElementTypeUnsafe()->isDependentAddressSpaceType()) { 16747 Diag(Loc, diag::err_field_with_address_space); 16748 Record->setInvalidDecl(); 16749 InvalidDecl = true; 16750 } 16751 16752 if (LangOpts.OpenCL) { 16753 // OpenCL v1.2 s6.9b,r & OpenCL v2.0 s6.12.5 - The following types cannot be 16754 // used as structure or union field: image, sampler, event or block types. 16755 if (T->isEventT() || T->isImageType() || T->isSamplerT() || 16756 T->isBlockPointerType()) { 16757 Diag(Loc, diag::err_opencl_type_struct_or_union_field) << T; 16758 Record->setInvalidDecl(); 16759 InvalidDecl = true; 16760 } 16761 // OpenCL v1.2 s6.9.c: bitfields are not supported. 16762 if (BitWidth) { 16763 Diag(Loc, diag::err_opencl_bitfields); 16764 InvalidDecl = true; 16765 } 16766 } 16767 16768 // Anonymous bit-fields cannot be cv-qualified (CWG 2229). 16769 if (!InvalidDecl && getLangOpts().CPlusPlus && !II && BitWidth && 16770 T.hasQualifiers()) { 16771 InvalidDecl = true; 16772 Diag(Loc, diag::err_anon_bitfield_qualifiers); 16773 } 16774 16775 // C99 6.7.2.1p8: A member of a structure or union may have any type other 16776 // than a variably modified type. 16777 if (!InvalidDecl && T->isVariablyModifiedType()) { 16778 if (!tryToFixVariablyModifiedVarType( 16779 *this, TInfo, T, Loc, diag::err_typecheck_field_variable_size)) 16780 InvalidDecl = true; 16781 } 16782 16783 // Fields can not have abstract class types 16784 if (!InvalidDecl && RequireNonAbstractType(Loc, T, 16785 diag::err_abstract_type_in_decl, 16786 AbstractFieldType)) 16787 InvalidDecl = true; 16788 16789 bool ZeroWidth = false; 16790 if (InvalidDecl) 16791 BitWidth = nullptr; 16792 // If this is declared as a bit-field, check the bit-field. 16793 if (BitWidth) { 16794 BitWidth = VerifyBitField(Loc, II, T, Record->isMsStruct(Context), BitWidth, 16795 &ZeroWidth).get(); 16796 if (!BitWidth) { 16797 InvalidDecl = true; 16798 BitWidth = nullptr; 16799 ZeroWidth = false; 16800 } 16801 } 16802 16803 // Check that 'mutable' is consistent with the type of the declaration. 16804 if (!InvalidDecl && Mutable) { 16805 unsigned DiagID = 0; 16806 if (T->isReferenceType()) 16807 DiagID = getLangOpts().MSVCCompat ? diag::ext_mutable_reference 16808 : diag::err_mutable_reference; 16809 else if (T.isConstQualified()) 16810 DiagID = diag::err_mutable_const; 16811 16812 if (DiagID) { 16813 SourceLocation ErrLoc = Loc; 16814 if (D && D->getDeclSpec().getStorageClassSpecLoc().isValid()) 16815 ErrLoc = D->getDeclSpec().getStorageClassSpecLoc(); 16816 Diag(ErrLoc, DiagID); 16817 if (DiagID != diag::ext_mutable_reference) { 16818 Mutable = false; 16819 InvalidDecl = true; 16820 } 16821 } 16822 } 16823 16824 // C++11 [class.union]p8 (DR1460): 16825 // At most one variant member of a union may have a 16826 // brace-or-equal-initializer. 16827 if (InitStyle != ICIS_NoInit) 16828 checkDuplicateDefaultInit(*this, cast<CXXRecordDecl>(Record), Loc); 16829 16830 FieldDecl *NewFD = FieldDecl::Create(Context, Record, TSSL, Loc, II, T, TInfo, 16831 BitWidth, Mutable, InitStyle); 16832 if (InvalidDecl) 16833 NewFD->setInvalidDecl(); 16834 16835 if (PrevDecl && !isa<TagDecl>(PrevDecl)) { 16836 Diag(Loc, diag::err_duplicate_member) << II; 16837 Diag(PrevDecl->getLocation(), diag::note_previous_declaration); 16838 NewFD->setInvalidDecl(); 16839 } 16840 16841 if (!InvalidDecl && getLangOpts().CPlusPlus) { 16842 if (Record->isUnion()) { 16843 if (const RecordType *RT = EltTy->getAs<RecordType>()) { 16844 CXXRecordDecl* RDecl = cast<CXXRecordDecl>(RT->getDecl()); 16845 if (RDecl->getDefinition()) { 16846 // C++ [class.union]p1: An object of a class with a non-trivial 16847 // constructor, a non-trivial copy constructor, a non-trivial 16848 // destructor, or a non-trivial copy assignment operator 16849 // cannot be a member of a union, nor can an array of such 16850 // objects. 16851 if (CheckNontrivialField(NewFD)) 16852 NewFD->setInvalidDecl(); 16853 } 16854 } 16855 16856 // C++ [class.union]p1: If a union contains a member of reference type, 16857 // the program is ill-formed, except when compiling with MSVC extensions 16858 // enabled. 16859 if (EltTy->isReferenceType()) { 16860 Diag(NewFD->getLocation(), getLangOpts().MicrosoftExt ? 16861 diag::ext_union_member_of_reference_type : 16862 diag::err_union_member_of_reference_type) 16863 << NewFD->getDeclName() << EltTy; 16864 if (!getLangOpts().MicrosoftExt) 16865 NewFD->setInvalidDecl(); 16866 } 16867 } 16868 } 16869 16870 // FIXME: We need to pass in the attributes given an AST 16871 // representation, not a parser representation. 16872 if (D) { 16873 // FIXME: The current scope is almost... but not entirely... correct here. 16874 ProcessDeclAttributes(getCurScope(), NewFD, *D); 16875 16876 if (NewFD->hasAttrs()) 16877 CheckAlignasUnderalignment(NewFD); 16878 } 16879 16880 // In auto-retain/release, infer strong retension for fields of 16881 // retainable type. 16882 if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewFD)) 16883 NewFD->setInvalidDecl(); 16884 16885 if (T.isObjCGCWeak()) 16886 Diag(Loc, diag::warn_attribute_weak_on_field); 16887 16888 // PPC MMA non-pointer types are not allowed as field types. 16889 if (Context.getTargetInfo().getTriple().isPPC64() && 16890 CheckPPCMMAType(T, NewFD->getLocation())) 16891 NewFD->setInvalidDecl(); 16892 16893 NewFD->setAccess(AS); 16894 return NewFD; 16895 } 16896 16897 bool Sema::CheckNontrivialField(FieldDecl *FD) { 16898 assert(FD); 16899 assert(getLangOpts().CPlusPlus && "valid check only for C++"); 16900 16901 if (FD->isInvalidDecl() || FD->getType()->isDependentType()) 16902 return false; 16903 16904 QualType EltTy = Context.getBaseElementType(FD->getType()); 16905 if (const RecordType *RT = EltTy->getAs<RecordType>()) { 16906 CXXRecordDecl *RDecl = cast<CXXRecordDecl>(RT->getDecl()); 16907 if (RDecl->getDefinition()) { 16908 // We check for copy constructors before constructors 16909 // because otherwise we'll never get complaints about 16910 // copy constructors. 16911 16912 CXXSpecialMember member = CXXInvalid; 16913 // We're required to check for any non-trivial constructors. Since the 16914 // implicit default constructor is suppressed if there are any 16915 // user-declared constructors, we just need to check that there is a 16916 // trivial default constructor and a trivial copy constructor. (We don't 16917 // worry about move constructors here, since this is a C++98 check.) 16918 if (RDecl->hasNonTrivialCopyConstructor()) 16919 member = CXXCopyConstructor; 16920 else if (!RDecl->hasTrivialDefaultConstructor()) 16921 member = CXXDefaultConstructor; 16922 else if (RDecl->hasNonTrivialCopyAssignment()) 16923 member = CXXCopyAssignment; 16924 else if (RDecl->hasNonTrivialDestructor()) 16925 member = CXXDestructor; 16926 16927 if (member != CXXInvalid) { 16928 if (!getLangOpts().CPlusPlus11 && 16929 getLangOpts().ObjCAutoRefCount && RDecl->hasObjectMember()) { 16930 // Objective-C++ ARC: it is an error to have a non-trivial field of 16931 // a union. However, system headers in Objective-C programs 16932 // occasionally have Objective-C lifetime objects within unions, 16933 // and rather than cause the program to fail, we make those 16934 // members unavailable. 16935 SourceLocation Loc = FD->getLocation(); 16936 if (getSourceManager().isInSystemHeader(Loc)) { 16937 if (!FD->hasAttr<UnavailableAttr>()) 16938 FD->addAttr(UnavailableAttr::CreateImplicit(Context, "", 16939 UnavailableAttr::IR_ARCFieldWithOwnership, Loc)); 16940 return false; 16941 } 16942 } 16943 16944 Diag(FD->getLocation(), getLangOpts().CPlusPlus11 ? 16945 diag::warn_cxx98_compat_nontrivial_union_or_anon_struct_member : 16946 diag::err_illegal_union_or_anon_struct_member) 16947 << FD->getParent()->isUnion() << FD->getDeclName() << member; 16948 DiagnoseNontrivial(RDecl, member); 16949 return !getLangOpts().CPlusPlus11; 16950 } 16951 } 16952 } 16953 16954 return false; 16955 } 16956 16957 /// TranslateIvarVisibility - Translate visibility from a token ID to an 16958 /// AST enum value. 16959 static ObjCIvarDecl::AccessControl 16960 TranslateIvarVisibility(tok::ObjCKeywordKind ivarVisibility) { 16961 switch (ivarVisibility) { 16962 default: llvm_unreachable("Unknown visitibility kind"); 16963 case tok::objc_private: return ObjCIvarDecl::Private; 16964 case tok::objc_public: return ObjCIvarDecl::Public; 16965 case tok::objc_protected: return ObjCIvarDecl::Protected; 16966 case tok::objc_package: return ObjCIvarDecl::Package; 16967 } 16968 } 16969 16970 /// ActOnIvar - Each ivar field of an objective-c class is passed into this 16971 /// in order to create an IvarDecl object for it. 16972 Decl *Sema::ActOnIvar(Scope *S, 16973 SourceLocation DeclStart, 16974 Declarator &D, Expr *BitfieldWidth, 16975 tok::ObjCKeywordKind Visibility) { 16976 16977 IdentifierInfo *II = D.getIdentifier(); 16978 Expr *BitWidth = (Expr*)BitfieldWidth; 16979 SourceLocation Loc = DeclStart; 16980 if (II) Loc = D.getIdentifierLoc(); 16981 16982 // FIXME: Unnamed fields can be handled in various different ways, for 16983 // example, unnamed unions inject all members into the struct namespace! 16984 16985 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S); 16986 QualType T = TInfo->getType(); 16987 16988 if (BitWidth) { 16989 // 6.7.2.1p3, 6.7.2.1p4 16990 BitWidth = VerifyBitField(Loc, II, T, /*IsMsStruct*/false, BitWidth).get(); 16991 if (!BitWidth) 16992 D.setInvalidType(); 16993 } else { 16994 // Not a bitfield. 16995 16996 // validate II. 16997 16998 } 16999 if (T->isReferenceType()) { 17000 Diag(Loc, diag::err_ivar_reference_type); 17001 D.setInvalidType(); 17002 } 17003 // C99 6.7.2.1p8: A member of a structure or union may have any type other 17004 // than a variably modified type. 17005 else if (T->isVariablyModifiedType()) { 17006 if (!tryToFixVariablyModifiedVarType( 17007 *this, TInfo, T, Loc, diag::err_typecheck_ivar_variable_size)) 17008 D.setInvalidType(); 17009 } 17010 17011 // Get the visibility (access control) for this ivar. 17012 ObjCIvarDecl::AccessControl ac = 17013 Visibility != tok::objc_not_keyword ? TranslateIvarVisibility(Visibility) 17014 : ObjCIvarDecl::None; 17015 // Must set ivar's DeclContext to its enclosing interface. 17016 ObjCContainerDecl *EnclosingDecl = cast<ObjCContainerDecl>(CurContext); 17017 if (!EnclosingDecl || EnclosingDecl->isInvalidDecl()) 17018 return nullptr; 17019 ObjCContainerDecl *EnclosingContext; 17020 if (ObjCImplementationDecl *IMPDecl = 17021 dyn_cast<ObjCImplementationDecl>(EnclosingDecl)) { 17022 if (LangOpts.ObjCRuntime.isFragile()) { 17023 // Case of ivar declared in an implementation. Context is that of its class. 17024 EnclosingContext = IMPDecl->getClassInterface(); 17025 assert(EnclosingContext && "Implementation has no class interface!"); 17026 } 17027 else 17028 EnclosingContext = EnclosingDecl; 17029 } else { 17030 if (ObjCCategoryDecl *CDecl = 17031 dyn_cast<ObjCCategoryDecl>(EnclosingDecl)) { 17032 if (LangOpts.ObjCRuntime.isFragile() || !CDecl->IsClassExtension()) { 17033 Diag(Loc, diag::err_misplaced_ivar) << CDecl->IsClassExtension(); 17034 return nullptr; 17035 } 17036 } 17037 EnclosingContext = EnclosingDecl; 17038 } 17039 17040 // Construct the decl. 17041 ObjCIvarDecl *NewID = ObjCIvarDecl::Create(Context, EnclosingContext, 17042 DeclStart, Loc, II, T, 17043 TInfo, ac, (Expr *)BitfieldWidth); 17044 17045 if (II) { 17046 NamedDecl *PrevDecl = LookupSingleName(S, II, Loc, LookupMemberName, 17047 ForVisibleRedeclaration); 17048 if (PrevDecl && isDeclInScope(PrevDecl, EnclosingContext, S) 17049 && !isa<TagDecl>(PrevDecl)) { 17050 Diag(Loc, diag::err_duplicate_member) << II; 17051 Diag(PrevDecl->getLocation(), diag::note_previous_declaration); 17052 NewID->setInvalidDecl(); 17053 } 17054 } 17055 17056 // Process attributes attached to the ivar. 17057 ProcessDeclAttributes(S, NewID, D); 17058 17059 if (D.isInvalidType()) 17060 NewID->setInvalidDecl(); 17061 17062 // In ARC, infer 'retaining' for ivars of retainable type. 17063 if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(NewID)) 17064 NewID->setInvalidDecl(); 17065 17066 if (D.getDeclSpec().isModulePrivateSpecified()) 17067 NewID->setModulePrivate(); 17068 17069 if (II) { 17070 // FIXME: When interfaces are DeclContexts, we'll need to add 17071 // these to the interface. 17072 S->AddDecl(NewID); 17073 IdResolver.AddDecl(NewID); 17074 } 17075 17076 if (LangOpts.ObjCRuntime.isNonFragile() && 17077 !NewID->isInvalidDecl() && isa<ObjCInterfaceDecl>(EnclosingDecl)) 17078 Diag(Loc, diag::warn_ivars_in_interface); 17079 17080 return NewID; 17081 } 17082 17083 /// ActOnLastBitfield - This routine handles synthesized bitfields rules for 17084 /// class and class extensions. For every class \@interface and class 17085 /// extension \@interface, if the last ivar is a bitfield of any type, 17086 /// then add an implicit `char :0` ivar to the end of that interface. 17087 void Sema::ActOnLastBitfield(SourceLocation DeclLoc, 17088 SmallVectorImpl<Decl *> &AllIvarDecls) { 17089 if (LangOpts.ObjCRuntime.isFragile() || AllIvarDecls.empty()) 17090 return; 17091 17092 Decl *ivarDecl = AllIvarDecls[AllIvarDecls.size()-1]; 17093 ObjCIvarDecl *Ivar = cast<ObjCIvarDecl>(ivarDecl); 17094 17095 if (!Ivar->isBitField() || Ivar->isZeroLengthBitField(Context)) 17096 return; 17097 ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(CurContext); 17098 if (!ID) { 17099 if (ObjCCategoryDecl *CD = dyn_cast<ObjCCategoryDecl>(CurContext)) { 17100 if (!CD->IsClassExtension()) 17101 return; 17102 } 17103 // No need to add this to end of @implementation. 17104 else 17105 return; 17106 } 17107 // All conditions are met. Add a new bitfield to the tail end of ivars. 17108 llvm::APInt Zero(Context.getTypeSize(Context.IntTy), 0); 17109 Expr * BW = IntegerLiteral::Create(Context, Zero, Context.IntTy, DeclLoc); 17110 17111 Ivar = ObjCIvarDecl::Create(Context, cast<ObjCContainerDecl>(CurContext), 17112 DeclLoc, DeclLoc, nullptr, 17113 Context.CharTy, 17114 Context.getTrivialTypeSourceInfo(Context.CharTy, 17115 DeclLoc), 17116 ObjCIvarDecl::Private, BW, 17117 true); 17118 AllIvarDecls.push_back(Ivar); 17119 } 17120 17121 void Sema::ActOnFields(Scope *S, SourceLocation RecLoc, Decl *EnclosingDecl, 17122 ArrayRef<Decl *> Fields, SourceLocation LBrac, 17123 SourceLocation RBrac, 17124 const ParsedAttributesView &Attrs) { 17125 assert(EnclosingDecl && "missing record or interface decl"); 17126 17127 // If this is an Objective-C @implementation or category and we have 17128 // new fields here we should reset the layout of the interface since 17129 // it will now change. 17130 if (!Fields.empty() && isa<ObjCContainerDecl>(EnclosingDecl)) { 17131 ObjCContainerDecl *DC = cast<ObjCContainerDecl>(EnclosingDecl); 17132 switch (DC->getKind()) { 17133 default: break; 17134 case Decl::ObjCCategory: 17135 Context.ResetObjCLayout(cast<ObjCCategoryDecl>(DC)->getClassInterface()); 17136 break; 17137 case Decl::ObjCImplementation: 17138 Context. 17139 ResetObjCLayout(cast<ObjCImplementationDecl>(DC)->getClassInterface()); 17140 break; 17141 } 17142 } 17143 17144 RecordDecl *Record = dyn_cast<RecordDecl>(EnclosingDecl); 17145 CXXRecordDecl *CXXRecord = dyn_cast<CXXRecordDecl>(EnclosingDecl); 17146 17147 // Start counting up the number of named members; make sure to include 17148 // members of anonymous structs and unions in the total. 17149 unsigned NumNamedMembers = 0; 17150 if (Record) { 17151 for (const auto *I : Record->decls()) { 17152 if (const auto *IFD = dyn_cast<IndirectFieldDecl>(I)) 17153 if (IFD->getDeclName()) 17154 ++NumNamedMembers; 17155 } 17156 } 17157 17158 // Verify that all the fields are okay. 17159 SmallVector<FieldDecl*, 32> RecFields; 17160 17161 for (ArrayRef<Decl *>::iterator i = Fields.begin(), end = Fields.end(); 17162 i != end; ++i) { 17163 FieldDecl *FD = cast<FieldDecl>(*i); 17164 17165 // Get the type for the field. 17166 const Type *FDTy = FD->getType().getTypePtr(); 17167 17168 if (!FD->isAnonymousStructOrUnion()) { 17169 // Remember all fields written by the user. 17170 RecFields.push_back(FD); 17171 } 17172 17173 // If the field is already invalid for some reason, don't emit more 17174 // diagnostics about it. 17175 if (FD->isInvalidDecl()) { 17176 EnclosingDecl->setInvalidDecl(); 17177 continue; 17178 } 17179 17180 // C99 6.7.2.1p2: 17181 // A structure or union shall not contain a member with 17182 // incomplete or function type (hence, a structure shall not 17183 // contain an instance of itself, but may contain a pointer to 17184 // an instance of itself), except that the last member of a 17185 // structure with more than one named member may have incomplete 17186 // array type; such a structure (and any union containing, 17187 // possibly recursively, a member that is such a structure) 17188 // shall not be a member of a structure or an element of an 17189 // array. 17190 bool IsLastField = (i + 1 == Fields.end()); 17191 if (FDTy->isFunctionType()) { 17192 // Field declared as a function. 17193 Diag(FD->getLocation(), diag::err_field_declared_as_function) 17194 << FD->getDeclName(); 17195 FD->setInvalidDecl(); 17196 EnclosingDecl->setInvalidDecl(); 17197 continue; 17198 } else if (FDTy->isIncompleteArrayType() && 17199 (Record || isa<ObjCContainerDecl>(EnclosingDecl))) { 17200 if (Record) { 17201 // Flexible array member. 17202 // Microsoft and g++ is more permissive regarding flexible array. 17203 // It will accept flexible array in union and also 17204 // as the sole element of a struct/class. 17205 unsigned DiagID = 0; 17206 if (!Record->isUnion() && !IsLastField) { 17207 Diag(FD->getLocation(), diag::err_flexible_array_not_at_end) 17208 << FD->getDeclName() << FD->getType() << Record->getTagKind(); 17209 Diag((*(i + 1))->getLocation(), diag::note_next_field_declaration); 17210 FD->setInvalidDecl(); 17211 EnclosingDecl->setInvalidDecl(); 17212 continue; 17213 } else if (Record->isUnion()) 17214 DiagID = getLangOpts().MicrosoftExt 17215 ? diag::ext_flexible_array_union_ms 17216 : getLangOpts().CPlusPlus 17217 ? diag::ext_flexible_array_union_gnu 17218 : diag::err_flexible_array_union; 17219 else if (NumNamedMembers < 1) 17220 DiagID = getLangOpts().MicrosoftExt 17221 ? diag::ext_flexible_array_empty_aggregate_ms 17222 : getLangOpts().CPlusPlus 17223 ? diag::ext_flexible_array_empty_aggregate_gnu 17224 : diag::err_flexible_array_empty_aggregate; 17225 17226 if (DiagID) 17227 Diag(FD->getLocation(), DiagID) << FD->getDeclName() 17228 << Record->getTagKind(); 17229 // While the layout of types that contain virtual bases is not specified 17230 // by the C++ standard, both the Itanium and Microsoft C++ ABIs place 17231 // virtual bases after the derived members. This would make a flexible 17232 // array member declared at the end of an object not adjacent to the end 17233 // of the type. 17234 if (CXXRecord && CXXRecord->getNumVBases() != 0) 17235 Diag(FD->getLocation(), diag::err_flexible_array_virtual_base) 17236 << FD->getDeclName() << Record->getTagKind(); 17237 if (!getLangOpts().C99) 17238 Diag(FD->getLocation(), diag::ext_c99_flexible_array_member) 17239 << FD->getDeclName() << Record->getTagKind(); 17240 17241 // If the element type has a non-trivial destructor, we would not 17242 // implicitly destroy the elements, so disallow it for now. 17243 // 17244 // FIXME: GCC allows this. We should probably either implicitly delete 17245 // the destructor of the containing class, or just allow this. 17246 QualType BaseElem = Context.getBaseElementType(FD->getType()); 17247 if (!BaseElem->isDependentType() && BaseElem.isDestructedType()) { 17248 Diag(FD->getLocation(), diag::err_flexible_array_has_nontrivial_dtor) 17249 << FD->getDeclName() << FD->getType(); 17250 FD->setInvalidDecl(); 17251 EnclosingDecl->setInvalidDecl(); 17252 continue; 17253 } 17254 // Okay, we have a legal flexible array member at the end of the struct. 17255 Record->setHasFlexibleArrayMember(true); 17256 } else { 17257 // In ObjCContainerDecl ivars with incomplete array type are accepted, 17258 // unless they are followed by another ivar. That check is done 17259 // elsewhere, after synthesized ivars are known. 17260 } 17261 } else if (!FDTy->isDependentType() && 17262 RequireCompleteSizedType( 17263 FD->getLocation(), FD->getType(), 17264 diag::err_field_incomplete_or_sizeless)) { 17265 // Incomplete type 17266 FD->setInvalidDecl(); 17267 EnclosingDecl->setInvalidDecl(); 17268 continue; 17269 } else if (const RecordType *FDTTy = FDTy->getAs<RecordType>()) { 17270 if (Record && FDTTy->getDecl()->hasFlexibleArrayMember()) { 17271 // A type which contains a flexible array member is considered to be a 17272 // flexible array member. 17273 Record->setHasFlexibleArrayMember(true); 17274 if (!Record->isUnion()) { 17275 // If this is a struct/class and this is not the last element, reject 17276 // it. Note that GCC supports variable sized arrays in the middle of 17277 // structures. 17278 if (!IsLastField) 17279 Diag(FD->getLocation(), diag::ext_variable_sized_type_in_struct) 17280 << FD->getDeclName() << FD->getType(); 17281 else { 17282 // We support flexible arrays at the end of structs in 17283 // other structs as an extension. 17284 Diag(FD->getLocation(), diag::ext_flexible_array_in_struct) 17285 << FD->getDeclName(); 17286 } 17287 } 17288 } 17289 if (isa<ObjCContainerDecl>(EnclosingDecl) && 17290 RequireNonAbstractType(FD->getLocation(), FD->getType(), 17291 diag::err_abstract_type_in_decl, 17292 AbstractIvarType)) { 17293 // Ivars can not have abstract class types 17294 FD->setInvalidDecl(); 17295 } 17296 if (Record && FDTTy->getDecl()->hasObjectMember()) 17297 Record->setHasObjectMember(true); 17298 if (Record && FDTTy->getDecl()->hasVolatileMember()) 17299 Record->setHasVolatileMember(true); 17300 } else if (FDTy->isObjCObjectType()) { 17301 /// A field cannot be an Objective-c object 17302 Diag(FD->getLocation(), diag::err_statically_allocated_object) 17303 << FixItHint::CreateInsertion(FD->getLocation(), "*"); 17304 QualType T = Context.getObjCObjectPointerType(FD->getType()); 17305 FD->setType(T); 17306 } else if (Record && Record->isUnion() && 17307 FD->getType().hasNonTrivialObjCLifetime() && 17308 getSourceManager().isInSystemHeader(FD->getLocation()) && 17309 !getLangOpts().CPlusPlus && !FD->hasAttr<UnavailableAttr>() && 17310 (FD->getType().getObjCLifetime() != Qualifiers::OCL_Strong || 17311 !Context.hasDirectOwnershipQualifier(FD->getType()))) { 17312 // For backward compatibility, fields of C unions declared in system 17313 // headers that have non-trivial ObjC ownership qualifications are marked 17314 // as unavailable unless the qualifier is explicit and __strong. This can 17315 // break ABI compatibility between programs compiled with ARC and MRR, but 17316 // is a better option than rejecting programs using those unions under 17317 // ARC. 17318 FD->addAttr(UnavailableAttr::CreateImplicit( 17319 Context, "", UnavailableAttr::IR_ARCFieldWithOwnership, 17320 FD->getLocation())); 17321 } else if (getLangOpts().ObjC && 17322 getLangOpts().getGC() != LangOptions::NonGC && Record && 17323 !Record->hasObjectMember()) { 17324 if (FD->getType()->isObjCObjectPointerType() || 17325 FD->getType().isObjCGCStrong()) 17326 Record->setHasObjectMember(true); 17327 else if (Context.getAsArrayType(FD->getType())) { 17328 QualType BaseType = Context.getBaseElementType(FD->getType()); 17329 if (BaseType->isRecordType() && 17330 BaseType->castAs<RecordType>()->getDecl()->hasObjectMember()) 17331 Record->setHasObjectMember(true); 17332 else if (BaseType->isObjCObjectPointerType() || 17333 BaseType.isObjCGCStrong()) 17334 Record->setHasObjectMember(true); 17335 } 17336 } 17337 17338 if (Record && !getLangOpts().CPlusPlus && 17339 !shouldIgnoreForRecordTriviality(FD)) { 17340 QualType FT = FD->getType(); 17341 if (FT.isNonTrivialToPrimitiveDefaultInitialize()) { 17342 Record->setNonTrivialToPrimitiveDefaultInitialize(true); 17343 if (FT.hasNonTrivialToPrimitiveDefaultInitializeCUnion() || 17344 Record->isUnion()) 17345 Record->setHasNonTrivialToPrimitiveDefaultInitializeCUnion(true); 17346 } 17347 QualType::PrimitiveCopyKind PCK = FT.isNonTrivialToPrimitiveCopy(); 17348 if (PCK != QualType::PCK_Trivial && PCK != QualType::PCK_VolatileTrivial) { 17349 Record->setNonTrivialToPrimitiveCopy(true); 17350 if (FT.hasNonTrivialToPrimitiveCopyCUnion() || Record->isUnion()) 17351 Record->setHasNonTrivialToPrimitiveCopyCUnion(true); 17352 } 17353 if (FT.isDestructedType()) { 17354 Record->setNonTrivialToPrimitiveDestroy(true); 17355 Record->setParamDestroyedInCallee(true); 17356 if (FT.hasNonTrivialToPrimitiveDestructCUnion() || Record->isUnion()) 17357 Record->setHasNonTrivialToPrimitiveDestructCUnion(true); 17358 } 17359 17360 if (const auto *RT = FT->getAs<RecordType>()) { 17361 if (RT->getDecl()->getArgPassingRestrictions() == 17362 RecordDecl::APK_CanNeverPassInRegs) 17363 Record->setArgPassingRestrictions(RecordDecl::APK_CanNeverPassInRegs); 17364 } else if (FT.getQualifiers().getObjCLifetime() == Qualifiers::OCL_Weak) 17365 Record->setArgPassingRestrictions(RecordDecl::APK_CanNeverPassInRegs); 17366 } 17367 17368 if (Record && FD->getType().isVolatileQualified()) 17369 Record->setHasVolatileMember(true); 17370 // Keep track of the number of named members. 17371 if (FD->getIdentifier()) 17372 ++NumNamedMembers; 17373 } 17374 17375 // Okay, we successfully defined 'Record'. 17376 if (Record) { 17377 bool Completed = false; 17378 if (CXXRecord) { 17379 if (!CXXRecord->isInvalidDecl()) { 17380 // Set access bits correctly on the directly-declared conversions. 17381 for (CXXRecordDecl::conversion_iterator 17382 I = CXXRecord->conversion_begin(), 17383 E = CXXRecord->conversion_end(); I != E; ++I) 17384 I.setAccess((*I)->getAccess()); 17385 } 17386 17387 // Add any implicitly-declared members to this class. 17388 AddImplicitlyDeclaredMembersToClass(CXXRecord); 17389 17390 if (!CXXRecord->isDependentType()) { 17391 if (!CXXRecord->isInvalidDecl()) { 17392 // If we have virtual base classes, we may end up finding multiple 17393 // final overriders for a given virtual function. Check for this 17394 // problem now. 17395 if (CXXRecord->getNumVBases()) { 17396 CXXFinalOverriderMap FinalOverriders; 17397 CXXRecord->getFinalOverriders(FinalOverriders); 17398 17399 for (CXXFinalOverriderMap::iterator M = FinalOverriders.begin(), 17400 MEnd = FinalOverriders.end(); 17401 M != MEnd; ++M) { 17402 for (OverridingMethods::iterator SO = M->second.begin(), 17403 SOEnd = M->second.end(); 17404 SO != SOEnd; ++SO) { 17405 assert(SO->second.size() > 0 && 17406 "Virtual function without overriding functions?"); 17407 if (SO->second.size() == 1) 17408 continue; 17409 17410 // C++ [class.virtual]p2: 17411 // In a derived class, if a virtual member function of a base 17412 // class subobject has more than one final overrider the 17413 // program is ill-formed. 17414 Diag(Record->getLocation(), diag::err_multiple_final_overriders) 17415 << (const NamedDecl *)M->first << Record; 17416 Diag(M->first->getLocation(), 17417 diag::note_overridden_virtual_function); 17418 for (OverridingMethods::overriding_iterator 17419 OM = SO->second.begin(), 17420 OMEnd = SO->second.end(); 17421 OM != OMEnd; ++OM) 17422 Diag(OM->Method->getLocation(), diag::note_final_overrider) 17423 << (const NamedDecl *)M->first << OM->Method->getParent(); 17424 17425 Record->setInvalidDecl(); 17426 } 17427 } 17428 CXXRecord->completeDefinition(&FinalOverriders); 17429 Completed = true; 17430 } 17431 } 17432 } 17433 } 17434 17435 if (!Completed) 17436 Record->completeDefinition(); 17437 17438 // Handle attributes before checking the layout. 17439 ProcessDeclAttributeList(S, Record, Attrs); 17440 17441 // We may have deferred checking for a deleted destructor. Check now. 17442 if (CXXRecord) { 17443 auto *Dtor = CXXRecord->getDestructor(); 17444 if (Dtor && Dtor->isImplicit() && 17445 ShouldDeleteSpecialMember(Dtor, CXXDestructor)) { 17446 CXXRecord->setImplicitDestructorIsDeleted(); 17447 SetDeclDeleted(Dtor, CXXRecord->getLocation()); 17448 } 17449 } 17450 17451 if (Record->hasAttrs()) { 17452 CheckAlignasUnderalignment(Record); 17453 17454 if (const MSInheritanceAttr *IA = Record->getAttr<MSInheritanceAttr>()) 17455 checkMSInheritanceAttrOnDefinition(cast<CXXRecordDecl>(Record), 17456 IA->getRange(), IA->getBestCase(), 17457 IA->getInheritanceModel()); 17458 } 17459 17460 // Check if the structure/union declaration is a type that can have zero 17461 // size in C. For C this is a language extension, for C++ it may cause 17462 // compatibility problems. 17463 bool CheckForZeroSize; 17464 if (!getLangOpts().CPlusPlus) { 17465 CheckForZeroSize = true; 17466 } else { 17467 // For C++ filter out types that cannot be referenced in C code. 17468 CXXRecordDecl *CXXRecord = cast<CXXRecordDecl>(Record); 17469 CheckForZeroSize = 17470 CXXRecord->getLexicalDeclContext()->isExternCContext() && 17471 !CXXRecord->isDependentType() && !inTemplateInstantiation() && 17472 CXXRecord->isCLike(); 17473 } 17474 if (CheckForZeroSize) { 17475 bool ZeroSize = true; 17476 bool IsEmpty = true; 17477 unsigned NonBitFields = 0; 17478 for (RecordDecl::field_iterator I = Record->field_begin(), 17479 E = Record->field_end(); 17480 (NonBitFields == 0 || ZeroSize) && I != E; ++I) { 17481 IsEmpty = false; 17482 if (I->isUnnamedBitfield()) { 17483 if (!I->isZeroLengthBitField(Context)) 17484 ZeroSize = false; 17485 } else { 17486 ++NonBitFields; 17487 QualType FieldType = I->getType(); 17488 if (FieldType->isIncompleteType() || 17489 !Context.getTypeSizeInChars(FieldType).isZero()) 17490 ZeroSize = false; 17491 } 17492 } 17493 17494 // Empty structs are an extension in C (C99 6.7.2.1p7). They are 17495 // allowed in C++, but warn if its declaration is inside 17496 // extern "C" block. 17497 if (ZeroSize) { 17498 Diag(RecLoc, getLangOpts().CPlusPlus ? 17499 diag::warn_zero_size_struct_union_in_extern_c : 17500 diag::warn_zero_size_struct_union_compat) 17501 << IsEmpty << Record->isUnion() << (NonBitFields > 1); 17502 } 17503 17504 // Structs without named members are extension in C (C99 6.7.2.1p7), 17505 // but are accepted by GCC. 17506 if (NonBitFields == 0 && !getLangOpts().CPlusPlus) { 17507 Diag(RecLoc, IsEmpty ? diag::ext_empty_struct_union : 17508 diag::ext_no_named_members_in_struct_union) 17509 << Record->isUnion(); 17510 } 17511 } 17512 } else { 17513 ObjCIvarDecl **ClsFields = 17514 reinterpret_cast<ObjCIvarDecl**>(RecFields.data()); 17515 if (ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(EnclosingDecl)) { 17516 ID->setEndOfDefinitionLoc(RBrac); 17517 // Add ivar's to class's DeclContext. 17518 for (unsigned i = 0, e = RecFields.size(); i != e; ++i) { 17519 ClsFields[i]->setLexicalDeclContext(ID); 17520 ID->addDecl(ClsFields[i]); 17521 } 17522 // Must enforce the rule that ivars in the base classes may not be 17523 // duplicates. 17524 if (ID->getSuperClass()) 17525 DiagnoseDuplicateIvars(ID, ID->getSuperClass()); 17526 } else if (ObjCImplementationDecl *IMPDecl = 17527 dyn_cast<ObjCImplementationDecl>(EnclosingDecl)) { 17528 assert(IMPDecl && "ActOnFields - missing ObjCImplementationDecl"); 17529 for (unsigned I = 0, N = RecFields.size(); I != N; ++I) 17530 // Ivar declared in @implementation never belongs to the implementation. 17531 // Only it is in implementation's lexical context. 17532 ClsFields[I]->setLexicalDeclContext(IMPDecl); 17533 CheckImplementationIvars(IMPDecl, ClsFields, RecFields.size(), RBrac); 17534 IMPDecl->setIvarLBraceLoc(LBrac); 17535 IMPDecl->setIvarRBraceLoc(RBrac); 17536 } else if (ObjCCategoryDecl *CDecl = 17537 dyn_cast<ObjCCategoryDecl>(EnclosingDecl)) { 17538 // case of ivars in class extension; all other cases have been 17539 // reported as errors elsewhere. 17540 // FIXME. Class extension does not have a LocEnd field. 17541 // CDecl->setLocEnd(RBrac); 17542 // Add ivar's to class extension's DeclContext. 17543 // Diagnose redeclaration of private ivars. 17544 ObjCInterfaceDecl *IDecl = CDecl->getClassInterface(); 17545 for (unsigned i = 0, e = RecFields.size(); i != e; ++i) { 17546 if (IDecl) { 17547 if (const ObjCIvarDecl *ClsIvar = 17548 IDecl->getIvarDecl(ClsFields[i]->getIdentifier())) { 17549 Diag(ClsFields[i]->getLocation(), 17550 diag::err_duplicate_ivar_declaration); 17551 Diag(ClsIvar->getLocation(), diag::note_previous_definition); 17552 continue; 17553 } 17554 for (const auto *Ext : IDecl->known_extensions()) { 17555 if (const ObjCIvarDecl *ClsExtIvar 17556 = Ext->getIvarDecl(ClsFields[i]->getIdentifier())) { 17557 Diag(ClsFields[i]->getLocation(), 17558 diag::err_duplicate_ivar_declaration); 17559 Diag(ClsExtIvar->getLocation(), diag::note_previous_definition); 17560 continue; 17561 } 17562 } 17563 } 17564 ClsFields[i]->setLexicalDeclContext(CDecl); 17565 CDecl->addDecl(ClsFields[i]); 17566 } 17567 CDecl->setIvarLBraceLoc(LBrac); 17568 CDecl->setIvarRBraceLoc(RBrac); 17569 } 17570 } 17571 } 17572 17573 /// Determine whether the given integral value is representable within 17574 /// the given type T. 17575 static bool isRepresentableIntegerValue(ASTContext &Context, 17576 llvm::APSInt &Value, 17577 QualType T) { 17578 assert((T->isIntegralType(Context) || T->isEnumeralType()) && 17579 "Integral type required!"); 17580 unsigned BitWidth = Context.getIntWidth(T); 17581 17582 if (Value.isUnsigned() || Value.isNonNegative()) { 17583 if (T->isSignedIntegerOrEnumerationType()) 17584 --BitWidth; 17585 return Value.getActiveBits() <= BitWidth; 17586 } 17587 return Value.getMinSignedBits() <= BitWidth; 17588 } 17589 17590 // Given an integral type, return the next larger integral type 17591 // (or a NULL type of no such type exists). 17592 static QualType getNextLargerIntegralType(ASTContext &Context, QualType T) { 17593 // FIXME: Int128/UInt128 support, which also needs to be introduced into 17594 // enum checking below. 17595 assert((T->isIntegralType(Context) || 17596 T->isEnumeralType()) && "Integral type required!"); 17597 const unsigned NumTypes = 4; 17598 QualType SignedIntegralTypes[NumTypes] = { 17599 Context.ShortTy, Context.IntTy, Context.LongTy, Context.LongLongTy 17600 }; 17601 QualType UnsignedIntegralTypes[NumTypes] = { 17602 Context.UnsignedShortTy, Context.UnsignedIntTy, Context.UnsignedLongTy, 17603 Context.UnsignedLongLongTy 17604 }; 17605 17606 unsigned BitWidth = Context.getTypeSize(T); 17607 QualType *Types = T->isSignedIntegerOrEnumerationType()? SignedIntegralTypes 17608 : UnsignedIntegralTypes; 17609 for (unsigned I = 0; I != NumTypes; ++I) 17610 if (Context.getTypeSize(Types[I]) > BitWidth) 17611 return Types[I]; 17612 17613 return QualType(); 17614 } 17615 17616 EnumConstantDecl *Sema::CheckEnumConstant(EnumDecl *Enum, 17617 EnumConstantDecl *LastEnumConst, 17618 SourceLocation IdLoc, 17619 IdentifierInfo *Id, 17620 Expr *Val) { 17621 unsigned IntWidth = Context.getTargetInfo().getIntWidth(); 17622 llvm::APSInt EnumVal(IntWidth); 17623 QualType EltTy; 17624 17625 if (Val && DiagnoseUnexpandedParameterPack(Val, UPPC_EnumeratorValue)) 17626 Val = nullptr; 17627 17628 if (Val) 17629 Val = DefaultLvalueConversion(Val).get(); 17630 17631 if (Val) { 17632 if (Enum->isDependentType() || Val->isTypeDependent()) 17633 EltTy = Context.DependentTy; 17634 else { 17635 // FIXME: We don't allow folding in C++11 mode for an enum with a fixed 17636 // underlying type, but do allow it in all other contexts. 17637 if (getLangOpts().CPlusPlus11 && Enum->isFixed()) { 17638 // C++11 [dcl.enum]p5: If the underlying type is fixed, [...] the 17639 // constant-expression in the enumerator-definition shall be a converted 17640 // constant expression of the underlying type. 17641 EltTy = Enum->getIntegerType(); 17642 ExprResult Converted = 17643 CheckConvertedConstantExpression(Val, EltTy, EnumVal, 17644 CCEK_Enumerator); 17645 if (Converted.isInvalid()) 17646 Val = nullptr; 17647 else 17648 Val = Converted.get(); 17649 } else if (!Val->isValueDependent() && 17650 !(Val = 17651 VerifyIntegerConstantExpression(Val, &EnumVal, AllowFold) 17652 .get())) { 17653 // C99 6.7.2.2p2: Make sure we have an integer constant expression. 17654 } else { 17655 if (Enum->isComplete()) { 17656 EltTy = Enum->getIntegerType(); 17657 17658 // In Obj-C and Microsoft mode, require the enumeration value to be 17659 // representable in the underlying type of the enumeration. In C++11, 17660 // we perform a non-narrowing conversion as part of converted constant 17661 // expression checking. 17662 if (!isRepresentableIntegerValue(Context, EnumVal, EltTy)) { 17663 if (Context.getTargetInfo() 17664 .getTriple() 17665 .isWindowsMSVCEnvironment()) { 17666 Diag(IdLoc, diag::ext_enumerator_too_large) << EltTy; 17667 } else { 17668 Diag(IdLoc, diag::err_enumerator_too_large) << EltTy; 17669 } 17670 } 17671 17672 // Cast to the underlying type. 17673 Val = ImpCastExprToType(Val, EltTy, 17674 EltTy->isBooleanType() ? CK_IntegralToBoolean 17675 : CK_IntegralCast) 17676 .get(); 17677 } else if (getLangOpts().CPlusPlus) { 17678 // C++11 [dcl.enum]p5: 17679 // If the underlying type is not fixed, the type of each enumerator 17680 // is the type of its initializing value: 17681 // - If an initializer is specified for an enumerator, the 17682 // initializing value has the same type as the expression. 17683 EltTy = Val->getType(); 17684 } else { 17685 // C99 6.7.2.2p2: 17686 // The expression that defines the value of an enumeration constant 17687 // shall be an integer constant expression that has a value 17688 // representable as an int. 17689 17690 // Complain if the value is not representable in an int. 17691 if (!isRepresentableIntegerValue(Context, EnumVal, Context.IntTy)) 17692 Diag(IdLoc, diag::ext_enum_value_not_int) 17693 << EnumVal.toString(10) << Val->getSourceRange() 17694 << (EnumVal.isUnsigned() || EnumVal.isNonNegative()); 17695 else if (!Context.hasSameType(Val->getType(), Context.IntTy)) { 17696 // Force the type of the expression to 'int'. 17697 Val = ImpCastExprToType(Val, Context.IntTy, CK_IntegralCast).get(); 17698 } 17699 EltTy = Val->getType(); 17700 } 17701 } 17702 } 17703 } 17704 17705 if (!Val) { 17706 if (Enum->isDependentType()) 17707 EltTy = Context.DependentTy; 17708 else if (!LastEnumConst) { 17709 // C++0x [dcl.enum]p5: 17710 // If the underlying type is not fixed, the type of each enumerator 17711 // is the type of its initializing value: 17712 // - If no initializer is specified for the first enumerator, the 17713 // initializing value has an unspecified integral type. 17714 // 17715 // GCC uses 'int' for its unspecified integral type, as does 17716 // C99 6.7.2.2p3. 17717 if (Enum->isFixed()) { 17718 EltTy = Enum->getIntegerType(); 17719 } 17720 else { 17721 EltTy = Context.IntTy; 17722 } 17723 } else { 17724 // Assign the last value + 1. 17725 EnumVal = LastEnumConst->getInitVal(); 17726 ++EnumVal; 17727 EltTy = LastEnumConst->getType(); 17728 17729 // Check for overflow on increment. 17730 if (EnumVal < LastEnumConst->getInitVal()) { 17731 // C++0x [dcl.enum]p5: 17732 // If the underlying type is not fixed, the type of each enumerator 17733 // is the type of its initializing value: 17734 // 17735 // - Otherwise the type of the initializing value is the same as 17736 // the type of the initializing value of the preceding enumerator 17737 // unless the incremented value is not representable in that type, 17738 // in which case the type is an unspecified integral type 17739 // sufficient to contain the incremented value. If no such type 17740 // exists, the program is ill-formed. 17741 QualType T = getNextLargerIntegralType(Context, EltTy); 17742 if (T.isNull() || Enum->isFixed()) { 17743 // There is no integral type larger enough to represent this 17744 // value. Complain, then allow the value to wrap around. 17745 EnumVal = LastEnumConst->getInitVal(); 17746 EnumVal = EnumVal.zext(EnumVal.getBitWidth() * 2); 17747 ++EnumVal; 17748 if (Enum->isFixed()) 17749 // When the underlying type is fixed, this is ill-formed. 17750 Diag(IdLoc, diag::err_enumerator_wrapped) 17751 << EnumVal.toString(10) 17752 << EltTy; 17753 else 17754 Diag(IdLoc, diag::ext_enumerator_increment_too_large) 17755 << EnumVal.toString(10); 17756 } else { 17757 EltTy = T; 17758 } 17759 17760 // Retrieve the last enumerator's value, extent that type to the 17761 // type that is supposed to be large enough to represent the incremented 17762 // value, then increment. 17763 EnumVal = LastEnumConst->getInitVal(); 17764 EnumVal.setIsSigned(EltTy->isSignedIntegerOrEnumerationType()); 17765 EnumVal = EnumVal.zextOrTrunc(Context.getIntWidth(EltTy)); 17766 ++EnumVal; 17767 17768 // If we're not in C++, diagnose the overflow of enumerator values, 17769 // which in C99 means that the enumerator value is not representable in 17770 // an int (C99 6.7.2.2p2). However, we support GCC's extension that 17771 // permits enumerator values that are representable in some larger 17772 // integral type. 17773 if (!getLangOpts().CPlusPlus && !T.isNull()) 17774 Diag(IdLoc, diag::warn_enum_value_overflow); 17775 } else if (!getLangOpts().CPlusPlus && 17776 !isRepresentableIntegerValue(Context, EnumVal, EltTy)) { 17777 // Enforce C99 6.7.2.2p2 even when we compute the next value. 17778 Diag(IdLoc, diag::ext_enum_value_not_int) 17779 << EnumVal.toString(10) << 1; 17780 } 17781 } 17782 } 17783 17784 if (!EltTy->isDependentType()) { 17785 // Make the enumerator value match the signedness and size of the 17786 // enumerator's type. 17787 EnumVal = EnumVal.extOrTrunc(Context.getIntWidth(EltTy)); 17788 EnumVal.setIsSigned(EltTy->isSignedIntegerOrEnumerationType()); 17789 } 17790 17791 return EnumConstantDecl::Create(Context, Enum, IdLoc, Id, EltTy, 17792 Val, EnumVal); 17793 } 17794 17795 Sema::SkipBodyInfo Sema::shouldSkipAnonEnumBody(Scope *S, IdentifierInfo *II, 17796 SourceLocation IILoc) { 17797 if (!(getLangOpts().Modules || getLangOpts().ModulesLocalVisibility) || 17798 !getLangOpts().CPlusPlus) 17799 return SkipBodyInfo(); 17800 17801 // We have an anonymous enum definition. Look up the first enumerator to 17802 // determine if we should merge the definition with an existing one and 17803 // skip the body. 17804 NamedDecl *PrevDecl = LookupSingleName(S, II, IILoc, LookupOrdinaryName, 17805 forRedeclarationInCurContext()); 17806 auto *PrevECD = dyn_cast_or_null<EnumConstantDecl>(PrevDecl); 17807 if (!PrevECD) 17808 return SkipBodyInfo(); 17809 17810 EnumDecl *PrevED = cast<EnumDecl>(PrevECD->getDeclContext()); 17811 NamedDecl *Hidden; 17812 if (!PrevED->getDeclName() && !hasVisibleDefinition(PrevED, &Hidden)) { 17813 SkipBodyInfo Skip; 17814 Skip.Previous = Hidden; 17815 return Skip; 17816 } 17817 17818 return SkipBodyInfo(); 17819 } 17820 17821 Decl *Sema::ActOnEnumConstant(Scope *S, Decl *theEnumDecl, Decl *lastEnumConst, 17822 SourceLocation IdLoc, IdentifierInfo *Id, 17823 const ParsedAttributesView &Attrs, 17824 SourceLocation EqualLoc, Expr *Val) { 17825 EnumDecl *TheEnumDecl = cast<EnumDecl>(theEnumDecl); 17826 EnumConstantDecl *LastEnumConst = 17827 cast_or_null<EnumConstantDecl>(lastEnumConst); 17828 17829 // The scope passed in may not be a decl scope. Zip up the scope tree until 17830 // we find one that is. 17831 S = getNonFieldDeclScope(S); 17832 17833 // Verify that there isn't already something declared with this name in this 17834 // scope. 17835 LookupResult R(*this, Id, IdLoc, LookupOrdinaryName, ForVisibleRedeclaration); 17836 LookupName(R, S); 17837 NamedDecl *PrevDecl = R.getAsSingle<NamedDecl>(); 17838 17839 if (PrevDecl && PrevDecl->isTemplateParameter()) { 17840 // Maybe we will complain about the shadowed template parameter. 17841 DiagnoseTemplateParameterShadow(IdLoc, PrevDecl); 17842 // Just pretend that we didn't see the previous declaration. 17843 PrevDecl = nullptr; 17844 } 17845 17846 // C++ [class.mem]p15: 17847 // If T is the name of a class, then each of the following shall have a name 17848 // different from T: 17849 // - every enumerator of every member of class T that is an unscoped 17850 // enumerated type 17851 if (getLangOpts().CPlusPlus && !TheEnumDecl->isScoped()) 17852 DiagnoseClassNameShadow(TheEnumDecl->getDeclContext(), 17853 DeclarationNameInfo(Id, IdLoc)); 17854 17855 EnumConstantDecl *New = 17856 CheckEnumConstant(TheEnumDecl, LastEnumConst, IdLoc, Id, Val); 17857 if (!New) 17858 return nullptr; 17859 17860 if (PrevDecl) { 17861 if (!TheEnumDecl->isScoped() && isa<ValueDecl>(PrevDecl)) { 17862 // Check for other kinds of shadowing not already handled. 17863 CheckShadow(New, PrevDecl, R); 17864 } 17865 17866 // When in C++, we may get a TagDecl with the same name; in this case the 17867 // enum constant will 'hide' the tag. 17868 assert((getLangOpts().CPlusPlus || !isa<TagDecl>(PrevDecl)) && 17869 "Received TagDecl when not in C++!"); 17870 if (!isa<TagDecl>(PrevDecl) && isDeclInScope(PrevDecl, CurContext, S)) { 17871 if (isa<EnumConstantDecl>(PrevDecl)) 17872 Diag(IdLoc, diag::err_redefinition_of_enumerator) << Id; 17873 else 17874 Diag(IdLoc, diag::err_redefinition) << Id; 17875 notePreviousDefinition(PrevDecl, IdLoc); 17876 return nullptr; 17877 } 17878 } 17879 17880 // Process attributes. 17881 ProcessDeclAttributeList(S, New, Attrs); 17882 AddPragmaAttributes(S, New); 17883 17884 // Register this decl in the current scope stack. 17885 New->setAccess(TheEnumDecl->getAccess()); 17886 PushOnScopeChains(New, S); 17887 17888 ActOnDocumentableDecl(New); 17889 17890 return New; 17891 } 17892 17893 // Returns true when the enum initial expression does not trigger the 17894 // duplicate enum warning. A few common cases are exempted as follows: 17895 // Element2 = Element1 17896 // Element2 = Element1 + 1 17897 // Element2 = Element1 - 1 17898 // Where Element2 and Element1 are from the same enum. 17899 static bool ValidDuplicateEnum(EnumConstantDecl *ECD, EnumDecl *Enum) { 17900 Expr *InitExpr = ECD->getInitExpr(); 17901 if (!InitExpr) 17902 return true; 17903 InitExpr = InitExpr->IgnoreImpCasts(); 17904 17905 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(InitExpr)) { 17906 if (!BO->isAdditiveOp()) 17907 return true; 17908 IntegerLiteral *IL = dyn_cast<IntegerLiteral>(BO->getRHS()); 17909 if (!IL) 17910 return true; 17911 if (IL->getValue() != 1) 17912 return true; 17913 17914 InitExpr = BO->getLHS(); 17915 } 17916 17917 // This checks if the elements are from the same enum. 17918 DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(InitExpr); 17919 if (!DRE) 17920 return true; 17921 17922 EnumConstantDecl *EnumConstant = dyn_cast<EnumConstantDecl>(DRE->getDecl()); 17923 if (!EnumConstant) 17924 return true; 17925 17926 if (cast<EnumDecl>(TagDecl::castFromDeclContext(ECD->getDeclContext())) != 17927 Enum) 17928 return true; 17929 17930 return false; 17931 } 17932 17933 // Emits a warning when an element is implicitly set a value that 17934 // a previous element has already been set to. 17935 static void CheckForDuplicateEnumValues(Sema &S, ArrayRef<Decl *> Elements, 17936 EnumDecl *Enum, QualType EnumType) { 17937 // Avoid anonymous enums 17938 if (!Enum->getIdentifier()) 17939 return; 17940 17941 // Only check for small enums. 17942 if (Enum->getNumPositiveBits() > 63 || Enum->getNumNegativeBits() > 64) 17943 return; 17944 17945 if (S.Diags.isIgnored(diag::warn_duplicate_enum_values, Enum->getLocation())) 17946 return; 17947 17948 typedef SmallVector<EnumConstantDecl *, 3> ECDVector; 17949 typedef SmallVector<std::unique_ptr<ECDVector>, 3> DuplicatesVector; 17950 17951 typedef llvm::PointerUnion<EnumConstantDecl*, ECDVector*> DeclOrVector; 17952 17953 // DenseMaps cannot contain the all ones int64_t value, so use unordered_map. 17954 typedef std::unordered_map<int64_t, DeclOrVector> ValueToVectorMap; 17955 17956 // Use int64_t as a key to avoid needing special handling for map keys. 17957 auto EnumConstantToKey = [](const EnumConstantDecl *D) { 17958 llvm::APSInt Val = D->getInitVal(); 17959 return Val.isSigned() ? Val.getSExtValue() : Val.getZExtValue(); 17960 }; 17961 17962 DuplicatesVector DupVector; 17963 ValueToVectorMap EnumMap; 17964 17965 // Populate the EnumMap with all values represented by enum constants without 17966 // an initializer. 17967 for (auto *Element : Elements) { 17968 EnumConstantDecl *ECD = cast_or_null<EnumConstantDecl>(Element); 17969 17970 // Null EnumConstantDecl means a previous diagnostic has been emitted for 17971 // this constant. Skip this enum since it may be ill-formed. 17972 if (!ECD) { 17973 return; 17974 } 17975 17976 // Constants with initalizers are handled in the next loop. 17977 if (ECD->getInitExpr()) 17978 continue; 17979 17980 // Duplicate values are handled in the next loop. 17981 EnumMap.insert({EnumConstantToKey(ECD), ECD}); 17982 } 17983 17984 if (EnumMap.size() == 0) 17985 return; 17986 17987 // Create vectors for any values that has duplicates. 17988 for (auto *Element : Elements) { 17989 // The last loop returned if any constant was null. 17990 EnumConstantDecl *ECD = cast<EnumConstantDecl>(Element); 17991 if (!ValidDuplicateEnum(ECD, Enum)) 17992 continue; 17993 17994 auto Iter = EnumMap.find(EnumConstantToKey(ECD)); 17995 if (Iter == EnumMap.end()) 17996 continue; 17997 17998 DeclOrVector& Entry = Iter->second; 17999 if (EnumConstantDecl *D = Entry.dyn_cast<EnumConstantDecl*>()) { 18000 // Ensure constants are different. 18001 if (D == ECD) 18002 continue; 18003 18004 // Create new vector and push values onto it. 18005 auto Vec = std::make_unique<ECDVector>(); 18006 Vec->push_back(D); 18007 Vec->push_back(ECD); 18008 18009 // Update entry to point to the duplicates vector. 18010 Entry = Vec.get(); 18011 18012 // Store the vector somewhere we can consult later for quick emission of 18013 // diagnostics. 18014 DupVector.emplace_back(std::move(Vec)); 18015 continue; 18016 } 18017 18018 ECDVector *Vec = Entry.get<ECDVector*>(); 18019 // Make sure constants are not added more than once. 18020 if (*Vec->begin() == ECD) 18021 continue; 18022 18023 Vec->push_back(ECD); 18024 } 18025 18026 // Emit diagnostics. 18027 for (const auto &Vec : DupVector) { 18028 assert(Vec->size() > 1 && "ECDVector should have at least 2 elements."); 18029 18030 // Emit warning for one enum constant. 18031 auto *FirstECD = Vec->front(); 18032 S.Diag(FirstECD->getLocation(), diag::warn_duplicate_enum_values) 18033 << FirstECD << FirstECD->getInitVal().toString(10) 18034 << FirstECD->getSourceRange(); 18035 18036 // Emit one note for each of the remaining enum constants with 18037 // the same value. 18038 for (auto *ECD : llvm::make_range(Vec->begin() + 1, Vec->end())) 18039 S.Diag(ECD->getLocation(), diag::note_duplicate_element) 18040 << ECD << ECD->getInitVal().toString(10) 18041 << ECD->getSourceRange(); 18042 } 18043 } 18044 18045 bool Sema::IsValueInFlagEnum(const EnumDecl *ED, const llvm::APInt &Val, 18046 bool AllowMask) const { 18047 assert(ED->isClosedFlag() && "looking for value in non-flag or open enum"); 18048 assert(ED->isCompleteDefinition() && "expected enum definition"); 18049 18050 auto R = FlagBitsCache.insert(std::make_pair(ED, llvm::APInt())); 18051 llvm::APInt &FlagBits = R.first->second; 18052 18053 if (R.second) { 18054 for (auto *E : ED->enumerators()) { 18055 const auto &EVal = E->getInitVal(); 18056 // Only single-bit enumerators introduce new flag values. 18057 if (EVal.isPowerOf2()) 18058 FlagBits = FlagBits.zextOrSelf(EVal.getBitWidth()) | EVal; 18059 } 18060 } 18061 18062 // A value is in a flag enum if either its bits are a subset of the enum's 18063 // flag bits (the first condition) or we are allowing masks and the same is 18064 // true of its complement (the second condition). When masks are allowed, we 18065 // allow the common idiom of ~(enum1 | enum2) to be a valid enum value. 18066 // 18067 // While it's true that any value could be used as a mask, the assumption is 18068 // that a mask will have all of the insignificant bits set. Anything else is 18069 // likely a logic error. 18070 llvm::APInt FlagMask = ~FlagBits.zextOrTrunc(Val.getBitWidth()); 18071 return !(FlagMask & Val) || (AllowMask && !(FlagMask & ~Val)); 18072 } 18073 18074 void Sema::ActOnEnumBody(SourceLocation EnumLoc, SourceRange BraceRange, 18075 Decl *EnumDeclX, ArrayRef<Decl *> Elements, Scope *S, 18076 const ParsedAttributesView &Attrs) { 18077 EnumDecl *Enum = cast<EnumDecl>(EnumDeclX); 18078 QualType EnumType = Context.getTypeDeclType(Enum); 18079 18080 ProcessDeclAttributeList(S, Enum, Attrs); 18081 18082 if (Enum->isDependentType()) { 18083 for (unsigned i = 0, e = Elements.size(); i != e; ++i) { 18084 EnumConstantDecl *ECD = 18085 cast_or_null<EnumConstantDecl>(Elements[i]); 18086 if (!ECD) continue; 18087 18088 ECD->setType(EnumType); 18089 } 18090 18091 Enum->completeDefinition(Context.DependentTy, Context.DependentTy, 0, 0); 18092 return; 18093 } 18094 18095 // TODO: If the result value doesn't fit in an int, it must be a long or long 18096 // long value. ISO C does not support this, but GCC does as an extension, 18097 // emit a warning. 18098 unsigned IntWidth = Context.getTargetInfo().getIntWidth(); 18099 unsigned CharWidth = Context.getTargetInfo().getCharWidth(); 18100 unsigned ShortWidth = Context.getTargetInfo().getShortWidth(); 18101 18102 // Verify that all the values are okay, compute the size of the values, and 18103 // reverse the list. 18104 unsigned NumNegativeBits = 0; 18105 unsigned NumPositiveBits = 0; 18106 18107 // Keep track of whether all elements have type int. 18108 bool AllElementsInt = true; 18109 18110 for (unsigned i = 0, e = Elements.size(); i != e; ++i) { 18111 EnumConstantDecl *ECD = 18112 cast_or_null<EnumConstantDecl>(Elements[i]); 18113 if (!ECD) continue; // Already issued a diagnostic. 18114 18115 const llvm::APSInt &InitVal = ECD->getInitVal(); 18116 18117 // Keep track of the size of positive and negative values. 18118 if (InitVal.isUnsigned() || InitVal.isNonNegative()) 18119 NumPositiveBits = std::max(NumPositiveBits, 18120 (unsigned)InitVal.getActiveBits()); 18121 else 18122 NumNegativeBits = std::max(NumNegativeBits, 18123 (unsigned)InitVal.getMinSignedBits()); 18124 18125 // Keep track of whether every enum element has type int (very common). 18126 if (AllElementsInt) 18127 AllElementsInt = ECD->getType() == Context.IntTy; 18128 } 18129 18130 // Figure out the type that should be used for this enum. 18131 QualType BestType; 18132 unsigned BestWidth; 18133 18134 // C++0x N3000 [conv.prom]p3: 18135 // An rvalue of an unscoped enumeration type whose underlying 18136 // type is not fixed can be converted to an rvalue of the first 18137 // of the following types that can represent all the values of 18138 // the enumeration: int, unsigned int, long int, unsigned long 18139 // int, long long int, or unsigned long long int. 18140 // C99 6.4.4.3p2: 18141 // An identifier declared as an enumeration constant has type int. 18142 // The C99 rule is modified by a gcc extension 18143 QualType BestPromotionType; 18144 18145 bool Packed = Enum->hasAttr<PackedAttr>(); 18146 // -fshort-enums is the equivalent to specifying the packed attribute on all 18147 // enum definitions. 18148 if (LangOpts.ShortEnums) 18149 Packed = true; 18150 18151 // If the enum already has a type because it is fixed or dictated by the 18152 // target, promote that type instead of analyzing the enumerators. 18153 if (Enum->isComplete()) { 18154 BestType = Enum->getIntegerType(); 18155 if (BestType->isPromotableIntegerType()) 18156 BestPromotionType = Context.getPromotedIntegerType(BestType); 18157 else 18158 BestPromotionType = BestType; 18159 18160 BestWidth = Context.getIntWidth(BestType); 18161 } 18162 else if (NumNegativeBits) { 18163 // If there is a negative value, figure out the smallest integer type (of 18164 // int/long/longlong) that fits. 18165 // If it's packed, check also if it fits a char or a short. 18166 if (Packed && NumNegativeBits <= CharWidth && NumPositiveBits < CharWidth) { 18167 BestType = Context.SignedCharTy; 18168 BestWidth = CharWidth; 18169 } else if (Packed && NumNegativeBits <= ShortWidth && 18170 NumPositiveBits < ShortWidth) { 18171 BestType = Context.ShortTy; 18172 BestWidth = ShortWidth; 18173 } else if (NumNegativeBits <= IntWidth && NumPositiveBits < IntWidth) { 18174 BestType = Context.IntTy; 18175 BestWidth = IntWidth; 18176 } else { 18177 BestWidth = Context.getTargetInfo().getLongWidth(); 18178 18179 if (NumNegativeBits <= BestWidth && NumPositiveBits < BestWidth) { 18180 BestType = Context.LongTy; 18181 } else { 18182 BestWidth = Context.getTargetInfo().getLongLongWidth(); 18183 18184 if (NumNegativeBits > BestWidth || NumPositiveBits >= BestWidth) 18185 Diag(Enum->getLocation(), diag::ext_enum_too_large); 18186 BestType = Context.LongLongTy; 18187 } 18188 } 18189 BestPromotionType = (BestWidth <= IntWidth ? Context.IntTy : BestType); 18190 } else { 18191 // If there is no negative value, figure out the smallest type that fits 18192 // all of the enumerator values. 18193 // If it's packed, check also if it fits a char or a short. 18194 if (Packed && NumPositiveBits <= CharWidth) { 18195 BestType = Context.UnsignedCharTy; 18196 BestPromotionType = Context.IntTy; 18197 BestWidth = CharWidth; 18198 } else if (Packed && NumPositiveBits <= ShortWidth) { 18199 BestType = Context.UnsignedShortTy; 18200 BestPromotionType = Context.IntTy; 18201 BestWidth = ShortWidth; 18202 } else if (NumPositiveBits <= IntWidth) { 18203 BestType = Context.UnsignedIntTy; 18204 BestWidth = IntWidth; 18205 BestPromotionType 18206 = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus) 18207 ? Context.UnsignedIntTy : Context.IntTy; 18208 } else if (NumPositiveBits <= 18209 (BestWidth = Context.getTargetInfo().getLongWidth())) { 18210 BestType = Context.UnsignedLongTy; 18211 BestPromotionType 18212 = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus) 18213 ? Context.UnsignedLongTy : Context.LongTy; 18214 } else { 18215 BestWidth = Context.getTargetInfo().getLongLongWidth(); 18216 assert(NumPositiveBits <= BestWidth && 18217 "How could an initializer get larger than ULL?"); 18218 BestType = Context.UnsignedLongLongTy; 18219 BestPromotionType 18220 = (NumPositiveBits == BestWidth || !getLangOpts().CPlusPlus) 18221 ? Context.UnsignedLongLongTy : Context.LongLongTy; 18222 } 18223 } 18224 18225 // Loop over all of the enumerator constants, changing their types to match 18226 // the type of the enum if needed. 18227 for (auto *D : Elements) { 18228 auto *ECD = cast_or_null<EnumConstantDecl>(D); 18229 if (!ECD) continue; // Already issued a diagnostic. 18230 18231 // Standard C says the enumerators have int type, but we allow, as an 18232 // extension, the enumerators to be larger than int size. If each 18233 // enumerator value fits in an int, type it as an int, otherwise type it the 18234 // same as the enumerator decl itself. This means that in "enum { X = 1U }" 18235 // that X has type 'int', not 'unsigned'. 18236 18237 // Determine whether the value fits into an int. 18238 llvm::APSInt InitVal = ECD->getInitVal(); 18239 18240 // If it fits into an integer type, force it. Otherwise force it to match 18241 // the enum decl type. 18242 QualType NewTy; 18243 unsigned NewWidth; 18244 bool NewSign; 18245 if (!getLangOpts().CPlusPlus && 18246 !Enum->isFixed() && 18247 isRepresentableIntegerValue(Context, InitVal, Context.IntTy)) { 18248 NewTy = Context.IntTy; 18249 NewWidth = IntWidth; 18250 NewSign = true; 18251 } else if (ECD->getType() == BestType) { 18252 // Already the right type! 18253 if (getLangOpts().CPlusPlus) 18254 // C++ [dcl.enum]p4: Following the closing brace of an 18255 // enum-specifier, each enumerator has the type of its 18256 // enumeration. 18257 ECD->setType(EnumType); 18258 continue; 18259 } else { 18260 NewTy = BestType; 18261 NewWidth = BestWidth; 18262 NewSign = BestType->isSignedIntegerOrEnumerationType(); 18263 } 18264 18265 // Adjust the APSInt value. 18266 InitVal = InitVal.extOrTrunc(NewWidth); 18267 InitVal.setIsSigned(NewSign); 18268 ECD->setInitVal(InitVal); 18269 18270 // Adjust the Expr initializer and type. 18271 if (ECD->getInitExpr() && 18272 !Context.hasSameType(NewTy, ECD->getInitExpr()->getType())) 18273 ECD->setInitExpr(ImplicitCastExpr::Create( 18274 Context, NewTy, CK_IntegralCast, ECD->getInitExpr(), 18275 /*base paths*/ nullptr, VK_RValue, FPOptionsOverride())); 18276 if (getLangOpts().CPlusPlus) 18277 // C++ [dcl.enum]p4: Following the closing brace of an 18278 // enum-specifier, each enumerator has the type of its 18279 // enumeration. 18280 ECD->setType(EnumType); 18281 else 18282 ECD->setType(NewTy); 18283 } 18284 18285 Enum->completeDefinition(BestType, BestPromotionType, 18286 NumPositiveBits, NumNegativeBits); 18287 18288 CheckForDuplicateEnumValues(*this, Elements, Enum, EnumType); 18289 18290 if (Enum->isClosedFlag()) { 18291 for (Decl *D : Elements) { 18292 EnumConstantDecl *ECD = cast_or_null<EnumConstantDecl>(D); 18293 if (!ECD) continue; // Already issued a diagnostic. 18294 18295 llvm::APSInt InitVal = ECD->getInitVal(); 18296 if (InitVal != 0 && !InitVal.isPowerOf2() && 18297 !IsValueInFlagEnum(Enum, InitVal, true)) 18298 Diag(ECD->getLocation(), diag::warn_flag_enum_constant_out_of_range) 18299 << ECD << Enum; 18300 } 18301 } 18302 18303 // Now that the enum type is defined, ensure it's not been underaligned. 18304 if (Enum->hasAttrs()) 18305 CheckAlignasUnderalignment(Enum); 18306 } 18307 18308 Decl *Sema::ActOnFileScopeAsmDecl(Expr *expr, 18309 SourceLocation StartLoc, 18310 SourceLocation EndLoc) { 18311 StringLiteral *AsmString = cast<StringLiteral>(expr); 18312 18313 FileScopeAsmDecl *New = FileScopeAsmDecl::Create(Context, CurContext, 18314 AsmString, StartLoc, 18315 EndLoc); 18316 CurContext->addDecl(New); 18317 return New; 18318 } 18319 18320 void Sema::ActOnPragmaRedefineExtname(IdentifierInfo* Name, 18321 IdentifierInfo* AliasName, 18322 SourceLocation PragmaLoc, 18323 SourceLocation NameLoc, 18324 SourceLocation AliasNameLoc) { 18325 NamedDecl *PrevDecl = LookupSingleName(TUScope, Name, NameLoc, 18326 LookupOrdinaryName); 18327 AttributeCommonInfo Info(AliasName, SourceRange(AliasNameLoc), 18328 AttributeCommonInfo::AS_Pragma); 18329 AsmLabelAttr *Attr = AsmLabelAttr::CreateImplicit( 18330 Context, AliasName->getName(), /*LiteralLabel=*/true, Info); 18331 18332 // If a declaration that: 18333 // 1) declares a function or a variable 18334 // 2) has external linkage 18335 // already exists, add a label attribute to it. 18336 if (PrevDecl && (isa<FunctionDecl>(PrevDecl) || isa<VarDecl>(PrevDecl))) { 18337 if (isDeclExternC(PrevDecl)) 18338 PrevDecl->addAttr(Attr); 18339 else 18340 Diag(PrevDecl->getLocation(), diag::warn_redefine_extname_not_applied) 18341 << /*Variable*/(isa<FunctionDecl>(PrevDecl) ? 0 : 1) << PrevDecl; 18342 // Otherwise, add a label atttibute to ExtnameUndeclaredIdentifiers. 18343 } else 18344 (void)ExtnameUndeclaredIdentifiers.insert(std::make_pair(Name, Attr)); 18345 } 18346 18347 void Sema::ActOnPragmaWeakID(IdentifierInfo* Name, 18348 SourceLocation PragmaLoc, 18349 SourceLocation NameLoc) { 18350 Decl *PrevDecl = LookupSingleName(TUScope, Name, NameLoc, LookupOrdinaryName); 18351 18352 if (PrevDecl) { 18353 PrevDecl->addAttr(WeakAttr::CreateImplicit(Context, PragmaLoc, AttributeCommonInfo::AS_Pragma)); 18354 } else { 18355 (void)WeakUndeclaredIdentifiers.insert( 18356 std::pair<IdentifierInfo*,WeakInfo> 18357 (Name, WeakInfo((IdentifierInfo*)nullptr, NameLoc))); 18358 } 18359 } 18360 18361 void Sema::ActOnPragmaWeakAlias(IdentifierInfo* Name, 18362 IdentifierInfo* AliasName, 18363 SourceLocation PragmaLoc, 18364 SourceLocation NameLoc, 18365 SourceLocation AliasNameLoc) { 18366 Decl *PrevDecl = LookupSingleName(TUScope, AliasName, AliasNameLoc, 18367 LookupOrdinaryName); 18368 WeakInfo W = WeakInfo(Name, NameLoc); 18369 18370 if (PrevDecl && (isa<FunctionDecl>(PrevDecl) || isa<VarDecl>(PrevDecl))) { 18371 if (!PrevDecl->hasAttr<AliasAttr>()) 18372 if (NamedDecl *ND = dyn_cast<NamedDecl>(PrevDecl)) 18373 DeclApplyPragmaWeak(TUScope, ND, W); 18374 } else { 18375 (void)WeakUndeclaredIdentifiers.insert( 18376 std::pair<IdentifierInfo*,WeakInfo>(AliasName, W)); 18377 } 18378 } 18379 18380 Decl *Sema::getObjCDeclContext() const { 18381 return (dyn_cast_or_null<ObjCContainerDecl>(CurContext)); 18382 } 18383 18384 Sema::FunctionEmissionStatus Sema::getEmissionStatus(FunctionDecl *FD, 18385 bool Final) { 18386 assert(FD && "Expected non-null FunctionDecl"); 18387 18388 // SYCL functions can be template, so we check if they have appropriate 18389 // attribute prior to checking if it is a template. 18390 if (LangOpts.SYCLIsDevice && FD->hasAttr<SYCLKernelAttr>()) 18391 return FunctionEmissionStatus::Emitted; 18392 18393 // Templates are emitted when they're instantiated. 18394 if (FD->isDependentContext()) 18395 return FunctionEmissionStatus::TemplateDiscarded; 18396 18397 // Check whether this function is an externally visible definition. 18398 auto IsEmittedForExternalSymbol = [this, FD]() { 18399 // We have to check the GVA linkage of the function's *definition* -- if we 18400 // only have a declaration, we don't know whether or not the function will 18401 // be emitted, because (say) the definition could include "inline". 18402 FunctionDecl *Def = FD->getDefinition(); 18403 18404 return Def && !isDiscardableGVALinkage( 18405 getASTContext().GetGVALinkageForFunction(Def)); 18406 }; 18407 18408 if (LangOpts.OpenMPIsDevice) { 18409 // In OpenMP device mode we will not emit host only functions, or functions 18410 // we don't need due to their linkage. 18411 Optional<OMPDeclareTargetDeclAttr::DevTypeTy> DevTy = 18412 OMPDeclareTargetDeclAttr::getDeviceType(FD->getCanonicalDecl()); 18413 // DevTy may be changed later by 18414 // #pragma omp declare target to(*) device_type(*). 18415 // Therefore DevTyhaving no value does not imply host. The emission status 18416 // will be checked again at the end of compilation unit with Final = true. 18417 if (DevTy.hasValue()) 18418 if (*DevTy == OMPDeclareTargetDeclAttr::DT_Host) 18419 return FunctionEmissionStatus::OMPDiscarded; 18420 // If we have an explicit value for the device type, or we are in a target 18421 // declare context, we need to emit all extern and used symbols. 18422 if (isInOpenMPDeclareTargetContext() || DevTy.hasValue()) 18423 if (IsEmittedForExternalSymbol()) 18424 return FunctionEmissionStatus::Emitted; 18425 // Device mode only emits what it must, if it wasn't tagged yet and needed, 18426 // we'll omit it. 18427 if (Final) 18428 return FunctionEmissionStatus::OMPDiscarded; 18429 } else if (LangOpts.OpenMP > 45) { 18430 // In OpenMP host compilation prior to 5.0 everything was an emitted host 18431 // function. In 5.0, no_host was introduced which might cause a function to 18432 // be ommitted. 18433 Optional<OMPDeclareTargetDeclAttr::DevTypeTy> DevTy = 18434 OMPDeclareTargetDeclAttr::getDeviceType(FD->getCanonicalDecl()); 18435 if (DevTy.hasValue()) 18436 if (*DevTy == OMPDeclareTargetDeclAttr::DT_NoHost) 18437 return FunctionEmissionStatus::OMPDiscarded; 18438 } 18439 18440 if (Final && LangOpts.OpenMP && !LangOpts.CUDA) 18441 return FunctionEmissionStatus::Emitted; 18442 18443 if (LangOpts.CUDA) { 18444 // When compiling for device, host functions are never emitted. Similarly, 18445 // when compiling for host, device and global functions are never emitted. 18446 // (Technically, we do emit a host-side stub for global functions, but this 18447 // doesn't count for our purposes here.) 18448 Sema::CUDAFunctionTarget T = IdentifyCUDATarget(FD); 18449 if (LangOpts.CUDAIsDevice && T == Sema::CFT_Host) 18450 return FunctionEmissionStatus::CUDADiscarded; 18451 if (!LangOpts.CUDAIsDevice && 18452 (T == Sema::CFT_Device || T == Sema::CFT_Global)) 18453 return FunctionEmissionStatus::CUDADiscarded; 18454 18455 if (IsEmittedForExternalSymbol()) 18456 return FunctionEmissionStatus::Emitted; 18457 } 18458 18459 // Otherwise, the function is known-emitted if it's in our set of 18460 // known-emitted functions. 18461 return FunctionEmissionStatus::Unknown; 18462 } 18463 18464 bool Sema::shouldIgnoreInHostDeviceCheck(FunctionDecl *Callee) { 18465 // Host-side references to a __global__ function refer to the stub, so the 18466 // function itself is never emitted and therefore should not be marked. 18467 // If we have host fn calls kernel fn calls host+device, the HD function 18468 // does not get instantiated on the host. We model this by omitting at the 18469 // call to the kernel from the callgraph. This ensures that, when compiling 18470 // for host, only HD functions actually called from the host get marked as 18471 // known-emitted. 18472 return LangOpts.CUDA && !LangOpts.CUDAIsDevice && 18473 IdentifyCUDATarget(Callee) == CFT_Global; 18474 } 18475