1 //===--- SemaExprCXX.cpp - Semantic Analysis for Expressions --------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 /// 9 /// \file 10 /// Implements semantic analysis for C++ expressions. 11 /// 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/Sema/Template.h" 15 #include "clang/Sema/SemaInternal.h" 16 #include "TreeTransform.h" 17 #include "TypeLocBuilder.h" 18 #include "clang/AST/ASTContext.h" 19 #include "clang/AST/ASTLambda.h" 20 #include "clang/AST/CXXInheritance.h" 21 #include "clang/AST/CharUnits.h" 22 #include "clang/AST/DeclObjC.h" 23 #include "clang/AST/ExprCXX.h" 24 #include "clang/AST/ExprObjC.h" 25 #include "clang/AST/RecursiveASTVisitor.h" 26 #include "clang/AST/TypeLoc.h" 27 #include "clang/Basic/AlignedAllocation.h" 28 #include "clang/Basic/PartialDiagnostic.h" 29 #include "clang/Basic/TargetInfo.h" 30 #include "clang/Lex/Preprocessor.h" 31 #include "clang/Sema/DeclSpec.h" 32 #include "clang/Sema/Initialization.h" 33 #include "clang/Sema/Lookup.h" 34 #include "clang/Sema/ParsedTemplate.h" 35 #include "clang/Sema/Scope.h" 36 #include "clang/Sema/ScopeInfo.h" 37 #include "clang/Sema/SemaLambda.h" 38 #include "clang/Sema/TemplateDeduction.h" 39 #include "llvm/ADT/APInt.h" 40 #include "llvm/ADT/STLExtras.h" 41 #include "llvm/Support/ErrorHandling.h" 42 using namespace clang; 43 using namespace sema; 44 45 /// Handle the result of the special case name lookup for inheriting 46 /// constructor declarations. 'NS::X::X' and 'NS::X<...>::X' are treated as 47 /// constructor names in member using declarations, even if 'X' is not the 48 /// name of the corresponding type. 49 ParsedType Sema::getInheritingConstructorName(CXXScopeSpec &SS, 50 SourceLocation NameLoc, 51 IdentifierInfo &Name) { 52 NestedNameSpecifier *NNS = SS.getScopeRep(); 53 54 // Convert the nested-name-specifier into a type. 55 QualType Type; 56 switch (NNS->getKind()) { 57 case NestedNameSpecifier::TypeSpec: 58 case NestedNameSpecifier::TypeSpecWithTemplate: 59 Type = QualType(NNS->getAsType(), 0); 60 break; 61 62 case NestedNameSpecifier::Identifier: 63 // Strip off the last layer of the nested-name-specifier and build a 64 // typename type for it. 65 assert(NNS->getAsIdentifier() == &Name && "not a constructor name"); 66 Type = Context.getDependentNameType(ETK_None, NNS->getPrefix(), 67 NNS->getAsIdentifier()); 68 break; 69 70 case NestedNameSpecifier::Global: 71 case NestedNameSpecifier::Super: 72 case NestedNameSpecifier::Namespace: 73 case NestedNameSpecifier::NamespaceAlias: 74 llvm_unreachable("Nested name specifier is not a type for inheriting ctor"); 75 } 76 77 // This reference to the type is located entirely at the location of the 78 // final identifier in the qualified-id. 79 return CreateParsedType(Type, 80 Context.getTrivialTypeSourceInfo(Type, NameLoc)); 81 } 82 83 ParsedType Sema::getConstructorName(IdentifierInfo &II, 84 SourceLocation NameLoc, 85 Scope *S, CXXScopeSpec &SS, 86 bool EnteringContext) { 87 CXXRecordDecl *CurClass = getCurrentClass(S, &SS); 88 assert(CurClass && &II == CurClass->getIdentifier() && 89 "not a constructor name"); 90 91 // When naming a constructor as a member of a dependent context (eg, in a 92 // friend declaration or an inherited constructor declaration), form an 93 // unresolved "typename" type. 94 if (CurClass->isDependentContext() && !EnteringContext && SS.getScopeRep()) { 95 QualType T = Context.getDependentNameType(ETK_None, SS.getScopeRep(), &II); 96 return ParsedType::make(T); 97 } 98 99 if (SS.isNotEmpty() && RequireCompleteDeclContext(SS, CurClass)) 100 return ParsedType(); 101 102 // Find the injected-class-name declaration. Note that we make no attempt to 103 // diagnose cases where the injected-class-name is shadowed: the only 104 // declaration that can validly shadow the injected-class-name is a 105 // non-static data member, and if the class contains both a non-static data 106 // member and a constructor then it is ill-formed (we check that in 107 // CheckCompletedCXXClass). 108 CXXRecordDecl *InjectedClassName = nullptr; 109 for (NamedDecl *ND : CurClass->lookup(&II)) { 110 auto *RD = dyn_cast<CXXRecordDecl>(ND); 111 if (RD && RD->isInjectedClassName()) { 112 InjectedClassName = RD; 113 break; 114 } 115 } 116 if (!InjectedClassName) { 117 if (!CurClass->isInvalidDecl()) { 118 // FIXME: RequireCompleteDeclContext doesn't check dependent contexts 119 // properly. Work around it here for now. 120 Diag(SS.getLastQualifierNameLoc(), 121 diag::err_incomplete_nested_name_spec) << CurClass << SS.getRange(); 122 } 123 return ParsedType(); 124 } 125 126 QualType T = Context.getTypeDeclType(InjectedClassName); 127 DiagnoseUseOfDecl(InjectedClassName, NameLoc); 128 MarkAnyDeclReferenced(NameLoc, InjectedClassName, /*OdrUse=*/false); 129 130 return ParsedType::make(T); 131 } 132 133 ParsedType Sema::getDestructorName(SourceLocation TildeLoc, 134 IdentifierInfo &II, 135 SourceLocation NameLoc, 136 Scope *S, CXXScopeSpec &SS, 137 ParsedType ObjectTypePtr, 138 bool EnteringContext) { 139 // Determine where to perform name lookup. 140 141 // FIXME: This area of the standard is very messy, and the current 142 // wording is rather unclear about which scopes we search for the 143 // destructor name; see core issues 399 and 555. Issue 399 in 144 // particular shows where the current description of destructor name 145 // lookup is completely out of line with existing practice, e.g., 146 // this appears to be ill-formed: 147 // 148 // namespace N { 149 // template <typename T> struct S { 150 // ~S(); 151 // }; 152 // } 153 // 154 // void f(N::S<int>* s) { 155 // s->N::S<int>::~S(); 156 // } 157 // 158 // See also PR6358 and PR6359. 159 // 160 // For now, we accept all the cases in which the name given could plausibly 161 // be interpreted as a correct destructor name, issuing off-by-default 162 // extension diagnostics on the cases that don't strictly conform to the 163 // C++20 rules. This basically means we always consider looking in the 164 // nested-name-specifier prefix, the complete nested-name-specifier, and 165 // the scope, and accept if we find the expected type in any of the three 166 // places. 167 168 if (SS.isInvalid()) 169 return nullptr; 170 171 // Whether we've failed with a diagnostic already. 172 bool Failed = false; 173 174 llvm::SmallVector<NamedDecl*, 8> FoundDecls; 175 llvm::SmallPtrSet<CanonicalDeclPtr<Decl>, 8> FoundDeclSet; 176 177 // If we have an object type, it's because we are in a 178 // pseudo-destructor-expression or a member access expression, and 179 // we know what type we're looking for. 180 QualType SearchType = 181 ObjectTypePtr ? GetTypeFromParser(ObjectTypePtr) : QualType(); 182 183 auto CheckLookupResult = [&](LookupResult &Found) -> ParsedType { 184 auto IsAcceptableResult = [&](NamedDecl *D) -> bool { 185 auto *Type = dyn_cast<TypeDecl>(D->getUnderlyingDecl()); 186 if (!Type) 187 return false; 188 189 if (SearchType.isNull() || SearchType->isDependentType()) 190 return true; 191 192 QualType T = Context.getTypeDeclType(Type); 193 return Context.hasSameUnqualifiedType(T, SearchType); 194 }; 195 196 unsigned NumAcceptableResults = 0; 197 for (NamedDecl *D : Found) { 198 if (IsAcceptableResult(D)) 199 ++NumAcceptableResults; 200 201 // Don't list a class twice in the lookup failure diagnostic if it's 202 // found by both its injected-class-name and by the name in the enclosing 203 // scope. 204 if (auto *RD = dyn_cast<CXXRecordDecl>(D)) 205 if (RD->isInjectedClassName()) 206 D = cast<NamedDecl>(RD->getParent()); 207 208 if (FoundDeclSet.insert(D).second) 209 FoundDecls.push_back(D); 210 } 211 212 // As an extension, attempt to "fix" an ambiguity by erasing all non-type 213 // results, and all non-matching results if we have a search type. It's not 214 // clear what the right behavior is if destructor lookup hits an ambiguity, 215 // but other compilers do generally accept at least some kinds of 216 // ambiguity. 217 if (Found.isAmbiguous() && NumAcceptableResults == 1) { 218 Diag(NameLoc, diag::ext_dtor_name_ambiguous); 219 LookupResult::Filter F = Found.makeFilter(); 220 while (F.hasNext()) { 221 NamedDecl *D = F.next(); 222 if (auto *TD = dyn_cast<TypeDecl>(D->getUnderlyingDecl())) 223 Diag(D->getLocation(), diag::note_destructor_type_here) 224 << Context.getTypeDeclType(TD); 225 else 226 Diag(D->getLocation(), diag::note_destructor_nontype_here); 227 228 if (!IsAcceptableResult(D)) 229 F.erase(); 230 } 231 F.done(); 232 } 233 234 if (Found.isAmbiguous()) 235 Failed = true; 236 237 if (TypeDecl *Type = Found.getAsSingle<TypeDecl>()) { 238 if (IsAcceptableResult(Type)) { 239 QualType T = Context.getTypeDeclType(Type); 240 MarkAnyDeclReferenced(Type->getLocation(), Type, /*OdrUse=*/false); 241 return CreateParsedType(T, 242 Context.getTrivialTypeSourceInfo(T, NameLoc)); 243 } 244 } 245 246 return nullptr; 247 }; 248 249 bool IsDependent = false; 250 251 auto LookupInObjectType = [&]() -> ParsedType { 252 if (Failed || SearchType.isNull()) 253 return nullptr; 254 255 IsDependent |= SearchType->isDependentType(); 256 257 LookupResult Found(*this, &II, NameLoc, LookupDestructorName); 258 DeclContext *LookupCtx = computeDeclContext(SearchType); 259 if (!LookupCtx) 260 return nullptr; 261 LookupQualifiedName(Found, LookupCtx); 262 return CheckLookupResult(Found); 263 }; 264 265 auto LookupInNestedNameSpec = [&](CXXScopeSpec &LookupSS) -> ParsedType { 266 if (Failed) 267 return nullptr; 268 269 IsDependent |= isDependentScopeSpecifier(LookupSS); 270 DeclContext *LookupCtx = computeDeclContext(LookupSS, EnteringContext); 271 if (!LookupCtx) 272 return nullptr; 273 274 LookupResult Found(*this, &II, NameLoc, LookupDestructorName); 275 if (RequireCompleteDeclContext(LookupSS, LookupCtx)) { 276 Failed = true; 277 return nullptr; 278 } 279 LookupQualifiedName(Found, LookupCtx); 280 return CheckLookupResult(Found); 281 }; 282 283 auto LookupInScope = [&]() -> ParsedType { 284 if (Failed || !S) 285 return nullptr; 286 287 LookupResult Found(*this, &II, NameLoc, LookupDestructorName); 288 LookupName(Found, S); 289 return CheckLookupResult(Found); 290 }; 291 292 // C++2a [basic.lookup.qual]p6: 293 // In a qualified-id of the form 294 // 295 // nested-name-specifier[opt] type-name :: ~ type-name 296 // 297 // the second type-name is looked up in the same scope as the first. 298 // 299 // We interpret this as meaning that if you do a dual-scope lookup for the 300 // first name, you also do a dual-scope lookup for the second name, per 301 // C++ [basic.lookup.classref]p4: 302 // 303 // If the id-expression in a class member access is a qualified-id of the 304 // form 305 // 306 // class-name-or-namespace-name :: ... 307 // 308 // the class-name-or-namespace-name following the . or -> is first looked 309 // up in the class of the object expression and the name, if found, is used. 310 // Otherwise, it is looked up in the context of the entire 311 // postfix-expression. 312 // 313 // This looks in the same scopes as for an unqualified destructor name: 314 // 315 // C++ [basic.lookup.classref]p3: 316 // If the unqualified-id is ~ type-name, the type-name is looked up 317 // in the context of the entire postfix-expression. If the type T 318 // of the object expression is of a class type C, the type-name is 319 // also looked up in the scope of class C. At least one of the 320 // lookups shall find a name that refers to cv T. 321 // 322 // FIXME: The intent is unclear here. Should type-name::~type-name look in 323 // the scope anyway if it finds a non-matching name declared in the class? 324 // If both lookups succeed and find a dependent result, which result should 325 // we retain? (Same question for p->~type-name().) 326 327 if (NestedNameSpecifier *Prefix = 328 SS.isSet() ? SS.getScopeRep()->getPrefix() : nullptr) { 329 // This is 330 // 331 // nested-name-specifier type-name :: ~ type-name 332 // 333 // Look for the second type-name in the nested-name-specifier. 334 CXXScopeSpec PrefixSS; 335 PrefixSS.Adopt(NestedNameSpecifierLoc(Prefix, SS.location_data())); 336 if (ParsedType T = LookupInNestedNameSpec(PrefixSS)) 337 return T; 338 } else { 339 // This is one of 340 // 341 // type-name :: ~ type-name 342 // ~ type-name 343 // 344 // Look in the scope and (if any) the object type. 345 if (ParsedType T = LookupInScope()) 346 return T; 347 if (ParsedType T = LookupInObjectType()) 348 return T; 349 } 350 351 if (Failed) 352 return nullptr; 353 354 if (IsDependent) { 355 // We didn't find our type, but that's OK: it's dependent anyway. 356 357 // FIXME: What if we have no nested-name-specifier? 358 QualType T = CheckTypenameType(ETK_None, SourceLocation(), 359 SS.getWithLocInContext(Context), 360 II, NameLoc); 361 return ParsedType::make(T); 362 } 363 364 // The remaining cases are all non-standard extensions imitating the behavior 365 // of various other compilers. 366 unsigned NumNonExtensionDecls = FoundDecls.size(); 367 368 if (SS.isSet()) { 369 // For compatibility with older broken C++ rules and existing code, 370 // 371 // nested-name-specifier :: ~ type-name 372 // 373 // also looks for type-name within the nested-name-specifier. 374 if (ParsedType T = LookupInNestedNameSpec(SS)) { 375 Diag(SS.getEndLoc(), diag::ext_dtor_named_in_wrong_scope) 376 << SS.getRange() 377 << FixItHint::CreateInsertion(SS.getEndLoc(), 378 ("::" + II.getName()).str()); 379 return T; 380 } 381 382 // For compatibility with other compilers and older versions of Clang, 383 // 384 // nested-name-specifier type-name :: ~ type-name 385 // 386 // also looks for type-name in the scope. Unfortunately, we can't 387 // reasonably apply this fallback for dependent nested-name-specifiers. 388 if (SS.getScopeRep()->getPrefix()) { 389 if (ParsedType T = LookupInScope()) { 390 Diag(SS.getEndLoc(), diag::ext_qualified_dtor_named_in_lexical_scope) 391 << FixItHint::CreateRemoval(SS.getRange()); 392 Diag(FoundDecls.back()->getLocation(), diag::note_destructor_type_here) 393 << GetTypeFromParser(T); 394 return T; 395 } 396 } 397 } 398 399 // We didn't find anything matching; tell the user what we did find (if 400 // anything). 401 402 // Don't tell the user about declarations we shouldn't have found. 403 FoundDecls.resize(NumNonExtensionDecls); 404 405 // List types before non-types. 406 std::stable_sort(FoundDecls.begin(), FoundDecls.end(), 407 [](NamedDecl *A, NamedDecl *B) { 408 return isa<TypeDecl>(A->getUnderlyingDecl()) > 409 isa<TypeDecl>(B->getUnderlyingDecl()); 410 }); 411 412 // Suggest a fixit to properly name the destroyed type. 413 auto MakeFixItHint = [&]{ 414 const CXXRecordDecl *Destroyed = nullptr; 415 // FIXME: If we have a scope specifier, suggest its last component? 416 if (!SearchType.isNull()) 417 Destroyed = SearchType->getAsCXXRecordDecl(); 418 else if (S) 419 Destroyed = dyn_cast_or_null<CXXRecordDecl>(S->getEntity()); 420 if (Destroyed) 421 return FixItHint::CreateReplacement(SourceRange(NameLoc), 422 Destroyed->getNameAsString()); 423 return FixItHint(); 424 }; 425 426 if (FoundDecls.empty()) { 427 // FIXME: Attempt typo-correction? 428 Diag(NameLoc, diag::err_undeclared_destructor_name) 429 << &II << MakeFixItHint(); 430 } else if (!SearchType.isNull() && FoundDecls.size() == 1) { 431 if (auto *TD = dyn_cast<TypeDecl>(FoundDecls[0]->getUnderlyingDecl())) { 432 assert(!SearchType.isNull() && 433 "should only reject a type result if we have a search type"); 434 QualType T = Context.getTypeDeclType(TD); 435 Diag(NameLoc, diag::err_destructor_expr_type_mismatch) 436 << T << SearchType << MakeFixItHint(); 437 } else { 438 Diag(NameLoc, diag::err_destructor_expr_nontype) 439 << &II << MakeFixItHint(); 440 } 441 } else { 442 Diag(NameLoc, SearchType.isNull() ? diag::err_destructor_name_nontype 443 : diag::err_destructor_expr_mismatch) 444 << &II << SearchType << MakeFixItHint(); 445 } 446 447 for (NamedDecl *FoundD : FoundDecls) { 448 if (auto *TD = dyn_cast<TypeDecl>(FoundD->getUnderlyingDecl())) 449 Diag(FoundD->getLocation(), diag::note_destructor_type_here) 450 << Context.getTypeDeclType(TD); 451 else 452 Diag(FoundD->getLocation(), diag::note_destructor_nontype_here) 453 << FoundD; 454 } 455 456 return nullptr; 457 } 458 459 ParsedType Sema::getDestructorTypeForDecltype(const DeclSpec &DS, 460 ParsedType ObjectType) { 461 if (DS.getTypeSpecType() == DeclSpec::TST_error) 462 return nullptr; 463 464 if (DS.getTypeSpecType() == DeclSpec::TST_decltype_auto) { 465 Diag(DS.getTypeSpecTypeLoc(), diag::err_decltype_auto_invalid); 466 return nullptr; 467 } 468 469 assert(DS.getTypeSpecType() == DeclSpec::TST_decltype && 470 "unexpected type in getDestructorType"); 471 QualType T = BuildDecltypeType(DS.getRepAsExpr(), DS.getTypeSpecTypeLoc()); 472 473 // If we know the type of the object, check that the correct destructor 474 // type was named now; we can give better diagnostics this way. 475 QualType SearchType = GetTypeFromParser(ObjectType); 476 if (!SearchType.isNull() && !SearchType->isDependentType() && 477 !Context.hasSameUnqualifiedType(T, SearchType)) { 478 Diag(DS.getTypeSpecTypeLoc(), diag::err_destructor_expr_type_mismatch) 479 << T << SearchType; 480 return nullptr; 481 } 482 483 return ParsedType::make(T); 484 } 485 486 bool Sema::checkLiteralOperatorId(const CXXScopeSpec &SS, 487 const UnqualifiedId &Name, bool IsUDSuffix) { 488 assert(Name.getKind() == UnqualifiedIdKind::IK_LiteralOperatorId); 489 if (!IsUDSuffix) { 490 // [over.literal] p8 491 // 492 // double operator""_Bq(long double); // OK: not a reserved identifier 493 // double operator"" _Bq(long double); // ill-formed, no diagnostic required 494 IdentifierInfo *II = Name.Identifier; 495 ReservedIdentifierStatus Status = II->isReserved(PP.getLangOpts()); 496 SourceLocation Loc = Name.getEndLoc(); 497 if (Status != ReservedIdentifierStatus::NotReserved && 498 !PP.getSourceManager().isInSystemHeader(Loc)) { 499 Diag(Loc, diag::warn_reserved_extern_symbol) 500 << II << static_cast<int>(Status) 501 << FixItHint::CreateReplacement( 502 Name.getSourceRange(), 503 (StringRef("operator\"\"") + II->getName()).str()); 504 } 505 } 506 507 if (!SS.isValid()) 508 return false; 509 510 switch (SS.getScopeRep()->getKind()) { 511 case NestedNameSpecifier::Identifier: 512 case NestedNameSpecifier::TypeSpec: 513 case NestedNameSpecifier::TypeSpecWithTemplate: 514 // Per C++11 [over.literal]p2, literal operators can only be declared at 515 // namespace scope. Therefore, this unqualified-id cannot name anything. 516 // Reject it early, because we have no AST representation for this in the 517 // case where the scope is dependent. 518 Diag(Name.getBeginLoc(), diag::err_literal_operator_id_outside_namespace) 519 << SS.getScopeRep(); 520 return true; 521 522 case NestedNameSpecifier::Global: 523 case NestedNameSpecifier::Super: 524 case NestedNameSpecifier::Namespace: 525 case NestedNameSpecifier::NamespaceAlias: 526 return false; 527 } 528 529 llvm_unreachable("unknown nested name specifier kind"); 530 } 531 532 /// Build a C++ typeid expression with a type operand. 533 ExprResult Sema::BuildCXXTypeId(QualType TypeInfoType, 534 SourceLocation TypeidLoc, 535 TypeSourceInfo *Operand, 536 SourceLocation RParenLoc) { 537 // C++ [expr.typeid]p4: 538 // The top-level cv-qualifiers of the lvalue expression or the type-id 539 // that is the operand of typeid are always ignored. 540 // If the type of the type-id is a class type or a reference to a class 541 // type, the class shall be completely-defined. 542 Qualifiers Quals; 543 QualType T 544 = Context.getUnqualifiedArrayType(Operand->getType().getNonReferenceType(), 545 Quals); 546 if (T->getAs<RecordType>() && 547 RequireCompleteType(TypeidLoc, T, diag::err_incomplete_typeid)) 548 return ExprError(); 549 550 if (T->isVariablyModifiedType()) 551 return ExprError(Diag(TypeidLoc, diag::err_variably_modified_typeid) << T); 552 553 if (CheckQualifiedFunctionForTypeId(T, TypeidLoc)) 554 return ExprError(); 555 556 return new (Context) CXXTypeidExpr(TypeInfoType.withConst(), Operand, 557 SourceRange(TypeidLoc, RParenLoc)); 558 } 559 560 /// Build a C++ typeid expression with an expression operand. 561 ExprResult Sema::BuildCXXTypeId(QualType TypeInfoType, 562 SourceLocation TypeidLoc, 563 Expr *E, 564 SourceLocation RParenLoc) { 565 bool WasEvaluated = false; 566 if (E && !E->isTypeDependent()) { 567 if (E->getType()->isPlaceholderType()) { 568 ExprResult result = CheckPlaceholderExpr(E); 569 if (result.isInvalid()) return ExprError(); 570 E = result.get(); 571 } 572 573 QualType T = E->getType(); 574 if (const RecordType *RecordT = T->getAs<RecordType>()) { 575 CXXRecordDecl *RecordD = cast<CXXRecordDecl>(RecordT->getDecl()); 576 // C++ [expr.typeid]p3: 577 // [...] If the type of the expression is a class type, the class 578 // shall be completely-defined. 579 if (RequireCompleteType(TypeidLoc, T, diag::err_incomplete_typeid)) 580 return ExprError(); 581 582 // C++ [expr.typeid]p3: 583 // When typeid is applied to an expression other than an glvalue of a 584 // polymorphic class type [...] [the] expression is an unevaluated 585 // operand. [...] 586 if (RecordD->isPolymorphic() && E->isGLValue()) { 587 if (isUnevaluatedContext()) { 588 // The operand was processed in unevaluated context, switch the 589 // context and recheck the subexpression. 590 ExprResult Result = TransformToPotentiallyEvaluated(E); 591 if (Result.isInvalid()) 592 return ExprError(); 593 E = Result.get(); 594 } 595 596 // We require a vtable to query the type at run time. 597 MarkVTableUsed(TypeidLoc, RecordD); 598 WasEvaluated = true; 599 } 600 } 601 602 ExprResult Result = CheckUnevaluatedOperand(E); 603 if (Result.isInvalid()) 604 return ExprError(); 605 E = Result.get(); 606 607 // C++ [expr.typeid]p4: 608 // [...] If the type of the type-id is a reference to a possibly 609 // cv-qualified type, the result of the typeid expression refers to a 610 // std::type_info object representing the cv-unqualified referenced 611 // type. 612 Qualifiers Quals; 613 QualType UnqualT = Context.getUnqualifiedArrayType(T, Quals); 614 if (!Context.hasSameType(T, UnqualT)) { 615 T = UnqualT; 616 E = ImpCastExprToType(E, UnqualT, CK_NoOp, E->getValueKind()).get(); 617 } 618 } 619 620 if (E->getType()->isVariablyModifiedType()) 621 return ExprError(Diag(TypeidLoc, diag::err_variably_modified_typeid) 622 << E->getType()); 623 else if (!inTemplateInstantiation() && 624 E->HasSideEffects(Context, WasEvaluated)) { 625 // The expression operand for typeid is in an unevaluated expression 626 // context, so side effects could result in unintended consequences. 627 Diag(E->getExprLoc(), WasEvaluated 628 ? diag::warn_side_effects_typeid 629 : diag::warn_side_effects_unevaluated_context); 630 } 631 632 return new (Context) CXXTypeidExpr(TypeInfoType.withConst(), E, 633 SourceRange(TypeidLoc, RParenLoc)); 634 } 635 636 /// ActOnCXXTypeidOfType - Parse typeid( type-id ) or typeid (expression); 637 ExprResult 638 Sema::ActOnCXXTypeid(SourceLocation OpLoc, SourceLocation LParenLoc, 639 bool isType, void *TyOrExpr, SourceLocation RParenLoc) { 640 // typeid is not supported in OpenCL. 641 if (getLangOpts().OpenCLCPlusPlus) { 642 return ExprError(Diag(OpLoc, diag::err_openclcxx_not_supported) 643 << "typeid"); 644 } 645 646 // Find the std::type_info type. 647 if (!getStdNamespace()) 648 return ExprError(Diag(OpLoc, diag::err_need_header_before_typeid)); 649 650 if (!CXXTypeInfoDecl) { 651 IdentifierInfo *TypeInfoII = &PP.getIdentifierTable().get("type_info"); 652 LookupResult R(*this, TypeInfoII, SourceLocation(), LookupTagName); 653 LookupQualifiedName(R, getStdNamespace()); 654 CXXTypeInfoDecl = R.getAsSingle<RecordDecl>(); 655 // Microsoft's typeinfo doesn't have type_info in std but in the global 656 // namespace if _HAS_EXCEPTIONS is defined to 0. See PR13153. 657 if (!CXXTypeInfoDecl && LangOpts.MSVCCompat) { 658 LookupQualifiedName(R, Context.getTranslationUnitDecl()); 659 CXXTypeInfoDecl = R.getAsSingle<RecordDecl>(); 660 } 661 if (!CXXTypeInfoDecl) 662 return ExprError(Diag(OpLoc, diag::err_need_header_before_typeid)); 663 } 664 665 if (!getLangOpts().RTTI) { 666 return ExprError(Diag(OpLoc, diag::err_no_typeid_with_fno_rtti)); 667 } 668 669 QualType TypeInfoType = Context.getTypeDeclType(CXXTypeInfoDecl); 670 671 if (isType) { 672 // The operand is a type; handle it as such. 673 TypeSourceInfo *TInfo = nullptr; 674 QualType T = GetTypeFromParser(ParsedType::getFromOpaquePtr(TyOrExpr), 675 &TInfo); 676 if (T.isNull()) 677 return ExprError(); 678 679 if (!TInfo) 680 TInfo = Context.getTrivialTypeSourceInfo(T, OpLoc); 681 682 return BuildCXXTypeId(TypeInfoType, OpLoc, TInfo, RParenLoc); 683 } 684 685 // The operand is an expression. 686 ExprResult Result = 687 BuildCXXTypeId(TypeInfoType, OpLoc, (Expr *)TyOrExpr, RParenLoc); 688 689 if (!getLangOpts().RTTIData && !Result.isInvalid()) 690 if (auto *CTE = dyn_cast<CXXTypeidExpr>(Result.get())) 691 if (CTE->isPotentiallyEvaluated() && !CTE->isMostDerived(Context)) 692 Diag(OpLoc, diag::warn_no_typeid_with_rtti_disabled) 693 << (getDiagnostics().getDiagnosticOptions().getFormat() == 694 DiagnosticOptions::MSVC); 695 return Result; 696 } 697 698 /// Grabs __declspec(uuid()) off a type, or returns 0 if we cannot resolve to 699 /// a single GUID. 700 static void 701 getUuidAttrOfType(Sema &SemaRef, QualType QT, 702 llvm::SmallSetVector<const UuidAttr *, 1> &UuidAttrs) { 703 // Optionally remove one level of pointer, reference or array indirection. 704 const Type *Ty = QT.getTypePtr(); 705 if (QT->isPointerType() || QT->isReferenceType()) 706 Ty = QT->getPointeeType().getTypePtr(); 707 else if (QT->isArrayType()) 708 Ty = Ty->getBaseElementTypeUnsafe(); 709 710 const auto *TD = Ty->getAsTagDecl(); 711 if (!TD) 712 return; 713 714 if (const auto *Uuid = TD->getMostRecentDecl()->getAttr<UuidAttr>()) { 715 UuidAttrs.insert(Uuid); 716 return; 717 } 718 719 // __uuidof can grab UUIDs from template arguments. 720 if (const auto *CTSD = dyn_cast<ClassTemplateSpecializationDecl>(TD)) { 721 const TemplateArgumentList &TAL = CTSD->getTemplateArgs(); 722 for (const TemplateArgument &TA : TAL.asArray()) { 723 const UuidAttr *UuidForTA = nullptr; 724 if (TA.getKind() == TemplateArgument::Type) 725 getUuidAttrOfType(SemaRef, TA.getAsType(), UuidAttrs); 726 else if (TA.getKind() == TemplateArgument::Declaration) 727 getUuidAttrOfType(SemaRef, TA.getAsDecl()->getType(), UuidAttrs); 728 729 if (UuidForTA) 730 UuidAttrs.insert(UuidForTA); 731 } 732 } 733 } 734 735 /// Build a Microsoft __uuidof expression with a type operand. 736 ExprResult Sema::BuildCXXUuidof(QualType Type, 737 SourceLocation TypeidLoc, 738 TypeSourceInfo *Operand, 739 SourceLocation RParenLoc) { 740 MSGuidDecl *Guid = nullptr; 741 if (!Operand->getType()->isDependentType()) { 742 llvm::SmallSetVector<const UuidAttr *, 1> UuidAttrs; 743 getUuidAttrOfType(*this, Operand->getType(), UuidAttrs); 744 if (UuidAttrs.empty()) 745 return ExprError(Diag(TypeidLoc, diag::err_uuidof_without_guid)); 746 if (UuidAttrs.size() > 1) 747 return ExprError(Diag(TypeidLoc, diag::err_uuidof_with_multiple_guids)); 748 Guid = UuidAttrs.back()->getGuidDecl(); 749 } 750 751 return new (Context) 752 CXXUuidofExpr(Type, Operand, Guid, SourceRange(TypeidLoc, RParenLoc)); 753 } 754 755 /// Build a Microsoft __uuidof expression with an expression operand. 756 ExprResult Sema::BuildCXXUuidof(QualType Type, SourceLocation TypeidLoc, 757 Expr *E, SourceLocation RParenLoc) { 758 MSGuidDecl *Guid = nullptr; 759 if (!E->getType()->isDependentType()) { 760 if (E->isNullPointerConstant(Context, Expr::NPC_ValueDependentIsNull)) { 761 // A null pointer results in {00000000-0000-0000-0000-000000000000}. 762 Guid = Context.getMSGuidDecl(MSGuidDecl::Parts{}); 763 } else { 764 llvm::SmallSetVector<const UuidAttr *, 1> UuidAttrs; 765 getUuidAttrOfType(*this, E->getType(), UuidAttrs); 766 if (UuidAttrs.empty()) 767 return ExprError(Diag(TypeidLoc, diag::err_uuidof_without_guid)); 768 if (UuidAttrs.size() > 1) 769 return ExprError(Diag(TypeidLoc, diag::err_uuidof_with_multiple_guids)); 770 Guid = UuidAttrs.back()->getGuidDecl(); 771 } 772 } 773 774 return new (Context) 775 CXXUuidofExpr(Type, E, Guid, SourceRange(TypeidLoc, RParenLoc)); 776 } 777 778 /// ActOnCXXUuidof - Parse __uuidof( type-id ) or __uuidof (expression); 779 ExprResult 780 Sema::ActOnCXXUuidof(SourceLocation OpLoc, SourceLocation LParenLoc, 781 bool isType, void *TyOrExpr, SourceLocation RParenLoc) { 782 QualType GuidType = Context.getMSGuidType(); 783 GuidType.addConst(); 784 785 if (isType) { 786 // The operand is a type; handle it as such. 787 TypeSourceInfo *TInfo = nullptr; 788 QualType T = GetTypeFromParser(ParsedType::getFromOpaquePtr(TyOrExpr), 789 &TInfo); 790 if (T.isNull()) 791 return ExprError(); 792 793 if (!TInfo) 794 TInfo = Context.getTrivialTypeSourceInfo(T, OpLoc); 795 796 return BuildCXXUuidof(GuidType, OpLoc, TInfo, RParenLoc); 797 } 798 799 // The operand is an expression. 800 return BuildCXXUuidof(GuidType, OpLoc, (Expr*)TyOrExpr, RParenLoc); 801 } 802 803 /// ActOnCXXBoolLiteral - Parse {true,false} literals. 804 ExprResult 805 Sema::ActOnCXXBoolLiteral(SourceLocation OpLoc, tok::TokenKind Kind) { 806 assert((Kind == tok::kw_true || Kind == tok::kw_false) && 807 "Unknown C++ Boolean value!"); 808 return new (Context) 809 CXXBoolLiteralExpr(Kind == tok::kw_true, Context.BoolTy, OpLoc); 810 } 811 812 /// ActOnCXXNullPtrLiteral - Parse 'nullptr'. 813 ExprResult 814 Sema::ActOnCXXNullPtrLiteral(SourceLocation Loc) { 815 return new (Context) CXXNullPtrLiteralExpr(Context.NullPtrTy, Loc); 816 } 817 818 /// ActOnCXXThrow - Parse throw expressions. 819 ExprResult 820 Sema::ActOnCXXThrow(Scope *S, SourceLocation OpLoc, Expr *Ex) { 821 bool IsThrownVarInScope = false; 822 if (Ex) { 823 // C++0x [class.copymove]p31: 824 // When certain criteria are met, an implementation is allowed to omit the 825 // copy/move construction of a class object [...] 826 // 827 // - in a throw-expression, when the operand is the name of a 828 // non-volatile automatic object (other than a function or catch- 829 // clause parameter) whose scope does not extend beyond the end of the 830 // innermost enclosing try-block (if there is one), the copy/move 831 // operation from the operand to the exception object (15.1) can be 832 // omitted by constructing the automatic object directly into the 833 // exception object 834 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Ex->IgnoreParens())) 835 if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) { 836 if (Var->hasLocalStorage() && !Var->getType().isVolatileQualified()) { 837 for( ; S; S = S->getParent()) { 838 if (S->isDeclScope(Var)) { 839 IsThrownVarInScope = true; 840 break; 841 } 842 843 if (S->getFlags() & 844 (Scope::FnScope | Scope::ClassScope | Scope::BlockScope | 845 Scope::FunctionPrototypeScope | Scope::ObjCMethodScope | 846 Scope::TryScope)) 847 break; 848 } 849 } 850 } 851 } 852 853 return BuildCXXThrow(OpLoc, Ex, IsThrownVarInScope); 854 } 855 856 ExprResult Sema::BuildCXXThrow(SourceLocation OpLoc, Expr *Ex, 857 bool IsThrownVarInScope) { 858 // Don't report an error if 'throw' is used in system headers. 859 if (!getLangOpts().CXXExceptions && 860 !getSourceManager().isInSystemHeader(OpLoc) && !getLangOpts().CUDA) { 861 // Delay error emission for the OpenMP device code. 862 targetDiag(OpLoc, diag::err_exceptions_disabled) << "throw"; 863 } 864 865 // Exceptions aren't allowed in CUDA device code. 866 if (getLangOpts().CUDA) 867 CUDADiagIfDeviceCode(OpLoc, diag::err_cuda_device_exceptions) 868 << "throw" << CurrentCUDATarget(); 869 870 if (getCurScope() && getCurScope()->isOpenMPSimdDirectiveScope()) 871 Diag(OpLoc, diag::err_omp_simd_region_cannot_use_stmt) << "throw"; 872 873 if (Ex && !Ex->isTypeDependent()) { 874 // Initialize the exception result. This implicitly weeds out 875 // abstract types or types with inaccessible copy constructors. 876 877 // C++0x [class.copymove]p31: 878 // When certain criteria are met, an implementation is allowed to omit the 879 // copy/move construction of a class object [...] 880 // 881 // - in a throw-expression, when the operand is the name of a 882 // non-volatile automatic object (other than a function or 883 // catch-clause 884 // parameter) whose scope does not extend beyond the end of the 885 // innermost enclosing try-block (if there is one), the copy/move 886 // operation from the operand to the exception object (15.1) can be 887 // omitted by constructing the automatic object directly into the 888 // exception object 889 NamedReturnInfo NRInfo = 890 IsThrownVarInScope ? getNamedReturnInfo(Ex) : NamedReturnInfo(); 891 892 QualType ExceptionObjectTy = Context.getExceptionObjectType(Ex->getType()); 893 if (CheckCXXThrowOperand(OpLoc, ExceptionObjectTy, Ex)) 894 return ExprError(); 895 896 InitializedEntity Entity = InitializedEntity::InitializeException( 897 OpLoc, ExceptionObjectTy, 898 /*NRVO=*/NRInfo.isCopyElidable()); 899 ExprResult Res = PerformMoveOrCopyInitialization(Entity, NRInfo, Ex); 900 if (Res.isInvalid()) 901 return ExprError(); 902 Ex = Res.get(); 903 } 904 905 // PPC MMA non-pointer types are not allowed as throw expr types. 906 if (Ex && Context.getTargetInfo().getTriple().isPPC64()) 907 CheckPPCMMAType(Ex->getType(), Ex->getBeginLoc()); 908 909 return new (Context) 910 CXXThrowExpr(Ex, Context.VoidTy, OpLoc, IsThrownVarInScope); 911 } 912 913 static void 914 collectPublicBases(CXXRecordDecl *RD, 915 llvm::DenseMap<CXXRecordDecl *, unsigned> &SubobjectsSeen, 916 llvm::SmallPtrSetImpl<CXXRecordDecl *> &VBases, 917 llvm::SetVector<CXXRecordDecl *> &PublicSubobjectsSeen, 918 bool ParentIsPublic) { 919 for (const CXXBaseSpecifier &BS : RD->bases()) { 920 CXXRecordDecl *BaseDecl = BS.getType()->getAsCXXRecordDecl(); 921 bool NewSubobject; 922 // Virtual bases constitute the same subobject. Non-virtual bases are 923 // always distinct subobjects. 924 if (BS.isVirtual()) 925 NewSubobject = VBases.insert(BaseDecl).second; 926 else 927 NewSubobject = true; 928 929 if (NewSubobject) 930 ++SubobjectsSeen[BaseDecl]; 931 932 // Only add subobjects which have public access throughout the entire chain. 933 bool PublicPath = ParentIsPublic && BS.getAccessSpecifier() == AS_public; 934 if (PublicPath) 935 PublicSubobjectsSeen.insert(BaseDecl); 936 937 // Recurse on to each base subobject. 938 collectPublicBases(BaseDecl, SubobjectsSeen, VBases, PublicSubobjectsSeen, 939 PublicPath); 940 } 941 } 942 943 static void getUnambiguousPublicSubobjects( 944 CXXRecordDecl *RD, llvm::SmallVectorImpl<CXXRecordDecl *> &Objects) { 945 llvm::DenseMap<CXXRecordDecl *, unsigned> SubobjectsSeen; 946 llvm::SmallSet<CXXRecordDecl *, 2> VBases; 947 llvm::SetVector<CXXRecordDecl *> PublicSubobjectsSeen; 948 SubobjectsSeen[RD] = 1; 949 PublicSubobjectsSeen.insert(RD); 950 collectPublicBases(RD, SubobjectsSeen, VBases, PublicSubobjectsSeen, 951 /*ParentIsPublic=*/true); 952 953 for (CXXRecordDecl *PublicSubobject : PublicSubobjectsSeen) { 954 // Skip ambiguous objects. 955 if (SubobjectsSeen[PublicSubobject] > 1) 956 continue; 957 958 Objects.push_back(PublicSubobject); 959 } 960 } 961 962 /// CheckCXXThrowOperand - Validate the operand of a throw. 963 bool Sema::CheckCXXThrowOperand(SourceLocation ThrowLoc, 964 QualType ExceptionObjectTy, Expr *E) { 965 // If the type of the exception would be an incomplete type or a pointer 966 // to an incomplete type other than (cv) void the program is ill-formed. 967 QualType Ty = ExceptionObjectTy; 968 bool isPointer = false; 969 if (const PointerType* Ptr = Ty->getAs<PointerType>()) { 970 Ty = Ptr->getPointeeType(); 971 isPointer = true; 972 } 973 if (!isPointer || !Ty->isVoidType()) { 974 if (RequireCompleteType(ThrowLoc, Ty, 975 isPointer ? diag::err_throw_incomplete_ptr 976 : diag::err_throw_incomplete, 977 E->getSourceRange())) 978 return true; 979 980 if (!isPointer && Ty->isSizelessType()) { 981 Diag(ThrowLoc, diag::err_throw_sizeless) << Ty << E->getSourceRange(); 982 return true; 983 } 984 985 if (RequireNonAbstractType(ThrowLoc, ExceptionObjectTy, 986 diag::err_throw_abstract_type, E)) 987 return true; 988 } 989 990 // If the exception has class type, we need additional handling. 991 CXXRecordDecl *RD = Ty->getAsCXXRecordDecl(); 992 if (!RD) 993 return false; 994 995 // If we are throwing a polymorphic class type or pointer thereof, 996 // exception handling will make use of the vtable. 997 MarkVTableUsed(ThrowLoc, RD); 998 999 // If a pointer is thrown, the referenced object will not be destroyed. 1000 if (isPointer) 1001 return false; 1002 1003 // If the class has a destructor, we must be able to call it. 1004 if (!RD->hasIrrelevantDestructor()) { 1005 if (CXXDestructorDecl *Destructor = LookupDestructor(RD)) { 1006 MarkFunctionReferenced(E->getExprLoc(), Destructor); 1007 CheckDestructorAccess(E->getExprLoc(), Destructor, 1008 PDiag(diag::err_access_dtor_exception) << Ty); 1009 if (DiagnoseUseOfDecl(Destructor, E->getExprLoc())) 1010 return true; 1011 } 1012 } 1013 1014 // The MSVC ABI creates a list of all types which can catch the exception 1015 // object. This list also references the appropriate copy constructor to call 1016 // if the object is caught by value and has a non-trivial copy constructor. 1017 if (Context.getTargetInfo().getCXXABI().isMicrosoft()) { 1018 // We are only interested in the public, unambiguous bases contained within 1019 // the exception object. Bases which are ambiguous or otherwise 1020 // inaccessible are not catchable types. 1021 llvm::SmallVector<CXXRecordDecl *, 2> UnambiguousPublicSubobjects; 1022 getUnambiguousPublicSubobjects(RD, UnambiguousPublicSubobjects); 1023 1024 for (CXXRecordDecl *Subobject : UnambiguousPublicSubobjects) { 1025 // Attempt to lookup the copy constructor. Various pieces of machinery 1026 // will spring into action, like template instantiation, which means this 1027 // cannot be a simple walk of the class's decls. Instead, we must perform 1028 // lookup and overload resolution. 1029 CXXConstructorDecl *CD = LookupCopyingConstructor(Subobject, 0); 1030 if (!CD || CD->isDeleted()) 1031 continue; 1032 1033 // Mark the constructor referenced as it is used by this throw expression. 1034 MarkFunctionReferenced(E->getExprLoc(), CD); 1035 1036 // Skip this copy constructor if it is trivial, we don't need to record it 1037 // in the catchable type data. 1038 if (CD->isTrivial()) 1039 continue; 1040 1041 // The copy constructor is non-trivial, create a mapping from this class 1042 // type to this constructor. 1043 // N.B. The selection of copy constructor is not sensitive to this 1044 // particular throw-site. Lookup will be performed at the catch-site to 1045 // ensure that the copy constructor is, in fact, accessible (via 1046 // friendship or any other means). 1047 Context.addCopyConstructorForExceptionObject(Subobject, CD); 1048 1049 // We don't keep the instantiated default argument expressions around so 1050 // we must rebuild them here. 1051 for (unsigned I = 1, E = CD->getNumParams(); I != E; ++I) { 1052 if (CheckCXXDefaultArgExpr(ThrowLoc, CD, CD->getParamDecl(I))) 1053 return true; 1054 } 1055 } 1056 } 1057 1058 // Under the Itanium C++ ABI, memory for the exception object is allocated by 1059 // the runtime with no ability for the compiler to request additional 1060 // alignment. Warn if the exception type requires alignment beyond the minimum 1061 // guaranteed by the target C++ runtime. 1062 if (Context.getTargetInfo().getCXXABI().isItaniumFamily()) { 1063 CharUnits TypeAlign = Context.getTypeAlignInChars(Ty); 1064 CharUnits ExnObjAlign = Context.getExnObjectAlignment(); 1065 if (ExnObjAlign < TypeAlign) { 1066 Diag(ThrowLoc, diag::warn_throw_underaligned_obj); 1067 Diag(ThrowLoc, diag::note_throw_underaligned_obj) 1068 << Ty << (unsigned)TypeAlign.getQuantity() 1069 << (unsigned)ExnObjAlign.getQuantity(); 1070 } 1071 } 1072 1073 return false; 1074 } 1075 1076 static QualType adjustCVQualifiersForCXXThisWithinLambda( 1077 ArrayRef<FunctionScopeInfo *> FunctionScopes, QualType ThisTy, 1078 DeclContext *CurSemaContext, ASTContext &ASTCtx) { 1079 1080 QualType ClassType = ThisTy->getPointeeType(); 1081 LambdaScopeInfo *CurLSI = nullptr; 1082 DeclContext *CurDC = CurSemaContext; 1083 1084 // Iterate through the stack of lambdas starting from the innermost lambda to 1085 // the outermost lambda, checking if '*this' is ever captured by copy - since 1086 // that could change the cv-qualifiers of the '*this' object. 1087 // The object referred to by '*this' starts out with the cv-qualifiers of its 1088 // member function. We then start with the innermost lambda and iterate 1089 // outward checking to see if any lambda performs a by-copy capture of '*this' 1090 // - and if so, any nested lambda must respect the 'constness' of that 1091 // capturing lamdbda's call operator. 1092 // 1093 1094 // Since the FunctionScopeInfo stack is representative of the lexical 1095 // nesting of the lambda expressions during initial parsing (and is the best 1096 // place for querying information about captures about lambdas that are 1097 // partially processed) and perhaps during instantiation of function templates 1098 // that contain lambda expressions that need to be transformed BUT not 1099 // necessarily during instantiation of a nested generic lambda's function call 1100 // operator (which might even be instantiated at the end of the TU) - at which 1101 // time the DeclContext tree is mature enough to query capture information 1102 // reliably - we use a two pronged approach to walk through all the lexically 1103 // enclosing lambda expressions: 1104 // 1105 // 1) Climb down the FunctionScopeInfo stack as long as each item represents 1106 // a Lambda (i.e. LambdaScopeInfo) AND each LSI's 'closure-type' is lexically 1107 // enclosed by the call-operator of the LSI below it on the stack (while 1108 // tracking the enclosing DC for step 2 if needed). Note the topmost LSI on 1109 // the stack represents the innermost lambda. 1110 // 1111 // 2) If we run out of enclosing LSI's, check if the enclosing DeclContext 1112 // represents a lambda's call operator. If it does, we must be instantiating 1113 // a generic lambda's call operator (represented by the Current LSI, and 1114 // should be the only scenario where an inconsistency between the LSI and the 1115 // DeclContext should occur), so climb out the DeclContexts if they 1116 // represent lambdas, while querying the corresponding closure types 1117 // regarding capture information. 1118 1119 // 1) Climb down the function scope info stack. 1120 for (int I = FunctionScopes.size(); 1121 I-- && isa<LambdaScopeInfo>(FunctionScopes[I]) && 1122 (!CurLSI || !CurLSI->Lambda || CurLSI->Lambda->getDeclContext() == 1123 cast<LambdaScopeInfo>(FunctionScopes[I])->CallOperator); 1124 CurDC = getLambdaAwareParentOfDeclContext(CurDC)) { 1125 CurLSI = cast<LambdaScopeInfo>(FunctionScopes[I]); 1126 1127 if (!CurLSI->isCXXThisCaptured()) 1128 continue; 1129 1130 auto C = CurLSI->getCXXThisCapture(); 1131 1132 if (C.isCopyCapture()) { 1133 ClassType.removeLocalCVRQualifiers(Qualifiers::CVRMask); 1134 if (CurLSI->CallOperator->isConst()) 1135 ClassType.addConst(); 1136 return ASTCtx.getPointerType(ClassType); 1137 } 1138 } 1139 1140 // 2) We've run out of ScopeInfos but check if CurDC is a lambda (which can 1141 // happen during instantiation of its nested generic lambda call operator) 1142 if (isLambdaCallOperator(CurDC)) { 1143 assert(CurLSI && "While computing 'this' capture-type for a generic " 1144 "lambda, we must have a corresponding LambdaScopeInfo"); 1145 assert(isGenericLambdaCallOperatorSpecialization(CurLSI->CallOperator) && 1146 "While computing 'this' capture-type for a generic lambda, when we " 1147 "run out of enclosing LSI's, yet the enclosing DC is a " 1148 "lambda-call-operator we must be (i.e. Current LSI) in a generic " 1149 "lambda call oeprator"); 1150 assert(CurDC == getLambdaAwareParentOfDeclContext(CurLSI->CallOperator)); 1151 1152 auto IsThisCaptured = 1153 [](CXXRecordDecl *Closure, bool &IsByCopy, bool &IsConst) { 1154 IsConst = false; 1155 IsByCopy = false; 1156 for (auto &&C : Closure->captures()) { 1157 if (C.capturesThis()) { 1158 if (C.getCaptureKind() == LCK_StarThis) 1159 IsByCopy = true; 1160 if (Closure->getLambdaCallOperator()->isConst()) 1161 IsConst = true; 1162 return true; 1163 } 1164 } 1165 return false; 1166 }; 1167 1168 bool IsByCopyCapture = false; 1169 bool IsConstCapture = false; 1170 CXXRecordDecl *Closure = cast<CXXRecordDecl>(CurDC->getParent()); 1171 while (Closure && 1172 IsThisCaptured(Closure, IsByCopyCapture, IsConstCapture)) { 1173 if (IsByCopyCapture) { 1174 ClassType.removeLocalCVRQualifiers(Qualifiers::CVRMask); 1175 if (IsConstCapture) 1176 ClassType.addConst(); 1177 return ASTCtx.getPointerType(ClassType); 1178 } 1179 Closure = isLambdaCallOperator(Closure->getParent()) 1180 ? cast<CXXRecordDecl>(Closure->getParent()->getParent()) 1181 : nullptr; 1182 } 1183 } 1184 return ASTCtx.getPointerType(ClassType); 1185 } 1186 1187 QualType Sema::getCurrentThisType() { 1188 DeclContext *DC = getFunctionLevelDeclContext(); 1189 QualType ThisTy = CXXThisTypeOverride; 1190 1191 if (CXXMethodDecl *method = dyn_cast<CXXMethodDecl>(DC)) { 1192 if (method && method->isInstance()) 1193 ThisTy = method->getThisType(); 1194 } 1195 1196 if (ThisTy.isNull() && isLambdaCallOperator(CurContext) && 1197 inTemplateInstantiation() && isa<CXXRecordDecl>(DC)) { 1198 1199 // This is a lambda call operator that is being instantiated as a default 1200 // initializer. DC must point to the enclosing class type, so we can recover 1201 // the 'this' type from it. 1202 QualType ClassTy = Context.getTypeDeclType(cast<CXXRecordDecl>(DC)); 1203 // There are no cv-qualifiers for 'this' within default initializers, 1204 // per [expr.prim.general]p4. 1205 ThisTy = Context.getPointerType(ClassTy); 1206 } 1207 1208 // If we are within a lambda's call operator, the cv-qualifiers of 'this' 1209 // might need to be adjusted if the lambda or any of its enclosing lambda's 1210 // captures '*this' by copy. 1211 if (!ThisTy.isNull() && isLambdaCallOperator(CurContext)) 1212 return adjustCVQualifiersForCXXThisWithinLambda(FunctionScopes, ThisTy, 1213 CurContext, Context); 1214 return ThisTy; 1215 } 1216 1217 Sema::CXXThisScopeRAII::CXXThisScopeRAII(Sema &S, 1218 Decl *ContextDecl, 1219 Qualifiers CXXThisTypeQuals, 1220 bool Enabled) 1221 : S(S), OldCXXThisTypeOverride(S.CXXThisTypeOverride), Enabled(false) 1222 { 1223 if (!Enabled || !ContextDecl) 1224 return; 1225 1226 CXXRecordDecl *Record = nullptr; 1227 if (ClassTemplateDecl *Template = dyn_cast<ClassTemplateDecl>(ContextDecl)) 1228 Record = Template->getTemplatedDecl(); 1229 else 1230 Record = cast<CXXRecordDecl>(ContextDecl); 1231 1232 QualType T = S.Context.getRecordType(Record); 1233 T = S.getASTContext().getQualifiedType(T, CXXThisTypeQuals); 1234 1235 S.CXXThisTypeOverride = S.Context.getPointerType(T); 1236 1237 this->Enabled = true; 1238 } 1239 1240 1241 Sema::CXXThisScopeRAII::~CXXThisScopeRAII() { 1242 if (Enabled) { 1243 S.CXXThisTypeOverride = OldCXXThisTypeOverride; 1244 } 1245 } 1246 1247 static void buildLambdaThisCaptureFixit(Sema &Sema, LambdaScopeInfo *LSI) { 1248 SourceLocation DiagLoc = LSI->IntroducerRange.getEnd(); 1249 assert(!LSI->isCXXThisCaptured()); 1250 // [=, this] {}; // until C++20: Error: this when = is the default 1251 if (LSI->ImpCaptureStyle == CapturingScopeInfo::ImpCap_LambdaByval && 1252 !Sema.getLangOpts().CPlusPlus20) 1253 return; 1254 Sema.Diag(DiagLoc, diag::note_lambda_this_capture_fixit) 1255 << FixItHint::CreateInsertion( 1256 DiagLoc, LSI->NumExplicitCaptures > 0 ? ", this" : "this"); 1257 } 1258 1259 bool Sema::CheckCXXThisCapture(SourceLocation Loc, const bool Explicit, 1260 bool BuildAndDiagnose, const unsigned *const FunctionScopeIndexToStopAt, 1261 const bool ByCopy) { 1262 // We don't need to capture this in an unevaluated context. 1263 if (isUnevaluatedContext() && !Explicit) 1264 return true; 1265 1266 assert((!ByCopy || Explicit) && "cannot implicitly capture *this by value"); 1267 1268 const int MaxFunctionScopesIndex = FunctionScopeIndexToStopAt 1269 ? *FunctionScopeIndexToStopAt 1270 : FunctionScopes.size() - 1; 1271 1272 // Check that we can capture the *enclosing object* (referred to by '*this') 1273 // by the capturing-entity/closure (lambda/block/etc) at 1274 // MaxFunctionScopesIndex-deep on the FunctionScopes stack. 1275 1276 // Note: The *enclosing object* can only be captured by-value by a 1277 // closure that is a lambda, using the explicit notation: 1278 // [*this] { ... }. 1279 // Every other capture of the *enclosing object* results in its by-reference 1280 // capture. 1281 1282 // For a closure 'L' (at MaxFunctionScopesIndex in the FunctionScopes 1283 // stack), we can capture the *enclosing object* only if: 1284 // - 'L' has an explicit byref or byval capture of the *enclosing object* 1285 // - or, 'L' has an implicit capture. 1286 // AND 1287 // -- there is no enclosing closure 1288 // -- or, there is some enclosing closure 'E' that has already captured the 1289 // *enclosing object*, and every intervening closure (if any) between 'E' 1290 // and 'L' can implicitly capture the *enclosing object*. 1291 // -- or, every enclosing closure can implicitly capture the 1292 // *enclosing object* 1293 1294 1295 unsigned NumCapturingClosures = 0; 1296 for (int idx = MaxFunctionScopesIndex; idx >= 0; idx--) { 1297 if (CapturingScopeInfo *CSI = 1298 dyn_cast<CapturingScopeInfo>(FunctionScopes[idx])) { 1299 if (CSI->CXXThisCaptureIndex != 0) { 1300 // 'this' is already being captured; there isn't anything more to do. 1301 CSI->Captures[CSI->CXXThisCaptureIndex - 1].markUsed(BuildAndDiagnose); 1302 break; 1303 } 1304 LambdaScopeInfo *LSI = dyn_cast<LambdaScopeInfo>(CSI); 1305 if (LSI && isGenericLambdaCallOperatorSpecialization(LSI->CallOperator)) { 1306 // This context can't implicitly capture 'this'; fail out. 1307 if (BuildAndDiagnose) { 1308 Diag(Loc, diag::err_this_capture) 1309 << (Explicit && idx == MaxFunctionScopesIndex); 1310 if (!Explicit) 1311 buildLambdaThisCaptureFixit(*this, LSI); 1312 } 1313 return true; 1314 } 1315 if (CSI->ImpCaptureStyle == CapturingScopeInfo::ImpCap_LambdaByref || 1316 CSI->ImpCaptureStyle == CapturingScopeInfo::ImpCap_LambdaByval || 1317 CSI->ImpCaptureStyle == CapturingScopeInfo::ImpCap_Block || 1318 CSI->ImpCaptureStyle == CapturingScopeInfo::ImpCap_CapturedRegion || 1319 (Explicit && idx == MaxFunctionScopesIndex)) { 1320 // Regarding (Explicit && idx == MaxFunctionScopesIndex): only the first 1321 // iteration through can be an explicit capture, all enclosing closures, 1322 // if any, must perform implicit captures. 1323 1324 // This closure can capture 'this'; continue looking upwards. 1325 NumCapturingClosures++; 1326 continue; 1327 } 1328 // This context can't implicitly capture 'this'; fail out. 1329 if (BuildAndDiagnose) 1330 Diag(Loc, diag::err_this_capture) 1331 << (Explicit && idx == MaxFunctionScopesIndex); 1332 1333 if (!Explicit) 1334 buildLambdaThisCaptureFixit(*this, LSI); 1335 return true; 1336 } 1337 break; 1338 } 1339 if (!BuildAndDiagnose) return false; 1340 1341 // If we got here, then the closure at MaxFunctionScopesIndex on the 1342 // FunctionScopes stack, can capture the *enclosing object*, so capture it 1343 // (including implicit by-reference captures in any enclosing closures). 1344 1345 // In the loop below, respect the ByCopy flag only for the closure requesting 1346 // the capture (i.e. first iteration through the loop below). Ignore it for 1347 // all enclosing closure's up to NumCapturingClosures (since they must be 1348 // implicitly capturing the *enclosing object* by reference (see loop 1349 // above)). 1350 assert((!ByCopy || 1351 dyn_cast<LambdaScopeInfo>(FunctionScopes[MaxFunctionScopesIndex])) && 1352 "Only a lambda can capture the enclosing object (referred to by " 1353 "*this) by copy"); 1354 QualType ThisTy = getCurrentThisType(); 1355 for (int idx = MaxFunctionScopesIndex; NumCapturingClosures; 1356 --idx, --NumCapturingClosures) { 1357 CapturingScopeInfo *CSI = cast<CapturingScopeInfo>(FunctionScopes[idx]); 1358 1359 // The type of the corresponding data member (not a 'this' pointer if 'by 1360 // copy'). 1361 QualType CaptureType = ThisTy; 1362 if (ByCopy) { 1363 // If we are capturing the object referred to by '*this' by copy, ignore 1364 // any cv qualifiers inherited from the type of the member function for 1365 // the type of the closure-type's corresponding data member and any use 1366 // of 'this'. 1367 CaptureType = ThisTy->getPointeeType(); 1368 CaptureType.removeLocalCVRQualifiers(Qualifiers::CVRMask); 1369 } 1370 1371 bool isNested = NumCapturingClosures > 1; 1372 CSI->addThisCapture(isNested, Loc, CaptureType, ByCopy); 1373 } 1374 return false; 1375 } 1376 1377 ExprResult Sema::ActOnCXXThis(SourceLocation Loc) { 1378 /// C++ 9.3.2: In the body of a non-static member function, the keyword this 1379 /// is a non-lvalue expression whose value is the address of the object for 1380 /// which the function is called. 1381 1382 QualType ThisTy = getCurrentThisType(); 1383 if (ThisTy.isNull()) 1384 return Diag(Loc, diag::err_invalid_this_use); 1385 return BuildCXXThisExpr(Loc, ThisTy, /*IsImplicit=*/false); 1386 } 1387 1388 Expr *Sema::BuildCXXThisExpr(SourceLocation Loc, QualType Type, 1389 bool IsImplicit) { 1390 auto *This = new (Context) CXXThisExpr(Loc, Type, IsImplicit); 1391 MarkThisReferenced(This); 1392 return This; 1393 } 1394 1395 void Sema::MarkThisReferenced(CXXThisExpr *This) { 1396 CheckCXXThisCapture(This->getExprLoc()); 1397 } 1398 1399 bool Sema::isThisOutsideMemberFunctionBody(QualType BaseType) { 1400 // If we're outside the body of a member function, then we'll have a specified 1401 // type for 'this'. 1402 if (CXXThisTypeOverride.isNull()) 1403 return false; 1404 1405 // Determine whether we're looking into a class that's currently being 1406 // defined. 1407 CXXRecordDecl *Class = BaseType->getAsCXXRecordDecl(); 1408 return Class && Class->isBeingDefined(); 1409 } 1410 1411 /// Parse construction of a specified type. 1412 /// Can be interpreted either as function-style casting ("int(x)") 1413 /// or class type construction ("ClassType(x,y,z)") 1414 /// or creation of a value-initialized type ("int()"). 1415 ExprResult 1416 Sema::ActOnCXXTypeConstructExpr(ParsedType TypeRep, 1417 SourceLocation LParenOrBraceLoc, 1418 MultiExprArg exprs, 1419 SourceLocation RParenOrBraceLoc, 1420 bool ListInitialization) { 1421 if (!TypeRep) 1422 return ExprError(); 1423 1424 TypeSourceInfo *TInfo; 1425 QualType Ty = GetTypeFromParser(TypeRep, &TInfo); 1426 if (!TInfo) 1427 TInfo = Context.getTrivialTypeSourceInfo(Ty, SourceLocation()); 1428 1429 auto Result = BuildCXXTypeConstructExpr(TInfo, LParenOrBraceLoc, exprs, 1430 RParenOrBraceLoc, ListInitialization); 1431 // Avoid creating a non-type-dependent expression that contains typos. 1432 // Non-type-dependent expressions are liable to be discarded without 1433 // checking for embedded typos. 1434 if (!Result.isInvalid() && Result.get()->isInstantiationDependent() && 1435 !Result.get()->isTypeDependent()) 1436 Result = CorrectDelayedTyposInExpr(Result.get()); 1437 else if (Result.isInvalid()) 1438 Result = CreateRecoveryExpr(TInfo->getTypeLoc().getBeginLoc(), 1439 RParenOrBraceLoc, exprs, Ty); 1440 return Result; 1441 } 1442 1443 ExprResult 1444 Sema::BuildCXXTypeConstructExpr(TypeSourceInfo *TInfo, 1445 SourceLocation LParenOrBraceLoc, 1446 MultiExprArg Exprs, 1447 SourceLocation RParenOrBraceLoc, 1448 bool ListInitialization) { 1449 QualType Ty = TInfo->getType(); 1450 SourceLocation TyBeginLoc = TInfo->getTypeLoc().getBeginLoc(); 1451 1452 assert((!ListInitialization || 1453 (Exprs.size() == 1 && isa<InitListExpr>(Exprs[0]))) && 1454 "List initialization must have initializer list as expression."); 1455 SourceRange FullRange = SourceRange(TyBeginLoc, RParenOrBraceLoc); 1456 1457 InitializedEntity Entity = InitializedEntity::InitializeTemporary(TInfo); 1458 InitializationKind Kind = 1459 Exprs.size() 1460 ? ListInitialization 1461 ? InitializationKind::CreateDirectList( 1462 TyBeginLoc, LParenOrBraceLoc, RParenOrBraceLoc) 1463 : InitializationKind::CreateDirect(TyBeginLoc, LParenOrBraceLoc, 1464 RParenOrBraceLoc) 1465 : InitializationKind::CreateValue(TyBeginLoc, LParenOrBraceLoc, 1466 RParenOrBraceLoc); 1467 1468 // C++1z [expr.type.conv]p1: 1469 // If the type is a placeholder for a deduced class type, [...perform class 1470 // template argument deduction...] 1471 DeducedType *Deduced = Ty->getContainedDeducedType(); 1472 if (Deduced && isa<DeducedTemplateSpecializationType>(Deduced)) { 1473 Ty = DeduceTemplateSpecializationFromInitializer(TInfo, Entity, 1474 Kind, Exprs); 1475 if (Ty.isNull()) 1476 return ExprError(); 1477 Entity = InitializedEntity::InitializeTemporary(TInfo, Ty); 1478 } 1479 1480 if (Ty->isDependentType() || CallExpr::hasAnyTypeDependentArguments(Exprs)) { 1481 // FIXME: CXXUnresolvedConstructExpr does not model list-initialization 1482 // directly. We work around this by dropping the locations of the braces. 1483 SourceRange Locs = ListInitialization 1484 ? SourceRange() 1485 : SourceRange(LParenOrBraceLoc, RParenOrBraceLoc); 1486 return CXXUnresolvedConstructExpr::Create(Context, Ty.getNonReferenceType(), 1487 TInfo, Locs.getBegin(), Exprs, 1488 Locs.getEnd()); 1489 } 1490 1491 // C++ [expr.type.conv]p1: 1492 // If the expression list is a parenthesized single expression, the type 1493 // conversion expression is equivalent (in definedness, and if defined in 1494 // meaning) to the corresponding cast expression. 1495 if (Exprs.size() == 1 && !ListInitialization && 1496 !isa<InitListExpr>(Exprs[0])) { 1497 Expr *Arg = Exprs[0]; 1498 return BuildCXXFunctionalCastExpr(TInfo, Ty, LParenOrBraceLoc, Arg, 1499 RParenOrBraceLoc); 1500 } 1501 1502 // For an expression of the form T(), T shall not be an array type. 1503 QualType ElemTy = Ty; 1504 if (Ty->isArrayType()) { 1505 if (!ListInitialization) 1506 return ExprError(Diag(TyBeginLoc, diag::err_value_init_for_array_type) 1507 << FullRange); 1508 ElemTy = Context.getBaseElementType(Ty); 1509 } 1510 1511 // There doesn't seem to be an explicit rule against this but sanity demands 1512 // we only construct objects with object types. 1513 if (Ty->isFunctionType()) 1514 return ExprError(Diag(TyBeginLoc, diag::err_init_for_function_type) 1515 << Ty << FullRange); 1516 1517 // C++17 [expr.type.conv]p2: 1518 // If the type is cv void and the initializer is (), the expression is a 1519 // prvalue of the specified type that performs no initialization. 1520 if (!Ty->isVoidType() && 1521 RequireCompleteType(TyBeginLoc, ElemTy, 1522 diag::err_invalid_incomplete_type_use, FullRange)) 1523 return ExprError(); 1524 1525 // Otherwise, the expression is a prvalue of the specified type whose 1526 // result object is direct-initialized (11.6) with the initializer. 1527 InitializationSequence InitSeq(*this, Entity, Kind, Exprs); 1528 ExprResult Result = InitSeq.Perform(*this, Entity, Kind, Exprs); 1529 1530 if (Result.isInvalid()) 1531 return Result; 1532 1533 Expr *Inner = Result.get(); 1534 if (CXXBindTemporaryExpr *BTE = dyn_cast_or_null<CXXBindTemporaryExpr>(Inner)) 1535 Inner = BTE->getSubExpr(); 1536 if (!isa<CXXTemporaryObjectExpr>(Inner) && 1537 !isa<CXXScalarValueInitExpr>(Inner)) { 1538 // If we created a CXXTemporaryObjectExpr, that node also represents the 1539 // functional cast. Otherwise, create an explicit cast to represent 1540 // the syntactic form of a functional-style cast that was used here. 1541 // 1542 // FIXME: Creating a CXXFunctionalCastExpr around a CXXConstructExpr 1543 // would give a more consistent AST representation than using a 1544 // CXXTemporaryObjectExpr. It's also weird that the functional cast 1545 // is sometimes handled by initialization and sometimes not. 1546 QualType ResultType = Result.get()->getType(); 1547 SourceRange Locs = ListInitialization 1548 ? SourceRange() 1549 : SourceRange(LParenOrBraceLoc, RParenOrBraceLoc); 1550 Result = CXXFunctionalCastExpr::Create( 1551 Context, ResultType, Expr::getValueKindForType(Ty), TInfo, CK_NoOp, 1552 Result.get(), /*Path=*/nullptr, CurFPFeatureOverrides(), 1553 Locs.getBegin(), Locs.getEnd()); 1554 } 1555 1556 return Result; 1557 } 1558 1559 bool Sema::isUsualDeallocationFunction(const CXXMethodDecl *Method) { 1560 // [CUDA] Ignore this function, if we can't call it. 1561 const FunctionDecl *Caller = dyn_cast<FunctionDecl>(CurContext); 1562 if (getLangOpts().CUDA) { 1563 auto CallPreference = IdentifyCUDAPreference(Caller, Method); 1564 // If it's not callable at all, it's not the right function. 1565 if (CallPreference < CFP_WrongSide) 1566 return false; 1567 if (CallPreference == CFP_WrongSide) { 1568 // Maybe. We have to check if there are better alternatives. 1569 DeclContext::lookup_result R = 1570 Method->getDeclContext()->lookup(Method->getDeclName()); 1571 for (const auto *D : R) { 1572 if (const auto *FD = dyn_cast<FunctionDecl>(D)) { 1573 if (IdentifyCUDAPreference(Caller, FD) > CFP_WrongSide) 1574 return false; 1575 } 1576 } 1577 // We've found no better variants. 1578 } 1579 } 1580 1581 SmallVector<const FunctionDecl*, 4> PreventedBy; 1582 bool Result = Method->isUsualDeallocationFunction(PreventedBy); 1583 1584 if (Result || !getLangOpts().CUDA || PreventedBy.empty()) 1585 return Result; 1586 1587 // In case of CUDA, return true if none of the 1-argument deallocator 1588 // functions are actually callable. 1589 return llvm::none_of(PreventedBy, [&](const FunctionDecl *FD) { 1590 assert(FD->getNumParams() == 1 && 1591 "Only single-operand functions should be in PreventedBy"); 1592 return IdentifyCUDAPreference(Caller, FD) >= CFP_HostDevice; 1593 }); 1594 } 1595 1596 /// Determine whether the given function is a non-placement 1597 /// deallocation function. 1598 static bool isNonPlacementDeallocationFunction(Sema &S, FunctionDecl *FD) { 1599 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(FD)) 1600 return S.isUsualDeallocationFunction(Method); 1601 1602 if (FD->getOverloadedOperator() != OO_Delete && 1603 FD->getOverloadedOperator() != OO_Array_Delete) 1604 return false; 1605 1606 unsigned UsualParams = 1; 1607 1608 if (S.getLangOpts().SizedDeallocation && UsualParams < FD->getNumParams() && 1609 S.Context.hasSameUnqualifiedType( 1610 FD->getParamDecl(UsualParams)->getType(), 1611 S.Context.getSizeType())) 1612 ++UsualParams; 1613 1614 if (S.getLangOpts().AlignedAllocation && UsualParams < FD->getNumParams() && 1615 S.Context.hasSameUnqualifiedType( 1616 FD->getParamDecl(UsualParams)->getType(), 1617 S.Context.getTypeDeclType(S.getStdAlignValT()))) 1618 ++UsualParams; 1619 1620 return UsualParams == FD->getNumParams(); 1621 } 1622 1623 namespace { 1624 struct UsualDeallocFnInfo { 1625 UsualDeallocFnInfo() : Found(), FD(nullptr) {} 1626 UsualDeallocFnInfo(Sema &S, DeclAccessPair Found) 1627 : Found(Found), FD(dyn_cast<FunctionDecl>(Found->getUnderlyingDecl())), 1628 Destroying(false), HasSizeT(false), HasAlignValT(false), 1629 CUDAPref(Sema::CFP_Native) { 1630 // A function template declaration is never a usual deallocation function. 1631 if (!FD) 1632 return; 1633 unsigned NumBaseParams = 1; 1634 if (FD->isDestroyingOperatorDelete()) { 1635 Destroying = true; 1636 ++NumBaseParams; 1637 } 1638 1639 if (NumBaseParams < FD->getNumParams() && 1640 S.Context.hasSameUnqualifiedType( 1641 FD->getParamDecl(NumBaseParams)->getType(), 1642 S.Context.getSizeType())) { 1643 ++NumBaseParams; 1644 HasSizeT = true; 1645 } 1646 1647 if (NumBaseParams < FD->getNumParams() && 1648 FD->getParamDecl(NumBaseParams)->getType()->isAlignValT()) { 1649 ++NumBaseParams; 1650 HasAlignValT = true; 1651 } 1652 1653 // In CUDA, determine how much we'd like / dislike to call this. 1654 if (S.getLangOpts().CUDA) 1655 if (auto *Caller = dyn_cast<FunctionDecl>(S.CurContext)) 1656 CUDAPref = S.IdentifyCUDAPreference(Caller, FD); 1657 } 1658 1659 explicit operator bool() const { return FD; } 1660 1661 bool isBetterThan(const UsualDeallocFnInfo &Other, bool WantSize, 1662 bool WantAlign) const { 1663 // C++ P0722: 1664 // A destroying operator delete is preferred over a non-destroying 1665 // operator delete. 1666 if (Destroying != Other.Destroying) 1667 return Destroying; 1668 1669 // C++17 [expr.delete]p10: 1670 // If the type has new-extended alignment, a function with a parameter 1671 // of type std::align_val_t is preferred; otherwise a function without 1672 // such a parameter is preferred 1673 if (HasAlignValT != Other.HasAlignValT) 1674 return HasAlignValT == WantAlign; 1675 1676 if (HasSizeT != Other.HasSizeT) 1677 return HasSizeT == WantSize; 1678 1679 // Use CUDA call preference as a tiebreaker. 1680 return CUDAPref > Other.CUDAPref; 1681 } 1682 1683 DeclAccessPair Found; 1684 FunctionDecl *FD; 1685 bool Destroying, HasSizeT, HasAlignValT; 1686 Sema::CUDAFunctionPreference CUDAPref; 1687 }; 1688 } 1689 1690 /// Determine whether a type has new-extended alignment. This may be called when 1691 /// the type is incomplete (for a delete-expression with an incomplete pointee 1692 /// type), in which case it will conservatively return false if the alignment is 1693 /// not known. 1694 static bool hasNewExtendedAlignment(Sema &S, QualType AllocType) { 1695 return S.getLangOpts().AlignedAllocation && 1696 S.getASTContext().getTypeAlignIfKnown(AllocType) > 1697 S.getASTContext().getTargetInfo().getNewAlign(); 1698 } 1699 1700 /// Select the correct "usual" deallocation function to use from a selection of 1701 /// deallocation functions (either global or class-scope). 1702 static UsualDeallocFnInfo resolveDeallocationOverload( 1703 Sema &S, LookupResult &R, bool WantSize, bool WantAlign, 1704 llvm::SmallVectorImpl<UsualDeallocFnInfo> *BestFns = nullptr) { 1705 UsualDeallocFnInfo Best; 1706 1707 for (auto I = R.begin(), E = R.end(); I != E; ++I) { 1708 UsualDeallocFnInfo Info(S, I.getPair()); 1709 if (!Info || !isNonPlacementDeallocationFunction(S, Info.FD) || 1710 Info.CUDAPref == Sema::CFP_Never) 1711 continue; 1712 1713 if (!Best) { 1714 Best = Info; 1715 if (BestFns) 1716 BestFns->push_back(Info); 1717 continue; 1718 } 1719 1720 if (Best.isBetterThan(Info, WantSize, WantAlign)) 1721 continue; 1722 1723 // If more than one preferred function is found, all non-preferred 1724 // functions are eliminated from further consideration. 1725 if (BestFns && Info.isBetterThan(Best, WantSize, WantAlign)) 1726 BestFns->clear(); 1727 1728 Best = Info; 1729 if (BestFns) 1730 BestFns->push_back(Info); 1731 } 1732 1733 return Best; 1734 } 1735 1736 /// Determine whether a given type is a class for which 'delete[]' would call 1737 /// a member 'operator delete[]' with a 'size_t' parameter. This implies that 1738 /// we need to store the array size (even if the type is 1739 /// trivially-destructible). 1740 static bool doesUsualArrayDeleteWantSize(Sema &S, SourceLocation loc, 1741 QualType allocType) { 1742 const RecordType *record = 1743 allocType->getBaseElementTypeUnsafe()->getAs<RecordType>(); 1744 if (!record) return false; 1745 1746 // Try to find an operator delete[] in class scope. 1747 1748 DeclarationName deleteName = 1749 S.Context.DeclarationNames.getCXXOperatorName(OO_Array_Delete); 1750 LookupResult ops(S, deleteName, loc, Sema::LookupOrdinaryName); 1751 S.LookupQualifiedName(ops, record->getDecl()); 1752 1753 // We're just doing this for information. 1754 ops.suppressDiagnostics(); 1755 1756 // Very likely: there's no operator delete[]. 1757 if (ops.empty()) return false; 1758 1759 // If it's ambiguous, it should be illegal to call operator delete[] 1760 // on this thing, so it doesn't matter if we allocate extra space or not. 1761 if (ops.isAmbiguous()) return false; 1762 1763 // C++17 [expr.delete]p10: 1764 // If the deallocation functions have class scope, the one without a 1765 // parameter of type std::size_t is selected. 1766 auto Best = resolveDeallocationOverload( 1767 S, ops, /*WantSize*/false, 1768 /*WantAlign*/hasNewExtendedAlignment(S, allocType)); 1769 return Best && Best.HasSizeT; 1770 } 1771 1772 /// Parsed a C++ 'new' expression (C++ 5.3.4). 1773 /// 1774 /// E.g.: 1775 /// @code new (memory) int[size][4] @endcode 1776 /// or 1777 /// @code ::new Foo(23, "hello") @endcode 1778 /// 1779 /// \param StartLoc The first location of the expression. 1780 /// \param UseGlobal True if 'new' was prefixed with '::'. 1781 /// \param PlacementLParen Opening paren of the placement arguments. 1782 /// \param PlacementArgs Placement new arguments. 1783 /// \param PlacementRParen Closing paren of the placement arguments. 1784 /// \param TypeIdParens If the type is in parens, the source range. 1785 /// \param D The type to be allocated, as well as array dimensions. 1786 /// \param Initializer The initializing expression or initializer-list, or null 1787 /// if there is none. 1788 ExprResult 1789 Sema::ActOnCXXNew(SourceLocation StartLoc, bool UseGlobal, 1790 SourceLocation PlacementLParen, MultiExprArg PlacementArgs, 1791 SourceLocation PlacementRParen, SourceRange TypeIdParens, 1792 Declarator &D, Expr *Initializer) { 1793 Optional<Expr *> ArraySize; 1794 // If the specified type is an array, unwrap it and save the expression. 1795 if (D.getNumTypeObjects() > 0 && 1796 D.getTypeObject(0).Kind == DeclaratorChunk::Array) { 1797 DeclaratorChunk &Chunk = D.getTypeObject(0); 1798 if (D.getDeclSpec().hasAutoTypeSpec()) 1799 return ExprError(Diag(Chunk.Loc, diag::err_new_array_of_auto) 1800 << D.getSourceRange()); 1801 if (Chunk.Arr.hasStatic) 1802 return ExprError(Diag(Chunk.Loc, diag::err_static_illegal_in_new) 1803 << D.getSourceRange()); 1804 if (!Chunk.Arr.NumElts && !Initializer) 1805 return ExprError(Diag(Chunk.Loc, diag::err_array_new_needs_size) 1806 << D.getSourceRange()); 1807 1808 ArraySize = static_cast<Expr*>(Chunk.Arr.NumElts); 1809 D.DropFirstTypeObject(); 1810 } 1811 1812 // Every dimension shall be of constant size. 1813 if (ArraySize) { 1814 for (unsigned I = 0, N = D.getNumTypeObjects(); I < N; ++I) { 1815 if (D.getTypeObject(I).Kind != DeclaratorChunk::Array) 1816 break; 1817 1818 DeclaratorChunk::ArrayTypeInfo &Array = D.getTypeObject(I).Arr; 1819 if (Expr *NumElts = (Expr *)Array.NumElts) { 1820 if (!NumElts->isTypeDependent() && !NumElts->isValueDependent()) { 1821 // FIXME: GCC permits constant folding here. We should either do so consistently 1822 // or not do so at all, rather than changing behavior in C++14 onwards. 1823 if (getLangOpts().CPlusPlus14) { 1824 // C++1y [expr.new]p6: Every constant-expression in a noptr-new-declarator 1825 // shall be a converted constant expression (5.19) of type std::size_t 1826 // and shall evaluate to a strictly positive value. 1827 llvm::APSInt Value(Context.getIntWidth(Context.getSizeType())); 1828 Array.NumElts 1829 = CheckConvertedConstantExpression(NumElts, Context.getSizeType(), Value, 1830 CCEK_ArrayBound) 1831 .get(); 1832 } else { 1833 Array.NumElts = 1834 VerifyIntegerConstantExpression( 1835 NumElts, nullptr, diag::err_new_array_nonconst, AllowFold) 1836 .get(); 1837 } 1838 if (!Array.NumElts) 1839 return ExprError(); 1840 } 1841 } 1842 } 1843 } 1844 1845 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, /*Scope=*/nullptr); 1846 QualType AllocType = TInfo->getType(); 1847 if (D.isInvalidType()) 1848 return ExprError(); 1849 1850 SourceRange DirectInitRange; 1851 if (ParenListExpr *List = dyn_cast_or_null<ParenListExpr>(Initializer)) 1852 DirectInitRange = List->getSourceRange(); 1853 1854 return BuildCXXNew(SourceRange(StartLoc, D.getEndLoc()), UseGlobal, 1855 PlacementLParen, PlacementArgs, PlacementRParen, 1856 TypeIdParens, AllocType, TInfo, ArraySize, DirectInitRange, 1857 Initializer); 1858 } 1859 1860 static bool isLegalArrayNewInitializer(CXXNewExpr::InitializationStyle Style, 1861 Expr *Init) { 1862 if (!Init) 1863 return true; 1864 if (ParenListExpr *PLE = dyn_cast<ParenListExpr>(Init)) 1865 return PLE->getNumExprs() == 0; 1866 if (isa<ImplicitValueInitExpr>(Init)) 1867 return true; 1868 else if (CXXConstructExpr *CCE = dyn_cast<CXXConstructExpr>(Init)) 1869 return !CCE->isListInitialization() && 1870 CCE->getConstructor()->isDefaultConstructor(); 1871 else if (Style == CXXNewExpr::ListInit) { 1872 assert(isa<InitListExpr>(Init) && 1873 "Shouldn't create list CXXConstructExprs for arrays."); 1874 return true; 1875 } 1876 return false; 1877 } 1878 1879 bool 1880 Sema::isUnavailableAlignedAllocationFunction(const FunctionDecl &FD) const { 1881 if (!getLangOpts().AlignedAllocationUnavailable) 1882 return false; 1883 if (FD.isDefined()) 1884 return false; 1885 Optional<unsigned> AlignmentParam; 1886 if (FD.isReplaceableGlobalAllocationFunction(&AlignmentParam) && 1887 AlignmentParam.hasValue()) 1888 return true; 1889 return false; 1890 } 1891 1892 // Emit a diagnostic if an aligned allocation/deallocation function that is not 1893 // implemented in the standard library is selected. 1894 void Sema::diagnoseUnavailableAlignedAllocation(const FunctionDecl &FD, 1895 SourceLocation Loc) { 1896 if (isUnavailableAlignedAllocationFunction(FD)) { 1897 const llvm::Triple &T = getASTContext().getTargetInfo().getTriple(); 1898 StringRef OSName = AvailabilityAttr::getPlatformNameSourceSpelling( 1899 getASTContext().getTargetInfo().getPlatformName()); 1900 VersionTuple OSVersion = alignedAllocMinVersion(T.getOS()); 1901 1902 OverloadedOperatorKind Kind = FD.getDeclName().getCXXOverloadedOperator(); 1903 bool IsDelete = Kind == OO_Delete || Kind == OO_Array_Delete; 1904 Diag(Loc, diag::err_aligned_allocation_unavailable) 1905 << IsDelete << FD.getType().getAsString() << OSName 1906 << OSVersion.getAsString() << OSVersion.empty(); 1907 Diag(Loc, diag::note_silence_aligned_allocation_unavailable); 1908 } 1909 } 1910 1911 ExprResult 1912 Sema::BuildCXXNew(SourceRange Range, bool UseGlobal, 1913 SourceLocation PlacementLParen, 1914 MultiExprArg PlacementArgs, 1915 SourceLocation PlacementRParen, 1916 SourceRange TypeIdParens, 1917 QualType AllocType, 1918 TypeSourceInfo *AllocTypeInfo, 1919 Optional<Expr *> ArraySize, 1920 SourceRange DirectInitRange, 1921 Expr *Initializer) { 1922 SourceRange TypeRange = AllocTypeInfo->getTypeLoc().getSourceRange(); 1923 SourceLocation StartLoc = Range.getBegin(); 1924 1925 CXXNewExpr::InitializationStyle initStyle; 1926 if (DirectInitRange.isValid()) { 1927 assert(Initializer && "Have parens but no initializer."); 1928 initStyle = CXXNewExpr::CallInit; 1929 } else if (Initializer && isa<InitListExpr>(Initializer)) 1930 initStyle = CXXNewExpr::ListInit; 1931 else { 1932 assert((!Initializer || isa<ImplicitValueInitExpr>(Initializer) || 1933 isa<CXXConstructExpr>(Initializer)) && 1934 "Initializer expression that cannot have been implicitly created."); 1935 initStyle = CXXNewExpr::NoInit; 1936 } 1937 1938 Expr **Inits = &Initializer; 1939 unsigned NumInits = Initializer ? 1 : 0; 1940 if (ParenListExpr *List = dyn_cast_or_null<ParenListExpr>(Initializer)) { 1941 assert(initStyle == CXXNewExpr::CallInit && "paren init for non-call init"); 1942 Inits = List->getExprs(); 1943 NumInits = List->getNumExprs(); 1944 } 1945 1946 // C++11 [expr.new]p15: 1947 // A new-expression that creates an object of type T initializes that 1948 // object as follows: 1949 InitializationKind Kind 1950 // - If the new-initializer is omitted, the object is default- 1951 // initialized (8.5); if no initialization is performed, 1952 // the object has indeterminate value 1953 = initStyle == CXXNewExpr::NoInit 1954 ? InitializationKind::CreateDefault(TypeRange.getBegin()) 1955 // - Otherwise, the new-initializer is interpreted according to 1956 // the 1957 // initialization rules of 8.5 for direct-initialization. 1958 : initStyle == CXXNewExpr::ListInit 1959 ? InitializationKind::CreateDirectList( 1960 TypeRange.getBegin(), Initializer->getBeginLoc(), 1961 Initializer->getEndLoc()) 1962 : InitializationKind::CreateDirect(TypeRange.getBegin(), 1963 DirectInitRange.getBegin(), 1964 DirectInitRange.getEnd()); 1965 1966 // C++11 [dcl.spec.auto]p6. Deduce the type which 'auto' stands in for. 1967 auto *Deduced = AllocType->getContainedDeducedType(); 1968 if (Deduced && isa<DeducedTemplateSpecializationType>(Deduced)) { 1969 if (ArraySize) 1970 return ExprError( 1971 Diag(ArraySize ? (*ArraySize)->getExprLoc() : TypeRange.getBegin(), 1972 diag::err_deduced_class_template_compound_type) 1973 << /*array*/ 2 1974 << (ArraySize ? (*ArraySize)->getSourceRange() : TypeRange)); 1975 1976 InitializedEntity Entity 1977 = InitializedEntity::InitializeNew(StartLoc, AllocType); 1978 AllocType = DeduceTemplateSpecializationFromInitializer( 1979 AllocTypeInfo, Entity, Kind, MultiExprArg(Inits, NumInits)); 1980 if (AllocType.isNull()) 1981 return ExprError(); 1982 } else if (Deduced) { 1983 bool Braced = (initStyle == CXXNewExpr::ListInit); 1984 if (NumInits == 1) { 1985 if (auto p = dyn_cast_or_null<InitListExpr>(Inits[0])) { 1986 Inits = p->getInits(); 1987 NumInits = p->getNumInits(); 1988 Braced = true; 1989 } 1990 } 1991 1992 if (initStyle == CXXNewExpr::NoInit || NumInits == 0) 1993 return ExprError(Diag(StartLoc, diag::err_auto_new_requires_ctor_arg) 1994 << AllocType << TypeRange); 1995 if (NumInits > 1) { 1996 Expr *FirstBad = Inits[1]; 1997 return ExprError(Diag(FirstBad->getBeginLoc(), 1998 diag::err_auto_new_ctor_multiple_expressions) 1999 << AllocType << TypeRange); 2000 } 2001 if (Braced && !getLangOpts().CPlusPlus17) 2002 Diag(Initializer->getBeginLoc(), diag::ext_auto_new_list_init) 2003 << AllocType << TypeRange; 2004 Expr *Deduce = Inits[0]; 2005 QualType DeducedType; 2006 if (DeduceAutoType(AllocTypeInfo, Deduce, DeducedType) == DAR_Failed) 2007 return ExprError(Diag(StartLoc, diag::err_auto_new_deduction_failure) 2008 << AllocType << Deduce->getType() 2009 << TypeRange << Deduce->getSourceRange()); 2010 if (DeducedType.isNull()) 2011 return ExprError(); 2012 AllocType = DeducedType; 2013 } 2014 2015 // Per C++0x [expr.new]p5, the type being constructed may be a 2016 // typedef of an array type. 2017 if (!ArraySize) { 2018 if (const ConstantArrayType *Array 2019 = Context.getAsConstantArrayType(AllocType)) { 2020 ArraySize = IntegerLiteral::Create(Context, Array->getSize(), 2021 Context.getSizeType(), 2022 TypeRange.getEnd()); 2023 AllocType = Array->getElementType(); 2024 } 2025 } 2026 2027 if (CheckAllocatedType(AllocType, TypeRange.getBegin(), TypeRange)) 2028 return ExprError(); 2029 2030 // In ARC, infer 'retaining' for the allocated 2031 if (getLangOpts().ObjCAutoRefCount && 2032 AllocType.getObjCLifetime() == Qualifiers::OCL_None && 2033 AllocType->isObjCLifetimeType()) { 2034 AllocType = Context.getLifetimeQualifiedType(AllocType, 2035 AllocType->getObjCARCImplicitLifetime()); 2036 } 2037 2038 QualType ResultType = Context.getPointerType(AllocType); 2039 2040 if (ArraySize && *ArraySize && 2041 (*ArraySize)->getType()->isNonOverloadPlaceholderType()) { 2042 ExprResult result = CheckPlaceholderExpr(*ArraySize); 2043 if (result.isInvalid()) return ExprError(); 2044 ArraySize = result.get(); 2045 } 2046 // C++98 5.3.4p6: "The expression in a direct-new-declarator shall have 2047 // integral or enumeration type with a non-negative value." 2048 // C++11 [expr.new]p6: The expression [...] shall be of integral or unscoped 2049 // enumeration type, or a class type for which a single non-explicit 2050 // conversion function to integral or unscoped enumeration type exists. 2051 // C++1y [expr.new]p6: The expression [...] is implicitly converted to 2052 // std::size_t. 2053 llvm::Optional<uint64_t> KnownArraySize; 2054 if (ArraySize && *ArraySize && !(*ArraySize)->isTypeDependent()) { 2055 ExprResult ConvertedSize; 2056 if (getLangOpts().CPlusPlus14) { 2057 assert(Context.getTargetInfo().getIntWidth() && "Builtin type of size 0?"); 2058 2059 ConvertedSize = PerformImplicitConversion(*ArraySize, Context.getSizeType(), 2060 AA_Converting); 2061 2062 if (!ConvertedSize.isInvalid() && 2063 (*ArraySize)->getType()->getAs<RecordType>()) 2064 // Diagnose the compatibility of this conversion. 2065 Diag(StartLoc, diag::warn_cxx98_compat_array_size_conversion) 2066 << (*ArraySize)->getType() << 0 << "'size_t'"; 2067 } else { 2068 class SizeConvertDiagnoser : public ICEConvertDiagnoser { 2069 protected: 2070 Expr *ArraySize; 2071 2072 public: 2073 SizeConvertDiagnoser(Expr *ArraySize) 2074 : ICEConvertDiagnoser(/*AllowScopedEnumerations*/false, false, false), 2075 ArraySize(ArraySize) {} 2076 2077 SemaDiagnosticBuilder diagnoseNotInt(Sema &S, SourceLocation Loc, 2078 QualType T) override { 2079 return S.Diag(Loc, diag::err_array_size_not_integral) 2080 << S.getLangOpts().CPlusPlus11 << T; 2081 } 2082 2083 SemaDiagnosticBuilder diagnoseIncomplete( 2084 Sema &S, SourceLocation Loc, QualType T) override { 2085 return S.Diag(Loc, diag::err_array_size_incomplete_type) 2086 << T << ArraySize->getSourceRange(); 2087 } 2088 2089 SemaDiagnosticBuilder diagnoseExplicitConv( 2090 Sema &S, SourceLocation Loc, QualType T, QualType ConvTy) override { 2091 return S.Diag(Loc, diag::err_array_size_explicit_conversion) << T << ConvTy; 2092 } 2093 2094 SemaDiagnosticBuilder noteExplicitConv( 2095 Sema &S, CXXConversionDecl *Conv, QualType ConvTy) override { 2096 return S.Diag(Conv->getLocation(), diag::note_array_size_conversion) 2097 << ConvTy->isEnumeralType() << ConvTy; 2098 } 2099 2100 SemaDiagnosticBuilder diagnoseAmbiguous( 2101 Sema &S, SourceLocation Loc, QualType T) override { 2102 return S.Diag(Loc, diag::err_array_size_ambiguous_conversion) << T; 2103 } 2104 2105 SemaDiagnosticBuilder noteAmbiguous( 2106 Sema &S, CXXConversionDecl *Conv, QualType ConvTy) override { 2107 return S.Diag(Conv->getLocation(), diag::note_array_size_conversion) 2108 << ConvTy->isEnumeralType() << ConvTy; 2109 } 2110 2111 SemaDiagnosticBuilder diagnoseConversion(Sema &S, SourceLocation Loc, 2112 QualType T, 2113 QualType ConvTy) override { 2114 return S.Diag(Loc, 2115 S.getLangOpts().CPlusPlus11 2116 ? diag::warn_cxx98_compat_array_size_conversion 2117 : diag::ext_array_size_conversion) 2118 << T << ConvTy->isEnumeralType() << ConvTy; 2119 } 2120 } SizeDiagnoser(*ArraySize); 2121 2122 ConvertedSize = PerformContextualImplicitConversion(StartLoc, *ArraySize, 2123 SizeDiagnoser); 2124 } 2125 if (ConvertedSize.isInvalid()) 2126 return ExprError(); 2127 2128 ArraySize = ConvertedSize.get(); 2129 QualType SizeType = (*ArraySize)->getType(); 2130 2131 if (!SizeType->isIntegralOrUnscopedEnumerationType()) 2132 return ExprError(); 2133 2134 // C++98 [expr.new]p7: 2135 // The expression in a direct-new-declarator shall have integral type 2136 // with a non-negative value. 2137 // 2138 // Let's see if this is a constant < 0. If so, we reject it out of hand, 2139 // per CWG1464. Otherwise, if it's not a constant, we must have an 2140 // unparenthesized array type. 2141 if (!(*ArraySize)->isValueDependent()) { 2142 // We've already performed any required implicit conversion to integer or 2143 // unscoped enumeration type. 2144 // FIXME: Per CWG1464, we are required to check the value prior to 2145 // converting to size_t. This will never find a negative array size in 2146 // C++14 onwards, because Value is always unsigned here! 2147 if (Optional<llvm::APSInt> Value = 2148 (*ArraySize)->getIntegerConstantExpr(Context)) { 2149 if (Value->isSigned() && Value->isNegative()) { 2150 return ExprError(Diag((*ArraySize)->getBeginLoc(), 2151 diag::err_typecheck_negative_array_size) 2152 << (*ArraySize)->getSourceRange()); 2153 } 2154 2155 if (!AllocType->isDependentType()) { 2156 unsigned ActiveSizeBits = ConstantArrayType::getNumAddressingBits( 2157 Context, AllocType, *Value); 2158 if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) 2159 return ExprError( 2160 Diag((*ArraySize)->getBeginLoc(), diag::err_array_too_large) 2161 << toString(*Value, 10) << (*ArraySize)->getSourceRange()); 2162 } 2163 2164 KnownArraySize = Value->getZExtValue(); 2165 } else if (TypeIdParens.isValid()) { 2166 // Can't have dynamic array size when the type-id is in parentheses. 2167 Diag((*ArraySize)->getBeginLoc(), diag::ext_new_paren_array_nonconst) 2168 << (*ArraySize)->getSourceRange() 2169 << FixItHint::CreateRemoval(TypeIdParens.getBegin()) 2170 << FixItHint::CreateRemoval(TypeIdParens.getEnd()); 2171 2172 TypeIdParens = SourceRange(); 2173 } 2174 } 2175 2176 // Note that we do *not* convert the argument in any way. It can 2177 // be signed, larger than size_t, whatever. 2178 } 2179 2180 FunctionDecl *OperatorNew = nullptr; 2181 FunctionDecl *OperatorDelete = nullptr; 2182 unsigned Alignment = 2183 AllocType->isDependentType() ? 0 : Context.getTypeAlign(AllocType); 2184 unsigned NewAlignment = Context.getTargetInfo().getNewAlign(); 2185 bool PassAlignment = getLangOpts().AlignedAllocation && 2186 Alignment > NewAlignment; 2187 2188 AllocationFunctionScope Scope = UseGlobal ? AFS_Global : AFS_Both; 2189 if (!AllocType->isDependentType() && 2190 !Expr::hasAnyTypeDependentArguments(PlacementArgs) && 2191 FindAllocationFunctions( 2192 StartLoc, SourceRange(PlacementLParen, PlacementRParen), Scope, Scope, 2193 AllocType, ArraySize.hasValue(), PassAlignment, PlacementArgs, 2194 OperatorNew, OperatorDelete)) 2195 return ExprError(); 2196 2197 // If this is an array allocation, compute whether the usual array 2198 // deallocation function for the type has a size_t parameter. 2199 bool UsualArrayDeleteWantsSize = false; 2200 if (ArraySize && !AllocType->isDependentType()) 2201 UsualArrayDeleteWantsSize = 2202 doesUsualArrayDeleteWantSize(*this, StartLoc, AllocType); 2203 2204 SmallVector<Expr *, 8> AllPlaceArgs; 2205 if (OperatorNew) { 2206 auto *Proto = OperatorNew->getType()->castAs<FunctionProtoType>(); 2207 VariadicCallType CallType = Proto->isVariadic() ? VariadicFunction 2208 : VariadicDoesNotApply; 2209 2210 // We've already converted the placement args, just fill in any default 2211 // arguments. Skip the first parameter because we don't have a corresponding 2212 // argument. Skip the second parameter too if we're passing in the 2213 // alignment; we've already filled it in. 2214 unsigned NumImplicitArgs = PassAlignment ? 2 : 1; 2215 if (GatherArgumentsForCall(PlacementLParen, OperatorNew, Proto, 2216 NumImplicitArgs, PlacementArgs, AllPlaceArgs, 2217 CallType)) 2218 return ExprError(); 2219 2220 if (!AllPlaceArgs.empty()) 2221 PlacementArgs = AllPlaceArgs; 2222 2223 // We would like to perform some checking on the given `operator new` call, 2224 // but the PlacementArgs does not contain the implicit arguments, 2225 // namely allocation size and maybe allocation alignment, 2226 // so we need to conjure them. 2227 2228 QualType SizeTy = Context.getSizeType(); 2229 unsigned SizeTyWidth = Context.getTypeSize(SizeTy); 2230 2231 llvm::APInt SingleEltSize( 2232 SizeTyWidth, Context.getTypeSizeInChars(AllocType).getQuantity()); 2233 2234 // How many bytes do we want to allocate here? 2235 llvm::Optional<llvm::APInt> AllocationSize; 2236 if (!ArraySize.hasValue() && !AllocType->isDependentType()) { 2237 // For non-array operator new, we only want to allocate one element. 2238 AllocationSize = SingleEltSize; 2239 } else if (KnownArraySize.hasValue() && !AllocType->isDependentType()) { 2240 // For array operator new, only deal with static array size case. 2241 bool Overflow; 2242 AllocationSize = llvm::APInt(SizeTyWidth, *KnownArraySize) 2243 .umul_ov(SingleEltSize, Overflow); 2244 (void)Overflow; 2245 assert( 2246 !Overflow && 2247 "Expected that all the overflows would have been handled already."); 2248 } 2249 2250 IntegerLiteral AllocationSizeLiteral( 2251 Context, 2252 AllocationSize.getValueOr(llvm::APInt::getNullValue(SizeTyWidth)), 2253 SizeTy, SourceLocation()); 2254 // Otherwise, if we failed to constant-fold the allocation size, we'll 2255 // just give up and pass-in something opaque, that isn't a null pointer. 2256 OpaqueValueExpr OpaqueAllocationSize(SourceLocation(), SizeTy, VK_PRValue, 2257 OK_Ordinary, /*SourceExpr=*/nullptr); 2258 2259 // Let's synthesize the alignment argument in case we will need it. 2260 // Since we *really* want to allocate these on stack, this is slightly ugly 2261 // because there might not be a `std::align_val_t` type. 2262 EnumDecl *StdAlignValT = getStdAlignValT(); 2263 QualType AlignValT = 2264 StdAlignValT ? Context.getTypeDeclType(StdAlignValT) : SizeTy; 2265 IntegerLiteral AlignmentLiteral( 2266 Context, 2267 llvm::APInt(Context.getTypeSize(SizeTy), 2268 Alignment / Context.getCharWidth()), 2269 SizeTy, SourceLocation()); 2270 ImplicitCastExpr DesiredAlignment(ImplicitCastExpr::OnStack, AlignValT, 2271 CK_IntegralCast, &AlignmentLiteral, 2272 VK_PRValue, FPOptionsOverride()); 2273 2274 // Adjust placement args by prepending conjured size and alignment exprs. 2275 llvm::SmallVector<Expr *, 8> CallArgs; 2276 CallArgs.reserve(NumImplicitArgs + PlacementArgs.size()); 2277 CallArgs.emplace_back(AllocationSize.hasValue() 2278 ? static_cast<Expr *>(&AllocationSizeLiteral) 2279 : &OpaqueAllocationSize); 2280 if (PassAlignment) 2281 CallArgs.emplace_back(&DesiredAlignment); 2282 CallArgs.insert(CallArgs.end(), PlacementArgs.begin(), PlacementArgs.end()); 2283 2284 DiagnoseSentinelCalls(OperatorNew, PlacementLParen, CallArgs); 2285 2286 checkCall(OperatorNew, Proto, /*ThisArg=*/nullptr, CallArgs, 2287 /*IsMemberFunction=*/false, StartLoc, Range, CallType); 2288 2289 // Warn if the type is over-aligned and is being allocated by (unaligned) 2290 // global operator new. 2291 if (PlacementArgs.empty() && !PassAlignment && 2292 (OperatorNew->isImplicit() || 2293 (OperatorNew->getBeginLoc().isValid() && 2294 getSourceManager().isInSystemHeader(OperatorNew->getBeginLoc())))) { 2295 if (Alignment > NewAlignment) 2296 Diag(StartLoc, diag::warn_overaligned_type) 2297 << AllocType 2298 << unsigned(Alignment / Context.getCharWidth()) 2299 << unsigned(NewAlignment / Context.getCharWidth()); 2300 } 2301 } 2302 2303 // Array 'new' can't have any initializers except empty parentheses. 2304 // Initializer lists are also allowed, in C++11. Rely on the parser for the 2305 // dialect distinction. 2306 if (ArraySize && !isLegalArrayNewInitializer(initStyle, Initializer)) { 2307 SourceRange InitRange(Inits[0]->getBeginLoc(), 2308 Inits[NumInits - 1]->getEndLoc()); 2309 Diag(StartLoc, diag::err_new_array_init_args) << InitRange; 2310 return ExprError(); 2311 } 2312 2313 // If we can perform the initialization, and we've not already done so, 2314 // do it now. 2315 if (!AllocType->isDependentType() && 2316 !Expr::hasAnyTypeDependentArguments( 2317 llvm::makeArrayRef(Inits, NumInits))) { 2318 // The type we initialize is the complete type, including the array bound. 2319 QualType InitType; 2320 if (KnownArraySize) 2321 InitType = Context.getConstantArrayType( 2322 AllocType, 2323 llvm::APInt(Context.getTypeSize(Context.getSizeType()), 2324 *KnownArraySize), 2325 *ArraySize, ArrayType::Normal, 0); 2326 else if (ArraySize) 2327 InitType = 2328 Context.getIncompleteArrayType(AllocType, ArrayType::Normal, 0); 2329 else 2330 InitType = AllocType; 2331 2332 InitializedEntity Entity 2333 = InitializedEntity::InitializeNew(StartLoc, InitType); 2334 InitializationSequence InitSeq(*this, Entity, Kind, 2335 MultiExprArg(Inits, NumInits)); 2336 ExprResult FullInit = InitSeq.Perform(*this, Entity, Kind, 2337 MultiExprArg(Inits, NumInits)); 2338 if (FullInit.isInvalid()) 2339 return ExprError(); 2340 2341 // FullInit is our initializer; strip off CXXBindTemporaryExprs, because 2342 // we don't want the initialized object to be destructed. 2343 // FIXME: We should not create these in the first place. 2344 if (CXXBindTemporaryExpr *Binder = 2345 dyn_cast_or_null<CXXBindTemporaryExpr>(FullInit.get())) 2346 FullInit = Binder->getSubExpr(); 2347 2348 Initializer = FullInit.get(); 2349 2350 // FIXME: If we have a KnownArraySize, check that the array bound of the 2351 // initializer is no greater than that constant value. 2352 2353 if (ArraySize && !*ArraySize) { 2354 auto *CAT = Context.getAsConstantArrayType(Initializer->getType()); 2355 if (CAT) { 2356 // FIXME: Track that the array size was inferred rather than explicitly 2357 // specified. 2358 ArraySize = IntegerLiteral::Create( 2359 Context, CAT->getSize(), Context.getSizeType(), TypeRange.getEnd()); 2360 } else { 2361 Diag(TypeRange.getEnd(), diag::err_new_array_size_unknown_from_init) 2362 << Initializer->getSourceRange(); 2363 } 2364 } 2365 } 2366 2367 // Mark the new and delete operators as referenced. 2368 if (OperatorNew) { 2369 if (DiagnoseUseOfDecl(OperatorNew, StartLoc)) 2370 return ExprError(); 2371 MarkFunctionReferenced(StartLoc, OperatorNew); 2372 } 2373 if (OperatorDelete) { 2374 if (DiagnoseUseOfDecl(OperatorDelete, StartLoc)) 2375 return ExprError(); 2376 MarkFunctionReferenced(StartLoc, OperatorDelete); 2377 } 2378 2379 return CXXNewExpr::Create(Context, UseGlobal, OperatorNew, OperatorDelete, 2380 PassAlignment, UsualArrayDeleteWantsSize, 2381 PlacementArgs, TypeIdParens, ArraySize, initStyle, 2382 Initializer, ResultType, AllocTypeInfo, Range, 2383 DirectInitRange); 2384 } 2385 2386 /// Checks that a type is suitable as the allocated type 2387 /// in a new-expression. 2388 bool Sema::CheckAllocatedType(QualType AllocType, SourceLocation Loc, 2389 SourceRange R) { 2390 // C++ 5.3.4p1: "[The] type shall be a complete object type, but not an 2391 // abstract class type or array thereof. 2392 if (AllocType->isFunctionType()) 2393 return Diag(Loc, diag::err_bad_new_type) 2394 << AllocType << 0 << R; 2395 else if (AllocType->isReferenceType()) 2396 return Diag(Loc, diag::err_bad_new_type) 2397 << AllocType << 1 << R; 2398 else if (!AllocType->isDependentType() && 2399 RequireCompleteSizedType( 2400 Loc, AllocType, diag::err_new_incomplete_or_sizeless_type, R)) 2401 return true; 2402 else if (RequireNonAbstractType(Loc, AllocType, 2403 diag::err_allocation_of_abstract_type)) 2404 return true; 2405 else if (AllocType->isVariablyModifiedType()) 2406 return Diag(Loc, diag::err_variably_modified_new_type) 2407 << AllocType; 2408 else if (AllocType.getAddressSpace() != LangAS::Default && 2409 !getLangOpts().OpenCLCPlusPlus) 2410 return Diag(Loc, diag::err_address_space_qualified_new) 2411 << AllocType.getUnqualifiedType() 2412 << AllocType.getQualifiers().getAddressSpaceAttributePrintValue(); 2413 else if (getLangOpts().ObjCAutoRefCount) { 2414 if (const ArrayType *AT = Context.getAsArrayType(AllocType)) { 2415 QualType BaseAllocType = Context.getBaseElementType(AT); 2416 if (BaseAllocType.getObjCLifetime() == Qualifiers::OCL_None && 2417 BaseAllocType->isObjCLifetimeType()) 2418 return Diag(Loc, diag::err_arc_new_array_without_ownership) 2419 << BaseAllocType; 2420 } 2421 } 2422 2423 return false; 2424 } 2425 2426 static bool resolveAllocationOverload( 2427 Sema &S, LookupResult &R, SourceRange Range, SmallVectorImpl<Expr *> &Args, 2428 bool &PassAlignment, FunctionDecl *&Operator, 2429 OverloadCandidateSet *AlignedCandidates, Expr *AlignArg, bool Diagnose) { 2430 OverloadCandidateSet Candidates(R.getNameLoc(), 2431 OverloadCandidateSet::CSK_Normal); 2432 for (LookupResult::iterator Alloc = R.begin(), AllocEnd = R.end(); 2433 Alloc != AllocEnd; ++Alloc) { 2434 // Even member operator new/delete are implicitly treated as 2435 // static, so don't use AddMemberCandidate. 2436 NamedDecl *D = (*Alloc)->getUnderlyingDecl(); 2437 2438 if (FunctionTemplateDecl *FnTemplate = dyn_cast<FunctionTemplateDecl>(D)) { 2439 S.AddTemplateOverloadCandidate(FnTemplate, Alloc.getPair(), 2440 /*ExplicitTemplateArgs=*/nullptr, Args, 2441 Candidates, 2442 /*SuppressUserConversions=*/false); 2443 continue; 2444 } 2445 2446 FunctionDecl *Fn = cast<FunctionDecl>(D); 2447 S.AddOverloadCandidate(Fn, Alloc.getPair(), Args, Candidates, 2448 /*SuppressUserConversions=*/false); 2449 } 2450 2451 // Do the resolution. 2452 OverloadCandidateSet::iterator Best; 2453 switch (Candidates.BestViableFunction(S, R.getNameLoc(), Best)) { 2454 case OR_Success: { 2455 // Got one! 2456 FunctionDecl *FnDecl = Best->Function; 2457 if (S.CheckAllocationAccess(R.getNameLoc(), Range, R.getNamingClass(), 2458 Best->FoundDecl) == Sema::AR_inaccessible) 2459 return true; 2460 2461 Operator = FnDecl; 2462 return false; 2463 } 2464 2465 case OR_No_Viable_Function: 2466 // C++17 [expr.new]p13: 2467 // If no matching function is found and the allocated object type has 2468 // new-extended alignment, the alignment argument is removed from the 2469 // argument list, and overload resolution is performed again. 2470 if (PassAlignment) { 2471 PassAlignment = false; 2472 AlignArg = Args[1]; 2473 Args.erase(Args.begin() + 1); 2474 return resolveAllocationOverload(S, R, Range, Args, PassAlignment, 2475 Operator, &Candidates, AlignArg, 2476 Diagnose); 2477 } 2478 2479 // MSVC will fall back on trying to find a matching global operator new 2480 // if operator new[] cannot be found. Also, MSVC will leak by not 2481 // generating a call to operator delete or operator delete[], but we 2482 // will not replicate that bug. 2483 // FIXME: Find out how this interacts with the std::align_val_t fallback 2484 // once MSVC implements it. 2485 if (R.getLookupName().getCXXOverloadedOperator() == OO_Array_New && 2486 S.Context.getLangOpts().MSVCCompat) { 2487 R.clear(); 2488 R.setLookupName(S.Context.DeclarationNames.getCXXOperatorName(OO_New)); 2489 S.LookupQualifiedName(R, S.Context.getTranslationUnitDecl()); 2490 // FIXME: This will give bad diagnostics pointing at the wrong functions. 2491 return resolveAllocationOverload(S, R, Range, Args, PassAlignment, 2492 Operator, /*Candidates=*/nullptr, 2493 /*AlignArg=*/nullptr, Diagnose); 2494 } 2495 2496 if (Diagnose) { 2497 // If this is an allocation of the form 'new (p) X' for some object 2498 // pointer p (or an expression that will decay to such a pointer), 2499 // diagnose the missing inclusion of <new>. 2500 if (!R.isClassLookup() && Args.size() == 2 && 2501 (Args[1]->getType()->isObjectPointerType() || 2502 Args[1]->getType()->isArrayType())) { 2503 S.Diag(R.getNameLoc(), diag::err_need_header_before_placement_new) 2504 << R.getLookupName() << Range; 2505 // Listing the candidates is unlikely to be useful; skip it. 2506 return true; 2507 } 2508 2509 // Finish checking all candidates before we note any. This checking can 2510 // produce additional diagnostics so can't be interleaved with our 2511 // emission of notes. 2512 // 2513 // For an aligned allocation, separately check the aligned and unaligned 2514 // candidates with their respective argument lists. 2515 SmallVector<OverloadCandidate*, 32> Cands; 2516 SmallVector<OverloadCandidate*, 32> AlignedCands; 2517 llvm::SmallVector<Expr*, 4> AlignedArgs; 2518 if (AlignedCandidates) { 2519 auto IsAligned = [](OverloadCandidate &C) { 2520 return C.Function->getNumParams() > 1 && 2521 C.Function->getParamDecl(1)->getType()->isAlignValT(); 2522 }; 2523 auto IsUnaligned = [&](OverloadCandidate &C) { return !IsAligned(C); }; 2524 2525 AlignedArgs.reserve(Args.size() + 1); 2526 AlignedArgs.push_back(Args[0]); 2527 AlignedArgs.push_back(AlignArg); 2528 AlignedArgs.append(Args.begin() + 1, Args.end()); 2529 AlignedCands = AlignedCandidates->CompleteCandidates( 2530 S, OCD_AllCandidates, AlignedArgs, R.getNameLoc(), IsAligned); 2531 2532 Cands = Candidates.CompleteCandidates(S, OCD_AllCandidates, Args, 2533 R.getNameLoc(), IsUnaligned); 2534 } else { 2535 Cands = Candidates.CompleteCandidates(S, OCD_AllCandidates, Args, 2536 R.getNameLoc()); 2537 } 2538 2539 S.Diag(R.getNameLoc(), diag::err_ovl_no_viable_function_in_call) 2540 << R.getLookupName() << Range; 2541 if (AlignedCandidates) 2542 AlignedCandidates->NoteCandidates(S, AlignedArgs, AlignedCands, "", 2543 R.getNameLoc()); 2544 Candidates.NoteCandidates(S, Args, Cands, "", R.getNameLoc()); 2545 } 2546 return true; 2547 2548 case OR_Ambiguous: 2549 if (Diagnose) { 2550 Candidates.NoteCandidates( 2551 PartialDiagnosticAt(R.getNameLoc(), 2552 S.PDiag(diag::err_ovl_ambiguous_call) 2553 << R.getLookupName() << Range), 2554 S, OCD_AmbiguousCandidates, Args); 2555 } 2556 return true; 2557 2558 case OR_Deleted: { 2559 if (Diagnose) { 2560 Candidates.NoteCandidates( 2561 PartialDiagnosticAt(R.getNameLoc(), 2562 S.PDiag(diag::err_ovl_deleted_call) 2563 << R.getLookupName() << Range), 2564 S, OCD_AllCandidates, Args); 2565 } 2566 return true; 2567 } 2568 } 2569 llvm_unreachable("Unreachable, bad result from BestViableFunction"); 2570 } 2571 2572 bool Sema::FindAllocationFunctions(SourceLocation StartLoc, SourceRange Range, 2573 AllocationFunctionScope NewScope, 2574 AllocationFunctionScope DeleteScope, 2575 QualType AllocType, bool IsArray, 2576 bool &PassAlignment, MultiExprArg PlaceArgs, 2577 FunctionDecl *&OperatorNew, 2578 FunctionDecl *&OperatorDelete, 2579 bool Diagnose) { 2580 // --- Choosing an allocation function --- 2581 // C++ 5.3.4p8 - 14 & 18 2582 // 1) If looking in AFS_Global scope for allocation functions, only look in 2583 // the global scope. Else, if AFS_Class, only look in the scope of the 2584 // allocated class. If AFS_Both, look in both. 2585 // 2) If an array size is given, look for operator new[], else look for 2586 // operator new. 2587 // 3) The first argument is always size_t. Append the arguments from the 2588 // placement form. 2589 2590 SmallVector<Expr*, 8> AllocArgs; 2591 AllocArgs.reserve((PassAlignment ? 2 : 1) + PlaceArgs.size()); 2592 2593 // We don't care about the actual value of these arguments. 2594 // FIXME: Should the Sema create the expression and embed it in the syntax 2595 // tree? Or should the consumer just recalculate the value? 2596 // FIXME: Using a dummy value will interact poorly with attribute enable_if. 2597 IntegerLiteral Size(Context, llvm::APInt::getNullValue( 2598 Context.getTargetInfo().getPointerWidth(0)), 2599 Context.getSizeType(), 2600 SourceLocation()); 2601 AllocArgs.push_back(&Size); 2602 2603 QualType AlignValT = Context.VoidTy; 2604 if (PassAlignment) { 2605 DeclareGlobalNewDelete(); 2606 AlignValT = Context.getTypeDeclType(getStdAlignValT()); 2607 } 2608 CXXScalarValueInitExpr Align(AlignValT, nullptr, SourceLocation()); 2609 if (PassAlignment) 2610 AllocArgs.push_back(&Align); 2611 2612 AllocArgs.insert(AllocArgs.end(), PlaceArgs.begin(), PlaceArgs.end()); 2613 2614 // C++ [expr.new]p8: 2615 // If the allocated type is a non-array type, the allocation 2616 // function's name is operator new and the deallocation function's 2617 // name is operator delete. If the allocated type is an array 2618 // type, the allocation function's name is operator new[] and the 2619 // deallocation function's name is operator delete[]. 2620 DeclarationName NewName = Context.DeclarationNames.getCXXOperatorName( 2621 IsArray ? OO_Array_New : OO_New); 2622 2623 QualType AllocElemType = Context.getBaseElementType(AllocType); 2624 2625 // Find the allocation function. 2626 { 2627 LookupResult R(*this, NewName, StartLoc, LookupOrdinaryName); 2628 2629 // C++1z [expr.new]p9: 2630 // If the new-expression begins with a unary :: operator, the allocation 2631 // function's name is looked up in the global scope. Otherwise, if the 2632 // allocated type is a class type T or array thereof, the allocation 2633 // function's name is looked up in the scope of T. 2634 if (AllocElemType->isRecordType() && NewScope != AFS_Global) 2635 LookupQualifiedName(R, AllocElemType->getAsCXXRecordDecl()); 2636 2637 // We can see ambiguity here if the allocation function is found in 2638 // multiple base classes. 2639 if (R.isAmbiguous()) 2640 return true; 2641 2642 // If this lookup fails to find the name, or if the allocated type is not 2643 // a class type, the allocation function's name is looked up in the 2644 // global scope. 2645 if (R.empty()) { 2646 if (NewScope == AFS_Class) 2647 return true; 2648 2649 LookupQualifiedName(R, Context.getTranslationUnitDecl()); 2650 } 2651 2652 if (getLangOpts().OpenCLCPlusPlus && R.empty()) { 2653 if (PlaceArgs.empty()) { 2654 Diag(StartLoc, diag::err_openclcxx_not_supported) << "default new"; 2655 } else { 2656 Diag(StartLoc, diag::err_openclcxx_placement_new); 2657 } 2658 return true; 2659 } 2660 2661 assert(!R.empty() && "implicitly declared allocation functions not found"); 2662 assert(!R.isAmbiguous() && "global allocation functions are ambiguous"); 2663 2664 // We do our own custom access checks below. 2665 R.suppressDiagnostics(); 2666 2667 if (resolveAllocationOverload(*this, R, Range, AllocArgs, PassAlignment, 2668 OperatorNew, /*Candidates=*/nullptr, 2669 /*AlignArg=*/nullptr, Diagnose)) 2670 return true; 2671 } 2672 2673 // We don't need an operator delete if we're running under -fno-exceptions. 2674 if (!getLangOpts().Exceptions) { 2675 OperatorDelete = nullptr; 2676 return false; 2677 } 2678 2679 // Note, the name of OperatorNew might have been changed from array to 2680 // non-array by resolveAllocationOverload. 2681 DeclarationName DeleteName = Context.DeclarationNames.getCXXOperatorName( 2682 OperatorNew->getDeclName().getCXXOverloadedOperator() == OO_Array_New 2683 ? OO_Array_Delete 2684 : OO_Delete); 2685 2686 // C++ [expr.new]p19: 2687 // 2688 // If the new-expression begins with a unary :: operator, the 2689 // deallocation function's name is looked up in the global 2690 // scope. Otherwise, if the allocated type is a class type T or an 2691 // array thereof, the deallocation function's name is looked up in 2692 // the scope of T. If this lookup fails to find the name, or if 2693 // the allocated type is not a class type or array thereof, the 2694 // deallocation function's name is looked up in the global scope. 2695 LookupResult FoundDelete(*this, DeleteName, StartLoc, LookupOrdinaryName); 2696 if (AllocElemType->isRecordType() && DeleteScope != AFS_Global) { 2697 auto *RD = 2698 cast<CXXRecordDecl>(AllocElemType->castAs<RecordType>()->getDecl()); 2699 LookupQualifiedName(FoundDelete, RD); 2700 } 2701 if (FoundDelete.isAmbiguous()) 2702 return true; // FIXME: clean up expressions? 2703 2704 // Filter out any destroying operator deletes. We can't possibly call such a 2705 // function in this context, because we're handling the case where the object 2706 // was not successfully constructed. 2707 // FIXME: This is not covered by the language rules yet. 2708 { 2709 LookupResult::Filter Filter = FoundDelete.makeFilter(); 2710 while (Filter.hasNext()) { 2711 auto *FD = dyn_cast<FunctionDecl>(Filter.next()->getUnderlyingDecl()); 2712 if (FD && FD->isDestroyingOperatorDelete()) 2713 Filter.erase(); 2714 } 2715 Filter.done(); 2716 } 2717 2718 bool FoundGlobalDelete = FoundDelete.empty(); 2719 if (FoundDelete.empty()) { 2720 FoundDelete.clear(LookupOrdinaryName); 2721 2722 if (DeleteScope == AFS_Class) 2723 return true; 2724 2725 DeclareGlobalNewDelete(); 2726 LookupQualifiedName(FoundDelete, Context.getTranslationUnitDecl()); 2727 } 2728 2729 FoundDelete.suppressDiagnostics(); 2730 2731 SmallVector<std::pair<DeclAccessPair,FunctionDecl*>, 2> Matches; 2732 2733 // Whether we're looking for a placement operator delete is dictated 2734 // by whether we selected a placement operator new, not by whether 2735 // we had explicit placement arguments. This matters for things like 2736 // struct A { void *operator new(size_t, int = 0); ... }; 2737 // A *a = new A() 2738 // 2739 // We don't have any definition for what a "placement allocation function" 2740 // is, but we assume it's any allocation function whose 2741 // parameter-declaration-clause is anything other than (size_t). 2742 // 2743 // FIXME: Should (size_t, std::align_val_t) also be considered non-placement? 2744 // This affects whether an exception from the constructor of an overaligned 2745 // type uses the sized or non-sized form of aligned operator delete. 2746 bool isPlacementNew = !PlaceArgs.empty() || OperatorNew->param_size() != 1 || 2747 OperatorNew->isVariadic(); 2748 2749 if (isPlacementNew) { 2750 // C++ [expr.new]p20: 2751 // A declaration of a placement deallocation function matches the 2752 // declaration of a placement allocation function if it has the 2753 // same number of parameters and, after parameter transformations 2754 // (8.3.5), all parameter types except the first are 2755 // identical. [...] 2756 // 2757 // To perform this comparison, we compute the function type that 2758 // the deallocation function should have, and use that type both 2759 // for template argument deduction and for comparison purposes. 2760 QualType ExpectedFunctionType; 2761 { 2762 auto *Proto = OperatorNew->getType()->castAs<FunctionProtoType>(); 2763 2764 SmallVector<QualType, 4> ArgTypes; 2765 ArgTypes.push_back(Context.VoidPtrTy); 2766 for (unsigned I = 1, N = Proto->getNumParams(); I < N; ++I) 2767 ArgTypes.push_back(Proto->getParamType(I)); 2768 2769 FunctionProtoType::ExtProtoInfo EPI; 2770 // FIXME: This is not part of the standard's rule. 2771 EPI.Variadic = Proto->isVariadic(); 2772 2773 ExpectedFunctionType 2774 = Context.getFunctionType(Context.VoidTy, ArgTypes, EPI); 2775 } 2776 2777 for (LookupResult::iterator D = FoundDelete.begin(), 2778 DEnd = FoundDelete.end(); 2779 D != DEnd; ++D) { 2780 FunctionDecl *Fn = nullptr; 2781 if (FunctionTemplateDecl *FnTmpl = 2782 dyn_cast<FunctionTemplateDecl>((*D)->getUnderlyingDecl())) { 2783 // Perform template argument deduction to try to match the 2784 // expected function type. 2785 TemplateDeductionInfo Info(StartLoc); 2786 if (DeduceTemplateArguments(FnTmpl, nullptr, ExpectedFunctionType, Fn, 2787 Info)) 2788 continue; 2789 } else 2790 Fn = cast<FunctionDecl>((*D)->getUnderlyingDecl()); 2791 2792 if (Context.hasSameType(adjustCCAndNoReturn(Fn->getType(), 2793 ExpectedFunctionType, 2794 /*AdjustExcpetionSpec*/true), 2795 ExpectedFunctionType)) 2796 Matches.push_back(std::make_pair(D.getPair(), Fn)); 2797 } 2798 2799 if (getLangOpts().CUDA) 2800 EraseUnwantedCUDAMatches(dyn_cast<FunctionDecl>(CurContext), Matches); 2801 } else { 2802 // C++1y [expr.new]p22: 2803 // For a non-placement allocation function, the normal deallocation 2804 // function lookup is used 2805 // 2806 // Per [expr.delete]p10, this lookup prefers a member operator delete 2807 // without a size_t argument, but prefers a non-member operator delete 2808 // with a size_t where possible (which it always is in this case). 2809 llvm::SmallVector<UsualDeallocFnInfo, 4> BestDeallocFns; 2810 UsualDeallocFnInfo Selected = resolveDeallocationOverload( 2811 *this, FoundDelete, /*WantSize*/ FoundGlobalDelete, 2812 /*WantAlign*/ hasNewExtendedAlignment(*this, AllocElemType), 2813 &BestDeallocFns); 2814 if (Selected) 2815 Matches.push_back(std::make_pair(Selected.Found, Selected.FD)); 2816 else { 2817 // If we failed to select an operator, all remaining functions are viable 2818 // but ambiguous. 2819 for (auto Fn : BestDeallocFns) 2820 Matches.push_back(std::make_pair(Fn.Found, Fn.FD)); 2821 } 2822 } 2823 2824 // C++ [expr.new]p20: 2825 // [...] If the lookup finds a single matching deallocation 2826 // function, that function will be called; otherwise, no 2827 // deallocation function will be called. 2828 if (Matches.size() == 1) { 2829 OperatorDelete = Matches[0].second; 2830 2831 // C++1z [expr.new]p23: 2832 // If the lookup finds a usual deallocation function (3.7.4.2) 2833 // with a parameter of type std::size_t and that function, considered 2834 // as a placement deallocation function, would have been 2835 // selected as a match for the allocation function, the program 2836 // is ill-formed. 2837 if (getLangOpts().CPlusPlus11 && isPlacementNew && 2838 isNonPlacementDeallocationFunction(*this, OperatorDelete)) { 2839 UsualDeallocFnInfo Info(*this, 2840 DeclAccessPair::make(OperatorDelete, AS_public)); 2841 // Core issue, per mail to core reflector, 2016-10-09: 2842 // If this is a member operator delete, and there is a corresponding 2843 // non-sized member operator delete, this isn't /really/ a sized 2844 // deallocation function, it just happens to have a size_t parameter. 2845 bool IsSizedDelete = Info.HasSizeT; 2846 if (IsSizedDelete && !FoundGlobalDelete) { 2847 auto NonSizedDelete = 2848 resolveDeallocationOverload(*this, FoundDelete, /*WantSize*/false, 2849 /*WantAlign*/Info.HasAlignValT); 2850 if (NonSizedDelete && !NonSizedDelete.HasSizeT && 2851 NonSizedDelete.HasAlignValT == Info.HasAlignValT) 2852 IsSizedDelete = false; 2853 } 2854 2855 if (IsSizedDelete) { 2856 SourceRange R = PlaceArgs.empty() 2857 ? SourceRange() 2858 : SourceRange(PlaceArgs.front()->getBeginLoc(), 2859 PlaceArgs.back()->getEndLoc()); 2860 Diag(StartLoc, diag::err_placement_new_non_placement_delete) << R; 2861 if (!OperatorDelete->isImplicit()) 2862 Diag(OperatorDelete->getLocation(), diag::note_previous_decl) 2863 << DeleteName; 2864 } 2865 } 2866 2867 CheckAllocationAccess(StartLoc, Range, FoundDelete.getNamingClass(), 2868 Matches[0].first); 2869 } else if (!Matches.empty()) { 2870 // We found multiple suitable operators. Per [expr.new]p20, that means we 2871 // call no 'operator delete' function, but we should at least warn the user. 2872 // FIXME: Suppress this warning if the construction cannot throw. 2873 Diag(StartLoc, diag::warn_ambiguous_suitable_delete_function_found) 2874 << DeleteName << AllocElemType; 2875 2876 for (auto &Match : Matches) 2877 Diag(Match.second->getLocation(), 2878 diag::note_member_declared_here) << DeleteName; 2879 } 2880 2881 return false; 2882 } 2883 2884 /// DeclareGlobalNewDelete - Declare the global forms of operator new and 2885 /// delete. These are: 2886 /// @code 2887 /// // C++03: 2888 /// void* operator new(std::size_t) throw(std::bad_alloc); 2889 /// void* operator new[](std::size_t) throw(std::bad_alloc); 2890 /// void operator delete(void *) throw(); 2891 /// void operator delete[](void *) throw(); 2892 /// // C++11: 2893 /// void* operator new(std::size_t); 2894 /// void* operator new[](std::size_t); 2895 /// void operator delete(void *) noexcept; 2896 /// void operator delete[](void *) noexcept; 2897 /// // C++1y: 2898 /// void* operator new(std::size_t); 2899 /// void* operator new[](std::size_t); 2900 /// void operator delete(void *) noexcept; 2901 /// void operator delete[](void *) noexcept; 2902 /// void operator delete(void *, std::size_t) noexcept; 2903 /// void operator delete[](void *, std::size_t) noexcept; 2904 /// @endcode 2905 /// Note that the placement and nothrow forms of new are *not* implicitly 2906 /// declared. Their use requires including \<new\>. 2907 void Sema::DeclareGlobalNewDelete() { 2908 if (GlobalNewDeleteDeclared) 2909 return; 2910 2911 // The implicitly declared new and delete operators 2912 // are not supported in OpenCL. 2913 if (getLangOpts().OpenCLCPlusPlus) 2914 return; 2915 2916 // C++ [basic.std.dynamic]p2: 2917 // [...] The following allocation and deallocation functions (18.4) are 2918 // implicitly declared in global scope in each translation unit of a 2919 // program 2920 // 2921 // C++03: 2922 // void* operator new(std::size_t) throw(std::bad_alloc); 2923 // void* operator new[](std::size_t) throw(std::bad_alloc); 2924 // void operator delete(void*) throw(); 2925 // void operator delete[](void*) throw(); 2926 // C++11: 2927 // void* operator new(std::size_t); 2928 // void* operator new[](std::size_t); 2929 // void operator delete(void*) noexcept; 2930 // void operator delete[](void*) noexcept; 2931 // C++1y: 2932 // void* operator new(std::size_t); 2933 // void* operator new[](std::size_t); 2934 // void operator delete(void*) noexcept; 2935 // void operator delete[](void*) noexcept; 2936 // void operator delete(void*, std::size_t) noexcept; 2937 // void operator delete[](void*, std::size_t) noexcept; 2938 // 2939 // These implicit declarations introduce only the function names operator 2940 // new, operator new[], operator delete, operator delete[]. 2941 // 2942 // Here, we need to refer to std::bad_alloc, so we will implicitly declare 2943 // "std" or "bad_alloc" as necessary to form the exception specification. 2944 // However, we do not make these implicit declarations visible to name 2945 // lookup. 2946 if (!StdBadAlloc && !getLangOpts().CPlusPlus11) { 2947 // The "std::bad_alloc" class has not yet been declared, so build it 2948 // implicitly. 2949 StdBadAlloc = CXXRecordDecl::Create(Context, TTK_Class, 2950 getOrCreateStdNamespace(), 2951 SourceLocation(), SourceLocation(), 2952 &PP.getIdentifierTable().get("bad_alloc"), 2953 nullptr); 2954 getStdBadAlloc()->setImplicit(true); 2955 } 2956 if (!StdAlignValT && getLangOpts().AlignedAllocation) { 2957 // The "std::align_val_t" enum class has not yet been declared, so build it 2958 // implicitly. 2959 auto *AlignValT = EnumDecl::Create( 2960 Context, getOrCreateStdNamespace(), SourceLocation(), SourceLocation(), 2961 &PP.getIdentifierTable().get("align_val_t"), nullptr, true, true, true); 2962 AlignValT->setIntegerType(Context.getSizeType()); 2963 AlignValT->setPromotionType(Context.getSizeType()); 2964 AlignValT->setImplicit(true); 2965 StdAlignValT = AlignValT; 2966 } 2967 2968 GlobalNewDeleteDeclared = true; 2969 2970 QualType VoidPtr = Context.getPointerType(Context.VoidTy); 2971 QualType SizeT = Context.getSizeType(); 2972 2973 auto DeclareGlobalAllocationFunctions = [&](OverloadedOperatorKind Kind, 2974 QualType Return, QualType Param) { 2975 llvm::SmallVector<QualType, 3> Params; 2976 Params.push_back(Param); 2977 2978 // Create up to four variants of the function (sized/aligned). 2979 bool HasSizedVariant = getLangOpts().SizedDeallocation && 2980 (Kind == OO_Delete || Kind == OO_Array_Delete); 2981 bool HasAlignedVariant = getLangOpts().AlignedAllocation; 2982 2983 int NumSizeVariants = (HasSizedVariant ? 2 : 1); 2984 int NumAlignVariants = (HasAlignedVariant ? 2 : 1); 2985 for (int Sized = 0; Sized < NumSizeVariants; ++Sized) { 2986 if (Sized) 2987 Params.push_back(SizeT); 2988 2989 for (int Aligned = 0; Aligned < NumAlignVariants; ++Aligned) { 2990 if (Aligned) 2991 Params.push_back(Context.getTypeDeclType(getStdAlignValT())); 2992 2993 DeclareGlobalAllocationFunction( 2994 Context.DeclarationNames.getCXXOperatorName(Kind), Return, Params); 2995 2996 if (Aligned) 2997 Params.pop_back(); 2998 } 2999 } 3000 }; 3001 3002 DeclareGlobalAllocationFunctions(OO_New, VoidPtr, SizeT); 3003 DeclareGlobalAllocationFunctions(OO_Array_New, VoidPtr, SizeT); 3004 DeclareGlobalAllocationFunctions(OO_Delete, Context.VoidTy, VoidPtr); 3005 DeclareGlobalAllocationFunctions(OO_Array_Delete, Context.VoidTy, VoidPtr); 3006 } 3007 3008 /// DeclareGlobalAllocationFunction - Declares a single implicit global 3009 /// allocation function if it doesn't already exist. 3010 void Sema::DeclareGlobalAllocationFunction(DeclarationName Name, 3011 QualType Return, 3012 ArrayRef<QualType> Params) { 3013 DeclContext *GlobalCtx = Context.getTranslationUnitDecl(); 3014 3015 // Check if this function is already declared. 3016 DeclContext::lookup_result R = GlobalCtx->lookup(Name); 3017 for (DeclContext::lookup_iterator Alloc = R.begin(), AllocEnd = R.end(); 3018 Alloc != AllocEnd; ++Alloc) { 3019 // Only look at non-template functions, as it is the predefined, 3020 // non-templated allocation function we are trying to declare here. 3021 if (FunctionDecl *Func = dyn_cast<FunctionDecl>(*Alloc)) { 3022 if (Func->getNumParams() == Params.size()) { 3023 llvm::SmallVector<QualType, 3> FuncParams; 3024 for (auto *P : Func->parameters()) 3025 FuncParams.push_back( 3026 Context.getCanonicalType(P->getType().getUnqualifiedType())); 3027 if (llvm::makeArrayRef(FuncParams) == Params) { 3028 // Make the function visible to name lookup, even if we found it in 3029 // an unimported module. It either is an implicitly-declared global 3030 // allocation function, or is suppressing that function. 3031 Func->setVisibleDespiteOwningModule(); 3032 return; 3033 } 3034 } 3035 } 3036 } 3037 3038 FunctionProtoType::ExtProtoInfo EPI(Context.getDefaultCallingConvention( 3039 /*IsVariadic=*/false, /*IsCXXMethod=*/false, /*IsBuiltin=*/true)); 3040 3041 QualType BadAllocType; 3042 bool HasBadAllocExceptionSpec 3043 = (Name.getCXXOverloadedOperator() == OO_New || 3044 Name.getCXXOverloadedOperator() == OO_Array_New); 3045 if (HasBadAllocExceptionSpec) { 3046 if (!getLangOpts().CPlusPlus11) { 3047 BadAllocType = Context.getTypeDeclType(getStdBadAlloc()); 3048 assert(StdBadAlloc && "Must have std::bad_alloc declared"); 3049 EPI.ExceptionSpec.Type = EST_Dynamic; 3050 EPI.ExceptionSpec.Exceptions = llvm::makeArrayRef(BadAllocType); 3051 } 3052 } else { 3053 EPI.ExceptionSpec = 3054 getLangOpts().CPlusPlus11 ? EST_BasicNoexcept : EST_DynamicNone; 3055 } 3056 3057 auto CreateAllocationFunctionDecl = [&](Attr *ExtraAttr) { 3058 QualType FnType = Context.getFunctionType(Return, Params, EPI); 3059 FunctionDecl *Alloc = FunctionDecl::Create( 3060 Context, GlobalCtx, SourceLocation(), SourceLocation(), Name, 3061 FnType, /*TInfo=*/nullptr, SC_None, false, true); 3062 Alloc->setImplicit(); 3063 // Global allocation functions should always be visible. 3064 Alloc->setVisibleDespiteOwningModule(); 3065 3066 Alloc->addAttr(VisibilityAttr::CreateImplicit( 3067 Context, LangOpts.GlobalAllocationFunctionVisibilityHidden 3068 ? VisibilityAttr::Hidden 3069 : VisibilityAttr::Default)); 3070 3071 llvm::SmallVector<ParmVarDecl *, 3> ParamDecls; 3072 for (QualType T : Params) { 3073 ParamDecls.push_back(ParmVarDecl::Create( 3074 Context, Alloc, SourceLocation(), SourceLocation(), nullptr, T, 3075 /*TInfo=*/nullptr, SC_None, nullptr)); 3076 ParamDecls.back()->setImplicit(); 3077 } 3078 Alloc->setParams(ParamDecls); 3079 if (ExtraAttr) 3080 Alloc->addAttr(ExtraAttr); 3081 AddKnownFunctionAttributesForReplaceableGlobalAllocationFunction(Alloc); 3082 Context.getTranslationUnitDecl()->addDecl(Alloc); 3083 IdResolver.tryAddTopLevelDecl(Alloc, Name); 3084 }; 3085 3086 if (!LangOpts.CUDA) 3087 CreateAllocationFunctionDecl(nullptr); 3088 else { 3089 // Host and device get their own declaration so each can be 3090 // defined or re-declared independently. 3091 CreateAllocationFunctionDecl(CUDAHostAttr::CreateImplicit(Context)); 3092 CreateAllocationFunctionDecl(CUDADeviceAttr::CreateImplicit(Context)); 3093 } 3094 } 3095 3096 FunctionDecl *Sema::FindUsualDeallocationFunction(SourceLocation StartLoc, 3097 bool CanProvideSize, 3098 bool Overaligned, 3099 DeclarationName Name) { 3100 DeclareGlobalNewDelete(); 3101 3102 LookupResult FoundDelete(*this, Name, StartLoc, LookupOrdinaryName); 3103 LookupQualifiedName(FoundDelete, Context.getTranslationUnitDecl()); 3104 3105 // FIXME: It's possible for this to result in ambiguity, through a 3106 // user-declared variadic operator delete or the enable_if attribute. We 3107 // should probably not consider those cases to be usual deallocation 3108 // functions. But for now we just make an arbitrary choice in that case. 3109 auto Result = resolveDeallocationOverload(*this, FoundDelete, CanProvideSize, 3110 Overaligned); 3111 assert(Result.FD && "operator delete missing from global scope?"); 3112 return Result.FD; 3113 } 3114 3115 FunctionDecl *Sema::FindDeallocationFunctionForDestructor(SourceLocation Loc, 3116 CXXRecordDecl *RD) { 3117 DeclarationName Name = Context.DeclarationNames.getCXXOperatorName(OO_Delete); 3118 3119 FunctionDecl *OperatorDelete = nullptr; 3120 if (FindDeallocationFunction(Loc, RD, Name, OperatorDelete)) 3121 return nullptr; 3122 if (OperatorDelete) 3123 return OperatorDelete; 3124 3125 // If there's no class-specific operator delete, look up the global 3126 // non-array delete. 3127 return FindUsualDeallocationFunction( 3128 Loc, true, hasNewExtendedAlignment(*this, Context.getRecordType(RD)), 3129 Name); 3130 } 3131 3132 bool Sema::FindDeallocationFunction(SourceLocation StartLoc, CXXRecordDecl *RD, 3133 DeclarationName Name, 3134 FunctionDecl *&Operator, bool Diagnose) { 3135 LookupResult Found(*this, Name, StartLoc, LookupOrdinaryName); 3136 // Try to find operator delete/operator delete[] in class scope. 3137 LookupQualifiedName(Found, RD); 3138 3139 if (Found.isAmbiguous()) 3140 return true; 3141 3142 Found.suppressDiagnostics(); 3143 3144 bool Overaligned = hasNewExtendedAlignment(*this, Context.getRecordType(RD)); 3145 3146 // C++17 [expr.delete]p10: 3147 // If the deallocation functions have class scope, the one without a 3148 // parameter of type std::size_t is selected. 3149 llvm::SmallVector<UsualDeallocFnInfo, 4> Matches; 3150 resolveDeallocationOverload(*this, Found, /*WantSize*/ false, 3151 /*WantAlign*/ Overaligned, &Matches); 3152 3153 // If we could find an overload, use it. 3154 if (Matches.size() == 1) { 3155 Operator = cast<CXXMethodDecl>(Matches[0].FD); 3156 3157 // FIXME: DiagnoseUseOfDecl? 3158 if (Operator->isDeleted()) { 3159 if (Diagnose) { 3160 Diag(StartLoc, diag::err_deleted_function_use); 3161 NoteDeletedFunction(Operator); 3162 } 3163 return true; 3164 } 3165 3166 if (CheckAllocationAccess(StartLoc, SourceRange(), Found.getNamingClass(), 3167 Matches[0].Found, Diagnose) == AR_inaccessible) 3168 return true; 3169 3170 return false; 3171 } 3172 3173 // We found multiple suitable operators; complain about the ambiguity. 3174 // FIXME: The standard doesn't say to do this; it appears that the intent 3175 // is that this should never happen. 3176 if (!Matches.empty()) { 3177 if (Diagnose) { 3178 Diag(StartLoc, diag::err_ambiguous_suitable_delete_member_function_found) 3179 << Name << RD; 3180 for (auto &Match : Matches) 3181 Diag(Match.FD->getLocation(), diag::note_member_declared_here) << Name; 3182 } 3183 return true; 3184 } 3185 3186 // We did find operator delete/operator delete[] declarations, but 3187 // none of them were suitable. 3188 if (!Found.empty()) { 3189 if (Diagnose) { 3190 Diag(StartLoc, diag::err_no_suitable_delete_member_function_found) 3191 << Name << RD; 3192 3193 for (NamedDecl *D : Found) 3194 Diag(D->getUnderlyingDecl()->getLocation(), 3195 diag::note_member_declared_here) << Name; 3196 } 3197 return true; 3198 } 3199 3200 Operator = nullptr; 3201 return false; 3202 } 3203 3204 namespace { 3205 /// Checks whether delete-expression, and new-expression used for 3206 /// initializing deletee have the same array form. 3207 class MismatchingNewDeleteDetector { 3208 public: 3209 enum MismatchResult { 3210 /// Indicates that there is no mismatch or a mismatch cannot be proven. 3211 NoMismatch, 3212 /// Indicates that variable is initialized with mismatching form of \a new. 3213 VarInitMismatches, 3214 /// Indicates that member is initialized with mismatching form of \a new. 3215 MemberInitMismatches, 3216 /// Indicates that 1 or more constructors' definitions could not been 3217 /// analyzed, and they will be checked again at the end of translation unit. 3218 AnalyzeLater 3219 }; 3220 3221 /// \param EndOfTU True, if this is the final analysis at the end of 3222 /// translation unit. False, if this is the initial analysis at the point 3223 /// delete-expression was encountered. 3224 explicit MismatchingNewDeleteDetector(bool EndOfTU) 3225 : Field(nullptr), IsArrayForm(false), EndOfTU(EndOfTU), 3226 HasUndefinedConstructors(false) {} 3227 3228 /// Checks whether pointee of a delete-expression is initialized with 3229 /// matching form of new-expression. 3230 /// 3231 /// If return value is \c VarInitMismatches or \c MemberInitMismatches at the 3232 /// point where delete-expression is encountered, then a warning will be 3233 /// issued immediately. If return value is \c AnalyzeLater at the point where 3234 /// delete-expression is seen, then member will be analyzed at the end of 3235 /// translation unit. \c AnalyzeLater is returned iff at least one constructor 3236 /// couldn't be analyzed. If at least one constructor initializes the member 3237 /// with matching type of new, the return value is \c NoMismatch. 3238 MismatchResult analyzeDeleteExpr(const CXXDeleteExpr *DE); 3239 /// Analyzes a class member. 3240 /// \param Field Class member to analyze. 3241 /// \param DeleteWasArrayForm Array form-ness of the delete-expression used 3242 /// for deleting the \p Field. 3243 MismatchResult analyzeField(FieldDecl *Field, bool DeleteWasArrayForm); 3244 FieldDecl *Field; 3245 /// List of mismatching new-expressions used for initialization of the pointee 3246 llvm::SmallVector<const CXXNewExpr *, 4> NewExprs; 3247 /// Indicates whether delete-expression was in array form. 3248 bool IsArrayForm; 3249 3250 private: 3251 const bool EndOfTU; 3252 /// Indicates that there is at least one constructor without body. 3253 bool HasUndefinedConstructors; 3254 /// Returns \c CXXNewExpr from given initialization expression. 3255 /// \param E Expression used for initializing pointee in delete-expression. 3256 /// E can be a single-element \c InitListExpr consisting of new-expression. 3257 const CXXNewExpr *getNewExprFromInitListOrExpr(const Expr *E); 3258 /// Returns whether member is initialized with mismatching form of 3259 /// \c new either by the member initializer or in-class initialization. 3260 /// 3261 /// If bodies of all constructors are not visible at the end of translation 3262 /// unit or at least one constructor initializes member with the matching 3263 /// form of \c new, mismatch cannot be proven, and this function will return 3264 /// \c NoMismatch. 3265 MismatchResult analyzeMemberExpr(const MemberExpr *ME); 3266 /// Returns whether variable is initialized with mismatching form of 3267 /// \c new. 3268 /// 3269 /// If variable is initialized with matching form of \c new or variable is not 3270 /// initialized with a \c new expression, this function will return true. 3271 /// If variable is initialized with mismatching form of \c new, returns false. 3272 /// \param D Variable to analyze. 3273 bool hasMatchingVarInit(const DeclRefExpr *D); 3274 /// Checks whether the constructor initializes pointee with mismatching 3275 /// form of \c new. 3276 /// 3277 /// Returns true, if member is initialized with matching form of \c new in 3278 /// member initializer list. Returns false, if member is initialized with the 3279 /// matching form of \c new in this constructor's initializer or given 3280 /// constructor isn't defined at the point where delete-expression is seen, or 3281 /// member isn't initialized by the constructor. 3282 bool hasMatchingNewInCtor(const CXXConstructorDecl *CD); 3283 /// Checks whether member is initialized with matching form of 3284 /// \c new in member initializer list. 3285 bool hasMatchingNewInCtorInit(const CXXCtorInitializer *CI); 3286 /// Checks whether member is initialized with mismatching form of \c new by 3287 /// in-class initializer. 3288 MismatchResult analyzeInClassInitializer(); 3289 }; 3290 } 3291 3292 MismatchingNewDeleteDetector::MismatchResult 3293 MismatchingNewDeleteDetector::analyzeDeleteExpr(const CXXDeleteExpr *DE) { 3294 NewExprs.clear(); 3295 assert(DE && "Expected delete-expression"); 3296 IsArrayForm = DE->isArrayForm(); 3297 const Expr *E = DE->getArgument()->IgnoreParenImpCasts(); 3298 if (const MemberExpr *ME = dyn_cast<const MemberExpr>(E)) { 3299 return analyzeMemberExpr(ME); 3300 } else if (const DeclRefExpr *D = dyn_cast<const DeclRefExpr>(E)) { 3301 if (!hasMatchingVarInit(D)) 3302 return VarInitMismatches; 3303 } 3304 return NoMismatch; 3305 } 3306 3307 const CXXNewExpr * 3308 MismatchingNewDeleteDetector::getNewExprFromInitListOrExpr(const Expr *E) { 3309 assert(E != nullptr && "Expected a valid initializer expression"); 3310 E = E->IgnoreParenImpCasts(); 3311 if (const InitListExpr *ILE = dyn_cast<const InitListExpr>(E)) { 3312 if (ILE->getNumInits() == 1) 3313 E = dyn_cast<const CXXNewExpr>(ILE->getInit(0)->IgnoreParenImpCasts()); 3314 } 3315 3316 return dyn_cast_or_null<const CXXNewExpr>(E); 3317 } 3318 3319 bool MismatchingNewDeleteDetector::hasMatchingNewInCtorInit( 3320 const CXXCtorInitializer *CI) { 3321 const CXXNewExpr *NE = nullptr; 3322 if (Field == CI->getMember() && 3323 (NE = getNewExprFromInitListOrExpr(CI->getInit()))) { 3324 if (NE->isArray() == IsArrayForm) 3325 return true; 3326 else 3327 NewExprs.push_back(NE); 3328 } 3329 return false; 3330 } 3331 3332 bool MismatchingNewDeleteDetector::hasMatchingNewInCtor( 3333 const CXXConstructorDecl *CD) { 3334 if (CD->isImplicit()) 3335 return false; 3336 const FunctionDecl *Definition = CD; 3337 if (!CD->isThisDeclarationADefinition() && !CD->isDefined(Definition)) { 3338 HasUndefinedConstructors = true; 3339 return EndOfTU; 3340 } 3341 for (const auto *CI : cast<const CXXConstructorDecl>(Definition)->inits()) { 3342 if (hasMatchingNewInCtorInit(CI)) 3343 return true; 3344 } 3345 return false; 3346 } 3347 3348 MismatchingNewDeleteDetector::MismatchResult 3349 MismatchingNewDeleteDetector::analyzeInClassInitializer() { 3350 assert(Field != nullptr && "This should be called only for members"); 3351 const Expr *InitExpr = Field->getInClassInitializer(); 3352 if (!InitExpr) 3353 return EndOfTU ? NoMismatch : AnalyzeLater; 3354 if (const CXXNewExpr *NE = getNewExprFromInitListOrExpr(InitExpr)) { 3355 if (NE->isArray() != IsArrayForm) { 3356 NewExprs.push_back(NE); 3357 return MemberInitMismatches; 3358 } 3359 } 3360 return NoMismatch; 3361 } 3362 3363 MismatchingNewDeleteDetector::MismatchResult 3364 MismatchingNewDeleteDetector::analyzeField(FieldDecl *Field, 3365 bool DeleteWasArrayForm) { 3366 assert(Field != nullptr && "Analysis requires a valid class member."); 3367 this->Field = Field; 3368 IsArrayForm = DeleteWasArrayForm; 3369 const CXXRecordDecl *RD = cast<const CXXRecordDecl>(Field->getParent()); 3370 for (const auto *CD : RD->ctors()) { 3371 if (hasMatchingNewInCtor(CD)) 3372 return NoMismatch; 3373 } 3374 if (HasUndefinedConstructors) 3375 return EndOfTU ? NoMismatch : AnalyzeLater; 3376 if (!NewExprs.empty()) 3377 return MemberInitMismatches; 3378 return Field->hasInClassInitializer() ? analyzeInClassInitializer() 3379 : NoMismatch; 3380 } 3381 3382 MismatchingNewDeleteDetector::MismatchResult 3383 MismatchingNewDeleteDetector::analyzeMemberExpr(const MemberExpr *ME) { 3384 assert(ME != nullptr && "Expected a member expression"); 3385 if (FieldDecl *F = dyn_cast<FieldDecl>(ME->getMemberDecl())) 3386 return analyzeField(F, IsArrayForm); 3387 return NoMismatch; 3388 } 3389 3390 bool MismatchingNewDeleteDetector::hasMatchingVarInit(const DeclRefExpr *D) { 3391 const CXXNewExpr *NE = nullptr; 3392 if (const VarDecl *VD = dyn_cast<const VarDecl>(D->getDecl())) { 3393 if (VD->hasInit() && (NE = getNewExprFromInitListOrExpr(VD->getInit())) && 3394 NE->isArray() != IsArrayForm) { 3395 NewExprs.push_back(NE); 3396 } 3397 } 3398 return NewExprs.empty(); 3399 } 3400 3401 static void 3402 DiagnoseMismatchedNewDelete(Sema &SemaRef, SourceLocation DeleteLoc, 3403 const MismatchingNewDeleteDetector &Detector) { 3404 SourceLocation EndOfDelete = SemaRef.getLocForEndOfToken(DeleteLoc); 3405 FixItHint H; 3406 if (!Detector.IsArrayForm) 3407 H = FixItHint::CreateInsertion(EndOfDelete, "[]"); 3408 else { 3409 SourceLocation RSquare = Lexer::findLocationAfterToken( 3410 DeleteLoc, tok::l_square, SemaRef.getSourceManager(), 3411 SemaRef.getLangOpts(), true); 3412 if (RSquare.isValid()) 3413 H = FixItHint::CreateRemoval(SourceRange(EndOfDelete, RSquare)); 3414 } 3415 SemaRef.Diag(DeleteLoc, diag::warn_mismatched_delete_new) 3416 << Detector.IsArrayForm << H; 3417 3418 for (const auto *NE : Detector.NewExprs) 3419 SemaRef.Diag(NE->getExprLoc(), diag::note_allocated_here) 3420 << Detector.IsArrayForm; 3421 } 3422 3423 void Sema::AnalyzeDeleteExprMismatch(const CXXDeleteExpr *DE) { 3424 if (Diags.isIgnored(diag::warn_mismatched_delete_new, SourceLocation())) 3425 return; 3426 MismatchingNewDeleteDetector Detector(/*EndOfTU=*/false); 3427 switch (Detector.analyzeDeleteExpr(DE)) { 3428 case MismatchingNewDeleteDetector::VarInitMismatches: 3429 case MismatchingNewDeleteDetector::MemberInitMismatches: { 3430 DiagnoseMismatchedNewDelete(*this, DE->getBeginLoc(), Detector); 3431 break; 3432 } 3433 case MismatchingNewDeleteDetector::AnalyzeLater: { 3434 DeleteExprs[Detector.Field].push_back( 3435 std::make_pair(DE->getBeginLoc(), DE->isArrayForm())); 3436 break; 3437 } 3438 case MismatchingNewDeleteDetector::NoMismatch: 3439 break; 3440 } 3441 } 3442 3443 void Sema::AnalyzeDeleteExprMismatch(FieldDecl *Field, SourceLocation DeleteLoc, 3444 bool DeleteWasArrayForm) { 3445 MismatchingNewDeleteDetector Detector(/*EndOfTU=*/true); 3446 switch (Detector.analyzeField(Field, DeleteWasArrayForm)) { 3447 case MismatchingNewDeleteDetector::VarInitMismatches: 3448 llvm_unreachable("This analysis should have been done for class members."); 3449 case MismatchingNewDeleteDetector::AnalyzeLater: 3450 llvm_unreachable("Analysis cannot be postponed any point beyond end of " 3451 "translation unit."); 3452 case MismatchingNewDeleteDetector::MemberInitMismatches: 3453 DiagnoseMismatchedNewDelete(*this, DeleteLoc, Detector); 3454 break; 3455 case MismatchingNewDeleteDetector::NoMismatch: 3456 break; 3457 } 3458 } 3459 3460 /// ActOnCXXDelete - Parsed a C++ 'delete' expression (C++ 5.3.5), as in: 3461 /// @code ::delete ptr; @endcode 3462 /// or 3463 /// @code delete [] ptr; @endcode 3464 ExprResult 3465 Sema::ActOnCXXDelete(SourceLocation StartLoc, bool UseGlobal, 3466 bool ArrayForm, Expr *ExE) { 3467 // C++ [expr.delete]p1: 3468 // The operand shall have a pointer type, or a class type having a single 3469 // non-explicit conversion function to a pointer type. The result has type 3470 // void. 3471 // 3472 // DR599 amends "pointer type" to "pointer to object type" in both cases. 3473 3474 ExprResult Ex = ExE; 3475 FunctionDecl *OperatorDelete = nullptr; 3476 bool ArrayFormAsWritten = ArrayForm; 3477 bool UsualArrayDeleteWantsSize = false; 3478 3479 if (!Ex.get()->isTypeDependent()) { 3480 // Perform lvalue-to-rvalue cast, if needed. 3481 Ex = DefaultLvalueConversion(Ex.get()); 3482 if (Ex.isInvalid()) 3483 return ExprError(); 3484 3485 QualType Type = Ex.get()->getType(); 3486 3487 class DeleteConverter : public ContextualImplicitConverter { 3488 public: 3489 DeleteConverter() : ContextualImplicitConverter(false, true) {} 3490 3491 bool match(QualType ConvType) override { 3492 // FIXME: If we have an operator T* and an operator void*, we must pick 3493 // the operator T*. 3494 if (const PointerType *ConvPtrType = ConvType->getAs<PointerType>()) 3495 if (ConvPtrType->getPointeeType()->isIncompleteOrObjectType()) 3496 return true; 3497 return false; 3498 } 3499 3500 SemaDiagnosticBuilder diagnoseNoMatch(Sema &S, SourceLocation Loc, 3501 QualType T) override { 3502 return S.Diag(Loc, diag::err_delete_operand) << T; 3503 } 3504 3505 SemaDiagnosticBuilder diagnoseIncomplete(Sema &S, SourceLocation Loc, 3506 QualType T) override { 3507 return S.Diag(Loc, diag::err_delete_incomplete_class_type) << T; 3508 } 3509 3510 SemaDiagnosticBuilder diagnoseExplicitConv(Sema &S, SourceLocation Loc, 3511 QualType T, 3512 QualType ConvTy) override { 3513 return S.Diag(Loc, diag::err_delete_explicit_conversion) << T << ConvTy; 3514 } 3515 3516 SemaDiagnosticBuilder noteExplicitConv(Sema &S, CXXConversionDecl *Conv, 3517 QualType ConvTy) override { 3518 return S.Diag(Conv->getLocation(), diag::note_delete_conversion) 3519 << ConvTy; 3520 } 3521 3522 SemaDiagnosticBuilder diagnoseAmbiguous(Sema &S, SourceLocation Loc, 3523 QualType T) override { 3524 return S.Diag(Loc, diag::err_ambiguous_delete_operand) << T; 3525 } 3526 3527 SemaDiagnosticBuilder noteAmbiguous(Sema &S, CXXConversionDecl *Conv, 3528 QualType ConvTy) override { 3529 return S.Diag(Conv->getLocation(), diag::note_delete_conversion) 3530 << ConvTy; 3531 } 3532 3533 SemaDiagnosticBuilder diagnoseConversion(Sema &S, SourceLocation Loc, 3534 QualType T, 3535 QualType ConvTy) override { 3536 llvm_unreachable("conversion functions are permitted"); 3537 } 3538 } Converter; 3539 3540 Ex = PerformContextualImplicitConversion(StartLoc, Ex.get(), Converter); 3541 if (Ex.isInvalid()) 3542 return ExprError(); 3543 Type = Ex.get()->getType(); 3544 if (!Converter.match(Type)) 3545 // FIXME: PerformContextualImplicitConversion should return ExprError 3546 // itself in this case. 3547 return ExprError(); 3548 3549 QualType Pointee = Type->castAs<PointerType>()->getPointeeType(); 3550 QualType PointeeElem = Context.getBaseElementType(Pointee); 3551 3552 if (Pointee.getAddressSpace() != LangAS::Default && 3553 !getLangOpts().OpenCLCPlusPlus) 3554 return Diag(Ex.get()->getBeginLoc(), 3555 diag::err_address_space_qualified_delete) 3556 << Pointee.getUnqualifiedType() 3557 << Pointee.getQualifiers().getAddressSpaceAttributePrintValue(); 3558 3559 CXXRecordDecl *PointeeRD = nullptr; 3560 if (Pointee->isVoidType() && !isSFINAEContext()) { 3561 // The C++ standard bans deleting a pointer to a non-object type, which 3562 // effectively bans deletion of "void*". However, most compilers support 3563 // this, so we treat it as a warning unless we're in a SFINAE context. 3564 Diag(StartLoc, diag::ext_delete_void_ptr_operand) 3565 << Type << Ex.get()->getSourceRange(); 3566 } else if (Pointee->isFunctionType() || Pointee->isVoidType() || 3567 Pointee->isSizelessType()) { 3568 return ExprError(Diag(StartLoc, diag::err_delete_operand) 3569 << Type << Ex.get()->getSourceRange()); 3570 } else if (!Pointee->isDependentType()) { 3571 // FIXME: This can result in errors if the definition was imported from a 3572 // module but is hidden. 3573 if (!RequireCompleteType(StartLoc, Pointee, 3574 diag::warn_delete_incomplete, Ex.get())) { 3575 if (const RecordType *RT = PointeeElem->getAs<RecordType>()) 3576 PointeeRD = cast<CXXRecordDecl>(RT->getDecl()); 3577 } 3578 } 3579 3580 if (Pointee->isArrayType() && !ArrayForm) { 3581 Diag(StartLoc, diag::warn_delete_array_type) 3582 << Type << Ex.get()->getSourceRange() 3583 << FixItHint::CreateInsertion(getLocForEndOfToken(StartLoc), "[]"); 3584 ArrayForm = true; 3585 } 3586 3587 DeclarationName DeleteName = Context.DeclarationNames.getCXXOperatorName( 3588 ArrayForm ? OO_Array_Delete : OO_Delete); 3589 3590 if (PointeeRD) { 3591 if (!UseGlobal && 3592 FindDeallocationFunction(StartLoc, PointeeRD, DeleteName, 3593 OperatorDelete)) 3594 return ExprError(); 3595 3596 // If we're allocating an array of records, check whether the 3597 // usual operator delete[] has a size_t parameter. 3598 if (ArrayForm) { 3599 // If the user specifically asked to use the global allocator, 3600 // we'll need to do the lookup into the class. 3601 if (UseGlobal) 3602 UsualArrayDeleteWantsSize = 3603 doesUsualArrayDeleteWantSize(*this, StartLoc, PointeeElem); 3604 3605 // Otherwise, the usual operator delete[] should be the 3606 // function we just found. 3607 else if (OperatorDelete && isa<CXXMethodDecl>(OperatorDelete)) 3608 UsualArrayDeleteWantsSize = 3609 UsualDeallocFnInfo(*this, 3610 DeclAccessPair::make(OperatorDelete, AS_public)) 3611 .HasSizeT; 3612 } 3613 3614 if (!PointeeRD->hasIrrelevantDestructor()) 3615 if (CXXDestructorDecl *Dtor = LookupDestructor(PointeeRD)) { 3616 MarkFunctionReferenced(StartLoc, 3617 const_cast<CXXDestructorDecl*>(Dtor)); 3618 if (DiagnoseUseOfDecl(Dtor, StartLoc)) 3619 return ExprError(); 3620 } 3621 3622 CheckVirtualDtorCall(PointeeRD->getDestructor(), StartLoc, 3623 /*IsDelete=*/true, /*CallCanBeVirtual=*/true, 3624 /*WarnOnNonAbstractTypes=*/!ArrayForm, 3625 SourceLocation()); 3626 } 3627 3628 if (!OperatorDelete) { 3629 if (getLangOpts().OpenCLCPlusPlus) { 3630 Diag(StartLoc, diag::err_openclcxx_not_supported) << "default delete"; 3631 return ExprError(); 3632 } 3633 3634 bool IsComplete = isCompleteType(StartLoc, Pointee); 3635 bool CanProvideSize = 3636 IsComplete && (!ArrayForm || UsualArrayDeleteWantsSize || 3637 Pointee.isDestructedType()); 3638 bool Overaligned = hasNewExtendedAlignment(*this, Pointee); 3639 3640 // Look for a global declaration. 3641 OperatorDelete = FindUsualDeallocationFunction(StartLoc, CanProvideSize, 3642 Overaligned, DeleteName); 3643 } 3644 3645 MarkFunctionReferenced(StartLoc, OperatorDelete); 3646 3647 // Check access and ambiguity of destructor if we're going to call it. 3648 // Note that this is required even for a virtual delete. 3649 bool IsVirtualDelete = false; 3650 if (PointeeRD) { 3651 if (CXXDestructorDecl *Dtor = LookupDestructor(PointeeRD)) { 3652 CheckDestructorAccess(Ex.get()->getExprLoc(), Dtor, 3653 PDiag(diag::err_access_dtor) << PointeeElem); 3654 IsVirtualDelete = Dtor->isVirtual(); 3655 } 3656 } 3657 3658 DiagnoseUseOfDecl(OperatorDelete, StartLoc); 3659 3660 // Convert the operand to the type of the first parameter of operator 3661 // delete. This is only necessary if we selected a destroying operator 3662 // delete that we are going to call (non-virtually); converting to void* 3663 // is trivial and left to AST consumers to handle. 3664 QualType ParamType = OperatorDelete->getParamDecl(0)->getType(); 3665 if (!IsVirtualDelete && !ParamType->getPointeeType()->isVoidType()) { 3666 Qualifiers Qs = Pointee.getQualifiers(); 3667 if (Qs.hasCVRQualifiers()) { 3668 // Qualifiers are irrelevant to this conversion; we're only looking 3669 // for access and ambiguity. 3670 Qs.removeCVRQualifiers(); 3671 QualType Unqual = Context.getPointerType( 3672 Context.getQualifiedType(Pointee.getUnqualifiedType(), Qs)); 3673 Ex = ImpCastExprToType(Ex.get(), Unqual, CK_NoOp); 3674 } 3675 Ex = PerformImplicitConversion(Ex.get(), ParamType, AA_Passing); 3676 if (Ex.isInvalid()) 3677 return ExprError(); 3678 } 3679 } 3680 3681 CXXDeleteExpr *Result = new (Context) CXXDeleteExpr( 3682 Context.VoidTy, UseGlobal, ArrayForm, ArrayFormAsWritten, 3683 UsualArrayDeleteWantsSize, OperatorDelete, Ex.get(), StartLoc); 3684 AnalyzeDeleteExprMismatch(Result); 3685 return Result; 3686 } 3687 3688 static bool resolveBuiltinNewDeleteOverload(Sema &S, CallExpr *TheCall, 3689 bool IsDelete, 3690 FunctionDecl *&Operator) { 3691 3692 DeclarationName NewName = S.Context.DeclarationNames.getCXXOperatorName( 3693 IsDelete ? OO_Delete : OO_New); 3694 3695 LookupResult R(S, NewName, TheCall->getBeginLoc(), Sema::LookupOrdinaryName); 3696 S.LookupQualifiedName(R, S.Context.getTranslationUnitDecl()); 3697 assert(!R.empty() && "implicitly declared allocation functions not found"); 3698 assert(!R.isAmbiguous() && "global allocation functions are ambiguous"); 3699 3700 // We do our own custom access checks below. 3701 R.suppressDiagnostics(); 3702 3703 SmallVector<Expr *, 8> Args(TheCall->arg_begin(), TheCall->arg_end()); 3704 OverloadCandidateSet Candidates(R.getNameLoc(), 3705 OverloadCandidateSet::CSK_Normal); 3706 for (LookupResult::iterator FnOvl = R.begin(), FnOvlEnd = R.end(); 3707 FnOvl != FnOvlEnd; ++FnOvl) { 3708 // Even member operator new/delete are implicitly treated as 3709 // static, so don't use AddMemberCandidate. 3710 NamedDecl *D = (*FnOvl)->getUnderlyingDecl(); 3711 3712 if (FunctionTemplateDecl *FnTemplate = dyn_cast<FunctionTemplateDecl>(D)) { 3713 S.AddTemplateOverloadCandidate(FnTemplate, FnOvl.getPair(), 3714 /*ExplicitTemplateArgs=*/nullptr, Args, 3715 Candidates, 3716 /*SuppressUserConversions=*/false); 3717 continue; 3718 } 3719 3720 FunctionDecl *Fn = cast<FunctionDecl>(D); 3721 S.AddOverloadCandidate(Fn, FnOvl.getPair(), Args, Candidates, 3722 /*SuppressUserConversions=*/false); 3723 } 3724 3725 SourceRange Range = TheCall->getSourceRange(); 3726 3727 // Do the resolution. 3728 OverloadCandidateSet::iterator Best; 3729 switch (Candidates.BestViableFunction(S, R.getNameLoc(), Best)) { 3730 case OR_Success: { 3731 // Got one! 3732 FunctionDecl *FnDecl = Best->Function; 3733 assert(R.getNamingClass() == nullptr && 3734 "class members should not be considered"); 3735 3736 if (!FnDecl->isReplaceableGlobalAllocationFunction()) { 3737 S.Diag(R.getNameLoc(), diag::err_builtin_operator_new_delete_not_usual) 3738 << (IsDelete ? 1 : 0) << Range; 3739 S.Diag(FnDecl->getLocation(), diag::note_non_usual_function_declared_here) 3740 << R.getLookupName() << FnDecl->getSourceRange(); 3741 return true; 3742 } 3743 3744 Operator = FnDecl; 3745 return false; 3746 } 3747 3748 case OR_No_Viable_Function: 3749 Candidates.NoteCandidates( 3750 PartialDiagnosticAt(R.getNameLoc(), 3751 S.PDiag(diag::err_ovl_no_viable_function_in_call) 3752 << R.getLookupName() << Range), 3753 S, OCD_AllCandidates, Args); 3754 return true; 3755 3756 case OR_Ambiguous: 3757 Candidates.NoteCandidates( 3758 PartialDiagnosticAt(R.getNameLoc(), 3759 S.PDiag(diag::err_ovl_ambiguous_call) 3760 << R.getLookupName() << Range), 3761 S, OCD_AmbiguousCandidates, Args); 3762 return true; 3763 3764 case OR_Deleted: { 3765 Candidates.NoteCandidates( 3766 PartialDiagnosticAt(R.getNameLoc(), S.PDiag(diag::err_ovl_deleted_call) 3767 << R.getLookupName() << Range), 3768 S, OCD_AllCandidates, Args); 3769 return true; 3770 } 3771 } 3772 llvm_unreachable("Unreachable, bad result from BestViableFunction"); 3773 } 3774 3775 ExprResult 3776 Sema::SemaBuiltinOperatorNewDeleteOverloaded(ExprResult TheCallResult, 3777 bool IsDelete) { 3778 CallExpr *TheCall = cast<CallExpr>(TheCallResult.get()); 3779 if (!getLangOpts().CPlusPlus) { 3780 Diag(TheCall->getExprLoc(), diag::err_builtin_requires_language) 3781 << (IsDelete ? "__builtin_operator_delete" : "__builtin_operator_new") 3782 << "C++"; 3783 return ExprError(); 3784 } 3785 // CodeGen assumes it can find the global new and delete to call, 3786 // so ensure that they are declared. 3787 DeclareGlobalNewDelete(); 3788 3789 FunctionDecl *OperatorNewOrDelete = nullptr; 3790 if (resolveBuiltinNewDeleteOverload(*this, TheCall, IsDelete, 3791 OperatorNewOrDelete)) 3792 return ExprError(); 3793 assert(OperatorNewOrDelete && "should be found"); 3794 3795 DiagnoseUseOfDecl(OperatorNewOrDelete, TheCall->getExprLoc()); 3796 MarkFunctionReferenced(TheCall->getExprLoc(), OperatorNewOrDelete); 3797 3798 TheCall->setType(OperatorNewOrDelete->getReturnType()); 3799 for (unsigned i = 0; i != TheCall->getNumArgs(); ++i) { 3800 QualType ParamTy = OperatorNewOrDelete->getParamDecl(i)->getType(); 3801 InitializedEntity Entity = 3802 InitializedEntity::InitializeParameter(Context, ParamTy, false); 3803 ExprResult Arg = PerformCopyInitialization( 3804 Entity, TheCall->getArg(i)->getBeginLoc(), TheCall->getArg(i)); 3805 if (Arg.isInvalid()) 3806 return ExprError(); 3807 TheCall->setArg(i, Arg.get()); 3808 } 3809 auto Callee = dyn_cast<ImplicitCastExpr>(TheCall->getCallee()); 3810 assert(Callee && Callee->getCastKind() == CK_BuiltinFnToFnPtr && 3811 "Callee expected to be implicit cast to a builtin function pointer"); 3812 Callee->setType(OperatorNewOrDelete->getType()); 3813 3814 return TheCallResult; 3815 } 3816 3817 void Sema::CheckVirtualDtorCall(CXXDestructorDecl *dtor, SourceLocation Loc, 3818 bool IsDelete, bool CallCanBeVirtual, 3819 bool WarnOnNonAbstractTypes, 3820 SourceLocation DtorLoc) { 3821 if (!dtor || dtor->isVirtual() || !CallCanBeVirtual || isUnevaluatedContext()) 3822 return; 3823 3824 // C++ [expr.delete]p3: 3825 // In the first alternative (delete object), if the static type of the 3826 // object to be deleted is different from its dynamic type, the static 3827 // type shall be a base class of the dynamic type of the object to be 3828 // deleted and the static type shall have a virtual destructor or the 3829 // behavior is undefined. 3830 // 3831 const CXXRecordDecl *PointeeRD = dtor->getParent(); 3832 // Note: a final class cannot be derived from, no issue there 3833 if (!PointeeRD->isPolymorphic() || PointeeRD->hasAttr<FinalAttr>()) 3834 return; 3835 3836 // If the superclass is in a system header, there's nothing that can be done. 3837 // The `delete` (where we emit the warning) can be in a system header, 3838 // what matters for this warning is where the deleted type is defined. 3839 if (getSourceManager().isInSystemHeader(PointeeRD->getLocation())) 3840 return; 3841 3842 QualType ClassType = dtor->getThisType()->getPointeeType(); 3843 if (PointeeRD->isAbstract()) { 3844 // If the class is abstract, we warn by default, because we're 3845 // sure the code has undefined behavior. 3846 Diag(Loc, diag::warn_delete_abstract_non_virtual_dtor) << (IsDelete ? 0 : 1) 3847 << ClassType; 3848 } else if (WarnOnNonAbstractTypes) { 3849 // Otherwise, if this is not an array delete, it's a bit suspect, 3850 // but not necessarily wrong. 3851 Diag(Loc, diag::warn_delete_non_virtual_dtor) << (IsDelete ? 0 : 1) 3852 << ClassType; 3853 } 3854 if (!IsDelete) { 3855 std::string TypeStr; 3856 ClassType.getAsStringInternal(TypeStr, getPrintingPolicy()); 3857 Diag(DtorLoc, diag::note_delete_non_virtual) 3858 << FixItHint::CreateInsertion(DtorLoc, TypeStr + "::"); 3859 } 3860 } 3861 3862 Sema::ConditionResult Sema::ActOnConditionVariable(Decl *ConditionVar, 3863 SourceLocation StmtLoc, 3864 ConditionKind CK) { 3865 ExprResult E = 3866 CheckConditionVariable(cast<VarDecl>(ConditionVar), StmtLoc, CK); 3867 if (E.isInvalid()) 3868 return ConditionError(); 3869 return ConditionResult(*this, ConditionVar, MakeFullExpr(E.get(), StmtLoc), 3870 CK == ConditionKind::ConstexprIf); 3871 } 3872 3873 /// Check the use of the given variable as a C++ condition in an if, 3874 /// while, do-while, or switch statement. 3875 ExprResult Sema::CheckConditionVariable(VarDecl *ConditionVar, 3876 SourceLocation StmtLoc, 3877 ConditionKind CK) { 3878 if (ConditionVar->isInvalidDecl()) 3879 return ExprError(); 3880 3881 QualType T = ConditionVar->getType(); 3882 3883 // C++ [stmt.select]p2: 3884 // The declarator shall not specify a function or an array. 3885 if (T->isFunctionType()) 3886 return ExprError(Diag(ConditionVar->getLocation(), 3887 diag::err_invalid_use_of_function_type) 3888 << ConditionVar->getSourceRange()); 3889 else if (T->isArrayType()) 3890 return ExprError(Diag(ConditionVar->getLocation(), 3891 diag::err_invalid_use_of_array_type) 3892 << ConditionVar->getSourceRange()); 3893 3894 ExprResult Condition = BuildDeclRefExpr( 3895 ConditionVar, ConditionVar->getType().getNonReferenceType(), VK_LValue, 3896 ConditionVar->getLocation()); 3897 3898 switch (CK) { 3899 case ConditionKind::Boolean: 3900 return CheckBooleanCondition(StmtLoc, Condition.get()); 3901 3902 case ConditionKind::ConstexprIf: 3903 return CheckBooleanCondition(StmtLoc, Condition.get(), true); 3904 3905 case ConditionKind::Switch: 3906 return CheckSwitchCondition(StmtLoc, Condition.get()); 3907 } 3908 3909 llvm_unreachable("unexpected condition kind"); 3910 } 3911 3912 /// CheckCXXBooleanCondition - Returns true if a conversion to bool is invalid. 3913 ExprResult Sema::CheckCXXBooleanCondition(Expr *CondExpr, bool IsConstexpr) { 3914 // C++11 6.4p4: 3915 // The value of a condition that is an initialized declaration in a statement 3916 // other than a switch statement is the value of the declared variable 3917 // implicitly converted to type bool. If that conversion is ill-formed, the 3918 // program is ill-formed. 3919 // The value of a condition that is an expression is the value of the 3920 // expression, implicitly converted to bool. 3921 // 3922 // C++2b 8.5.2p2 3923 // If the if statement is of the form if constexpr, the value of the condition 3924 // is contextually converted to bool and the converted expression shall be 3925 // a constant expression. 3926 // 3927 3928 ExprResult E = PerformContextuallyConvertToBool(CondExpr); 3929 if (!IsConstexpr || E.isInvalid() || E.get()->isValueDependent()) 3930 return E; 3931 3932 // FIXME: Return this value to the caller so they don't need to recompute it. 3933 llvm::APSInt Cond; 3934 E = VerifyIntegerConstantExpression( 3935 E.get(), &Cond, 3936 diag::err_constexpr_if_condition_expression_is_not_constant); 3937 return E; 3938 } 3939 3940 /// Helper function to determine whether this is the (deprecated) C++ 3941 /// conversion from a string literal to a pointer to non-const char or 3942 /// non-const wchar_t (for narrow and wide string literals, 3943 /// respectively). 3944 bool 3945 Sema::IsStringLiteralToNonConstPointerConversion(Expr *From, QualType ToType) { 3946 // Look inside the implicit cast, if it exists. 3947 if (ImplicitCastExpr *Cast = dyn_cast<ImplicitCastExpr>(From)) 3948 From = Cast->getSubExpr(); 3949 3950 // A string literal (2.13.4) that is not a wide string literal can 3951 // be converted to an rvalue of type "pointer to char"; a wide 3952 // string literal can be converted to an rvalue of type "pointer 3953 // to wchar_t" (C++ 4.2p2). 3954 if (StringLiteral *StrLit = dyn_cast<StringLiteral>(From->IgnoreParens())) 3955 if (const PointerType *ToPtrType = ToType->getAs<PointerType>()) 3956 if (const BuiltinType *ToPointeeType 3957 = ToPtrType->getPointeeType()->getAs<BuiltinType>()) { 3958 // This conversion is considered only when there is an 3959 // explicit appropriate pointer target type (C++ 4.2p2). 3960 if (!ToPtrType->getPointeeType().hasQualifiers()) { 3961 switch (StrLit->getKind()) { 3962 case StringLiteral::UTF8: 3963 case StringLiteral::UTF16: 3964 case StringLiteral::UTF32: 3965 // We don't allow UTF literals to be implicitly converted 3966 break; 3967 case StringLiteral::Ascii: 3968 return (ToPointeeType->getKind() == BuiltinType::Char_U || 3969 ToPointeeType->getKind() == BuiltinType::Char_S); 3970 case StringLiteral::Wide: 3971 return Context.typesAreCompatible(Context.getWideCharType(), 3972 QualType(ToPointeeType, 0)); 3973 } 3974 } 3975 } 3976 3977 return false; 3978 } 3979 3980 static ExprResult BuildCXXCastArgument(Sema &S, 3981 SourceLocation CastLoc, 3982 QualType Ty, 3983 CastKind Kind, 3984 CXXMethodDecl *Method, 3985 DeclAccessPair FoundDecl, 3986 bool HadMultipleCandidates, 3987 Expr *From) { 3988 switch (Kind) { 3989 default: llvm_unreachable("Unhandled cast kind!"); 3990 case CK_ConstructorConversion: { 3991 CXXConstructorDecl *Constructor = cast<CXXConstructorDecl>(Method); 3992 SmallVector<Expr*, 8> ConstructorArgs; 3993 3994 if (S.RequireNonAbstractType(CastLoc, Ty, 3995 diag::err_allocation_of_abstract_type)) 3996 return ExprError(); 3997 3998 if (S.CompleteConstructorCall(Constructor, Ty, From, CastLoc, 3999 ConstructorArgs)) 4000 return ExprError(); 4001 4002 S.CheckConstructorAccess(CastLoc, Constructor, FoundDecl, 4003 InitializedEntity::InitializeTemporary(Ty)); 4004 if (S.DiagnoseUseOfDecl(Method, CastLoc)) 4005 return ExprError(); 4006 4007 ExprResult Result = S.BuildCXXConstructExpr( 4008 CastLoc, Ty, FoundDecl, cast<CXXConstructorDecl>(Method), 4009 ConstructorArgs, HadMultipleCandidates, 4010 /*ListInit*/ false, /*StdInitListInit*/ false, /*ZeroInit*/ false, 4011 CXXConstructExpr::CK_Complete, SourceRange()); 4012 if (Result.isInvalid()) 4013 return ExprError(); 4014 4015 return S.MaybeBindToTemporary(Result.getAs<Expr>()); 4016 } 4017 4018 case CK_UserDefinedConversion: { 4019 assert(!From->getType()->isPointerType() && "Arg can't have pointer type!"); 4020 4021 S.CheckMemberOperatorAccess(CastLoc, From, /*arg*/ nullptr, FoundDecl); 4022 if (S.DiagnoseUseOfDecl(Method, CastLoc)) 4023 return ExprError(); 4024 4025 // Create an implicit call expr that calls it. 4026 CXXConversionDecl *Conv = cast<CXXConversionDecl>(Method); 4027 ExprResult Result = S.BuildCXXMemberCallExpr(From, FoundDecl, Conv, 4028 HadMultipleCandidates); 4029 if (Result.isInvalid()) 4030 return ExprError(); 4031 // Record usage of conversion in an implicit cast. 4032 Result = ImplicitCastExpr::Create(S.Context, Result.get()->getType(), 4033 CK_UserDefinedConversion, Result.get(), 4034 nullptr, Result.get()->getValueKind(), 4035 S.CurFPFeatureOverrides()); 4036 4037 return S.MaybeBindToTemporary(Result.get()); 4038 } 4039 } 4040 } 4041 4042 /// PerformImplicitConversion - Perform an implicit conversion of the 4043 /// expression From to the type ToType using the pre-computed implicit 4044 /// conversion sequence ICS. Returns the converted 4045 /// expression. Action is the kind of conversion we're performing, 4046 /// used in the error message. 4047 ExprResult 4048 Sema::PerformImplicitConversion(Expr *From, QualType ToType, 4049 const ImplicitConversionSequence &ICS, 4050 AssignmentAction Action, 4051 CheckedConversionKind CCK) { 4052 // C++ [over.match.oper]p7: [...] operands of class type are converted [...] 4053 if (CCK == CCK_ForBuiltinOverloadedOp && !From->getType()->isRecordType()) 4054 return From; 4055 4056 switch (ICS.getKind()) { 4057 case ImplicitConversionSequence::StandardConversion: { 4058 ExprResult Res = PerformImplicitConversion(From, ToType, ICS.Standard, 4059 Action, CCK); 4060 if (Res.isInvalid()) 4061 return ExprError(); 4062 From = Res.get(); 4063 break; 4064 } 4065 4066 case ImplicitConversionSequence::UserDefinedConversion: { 4067 4068 FunctionDecl *FD = ICS.UserDefined.ConversionFunction; 4069 CastKind CastKind; 4070 QualType BeforeToType; 4071 assert(FD && "no conversion function for user-defined conversion seq"); 4072 if (const CXXConversionDecl *Conv = dyn_cast<CXXConversionDecl>(FD)) { 4073 CastKind = CK_UserDefinedConversion; 4074 4075 // If the user-defined conversion is specified by a conversion function, 4076 // the initial standard conversion sequence converts the source type to 4077 // the implicit object parameter of the conversion function. 4078 BeforeToType = Context.getTagDeclType(Conv->getParent()); 4079 } else { 4080 const CXXConstructorDecl *Ctor = cast<CXXConstructorDecl>(FD); 4081 CastKind = CK_ConstructorConversion; 4082 // Do no conversion if dealing with ... for the first conversion. 4083 if (!ICS.UserDefined.EllipsisConversion) { 4084 // If the user-defined conversion is specified by a constructor, the 4085 // initial standard conversion sequence converts the source type to 4086 // the type required by the argument of the constructor 4087 BeforeToType = Ctor->getParamDecl(0)->getType().getNonReferenceType(); 4088 } 4089 } 4090 // Watch out for ellipsis conversion. 4091 if (!ICS.UserDefined.EllipsisConversion) { 4092 ExprResult Res = 4093 PerformImplicitConversion(From, BeforeToType, 4094 ICS.UserDefined.Before, AA_Converting, 4095 CCK); 4096 if (Res.isInvalid()) 4097 return ExprError(); 4098 From = Res.get(); 4099 } 4100 4101 ExprResult CastArg = BuildCXXCastArgument( 4102 *this, From->getBeginLoc(), ToType.getNonReferenceType(), CastKind, 4103 cast<CXXMethodDecl>(FD), ICS.UserDefined.FoundConversionFunction, 4104 ICS.UserDefined.HadMultipleCandidates, From); 4105 4106 if (CastArg.isInvalid()) 4107 return ExprError(); 4108 4109 From = CastArg.get(); 4110 4111 // C++ [over.match.oper]p7: 4112 // [...] the second standard conversion sequence of a user-defined 4113 // conversion sequence is not applied. 4114 if (CCK == CCK_ForBuiltinOverloadedOp) 4115 return From; 4116 4117 return PerformImplicitConversion(From, ToType, ICS.UserDefined.After, 4118 AA_Converting, CCK); 4119 } 4120 4121 case ImplicitConversionSequence::AmbiguousConversion: 4122 ICS.DiagnoseAmbiguousConversion(*this, From->getExprLoc(), 4123 PDiag(diag::err_typecheck_ambiguous_condition) 4124 << From->getSourceRange()); 4125 return ExprError(); 4126 4127 case ImplicitConversionSequence::EllipsisConversion: 4128 llvm_unreachable("Cannot perform an ellipsis conversion"); 4129 4130 case ImplicitConversionSequence::BadConversion: 4131 Sema::AssignConvertType ConvTy = 4132 CheckAssignmentConstraints(From->getExprLoc(), ToType, From->getType()); 4133 bool Diagnosed = DiagnoseAssignmentResult( 4134 ConvTy == Compatible ? Incompatible : ConvTy, From->getExprLoc(), 4135 ToType, From->getType(), From, Action); 4136 assert(Diagnosed && "failed to diagnose bad conversion"); (void)Diagnosed; 4137 return ExprError(); 4138 } 4139 4140 // Everything went well. 4141 return From; 4142 } 4143 4144 /// PerformImplicitConversion - Perform an implicit conversion of the 4145 /// expression From to the type ToType by following the standard 4146 /// conversion sequence SCS. Returns the converted 4147 /// expression. Flavor is the context in which we're performing this 4148 /// conversion, for use in error messages. 4149 ExprResult 4150 Sema::PerformImplicitConversion(Expr *From, QualType ToType, 4151 const StandardConversionSequence& SCS, 4152 AssignmentAction Action, 4153 CheckedConversionKind CCK) { 4154 bool CStyle = (CCK == CCK_CStyleCast || CCK == CCK_FunctionalCast); 4155 4156 // Overall FIXME: we are recomputing too many types here and doing far too 4157 // much extra work. What this means is that we need to keep track of more 4158 // information that is computed when we try the implicit conversion initially, 4159 // so that we don't need to recompute anything here. 4160 QualType FromType = From->getType(); 4161 4162 if (SCS.CopyConstructor) { 4163 // FIXME: When can ToType be a reference type? 4164 assert(!ToType->isReferenceType()); 4165 if (SCS.Second == ICK_Derived_To_Base) { 4166 SmallVector<Expr*, 8> ConstructorArgs; 4167 if (CompleteConstructorCall( 4168 cast<CXXConstructorDecl>(SCS.CopyConstructor), ToType, From, 4169 /*FIXME:ConstructLoc*/ SourceLocation(), ConstructorArgs)) 4170 return ExprError(); 4171 return BuildCXXConstructExpr( 4172 /*FIXME:ConstructLoc*/ SourceLocation(), ToType, 4173 SCS.FoundCopyConstructor, SCS.CopyConstructor, 4174 ConstructorArgs, /*HadMultipleCandidates*/ false, 4175 /*ListInit*/ false, /*StdInitListInit*/ false, /*ZeroInit*/ false, 4176 CXXConstructExpr::CK_Complete, SourceRange()); 4177 } 4178 return BuildCXXConstructExpr( 4179 /*FIXME:ConstructLoc*/ SourceLocation(), ToType, 4180 SCS.FoundCopyConstructor, SCS.CopyConstructor, 4181 From, /*HadMultipleCandidates*/ false, 4182 /*ListInit*/ false, /*StdInitListInit*/ false, /*ZeroInit*/ false, 4183 CXXConstructExpr::CK_Complete, SourceRange()); 4184 } 4185 4186 // Resolve overloaded function references. 4187 if (Context.hasSameType(FromType, Context.OverloadTy)) { 4188 DeclAccessPair Found; 4189 FunctionDecl *Fn = ResolveAddressOfOverloadedFunction(From, ToType, 4190 true, Found); 4191 if (!Fn) 4192 return ExprError(); 4193 4194 if (DiagnoseUseOfDecl(Fn, From->getBeginLoc())) 4195 return ExprError(); 4196 4197 From = FixOverloadedFunctionReference(From, Found, Fn); 4198 FromType = From->getType(); 4199 } 4200 4201 // If we're converting to an atomic type, first convert to the corresponding 4202 // non-atomic type. 4203 QualType ToAtomicType; 4204 if (const AtomicType *ToAtomic = ToType->getAs<AtomicType>()) { 4205 ToAtomicType = ToType; 4206 ToType = ToAtomic->getValueType(); 4207 } 4208 4209 QualType InitialFromType = FromType; 4210 // Perform the first implicit conversion. 4211 switch (SCS.First) { 4212 case ICK_Identity: 4213 if (const AtomicType *FromAtomic = FromType->getAs<AtomicType>()) { 4214 FromType = FromAtomic->getValueType().getUnqualifiedType(); 4215 From = ImplicitCastExpr::Create(Context, FromType, CK_AtomicToNonAtomic, 4216 From, /*BasePath=*/nullptr, VK_PRValue, 4217 FPOptionsOverride()); 4218 } 4219 break; 4220 4221 case ICK_Lvalue_To_Rvalue: { 4222 assert(From->getObjectKind() != OK_ObjCProperty); 4223 ExprResult FromRes = DefaultLvalueConversion(From); 4224 if (FromRes.isInvalid()) 4225 return ExprError(); 4226 4227 From = FromRes.get(); 4228 FromType = From->getType(); 4229 break; 4230 } 4231 4232 case ICK_Array_To_Pointer: 4233 FromType = Context.getArrayDecayedType(FromType); 4234 From = ImpCastExprToType(From, FromType, CK_ArrayToPointerDecay, VK_PRValue, 4235 /*BasePath=*/nullptr, CCK) 4236 .get(); 4237 break; 4238 4239 case ICK_Function_To_Pointer: 4240 FromType = Context.getPointerType(FromType); 4241 From = ImpCastExprToType(From, FromType, CK_FunctionToPointerDecay, 4242 VK_PRValue, /*BasePath=*/nullptr, CCK) 4243 .get(); 4244 break; 4245 4246 default: 4247 llvm_unreachable("Improper first standard conversion"); 4248 } 4249 4250 // Perform the second implicit conversion 4251 switch (SCS.Second) { 4252 case ICK_Identity: 4253 // C++ [except.spec]p5: 4254 // [For] assignment to and initialization of pointers to functions, 4255 // pointers to member functions, and references to functions: the 4256 // target entity shall allow at least the exceptions allowed by the 4257 // source value in the assignment or initialization. 4258 switch (Action) { 4259 case AA_Assigning: 4260 case AA_Initializing: 4261 // Note, function argument passing and returning are initialization. 4262 case AA_Passing: 4263 case AA_Returning: 4264 case AA_Sending: 4265 case AA_Passing_CFAudited: 4266 if (CheckExceptionSpecCompatibility(From, ToType)) 4267 return ExprError(); 4268 break; 4269 4270 case AA_Casting: 4271 case AA_Converting: 4272 // Casts and implicit conversions are not initialization, so are not 4273 // checked for exception specification mismatches. 4274 break; 4275 } 4276 // Nothing else to do. 4277 break; 4278 4279 case ICK_Integral_Promotion: 4280 case ICK_Integral_Conversion: 4281 if (ToType->isBooleanType()) { 4282 assert(FromType->castAs<EnumType>()->getDecl()->isFixed() && 4283 SCS.Second == ICK_Integral_Promotion && 4284 "only enums with fixed underlying type can promote to bool"); 4285 From = ImpCastExprToType(From, ToType, CK_IntegralToBoolean, VK_PRValue, 4286 /*BasePath=*/nullptr, CCK) 4287 .get(); 4288 } else { 4289 From = ImpCastExprToType(From, ToType, CK_IntegralCast, VK_PRValue, 4290 /*BasePath=*/nullptr, CCK) 4291 .get(); 4292 } 4293 break; 4294 4295 case ICK_Floating_Promotion: 4296 case ICK_Floating_Conversion: 4297 From = ImpCastExprToType(From, ToType, CK_FloatingCast, VK_PRValue, 4298 /*BasePath=*/nullptr, CCK) 4299 .get(); 4300 break; 4301 4302 case ICK_Complex_Promotion: 4303 case ICK_Complex_Conversion: { 4304 QualType FromEl = From->getType()->castAs<ComplexType>()->getElementType(); 4305 QualType ToEl = ToType->castAs<ComplexType>()->getElementType(); 4306 CastKind CK; 4307 if (FromEl->isRealFloatingType()) { 4308 if (ToEl->isRealFloatingType()) 4309 CK = CK_FloatingComplexCast; 4310 else 4311 CK = CK_FloatingComplexToIntegralComplex; 4312 } else if (ToEl->isRealFloatingType()) { 4313 CK = CK_IntegralComplexToFloatingComplex; 4314 } else { 4315 CK = CK_IntegralComplexCast; 4316 } 4317 From = ImpCastExprToType(From, ToType, CK, VK_PRValue, /*BasePath=*/nullptr, 4318 CCK) 4319 .get(); 4320 break; 4321 } 4322 4323 case ICK_Floating_Integral: 4324 if (ToType->isRealFloatingType()) 4325 From = ImpCastExprToType(From, ToType, CK_IntegralToFloating, VK_PRValue, 4326 /*BasePath=*/nullptr, CCK) 4327 .get(); 4328 else 4329 From = ImpCastExprToType(From, ToType, CK_FloatingToIntegral, VK_PRValue, 4330 /*BasePath=*/nullptr, CCK) 4331 .get(); 4332 break; 4333 4334 case ICK_Compatible_Conversion: 4335 From = ImpCastExprToType(From, ToType, CK_NoOp, From->getValueKind(), 4336 /*BasePath=*/nullptr, CCK).get(); 4337 break; 4338 4339 case ICK_Writeback_Conversion: 4340 case ICK_Pointer_Conversion: { 4341 if (SCS.IncompatibleObjC && Action != AA_Casting) { 4342 // Diagnose incompatible Objective-C conversions 4343 if (Action == AA_Initializing || Action == AA_Assigning) 4344 Diag(From->getBeginLoc(), 4345 diag::ext_typecheck_convert_incompatible_pointer) 4346 << ToType << From->getType() << Action << From->getSourceRange() 4347 << 0; 4348 else 4349 Diag(From->getBeginLoc(), 4350 diag::ext_typecheck_convert_incompatible_pointer) 4351 << From->getType() << ToType << Action << From->getSourceRange() 4352 << 0; 4353 4354 if (From->getType()->isObjCObjectPointerType() && 4355 ToType->isObjCObjectPointerType()) 4356 EmitRelatedResultTypeNote(From); 4357 } else if (getLangOpts().allowsNonTrivialObjCLifetimeQualifiers() && 4358 !CheckObjCARCUnavailableWeakConversion(ToType, 4359 From->getType())) { 4360 if (Action == AA_Initializing) 4361 Diag(From->getBeginLoc(), diag::err_arc_weak_unavailable_assign); 4362 else 4363 Diag(From->getBeginLoc(), diag::err_arc_convesion_of_weak_unavailable) 4364 << (Action == AA_Casting) << From->getType() << ToType 4365 << From->getSourceRange(); 4366 } 4367 4368 // Defer address space conversion to the third conversion. 4369 QualType FromPteeType = From->getType()->getPointeeType(); 4370 QualType ToPteeType = ToType->getPointeeType(); 4371 QualType NewToType = ToType; 4372 if (!FromPteeType.isNull() && !ToPteeType.isNull() && 4373 FromPteeType.getAddressSpace() != ToPteeType.getAddressSpace()) { 4374 NewToType = Context.removeAddrSpaceQualType(ToPteeType); 4375 NewToType = Context.getAddrSpaceQualType(NewToType, 4376 FromPteeType.getAddressSpace()); 4377 if (ToType->isObjCObjectPointerType()) 4378 NewToType = Context.getObjCObjectPointerType(NewToType); 4379 else if (ToType->isBlockPointerType()) 4380 NewToType = Context.getBlockPointerType(NewToType); 4381 else 4382 NewToType = Context.getPointerType(NewToType); 4383 } 4384 4385 CastKind Kind; 4386 CXXCastPath BasePath; 4387 if (CheckPointerConversion(From, NewToType, Kind, BasePath, CStyle)) 4388 return ExprError(); 4389 4390 // Make sure we extend blocks if necessary. 4391 // FIXME: doing this here is really ugly. 4392 if (Kind == CK_BlockPointerToObjCPointerCast) { 4393 ExprResult E = From; 4394 (void) PrepareCastToObjCObjectPointer(E); 4395 From = E.get(); 4396 } 4397 if (getLangOpts().allowsNonTrivialObjCLifetimeQualifiers()) 4398 CheckObjCConversion(SourceRange(), NewToType, From, CCK); 4399 From = ImpCastExprToType(From, NewToType, Kind, VK_PRValue, &BasePath, CCK) 4400 .get(); 4401 break; 4402 } 4403 4404 case ICK_Pointer_Member: { 4405 CastKind Kind; 4406 CXXCastPath BasePath; 4407 if (CheckMemberPointerConversion(From, ToType, Kind, BasePath, CStyle)) 4408 return ExprError(); 4409 if (CheckExceptionSpecCompatibility(From, ToType)) 4410 return ExprError(); 4411 4412 // We may not have been able to figure out what this member pointer resolved 4413 // to up until this exact point. Attempt to lock-in it's inheritance model. 4414 if (Context.getTargetInfo().getCXXABI().isMicrosoft()) { 4415 (void)isCompleteType(From->getExprLoc(), From->getType()); 4416 (void)isCompleteType(From->getExprLoc(), ToType); 4417 } 4418 4419 From = 4420 ImpCastExprToType(From, ToType, Kind, VK_PRValue, &BasePath, CCK).get(); 4421 break; 4422 } 4423 4424 case ICK_Boolean_Conversion: 4425 // Perform half-to-boolean conversion via float. 4426 if (From->getType()->isHalfType()) { 4427 From = ImpCastExprToType(From, Context.FloatTy, CK_FloatingCast).get(); 4428 FromType = Context.FloatTy; 4429 } 4430 4431 From = ImpCastExprToType(From, Context.BoolTy, 4432 ScalarTypeToBooleanCastKind(FromType), VK_PRValue, 4433 /*BasePath=*/nullptr, CCK) 4434 .get(); 4435 break; 4436 4437 case ICK_Derived_To_Base: { 4438 CXXCastPath BasePath; 4439 if (CheckDerivedToBaseConversion( 4440 From->getType(), ToType.getNonReferenceType(), From->getBeginLoc(), 4441 From->getSourceRange(), &BasePath, CStyle)) 4442 return ExprError(); 4443 4444 From = ImpCastExprToType(From, ToType.getNonReferenceType(), 4445 CK_DerivedToBase, From->getValueKind(), 4446 &BasePath, CCK).get(); 4447 break; 4448 } 4449 4450 case ICK_Vector_Conversion: 4451 From = ImpCastExprToType(From, ToType, CK_BitCast, VK_PRValue, 4452 /*BasePath=*/nullptr, CCK) 4453 .get(); 4454 break; 4455 4456 case ICK_SVE_Vector_Conversion: 4457 From = ImpCastExprToType(From, ToType, CK_BitCast, VK_PRValue, 4458 /*BasePath=*/nullptr, CCK) 4459 .get(); 4460 break; 4461 4462 case ICK_Vector_Splat: { 4463 // Vector splat from any arithmetic type to a vector. 4464 Expr *Elem = prepareVectorSplat(ToType, From).get(); 4465 From = ImpCastExprToType(Elem, ToType, CK_VectorSplat, VK_PRValue, 4466 /*BasePath=*/nullptr, CCK) 4467 .get(); 4468 break; 4469 } 4470 4471 case ICK_Complex_Real: 4472 // Case 1. x -> _Complex y 4473 if (const ComplexType *ToComplex = ToType->getAs<ComplexType>()) { 4474 QualType ElType = ToComplex->getElementType(); 4475 bool isFloatingComplex = ElType->isRealFloatingType(); 4476 4477 // x -> y 4478 if (Context.hasSameUnqualifiedType(ElType, From->getType())) { 4479 // do nothing 4480 } else if (From->getType()->isRealFloatingType()) { 4481 From = ImpCastExprToType(From, ElType, 4482 isFloatingComplex ? CK_FloatingCast : CK_FloatingToIntegral).get(); 4483 } else { 4484 assert(From->getType()->isIntegerType()); 4485 From = ImpCastExprToType(From, ElType, 4486 isFloatingComplex ? CK_IntegralToFloating : CK_IntegralCast).get(); 4487 } 4488 // y -> _Complex y 4489 From = ImpCastExprToType(From, ToType, 4490 isFloatingComplex ? CK_FloatingRealToComplex 4491 : CK_IntegralRealToComplex).get(); 4492 4493 // Case 2. _Complex x -> y 4494 } else { 4495 auto *FromComplex = From->getType()->castAs<ComplexType>(); 4496 QualType ElType = FromComplex->getElementType(); 4497 bool isFloatingComplex = ElType->isRealFloatingType(); 4498 4499 // _Complex x -> x 4500 From = ImpCastExprToType(From, ElType, 4501 isFloatingComplex ? CK_FloatingComplexToReal 4502 : CK_IntegralComplexToReal, 4503 VK_PRValue, /*BasePath=*/nullptr, CCK) 4504 .get(); 4505 4506 // x -> y 4507 if (Context.hasSameUnqualifiedType(ElType, ToType)) { 4508 // do nothing 4509 } else if (ToType->isRealFloatingType()) { 4510 From = ImpCastExprToType(From, ToType, 4511 isFloatingComplex ? CK_FloatingCast 4512 : CK_IntegralToFloating, 4513 VK_PRValue, /*BasePath=*/nullptr, CCK) 4514 .get(); 4515 } else { 4516 assert(ToType->isIntegerType()); 4517 From = ImpCastExprToType(From, ToType, 4518 isFloatingComplex ? CK_FloatingToIntegral 4519 : CK_IntegralCast, 4520 VK_PRValue, /*BasePath=*/nullptr, CCK) 4521 .get(); 4522 } 4523 } 4524 break; 4525 4526 case ICK_Block_Pointer_Conversion: { 4527 LangAS AddrSpaceL = 4528 ToType->castAs<BlockPointerType>()->getPointeeType().getAddressSpace(); 4529 LangAS AddrSpaceR = 4530 FromType->castAs<BlockPointerType>()->getPointeeType().getAddressSpace(); 4531 assert(Qualifiers::isAddressSpaceSupersetOf(AddrSpaceL, AddrSpaceR) && 4532 "Invalid cast"); 4533 CastKind Kind = 4534 AddrSpaceL != AddrSpaceR ? CK_AddressSpaceConversion : CK_BitCast; 4535 From = ImpCastExprToType(From, ToType.getUnqualifiedType(), Kind, 4536 VK_PRValue, /*BasePath=*/nullptr, CCK) 4537 .get(); 4538 break; 4539 } 4540 4541 case ICK_TransparentUnionConversion: { 4542 ExprResult FromRes = From; 4543 Sema::AssignConvertType ConvTy = 4544 CheckTransparentUnionArgumentConstraints(ToType, FromRes); 4545 if (FromRes.isInvalid()) 4546 return ExprError(); 4547 From = FromRes.get(); 4548 assert ((ConvTy == Sema::Compatible) && 4549 "Improper transparent union conversion"); 4550 (void)ConvTy; 4551 break; 4552 } 4553 4554 case ICK_Zero_Event_Conversion: 4555 case ICK_Zero_Queue_Conversion: 4556 From = ImpCastExprToType(From, ToType, 4557 CK_ZeroToOCLOpaqueType, 4558 From->getValueKind()).get(); 4559 break; 4560 4561 case ICK_Lvalue_To_Rvalue: 4562 case ICK_Array_To_Pointer: 4563 case ICK_Function_To_Pointer: 4564 case ICK_Function_Conversion: 4565 case ICK_Qualification: 4566 case ICK_Num_Conversion_Kinds: 4567 case ICK_C_Only_Conversion: 4568 case ICK_Incompatible_Pointer_Conversion: 4569 llvm_unreachable("Improper second standard conversion"); 4570 } 4571 4572 switch (SCS.Third) { 4573 case ICK_Identity: 4574 // Nothing to do. 4575 break; 4576 4577 case ICK_Function_Conversion: 4578 // If both sides are functions (or pointers/references to them), there could 4579 // be incompatible exception declarations. 4580 if (CheckExceptionSpecCompatibility(From, ToType)) 4581 return ExprError(); 4582 4583 From = ImpCastExprToType(From, ToType, CK_NoOp, VK_PRValue, 4584 /*BasePath=*/nullptr, CCK) 4585 .get(); 4586 break; 4587 4588 case ICK_Qualification: { 4589 ExprValueKind VK = From->getValueKind(); 4590 CastKind CK = CK_NoOp; 4591 4592 if (ToType->isReferenceType() && 4593 ToType->getPointeeType().getAddressSpace() != 4594 From->getType().getAddressSpace()) 4595 CK = CK_AddressSpaceConversion; 4596 4597 if (ToType->isPointerType() && 4598 ToType->getPointeeType().getAddressSpace() != 4599 From->getType()->getPointeeType().getAddressSpace()) 4600 CK = CK_AddressSpaceConversion; 4601 4602 From = ImpCastExprToType(From, ToType.getNonLValueExprType(Context), CK, VK, 4603 /*BasePath=*/nullptr, CCK) 4604 .get(); 4605 4606 if (SCS.DeprecatedStringLiteralToCharPtr && 4607 !getLangOpts().WritableStrings) { 4608 Diag(From->getBeginLoc(), 4609 getLangOpts().CPlusPlus11 4610 ? diag::ext_deprecated_string_literal_conversion 4611 : diag::warn_deprecated_string_literal_conversion) 4612 << ToType.getNonReferenceType(); 4613 } 4614 4615 break; 4616 } 4617 4618 default: 4619 llvm_unreachable("Improper third standard conversion"); 4620 } 4621 4622 // If this conversion sequence involved a scalar -> atomic conversion, perform 4623 // that conversion now. 4624 if (!ToAtomicType.isNull()) { 4625 assert(Context.hasSameType( 4626 ToAtomicType->castAs<AtomicType>()->getValueType(), From->getType())); 4627 From = ImpCastExprToType(From, ToAtomicType, CK_NonAtomicToAtomic, 4628 VK_PRValue, nullptr, CCK) 4629 .get(); 4630 } 4631 4632 // Materialize a temporary if we're implicitly converting to a reference 4633 // type. This is not required by the C++ rules but is necessary to maintain 4634 // AST invariants. 4635 if (ToType->isReferenceType() && From->isPRValue()) { 4636 ExprResult Res = TemporaryMaterializationConversion(From); 4637 if (Res.isInvalid()) 4638 return ExprError(); 4639 From = Res.get(); 4640 } 4641 4642 // If this conversion sequence succeeded and involved implicitly converting a 4643 // _Nullable type to a _Nonnull one, complain. 4644 if (!isCast(CCK)) 4645 diagnoseNullableToNonnullConversion(ToType, InitialFromType, 4646 From->getBeginLoc()); 4647 4648 return From; 4649 } 4650 4651 /// Check the completeness of a type in a unary type trait. 4652 /// 4653 /// If the particular type trait requires a complete type, tries to complete 4654 /// it. If completing the type fails, a diagnostic is emitted and false 4655 /// returned. If completing the type succeeds or no completion was required, 4656 /// returns true. 4657 static bool CheckUnaryTypeTraitTypeCompleteness(Sema &S, TypeTrait UTT, 4658 SourceLocation Loc, 4659 QualType ArgTy) { 4660 // C++0x [meta.unary.prop]p3: 4661 // For all of the class templates X declared in this Clause, instantiating 4662 // that template with a template argument that is a class template 4663 // specialization may result in the implicit instantiation of the template 4664 // argument if and only if the semantics of X require that the argument 4665 // must be a complete type. 4666 // We apply this rule to all the type trait expressions used to implement 4667 // these class templates. We also try to follow any GCC documented behavior 4668 // in these expressions to ensure portability of standard libraries. 4669 switch (UTT) { 4670 default: llvm_unreachable("not a UTT"); 4671 // is_complete_type somewhat obviously cannot require a complete type. 4672 case UTT_IsCompleteType: 4673 // Fall-through 4674 4675 // These traits are modeled on the type predicates in C++0x 4676 // [meta.unary.cat] and [meta.unary.comp]. They are not specified as 4677 // requiring a complete type, as whether or not they return true cannot be 4678 // impacted by the completeness of the type. 4679 case UTT_IsVoid: 4680 case UTT_IsIntegral: 4681 case UTT_IsFloatingPoint: 4682 case UTT_IsArray: 4683 case UTT_IsPointer: 4684 case UTT_IsLvalueReference: 4685 case UTT_IsRvalueReference: 4686 case UTT_IsMemberFunctionPointer: 4687 case UTT_IsMemberObjectPointer: 4688 case UTT_IsEnum: 4689 case UTT_IsUnion: 4690 case UTT_IsClass: 4691 case UTT_IsFunction: 4692 case UTT_IsReference: 4693 case UTT_IsArithmetic: 4694 case UTT_IsFundamental: 4695 case UTT_IsObject: 4696 case UTT_IsScalar: 4697 case UTT_IsCompound: 4698 case UTT_IsMemberPointer: 4699 // Fall-through 4700 4701 // These traits are modeled on type predicates in C++0x [meta.unary.prop] 4702 // which requires some of its traits to have the complete type. However, 4703 // the completeness of the type cannot impact these traits' semantics, and 4704 // so they don't require it. This matches the comments on these traits in 4705 // Table 49. 4706 case UTT_IsConst: 4707 case UTT_IsVolatile: 4708 case UTT_IsSigned: 4709 case UTT_IsUnsigned: 4710 4711 // This type trait always returns false, checking the type is moot. 4712 case UTT_IsInterfaceClass: 4713 return true; 4714 4715 // C++14 [meta.unary.prop]: 4716 // If T is a non-union class type, T shall be a complete type. 4717 case UTT_IsEmpty: 4718 case UTT_IsPolymorphic: 4719 case UTT_IsAbstract: 4720 if (const auto *RD = ArgTy->getAsCXXRecordDecl()) 4721 if (!RD->isUnion()) 4722 return !S.RequireCompleteType( 4723 Loc, ArgTy, diag::err_incomplete_type_used_in_type_trait_expr); 4724 return true; 4725 4726 // C++14 [meta.unary.prop]: 4727 // If T is a class type, T shall be a complete type. 4728 case UTT_IsFinal: 4729 case UTT_IsSealed: 4730 if (ArgTy->getAsCXXRecordDecl()) 4731 return !S.RequireCompleteType( 4732 Loc, ArgTy, diag::err_incomplete_type_used_in_type_trait_expr); 4733 return true; 4734 4735 // C++1z [meta.unary.prop]: 4736 // remove_all_extents_t<T> shall be a complete type or cv void. 4737 case UTT_IsAggregate: 4738 case UTT_IsTrivial: 4739 case UTT_IsTriviallyCopyable: 4740 case UTT_IsStandardLayout: 4741 case UTT_IsPOD: 4742 case UTT_IsLiteral: 4743 // Per the GCC type traits documentation, T shall be a complete type, cv void, 4744 // or an array of unknown bound. But GCC actually imposes the same constraints 4745 // as above. 4746 case UTT_HasNothrowAssign: 4747 case UTT_HasNothrowMoveAssign: 4748 case UTT_HasNothrowConstructor: 4749 case UTT_HasNothrowCopy: 4750 case UTT_HasTrivialAssign: 4751 case UTT_HasTrivialMoveAssign: 4752 case UTT_HasTrivialDefaultConstructor: 4753 case UTT_HasTrivialMoveConstructor: 4754 case UTT_HasTrivialCopy: 4755 case UTT_HasTrivialDestructor: 4756 case UTT_HasVirtualDestructor: 4757 ArgTy = QualType(ArgTy->getBaseElementTypeUnsafe(), 0); 4758 LLVM_FALLTHROUGH; 4759 4760 // C++1z [meta.unary.prop]: 4761 // T shall be a complete type, cv void, or an array of unknown bound. 4762 case UTT_IsDestructible: 4763 case UTT_IsNothrowDestructible: 4764 case UTT_IsTriviallyDestructible: 4765 case UTT_HasUniqueObjectRepresentations: 4766 if (ArgTy->isIncompleteArrayType() || ArgTy->isVoidType()) 4767 return true; 4768 4769 return !S.RequireCompleteType( 4770 Loc, ArgTy, diag::err_incomplete_type_used_in_type_trait_expr); 4771 } 4772 } 4773 4774 static bool HasNoThrowOperator(const RecordType *RT, OverloadedOperatorKind Op, 4775 Sema &Self, SourceLocation KeyLoc, ASTContext &C, 4776 bool (CXXRecordDecl::*HasTrivial)() const, 4777 bool (CXXRecordDecl::*HasNonTrivial)() const, 4778 bool (CXXMethodDecl::*IsDesiredOp)() const) 4779 { 4780 CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 4781 if ((RD->*HasTrivial)() && !(RD->*HasNonTrivial)()) 4782 return true; 4783 4784 DeclarationName Name = C.DeclarationNames.getCXXOperatorName(Op); 4785 DeclarationNameInfo NameInfo(Name, KeyLoc); 4786 LookupResult Res(Self, NameInfo, Sema::LookupOrdinaryName); 4787 if (Self.LookupQualifiedName(Res, RD)) { 4788 bool FoundOperator = false; 4789 Res.suppressDiagnostics(); 4790 for (LookupResult::iterator Op = Res.begin(), OpEnd = Res.end(); 4791 Op != OpEnd; ++Op) { 4792 if (isa<FunctionTemplateDecl>(*Op)) 4793 continue; 4794 4795 CXXMethodDecl *Operator = cast<CXXMethodDecl>(*Op); 4796 if((Operator->*IsDesiredOp)()) { 4797 FoundOperator = true; 4798 auto *CPT = Operator->getType()->castAs<FunctionProtoType>(); 4799 CPT = Self.ResolveExceptionSpec(KeyLoc, CPT); 4800 if (!CPT || !CPT->isNothrow()) 4801 return false; 4802 } 4803 } 4804 return FoundOperator; 4805 } 4806 return false; 4807 } 4808 4809 static bool EvaluateUnaryTypeTrait(Sema &Self, TypeTrait UTT, 4810 SourceLocation KeyLoc, QualType T) { 4811 assert(!T->isDependentType() && "Cannot evaluate traits of dependent type"); 4812 4813 ASTContext &C = Self.Context; 4814 switch(UTT) { 4815 default: llvm_unreachable("not a UTT"); 4816 // Type trait expressions corresponding to the primary type category 4817 // predicates in C++0x [meta.unary.cat]. 4818 case UTT_IsVoid: 4819 return T->isVoidType(); 4820 case UTT_IsIntegral: 4821 return T->isIntegralType(C); 4822 case UTT_IsFloatingPoint: 4823 return T->isFloatingType(); 4824 case UTT_IsArray: 4825 return T->isArrayType(); 4826 case UTT_IsPointer: 4827 return T->isAnyPointerType(); 4828 case UTT_IsLvalueReference: 4829 return T->isLValueReferenceType(); 4830 case UTT_IsRvalueReference: 4831 return T->isRValueReferenceType(); 4832 case UTT_IsMemberFunctionPointer: 4833 return T->isMemberFunctionPointerType(); 4834 case UTT_IsMemberObjectPointer: 4835 return T->isMemberDataPointerType(); 4836 case UTT_IsEnum: 4837 return T->isEnumeralType(); 4838 case UTT_IsUnion: 4839 return T->isUnionType(); 4840 case UTT_IsClass: 4841 return T->isClassType() || T->isStructureType() || T->isInterfaceType(); 4842 case UTT_IsFunction: 4843 return T->isFunctionType(); 4844 4845 // Type trait expressions which correspond to the convenient composition 4846 // predicates in C++0x [meta.unary.comp]. 4847 case UTT_IsReference: 4848 return T->isReferenceType(); 4849 case UTT_IsArithmetic: 4850 return T->isArithmeticType() && !T->isEnumeralType(); 4851 case UTT_IsFundamental: 4852 return T->isFundamentalType(); 4853 case UTT_IsObject: 4854 return T->isObjectType(); 4855 case UTT_IsScalar: 4856 // Note: semantic analysis depends on Objective-C lifetime types to be 4857 // considered scalar types. However, such types do not actually behave 4858 // like scalar types at run time (since they may require retain/release 4859 // operations), so we report them as non-scalar. 4860 if (T->isObjCLifetimeType()) { 4861 switch (T.getObjCLifetime()) { 4862 case Qualifiers::OCL_None: 4863 case Qualifiers::OCL_ExplicitNone: 4864 return true; 4865 4866 case Qualifiers::OCL_Strong: 4867 case Qualifiers::OCL_Weak: 4868 case Qualifiers::OCL_Autoreleasing: 4869 return false; 4870 } 4871 } 4872 4873 return T->isScalarType(); 4874 case UTT_IsCompound: 4875 return T->isCompoundType(); 4876 case UTT_IsMemberPointer: 4877 return T->isMemberPointerType(); 4878 4879 // Type trait expressions which correspond to the type property predicates 4880 // in C++0x [meta.unary.prop]. 4881 case UTT_IsConst: 4882 return T.isConstQualified(); 4883 case UTT_IsVolatile: 4884 return T.isVolatileQualified(); 4885 case UTT_IsTrivial: 4886 return T.isTrivialType(C); 4887 case UTT_IsTriviallyCopyable: 4888 return T.isTriviallyCopyableType(C); 4889 case UTT_IsStandardLayout: 4890 return T->isStandardLayoutType(); 4891 case UTT_IsPOD: 4892 return T.isPODType(C); 4893 case UTT_IsLiteral: 4894 return T->isLiteralType(C); 4895 case UTT_IsEmpty: 4896 if (const CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 4897 return !RD->isUnion() && RD->isEmpty(); 4898 return false; 4899 case UTT_IsPolymorphic: 4900 if (const CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 4901 return !RD->isUnion() && RD->isPolymorphic(); 4902 return false; 4903 case UTT_IsAbstract: 4904 if (const CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 4905 return !RD->isUnion() && RD->isAbstract(); 4906 return false; 4907 case UTT_IsAggregate: 4908 // Report vector extensions and complex types as aggregates because they 4909 // support aggregate initialization. GCC mirrors this behavior for vectors 4910 // but not _Complex. 4911 return T->isAggregateType() || T->isVectorType() || T->isExtVectorType() || 4912 T->isAnyComplexType(); 4913 // __is_interface_class only returns true when CL is invoked in /CLR mode and 4914 // even then only when it is used with the 'interface struct ...' syntax 4915 // Clang doesn't support /CLR which makes this type trait moot. 4916 case UTT_IsInterfaceClass: 4917 return false; 4918 case UTT_IsFinal: 4919 case UTT_IsSealed: 4920 if (const CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 4921 return RD->hasAttr<FinalAttr>(); 4922 return false; 4923 case UTT_IsSigned: 4924 // Enum types should always return false. 4925 // Floating points should always return true. 4926 return T->isFloatingType() || 4927 (T->isSignedIntegerType() && !T->isEnumeralType()); 4928 case UTT_IsUnsigned: 4929 // Enum types should always return false. 4930 return T->isUnsignedIntegerType() && !T->isEnumeralType(); 4931 4932 // Type trait expressions which query classes regarding their construction, 4933 // destruction, and copying. Rather than being based directly on the 4934 // related type predicates in the standard, they are specified by both 4935 // GCC[1] and the Embarcadero C++ compiler[2], and Clang implements those 4936 // specifications. 4937 // 4938 // 1: http://gcc.gnu/.org/onlinedocs/gcc/Type-Traits.html 4939 // 2: http://docwiki.embarcadero.com/RADStudio/XE/en/Type_Trait_Functions_(C%2B%2B0x)_Index 4940 // 4941 // Note that these builtins do not behave as documented in g++: if a class 4942 // has both a trivial and a non-trivial special member of a particular kind, 4943 // they return false! For now, we emulate this behavior. 4944 // FIXME: This appears to be a g++ bug: more complex cases reveal that it 4945 // does not correctly compute triviality in the presence of multiple special 4946 // members of the same kind. Revisit this once the g++ bug is fixed. 4947 case UTT_HasTrivialDefaultConstructor: 4948 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 4949 // If __is_pod (type) is true then the trait is true, else if type is 4950 // a cv class or union type (or array thereof) with a trivial default 4951 // constructor ([class.ctor]) then the trait is true, else it is false. 4952 if (T.isPODType(C)) 4953 return true; 4954 if (CXXRecordDecl *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) 4955 return RD->hasTrivialDefaultConstructor() && 4956 !RD->hasNonTrivialDefaultConstructor(); 4957 return false; 4958 case UTT_HasTrivialMoveConstructor: 4959 // This trait is implemented by MSVC 2012 and needed to parse the 4960 // standard library headers. Specifically this is used as the logic 4961 // behind std::is_trivially_move_constructible (20.9.4.3). 4962 if (T.isPODType(C)) 4963 return true; 4964 if (CXXRecordDecl *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) 4965 return RD->hasTrivialMoveConstructor() && !RD->hasNonTrivialMoveConstructor(); 4966 return false; 4967 case UTT_HasTrivialCopy: 4968 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 4969 // If __is_pod (type) is true or type is a reference type then 4970 // the trait is true, else if type is a cv class or union type 4971 // with a trivial copy constructor ([class.copy]) then the trait 4972 // is true, else it is false. 4973 if (T.isPODType(C) || T->isReferenceType()) 4974 return true; 4975 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 4976 return RD->hasTrivialCopyConstructor() && 4977 !RD->hasNonTrivialCopyConstructor(); 4978 return false; 4979 case UTT_HasTrivialMoveAssign: 4980 // This trait is implemented by MSVC 2012 and needed to parse the 4981 // standard library headers. Specifically it is used as the logic 4982 // behind std::is_trivially_move_assignable (20.9.4.3) 4983 if (T.isPODType(C)) 4984 return true; 4985 if (CXXRecordDecl *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) 4986 return RD->hasTrivialMoveAssignment() && !RD->hasNonTrivialMoveAssignment(); 4987 return false; 4988 case UTT_HasTrivialAssign: 4989 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 4990 // If type is const qualified or is a reference type then the 4991 // trait is false. Otherwise if __is_pod (type) is true then the 4992 // trait is true, else if type is a cv class or union type with 4993 // a trivial copy assignment ([class.copy]) then the trait is 4994 // true, else it is false. 4995 // Note: the const and reference restrictions are interesting, 4996 // given that const and reference members don't prevent a class 4997 // from having a trivial copy assignment operator (but do cause 4998 // errors if the copy assignment operator is actually used, q.v. 4999 // [class.copy]p12). 5000 5001 if (T.isConstQualified()) 5002 return false; 5003 if (T.isPODType(C)) 5004 return true; 5005 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 5006 return RD->hasTrivialCopyAssignment() && 5007 !RD->hasNonTrivialCopyAssignment(); 5008 return false; 5009 case UTT_IsDestructible: 5010 case UTT_IsTriviallyDestructible: 5011 case UTT_IsNothrowDestructible: 5012 // C++14 [meta.unary.prop]: 5013 // For reference types, is_destructible<T>::value is true. 5014 if (T->isReferenceType()) 5015 return true; 5016 5017 // Objective-C++ ARC: autorelease types don't require destruction. 5018 if (T->isObjCLifetimeType() && 5019 T.getObjCLifetime() == Qualifiers::OCL_Autoreleasing) 5020 return true; 5021 5022 // C++14 [meta.unary.prop]: 5023 // For incomplete types and function types, is_destructible<T>::value is 5024 // false. 5025 if (T->isIncompleteType() || T->isFunctionType()) 5026 return false; 5027 5028 // A type that requires destruction (via a non-trivial destructor or ARC 5029 // lifetime semantics) is not trivially-destructible. 5030 if (UTT == UTT_IsTriviallyDestructible && T.isDestructedType()) 5031 return false; 5032 5033 // C++14 [meta.unary.prop]: 5034 // For object types and given U equal to remove_all_extents_t<T>, if the 5035 // expression std::declval<U&>().~U() is well-formed when treated as an 5036 // unevaluated operand (Clause 5), then is_destructible<T>::value is true 5037 if (auto *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) { 5038 CXXDestructorDecl *Destructor = Self.LookupDestructor(RD); 5039 if (!Destructor) 5040 return false; 5041 // C++14 [dcl.fct.def.delete]p2: 5042 // A program that refers to a deleted function implicitly or 5043 // explicitly, other than to declare it, is ill-formed. 5044 if (Destructor->isDeleted()) 5045 return false; 5046 if (C.getLangOpts().AccessControl && Destructor->getAccess() != AS_public) 5047 return false; 5048 if (UTT == UTT_IsNothrowDestructible) { 5049 auto *CPT = Destructor->getType()->castAs<FunctionProtoType>(); 5050 CPT = Self.ResolveExceptionSpec(KeyLoc, CPT); 5051 if (!CPT || !CPT->isNothrow()) 5052 return false; 5053 } 5054 } 5055 return true; 5056 5057 case UTT_HasTrivialDestructor: 5058 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html 5059 // If __is_pod (type) is true or type is a reference type 5060 // then the trait is true, else if type is a cv class or union 5061 // type (or array thereof) with a trivial destructor 5062 // ([class.dtor]) then the trait is true, else it is 5063 // false. 5064 if (T.isPODType(C) || T->isReferenceType()) 5065 return true; 5066 5067 // Objective-C++ ARC: autorelease types don't require destruction. 5068 if (T->isObjCLifetimeType() && 5069 T.getObjCLifetime() == Qualifiers::OCL_Autoreleasing) 5070 return true; 5071 5072 if (CXXRecordDecl *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) 5073 return RD->hasTrivialDestructor(); 5074 return false; 5075 // TODO: Propagate nothrowness for implicitly declared special members. 5076 case UTT_HasNothrowAssign: 5077 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 5078 // If type is const qualified or is a reference type then the 5079 // trait is false. Otherwise if __has_trivial_assign (type) 5080 // is true then the trait is true, else if type is a cv class 5081 // or union type with copy assignment operators that are known 5082 // not to throw an exception then the trait is true, else it is 5083 // false. 5084 if (C.getBaseElementType(T).isConstQualified()) 5085 return false; 5086 if (T->isReferenceType()) 5087 return false; 5088 if (T.isPODType(C) || T->isObjCLifetimeType()) 5089 return true; 5090 5091 if (const RecordType *RT = T->getAs<RecordType>()) 5092 return HasNoThrowOperator(RT, OO_Equal, Self, KeyLoc, C, 5093 &CXXRecordDecl::hasTrivialCopyAssignment, 5094 &CXXRecordDecl::hasNonTrivialCopyAssignment, 5095 &CXXMethodDecl::isCopyAssignmentOperator); 5096 return false; 5097 case UTT_HasNothrowMoveAssign: 5098 // This trait is implemented by MSVC 2012 and needed to parse the 5099 // standard library headers. Specifically this is used as the logic 5100 // behind std::is_nothrow_move_assignable (20.9.4.3). 5101 if (T.isPODType(C)) 5102 return true; 5103 5104 if (const RecordType *RT = C.getBaseElementType(T)->getAs<RecordType>()) 5105 return HasNoThrowOperator(RT, OO_Equal, Self, KeyLoc, C, 5106 &CXXRecordDecl::hasTrivialMoveAssignment, 5107 &CXXRecordDecl::hasNonTrivialMoveAssignment, 5108 &CXXMethodDecl::isMoveAssignmentOperator); 5109 return false; 5110 case UTT_HasNothrowCopy: 5111 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 5112 // If __has_trivial_copy (type) is true then the trait is true, else 5113 // if type is a cv class or union type with copy constructors that are 5114 // known not to throw an exception then the trait is true, else it is 5115 // false. 5116 if (T.isPODType(C) || T->isReferenceType() || T->isObjCLifetimeType()) 5117 return true; 5118 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) { 5119 if (RD->hasTrivialCopyConstructor() && 5120 !RD->hasNonTrivialCopyConstructor()) 5121 return true; 5122 5123 bool FoundConstructor = false; 5124 unsigned FoundTQs; 5125 for (const auto *ND : Self.LookupConstructors(RD)) { 5126 // A template constructor is never a copy constructor. 5127 // FIXME: However, it may actually be selected at the actual overload 5128 // resolution point. 5129 if (isa<FunctionTemplateDecl>(ND->getUnderlyingDecl())) 5130 continue; 5131 // UsingDecl itself is not a constructor 5132 if (isa<UsingDecl>(ND)) 5133 continue; 5134 auto *Constructor = cast<CXXConstructorDecl>(ND->getUnderlyingDecl()); 5135 if (Constructor->isCopyConstructor(FoundTQs)) { 5136 FoundConstructor = true; 5137 auto *CPT = Constructor->getType()->castAs<FunctionProtoType>(); 5138 CPT = Self.ResolveExceptionSpec(KeyLoc, CPT); 5139 if (!CPT) 5140 return false; 5141 // TODO: check whether evaluating default arguments can throw. 5142 // For now, we'll be conservative and assume that they can throw. 5143 if (!CPT->isNothrow() || CPT->getNumParams() > 1) 5144 return false; 5145 } 5146 } 5147 5148 return FoundConstructor; 5149 } 5150 return false; 5151 case UTT_HasNothrowConstructor: 5152 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html 5153 // If __has_trivial_constructor (type) is true then the trait is 5154 // true, else if type is a cv class or union type (or array 5155 // thereof) with a default constructor that is known not to 5156 // throw an exception then the trait is true, else it is false. 5157 if (T.isPODType(C) || T->isObjCLifetimeType()) 5158 return true; 5159 if (CXXRecordDecl *RD = C.getBaseElementType(T)->getAsCXXRecordDecl()) { 5160 if (RD->hasTrivialDefaultConstructor() && 5161 !RD->hasNonTrivialDefaultConstructor()) 5162 return true; 5163 5164 bool FoundConstructor = false; 5165 for (const auto *ND : Self.LookupConstructors(RD)) { 5166 // FIXME: In C++0x, a constructor template can be a default constructor. 5167 if (isa<FunctionTemplateDecl>(ND->getUnderlyingDecl())) 5168 continue; 5169 // UsingDecl itself is not a constructor 5170 if (isa<UsingDecl>(ND)) 5171 continue; 5172 auto *Constructor = cast<CXXConstructorDecl>(ND->getUnderlyingDecl()); 5173 if (Constructor->isDefaultConstructor()) { 5174 FoundConstructor = true; 5175 auto *CPT = Constructor->getType()->castAs<FunctionProtoType>(); 5176 CPT = Self.ResolveExceptionSpec(KeyLoc, CPT); 5177 if (!CPT) 5178 return false; 5179 // FIXME: check whether evaluating default arguments can throw. 5180 // For now, we'll be conservative and assume that they can throw. 5181 if (!CPT->isNothrow() || CPT->getNumParams() > 0) 5182 return false; 5183 } 5184 } 5185 return FoundConstructor; 5186 } 5187 return false; 5188 case UTT_HasVirtualDestructor: 5189 // http://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html: 5190 // If type is a class type with a virtual destructor ([class.dtor]) 5191 // then the trait is true, else it is false. 5192 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 5193 if (CXXDestructorDecl *Destructor = Self.LookupDestructor(RD)) 5194 return Destructor->isVirtual(); 5195 return false; 5196 5197 // These type trait expressions are modeled on the specifications for the 5198 // Embarcadero C++0x type trait functions: 5199 // http://docwiki.embarcadero.com/RADStudio/XE/en/Type_Trait_Functions_(C%2B%2B0x)_Index 5200 case UTT_IsCompleteType: 5201 // http://docwiki.embarcadero.com/RADStudio/XE/en/Is_complete_type_(typename_T_): 5202 // Returns True if and only if T is a complete type at the point of the 5203 // function call. 5204 return !T->isIncompleteType(); 5205 case UTT_HasUniqueObjectRepresentations: 5206 return C.hasUniqueObjectRepresentations(T); 5207 } 5208 } 5209 5210 static bool EvaluateBinaryTypeTrait(Sema &Self, TypeTrait BTT, QualType LhsT, 5211 QualType RhsT, SourceLocation KeyLoc); 5212 5213 static bool evaluateTypeTrait(Sema &S, TypeTrait Kind, SourceLocation KWLoc, 5214 ArrayRef<TypeSourceInfo *> Args, 5215 SourceLocation RParenLoc) { 5216 if (Kind <= UTT_Last) 5217 return EvaluateUnaryTypeTrait(S, Kind, KWLoc, Args[0]->getType()); 5218 5219 // Evaluate BTT_ReferenceBindsToTemporary alongside the IsConstructible 5220 // traits to avoid duplication. 5221 if (Kind <= BTT_Last && Kind != BTT_ReferenceBindsToTemporary) 5222 return EvaluateBinaryTypeTrait(S, Kind, Args[0]->getType(), 5223 Args[1]->getType(), RParenLoc); 5224 5225 switch (Kind) { 5226 case clang::BTT_ReferenceBindsToTemporary: 5227 case clang::TT_IsConstructible: 5228 case clang::TT_IsNothrowConstructible: 5229 case clang::TT_IsTriviallyConstructible: { 5230 // C++11 [meta.unary.prop]: 5231 // is_trivially_constructible is defined as: 5232 // 5233 // is_constructible<T, Args...>::value is true and the variable 5234 // definition for is_constructible, as defined below, is known to call 5235 // no operation that is not trivial. 5236 // 5237 // The predicate condition for a template specialization 5238 // is_constructible<T, Args...> shall be satisfied if and only if the 5239 // following variable definition would be well-formed for some invented 5240 // variable t: 5241 // 5242 // T t(create<Args>()...); 5243 assert(!Args.empty()); 5244 5245 // Precondition: T and all types in the parameter pack Args shall be 5246 // complete types, (possibly cv-qualified) void, or arrays of 5247 // unknown bound. 5248 for (const auto *TSI : Args) { 5249 QualType ArgTy = TSI->getType(); 5250 if (ArgTy->isVoidType() || ArgTy->isIncompleteArrayType()) 5251 continue; 5252 5253 if (S.RequireCompleteType(KWLoc, ArgTy, 5254 diag::err_incomplete_type_used_in_type_trait_expr)) 5255 return false; 5256 } 5257 5258 // Make sure the first argument is not incomplete nor a function type. 5259 QualType T = Args[0]->getType(); 5260 if (T->isIncompleteType() || T->isFunctionType()) 5261 return false; 5262 5263 // Make sure the first argument is not an abstract type. 5264 CXXRecordDecl *RD = T->getAsCXXRecordDecl(); 5265 if (RD && RD->isAbstract()) 5266 return false; 5267 5268 llvm::BumpPtrAllocator OpaqueExprAllocator; 5269 SmallVector<Expr *, 2> ArgExprs; 5270 ArgExprs.reserve(Args.size() - 1); 5271 for (unsigned I = 1, N = Args.size(); I != N; ++I) { 5272 QualType ArgTy = Args[I]->getType(); 5273 if (ArgTy->isObjectType() || ArgTy->isFunctionType()) 5274 ArgTy = S.Context.getRValueReferenceType(ArgTy); 5275 ArgExprs.push_back( 5276 new (OpaqueExprAllocator.Allocate<OpaqueValueExpr>()) 5277 OpaqueValueExpr(Args[I]->getTypeLoc().getBeginLoc(), 5278 ArgTy.getNonLValueExprType(S.Context), 5279 Expr::getValueKindForType(ArgTy))); 5280 } 5281 5282 // Perform the initialization in an unevaluated context within a SFINAE 5283 // trap at translation unit scope. 5284 EnterExpressionEvaluationContext Unevaluated( 5285 S, Sema::ExpressionEvaluationContext::Unevaluated); 5286 Sema::SFINAETrap SFINAE(S, /*AccessCheckingSFINAE=*/true); 5287 Sema::ContextRAII TUContext(S, S.Context.getTranslationUnitDecl()); 5288 InitializedEntity To(InitializedEntity::InitializeTemporary(Args[0])); 5289 InitializationKind InitKind(InitializationKind::CreateDirect(KWLoc, KWLoc, 5290 RParenLoc)); 5291 InitializationSequence Init(S, To, InitKind, ArgExprs); 5292 if (Init.Failed()) 5293 return false; 5294 5295 ExprResult Result = Init.Perform(S, To, InitKind, ArgExprs); 5296 if (Result.isInvalid() || SFINAE.hasErrorOccurred()) 5297 return false; 5298 5299 if (Kind == clang::TT_IsConstructible) 5300 return true; 5301 5302 if (Kind == clang::BTT_ReferenceBindsToTemporary) { 5303 if (!T->isReferenceType()) 5304 return false; 5305 5306 return !Init.isDirectReferenceBinding(); 5307 } 5308 5309 if (Kind == clang::TT_IsNothrowConstructible) 5310 return S.canThrow(Result.get()) == CT_Cannot; 5311 5312 if (Kind == clang::TT_IsTriviallyConstructible) { 5313 // Under Objective-C ARC and Weak, if the destination has non-trivial 5314 // Objective-C lifetime, this is a non-trivial construction. 5315 if (T.getNonReferenceType().hasNonTrivialObjCLifetime()) 5316 return false; 5317 5318 // The initialization succeeded; now make sure there are no non-trivial 5319 // calls. 5320 return !Result.get()->hasNonTrivialCall(S.Context); 5321 } 5322 5323 llvm_unreachable("unhandled type trait"); 5324 return false; 5325 } 5326 default: llvm_unreachable("not a TT"); 5327 } 5328 5329 return false; 5330 } 5331 5332 ExprResult Sema::BuildTypeTrait(TypeTrait Kind, SourceLocation KWLoc, 5333 ArrayRef<TypeSourceInfo *> Args, 5334 SourceLocation RParenLoc) { 5335 QualType ResultType = Context.getLogicalOperationType(); 5336 5337 if (Kind <= UTT_Last && !CheckUnaryTypeTraitTypeCompleteness( 5338 *this, Kind, KWLoc, Args[0]->getType())) 5339 return ExprError(); 5340 5341 bool Dependent = false; 5342 for (unsigned I = 0, N = Args.size(); I != N; ++I) { 5343 if (Args[I]->getType()->isDependentType()) { 5344 Dependent = true; 5345 break; 5346 } 5347 } 5348 5349 bool Result = false; 5350 if (!Dependent) 5351 Result = evaluateTypeTrait(*this, Kind, KWLoc, Args, RParenLoc); 5352 5353 return TypeTraitExpr::Create(Context, ResultType, KWLoc, Kind, Args, 5354 RParenLoc, Result); 5355 } 5356 5357 ExprResult Sema::ActOnTypeTrait(TypeTrait Kind, SourceLocation KWLoc, 5358 ArrayRef<ParsedType> Args, 5359 SourceLocation RParenLoc) { 5360 SmallVector<TypeSourceInfo *, 4> ConvertedArgs; 5361 ConvertedArgs.reserve(Args.size()); 5362 5363 for (unsigned I = 0, N = Args.size(); I != N; ++I) { 5364 TypeSourceInfo *TInfo; 5365 QualType T = GetTypeFromParser(Args[I], &TInfo); 5366 if (!TInfo) 5367 TInfo = Context.getTrivialTypeSourceInfo(T, KWLoc); 5368 5369 ConvertedArgs.push_back(TInfo); 5370 } 5371 5372 return BuildTypeTrait(Kind, KWLoc, ConvertedArgs, RParenLoc); 5373 } 5374 5375 static bool EvaluateBinaryTypeTrait(Sema &Self, TypeTrait BTT, QualType LhsT, 5376 QualType RhsT, SourceLocation KeyLoc) { 5377 assert(!LhsT->isDependentType() && !RhsT->isDependentType() && 5378 "Cannot evaluate traits of dependent types"); 5379 5380 switch(BTT) { 5381 case BTT_IsBaseOf: { 5382 // C++0x [meta.rel]p2 5383 // Base is a base class of Derived without regard to cv-qualifiers or 5384 // Base and Derived are not unions and name the same class type without 5385 // regard to cv-qualifiers. 5386 5387 const RecordType *lhsRecord = LhsT->getAs<RecordType>(); 5388 const RecordType *rhsRecord = RhsT->getAs<RecordType>(); 5389 if (!rhsRecord || !lhsRecord) { 5390 const ObjCObjectType *LHSObjTy = LhsT->getAs<ObjCObjectType>(); 5391 const ObjCObjectType *RHSObjTy = RhsT->getAs<ObjCObjectType>(); 5392 if (!LHSObjTy || !RHSObjTy) 5393 return false; 5394 5395 ObjCInterfaceDecl *BaseInterface = LHSObjTy->getInterface(); 5396 ObjCInterfaceDecl *DerivedInterface = RHSObjTy->getInterface(); 5397 if (!BaseInterface || !DerivedInterface) 5398 return false; 5399 5400 if (Self.RequireCompleteType( 5401 KeyLoc, RhsT, diag::err_incomplete_type_used_in_type_trait_expr)) 5402 return false; 5403 5404 return BaseInterface->isSuperClassOf(DerivedInterface); 5405 } 5406 5407 assert(Self.Context.hasSameUnqualifiedType(LhsT, RhsT) 5408 == (lhsRecord == rhsRecord)); 5409 5410 // Unions are never base classes, and never have base classes. 5411 // It doesn't matter if they are complete or not. See PR#41843 5412 if (lhsRecord && lhsRecord->getDecl()->isUnion()) 5413 return false; 5414 if (rhsRecord && rhsRecord->getDecl()->isUnion()) 5415 return false; 5416 5417 if (lhsRecord == rhsRecord) 5418 return true; 5419 5420 // C++0x [meta.rel]p2: 5421 // If Base and Derived are class types and are different types 5422 // (ignoring possible cv-qualifiers) then Derived shall be a 5423 // complete type. 5424 if (Self.RequireCompleteType(KeyLoc, RhsT, 5425 diag::err_incomplete_type_used_in_type_trait_expr)) 5426 return false; 5427 5428 return cast<CXXRecordDecl>(rhsRecord->getDecl()) 5429 ->isDerivedFrom(cast<CXXRecordDecl>(lhsRecord->getDecl())); 5430 } 5431 case BTT_IsSame: 5432 return Self.Context.hasSameType(LhsT, RhsT); 5433 case BTT_TypeCompatible: { 5434 // GCC ignores cv-qualifiers on arrays for this builtin. 5435 Qualifiers LhsQuals, RhsQuals; 5436 QualType Lhs = Self.getASTContext().getUnqualifiedArrayType(LhsT, LhsQuals); 5437 QualType Rhs = Self.getASTContext().getUnqualifiedArrayType(RhsT, RhsQuals); 5438 return Self.Context.typesAreCompatible(Lhs, Rhs); 5439 } 5440 case BTT_IsConvertible: 5441 case BTT_IsConvertibleTo: { 5442 // C++0x [meta.rel]p4: 5443 // Given the following function prototype: 5444 // 5445 // template <class T> 5446 // typename add_rvalue_reference<T>::type create(); 5447 // 5448 // the predicate condition for a template specialization 5449 // is_convertible<From, To> shall be satisfied if and only if 5450 // the return expression in the following code would be 5451 // well-formed, including any implicit conversions to the return 5452 // type of the function: 5453 // 5454 // To test() { 5455 // return create<From>(); 5456 // } 5457 // 5458 // Access checking is performed as if in a context unrelated to To and 5459 // From. Only the validity of the immediate context of the expression 5460 // of the return-statement (including conversions to the return type) 5461 // is considered. 5462 // 5463 // We model the initialization as a copy-initialization of a temporary 5464 // of the appropriate type, which for this expression is identical to the 5465 // return statement (since NRVO doesn't apply). 5466 5467 // Functions aren't allowed to return function or array types. 5468 if (RhsT->isFunctionType() || RhsT->isArrayType()) 5469 return false; 5470 5471 // A return statement in a void function must have void type. 5472 if (RhsT->isVoidType()) 5473 return LhsT->isVoidType(); 5474 5475 // A function definition requires a complete, non-abstract return type. 5476 if (!Self.isCompleteType(KeyLoc, RhsT) || Self.isAbstractType(KeyLoc, RhsT)) 5477 return false; 5478 5479 // Compute the result of add_rvalue_reference. 5480 if (LhsT->isObjectType() || LhsT->isFunctionType()) 5481 LhsT = Self.Context.getRValueReferenceType(LhsT); 5482 5483 // Build a fake source and destination for initialization. 5484 InitializedEntity To(InitializedEntity::InitializeTemporary(RhsT)); 5485 OpaqueValueExpr From(KeyLoc, LhsT.getNonLValueExprType(Self.Context), 5486 Expr::getValueKindForType(LhsT)); 5487 Expr *FromPtr = &From; 5488 InitializationKind Kind(InitializationKind::CreateCopy(KeyLoc, 5489 SourceLocation())); 5490 5491 // Perform the initialization in an unevaluated context within a SFINAE 5492 // trap at translation unit scope. 5493 EnterExpressionEvaluationContext Unevaluated( 5494 Self, Sema::ExpressionEvaluationContext::Unevaluated); 5495 Sema::SFINAETrap SFINAE(Self, /*AccessCheckingSFINAE=*/true); 5496 Sema::ContextRAII TUContext(Self, Self.Context.getTranslationUnitDecl()); 5497 InitializationSequence Init(Self, To, Kind, FromPtr); 5498 if (Init.Failed()) 5499 return false; 5500 5501 ExprResult Result = Init.Perform(Self, To, Kind, FromPtr); 5502 return !Result.isInvalid() && !SFINAE.hasErrorOccurred(); 5503 } 5504 5505 case BTT_IsAssignable: 5506 case BTT_IsNothrowAssignable: 5507 case BTT_IsTriviallyAssignable: { 5508 // C++11 [meta.unary.prop]p3: 5509 // is_trivially_assignable is defined as: 5510 // is_assignable<T, U>::value is true and the assignment, as defined by 5511 // is_assignable, is known to call no operation that is not trivial 5512 // 5513 // is_assignable is defined as: 5514 // The expression declval<T>() = declval<U>() is well-formed when 5515 // treated as an unevaluated operand (Clause 5). 5516 // 5517 // For both, T and U shall be complete types, (possibly cv-qualified) 5518 // void, or arrays of unknown bound. 5519 if (!LhsT->isVoidType() && !LhsT->isIncompleteArrayType() && 5520 Self.RequireCompleteType(KeyLoc, LhsT, 5521 diag::err_incomplete_type_used_in_type_trait_expr)) 5522 return false; 5523 if (!RhsT->isVoidType() && !RhsT->isIncompleteArrayType() && 5524 Self.RequireCompleteType(KeyLoc, RhsT, 5525 diag::err_incomplete_type_used_in_type_trait_expr)) 5526 return false; 5527 5528 // cv void is never assignable. 5529 if (LhsT->isVoidType() || RhsT->isVoidType()) 5530 return false; 5531 5532 // Build expressions that emulate the effect of declval<T>() and 5533 // declval<U>(). 5534 if (LhsT->isObjectType() || LhsT->isFunctionType()) 5535 LhsT = Self.Context.getRValueReferenceType(LhsT); 5536 if (RhsT->isObjectType() || RhsT->isFunctionType()) 5537 RhsT = Self.Context.getRValueReferenceType(RhsT); 5538 OpaqueValueExpr Lhs(KeyLoc, LhsT.getNonLValueExprType(Self.Context), 5539 Expr::getValueKindForType(LhsT)); 5540 OpaqueValueExpr Rhs(KeyLoc, RhsT.getNonLValueExprType(Self.Context), 5541 Expr::getValueKindForType(RhsT)); 5542 5543 // Attempt the assignment in an unevaluated context within a SFINAE 5544 // trap at translation unit scope. 5545 EnterExpressionEvaluationContext Unevaluated( 5546 Self, Sema::ExpressionEvaluationContext::Unevaluated); 5547 Sema::SFINAETrap SFINAE(Self, /*AccessCheckingSFINAE=*/true); 5548 Sema::ContextRAII TUContext(Self, Self.Context.getTranslationUnitDecl()); 5549 ExprResult Result = Self.BuildBinOp(/*S=*/nullptr, KeyLoc, BO_Assign, &Lhs, 5550 &Rhs); 5551 if (Result.isInvalid()) 5552 return false; 5553 5554 // Treat the assignment as unused for the purpose of -Wdeprecated-volatile. 5555 Self.CheckUnusedVolatileAssignment(Result.get()); 5556 5557 if (SFINAE.hasErrorOccurred()) 5558 return false; 5559 5560 if (BTT == BTT_IsAssignable) 5561 return true; 5562 5563 if (BTT == BTT_IsNothrowAssignable) 5564 return Self.canThrow(Result.get()) == CT_Cannot; 5565 5566 if (BTT == BTT_IsTriviallyAssignable) { 5567 // Under Objective-C ARC and Weak, if the destination has non-trivial 5568 // Objective-C lifetime, this is a non-trivial assignment. 5569 if (LhsT.getNonReferenceType().hasNonTrivialObjCLifetime()) 5570 return false; 5571 5572 return !Result.get()->hasNonTrivialCall(Self.Context); 5573 } 5574 5575 llvm_unreachable("unhandled type trait"); 5576 return false; 5577 } 5578 default: llvm_unreachable("not a BTT"); 5579 } 5580 llvm_unreachable("Unknown type trait or not implemented"); 5581 } 5582 5583 ExprResult Sema::ActOnArrayTypeTrait(ArrayTypeTrait ATT, 5584 SourceLocation KWLoc, 5585 ParsedType Ty, 5586 Expr* DimExpr, 5587 SourceLocation RParen) { 5588 TypeSourceInfo *TSInfo; 5589 QualType T = GetTypeFromParser(Ty, &TSInfo); 5590 if (!TSInfo) 5591 TSInfo = Context.getTrivialTypeSourceInfo(T); 5592 5593 return BuildArrayTypeTrait(ATT, KWLoc, TSInfo, DimExpr, RParen); 5594 } 5595 5596 static uint64_t EvaluateArrayTypeTrait(Sema &Self, ArrayTypeTrait ATT, 5597 QualType T, Expr *DimExpr, 5598 SourceLocation KeyLoc) { 5599 assert(!T->isDependentType() && "Cannot evaluate traits of dependent type"); 5600 5601 switch(ATT) { 5602 case ATT_ArrayRank: 5603 if (T->isArrayType()) { 5604 unsigned Dim = 0; 5605 while (const ArrayType *AT = Self.Context.getAsArrayType(T)) { 5606 ++Dim; 5607 T = AT->getElementType(); 5608 } 5609 return Dim; 5610 } 5611 return 0; 5612 5613 case ATT_ArrayExtent: { 5614 llvm::APSInt Value; 5615 uint64_t Dim; 5616 if (Self.VerifyIntegerConstantExpression( 5617 DimExpr, &Value, diag::err_dimension_expr_not_constant_integer) 5618 .isInvalid()) 5619 return 0; 5620 if (Value.isSigned() && Value.isNegative()) { 5621 Self.Diag(KeyLoc, diag::err_dimension_expr_not_constant_integer) 5622 << DimExpr->getSourceRange(); 5623 return 0; 5624 } 5625 Dim = Value.getLimitedValue(); 5626 5627 if (T->isArrayType()) { 5628 unsigned D = 0; 5629 bool Matched = false; 5630 while (const ArrayType *AT = Self.Context.getAsArrayType(T)) { 5631 if (Dim == D) { 5632 Matched = true; 5633 break; 5634 } 5635 ++D; 5636 T = AT->getElementType(); 5637 } 5638 5639 if (Matched && T->isArrayType()) { 5640 if (const ConstantArrayType *CAT = Self.Context.getAsConstantArrayType(T)) 5641 return CAT->getSize().getLimitedValue(); 5642 } 5643 } 5644 return 0; 5645 } 5646 } 5647 llvm_unreachable("Unknown type trait or not implemented"); 5648 } 5649 5650 ExprResult Sema::BuildArrayTypeTrait(ArrayTypeTrait ATT, 5651 SourceLocation KWLoc, 5652 TypeSourceInfo *TSInfo, 5653 Expr* DimExpr, 5654 SourceLocation RParen) { 5655 QualType T = TSInfo->getType(); 5656 5657 // FIXME: This should likely be tracked as an APInt to remove any host 5658 // assumptions about the width of size_t on the target. 5659 uint64_t Value = 0; 5660 if (!T->isDependentType()) 5661 Value = EvaluateArrayTypeTrait(*this, ATT, T, DimExpr, KWLoc); 5662 5663 // While the specification for these traits from the Embarcadero C++ 5664 // compiler's documentation says the return type is 'unsigned int', Clang 5665 // returns 'size_t'. On Windows, the primary platform for the Embarcadero 5666 // compiler, there is no difference. On several other platforms this is an 5667 // important distinction. 5668 return new (Context) ArrayTypeTraitExpr(KWLoc, ATT, TSInfo, Value, DimExpr, 5669 RParen, Context.getSizeType()); 5670 } 5671 5672 ExprResult Sema::ActOnExpressionTrait(ExpressionTrait ET, 5673 SourceLocation KWLoc, 5674 Expr *Queried, 5675 SourceLocation RParen) { 5676 // If error parsing the expression, ignore. 5677 if (!Queried) 5678 return ExprError(); 5679 5680 ExprResult Result = BuildExpressionTrait(ET, KWLoc, Queried, RParen); 5681 5682 return Result; 5683 } 5684 5685 static bool EvaluateExpressionTrait(ExpressionTrait ET, Expr *E) { 5686 switch (ET) { 5687 case ET_IsLValueExpr: return E->isLValue(); 5688 case ET_IsRValueExpr: 5689 return E->isPRValue(); 5690 } 5691 llvm_unreachable("Expression trait not covered by switch"); 5692 } 5693 5694 ExprResult Sema::BuildExpressionTrait(ExpressionTrait ET, 5695 SourceLocation KWLoc, 5696 Expr *Queried, 5697 SourceLocation RParen) { 5698 if (Queried->isTypeDependent()) { 5699 // Delay type-checking for type-dependent expressions. 5700 } else if (Queried->getType()->isPlaceholderType()) { 5701 ExprResult PE = CheckPlaceholderExpr(Queried); 5702 if (PE.isInvalid()) return ExprError(); 5703 return BuildExpressionTrait(ET, KWLoc, PE.get(), RParen); 5704 } 5705 5706 bool Value = EvaluateExpressionTrait(ET, Queried); 5707 5708 return new (Context) 5709 ExpressionTraitExpr(KWLoc, ET, Queried, Value, RParen, Context.BoolTy); 5710 } 5711 5712 QualType Sema::CheckPointerToMemberOperands(ExprResult &LHS, ExprResult &RHS, 5713 ExprValueKind &VK, 5714 SourceLocation Loc, 5715 bool isIndirect) { 5716 assert(!LHS.get()->getType()->isPlaceholderType() && 5717 !RHS.get()->getType()->isPlaceholderType() && 5718 "placeholders should have been weeded out by now"); 5719 5720 // The LHS undergoes lvalue conversions if this is ->*, and undergoes the 5721 // temporary materialization conversion otherwise. 5722 if (isIndirect) 5723 LHS = DefaultLvalueConversion(LHS.get()); 5724 else if (LHS.get()->isPRValue()) 5725 LHS = TemporaryMaterializationConversion(LHS.get()); 5726 if (LHS.isInvalid()) 5727 return QualType(); 5728 5729 // The RHS always undergoes lvalue conversions. 5730 RHS = DefaultLvalueConversion(RHS.get()); 5731 if (RHS.isInvalid()) return QualType(); 5732 5733 const char *OpSpelling = isIndirect ? "->*" : ".*"; 5734 // C++ 5.5p2 5735 // The binary operator .* [p3: ->*] binds its second operand, which shall 5736 // be of type "pointer to member of T" (where T is a completely-defined 5737 // class type) [...] 5738 QualType RHSType = RHS.get()->getType(); 5739 const MemberPointerType *MemPtr = RHSType->getAs<MemberPointerType>(); 5740 if (!MemPtr) { 5741 Diag(Loc, diag::err_bad_memptr_rhs) 5742 << OpSpelling << RHSType << RHS.get()->getSourceRange(); 5743 return QualType(); 5744 } 5745 5746 QualType Class(MemPtr->getClass(), 0); 5747 5748 // Note: C++ [expr.mptr.oper]p2-3 says that the class type into which the 5749 // member pointer points must be completely-defined. However, there is no 5750 // reason for this semantic distinction, and the rule is not enforced by 5751 // other compilers. Therefore, we do not check this property, as it is 5752 // likely to be considered a defect. 5753 5754 // C++ 5.5p2 5755 // [...] to its first operand, which shall be of class T or of a class of 5756 // which T is an unambiguous and accessible base class. [p3: a pointer to 5757 // such a class] 5758 QualType LHSType = LHS.get()->getType(); 5759 if (isIndirect) { 5760 if (const PointerType *Ptr = LHSType->getAs<PointerType>()) 5761 LHSType = Ptr->getPointeeType(); 5762 else { 5763 Diag(Loc, diag::err_bad_memptr_lhs) 5764 << OpSpelling << 1 << LHSType 5765 << FixItHint::CreateReplacement(SourceRange(Loc), ".*"); 5766 return QualType(); 5767 } 5768 } 5769 5770 if (!Context.hasSameUnqualifiedType(Class, LHSType)) { 5771 // If we want to check the hierarchy, we need a complete type. 5772 if (RequireCompleteType(Loc, LHSType, diag::err_bad_memptr_lhs, 5773 OpSpelling, (int)isIndirect)) { 5774 return QualType(); 5775 } 5776 5777 if (!IsDerivedFrom(Loc, LHSType, Class)) { 5778 Diag(Loc, diag::err_bad_memptr_lhs) << OpSpelling 5779 << (int)isIndirect << LHS.get()->getType(); 5780 return QualType(); 5781 } 5782 5783 CXXCastPath BasePath; 5784 if (CheckDerivedToBaseConversion( 5785 LHSType, Class, Loc, 5786 SourceRange(LHS.get()->getBeginLoc(), RHS.get()->getEndLoc()), 5787 &BasePath)) 5788 return QualType(); 5789 5790 // Cast LHS to type of use. 5791 QualType UseType = Context.getQualifiedType(Class, LHSType.getQualifiers()); 5792 if (isIndirect) 5793 UseType = Context.getPointerType(UseType); 5794 ExprValueKind VK = isIndirect ? VK_PRValue : LHS.get()->getValueKind(); 5795 LHS = ImpCastExprToType(LHS.get(), UseType, CK_DerivedToBase, VK, 5796 &BasePath); 5797 } 5798 5799 if (isa<CXXScalarValueInitExpr>(RHS.get()->IgnoreParens())) { 5800 // Diagnose use of pointer-to-member type which when used as 5801 // the functional cast in a pointer-to-member expression. 5802 Diag(Loc, diag::err_pointer_to_member_type) << isIndirect; 5803 return QualType(); 5804 } 5805 5806 // C++ 5.5p2 5807 // The result is an object or a function of the type specified by the 5808 // second operand. 5809 // The cv qualifiers are the union of those in the pointer and the left side, 5810 // in accordance with 5.5p5 and 5.2.5. 5811 QualType Result = MemPtr->getPointeeType(); 5812 Result = Context.getCVRQualifiedType(Result, LHSType.getCVRQualifiers()); 5813 5814 // C++0x [expr.mptr.oper]p6: 5815 // In a .* expression whose object expression is an rvalue, the program is 5816 // ill-formed if the second operand is a pointer to member function with 5817 // ref-qualifier &. In a ->* expression or in a .* expression whose object 5818 // expression is an lvalue, the program is ill-formed if the second operand 5819 // is a pointer to member function with ref-qualifier &&. 5820 if (const FunctionProtoType *Proto = Result->getAs<FunctionProtoType>()) { 5821 switch (Proto->getRefQualifier()) { 5822 case RQ_None: 5823 // Do nothing 5824 break; 5825 5826 case RQ_LValue: 5827 if (!isIndirect && !LHS.get()->Classify(Context).isLValue()) { 5828 // C++2a allows functions with ref-qualifier & if their cv-qualifier-seq 5829 // is (exactly) 'const'. 5830 if (Proto->isConst() && !Proto->isVolatile()) 5831 Diag(Loc, getLangOpts().CPlusPlus20 5832 ? diag::warn_cxx17_compat_pointer_to_const_ref_member_on_rvalue 5833 : diag::ext_pointer_to_const_ref_member_on_rvalue); 5834 else 5835 Diag(Loc, diag::err_pointer_to_member_oper_value_classify) 5836 << RHSType << 1 << LHS.get()->getSourceRange(); 5837 } 5838 break; 5839 5840 case RQ_RValue: 5841 if (isIndirect || !LHS.get()->Classify(Context).isRValue()) 5842 Diag(Loc, diag::err_pointer_to_member_oper_value_classify) 5843 << RHSType << 0 << LHS.get()->getSourceRange(); 5844 break; 5845 } 5846 } 5847 5848 // C++ [expr.mptr.oper]p6: 5849 // The result of a .* expression whose second operand is a pointer 5850 // to a data member is of the same value category as its 5851 // first operand. The result of a .* expression whose second 5852 // operand is a pointer to a member function is a prvalue. The 5853 // result of an ->* expression is an lvalue if its second operand 5854 // is a pointer to data member and a prvalue otherwise. 5855 if (Result->isFunctionType()) { 5856 VK = VK_PRValue; 5857 return Context.BoundMemberTy; 5858 } else if (isIndirect) { 5859 VK = VK_LValue; 5860 } else { 5861 VK = LHS.get()->getValueKind(); 5862 } 5863 5864 return Result; 5865 } 5866 5867 /// Try to convert a type to another according to C++11 5.16p3. 5868 /// 5869 /// This is part of the parameter validation for the ? operator. If either 5870 /// value operand is a class type, the two operands are attempted to be 5871 /// converted to each other. This function does the conversion in one direction. 5872 /// It returns true if the program is ill-formed and has already been diagnosed 5873 /// as such. 5874 static bool TryClassUnification(Sema &Self, Expr *From, Expr *To, 5875 SourceLocation QuestionLoc, 5876 bool &HaveConversion, 5877 QualType &ToType) { 5878 HaveConversion = false; 5879 ToType = To->getType(); 5880 5881 InitializationKind Kind = 5882 InitializationKind::CreateCopy(To->getBeginLoc(), SourceLocation()); 5883 // C++11 5.16p3 5884 // The process for determining whether an operand expression E1 of type T1 5885 // can be converted to match an operand expression E2 of type T2 is defined 5886 // as follows: 5887 // -- If E2 is an lvalue: E1 can be converted to match E2 if E1 can be 5888 // implicitly converted to type "lvalue reference to T2", subject to the 5889 // constraint that in the conversion the reference must bind directly to 5890 // an lvalue. 5891 // -- If E2 is an xvalue: E1 can be converted to match E2 if E1 can be 5892 // implicitly converted to the type "rvalue reference to R2", subject to 5893 // the constraint that the reference must bind directly. 5894 if (To->isLValue() || To->isXValue()) { 5895 QualType T = To->isLValue() ? Self.Context.getLValueReferenceType(ToType) 5896 : Self.Context.getRValueReferenceType(ToType); 5897 5898 InitializedEntity Entity = InitializedEntity::InitializeTemporary(T); 5899 5900 InitializationSequence InitSeq(Self, Entity, Kind, From); 5901 if (InitSeq.isDirectReferenceBinding()) { 5902 ToType = T; 5903 HaveConversion = true; 5904 return false; 5905 } 5906 5907 if (InitSeq.isAmbiguous()) 5908 return InitSeq.Diagnose(Self, Entity, Kind, From); 5909 } 5910 5911 // -- If E2 is an rvalue, or if the conversion above cannot be done: 5912 // -- if E1 and E2 have class type, and the underlying class types are 5913 // the same or one is a base class of the other: 5914 QualType FTy = From->getType(); 5915 QualType TTy = To->getType(); 5916 const RecordType *FRec = FTy->getAs<RecordType>(); 5917 const RecordType *TRec = TTy->getAs<RecordType>(); 5918 bool FDerivedFromT = FRec && TRec && FRec != TRec && 5919 Self.IsDerivedFrom(QuestionLoc, FTy, TTy); 5920 if (FRec && TRec && (FRec == TRec || FDerivedFromT || 5921 Self.IsDerivedFrom(QuestionLoc, TTy, FTy))) { 5922 // E1 can be converted to match E2 if the class of T2 is the 5923 // same type as, or a base class of, the class of T1, and 5924 // [cv2 > cv1]. 5925 if (FRec == TRec || FDerivedFromT) { 5926 if (TTy.isAtLeastAsQualifiedAs(FTy)) { 5927 InitializedEntity Entity = InitializedEntity::InitializeTemporary(TTy); 5928 InitializationSequence InitSeq(Self, Entity, Kind, From); 5929 if (InitSeq) { 5930 HaveConversion = true; 5931 return false; 5932 } 5933 5934 if (InitSeq.isAmbiguous()) 5935 return InitSeq.Diagnose(Self, Entity, Kind, From); 5936 } 5937 } 5938 5939 return false; 5940 } 5941 5942 // -- Otherwise: E1 can be converted to match E2 if E1 can be 5943 // implicitly converted to the type that expression E2 would have 5944 // if E2 were converted to an rvalue (or the type it has, if E2 is 5945 // an rvalue). 5946 // 5947 // This actually refers very narrowly to the lvalue-to-rvalue conversion, not 5948 // to the array-to-pointer or function-to-pointer conversions. 5949 TTy = TTy.getNonLValueExprType(Self.Context); 5950 5951 InitializedEntity Entity = InitializedEntity::InitializeTemporary(TTy); 5952 InitializationSequence InitSeq(Self, Entity, Kind, From); 5953 HaveConversion = !InitSeq.Failed(); 5954 ToType = TTy; 5955 if (InitSeq.isAmbiguous()) 5956 return InitSeq.Diagnose(Self, Entity, Kind, From); 5957 5958 return false; 5959 } 5960 5961 /// Try to find a common type for two according to C++0x 5.16p5. 5962 /// 5963 /// This is part of the parameter validation for the ? operator. If either 5964 /// value operand is a class type, overload resolution is used to find a 5965 /// conversion to a common type. 5966 static bool FindConditionalOverload(Sema &Self, ExprResult &LHS, ExprResult &RHS, 5967 SourceLocation QuestionLoc) { 5968 Expr *Args[2] = { LHS.get(), RHS.get() }; 5969 OverloadCandidateSet CandidateSet(QuestionLoc, 5970 OverloadCandidateSet::CSK_Operator); 5971 Self.AddBuiltinOperatorCandidates(OO_Conditional, QuestionLoc, Args, 5972 CandidateSet); 5973 5974 OverloadCandidateSet::iterator Best; 5975 switch (CandidateSet.BestViableFunction(Self, QuestionLoc, Best)) { 5976 case OR_Success: { 5977 // We found a match. Perform the conversions on the arguments and move on. 5978 ExprResult LHSRes = Self.PerformImplicitConversion( 5979 LHS.get(), Best->BuiltinParamTypes[0], Best->Conversions[0], 5980 Sema::AA_Converting); 5981 if (LHSRes.isInvalid()) 5982 break; 5983 LHS = LHSRes; 5984 5985 ExprResult RHSRes = Self.PerformImplicitConversion( 5986 RHS.get(), Best->BuiltinParamTypes[1], Best->Conversions[1], 5987 Sema::AA_Converting); 5988 if (RHSRes.isInvalid()) 5989 break; 5990 RHS = RHSRes; 5991 if (Best->Function) 5992 Self.MarkFunctionReferenced(QuestionLoc, Best->Function); 5993 return false; 5994 } 5995 5996 case OR_No_Viable_Function: 5997 5998 // Emit a better diagnostic if one of the expressions is a null pointer 5999 // constant and the other is a pointer type. In this case, the user most 6000 // likely forgot to take the address of the other expression. 6001 if (Self.DiagnoseConditionalForNull(LHS.get(), RHS.get(), QuestionLoc)) 6002 return true; 6003 6004 Self.Diag(QuestionLoc, diag::err_typecheck_cond_incompatible_operands) 6005 << LHS.get()->getType() << RHS.get()->getType() 6006 << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6007 return true; 6008 6009 case OR_Ambiguous: 6010 Self.Diag(QuestionLoc, diag::err_conditional_ambiguous_ovl) 6011 << LHS.get()->getType() << RHS.get()->getType() 6012 << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6013 // FIXME: Print the possible common types by printing the return types of 6014 // the viable candidates. 6015 break; 6016 6017 case OR_Deleted: 6018 llvm_unreachable("Conditional operator has only built-in overloads"); 6019 } 6020 return true; 6021 } 6022 6023 /// Perform an "extended" implicit conversion as returned by 6024 /// TryClassUnification. 6025 static bool ConvertForConditional(Sema &Self, ExprResult &E, QualType T) { 6026 InitializedEntity Entity = InitializedEntity::InitializeTemporary(T); 6027 InitializationKind Kind = 6028 InitializationKind::CreateCopy(E.get()->getBeginLoc(), SourceLocation()); 6029 Expr *Arg = E.get(); 6030 InitializationSequence InitSeq(Self, Entity, Kind, Arg); 6031 ExprResult Result = InitSeq.Perform(Self, Entity, Kind, Arg); 6032 if (Result.isInvalid()) 6033 return true; 6034 6035 E = Result; 6036 return false; 6037 } 6038 6039 // Check the condition operand of ?: to see if it is valid for the GCC 6040 // extension. 6041 static bool isValidVectorForConditionalCondition(ASTContext &Ctx, 6042 QualType CondTy) { 6043 if (!CondTy->isVectorType() && !CondTy->isExtVectorType()) 6044 return false; 6045 const QualType EltTy = 6046 cast<VectorType>(CondTy.getCanonicalType())->getElementType(); 6047 assert(!EltTy->isBooleanType() && !EltTy->isEnumeralType() && 6048 "Vectors cant be boolean or enum types"); 6049 return EltTy->isIntegralType(Ctx); 6050 } 6051 6052 QualType Sema::CheckVectorConditionalTypes(ExprResult &Cond, ExprResult &LHS, 6053 ExprResult &RHS, 6054 SourceLocation QuestionLoc) { 6055 LHS = DefaultFunctionArrayLvalueConversion(LHS.get()); 6056 RHS = DefaultFunctionArrayLvalueConversion(RHS.get()); 6057 6058 QualType CondType = Cond.get()->getType(); 6059 const auto *CondVT = CondType->castAs<VectorType>(); 6060 QualType CondElementTy = CondVT->getElementType(); 6061 unsigned CondElementCount = CondVT->getNumElements(); 6062 QualType LHSType = LHS.get()->getType(); 6063 const auto *LHSVT = LHSType->getAs<VectorType>(); 6064 QualType RHSType = RHS.get()->getType(); 6065 const auto *RHSVT = RHSType->getAs<VectorType>(); 6066 6067 QualType ResultType; 6068 6069 6070 if (LHSVT && RHSVT) { 6071 if (isa<ExtVectorType>(CondVT) != isa<ExtVectorType>(LHSVT)) { 6072 Diag(QuestionLoc, diag::err_conditional_vector_cond_result_mismatch) 6073 << /*isExtVector*/ isa<ExtVectorType>(CondVT); 6074 return {}; 6075 } 6076 6077 // If both are vector types, they must be the same type. 6078 if (!Context.hasSameType(LHSType, RHSType)) { 6079 Diag(QuestionLoc, diag::err_conditional_vector_mismatched) 6080 << LHSType << RHSType; 6081 return {}; 6082 } 6083 ResultType = LHSType; 6084 } else if (LHSVT || RHSVT) { 6085 ResultType = CheckVectorOperands( 6086 LHS, RHS, QuestionLoc, /*isCompAssign*/ false, /*AllowBothBool*/ true, 6087 /*AllowBoolConversions*/ false); 6088 if (ResultType.isNull()) 6089 return {}; 6090 } else { 6091 // Both are scalar. 6092 QualType ResultElementTy; 6093 LHSType = LHSType.getCanonicalType().getUnqualifiedType(); 6094 RHSType = RHSType.getCanonicalType().getUnqualifiedType(); 6095 6096 if (Context.hasSameType(LHSType, RHSType)) 6097 ResultElementTy = LHSType; 6098 else 6099 ResultElementTy = 6100 UsualArithmeticConversions(LHS, RHS, QuestionLoc, ACK_Conditional); 6101 6102 if (ResultElementTy->isEnumeralType()) { 6103 Diag(QuestionLoc, diag::err_conditional_vector_operand_type) 6104 << ResultElementTy; 6105 return {}; 6106 } 6107 if (CondType->isExtVectorType()) 6108 ResultType = 6109 Context.getExtVectorType(ResultElementTy, CondVT->getNumElements()); 6110 else 6111 ResultType = Context.getVectorType( 6112 ResultElementTy, CondVT->getNumElements(), VectorType::GenericVector); 6113 6114 LHS = ImpCastExprToType(LHS.get(), ResultType, CK_VectorSplat); 6115 RHS = ImpCastExprToType(RHS.get(), ResultType, CK_VectorSplat); 6116 } 6117 6118 assert(!ResultType.isNull() && ResultType->isVectorType() && 6119 (!CondType->isExtVectorType() || ResultType->isExtVectorType()) && 6120 "Result should have been a vector type"); 6121 auto *ResultVectorTy = ResultType->castAs<VectorType>(); 6122 QualType ResultElementTy = ResultVectorTy->getElementType(); 6123 unsigned ResultElementCount = ResultVectorTy->getNumElements(); 6124 6125 if (ResultElementCount != CondElementCount) { 6126 Diag(QuestionLoc, diag::err_conditional_vector_size) << CondType 6127 << ResultType; 6128 return {}; 6129 } 6130 6131 if (Context.getTypeSize(ResultElementTy) != 6132 Context.getTypeSize(CondElementTy)) { 6133 Diag(QuestionLoc, diag::err_conditional_vector_element_size) << CondType 6134 << ResultType; 6135 return {}; 6136 } 6137 6138 return ResultType; 6139 } 6140 6141 /// Check the operands of ?: under C++ semantics. 6142 /// 6143 /// See C++ [expr.cond]. Note that LHS is never null, even for the GNU x ?: y 6144 /// extension. In this case, LHS == Cond. (But they're not aliases.) 6145 /// 6146 /// This function also implements GCC's vector extension and the 6147 /// OpenCL/ext_vector_type extension for conditionals. The vector extensions 6148 /// permit the use of a?b:c where the type of a is that of a integer vector with 6149 /// the same number of elements and size as the vectors of b and c. If one of 6150 /// either b or c is a scalar it is implicitly converted to match the type of 6151 /// the vector. Otherwise the expression is ill-formed. If both b and c are 6152 /// scalars, then b and c are checked and converted to the type of a if 6153 /// possible. 6154 /// 6155 /// The expressions are evaluated differently for GCC's and OpenCL's extensions. 6156 /// For the GCC extension, the ?: operator is evaluated as 6157 /// (a[0] != 0 ? b[0] : c[0], .. , a[n] != 0 ? b[n] : c[n]). 6158 /// For the OpenCL extensions, the ?: operator is evaluated as 6159 /// (most-significant-bit-set(a[0]) ? b[0] : c[0], .. , 6160 /// most-significant-bit-set(a[n]) ? b[n] : c[n]). 6161 QualType Sema::CXXCheckConditionalOperands(ExprResult &Cond, ExprResult &LHS, 6162 ExprResult &RHS, ExprValueKind &VK, 6163 ExprObjectKind &OK, 6164 SourceLocation QuestionLoc) { 6165 // FIXME: Handle C99's complex types, block pointers and Obj-C++ interface 6166 // pointers. 6167 6168 // Assume r-value. 6169 VK = VK_PRValue; 6170 OK = OK_Ordinary; 6171 bool IsVectorConditional = 6172 isValidVectorForConditionalCondition(Context, Cond.get()->getType()); 6173 6174 // C++11 [expr.cond]p1 6175 // The first expression is contextually converted to bool. 6176 if (!Cond.get()->isTypeDependent()) { 6177 ExprResult CondRes = IsVectorConditional 6178 ? DefaultFunctionArrayLvalueConversion(Cond.get()) 6179 : CheckCXXBooleanCondition(Cond.get()); 6180 if (CondRes.isInvalid()) 6181 return QualType(); 6182 Cond = CondRes; 6183 } else { 6184 // To implement C++, the first expression typically doesn't alter the result 6185 // type of the conditional, however the GCC compatible vector extension 6186 // changes the result type to be that of the conditional. Since we cannot 6187 // know if this is a vector extension here, delay the conversion of the 6188 // LHS/RHS below until later. 6189 return Context.DependentTy; 6190 } 6191 6192 6193 // Either of the arguments dependent? 6194 if (LHS.get()->isTypeDependent() || RHS.get()->isTypeDependent()) 6195 return Context.DependentTy; 6196 6197 // C++11 [expr.cond]p2 6198 // If either the second or the third operand has type (cv) void, ... 6199 QualType LTy = LHS.get()->getType(); 6200 QualType RTy = RHS.get()->getType(); 6201 bool LVoid = LTy->isVoidType(); 6202 bool RVoid = RTy->isVoidType(); 6203 if (LVoid || RVoid) { 6204 // ... one of the following shall hold: 6205 // -- The second or the third operand (but not both) is a (possibly 6206 // parenthesized) throw-expression; the result is of the type 6207 // and value category of the other. 6208 bool LThrow = isa<CXXThrowExpr>(LHS.get()->IgnoreParenImpCasts()); 6209 bool RThrow = isa<CXXThrowExpr>(RHS.get()->IgnoreParenImpCasts()); 6210 6211 // Void expressions aren't legal in the vector-conditional expressions. 6212 if (IsVectorConditional) { 6213 SourceRange DiagLoc = 6214 LVoid ? LHS.get()->getSourceRange() : RHS.get()->getSourceRange(); 6215 bool IsThrow = LVoid ? LThrow : RThrow; 6216 Diag(DiagLoc.getBegin(), diag::err_conditional_vector_has_void) 6217 << DiagLoc << IsThrow; 6218 return QualType(); 6219 } 6220 6221 if (LThrow != RThrow) { 6222 Expr *NonThrow = LThrow ? RHS.get() : LHS.get(); 6223 VK = NonThrow->getValueKind(); 6224 // DR (no number yet): the result is a bit-field if the 6225 // non-throw-expression operand is a bit-field. 6226 OK = NonThrow->getObjectKind(); 6227 return NonThrow->getType(); 6228 } 6229 6230 // -- Both the second and third operands have type void; the result is of 6231 // type void and is a prvalue. 6232 if (LVoid && RVoid) 6233 return Context.VoidTy; 6234 6235 // Neither holds, error. 6236 Diag(QuestionLoc, diag::err_conditional_void_nonvoid) 6237 << (LVoid ? RTy : LTy) << (LVoid ? 0 : 1) 6238 << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6239 return QualType(); 6240 } 6241 6242 // Neither is void. 6243 if (IsVectorConditional) 6244 return CheckVectorConditionalTypes(Cond, LHS, RHS, QuestionLoc); 6245 6246 // C++11 [expr.cond]p3 6247 // Otherwise, if the second and third operand have different types, and 6248 // either has (cv) class type [...] an attempt is made to convert each of 6249 // those operands to the type of the other. 6250 if (!Context.hasSameType(LTy, RTy) && 6251 (LTy->isRecordType() || RTy->isRecordType())) { 6252 // These return true if a single direction is already ambiguous. 6253 QualType L2RType, R2LType; 6254 bool HaveL2R, HaveR2L; 6255 if (TryClassUnification(*this, LHS.get(), RHS.get(), QuestionLoc, HaveL2R, L2RType)) 6256 return QualType(); 6257 if (TryClassUnification(*this, RHS.get(), LHS.get(), QuestionLoc, HaveR2L, R2LType)) 6258 return QualType(); 6259 6260 // If both can be converted, [...] the program is ill-formed. 6261 if (HaveL2R && HaveR2L) { 6262 Diag(QuestionLoc, diag::err_conditional_ambiguous) 6263 << LTy << RTy << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6264 return QualType(); 6265 } 6266 6267 // If exactly one conversion is possible, that conversion is applied to 6268 // the chosen operand and the converted operands are used in place of the 6269 // original operands for the remainder of this section. 6270 if (HaveL2R) { 6271 if (ConvertForConditional(*this, LHS, L2RType) || LHS.isInvalid()) 6272 return QualType(); 6273 LTy = LHS.get()->getType(); 6274 } else if (HaveR2L) { 6275 if (ConvertForConditional(*this, RHS, R2LType) || RHS.isInvalid()) 6276 return QualType(); 6277 RTy = RHS.get()->getType(); 6278 } 6279 } 6280 6281 // C++11 [expr.cond]p3 6282 // if both are glvalues of the same value category and the same type except 6283 // for cv-qualification, an attempt is made to convert each of those 6284 // operands to the type of the other. 6285 // FIXME: 6286 // Resolving a defect in P0012R1: we extend this to cover all cases where 6287 // one of the operands is reference-compatible with the other, in order 6288 // to support conditionals between functions differing in noexcept. This 6289 // will similarly cover difference in array bounds after P0388R4. 6290 // FIXME: If LTy and RTy have a composite pointer type, should we convert to 6291 // that instead? 6292 ExprValueKind LVK = LHS.get()->getValueKind(); 6293 ExprValueKind RVK = RHS.get()->getValueKind(); 6294 if (!Context.hasSameType(LTy, RTy) && LVK == RVK && LVK != VK_PRValue) { 6295 // DerivedToBase was already handled by the class-specific case above. 6296 // FIXME: Should we allow ObjC conversions here? 6297 const ReferenceConversions AllowedConversions = 6298 ReferenceConversions::Qualification | 6299 ReferenceConversions::NestedQualification | 6300 ReferenceConversions::Function; 6301 6302 ReferenceConversions RefConv; 6303 if (CompareReferenceRelationship(QuestionLoc, LTy, RTy, &RefConv) == 6304 Ref_Compatible && 6305 !(RefConv & ~AllowedConversions) && 6306 // [...] subject to the constraint that the reference must bind 6307 // directly [...] 6308 !RHS.get()->refersToBitField() && !RHS.get()->refersToVectorElement()) { 6309 RHS = ImpCastExprToType(RHS.get(), LTy, CK_NoOp, RVK); 6310 RTy = RHS.get()->getType(); 6311 } else if (CompareReferenceRelationship(QuestionLoc, RTy, LTy, &RefConv) == 6312 Ref_Compatible && 6313 !(RefConv & ~AllowedConversions) && 6314 !LHS.get()->refersToBitField() && 6315 !LHS.get()->refersToVectorElement()) { 6316 LHS = ImpCastExprToType(LHS.get(), RTy, CK_NoOp, LVK); 6317 LTy = LHS.get()->getType(); 6318 } 6319 } 6320 6321 // C++11 [expr.cond]p4 6322 // If the second and third operands are glvalues of the same value 6323 // category and have the same type, the result is of that type and 6324 // value category and it is a bit-field if the second or the third 6325 // operand is a bit-field, or if both are bit-fields. 6326 // We only extend this to bitfields, not to the crazy other kinds of 6327 // l-values. 6328 bool Same = Context.hasSameType(LTy, RTy); 6329 if (Same && LVK == RVK && LVK != VK_PRValue && 6330 LHS.get()->isOrdinaryOrBitFieldObject() && 6331 RHS.get()->isOrdinaryOrBitFieldObject()) { 6332 VK = LHS.get()->getValueKind(); 6333 if (LHS.get()->getObjectKind() == OK_BitField || 6334 RHS.get()->getObjectKind() == OK_BitField) 6335 OK = OK_BitField; 6336 6337 // If we have function pointer types, unify them anyway to unify their 6338 // exception specifications, if any. 6339 if (LTy->isFunctionPointerType() || LTy->isMemberFunctionPointerType()) { 6340 Qualifiers Qs = LTy.getQualifiers(); 6341 LTy = FindCompositePointerType(QuestionLoc, LHS, RHS, 6342 /*ConvertArgs*/false); 6343 LTy = Context.getQualifiedType(LTy, Qs); 6344 6345 assert(!LTy.isNull() && "failed to find composite pointer type for " 6346 "canonically equivalent function ptr types"); 6347 assert(Context.hasSameType(LTy, RTy) && "bad composite pointer type"); 6348 } 6349 6350 return LTy; 6351 } 6352 6353 // C++11 [expr.cond]p5 6354 // Otherwise, the result is a prvalue. If the second and third operands 6355 // do not have the same type, and either has (cv) class type, ... 6356 if (!Same && (LTy->isRecordType() || RTy->isRecordType())) { 6357 // ... overload resolution is used to determine the conversions (if any) 6358 // to be applied to the operands. If the overload resolution fails, the 6359 // program is ill-formed. 6360 if (FindConditionalOverload(*this, LHS, RHS, QuestionLoc)) 6361 return QualType(); 6362 } 6363 6364 // C++11 [expr.cond]p6 6365 // Lvalue-to-rvalue, array-to-pointer, and function-to-pointer standard 6366 // conversions are performed on the second and third operands. 6367 LHS = DefaultFunctionArrayLvalueConversion(LHS.get()); 6368 RHS = DefaultFunctionArrayLvalueConversion(RHS.get()); 6369 if (LHS.isInvalid() || RHS.isInvalid()) 6370 return QualType(); 6371 LTy = LHS.get()->getType(); 6372 RTy = RHS.get()->getType(); 6373 6374 // After those conversions, one of the following shall hold: 6375 // -- The second and third operands have the same type; the result 6376 // is of that type. If the operands have class type, the result 6377 // is a prvalue temporary of the result type, which is 6378 // copy-initialized from either the second operand or the third 6379 // operand depending on the value of the first operand. 6380 if (Context.getCanonicalType(LTy) == Context.getCanonicalType(RTy)) { 6381 if (LTy->isRecordType()) { 6382 // The operands have class type. Make a temporary copy. 6383 InitializedEntity Entity = InitializedEntity::InitializeTemporary(LTy); 6384 6385 ExprResult LHSCopy = PerformCopyInitialization(Entity, 6386 SourceLocation(), 6387 LHS); 6388 if (LHSCopy.isInvalid()) 6389 return QualType(); 6390 6391 ExprResult RHSCopy = PerformCopyInitialization(Entity, 6392 SourceLocation(), 6393 RHS); 6394 if (RHSCopy.isInvalid()) 6395 return QualType(); 6396 6397 LHS = LHSCopy; 6398 RHS = RHSCopy; 6399 } 6400 6401 // If we have function pointer types, unify them anyway to unify their 6402 // exception specifications, if any. 6403 if (LTy->isFunctionPointerType() || LTy->isMemberFunctionPointerType()) { 6404 LTy = FindCompositePointerType(QuestionLoc, LHS, RHS); 6405 assert(!LTy.isNull() && "failed to find composite pointer type for " 6406 "canonically equivalent function ptr types"); 6407 } 6408 6409 return LTy; 6410 } 6411 6412 // Extension: conditional operator involving vector types. 6413 if (LTy->isVectorType() || RTy->isVectorType()) 6414 return CheckVectorOperands(LHS, RHS, QuestionLoc, /*isCompAssign*/false, 6415 /*AllowBothBool*/true, 6416 /*AllowBoolConversions*/false); 6417 6418 // -- The second and third operands have arithmetic or enumeration type; 6419 // the usual arithmetic conversions are performed to bring them to a 6420 // common type, and the result is of that type. 6421 if (LTy->isArithmeticType() && RTy->isArithmeticType()) { 6422 QualType ResTy = 6423 UsualArithmeticConversions(LHS, RHS, QuestionLoc, ACK_Conditional); 6424 if (LHS.isInvalid() || RHS.isInvalid()) 6425 return QualType(); 6426 if (ResTy.isNull()) { 6427 Diag(QuestionLoc, 6428 diag::err_typecheck_cond_incompatible_operands) << LTy << RTy 6429 << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6430 return QualType(); 6431 } 6432 6433 LHS = ImpCastExprToType(LHS.get(), ResTy, PrepareScalarCast(LHS, ResTy)); 6434 RHS = ImpCastExprToType(RHS.get(), ResTy, PrepareScalarCast(RHS, ResTy)); 6435 6436 return ResTy; 6437 } 6438 6439 // -- The second and third operands have pointer type, or one has pointer 6440 // type and the other is a null pointer constant, or both are null 6441 // pointer constants, at least one of which is non-integral; pointer 6442 // conversions and qualification conversions are performed to bring them 6443 // to their composite pointer type. The result is of the composite 6444 // pointer type. 6445 // -- The second and third operands have pointer to member type, or one has 6446 // pointer to member type and the other is a null pointer constant; 6447 // pointer to member conversions and qualification conversions are 6448 // performed to bring them to a common type, whose cv-qualification 6449 // shall match the cv-qualification of either the second or the third 6450 // operand. The result is of the common type. 6451 QualType Composite = FindCompositePointerType(QuestionLoc, LHS, RHS); 6452 if (!Composite.isNull()) 6453 return Composite; 6454 6455 // Similarly, attempt to find composite type of two objective-c pointers. 6456 Composite = FindCompositeObjCPointerType(LHS, RHS, QuestionLoc); 6457 if (LHS.isInvalid() || RHS.isInvalid()) 6458 return QualType(); 6459 if (!Composite.isNull()) 6460 return Composite; 6461 6462 // Check if we are using a null with a non-pointer type. 6463 if (DiagnoseConditionalForNull(LHS.get(), RHS.get(), QuestionLoc)) 6464 return QualType(); 6465 6466 Diag(QuestionLoc, diag::err_typecheck_cond_incompatible_operands) 6467 << LHS.get()->getType() << RHS.get()->getType() 6468 << LHS.get()->getSourceRange() << RHS.get()->getSourceRange(); 6469 return QualType(); 6470 } 6471 6472 static FunctionProtoType::ExceptionSpecInfo 6473 mergeExceptionSpecs(Sema &S, FunctionProtoType::ExceptionSpecInfo ESI1, 6474 FunctionProtoType::ExceptionSpecInfo ESI2, 6475 SmallVectorImpl<QualType> &ExceptionTypeStorage) { 6476 ExceptionSpecificationType EST1 = ESI1.Type; 6477 ExceptionSpecificationType EST2 = ESI2.Type; 6478 6479 // If either of them can throw anything, that is the result. 6480 if (EST1 == EST_None) return ESI1; 6481 if (EST2 == EST_None) return ESI2; 6482 if (EST1 == EST_MSAny) return ESI1; 6483 if (EST2 == EST_MSAny) return ESI2; 6484 if (EST1 == EST_NoexceptFalse) return ESI1; 6485 if (EST2 == EST_NoexceptFalse) return ESI2; 6486 6487 // If either of them is non-throwing, the result is the other. 6488 if (EST1 == EST_NoThrow) return ESI2; 6489 if (EST2 == EST_NoThrow) return ESI1; 6490 if (EST1 == EST_DynamicNone) return ESI2; 6491 if (EST2 == EST_DynamicNone) return ESI1; 6492 if (EST1 == EST_BasicNoexcept) return ESI2; 6493 if (EST2 == EST_BasicNoexcept) return ESI1; 6494 if (EST1 == EST_NoexceptTrue) return ESI2; 6495 if (EST2 == EST_NoexceptTrue) return ESI1; 6496 6497 // If we're left with value-dependent computed noexcept expressions, we're 6498 // stuck. Before C++17, we can just drop the exception specification entirely, 6499 // since it's not actually part of the canonical type. And this should never 6500 // happen in C++17, because it would mean we were computing the composite 6501 // pointer type of dependent types, which should never happen. 6502 if (EST1 == EST_DependentNoexcept || EST2 == EST_DependentNoexcept) { 6503 assert(!S.getLangOpts().CPlusPlus17 && 6504 "computing composite pointer type of dependent types"); 6505 return FunctionProtoType::ExceptionSpecInfo(); 6506 } 6507 6508 // Switch over the possibilities so that people adding new values know to 6509 // update this function. 6510 switch (EST1) { 6511 case EST_None: 6512 case EST_DynamicNone: 6513 case EST_MSAny: 6514 case EST_BasicNoexcept: 6515 case EST_DependentNoexcept: 6516 case EST_NoexceptFalse: 6517 case EST_NoexceptTrue: 6518 case EST_NoThrow: 6519 llvm_unreachable("handled above"); 6520 6521 case EST_Dynamic: { 6522 // This is the fun case: both exception specifications are dynamic. Form 6523 // the union of the two lists. 6524 assert(EST2 == EST_Dynamic && "other cases should already be handled"); 6525 llvm::SmallPtrSet<QualType, 8> Found; 6526 for (auto &Exceptions : {ESI1.Exceptions, ESI2.Exceptions}) 6527 for (QualType E : Exceptions) 6528 if (Found.insert(S.Context.getCanonicalType(E)).second) 6529 ExceptionTypeStorage.push_back(E); 6530 6531 FunctionProtoType::ExceptionSpecInfo Result(EST_Dynamic); 6532 Result.Exceptions = ExceptionTypeStorage; 6533 return Result; 6534 } 6535 6536 case EST_Unevaluated: 6537 case EST_Uninstantiated: 6538 case EST_Unparsed: 6539 llvm_unreachable("shouldn't see unresolved exception specifications here"); 6540 } 6541 6542 llvm_unreachable("invalid ExceptionSpecificationType"); 6543 } 6544 6545 /// Find a merged pointer type and convert the two expressions to it. 6546 /// 6547 /// This finds the composite pointer type for \p E1 and \p E2 according to 6548 /// C++2a [expr.type]p3. It converts both expressions to this type and returns 6549 /// it. It does not emit diagnostics (FIXME: that's not true if \p ConvertArgs 6550 /// is \c true). 6551 /// 6552 /// \param Loc The location of the operator requiring these two expressions to 6553 /// be converted to the composite pointer type. 6554 /// 6555 /// \param ConvertArgs If \c false, do not convert E1 and E2 to the target type. 6556 QualType Sema::FindCompositePointerType(SourceLocation Loc, 6557 Expr *&E1, Expr *&E2, 6558 bool ConvertArgs) { 6559 assert(getLangOpts().CPlusPlus && "This function assumes C++"); 6560 6561 // C++1z [expr]p14: 6562 // The composite pointer type of two operands p1 and p2 having types T1 6563 // and T2 6564 QualType T1 = E1->getType(), T2 = E2->getType(); 6565 6566 // where at least one is a pointer or pointer to member type or 6567 // std::nullptr_t is: 6568 bool T1IsPointerLike = T1->isAnyPointerType() || T1->isMemberPointerType() || 6569 T1->isNullPtrType(); 6570 bool T2IsPointerLike = T2->isAnyPointerType() || T2->isMemberPointerType() || 6571 T2->isNullPtrType(); 6572 if (!T1IsPointerLike && !T2IsPointerLike) 6573 return QualType(); 6574 6575 // - if both p1 and p2 are null pointer constants, std::nullptr_t; 6576 // This can't actually happen, following the standard, but we also use this 6577 // to implement the end of [expr.conv], which hits this case. 6578 // 6579 // - if either p1 or p2 is a null pointer constant, T2 or T1, respectively; 6580 if (T1IsPointerLike && 6581 E2->isNullPointerConstant(Context, Expr::NPC_ValueDependentIsNull)) { 6582 if (ConvertArgs) 6583 E2 = ImpCastExprToType(E2, T1, T1->isMemberPointerType() 6584 ? CK_NullToMemberPointer 6585 : CK_NullToPointer).get(); 6586 return T1; 6587 } 6588 if (T2IsPointerLike && 6589 E1->isNullPointerConstant(Context, Expr::NPC_ValueDependentIsNull)) { 6590 if (ConvertArgs) 6591 E1 = ImpCastExprToType(E1, T2, T2->isMemberPointerType() 6592 ? CK_NullToMemberPointer 6593 : CK_NullToPointer).get(); 6594 return T2; 6595 } 6596 6597 // Now both have to be pointers or member pointers. 6598 if (!T1IsPointerLike || !T2IsPointerLike) 6599 return QualType(); 6600 assert(!T1->isNullPtrType() && !T2->isNullPtrType() && 6601 "nullptr_t should be a null pointer constant"); 6602 6603 struct Step { 6604 enum Kind { Pointer, ObjCPointer, MemberPointer, Array } K; 6605 // Qualifiers to apply under the step kind. 6606 Qualifiers Quals; 6607 /// The class for a pointer-to-member; a constant array type with a bound 6608 /// (if any) for an array. 6609 const Type *ClassOrBound; 6610 6611 Step(Kind K, const Type *ClassOrBound = nullptr) 6612 : K(K), Quals(), ClassOrBound(ClassOrBound) {} 6613 QualType rebuild(ASTContext &Ctx, QualType T) const { 6614 T = Ctx.getQualifiedType(T, Quals); 6615 switch (K) { 6616 case Pointer: 6617 return Ctx.getPointerType(T); 6618 case MemberPointer: 6619 return Ctx.getMemberPointerType(T, ClassOrBound); 6620 case ObjCPointer: 6621 return Ctx.getObjCObjectPointerType(T); 6622 case Array: 6623 if (auto *CAT = cast_or_null<ConstantArrayType>(ClassOrBound)) 6624 return Ctx.getConstantArrayType(T, CAT->getSize(), nullptr, 6625 ArrayType::Normal, 0); 6626 else 6627 return Ctx.getIncompleteArrayType(T, ArrayType::Normal, 0); 6628 } 6629 llvm_unreachable("unknown step kind"); 6630 } 6631 }; 6632 6633 SmallVector<Step, 8> Steps; 6634 6635 // - if T1 is "pointer to cv1 C1" and T2 is "pointer to cv2 C2", where C1 6636 // is reference-related to C2 or C2 is reference-related to C1 (8.6.3), 6637 // the cv-combined type of T1 and T2 or the cv-combined type of T2 and T1, 6638 // respectively; 6639 // - if T1 is "pointer to member of C1 of type cv1 U1" and T2 is "pointer 6640 // to member of C2 of type cv2 U2" for some non-function type U, where 6641 // C1 is reference-related to C2 or C2 is reference-related to C1, the 6642 // cv-combined type of T2 and T1 or the cv-combined type of T1 and T2, 6643 // respectively; 6644 // - if T1 and T2 are similar types (4.5), the cv-combined type of T1 and 6645 // T2; 6646 // 6647 // Dismantle T1 and T2 to simultaneously determine whether they are similar 6648 // and to prepare to form the cv-combined type if so. 6649 QualType Composite1 = T1; 6650 QualType Composite2 = T2; 6651 unsigned NeedConstBefore = 0; 6652 while (true) { 6653 assert(!Composite1.isNull() && !Composite2.isNull()); 6654 6655 Qualifiers Q1, Q2; 6656 Composite1 = Context.getUnqualifiedArrayType(Composite1, Q1); 6657 Composite2 = Context.getUnqualifiedArrayType(Composite2, Q2); 6658 6659 // Top-level qualifiers are ignored. Merge at all lower levels. 6660 if (!Steps.empty()) { 6661 // Find the qualifier union: (approximately) the unique minimal set of 6662 // qualifiers that is compatible with both types. 6663 Qualifiers Quals = Qualifiers::fromCVRUMask(Q1.getCVRUQualifiers() | 6664 Q2.getCVRUQualifiers()); 6665 6666 // Under one level of pointer or pointer-to-member, we can change to an 6667 // unambiguous compatible address space. 6668 if (Q1.getAddressSpace() == Q2.getAddressSpace()) { 6669 Quals.setAddressSpace(Q1.getAddressSpace()); 6670 } else if (Steps.size() == 1) { 6671 bool MaybeQ1 = Q1.isAddressSpaceSupersetOf(Q2); 6672 bool MaybeQ2 = Q2.isAddressSpaceSupersetOf(Q1); 6673 if (MaybeQ1 == MaybeQ2) 6674 return QualType(); // No unique best address space. 6675 Quals.setAddressSpace(MaybeQ1 ? Q1.getAddressSpace() 6676 : Q2.getAddressSpace()); 6677 } else { 6678 return QualType(); 6679 } 6680 6681 // FIXME: In C, we merge __strong and none to __strong at the top level. 6682 if (Q1.getObjCGCAttr() == Q2.getObjCGCAttr()) 6683 Quals.setObjCGCAttr(Q1.getObjCGCAttr()); 6684 else if (T1->isVoidPointerType() || T2->isVoidPointerType()) 6685 assert(Steps.size() == 1); 6686 else 6687 return QualType(); 6688 6689 // Mismatched lifetime qualifiers never compatibly include each other. 6690 if (Q1.getObjCLifetime() == Q2.getObjCLifetime()) 6691 Quals.setObjCLifetime(Q1.getObjCLifetime()); 6692 else if (T1->isVoidPointerType() || T2->isVoidPointerType()) 6693 assert(Steps.size() == 1); 6694 else 6695 return QualType(); 6696 6697 Steps.back().Quals = Quals; 6698 if (Q1 != Quals || Q2 != Quals) 6699 NeedConstBefore = Steps.size() - 1; 6700 } 6701 6702 // FIXME: Can we unify the following with UnwrapSimilarTypes? 6703 const PointerType *Ptr1, *Ptr2; 6704 if ((Ptr1 = Composite1->getAs<PointerType>()) && 6705 (Ptr2 = Composite2->getAs<PointerType>())) { 6706 Composite1 = Ptr1->getPointeeType(); 6707 Composite2 = Ptr2->getPointeeType(); 6708 Steps.emplace_back(Step::Pointer); 6709 continue; 6710 } 6711 6712 const ObjCObjectPointerType *ObjPtr1, *ObjPtr2; 6713 if ((ObjPtr1 = Composite1->getAs<ObjCObjectPointerType>()) && 6714 (ObjPtr2 = Composite2->getAs<ObjCObjectPointerType>())) { 6715 Composite1 = ObjPtr1->getPointeeType(); 6716 Composite2 = ObjPtr2->getPointeeType(); 6717 Steps.emplace_back(Step::ObjCPointer); 6718 continue; 6719 } 6720 6721 const MemberPointerType *MemPtr1, *MemPtr2; 6722 if ((MemPtr1 = Composite1->getAs<MemberPointerType>()) && 6723 (MemPtr2 = Composite2->getAs<MemberPointerType>())) { 6724 Composite1 = MemPtr1->getPointeeType(); 6725 Composite2 = MemPtr2->getPointeeType(); 6726 6727 // At the top level, we can perform a base-to-derived pointer-to-member 6728 // conversion: 6729 // 6730 // - [...] where C1 is reference-related to C2 or C2 is 6731 // reference-related to C1 6732 // 6733 // (Note that the only kinds of reference-relatedness in scope here are 6734 // "same type or derived from".) At any other level, the class must 6735 // exactly match. 6736 const Type *Class = nullptr; 6737 QualType Cls1(MemPtr1->getClass(), 0); 6738 QualType Cls2(MemPtr2->getClass(), 0); 6739 if (Context.hasSameType(Cls1, Cls2)) 6740 Class = MemPtr1->getClass(); 6741 else if (Steps.empty()) 6742 Class = IsDerivedFrom(Loc, Cls1, Cls2) ? MemPtr1->getClass() : 6743 IsDerivedFrom(Loc, Cls2, Cls1) ? MemPtr2->getClass() : nullptr; 6744 if (!Class) 6745 return QualType(); 6746 6747 Steps.emplace_back(Step::MemberPointer, Class); 6748 continue; 6749 } 6750 6751 // Special case: at the top level, we can decompose an Objective-C pointer 6752 // and a 'cv void *'. Unify the qualifiers. 6753 if (Steps.empty() && ((Composite1->isVoidPointerType() && 6754 Composite2->isObjCObjectPointerType()) || 6755 (Composite1->isObjCObjectPointerType() && 6756 Composite2->isVoidPointerType()))) { 6757 Composite1 = Composite1->getPointeeType(); 6758 Composite2 = Composite2->getPointeeType(); 6759 Steps.emplace_back(Step::Pointer); 6760 continue; 6761 } 6762 6763 // FIXME: arrays 6764 6765 // FIXME: block pointer types? 6766 6767 // Cannot unwrap any more types. 6768 break; 6769 } 6770 6771 // - if T1 or T2 is "pointer to noexcept function" and the other type is 6772 // "pointer to function", where the function types are otherwise the same, 6773 // "pointer to function"; 6774 // - if T1 or T2 is "pointer to member of C1 of type function", the other 6775 // type is "pointer to member of C2 of type noexcept function", and C1 6776 // is reference-related to C2 or C2 is reference-related to C1, where 6777 // the function types are otherwise the same, "pointer to member of C2 of 6778 // type function" or "pointer to member of C1 of type function", 6779 // respectively; 6780 // 6781 // We also support 'noreturn' here, so as a Clang extension we generalize the 6782 // above to: 6783 // 6784 // - [Clang] If T1 and T2 are both of type "pointer to function" or 6785 // "pointer to member function" and the pointee types can be unified 6786 // by a function pointer conversion, that conversion is applied 6787 // before checking the following rules. 6788 // 6789 // We've already unwrapped down to the function types, and we want to merge 6790 // rather than just convert, so do this ourselves rather than calling 6791 // IsFunctionConversion. 6792 // 6793 // FIXME: In order to match the standard wording as closely as possible, we 6794 // currently only do this under a single level of pointers. Ideally, we would 6795 // allow this in general, and set NeedConstBefore to the relevant depth on 6796 // the side(s) where we changed anything. If we permit that, we should also 6797 // consider this conversion when determining type similarity and model it as 6798 // a qualification conversion. 6799 if (Steps.size() == 1) { 6800 if (auto *FPT1 = Composite1->getAs<FunctionProtoType>()) { 6801 if (auto *FPT2 = Composite2->getAs<FunctionProtoType>()) { 6802 FunctionProtoType::ExtProtoInfo EPI1 = FPT1->getExtProtoInfo(); 6803 FunctionProtoType::ExtProtoInfo EPI2 = FPT2->getExtProtoInfo(); 6804 6805 // The result is noreturn if both operands are. 6806 bool Noreturn = 6807 EPI1.ExtInfo.getNoReturn() && EPI2.ExtInfo.getNoReturn(); 6808 EPI1.ExtInfo = EPI1.ExtInfo.withNoReturn(Noreturn); 6809 EPI2.ExtInfo = EPI2.ExtInfo.withNoReturn(Noreturn); 6810 6811 // The result is nothrow if both operands are. 6812 SmallVector<QualType, 8> ExceptionTypeStorage; 6813 EPI1.ExceptionSpec = EPI2.ExceptionSpec = 6814 mergeExceptionSpecs(*this, EPI1.ExceptionSpec, EPI2.ExceptionSpec, 6815 ExceptionTypeStorage); 6816 6817 Composite1 = Context.getFunctionType(FPT1->getReturnType(), 6818 FPT1->getParamTypes(), EPI1); 6819 Composite2 = Context.getFunctionType(FPT2->getReturnType(), 6820 FPT2->getParamTypes(), EPI2); 6821 } 6822 } 6823 } 6824 6825 // There are some more conversions we can perform under exactly one pointer. 6826 if (Steps.size() == 1 && Steps.front().K == Step::Pointer && 6827 !Context.hasSameType(Composite1, Composite2)) { 6828 // - if T1 or T2 is "pointer to cv1 void" and the other type is 6829 // "pointer to cv2 T", where T is an object type or void, 6830 // "pointer to cv12 void", where cv12 is the union of cv1 and cv2; 6831 if (Composite1->isVoidType() && Composite2->isObjectType()) 6832 Composite2 = Composite1; 6833 else if (Composite2->isVoidType() && Composite1->isObjectType()) 6834 Composite1 = Composite2; 6835 // - if T1 is "pointer to cv1 C1" and T2 is "pointer to cv2 C2", where C1 6836 // is reference-related to C2 or C2 is reference-related to C1 (8.6.3), 6837 // the cv-combined type of T1 and T2 or the cv-combined type of T2 and 6838 // T1, respectively; 6839 // 6840 // The "similar type" handling covers all of this except for the "T1 is a 6841 // base class of T2" case in the definition of reference-related. 6842 else if (IsDerivedFrom(Loc, Composite1, Composite2)) 6843 Composite1 = Composite2; 6844 else if (IsDerivedFrom(Loc, Composite2, Composite1)) 6845 Composite2 = Composite1; 6846 } 6847 6848 // At this point, either the inner types are the same or we have failed to 6849 // find a composite pointer type. 6850 if (!Context.hasSameType(Composite1, Composite2)) 6851 return QualType(); 6852 6853 // Per C++ [conv.qual]p3, add 'const' to every level before the last 6854 // differing qualifier. 6855 for (unsigned I = 0; I != NeedConstBefore; ++I) 6856 Steps[I].Quals.addConst(); 6857 6858 // Rebuild the composite type. 6859 QualType Composite = Composite1; 6860 for (auto &S : llvm::reverse(Steps)) 6861 Composite = S.rebuild(Context, Composite); 6862 6863 if (ConvertArgs) { 6864 // Convert the expressions to the composite pointer type. 6865 InitializedEntity Entity = 6866 InitializedEntity::InitializeTemporary(Composite); 6867 InitializationKind Kind = 6868 InitializationKind::CreateCopy(Loc, SourceLocation()); 6869 6870 InitializationSequence E1ToC(*this, Entity, Kind, E1); 6871 if (!E1ToC) 6872 return QualType(); 6873 6874 InitializationSequence E2ToC(*this, Entity, Kind, E2); 6875 if (!E2ToC) 6876 return QualType(); 6877 6878 // FIXME: Let the caller know if these fail to avoid duplicate diagnostics. 6879 ExprResult E1Result = E1ToC.Perform(*this, Entity, Kind, E1); 6880 if (E1Result.isInvalid()) 6881 return QualType(); 6882 E1 = E1Result.get(); 6883 6884 ExprResult E2Result = E2ToC.Perform(*this, Entity, Kind, E2); 6885 if (E2Result.isInvalid()) 6886 return QualType(); 6887 E2 = E2Result.get(); 6888 } 6889 6890 return Composite; 6891 } 6892 6893 ExprResult Sema::MaybeBindToTemporary(Expr *E) { 6894 if (!E) 6895 return ExprError(); 6896 6897 assert(!isa<CXXBindTemporaryExpr>(E) && "Double-bound temporary?"); 6898 6899 // If the result is a glvalue, we shouldn't bind it. 6900 if (!E->isPRValue()) 6901 return E; 6902 6903 // In ARC, calls that return a retainable type can return retained, 6904 // in which case we have to insert a consuming cast. 6905 if (getLangOpts().ObjCAutoRefCount && 6906 E->getType()->isObjCRetainableType()) { 6907 6908 bool ReturnsRetained; 6909 6910 // For actual calls, we compute this by examining the type of the 6911 // called value. 6912 if (CallExpr *Call = dyn_cast<CallExpr>(E)) { 6913 Expr *Callee = Call->getCallee()->IgnoreParens(); 6914 QualType T = Callee->getType(); 6915 6916 if (T == Context.BoundMemberTy) { 6917 // Handle pointer-to-members. 6918 if (BinaryOperator *BinOp = dyn_cast<BinaryOperator>(Callee)) 6919 T = BinOp->getRHS()->getType(); 6920 else if (MemberExpr *Mem = dyn_cast<MemberExpr>(Callee)) 6921 T = Mem->getMemberDecl()->getType(); 6922 } 6923 6924 if (const PointerType *Ptr = T->getAs<PointerType>()) 6925 T = Ptr->getPointeeType(); 6926 else if (const BlockPointerType *Ptr = T->getAs<BlockPointerType>()) 6927 T = Ptr->getPointeeType(); 6928 else if (const MemberPointerType *MemPtr = T->getAs<MemberPointerType>()) 6929 T = MemPtr->getPointeeType(); 6930 6931 auto *FTy = T->castAs<FunctionType>(); 6932 ReturnsRetained = FTy->getExtInfo().getProducesResult(); 6933 6934 // ActOnStmtExpr arranges things so that StmtExprs of retainable 6935 // type always produce a +1 object. 6936 } else if (isa<StmtExpr>(E)) { 6937 ReturnsRetained = true; 6938 6939 // We hit this case with the lambda conversion-to-block optimization; 6940 // we don't want any extra casts here. 6941 } else if (isa<CastExpr>(E) && 6942 isa<BlockExpr>(cast<CastExpr>(E)->getSubExpr())) { 6943 return E; 6944 6945 // For message sends and property references, we try to find an 6946 // actual method. FIXME: we should infer retention by selector in 6947 // cases where we don't have an actual method. 6948 } else { 6949 ObjCMethodDecl *D = nullptr; 6950 if (ObjCMessageExpr *Send = dyn_cast<ObjCMessageExpr>(E)) { 6951 D = Send->getMethodDecl(); 6952 } else if (ObjCBoxedExpr *BoxedExpr = dyn_cast<ObjCBoxedExpr>(E)) { 6953 D = BoxedExpr->getBoxingMethod(); 6954 } else if (ObjCArrayLiteral *ArrayLit = dyn_cast<ObjCArrayLiteral>(E)) { 6955 // Don't do reclaims if we're using the zero-element array 6956 // constant. 6957 if (ArrayLit->getNumElements() == 0 && 6958 Context.getLangOpts().ObjCRuntime.hasEmptyCollections()) 6959 return E; 6960 6961 D = ArrayLit->getArrayWithObjectsMethod(); 6962 } else if (ObjCDictionaryLiteral *DictLit 6963 = dyn_cast<ObjCDictionaryLiteral>(E)) { 6964 // Don't do reclaims if we're using the zero-element dictionary 6965 // constant. 6966 if (DictLit->getNumElements() == 0 && 6967 Context.getLangOpts().ObjCRuntime.hasEmptyCollections()) 6968 return E; 6969 6970 D = DictLit->getDictWithObjectsMethod(); 6971 } 6972 6973 ReturnsRetained = (D && D->hasAttr<NSReturnsRetainedAttr>()); 6974 6975 // Don't do reclaims on performSelector calls; despite their 6976 // return type, the invoked method doesn't necessarily actually 6977 // return an object. 6978 if (!ReturnsRetained && 6979 D && D->getMethodFamily() == OMF_performSelector) 6980 return E; 6981 } 6982 6983 // Don't reclaim an object of Class type. 6984 if (!ReturnsRetained && E->getType()->isObjCARCImplicitlyUnretainedType()) 6985 return E; 6986 6987 Cleanup.setExprNeedsCleanups(true); 6988 6989 CastKind ck = (ReturnsRetained ? CK_ARCConsumeObject 6990 : CK_ARCReclaimReturnedObject); 6991 return ImplicitCastExpr::Create(Context, E->getType(), ck, E, nullptr, 6992 VK_PRValue, FPOptionsOverride()); 6993 } 6994 6995 if (E->getType().isDestructedType() == QualType::DK_nontrivial_c_struct) 6996 Cleanup.setExprNeedsCleanups(true); 6997 6998 if (!getLangOpts().CPlusPlus) 6999 return E; 7000 7001 // Search for the base element type (cf. ASTContext::getBaseElementType) with 7002 // a fast path for the common case that the type is directly a RecordType. 7003 const Type *T = Context.getCanonicalType(E->getType().getTypePtr()); 7004 const RecordType *RT = nullptr; 7005 while (!RT) { 7006 switch (T->getTypeClass()) { 7007 case Type::Record: 7008 RT = cast<RecordType>(T); 7009 break; 7010 case Type::ConstantArray: 7011 case Type::IncompleteArray: 7012 case Type::VariableArray: 7013 case Type::DependentSizedArray: 7014 T = cast<ArrayType>(T)->getElementType().getTypePtr(); 7015 break; 7016 default: 7017 return E; 7018 } 7019 } 7020 7021 // That should be enough to guarantee that this type is complete, if we're 7022 // not processing a decltype expression. 7023 CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 7024 if (RD->isInvalidDecl() || RD->isDependentContext()) 7025 return E; 7026 7027 bool IsDecltype = ExprEvalContexts.back().ExprContext == 7028 ExpressionEvaluationContextRecord::EK_Decltype; 7029 CXXDestructorDecl *Destructor = IsDecltype ? nullptr : LookupDestructor(RD); 7030 7031 if (Destructor) { 7032 MarkFunctionReferenced(E->getExprLoc(), Destructor); 7033 CheckDestructorAccess(E->getExprLoc(), Destructor, 7034 PDiag(diag::err_access_dtor_temp) 7035 << E->getType()); 7036 if (DiagnoseUseOfDecl(Destructor, E->getExprLoc())) 7037 return ExprError(); 7038 7039 // If destructor is trivial, we can avoid the extra copy. 7040 if (Destructor->isTrivial()) 7041 return E; 7042 7043 // We need a cleanup, but we don't need to remember the temporary. 7044 Cleanup.setExprNeedsCleanups(true); 7045 } 7046 7047 CXXTemporary *Temp = CXXTemporary::Create(Context, Destructor); 7048 CXXBindTemporaryExpr *Bind = CXXBindTemporaryExpr::Create(Context, Temp, E); 7049 7050 if (IsDecltype) 7051 ExprEvalContexts.back().DelayedDecltypeBinds.push_back(Bind); 7052 7053 return Bind; 7054 } 7055 7056 ExprResult 7057 Sema::MaybeCreateExprWithCleanups(ExprResult SubExpr) { 7058 if (SubExpr.isInvalid()) 7059 return ExprError(); 7060 7061 return MaybeCreateExprWithCleanups(SubExpr.get()); 7062 } 7063 7064 Expr *Sema::MaybeCreateExprWithCleanups(Expr *SubExpr) { 7065 assert(SubExpr && "subexpression can't be null!"); 7066 7067 CleanupVarDeclMarking(); 7068 7069 unsigned FirstCleanup = ExprEvalContexts.back().NumCleanupObjects; 7070 assert(ExprCleanupObjects.size() >= FirstCleanup); 7071 assert(Cleanup.exprNeedsCleanups() || 7072 ExprCleanupObjects.size() == FirstCleanup); 7073 if (!Cleanup.exprNeedsCleanups()) 7074 return SubExpr; 7075 7076 auto Cleanups = llvm::makeArrayRef(ExprCleanupObjects.begin() + FirstCleanup, 7077 ExprCleanupObjects.size() - FirstCleanup); 7078 7079 auto *E = ExprWithCleanups::Create( 7080 Context, SubExpr, Cleanup.cleanupsHaveSideEffects(), Cleanups); 7081 DiscardCleanupsInEvaluationContext(); 7082 7083 return E; 7084 } 7085 7086 Stmt *Sema::MaybeCreateStmtWithCleanups(Stmt *SubStmt) { 7087 assert(SubStmt && "sub-statement can't be null!"); 7088 7089 CleanupVarDeclMarking(); 7090 7091 if (!Cleanup.exprNeedsCleanups()) 7092 return SubStmt; 7093 7094 // FIXME: In order to attach the temporaries, wrap the statement into 7095 // a StmtExpr; currently this is only used for asm statements. 7096 // This is hacky, either create a new CXXStmtWithTemporaries statement or 7097 // a new AsmStmtWithTemporaries. 7098 CompoundStmt *CompStmt = CompoundStmt::Create( 7099 Context, SubStmt, SourceLocation(), SourceLocation()); 7100 Expr *E = new (Context) 7101 StmtExpr(CompStmt, Context.VoidTy, SourceLocation(), SourceLocation(), 7102 /*FIXME TemplateDepth=*/0); 7103 return MaybeCreateExprWithCleanups(E); 7104 } 7105 7106 /// Process the expression contained within a decltype. For such expressions, 7107 /// certain semantic checks on temporaries are delayed until this point, and 7108 /// are omitted for the 'topmost' call in the decltype expression. If the 7109 /// topmost call bound a temporary, strip that temporary off the expression. 7110 ExprResult Sema::ActOnDecltypeExpression(Expr *E) { 7111 assert(ExprEvalContexts.back().ExprContext == 7112 ExpressionEvaluationContextRecord::EK_Decltype && 7113 "not in a decltype expression"); 7114 7115 ExprResult Result = CheckPlaceholderExpr(E); 7116 if (Result.isInvalid()) 7117 return ExprError(); 7118 E = Result.get(); 7119 7120 // C++11 [expr.call]p11: 7121 // If a function call is a prvalue of object type, 7122 // -- if the function call is either 7123 // -- the operand of a decltype-specifier, or 7124 // -- the right operand of a comma operator that is the operand of a 7125 // decltype-specifier, 7126 // a temporary object is not introduced for the prvalue. 7127 7128 // Recursively rebuild ParenExprs and comma expressions to strip out the 7129 // outermost CXXBindTemporaryExpr, if any. 7130 if (ParenExpr *PE = dyn_cast<ParenExpr>(E)) { 7131 ExprResult SubExpr = ActOnDecltypeExpression(PE->getSubExpr()); 7132 if (SubExpr.isInvalid()) 7133 return ExprError(); 7134 if (SubExpr.get() == PE->getSubExpr()) 7135 return E; 7136 return ActOnParenExpr(PE->getLParen(), PE->getRParen(), SubExpr.get()); 7137 } 7138 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 7139 if (BO->getOpcode() == BO_Comma) { 7140 ExprResult RHS = ActOnDecltypeExpression(BO->getRHS()); 7141 if (RHS.isInvalid()) 7142 return ExprError(); 7143 if (RHS.get() == BO->getRHS()) 7144 return E; 7145 return BinaryOperator::Create(Context, BO->getLHS(), RHS.get(), BO_Comma, 7146 BO->getType(), BO->getValueKind(), 7147 BO->getObjectKind(), BO->getOperatorLoc(), 7148 BO->getFPFeatures(getLangOpts())); 7149 } 7150 } 7151 7152 CXXBindTemporaryExpr *TopBind = dyn_cast<CXXBindTemporaryExpr>(E); 7153 CallExpr *TopCall = TopBind ? dyn_cast<CallExpr>(TopBind->getSubExpr()) 7154 : nullptr; 7155 if (TopCall) 7156 E = TopCall; 7157 else 7158 TopBind = nullptr; 7159 7160 // Disable the special decltype handling now. 7161 ExprEvalContexts.back().ExprContext = 7162 ExpressionEvaluationContextRecord::EK_Other; 7163 7164 Result = CheckUnevaluatedOperand(E); 7165 if (Result.isInvalid()) 7166 return ExprError(); 7167 E = Result.get(); 7168 7169 // In MS mode, don't perform any extra checking of call return types within a 7170 // decltype expression. 7171 if (getLangOpts().MSVCCompat) 7172 return E; 7173 7174 // Perform the semantic checks we delayed until this point. 7175 for (unsigned I = 0, N = ExprEvalContexts.back().DelayedDecltypeCalls.size(); 7176 I != N; ++I) { 7177 CallExpr *Call = ExprEvalContexts.back().DelayedDecltypeCalls[I]; 7178 if (Call == TopCall) 7179 continue; 7180 7181 if (CheckCallReturnType(Call->getCallReturnType(Context), 7182 Call->getBeginLoc(), Call, Call->getDirectCallee())) 7183 return ExprError(); 7184 } 7185 7186 // Now all relevant types are complete, check the destructors are accessible 7187 // and non-deleted, and annotate them on the temporaries. 7188 for (unsigned I = 0, N = ExprEvalContexts.back().DelayedDecltypeBinds.size(); 7189 I != N; ++I) { 7190 CXXBindTemporaryExpr *Bind = 7191 ExprEvalContexts.back().DelayedDecltypeBinds[I]; 7192 if (Bind == TopBind) 7193 continue; 7194 7195 CXXTemporary *Temp = Bind->getTemporary(); 7196 7197 CXXRecordDecl *RD = 7198 Bind->getType()->getBaseElementTypeUnsafe()->getAsCXXRecordDecl(); 7199 CXXDestructorDecl *Destructor = LookupDestructor(RD); 7200 Temp->setDestructor(Destructor); 7201 7202 MarkFunctionReferenced(Bind->getExprLoc(), Destructor); 7203 CheckDestructorAccess(Bind->getExprLoc(), Destructor, 7204 PDiag(diag::err_access_dtor_temp) 7205 << Bind->getType()); 7206 if (DiagnoseUseOfDecl(Destructor, Bind->getExprLoc())) 7207 return ExprError(); 7208 7209 // We need a cleanup, but we don't need to remember the temporary. 7210 Cleanup.setExprNeedsCleanups(true); 7211 } 7212 7213 // Possibly strip off the top CXXBindTemporaryExpr. 7214 return E; 7215 } 7216 7217 /// Note a set of 'operator->' functions that were used for a member access. 7218 static void noteOperatorArrows(Sema &S, 7219 ArrayRef<FunctionDecl *> OperatorArrows) { 7220 unsigned SkipStart = OperatorArrows.size(), SkipCount = 0; 7221 // FIXME: Make this configurable? 7222 unsigned Limit = 9; 7223 if (OperatorArrows.size() > Limit) { 7224 // Produce Limit-1 normal notes and one 'skipping' note. 7225 SkipStart = (Limit - 1) / 2 + (Limit - 1) % 2; 7226 SkipCount = OperatorArrows.size() - (Limit - 1); 7227 } 7228 7229 for (unsigned I = 0; I < OperatorArrows.size(); /**/) { 7230 if (I == SkipStart) { 7231 S.Diag(OperatorArrows[I]->getLocation(), 7232 diag::note_operator_arrows_suppressed) 7233 << SkipCount; 7234 I += SkipCount; 7235 } else { 7236 S.Diag(OperatorArrows[I]->getLocation(), diag::note_operator_arrow_here) 7237 << OperatorArrows[I]->getCallResultType(); 7238 ++I; 7239 } 7240 } 7241 } 7242 7243 ExprResult Sema::ActOnStartCXXMemberReference(Scope *S, Expr *Base, 7244 SourceLocation OpLoc, 7245 tok::TokenKind OpKind, 7246 ParsedType &ObjectType, 7247 bool &MayBePseudoDestructor) { 7248 // Since this might be a postfix expression, get rid of ParenListExprs. 7249 ExprResult Result = MaybeConvertParenListExprToParenExpr(S, Base); 7250 if (Result.isInvalid()) return ExprError(); 7251 Base = Result.get(); 7252 7253 Result = CheckPlaceholderExpr(Base); 7254 if (Result.isInvalid()) return ExprError(); 7255 Base = Result.get(); 7256 7257 QualType BaseType = Base->getType(); 7258 MayBePseudoDestructor = false; 7259 if (BaseType->isDependentType()) { 7260 // If we have a pointer to a dependent type and are using the -> operator, 7261 // the object type is the type that the pointer points to. We might still 7262 // have enough information about that type to do something useful. 7263 if (OpKind == tok::arrow) 7264 if (const PointerType *Ptr = BaseType->getAs<PointerType>()) 7265 BaseType = Ptr->getPointeeType(); 7266 7267 ObjectType = ParsedType::make(BaseType); 7268 MayBePseudoDestructor = true; 7269 return Base; 7270 } 7271 7272 // C++ [over.match.oper]p8: 7273 // [...] When operator->returns, the operator-> is applied to the value 7274 // returned, with the original second operand. 7275 if (OpKind == tok::arrow) { 7276 QualType StartingType = BaseType; 7277 bool NoArrowOperatorFound = false; 7278 bool FirstIteration = true; 7279 FunctionDecl *CurFD = dyn_cast<FunctionDecl>(CurContext); 7280 // The set of types we've considered so far. 7281 llvm::SmallPtrSet<CanQualType,8> CTypes; 7282 SmallVector<FunctionDecl*, 8> OperatorArrows; 7283 CTypes.insert(Context.getCanonicalType(BaseType)); 7284 7285 while (BaseType->isRecordType()) { 7286 if (OperatorArrows.size() >= getLangOpts().ArrowDepth) { 7287 Diag(OpLoc, diag::err_operator_arrow_depth_exceeded) 7288 << StartingType << getLangOpts().ArrowDepth << Base->getSourceRange(); 7289 noteOperatorArrows(*this, OperatorArrows); 7290 Diag(OpLoc, diag::note_operator_arrow_depth) 7291 << getLangOpts().ArrowDepth; 7292 return ExprError(); 7293 } 7294 7295 Result = BuildOverloadedArrowExpr( 7296 S, Base, OpLoc, 7297 // When in a template specialization and on the first loop iteration, 7298 // potentially give the default diagnostic (with the fixit in a 7299 // separate note) instead of having the error reported back to here 7300 // and giving a diagnostic with a fixit attached to the error itself. 7301 (FirstIteration && CurFD && CurFD->isFunctionTemplateSpecialization()) 7302 ? nullptr 7303 : &NoArrowOperatorFound); 7304 if (Result.isInvalid()) { 7305 if (NoArrowOperatorFound) { 7306 if (FirstIteration) { 7307 Diag(OpLoc, diag::err_typecheck_member_reference_suggestion) 7308 << BaseType << 1 << Base->getSourceRange() 7309 << FixItHint::CreateReplacement(OpLoc, "."); 7310 OpKind = tok::period; 7311 break; 7312 } 7313 Diag(OpLoc, diag::err_typecheck_member_reference_arrow) 7314 << BaseType << Base->getSourceRange(); 7315 CallExpr *CE = dyn_cast<CallExpr>(Base); 7316 if (Decl *CD = (CE ? CE->getCalleeDecl() : nullptr)) { 7317 Diag(CD->getBeginLoc(), 7318 diag::note_member_reference_arrow_from_operator_arrow); 7319 } 7320 } 7321 return ExprError(); 7322 } 7323 Base = Result.get(); 7324 if (CXXOperatorCallExpr *OpCall = dyn_cast<CXXOperatorCallExpr>(Base)) 7325 OperatorArrows.push_back(OpCall->getDirectCallee()); 7326 BaseType = Base->getType(); 7327 CanQualType CBaseType = Context.getCanonicalType(BaseType); 7328 if (!CTypes.insert(CBaseType).second) { 7329 Diag(OpLoc, diag::err_operator_arrow_circular) << StartingType; 7330 noteOperatorArrows(*this, OperatorArrows); 7331 return ExprError(); 7332 } 7333 FirstIteration = false; 7334 } 7335 7336 if (OpKind == tok::arrow) { 7337 if (BaseType->isPointerType()) 7338 BaseType = BaseType->getPointeeType(); 7339 else if (auto *AT = Context.getAsArrayType(BaseType)) 7340 BaseType = AT->getElementType(); 7341 } 7342 } 7343 7344 // Objective-C properties allow "." access on Objective-C pointer types, 7345 // so adjust the base type to the object type itself. 7346 if (BaseType->isObjCObjectPointerType()) 7347 BaseType = BaseType->getPointeeType(); 7348 7349 // C++ [basic.lookup.classref]p2: 7350 // [...] If the type of the object expression is of pointer to scalar 7351 // type, the unqualified-id is looked up in the context of the complete 7352 // postfix-expression. 7353 // 7354 // This also indicates that we could be parsing a pseudo-destructor-name. 7355 // Note that Objective-C class and object types can be pseudo-destructor 7356 // expressions or normal member (ivar or property) access expressions, and 7357 // it's legal for the type to be incomplete if this is a pseudo-destructor 7358 // call. We'll do more incomplete-type checks later in the lookup process, 7359 // so just skip this check for ObjC types. 7360 if (!BaseType->isRecordType()) { 7361 ObjectType = ParsedType::make(BaseType); 7362 MayBePseudoDestructor = true; 7363 return Base; 7364 } 7365 7366 // The object type must be complete (or dependent), or 7367 // C++11 [expr.prim.general]p3: 7368 // Unlike the object expression in other contexts, *this is not required to 7369 // be of complete type for purposes of class member access (5.2.5) outside 7370 // the member function body. 7371 if (!BaseType->isDependentType() && 7372 !isThisOutsideMemberFunctionBody(BaseType) && 7373 RequireCompleteType(OpLoc, BaseType, diag::err_incomplete_member_access)) 7374 return ExprError(); 7375 7376 // C++ [basic.lookup.classref]p2: 7377 // If the id-expression in a class member access (5.2.5) is an 7378 // unqualified-id, and the type of the object expression is of a class 7379 // type C (or of pointer to a class type C), the unqualified-id is looked 7380 // up in the scope of class C. [...] 7381 ObjectType = ParsedType::make(BaseType); 7382 return Base; 7383 } 7384 7385 static bool CheckArrow(Sema &S, QualType &ObjectType, Expr *&Base, 7386 tok::TokenKind &OpKind, SourceLocation OpLoc) { 7387 if (Base->hasPlaceholderType()) { 7388 ExprResult result = S.CheckPlaceholderExpr(Base); 7389 if (result.isInvalid()) return true; 7390 Base = result.get(); 7391 } 7392 ObjectType = Base->getType(); 7393 7394 // C++ [expr.pseudo]p2: 7395 // The left-hand side of the dot operator shall be of scalar type. The 7396 // left-hand side of the arrow operator shall be of pointer to scalar type. 7397 // This scalar type is the object type. 7398 // Note that this is rather different from the normal handling for the 7399 // arrow operator. 7400 if (OpKind == tok::arrow) { 7401 // The operator requires a prvalue, so perform lvalue conversions. 7402 // Only do this if we might plausibly end with a pointer, as otherwise 7403 // this was likely to be intended to be a '.'. 7404 if (ObjectType->isPointerType() || ObjectType->isArrayType() || 7405 ObjectType->isFunctionType()) { 7406 ExprResult BaseResult = S.DefaultFunctionArrayLvalueConversion(Base); 7407 if (BaseResult.isInvalid()) 7408 return true; 7409 Base = BaseResult.get(); 7410 ObjectType = Base->getType(); 7411 } 7412 7413 if (const PointerType *Ptr = ObjectType->getAs<PointerType>()) { 7414 ObjectType = Ptr->getPointeeType(); 7415 } else if (!Base->isTypeDependent()) { 7416 // The user wrote "p->" when they probably meant "p."; fix it. 7417 S.Diag(OpLoc, diag::err_typecheck_member_reference_suggestion) 7418 << ObjectType << true 7419 << FixItHint::CreateReplacement(OpLoc, "."); 7420 if (S.isSFINAEContext()) 7421 return true; 7422 7423 OpKind = tok::period; 7424 } 7425 } 7426 7427 return false; 7428 } 7429 7430 /// Check if it's ok to try and recover dot pseudo destructor calls on 7431 /// pointer objects. 7432 static bool 7433 canRecoverDotPseudoDestructorCallsOnPointerObjects(Sema &SemaRef, 7434 QualType DestructedType) { 7435 // If this is a record type, check if its destructor is callable. 7436 if (auto *RD = DestructedType->getAsCXXRecordDecl()) { 7437 if (RD->hasDefinition()) 7438 if (CXXDestructorDecl *D = SemaRef.LookupDestructor(RD)) 7439 return SemaRef.CanUseDecl(D, /*TreatUnavailableAsInvalid=*/false); 7440 return false; 7441 } 7442 7443 // Otherwise, check if it's a type for which it's valid to use a pseudo-dtor. 7444 return DestructedType->isDependentType() || DestructedType->isScalarType() || 7445 DestructedType->isVectorType(); 7446 } 7447 7448 ExprResult Sema::BuildPseudoDestructorExpr(Expr *Base, 7449 SourceLocation OpLoc, 7450 tok::TokenKind OpKind, 7451 const CXXScopeSpec &SS, 7452 TypeSourceInfo *ScopeTypeInfo, 7453 SourceLocation CCLoc, 7454 SourceLocation TildeLoc, 7455 PseudoDestructorTypeStorage Destructed) { 7456 TypeSourceInfo *DestructedTypeInfo = Destructed.getTypeSourceInfo(); 7457 7458 QualType ObjectType; 7459 if (CheckArrow(*this, ObjectType, Base, OpKind, OpLoc)) 7460 return ExprError(); 7461 7462 if (!ObjectType->isDependentType() && !ObjectType->isScalarType() && 7463 !ObjectType->isVectorType()) { 7464 if (getLangOpts().MSVCCompat && ObjectType->isVoidType()) 7465 Diag(OpLoc, diag::ext_pseudo_dtor_on_void) << Base->getSourceRange(); 7466 else { 7467 Diag(OpLoc, diag::err_pseudo_dtor_base_not_scalar) 7468 << ObjectType << Base->getSourceRange(); 7469 return ExprError(); 7470 } 7471 } 7472 7473 // C++ [expr.pseudo]p2: 7474 // [...] The cv-unqualified versions of the object type and of the type 7475 // designated by the pseudo-destructor-name shall be the same type. 7476 if (DestructedTypeInfo) { 7477 QualType DestructedType = DestructedTypeInfo->getType(); 7478 SourceLocation DestructedTypeStart 7479 = DestructedTypeInfo->getTypeLoc().getLocalSourceRange().getBegin(); 7480 if (!DestructedType->isDependentType() && !ObjectType->isDependentType()) { 7481 if (!Context.hasSameUnqualifiedType(DestructedType, ObjectType)) { 7482 // Detect dot pseudo destructor calls on pointer objects, e.g.: 7483 // Foo *foo; 7484 // foo.~Foo(); 7485 if (OpKind == tok::period && ObjectType->isPointerType() && 7486 Context.hasSameUnqualifiedType(DestructedType, 7487 ObjectType->getPointeeType())) { 7488 auto Diagnostic = 7489 Diag(OpLoc, diag::err_typecheck_member_reference_suggestion) 7490 << ObjectType << /*IsArrow=*/0 << Base->getSourceRange(); 7491 7492 // Issue a fixit only when the destructor is valid. 7493 if (canRecoverDotPseudoDestructorCallsOnPointerObjects( 7494 *this, DestructedType)) 7495 Diagnostic << FixItHint::CreateReplacement(OpLoc, "->"); 7496 7497 // Recover by setting the object type to the destructed type and the 7498 // operator to '->'. 7499 ObjectType = DestructedType; 7500 OpKind = tok::arrow; 7501 } else { 7502 Diag(DestructedTypeStart, diag::err_pseudo_dtor_type_mismatch) 7503 << ObjectType << DestructedType << Base->getSourceRange() 7504 << DestructedTypeInfo->getTypeLoc().getLocalSourceRange(); 7505 7506 // Recover by setting the destructed type to the object type. 7507 DestructedType = ObjectType; 7508 DestructedTypeInfo = 7509 Context.getTrivialTypeSourceInfo(ObjectType, DestructedTypeStart); 7510 Destructed = PseudoDestructorTypeStorage(DestructedTypeInfo); 7511 } 7512 } else if (DestructedType.getObjCLifetime() != 7513 ObjectType.getObjCLifetime()) { 7514 7515 if (DestructedType.getObjCLifetime() == Qualifiers::OCL_None) { 7516 // Okay: just pretend that the user provided the correctly-qualified 7517 // type. 7518 } else { 7519 Diag(DestructedTypeStart, diag::err_arc_pseudo_dtor_inconstant_quals) 7520 << ObjectType << DestructedType << Base->getSourceRange() 7521 << DestructedTypeInfo->getTypeLoc().getLocalSourceRange(); 7522 } 7523 7524 // Recover by setting the destructed type to the object type. 7525 DestructedType = ObjectType; 7526 DestructedTypeInfo = Context.getTrivialTypeSourceInfo(ObjectType, 7527 DestructedTypeStart); 7528 Destructed = PseudoDestructorTypeStorage(DestructedTypeInfo); 7529 } 7530 } 7531 } 7532 7533 // C++ [expr.pseudo]p2: 7534 // [...] Furthermore, the two type-names in a pseudo-destructor-name of the 7535 // form 7536 // 7537 // ::[opt] nested-name-specifier[opt] type-name :: ~ type-name 7538 // 7539 // shall designate the same scalar type. 7540 if (ScopeTypeInfo) { 7541 QualType ScopeType = ScopeTypeInfo->getType(); 7542 if (!ScopeType->isDependentType() && !ObjectType->isDependentType() && 7543 !Context.hasSameUnqualifiedType(ScopeType, ObjectType)) { 7544 7545 Diag(ScopeTypeInfo->getTypeLoc().getLocalSourceRange().getBegin(), 7546 diag::err_pseudo_dtor_type_mismatch) 7547 << ObjectType << ScopeType << Base->getSourceRange() 7548 << ScopeTypeInfo->getTypeLoc().getLocalSourceRange(); 7549 7550 ScopeType = QualType(); 7551 ScopeTypeInfo = nullptr; 7552 } 7553 } 7554 7555 Expr *Result 7556 = new (Context) CXXPseudoDestructorExpr(Context, Base, 7557 OpKind == tok::arrow, OpLoc, 7558 SS.getWithLocInContext(Context), 7559 ScopeTypeInfo, 7560 CCLoc, 7561 TildeLoc, 7562 Destructed); 7563 7564 return Result; 7565 } 7566 7567 ExprResult Sema::ActOnPseudoDestructorExpr(Scope *S, Expr *Base, 7568 SourceLocation OpLoc, 7569 tok::TokenKind OpKind, 7570 CXXScopeSpec &SS, 7571 UnqualifiedId &FirstTypeName, 7572 SourceLocation CCLoc, 7573 SourceLocation TildeLoc, 7574 UnqualifiedId &SecondTypeName) { 7575 assert((FirstTypeName.getKind() == UnqualifiedIdKind::IK_TemplateId || 7576 FirstTypeName.getKind() == UnqualifiedIdKind::IK_Identifier) && 7577 "Invalid first type name in pseudo-destructor"); 7578 assert((SecondTypeName.getKind() == UnqualifiedIdKind::IK_TemplateId || 7579 SecondTypeName.getKind() == UnqualifiedIdKind::IK_Identifier) && 7580 "Invalid second type name in pseudo-destructor"); 7581 7582 QualType ObjectType; 7583 if (CheckArrow(*this, ObjectType, Base, OpKind, OpLoc)) 7584 return ExprError(); 7585 7586 // Compute the object type that we should use for name lookup purposes. Only 7587 // record types and dependent types matter. 7588 ParsedType ObjectTypePtrForLookup; 7589 if (!SS.isSet()) { 7590 if (ObjectType->isRecordType()) 7591 ObjectTypePtrForLookup = ParsedType::make(ObjectType); 7592 else if (ObjectType->isDependentType()) 7593 ObjectTypePtrForLookup = ParsedType::make(Context.DependentTy); 7594 } 7595 7596 // Convert the name of the type being destructed (following the ~) into a 7597 // type (with source-location information). 7598 QualType DestructedType; 7599 TypeSourceInfo *DestructedTypeInfo = nullptr; 7600 PseudoDestructorTypeStorage Destructed; 7601 if (SecondTypeName.getKind() == UnqualifiedIdKind::IK_Identifier) { 7602 ParsedType T = getTypeName(*SecondTypeName.Identifier, 7603 SecondTypeName.StartLocation, 7604 S, &SS, true, false, ObjectTypePtrForLookup, 7605 /*IsCtorOrDtorName*/true); 7606 if (!T && 7607 ((SS.isSet() && !computeDeclContext(SS, false)) || 7608 (!SS.isSet() && ObjectType->isDependentType()))) { 7609 // The name of the type being destroyed is a dependent name, and we 7610 // couldn't find anything useful in scope. Just store the identifier and 7611 // it's location, and we'll perform (qualified) name lookup again at 7612 // template instantiation time. 7613 Destructed = PseudoDestructorTypeStorage(SecondTypeName.Identifier, 7614 SecondTypeName.StartLocation); 7615 } else if (!T) { 7616 Diag(SecondTypeName.StartLocation, 7617 diag::err_pseudo_dtor_destructor_non_type) 7618 << SecondTypeName.Identifier << ObjectType; 7619 if (isSFINAEContext()) 7620 return ExprError(); 7621 7622 // Recover by assuming we had the right type all along. 7623 DestructedType = ObjectType; 7624 } else 7625 DestructedType = GetTypeFromParser(T, &DestructedTypeInfo); 7626 } else { 7627 // Resolve the template-id to a type. 7628 TemplateIdAnnotation *TemplateId = SecondTypeName.TemplateId; 7629 ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(), 7630 TemplateId->NumArgs); 7631 TypeResult T = ActOnTemplateIdType(S, 7632 SS, 7633 TemplateId->TemplateKWLoc, 7634 TemplateId->Template, 7635 TemplateId->Name, 7636 TemplateId->TemplateNameLoc, 7637 TemplateId->LAngleLoc, 7638 TemplateArgsPtr, 7639 TemplateId->RAngleLoc, 7640 /*IsCtorOrDtorName*/true); 7641 if (T.isInvalid() || !T.get()) { 7642 // Recover by assuming we had the right type all along. 7643 DestructedType = ObjectType; 7644 } else 7645 DestructedType = GetTypeFromParser(T.get(), &DestructedTypeInfo); 7646 } 7647 7648 // If we've performed some kind of recovery, (re-)build the type source 7649 // information. 7650 if (!DestructedType.isNull()) { 7651 if (!DestructedTypeInfo) 7652 DestructedTypeInfo = Context.getTrivialTypeSourceInfo(DestructedType, 7653 SecondTypeName.StartLocation); 7654 Destructed = PseudoDestructorTypeStorage(DestructedTypeInfo); 7655 } 7656 7657 // Convert the name of the scope type (the type prior to '::') into a type. 7658 TypeSourceInfo *ScopeTypeInfo = nullptr; 7659 QualType ScopeType; 7660 if (FirstTypeName.getKind() == UnqualifiedIdKind::IK_TemplateId || 7661 FirstTypeName.Identifier) { 7662 if (FirstTypeName.getKind() == UnqualifiedIdKind::IK_Identifier) { 7663 ParsedType T = getTypeName(*FirstTypeName.Identifier, 7664 FirstTypeName.StartLocation, 7665 S, &SS, true, false, ObjectTypePtrForLookup, 7666 /*IsCtorOrDtorName*/true); 7667 if (!T) { 7668 Diag(FirstTypeName.StartLocation, 7669 diag::err_pseudo_dtor_destructor_non_type) 7670 << FirstTypeName.Identifier << ObjectType; 7671 7672 if (isSFINAEContext()) 7673 return ExprError(); 7674 7675 // Just drop this type. It's unnecessary anyway. 7676 ScopeType = QualType(); 7677 } else 7678 ScopeType = GetTypeFromParser(T, &ScopeTypeInfo); 7679 } else { 7680 // Resolve the template-id to a type. 7681 TemplateIdAnnotation *TemplateId = FirstTypeName.TemplateId; 7682 ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(), 7683 TemplateId->NumArgs); 7684 TypeResult T = ActOnTemplateIdType(S, 7685 SS, 7686 TemplateId->TemplateKWLoc, 7687 TemplateId->Template, 7688 TemplateId->Name, 7689 TemplateId->TemplateNameLoc, 7690 TemplateId->LAngleLoc, 7691 TemplateArgsPtr, 7692 TemplateId->RAngleLoc, 7693 /*IsCtorOrDtorName*/true); 7694 if (T.isInvalid() || !T.get()) { 7695 // Recover by dropping this type. 7696 ScopeType = QualType(); 7697 } else 7698 ScopeType = GetTypeFromParser(T.get(), &ScopeTypeInfo); 7699 } 7700 } 7701 7702 if (!ScopeType.isNull() && !ScopeTypeInfo) 7703 ScopeTypeInfo = Context.getTrivialTypeSourceInfo(ScopeType, 7704 FirstTypeName.StartLocation); 7705 7706 7707 return BuildPseudoDestructorExpr(Base, OpLoc, OpKind, SS, 7708 ScopeTypeInfo, CCLoc, TildeLoc, 7709 Destructed); 7710 } 7711 7712 ExprResult Sema::ActOnPseudoDestructorExpr(Scope *S, Expr *Base, 7713 SourceLocation OpLoc, 7714 tok::TokenKind OpKind, 7715 SourceLocation TildeLoc, 7716 const DeclSpec& DS) { 7717 QualType ObjectType; 7718 if (CheckArrow(*this, ObjectType, Base, OpKind, OpLoc)) 7719 return ExprError(); 7720 7721 if (DS.getTypeSpecType() == DeclSpec::TST_decltype_auto) { 7722 Diag(DS.getTypeSpecTypeLoc(), diag::err_decltype_auto_invalid); 7723 return true; 7724 } 7725 7726 QualType T = BuildDecltypeType(DS.getRepAsExpr(), DS.getTypeSpecTypeLoc(), 7727 false); 7728 7729 TypeLocBuilder TLB; 7730 DecltypeTypeLoc DecltypeTL = TLB.push<DecltypeTypeLoc>(T); 7731 DecltypeTL.setNameLoc(DS.getTypeSpecTypeLoc()); 7732 TypeSourceInfo *DestructedTypeInfo = TLB.getTypeSourceInfo(Context, T); 7733 PseudoDestructorTypeStorage Destructed(DestructedTypeInfo); 7734 7735 return BuildPseudoDestructorExpr(Base, OpLoc, OpKind, CXXScopeSpec(), 7736 nullptr, SourceLocation(), TildeLoc, 7737 Destructed); 7738 } 7739 7740 ExprResult Sema::BuildCXXMemberCallExpr(Expr *E, NamedDecl *FoundDecl, 7741 CXXConversionDecl *Method, 7742 bool HadMultipleCandidates) { 7743 // Convert the expression to match the conversion function's implicit object 7744 // parameter. 7745 ExprResult Exp = PerformObjectArgumentInitialization(E, /*Qualifier=*/nullptr, 7746 FoundDecl, Method); 7747 if (Exp.isInvalid()) 7748 return true; 7749 7750 if (Method->getParent()->isLambda() && 7751 Method->getConversionType()->isBlockPointerType()) { 7752 // This is a lambda conversion to block pointer; check if the argument 7753 // was a LambdaExpr. 7754 Expr *SubE = E; 7755 CastExpr *CE = dyn_cast<CastExpr>(SubE); 7756 if (CE && CE->getCastKind() == CK_NoOp) 7757 SubE = CE->getSubExpr(); 7758 SubE = SubE->IgnoreParens(); 7759 if (CXXBindTemporaryExpr *BE = dyn_cast<CXXBindTemporaryExpr>(SubE)) 7760 SubE = BE->getSubExpr(); 7761 if (isa<LambdaExpr>(SubE)) { 7762 // For the conversion to block pointer on a lambda expression, we 7763 // construct a special BlockLiteral instead; this doesn't really make 7764 // a difference in ARC, but outside of ARC the resulting block literal 7765 // follows the normal lifetime rules for block literals instead of being 7766 // autoreleased. 7767 PushExpressionEvaluationContext( 7768 ExpressionEvaluationContext::PotentiallyEvaluated); 7769 ExprResult BlockExp = BuildBlockForLambdaConversion( 7770 Exp.get()->getExprLoc(), Exp.get()->getExprLoc(), Method, Exp.get()); 7771 PopExpressionEvaluationContext(); 7772 7773 // FIXME: This note should be produced by a CodeSynthesisContext. 7774 if (BlockExp.isInvalid()) 7775 Diag(Exp.get()->getExprLoc(), diag::note_lambda_to_block_conv); 7776 return BlockExp; 7777 } 7778 } 7779 7780 MemberExpr *ME = 7781 BuildMemberExpr(Exp.get(), /*IsArrow=*/false, SourceLocation(), 7782 NestedNameSpecifierLoc(), SourceLocation(), Method, 7783 DeclAccessPair::make(FoundDecl, FoundDecl->getAccess()), 7784 HadMultipleCandidates, DeclarationNameInfo(), 7785 Context.BoundMemberTy, VK_PRValue, OK_Ordinary); 7786 7787 QualType ResultType = Method->getReturnType(); 7788 ExprValueKind VK = Expr::getValueKindForType(ResultType); 7789 ResultType = ResultType.getNonLValueExprType(Context); 7790 7791 CXXMemberCallExpr *CE = CXXMemberCallExpr::Create( 7792 Context, ME, /*Args=*/{}, ResultType, VK, Exp.get()->getEndLoc(), 7793 CurFPFeatureOverrides()); 7794 7795 if (CheckFunctionCall(Method, CE, 7796 Method->getType()->castAs<FunctionProtoType>())) 7797 return ExprError(); 7798 7799 return CheckForImmediateInvocation(CE, CE->getMethodDecl()); 7800 } 7801 7802 ExprResult Sema::BuildCXXNoexceptExpr(SourceLocation KeyLoc, Expr *Operand, 7803 SourceLocation RParen) { 7804 // If the operand is an unresolved lookup expression, the expression is ill- 7805 // formed per [over.over]p1, because overloaded function names cannot be used 7806 // without arguments except in explicit contexts. 7807 ExprResult R = CheckPlaceholderExpr(Operand); 7808 if (R.isInvalid()) 7809 return R; 7810 7811 R = CheckUnevaluatedOperand(R.get()); 7812 if (R.isInvalid()) 7813 return ExprError(); 7814 7815 Operand = R.get(); 7816 7817 if (!inTemplateInstantiation() && !Operand->isInstantiationDependent() && 7818 Operand->HasSideEffects(Context, false)) { 7819 // The expression operand for noexcept is in an unevaluated expression 7820 // context, so side effects could result in unintended consequences. 7821 Diag(Operand->getExprLoc(), diag::warn_side_effects_unevaluated_context); 7822 } 7823 7824 CanThrowResult CanThrow = canThrow(Operand); 7825 return new (Context) 7826 CXXNoexceptExpr(Context.BoolTy, Operand, CanThrow, KeyLoc, RParen); 7827 } 7828 7829 ExprResult Sema::ActOnNoexceptExpr(SourceLocation KeyLoc, SourceLocation, 7830 Expr *Operand, SourceLocation RParen) { 7831 return BuildCXXNoexceptExpr(KeyLoc, Operand, RParen); 7832 } 7833 7834 static void MaybeDecrementCount( 7835 Expr *E, llvm::DenseMap<const VarDecl *, int> &RefsMinusAssignments) { 7836 DeclRefExpr *LHS = nullptr; 7837 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 7838 if (BO->getLHS()->getType()->isDependentType() || 7839 BO->getRHS()->getType()->isDependentType()) { 7840 if (BO->getOpcode() != BO_Assign) 7841 return; 7842 } else if (!BO->isAssignmentOp()) 7843 return; 7844 LHS = dyn_cast<DeclRefExpr>(BO->getLHS()); 7845 } else if (CXXOperatorCallExpr *COCE = dyn_cast<CXXOperatorCallExpr>(E)) { 7846 if (COCE->getOperator() != OO_Equal) 7847 return; 7848 LHS = dyn_cast<DeclRefExpr>(COCE->getArg(0)); 7849 } 7850 if (!LHS) 7851 return; 7852 VarDecl *VD = dyn_cast<VarDecl>(LHS->getDecl()); 7853 if (!VD) 7854 return; 7855 auto iter = RefsMinusAssignments.find(VD); 7856 if (iter == RefsMinusAssignments.end()) 7857 return; 7858 iter->getSecond()--; 7859 } 7860 7861 /// Perform the conversions required for an expression used in a 7862 /// context that ignores the result. 7863 ExprResult Sema::IgnoredValueConversions(Expr *E) { 7864 MaybeDecrementCount(E, RefsMinusAssignments); 7865 7866 if (E->hasPlaceholderType()) { 7867 ExprResult result = CheckPlaceholderExpr(E); 7868 if (result.isInvalid()) return E; 7869 E = result.get(); 7870 } 7871 7872 // C99 6.3.2.1: 7873 // [Except in specific positions,] an lvalue that does not have 7874 // array type is converted to the value stored in the 7875 // designated object (and is no longer an lvalue). 7876 if (E->isPRValue()) { 7877 // In C, function designators (i.e. expressions of function type) 7878 // are r-values, but we still want to do function-to-pointer decay 7879 // on them. This is both technically correct and convenient for 7880 // some clients. 7881 if (!getLangOpts().CPlusPlus && E->getType()->isFunctionType()) 7882 return DefaultFunctionArrayConversion(E); 7883 7884 return E; 7885 } 7886 7887 if (getLangOpts().CPlusPlus) { 7888 // The C++11 standard defines the notion of a discarded-value expression; 7889 // normally, we don't need to do anything to handle it, but if it is a 7890 // volatile lvalue with a special form, we perform an lvalue-to-rvalue 7891 // conversion. 7892 if (getLangOpts().CPlusPlus11 && E->isReadIfDiscardedInCPlusPlus11()) { 7893 ExprResult Res = DefaultLvalueConversion(E); 7894 if (Res.isInvalid()) 7895 return E; 7896 E = Res.get(); 7897 } else { 7898 // Per C++2a [expr.ass]p5, a volatile assignment is not deprecated if 7899 // it occurs as a discarded-value expression. 7900 CheckUnusedVolatileAssignment(E); 7901 } 7902 7903 // C++1z: 7904 // If the expression is a prvalue after this optional conversion, the 7905 // temporary materialization conversion is applied. 7906 // 7907 // We skip this step: IR generation is able to synthesize the storage for 7908 // itself in the aggregate case, and adding the extra node to the AST is 7909 // just clutter. 7910 // FIXME: We don't emit lifetime markers for the temporaries due to this. 7911 // FIXME: Do any other AST consumers care about this? 7912 return E; 7913 } 7914 7915 // GCC seems to also exclude expressions of incomplete enum type. 7916 if (const EnumType *T = E->getType()->getAs<EnumType>()) { 7917 if (!T->getDecl()->isComplete()) { 7918 // FIXME: stupid workaround for a codegen bug! 7919 E = ImpCastExprToType(E, Context.VoidTy, CK_ToVoid).get(); 7920 return E; 7921 } 7922 } 7923 7924 ExprResult Res = DefaultFunctionArrayLvalueConversion(E); 7925 if (Res.isInvalid()) 7926 return E; 7927 E = Res.get(); 7928 7929 if (!E->getType()->isVoidType()) 7930 RequireCompleteType(E->getExprLoc(), E->getType(), 7931 diag::err_incomplete_type); 7932 return E; 7933 } 7934 7935 ExprResult Sema::CheckUnevaluatedOperand(Expr *E) { 7936 // Per C++2a [expr.ass]p5, a volatile assignment is not deprecated if 7937 // it occurs as an unevaluated operand. 7938 CheckUnusedVolatileAssignment(E); 7939 7940 return E; 7941 } 7942 7943 // If we can unambiguously determine whether Var can never be used 7944 // in a constant expression, return true. 7945 // - if the variable and its initializer are non-dependent, then 7946 // we can unambiguously check if the variable is a constant expression. 7947 // - if the initializer is not value dependent - we can determine whether 7948 // it can be used to initialize a constant expression. If Init can not 7949 // be used to initialize a constant expression we conclude that Var can 7950 // never be a constant expression. 7951 // - FXIME: if the initializer is dependent, we can still do some analysis and 7952 // identify certain cases unambiguously as non-const by using a Visitor: 7953 // - such as those that involve odr-use of a ParmVarDecl, involve a new 7954 // delete, lambda-expr, dynamic-cast, reinterpret-cast etc... 7955 static inline bool VariableCanNeverBeAConstantExpression(VarDecl *Var, 7956 ASTContext &Context) { 7957 if (isa<ParmVarDecl>(Var)) return true; 7958 const VarDecl *DefVD = nullptr; 7959 7960 // If there is no initializer - this can not be a constant expression. 7961 if (!Var->getAnyInitializer(DefVD)) return true; 7962 assert(DefVD); 7963 if (DefVD->isWeak()) return false; 7964 EvaluatedStmt *Eval = DefVD->ensureEvaluatedStmt(); 7965 7966 Expr *Init = cast<Expr>(Eval->Value); 7967 7968 if (Var->getType()->isDependentType() || Init->isValueDependent()) { 7969 // FIXME: Teach the constant evaluator to deal with the non-dependent parts 7970 // of value-dependent expressions, and use it here to determine whether the 7971 // initializer is a potential constant expression. 7972 return false; 7973 } 7974 7975 return !Var->isUsableInConstantExpressions(Context); 7976 } 7977 7978 /// Check if the current lambda has any potential captures 7979 /// that must be captured by any of its enclosing lambdas that are ready to 7980 /// capture. If there is a lambda that can capture a nested 7981 /// potential-capture, go ahead and do so. Also, check to see if any 7982 /// variables are uncaptureable or do not involve an odr-use so do not 7983 /// need to be captured. 7984 7985 static void CheckIfAnyEnclosingLambdasMustCaptureAnyPotentialCaptures( 7986 Expr *const FE, LambdaScopeInfo *const CurrentLSI, Sema &S) { 7987 7988 assert(!S.isUnevaluatedContext()); 7989 assert(S.CurContext->isDependentContext()); 7990 #ifndef NDEBUG 7991 DeclContext *DC = S.CurContext; 7992 while (DC && isa<CapturedDecl>(DC)) 7993 DC = DC->getParent(); 7994 assert( 7995 CurrentLSI->CallOperator == DC && 7996 "The current call operator must be synchronized with Sema's CurContext"); 7997 #endif // NDEBUG 7998 7999 const bool IsFullExprInstantiationDependent = FE->isInstantiationDependent(); 8000 8001 // All the potentially captureable variables in the current nested 8002 // lambda (within a generic outer lambda), must be captured by an 8003 // outer lambda that is enclosed within a non-dependent context. 8004 CurrentLSI->visitPotentialCaptures([&] (VarDecl *Var, Expr *VarExpr) { 8005 // If the variable is clearly identified as non-odr-used and the full 8006 // expression is not instantiation dependent, only then do we not 8007 // need to check enclosing lambda's for speculative captures. 8008 // For e.g.: 8009 // Even though 'x' is not odr-used, it should be captured. 8010 // int test() { 8011 // const int x = 10; 8012 // auto L = [=](auto a) { 8013 // (void) +x + a; 8014 // }; 8015 // } 8016 if (CurrentLSI->isVariableExprMarkedAsNonODRUsed(VarExpr) && 8017 !IsFullExprInstantiationDependent) 8018 return; 8019 8020 // If we have a capture-capable lambda for the variable, go ahead and 8021 // capture the variable in that lambda (and all its enclosing lambdas). 8022 if (const Optional<unsigned> Index = 8023 getStackIndexOfNearestEnclosingCaptureCapableLambda( 8024 S.FunctionScopes, Var, S)) 8025 S.MarkCaptureUsedInEnclosingContext(Var, VarExpr->getExprLoc(), 8026 Index.getValue()); 8027 const bool IsVarNeverAConstantExpression = 8028 VariableCanNeverBeAConstantExpression(Var, S.Context); 8029 if (!IsFullExprInstantiationDependent || IsVarNeverAConstantExpression) { 8030 // This full expression is not instantiation dependent or the variable 8031 // can not be used in a constant expression - which means 8032 // this variable must be odr-used here, so diagnose a 8033 // capture violation early, if the variable is un-captureable. 8034 // This is purely for diagnosing errors early. Otherwise, this 8035 // error would get diagnosed when the lambda becomes capture ready. 8036 QualType CaptureType, DeclRefType; 8037 SourceLocation ExprLoc = VarExpr->getExprLoc(); 8038 if (S.tryCaptureVariable(Var, ExprLoc, S.TryCapture_Implicit, 8039 /*EllipsisLoc*/ SourceLocation(), 8040 /*BuildAndDiagnose*/false, CaptureType, 8041 DeclRefType, nullptr)) { 8042 // We will never be able to capture this variable, and we need 8043 // to be able to in any and all instantiations, so diagnose it. 8044 S.tryCaptureVariable(Var, ExprLoc, S.TryCapture_Implicit, 8045 /*EllipsisLoc*/ SourceLocation(), 8046 /*BuildAndDiagnose*/true, CaptureType, 8047 DeclRefType, nullptr); 8048 } 8049 } 8050 }); 8051 8052 // Check if 'this' needs to be captured. 8053 if (CurrentLSI->hasPotentialThisCapture()) { 8054 // If we have a capture-capable lambda for 'this', go ahead and capture 8055 // 'this' in that lambda (and all its enclosing lambdas). 8056 if (const Optional<unsigned> Index = 8057 getStackIndexOfNearestEnclosingCaptureCapableLambda( 8058 S.FunctionScopes, /*0 is 'this'*/ nullptr, S)) { 8059 const unsigned FunctionScopeIndexOfCapturableLambda = Index.getValue(); 8060 S.CheckCXXThisCapture(CurrentLSI->PotentialThisCaptureLocation, 8061 /*Explicit*/ false, /*BuildAndDiagnose*/ true, 8062 &FunctionScopeIndexOfCapturableLambda); 8063 } 8064 } 8065 8066 // Reset all the potential captures at the end of each full-expression. 8067 CurrentLSI->clearPotentialCaptures(); 8068 } 8069 8070 static ExprResult attemptRecovery(Sema &SemaRef, 8071 const TypoCorrectionConsumer &Consumer, 8072 const TypoCorrection &TC) { 8073 LookupResult R(SemaRef, Consumer.getLookupResult().getLookupNameInfo(), 8074 Consumer.getLookupResult().getLookupKind()); 8075 const CXXScopeSpec *SS = Consumer.getSS(); 8076 CXXScopeSpec NewSS; 8077 8078 // Use an approprate CXXScopeSpec for building the expr. 8079 if (auto *NNS = TC.getCorrectionSpecifier()) 8080 NewSS.MakeTrivial(SemaRef.Context, NNS, TC.getCorrectionRange()); 8081 else if (SS && !TC.WillReplaceSpecifier()) 8082 NewSS = *SS; 8083 8084 if (auto *ND = TC.getFoundDecl()) { 8085 R.setLookupName(ND->getDeclName()); 8086 R.addDecl(ND); 8087 if (ND->isCXXClassMember()) { 8088 // Figure out the correct naming class to add to the LookupResult. 8089 CXXRecordDecl *Record = nullptr; 8090 if (auto *NNS = TC.getCorrectionSpecifier()) 8091 Record = NNS->getAsType()->getAsCXXRecordDecl(); 8092 if (!Record) 8093 Record = 8094 dyn_cast<CXXRecordDecl>(ND->getDeclContext()->getRedeclContext()); 8095 if (Record) 8096 R.setNamingClass(Record); 8097 8098 // Detect and handle the case where the decl might be an implicit 8099 // member. 8100 bool MightBeImplicitMember; 8101 if (!Consumer.isAddressOfOperand()) 8102 MightBeImplicitMember = true; 8103 else if (!NewSS.isEmpty()) 8104 MightBeImplicitMember = false; 8105 else if (R.isOverloadedResult()) 8106 MightBeImplicitMember = false; 8107 else if (R.isUnresolvableResult()) 8108 MightBeImplicitMember = true; 8109 else 8110 MightBeImplicitMember = isa<FieldDecl>(ND) || 8111 isa<IndirectFieldDecl>(ND) || 8112 isa<MSPropertyDecl>(ND); 8113 8114 if (MightBeImplicitMember) 8115 return SemaRef.BuildPossibleImplicitMemberExpr( 8116 NewSS, /*TemplateKWLoc*/ SourceLocation(), R, 8117 /*TemplateArgs*/ nullptr, /*S*/ nullptr); 8118 } else if (auto *Ivar = dyn_cast<ObjCIvarDecl>(ND)) { 8119 return SemaRef.LookupInObjCMethod(R, Consumer.getScope(), 8120 Ivar->getIdentifier()); 8121 } 8122 } 8123 8124 return SemaRef.BuildDeclarationNameExpr(NewSS, R, /*NeedsADL*/ false, 8125 /*AcceptInvalidDecl*/ true); 8126 } 8127 8128 namespace { 8129 class FindTypoExprs : public RecursiveASTVisitor<FindTypoExprs> { 8130 llvm::SmallSetVector<TypoExpr *, 2> &TypoExprs; 8131 8132 public: 8133 explicit FindTypoExprs(llvm::SmallSetVector<TypoExpr *, 2> &TypoExprs) 8134 : TypoExprs(TypoExprs) {} 8135 bool VisitTypoExpr(TypoExpr *TE) { 8136 TypoExprs.insert(TE); 8137 return true; 8138 } 8139 }; 8140 8141 class TransformTypos : public TreeTransform<TransformTypos> { 8142 typedef TreeTransform<TransformTypos> BaseTransform; 8143 8144 VarDecl *InitDecl; // A decl to avoid as a correction because it is in the 8145 // process of being initialized. 8146 llvm::function_ref<ExprResult(Expr *)> ExprFilter; 8147 llvm::SmallSetVector<TypoExpr *, 2> TypoExprs, AmbiguousTypoExprs; 8148 llvm::SmallDenseMap<TypoExpr *, ExprResult, 2> TransformCache; 8149 llvm::SmallDenseMap<OverloadExpr *, Expr *, 4> OverloadResolution; 8150 8151 /// Emit diagnostics for all of the TypoExprs encountered. 8152 /// 8153 /// If the TypoExprs were successfully corrected, then the diagnostics should 8154 /// suggest the corrections. Otherwise the diagnostics will not suggest 8155 /// anything (having been passed an empty TypoCorrection). 8156 /// 8157 /// If we've failed to correct due to ambiguous corrections, we need to 8158 /// be sure to pass empty corrections and replacements. Otherwise it's 8159 /// possible that the Consumer has a TypoCorrection that failed to ambiguity 8160 /// and we don't want to report those diagnostics. 8161 void EmitAllDiagnostics(bool IsAmbiguous) { 8162 for (TypoExpr *TE : TypoExprs) { 8163 auto &State = SemaRef.getTypoExprState(TE); 8164 if (State.DiagHandler) { 8165 TypoCorrection TC = IsAmbiguous 8166 ? TypoCorrection() : State.Consumer->getCurrentCorrection(); 8167 ExprResult Replacement = IsAmbiguous ? ExprError() : TransformCache[TE]; 8168 8169 // Extract the NamedDecl from the transformed TypoExpr and add it to the 8170 // TypoCorrection, replacing the existing decls. This ensures the right 8171 // NamedDecl is used in diagnostics e.g. in the case where overload 8172 // resolution was used to select one from several possible decls that 8173 // had been stored in the TypoCorrection. 8174 if (auto *ND = getDeclFromExpr( 8175 Replacement.isInvalid() ? nullptr : Replacement.get())) 8176 TC.setCorrectionDecl(ND); 8177 8178 State.DiagHandler(TC); 8179 } 8180 SemaRef.clearDelayedTypo(TE); 8181 } 8182 } 8183 8184 /// Try to advance the typo correction state of the first unfinished TypoExpr. 8185 /// We allow advancement of the correction stream by removing it from the 8186 /// TransformCache which allows `TransformTypoExpr` to advance during the 8187 /// next transformation attempt. 8188 /// 8189 /// Any substitution attempts for the previous TypoExprs (which must have been 8190 /// finished) will need to be retried since it's possible that they will now 8191 /// be invalid given the latest advancement. 8192 /// 8193 /// We need to be sure that we're making progress - it's possible that the 8194 /// tree is so malformed that the transform never makes it to the 8195 /// `TransformTypoExpr`. 8196 /// 8197 /// Returns true if there are any untried correction combinations. 8198 bool CheckAndAdvanceTypoExprCorrectionStreams() { 8199 for (auto TE : TypoExprs) { 8200 auto &State = SemaRef.getTypoExprState(TE); 8201 TransformCache.erase(TE); 8202 if (!State.Consumer->hasMadeAnyCorrectionProgress()) 8203 return false; 8204 if (!State.Consumer->finished()) 8205 return true; 8206 State.Consumer->resetCorrectionStream(); 8207 } 8208 return false; 8209 } 8210 8211 NamedDecl *getDeclFromExpr(Expr *E) { 8212 if (auto *OE = dyn_cast_or_null<OverloadExpr>(E)) 8213 E = OverloadResolution[OE]; 8214 8215 if (!E) 8216 return nullptr; 8217 if (auto *DRE = dyn_cast<DeclRefExpr>(E)) 8218 return DRE->getFoundDecl(); 8219 if (auto *ME = dyn_cast<MemberExpr>(E)) 8220 return ME->getFoundDecl(); 8221 // FIXME: Add any other expr types that could be be seen by the delayed typo 8222 // correction TreeTransform for which the corresponding TypoCorrection could 8223 // contain multiple decls. 8224 return nullptr; 8225 } 8226 8227 ExprResult TryTransform(Expr *E) { 8228 Sema::SFINAETrap Trap(SemaRef); 8229 ExprResult Res = TransformExpr(E); 8230 if (Trap.hasErrorOccurred() || Res.isInvalid()) 8231 return ExprError(); 8232 8233 return ExprFilter(Res.get()); 8234 } 8235 8236 // Since correcting typos may intoduce new TypoExprs, this function 8237 // checks for new TypoExprs and recurses if it finds any. Note that it will 8238 // only succeed if it is able to correct all typos in the given expression. 8239 ExprResult CheckForRecursiveTypos(ExprResult Res, bool &IsAmbiguous) { 8240 if (Res.isInvalid()) { 8241 return Res; 8242 } 8243 // Check to see if any new TypoExprs were created. If so, we need to recurse 8244 // to check their validity. 8245 Expr *FixedExpr = Res.get(); 8246 8247 auto SavedTypoExprs = std::move(TypoExprs); 8248 auto SavedAmbiguousTypoExprs = std::move(AmbiguousTypoExprs); 8249 TypoExprs.clear(); 8250 AmbiguousTypoExprs.clear(); 8251 8252 FindTypoExprs(TypoExprs).TraverseStmt(FixedExpr); 8253 if (!TypoExprs.empty()) { 8254 // Recurse to handle newly created TypoExprs. If we're not able to 8255 // handle them, discard these TypoExprs. 8256 ExprResult RecurResult = 8257 RecursiveTransformLoop(FixedExpr, IsAmbiguous); 8258 if (RecurResult.isInvalid()) { 8259 Res = ExprError(); 8260 // Recursive corrections didn't work, wipe them away and don't add 8261 // them to the TypoExprs set. Remove them from Sema's TypoExpr list 8262 // since we don't want to clear them twice. Note: it's possible the 8263 // TypoExprs were created recursively and thus won't be in our 8264 // Sema's TypoExprs - they were created in our `RecursiveTransformLoop`. 8265 auto &SemaTypoExprs = SemaRef.TypoExprs; 8266 for (auto TE : TypoExprs) { 8267 TransformCache.erase(TE); 8268 SemaRef.clearDelayedTypo(TE); 8269 8270 auto SI = find(SemaTypoExprs, TE); 8271 if (SI != SemaTypoExprs.end()) { 8272 SemaTypoExprs.erase(SI); 8273 } 8274 } 8275 } else { 8276 // TypoExpr is valid: add newly created TypoExprs since we were 8277 // able to correct them. 8278 Res = RecurResult; 8279 SavedTypoExprs.set_union(TypoExprs); 8280 } 8281 } 8282 8283 TypoExprs = std::move(SavedTypoExprs); 8284 AmbiguousTypoExprs = std::move(SavedAmbiguousTypoExprs); 8285 8286 return Res; 8287 } 8288 8289 // Try to transform the given expression, looping through the correction 8290 // candidates with `CheckAndAdvanceTypoExprCorrectionStreams`. 8291 // 8292 // If valid ambiguous typo corrections are seen, `IsAmbiguous` is set to 8293 // true and this method immediately will return an `ExprError`. 8294 ExprResult RecursiveTransformLoop(Expr *E, bool &IsAmbiguous) { 8295 ExprResult Res; 8296 auto SavedTypoExprs = std::move(SemaRef.TypoExprs); 8297 SemaRef.TypoExprs.clear(); 8298 8299 while (true) { 8300 Res = CheckForRecursiveTypos(TryTransform(E), IsAmbiguous); 8301 8302 // Recursion encountered an ambiguous correction. This means that our 8303 // correction itself is ambiguous, so stop now. 8304 if (IsAmbiguous) 8305 break; 8306 8307 // If the transform is still valid after checking for any new typos, 8308 // it's good to go. 8309 if (!Res.isInvalid()) 8310 break; 8311 8312 // The transform was invalid, see if we have any TypoExprs with untried 8313 // correction candidates. 8314 if (!CheckAndAdvanceTypoExprCorrectionStreams()) 8315 break; 8316 } 8317 8318 // If we found a valid result, double check to make sure it's not ambiguous. 8319 if (!IsAmbiguous && !Res.isInvalid() && !AmbiguousTypoExprs.empty()) { 8320 auto SavedTransformCache = 8321 llvm::SmallDenseMap<TypoExpr *, ExprResult, 2>(TransformCache); 8322 8323 // Ensure none of the TypoExprs have multiple typo correction candidates 8324 // with the same edit length that pass all the checks and filters. 8325 while (!AmbiguousTypoExprs.empty()) { 8326 auto TE = AmbiguousTypoExprs.back(); 8327 8328 // TryTransform itself can create new Typos, adding them to the TypoExpr map 8329 // and invalidating our TypoExprState, so always fetch it instead of storing. 8330 SemaRef.getTypoExprState(TE).Consumer->saveCurrentPosition(); 8331 8332 TypoCorrection TC = SemaRef.getTypoExprState(TE).Consumer->peekNextCorrection(); 8333 TypoCorrection Next; 8334 do { 8335 // Fetch the next correction by erasing the typo from the cache and calling 8336 // `TryTransform` which will iterate through corrections in 8337 // `TransformTypoExpr`. 8338 TransformCache.erase(TE); 8339 ExprResult AmbigRes = CheckForRecursiveTypos(TryTransform(E), IsAmbiguous); 8340 8341 if (!AmbigRes.isInvalid() || IsAmbiguous) { 8342 SemaRef.getTypoExprState(TE).Consumer->resetCorrectionStream(); 8343 SavedTransformCache.erase(TE); 8344 Res = ExprError(); 8345 IsAmbiguous = true; 8346 break; 8347 } 8348 } while ((Next = SemaRef.getTypoExprState(TE).Consumer->peekNextCorrection()) && 8349 Next.getEditDistance(false) == TC.getEditDistance(false)); 8350 8351 if (IsAmbiguous) 8352 break; 8353 8354 AmbiguousTypoExprs.remove(TE); 8355 SemaRef.getTypoExprState(TE).Consumer->restoreSavedPosition(); 8356 TransformCache[TE] = SavedTransformCache[TE]; 8357 } 8358 TransformCache = std::move(SavedTransformCache); 8359 } 8360 8361 // Wipe away any newly created TypoExprs that we don't know about. Since we 8362 // clear any invalid TypoExprs in `CheckForRecursiveTypos`, this is only 8363 // possible if a `TypoExpr` is created during a transformation but then 8364 // fails before we can discover it. 8365 auto &SemaTypoExprs = SemaRef.TypoExprs; 8366 for (auto Iterator = SemaTypoExprs.begin(); Iterator != SemaTypoExprs.end();) { 8367 auto TE = *Iterator; 8368 auto FI = find(TypoExprs, TE); 8369 if (FI != TypoExprs.end()) { 8370 Iterator++; 8371 continue; 8372 } 8373 SemaRef.clearDelayedTypo(TE); 8374 Iterator = SemaTypoExprs.erase(Iterator); 8375 } 8376 SemaRef.TypoExprs = std::move(SavedTypoExprs); 8377 8378 return Res; 8379 } 8380 8381 public: 8382 TransformTypos(Sema &SemaRef, VarDecl *InitDecl, llvm::function_ref<ExprResult(Expr *)> Filter) 8383 : BaseTransform(SemaRef), InitDecl(InitDecl), ExprFilter(Filter) {} 8384 8385 ExprResult RebuildCallExpr(Expr *Callee, SourceLocation LParenLoc, 8386 MultiExprArg Args, 8387 SourceLocation RParenLoc, 8388 Expr *ExecConfig = nullptr) { 8389 auto Result = BaseTransform::RebuildCallExpr(Callee, LParenLoc, Args, 8390 RParenLoc, ExecConfig); 8391 if (auto *OE = dyn_cast<OverloadExpr>(Callee)) { 8392 if (Result.isUsable()) { 8393 Expr *ResultCall = Result.get(); 8394 if (auto *BE = dyn_cast<CXXBindTemporaryExpr>(ResultCall)) 8395 ResultCall = BE->getSubExpr(); 8396 if (auto *CE = dyn_cast<CallExpr>(ResultCall)) 8397 OverloadResolution[OE] = CE->getCallee(); 8398 } 8399 } 8400 return Result; 8401 } 8402 8403 ExprResult TransformLambdaExpr(LambdaExpr *E) { return Owned(E); } 8404 8405 ExprResult TransformBlockExpr(BlockExpr *E) { return Owned(E); } 8406 8407 ExprResult Transform(Expr *E) { 8408 bool IsAmbiguous = false; 8409 ExprResult Res = RecursiveTransformLoop(E, IsAmbiguous); 8410 8411 if (!Res.isUsable()) 8412 FindTypoExprs(TypoExprs).TraverseStmt(E); 8413 8414 EmitAllDiagnostics(IsAmbiguous); 8415 8416 return Res; 8417 } 8418 8419 ExprResult TransformTypoExpr(TypoExpr *E) { 8420 // If the TypoExpr hasn't been seen before, record it. Otherwise, return the 8421 // cached transformation result if there is one and the TypoExpr isn't the 8422 // first one that was encountered. 8423 auto &CacheEntry = TransformCache[E]; 8424 if (!TypoExprs.insert(E) && !CacheEntry.isUnset()) { 8425 return CacheEntry; 8426 } 8427 8428 auto &State = SemaRef.getTypoExprState(E); 8429 assert(State.Consumer && "Cannot transform a cleared TypoExpr"); 8430 8431 // For the first TypoExpr and an uncached TypoExpr, find the next likely 8432 // typo correction and return it. 8433 while (TypoCorrection TC = State.Consumer->getNextCorrection()) { 8434 if (InitDecl && TC.getFoundDecl() == InitDecl) 8435 continue; 8436 // FIXME: If we would typo-correct to an invalid declaration, it's 8437 // probably best to just suppress all errors from this typo correction. 8438 ExprResult NE = State.RecoveryHandler ? 8439 State.RecoveryHandler(SemaRef, E, TC) : 8440 attemptRecovery(SemaRef, *State.Consumer, TC); 8441 if (!NE.isInvalid()) { 8442 // Check whether there may be a second viable correction with the same 8443 // edit distance; if so, remember this TypoExpr may have an ambiguous 8444 // correction so it can be more thoroughly vetted later. 8445 TypoCorrection Next; 8446 if ((Next = State.Consumer->peekNextCorrection()) && 8447 Next.getEditDistance(false) == TC.getEditDistance(false)) { 8448 AmbiguousTypoExprs.insert(E); 8449 } else { 8450 AmbiguousTypoExprs.remove(E); 8451 } 8452 assert(!NE.isUnset() && 8453 "Typo was transformed into a valid-but-null ExprResult"); 8454 return CacheEntry = NE; 8455 } 8456 } 8457 return CacheEntry = ExprError(); 8458 } 8459 }; 8460 } 8461 8462 ExprResult 8463 Sema::CorrectDelayedTyposInExpr(Expr *E, VarDecl *InitDecl, 8464 bool RecoverUncorrectedTypos, 8465 llvm::function_ref<ExprResult(Expr *)> Filter) { 8466 // If the current evaluation context indicates there are uncorrected typos 8467 // and the current expression isn't guaranteed to not have typos, try to 8468 // resolve any TypoExpr nodes that might be in the expression. 8469 if (E && !ExprEvalContexts.empty() && ExprEvalContexts.back().NumTypos && 8470 (E->isTypeDependent() || E->isValueDependent() || 8471 E->isInstantiationDependent())) { 8472 auto TyposResolved = DelayedTypos.size(); 8473 auto Result = TransformTypos(*this, InitDecl, Filter).Transform(E); 8474 TyposResolved -= DelayedTypos.size(); 8475 if (Result.isInvalid() || Result.get() != E) { 8476 ExprEvalContexts.back().NumTypos -= TyposResolved; 8477 if (Result.isInvalid() && RecoverUncorrectedTypos) { 8478 struct TyposReplace : TreeTransform<TyposReplace> { 8479 TyposReplace(Sema &SemaRef) : TreeTransform(SemaRef) {} 8480 ExprResult TransformTypoExpr(clang::TypoExpr *E) { 8481 return this->SemaRef.CreateRecoveryExpr(E->getBeginLoc(), 8482 E->getEndLoc(), {}); 8483 } 8484 } TT(*this); 8485 return TT.TransformExpr(E); 8486 } 8487 return Result; 8488 } 8489 assert(TyposResolved == 0 && "Corrected typo but got same Expr back?"); 8490 } 8491 return E; 8492 } 8493 8494 ExprResult Sema::ActOnFinishFullExpr(Expr *FE, SourceLocation CC, 8495 bool DiscardedValue, 8496 bool IsConstexpr) { 8497 ExprResult FullExpr = FE; 8498 8499 if (!FullExpr.get()) 8500 return ExprError(); 8501 8502 if (DiagnoseUnexpandedParameterPack(FullExpr.get())) 8503 return ExprError(); 8504 8505 if (DiscardedValue) { 8506 // Top-level expressions default to 'id' when we're in a debugger. 8507 if (getLangOpts().DebuggerCastResultToId && 8508 FullExpr.get()->getType() == Context.UnknownAnyTy) { 8509 FullExpr = forceUnknownAnyToType(FullExpr.get(), Context.getObjCIdType()); 8510 if (FullExpr.isInvalid()) 8511 return ExprError(); 8512 } 8513 8514 FullExpr = CheckPlaceholderExpr(FullExpr.get()); 8515 if (FullExpr.isInvalid()) 8516 return ExprError(); 8517 8518 FullExpr = IgnoredValueConversions(FullExpr.get()); 8519 if (FullExpr.isInvalid()) 8520 return ExprError(); 8521 8522 DiagnoseUnusedExprResult(FullExpr.get()); 8523 } 8524 8525 FullExpr = CorrectDelayedTyposInExpr(FullExpr.get(), /*InitDecl=*/nullptr, 8526 /*RecoverUncorrectedTypos=*/true); 8527 if (FullExpr.isInvalid()) 8528 return ExprError(); 8529 8530 CheckCompletedExpr(FullExpr.get(), CC, IsConstexpr); 8531 8532 // At the end of this full expression (which could be a deeply nested 8533 // lambda), if there is a potential capture within the nested lambda, 8534 // have the outer capture-able lambda try and capture it. 8535 // Consider the following code: 8536 // void f(int, int); 8537 // void f(const int&, double); 8538 // void foo() { 8539 // const int x = 10, y = 20; 8540 // auto L = [=](auto a) { 8541 // auto M = [=](auto b) { 8542 // f(x, b); <-- requires x to be captured by L and M 8543 // f(y, a); <-- requires y to be captured by L, but not all Ms 8544 // }; 8545 // }; 8546 // } 8547 8548 // FIXME: Also consider what happens for something like this that involves 8549 // the gnu-extension statement-expressions or even lambda-init-captures: 8550 // void f() { 8551 // const int n = 0; 8552 // auto L = [&](auto a) { 8553 // +n + ({ 0; a; }); 8554 // }; 8555 // } 8556 // 8557 // Here, we see +n, and then the full-expression 0; ends, so we don't 8558 // capture n (and instead remove it from our list of potential captures), 8559 // and then the full-expression +n + ({ 0; }); ends, but it's too late 8560 // for us to see that we need to capture n after all. 8561 8562 LambdaScopeInfo *const CurrentLSI = 8563 getCurLambda(/*IgnoreCapturedRegions=*/true); 8564 // FIXME: PR 17877 showed that getCurLambda() can return a valid pointer 8565 // even if CurContext is not a lambda call operator. Refer to that Bug Report 8566 // for an example of the code that might cause this asynchrony. 8567 // By ensuring we are in the context of a lambda's call operator 8568 // we can fix the bug (we only need to check whether we need to capture 8569 // if we are within a lambda's body); but per the comments in that 8570 // PR, a proper fix would entail : 8571 // "Alternative suggestion: 8572 // - Add to Sema an integer holding the smallest (outermost) scope 8573 // index that we are *lexically* within, and save/restore/set to 8574 // FunctionScopes.size() in InstantiatingTemplate's 8575 // constructor/destructor. 8576 // - Teach the handful of places that iterate over FunctionScopes to 8577 // stop at the outermost enclosing lexical scope." 8578 DeclContext *DC = CurContext; 8579 while (DC && isa<CapturedDecl>(DC)) 8580 DC = DC->getParent(); 8581 const bool IsInLambdaDeclContext = isLambdaCallOperator(DC); 8582 if (IsInLambdaDeclContext && CurrentLSI && 8583 CurrentLSI->hasPotentialCaptures() && !FullExpr.isInvalid()) 8584 CheckIfAnyEnclosingLambdasMustCaptureAnyPotentialCaptures(FE, CurrentLSI, 8585 *this); 8586 return MaybeCreateExprWithCleanups(FullExpr); 8587 } 8588 8589 StmtResult Sema::ActOnFinishFullStmt(Stmt *FullStmt) { 8590 if (!FullStmt) return StmtError(); 8591 8592 return MaybeCreateStmtWithCleanups(FullStmt); 8593 } 8594 8595 Sema::IfExistsResult 8596 Sema::CheckMicrosoftIfExistsSymbol(Scope *S, 8597 CXXScopeSpec &SS, 8598 const DeclarationNameInfo &TargetNameInfo) { 8599 DeclarationName TargetName = TargetNameInfo.getName(); 8600 if (!TargetName) 8601 return IER_DoesNotExist; 8602 8603 // If the name itself is dependent, then the result is dependent. 8604 if (TargetName.isDependentName()) 8605 return IER_Dependent; 8606 8607 // Do the redeclaration lookup in the current scope. 8608 LookupResult R(*this, TargetNameInfo, Sema::LookupAnyName, 8609 Sema::NotForRedeclaration); 8610 LookupParsedName(R, S, &SS); 8611 R.suppressDiagnostics(); 8612 8613 switch (R.getResultKind()) { 8614 case LookupResult::Found: 8615 case LookupResult::FoundOverloaded: 8616 case LookupResult::FoundUnresolvedValue: 8617 case LookupResult::Ambiguous: 8618 return IER_Exists; 8619 8620 case LookupResult::NotFound: 8621 return IER_DoesNotExist; 8622 8623 case LookupResult::NotFoundInCurrentInstantiation: 8624 return IER_Dependent; 8625 } 8626 8627 llvm_unreachable("Invalid LookupResult Kind!"); 8628 } 8629 8630 Sema::IfExistsResult 8631 Sema::CheckMicrosoftIfExistsSymbol(Scope *S, SourceLocation KeywordLoc, 8632 bool IsIfExists, CXXScopeSpec &SS, 8633 UnqualifiedId &Name) { 8634 DeclarationNameInfo TargetNameInfo = GetNameFromUnqualifiedId(Name); 8635 8636 // Check for an unexpanded parameter pack. 8637 auto UPPC = IsIfExists ? UPPC_IfExists : UPPC_IfNotExists; 8638 if (DiagnoseUnexpandedParameterPack(SS, UPPC) || 8639 DiagnoseUnexpandedParameterPack(TargetNameInfo, UPPC)) 8640 return IER_Error; 8641 8642 return CheckMicrosoftIfExistsSymbol(S, SS, TargetNameInfo); 8643 } 8644 8645 concepts::Requirement *Sema::ActOnSimpleRequirement(Expr *E) { 8646 return BuildExprRequirement(E, /*IsSimple=*/true, 8647 /*NoexceptLoc=*/SourceLocation(), 8648 /*ReturnTypeRequirement=*/{}); 8649 } 8650 8651 concepts::Requirement * 8652 Sema::ActOnTypeRequirement(SourceLocation TypenameKWLoc, CXXScopeSpec &SS, 8653 SourceLocation NameLoc, IdentifierInfo *TypeName, 8654 TemplateIdAnnotation *TemplateId) { 8655 assert(((!TypeName && TemplateId) || (TypeName && !TemplateId)) && 8656 "Exactly one of TypeName and TemplateId must be specified."); 8657 TypeSourceInfo *TSI = nullptr; 8658 if (TypeName) { 8659 QualType T = CheckTypenameType(ETK_Typename, TypenameKWLoc, 8660 SS.getWithLocInContext(Context), *TypeName, 8661 NameLoc, &TSI, /*DeducedTypeContext=*/false); 8662 if (T.isNull()) 8663 return nullptr; 8664 } else { 8665 ASTTemplateArgsPtr ArgsPtr(TemplateId->getTemplateArgs(), 8666 TemplateId->NumArgs); 8667 TypeResult T = ActOnTypenameType(CurScope, TypenameKWLoc, SS, 8668 TemplateId->TemplateKWLoc, 8669 TemplateId->Template, TemplateId->Name, 8670 TemplateId->TemplateNameLoc, 8671 TemplateId->LAngleLoc, ArgsPtr, 8672 TemplateId->RAngleLoc); 8673 if (T.isInvalid()) 8674 return nullptr; 8675 if (GetTypeFromParser(T.get(), &TSI).isNull()) 8676 return nullptr; 8677 } 8678 return BuildTypeRequirement(TSI); 8679 } 8680 8681 concepts::Requirement * 8682 Sema::ActOnCompoundRequirement(Expr *E, SourceLocation NoexceptLoc) { 8683 return BuildExprRequirement(E, /*IsSimple=*/false, NoexceptLoc, 8684 /*ReturnTypeRequirement=*/{}); 8685 } 8686 8687 concepts::Requirement * 8688 Sema::ActOnCompoundRequirement( 8689 Expr *E, SourceLocation NoexceptLoc, CXXScopeSpec &SS, 8690 TemplateIdAnnotation *TypeConstraint, unsigned Depth) { 8691 // C++2a [expr.prim.req.compound] p1.3.3 8692 // [..] the expression is deduced against an invented function template 8693 // F [...] F is a void function template with a single type template 8694 // parameter T declared with the constrained-parameter. Form a new 8695 // cv-qualifier-seq cv by taking the union of const and volatile specifiers 8696 // around the constrained-parameter. F has a single parameter whose 8697 // type-specifier is cv T followed by the abstract-declarator. [...] 8698 // 8699 // The cv part is done in the calling function - we get the concept with 8700 // arguments and the abstract declarator with the correct CV qualification and 8701 // have to synthesize T and the single parameter of F. 8702 auto &II = Context.Idents.get("expr-type"); 8703 auto *TParam = TemplateTypeParmDecl::Create(Context, CurContext, 8704 SourceLocation(), 8705 SourceLocation(), Depth, 8706 /*Index=*/0, &II, 8707 /*Typename=*/true, 8708 /*ParameterPack=*/false, 8709 /*HasTypeConstraint=*/true); 8710 8711 if (BuildTypeConstraint(SS, TypeConstraint, TParam, 8712 /*EllpsisLoc=*/SourceLocation(), 8713 /*AllowUnexpandedPack=*/true)) 8714 // Just produce a requirement with no type requirements. 8715 return BuildExprRequirement(E, /*IsSimple=*/false, NoexceptLoc, {}); 8716 8717 auto *TPL = TemplateParameterList::Create(Context, SourceLocation(), 8718 SourceLocation(), 8719 ArrayRef<NamedDecl *>(TParam), 8720 SourceLocation(), 8721 /*RequiresClause=*/nullptr); 8722 return BuildExprRequirement( 8723 E, /*IsSimple=*/false, NoexceptLoc, 8724 concepts::ExprRequirement::ReturnTypeRequirement(TPL)); 8725 } 8726 8727 concepts::ExprRequirement * 8728 Sema::BuildExprRequirement( 8729 Expr *E, bool IsSimple, SourceLocation NoexceptLoc, 8730 concepts::ExprRequirement::ReturnTypeRequirement ReturnTypeRequirement) { 8731 auto Status = concepts::ExprRequirement::SS_Satisfied; 8732 ConceptSpecializationExpr *SubstitutedConstraintExpr = nullptr; 8733 if (E->isInstantiationDependent() || ReturnTypeRequirement.isDependent()) 8734 Status = concepts::ExprRequirement::SS_Dependent; 8735 else if (NoexceptLoc.isValid() && canThrow(E) == CanThrowResult::CT_Can) 8736 Status = concepts::ExprRequirement::SS_NoexceptNotMet; 8737 else if (ReturnTypeRequirement.isSubstitutionFailure()) 8738 Status = concepts::ExprRequirement::SS_TypeRequirementSubstitutionFailure; 8739 else if (ReturnTypeRequirement.isTypeConstraint()) { 8740 // C++2a [expr.prim.req]p1.3.3 8741 // The immediately-declared constraint ([temp]) of decltype((E)) shall 8742 // be satisfied. 8743 TemplateParameterList *TPL = 8744 ReturnTypeRequirement.getTypeConstraintTemplateParameterList(); 8745 QualType MatchedType = 8746 getDecltypeForParenthesizedExpr(E).getCanonicalType(); 8747 llvm::SmallVector<TemplateArgument, 1> Args; 8748 Args.push_back(TemplateArgument(MatchedType)); 8749 TemplateArgumentList TAL(TemplateArgumentList::OnStack, Args); 8750 MultiLevelTemplateArgumentList MLTAL(TAL); 8751 for (unsigned I = 0; I < TPL->getDepth(); ++I) 8752 MLTAL.addOuterRetainedLevel(); 8753 Expr *IDC = 8754 cast<TemplateTypeParmDecl>(TPL->getParam(0))->getTypeConstraint() 8755 ->getImmediatelyDeclaredConstraint(); 8756 ExprResult Constraint = SubstExpr(IDC, MLTAL); 8757 assert(!Constraint.isInvalid() && 8758 "Substitution cannot fail as it is simply putting a type template " 8759 "argument into a concept specialization expression's parameter."); 8760 8761 SubstitutedConstraintExpr = 8762 cast<ConceptSpecializationExpr>(Constraint.get()); 8763 if (!SubstitutedConstraintExpr->isSatisfied()) 8764 Status = concepts::ExprRequirement::SS_ConstraintsNotSatisfied; 8765 } 8766 return new (Context) concepts::ExprRequirement(E, IsSimple, NoexceptLoc, 8767 ReturnTypeRequirement, Status, 8768 SubstitutedConstraintExpr); 8769 } 8770 8771 concepts::ExprRequirement * 8772 Sema::BuildExprRequirement( 8773 concepts::Requirement::SubstitutionDiagnostic *ExprSubstitutionDiagnostic, 8774 bool IsSimple, SourceLocation NoexceptLoc, 8775 concepts::ExprRequirement::ReturnTypeRequirement ReturnTypeRequirement) { 8776 return new (Context) concepts::ExprRequirement(ExprSubstitutionDiagnostic, 8777 IsSimple, NoexceptLoc, 8778 ReturnTypeRequirement); 8779 } 8780 8781 concepts::TypeRequirement * 8782 Sema::BuildTypeRequirement(TypeSourceInfo *Type) { 8783 return new (Context) concepts::TypeRequirement(Type); 8784 } 8785 8786 concepts::TypeRequirement * 8787 Sema::BuildTypeRequirement( 8788 concepts::Requirement::SubstitutionDiagnostic *SubstDiag) { 8789 return new (Context) concepts::TypeRequirement(SubstDiag); 8790 } 8791 8792 concepts::Requirement *Sema::ActOnNestedRequirement(Expr *Constraint) { 8793 return BuildNestedRequirement(Constraint); 8794 } 8795 8796 concepts::NestedRequirement * 8797 Sema::BuildNestedRequirement(Expr *Constraint) { 8798 ConstraintSatisfaction Satisfaction; 8799 if (!Constraint->isInstantiationDependent() && 8800 CheckConstraintSatisfaction(nullptr, {Constraint}, /*TemplateArgs=*/{}, 8801 Constraint->getSourceRange(), Satisfaction)) 8802 return nullptr; 8803 return new (Context) concepts::NestedRequirement(Context, Constraint, 8804 Satisfaction); 8805 } 8806 8807 concepts::NestedRequirement * 8808 Sema::BuildNestedRequirement( 8809 concepts::Requirement::SubstitutionDiagnostic *SubstDiag) { 8810 return new (Context) concepts::NestedRequirement(SubstDiag); 8811 } 8812 8813 RequiresExprBodyDecl * 8814 Sema::ActOnStartRequiresExpr(SourceLocation RequiresKWLoc, 8815 ArrayRef<ParmVarDecl *> LocalParameters, 8816 Scope *BodyScope) { 8817 assert(BodyScope); 8818 8819 RequiresExprBodyDecl *Body = RequiresExprBodyDecl::Create(Context, CurContext, 8820 RequiresKWLoc); 8821 8822 PushDeclContext(BodyScope, Body); 8823 8824 for (ParmVarDecl *Param : LocalParameters) { 8825 if (Param->hasDefaultArg()) 8826 // C++2a [expr.prim.req] p4 8827 // [...] A local parameter of a requires-expression shall not have a 8828 // default argument. [...] 8829 Diag(Param->getDefaultArgRange().getBegin(), 8830 diag::err_requires_expr_local_parameter_default_argument); 8831 // Ignore default argument and move on 8832 8833 Param->setDeclContext(Body); 8834 // If this has an identifier, add it to the scope stack. 8835 if (Param->getIdentifier()) { 8836 CheckShadow(BodyScope, Param); 8837 PushOnScopeChains(Param, BodyScope); 8838 } 8839 } 8840 return Body; 8841 } 8842 8843 void Sema::ActOnFinishRequiresExpr() { 8844 assert(CurContext && "DeclContext imbalance!"); 8845 CurContext = CurContext->getLexicalParent(); 8846 assert(CurContext && "Popped translation unit!"); 8847 } 8848 8849 ExprResult 8850 Sema::ActOnRequiresExpr(SourceLocation RequiresKWLoc, 8851 RequiresExprBodyDecl *Body, 8852 ArrayRef<ParmVarDecl *> LocalParameters, 8853 ArrayRef<concepts::Requirement *> Requirements, 8854 SourceLocation ClosingBraceLoc) { 8855 auto *RE = RequiresExpr::Create(Context, RequiresKWLoc, Body, LocalParameters, 8856 Requirements, ClosingBraceLoc); 8857 if (DiagnoseUnexpandedParameterPackInRequiresExpr(RE)) 8858 return ExprError(); 8859 return RE; 8860 } 8861